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chb-rebase
...
cjy-goldst
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| c2b676abf2 | |||
| 2c60533501 |
@@ -7,6 +7,7 @@
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#include <string>
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#include <cmath>
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#include <new>
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#include <vector>
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using namespace std;
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#include "misc.h"
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@@ -17,6 +18,168 @@ using namespace std;
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#include "interp_lb_profile.h"
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#endif
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namespace
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{
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struct InterpBlockView
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{
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Block *bp;
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double llb[dim];
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double uub[dim];
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};
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struct BlockBinIndex
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{
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int bins[dim];
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double lo[dim];
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double inv[dim];
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vector<InterpBlockView> views;
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vector<vector<int>> bin_to_blocks;
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bool valid;
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BlockBinIndex() : valid(false)
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{
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for (int i = 0; i < dim; i++)
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{
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bins[i] = 1;
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lo[i] = 0.0;
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inv[i] = 0.0;
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}
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}
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};
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inline int clamp_int(int v, int lo, int hi)
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{
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return (v < lo) ? lo : ((v > hi) ? hi : v);
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}
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inline int coord_to_bin(double x, double lo, double inv, int nb)
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{
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if (nb <= 1 || inv <= 0.0)
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return 0;
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int b = int(floor((x - lo) * inv));
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return clamp_int(b, 0, nb - 1);
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}
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inline int bin_loc(const BlockBinIndex &index, int b0, int b1, int b2)
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{
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return b0 + index.bins[0] * (b1 + index.bins[1] * b2);
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}
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inline bool point_in_block_view(const InterpBlockView &view, const double *pox, const double *DH)
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{
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for (int i = 0; i < dim; i++)
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{
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if (pox[i] - view.llb[i] < -DH[i] / 2 || pox[i] - view.uub[i] > DH[i] / 2)
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return false;
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}
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return true;
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}
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void build_block_bin_index(Patch *patch, const double *DH, BlockBinIndex &index)
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{
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index = BlockBinIndex();
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MyList<Block> *Bp = patch->blb;
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while (Bp)
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{
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Block *BP = Bp->data;
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InterpBlockView view;
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view.bp = BP;
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for (int i = 0; i < dim; i++)
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{
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#ifdef Vertex
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#ifdef Cell
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#error Both Cell and Vertex are defined
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#endif
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view.llb[i] = (feq(BP->bbox[i], patch->bbox[i], DH[i] / 2)) ? BP->bbox[i] + patch->lli[i] * DH[i] : BP->bbox[i] + (ghost_width - 0.5) * DH[i];
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view.uub[i] = (feq(BP->bbox[dim + i], patch->bbox[dim + i], DH[i] / 2)) ? BP->bbox[dim + i] - patch->uui[i] * DH[i] : BP->bbox[dim + i] - (ghost_width - 0.5) * DH[i];
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#else
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#ifdef Cell
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view.llb[i] = (feq(BP->bbox[i], patch->bbox[i], DH[i] / 2)) ? BP->bbox[i] + patch->lli[i] * DH[i] : BP->bbox[i] + ghost_width * DH[i];
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view.uub[i] = (feq(BP->bbox[dim + i], patch->bbox[dim + i], DH[i] / 2)) ? BP->bbox[dim + i] - patch->uui[i] * DH[i] : BP->bbox[dim + i] - ghost_width * DH[i];
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#else
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#error Not define Vertex nor Cell
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#endif
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#endif
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}
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index.views.push_back(view);
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if (Bp == patch->ble)
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break;
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Bp = Bp->next;
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}
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const int nblocks = int(index.views.size());
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if (nblocks <= 0)
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return;
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int bins_1d = int(ceil(pow(double(nblocks), 1.0 / 3.0)));
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bins_1d = clamp_int(bins_1d, 1, 32);
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for (int i = 0; i < dim; i++)
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{
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index.bins[i] = bins_1d;
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index.lo[i] = patch->bbox[i] + patch->lli[i] * DH[i];
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const double hi = patch->bbox[dim + i] - patch->uui[i] * DH[i];
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if (hi > index.lo[i] && bins_1d > 1)
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index.inv[i] = bins_1d / (hi - index.lo[i]);
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else
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index.inv[i] = 0.0;
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}
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index.bin_to_blocks.resize(index.bins[0] * index.bins[1] * index.bins[2]);
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for (int bi = 0; bi < nblocks; bi++)
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{
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const InterpBlockView &view = index.views[bi];
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int bmin[dim], bmax[dim];
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for (int d = 0; d < dim; d++)
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{
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const double low = view.llb[d] - DH[d] / 2;
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const double up = view.uub[d] + DH[d] / 2;
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bmin[d] = coord_to_bin(low, index.lo[d], index.inv[d], index.bins[d]);
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bmax[d] = coord_to_bin(up, index.lo[d], index.inv[d], index.bins[d]);
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if (bmax[d] < bmin[d])
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{
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int t = bmin[d];
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bmin[d] = bmax[d];
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bmax[d] = t;
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}
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}
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for (int bz = bmin[2]; bz <= bmax[2]; bz++)
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for (int by = bmin[1]; by <= bmax[1]; by++)
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for (int bx = bmin[0]; bx <= bmax[0]; bx++)
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index.bin_to_blocks[bin_loc(index, bx, by, bz)].push_back(bi);
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}
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index.valid = true;
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}
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int find_block_index_for_point(const BlockBinIndex &index, const double *pox, const double *DH)
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{
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if (!index.valid)
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return -1;
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const int bx = coord_to_bin(pox[0], index.lo[0], index.inv[0], index.bins[0]);
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const int by = coord_to_bin(pox[1], index.lo[1], index.inv[1], index.bins[1]);
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const int bz = coord_to_bin(pox[2], index.lo[2], index.inv[2], index.bins[2]);
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const vector<int> &cand = index.bin_to_blocks[bin_loc(index, bx, by, bz)];
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for (size_t ci = 0; ci < cand.size(); ci++)
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{
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const int bi = cand[ci];
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if (point_in_block_view(index.views[bi], pox, DH))
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return bi;
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}
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// Fallback to full scan for numerical edge cases around bin boundaries.
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for (size_t bi = 0; bi < index.views.size(); bi++)
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if (point_in_block_view(index.views[bi], pox, DH))
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return int(bi);
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return -1;
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}
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} // namespace
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Patch::Patch(int DIM, int *shapei, double *bboxi, int levi, bool buflog, int Symmetry) : lev(levi)
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{
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@@ -367,9 +530,11 @@ void Patch::Interp_Points(MyList<var> *VarList,
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for (int j = 0; j < NN; j++)
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owner_rank[j] = -1;
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double DH[dim], llb[dim], uub[dim];
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double DH[dim];
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for (int i = 0; i < dim; i++)
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DH[i] = getdX(i);
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BlockBinIndex block_index;
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build_block_bin_index(this, DH, block_index);
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for (int j = 0; j < NN; j++) // run along points
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{
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@@ -392,57 +557,24 @@ void Patch::Interp_Points(MyList<var> *VarList,
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}
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}
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MyList<Block> *Bp = blb;
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bool notfind = true;
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while (notfind && Bp) // run along Blocks
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const int block_i = find_block_index_for_point(block_index, pox, DH);
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if (block_i >= 0)
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{
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Block *BP = Bp->data;
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bool flag = true;
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for (int i = 0; i < dim; i++)
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Block *BP = block_index.views[block_i].bp;
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owner_rank[j] = BP->rank;
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if (myrank == BP->rank)
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{
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#ifdef Vertex
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#ifdef Cell
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#error Both Cell and Vertex are defined
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#endif
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llb[i] = (feq(BP->bbox[i], bbox[i], DH[i] / 2)) ? BP->bbox[i] + lli[i] * DH[i] : BP->bbox[i] + (ghost_width - 0.5) * DH[i];
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uub[i] = (feq(BP->bbox[dim + i], bbox[dim + i], DH[i] / 2)) ? BP->bbox[dim + i] - uui[i] * DH[i] : BP->bbox[dim + i] - (ghost_width - 0.5) * DH[i];
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#else
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#ifdef Cell
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llb[i] = (feq(BP->bbox[i], bbox[i], DH[i] / 2)) ? BP->bbox[i] + lli[i] * DH[i] : BP->bbox[i] + ghost_width * DH[i];
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uub[i] = (feq(BP->bbox[dim + i], bbox[dim + i], DH[i] / 2)) ? BP->bbox[dim + i] - uui[i] * DH[i] : BP->bbox[dim + i] - ghost_width * DH[i];
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#else
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#error Not define Vertex nor Cell
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#endif
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#endif
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if (XX[i][j] - llb[i] < -DH[i] / 2 || XX[i][j] - uub[i] > DH[i] / 2)
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//---> interpolation
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varl = VarList;
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int k = 0;
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while (varl) // run along variables
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{
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flag = false;
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break;
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f_global_interp(BP->shape, BP->X[0], BP->X[1], BP->X[2], BP->fgfs[varl->data->sgfn], Shellf[j * num_var + k],
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pox[0], pox[1], pox[2], ordn, varl->data->SoA, Symmetry);
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varl = varl->next;
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k++;
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}
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}
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if (flag)
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{
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notfind = false;
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owner_rank[j] = BP->rank;
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if (myrank == BP->rank)
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{
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//---> interpolation
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varl = VarList;
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int k = 0;
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while (varl) // run along variables
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{
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f_global_interp(BP->shape, BP->X[0], BP->X[1], BP->X[2], BP->fgfs[varl->data->sgfn], Shellf[j * num_var + k],
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pox[0], pox[1], pox[2], ordn, varl->data->SoA, Symmetry);
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varl = varl->next;
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k++;
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}
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}
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}
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if (Bp == ble)
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break;
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Bp = Bp->next;
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}
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}
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@@ -535,9 +667,11 @@ void Patch::Interp_Points(MyList<var> *VarList,
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for (int j = 0; j < NN; j++)
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owner_rank[j] = -1;
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double DH[dim], llb[dim], uub[dim];
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double DH[dim];
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for (int i = 0; i < dim; i++)
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DH[i] = getdX(i);
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BlockBinIndex block_index;
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build_block_bin_index(this, DH, block_index);
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// --- Interpolation phase (identical to original) ---
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for (int j = 0; j < NN; j++)
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@@ -561,56 +695,23 @@ void Patch::Interp_Points(MyList<var> *VarList,
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}
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}
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MyList<Block> *Bp = blb;
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bool notfind = true;
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while (notfind && Bp)
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const int block_i = find_block_index_for_point(block_index, pox, DH);
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if (block_i >= 0)
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{
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Block *BP = Bp->data;
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bool flag = true;
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for (int i = 0; i < dim; i++)
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Block *BP = block_index.views[block_i].bp;
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owner_rank[j] = BP->rank;
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if (myrank == BP->rank)
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{
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#ifdef Vertex
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#ifdef Cell
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#error Both Cell and Vertex are defined
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#endif
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llb[i] = (feq(BP->bbox[i], bbox[i], DH[i] / 2)) ? BP->bbox[i] + lli[i] * DH[i] : BP->bbox[i] + (ghost_width - 0.5) * DH[i];
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uub[i] = (feq(BP->bbox[dim + i], bbox[dim + i], DH[i] / 2)) ? BP->bbox[dim + i] - uui[i] * DH[i] : BP->bbox[dim + i] - (ghost_width - 0.5) * DH[i];
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#else
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#ifdef Cell
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llb[i] = (feq(BP->bbox[i], bbox[i], DH[i] / 2)) ? BP->bbox[i] + lli[i] * DH[i] : BP->bbox[i] + ghost_width * DH[i];
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uub[i] = (feq(BP->bbox[dim + i], bbox[dim + i], DH[i] / 2)) ? BP->bbox[dim + i] - uui[i] * DH[i] : BP->bbox[dim + i] - ghost_width * DH[i];
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#else
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#error Not define Vertex nor Cell
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#endif
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#endif
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if (XX[i][j] - llb[i] < -DH[i] / 2 || XX[i][j] - uub[i] > DH[i] / 2)
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varl = VarList;
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int k = 0;
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while (varl)
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{
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flag = false;
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break;
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f_global_interp(BP->shape, BP->X[0], BP->X[1], BP->X[2], BP->fgfs[varl->data->sgfn], Shellf[j * num_var + k],
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pox[0], pox[1], pox[2], ordn, varl->data->SoA, Symmetry);
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varl = varl->next;
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k++;
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}
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}
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if (flag)
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{
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notfind = false;
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owner_rank[j] = BP->rank;
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if (myrank == BP->rank)
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{
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varl = VarList;
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int k = 0;
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while (varl)
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{
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f_global_interp(BP->shape, BP->X[0], BP->X[1], BP->X[2], BP->fgfs[varl->data->sgfn], Shellf[j * num_var + k],
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pox[0], pox[1], pox[2], ordn, varl->data->SoA, Symmetry);
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varl = varl->next;
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k++;
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}
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}
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}
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if (Bp == ble)
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break;
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Bp = Bp->next;
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}
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}
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@@ -833,9 +934,11 @@ void Patch::Interp_Points(MyList<var> *VarList,
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MPI_Comm_group(MPI_COMM_WORLD, &world_group);
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MPI_Comm_group(Comm_here, &local_group);
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double DH[dim], llb[dim], uub[dim];
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double DH[dim];
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for (int i = 0; i < dim; i++)
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DH[i] = getdX(i);
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BlockBinIndex block_index;
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build_block_bin_index(this, DH, block_index);
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for (int j = 0; j < NN; j++) // run along points
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{
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@@ -858,57 +961,24 @@ void Patch::Interp_Points(MyList<var> *VarList,
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}
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}
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MyList<Block> *Bp = blb;
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bool notfind = true;
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while (notfind && Bp) // run along Blocks
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const int block_i = find_block_index_for_point(block_index, pox, DH);
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if (block_i >= 0)
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{
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Block *BP = Bp->data;
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|
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bool flag = true;
|
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for (int i = 0; i < dim; i++)
|
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Block *BP = block_index.views[block_i].bp;
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owner_rank[j] = BP->rank;
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if (myrank == BP->rank)
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{
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#ifdef Vertex
|
||||
#ifdef Cell
|
||||
#error Both Cell and Vertex are defined
|
||||
#endif
|
||||
llb[i] = (feq(BP->bbox[i], bbox[i], DH[i] / 2)) ? BP->bbox[i] + lli[i] * DH[i] : BP->bbox[i] + (ghost_width - 0.5) * DH[i];
|
||||
uub[i] = (feq(BP->bbox[dim + i], bbox[dim + i], DH[i] / 2)) ? BP->bbox[dim + i] - uui[i] * DH[i] : BP->bbox[dim + i] - (ghost_width - 0.5) * DH[i];
|
||||
#else
|
||||
#ifdef Cell
|
||||
llb[i] = (feq(BP->bbox[i], bbox[i], DH[i] / 2)) ? BP->bbox[i] + lli[i] * DH[i] : BP->bbox[i] + ghost_width * DH[i];
|
||||
uub[i] = (feq(BP->bbox[dim + i], bbox[dim + i], DH[i] / 2)) ? BP->bbox[dim + i] - uui[i] * DH[i] : BP->bbox[dim + i] - ghost_width * DH[i];
|
||||
#else
|
||||
#error Not define Vertex nor Cell
|
||||
#endif
|
||||
#endif
|
||||
if (XX[i][j] - llb[i] < -DH[i] / 2 || XX[i][j] - uub[i] > DH[i] / 2)
|
||||
//---> interpolation
|
||||
varl = VarList;
|
||||
int k = 0;
|
||||
while (varl) // run along variables
|
||||
{
|
||||
flag = false;
|
||||
break;
|
||||
f_global_interp(BP->shape, BP->X[0], BP->X[1], BP->X[2], BP->fgfs[varl->data->sgfn], Shellf[j * num_var + k],
|
||||
pox[0], pox[1], pox[2], ordn, varl->data->SoA, Symmetry);
|
||||
varl = varl->next;
|
||||
k++;
|
||||
}
|
||||
}
|
||||
|
||||
if (flag)
|
||||
{
|
||||
notfind = false;
|
||||
owner_rank[j] = BP->rank;
|
||||
if (myrank == BP->rank)
|
||||
{
|
||||
//---> interpolation
|
||||
varl = VarList;
|
||||
int k = 0;
|
||||
while (varl) // run along variables
|
||||
{
|
||||
f_global_interp(BP->shape, BP->X[0], BP->X[1], BP->X[2], BP->fgfs[varl->data->sgfn], Shellf[j * num_var + k],
|
||||
pox[0], pox[1], pox[2], ordn, varl->data->SoA, Symmetry);
|
||||
varl = varl->next;
|
||||
k++;
|
||||
}
|
||||
}
|
||||
}
|
||||
if (Bp == ble)
|
||||
break;
|
||||
Bp = Bp->next;
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
@@ -3893,66 +3893,105 @@ void Parallel::transfer(MyList<Parallel::gridseg> **src, MyList<Parallel::gridse
|
||||
|
||||
int node;
|
||||
|
||||
MPI_Request *reqs;
|
||||
MPI_Status *stats;
|
||||
reqs = new MPI_Request[2 * cpusize];
|
||||
stats = new MPI_Status[2 * cpusize];
|
||||
MPI_Request *reqs = new MPI_Request[2 * cpusize];
|
||||
MPI_Status *stats = new MPI_Status[2 * cpusize];
|
||||
int *req_node = new int[2 * cpusize];
|
||||
int *req_is_recv = new int[2 * cpusize];
|
||||
int *completed = new int[2 * cpusize];
|
||||
int req_no = 0;
|
||||
int pending_recv = 0;
|
||||
|
||||
double **send_data, **rec_data;
|
||||
send_data = new double *[cpusize];
|
||||
rec_data = new double *[cpusize];
|
||||
int length;
|
||||
double **send_data = new double *[cpusize];
|
||||
double **rec_data = new double *[cpusize];
|
||||
int *send_lengths = new int[cpusize];
|
||||
int *recv_lengths = new int[cpusize];
|
||||
|
||||
for (node = 0; node < cpusize; node++)
|
||||
{
|
||||
send_data[node] = rec_data[node] = 0;
|
||||
if (node == myrank)
|
||||
send_lengths[node] = recv_lengths[node] = 0;
|
||||
}
|
||||
|
||||
// Post receives first so peers can progress rendezvous early.
|
||||
for (node = 0; node < cpusize; node++)
|
||||
{
|
||||
if (node == myrank) continue;
|
||||
|
||||
recv_lengths[node] = data_packer(0, src[node], dst[node], node, UNPACK, VarList1, VarList2, Symmetry);
|
||||
if (recv_lengths[node] > 0)
|
||||
{
|
||||
if (length = data_packer(0, src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry))
|
||||
rec_data[node] = new double[recv_lengths[node]];
|
||||
if (!rec_data[node])
|
||||
{
|
||||
rec_data[node] = new double[length];
|
||||
if (!rec_data[node])
|
||||
{
|
||||
cout << "out of memory when new in short transfer, place 1" << endl;
|
||||
MPI_Abort(MPI_COMM_WORLD, 1);
|
||||
}
|
||||
data_packer(rec_data[node], src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
cout << "out of memory when new in short transfer, place 1" << endl;
|
||||
MPI_Abort(MPI_COMM_WORLD, 1);
|
||||
}
|
||||
MPI_Irecv((void *)rec_data[node], recv_lengths[node], MPI_DOUBLE, node, 1, MPI_COMM_WORLD, reqs + req_no);
|
||||
req_node[req_no] = node;
|
||||
req_is_recv[req_no] = 1;
|
||||
req_no++;
|
||||
pending_recv++;
|
||||
}
|
||||
else
|
||||
}
|
||||
|
||||
// Local transfer on this rank.
|
||||
recv_lengths[myrank] = data_packer(0, src[myrank], dst[myrank], myrank, PACK, VarList1, VarList2, Symmetry);
|
||||
if (recv_lengths[myrank] > 0)
|
||||
{
|
||||
rec_data[myrank] = new double[recv_lengths[myrank]];
|
||||
if (!rec_data[myrank])
|
||||
{
|
||||
// send from this cpu to cpu#node
|
||||
if (length = data_packer(0, src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry))
|
||||
cout << "out of memory when new in short transfer, place 2" << endl;
|
||||
MPI_Abort(MPI_COMM_WORLD, 1);
|
||||
}
|
||||
data_packer(rec_data[myrank], src[myrank], dst[myrank], myrank, PACK, VarList1, VarList2, Symmetry);
|
||||
}
|
||||
|
||||
// Pack and post sends.
|
||||
for (node = 0; node < cpusize; node++)
|
||||
{
|
||||
if (node == myrank) continue;
|
||||
|
||||
send_lengths[node] = data_packer(0, src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
if (send_lengths[node] > 0)
|
||||
{
|
||||
send_data[node] = new double[send_lengths[node]];
|
||||
if (!send_data[node])
|
||||
{
|
||||
send_data[node] = new double[length];
|
||||
if (!send_data[node])
|
||||
{
|
||||
cout << "out of memory when new in short transfer, place 2" << endl;
|
||||
MPI_Abort(MPI_COMM_WORLD, 1);
|
||||
}
|
||||
data_packer(send_data[node], src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
MPI_Isend((void *)send_data[node], length, MPI_DOUBLE, node, 1, MPI_COMM_WORLD, reqs + req_no++);
|
||||
cout << "out of memory when new in short transfer, place 3" << endl;
|
||||
MPI_Abort(MPI_COMM_WORLD, 1);
|
||||
}
|
||||
// receive from cpu#node to this cpu
|
||||
if (length = data_packer(0, src[node], dst[node], node, UNPACK, VarList1, VarList2, Symmetry))
|
||||
data_packer(send_data[node], src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
MPI_Isend((void *)send_data[node], send_lengths[node], MPI_DOUBLE, node, 1, MPI_COMM_WORLD, reqs + req_no);
|
||||
req_node[req_no] = node;
|
||||
req_is_recv[req_no] = 0;
|
||||
req_no++;
|
||||
}
|
||||
}
|
||||
|
||||
// Unpack as soon as receive completes to reduce pure wait time.
|
||||
while (pending_recv > 0)
|
||||
{
|
||||
int outcount = 0;
|
||||
MPI_Waitsome(req_no, reqs, &outcount, completed, stats);
|
||||
if (outcount == MPI_UNDEFINED) break;
|
||||
|
||||
for (int i = 0; i < outcount; i++)
|
||||
{
|
||||
int idx = completed[i];
|
||||
if (idx >= 0 && req_is_recv[idx])
|
||||
{
|
||||
rec_data[node] = new double[length];
|
||||
if (!rec_data[node])
|
||||
{
|
||||
cout << "out of memory when new in short transfer, place 3" << endl;
|
||||
MPI_Abort(MPI_COMM_WORLD, 1);
|
||||
}
|
||||
MPI_Irecv((void *)rec_data[node], length, MPI_DOUBLE, node, 1, MPI_COMM_WORLD, reqs + req_no++);
|
||||
int recv_node = req_node[idx];
|
||||
data_packer(rec_data[recv_node], src[recv_node], dst[recv_node], recv_node, UNPACK, VarList1, VarList2, Symmetry);
|
||||
pending_recv--;
|
||||
}
|
||||
}
|
||||
}
|
||||
// wait for all requests to complete
|
||||
MPI_Waitall(req_no, reqs, stats);
|
||||
|
||||
for (node = 0; node < cpusize; node++)
|
||||
if (rec_data[node])
|
||||
data_packer(rec_data[node], src[node], dst[node], node, UNPACK, VarList1, VarList2, Symmetry);
|
||||
if (req_no > 0) MPI_Waitall(req_no, reqs, stats);
|
||||
|
||||
if (rec_data[myrank])
|
||||
data_packer(rec_data[myrank], src[myrank], dst[myrank], myrank, UNPACK, VarList1, VarList2, Symmetry);
|
||||
|
||||
for (node = 0; node < cpusize; node++)
|
||||
{
|
||||
@@ -3964,8 +4003,13 @@ void Parallel::transfer(MyList<Parallel::gridseg> **src, MyList<Parallel::gridse
|
||||
|
||||
delete[] reqs;
|
||||
delete[] stats;
|
||||
delete[] req_node;
|
||||
delete[] req_is_recv;
|
||||
delete[] completed;
|
||||
delete[] send_data;
|
||||
delete[] rec_data;
|
||||
delete[] send_lengths;
|
||||
delete[] recv_lengths;
|
||||
}
|
||||
//
|
||||
void Parallel::transfermix(MyList<Parallel::gridseg> **src, MyList<Parallel::gridseg> **dst,
|
||||
@@ -3978,66 +4022,105 @@ void Parallel::transfermix(MyList<Parallel::gridseg> **src, MyList<Parallel::gri
|
||||
|
||||
int node;
|
||||
|
||||
MPI_Request *reqs;
|
||||
MPI_Status *stats;
|
||||
reqs = new MPI_Request[2 * cpusize];
|
||||
stats = new MPI_Status[2 * cpusize];
|
||||
MPI_Request *reqs = new MPI_Request[2 * cpusize];
|
||||
MPI_Status *stats = new MPI_Status[2 * cpusize];
|
||||
int *req_node = new int[2 * cpusize];
|
||||
int *req_is_recv = new int[2 * cpusize];
|
||||
int *completed = new int[2 * cpusize];
|
||||
int req_no = 0;
|
||||
int pending_recv = 0;
|
||||
|
||||
double **send_data, **rec_data;
|
||||
send_data = new double *[cpusize];
|
||||
rec_data = new double *[cpusize];
|
||||
int length;
|
||||
double **send_data = new double *[cpusize];
|
||||
double **rec_data = new double *[cpusize];
|
||||
int *send_lengths = new int[cpusize];
|
||||
int *recv_lengths = new int[cpusize];
|
||||
|
||||
for (node = 0; node < cpusize; node++)
|
||||
{
|
||||
send_data[node] = rec_data[node] = 0;
|
||||
if (node == myrank)
|
||||
send_lengths[node] = recv_lengths[node] = 0;
|
||||
}
|
||||
|
||||
// Post receives first so peers can progress rendezvous early.
|
||||
for (node = 0; node < cpusize; node++)
|
||||
{
|
||||
if (node == myrank) continue;
|
||||
|
||||
recv_lengths[node] = data_packermix(0, src[node], dst[node], node, UNPACK, VarList1, VarList2, Symmetry);
|
||||
if (recv_lengths[node] > 0)
|
||||
{
|
||||
if (length = data_packermix(0, src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry))
|
||||
rec_data[node] = new double[recv_lengths[node]];
|
||||
if (!rec_data[node])
|
||||
{
|
||||
rec_data[node] = new double[length];
|
||||
if (!rec_data[node])
|
||||
{
|
||||
cout << "out of memory when new in short transfer, place 1" << endl;
|
||||
MPI_Abort(MPI_COMM_WORLD, 1);
|
||||
}
|
||||
data_packermix(rec_data[node], src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
cout << "out of memory when new in short transfer, place 1" << endl;
|
||||
MPI_Abort(MPI_COMM_WORLD, 1);
|
||||
}
|
||||
MPI_Irecv((void *)rec_data[node], recv_lengths[node], MPI_DOUBLE, node, 1, MPI_COMM_WORLD, reqs + req_no);
|
||||
req_node[req_no] = node;
|
||||
req_is_recv[req_no] = 1;
|
||||
req_no++;
|
||||
pending_recv++;
|
||||
}
|
||||
else
|
||||
}
|
||||
|
||||
// Local transfer on this rank.
|
||||
recv_lengths[myrank] = data_packermix(0, src[myrank], dst[myrank], myrank, PACK, VarList1, VarList2, Symmetry);
|
||||
if (recv_lengths[myrank] > 0)
|
||||
{
|
||||
rec_data[myrank] = new double[recv_lengths[myrank]];
|
||||
if (!rec_data[myrank])
|
||||
{
|
||||
// send from this cpu to cpu#node
|
||||
if (length = data_packermix(0, src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry))
|
||||
cout << "out of memory when new in short transfer, place 2" << endl;
|
||||
MPI_Abort(MPI_COMM_WORLD, 1);
|
||||
}
|
||||
data_packermix(rec_data[myrank], src[myrank], dst[myrank], myrank, PACK, VarList1, VarList2, Symmetry);
|
||||
}
|
||||
|
||||
// Pack and post sends.
|
||||
for (node = 0; node < cpusize; node++)
|
||||
{
|
||||
if (node == myrank) continue;
|
||||
|
||||
send_lengths[node] = data_packermix(0, src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
if (send_lengths[node] > 0)
|
||||
{
|
||||
send_data[node] = new double[send_lengths[node]];
|
||||
if (!send_data[node])
|
||||
{
|
||||
send_data[node] = new double[length];
|
||||
if (!send_data[node])
|
||||
{
|
||||
cout << "out of memory when new in short transfer, place 2" << endl;
|
||||
MPI_Abort(MPI_COMM_WORLD, 1);
|
||||
}
|
||||
data_packermix(send_data[node], src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
MPI_Isend((void *)send_data[node], length, MPI_DOUBLE, node, 1, MPI_COMM_WORLD, reqs + req_no++);
|
||||
cout << "out of memory when new in short transfer, place 3" << endl;
|
||||
MPI_Abort(MPI_COMM_WORLD, 1);
|
||||
}
|
||||
// receive from cpu#node to this cpu
|
||||
if (length = data_packermix(0, src[node], dst[node], node, UNPACK, VarList1, VarList2, Symmetry))
|
||||
data_packermix(send_data[node], src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
MPI_Isend((void *)send_data[node], send_lengths[node], MPI_DOUBLE, node, 1, MPI_COMM_WORLD, reqs + req_no);
|
||||
req_node[req_no] = node;
|
||||
req_is_recv[req_no] = 0;
|
||||
req_no++;
|
||||
}
|
||||
}
|
||||
|
||||
// Unpack as soon as receive completes to reduce pure wait time.
|
||||
while (pending_recv > 0)
|
||||
{
|
||||
int outcount = 0;
|
||||
MPI_Waitsome(req_no, reqs, &outcount, completed, stats);
|
||||
if (outcount == MPI_UNDEFINED) break;
|
||||
|
||||
for (int i = 0; i < outcount; i++)
|
||||
{
|
||||
int idx = completed[i];
|
||||
if (idx >= 0 && req_is_recv[idx])
|
||||
{
|
||||
rec_data[node] = new double[length];
|
||||
if (!rec_data[node])
|
||||
{
|
||||
cout << "out of memory when new in short transfer, place 3" << endl;
|
||||
MPI_Abort(MPI_COMM_WORLD, 1);
|
||||
}
|
||||
MPI_Irecv((void *)rec_data[node], length, MPI_DOUBLE, node, 1, MPI_COMM_WORLD, reqs + req_no++);
|
||||
int recv_node = req_node[idx];
|
||||
data_packermix(rec_data[recv_node], src[recv_node], dst[recv_node], recv_node, UNPACK, VarList1, VarList2, Symmetry);
|
||||
pending_recv--;
|
||||
}
|
||||
}
|
||||
}
|
||||
// wait for all requests to complete
|
||||
MPI_Waitall(req_no, reqs, stats);
|
||||
|
||||
for (node = 0; node < cpusize; node++)
|
||||
if (rec_data[node])
|
||||
data_packermix(rec_data[node], src[node], dst[node], node, UNPACK, VarList1, VarList2, Symmetry);
|
||||
if (req_no > 0) MPI_Waitall(req_no, reqs, stats);
|
||||
|
||||
if (rec_data[myrank])
|
||||
data_packermix(rec_data[myrank], src[myrank], dst[myrank], myrank, UNPACK, VarList1, VarList2, Symmetry);
|
||||
|
||||
for (node = 0; node < cpusize; node++)
|
||||
{
|
||||
@@ -4049,8 +4132,13 @@ void Parallel::transfermix(MyList<Parallel::gridseg> **src, MyList<Parallel::gri
|
||||
|
||||
delete[] reqs;
|
||||
delete[] stats;
|
||||
delete[] req_node;
|
||||
delete[] req_is_recv;
|
||||
delete[] completed;
|
||||
delete[] send_data;
|
||||
delete[] rec_data;
|
||||
delete[] send_lengths;
|
||||
delete[] recv_lengths;
|
||||
}
|
||||
void Parallel::Sync(Patch *Pat, MyList<var> *VarList, int Symmetry)
|
||||
{
|
||||
@@ -4232,7 +4320,7 @@ Parallel::SyncCache::SyncCache()
|
||||
: valid(false), cpusize(0), combined_src(0), combined_dst(0),
|
||||
send_lengths(0), recv_lengths(0), send_bufs(0), recv_bufs(0),
|
||||
send_buf_caps(0), recv_buf_caps(0), reqs(0), stats(0), max_reqs(0),
|
||||
lengths_valid(false)
|
||||
lengths_valid(false), tc_req_node(0), tc_req_is_recv(0), tc_completed(0)
|
||||
{
|
||||
}
|
||||
// SyncCache invalidate: free grid segment lists but keep buffers
|
||||
@@ -4271,11 +4359,15 @@ void Parallel::SyncCache::destroy()
|
||||
if (recv_bufs) delete[] recv_bufs;
|
||||
if (reqs) delete[] reqs;
|
||||
if (stats) delete[] stats;
|
||||
if (tc_req_node) delete[] tc_req_node;
|
||||
if (tc_req_is_recv) delete[] tc_req_is_recv;
|
||||
if (tc_completed) delete[] tc_completed;
|
||||
combined_src = combined_dst = 0;
|
||||
send_lengths = recv_lengths = 0;
|
||||
send_buf_caps = recv_buf_caps = 0;
|
||||
send_bufs = recv_bufs = 0;
|
||||
reqs = 0; stats = 0;
|
||||
tc_req_node = 0; tc_req_is_recv = 0; tc_completed = 0;
|
||||
cpusize = 0; max_reqs = 0;
|
||||
}
|
||||
// transfer_cached: reuse pre-allocated buffers from SyncCache
|
||||
@@ -4289,64 +4381,96 @@ void Parallel::transfer_cached(MyList<Parallel::gridseg> **src, MyList<Parallel:
|
||||
int cpusize = cache.cpusize;
|
||||
|
||||
int req_no = 0;
|
||||
int pending_recv = 0;
|
||||
int node;
|
||||
int *req_node = cache.tc_req_node;
|
||||
int *req_is_recv = cache.tc_req_is_recv;
|
||||
int *completed = cache.tc_completed;
|
||||
|
||||
// Post receives first so peers can progress rendezvous early.
|
||||
for (node = 0; node < cpusize; node++)
|
||||
{
|
||||
if (node == myrank)
|
||||
if (node == myrank) continue;
|
||||
|
||||
int rlength = data_packer(0, src[node], dst[node], node, UNPACK, VarList1, VarList2, Symmetry);
|
||||
cache.recv_lengths[node] = rlength;
|
||||
if (rlength > 0)
|
||||
{
|
||||
int length = data_packer(0, src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
cache.recv_lengths[node] = length;
|
||||
if (length > 0)
|
||||
if (rlength > cache.recv_buf_caps[node])
|
||||
{
|
||||
if (length > cache.recv_buf_caps[node])
|
||||
{
|
||||
if (cache.recv_bufs[node]) delete[] cache.recv_bufs[node];
|
||||
cache.recv_bufs[node] = new double[length];
|
||||
cache.recv_buf_caps[node] = length;
|
||||
}
|
||||
data_packer(cache.recv_bufs[node], src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
if (cache.recv_bufs[node]) delete[] cache.recv_bufs[node];
|
||||
cache.recv_bufs[node] = new double[rlength];
|
||||
cache.recv_buf_caps[node] = rlength;
|
||||
}
|
||||
MPI_Irecv((void *)cache.recv_bufs[node], rlength, MPI_DOUBLE, node, 1, MPI_COMM_WORLD, cache.reqs + req_no);
|
||||
req_node[req_no] = node;
|
||||
req_is_recv[req_no] = 1;
|
||||
req_no++;
|
||||
pending_recv++;
|
||||
}
|
||||
else
|
||||
}
|
||||
|
||||
// Local transfer on this rank.
|
||||
int self_len = data_packer(0, src[myrank], dst[myrank], myrank, PACK, VarList1, VarList2, Symmetry);
|
||||
cache.recv_lengths[myrank] = self_len;
|
||||
if (self_len > 0)
|
||||
{
|
||||
if (self_len > cache.recv_buf_caps[myrank])
|
||||
{
|
||||
// send
|
||||
int slength = data_packer(0, src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
cache.send_lengths[node] = slength;
|
||||
if (slength > 0)
|
||||
if (cache.recv_bufs[myrank]) delete[] cache.recv_bufs[myrank];
|
||||
cache.recv_bufs[myrank] = new double[self_len];
|
||||
cache.recv_buf_caps[myrank] = self_len;
|
||||
}
|
||||
data_packer(cache.recv_bufs[myrank], src[myrank], dst[myrank], myrank, PACK, VarList1, VarList2, Symmetry);
|
||||
}
|
||||
|
||||
// Pack and post sends.
|
||||
for (node = 0; node < cpusize; node++)
|
||||
{
|
||||
if (node == myrank) continue;
|
||||
|
||||
int slength = data_packer(0, src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
cache.send_lengths[node] = slength;
|
||||
if (slength > 0)
|
||||
{
|
||||
if (slength > cache.send_buf_caps[node])
|
||||
{
|
||||
if (slength > cache.send_buf_caps[node])
|
||||
{
|
||||
if (cache.send_bufs[node]) delete[] cache.send_bufs[node];
|
||||
cache.send_bufs[node] = new double[slength];
|
||||
cache.send_buf_caps[node] = slength;
|
||||
}
|
||||
data_packer(cache.send_bufs[node], src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
MPI_Isend((void *)cache.send_bufs[node], slength, MPI_DOUBLE, node, 1, MPI_COMM_WORLD, cache.reqs + req_no++);
|
||||
if (cache.send_bufs[node]) delete[] cache.send_bufs[node];
|
||||
cache.send_bufs[node] = new double[slength];
|
||||
cache.send_buf_caps[node] = slength;
|
||||
}
|
||||
// recv
|
||||
int rlength = data_packer(0, src[node], dst[node], node, UNPACK, VarList1, VarList2, Symmetry);
|
||||
cache.recv_lengths[node] = rlength;
|
||||
if (rlength > 0)
|
||||
data_packer(cache.send_bufs[node], src[myrank], dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
MPI_Isend((void *)cache.send_bufs[node], slength, MPI_DOUBLE, node, 1, MPI_COMM_WORLD, cache.reqs + req_no);
|
||||
req_node[req_no] = node;
|
||||
req_is_recv[req_no] = 0;
|
||||
req_no++;
|
||||
}
|
||||
}
|
||||
|
||||
// Unpack as soon as receive completes to reduce pure wait time.
