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18 Commits
cjy-oneapi
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chb-copilo
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1
.gitignore
vendored
1
.gitignore
vendored
@@ -1,7 +1,6 @@
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__pycache__
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__pycache__
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GW150914
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GW150914
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GW150914-origin
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GW150914-origin
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GW150914-mini
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docs
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docs
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*.tmp
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*.tmp
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@@ -16,14 +16,12 @@ import numpy
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File_directory = "GW150914" ## output file directory
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File_directory = "GW150914" ## output file directory
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Output_directory = "binary_output" ## binary data file directory
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Output_directory = "binary_output" ## binary data file directory
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## The file directory name should not be too long
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## The file directory name should not be too long
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MPI_processes = 8 ## number of mpi processes used in the simulation
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MPI_processes = 64 ## number of mpi processes used in the simulation
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GPU_Calculation = "no" ## Use GPU or not
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GPU_Calculation = "no" ## Use GPU or not
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## (prefer "no" in the current version, because the GPU part may have bugs when integrated in this Python interface)
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## (prefer "no" in the current version, because the GPU part may have bugs when integrated in this Python interface)
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CPU_Part = 1.0
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CPU_Part = 1.0
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GPU_Part = 0.0
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GPU_Part = 0.0
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Debug_NaN_Check = 0 ## enable NaN checks in compute_rhs_bssn: 0 (off) or 1 (on)
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#################################################
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#################################################
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@@ -1,233 +0,0 @@
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#################################################
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##
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## This file provides the input parameters required for numerical relativity.
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## XIAOQU
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## 2024/03/19 --- 2025/09/14
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## Modified for GW150914-mini test case
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##
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#################################################
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import numpy
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#################################################
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## Setting MPI processes and the output file directory
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File_directory = "GW150914-mini" ## output file directory
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Output_directory = "binary_output" ## binary data file directory
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## The file directory name should not be too long
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MPI_processes = 4 ## number of mpi processes used in the simulation (Reduced for laptop)
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GPU_Calculation = "no" ## Use GPU or not
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## (prefer "no" in the current version, because the GPU part may have bugs when integrated in this Python interface)
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CPU_Part = 1.0
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GPU_Part = 0.0
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#################################################
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#################################################
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## Setting the physical system and numerical method
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Symmetry = "equatorial-symmetry" ## Symmetry of System: choose equatorial-symmetry、no-symmetry、octant-symmetry
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Equation_Class = "BSSN" ## Evolution Equation: choose "BSSN", "BSSN-EScalar", "BSSN-EM", "Z4C"
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## If "BSSN-EScalar" is chosen, it is necessary to set other parameters below
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Initial_Data_Method = "Ansorg-TwoPuncture" ## initial data method: choose "Ansorg-TwoPuncture", "Lousto-Analytical", "Cao-Analytical", "KerrSchild-Analytical"
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Time_Evolution_Method = "runge-kutta-45" ## time evolution method: choose "runge-kutta-45"
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Finite_Diffenence_Method = "4th-order" ## finite-difference method: choose "2nd-order", "4th-order", "6th-order", "8th-order"
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Debug_NaN_Check = 0 ## enable NaN checks in compute_rhs_bssn: 0 (off) or 1 (on)
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#################################################
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#################################################
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## Setting the time evolutionary information
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Start_Evolution_Time = 0.0 ## start evolution time t0
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Final_Evolution_Time = 100.0 ## final evolution time t1 (Reduced for quick test)
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Check_Time = 10.0
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Dump_Time = 10.0 ## time inteval dT for dumping binary data
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D2_Dump_Time = 10.0 ## dump the ascii data for 2d surface after dT'
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Analysis_Time = 1.0 ## dump the puncture position and GW psi4 after dT"
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Evolution_Step_Number = 10000000 ## stop the calculation after the maximal step number
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Courant_Factor = 0.5 ## Courant Factor