|
||||
while (pending_recv > 0)
|
||||
{
|
||||
int outcount = 0;
|
||||
MPI_Waitsome(req_no, cache.reqs, &outcount, completed, cache.stats);
|
||||
if (outcount == MPI_UNDEFINED) break;
|
||||
|
||||
for (int i = 0; i < outcount; i++)
|
||||
{
|
||||
int idx = completed[i];
|
||||
if (idx >= 0 && req_is_recv[idx])
|
||||
{
|
||||
if (rlength > cache.recv_buf_caps[node])
|
||||
{
|
||||
if (cache.recv_bufs[node]) delete[] cache.recv_bufs[node];
|
||||
cache.recv_bufs[node] = new double[rlength];
|
||||
cache.recv_buf_caps[node] = rlength;
|
||||
}
|
||||
MPI_Irecv((void *)cache.recv_bufs[node], rlength, MPI_DOUBLE, node, 1, MPI_COMM_WORLD, cache.reqs + req_no++);
|
||||
int recv_node_i = req_node[idx];
|
||||
data_packer(cache.recv_bufs[recv_node_i], src[recv_node_i], dst[recv_node_i], recv_node_i, UNPACK, VarList1, VarList2, Symmetry);
|
||||
pending_recv--;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
MPI_Waitall(req_no, cache.reqs, cache.stats);
|
||||
if (req_no > 0) MPI_Waitall(req_no, cache.reqs, cache.stats);
|
||||
|
||||
for (node = 0; node < cpusize; node++)
|
||||
if (cache.recv_bufs[node] && cache.recv_lengths[node] > 0)
|
||||
data_packer(cache.recv_bufs[node], src[node], dst[node], node, UNPACK, VarList1, VarList2, Symmetry);
|
||||
if (self_len > 0)
|
||||
data_packer(cache.recv_bufs[myrank], src[myrank], dst[myrank], myrank, UNPACK, VarList1, VarList2, Symmetry);
|
||||
}
|
||||
// Sync_cached: build grid segment lists on first call, reuse on subsequent calls
|
||||
void Parallel::Sync_cached(MyList<Patch> *PatL, MyList<var> *VarList, int Symmetry, SyncCache &cache)
|
||||
{
|
||||
if (!cache.valid)
|
||||
@@ -4374,6 +4498,9 @@ void Parallel::Sync_cached(MyList<Patch> *PatL, MyList<var> *VarList, int Symmet
|
||||
cache.max_reqs = 2 * cpusize;
|
||||
cache.reqs = new MPI_Request[cache.max_reqs];
|
||||
cache.stats = new MPI_Status[cache.max_reqs];
|
||||
cache.tc_req_node = new int[cache.max_reqs];
|
||||
cache.tc_req_is_recv = new int[cache.max_reqs];
|
||||
cache.tc_completed = new int[cache.max_reqs];
|
||||
}
|
||||
|
||||
for (int node = 0; node < cpusize; node++)
|
||||
@@ -4474,6 +4601,9 @@ void Parallel::Sync_start(MyList<Patch> *PatL, MyList<var> *VarList, int Symmetr
|
||||
cache.max_reqs = 2 * cpusize;
|
||||
cache.reqs = new MPI_Request[cache.max_reqs];
|
||||
cache.stats = new MPI_Status[cache.max_reqs];
|
||||
cache.tc_req_node = new int[cache.max_reqs];
|
||||
cache.tc_req_is_recv = new int[cache.max_reqs];
|
||||
cache.tc_completed = new int[cache.max_reqs];
|
||||
}
|
||||
|
||||
for (int node = 0; node < cpusize; node++)
|
||||
@@ -4544,6 +4674,11 @@ void Parallel::Sync_start(MyList<Patch> *PatL, MyList<var> *VarList, int Symmetr
|
||||
int cpusize = cache.cpusize;
|
||||
state.req_no = 0;
|
||||
state.active = true;
|
||||
state.pending_recv = 0;
|
||||
// Allocate tracking arrays
|
||||
delete[] state.req_node; delete[] state.req_is_recv;
|
||||
state.req_node = new int[cache.max_reqs];
|
||||
state.req_is_recv = new int[cache.max_reqs];
|
||||
|
||||
MyList<Parallel::gridseg> **src = cache.combined_src;
|
||||
MyList<Parallel::gridseg> **dst = cache.combined_dst;
|
||||
@@ -4588,6 +4723,8 @@ void Parallel::Sync_start(MyList<Patch> *PatL, MyList<var> *VarList, int Symmetr
|
||||
cache.send_buf_caps[node] = slength;
|
||||
}
|
||||
data_packer(cache.send_bufs[node], src[myrank], dst[myrank], node, PACK, VarList, VarList, Symmetry);
|
||||
state.req_node[state.req_no] = node;
|
||||
state.req_is_recv[state.req_no] = 0;
|
||||
MPI_Isend((void *)cache.send_bufs[node], slength, MPI_DOUBLE, node, 2, MPI_COMM_WORLD, cache.reqs + state.req_no++);
|
||||
}
|
||||
int rlength;
|
||||
@@ -4605,29 +4742,60 @@ void Parallel::Sync_start(MyList<Patch> *PatL, MyList<var> *VarList, int Symmetr
|
||||
cache.recv_bufs[node] = new double[rlength];
|
||||
cache.recv_buf_caps[node] = rlength;
|
||||
}
|
||||
state.req_node[state.req_no] = node;
|
||||
state.req_is_recv[state.req_no] = 1;
|
||||
state.pending_recv++;
|
||||
MPI_Irecv((void *)cache.recv_bufs[node], rlength, MPI_DOUBLE, node, 2, MPI_COMM_WORLD, cache.reqs + state.req_no++);
|
||||
}
|
||||
}
|
||||
}
|
||||
cache.lengths_valid = true;
|
||||
}
|
||||
// Sync_finish: wait for async MPI operations and unpack
|
||||
// Sync_finish: progressive unpack as receives complete, then wait for sends
|
||||
void Parallel::Sync_finish(SyncCache &cache, AsyncSyncState &state,
|
||||
MyList<var> *VarList, int Symmetry)
|
||||
{
|
||||
if (!state.active)
|
||||
return;
|
||||
|
||||
MPI_Waitall(state.req_no, cache.reqs, cache.stats);
|
||||
|
||||
int cpusize = cache.cpusize;
|
||||
int myrank;
|
||||
MPI_Comm_rank(MPI_COMM_WORLD, &myrank);
|
||||
MyList<Parallel::gridseg> **src = cache.combined_src;
|
||||
MyList<Parallel::gridseg> **dst = cache.combined_dst;
|
||||
|
||||
for (int node = 0; node < cpusize; node++)
|
||||
if (cache.recv_bufs[node] && cache.recv_lengths[node] > 0)
|
||||
data_packer(cache.recv_bufs[node], src[node], dst[node], node, UNPACK, VarList, VarList, Symmetry);
|
||||
// Unpack local data first (no MPI needed)
|
||||
if (cache.recv_bufs[myrank] && cache.recv_lengths[myrank] > 0)
|
||||
data_packer(cache.recv_bufs[myrank], src[myrank], dst[myrank], myrank, UNPACK, VarList, VarList, Symmetry);
|
||||
|
||||
// Progressive unpack of remote receives
|
||||
if (state.pending_recv > 0 && state.req_no > 0)
|
||||
{
|
||||
int pending = state.pending_recv;
|
||||
int *completed = new int[cache.max_reqs];
|
||||
while (pending > 0)
|
||||
{
|
||||
int outcount = 0;
|
||||
MPI_Waitsome(state.req_no, cache.reqs, &outcount, completed, cache.stats);
|
||||
if (outcount == MPI_UNDEFINED) break;
|
||||
for (int i = 0; i < outcount; i++)
|
||||
{
|
||||
int idx = completed[i];
|
||||
if (idx >= 0 && state.req_is_recv[idx])
|
||||
{
|
||||
int recv_node = state.req_node[idx];
|
||||
data_packer(cache.recv_bufs[recv_node], src[recv_node], dst[recv_node], recv_node, UNPACK, VarList, VarList, Symmetry);
|
||||
pending--;
|
||||
}
|
||||
}
|
||||
}
|
||||
delete[] completed;
|
||||
}
|
||||
|
||||
// Wait for remaining sends
|
||||
if (state.req_no > 0) MPI_Waitall(state.req_no, cache.reqs, cache.stats);
|
||||
|
||||
delete[] state.req_node; state.req_node = 0;
|
||||
delete[] state.req_is_recv; state.req_is_recv = 0;
|
||||
state.active = false;
|
||||
}
|
||||
// collect buffer grid segments or blocks for the periodic boundary condition of given patch
|
||||
@@ -5085,10 +5253,10 @@ void Parallel::PeriodicBD(Patch *Pat, MyList<var> *VarList, int Symmetry)
|
||||
delete[] transfer_src;
|
||||
delete[] transfer_dst;
|
||||
}
|
||||
double Parallel::L2Norm(Patch *Pat, var *vf)
|
||||
{
|
||||
int myrank;
|
||||
MPI_Comm_rank(MPI_COMM_WORLD, &myrank);
|
||||
double Parallel::L2Norm(Patch *Pat, var *vf)
|
||||
{
|
||||
int myrank;
|
||||
MPI_Comm_rank(MPI_COMM_WORLD, &myrank);
|
||||
|
||||
double tvf, dtvf = 0;
|
||||
int BDW = ghost_width;
|
||||
@@ -5113,13 +5281,48 @@ double Parallel::L2Norm(Patch *Pat, var *vf)
|
||||
MPI_Allreduce(&dtvf, &tvf, 1, MPI_DOUBLE, MPI_SUM, MPI_COMM_WORLD);
|
||||
|
||||
tvf = sqrt(tvf);
|
||||
|
||||
return tvf;
|
||||
}
|
||||
double Parallel::L2Norm(Patch *Pat, var *vf, MPI_Comm Comm_here)
|
||||
{
|
||||
int myrank;
|
||||
MPI_Comm_rank(MPI_COMM_WORLD, &myrank);
|
||||
|
||||
return tvf;
|
||||
}
|
||||
void Parallel::L2Norm7(Patch *Pat, var **vf, double *norms)
|
||||
{
|
||||
int myrank;
|
||||
MPI_Comm_rank(MPI_COMM_WORLD, &myrank);
|
||||
|
||||
double tvf[7], dtvf[7];
|
||||
int BDW = ghost_width;
|
||||
for (int i = 0; i < 7; i++)
|
||||
dtvf[i] = 0;
|
||||
|
||||
MyList<Block> *BP = Pat->blb;
|
||||
while (BP)
|
||||
{
|
||||
Block *cg = BP->data;
|
||||
if (myrank == cg->rank)
|
||||
{
|
||||
f_l2normhelper7(cg->shape, cg->X[0], cg->X[1], cg->X[2],
|
||||
Pat->bbox[0], Pat->bbox[1], Pat->bbox[2],
|
||||
Pat->bbox[3], Pat->bbox[4], Pat->bbox[5],
|
||||
cg->fgfs[vf[0]->sgfn], cg->fgfs[vf[1]->sgfn], cg->fgfs[vf[2]->sgfn],
|
||||
cg->fgfs[vf[3]->sgfn], cg->fgfs[vf[4]->sgfn], cg->fgfs[vf[5]->sgfn],
|
||||
cg->fgfs[vf[6]->sgfn], tvf, BDW);
|
||||
for (int i = 0; i < 7; i++)
|
||||
dtvf[i] += tvf[i];
|
||||
}
|
||||
if (BP == Pat->ble)
|
||||
break;
|
||||
BP = BP->next;
|
||||
}
|
||||
|
||||
MPI_Allreduce(dtvf, tvf, 7, MPI_DOUBLE, MPI_SUM, MPI_COMM_WORLD);
|
||||
|
||||
for (int i = 0; i < 7; i++)
|
||||
norms[i] = sqrt(tvf[i]);
|
||||
}
|
||||
double Parallel::L2Norm(Patch *Pat, var *vf, MPI_Comm Comm_here)
|
||||
{
|
||||
int myrank;
|
||||
MPI_Comm_rank(MPI_COMM_WORLD, &myrank);
|
||||
|
||||
double tvf, dtvf = 0;
|
||||
int BDW = ghost_width;
|
||||
@@ -5144,12 +5347,47 @@ double Parallel::L2Norm(Patch *Pat, var *vf, MPI_Comm Comm_here)
|
||||
MPI_Allreduce(&dtvf, &tvf, 1, MPI_DOUBLE, MPI_SUM, Comm_here);
|
||||
|
||||
tvf = sqrt(tvf);
|
||||
|
||||
return tvf;
|
||||
}
|
||||
void Parallel::checkgsl(MyList<Parallel::gridseg> *pp, bool first_only)
|
||||
{
|
||||
int myrank = 0;
|
||||
|
||||
return tvf;
|
||||
}
|
||||
void Parallel::L2Norm7(Patch *Pat, var **vf, double *norms, MPI_Comm Comm_here)
|
||||
{
|
||||
int myrank;
|
||||
MPI_Comm_rank(MPI_COMM_WORLD, &myrank);
|
||||
|
||||
double tvf[7], dtvf[7];
|
||||
int BDW = ghost_width;
|
||||
for (int i = 0; i < 7; i++)
|
||||
dtvf[i] = 0;
|
||||
|
||||
MyList<Block> *BP = Pat->blb;
|
||||
while (BP)
|
||||
{
|
||||
Block *cg = BP->data;
|
||||
if (myrank == cg->rank)
|
||||
{
|
||||
f_l2normhelper7(cg->shape, cg->X[0], cg->X[1], cg->X[2],
|
||||
Pat->bbox[0], Pat->bbox[1], Pat->bbox[2],
|
||||
Pat->bbox[3], Pat->bbox[4], Pat->bbox[5],
|
||||
cg->fgfs[vf[0]->sgfn], cg->fgfs[vf[1]->sgfn], cg->fgfs[vf[2]->sgfn],
|
||||
cg->fgfs[vf[3]->sgfn], cg->fgfs[vf[4]->sgfn], cg->fgfs[vf[5]->sgfn],
|
||||
cg->fgfs[vf[6]->sgfn], tvf, BDW);
|
||||
for (int i = 0; i < 7; i++)
|
||||
dtvf[i] += tvf[i];
|
||||
}
|
||||
if (BP == Pat->ble)
|
||||
break;
|
||||
BP = BP->next;
|
||||
}
|
||||
|
||||
MPI_Allreduce(dtvf, tvf, 7, MPI_DOUBLE, MPI_SUM, Comm_here);
|
||||
|
||||
for (int i = 0; i < 7; i++)
|
||||
norms[i] = sqrt(tvf[i]);
|
||||
}
|
||||
void Parallel::checkgsl(MyList<Parallel::gridseg> *pp, bool first_only)
|
||||
{
|
||||
int myrank = 0;
|
||||
MPI_Comm_rank(MPI_COMM_WORLD, &myrank);
|
||||
if (myrank == 0)
|
||||
{
|
||||
@@ -5694,6 +5932,9 @@ void Parallel::Restrict_cached(MyList<Patch> *PatcL, MyList<Patch> *PatfL,
|
||||
cache.max_reqs = 2 * cpusize;
|
||||
cache.reqs = new MPI_Request[cache.max_reqs];
|
||||
cache.stats = new MPI_Status[cache.max_reqs];
|
||||
cache.tc_req_node = new int[cache.max_reqs];
|
||||
cache.tc_req_is_recv = new int[cache.max_reqs];
|
||||
cache.tc_completed = new int[cache.max_reqs];
|
||||
}
|
||||
|
||||
MyList<Parallel::gridseg> *dst = build_complete_gsl(PatcL);
|
||||
@@ -5740,6 +5981,9 @@ void Parallel::OutBdLow2Hi_cached(MyList<Patch> *PatcL, MyList<Patch> *PatfL,
|
||||
cache.max_reqs = 2 * cpusize;
|
||||
cache.reqs = new MPI_Request[cache.max_reqs];
|
||||
cache.stats = new MPI_Status[cache.max_reqs];
|
||||
cache.tc_req_node = new int[cache.max_reqs];
|
||||
cache.tc_req_is_recv = new int[cache.max_reqs];
|
||||
cache.tc_completed = new int[cache.max_reqs];
|
||||
}
|
||||
|
||||
MyList<Parallel::gridseg> *dst = build_buffer_gsl(PatfL);
|
||||
@@ -5786,6 +6030,9 @@ void Parallel::OutBdLow2Himix_cached(MyList<Patch> *PatcL, MyList<Patch> *PatfL,
|
||||
cache.max_reqs = 2 * cpusize;
|
||||
cache.reqs = new MPI_Request[cache.max_reqs];
|
||||
cache.stats = new MPI_Status[cache.max_reqs];
|
||||
cache.tc_req_node = new int[cache.max_reqs];
|
||||
cache.tc_req_is_recv = new int[cache.max_reqs];
|
||||
cache.tc_completed = new int[cache.max_reqs];
|
||||
}
|
||||
|
||||
MyList<Parallel::gridseg> *dst = build_buffer_gsl(PatfL);
|
||||
@@ -5807,58 +6054,98 @@ void Parallel::OutBdLow2Himix_cached(MyList<Patch> *PatcL, MyList<Patch> *PatfL,
|
||||
int cpusize = cache.cpusize;
|
||||
|
||||
int req_no = 0;
|
||||
int pending_recv = 0;
|
||||
int *req_node = new int[cache.max_reqs];
|
||||
int *req_is_recv = new int[cache.max_reqs];
|
||||
int *completed = new int[cache.max_reqs];
|
||||
|
||||
// Post receives first so peers can progress rendezvous early.
|
||||
for (int node = 0; node < cpusize; node++)
|
||||
{
|
||||
if (node == myrank)
|
||||
if (node == myrank) continue;
|
||||
|
||||
int rlength = data_packermix(0, cache.combined_src[node], cache.combined_dst[node], node, UNPACK, VarList1, VarList2, Symmetry);
|
||||
cache.recv_lengths[node] = rlength;
|
||||
if (rlength > 0)
|
||||
{
|
||||
int length = data_packermix(0, cache.combined_src[myrank], cache.combined_dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
cache.recv_lengths[node] = length;
|
||||
if (length > 0)
|
||||
if (rlength > cache.recv_buf_caps[node])
|
||||
{
|
||||
if (length > cache.recv_buf_caps[node])
|
||||
{
|
||||
if (cache.recv_bufs[node]) delete[] cache.recv_bufs[node];
|
||||
cache.recv_bufs[node] = new double[length];
|
||||
cache.recv_buf_caps[node] = length;
|
||||
}
|
||||
data_packermix(cache.recv_bufs[node], cache.combined_src[myrank], cache.combined_dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
if (cache.recv_bufs[node]) delete[] cache.recv_bufs[node];
|
||||
cache.recv_bufs[node] = new double[rlength];
|
||||
cache.recv_buf_caps[node] = rlength;
|
||||
}
|
||||
MPI_Irecv((void *)cache.recv_bufs[node], rlength, MPI_DOUBLE, node, 1, MPI_COMM_WORLD, cache.reqs + req_no);
|
||||
req_node[req_no] = node;
|
||||
req_is_recv[req_no] = 1;
|
||||
req_no++;
|
||||
pending_recv++;
|
||||
}
|
||||
else
|
||||
}
|
||||
|
||||
// Local transfer on this rank.
|
||||
int self_len = data_packermix(0, cache.combined_src[myrank], cache.combined_dst[myrank], myrank, PACK, VarList1, VarList2, Symmetry);
|
||||
cache.recv_lengths[myrank] = self_len;
|
||||
if (self_len > 0)
|
||||
{
|
||||
if (self_len > cache.recv_buf_caps[myrank])
|
||||
{
|
||||
int slength = data_packermix(0, cache.combined_src[myrank], cache.combined_dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
cache.send_lengths[node] = slength;
|
||||
if (slength > 0)
|
||||
if (cache.recv_bufs[myrank]) delete[] cache.recv_bufs[myrank];
|
||||
cache.recv_bufs[myrank] = new double[self_len];
|
||||
cache.recv_buf_caps[myrank] = self_len;
|
||||
}
|
||||
data_packermix(cache.recv_bufs[myrank], cache.combined_src[myrank], cache.combined_dst[myrank], myrank, PACK, VarList1, VarList2, Symmetry);
|
||||
}
|
||||
|
||||
// Pack and post sends.
|
||||
for (int node = 0; node < cpusize; node++)
|
||||
{
|
||||
if (node == myrank) continue;
|
||||
|
||||
int slength = data_packermix(0, cache.combined_src[myrank], cache.combined_dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
cache.send_lengths[node] = slength;
|
||||
if (slength > 0)
|
||||
{
|
||||
if (slength > cache.send_buf_caps[node])
|
||||
{
|
||||
if (slength > cache.send_buf_caps[node])
|
||||
{
|
||||
if (cache.send_bufs[node]) delete[] cache.send_bufs[node];
|
||||
cache.send_bufs[node] = new double[slength];
|
||||
cache.send_buf_caps[node] = slength;
|
||||
}
|
||||
data_packermix(cache.send_bufs[node], cache.combined_src[myrank], cache.combined_dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
MPI_Isend((void *)cache.send_bufs[node], slength, MPI_DOUBLE, node, 1, MPI_COMM_WORLD, cache.reqs + req_no++);
|
||||
if (cache.send_bufs[node]) delete[] cache.send_bufs[node];
|
||||
cache.send_bufs[node] = new double[slength];
|
||||
cache.send_buf_caps[node] = slength;
|
||||
}
|
||||
int rlength = data_packermix(0, cache.combined_src[node], cache.combined_dst[node], node, UNPACK, VarList1, VarList2, Symmetry);
|
||||
cache.recv_lengths[node] = rlength;
|
||||
if (rlength > 0)
|
||||
data_packermix(cache.send_bufs[node], cache.combined_src[myrank], cache.combined_dst[myrank], node, PACK, VarList1, VarList2, Symmetry);
|
||||
MPI_Isend((void *)cache.send_bufs[node], slength, MPI_DOUBLE, node, 1, MPI_COMM_WORLD, cache.reqs + req_no);
|
||||
req_node[req_no] = node;
|
||||
req_is_recv[req_no] = 0;
|
||||
req_no++;
|
||||
}
|
||||
}
|
||||
|
||||
// Unpack as soon as receive completes to reduce pure wait time.
|
||||
while (pending_recv > 0)
|
||||
{
|
||||
int outcount = 0;
|
||||
MPI_Waitsome(req_no, cache.reqs, &outcount, completed, cache.stats);
|
||||
if (outcount == MPI_UNDEFINED) break;
|
||||
|
||||
for (int i = 0; i < outcount; i++)
|
||||
{
|
||||
int idx = completed[i];
|
||||
if (idx >= 0 && req_is_recv[idx])
|
||||
{
|
||||
if (rlength > cache.recv_buf_caps[node])
|
||||
{
|
||||
if (cache.recv_bufs[node]) delete[] cache.recv_bufs[node];
|
||||
cache.recv_bufs[node] = new double[rlength];
|
||||
cache.recv_buf_caps[node] = rlength;
|
||||
}
|
||||
MPI_Irecv((void *)cache.recv_bufs[node], rlength, MPI_DOUBLE, node, 1, MPI_COMM_WORLD, cache.reqs + req_no++);
|
||||
int recv_node_i = req_node[idx];
|
||||
data_packermix(cache.recv_bufs[recv_node_i], cache.combined_src[recv_node_i], cache.combined_dst[recv_node_i], recv_node_i, UNPACK, VarList1, VarList2, Symmetry);
|
||||
pending_recv--;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
MPI_Waitall(req_no, cache.reqs, cache.stats);
|
||||
if (req_no > 0) MPI_Waitall(req_no, cache.reqs, cache.stats);
|
||||
|
||||
for (int node = 0; node < cpusize; node++)
|
||||
if (cache.recv_bufs[node] && cache.recv_lengths[node] > 0)
|
||||
data_packermix(cache.recv_bufs[node], cache.combined_src[node], cache.combined_dst[node], node, UNPACK, VarList1, VarList2, Symmetry);
|
||||
if (self_len > 0)
|
||||
data_packermix(cache.recv_bufs[myrank], cache.combined_src[myrank], cache.combined_dst[myrank], myrank, UNPACK, VarList1, VarList2, Symmetry);
|
||||
|
||||
delete[] req_node;
|
||||
delete[] req_is_recv;
|
||||
delete[] completed;
|
||||
}
|
||||
|
||||
// collect all buffer grid segments or blocks for given patch
|
||||
|
||||
@@ -108,6 +108,9 @@ namespace Parallel
|
||||
MPI_Status *stats;
|
||||
int max_reqs;
|
||||
bool lengths_valid;
|
||||
int *tc_req_node;
|
||||
int *tc_req_is_recv;
|
||||
int *tc_completed;
|
||||
SyncCache();
|
||||
void invalidate();
|
||||
void destroy();
|
||||
@@ -121,7 +124,10 @@ namespace Parallel
|
||||
struct AsyncSyncState {
|
||||
int req_no;
|
||||
bool active;
|
||||
AsyncSyncState() : req_no(0), active(false) {}
|
||||
int *req_node;
|
||||
int *req_is_recv;
|
||||
int pending_recv;
|
||||
AsyncSyncState() : req_no(0), active(false), req_node(0), req_is_recv(0), pending_recv(0) {}
|
||||
};
|
||||
|
||||
void Sync_start(MyList<Patch> *PatL, MyList<var> *VarList, int Symmetry,
|
||||
@@ -173,12 +179,13 @@ namespace Parallel
|
||||
MyList<Parallel::gridseg> *clone_gsl(MyList<Parallel::gridseg> *p, bool first_only);
|
||||
MyList<Parallel::gridseg> *build_bulk_gsl(Patch *Pat); // similar to build_owned_gsl0 but does not care rank issue
|
||||
MyList<Parallel::gridseg> *build_bulk_gsl(Block *bp, Patch *Pat);
|
||||
void build_PhysBD_gstl(Patch *Pat, MyList<Parallel::gridseg> *srci, MyList<Parallel::gridseg> *dsti,
|
||||
MyList<Parallel::gridseg> **out_src, MyList<Parallel::gridseg> **out_dst);
|
||||
void PeriodicBD(Patch *Pat, MyList<var> *VarList, int Symmetry);
|
||||
double L2Norm(Patch *Pat, var *vf);
|
||||
void checkgsl(MyList<Parallel::gridseg> *pp, bool first_only);
|
||||
void checkvarl(MyList<var> *pp, bool first_only);
|
||||
void build_PhysBD_gstl(Patch *Pat, MyList<Parallel::gridseg> *srci, MyList<Parallel::gridseg> *dsti,
|
||||
MyList<Parallel::gridseg> **out_src, MyList<Parallel::gridseg> **out_dst);
|
||||
void PeriodicBD(Patch *Pat, MyList<var> *VarList, int Symmetry);
|
||||
double L2Norm(Patch *Pat, var *vf);
|
||||
void L2Norm7(Patch *Pat, var **vf, double *norms);
|
||||
void checkgsl(MyList<Parallel::gridseg> *pp, bool first_only);
|
||||
void checkvarl(MyList<var> *pp, bool first_only);
|
||||
MyList<Parallel::gridseg> *divide_gsl(MyList<Parallel::gridseg> *p, Patch *Pat);
|
||||
MyList<Parallel::gridseg> *divide_gs(MyList<Parallel::gridseg> *p, Patch *Pat);
|
||||
void prepare_inter_time_level(Patch *Pat,
|
||||
@@ -210,11 +217,12 @@ namespace Parallel
|
||||
void aligncheck(double *bbox0, double *bboxl, int lev, double *DH0, int *shape);
|
||||
bool point_locat_gsl(double *pox, MyList<Parallel::gridseg> *gsl);
|
||||
void checkpatchlist(MyList<Patch> *PatL, bool buflog);
|
||||
|
||||
double L2Norm(Patch *Pat, var *vf, MPI_Comm Comm_here);
|
||||
bool PatList_Interp_Points(MyList<Patch> *PatL, MyList<var> *VarList,
|
||||
int NN, double **XX,
|
||||
double *Shellf, int Symmetry, MPI_Comm Comm_here);
|
||||
|
||||
double L2Norm(Patch *Pat, var *vf, MPI_Comm Comm_here);
|
||||
void L2Norm7(Patch *Pat, var **vf, double *norms, MPI_Comm Comm_here);
|
||||
bool PatList_Interp_Points(MyList<Patch> *PatL, MyList<var> *VarList,
|
||||
int NN, double **XX,
|
||||
double *Shellf, int Symmetry, MPI_Comm Comm_here);
|
||||
#if (PSTR == 1 || PSTR == 2 || PSTR == 3)
|
||||
MyList<Block> *distribute(MyList<Patch> *PatchLIST, int cpusize, int ingfsi, int fngfsi,
|
||||
bool periodic, int start_rank, int end_rank, int nodes = 0);
|
||||
|
||||
@@ -3439,10 +3439,10 @@ void ShellPatch::write_Pablo_file_ss(int *ext, double xmin, double xmax, double
|
||||
delete[] Z;
|
||||
}
|
||||
|
||||
double ShellPatch::L2Norm(var *vf)
|
||||
{
|
||||
double tvf, dtvf = 0;
|
||||
int BDW = overghost;
|
||||
double ShellPatch::L2Norm(var *vf)
|
||||
{
|
||||
double tvf, dtvf = 0;
|
||||
int BDW = overghost;
|
||||
|
||||
MyList<ss_patch> *sPp = PatL;
|
||||
while (sPp)
|
||||
@@ -3469,13 +3469,50 @@ double ShellPatch::L2Norm(var *vf)
|
||||
MPI_Allreduce(&dtvf, &tvf, 1, MPI_DOUBLE, MPI_SUM, MPI_COMM_WORLD);
|
||||
|
||||
tvf = sqrt(tvf);
|
||||
|
||||
return tvf;
|
||||
}
|
||||
|
||||
// find maximum of abstract value, XX store position for maximum, Shellf store maximum themselvs
|
||||
void ShellPatch::Find_Maximum(MyList<var> *VarList, double *XX,
|
||||
double *Shellf)
|
||||
|
||||
return tvf;
|
||||
}
|
||||
void ShellPatch::L2Norm7(var **vf, double *norms)
|
||||
{
|
||||
double tvf[7], dtvf[7];
|
||||
int BDW = overghost;
|
||||
for (int i = 0; i < 7; i++)
|
||||
dtvf[i] = 0;
|
||||
|
||||
MyList<ss_patch> *sPp = PatL;
|
||||
while (sPp)
|
||||
{
|
||||
MyList<Block> *Bp = sPp->data->blb;
|
||||
while (Bp)
|
||||
{
|
||||
Block *cg = Bp->data;
|
||||
if (myrank == cg->rank)
|
||||
{
|
||||
f_l2normhelper7(cg->shape, cg->X[0], cg->X[1], cg->X[2],
|
||||
sPp->data->bbox[0], sPp->data->bbox[1], sPp->data->bbox[2],
|
||||
sPp->data->bbox[3], sPp->data->bbox[4], sPp->data->bbox[5],
|
||||
cg->fgfs[vf[0]->sgfn], cg->fgfs[vf[1]->sgfn], cg->fgfs[vf[2]->sgfn],
|
||||
cg->fgfs[vf[3]->sgfn], cg->fgfs[vf[4]->sgfn], cg->fgfs[vf[5]->sgfn],
|
||||
cg->fgfs[vf[6]->sgfn], tvf, BDW);
|
||||
for (int i = 0; i < 7; i++)
|
||||
dtvf[i] += tvf[i];
|
||||
}
|
||||
if (Bp == sPp->data->ble)
|
||||
break;
|
||||
Bp = Bp->next;
|
||||
}
|
||||
sPp = sPp->next;
|
||||
}
|
||||
|
||||
MPI_Allreduce(dtvf, tvf, 7, MPI_DOUBLE, MPI_SUM, MPI_COMM_WORLD);
|
||||
|
||||
for (int i = 0; i < 7; i++)
|
||||
norms[i] = sqrt(tvf[i]);
|
||||
}
|
||||
|
||||
// find maximum of abstract value, XX store position for maximum, Shellf store maximum themselvs
|
||||
void ShellPatch::Find_Maximum(MyList<var> *VarList, double *XX,
|
||||
double *Shellf)
|
||||
{
|
||||
MyList<var> *varl;
|
||||
int num_var = 0;
|
||||
|
||||
@@ -195,10 +195,11 @@ public:
|
||||
bool Interp_One_Point(MyList<var> *VarList,
|
||||
double *XX, /*input global Cartesian coordinate*/
|
||||
double *Shellf, int Symmetry);
|
||||
void write_Pablo_file_ss(int *ext, double xmin, double xmax, double ymin, double ymax, double zmin, double zmax,
|
||||
char *filename, int sst);
|
||||
double L2Norm(var *vf);
|
||||
void Find_Maximum(MyList<var> *VarList, double *XX, double *Shellf);
|
||||
};
|
||||
void write_Pablo_file_ss(int *ext, double xmin, double xmax, double ymin, double ymax, double zmin, double zmax,
|
||||
char *filename, int sst);
|
||||
double L2Norm(var *vf);
|
||||
void L2Norm7(var **vf, double *norms);
|
||||
void Find_Maximum(MyList<var> *VarList, double *XX, double *Shellf);
|
||||
};
|
||||
|
||||
#endif /* SHELLPATCH_H */
|
||||
|
||||
File diff suppressed because it is too large
Load Diff
@@ -45,10 +45,11 @@ public:
|
||||
int checkrun;
|
||||
char checkfilename[50];
|
||||
int Steps;
|
||||
double StartTime, TotalTime;
|
||||
double AnasTime, DumpTime, d2DumpTime, CheckTime;
|
||||
double LastAnas, LastConsOut;
|
||||
double Courant;
|
||||
double StartTime, TotalTime;
|
||||
double AnasTime, DumpTime, d2DumpTime, CheckTime;
|
||||
double LastAnas, LastConsOut;
|
||||
int *ConstraintRefreshLevels;
|
||||
double Courant;
|
||||
double numepss, numepsb, numepsh;
|
||||
int Symmetry;
|
||||
int maxl, decn;
|
||||
@@ -130,10 +131,12 @@ public:
|
||||
Parallel::SyncCache *sync_cache_cor; // per-level cache for corrector sync
|
||||
Parallel::SyncCache *sync_cache_rp_coarse; // RestrictProlong sync on PatL[lev-1]
|
||||
Parallel::SyncCache *sync_cache_rp_fine; // RestrictProlong sync on PatL[lev]
|
||||
Parallel::SyncCache *sync_cache_restrict; // cached Restrict in RestrictProlong
|
||||
Parallel::SyncCache *sync_cache_outbd; // cached OutBdLow2Hi in RestrictProlong
|
||||
|
||||
monitor *ErrorMonitor, *Psi4Monitor, *BHMonitor, *MAPMonitor;
|
||||
monitor *ConVMonitor;
|
||||
surface_integral *Waveshell;
|
||||
monitor *ErrorMonitor, *Psi4Monitor, *BHMonitor, *MAPMonitor;
|
||||
monitor *ConVMonitor, *TimingMonitor;
|
||||
surface_integral *Waveshell;
|
||||
checkpoint *CheckPoint;
|
||||
|
||||
public:
|
||||
|
||||
@@ -59,9 +59,10 @@
|
||||
real*8, dimension(ex(1),ex(2),ex(3)),intent(out) :: Rxx,Rxy,Rxz,Ryy,Ryz,Rzz
|
||||
real*8,intent(in) :: eps
|
||||
real*8, dimension(ex(1),ex(2),ex(3)),intent(inout) :: ham_Res, movx_Res, movy_Res, movz_Res
|
||||
real*8, dimension(ex(1),ex(2),ex(3)),intent(inout) :: Gmx_Res, Gmy_Res, Gmz_Res
|
||||
! gont = 0: success; gont = 1: something wrong
|
||||
integer::gont
|
||||
real*8, dimension(ex(1),ex(2),ex(3)),intent(inout) :: Gmx_Res, Gmy_Res, Gmz_Res
|
||||
! gont = 0: success; gont = 1: something wrong
|
||||
integer::gont
|
||||
integer :: i,j,k
|
||||
|
||||
!~~~~~~> Other variables:
|
||||
|
||||
@@ -83,11 +84,18 @@
|
||||
real*8, dimension(ex(1),ex(2),ex(3)) :: gupxx,gupxy,gupxz
|
||||
real*8, dimension(ex(1),ex(2),ex(3)) :: gupyy,gupyz,gupzz
|
||||
|
||||
real*8,dimension(3) ::SSS,AAS,ASA,SAA,ASS,SAS,SSA
|
||||
real*8 :: dX, dY, dZ, PI
|
||||
real*8, parameter :: ZEO = 0.d0,ONE = 1.D0, TWO = 2.D0, FOUR = 4.D0
|
||||
real*8, parameter :: EIGHT = 8.D0, HALF = 0.5D0, THR = 3.d0
|
||||
real*8, parameter :: SYM = 1.D0, ANTI= - 1.D0
|
||||
real*8,dimension(3) ::SSS,AAS,ASA,SAA,ASS,SAS,SSA
|
||||
real*8 :: dX, dY, dZ, PI
|
||||
real*8 :: divb_loc,det_loc
|
||||
real*8 :: gupxx_loc,gupxy_loc,gupxz_loc,gupyy_loc,gupyz_loc,gupzz_loc
|
||||
real*8 :: Rxx_loc,Rxy_loc,Rxz_loc,Ryy_loc,Ryz_loc,Rzz_loc
|
||||
real*8 :: fxx_loc,fxy_loc,fxz_loc
|
||||
real*8 :: Gamxa_loc,Gamya_loc,Gamza_loc
|
||||
real*8 :: f_loc,chin_loc
|
||||
real*8 :: l_fxx,l_fxy,l_fxz,l_fyy,l_fyz,l_fzz,S_loc
|
||||
real*8, parameter :: ZEO = 0.d0,ONE = 1.D0, TWO = 2.D0, FOUR = 4.D0
|
||||
real*8, parameter :: EIGHT = 8.D0, HALF = 0.5D0, THR = 3.d0
|
||||
real*8, parameter :: SYM = 1.D0, ANTI= - 1.D0
|
||||
double precision,parameter::FF = 0.75d0,eta=2.d0
|
||||
real*8, parameter :: F1o3 = 1.D0/3.D0, F2o3 = 2.D0/3.D0,F3o2=1.5d0, F1o6 = 1.D0/6.D0
|
||||
real*8, parameter :: F16=1.6d1,F8=8.d0
|
||||
@@ -96,11 +104,11 @@
|
||||
real*8, dimension(ex(1),ex(2),ex(3)) :: reta
|
||||
#endif
|
||||
|
||||
#if (GAUGE == 6 || GAUGE == 7)
|
||||
integer :: BHN,i,j,k
|
||||
real*8, dimension(9) :: Porg
|
||||
real*8, dimension(3) :: Mass
|
||||
real*8 :: r1,r2,M,A,w1,w2,C1,C2
|
||||
#if (GAUGE == 6 || GAUGE == 7)
|
||||
integer :: BHN
|
||||
real*8, dimension(9) :: Porg
|
||||
real*8, dimension(3) :: Mass
|
||||
real*8 :: r1,r2,M,A,w1,w2,C1,C2
|
||||
real*8, dimension(ex(1),ex(2),ex(3)) :: reta
|
||||
|
||||
call getpbh(BHN,Porg,Mass)
|
||||
@@ -145,174 +153,204 @@
|
||||
dY = Y(2) - Y(1)
|
||||
dZ = Z(2) - Z(1)
|
||||
|
||||
alpn1 = Lap + ONE
|
||||
chin1 = chi + ONE
|
||||
gxx = dxx + ONE
|
||||
gyy = dyy + ONE
|
||||
gzz = dzz + ONE
|
||||
do k=1,ex(3)
|
||||
do j=1,ex(2)
|
||||
do i=1,ex(1)
|
||||
alpn1(i,j,k) = Lap(i,j,k) + ONE
|
||||
chin1(i,j,k) = chi(i,j,k) + ONE
|
||||
gxx(i,j,k) = dxx(i,j,k) + ONE
|
||||
gyy(i,j,k) = dyy(i,j,k) + ONE
|
||||
gzz(i,j,k) = dzz(i,j,k) + ONE
|
||||
enddo
|
||||
enddo
|
||||
enddo
|
||||
|
||||
call fderivs(ex,betax,betaxx,betaxy,betaxz,X,Y,Z,ANTI, SYM, SYM,Symmetry,Lev)
|
||||
call fderivs(ex,betay,betayx,betayy,betayz,X,Y,Z, SYM,ANTI, SYM,Symmetry,Lev)
|
||||
call fderivs(ex,betaz,betazx,betazy,betazz,X,Y,Z, SYM, SYM,ANTI,Symmetry,Lev)
|
||||
|
||||
div_beta = betaxx + betayy + betazz
|
||||
|
||||
call fderivs(ex,chi,chix,chiy,chiz,X,Y,Z,SYM,SYM,SYM,symmetry,Lev)
|
||||
call fderivs(ex,chi,chix,chiy,chiz,X,Y,Z,SYM,SYM,SYM,symmetry,Lev)
|
||||
|
||||
chi_rhs = F2o3 *chin1*( alpn1 * trK - div_beta ) !rhs for chi
|
||||
|
||||
call fderivs(ex,dxx,gxxx,gxxy,gxxz,X,Y,Z,SYM ,SYM ,SYM ,Symmetry,Lev)
|
||||
call fderivs(ex,gxy,gxyx,gxyy,gxyz,X,Y,Z,ANTI,ANTI,SYM ,Symmetry,Lev)
|
||||
call fderivs(ex,gxz,gxzx,gxzy,gxzz,X,Y,Z,ANTI,SYM ,ANTI,Symmetry,Lev)
|
||||
call fderivs(ex,dyy,gyyx,gyyy,gyyz,X,Y,Z,SYM ,SYM ,SYM ,Symmetry,Lev)
|
||||
call fderivs(ex,gyz,gyzx,gyzy,gyzz,X,Y,Z,SYM ,ANTI,ANTI,Symmetry,Lev)
|
||||
call fderivs(ex,dzz,gzzx,gzzy,gzzz,X,Y,Z,SYM ,SYM ,SYM ,Symmetry,Lev)
|
||||
|
||||
gxx_rhs = - TWO * alpn1 * Axx - F2o3 * gxx * div_beta + &
|
||||
TWO *( gxx * betaxx + gxy * betayx + gxz * betazx)
|
||||
|
||||
gyy_rhs = - TWO * alpn1 * Ayy - F2o3 * gyy * div_beta + &
|
||||
TWO *( gxy * betaxy + gyy * betayy + gyz * betazy)
|
||||
|
||||
gzz_rhs = - TWO * alpn1 * Azz - F2o3 * gzz * div_beta + &
|
||||
TWO *( gxz * betaxz + gyz * betayz + gzz * betazz)
|
||||
|
||||
gxy_rhs = - TWO * alpn1 * Axy + F1o3 * gxy * div_beta + &
|
||||
gxx * betaxy + gxz * betazy + &
|
||||
gyy * betayx + gyz * betazx &
|
||||
- gxy * betazz
|
||||
|
||||
gyz_rhs = - TWO * alpn1 * Ayz + F1o3 * gyz * div_beta + &
|
||||
gxy * betaxz + gyy * betayz + &
|
||||
gxz * betaxy + gzz * betazy &
|
||||
- gyz * betaxx
|
||||
|
||||
gxz_rhs = - TWO * alpn1 * Axz + F1o3 * gxz * div_beta + &
|
||||
gxx * betaxz + gxy * betayz + &
|
||||
gyz * betayx + gzz * betazx &
|
||||
- gxz * betayy !rhs for gij
|
||||
|
||||
! invert tilted metric
|
||||
gupzz = gxx * gyy * gzz + gxy * gyz * gxz + gxz * gxy * gyz - &
|
||||
gxz * gyy * gxz - gxy * gxy * gzz - gxx * gyz * gyz
|
||||
gupxx = ( gyy * gzz - gyz * gyz ) / gupzz
|
||||
gupxy = - ( gxy * gzz - gyz * gxz ) / gupzz
|
||||
gupxz = ( gxy * gyz - gyy * gxz ) / gupzz
|
||||
gupyy = ( gxx * gzz - gxz * gxz ) / gupzz
|
||||
gupyz = - ( gxx * gyz - gxy * gxz ) / gupzz
|
||||
gupzz = ( gxx * gyy - gxy * gxy ) / gupzz
|
||||
|
||||
if(co == 0)then
|
||||
! Gam^i_Res = Gam^i + gup^ij_,j
|
||||
Gmx_Res = Gamx - (gupxx*(gupxx*gxxx+gupxy*gxyx+gupxz*gxzx)&
|
||||
+gupxy*(gupxx*gxyx+gupxy*gyyx+gupxz*gyzx)&
|
||||
+gupxz*(gupxx*gxzx+gupxy*gyzx+gupxz*gzzx)&
|
||||
+gupxx*(gupxy*gxxy+gupyy*gxyy+gupyz*gxzy)&
|
||||
+gupxy*(gupxy*gxyy+gupyy*gyyy+gupyz*gyzy)&
|
||||
+gupxz*(gupxy*gxzy+gupyy*gyzy+gupyz*gzzy)&
|
||||
+gupxx*(gupxz*gxxz+gupyz*gxyz+gupzz*gxzz)&
|
||||
+gupxy*(gupxz*gxyz+gupyz*gyyz+gupzz*gyzz)&
|
||||
+gupxz*(gupxz*gxzz+gupyz*gyzz+gupzz*gzzz))
|
||||
Gmy_Res = Gamy - (gupxx*(gupxy*gxxx+gupyy*gxyx+gupyz*gxzx)&
|
||||
+gupxy*(gupxy*gxyx+gupyy*gyyx+gupyz*gyzx)&
|
||||
+gupxz*(gupxy*gxzx+gupyy*gyzx+gupyz*gzzx)&
|
||||
+gupxy*(gupxy*gxxy+gupyy*gxyy+gupyz*gxzy)&
|
||||
+gupyy*(gupxy*gxyy+gupyy*gyyy+gupyz*gyzy)&
|
||||
+gupyz*(gupxy*gxzy+gupyy*gyzy+gupyz*gzzy)&
|
||||
+gupxy*(gupxz*gxxz+gupyz*gxyz+gupzz*gxzz)&
|
||||
+gupyy*(gupxz*gxyz+gupyz*gyyz+gupzz*gyzz)&
|
||||
+gupyz*(gupxz*gxzz+gupyz*gyzz+gupzz*gzzz))
|
||||
Gmz_Res = Gamz - (gupxx*(gupxz*gxxx+gupyz*gxyx+gupzz*gxzx)&
|
||||
+gupxy*(gupxz*gxyx+gupyz*gyyx+gupzz*gyzx)&
|
||||
+gupxz*(gupxz*gxzx+gupyz*gyzx+gupzz*gzzx)&
|
||||
+gupxy*(gupxz*gxxy+gupyz*gxyy+gupzz*gxzy)&
|
||||
+gupyy*(gupxz*gxyy+gupyz*gyyy+gupzz*gyzy)&
|
||||
+gupyz*(gupxz*gxzy+gupyz*gyzy+gupzz*gzzy)&
|
||||
+gupxz*(gupxz*gxxz+gupyz*gxyz+gupzz*gxzz)&
|
||||
+gupyz*(gupxz*gxyz+gupyz*gyyz+gupzz*gyzz)&
|
||||
+gupzz*(gupxz*gxzz+gupyz*gyzz+gupzz*gzzz))
|
||||
endif
|
||||
|
||||
! second kind of connection
|
||||
Gamxxx =HALF*( gupxx*gxxx + gupxy*(TWO*gxyx - gxxy ) + gupxz*(TWO*gxzx - gxxz ))
|
||||
Gamyxx =HALF*( gupxy*gxxx + gupyy*(TWO*gxyx - gxxy ) + gupyz*(TWO*gxzx - gxxz ))
|
||||
Gamzxx =HALF*( gupxz*gxxx + gupyz*(TWO*gxyx - gxxy ) + gupzz*(TWO*gxzx - gxxz ))
|
||||
|
||||
Gamxyy =HALF*( gupxx*(TWO*gxyy - gyyx ) + gupxy*gyyy + gupxz*(TWO*gyzy - gyyz ))
|
||||
Gamyyy =HALF*( gupxy*(TWO*gxyy - gyyx ) + gupyy*gyyy + gupyz*(TWO*gyzy - gyyz ))
|
||||
Gamzyy =HALF*( gupxz*(TWO*gxyy - gyyx ) + gupyz*gyyy + gupzz*(TWO*gyzy - gyyz ))
|
||||
|
||||
Gamxzz =HALF*( gupxx*(TWO*gxzz - gzzx ) + gupxy*(TWO*gyzz - gzzy ) + gupxz*gzzz)
|
||||
Gamyzz =HALF*( gupxy*(TWO*gxzz - gzzx ) + gupyy*(TWO*gyzz - gzzy ) + gupyz*gzzz)
|
||||
Gamzzz =HALF*( gupxz*(TWO*gxzz - gzzx ) + gupyz*(TWO*gyzz - gzzy ) + gupzz*gzzz)
|
||||
|
||||
Gamxxy =HALF*( gupxx*gxxy + gupxy*gyyx + gupxz*( gxzy + gyzx - gxyz ) )
|
||||
Gamyxy =HALF*( gupxy*gxxy + gupyy*gyyx + gupyz*( gxzy + gyzx - gxyz ) )
|
||||
Gamzxy =HALF*( gupxz*gxxy + gupyz*gyyx + gupzz*( gxzy + gyzx - gxyz ) )
|
||||
|
||||
Gamxxz =HALF*( gupxx*gxxz + gupxy*( gxyz + gyzx - gxzy ) + gupxz*gzzx )
|
||||
Gamyxz =HALF*( gupxy*gxxz + gupyy*( gxyz + gyzx - gxzy ) + gupyz*gzzx )
|
||||
Gamzxz =HALF*( gupxz*gxxz + gupyz*( gxyz + gyzx - gxzy ) + gupzz*gzzx )
|
||||
|
||||
Gamxyz =HALF*( gupxx*( gxyz + gxzy - gyzx ) + gupxy*gyyz + gupxz*gzzy )
|
||||
Gamyyz =HALF*( gupxy*( gxyz + gxzy - gyzx ) + gupyy*gyyz + gupyz*gzzy )
|
||||
Gamzyz =HALF*( gupxz*( gxyz + gxzy - gyzx ) + gupyz*gyyz + gupzz*gzzy )
|
||||
! Raise indices of \tilde A_{ij} and store in R_ij
|
||||
|
||||
Rxx = gupxx * gupxx * Axx + gupxy * gupxy * Ayy + gupxz * gupxz * Azz + &
|
||||
TWO*(gupxx * gupxy * Axy + gupxx * gupxz * Axz + gupxy * gupxz * Ayz)
|
||||
|
||||
Ryy = gupxy * gupxy * Axx + gupyy * gupyy * Ayy + gupyz * gupyz * Azz + &
|
||||
TWO*(gupxy * gupyy * Axy + gupxy * gupyz * Axz + gupyy * gupyz * Ayz)
|
||||
|
||||
Rzz = gupxz * gupxz * Axx + gupyz * gupyz * Ayy + gupzz * gupzz * Azz + &
|
||||
TWO*(gupxz * gupyz * Axy + gupxz * gupzz * Axz + gupyz * gupzz * Ayz)
|
||||
|
||||
Rxy = gupxx * gupxy * Axx + gupxy * gupyy * Ayy + gupxz * gupyz * Azz + &
|
||||
(gupxx * gupyy + gupxy * gupxy)* Axy + &
|
||||
(gupxx * gupyz + gupxz * gupxy)* Axz + &
|
||||
(gupxy * gupyz + gupxz * gupyy)* Ayz
|
||||
|
||||
Rxz = gupxx * gupxz * Axx + gupxy * gupyz * Ayy + gupxz * gupzz * Azz + &
|
||||
(gupxx * gupyz + gupxy * gupxz)* Axy + &
|
||||
(gupxx * gupzz + gupxz * gupxz)* Axz + &
|
||||
(gupxy * gupzz + gupxz * gupyz)* Ayz
|
||||
|
||||
Ryz = gupxy * gupxz * Axx + gupyy * gupyz * Ayy + gupyz * gupzz * Azz + &
|
||||
(gupxy * gupyz + gupyy * gupxz)* Axy + &
|
||||
(gupxy * gupzz + gupyz * gupxz)* Axz + &
|
||||
(gupyy * gupzz + gupyz * gupyz)* Ayz
|
||||
|
||||
! Right hand side for Gam^i without shift terms...