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Dissipation = 0.15 ## Kreiss-Oliger Dissipation Strength
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#################################################
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#################################################
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## Setting the grid structure
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basic_grid_set = "Patch" ## grid structure: choose "Patch" or "Shell-Patch"
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grid_center_set = "Cell" ## grid center: chose "Cell" or "Vertex"
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grid_level = 7 ## total number of AMR grid levels (Reduced from 9)
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static_grid_level = 4 ## number of AMR static grid levels (Reduced from 5)
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moving_grid_level = grid_level - static_grid_level ## number of AMR moving grid levels
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analysis_level = 0
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refinement_level = 3 ## time refinement start from this grid level
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largest_box_xyz_max = [320.0, 320.0, 320.0] ## scale of the largest box
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## not ne cess ary to be cubic for "Patch" grid s tructure
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## need to be a cubic box for "Shell-Patch" grid structure
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largest_box_xyz_min = - numpy.array(largest_box_xyz_max)
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static_grid_number = 48 ## grid points of each static AMR grid (in x direction) (Reduced from 96)
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## (grid points in y and z directions are automatically adjusted)
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moving_grid_number = 24 ## grid points of each moving AMR grid (Reduced from 48)
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shell_grid_number = [32, 32, 100] ## grid points of Shell-Patch grid
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## in (phi, theta, r) direction
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devide_factor = 2.0 ## resolution between different grid levels dh0/dh1, only support 2.0 now
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static_grid_type = 'Linear' ## AMR static grid structure , only supports "Linear"
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moving_grid_type = 'Linear' ## AMR moving grid structure , only supports "Linear"
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quarter_sphere_number = 48 ## grid number of 1/4 s pher ical surface (Reduced from 96)
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## (which is needed for evaluating the spherical surface integral)
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#################################################
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#################################################
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## Setting the puncture information
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puncture_number = 2
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position_BH = numpy.zeros( (puncture_number, 3) )
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parameter_BH = numpy.zeros( (puncture_number, 3) )
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dimensionless_spin_BH = numpy.zeros( (puncture_number, 3) )
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momentum_BH = numpy.zeros( (puncture_number, 3) )
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puncture_data_set = "Manually" ## Method to give Puncture’s positions and momentum
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## choose "Manually" or "Automatically-BBH"
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## Prefer to choose "Manually", because "Automatically-BBH" is developing now
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## initial orbital distance and ellipticity for BBHs system
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## ( needed for "Automatically-BBH" case , not affect the "Manually" case )
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Distance = 10.0
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e0 = 0.0
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## black hole parameter (M Q* a*)
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parameter_BH[0] = [ 36.0/(36.0+29.0), 0.0, +0.31 ]
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parameter_BH[1] = [ 29.0/(36.0+29.0), 0.0, -0.46 ]
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## dimensionless spin in each direction
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dimensionless_spin_BH[0] = [ 0.0, 0.0, +0.31 ]
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dimensionless_spin_BH[1] = [ 0.0, 0.0, -0.46 ]
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## use Brugmann's convention
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## -----0-----> y
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## - +
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#---------------------------------------------
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## If puncture_data_set is chosen to be "Manually", it is necessary to set the position and momentum of each puncture manually
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## initial position for each puncture
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position_BH[0] = [ 0.0, 10.0*29.0/(36.0+29.0), 0.0 ]
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position_BH[1] = [ 0.0, -10.0*36.0/(36.0+29.0), 0.0 ]
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## initial mumentum for each puncture
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## (needed for "Manually" case, does not affect the "Automatically-BBH" case)
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momentum_BH[0] = [ -0.09530152296974252, -0.00084541526517121, 0.0 ]
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momentum_BH[1] = [ +0.09530152296974252, +0.00084541526517121, 0.0 ]
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#################################################
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#################################################
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## Setting the gravitational wave information
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GW_L_max = 4 ## maximal L number in gravitational wave
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GW_M_max = 4 ## maximal M number in gravitational wave
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Detector_Number = 12 ## number of dector
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Detector_Rmin = 50.0 ## nearest dector distance
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Detector_Rmax = 160.0 ## farest dector distance
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#################################################
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#################################################
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## Setting the apprent horizon