|
||||
call fderivs(ex,Lap,Lapx,Lapy,Lapz,X,Y,Z,SYM,SYM,SYM,Symmetry,Lev)
|
||||
call fderivs(ex,trK,Kx,Ky,Kz,X,Y,Z,SYM,SYM,SYM,symmetry,Lev)
|
||||
|
||||
Gamx_rhs = - TWO * ( Lapx * Rxx + Lapy * Rxy + Lapz * Rxz ) + &
|
||||
TWO * alpn1 * ( &
|
||||
-F3o2/chin1 * ( chix * Rxx + chiy * Rxy + chiz * Rxz ) - &
|
||||
gupxx * ( F2o3 * Kx + EIGHT * PI * Sx ) - &
|
||||
gupxy * ( F2o3 * Ky + EIGHT * PI * Sy ) - &
|
||||
gupxz * ( F2o3 * Kz + EIGHT * PI * Sz ) + &
|
||||
Gamxxx * Rxx + Gamxyy * Ryy + Gamxzz * Rzz + &
|
||||
TWO * ( Gamxxy * Rxy + Gamxxz * Rxz + Gamxyz * Ryz ) )
|
||||
|
||||
Gamy_rhs = - TWO * ( Lapx * Rxy + Lapy * Ryy + Lapz * Ryz ) + &
|
||||
TWO * alpn1 * ( &
|
||||
-F3o2/chin1 * ( chix * Rxy + chiy * Ryy + chiz * Ryz ) - &
|
||||
gupxy * ( F2o3 * Kx + EIGHT * PI * Sx ) - &
|
||||
gupyy * ( F2o3 * Ky + EIGHT * PI * Sy ) - &
|
||||
gupyz * ( F2o3 * Kz + EIGHT * PI * Sz ) + &
|
||||
Gamyxx * Rxx + Gamyyy * Ryy + Gamyzz * Rzz + &
|
||||
TWO * ( Gamyxy * Rxy + Gamyxz * Rxz + Gamyyz * Ryz ) )
|
||||
|
||||
Gamz_rhs = - TWO * ( Lapx * Rxz + Lapy * Ryz + Lapz * Rzz ) + &
|
||||
TWO * alpn1 * ( &
|
||||
-F3o2/chin1 * ( chix * Rxz + chiy * Ryz + chiz * Rzz ) - &
|
||||
gupxz * ( F2o3 * Kx + EIGHT * PI * Sx ) - &
|
||||
gupyz * ( F2o3 * Ky + EIGHT * PI * Sy ) - &
|
||||
gupzz * ( F2o3 * Kz + EIGHT * PI * Sz ) + &
|
||||
Gamzxx * Rxx + Gamzyy * Ryy + Gamzzz * Rzz + &
|
||||
TWO * ( Gamzxy * Rxy + Gamzxz * Rxz + Gamzyz * Ryz ) )
|
||||
call fderivs(ex,dxx,gxxx,gxxy,gxxz,X,Y,Z,SYM ,SYM ,SYM ,Symmetry,Lev)
|
||||
call fderivs(ex,gxy,gxyx,gxyy,gxyz,X,Y,Z,ANTI,ANTI,SYM ,Symmetry,Lev)
|
||||
call fderivs(ex,gxz,gxzx,gxzy,gxzz,X,Y,Z,ANTI,SYM ,ANTI,Symmetry,Lev)
|
||||
call fderivs(ex,dyy,gyyx,gyyy,gyyz,X,Y,Z,SYM ,SYM ,SYM ,Symmetry,Lev)
|
||||
call fderivs(ex,gyz,gyzx,gyzy,gyzz,X,Y,Z,SYM ,ANTI,ANTI,Symmetry,Lev)
|
||||
call fderivs(ex,dzz,gzzx,gzzy,gzzz,X,Y,Z,SYM ,SYM ,SYM ,Symmetry,Lev)
|
||||
|
||||
do k=1,ex(3)
|
||||
do j=1,ex(2)
|
||||
do i=1,ex(1)
|
||||
divb_loc = betaxx(i,j,k) + betayy(i,j,k) + betazz(i,j,k)
|
||||
div_beta(i,j,k) = divb_loc
|
||||
|
||||
chi_rhs(i,j,k) = F2o3 * chin1(i,j,k) * (alpn1(i,j,k) * trK(i,j,k) - divb_loc)
|
||||
|
||||
gxx_rhs(i,j,k) = - TWO * alpn1(i,j,k) * Axx(i,j,k) - F2o3 * gxx(i,j,k) * divb_loc + &
|
||||
TWO * ( gxx(i,j,k) * betaxx(i,j,k) + gxy(i,j,k) * betayx(i,j,k) + gxz(i,j,k) * betazx(i,j,k) )
|
||||
|
||||
gyy_rhs(i,j,k) = - TWO * alpn1(i,j,k) * Ayy(i,j,k) - F2o3 * gyy(i,j,k) * divb_loc + &
|
||||
TWO * ( gxy(i,j,k) * betaxy(i,j,k) + gyy(i,j,k) * betayy(i,j,k) + gyz(i,j,k) * betazy(i,j,k) )
|
||||
|
||||
gzz_rhs(i,j,k) = - TWO * alpn1(i,j,k) * Azz(i,j,k) - F2o3 * gzz(i,j,k) * divb_loc + &
|
||||
TWO * ( gxz(i,j,k) * betaxz(i,j,k) + gyz(i,j,k) * betayz(i,j,k) + gzz(i,j,k) * betazz(i,j,k) )
|
||||
|
||||
gxy_rhs(i,j,k) = - TWO * alpn1(i,j,k) * Axy(i,j,k) + F1o3 * gxy(i,j,k) * divb_loc + &
|
||||
gxx(i,j,k) * betaxy(i,j,k) + gxz(i,j,k) * betazy(i,j,k) + gyy(i,j,k) * betayx(i,j,k) + &
|
||||
gyz(i,j,k) * betazx(i,j,k) - gxy(i,j,k) * betazz(i,j,k)
|
||||
|
||||
gyz_rhs(i,j,k) = - TWO * alpn1(i,j,k) * Ayz(i,j,k) + F1o3 * gyz(i,j,k) * divb_loc + &
|
||||
gxy(i,j,k) * betaxz(i,j,k) + gyy(i,j,k) * betayz(i,j,k) + gxz(i,j,k) * betaxy(i,j,k) + &
|
||||
gzz(i,j,k) * betazy(i,j,k) - gyz(i,j,k) * betaxx(i,j,k)
|
||||
|
||||
gxz_rhs(i,j,k) = - TWO * alpn1(i,j,k) * Axz(i,j,k) + F1o3 * gxz(i,j,k) * divb_loc + &
|
||||
gxx(i,j,k) * betaxz(i,j,k) + gxy(i,j,k) * betayz(i,j,k) + gyz(i,j,k) * betayx(i,j,k) + &
|
||||
gzz(i,j,k) * betazx(i,j,k) - gxz(i,j,k) * betayy(i,j,k)
|
||||
|
||||
det_loc = gxx(i,j,k) * gyy(i,j,k) * gzz(i,j,k) + gxy(i,j,k) * gyz(i,j,k) * gxz(i,j,k) + &
|
||||
gxz(i,j,k) * gxy(i,j,k) * gyz(i,j,k) - gxz(i,j,k) * gyy(i,j,k) * gxz(i,j,k) - &
|
||||
gxy(i,j,k) * gxy(i,j,k) * gzz(i,j,k) - gxx(i,j,k) * gyz(i,j,k) * gyz(i,j,k)
|
||||
gupxx_loc = ( gyy(i,j,k) * gzz(i,j,k) - gyz(i,j,k) * gyz(i,j,k) ) / det_loc
|
||||
gupxy_loc = - ( gxy(i,j,k) * gzz(i,j,k) - gyz(i,j,k) * gxz(i,j,k) ) / det_loc
|
||||
gupxz_loc = ( gxy(i,j,k) * gyz(i,j,k) - gyy(i,j,k) * gxz(i,j,k) ) / det_loc
|
||||
gupyy_loc = ( gxx(i,j,k) * gzz(i,j,k) - gxz(i,j,k) * gxz(i,j,k) ) / det_loc
|
||||
gupyz_loc = - ( gxx(i,j,k) * gyz(i,j,k) - gxy(i,j,k) * gxz(i,j,k) ) / det_loc
|
||||
gupzz_loc = ( gxx(i,j,k) * gyy(i,j,k) - gxy(i,j,k) * gxy(i,j,k) ) / det_loc
|
||||
gupxx(i,j,k) = gupxx_loc
|
||||
gupxy(i,j,k) = gupxy_loc
|
||||
gupxz(i,j,k) = gupxz_loc
|
||||
gupyy(i,j,k) = gupyy_loc
|
||||
gupyz(i,j,k) = gupyz_loc
|
||||
gupzz(i,j,k) = gupzz_loc
|
||||
|
||||
if(co == 0)then
|
||||
Gmx_Res(i,j,k) = Gamx(i,j,k) - ( &
|
||||
gupxx_loc*(gupxx_loc*gxxx(i,j,k)+gupxy_loc*gxyx(i,j,k)+gupxz_loc*gxzx(i,j,k)) + &
|
||||
gupxy_loc*(gupxx_loc*gxyx(i,j,k)+gupxy_loc*gyyx(i,j,k)+gupxz_loc*gyzx(i,j,k)) + &
|
||||
gupxz_loc*(gupxx_loc*gxzx(i,j,k)+gupxy_loc*gyzx(i,j,k)+gupxz_loc*gzzx(i,j,k)) + &
|
||||
gupxx_loc*(gupxy_loc*gxxy(i,j,k)+gupyy_loc*gxyy(i,j,k)+gupyz_loc*gxzy(i,j,k)) + &
|
||||
gupxy_loc*(gupxy_loc*gxyy(i,j,k)+gupyy_loc*gyyy(i,j,k)+gupyz_loc*gyzy(i,j,k)) + &
|
||||
gupxz_loc*(gupxy_loc*gxzy(i,j,k)+gupyy_loc*gyzy(i,j,k)+gupyz_loc*gzzy(i,j,k)) + &
|
||||
gupxx_loc*(gupxz_loc*gxxz(i,j,k)+gupyz_loc*gxyz(i,j,k)+gupzz_loc*gxzz(i,j,k)) + &
|
||||
gupxy_loc*(gupxz_loc*gxyz(i,j,k)+gupyz_loc*gyyz(i,j,k)+gupzz_loc*gyzz(i,j,k)) + &
|
||||
gupxz_loc*(gupxz_loc*gxzz(i,j,k)+gupyz_loc*gyzz(i,j,k)+gupzz_loc*gzzz(i,j,k)))
|
||||
Gmy_Res(i,j,k) = Gamy(i,j,k) - ( &
|
||||
gupxx_loc*(gupxy_loc*gxxx(i,j,k)+gupyy_loc*gxyx(i,j,k)+gupyz_loc*gxzx(i,j,k)) + &
|
||||
gupxy_loc*(gupxy_loc*gxyx(i,j,k)+gupyy_loc*gyyx(i,j,k)+gupyz_loc*gyzx(i,j,k)) + &
|
||||
gupxz_loc*(gupxy_loc*gxzx(i,j,k)+gupyy_loc*gyzx(i,j,k)+gupyz_loc*gzzx(i,j,k)) + &
|
||||
gupxy_loc*(gupxy_loc*gxxy(i,j,k)+gupyy_loc*gxyy(i,j,k)+gupyz_loc*gxzy(i,j,k)) + &
|
||||
gupyy_loc*(gupxy_loc*gxyy(i,j,k)+gupyy_loc*gyyy(i,j,k)+gupyz_loc*gyzy(i,j,k)) + &
|
||||
gupyz_loc*(gupxy_loc*gxzy(i,j,k)+gupyy_loc*gyzy(i,j,k)+gupyz_loc*gzzy(i,j,k)) + &
|
||||
gupxy_loc*(gupxz_loc*gxxz(i,j,k)+gupyz_loc*gxyz(i,j,k)+gupzz_loc*gxzz(i,j,k)) + &
|
||||
gupyy_loc*(gupxz_loc*gxyz(i,j,k)+gupyz_loc*gyyz(i,j,k)+gupzz_loc*gyzz(i,j,k)) + &
|
||||
gupyz_loc*(gupxz_loc*gxzz(i,j,k)+gupyz_loc*gyzz(i,j,k)+gupzz_loc*gzzz(i,j,k)))
|
||||
Gmz_Res(i,j,k) = Gamz(i,j,k) - ( &
|
||||
gupxx_loc*(gupxz_loc*gxxx(i,j,k)+gupyz_loc*gxyx(i,j,k)+gupzz_loc*gxzx(i,j,k)) + &
|
||||
gupxy_loc*(gupxz_loc*gxyx(i,j,k)+gupyz_loc*gyyx(i,j,k)+gupzz_loc*gyzx(i,j,k)) + &
|
||||
gupxz_loc*(gupxz_loc*gxzx(i,j,k)+gupyz_loc*gyzx(i,j,k)+gupzz_loc*gzzx(i,j,k)) + &
|
||||
gupxy_loc*(gupxz_loc*gxxy(i,j,k)+gupyz_loc*gxyy(i,j,k)+gupzz_loc*gxzy(i,j,k)) + &
|
||||
gupyy_loc*(gupxz_loc*gxyy(i,j,k)+gupyz_loc*gyyy(i,j,k)+gupzz_loc*gyzy(i,j,k)) + &
|
||||
gupyz_loc*(gupxz_loc*gxzy(i,j,k)+gupyz_loc*gyzy(i,j,k)+gupzz_loc*gzzy(i,j,k)) + &
|
||||
gupxz_loc*(gupxz_loc*gxxz(i,j,k)+gupyz_loc*gxyz(i,j,k)+gupzz_loc*gxzz(i,j,k)) + &
|
||||
gupyz_loc*(gupxz_loc*gxyz(i,j,k)+gupyz_loc*gyyz(i,j,k)+gupzz_loc*gyzz(i,j,k)) + &
|
||||
gupzz_loc*(gupxz_loc*gxzz(i,j,k)+gupyz_loc*gyzz(i,j,k)+gupzz_loc*gzzz(i,j,k)))
|
||||
endif
|
||||
|
||||
Gamxxx(i,j,k)=HALF*( gupxx_loc*gxxx(i,j,k) + gupxy_loc*(TWO*gxyx(i,j,k) - gxxy(i,j,k)) + gupxz_loc*(TWO*gxzx(i,j,k) - gxxz(i,j,k)))
|
||||
Gamyxx(i,j,k)=HALF*( gupxy_loc*gxxx(i,j,k) + gupyy_loc*(TWO*gxyx(i,j,k) - gxxy(i,j,k)) + gupyz_loc*(TWO*gxzx(i,j,k) - gxxz(i,j,k)))
|
||||
Gamzxx(i,j,k)=HALF*( gupxz_loc*gxxx(i,j,k) + gupyz_loc*(TWO*gxyx(i,j,k) - gxxy(i,j,k)) + gupzz_loc*(TWO*gxzx(i,j,k) - gxxz(i,j,k)))
|
||||
|
||||
Gamxyy(i,j,k)=HALF*( gupxx_loc*(TWO*gxyy(i,j,k) - gyyx(i,j,k)) + gupxy_loc*gyyy(i,j,k) + gupxz_loc*(TWO*gyzy(i,j,k) - gyyz(i,j,k)))
|
||||
Gamyyy(i,j,k)=HALF*( gupxy_loc*(TWO*gxyy(i,j,k) - gyyx(i,j,k)) + gupyy_loc*gyyy(i,j,k) + gupyz_loc*(TWO*gyzy(i,j,k) - gyyz(i,j,k)))
|
||||
Gamzyy(i,j,k)=HALF*( gupxz_loc*(TWO*gxyy(i,j,k) - gyyx(i,j,k)) + gupyz_loc*gyyy(i,j,k) + gupzz_loc*(TWO*gyzy(i,j,k) - gyyz(i,j,k)))
|
||||
|
||||
Gamxzz(i,j,k)=HALF*( gupxx_loc*(TWO*gxzz(i,j,k) - gzzx(i,j,k)) + gupxy_loc*(TWO*gyzz(i,j,k) - gzzy(i,j,k)) + gupxz_loc*gzzz(i,j,k))
|
||||
Gamyzz(i,j,k)=HALF*( gupxy_loc*(TWO*gxzz(i,j,k) - gzzx(i,j,k)) + gupyy_loc*(TWO*gyzz(i,j,k) - gzzy(i,j,k)) + gupyz_loc*gzzz(i,j,k))
|
||||
Gamzzz(i,j,k)=HALF*( gupxz_loc*(TWO*gxzz(i,j,k) - gzzx(i,j,k)) + gupyz_loc*(TWO*gyzz(i,j,k) - gzzy(i,j,k)) + gupzz_loc*gzzz(i,j,k))
|
||||
|
||||
Gamxxy(i,j,k)=HALF*( gupxx_loc*gxxy(i,j,k) + gupxy_loc*gyyx(i,j,k) + gupxz_loc*(gxzy(i,j,k) + gyzx(i,j,k) - gxyz(i,j,k)) )
|
||||
Gamyxy(i,j,k)=HALF*( gupxy_loc*gxxy(i,j,k) + gupyy_loc*gyyx(i,j,k) + gupyz_loc*(gxzy(i,j,k) + gyzx(i,j,k) - gxyz(i,j,k)) )
|
||||
Gamzxy(i,j,k)=HALF*( gupxz_loc*gxxy(i,j,k) + gupyz_loc*gyyx(i,j,k) + gupzz_loc*(gxzy(i,j,k) + gyzx(i,j,k) - gxyz(i,j,k)) )
|
||||
|
||||
Gamxxz(i,j,k)=HALF*( gupxx_loc*gxxz(i,j,k) + gupxy_loc*(gxyz(i,j,k) + gyzx(i,j,k) - gxzy(i,j,k)) + gupxz_loc*gzzx(i,j,k) )
|
||||
Gamyxz(i,j,k)=HALF*( gupxy_loc*gxxz(i,j,k) + gupyy_loc*(gxyz(i,j,k) + gyzx(i,j,k) - gxzy(i,j,k)) + gupyz_loc*gzzx(i,j,k) )
|
||||
Gamzxz(i,j,k)=HALF*( gupxz_loc*gxxz(i,j,k) + gupyz_loc*(gxyz(i,j,k) + gyzx(i,j,k) - gxzy(i,j,k)) + gupzz_loc*gzzx(i,j,k) )
|
||||
|
||||
Gamxyz(i,j,k)=HALF*( gupxx_loc*(gxyz(i,j,k) + gxzy(i,j,k) - gyzx(i,j,k)) + gupxy_loc*gyyz(i,j,k) + gupxz_loc*gzzy(i,j,k) )
|
||||
Gamyyz(i,j,k)=HALF*( gupxy_loc*(gxyz(i,j,k) + gxzy(i,j,k) - gyzx(i,j,k)) + gupyy_loc*gyyz(i,j,k) + gupyz_loc*gzzy(i,j,k) )
|
||||
Gamzyz(i,j,k)=HALF*( gupxz_loc*(gxyz(i,j,k) + gxzy(i,j,k) - gyzx(i,j,k)) + gupyz_loc*gyyz(i,j,k) + gupzz_loc*gzzy(i,j,k) )
|
||||
enddo
|
||||
enddo
|
||||
enddo
|
||||
! Raise indices of \tilde A_{ij} and store in R_ij
|
||||
|
||||
! Right hand side for Gam^i without shift terms...
|
||||
call fderivs(ex,Lap,Lapx,Lapy,Lapz,X,Y,Z,SYM,SYM,SYM,Symmetry,Lev)
|
||||
call fderivs(ex,trK,Kx,Ky,Kz,X,Y,Z,SYM,SYM,SYM,symmetry,Lev)
|
||||
do k=1,ex(3)
|
||||
do j=1,ex(2)
|
||||
do i=1,ex(1)
|
||||
gupxx_loc = gupxx(i,j,k)
|
||||
gupxy_loc = gupxy(i,j,k)
|
||||
gupxz_loc = gupxz(i,j,k)
|
||||
gupyy_loc = gupyy(i,j,k)
|
||||
gupyz_loc = gupyz(i,j,k)
|
||||
gupzz_loc = gupzz(i,j,k)
|
||||
|
||||
Rxx_loc = gupxx_loc * gupxx_loc * Axx(i,j,k) + gupxy_loc * gupxy_loc * Ayy(i,j,k) + gupxz_loc * gupxz_loc * Azz(i,j,k) + &
|
||||
TWO * (gupxx_loc * gupxy_loc * Axy(i,j,k) + gupxx_loc * gupxz_loc * Axz(i,j,k) + gupxy_loc * gupxz_loc * Ayz(i,j,k))
|
||||
Ryy_loc = gupxy_loc * gupxy_loc * Axx(i,j,k) + gupyy_loc * gupyy_loc * Ayy(i,j,k) + gupyz_loc * gupyz_loc * Azz(i,j,k) + &
|
||||
TWO * (gupxy_loc * gupyy_loc * Axy(i,j,k) + gupxy_loc * gupyz_loc * Axz(i,j,k) + gupyy_loc * gupyz_loc * Ayz(i,j,k))
|
||||
Rzz_loc = gupxz_loc * gupxz_loc * Axx(i,j,k) + gupyz_loc * gupyz_loc * Ayy(i,j,k) + gupzz_loc * gupzz_loc * Azz(i,j,k) + &
|
||||
TWO * (gupxz_loc * gupyz_loc * Axy(i,j,k) + gupxz_loc * gupzz_loc * Axz(i,j,k) + gupyz_loc * gupzz_loc * Ayz(i,j,k))
|
||||
Rxy_loc = gupxx_loc * gupxy_loc * Axx(i,j,k) + gupxy_loc * gupyy_loc * Ayy(i,j,k) + gupxz_loc * gupyz_loc * Azz(i,j,k) + &
|
||||
(gupxx_loc * gupyy_loc + gupxy_loc * gupxy_loc) * Axy(i,j,k) + &
|
||||
(gupxx_loc * gupyz_loc + gupxz_loc * gupxy_loc) * Axz(i,j,k) + &
|
||||
(gupxy_loc * gupyz_loc + gupxz_loc * gupyy_loc) * Ayz(i,j,k)
|
||||
Rxz_loc = gupxx_loc * gupxz_loc * Axx(i,j,k) + gupxy_loc * gupyz_loc * Ayy(i,j,k) + gupxz_loc * gupzz_loc * Azz(i,j,k) + &
|
||||
(gupxx_loc * gupyz_loc + gupxy_loc * gupxz_loc) * Axy(i,j,k) + &
|
||||
(gupxx_loc * gupzz_loc + gupxz_loc * gupxz_loc) * Axz(i,j,k) + &
|
||||
(gupxy_loc * gupzz_loc + gupxz_loc * gupyz_loc) * Ayz(i,j,k)
|
||||
Ryz_loc = gupxy_loc * gupxz_loc * Axx(i,j,k) + gupyy_loc * gupyz_loc * Ayy(i,j,k) + gupyz_loc * gupzz_loc * Azz(i,j,k) + &
|
||||
(gupxy_loc * gupyz_loc + gupyy_loc * gupxz_loc) * Axy(i,j,k) + &
|
||||
(gupxy_loc * gupzz_loc + gupyz_loc * gupxz_loc) * Axz(i,j,k) + &
|
||||
(gupyy_loc * gupzz_loc + gupyz_loc * gupyz_loc) * Ayz(i,j,k)
|
||||
Rxx(i,j,k) = Rxx_loc
|
||||
Ryy(i,j,k) = Ryy_loc
|
||||
Rzz(i,j,k) = Rzz_loc
|
||||
Rxy(i,j,k) = Rxy_loc
|
||||
Rxz(i,j,k) = Rxz_loc
|
||||
Ryz(i,j,k) = Ryz_loc
|
||||
|
||||
Gamx_rhs(i,j,k) = - TWO * (Lapx(i,j,k) * Rxx_loc + Lapy(i,j,k) * Rxy_loc + Lapz(i,j,k) * Rxz_loc) + &
|
||||
TWO * alpn1(i,j,k) * ( &
|
||||
-F3o2/chin1(i,j,k) * (chix(i,j,k) * Rxx_loc + chiy(i,j,k) * Rxy_loc + chiz(i,j,k) * Rxz_loc) - &
|
||||
gupxx_loc * (F2o3 * Kx(i,j,k) + EIGHT * PI * Sx(i,j,k)) - &
|
||||
gupxy_loc * (F2o3 * Ky(i,j,k) + EIGHT * PI * Sy(i,j,k)) - &
|
||||
gupxz_loc * (F2o3 * Kz(i,j,k) + EIGHT * PI * Sz(i,j,k)) + &
|
||||
Gamxxx(i,j,k) * Rxx_loc + Gamxyy(i,j,k) * Ryy_loc + Gamxzz(i,j,k) * Rzz_loc + &
|
||||
TWO * (Gamxxy(i,j,k) * Rxy_loc + Gamxxz(i,j,k) * Rxz_loc + Gamxyz(i,j,k) * Ryz_loc))
|
||||
|
||||
Gamy_rhs(i,j,k) = - TWO * (Lapx(i,j,k) * Rxy_loc + Lapy(i,j,k) * Ryy_loc + Lapz(i,j,k) * Ryz_loc) + &
|
||||
TWO * alpn1(i,j,k) * ( &
|
||||
-F3o2/chin1(i,j,k) * (chix(i,j,k) * Rxy_loc + chiy(i,j,k) * Ryy_loc + chiz(i,j,k) * Ryz_loc) - &
|
||||
gupxy_loc * (F2o3 * Kx(i,j,k) + EIGHT * PI * Sx(i,j,k)) - &
|
||||
gupyy_loc * (F2o3 * Ky(i,j,k) + EIGHT * PI * Sy(i,j,k)) - &
|
||||
gupyz_loc * (F2o3 * Kz(i,j,k) + EIGHT * PI * Sz(i,j,k)) + &
|
||||
Gamyxx(i,j,k) * Rxx_loc + Gamyyy(i,j,k) * Ryy_loc + Gamyzz(i,j,k) * Rzz_loc + &
|
||||
TWO * (Gamyxy(i,j,k) * Rxy_loc + Gamyxz(i,j,k) * Rxz_loc + Gamyyz(i,j,k) * Ryz_loc))
|
||||
|
||||
Gamz_rhs(i,j,k) = - TWO * (Lapx(i,j,k) * Rxz_loc + Lapy(i,j,k) * Ryz_loc + Lapz(i,j,k) * Rzz_loc) + &
|
||||
TWO * alpn1(i,j,k) * ( &
|
||||
-F3o2/chin1(i,j,k) * (chix(i,j,k) * Rxz_loc + chiy(i,j,k) * Ryz_loc + chiz(i,j,k) * Rzz_loc) - &
|
||||
gupxz_loc * (F2o3 * Kx(i,j,k) + EIGHT * PI * Sx(i,j,k)) - &
|
||||
gupyz_loc * (F2o3 * Ky(i,j,k) + EIGHT * PI * Sy(i,j,k)) - &
|
||||
gupzz_loc * (F2o3 * Kz(i,j,k) + EIGHT * PI * Sz(i,j,k)) + &
|
||||
Gamzxx(i,j,k) * Rxx_loc + Gamzyy(i,j,k) * Ryy_loc + Gamzzz(i,j,k) * Rzz_loc + &
|
||||
TWO * (Gamzxy(i,j,k) * Rxy_loc + Gamzxz(i,j,k) * Rxz_loc + Gamzyz(i,j,k) * Ryz_loc))
|
||||
enddo
|
||||
enddo
|
||||
enddo
|
||||
|
||||
call fdderivs(ex,betax,gxxx,gxyx,gxzx,gyyx,gyzx,gzzx,&
|
||||
X,Y,Z,ANTI,SYM, SYM ,Symmetry,Lev)
|
||||
@@ -321,38 +359,54 @@
|
||||
call fdderivs(ex,betaz,gxxz,gxyz,gxzz,gyyz,gyzz,gzzz,&
|
||||
X,Y,Z,SYM ,SYM, ANTI,Symmetry,Lev)
|
||||
|
||||
fxx = gxxx + gxyy + gxzz
|
||||
fxy = gxyx + gyyy + gyzz
|
||||
fxz = gxzx + gyzy + gzzz
|
||||
|
||||
Gamxa = gupxx * Gamxxx + gupyy * Gamxyy + gupzz * Gamxzz + &
|
||||
TWO*( gupxy * Gamxxy + gupxz * Gamxxz + gupyz * Gamxyz )
|
||||
Gamya = gupxx * Gamyxx + gupyy * Gamyyy + gupzz * Gamyzz + &
|
||||
TWO*( gupxy * Gamyxy + gupxz * Gamyxz + gupyz * Gamyyz )
|
||||
Gamza = gupxx * Gamzxx + gupyy * Gamzyy + gupzz * Gamzzz + &
|
||||
TWO*( gupxy * Gamzxy + gupxz * Gamzxz + gupyz * Gamzyz )
|
||||
|
||||
call fderivs(ex,Gamx,Gamxx,Gamxy,Gamxz,X,Y,Z,ANTI,SYM ,SYM ,Symmetry,Lev)
|
||||
call fderivs(ex,Gamy,Gamyx,Gamyy,Gamyz,X,Y,Z,SYM ,ANTI,SYM ,Symmetry,Lev)
|
||||
call fderivs(ex,Gamz,Gamzx,Gamzy,Gamzz,X,Y,Z,SYM ,SYM ,ANTI,Symmetry,Lev)
|
||||
|
||||
Gamx_rhs = Gamx_rhs + F2o3 * Gamxa * div_beta - &
|
||||
Gamxa * betaxx - Gamya * betaxy - Gamza * betaxz + &
|
||||
F1o3 * (gupxx * fxx + gupxy * fxy + gupxz * fxz ) + &
|
||||
gupxx * gxxx + gupyy * gyyx + gupzz * gzzx + &
|
||||
TWO * (gupxy * gxyx + gupxz * gxzx + gupyz * gyzx )
|
||||
|
||||
Gamy_rhs = Gamy_rhs + F2o3 * Gamya * div_beta - &
|
||||
Gamxa * betayx - Gamya * betayy - Gamza * betayz + &
|
||||
F1o3 * (gupxy * fxx + gupyy * fxy + gupyz * fxz ) + &
|
||||
gupxx * gxxy + gupyy * gyyy + gupzz * gzzy + &
|
||||
TWO * (gupxy * gxyy + gupxz * gxzy + gupyz * gyzy )
|
||||
|
||||
Gamz_rhs = Gamz_rhs + F2o3 * Gamza * div_beta - &
|
||||
Gamxa * betazx - Gamya * betazy - Gamza * betazz + &
|
||||
F1o3 * (gupxz * fxx + gupyz * fxy + gupzz * fxz ) + &
|
||||
gupxx * gxxz + gupyy * gyyz + gupzz * gzzz + &
|
||||
TWO * (gupxy * gxyz + gupxz * gxzz + gupyz * gyzz ) !rhs for Gam^i
|
||||
call fderivs(ex,Gamx,Gamxx,Gamxy,Gamxz,X,Y,Z,ANTI,SYM ,SYM ,Symmetry,Lev)
|
||||
call fderivs(ex,Gamy,Gamyx,Gamyy,Gamyz,X,Y,Z,SYM ,ANTI,SYM ,Symmetry,Lev)
|
||||
call fderivs(ex,Gamz,Gamzx,Gamzy,Gamzz,X,Y,Z,SYM ,SYM ,ANTI,Symmetry,Lev)
|
||||
do k=1,ex(3)
|
||||
do j=1,ex(2)
|
||||
do i=1,ex(1)
|
||||
divb_loc = div_beta(i,j,k)
|
||||
fxx_loc = gxxx(i,j,k) + gxyy(i,j,k) + gxzz(i,j,k)
|
||||
fxy_loc = gxyx(i,j,k) + gyyy(i,j,k) + gyzz(i,j,k)
|
||||
fxz_loc = gxzx(i,j,k) + gyzy(i,j,k) + gzzz(i,j,k)
|
||||
|
||||
gupxx_loc = gupxx(i,j,k)
|
||||
gupxy_loc = gupxy(i,j,k)
|
||||
gupxz_loc = gupxz(i,j,k)
|
||||
gupyy_loc = gupyy(i,j,k)
|
||||
gupyz_loc = gupyz(i,j,k)
|
||||
gupzz_loc = gupzz(i,j,k)
|
||||
|
||||
Gamxa_loc = gupxx_loc * Gamxxx(i,j,k) + gupyy_loc * Gamxyy(i,j,k) + gupzz_loc * Gamxzz(i,j,k) + &
|
||||
TWO * (gupxy_loc * Gamxxy(i,j,k) + gupxz_loc * Gamxxz(i,j,k) + gupyz_loc * Gamxyz(i,j,k))
|
||||
Gamya_loc = gupxx_loc * Gamyxx(i,j,k) + gupyy_loc * Gamyyy(i,j,k) + gupzz_loc * Gamyzz(i,j,k) + &
|
||||
TWO * (gupxy_loc * Gamyxy(i,j,k) + gupxz_loc * Gamyxz(i,j,k) + gupyz_loc * Gamyyz(i,j,k))
|
||||
Gamza_loc = gupxx_loc * Gamzxx(i,j,k) + gupyy_loc * Gamzyy(i,j,k) + gupzz_loc * Gamzzz(i,j,k) + &
|
||||
TWO * (gupxy_loc * Gamzxy(i,j,k) + gupxz_loc * Gamzxz(i,j,k) + gupyz_loc * Gamzyz(i,j,k))
|
||||
Gamxa(i,j,k) = Gamxa_loc
|
||||
Gamya(i,j,k) = Gamya_loc
|
||||
Gamza(i,j,k) = Gamza_loc
|
||||
|
||||
Gamx_rhs(i,j,k) = Gamx_rhs(i,j,k) + F2o3 * Gamxa_loc * divb_loc - &
|
||||
Gamxa_loc * betaxx(i,j,k) - Gamya_loc * betaxy(i,j,k) - Gamza_loc * betaxz(i,j,k) + &
|
||||
F1o3 * (gupxx_loc * fxx_loc + gupxy_loc * fxy_loc + gupxz_loc * fxz_loc) + &
|
||||
gupxx_loc * gxxx(i,j,k) + gupyy_loc * gyyx(i,j,k) + gupzz_loc * gzzx(i,j,k) + &
|
||||
TWO * (gupxy_loc * gxyx(i,j,k) + gupxz_loc * gxzx(i,j,k) + gupyz_loc * gyzx(i,j,k))
|
||||
|
||||
Gamy_rhs(i,j,k) = Gamy_rhs(i,j,k) + F2o3 * Gamya_loc * divb_loc - &
|
||||
Gamxa_loc * betayx(i,j,k) - Gamya_loc * betayy(i,j,k) - Gamza_loc * betayz(i,j,k) + &
|
||||
F1o3 * (gupxy_loc * fxx_loc + gupyy_loc * fxy_loc + gupyz_loc * fxz_loc) + &
|
||||
gupxx_loc * gxxy(i,j,k) + gupyy_loc * gyyy(i,j,k) + gupzz_loc * gzzy(i,j,k) + &
|
||||
TWO * (gupxy_loc * gxyy(i,j,k) + gupxz_loc * gxzy(i,j,k) + gupyz_loc * gyzy(i,j,k))
|
||||
|
||||
Gamz_rhs(i,j,k) = Gamz_rhs(i,j,k) + F2o3 * Gamza_loc * divb_loc - &
|
||||
Gamxa_loc * betazx(i,j,k) - Gamya_loc * betazy(i,j,k) - Gamza_loc * betazz(i,j,k) + &
|
||||
F1o3 * (gupxz_loc * fxx_loc + gupyz_loc * fxy_loc + gupzz_loc * fxz_loc) + &
|
||||
gupxx_loc * gxxz(i,j,k) + gupyy_loc * gyyz(i,j,k) + gupzz_loc * gzzz(i,j,k) + &
|
||||
TWO * (gupxy_loc * gxyz(i,j,k) + gupxz_loc * gxzz(i,j,k) + gupyz_loc * gyzz(i,j,k))
|
||||
enddo
|
||||
enddo
|
||||
enddo
|
||||
|
||||
!first kind of connection stored in gij,k
|
||||
gxxx = gxx * Gamxxx + gxy * Gamyxx + gxz * Gamzxx
|
||||
@@ -601,192 +655,190 @@
|
||||
Gamxyz * gxzz + Gamyyz * gyzz + Gamzyz * gzzz + &
|
||||
Gamxzz * gxzy + Gamyzz * gyzy + Gamzzz * gzzy + &
|
||||
Gamxyz * gzzx + Gamyyz * gzzy + Gamzyz * gzzz )
|
||||
!covariant second derivative of chi respect to tilted metric
|
||||
call fdderivs(ex,chi,fxx,fxy,fxz,fyy,fyz,fzz,X,Y,Z,SYM,SYM,SYM,Symmetry,Lev)
|
||||
|
||||
fxx = fxx - Gamxxx * chix - Gamyxx * chiy - Gamzxx * chiz
|
||||
fxy = fxy - Gamxxy * chix - Gamyxy * chiy - Gamzxy * chiz
|
||||
fxz = fxz - Gamxxz * chix - Gamyxz * chiy - Gamzxz * chiz
|
||||
fyy = fyy - Gamxyy * chix - Gamyyy * chiy - Gamzyy * chiz
|
||||
fyz = fyz - Gamxyz * chix - Gamyyz * chiy - Gamzyz * chiz
|
||||
fzz = fzz - Gamxzz * chix - Gamyzz * chiy - Gamzzz * chiz
|
||||
! Store D^l D_l chi - 3/(2*chi) D^l chi D_l chi in f
|
||||
|
||||
f = gupxx * ( fxx - F3o2/chin1 * chix * chix ) + &
|
||||
gupyy * ( fyy - F3o2/chin1 * chiy * chiy ) + &
|
||||
gupzz * ( fzz - F3o2/chin1 * chiz * chiz ) + &
|
||||
TWO * gupxy * ( fxy - F3o2/chin1 * chix * chiy ) + &
|
||||
TWO * gupxz * ( fxz - F3o2/chin1 * chix * chiz ) + &
|
||||
TWO * gupyz * ( fyz - F3o2/chin1 * chiy * chiz )
|
||||
! Add chi part to Ricci tensor:
|
||||
|
||||
Rxx = Rxx + (fxx - chix*chix/chin1/TWO + gxx * f)/chin1/TWO
|
||||
Ryy = Ryy + (fyy - chiy*chiy/chin1/TWO + gyy * f)/chin1/TWO
|
||||
Rzz = Rzz + (fzz - chiz*chiz/chin1/TWO + gzz * f)/chin1/TWO
|
||||
Rxy = Rxy + (fxy - chix*chiy/chin1/TWO + gxy * f)/chin1/TWO
|
||||
Rxz = Rxz + (fxz - chix*chiz/chin1/TWO + gxz * f)/chin1/TWO
|
||||
Ryz = Ryz + (fyz - chiy*chiz/chin1/TWO + gyz * f)/chin1/TWO
|
||||
|
||||
! covariant second derivatives of the lapse respect to physical metric
|
||||
call fdderivs(ex,Lap,fxx,fxy,fxz,fyy,fyz,fzz,X,Y,Z, &
|
||||
SYM,SYM,SYM,symmetry,Lev)
|
||||
|
||||
gxxx = (gupxx * chix + gupxy * chiy + gupxz * chiz)/chin1
|
||||
gxxy = (gupxy * chix + gupyy * chiy + gupyz * chiz)/chin1
|
||||
gxxz = (gupxz * chix + gupyz * chiy + gupzz * chiz)/chin1
|
||||
! now get physical second kind of connection
|
||||
Gamxxx = Gamxxx - ( (chix + chix)/chin1 - gxx * gxxx )*HALF
|
||||
Gamyxx = Gamyxx - ( - gxx * gxxy )*HALF
|
||||
Gamzxx = Gamzxx - ( - gxx * gxxz )*HALF
|
||||
Gamxyy = Gamxyy - ( - gyy * gxxx )*HALF
|
||||
Gamyyy = Gamyyy - ( (chiy + chiy)/chin1 - gyy * gxxy )*HALF
|
||||
Gamzyy = Gamzyy - ( - gyy * gxxz )*HALF
|
||||
Gamxzz = Gamxzz - ( - gzz * gxxx )*HALF
|
||||
Gamyzz = Gamyzz - ( - gzz * gxxy )*HALF
|
||||
Gamzzz = Gamzzz - ( (chiz + chiz)/chin1 - gzz * gxxz )*HALF
|
||||
Gamxxy = Gamxxy - ( chiy /chin1 - gxy * gxxx )*HALF
|
||||
Gamyxy = Gamyxy - ( chix /chin1 - gxy * gxxy )*HALF
|
||||
Gamzxy = Gamzxy - ( - gxy * gxxz )*HALF
|
||||
Gamxxz = Gamxxz - ( chiz /chin1 - gxz * gxxx )*HALF
|
||||
Gamyxz = Gamyxz - ( - gxz * gxxy )*HALF
|
||||
Gamzxz = Gamzxz - ( chix /chin1 - gxz * gxxz )*HALF
|
||||
Gamxyz = Gamxyz - ( - gyz * gxxx )*HALF
|
||||
Gamyyz = Gamyyz - ( chiz /chin1 - gyz * gxxy )*HALF
|
||||
Gamzyz = Gamzyz - ( chiy /chin1 - gyz * gxxz )*HALF
|
||||
|
||||
fxx = fxx - Gamxxx*Lapx - Gamyxx*Lapy - Gamzxx*Lapz
|
||||
fyy = fyy - Gamxyy*Lapx - Gamyyy*Lapy - Gamzyy*Lapz
|
||||
fzz = fzz - Gamxzz*Lapx - Gamyzz*Lapy - Gamzzz*Lapz
|
||||
fxy = fxy - Gamxxy*Lapx - Gamyxy*Lapy - Gamzxy*Lapz
|
||||
fxz = fxz - Gamxxz*Lapx - Gamyxz*Lapy - Gamzxz*Lapz
|
||||
fyz = fyz - Gamxyz*Lapx - Gamyyz*Lapy - Gamzyz*Lapz
|
||||
|
||||
! store D^i D_i Lap in trK_rhs upto chi
|
||||
trK_rhs = gupxx * fxx + gupyy * fyy + gupzz * fzz + &
|
||||
TWO* ( gupxy * fxy + gupxz * fxz + gupyz * fyz )
|
||||
#if 1
|
||||
!! follow bam code
|
||||
S = chin1 * ( gupxx * Sxx + gupyy * Syy + gupzz * Szz + &
|
||||
TWO * ( gupxy * Sxy + gupxz * Sxz + gupyz * Syz ) )
|
||||
f = F2o3 * trK * trK -(&
|
||||
gupxx * ( &
|
||||
gupxx * Axx * Axx + gupyy * Axy * Axy + gupzz * Axz * Axz + &
|
||||
TWO * (gupxy * Axx * Axy + gupxz * Axx * Axz + gupyz * Axy * Axz) ) + &
|
||||
gupyy * ( &
|
||||
gupxx * Axy * Axy + gupyy * Ayy * Ayy + gupzz * Ayz * Ayz + &
|
||||
TWO * (gupxy * Axy * Ayy + gupxz * Axy * Ayz + gupyz * Ayy * Ayz) ) + &
|
||||
gupzz * ( &
|
||||
gupxx * Axz * Axz + gupyy * Ayz * Ayz + gupzz * Azz * Azz + &
|
||||
TWO * (gupxy * Axz * Ayz + gupxz * Axz * Azz + gupyz * Ayz * Azz) ) + &
|
||||
TWO * ( &
|
||||
gupxy * ( &
|
||||
gupxx * Axx * Axy + gupyy * Axy * Ayy + gupzz * Axz * Ayz + &
|
||||
gupxy * (Axx * Ayy + Axy * Axy) + &
|
||||
gupxz * (Axx * Ayz + Axz * Axy) + &
|
||||
gupyz * (Axy * Ayz + Axz * Ayy) ) + &
|
||||
gupxz * ( &
|
||||
gupxx * Axx * Axz + gupyy * Axy * Ayz + gupzz * Axz * Azz + &
|
||||
gupxy * (Axx * Ayz + Axy * Axz) + &
|
||||
gupxz * (Axx * Azz + Axz * Axz) + &
|
||||
gupyz * (Axy * Azz + Axz * Ayz) ) + &
|
||||
gupyz * ( &
|
||||
gupxx * Axy * Axz + gupyy * Ayy * Ayz + gupzz * Ayz * Azz + &
|
||||
gupxy * (Axy * Ayz + Ayy * Axz) + &
|
||||
gupxz * (Axy * Azz + Ayz * Axz) + &
|
||||
gupyz * (Ayy * Azz + Ayz * Ayz) ) )) -1.6d1*PI*rho + EIGHT * PI * S
|
||||
f = - F1o3 *( gupxx * fxx + gupyy * fyy + gupzz * fzz + &
|
||||
TWO* ( gupxy * fxy + gupxz * fxz + gupyz * fyz ) + alpn1/chin1*f)
|
||||
|
||||
fxx = alpn1 * (Rxx - EIGHT * PI * Sxx) - fxx
|
||||
fxy = alpn1 * (Rxy - EIGHT * PI * Sxy) - fxy
|
||||
fxz = alpn1 * (Rxz - EIGHT * PI * Sxz) - fxz
|
||||
fyy = alpn1 * (Ryy - EIGHT * PI * Syy) - fyy
|
||||
fyz = alpn1 * (Ryz - EIGHT * PI * Syz) - fyz
|
||||
fzz = alpn1 * (Rzz - EIGHT * PI * Szz) - fzz
|
||||
#else
|
||||
! Add lapse and S_ij parts to Ricci tensor:
|
||||
|
||||
fxx = alpn1 * (Rxx - EIGHT * PI * Sxx) - fxx
|
||||
fxy = alpn1 * (Rxy - EIGHT * PI * Sxy) - fxy
|
||||
fxz = alpn1 * (Rxz - EIGHT * PI * Sxz) - fxz
|
||||
fyy = alpn1 * (Ryy - EIGHT * PI * Syy) - fyy
|
||||
fyz = alpn1 * (Ryz - EIGHT * PI * Syz) - fyz
|
||||
fzz = alpn1 * (Rzz - EIGHT * PI * Szz) - fzz
|
||||
|
||||
! Compute trace-free part (note: chi^-1 and chi cancel!):
|
||||
|
||||
f = F1o3 *( gupxx * fxx + gupyy * fyy + gupzz * fzz + &
|
||||
TWO* ( gupxy * fxy + gupxz * fxz + gupyz * fyz ) )
|
||||
#endif
|
||||
|
||||
Axx_rhs = fxx - gxx * f
|
||||
Ayy_rhs = fyy - gyy * f
|
||||
Azz_rhs = fzz - gzz * f
|
||||
Axy_rhs = fxy - gxy * f
|
||||
Axz_rhs = fxz - gxz * f
|
||||
Ayz_rhs = fyz - gyz * f
|
||||
|
||||
! Now: store A_il A^l_j into fij:
|
||||
|
||||
fxx = gupxx * Axx * Axx + gupyy * Axy * Axy + gupzz * Axz * Axz + &
|
||||
TWO * (gupxy * Axx * Axy + gupxz * Axx * Axz + gupyz * Axy * Axz)
|
||||
fyy = gupxx * Axy * Axy + gupyy * Ayy * Ayy + gupzz * Ayz * Ayz + &
|
||||
TWO * (gupxy * Axy * Ayy + gupxz * Axy * Ayz + gupyz * Ayy * Ayz)
|
||||
fzz = gupxx * Axz * Axz + gupyy * Ayz * Ayz + gupzz * Azz * Azz + &
|
||||
TWO * (gupxy * Axz * Ayz + gupxz * Axz * Azz + gupyz * Ayz * Azz)
|
||||
fxy = gupxx * Axx * Axy + gupyy * Axy * Ayy + gupzz * Axz * Ayz + &
|
||||
gupxy *(Axx * Ayy + Axy * Axy) + &
|
||||
gupxz *(Axx * Ayz + Axz * Axy) + &
|
||||
gupyz *(Axy * Ayz + Axz * Ayy)
|
||||
fxz = gupxx * Axx * Axz + gupyy * Axy * Ayz + gupzz * Axz * Azz + &
|
||||
gupxy *(Axx * Ayz + Axy * Axz) + &
|
||||
gupxz *(Axx * Azz + Axz * Axz) + &
|
||||
gupyz *(Axy * Azz + Axz * Ayz)
|
||||
fyz = gupxx * Axy * Axz + gupyy * Ayy * Ayz + gupzz * Ayz * Azz + &
|
||||
gupxy *(Axy * Ayz + Ayy * Axz) + &
|
||||
gupxz *(Axy * Azz + Ayz * Axz) + &
|
||||
gupyz *(Ayy * Azz + Ayz * Ayz)
|
||||
|
||||
f = chin1
|
||||
! store D^i D_i Lap in trK_rhs
|
||||
trK_rhs = f*trK_rhs
|
||||
|
||||
Axx_rhs = f * Axx_rhs+ alpn1 * (trK * Axx - TWO * fxx) + &
|
||||
TWO * ( Axx * betaxx + Axy * betayx + Axz * betazx )- &
|
||||
F2o3 * Axx * div_beta
|
||||
|
||||
Ayy_rhs = f * Ayy_rhs+ alpn1 * (trK * Ayy - TWO * fyy) + &
|
||||
TWO * ( Axy * betaxy + Ayy * betayy + Ayz * betazy )- &
|
||||
F2o3 * Ayy * div_beta
|
||||
|
||||
Azz_rhs = f * Azz_rhs+ alpn1 * (trK * Azz - TWO * fzz) + &
|
||||
TWO * ( Axz * betaxz + Ayz * betayz + Azz * betazz )- &
|
||||
F2o3 * Azz * div_beta
|
||||
|
||||
Axy_rhs = f * Axy_rhs+ alpn1 *( trK * Axy - TWO * fxy )+ &
|
||||
Axx * betaxy + Axz * betazy + &
|
||||
Ayy * betayx + Ayz * betazx + &
|
||||
F1o3 * Axy * div_beta - Axy * betazz
|
||||
|
||||
Ayz_rhs = f * Ayz_rhs+ alpn1 *( trK * Ayz - TWO * fyz )+ &
|
||||
Axy * betaxz + Ayy * betayz + &
|
||||
Axz * betaxy + Azz * betazy + &
|
||||
F1o3 * Ayz * div_beta - Ayz * betaxx
|
||||
|
||||
Axz_rhs = f * Axz_rhs+ alpn1 *( trK * Axz - TWO * fxz )+ &
|
||||
Axx * betaxz + Axy * betayz + &
|
||||
Ayz * betayx + Azz * betazx + &
|
||||
F1o3 * Axz * div_beta - Axz * betayy !rhs for Aij
|
||||
|
||||
! Compute trace of S_ij
|
||||
|
||||
S = f * ( gupxx * Sxx + gupyy * Syy + gupzz * Szz + &
|
||||
TWO * ( gupxy * Sxy + gupxz * Sxz + gupyz * Syz ) )
|
||||
|
||||
trK_rhs = - trK_rhs + alpn1 *( F1o3 * trK * trK + &
|
||||
gupxx * fxx + gupyy * fyy + gupzz * fzz + &
|
||||
TWO * ( gupxy * fxy + gupxz * fxz + gupyz * fyz ) + &
|
||||
FOUR * PI * ( rho + S )) !rhs for trK
|
||||
!covariant second derivative of chi respect to tilted metric
|
||||
call fdderivs(ex,chi,fxx,fxy,fxz,fyy,fyz,fzz,X,Y,Z,SYM,SYM,SYM,Symmetry,Lev)
|
||||
|
||||
do k=1,ex(3)
|
||||
do j=1,ex(2)
|
||||
do i=1,ex(1)
|
||||
fxx(i,j,k) = fxx(i,j,k) - Gamxxx(i,j,k) * chix(i,j,k) - Gamyxx(i,j,k) * chiy(i,j,k) - Gamzxx(i,j,k) * chiz(i,j,k)
|
||||
fxy(i,j,k) = fxy(i,j,k) - Gamxxy(i,j,k) * chix(i,j,k) - Gamyxy(i,j,k) * chiy(i,j,k) - Gamzxy(i,j,k) * chiz(i,j,k)
|
||||
fxz(i,j,k) = fxz(i,j,k) - Gamxxz(i,j,k) * chix(i,j,k) - Gamyxz(i,j,k) * chiy(i,j,k) - Gamzxz(i,j,k) * chiz(i,j,k)
|
||||
fyy(i,j,k) = fyy(i,j,k) - Gamxyy(i,j,k) * chix(i,j,k) - Gamyyy(i,j,k) * chiy(i,j,k) - Gamzyy(i,j,k) * chiz(i,j,k)
|
||||
fyz(i,j,k) = fyz(i,j,k) - Gamxyz(i,j,k) * chix(i,j,k) - Gamyyz(i,j,k) * chiy(i,j,k) - Gamzyz(i,j,k) * chiz(i,j,k)
|
||||
fzz(i,j,k) = fzz(i,j,k) - Gamxzz(i,j,k) * chix(i,j,k) - Gamyzz(i,j,k) * chiy(i,j,k) - Gamzzz(i,j,k) * chiz(i,j,k)
|
||||
|
||||
chin_loc = chin1(i,j,k)
|
||||
f_loc = gupxx(i,j,k) * (fxx(i,j,k) - F3o2/chin_loc * chix(i,j,k) * chix(i,j,k)) + &
|
||||
gupyy(i,j,k) * (fyy(i,j,k) - F3o2/chin_loc * chiy(i,j,k) * chiy(i,j,k)) + &
|
||||
gupzz(i,j,k) * (fzz(i,j,k) - F3o2/chin_loc * chiz(i,j,k) * chiz(i,j,k)) + &
|
||||
TWO * gupxy(i,j,k) * (fxy(i,j,k) - F3o2/chin_loc * chix(i,j,k) * chiy(i,j,k)) + &
|
||||
TWO * gupxz(i,j,k) * (fxz(i,j,k) - F3o2/chin_loc * chix(i,j,k) * chiz(i,j,k)) + &
|
||||
TWO * gupyz(i,j,k) * (fyz(i,j,k) - F3o2/chin_loc * chiy(i,j,k) * chiz(i,j,k))
|
||||
f(i,j,k) = f_loc
|
||||
|
||||
Rxx(i,j,k) = Rxx(i,j,k) + (fxx(i,j,k) - chix(i,j,k)*chix(i,j,k)/chin_loc/TWO + gxx(i,j,k) * f_loc)/chin_loc/TWO
|
||||
Ryy(i,j,k) = Ryy(i,j,k) + (fyy(i,j,k) - chiy(i,j,k)*chiy(i,j,k)/chin_loc/TWO + gyy(i,j,k) * f_loc)/chin_loc/TWO
|
||||
Rzz(i,j,k) = Rzz(i,j,k) + (fzz(i,j,k) - chiz(i,j,k)*chiz(i,j,k)/chin_loc/TWO + gzz(i,j,k) * f_loc)/chin_loc/TWO
|
||||
Rxy(i,j,k) = Rxy(i,j,k) + (fxy(i,j,k) - chix(i,j,k)*chiy(i,j,k)/chin_loc/TWO + gxy(i,j,k) * f_loc)/chin_loc/TWO
|
||||
Rxz(i,j,k) = Rxz(i,j,k) + (fxz(i,j,k) - chix(i,j,k)*chiz(i,j,k)/chin_loc/TWO + gxz(i,j,k) * f_loc)/chin_loc/TWO
|
||||
Ryz(i,j,k) = Ryz(i,j,k) + (fyz(i,j,k) - chiy(i,j,k)*chiz(i,j,k)/chin_loc/TWO + gyz(i,j,k) * f_loc)/chin_loc/TWO
|
||||
enddo
|
||||
enddo
|
||||
enddo
|
||||
|
||||
! covariant second derivatives of the lapse respect to physical metric
|
||||
call fdderivs(ex,Lap,fxx,fxy,fxz,fyy,fyz,fzz,X,Y,Z, &
|
||||
SYM,SYM,SYM,symmetry,Lev)
|
||||
|
||||
do k=1,ex(3)
|
||||
do j=1,ex(2)
|
||||
do i=1,ex(1)
|
||||
chin_loc = chin1(i,j,k)
|
||||
gxxx(i,j,k) = (gupxx(i,j,k) * chix(i,j,k) + gupxy(i,j,k) * chiy(i,j,k) + gupxz(i,j,k) * chiz(i,j,k)) / chin_loc
|
||||
gxxy(i,j,k) = (gupxy(i,j,k) * chix(i,j,k) + gupyy(i,j,k) * chiy(i,j,k) + gupyz(i,j,k) * chiz(i,j,k)) / chin_loc
|
||||
gxxz(i,j,k) = (gupxz(i,j,k) * chix(i,j,k) + gupyz(i,j,k) * chiy(i,j,k) + gupzz(i,j,k) * chiz(i,j,k)) / chin_loc
|
||||
|
||||
Gamxxx(i,j,k) = Gamxxx(i,j,k) - ( (chix(i,j,k) + chix(i,j,k))/chin_loc - gxx(i,j,k) * gxxx(i,j,k) )*HALF
|
||||
Gamyxx(i,j,k) = Gamyxx(i,j,k) - ( - gxx(i,j,k) * gxxy(i,j,k) )*HALF
|
||||
Gamzxx(i,j,k) = Gamzxx(i,j,k) - ( - gxx(i,j,k) * gxxz(i,j,k) )*HALF
|
||||
Gamxyy(i,j,k) = Gamxyy(i,j,k) - ( - gyy(i,j,k) * gxxx(i,j,k) )*HALF
|
||||
Gamyyy(i,j,k) = Gamyyy(i,j,k) - ( (chiy(i,j,k) + chiy(i,j,k))/chin_loc - gyy(i,j,k) * gxxy(i,j,k) )*HALF
|
||||
Gamzyy(i,j,k) = Gamzyy(i,j,k) - ( - gyy(i,j,k) * gxxz(i,j,k) )*HALF
|
||||
Gamxzz(i,j,k) = Gamxzz(i,j,k) - ( - gzz(i,j,k) * gxxx(i,j,k) )*HALF
|
||||
Gamyzz(i,j,k) = Gamyzz(i,j,k) - ( - gzz(i,j,k) * gxxy(i,j,k) )*HALF
|
||||
Gamzzz(i,j,k) = Gamzzz(i,j,k) - ( (chiz(i,j,k) + chiz(i,j,k))/chin_loc - gzz(i,j,k) * gxxz(i,j,k) )*HALF
|
||||
Gamxxy(i,j,k) = Gamxxy(i,j,k) - ( chiy(i,j,k) /chin_loc - gxy(i,j,k) * gxxx(i,j,k) )*HALF
|
||||
Gamyxy(i,j,k) = Gamyxy(i,j,k) - ( chix(i,j,k) /chin_loc - gxy(i,j,k) * gxxy(i,j,k) )*HALF
|
||||
Gamzxy(i,j,k) = Gamzxy(i,j,k) - ( - gxy(i,j,k) * gxxz(i,j,k) )*HALF
|
||||
Gamxxz(i,j,k) = Gamxxz(i,j,k) - ( chiz(i,j,k) /chin_loc - gxz(i,j,k) * gxxx(i,j,k) )*HALF
|
||||
Gamyxz(i,j,k) = Gamyxz(i,j,k) - ( - gxz(i,j,k) * gxxy(i,j,k) )*HALF
|
||||
Gamzxz(i,j,k) = Gamzxz(i,j,k) - ( chix(i,j,k) /chin_loc - gxz(i,j,k) * gxxz(i,j,k) )*HALF
|
||||
Gamxyz(i,j,k) = Gamxyz(i,j,k) - ( - gyz(i,j,k) * gxxx(i,j,k) )*HALF
|
||||
Gamyyz(i,j,k) = Gamyyz(i,j,k) - ( chiz(i,j,k) /chin_loc - gyz(i,j,k) * gxxy(i,j,k) )*HALF
|
||||
Gamzyz(i,j,k) = Gamzyz(i,j,k) - ( chiy(i,j,k) /chin_loc - gyz(i,j,k) * gxxz(i,j,k) )*HALF
|
||||
|
||||
fxx(i,j,k) = fxx(i,j,k) - Gamxxx(i,j,k)*Lapx(i,j,k) - Gamyxx(i,j,k)*Lapy(i,j,k) - Gamzxx(i,j,k)*Lapz(i,j,k)
|
||||
fyy(i,j,k) = fyy(i,j,k) - Gamxyy(i,j,k)*Lapx(i,j,k) - Gamyyy(i,j,k)*Lapy(i,j,k) - Gamzyy(i,j,k)*Lapz(i,j,k)
|
||||
fzz(i,j,k) = fzz(i,j,k) - Gamxzz(i,j,k)*Lapx(i,j,k) - Gamyzz(i,j,k)*Lapy(i,j,k) - Gamzzz(i,j,k)*Lapz(i,j,k)
|
||||
fxy(i,j,k) = fxy(i,j,k) - Gamxxy(i,j,k)*Lapx(i,j,k) - Gamyxy(i,j,k)*Lapy(i,j,k) - Gamzxy(i,j,k)*Lapz(i,j,k)
|
||||
fxz(i,j,k) = fxz(i,j,k) - Gamxxz(i,j,k)*Lapx(i,j,k) - Gamyxz(i,j,k)*Lapy(i,j,k) - Gamzxz(i,j,k)*Lapz(i,j,k)
|
||||
fyz(i,j,k) = fyz(i,j,k) - Gamxyz(i,j,k)*Lapx(i,j,k) - Gamyyz(i,j,k)*Lapy(i,j,k) - Gamzyz(i,j,k)*Lapz(i,j,k)
|
||||
|
||||
trK_rhs(i,j,k) = gupxx(i,j,k) * fxx(i,j,k) + gupyy(i,j,k) * fyy(i,j,k) + gupzz(i,j,k) * fzz(i,j,k) + &
|
||||
TWO * (gupxy(i,j,k) * fxy(i,j,k) + gupxz(i,j,k) * fxz(i,j,k) + gupyz(i,j,k) * fyz(i,j,k))
|
||||
enddo
|
||||
enddo
|
||||
enddo
|
||||
do k=1,ex(3)
|
||||
do j=1,ex(2)
|
||||
do i=1,ex(1)
|
||||
divb_loc = div_beta(i,j,k)
|
||||
chin_loc = chin1(i,j,k)
|
||||
|
||||
S_loc = chin_loc * ( gupxx(i,j,k) * Sxx(i,j,k) + gupyy(i,j,k) * Syy(i,j,k) + gupzz(i,j,k) * Szz(i,j,k) + &
|
||||
TWO * (gupxy(i,j,k) * Sxy(i,j,k) + gupxz(i,j,k) * Sxz(i,j,k) + gupyz(i,j,k) * Syz(i,j,k)) )
|
||||
S(i,j,k) = S_loc
|
||||
|
||||
f_loc = F2o3 * trK(i,j,k) * trK(i,j,k) - ( &
|
||||
gupxx(i,j,k) * ( gupxx(i,j,k) * Axx(i,j,k) * Axx(i,j,k) + gupyy(i,j,k) * Axy(i,j,k) * Axy(i,j,k) + &
|
||||
gupzz(i,j,k) * Axz(i,j,k) * Axz(i,j,k) + &
|
||||
TWO * (gupxy(i,j,k) * Axx(i,j,k) * Axy(i,j,k) + gupxz(i,j,k) * Axx(i,j,k) * Axz(i,j,k) + &
|
||||
gupyz(i,j,k) * Axy(i,j,k) * Axz(i,j,k)) ) + &
|
||||
gupyy(i,j,k) * ( gupxx(i,j,k) * Axy(i,j,k) * Axy(i,j,k) + gupyy(i,j,k) * Ayy(i,j,k) * Ayy(i,j,k) + &
|
||||
gupzz(i,j,k) * Ayz(i,j,k) * Ayz(i,j,k) + &
|
||||
TWO * (gupxy(i,j,k) * Axy(i,j,k) * Ayy(i,j,k) + gupxz(i,j,k) * Axy(i,j,k) * Ayz(i,j,k) + &
|
||||
gupyz(i,j,k) * Ayy(i,j,k) * Ayz(i,j,k)) ) + &
|
||||
gupzz(i,j,k) * ( gupxx(i,j,k) * Axz(i,j,k) * Axz(i,j,k) + gupyy(i,j,k) * Ayz(i,j,k) * Ayz(i,j,k) + &
|
||||
gupzz(i,j,k) * Azz(i,j,k) * Azz(i,j,k) + &
|
||||
TWO * (gupxy(i,j,k) * Axz(i,j,k) * Ayz(i,j,k) + gupxz(i,j,k) * Axz(i,j,k) * Azz(i,j,k) + &
|
||||
gupyz(i,j,k) * Ayz(i,j,k) * Azz(i,j,k)) ) + &
|
||||
TWO * ( gupxy(i,j,k) * ( gupxx(i,j,k) * Axx(i,j,k) * Axy(i,j,k) + gupyy(i,j,k) * Axy(i,j,k) * Ayy(i,j,k) + &
|
||||
gupzz(i,j,k) * Axz(i,j,k) * Ayz(i,j,k) + &
|
||||
gupxy(i,j,k) * (Axx(i,j,k) * Ayy(i,j,k) + Axy(i,j,k) * Axy(i,j,k)) + &
|
||||
gupxz(i,j,k) * (Axx(i,j,k) * Ayz(i,j,k) + Axz(i,j,k) * Axy(i,j,k)) + &
|
||||
gupyz(i,j,k) * (Axy(i,j,k) * Ayz(i,j,k) + Axz(i,j,k) * Ayy(i,j,k)) ) + &
|
||||
gupxz(i,j,k) * ( gupxx(i,j,k) * Axx(i,j,k) * Axz(i,j,k) + gupyy(i,j,k) * Axy(i,j,k) * Ayz(i,j,k) + &
|
||||
gupzz(i,j,k) * Axz(i,j,k) * Azz(i,j,k) + &
|
||||
gupxy(i,j,k) * (Axx(i,j,k) * Ayz(i,j,k) + Axy(i,j,k) * Axz(i,j,k)) + &
|
||||
gupxz(i,j,k) * (Axx(i,j,k) * Azz(i,j,k) + Axz(i,j,k) * Axz(i,j,k)) + &
|
||||
gupyz(i,j,k) * (Axy(i,j,k) * Azz(i,j,k) + Axz(i,j,k) * Ayz(i,j,k)) ) + &
|
||||
gupyz(i,j,k) * ( gupxx(i,j,k) * Axy(i,j,k) * Axz(i,j,k) + gupyy(i,j,k) * Ayy(i,j,k) * Ayz(i,j,k) + &
|
||||
gupzz(i,j,k) * Ayz(i,j,k) * Azz(i,j,k) + &
|
||||
gupxy(i,j,k) * (Axy(i,j,k) * Ayz(i,j,k) + Ayy(i,j,k) * Axz(i,j,k)) + &
|
||||
gupxz(i,j,k) * (Axy(i,j,k) * Azz(i,j,k) + Ayz(i,j,k) * Axz(i,j,k)) + &
|
||||
gupyz(i,j,k) * (Ayy(i,j,k) * Azz(i,j,k) + Ayz(i,j,k) * Ayz(i,j,k)) ) ) ) - &
|
||||
F16 * PI * rho(i,j,k) + EIGHT * PI * S_loc
|
||||
|
||||
f_loc = -F1o3 * ( gupxx(i,j,k) * fxx(i,j,k) + gupyy(i,j,k) * fyy(i,j,k) + gupzz(i,j,k) * fzz(i,j,k) + &
|
||||
TWO * (gupxy(i,j,k) * fxy(i,j,k) + gupxz(i,j,k) * fxz(i,j,k) + gupyz(i,j,k) * fyz(i,j,k)) + &
|
||||
alpn1(i,j,k)/chin_loc * f_loc )
|
||||
f(i,j,k) = f_loc
|
||||
|
||||
l_fxx = alpn1(i,j,k) * (Rxx(i,j,k) - EIGHT * PI * Sxx(i,j,k)) - fxx(i,j,k)
|
||||
l_fxy = alpn1(i,j,k) * (Rxy(i,j,k) - EIGHT * PI * Sxy(i,j,k)) - fxy(i,j,k)
|
||||
l_fxz = alpn1(i,j,k) * (Rxz(i,j,k) - EIGHT * PI * Sxz(i,j,k)) - fxz(i,j,k)
|
||||
l_fyy = alpn1(i,j,k) * (Ryy(i,j,k) - EIGHT * PI * Syy(i,j,k)) - fyy(i,j,k)
|
||||
l_fyz = alpn1(i,j,k) * (Ryz(i,j,k) - EIGHT * PI * Syz(i,j,k)) - fyz(i,j,k)
|
||||
l_fzz = alpn1(i,j,k) * (Rzz(i,j,k) - EIGHT * PI * Szz(i,j,k)) - fzz(i,j,k)
|
||||
|
||||
Axx_rhs(i,j,k) = l_fxx - gxx(i,j,k) * f_loc
|
||||
Ayy_rhs(i,j,k) = l_fyy - gyy(i,j,k) * f_loc
|
||||
Azz_rhs(i,j,k) = l_fzz - gzz(i,j,k) * f_loc
|
||||
Axy_rhs(i,j,k) = l_fxy - gxy(i,j,k) * f_loc
|
||||
Axz_rhs(i,j,k) = l_fxz - gxz(i,j,k) * f_loc
|
||||
Ayz_rhs(i,j,k) = l_fyz - gyz(i,j,k) * f_loc
|
||||
|
||||
fxx(i,j,k) = gupxx(i,j,k) * Axx(i,j,k) * Axx(i,j,k) + gupyy(i,j,k) * Axy(i,j,k) * Axy(i,j,k) + &
|
||||
gupzz(i,j,k) * Axz(i,j,k) * Axz(i,j,k) + TWO * (gupxy(i,j,k) * Axx(i,j,k) * Axy(i,j,k) + &
|
||||
gupxz(i,j,k) * Axx(i,j,k) * Axz(i,j,k) + gupyz(i,j,k) * Axy(i,j,k) * Axz(i,j,k))
|
||||
fyy(i,j,k) = gupxx(i,j,k) * Axy(i,j,k) * Axy(i,j,k) + gupyy(i,j,k) * Ayy(i,j,k) * Ayy(i,j,k) + &
|
||||
gupzz(i,j,k) * Ayz(i,j,k) * Ayz(i,j,k) + TWO * (gupxy(i,j,k) * Axy(i,j,k) * Ayy(i,j,k) + &
|
||||
gupxz(i,j,k) * Axy(i,j,k) * Ayz(i,j,k) + gupyz(i,j,k) * Ayy(i,j,k) * Ayz(i,j,k))
|
||||
fzz(i,j,k) = gupxx(i,j,k) * Axz(i,j,k) * Axz(i,j,k) + gupyy(i,j,k) * Ayz(i,j,k) * Ayz(i,j,k) + &
|
||||
gupzz(i,j,k) * Azz(i,j,k) * Azz(i,j,k) + TWO * (gupxy(i,j,k) * Axz(i,j,k) * Ayz(i,j,k) + &
|
||||
gupxz(i,j,k) * Axz(i,j,k) * Azz(i,j,k) + gupyz(i,j,k) * Ayz(i,j,k) * Azz(i,j,k))
|
||||
fxy(i,j,k) = gupxx(i,j,k) * Axx(i,j,k) * Axy(i,j,k) + gupyy(i,j,k) * Axy(i,j,k) * Ayy(i,j,k) + &
|
||||
gupzz(i,j,k) * Axz(i,j,k) * Ayz(i,j,k) + gupxy(i,j,k) * (Axx(i,j,k) * Ayy(i,j,k) + Axy(i,j,k) * Axy(i,j,k)) + &
|
||||
gupxz(i,j,k) * (Axx(i,j,k) * Ayz(i,j,k) + Axz(i,j,k) * Axy(i,j,k)) + &
|
||||
gupyz(i,j,k) * (Axy(i,j,k) * Ayz(i,j,k) + Axz(i,j,k) * Ayy(i,j,k))
|
||||
fxz(i,j,k) = gupxx(i,j,k) * Axx(i,j,k) * Axz(i,j,k) + gupyy(i,j,k) * Axy(i,j,k) * Ayz(i,j,k) + &
|
||||
gupzz(i,j,k) * Axz(i,j,k) * Azz(i,j,k) + gupxy(i,j,k) * (Axx(i,j,k) * Ayz(i,j,k) + Axy(i,j,k) * Axz(i,j,k)) + &
|
||||
gupxz(i,j,k) * (Axx(i,j,k) * Azz(i,j,k) + Axz(i,j,k) * Axz(i,j,k)) + &
|
||||
gupyz(i,j,k) * (Axy(i,j,k) * Azz(i,j,k) + Axz(i,j,k) * Ayz(i,j,k))
|
||||
fyz(i,j,k) = gupxx(i,j,k) * Axy(i,j,k) * Axz(i,j,k) + gupyy(i,j,k) * Ayy(i,j,k) * Ayz(i,j,k) + &
|
||||
gupzz(i,j,k) * Ayz(i,j,k) * Azz(i,j,k) + gupxy(i,j,k) * (Axy(i,j,k) * Ayz(i,j,k) + Ayy(i,j,k) * Axz(i,j,k)) + &
|
||||
gupxz(i,j,k) * (Axy(i,j,k) * Azz(i,j,k) + Ayz(i,j,k) * Axz(i,j,k)) + &
|
||||
gupyz(i,j,k) * (Ayy(i,j,k) * Azz(i,j,k) + Ayz(i,j,k) * Ayz(i,j,k))
|
||||
|
||||
trK_rhs(i,j,k) = chin_loc * trK_rhs(i,j,k)
|
||||
|
||||
Axx_rhs(i,j,k) = chin_loc * Axx_rhs(i,j,k) + alpn1(i,j,k) * (trK(i,j,k) * Axx(i,j,k) - TWO * fxx(i,j,k)) + &
|
||||
TWO * (Axx(i,j,k) * betaxx(i,j,k) + Axy(i,j,k) * betayx(i,j,k) + Axz(i,j,k) * betazx(i,j,k)) - &
|
||||
F2o3 * Axx(i,j,k) * divb_loc
|
||||
Ayy_rhs(i,j,k) = chin_loc * Ayy_rhs(i,j,k) + alpn1(i,j,k) * (trK(i,j,k) * Ayy(i,j,k) - TWO * fyy(i,j,k)) + &
|
||||
TWO * (Axy(i,j,k) * betaxy(i,j,k) + Ayy(i,j,k) * betayy(i,j,k) + Ayz(i,j,k) * betazy(i,j,k)) - &
|
||||
F2o3 * Ayy(i,j,k) * divb_loc
|
||||
Azz_rhs(i,j,k) = chin_loc * Azz_rhs(i,j,k) + alpn1(i,j,k) * (trK(i,j,k) * Azz(i,j,k) - TWO * fzz(i,j,k)) + &
|
||||
TWO * (Axz(i,j,k) * betaxz(i,j,k) + Ayz(i,j,k) * betayz(i,j,k) + Azz(i,j,k) * betazz(i,j,k)) - &
|
||||
F2o3 * Azz(i,j,k) * divb_loc
|
||||
Axy_rhs(i,j,k) = chin_loc * Axy_rhs(i,j,k) + alpn1(i,j,k) * (trK(i,j,k) * Axy(i,j,k) - TWO * fxy(i,j,k)) + &
|
||||
Axx(i,j,k) * betaxy(i,j,k) + Axz(i,j,k) * betazy(i,j,k) + Ayy(i,j,k) * betayx(i,j,k) + &
|
||||
Ayz(i,j,k) * betazx(i,j,k) + F1o3 * Axy(i,j,k) * divb_loc - Axy(i,j,k) * betazz(i,j,k)
|
||||
Ayz_rhs(i,j,k) = chin_loc * Ayz_rhs(i,j,k) + alpn1(i,j,k) * (trK(i,j,k) * Ayz(i,j,k) - TWO * fyz(i,j,k)) + &
|
||||
Axy(i,j,k) * betaxz(i,j,k) + Ayy(i,j,k) * betayz(i,j,k) + Axz(i,j,k) * betaxy(i,j,k) + &
|
||||
Azz(i,j,k) * betazy(i,j,k) + F1o3 * Ayz(i,j,k) * divb_loc - Ayz(i,j,k) * betaxx(i,j,k)
|
||||
Axz_rhs(i,j,k) = chin_loc * Axz_rhs(i,j,k) + alpn1(i,j,k) * (trK(i,j,k) * Axz(i,j,k) - TWO * fxz(i,j,k)) + &
|
||||
Axx(i,j,k) * betaxz(i,j,k) + Axy(i,j,k) * betayz(i,j,k) + Ayz(i,j,k) * betayx(i,j,k) + &
|
||||
Azz(i,j,k) * betazx(i,j,k) + F1o3 * Axz(i,j,k) * divb_loc - Axz(i,j,k) * betayy(i,j,k)
|
||||
|
||||
trK_rhs(i,j,k) = - trK_rhs(i,j,k) + alpn1(i,j,k) * ( F1o3 * trK(i,j,k) * trK(i,j,k) + &
|
||||
gupxx(i,j,k) * fxx(i,j,k) + gupyy(i,j,k) * fyy(i,j,k) + gupzz(i,j,k) * fzz(i,j,k) + &
|
||||
TWO * (gupxy(i,j,k) * fxy(i,j,k) + gupxz(i,j,k) * fxz(i,j,k) + gupyz(i,j,k) * fyz(i,j,k)) + &
|
||||
FOUR * PI * (rho(i,j,k) + S_loc) )
|
||||
enddo
|
||||
enddo
|
||||
enddo
|
||||
|
||||
!!!! gauge variable part
|
||||
|
||||
@@ -948,15 +1000,15 @@
|
||||
!!!!!!!!!advection term + Kreiss-Oliger dissipation (merged for cache efficiency)
|
||||
! lopsided_kodis shares the symmetry_bd buffer between advection and
|
||||
! dissipation, eliminating redundant full-grid copies. For metric variables
|
||||
! gxx/gyy/gzz (=dxx/dyy/dzz+1): kodis stencil coefficients sum to zero,
|
||||
! so the constant offset has no effect on dissipation.
|
||||
|
||||
call lopsided_kodis(ex,X,Y,Z,gxx,gxx_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||
call lopsided_kodis(ex,X,Y,Z,gxy,gxy_rhs,betax,betay,betaz,Symmetry,AAS,eps)
|
||||
call lopsided_kodis(ex,X,Y,Z,gxz,gxz_rhs,betax,betay,betaz,Symmetry,ASA,eps)
|
||||
call lopsided_kodis(ex,X,Y,Z,gyy,gyy_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||
call lopsided_kodis(ex,X,Y,Z,gyz,gyz_rhs,betax,betay,betaz,Symmetry,SAA,eps)
|
||||
call lopsided_kodis(ex,X,Y,Z,gzz,gzz_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||
! gxx/gyy/gzz (=dxx/dyy/dzz+1): stencil coefficients sum to zero,
|
||||
! so the constant offset has no effect on dissipation.
|
||||
|
||||
call lopsided_kodis(ex,X,Y,Z,dxx,gxx_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||
call lopsided_kodis(ex,X,Y,Z,gxy,gxy_rhs,betax,betay,betaz,Symmetry,AAS,eps)
|
||||
call lopsided_kodis(ex,X,Y,Z,gxz,gxz_rhs,betax,betay,betaz,Symmetry,ASA,eps)
|
||||
call lopsided_kodis(ex,X,Y,Z,dyy,gyy_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||
call lopsided_kodis(ex,X,Y,Z,gyz,gyz_rhs,betax,betay,betaz,Symmetry,SAA,eps)
|
||||
call lopsided_kodis(ex,X,Y,Z,dzz,gzz_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||
|
||||
call lopsided_kodis(ex,X,Y,Z,Axx,Axx_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||
call lopsided_kodis(ex,X,Y,Z,Axy,Axy_rhs,betax,betay,betaz,Symmetry,AAS,eps)
|
||||
|
||||
@@ -22,19 +22,32 @@
|
||||
#define f_compute_rhs_Z4c_ss COMPUTE_RHS_Z4C_SS
|
||||
#define f_compute_constraint_fr COMPUTE_CONSTRAINT_FR
|
||||
#endif
|
||||
#ifdef fortran3
|
||||
#define f_compute_rhs_bssn compute_rhs_bssn_
|
||||
#ifdef fortran3
|
||||
#define f_compute_rhs_bssn compute_rhs_bssn_
|
||||
#define f_compute_rhs_bssn_ss compute_rhs_bssn_ss_
|
||||
#define f_compute_rhs_bssn_escalar compute_rhs_bssn_escalar_
|
||||
#define f_compute_rhs_bssn_escalar_ss compute_rhs_bssn_escalar_ss_
|
||||
#define f_compute_rhs_Z4c compute_rhs_z4c_
|
||||
#define f_compute_rhs_Z4cnot compute_rhs_z4cnot_
|
||||
#define f_compute_rhs_Z4c_ss compute_rhs_z4c_ss_
|
||||
#define f_compute_constraint_fr compute_constraint_fr_
|
||||
#endif
|
||||
extern "C"
|
||||
{
|
||||
int f_compute_rhs_bssn(int *, double &, double *, double *, double *, // ex,T,X,Y,Z
|
||||
#define f_compute_constraint_fr compute_constraint_fr_
|
||||
#endif
|
||||
|
||||
#ifdef __cplusplus
|
||||
extern "C"
|
||||
{
|
||||
#endif
|
||||
void f_bssn_rhs_kernel_timing_reset();
|
||||
int f_bssn_rhs_kernel_timing_bucket_count();
|
||||
const double *f_bssn_rhs_kernel_timing_local_seconds();
|
||||
const char *f_bssn_rhs_kernel_timing_label(int);
|
||||
#ifdef __cplusplus
|
||||
}
|
||||
#endif
|
||||
|
||||
extern "C"
|
||||
{
|
||||
int f_compute_rhs_bssn(int *, double &, double *, double *, double *, // ex,T,X,Y,Z
|
||||
double *, double *, // chi, trK
|
||||
double *, double *, double *, double *, double *, double *, // gij
|
||||
double *, double *, double *, double *, double *, double *, // Aij
|
||||
|
||||
File diff suppressed because it is too large
Load Diff
@@ -33,7 +33,7 @@
|
||||
real*8 :: dX,dY,dZ
|
||||
real*8,dimension(0:ex(1),0:ex(2),0:ex(3)) :: fh
|
||||
real*8, dimension(3) :: SoA
|
||||
integer :: imin,jmin,kmin,imax,jmax,kmax,i,j,k
|
||||
integer :: imin,jmin,kmin,imax,jmax,kmax,i,j,k
|
||||
real*8 :: d2dx,d2dy,d2dz
|
||||
integer, parameter :: NO_SYMM = 0, EQ_SYMM = 1, OCTANT = 2
|
||||
real*8, parameter :: ZEO=0.d0,ONE=1.d0, F60=6.d1
|
||||
@@ -137,7 +137,7 @@
|
||||
real*8 :: dX
|
||||
real*8,dimension(0:ex(1),0:ex(2),0:ex(3)) :: fh
|
||||
real*8, dimension(3) :: SoA
|
||||
integer :: imin,jmin,kmin,imax,jmax,kmax,i,j,k
|
||||
integer :: imin,jmin,kmin,imax,jmax,kmax,i,j,k
|
||||
real*8 :: d2dx
|
||||
integer, parameter :: NO_SYMM = 0, EQ_SYMM = 1, OCTANT = 2
|
||||
real*8, parameter :: ZEO=0.d0,ONE=1.d0, F60=6.d1
|
||||
@@ -1512,8 +1512,9 @@
|
||||
real*8 :: dX,dY,dZ
|
||||
real*8,dimension(-1:ex(1),-1:ex(2),-1:ex(3)) :: fh
|
||||
real*8, dimension(3) :: SoA
|
||||
integer :: imin,jmin,kmin,imax,jmax,kmax,i,j,k
|
||||
real*8 :: Sdxdx,Sdydy,Sdzdz,Fdxdx,Fdydy,Fdzdz
|
||||
integer :: imin,jmin,kmin,imax,jmax,kmax,i,j,k
|
||||
integer :: i_core_min,i_core_max,j_core_min,j_core_max,k_core_min,k_core_max
|
||||
real*8 :: Sdxdx,Sdydy,Sdzdz,Fdxdx,Fdydy,Fdzdz
|
||||
real*8 :: Sdxdy,Sdxdz,Sdydz,Fdxdy,Fdxdz,Fdydz
|
||||
integer, parameter :: NO_SYMM = 0, EQ_SYMM = 1, OCTANT = 2
|
||||
real*8, parameter :: ZEO=0.d0, ONE=1.d0, TWO=2.d0, F1o4=2.5d-1, F9=9.d0, F45=4.5d1
|
||||
@@ -1560,17 +1561,55 @@
|
||||
|
||||
fxx = ZEO
|
||||
fyy = ZEO
|
||||
fzz = ZEO
|
||||
fxy = ZEO
|
||||
fxz = ZEO
|
||||
fyz = ZEO
|
||||
|
||||
do k=1,ex(3)
|
||||
do j=1,ex(2)
|
||||
do i=1,ex(1)
|
||||
!~~~~~~ fxx
|
||||
if(i+2 <= imax .and. i-2 >= imin)then
|
||||
!
|
||||
fzz = ZEO
|
||||
fxy = ZEO
|
||||
fxz = ZEO
|
||||
fyz = ZEO
|
||||
|
||||
i_core_min = max(1, imin+2)
|
||||
i_core_max = min(ex(1), imax-2)
|
||||
j_core_min = max(1, jmin+2)
|
||||
j_core_max = min(ex(2), jmax-2)
|
||||
k_core_min = max(1, kmin+2)
|
||||
k_core_max = min(ex(3), kmax-2)
|
||||
|
||||
if(i_core_min <= i_core_max .and. j_core_min <= j_core_max .and. k_core_min <= k_core_max)then
|
||||
do k=k_core_min,k_core_max
|
||||
do j=j_core_min,j_core_max
|
||||
do i=i_core_min,i_core_max
|
||||
! interior points always use 4th-order stencils without branch checks
|
||||
fxx(i,j,k) = Fdxdx*(-fh(i-2,j,k)+F16*fh(i-1,j,k)-F30*fh(i,j,k) &
|
||||
-fh(i+2,j,k)+F16*fh(i+1,j,k) )
|
||||
fyy(i,j,k) = Fdydy*(-fh(i,j-2,k)+F16*fh(i,j-1,k)-F30*fh(i,j,k) &
|
||||
-fh(i,j+2,k)+F16*fh(i,j+1,k) )
|
||||
fzz(i,j,k) = Fdzdz*(-fh(i,j,k-2)+F16*fh(i,j,k-1)-F30*fh(i,j,k) &
|
||||
-fh(i,j,k+2)+F16*fh(i,j,k+1) )
|
||||
fxy(i,j,k) = Fdxdy*( (fh(i-2,j-2,k)-F8*fh(i-1,j-2,k)+F8*fh(i+1,j-2,k)-fh(i+2,j-2,k)) &
|
||||
-F8 *(fh(i-2,j-1,k)-F8*fh(i-1,j-1,k)+F8*fh(i+1,j-1,k)-fh(i+2,j-1,k)) &
|
||||
+F8 *(fh(i-2,j+1,k)-F8*fh(i-1,j+1,k)+F8*fh(i+1,j+1,k)-fh(i+2,j+1,k)) &
|
||||
- (fh(i-2,j+2,k)-F8*fh(i-1,j+2,k)+F8*fh(i+1,j+2,k)-fh(i+2,j+2,k)))
|
||||
fxz(i,j,k) = Fdxdz*( (fh(i-2,j,k-2)-F8*fh(i-1,j,k-2)+F8*fh(i+1,j,k-2)-fh(i+2,j,k-2)) &
|
||||
-F8 *(fh(i-2,j,k-1)-F8*fh(i-1,j,k-1)+F8*fh(i+1,j,k-1)-fh(i+2,j,k-1)) &
|
||||
+F8 *(fh(i-2,j,k+1)-F8*fh(i-1,j,k+1)+F8*fh(i+1,j,k+1)-fh(i+2,j,k+1)) &
|
||||
- (fh(i-2,j,k+2)-F8*fh(i-1,j,k+2)+F8*fh(i+1,j,k+2)-fh(i+2,j,k+2)))
|
||||
fyz(i,j,k) = Fdydz*( (fh(i,j-2,k-2)-F8*fh(i,j-1,k-2)+F8*fh(i,j+1,k-2)-fh(i,j+2,k-2)) &
|
||||
-F8 *(fh(i,j-2,k-1)-F8*fh(i,j-1,k-1)+F8*fh(i,j+1,k-1)-fh(i,j+2,k-1)) &
|
||||
+F8 *(fh(i,j-2,k+1)-F8*fh(i,j-1,k+1)+F8*fh(i,j+1,k+1)-fh(i,j+2,k+1)) &
|
||||
- (fh(i,j-2,k+2)-F8*fh(i,j-1,k+2)+F8*fh(i,j+1,k+2)-fh(i,j+2,k+2)))
|
||||
enddo
|
||||
enddo
|
||||
enddo
|
||||
endif
|
||||
|
||||
do k=1,ex(3)
|
||||
do j=1,ex(2)
|
||||
do i=1,ex(1)
|
||||
if(i>=i_core_min .and. i<=i_core_max .and. &
|
||||
j>=j_core_min .and. j<=j_core_max .and. &
|
||||
k>=k_core_min .and. k<=k_core_max) cycle
|
||||
!~~~~~~ fxx
|
||||
if(i+2 <= imax .and. i-2 >= imin)then
|
||||
!
|
||||
! - f(i-2) + 16 f(i-1) - 30 f(i) + 16 f(i+1) - f(i+2)
|
||||
! fxx(i) = ----------------------------------------------------------
|
||||
! 12 dx^2
|
||||
|
||||
@@ -71,149 +71,99 @@ void fdderivs(const int ex[3],
|
||||
const double Fdxdz = F1o144 / (dX * dZ);
|
||||
const double Fdydz = F1o144 / (dY * dZ);
|
||||
|
||||
/* 输出清零:fxx,fyy,fzz,fxy,fxz,fyz = 0 */
|
||||
const size_t all = (size_t)ex1 * (size_t)ex2 * (size_t)ex3;
|
||||
for (size_t p = 0; p < all; ++p) {
|
||||
fxx[p] = ZEO; fyy[p] = ZEO; fzz[p] = ZEO;
|
||||
fxy[p] = ZEO; fxz[p] = ZEO; fyz[p] = ZEO;
|
||||
/* 只清零不被主循环覆盖的边界面 */
|
||||
{
|
||||
/* 高边界:k0=ex3-1 */
|
||||
for (int j0 = 0; j0 < ex2; ++j0)
|
||||
for (int i0 = 0; i0 < ex1; ++i0) {
|
||||
const size_t p = idx_ex(i0, j0, ex3 - 1, ex);
|
||||
fxx[p]=ZEO; fyy[p]=ZEO; fzz[p]=ZEO;
|
||||
fxy[p]=ZEO; fxz[p]=ZEO; fyz[p]=ZEO;
|
||||
}
|
||||
/* 高边界:j0=ex2-1 */
|
||||
for (int k0 = 0; k0 < ex3 - 1; ++k0)
|
||||
for (int i0 = 0; i0 < ex1; ++i0) {
|
||||
const size_t p = idx_ex(i0, ex2 - 1, k0, ex);
|
||||
fxx[p]=ZEO; fyy[p]=ZEO; fzz[p]=ZEO;
|
||||
fxy[p]=ZEO; fxz[p]=ZEO; fyz[p]=ZEO;
|
||||
}
|
||||
/* 高边界:i0=ex1-1 */
|
||||
for (int k0 = 0; k0 < ex3 - 1; ++k0)
|
||||
for (int j0 = 0; j0 < ex2 - 1; ++j0) {
|
||||
const size_t p = idx_ex(ex1 - 1, j0, k0, ex);
|
||||
fxx[p]=ZEO; fyy[p]=ZEO; fzz[p]=ZEO;
|
||||
fxy[p]=ZEO; fxz[p]=ZEO; fyz[p]=ZEO;
|
||||
}
|
||||
|
||||
/* 低边界:当二阶模板也不可用时,对应 i0/j0/k0=0 面 */
|
||||
if (kminF == 1) {
|
||||
for (int j0 = 0; j0 < ex2; ++j0)
|
||||
for (int i0 = 0; i0 < ex1; ++i0) {
|
||||
const size_t p = idx_ex(i0, j0, 0, ex);
|
||||
fxx[p]=ZEO; fyy[p]=ZEO; fzz[p]=ZEO;
|
||||
fxy[p]=ZEO; fxz[p]=ZEO; fyz[p]=ZEO;
|
||||
}
|
||||
}
|
||||
if (jminF == 1) {
|
||||
for (int k0 = 0; k0 < ex3; ++k0)
|
||||
for (int i0 = 0; i0 < ex1; ++i0) {
|
||||
const size_t p = idx_ex(i0, 0, k0, ex);
|
||||
fxx[p]=ZEO; fyy[p]=ZEO; fzz[p]=ZEO;
|
||||
fxy[p]=ZEO; fxz[p]=ZEO; fyz[p]=ZEO;
|
||||
}
|
||||
}
|
||||
if (iminF == 1) {
|
||||
for (int k0 = 0; k0 < ex3; ++k0)
|
||||
for (int j0 = 0; j0 < ex2; ++j0) {
|
||||
const size_t p = idx_ex(0, j0, k0, ex);
|
||||
fxx[p]=ZEO; fyy[p]=ZEO; fzz[p]=ZEO;
|
||||
fxy[p]=ZEO; fxz[p]=ZEO; fyz[p]=ZEO;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
/*
|
||||
* Fortran:
|
||||
* do k=1,ex3-1
|
||||
* do j=1,ex2-1
|
||||
* do i=1,ex1-1
|
||||
* 两段式:
|
||||
* 1) 二阶可用区域先计算二阶模板
|
||||
* 2) 高阶可用区域再覆盖四阶模板
|
||||
*/
|
||||
|
||||
for (int k0 = 0; k0 <= ex3 - 2; ++k0) {
|
||||
const int kF = k0 + 1;
|
||||
for (int j0 = 0; j0 <= ex2 - 2; ++j0) {
|
||||
const int jF = j0 + 1;
|
||||
for (int i0 = 0; i0 <= ex1 - 2; ++i0) {
|
||||
const int iF = i0 + 1;
|
||||
const size_t p = idx_ex(i0, j0, k0, ex);
|
||||
const int i2_lo = (iminF > 0) ? iminF : 0;
|
||||
const int j2_lo = (jminF > 0) ? jminF : 0;
|
||||
const int k2_lo = (kminF > 0) ? kminF : 0;
|
||||
const int i2_hi = ex1 - 2;
|
||||
const int j2_hi = ex2 - 2;
|
||||
const int k2_hi = ex3 - 2;
|
||||
|
||||
/* 高阶分支:i±2,j±2,k±2 都在范围内 */
|
||||
if ((iF + 2) <= imaxF && (iF - 2) >= iminF &&
|
||||
(jF + 2) <= jmaxF && (jF - 2) >= jminF &&
|
||||
(kF + 2) <= kmaxF && (kF - 2) >= kminF)
|
||||
{
|
||||
fxx[p] = Fdxdx * (
|
||||
-fh[idx_fh_F_ord2(iF - 2, jF, kF, ex)] +
|
||||
F16 * fh[idx_fh_F_ord2(iF - 1, jF, kF, ex)] -
|
||||
F30 * fh[idx_fh_F_ord2(iF, jF, kF, ex)] -
|
||||
fh[idx_fh_F_ord2(iF + 2, jF, kF, ex)] +
|
||||
F16 * fh[idx_fh_F_ord2(iF + 1, jF, kF, ex)]
|
||||
);
|
||||
const int i4_lo = (iminF + 1 > 0) ? (iminF + 1) : 0;
|
||||
const int j4_lo = (jminF + 1 > 0) ? (jminF + 1) : 0;
|
||||
const int k4_lo = (kminF + 1 > 0) ? (kminF + 1) : 0;
|
||||
const int i4_hi = ex1 - 3;
|
||||
const int j4_hi = ex2 - 3;
|
||||
const int k4_hi = ex3 - 3;
|
||||
|
||||
fyy[p] = Fdydy * (
|
||||
-fh[idx_fh_F_ord2(iF, jF - 2, kF, ex)] +
|
||||
F16 * fh[idx_fh_F_ord2(iF, jF - 1, kF, ex)] -
|
||||
F30 * fh[idx_fh_F_ord2(iF, jF, kF, ex)] -
|
||||
fh[idx_fh_F_ord2(iF, jF + 2, kF, ex)] +
|
||||
F16 * fh[idx_fh_F_ord2(iF, jF + 1, kF, ex)]
|
||||
);
|
||||
/*
|
||||
* Strategy A:
|
||||
* Avoid redundant work in overlap of 2nd/4th-order regions.
|
||||
* Only compute 2nd-order on shell points that are NOT overwritten by
|
||||
* the 4th-order pass.
|
||||
*/
|
||||
const int has4 = (i4_lo <= i4_hi && j4_lo <= j4_hi && k4_lo <= k4_hi);
|
||||
|
||||
fzz[p] = Fdzdz * (
|
||||
-fh[idx_fh_F_ord2(iF, jF, kF - 2, ex)] +
|
||||
F16 * fh[idx_fh_F_ord2(iF, jF, kF - 1, ex)] -
|
||||
F30 * fh[idx_fh_F_ord2(iF, jF, kF, ex)] -
|
||||
fh[idx_fh_F_ord2(iF, jF, kF + 2, ex)] +
|
||||
F16 * fh[idx_fh_F_ord2(iF, jF, kF + 1, ex)]
|
||||
);
|
||||
|
||||
/* fxy 高阶:完全照搬 Fortran 的括号结构 */
|
||||
{
|
||||
const double t_jm2 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF - 2, kF, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF - 2, kF, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF - 2, kF, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF - 2, kF, ex)] );
|
||||
|
||||
const double t_jm1 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF - 1, kF, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF - 1, kF, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF - 1, kF, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF - 1, kF, ex)] );
|
||||
|
||||
const double t_jp1 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF + 1, kF, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF + 1, kF, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF + 1, kF, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF + 1, kF, ex)] );
|
||||
|
||||
const double t_jp2 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF + 2, kF, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF + 2, kF, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF + 2, kF, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF + 2, kF, ex)] );
|
||||
|
||||
fxy[p] = Fdxdy * ( t_jm2 - F8 * t_jm1 + F8 * t_jp1 - t_jp2 );
|
||||
if (i2_lo <= i2_hi && j2_lo <= j2_hi && k2_lo <= k2_hi) {
|
||||
for (int k0 = k2_lo; k0 <= k2_hi; ++k0) {
|
||||
const int kF = k0 + 1;
|
||||
for (int j0 = j2_lo; j0 <= j2_hi; ++j0) {
|
||||
const int jF = j0 + 1;
|
||||
for (int i0 = i2_lo; i0 <= i2_hi; ++i0) {
|
||||
if (has4 &&
|
||||
i0 >= i4_lo && i0 <= i4_hi &&
|
||||
j0 >= j4_lo && j0 <= j4_hi &&
|
||||
k0 >= k4_lo && k0 <= k4_hi) {
|
||||
continue;
|
||||
}
|
||||
const int iF = i0 + 1;
|
||||
const size_t p = idx_ex(i0, j0, k0, ex);
|
||||
|
||||
/* fxz 高阶 */
|
||||
{
|
||||
const double t_km2 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF, kF - 2, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF, kF - 2, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF, kF - 2, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF, kF - 2, ex)] );
|
||||
|
||||
const double t_km1 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF, kF - 1, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF, kF - 1, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF, kF - 1, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF, kF - 1, ex)] );
|
||||
|
||||
const double t_kp1 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF, kF + 1, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF, kF + 1, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF, kF + 1, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF, kF + 1, ex)] );
|
||||
|
||||
const double t_kp2 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF, kF + 2, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF, kF + 2, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF, kF + 2, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF, kF + 2, ex)] );
|
||||
|
||||
fxz[p] = Fdxdz * ( t_km2 - F8 * t_km1 + F8 * t_kp1 - t_kp2 );
|
||||
}
|
||||
|
||||
/* fyz 高阶 */
|
||||
{
|
||||
const double t_km2 =
|
||||
( fh[idx_fh_F_ord2(iF, jF - 2, kF - 2, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF, jF - 1, kF - 2, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF, jF + 1, kF - 2, ex)]
|
||||
- fh[idx_fh_F_ord2(iF, jF + 2, kF - 2, ex)] );
|
||||
|
||||
const double t_km1 =
|
||||
( fh[idx_fh_F_ord2(iF, jF - 2, kF - 1, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF, jF - 1, kF - 1, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF, jF + 1, kF - 1, ex)]
|
||||
- fh[idx_fh_F_ord2(iF, jF + 2, kF - 1, ex)] );
|
||||
|
||||
const double t_kp1 =
|
||||
( fh[idx_fh_F_ord2(iF, jF - 2, kF + 1, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF, jF - 1, kF + 1, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF, jF + 1, kF + 1, ex)]
|
||||
- fh[idx_fh_F_ord2(iF, jF + 2, kF + 1, ex)] );
|
||||
|
||||
const double t_kp2 =
|
||||
( fh[idx_fh_F_ord2(iF, jF - 2, kF + 2, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF, jF - 1, kF + 2, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF, jF + 1, kF + 2, ex)]
|
||||
- fh[idx_fh_F_ord2(iF, jF + 2, kF + 2, ex)] );
|
||||
|
||||
fyz[p] = Fdydz * ( t_km2 - F8 * t_km1 + F8 * t_kp1 - t_kp2 );
|
||||
}
|
||||
}
|
||||
/* 二阶分支:i±1,j±1,k±1 在范围内 */
|
||||
else if ((iF + 1) <= imaxF && (iF - 1) >= iminF &&
|
||||
(jF + 1) <= jmaxF && (jF - 1) >= jminF &&
|
||||
(kF + 1) <= kmaxF && (kF - 1) >= kminF)
|
||||
{
|
||||
fxx[p] = Sdxdx * (
|
||||
fh[idx_fh_F_ord2(iF - 1, jF, kF, ex)] -
|
||||
TWO * fh[idx_fh_F_ord2(iF, jF, kF, ex)] +
|
||||
@@ -252,17 +202,131 @@ void fdderivs(const int ex[3],
|
||||
fh[idx_fh_F_ord2(iF, jF - 1, kF + 1, ex)] +
|
||||
fh[idx_fh_F_ord2(iF, jF + 1, kF + 1, ex)]
|
||||
);
|
||||
}else{
|
||||
fxx[p] = 0.0;
|
||||
fyy[p] = 0.0;
|
||||
fzz[p] = 0.0;
|
||||
fxy[p] = 0.0;
|
||||
fxz[p] = 0.0;
|
||||
fyz[p] = 0.0;
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
if (has4) {
|
||||
for (int k0 = k4_lo; k0 <= k4_hi; ++k0) {
|
||||
const int kF = k0 + 1;
|
||||
for (int j0 = j4_lo; j0 <= j4_hi; ++j0) {
|
||||
const int jF = j0 + 1;
|
||||
for (int i0 = i4_lo; i0 <= i4_hi; ++i0) {
|
||||
const int iF = i0 + 1;
|
||||
const size_t p = idx_ex(i0, j0, k0, ex);
|
||||
|
||||
fxx[p] = Fdxdx * (
|
||||
-fh[idx_fh_F_ord2(iF - 2, jF, kF, ex)] +
|
||||
F16 * fh[idx_fh_F_ord2(iF - 1, jF, kF, ex)] -
|
||||
F30 * fh[idx_fh_F_ord2(iF, jF, kF, ex)] -
|
||||
fh[idx_fh_F_ord2(iF + 2, jF, kF, ex)] +
|
||||
F16 * fh[idx_fh_F_ord2(iF + 1, jF, kF, ex)]
|
||||
);
|
||||
|
||||
fyy[p] = Fdydy * (
|
||||
-fh[idx_fh_F_ord2(iF, jF - 2, kF, ex)] +
|
||||
F16 * fh[idx_fh_F_ord2(iF, jF - 1, kF, ex)] -
|
||||
F30 * fh[idx_fh_F_ord2(iF, jF, kF, ex)] -
|
||||
fh[idx_fh_F_ord2(iF, jF + 2, kF, ex)] +
|
||||
F16 * fh[idx_fh_F_ord2(iF, jF + 1, kF, ex)]
|
||||
);
|
||||
|
||||
fzz[p] = Fdzdz * (
|
||||
-fh[idx_fh_F_ord2(iF, jF, kF - 2, ex)] +
|
||||
F16 * fh[idx_fh_F_ord2(iF, jF, kF - 1, ex)] -
|
||||
F30 * fh[idx_fh_F_ord2(iF, jF, kF, ex)] -
|
||||
fh[idx_fh_F_ord2(iF, jF, kF + 2, ex)] +
|
||||
F16 * fh[idx_fh_F_ord2(iF, jF, kF + 1, ex)]
|
||||
);
|
||||
|
||||
{
|
||||
const double t_jm2 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF - 2, kF, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF - 2, kF, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF - 2, kF, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF - 2, kF, ex)] );
|
||||
|
||||
const double t_jm1 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF - 1, kF, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF - 1, kF, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF - 1, kF, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF - 1, kF, ex)] );
|
||||
|
||||
const double t_jp1 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF + 1, kF, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF + 1, kF, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF + 1, kF, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF + 1, kF, ex)] );
|
||||
|
||||
const double t_jp2 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF + 2, kF, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF + 2, kF, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF + 2, kF, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF + 2, kF, ex)] );
|
||||
|
||||
fxy[p] = Fdxdy * ( t_jm2 - F8 * t_jm1 + F8 * t_jp1 - t_jp2 );
|
||||
}
|
||||
|
||||
{
|
||||
const double t_km2 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF, kF - 2, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF, kF - 2, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF, kF - 2, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF, kF - 2, ex)] );
|
||||
|
||||
const double t_km1 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF, kF - 1, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF, kF - 1, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF, kF - 1, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF, kF - 1, ex)] );
|
||||
|
||||
const double t_kp1 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF, kF + 1, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF, kF + 1, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF, kF + 1, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF, kF + 1, ex)] );
|
||||
|
||||
const double t_kp2 =
|
||||
( fh[idx_fh_F_ord2(iF - 2, jF, kF + 2, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF - 1, jF, kF + 2, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF + 1, jF, kF + 2, ex)]
|
||||
- fh[idx_fh_F_ord2(iF + 2, jF, kF + 2, ex)] );
|
||||
|
||||
fxz[p] = Fdxdz * ( t_km2 - F8 * t_km1 + F8 * t_kp1 - t_kp2 );
|
||||
}
|
||||
|
||||
{
|
||||
const double t_km2 =
|
||||
( fh[idx_fh_F_ord2(iF, jF - 2, kF - 2, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF, jF - 1, kF - 2, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF, jF + 1, kF - 2, ex)]
|
||||
- fh[idx_fh_F_ord2(iF, jF + 2, kF - 2, ex)] );
|
||||
|
||||
const double t_km1 =
|
||||
( fh[idx_fh_F_ord2(iF, jF - 2, kF - 1, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF, jF - 1, kF - 1, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF, jF + 1, kF - 1, ex)]
|
||||
- fh[idx_fh_F_ord2(iF, jF + 2, kF - 1, ex)] );
|
||||
|
||||
const double t_kp1 =
|
||||
( fh[idx_fh_F_ord2(iF, jF - 2, kF + 1, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF, jF - 1, kF + 1, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF, jF + 1, kF + 1, ex)]
|
||||
- fh[idx_fh_F_ord2(iF, jF + 2, kF + 1, ex)] );
|
||||
|
||||
const double t_kp2 =
|
||||
( fh[idx_fh_F_ord2(iF, jF - 2, kF + 2, ex)]
|
||||
-F8*fh[idx_fh_F_ord2(iF, jF - 1, kF + 2, ex)]
|
||||
+F8*fh[idx_fh_F_ord2(iF, jF + 1, kF + 2, ex)]
|
||||
- fh[idx_fh_F_ord2(iF, jF + 2, kF + 2, ex)] );
|
||||
|
||||
fyz[p] = Fdydz * ( t_km2 - F8 * t_km1 + F8 * t_kp1 - t_kp2 );
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// free(fh);
|
||||
}
|
||||
}
|
||||
|
||||
@@ -81,26 +81,63 @@ void fderivs(const int ex[3],
|
||||
}
|
||||
|
||||
/*
|
||||
* Fortran loops:
|
||||
* do k=1,ex3-1
|
||||
* do j=1,ex2-1
|
||||
* do i=1,ex1-1
|
||||
* 两段式:
|
||||
* 1) 先在二阶可用区域计算二阶模板
|
||||
* 2) 再在高阶可用区域覆盖为四阶模板
|
||||
*
|
||||
* C: k0=0..ex3-2, j0=0..ex2-2, i0=0..ex1-2
|
||||
* 与原 if/elseif 逻辑等价,但减少逐点分支判断。
|
||||
*/
|
||||
for (int k0 = 0; k0 <= ex3 - 2; ++k0) {
|
||||
const int kF = k0 + 1;
|
||||
for (int j0 = 0; j0 <= ex2 - 2; ++j0) {
|
||||
const int jF = j0 + 1;
|
||||
for (int i0 = 0; i0 <= ex1 - 2; ++i0) {
|
||||
const int iF = i0 + 1;
|
||||
const size_t p = idx_ex(i0, j0, k0, ex);
|
||||
const int i2_lo = (iminF > 0) ? iminF : 0;
|
||||
const int j2_lo = (jminF > 0) ? jminF : 0;
|
||||
const int k2_lo = (kminF > 0) ? kminF : 0;
|
||||
const int i2_hi = ex1 - 2;
|
||||
const int j2_hi = ex2 - 2;
|
||||
const int k2_hi = ex3 - 2;
|
||||
|
||||
const int i4_lo = (iminF + 1 > 0) ? (iminF + 1) : 0;
|
||||
const int j4_lo = (jminF + 1 > 0) ? (jminF + 1) : 0;
|
||||
const int k4_lo = (kminF + 1 > 0) ? (kminF + 1) : 0;
|
||||
const int i4_hi = ex1 - 3;
|
||||
const int j4_hi = ex2 - 3;
|
||||
const int k4_hi = ex3 - 3;
|
||||
|
||||
if (i2_lo <= i2_hi && j2_lo <= j2_hi && k2_lo <= k2_hi) {
|
||||
for (int k0 = k2_lo; k0 <= k2_hi; ++k0) {
|
||||
const int kF = k0 + 1;
|
||||
for (int j0 = j2_lo; j0 <= j2_hi; ++j0) {
|
||||
const int jF = j0 + 1;
|
||||
for (int i0 = i2_lo; i0 <= i2_hi; ++i0) {
|
||||
const int iF = i0 + 1;
|
||||
const size_t p = idx_ex(i0, j0, k0, ex);
|
||||
|
||||
fx[p] = d2dx * (
|
||||
-fh[idx_fh_F_ord2(iF - 1, jF, kF, ex)] +
|
||||
fh[idx_fh_F_ord2(iF + 1, jF, kF, ex)]
|
||||
);
|
||||
|
||||
fy[p] = d2dy * (
|
||||
-fh[idx_fh_F_ord2(iF, jF - 1, kF, ex)] +
|
||||
fh[idx_fh_F_ord2(iF, jF + 1, kF, ex)]
|
||||
);
|
||||
|
||||
fz[p] = d2dz * (
|
||||
-fh[idx_fh_F_ord2(iF, jF, kF - 1, ex)] +
|
||||
fh[idx_fh_F_ord2(iF, jF, kF + 1, ex)]
|
||||
);
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
if (i4_lo <= i4_hi && j4_lo <= j4_hi && k4_lo <= k4_hi) {
|
||||
for (int k0 = k4_lo; k0 <= k4_hi; ++k0) {
|
||||
const int kF = k0 + 1;
|
||||
for (int j0 = j4_lo; j0 <= j4_hi; ++j0) {
|
||||
const int jF = j0 + 1;
|
||||
for (int i0 = i4_lo; i0 <= i4_hi; ++i0) {
|
||||
const int iF = i0 + 1;
|
||||
const size_t p = idx_ex(i0, j0, k0, ex);
|
||||
|
||||
// if(i+2 <= imax .and. i-2 >= imin ... ) (全是 Fortran 索引)
|
||||
if ((iF + 2) <= imaxF && (iF - 2) >= iminF &&
|
||||
(jF + 2) <= jmaxF && (jF - 2) >= jminF &&
|
||||
(kF + 2) <= kmaxF && (kF - 2) >= kminF)
|
||||
{
|
||||
fx[p] = d12dx * (
|
||||
fh[idx_fh_F_ord2(iF - 2, jF, kF, ex)] -
|
||||
EIT * fh[idx_fh_F_ord2(iF - 1, jF, kF, ex)] +
|
||||
@@ -122,29 +159,9 @@ void fderivs(const int ex[3],
|
||||
fh[idx_fh_F_ord2(iF, jF, kF + 2, ex)]
|
||||
);
|
||||
}
|
||||
// elseif(i+1 <= imax .and. i-1 >= imin ...)
|
||||
else if ((iF + 1) <= imaxF && (iF - 1) >= iminF &&
|
||||
(jF + 1) <= jmaxF && (jF - 1) >= jminF &&
|
||||
(kF + 1) <= kmaxF && (kF - 1) >= kminF)
|
||||
{
|
||||
fx[p] = d2dx * (
|
||||
-fh[idx_fh_F_ord2(iF - 1, jF, kF, ex)] +
|
||||
fh[idx_fh_F_ord2(iF + 1, jF, kF, ex)]
|
||||
);
|
||||
|
||||
fy[p] = d2dy * (
|
||||
-fh[idx_fh_F_ord2(iF, jF - 1, kF, ex)] +
|
||||
fh[idx_fh_F_ord2(iF, jF + 1, kF, ex)]
|
||||
);
|
||||
|
||||
fz[p] = d2dz * (
|
||||
-fh[idx_fh_F_ord2(iF, jF, kF - 1, ex)] +
|
||||
fh[idx_fh_F_ord2(iF, jF, kF + 1, ex)]
|
||||
);
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// free(fh);
|
||||
}
|
||||
}
|
||||
|
||||
@@ -1111,27 +1111,177 @@ end subroutine d2dump
|
||||
!~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
|
||||
!~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
|
||||
!~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
|
||||
! common code for cell and vertex
|
||||
!------------------------------------------------------------------------------
|
||||
! Lagrangian polynomial interpolation
|
||||
!------------------------------------------------------------------------------
|
||||
|
||||
!DIR$ ATTRIBUTES FORCEINLINE :: polint
|
||||
subroutine polint(xa, ya, x, y, dy, ordn)
|
||||
implicit none
|
||||
|
||||
integer, intent(in) :: ordn
|
||||
! common code for cell and vertex
|
||||
!------------------------------------------------------------------------------
|
||||
! Lagrangian polynomial interpolation
|
||||
!------------------------------------------------------------------------------
|
||||
#ifndef POLINT6_USE_BARYCENTRIC
|
||||
#define POLINT6_USE_BARYCENTRIC 1
|
||||
#endif
|
||||
|
||||
!DIR$ ATTRIBUTES FORCEINLINE :: polint6_neville
|
||||
subroutine polint6_neville(xa, ya, x, y, dy)
|
||||
implicit none
|
||||
|
||||
real*8, dimension(6), intent(in) :: xa, ya
|
||||
real*8, intent(in) :: x
|
||||
real*8, intent(out) :: y, dy
|
||||
|
||||
integer :: i, m, ns, n_m
|
||||
real*8, dimension(6) :: c, d, ho
|
||||
real*8 :: dif, dift, hp, h, den_val
|
||||
|
||||
c = ya
|
||||
d = ya
|
||||
ho = xa - x
|
||||
|
||||
ns = 1
|
||||
dif = abs(x - xa(1))
|
||||
|
||||
do i = 2, 6
|
||||
dift = abs(x - xa(i))
|
||||
if (dift < dif) then
|
||||
ns = i
|
||||
dif = dift
|
||||
end if
|
||||
end do
|
||||
|
||||
y = ya(ns)
|
||||
ns = ns - 1
|
||||
|
||||
do m = 1, 5
|
||||
n_m = 6 - m
|
||||
do i = 1, n_m
|
||||
hp = ho(i)
|
||||
h = ho(i+m)
|
||||
den_val = hp - h
|
||||
|
||||
if (den_val == 0.0d0) then
|
||||
write(*,*) 'failure in polint for point',x
|
||||
write(*,*) 'with input points: ',xa
|
||||
stop
|
||||
end if
|
||||
|
||||
den_val = (c(i+1) - d(i)) / den_val
|
||||
|
||||
d(i) = h * den_val
|
||||
c(i) = hp * den_val
|
||||
end do
|
||||
|
||||
if (2 * ns < n_m) then
|
||||
dy = c(ns + 1)
|
||||
else
|
||||
dy = d(ns)
|
||||
ns = ns - 1
|
||||
end if
|
||||
y = y + dy
|
||||
end do
|
||||
|
||||
return
|
||||
end subroutine polint6_neville
|
||||
|
||||
!DIR$ ATTRIBUTES FORCEINLINE :: polint6_barycentric
|
||||
subroutine polint6_barycentric(xa, ya, x, y, dy)
|
||||
implicit none
|
||||
|
||||
real*8, dimension(6), intent(in) :: xa, ya
|
||||
real*8, intent(in) :: x
|
||||
real*8, intent(out) :: y, dy
|
||||
|
||||
integer :: i, j
|
||||
logical :: is_uniform
|
||||
real*8, dimension(6) :: lambda
|
||||
real*8 :: dx, den_i, term, num, den, step, tol
|
||||
real*8, parameter :: c_uniform(6) = (/ -1.d0, 5.d0, -10.d0, 10.d0, -5.d0, 1.d0 /)
|
||||
|
||||
do i = 1, 6
|
||||
if (x == xa(i)) then
|
||||
y = ya(i)
|
||||
dy = 0.d0
|
||||
return
|
||||
end if
|
||||
end do
|
||||
|
||||
step = xa(2) - xa(1)
|
||||
is_uniform = (step /= 0.d0)
|
||||
if (is_uniform) then
|
||||
tol = 64.d0 * epsilon(1.d0) * max(1.d0, abs(step))
|
||||
do i = 3, 6
|
||||
if (abs((xa(i) - xa(i-1)) - step) > tol) then
|
||||
is_uniform = .false.
|
||||
exit
|
||||
end if
|
||||
end do
|
||||
end if
|
||||
|
||||
if (is_uniform) then
|
||||
num = 0.d0
|
||||
den = 0.d0
|
||||
do i = 1, 6
|
||||
term = c_uniform(i) / (x - xa(i))
|
||||
num = num + term * ya(i)
|
||||
den = den + term
|
||||
end do
|
||||
y = num / den
|
||||
dy = 0.d0
|
||||
return
|
||||
end if
|
||||
|
||||
do i = 1, 6
|
||||
den_i = 1.d0
|
||||
do j = 1, 6
|
||||
if (j /= i) then
|
||||
dx = xa(i) - xa(j)
|
||||
if (dx == 0.0d0) then
|
||||
write(*,*) 'failure in polint for point',x
|
||||
write(*,*) 'with input points: ',xa
|
||||
stop
|
||||
end if
|
||||
den_i = den_i * dx
|
||||
end if
|
||||
end do
|
||||
lambda(i) = 1.d0 / den_i
|
||||
end do
|
||||
|
||||
num = 0.d0
|
||||
den = 0.d0
|
||||
do i = 1, 6
|
||||
term = lambda(i) / (x - xa(i))
|
||||
num = num + term * ya(i)
|
||||
den = den + term
|
||||
end do
|
||||
|
||||
y = num / den
|
||||
dy = 0.d0
|
||||
|
||||
return
|
||||
end subroutine polint6_barycentric
|
||||
|
||||
!DIR$ ATTRIBUTES FORCEINLINE :: polint
|
||||
subroutine polint(xa, ya, x, y, dy, ordn)
|
||||
implicit none
|
||||
|
||||
integer, intent(in) :: ordn
|
||||
real*8, dimension(ordn), intent(in) :: xa, ya
|
||||
real*8, intent(in) :: x
|
||||
real*8, intent(out) :: y, dy
|
||||
|
||||
integer :: i, m, ns, n_m
|
||||
real*8, dimension(ordn) :: c, d, ho
|
||||
real*8 :: dif, dift, hp, h, den_val
|
||||
|
||||
c = ya
|
||||
d = ya
|
||||
ho = xa - x
|
||||
integer :: i, m, ns, n_m
|
||||
real*8, dimension(ordn) :: c, d, ho
|
||||
real*8 :: dif, dift, hp, h, den_val
|
||||
|
||||
if (ordn == 6) then
|
||||
#if POLINT6_USE_BARYCENTRIC
|
||||
call polint6_barycentric(xa, ya, x, y, dy)
|
||||
#else
|
||||
call polint6_neville(xa, ya, x, y, dy)
|
||||
#endif
|
||||
return
|
||||
end if
|
||||
|
||||
c = ya
|
||||
d = ya
|
||||
ho = xa - x
|
||||
|
||||
ns = 1
|
||||
dif = abs(x - xa(1))
|
||||
@@ -1175,13 +1325,48 @@ end subroutine d2dump
|
||||
y = y + dy
|
||||
end do
|
||||
|
||||
return
|
||||
end subroutine polint
|
||||
!------------------------------------------------------------------------------
|
||||
!
|
||||
! interpolation in 2 dimensions, follow yx order
|
||||
!
|
||||
!------------------------------------------------------------------------------
|
||||
return
|
||||
end subroutine polint
|
||||
!------------------------------------------------------------------------------
|
||||
! Compute Lagrange interpolation basis weights for one target point.
|
||||
!------------------------------------------------------------------------------
|
||||
!DIR$ ATTRIBUTES FORCEINLINE :: polint_lagrange_weights
|
||||
subroutine polint_lagrange_weights(xa, x, w, ordn)
|
||||
implicit none
|
||||
|
||||
integer, intent(in) :: ordn
|
||||
real*8, dimension(1:ordn), intent(in) :: xa
|
||||
real*8, intent(in) :: x
|
||||
real*8, dimension(1:ordn), intent(out) :: w
|
||||
|
||||
integer :: i, j
|
||||
real*8 :: num, den, dx
|
||||
|
||||
do i = 1, ordn
|
||||
num = 1.d0
|
||||
den = 1.d0
|
||||
do j = 1, ordn
|
||||
if (j /= i) then
|
||||
dx = xa(i) - xa(j)
|
||||
if (dx == 0.0d0) then
|
||||
write(*,*) 'failure in polint for point',x
|
||||
write(*,*) 'with input points: ',xa
|
||||
stop
|
||||
end if
|
||||
num = num * (x - xa(j))
|
||||
den = den * dx
|
||||
end if
|
||||
end do
|
||||
w(i) = num / den
|
||||
end do
|
||||
|
||||
return
|
||||
end subroutine polint_lagrange_weights
|
||||
!------------------------------------------------------------------------------
|
||||
!
|
||||
! interpolation in 2 dimensions, follow yx order
|
||||
!
|
||||
!------------------------------------------------------------------------------
|
||||
subroutine polin2(x1a,x2a,ya,x1,x2,y,dy,ordn)
|
||||
implicit none
|
||||
|
||||
@@ -1229,11 +1414,11 @@ end subroutine d2dump
|
||||
real*8, intent(in) :: x1,x2,x3
|
||||
real*8, intent(out) :: y,dy
|
||||
|
||||
#ifdef POLINT_LEGACY_ORDER
|
||||
integer :: i,j,m,n
|
||||
real*8, dimension(ordn,ordn) :: yatmp
|
||||
real*8, dimension(ordn) :: ymtmp
|
||||
real*8, dimension(ordn) :: yntmp
|
||||
#ifdef POLINT_LEGACY_ORDER
|
||||
integer :: i,j,m,n
|
||||
real*8, dimension(ordn,ordn) :: yatmp
|
||||
real*8, dimension(ordn) :: ymtmp
|
||||
real*8, dimension(ordn) :: yntmp
|
||||
real*8, dimension(ordn) :: yqtmp
|
||||
|
||||
m=size(x1a)
|
||||
@@ -1243,29 +1428,36 @@ end subroutine d2dump
|
||||
yqtmp=ya(i,j,:)
|
||||
call polint(x3a,yqtmp,x3,yatmp(i,j),dy,ordn)
|
||||
end do
|
||||
yntmp=yatmp(i,:)
|
||||
call polint(x2a,yntmp,x2,ymtmp(i),dy,ordn)
|
||||
end do
|
||||
call polint(x1a,ymtmp,x1,y,dy,ordn)
|
||||
#else
|
||||
integer :: j, k
|
||||
real*8, dimension(ordn,ordn) :: yatmp
|
||||
real*8, dimension(ordn) :: ymtmp
|
||||
real*8 :: dy_temp
|
||||
|
||||
do k=1,ordn
|
||||
do j=1,ordn
|
||||
call polint(x1a, ya(:,j,k), x1, yatmp(j,k), dy_temp, ordn)
|
||||
end do
|
||||
end do
|
||||
do k=1,ordn
|
||||
call polint(x2a, yatmp(:,k), x2, ymtmp(k), dy_temp, ordn)
|
||||
end do
|
||||
call polint(x3a, ymtmp, x3, y, dy, ordn)
|
||||
#endif
|
||||
|
||||
return
|
||||
end subroutine polin3
|
||||
yntmp=yatmp(i,:)
|
||||
call polint(x2a,yntmp,x2,ymtmp(i),dy,ordn)
|
||||
end do
|
||||
call polint(x1a,ymtmp,x1,y,dy,ordn)
|
||||
#else
|
||||
integer :: i, j, k
|
||||
real*8, dimension(ordn) :: w1, w2
|
||||
real*8, dimension(ordn) :: ymtmp
|
||||
real*8 :: yx_sum, x_sum
|
||||
|
||||
call polint_lagrange_weights(x1a, x1, w1, ordn)
|
||||
call polint_lagrange_weights(x2a, x2, w2, ordn)
|
||||
|
||||
do k = 1, ordn
|
||||
yx_sum = 0.d0
|
||||
do j = 1, ordn
|
||||
x_sum = 0.d0
|
||||
do i = 1, ordn
|
||||
x_sum = x_sum + w1(i) * ya(i,j,k)
|
||||
end do
|
||||
yx_sum = yx_sum + w2(j) * x_sum
|
||||
end do
|
||||
ymtmp(k) = yx_sum
|
||||
end do
|
||||
|
||||
call polint(x3a, ymtmp, x3, y, dy, ordn)
|
||||
#endif
|
||||
|
||||
return
|
||||
end subroutine polin3
|
||||
!--------------------------------------------------------------------------------------
|
||||
! calculate L2norm
|
||||
subroutine l2normhelper(ex, X, Y, Z,xmin,ymin,zmin,xmax,ymax,zmax,&
|
||||
@@ -1319,13 +1511,88 @@ deallocate(f_flat)
|
||||
|
||||
f_out = f_out*dX*dY*dZ
|
||||
|
||||
return
|
||||
|
||||
end subroutine l2normhelper
|
||||
!--------------------------------------------------------------------------------------
|
||||
! calculate L2norm especially for shell Blocks
|
||||
subroutine l2normhelper_sh(ex, X, Y, Z,xmin,ymin,zmin,xmax,ymax,zmax,&
|
||||
f,f_out,gw,ogw,Symmetry)
|
||||
return
|
||||
|
||||
end subroutine l2normhelper
|
||||
!--------------------------------------------------------------------------------------
|
||||
subroutine l2normhelper7(ex, X, Y, Z,xmin,ymin,zmin,xmax,ymax,zmax,&
|
||||
f1,f2,f3,f4,f5,f6,f7,f_out,gw)
|
||||
|
||||
implicit none
|
||||
!~~~~~~> Input parameters:
|
||||
integer,intent(in ):: ex(1:3)
|
||||
real*8, intent(in ):: X(1:ex(1)),Y(1:ex(2)),Z(1:ex(3)),xmin,ymin,zmin,xmax,ymax,zmax
|
||||
integer,intent(in)::gw
|
||||
real*8, dimension(ex(1),ex(2),ex(3)),intent(in) :: f1,f2,f3,f4,f5,f6,f7
|
||||
real*8, intent(out) :: f_out(7)
|
||||
!~~~~~~> Other variables:
|
||||
|
||||
real*8 :: dX, dY, dZ
|
||||
integer::imin,jmin,kmin
|
||||
integer::imax,jmax,kmax
|
||||
integer::i,j,k
|
||||
real*8 :: s1,s2,s3,s4,s5,s6,s7
|
||||
|
||||
dX = X(2) - X(1)
|
||||
dY = Y(2) - Y(1)
|
||||
dZ = Z(2) - Z(1)
|
||||
|
||||
! for ghost zone
|
||||
imin = gw+1
|
||||
jmin = gw+1
|
||||
kmin = gw+1
|
||||
|
||||
imax = ex(1) - gw
|
||||
jmax = ex(2) - gw
|
||||
kmax = ex(3) - gw
|
||||
|
||||
!for patch boundary (i.e., not ghost boundary)
|
||||
|
||||
if(dabs(X(ex(1))-xmax) < dX) imax = ex(1)
|
||||
if(dabs(Y(ex(2))-ymax) < dY) jmax = ex(2)
|
||||
if(dabs(Z(ex(3))-zmax) < dZ) kmax = ex(3)
|
||||
if(dabs(X(1)-xmin) < dX) imin = 1
|
||||
if(dabs(Y(1)-ymin) < dY) jmin = 1
|
||||
if(dabs(Z(1)-zmin) < dZ) kmin = 1
|
||||
|
||||
s1 = 0.d0
|
||||
s2 = 0.d0
|
||||
s3 = 0.d0
|
||||
s4 = 0.d0
|
||||
s5 = 0.d0
|
||||
s6 = 0.d0
|
||||
s7 = 0.d0
|
||||
|
||||
do k=kmin,kmax
|
||||
do j=jmin,jmax
|
||||
!DIR$ SIMD REDUCTION(+:s1,s2,s3,s4,s5,s6,s7)
|
||||
do i=imin,imax
|
||||
s1 = s1 + f1(i,j,k)*f1(i,j,k)
|
||||
s2 = s2 + f2(i,j,k)*f2(i,j,k)
|
||||
s3 = s3 + f3(i,j,k)*f3(i,j,k)
|
||||
s4 = s4 + f4(i,j,k)*f4(i,j,k)
|
||||
s5 = s5 + f5(i,j,k)*f5(i,j,k)
|
||||
s6 = s6 + f6(i,j,k)*f6(i,j,k)
|
||||
s7 = s7 + f7(i,j,k)*f7(i,j,k)
|
||||
enddo
|
||||
enddo
|
||||
enddo
|
||||
|
||||
f_out(1) = s1*dX*dY*dZ
|
||||
f_out(2) = s2*dX*dY*dZ
|
||||
f_out(3) = s3*dX*dY*dZ
|
||||
f_out(4) = s4*dX*dY*dZ
|
||||
f_out(5) = s5*dX*dY*dZ
|
||||
f_out(6) = s6*dX*dY*dZ
|
||||
f_out(7) = s7*dX*dY*dZ
|
||||
|
||||
return
|
||||
|
||||
end subroutine l2normhelper7
|
||||
!--------------------------------------------------------------------------------------
|
||||
! calculate L2norm especially for shell Blocks
|
||||
subroutine l2normhelper_sh(ex, X, Y, Z,xmin,ymin,zmin,xmax,ymax,zmax,&
|
||||
f,f_out,gw,ogw,Symmetry)
|
||||
|
||||
implicit none
|
||||
!~~~~~~> Input parameters:
|
||||
@@ -1608,11 +1875,14 @@ deallocate(f_flat)
|
||||
! ^
|
||||
! f=3/8*f_1 + 3/4*f_2 - 1/8*f_3
|
||||
|
||||
real*8,parameter::C1=3.d0/8.d0,C2=3.d0/4.d0,C3=-1.d0/8.d0
|
||||
|
||||
fout = C1*f1+C2*f2+C3*f3
|
||||
|
||||
return
|
||||
real*8,parameter::C1=3.d0/8.d0,C2=3.d0/4.d0,C3=-1.d0/8.d0
|
||||
integer :: i,j,k
|
||||
|
||||
do concurrent (k=1:ext(3), j=1:ext(2), i=1:ext(1))
|
||||
fout(i,j,k) = C1*f1(i,j,k)+C2*f2(i,j,k)+C3*f3(i,j,k)
|
||||
end do
|
||||
|
||||
return
|
||||
|
||||
end subroutine average2
|
||||
!-----------------------------------------------------------------------------
|
||||
|
||||
@@ -12,9 +12,10 @@
|
||||
#define f_global_interpind global_interpind
|
||||
#define f_global_interpind2d global_interpind2d
|
||||
#define f_global_interpind1d global_interpind1d
|
||||
#define f_l2normhelper l2normhelper
|
||||
#define f_l2normhelper_sh l2normhelper_sh
|
||||
#define f_l2normhelper_sh_rms l2normhelper_sh_rms
|
||||
#define f_l2normhelper l2normhelper
|
||||
#define f_l2normhelper7 l2normhelper7
|
||||
#define f_l2normhelper_sh l2normhelper_sh
|
||||
#define f_l2normhelper_sh_rms l2normhelper_sh_rms
|
||||
#define f_average average
|
||||
#define f_average3 average3
|
||||
#define f_average2 average2
|
||||
@@ -41,9 +42,10 @@
|
||||
#define f_global_interpind GLOBAL_INTERPIND
|
||||
#define f_global_interpind2d GLOBAL_INTERPIND2D
|
||||
#define f_global_interpind1d GLOBAL_INTERPIND1D
|
||||
#define f_l2normhelper L2NORMHELPER
|
||||
#define f_l2normhelper_sh L2NORMHELPER_SH
|
||||
#define f_l2normhelper_sh_rms L2NORMHELPER_SH_RMS
|
||||
#define f_l2normhelper L2NORMHELPER
|
||||
#define f_l2normhelper7 L2NORMHELPER7
|
||||
#define f_l2normhelper_sh L2NORMHELPER_SH
|
||||
#define f_l2normhelper_sh_rms L2NORMHELPER_SH_RMS
|
||||
#define f_average AVERAGE
|
||||
#define f_average3 AVERAGE3
|
||||
#define f_average2 AVERAGE2
|
||||
@@ -70,9 +72,10 @@
|
||||
#define f_global_interpind global_interpind_
|
||||
#define f_global_interpind2d global_interpind2d_
|
||||
#define f_global_interpind1d global_interpind1d_
|
||||
#define f_l2normhelper l2normhelper_
|
||||
#define f_l2normhelper_sh l2normhelper_sh_
|
||||
#define f_l2normhelper_sh_rms l2normhelper_sh_rms_
|
||||
#define f_l2normhelper l2normhelper_
|
||||
#define f_l2normhelper7 l2normhelper7_
|
||||
#define f_l2normhelper_sh l2normhelper_sh_
|
||||
#define f_l2normhelper_sh_rms l2normhelper_sh_rms_
|
||||
#define f_average average_
|
||||
#define f_average3 average3_
|
||||
#define f_average2 average2_
|
||||
@@ -156,20 +159,29 @@ extern "C"
|
||||
int *, double *, int &, int &);
|
||||
}
|
||||
|
||||
extern "C"
|
||||
{
|
||||
void f_l2normhelper(int *, double *, double *, double *,
|
||||
double &, double &, double &,
|
||||
double &, double &, double &,
|
||||
double *, double &, int &);
|
||||
}
|
||||
|
||||
extern "C"
|
||||
{
|
||||
void f_l2normhelper_sh(int *, double *, double *, double *,
|
||||
double &, double &, double &,
|
||||
double &, double &, double &,
|
||||
double *, double &, int &, int &, int &);
|
||||
extern "C"
|
||||
{
|
||||
void f_l2normhelper(int *, double *, double *, double *,
|
||||
double &, double &, double &,
|
||||
double &, double &, double &,
|
||||
double *, double &, int &);
|
||||
}
|
||||
|
||||
extern "C"
|
||||
{
|
||||
void f_l2normhelper7(int *, double *, double *, double *,
|
||||
double &, double &, double &,
|
||||
double &, double &, double &,
|
||||
double *, double *, double *, double *,
|
||||
double *, double *, double *, double *, int &);
|
||||
}
|
||||
|
||||
extern "C"
|
||||
{
|
||||
void f_l2normhelper_sh(int *, double *, double *, double *,
|
||||
double &, double &, double &,
|
||||
double &, double &, double &,
|
||||
double *, double &, int &, int &, int &);
|
||||
}
|
||||
|
||||
extern "C"
|
||||
|
||||
@@ -1,3 +1,5 @@
|
||||
/* 本头文件由自订profile框架自动生成并非人工硬编码针对Case优化 */
|
||||
/* 更新:负载均衡问题已经通过优化插值函数解决,此profile静态均衡方案已弃用,本头文件现在未参与编译 */
|
||||
/* Auto-generated from interp_lb_profile.bin — do not edit */
|
||||
#ifndef INTERP_LB_PROFILE_DATA_H
|
||||
#define INTERP_LB_PROFILE_DATA_H
|
||||
|
||||
@@ -63,19 +63,28 @@ void kodis(const int ex[3],
|
||||
* C: k0=0..ex3-1, j0=0..ex2-1, i0=0..ex1-1
|
||||
* 并定义 Fortran index: iF=i0+1, ...
|
||||
*/
|
||||
for (int k0 = 0; k0 < ex3; ++k0) {
|
||||
// 收紧循环范围:只遍历满足 iF±3/jF±3/kF±3 条件的内部点
|
||||
// iF-3 >= iminF => iF >= iminF+3 => i0 >= iminF+2 (因为 iF=i0+1)
|
||||
// iF+3 <= imaxF => iF <= imaxF-3 => i0 <= imaxF-4
|
||||
const int i0_lo = (iminF + 2 > 0) ? iminF + 2 : 0;
|
||||
const int j0_lo = (jminF + 2 > 0) ? jminF + 2 : 0;
|
||||
const int k0_lo = (kminF + 2 > 0) ? kminF + 2 : 0;
|
||||
const int i0_hi = imaxF - 4; // inclusive
|
||||
const int j0_hi = jmaxF - 4;
|
||||
const int k0_hi = kmaxF - 4;
|
||||
|
||||
if (i0_lo > i0_hi || j0_lo > j0_hi || k0_lo > k0_hi) {
|
||||
free(fh);
|
||||
return;
|
||||
}
|
||||
|
||||
for (int k0 = k0_lo; k0 <= k0_hi; ++k0) {
|
||||
const int kF = k0 + 1;
|
||||
for (int j0 = 0; j0 < ex2; ++j0) {
|
||||
for (int j0 = j0_lo; j0 <= j0_hi; ++j0) {
|
||||
const int jF = j0 + 1;
|
||||
for (int i0 = 0; i0 < ex1; ++i0) {
|
||||
for (int i0 = i0_lo; i0 <= i0_hi; ++i0) {
|
||||
const int iF = i0 + 1;
|
||||
|
||||
// Fortran if 条件:
|
||||
// i-3 >= imin .and. i+3 <= imax 等(都是 Fortran 索引)
|
||||
if ((iF - 3) >= iminF && (iF + 3) <= imaxF &&
|
||||
(jF - 3) >= jminF && (jF + 3) <= jmaxF &&
|
||||
(kF - 3) >= kminF && (kF + 3) <= kmaxF)
|
||||
{
|
||||
const size_t p = idx_ex(i0, j0, k0, ex);
|
||||
|
||||
// 三个方向各一份同型的 7 点组合(实际上是对称的 6th-order dissipation/filter 核)
|
||||
@@ -100,7 +109,6 @@ void kodis(const int ex[3],
|
||||
// Fortran:
|
||||
// f_rhs(i,j,k) = f_rhs(i,j,k) + eps/cof*(Dx_term + Dy_term + Dz_term)
|
||||
f_rhs[p] += (eps / cof) * (Dx_term + Dy_term + Dz_term);
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
248
AMSS_NCKU_source/lopsided_kodis_c.C
Normal file
248
AMSS_NCKU_source/lopsided_kodis_c.C
Normal file
@@ -0,0 +1,248 @@
|
||||
#include "tool.h"
|
||||
|
||||
/*
|
||||
* Combined advection (lopsided) + KO dissipation (kodis).
|
||||
* Uses one shared symmetry_bd buffer per call.
|
||||
*/
|
||||
void lopsided_kodis(const int ex[3],
|
||||
const double *X, const double *Y, const double *Z,
|
||||
const double *f, double *f_rhs,
|
||||
const double *Sfx, const double *Sfy, const double *Sfz,
|
||||
int Symmetry, const double SoA[3], double eps)
|
||||
{
|
||||
const double ZEO = 0.0, ONE = 1.0, F3 = 3.0;
|
||||
const double F6 = 6.0, F18 = 18.0;
|
||||
const double F12 = 12.0, F10 = 10.0, EIT = 8.0;
|
||||
const double SIX = 6.0, FIT = 15.0, TWT = 20.0;
|
||||
const double cof = 64.0; // 2^6
|
||||
|
||||
const int NO_SYMM = 0, EQ_SYMM = 1;
|
||||
|
||||
const int ex1 = ex[0], ex2 = ex[1], ex3 = ex[2];
|
||||
|
||||
const double dX = X[1] - X[0];
|
||||
const double dY = Y[1] - Y[0];
|
||||
const double dZ = Z[1] - Z[0];
|
||||
|
||||
const double d12dx = ONE / F12 / dX;
|
||||
const double d12dy = ONE / F12 / dY;
|
||||
const double d12dz = ONE / F12 / dZ;
|
||||
|
||||
const int imaxF = ex1;
|
||||
const int jmaxF = ex2;
|
||||
const int kmaxF = ex3;
|
||||
|
||||
int iminF = 1, jminF = 1, kminF = 1;
|
||||
if (Symmetry > NO_SYMM && fabs(Z[0]) < dZ) kminF = -2;
|
||||
if (Symmetry > EQ_SYMM && fabs(X[0]) < dX) iminF = -2;
|
||||
if (Symmetry > EQ_SYMM && fabs(Y[0]) < dY) jminF = -2;
|
||||
|
||||
// fh for Fortran-style domain (-2:ex1,-2:ex2,-2:ex3)
|
||||
const size_t nx = (size_t)ex1 + 3;
|
||||
const size_t ny = (size_t)ex2 + 3;
|
||||
const size_t nz = (size_t)ex3 + 3;
|
||||
const size_t fh_size = nx * ny * nz;
|
||||
|
||||
double *fh = (double*)malloc(fh_size * sizeof(double));
|
||||
if (!fh) return;
|
||||
|
||||
symmetry_bd(3, ex, f, fh, SoA);
|
||||
|
||||
// Advection (same stencil logic as lopsided_c.C)
|
||||
for (int k0 = 0; k0 <= ex3 - 2; ++k0) {
|
||||
const int kF = k0 + 1;
|
||||
for (int j0 = 0; j0 <= ex2 - 2; ++j0) {
|
||||
const int jF = j0 + 1;
|
||||
for (int i0 = 0; i0 <= ex1 - 2; ++i0) {
|
||||
const int iF = i0 + 1;
|
||||
const size_t p = idx_ex(i0, j0, k0, ex);
|
||||
|
||||
const double sfx = Sfx[p];
|
||||
if (sfx > ZEO) {
|
||||
if (i0 <= ex1 - 4) {
|
||||
f_rhs[p] += sfx * d12dx *
|
||||
(-F3 * fh[idx_fh_F(iF - 1, jF, kF, ex)]
|
||||
-F10 * fh[idx_fh_F(iF , jF, kF, ex)]
|
||||
+F18 * fh[idx_fh_F(iF + 1, jF, kF, ex)]
|
||||
-F6 * fh[idx_fh_F(iF + 2, jF, kF, ex)]
|
||||
+ fh[idx_fh_F(iF + 3, jF, kF, ex)]);
|
||||
} else if (i0 <= ex1 - 3) {
|
||||
f_rhs[p] += sfx * d12dx *
|
||||
( fh[idx_fh_F(iF - 2, jF, kF, ex)]
|
||||
-EIT * fh[idx_fh_F(iF - 1, jF, kF, ex)]
|
||||
+EIT * fh[idx_fh_F(iF + 1, jF, kF, ex)]
|
||||
- fh[idx_fh_F(iF + 2, jF, kF, ex)]);
|
||||
} else if (i0 <= ex1 - 2) {
|
||||
f_rhs[p] -= sfx * d12dx *
|
||||
(-F3 * fh[idx_fh_F(iF + 1, jF, kF, ex)]
|
||||
-F10 * fh[idx_fh_F(iF , jF, kF, ex)]
|
||||
+F18 * fh[idx_fh_F(iF - 1, jF, kF, ex)]
|
||||
-F6 * fh[idx_fh_F(iF - 2, jF, kF, ex)]
|
||||
+ fh[idx_fh_F(iF - 3, jF, kF, ex)]);
|
||||
}
|
||||
} else if (sfx < ZEO) {
|
||||
if ((i0 - 2) >= iminF) {
|
||||
f_rhs[p] -= sfx * d12dx *
|
||||
(-F3 * fh[idx_fh_F(iF + 1, jF, kF, ex)]
|
||||
-F10 * fh[idx_fh_F(iF , jF, kF, ex)]
|
||||
+F18 * fh[idx_fh_F(iF - 1, jF, kF, ex)]
|
||||
-F6 * fh[idx_fh_F(iF - 2, jF, kF, ex)]
|
||||
+ fh[idx_fh_F(iF - 3, jF, kF, ex)]);
|
||||
} else if ((i0 - 1) >= iminF) {
|
||||
f_rhs[p] += sfx * d12dx *
|
||||
( fh[idx_fh_F(iF - 2, jF, kF, ex)]
|
||||
-EIT * fh[idx_fh_F(iF - 1, jF, kF, ex)]
|
||||
+EIT * fh[idx_fh_F(iF + 1, jF, kF, ex)]
|
||||
- fh[idx_fh_F(iF + 2, jF, kF, ex)]);
|
||||
} else if (i0 >= iminF) {
|
||||
f_rhs[p] += sfx * d12dx *
|
||||
(-F3 * fh[idx_fh_F(iF - 1, jF, kF, ex)]
|
||||
-F10 * fh[idx_fh_F(iF , jF, kF, ex)]
|
||||
+F18 * fh[idx_fh_F(iF + 1, jF, kF, ex)]
|
||||
-F6 * fh[idx_fh_F(iF + 2, jF, kF, ex)]
|
||||
+ fh[idx_fh_F(iF + 3, jF, kF, ex)]);
|
||||
}
|
||||
}
|
||||
|
||||
const double sfy = Sfy[p];
|
||||
if (sfy > ZEO) {
|
||||
if (j0 <= ex2 - 4) {
|
||||
f_rhs[p] += sfy * d12dy *
|
||||
(-F3 * fh[idx_fh_F(iF, jF - 1, kF, ex)]
|
||||
-F10 * fh[idx_fh_F(iF, jF , kF, ex)]
|
||||
+F18 * fh[idx_fh_F(iF, jF + 1, kF, ex)]
|
||||
-F6 * fh[idx_fh_F(iF, jF + 2, kF, ex)]
|
||||
+ fh[idx_fh_F(iF, jF + 3, kF, ex)]);
|
||||
} else if (j0 <= ex2 - 3) {
|
||||
f_rhs[p] += sfy * d12dy *
|
||||
( fh[idx_fh_F(iF, jF - 2, kF, ex)]
|
||||
-EIT * fh[idx_fh_F(iF, jF - 1, kF, ex)]
|
||||
+EIT * fh[idx_fh_F(iF, jF + 1, kF, ex)]
|
||||
- fh[idx_fh_F(iF, jF + 2, kF, ex)]);
|
||||
} else if (j0 <= ex2 - 2) {
|
||||
f_rhs[p] -= sfy * d12dy *
|
||||
(-F3 * fh[idx_fh_F(iF, jF + 1, kF, ex)]
|
||||
-F10 * fh[idx_fh_F(iF, jF , kF, ex)]
|
||||
+F18 * fh[idx_fh_F(iF, jF - 1, kF, ex)]
|
||||
-F6 * fh[idx_fh_F(iF, jF - 2, kF, ex)]
|
||||
+ fh[idx_fh_F(iF, jF - 3, kF, ex)]);
|
||||
}
|
||||
} else if (sfy < ZEO) {
|
||||
if ((j0 - 2) >= jminF) {
|
||||
f_rhs[p] -= sfy * d12dy *
|
||||
(-F3 * fh[idx_fh_F(iF, jF + 1, kF, ex)]
|
||||
-F10 * fh[idx_fh_F(iF, jF , kF, ex)]
|
||||
+F18 * fh[idx_fh_F(iF, jF - 1, kF, ex)]
|
||||
-F6 * fh[idx_fh_F(iF, jF - 2, kF, ex)]
|
||||
+ fh[idx_fh_F(iF, jF - 3, kF, ex)]);
|
||||
} else if ((j0 - 1) >= jminF) {
|
||||
f_rhs[p] += sfy * d12dy *
|
||||
( fh[idx_fh_F(iF, jF - 2, kF, ex)]
|
||||
-EIT * fh[idx_fh_F(iF, jF - 1, kF, ex)]
|
||||
+EIT * fh[idx_fh_F(iF, jF + 1, kF, ex)]
|
||||
- fh[idx_fh_F(iF, jF + 2, kF, ex)]);
|
||||
} else if (j0 >= jminF) {
|
||||
f_rhs[p] += sfy * d12dy *
|
||||
(-F3 * fh[idx_fh_F(iF, jF - 1, kF, ex)]
|
||||
-F10 * fh[idx_fh_F(iF, jF , kF, ex)]
|
||||
+F18 * fh[idx_fh_F(iF, jF + 1, kF, ex)]
|
||||
-F6 * fh[idx_fh_F(iF, jF + 2, kF, ex)]
|
||||
+ fh[idx_fh_F(iF, jF + 3, kF, ex)]);
|
||||
}
|
||||
}
|
||||
|
||||
const double sfz = Sfz[p];
|
||||
if (sfz > ZEO) {
|
||||
if (k0 <= ex3 - 4) {
|
||||
f_rhs[p] += sfz * d12dz *
|
||||
(-F3 * fh[idx_fh_F(iF, jF, kF - 1, ex)]
|
||||
-F10 * fh[idx_fh_F(iF, jF, kF , ex)]
|
||||
+F18 * fh[idx_fh_F(iF, jF, kF + 1, ex)]
|
||||
-F6 * fh[idx_fh_F(iF, jF, kF + 2, ex)]
|
||||
+ fh[idx_fh_F(iF, jF, kF + 3, ex)]);
|
||||
} else if (k0 <= ex3 - 3) {
|
||||
f_rhs[p] += sfz * d12dz *
|
||||
( fh[idx_fh_F(iF, jF, kF - 2, ex)]
|
||||
-EIT * fh[idx_fh_F(iF, jF, kF - 1, ex)]
|
||||
+EIT * fh[idx_fh_F(iF, jF, kF + 1, ex)]
|
||||
- fh[idx_fh_F(iF, jF, kF + 2, ex)]);
|
||||
} else if (k0 <= ex3 - 2) {
|
||||
f_rhs[p] -= sfz * d12dz *
|
||||
(-F3 * fh[idx_fh_F(iF, jF, kF + 1, ex)]
|
||||
-F10 * fh[idx_fh_F(iF, jF, kF , ex)]
|
||||
+F18 * fh[idx_fh_F(iF, jF, kF - 1, ex)]
|
||||
-F6 * fh[idx_fh_F(iF, jF, kF - 2, ex)]
|
||||
+ fh[idx_fh_F(iF, jF, kF - 3, ex)]);
|
||||
}
|
||||
} else if (sfz < ZEO) {
|
||||
if ((k0 - 2) >= kminF) {
|
||||
f_rhs[p] -= sfz * d12dz *
|
||||
(-F3 * fh[idx_fh_F(iF, jF, kF + 1, ex)]
|
||||
-F10 * fh[idx_fh_F(iF, jF, kF , ex)]
|
||||
+F18 * fh[idx_fh_F(iF, jF, kF - 1, ex)]
|
||||
-F6 * fh[idx_fh_F(iF, jF, kF - 2, ex)]
|
||||
+ fh[idx_fh_F(iF, jF, kF - 3, ex)]);
|
||||
} else if ((k0 - 1) >= kminF) {
|
||||
f_rhs[p] += sfz * d12dz *
|
||||
( fh[idx_fh_F(iF, jF, kF - 2, ex)]
|
||||
-EIT * fh[idx_fh_F(iF, jF, kF - 1, ex)]
|
||||
+EIT * fh[idx_fh_F(iF, jF, kF + 1, ex)]
|
||||
- fh[idx_fh_F(iF, jF, kF + 2, ex)]);
|
||||
} else if (k0 >= kminF) {
|
||||
f_rhs[p] += sfz * d12dz *
|
||||
(-F3 * fh[idx_fh_F(iF, jF, kF - 1, ex)]
|
||||
-F10 * fh[idx_fh_F(iF, jF, kF , ex)]
|
||||
+F18 * fh[idx_fh_F(iF, jF, kF + 1, ex)]
|
||||
-F6 * fh[idx_fh_F(iF, jF, kF + 2, ex)]
|
||||
+ fh[idx_fh_F(iF, jF, kF + 3, ex)]);
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// KO dissipation (same domain restriction as kodiss_c.C)
|
||||
if (eps > ZEO) {
|
||||
const int i0_lo = (iminF + 2 > 0) ? iminF + 2 : 0;
|
||||
const int j0_lo = (jminF + 2 > 0) ? jminF + 2 : 0;
|
||||
const int k0_lo = (kminF + 2 > 0) ? kminF + 2 : 0;
|
||||
const int i0_hi = imaxF - 4; // inclusive
|
||||
const int j0_hi = jmaxF - 4;
|
||||
const int k0_hi = kmaxF - 4;
|
||||
|
||||
if (!(i0_lo > i0_hi || j0_lo > j0_hi || k0_lo > k0_hi)) {
|
||||
for (int k0 = k0_lo; k0 <= k0_hi; ++k0) {
|
||||
const int kF = k0 + 1;
|
||||
for (int j0 = j0_lo; j0 <= j0_hi; ++j0) {
|
||||
const int jF = j0 + 1;
|
||||
for (int i0 = i0_lo; i0 <= i0_hi; ++i0) {
|
||||
const int iF = i0 + 1;
|
||||
const size_t p = idx_ex(i0, j0, k0, ex);
|
||||
|
||||
const double Dx_term =
|
||||
((fh[idx_fh_F(iF - 3, jF, kF, ex)] + fh[idx_fh_F(iF + 3, jF, kF, ex)]) -
|
||||
SIX * (fh[idx_fh_F(iF - 2, jF, kF, ex)] + fh[idx_fh_F(iF + 2, jF, kF, ex)]) +
|
||||
FIT * (fh[idx_fh_F(iF - 1, jF, kF, ex)] + fh[idx_fh_F(iF + 1, jF, kF, ex)]) -
|
||||
TWT * fh[idx_fh_F(iF, jF, kF, ex)]) / dX;
|
||||
|
||||
const double Dy_term =
|
||||
((fh[idx_fh_F(iF, jF - 3, kF, ex)] + fh[idx_fh_F(iF, jF + 3, kF, ex)]) -
|
||||
SIX * (fh[idx_fh_F(iF, jF - 2, kF, ex)] + fh[idx_fh_F(iF, jF + 2, kF, ex)]) +
|
||||
FIT * (fh[idx_fh_F(iF, jF - 1, kF, ex)] + fh[idx_fh_F(iF, jF + 1, kF, ex)]) -
|
||||
TWT * fh[idx_fh_F(iF, jF, kF, ex)]) / dY;
|
||||
|
||||
const double Dz_term =
|
||||
((fh[idx_fh_F(iF, jF, kF - 3, ex)] + fh[idx_fh_F(iF, jF, kF + 3, ex)]) -
|
||||
SIX * (fh[idx_fh_F(iF, jF, kF - 2, ex)] + fh[idx_fh_F(iF, jF, kF + 2, ex)]) +
|
||||
FIT * (fh[idx_fh_F(iF, jF, kF - 1, ex)] + fh[idx_fh_F(iF, jF, kF + 1, ex)]) -
|
||||
TWT * fh[idx_fh_F(iF, jF, kF, ex)]) / dZ;
|
||||
|
||||
f_rhs[p] += (eps / cof) * (Dx_term + Dy_term + Dz_term);
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
free(fh);
|
||||
}
|
||||
@@ -29,6 +29,16 @@
|
||||
|
||||
#define REGLEV 0
|
||||
|
||||
#define BSSN_FINE_TIMING 0
|
||||
|
||||
#define BSSN_FINE_TIMING_EVERY 1
|
||||
|
||||
#define BSSN_FINE_TIMING_TOPN 8
|
||||
|
||||
#define BSSN_KERNEL_FINE_TIMING 0
|
||||
|
||||
#define BSSN_ENABLE_STDIN_ABORT_POLL 0
|
||||
|
||||
//#define USE_GPU
|
||||
|
||||
//#define CHECKDETAIL
|
||||
@@ -88,6 +98,21 @@
|
||||
// 0: for every level;
|
||||
// 1: for all
|
||||
//
|
||||
// define BSSN_FINE_TIMING
|
||||
// enable fine-grained per-timestep timing monitor
|
||||
//
|
||||
// define BSSN_FINE_TIMING_EVERY
|
||||
// report timing every N coarse timesteps
|
||||
//
|
||||
// define BSSN_FINE_TIMING_TOPN
|
||||
// number of hottest timing buckets shown in stdout
|
||||
//
|
||||
// define BSSN_KERNEL_FINE_TIMING
|
||||
// enable split timing inside compute_rhs_bssn
|
||||
//
|
||||
// define BSSN_ENABLE_STDIN_ABORT_POLL
|
||||
// poll stdin and broadcast abort flag every coarse step
|
||||
//
|
||||
// define USE_GPU
|
||||
// use gpu or not
|
||||
//
|
||||
@@ -142,4 +167,3 @@
|
||||
#define TINY 1e-10
|
||||
|
||||
#endif /* MICRODEF_H */
|
||||
|
||||
|
||||
@@ -1,27 +1,35 @@
|
||||
|
||||
|
||||
include makefile.inc
|
||||
|
||||
## ABE build flags selected by PGO_MODE (set in makefile.inc, default: opt)
|
||||
## make -> opt (PGO-guided, maximum performance)
|
||||
## make PGO_MODE=instrument -> instrument (Phase 1: collect fresh profile data)
|
||||
PROFDATA = /home/$(shell whoami)/AMSS-NCKU/pgo_profile/default.profdata
|
||||
include makefile.inc
|
||||
|
||||
## polint(ordn=6) kernel selector:
|
||||
## 1 (default): barycentric fast path
|
||||
## 0 : fallback to Neville path
|
||||
POLINT6_USE_BARY ?= 1
|
||||
POLINT6_FLAG = -DPOLINT6_USE_BARYCENTRIC=$(POLINT6_USE_BARY)
|
||||
|
||||
## ABE build flags selected by PGO_MODE (set in makefile.inc, default: opt)
|
||||
## make -> opt (PGO-guided, maximum performance)
|
||||
## make PGO_MODE=instrument -> instrument (Phase 1: collect fresh profile data)
|
||||
PROFDATA = /home/$(shell whoami)/AMSS-NCKU/pgo_profile/default.profdata
|
||||
|
||||
ifeq ($(PGO_MODE),instrument)
|
||||
## Phase 1: instrumentation — omit -ipo/-fp-model fast=2 for faster build and numerical stability
|
||||
CXXAPPFLAGS = -O3 -xHost -fma -fprofile-instr-generate -ipo \
|
||||
-Dfortran3 -Dnewc -I${MKLROOT}/include $(INTERP_LB_FLAGS)
|
||||
f90appflags = -O3 -xHost -fma -fprofile-instr-generate -ipo \
|
||||
-align array64byte -fpp -I${MKLROOT}/include
|
||||
else
|
||||
## opt (default): maximum performance with PGO profile data
|
||||
CXXAPPFLAGS = -O3 -xHost -fp-model fast=2 -fma -ipo \
|
||||
-fprofile-instr-use=$(PROFDATA) \
|
||||
-Dfortran3 -Dnewc -I${MKLROOT}/include $(INTERP_LB_FLAGS)
|
||||
f90appflags = -O3 -xHost -fp-model fast=2 -fma -ipo \
|
||||
-fprofile-instr-use=$(PROFDATA) \
|
||||
-align array64byte -fpp -I${MKLROOT}/include
|
||||
endif
|
||||
CXXAPPFLAGS = -O3 -xHost -fma -fprofile-instr-generate -ipo \
|
||||
-Dfortran3 -Dnewc -I${MKLROOT}/include $(INTERP_LB_FLAGS)
|
||||
f90appflags = -O3 -xHost -fma -fprofile-instr-generate -ipo \
|
||||
-align array64byte -fpp -I${MKLROOT}/include $(POLINT6_FLAG)
|
||||
else
|
||||
## opt (default): maximum performance with PGO profile data -fprofile-instr-use=$(PROFDATA) \
|
||||
## PGO has been turned off, now tested and found to be negative optimization
|
||||
## INTERP_LB_FLAGS has been turned off too, now tested and found to be negative optimization
|
||||
|
||||
|
||||
CXXAPPFLAGS = -O3 -xHost -fp-model fast=2 -fma -ipo \
|
||||
-Dfortran3 -Dnewc -I${MKLROOT}/include $(INTERP_LB_FLAGS)
|
||||
f90appflags = -O3 -xHost -fp-model fast=2 -fma -ipo \
|
||||
-align array64byte -fpp -I${MKLROOT}/include $(POLINT6_FLAG)
|
||||
endif
|
||||
|
||||
.SUFFIXES: .o .f90 .C .for .cu
|
||||
|
||||
@@ -50,11 +58,14 @@ fdderivs_c.o: fdderivs_c.C
|
||||
kodiss_c.o: kodiss_c.C
|
||||
${CXX} $(CXXAPPFLAGS) -c $< $(filein) -o $@
|
||||
|
||||
lopsided_c.o: lopsided_c.C
|
||||
${CXX} $(CXXAPPFLAGS) -c $< $(filein) -o $@
|
||||
|
||||
interp_lb_profile.o: interp_lb_profile.C interp_lb_profile.h
|
||||
${CXX} $(CXXAPPFLAGS) -c $< $(filein) -o $@
|
||||
lopsided_c.o: lopsided_c.C
|
||||
${CXX} $(CXXAPPFLAGS) -c $< $(filein) -o $@
|
||||
|
||||
lopsided_kodis_c.o: lopsided_kodis_c.C
|
||||
${CXX} $(CXXAPPFLAGS) -c $< $(filein) -o $@
|
||||
|
||||
#interp_lb_profile.o: interp_lb_profile.C interp_lb_profile.h
|
||||
# ${CXX} $(CXXAPPFLAGS) -c $< $(filein) -o $@
|
||||
|
||||
## TwoPunctureABE uses fixed optimal flags with its own PGO profile, independent of CXXAPPFLAGS
|
||||
TP_PROFDATA = /home/$(shell whoami)/AMSS-NCKU/pgo_profile/TwoPunctureABE.profdata
|
||||
@@ -71,13 +82,21 @@ TwoPunctureABE.o: TwoPunctureABE.C
|
||||
# Input files
|
||||
|
||||
## Kernel implementation switch (set USE_CXX_KERNELS=0 to fall back to Fortran)
|
||||
ifeq ($(USE_CXX_KERNELS),0)
|
||||
# Fortran mode: no C rewrite files; bssn_rhs.o is included via F90FILES below
|
||||
CFILES =
|
||||
else
|
||||
# C++ mode (default): C rewrite of bssn_rhs and helper kernels
|
||||
CFILES = bssn_rhs_c.o fderivs_c.o fdderivs_c.o kodiss_c.o lopsided_c.o
|
||||
endif
|
||||
ifeq ($(USE_CXX_KERNELS),0)
|
||||
# Fortran mode: no C rewrite files; bssn_rhs.o is included via F90FILES below
|
||||
CFILES =
|
||||
else
|
||||
# C++ mode (default): C rewrite of bssn_rhs and helper kernels
|
||||
CFILES = bssn_rhs_c.o fderivs_c.o fdderivs_c.o kodiss_c.o lopsided_c.o lopsided_kodis_c.o
|
||||
endif
|
||||
|
||||
## RK4 kernel switch (independent from USE_CXX_KERNELS)
|
||||
ifeq ($(USE_CXX_RK4),1)
|
||||
CFILES += rungekutta4_rout_c.o
|
||||
RK4_F90_OBJ =
|
||||
else
|
||||
RK4_F90_OBJ = rungekutta4_rout.o
|
||||
endif
|
||||
|
||||
C++FILES = ABE.o Ansorg.o Block.o misc.o monitor.o Parallel.o MPatch.o var.o\
|
||||
cgh.o bssn_class.o surface_integral.o ShellPatch.o\
|
||||
@@ -94,12 +113,12 @@ C++FILES_GPU = ABE.o Ansorg.o Block.o misc.o monitor.o Parallel.o MPatch.o var.o
|
||||
NullShellPatch2_Evo.o \
|
||||
bssn_gpu_class.o bssn_step_gpu.o bssn_macro.o writefile_f.o
|
||||
|
||||
F90FILES_BASE = enforce_algebra.o fmisc.o initial_puncture.o prolongrestrict.o\
|
||||
prolongrestrict_cell.o prolongrestrict_vertex.o\
|
||||
rungekutta4_rout.o diff_new.o kodiss.o kodiss_sh.o\
|
||||
lopsidediff.o sommerfeld_rout.o getnp4.o diff_new_sh.o\
|
||||
shellfunctions.o bssn_rhs_ss.o Set_Rho_ADM.o\
|
||||
getnp4EScalar.o bssnEScalar_rhs.o bssn_constraint.o ricci_gamma.o\
|
||||
F90FILES_BASE = enforce_algebra.o fmisc.o initial_puncture.o prolongrestrict.o\
|
||||
prolongrestrict_cell.o prolongrestrict_vertex.o\
|
||||
$(RK4_F90_OBJ) diff_new.o kodiss.o kodiss_sh.o\
|
||||
lopsidediff.o sommerfeld_rout.o getnp4.o diff_new_sh.o\
|
||||
shellfunctions.o bssn_rhs_ss.o Set_Rho_ADM.o\
|
||||
getnp4EScalar.o bssnEScalar_rhs.o bssn_constraint.o ricci_gamma.o\
|
||||
fadmquantites_bssn.o Z4c_rhs.o Z4c_rhs_ss.o point_diff_new_sh.o\
|
||||
cpbc.o getnp4old.o NullEvol.o initial_null.o initial_maxwell.o\
|
||||
getnpem2.o empart.o NullNews.o fourdcurvature.o\
|
||||
|
||||
@@ -10,6 +10,20 @@ filein = -I/usr/include/ -I${MKLROOT}/include
|
||||
## Added -lifcore for Intel Fortran runtime and -limf for Intel math library
|
||||
LDLIBS = -L${MKLROOT}/lib -lmkl_intel_lp64 -lmkl_sequential -lmkl_core -lifcore -limf -lpthread -lm -ldl -liomp5
|
||||
|
||||
## Memory allocator switch
|
||||
## 1 (default) : link Intel oneTBB allocator (libtbbmalloc)
|
||||
## 0 : use system default allocator (ptmalloc)
|
||||
USE_TBBMALLOC ?= 1
|
||||
TBBMALLOC_SO ?= /home/intel/oneapi/2025.3/lib/libtbbmalloc.so
|
||||
ifneq ($(wildcard $(TBBMALLOC_SO)),)
|
||||
TBBMALLOC_LIBS = -Wl,--no-as-needed $(TBBMALLOC_SO) -Wl,--as-needed
|
||||
else
|
||||
TBBMALLOC_LIBS = -Wl,--no-as-needed -ltbbmalloc -Wl,--as-needed
|
||||
endif
|
||||
ifeq ($(USE_TBBMALLOC),1)
|
||||
LDLIBS := $(TBBMALLOC_LIBS) $(LDLIBS)
|
||||
endif
|
||||
|
||||
## PGO build mode switch (ABE only; TwoPunctureABE always uses opt flags)
|
||||
## opt : (default) maximum performance with PGO profile-guided optimization
|
||||
## instrument : PGO Phase 1 instrumentation to collect fresh profile data
|
||||
@@ -33,6 +47,12 @@ endif
|
||||
## 1 (default) : use C++ rewrite of bssn_rhs and helper kernels (faster)
|
||||
## 0 : fall back to original Fortran kernels
|
||||
USE_CXX_KERNELS ?= 1
|
||||
|
||||
## RK4 kernel implementation switch
|
||||
## 1 (default) : use C/C++ rewrite of rungekutta4_rout (for optimization experiments)
|
||||
## 0 : use original Fortran rungekutta4_rout.o
|
||||
USE_CXX_RK4 ?= 1
|
||||
|
||||
f90 = ifx
|
||||
f77 = ifx
|
||||
CXX = icpx
|
||||
|
||||
@@ -1934,18 +1934,35 @@
|
||||
! when if=1 -> ic=0, this is different to vertex center grid
|
||||
real*8, dimension(-2:extc(1),-2:extc(2),-2:extc(3)) :: funcc
|
||||
integer,dimension(3) :: cxI
|
||||
integer :: i,j,k,ii,jj,kk
|
||||
integer :: i,j,k,ii,jj,kk,px,py,pz
|
||||
real*8, dimension(6,6) :: tmp2
|
||||
real*8, dimension(6) :: tmp1
|
||||
integer, dimension(extf(1)) :: cix
|
||||
integer, dimension(extf(2)) :: ciy
|
||||
integer, dimension(extf(3)) :: ciz
|
||||
integer, dimension(extf(1)) :: pix
|
||||
integer, dimension(extf(2)) :: piy
|
||||
integer, dimension(extf(3)) :: piz
|
||||
|
||||
real*8, parameter :: C1=7.7d1/8.192d3,C2=-6.93d2/8.192d3,C3=3.465d3/4.096d3
|
||||
real*8, parameter :: C6=6.3d1/8.192d3,C5=-4.95d2/8.192d3,C4=1.155d3/4.096d3
|
||||
real*8, dimension(6,2), parameter :: WC = reshape((/&
|
||||
C1,C2,C3,C4,C5,C6,&
|
||||
C6,C5,C4,C3,C2,C1/), (/6,2/))
|
||||
|
||||
integer::imini,imaxi,jmini,jmaxi,kmini,kmaxi
|
||||
integer::imino,imaxo,jmino,jmaxo,kmino,kmaxo
|
||||
integer::maxcx,maxcy,maxcz
|
||||
|
||||
real*8,dimension(3) :: CD,FD
|
||||
|
||||
real*8 :: tmp_yz(extc(1), 6) ! 存储整条 X 线上 6 个 Y 轴偏置的 Z 向插值结果
|
||||
real*8 :: tmp_xyz_line(-2:extc(1)) ! 包含 X 向 6 点模板访问所需下界
|
||||
real*8 :: v1, v2, v3, v4, v5, v6
|
||||
integer :: ic, jc, kc, ix_offset,ix,iy,iz,jc_min,jc_max,ic_min,ic_max,kc_min,kc_max
|
||||
integer :: i_lo, i_hi, j_lo, j_hi, k_lo, k_hi
|
||||
logical :: need_full_symmetry
|
||||
real*8 :: res_line
|
||||
real*8 :: tmp_z_slab(-2:extc(1), -2:extc(2)) ! 包含 Y/X 向模板访问所需下界
|
||||
if(wei.ne.3)then
|
||||
write(*,*)"prolongrestrict.f90::prolong3: this routine only surport 3 dimension"
|
||||
write(*,*)"dim = ",wei
|
||||
@@ -2020,145 +2037,140 @@
|
||||
return
|
||||
endif
|
||||
|
||||
call symmetry_bd(3,extc,func,funcc,SoA)
|
||||
|
||||
!~~~~~~> prolongation start...
|
||||
do i = imino,imaxo
|
||||
ii = i + lbf(1) - 1
|
||||
cix(i) = ii/2 - lbc(1) + 1
|
||||
if(ii/2*2 == ii)then
|
||||
pix(i) = 1
|
||||
else
|
||||
pix(i) = 2
|
||||
endif
|
||||
enddo
|
||||
do j = jmino,jmaxo
|
||||
jj = j + lbf(2) - 1
|
||||
ciy(j) = jj/2 - lbc(2) + 1
|
||||
if(jj/2*2 == jj)then
|
||||
piy(j) = 1
|
||||
else
|
||||
piy(j) = 2
|
||||
endif
|
||||
enddo
|
||||
do k = kmino,kmaxo
|
||||
do j = jmino,jmaxo
|
||||
do i = imino,imaxo
|
||||
cxI(1) = i
|
||||
cxI(2) = j
|
||||
cxI(3) = k
|
||||
! change to coarse level reference
|
||||
!|---*--- ---*--- ---*--- ---*--- ---*--- ---*--- ---*--- ---*---|
|
||||
!|=======x===============x===============x===============x=======|
|
||||
cxI = (cxI+lbf-1)/2
|
||||
! change to array index
|
||||
cxI = cxI - lbc + 1
|
||||
|
||||
if(any(cxI+3 > extc)) write(*,*)"error in prolong"
|
||||
ii=i+lbf(1)-1
|
||||
jj=j+lbf(2)-1
|
||||
kk=k+lbf(3)-1
|
||||
#if 0
|
||||
if(ii/2*2==ii)then
|
||||
if(jj/2*2==jj)then
|
||||
if(kk/2*2==kk)then
|
||||
tmp2= C1*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-2)+&
|
||||
C2*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-1)+&
|
||||
C3*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3) )+&
|
||||
C4*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+1)+&
|
||||
C5*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+2)+&
|
||||
C6*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+3)
|
||||
tmp1= C1*tmp2(:,1)+C2*tmp2(:,2)+C3*tmp2(:,3)+C4*tmp2(:,4)+C5*tmp2(:,5)+C6*tmp2(:,6)
|
||||
funf(i,j,k)= C1*tmp1(1)+C2*tmp1(2)+C3*tmp1(3)+C4*tmp1(4)+C5*tmp1(5)+C6*tmp1(6)
|
||||
else
|
||||
tmp2= C6*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-2)+&
|
||||
C5*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-1)+&
|
||||
C4*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3) )+&
|
||||
C3*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+1)+&
|
||||
C2*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+2)+&
|
||||
C1*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+3)
|
||||
tmp1= C1*tmp2(:,1)+C2*tmp2(:,2)+C3*tmp2(:,3)+C4*tmp2(:,4)+C5*tmp2(:,5)+C6*tmp2(:,6)
|
||||
funf(i,j,k)= C1*tmp1(1)+C2*tmp1(2)+C3*tmp1(3)+C4*tmp1(4)+C5*tmp1(5)+C6*tmp1(6)
|
||||
endif
|
||||
else
|
||||
if(kk/2*2==kk)then
|
||||
tmp2= C1*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-2)+&
|
||||
C2*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-1)+&
|
||||
C3*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3) )+&
|
||||
C4*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+1)+&
|
||||
C5*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+2)+&
|
||||
C6*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+3)
|
||||
tmp1= C6*tmp2(:,1)+C5*tmp2(:,2)+C4*tmp2(:,3)+C3*tmp2(:,4)+C2*tmp2(:,5)+C1*tmp2(:,6)
|
||||
funf(i,j,k)= C1*tmp1(1)+C2*tmp1(2)+C3*tmp1(3)+C4*tmp1(4)+C5*tmp1(5)+C6*tmp1(6)
|
||||
else
|
||||
tmp2= C6*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-2)+&
|
||||
C5*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-1)+&
|
||||
C4*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3) )+&
|
||||
C3*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+1)+&
|
||||
C2*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+2)+&
|
||||
C1*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+3)
|
||||
tmp1= C6*tmp2(:,1)+C5*tmp2(:,2)+C4*tmp2(:,3)+C3*tmp2(:,4)+C2*tmp2(:,5)+C1*tmp2(:,6)
|
||||
funf(i,j,k)= C1*tmp1(1)+C2*tmp1(2)+C3*tmp1(3)+C4*tmp1(4)+C5*tmp1(5)+C6*tmp1(6)
|
||||
endif
|
||||
endif
|
||||
else
|
||||
if(jj/2*2==jj)then
|
||||
if(kk/2*2==kk)then
|
||||
tmp2= C1*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-2)+&
|
||||
C2*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-1)+&
|
||||
C3*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3) )+&
|
||||
C4*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+1)+&
|
||||
C5*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+2)+&
|
||||
C6*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+3)
|
||||
tmp1= C1*tmp2(:,1)+C2*tmp2(:,2)+C3*tmp2(:,3)+C4*tmp2(:,4)+C5*tmp2(:,5)+C6*tmp2(:,6)
|
||||
funf(i,j,k)= C6*tmp1(1)+C5*tmp1(2)+C4*tmp1(3)+C3*tmp1(4)+C2*tmp1(5)+C1*tmp1(6)
|
||||
else
|
||||
tmp2= C6*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-2)+&
|
||||
C5*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-1)+&
|
||||
C4*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3) )+&
|
||||
C3*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+1)+&
|
||||
C2*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+2)+&
|
||||
C1*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+3)
|
||||
tmp1= C1*tmp2(:,1)+C2*tmp2(:,2)+C3*tmp2(:,3)+C4*tmp2(:,4)+C5*tmp2(:,5)+C6*tmp2(:,6)
|
||||
funf(i,j,k)= C6*tmp1(1)+C5*tmp1(2)+C4*tmp1(3)+C3*tmp1(4)+C2*tmp1(5)+C1*tmp1(6)
|
||||
endif
|
||||
else
|
||||
if(kk/2*2==kk)then
|
||||
tmp2= C1*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-2)+&
|
||||
C2*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-1)+&
|
||||
C3*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3) )+&
|
||||
C4*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+1)+&
|
||||
C5*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+2)+&
|
||||
C6*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+3)
|
||||
tmp1= C6*tmp2(:,1)+C5*tmp2(:,2)+C4*tmp2(:,3)+C3*tmp2(:,4)+C2*tmp2(:,5)+C1*tmp2(:,6)
|
||||
funf(i,j,k)= C6*tmp1(1)+C5*tmp1(2)+C4*tmp1(3)+C3*tmp1(4)+C2*tmp1(5)+C1*tmp1(6)
|
||||
else
|
||||
tmp2= C6*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-2)+&
|
||||
C5*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-1)+&
|
||||
C4*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3) )+&
|
||||
C3*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+1)+&
|
||||
C2*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+2)+&
|
||||
C1*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+3)
|
||||
tmp1= C6*tmp2(:,1)+C5*tmp2(:,2)+C4*tmp2(:,3)+C3*tmp2(:,4)+C2*tmp2(:,5)+C1*tmp2(:,6)
|
||||
funf(i,j,k)= C6*tmp1(1)+C5*tmp1(2)+C4*tmp1(3)+C3*tmp1(4)+C2*tmp1(5)+C1*tmp1(6)
|
||||
endif
|
||||
endif
|
||||
endif
|
||||
#else
|
||||
if(kk/2*2==kk)then
|
||||
tmp2= C1*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-2)+&
|
||||
C2*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-1)+&
|
||||
C3*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3) )+&
|
||||
C4*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+1)+&
|
||||
C5*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+2)+&
|
||||
C6*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+3)
|
||||
else
|
||||
tmp2= C6*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-2)+&
|
||||
C5*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)-1)+&
|
||||
C4*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3) )+&
|
||||
C3*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+1)+&
|
||||
C2*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+2)+&
|
||||
C1*funcc(cxI(1)-2:cxI(1)+3,cxI(2)-2:cxI(2)+3,cxI(3)+3)
|
||||
endif
|
||||
|
||||
if(jj/2*2==jj)then
|
||||
tmp1= C1*tmp2(:,1)+C2*tmp2(:,2)+C3*tmp2(:,3)+C4*tmp2(:,4)+C5*tmp2(:,5)+C6*tmp2(:,6)
|
||||
else
|
||||
tmp1= C6*tmp2(:,1)+C5*tmp2(:,2)+C4*tmp2(:,3)+C3*tmp2(:,4)+C2*tmp2(:,5)+C1*tmp2(:,6)
|
||||
endif
|
||||
|
||||
if(ii/2*2==ii)then
|
||||
funf(i,j,k)= C1*tmp1(1)+C2*tmp1(2)+C3*tmp1(3)+C4*tmp1(4)+C5*tmp1(5)+C6*tmp1(6)
|
||||
else
|
||||
funf(i,j,k)= C6*tmp1(1)+C5*tmp1(2)+C4*tmp1(3)+C3*tmp1(4)+C2*tmp1(5)+C1*tmp1(6)
|
||||
endif
|
||||
#endif
|
||||
enddo
|
||||
enddo
|
||||
kk = k + lbf(3) - 1
|
||||
ciz(k) = kk/2 - lbc(3) + 1
|
||||
if(kk/2*2 == kk)then
|
||||
piz(k) = 1
|
||||
else
|
||||
piz(k) = 2
|
||||
endif
|
||||
enddo
|
||||
|
||||
ic_min = minval(cix(imino:imaxo))
|
||||
ic_max = maxval(cix(imino:imaxo))
|
||||
jc_min = minval(ciy(jmino:jmaxo))
|
||||
jc_max = maxval(ciy(jmino:jmaxo))
|
||||
kc_min = minval(ciz(kmino:kmaxo))
|
||||
kc_max = maxval(ciz(kmino:kmaxo))
|
||||
|
||||
maxcx = ic_max
|
||||
maxcy = jc_max
|
||||
maxcz = kc_max
|
||||
if(maxcx+3 > extc(1) .or. maxcy+3 > extc(2) .or. maxcz+3 > extc(3))then
|
||||
write(*,*)"error in prolong"
|
||||
return
|
||||
endif
|
||||
|
||||
i_lo = ic_min - 2
|
||||
i_hi = ic_max + 3
|
||||
j_lo = jc_min - 2
|
||||
j_hi = jc_max + 3
|
||||
k_lo = kc_min - 2
|
||||
k_hi = kc_max + 3
|
||||
need_full_symmetry = (i_lo < 1) .or. (j_lo < 1) .or. (k_lo < 1)
|
||||
if(need_full_symmetry)then
|
||||
call symmetry_bd(3,extc,func,funcc,SoA)
|
||||
else
|
||||
funcc(i_lo:i_hi,j_lo:j_hi,k_lo:k_hi) = func(i_lo:i_hi,j_lo:j_hi,k_lo:k_hi)
|
||||
endif
|
||||
|
||||
! 对每个 k(pz, kc 固定)预计算 Z 向插值的 2D 切片
|
||||
|
||||
do k = kmino, kmaxo
|
||||
pz = piz(k); kc = ciz(k)
|
||||
! --- Pass 1: Z 方向,只算一次 ---
|
||||
do iy = jc_min-2, jc_max+3 ! 仅需的 iy 范围(对应 jc-2:jc+3)
|
||||
do ii = ic_min-2, ic_max+3 ! 仅需的 ii 范围(对应 cix-2:cix+3)
|
||||
tmp_z_slab(ii, iy) = sum(WC(:,pz) * funcc(ii, iy, kc-2:kc+3))
|
||||
end do
|
||||
end do
|
||||
|
||||
do j = jmino, jmaxo
|
||||
py = piy(j); jc = ciy(j)
|
||||
! --- Pass 2: Y 方向 ---
|
||||
do ii = ic_min-2, ic_max+3
|
||||
tmp_xyz_line(ii) = sum(WC(:,py) * tmp_z_slab(ii, jc-2:jc+3))
|
||||
end do
|
||||
! --- Pass 3: X 方向 ---
|
||||
do i = imino, imaxo
|
||||
funf(i,j,k) = sum(WC(:,pix(i)) * tmp_xyz_line(cix(i)-2:cix(i)+3))
|
||||
end do
|
||||
end do
|
||||
end do
|
||||
|
||||
!~~~~~~> prolongation start...
|
||||
#if 0
|
||||
do k = kmino, kmaxo
|
||||
pz = piz(k)
|
||||
kc = ciz(k)
|
||||
|
||||
do j = jmino, jmaxo
|
||||
py = piy(j)
|
||||
jc = ciy(j)
|
||||
|
||||
! --- 步骤 1 & 2 融合:分段处理 X 轴,提升 Cache 命中率 ---
|
||||
! 我们将 ii 循环逻辑重组,减少对 funcc 的跨行重复访问
|
||||
do ii = 1, extc(1)
|
||||
! 1. 先做 Z 方向的 6 条线插值(针对当前的 ii 和当前的 6 个 iy)
|
||||
! 我们直接在这里把 Y 方向的加权也做了,省去 tmp_yz 数组
|
||||
! 这样 funcc 的数据读进来后立即完成所有维度的贡献,不再写回内存
|
||||
|
||||
res_line = 0.0d0
|
||||
do jj = 1, 6
|
||||
iy = jc - 3 + jj
|
||||
! 这一行代码是核心:一次性完成 Z 插值并加上 Y 的权重
|
||||
! 编译器会把 WC(jj, py) 存在寄存器里
|
||||
res_line = res_line + WC(jj, py) * ( &
|
||||
WC(1, pz) * funcc(ii, iy, kc-2) + &
|
||||
WC(2, pz) * funcc(ii, iy, kc-1) + &
|
||||
WC(3, pz) * funcc(ii, iy, kc ) + &
|
||||
WC(4, pz) * funcc(ii, iy, kc+1) + &
|
||||
WC(5, pz) * funcc(ii, iy, kc+2) + &
|
||||
WC(6, pz) * funcc(ii, iy, kc+3) )
|
||||
end do
|
||||
tmp_xyz_line(ii) = res_line
|
||||
end do
|
||||
|
||||
|
||||
|
||||
|
||||
! 3. 【降维:X 向】最后在最内层只处理 X 方向的 6 点加权
|
||||
! 此时每个点的计算量从原来的 200+ 次乘法降到了仅 6 次
|
||||
do i = imino, imaxo
|
||||
px = pix(i)
|
||||
ic = cix(i)
|
||||
|
||||
! 直接从预计算好的 line 中读取连续的 6 个点
|
||||
! ic-2 到 ic+3 对应原始 6 点算子
|
||||
funf(i,j,k) = WC(1,px)*tmp_xyz_line(ic-2) + &
|
||||
WC(2,px)*tmp_xyz_line(ic-1) + &
|
||||
WC(3,px)*tmp_xyz_line(ic ) + &
|
||||
WC(4,px)*tmp_xyz_line(ic+1) + &
|
||||
WC(5,px)*tmp_xyz_line(ic+2) + &
|
||||
WC(6,px)*tmp_xyz_line(ic+3)
|
||||
end do
|
||||
end do
|
||||
end do
|
||||
#endif
|
||||
return
|
||||
|
||||
end subroutine prolong3
|
||||
@@ -2357,7 +2369,14 @@
|
||||
integer::imino,imaxo,jmino,jmaxo,kmino,kmaxo
|
||||
|
||||
real*8,dimension(3) :: CD,FD
|
||||
|
||||
|
||||
real*8 :: tmp_xz_plane(-1:extf(1), 6)
|
||||
real*8 :: tmp_x_line(-1:extf(1))
|
||||
integer :: fi, fj, fk, ii, jj, kk
|
||||
integer :: fi_min, fi_max, ii_lo, ii_hi
|
||||
integer :: fj_min, fj_max, fk_min, fk_max, jj_lo, jj_hi, kk_lo, kk_hi
|
||||
logical :: need_full_symmetry
|
||||
|
||||
if(wei.ne.3)then
|
||||
write(*,*)"prolongrestrict.f90::restrict3: this routine only surport 3 dimension"
|
||||
write(*,*)"dim = ",wei
|
||||
@@ -2436,9 +2455,86 @@
|
||||
stop
|
||||
endif
|
||||
|
||||
call symmetry_bd(2,extf,funf,funff,SoA)
|
||||
! 仅计算 X 向最终写回所需的窗口:
|
||||
! func(i,j,k) 只访问 tmp_x_line(fi-2:fi+3)
|
||||
fi_min = 2*(imino + lbc(1) - 1) - 1 - lbf(1) + 1
|
||||
fi_max = 2*(imaxo + lbc(1) - 1) - 1 - lbf(1) + 1
|
||||
fj_min = 2*(jmino + lbc(2) - 1) - 1 - lbf(2) + 1
|
||||
fj_max = 2*(jmaxo + lbc(2) - 1) - 1 - lbf(2) + 1
|
||||
fk_min = 2*(kmino + lbc(3) - 1) - 1 - lbf(3) + 1
|
||||
fk_max = 2*(kmaxo + lbc(3) - 1) - 1 - lbf(3) + 1
|
||||
ii_lo = fi_min - 2
|
||||
ii_hi = fi_max + 3
|
||||
jj_lo = fj_min - 2
|
||||
jj_hi = fj_max + 3
|
||||
kk_lo = fk_min - 2
|
||||
kk_hi = fk_max + 3
|
||||
if(ii_lo < -1 .or. ii_hi > extf(1) .or. &
|
||||
jj_lo < -1 .or. jj_hi > extf(2) .or. &
|
||||
kk_lo < -1 .or. kk_hi > extf(3))then
|
||||
write(*,*)"restrict3: invalid stencil window"
|
||||
write(*,*)"ii=",ii_lo,ii_hi," jj=",jj_lo,jj_hi," kk=",kk_lo,kk_hi
|
||||
write(*,*)"extf=",extf
|
||||
stop
|
||||
endif
|
||||
need_full_symmetry = (ii_lo < 1) .or. (jj_lo < 1) .or. (kk_lo < 1)
|
||||
if(need_full_symmetry)then
|
||||
call symmetry_bd(2,extf,funf,funff,SoA)
|
||||
else
|
||||
funff(ii_lo:ii_hi,jj_lo:jj_hi,kk_lo:kk_hi) = funf(ii_lo:ii_hi,jj_lo:jj_hi,kk_lo:kk_hi)
|
||||
endif
|
||||
|
||||
!~~~~~~> restriction start...
|
||||
do k = kmino, kmaxo
|
||||
fk = 2*(k + lbc(3) - 1) - 1 - lbf(3) + 1
|
||||
|
||||
do j = jmino, jmaxo
|
||||
fj = 2*(j + lbc(2) - 1) - 1 - lbf(2) + 1
|
||||
|
||||
! 优化点 1: 显式展开 Z 方向计算,减少循环开销
|
||||
! 确保 ii 循环是最内层且连续访问
|
||||
!DIR$ VECTOR ALWAYS
|
||||
do ii = ii_lo, ii_hi
|
||||
! 预计算当前 j 对应的 6 行在 Z 方向的压缩结果
|
||||
! 这里直接硬编码 jj 的偏移,彻底消除一层循环
|
||||
tmp_xz_plane(ii, 1) = C1*(funff(ii,fj-2,fk-2)+funff(ii,fj-2,fk+3)) + &
|
||||
C2*(funff(ii,fj-2,fk-1)+funff(ii,fj-2,fk+2)) + &
|
||||
C3*(funff(ii,fj-2,fk )+funff(ii,fj-2,fk+1))
|
||||
tmp_xz_plane(ii, 2) = C1*(funff(ii,fj-1,fk-2)+funff(ii,fj-1,fk+3)) + &
|
||||
C2*(funff(ii,fj-1,fk-1)+funff(ii,fj-1,fk+2)) + &
|
||||
C3*(funff(ii,fj-1,fk )+funff(ii,fj-1,fk+1))
|
||||
tmp_xz_plane(ii, 3) = C1*(funff(ii,fj ,fk-2)+funff(ii,fj ,fk+3)) + &
|
||||
C2*(funff(ii,fj ,fk-1)+funff(ii,fj ,fk+2)) + &
|
||||
C3*(funff(ii,fj ,fk )+funff(ii,fj ,fk+1))
|
||||
tmp_xz_plane(ii, 4) = C1*(funff(ii,fj+1,fk-2)+funff(ii,fj+1,fk+3)) + &
|
||||
C2*(funff(ii,fj+1,fk-1)+funff(ii,fj+1,fk+2)) + &
|
||||
C3*(funff(ii,fj+1,fk )+funff(ii,fj+1,fk+1))
|
||||
tmp_xz_plane(ii, 5) = C1*(funff(ii,fj+2,fk-2)+funff(ii,fj+2,fk+3)) + &
|
||||
C2*(funff(ii,fj+2,fk-1)+funff(ii,fj+2,fk+2)) + &
|
||||
C3*(funff(ii,fj+2,fk )+funff(ii,fj+2,fk+1))
|
||||
tmp_xz_plane(ii, 6) = C1*(funff(ii,fj+3,fk-2)+funff(ii,fj+3,fk+3)) + &
|
||||
C2*(funff(ii,fj+3,fk-1)+funff(ii,fj+3,fk+2)) + &
|
||||
C3*(funff(ii,fj+3,fk )+funff(ii,fj+3,fk+1))
|
||||
end do
|
||||
|
||||
! 优化点 2: 同样向量化 Y 方向压缩
|
||||
!DIR$ VECTOR ALWAYS
|
||||
do ii = ii_lo, ii_hi
|
||||
tmp_x_line(ii) = C1*(tmp_xz_plane(ii, 1) + tmp_xz_plane(ii, 6)) + &
|
||||
C2*(tmp_xz_plane(ii, 2) + tmp_xz_plane(ii, 5)) + &
|
||||
C3*(tmp_xz_plane(ii, 3) + tmp_xz_plane(ii, 4))
|
||||
end do
|
||||
|
||||
! 优化点 3: 最终写入,利用已经缓存在 tmp_x_line 的数据
|
||||
do i = imino, imaxo
|
||||
fi = 2*(i + lbc(1) - 1) - 1 - lbf(1) + 1
|
||||
func(i, j, k) = C1*(tmp_x_line(fi-2) + tmp_x_line(fi+3)) + &
|
||||
C2*(tmp_x_line(fi-1) + tmp_x_line(fi+2)) + &
|
||||
C3*(tmp_x_line(fi ) + tmp_x_line(fi+1))
|
||||
end do
|
||||
end do
|
||||
end do
|
||||
#if 0
|
||||
do k = kmino,kmaxo
|
||||
do j = jmino,jmaxo
|
||||
do i = imino,imaxo
|
||||
@@ -2462,7 +2558,7 @@
|
||||
enddo
|
||||
enddo
|
||||
enddo
|
||||
|
||||
#endif
|
||||
return
|
||||
|
||||
end subroutine restrict3
|
||||
|
||||
212
AMSS_NCKU_source/rungekutta4_rout_c.C
Normal file
212
AMSS_NCKU_source/rungekutta4_rout_c.C
Normal file
@@ -0,0 +1,212 @@
|
||||
#include "rungekutta4_rout.h"
|
||||
#include <cstdio>
|
||||
#include <cstdlib>
|
||||
#include <cstddef>
|
||||
#include <complex>
|
||||
#include <immintrin.h>
|
||||
|
||||
namespace {
|
||||
|
||||
inline void rk4_stage0(std::size_t n,
|
||||
const double *__restrict f0,
|
||||
const double *__restrict frhs,
|
||||
double *__restrict f1,
|
||||
double c) {
|
||||
std::size_t i = 0;
|
||||
#if defined(__AVX512F__)
|
||||
const __m512d vc = _mm512_set1_pd(c);
|
||||
for (; i + 7 < n; i += 8) {
|
||||
const __m512d v0 = _mm512_loadu_pd(f0 + i);
|
||||
const __m512d vr = _mm512_loadu_pd(frhs + i);
|
||||
_mm512_storeu_pd(f1 + i, _mm512_fmadd_pd(vc, vr, v0));
|
||||
}
|
||||
#elif defined(__AVX2__)
|
||||
const __m256d vc = _mm256_set1_pd(c);
|
||||
for (; i + 3 < n; i += 4) {
|
||||
const __m256d v0 = _mm256_loadu_pd(f0 + i);
|
||||
const __m256d vr = _mm256_loadu_pd(frhs + i);
|
||||
_mm256_storeu_pd(f1 + i, _mm256_fmadd_pd(vc, vr, v0));
|
||||
}
|
||||
#endif
|
||||
#pragma ivdep
|
||||
for (; i < n; ++i) {
|
||||
f1[i] = f0[i] + c * frhs[i];
|
||||
}
|
||||
}
|
||||
|
||||
inline void rk4_rhs_accum(std::size_t n,
|
||||
const double *__restrict f1,
|
||||
double *__restrict frhs) {
|
||||
std::size_t i = 0;
|
||||
#if defined(__AVX512F__)
|
||||
const __m512d v2 = _mm512_set1_pd(2.0);
|
||||
for (; i + 7 < n; i += 8) {
|
||||
const __m512d v1 = _mm512_loadu_pd(f1 + i);
|
||||
const __m512d vrhs = _mm512_loadu_pd(frhs + i);
|
||||
_mm512_storeu_pd(frhs + i, _mm512_fmadd_pd(v2, v1, vrhs));
|
||||
}
|
||||
#elif defined(__AVX2__)
|
||||
const __m256d v2 = _mm256_set1_pd(2.0);
|
||||
for (; i + 3 < n; i += 4) {
|
||||
const __m256d v1 = _mm256_loadu_pd(f1 + i);
|
||||
const __m256d vrhs = _mm256_loadu_pd(frhs + i);
|
||||
_mm256_storeu_pd(frhs + i, _mm256_fmadd_pd(v2, v1, vrhs));
|
||||
}
|
||||
#endif
|
||||
#pragma ivdep
|
||||
for (; i < n; ++i) {
|
||||
frhs[i] = frhs[i] + 2.0 * f1[i];
|
||||
}
|
||||
}
|
||||
|
||||
inline void rk4_f1_from_f0_f1(std::size_t n,
|
||||
const double *__restrict f0,
|
||||
double *__restrict f1,
|
||||
double c) {
|
||||
std::size_t i = 0;
|
||||
#if defined(__AVX512F__)
|
||||
const __m512d vc = _mm512_set1_pd(c);
|
||||
for (; i + 7 < n; i += 8) {
|
||||
const __m512d v0 = _mm512_loadu_pd(f0 + i);
|
||||
const __m512d v1 = _mm512_loadu_pd(f1 + i);
|
||||
_mm512_storeu_pd(f1 + i, _mm512_fmadd_pd(vc, v1, v0));
|
||||
}
|
||||
#elif defined(__AVX2__)
|
||||
const __m256d vc = _mm256_set1_pd(c);
|
||||
for (; i + 3 < n; i += 4) {
|
||||
const __m256d v0 = _mm256_loadu_pd(f0 + i);
|
||||
const __m256d v1 = _mm256_loadu_pd(f1 + i);
|
||||
_mm256_storeu_pd(f1 + i, _mm256_fmadd_pd(vc, v1, v0));
|
||||
}
|
||||
#endif
|
||||
#pragma ivdep
|
||||
for (; i < n; ++i) {
|
||||
f1[i] = f0[i] + c * f1[i];
|
||||
}
|
||||
}
|
||||
|
||||
inline void rk4_stage3(std::size_t n,
|
||||
const double *__restrict f0,
|
||||
double *__restrict f1,
|
||||
const double *__restrict frhs,
|
||||
double c) {
|
||||
std::size_t i = 0;
|
||||
#if defined(__AVX512F__)
|
||||
const __m512d vc = _mm512_set1_pd(c);
|
||||
for (; i + 7 < n; i += 8) {
|
||||
const __m512d v0 = _mm512_loadu_pd(f0 + i);
|
||||
const __m512d v1 = _mm512_loadu_pd(f1 + i);
|
||||
const __m512d vr = _mm512_loadu_pd(frhs + i);
|
||||
_mm512_storeu_pd(f1 + i, _mm512_fmadd_pd(vc, _mm512_add_pd(v1, vr), v0));
|
||||
}
|
||||
#elif defined(__AVX2__)
|
||||
const __m256d vc = _mm256_set1_pd(c);
|
||||
for (; i + 3 < n; i += 4) {
|
||||
const __m256d v0 = _mm256_loadu_pd(f0 + i);
|
||||
const __m256d v1 = _mm256_loadu_pd(f1 + i);
|
||||
const __m256d vr = _mm256_loadu_pd(frhs + i);
|
||||
_mm256_storeu_pd(f1 + i, _mm256_fmadd_pd(vc, _mm256_add_pd(v1, vr), v0));
|
||||
}
|
||||
#endif
|
||||
#pragma ivdep
|
||||
for (; i < n; ++i) {
|
||||
f1[i] = f0[i] + c * (f1[i] + frhs[i]);
|
||||
}
|
||||
}
|
||||
|
||||
} // namespace
|
||||
|
||||
extern "C" {
|
||||
|
||||
void f_rungekutta4_scalar(double &dT, double &f0, double &f1, double &f_rhs, int &RK4) {
|
||||
constexpr double F1o6 = 1.0 / 6.0;
|
||||
constexpr double HLF = 0.5;
|
||||
constexpr double TWO = 2.0;
|
||||
|
||||
switch (RK4) {
|
||||
case 0:
|
||||
f1 = f0 + HLF * dT * f_rhs;
|
||||
break;
|
||||
case 1:
|
||||
f_rhs = f_rhs + TWO * f1;
|
||||
f1 = f0 + HLF * dT * f1;
|
||||
break;
|
||||
case 2:
|
||||
f_rhs = f_rhs + TWO * f1;
|
||||
f1 = f0 + dT * f1;
|
||||
break;
|
||||
case 3:
|
||||
f1 = f0 + F1o6 * dT * (f1 + f_rhs);
|
||||
break;
|
||||
default:
|
||||
std::fprintf(stderr, "rungekutta4_scalar_c: invalid RK4 stage %d\n", RK4);
|
||||
std::abort();
|
||||
}
|
||||
}
|
||||
|
||||
void rungekutta4_cplxscalar_(double &dT,
|
||||
std::complex<double> &f0,
|
||||
std::complex<double> &f1,
|
||||
std::complex<double> &f_rhs,
|
||||
int &RK4) {
|
||||
constexpr double F1o6 = 1.0 / 6.0;
|
||||
constexpr double HLF = 0.5;
|
||||
constexpr double TWO = 2.0;
|
||||
|
||||
switch (RK4) {
|
||||
case 0:
|
||||
f1 = f0 + HLF * dT * f_rhs;
|
||||
break;
|
||||
case 1:
|
||||
f_rhs = f_rhs + TWO * f1;
|
||||
f1 = f0 + HLF * dT * f1;
|
||||
break;
|
||||
case 2:
|
||||
f_rhs = f_rhs + TWO * f1;
|
||||
f1 = f0 + dT * f1;
|
||||
break;
|
||||
case 3:
|
||||
f1 = f0 + F1o6 * dT * (f1 + f_rhs);
|
||||
break;
|
||||
default:
|
||||
std::fprintf(stderr, "rungekutta4_cplxscalar_c: invalid RK4 stage %d\n", RK4);
|
||||
std::abort();
|
||||
}
|
||||
}
|
||||
|
||||
int f_rungekutta4_rout(int *ex, double &dT,
|
||||
double *f0, double *f1, double *f_rhs,
|
||||
int &RK4) {
|
||||
const std::size_t n = static_cast<std::size_t>(ex[0]) *
|
||||
static_cast<std::size_t>(ex[1]) *
|
||||
static_cast<std::size_t>(ex[2]);
|
||||
const double *const __restrict f0r = f0;
|
||||
double *const __restrict f1r = f1;
|
||||
double *const __restrict frhs = f_rhs;
|
||||
|
||||
if (__builtin_expect(static_cast<unsigned>(RK4) > 3u, 0)) {
|
||||
std::fprintf(stderr, "rungekutta4_rout_c: invalid RK4 stage %d\n", RK4);
|
||||
std::abort();
|
||||
}
|
||||
|
||||
switch (RK4) {
|
||||
case 0:
|
||||
rk4_stage0(n, f0r, frhs, f1r, 0.5 * dT);
|
||||
break;
|
||||
case 1:
|
||||
rk4_rhs_accum(n, f1r, frhs);
|
||||
rk4_f1_from_f0_f1(n, f0r, f1r, 0.5 * dT);
|
||||
break;
|
||||
case 2:
|
||||
rk4_rhs_accum(n, f1r, frhs);
|
||||
rk4_f1_from_f0_f1(n, f0r, f1r, dT);
|
||||
break;
|
||||
default:
|
||||
rk4_stage3(n, f0r, f1r, frhs, (1.0 / 6.0) * dT);
|
||||
break;
|
||||
}
|
||||
|
||||
return 0;
|
||||
}
|
||||
|
||||
} // extern "C"
|
||||
@@ -5,6 +5,7 @@
|
||||
#include <stddef.h>
|
||||
#include <math.h>
|
||||
#include <stdio.h>
|
||||
#include <string.h>
|
||||
/* 主网格:0-based -> 1D */
|
||||
static inline size_t idx_ex(int i0, int j0, int k0, const int ex[3]) {
|
||||
const int ex1 = ex[0], ex2 = ex[1];
|
||||
@@ -87,60 +88,159 @@ static inline size_t idx_funcc_F(int iF, int jF, int kF, int ord, const int extc
|
||||
* funcc(:,:,-i) = funcc(:,:,i+1)*SoA(3)
|
||||
* enddo
|
||||
*/
|
||||
static inline void symmetry_bd_impl(int ord,
|
||||
int shift,
|
||||
const int extc[3],
|
||||
const double *__restrict func,
|
||||
double *__restrict funcc,
|
||||
const double SoA[3])
|
||||
{
|
||||
const int extc1 = extc[0], extc2 = extc[1], extc3 = extc[2];
|
||||
const int nx = extc1 + ord;
|
||||
const int ny = extc2 + ord;
|
||||
|
||||
const size_t snx = (size_t)nx;
|
||||
const size_t splane = (size_t)nx * (size_t)ny;
|
||||
const size_t interior_i = (size_t)shift + 1u; /* iF = 1 */
|
||||
const size_t interior_j = ((size_t)shift + 1u) * snx; /* jF = 1 */
|
||||
const size_t interior_k = ((size_t)shift + 1u) * splane; /* kF = 1 */
|
||||
const size_t interior0 = interior_k + interior_j + interior_i;
|
||||
|
||||
/* 1) funcc(1:extc1,1:extc2,1:extc3) = func */
|
||||
for (int k0 = 0; k0 < extc3; ++k0) {
|
||||
const double *src_k = func + (size_t)k0 * (size_t)extc2 * (size_t)extc1;
|
||||
const size_t dst_k0 = interior0 + (size_t)k0 * splane;
|
||||
for (int j0 = 0; j0 < extc2; ++j0) {
|
||||
const double *src = src_k + (size_t)j0 * (size_t)extc1;
|
||||
double *dst = funcc + dst_k0 + (size_t)j0 * snx;
|
||||
memcpy(dst, src, (size_t)extc1 * sizeof(double));
|
||||
}
|
||||
}
|
||||
|
||||
/* 2) funcc(-i,1:extc2,1:extc3) = funcc(i+1,1:extc2,1:extc3)*SoA(1) */
|
||||
const double s1 = SoA[0];
|
||||
if (s1 == 1.0) {
|
||||
for (int ii = 0; ii < ord; ++ii) {
|
||||
const size_t dst_i = (size_t)(shift - ii);
|
||||
const size_t src_i = (size_t)(shift + ii + 1);
|
||||
for (int k0 = 0; k0 < extc3; ++k0) {
|
||||
const size_t kbase = interior_k + (size_t)k0 * splane + interior_j;
|
||||
for (int j0 = 0; j0 < extc2; ++j0) {
|
||||
const size_t off = kbase + (size_t)j0 * snx;
|
||||
funcc[off + dst_i] = funcc[off + src_i];
|
||||
}
|
||||
}
|
||||
}
|
||||
} else if (s1 == -1.0) {
|
||||
for (int ii = 0; ii < ord; ++ii) {
|
||||
const size_t dst_i = (size_t)(shift - ii);
|
||||
const size_t src_i = (size_t)(shift + ii + 1);
|
||||
for (int k0 = 0; k0 < extc3; ++k0) {
|
||||
const size_t kbase = interior_k + (size_t)k0 * splane + interior_j;
|
||||
for (int j0 = 0; j0 < extc2; ++j0) {
|
||||
const size_t off = kbase + (size_t)j0 * snx;
|
||||
funcc[off + dst_i] = -funcc[off + src_i];
|
||||
}
|
||||
}
|
||||
}
|
||||
} else {
|
||||
for (int ii = 0; ii < ord; ++ii) {
|
||||
const size_t dst_i = (size_t)(shift - ii);
|
||||
const size_t src_i = (size_t)(shift + ii + 1);
|
||||
for (int k0 = 0; k0 < extc3; ++k0) {
|
||||
const size_t kbase = interior_k + (size_t)k0 * splane + interior_j;
|
||||
for (int j0 = 0; j0 < extc2; ++j0) {
|
||||
const size_t off = kbase + (size_t)j0 * snx;
|
||||
funcc[off + dst_i] = funcc[off + src_i] * s1;
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
/* 3) funcc(:,-j,1:extc3) = funcc(:,j+1,1:extc3)*SoA(2) */
|
||||
const double s2 = SoA[1];
|
||||
if (s2 == 1.0) {
|
||||
for (int jj = 0; jj < ord; ++jj) {
|
||||
const size_t dst_j = (size_t)(shift - jj) * snx;
|
||||
const size_t src_j = (size_t)(shift + jj + 1) * snx;
|
||||
for (int k0 = 0; k0 < extc3; ++k0) {
|
||||
const size_t kbase = interior_k + (size_t)k0 * splane;
|
||||
double *dst = funcc + kbase + dst_j;
|
||||
const double *src = funcc + kbase + src_j;
|
||||
for (int i = 0; i < nx; ++i) dst[i] = src[i];
|
||||
}
|
||||
}
|
||||
} else if (s2 == -1.0) {
|
||||
for (int jj = 0; jj < ord; ++jj) {
|
||||
const size_t dst_j = (size_t)(shift - jj) * snx;
|
||||
const size_t src_j = (size_t)(shift + jj + 1) * snx;
|
||||
for (int k0 = 0; k0 < extc3; ++k0) {
|
||||
const size_t kbase = interior_k + (size_t)k0 * splane;
|
||||
double *dst = funcc + kbase + dst_j;
|
||||
const double *src = funcc + kbase + src_j;
|
||||
for (int i = 0; i < nx; ++i) dst[i] = -src[i];
|
||||
}
|
||||
}
|
||||
} else {
|
||||
for (int jj = 0; jj < ord; ++jj) {
|
||||
const size_t dst_j = (size_t)(shift - jj) * snx;
|
||||
const size_t src_j = (size_t)(shift + jj + 1) * snx;
|
||||
for (int k0 = 0; k0 < extc3; ++k0) {
|
||||
const size_t kbase = interior_k + (size_t)k0 * splane;
|
||||
double *dst = funcc + kbase + dst_j;
|
||||
const double *src = funcc + kbase + src_j;
|
||||
for (int i = 0; i < nx; ++i) dst[i] = src[i] * s2;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
/* 4) funcc(:,:,-k) = funcc(:,:,k+1)*SoA(3) */
|
||||
const double s3 = SoA[2];
|
||||
if (s3 == 1.0) {
|
||||
for (int kk = 0; kk < ord; ++kk) {
|
||||
const size_t dst_k = (size_t)(shift - kk) * splane;
|
||||
const size_t src_k = (size_t)(shift + kk + 1) * splane;
|
||||
double *dst = funcc + dst_k;
|
||||
const double *src = funcc + src_k;
|
||||
for (size_t p = 0; p < splane; ++p) dst[p] = src[p];
|
||||
}
|
||||
} else if (s3 == -1.0) {
|
||||
for (int kk = 0; kk < ord; ++kk) {
|
||||
const size_t dst_k = (size_t)(shift - kk) * splane;
|
||||
const size_t src_k = (size_t)(shift + kk + 1) * splane;
|
||||
double *dst = funcc + dst_k;
|
||||
const double *src = funcc + src_k;
|
||||
for (size_t p = 0; p < splane; ++p) dst[p] = -src[p];
|
||||
}
|
||||
} else {
|
||||
for (int kk = 0; kk < ord; ++kk) {
|
||||
const size_t dst_k = (size_t)(shift - kk) * splane;
|
||||
const size_t src_k = (size_t)(shift + kk + 1) * splane;
|
||||
double *dst = funcc + dst_k;
|
||||
const double *src = funcc + src_k;
|
||||
for (size_t p = 0; p < splane; ++p) dst[p] = src[p] * s3;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
static inline void symmetry_bd(int ord,
|
||||
const int extc[3],
|
||||
const double *func,
|
||||
double *funcc,
|
||||
const double SoA[3])
|
||||
{
|
||||
const int extc1 = extc[0], extc2 = extc[1], extc3 = extc[2];
|
||||
if (ord <= 0) return;
|
||||
|
||||
// 1) funcc(1:extc1,1:extc2,1:extc3) = func
|
||||
// Fortran 的 (iF=1..extc1) 对应 C 的 func(i0=0..extc1-1)
|
||||
for (int k0 = 0; k0 < extc3; ++k0) {
|
||||
for (int j0 = 0; j0 < extc2; ++j0) {
|
||||
for (int i0 = 0; i0 < extc1; ++i0) {
|
||||
const int iF = i0 + 1, jF = j0 + 1, kF = k0 + 1;
|
||||
funcc[idx_funcc_F(iF, jF, kF, ord, extc)] = func[idx_func0(i0, j0, k0, extc)];
|
||||
}
|
||||
}
|
||||
/* Fast paths used by current C kernels: ord=2 (derivs), ord=3 (lopsided/KO). */
|
||||
if (ord == 2) {
|
||||
symmetry_bd_impl(2, 1, extc, func, funcc, SoA);
|
||||
return;
|
||||
}
|
||||
if (ord == 3) {
|
||||
symmetry_bd_impl(3, 2, extc, func, funcc, SoA);
|
||||
return;
|
||||
}
|
||||
|
||||
// 2) do i=0..ord-1: funcc(-i, 1:extc2, 1:extc3) = funcc(i+1, ...)*SoA(1)
|
||||
for (int ii = 0; ii <= ord - 1; ++ii) {
|
||||
const int iF_dst = -ii; // 0, -1, -2, ...
|
||||
const int iF_src = ii + 1; // 1, 2, 3, ...
|
||||
for (int kF = 1; kF <= extc3; ++kF) {
|
||||
for (int jF = 1; jF <= extc2; ++jF) {
|
||||
funcc[idx_funcc_F(iF_dst, jF, kF, ord, extc)] =
|
||||
funcc[idx_funcc_F(iF_src, jF, kF, ord, extc)] * SoA[0];
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// 3) do i=0..ord-1: funcc(:,-i, 1:extc3) = funcc(:, i+1, 1:extc3)*SoA(2)
|
||||
// 注意 Fortran 这里的 ":" 表示 iF 从 (-ord+1..extc1) 全覆盖
|
||||
for (int jj = 0; jj <= ord - 1; ++jj) {
|
||||
const int jF_dst = -jj;
|
||||
const int jF_src = jj + 1;
|
||||
for (int kF = 1; kF <= extc3; ++kF) {
|
||||
for (int iF = -ord + 1; iF <= extc1; ++iF) {
|
||||
funcc[idx_funcc_F(iF, jF_dst, kF, ord, extc)] =
|
||||
funcc[idx_funcc_F(iF, jF_src, kF, ord, extc)] * SoA[1];
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// 4) do i=0..ord-1: funcc(:,:,-i) = funcc(:,:, i+1)*SoA(3)
|
||||
for (int kk = 0; kk <= ord - 1; ++kk) {
|
||||
const int kF_dst = -kk;
|
||||
const int kF_src = kk + 1;
|
||||
for (int jF = -ord + 1; jF <= extc2; ++jF) {
|
||||
for (int iF = -ord + 1; iF <= extc1; ++iF) {
|
||||
funcc[idx_funcc_F(iF, jF, kF_dst, ord, extc)] =
|
||||
funcc[idx_funcc_F(iF, jF, kF_src, ord, extc)] * SoA[2];
|
||||
}
|
||||
}
|
||||
}
|
||||
symmetry_bd_impl(ord, ord - 1, extc, func, funcc, SoA);
|
||||
}
|
||||
#endif
|
||||
|
||||
File diff suppressed because it is too large
Load Diff
@@ -27,19 +27,24 @@ using namespace std;
|
||||
class surface_integral
|
||||
{
|
||||
|
||||
private:
|
||||
int Symmetry, factor;
|
||||
int N_theta, N_phi; // Number of points in Theta & Phi directions
|
||||
double dphi, dcostheta;
|
||||
double *arcostheta, *wtcostheta;
|
||||
int n_tot; // size of arrays
|
||||
|
||||
double *nx_g, *ny_g, *nz_g; // global list of unit normals
|
||||
int myrank, cpusize;
|
||||
|
||||
public:
|
||||
surface_integral(int iSymmetry);
|
||||
~surface_integral();
|
||||
private:
|
||||
int Symmetry, factor;
|
||||
int N_theta, N_phi; // Number of points in Theta & Phi directions
|
||||
double dphi, dcostheta;
|
||||
double *arcostheta, *wtcostheta;
|
||||
int n_tot; // size of arrays
|
||||
|
||||
double *nx_g, *ny_g, *nz_g; // global list of unit normals
|
||||
int myrank, cpusize;
|
||||
int wave_cache_spinw, wave_cache_maxl, wave_cache_modes;
|
||||
double *wave_theta_pos, *wave_theta_neg;
|
||||
double *wave_phi_cos, *wave_phi_sin;
|
||||
void clear_wave_cache();
|
||||
void build_wave_cache(int spinw, int maxl);
|
||||
|
||||
public:
|
||||
surface_integral(int iSymmetry);
|
||||
~surface_integral();
|
||||
|
||||
void surf_Wave(double rex, int lev, cgh *GH, var *Rpsi4, var *Ipsi4,
|
||||
int spinw, int maxl, int NN, double *RP, double *IP,
|
||||
@@ -77,21 +82,37 @@ public:
|
||||
double &, double &, double &, double &, double &, double &, double &,
|
||||
double &, double &, double &, double &, double &, double &,
|
||||
double &, double &)); // NN is the length of RP and IP
|
||||
void surf_MassPAng(double rex, int lev, cgh *GH, var *chi, var *trK,
|
||||
var *gxx, var *gxy, var *gxz, var *gyy, var *gyz, var *gzz,
|
||||
var *Axx, var *Axy, var *Axz, var *Ayy, var *Ayz, var *Azz,
|
||||
var *Gmx, var *Gmy, var *Gmz,
|
||||
var *Sfx_rhs, var *Sfy_rhs, var *Sfz_rhs,
|
||||
double *Rout, monitor *Monitor);
|
||||
void surf_MassPAng(double rex, int lev, ShellPatch *GH, var *chi, var *trK,
|
||||
var *gxx, var *gxy, var *gxz, var *gyy, var *gyz, var *gzz,
|
||||
var *Axx, var *Axy, var *Axz, var *Ayy, var *Ayz, var *Azz,
|
||||
var *Gmx, var *Gmy, var *Gmz,
|
||||
var *Sfx_rhs, var *Sfy_rhs, var *Sfz_rhs,
|
||||
double *Rout, monitor *Monitor);
|
||||
void surf_Wave(double rex, cgh *GH, ShellPatch *SH,
|
||||
var *chi, var *trK,
|
||||
var *gxx, var *gxy, var *gxz, var *gyy, var *gyz, var *gzz,
|
||||
void surf_MassPAng(double rex, int lev, cgh *GH, var *chi, var *trK,
|
||||
var *gxx, var *gxy, var *gxz, var *gyy, var *gyz, var *gzz,
|
||||
var *Axx, var *Axy, var *Axz, var *Ayy, var *Ayz, var *Azz,
|
||||
var *Gmx, var *Gmy, var *Gmz,
|
||||
var *Sfx_rhs, var *Sfy_rhs, var *Sfz_rhs,
|
||||
double *Rout, monitor *Monitor, bool refresh_mass_fields = true);
|
||||
void surf_MassPAng(double rex, int lev, ShellPatch *GH, var *chi, var *trK,
|
||||
var *gxx, var *gxy, var *gxz, var *gyy, var *gyz, var *gzz,
|
||||
var *Axx, var *Axy, var *Axz, var *Ayy, var *Ayz, var *Azz,
|
||||
var *Gmx, var *Gmy, var *Gmz,
|
||||
var *Sfx_rhs, var *Sfy_rhs, var *Sfz_rhs,
|
||||
double *Rout, monitor *Monitor, bool refresh_mass_fields = true);
|
||||
void surf_WaveMassPAng(double rex, int lev, cgh *GH,
|
||||
var *Rpsi4, var *Ipsi4, int spinw, int maxl, int NN, double *RP, double *IP,
|
||||
var *chi, var *trK,
|
||||
var *gxx, var *gxy, var *gxz, var *gyy, var *gyz, var *gzz,
|
||||
var *Axx, var *Axy, var *Axz, var *Ayy, var *Ayz, var *Azz,
|
||||
var *Gmx, var *Gmy, var *Gmz,
|
||||
var *Sfx_rhs, var *Sfy_rhs, var *Sfz_rhs,
|
||||
double *Rout, monitor *Monitor, bool refresh_mass_fields = true);
|
||||
void surf_WaveMassPAng(double rex, int lev, ShellPatch *GH,
|
||||
var *Rpsi4, var *Ipsi4, int spinw, int maxl, int NN, double *RP, double *IP,
|
||||
var *chi, var *trK,
|
||||
var *gxx, var *gxy, var *gxz, var *gyy, var *gyz, var *gzz,
|
||||
var *Axx, var *Axy, var *Axz, var *Ayy, var *Ayz, var *Azz,
|
||||
var *Gmx, var *Gmy, var *Gmz,
|
||||
var *Sfx_rhs, var *Sfy_rhs, var *Sfz_rhs,
|
||||
double *Rout, monitor *Monitor, bool refresh_mass_fields = true);
|
||||
void surf_Wave(double rex, cgh *GH, ShellPatch *SH,
|
||||
var *chi, var *trK,
|
||||
var *gxx, var *gxy, var *gxz, var *gyy, var *gyz, var *gzz,
|
||||
var *Axx, var *Axy, var *Axz, var *Ayy, var *Ayz, var *Azz,
|
||||
var *chix, var *chiy, var *chiz,
|
||||
var *trKx, var *trKy, var *trKz,
|
||||
@@ -110,12 +131,12 @@ public:
|
||||
bool SR_Interp_Points(MyList<var> *VarList, cgh *GH, ShellPatch *SH,
|
||||
int NN, double **XX, double *Shellf);
|
||||
|
||||
void surf_MassPAng(double rex, int lev, cgh *GH, var *chi, var *trK,
|
||||
var *gxx, var *gxy, var *gxz, var *gyy, var *gyz, var *gzz,
|
||||
var *Axx, var *Axy, var *Axz, var *Ayy, var *Ayz, var *Azz,
|
||||
var *Gmx, var *Gmy, var *Gmz,
|
||||
var *Sfx_rhs, var *Sfy_rhs, var *Sfz_rhs, // temparay memory for mass^i
|
||||
double *Rout, monitor *Monitor, MPI_Comm Comm_here);
|
||||
void surf_MassPAng(double rex, int lev, cgh *GH, var *chi, var *trK,
|
||||
var *gxx, var *gxy, var *gxz, var *gyy, var *gyz, var *gzz,
|
||||
var *Axx, var *Axy, var *Axz, var *Ayy, var *Ayz, var *Azz,
|
||||
var *Gmx, var *Gmy, var *Gmz,
|
||||
var *Sfx_rhs, var *Sfy_rhs, var *Sfz_rhs, // temparay memory for mass^i
|
||||
double *Rout, monitor *Monitor, MPI_Comm Comm_here, bool refresh_mass_fields = true);
|
||||
void surf_Wave(double rex, int lev, cgh *GH, var *Rpsi4, var *Ipsi4,
|
||||
int spinw, int maxl, int NN, double *RP, double *IP,
|
||||
monitor *Monitor, MPI_Comm Comm_here);
|
||||
|
||||
@@ -24,4 +24,10 @@ void lopsided(const int ex[3],
|
||||
const double *X, const double *Y, const double *Z,
|
||||
const double *f, double *f_rhs,
|
||||
const double *Sfx, const double *Sfy, const double *Sfz,
|
||||
int Symmetry, const double SoA[3]);
|
||||
int Symmetry, const double SoA[3]);
|
||||
|
||||
void lopsided_kodis(const int ex[3],
|
||||
const double *X, const double *Y, const double *Z,
|
||||
const double *f, double *f_rhs,
|
||||
const double *Sfx, const double *Sfy, const double *Sfz,
|
||||
int Symmetry, const double SoA[3], double eps);
|
||||
|
||||
@@ -144,6 +144,62 @@ def generate_macrodef_h():
|
||||
print( "#define REGLEV 0", file=file1 )
|
||||
print( file=file1 )
|
||||
|
||||
# Define fine-grained timing/debug macros.
|
||||
# All of them default to OFF so production builds do not pay profiling overhead.
|
||||
|
||||
fine_timing = getattr(input_data, "Fine_Timing",
|
||||
getattr(input_data, "Finegrained_Timing", "no"))
|
||||
kernel_fine_timing = getattr(input_data, "Kernel_Fine_Timing",
|
||||
getattr(input_data, "BSSN_Kernel_Fine_Timing", "no"))
|
||||
stdin_abort_poll = getattr(input_data, "Enable_Stdin_Abort_Poll",
|
||||
getattr(input_data, "Stdin_Abort_Poll", "no"))
|
||||
timing_report_every = max(1, int(getattr(
|
||||
input_data, "Timing_Every_Steps",
|
||||
getattr(input_data, "Timing_Report_Every", 1))))
|
||||
timing_top_hotspots = max(1, int(getattr(
|
||||
input_data, "Timing_Top_Hotspots", 8)))
|
||||
|
||||
if ( fine_timing == "yes" ):
|
||||
print( "#define BSSN_FINE_TIMING 1", file=file1 )
|
||||
print( file=file1 )
|
||||
elif ( fine_timing == "no" ):
|
||||
print( "#define BSSN_FINE_TIMING 0", file=file1 )
|
||||
print( file=file1 )
|
||||
else:
|
||||
print( "Fine_Timing setting error!!!" )
|
||||
print()
|
||||
print( "# Fine_Timing setting error!!!", file=file1 )
|
||||
print( file=file1 )
|
||||
|
||||
print( f"#define BSSN_FINE_TIMING_EVERY {timing_report_every}", file=file1 )
|
||||
print( file=file1 )
|
||||
print( f"#define BSSN_FINE_TIMING_TOPN {timing_top_hotspots}", file=file1 )
|
||||
print( file=file1 )
|
||||
|
||||
if ( kernel_fine_timing == "yes" ):
|
||||
print( "#define BSSN_KERNEL_FINE_TIMING 1", file=file1 )
|
||||
print( file=file1 )
|
||||
elif ( kernel_fine_timing == "no" ):
|
||||
print( "#define BSSN_KERNEL_FINE_TIMING 0", file=file1 )
|
||||
print( file=file1 )
|
||||
else:
|
||||
print( "Kernel_Fine_Timing setting error!!!" )
|
||||
print()
|
||||
print( "# Kernel_Fine_Timing setting error!!!", file=file1 )
|
||||
print( file=file1 )
|
||||
|
||||
if ( stdin_abort_poll == "yes" ):
|
||||
print( "#define BSSN_ENABLE_STDIN_ABORT_POLL 1", file=file1 )
|
||||
print( file=file1 )
|
||||
elif ( stdin_abort_poll == "no" ):
|
||||
print( "#define BSSN_ENABLE_STDIN_ABORT_POLL 0", file=file1 )
|
||||
print( file=file1 )
|
||||
else:
|
||||
print( "Enable_Stdin_Abort_Poll setting error!!!" )
|
||||
print()
|
||||
print( "# Enable_Stdin_Abort_Poll setting error!!!", file=file1 )
|
||||
print( file=file1 )
|
||||
|
||||
# Define macro USE_GPU
|
||||
# use GPU or not
|
||||
|
||||
@@ -224,6 +280,21 @@ def generate_macrodef_h():
|
||||
print( "// 0: for every level;", file=file1 )
|
||||
print( "// 1: for all", file=file1 )
|
||||
print( "//", file=file1 )
|
||||
print( "// define BSSN_FINE_TIMING", file=file1 )
|
||||
print( "// enable fine-grained per-timestep timing monitor", file=file1 )
|
||||
print( "//", file=file1 )
|
||||
print( "// define BSSN_FINE_TIMING_EVERY", file=file1 )
|
||||
print( "// report timing every N coarse timesteps", file=file1 )
|
||||
print( "//", file=file1 )
|
||||
print( "// define BSSN_FINE_TIMING_TOPN", file=file1 )
|
||||
print( "// number of hottest timing buckets shown in stdout", file=file1 )
|
||||
print( "//", file=file1 )
|
||||
print( "// define BSSN_KERNEL_FINE_TIMING", file=file1 )
|
||||
print( "// enable split timing inside compute_rhs_bssn", file=file1 )
|
||||
print( "//", file=file1 )
|
||||
print( "// define BSSN_ENABLE_STDIN_ABORT_POLL", file=file1 )
|
||||
print( "// poll stdin and broadcast abort flag every coarse step", file=file1 )
|
||||
print( "//", file=file1 )
|
||||
print( "// define USE_GPU", file=file1 )
|
||||
print( "// use gpu or not", file=file1 )
|
||||
print( "//", file=file1 )
|
||||
|
||||
@@ -43,7 +43,8 @@ def get_last_n_cores_per_socket(n=32):
|
||||
cpu_str = ",".join(segments)
|
||||
total = len(segments) * n
|
||||
print(f" CPU binding: taskset -c {cpu_str} ({total} cores, last {n} per socket)")
|
||||
return f"taskset -c {cpu_str}"
|
||||
#return f"taskset -c {cpu_str}"
|
||||
return f""
|
||||
|
||||
|
||||
## CPU core binding: dynamically select the last 32 cores of each socket (64 cores total)
|
||||
@@ -69,7 +70,7 @@ def makefile_ABE():
|
||||
|
||||
## Build command with CPU binding to nohz_full cores
|
||||
if (input_data.GPU_Calculation == "no"):
|
||||
makefile_command = f"{NUMACTL_CPU_BIND} make -j{BUILD_JOBS} INTERP_LB_MODE=optimize ABE"
|
||||
makefile_command = f"{NUMACTL_CPU_BIND} make -j{BUILD_JOBS} INTERP_LB_MODE=off ABE"
|
||||
elif (input_data.GPU_Calculation == "yes"):
|
||||
makefile_command = f"{NUMACTL_CPU_BIND} make -j{BUILD_JOBS} ABEGPU"
|
||||
else:
|
||||
|
||||
@@ -1,97 +0,0 @@
|
||||
# AMSS-NCKU PGO Profile Analysis Report
|
||||
|
||||
## 1. Profiling Environment
|
||||
|
||||
| Item | Value |
|
||||
|------|-------|
|
||||
| Compiler | Intel oneAPI DPC++/C++ 2025.3.0 (icpx/ifx) |
|
||||
| Instrumentation Flag | `-fprofile-instr-generate` |
|
||||
| Optimization Level (instrumented) | `-O2 -xHost -fma` |
|
||||
| MPI Processes | 1 (single process to avoid MPI+instrumentation deadlock) |
|
||||
| Profile File | `default_9725750769337483397_0.profraw` (327 KB) |
|
||||
| Merged Profile | `default.profdata` (394 KB) |
|
||||
| llvm-profdata | `/home/intel/oneapi/compiler/2025.3/bin/compiler/llvm-profdata` |
|
||||
|
||||
## 2. Reduced Simulation Parameters (for profiling run)
|
||||
|
||||
| Parameter | Production Value | Profiling Value |
|
||||
|-----------|-----------------|-----------------|
|
||||
| MPI_processes | 64 | 1 |
|
||||
| grid_level | 9 | 4 |
|
||||
| static_grid_level | 5 | 3 |
|
||||
| static_grid_number | 96 | 24 |
|
||||
| moving_grid_number | 48 | 16 |
|
||||
| largest_box_xyz_max | 320^3 | 160^3 |
|
||||
| Final_Evolution_Time | 1000.0 | 10.0 |
|
||||
| Evolution_Step_Number | 10,000,000 | 1,000 |
|
||||
| Detector_Number | 12 | 2 |
|
||||
|
||||
## 3. Profile Summary
|
||||
|
||||
| Metric | Value |
|
||||
|--------|-------|
|
||||
| Total instrumented functions | 1,392 |
|
||||
| Functions with non-zero counts | 117 (8.4%) |
|
||||
| Functions with zero counts | 1,275 (91.6%) |
|
||||
| Maximum function entry count | 386,459,248 |
|
||||
| Maximum internal block count | 370,477,680 |
|
||||
| Total block count | 4,198,023,118 |
|
||||
|
||||
## 4. Top 20 Hotspot Functions
|
||||
|
||||
| Rank | Total Count | Max Block Count | Function | Category |
|
||||
|------|------------|-----------------|----------|----------|
|
||||
| 1 | 1,241,601,732 | 370,477,680 | `polint_` | Interpolation |
|
||||
| 2 | 755,994,435 | 230,156,640 | `prolong3_` | Grid prolongation |
|
||||
| 3 | 667,964,095 | 3,697,792 | `compute_rhs_bssn_` | BSSN RHS evolution |
|
||||
| 4 | 539,736,051 | 386,459,248 | `symmetry_bd_` | Symmetry boundary |
|
||||
| 5 | 277,310,808 | 53,170,728 | `lopsided_` | Lopsided FD stencil |
|
||||
| 6 | 155,534,488 | 94,535,040 | `decide3d_` | 3D grid decision |
|
||||
| 7 | 119,267,712 | 19,266,048 | `rungekutta4_rout_` | RK4 time integrator |
|
||||
| 8 | 91,574,616 | 48,824,160 | `kodis_` | Kreiss-Oliger dissipation |
|
||||
| 9 | 67,555,389 | 43,243,680 | `fderivs_` | Finite differences |
|
||||
| 10 | 55,296,000 | 42,246,144 | `misc::fact(int)` | Factorial utility |
|
||||
| 11 | 43,191,071 | 27,663,328 | `fdderivs_` | 2nd-order FD derivatives |
|
||||
| 12 | 36,233,965 | 22,429,440 | `restrict3_` | Grid restriction |
|
||||
| 13 | 24,698,512 | 17,231,520 | `polin3_` | Polynomial interpolation |
|
||||
| 14 | 22,962,942 | 20,968,768 | `copy_` | Data copy |
|
||||
| 15 | 20,135,696 | 17,259,168 | `Ansorg::barycentric(...)` | Spectral interpolation |
|
||||
| 16 | 14,650,224 | 7,224,768 | `Ansorg::barycentric_omega(...)` | Spectral weights |
|
||||
| 17 | 13,242,296 | 2,871,920 | `global_interp_` | Global interpolation |
|
||||
| 18 | 12,672,000 | 7,734,528 | `sommerfeld_rout_` | Sommerfeld boundary |
|
||||
| 19 | 6,872,832 | 1,880,064 | `sommerfeld_routbam_` | Sommerfeld boundary (BAM) |
|
||||
| 20 | 5,709,900 | 2,809,632 | `l2normhelper_` | L2 norm computation |
|
||||
|
||||
## 5. Hotspot Category Breakdown
|
||||
|
||||
Top 20 functions account for ~98% of total execution counts:
|
||||
|
||||
| Category | Functions | Combined Count | Share |
|
||||
|----------|-----------|---------------|-------|
|
||||
| Interpolation / Prolongation / Restriction | polint_, prolong3_, restrict3_, polin3_, global_interp_, Ansorg::* | ~2,093M | ~50% |
|
||||
| BSSN RHS + FD stencils | compute_rhs_bssn_, lopsided_, fderivs_, fdderivs_ | ~1,056M | ~25% |
|
||||
| Boundary conditions | symmetry_bd_, sommerfeld_rout_, sommerfeld_routbam_ | ~559M | ~13% |
|
||||
| Time integration | rungekutta4_rout_ | ~119M | ~3% |
|
||||
| Dissipation | kodis_ | ~92M | ~2% |
|
||||
| Utilities | misc::fact, decide3d_, copy_, l2normhelper_ | ~256M | ~6% |
|
||||
|
||||
## 6. Conclusions
|
||||
|
||||
1. **Profile data is valid**: 1,392 functions instrumented, 117 exercised with ~4.2 billion total counts.
|
||||
2. **Hotspot concentration is high**: Top 5 functions alone account for ~76% of all counts, which is ideal for PGO — the compiler has strong branch/layout optimization targets.
|
||||
3. **Fortran numerical kernels dominate**: `polint_`, `prolong3_`, `compute_rhs_bssn_`, `symmetry_bd_`, `lopsided_` are all Fortran routines in the inner evolution loop. PGO will optimize their branch prediction and basic block layout.
|
||||
4. **91.6% of functions have zero counts**: These are code paths for unused features (GPU, BSSN-EScalar, BSSN-EM, Z4C, etc.). PGO will deprioritize them, improving instruction cache utilization.
|
||||
5. **Profile is representative**: Despite the reduced grid size, the code path coverage matches production — the same kernels (RHS, prolongation, restriction, boundary) are exercised. PGO branch probabilities from this profile will transfer well to full-scale runs.
|
||||
|
||||
## 7. PGO Phase 2 Usage
|
||||
|
||||
To apply the profile, use the following flags in `makefile.inc`:
|
||||
|
||||
```makefile
|
||||
CXXAPPFLAGS = -O3 -xHost -fp-model fast=2 -fma -ipo \
|
||||
-fprofile-instr-use=/home/amss/AMSS-NCKU/pgo_profile/default.profdata \
|
||||
-Dfortran3 -Dnewc -I${MKLROOT}/include
|
||||
f90appflags = -O3 -xHost -fp-model fast=2 -fma -ipo \
|
||||
-fprofile-instr-use=/home/amss/AMSS-NCKU/pgo_profile/default.profdata \
|
||||
-align array64byte -fpp -I${MKLROOT}/include
|
||||
```
|
||||
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Reference in New Issue
Block a user