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AHF_Find = "no" ## whether to find the apparent horizon: choose "yes" or "no"
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AHF_Find_Every = 24
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AHF_Dump_Time = 20.0
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#################################################
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#################################################
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## Other parameters (testing)
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## Only influence the Equation_Class = "BSSN-EScalar" case
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FR_a2 = 3.0 ## f(R) = R + a2 * R^2
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FR_l2 = 10000.0
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FR_phi0 = 0.00005
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FR_r0 = 120.0
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FR_sigma0 = 8.0
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FR_Choice = 2 ## Choice options: 1 2 3 4 5
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## 1: phi(r) = phi0 * Exp(-(r-r0)**2/sigma0)
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## V(r) = 0
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## 2: phi(r) = phi0 * a2^2/(1+a2^2)
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## V(r) = Exp(-8*Sqrt(PI/3)*phi(r)) * (1-Exp(4*Sqrt(PI/3)*phi(r)))**2 / (32*PI*a2)
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## 3: Schrodinger-Newton gived by system phi(r)
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## V(r) = Exp(-8*Sqrt(PI/3)*phi(r)) * (1-Exp(4*Sqrt(PI/3)*phi(r)))**2 / (32*PI*a2)
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## 4: phi(r) = phi0 * 0.5 * ( tanh((r+r0)/sigma0) - tanh((r-r0)/sigma0) )
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## V(r) = 0
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## f(R) = R + a2*R^2 with a2 = +oo
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## 5: phi(r) = phi0 * Exp(-(r-r0)**2/sigma)
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## V(r) = 0
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#################################################
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#################################################
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## Other parameters (testing)
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## (please do not change if not necessary)
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boundary_choice = "BAM-choice" ## Sommerfeld boundary condition : choose "BAM-choice" or "Shibata-choice"
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## prefer "BAM-choice"
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gauge_choice = 0 ## gauge choice
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## 0: B^i gauge
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## 1: David's puncture gauge
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## 2: MB B^i gauge
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## 3: RIT B^i gauge
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## 4: MB beta gauge
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## 5: RIT beta gauge
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## 6: MGB1 B^i gauge
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## 7: MGB2 B^i gauge
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## prefer 0 or 1
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tetrad_type = 2 ## tetradtype
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## v:r; u: phi; w: theta
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## v^a = (x,y,z)
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## 0: orthonormal order: v,u,w
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## v^a = (x,y,z)
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## m = (phi - i theta)/sqrt(2)
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## following Frans, Eq.(8) of PRD 75, 124018(2007)
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## 1: orthonormal order: w,u,v
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## m = (theta + i phi)/sqrt(2)
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## following Sperhake, Eq.(3.2) of PRD 85, 124062(2012)
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## 2: orthonormal order: v,u,w
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## v_a = (x,y,z)
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## m = (phi - i theta)/sqrt(2)
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## following Frans, Eq.(8) of PRD 75, 124018(2007)
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## this version recommend set to 2
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## prefer 2
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#################################################
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@@ -1,224 +0,0 @@
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##################################################################
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##
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## AMSS-NCKU Numerical Relativity Mini Test Program
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## Author: Assistant (based on Xiaoqu's code)
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## 2026/01/20
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##
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## This script runs a scaled-down version of the GW150914 test case
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## suitable for laptop testing.
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##
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##################################################################
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import os
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import shutil
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import sys
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import time
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# --- Context Manager for Input File Swapping ---
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class InputFileSwapper:
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def __init__(self, mini_file="AMSS_NCKU_Input_Mini.py", target_file="AMSS_NCKU_Input.py"):
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self.mini_file = mini_file
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self.target_file = target_file
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self.backup_file = target_file + ".bak"
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self.swapped = False
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def __enter__(self):
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print(f"[MiniProgram] Swapping {self.target_file} with {self.mini_file}...")
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if os.path.exists(self.target_file):
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shutil.move(self.target_file, self.backup_file)
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shutil.copy(self.mini_file, self.target_file)
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self.swapped = True
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return self
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def __exit__(self, exc_type, exc_value, traceback):
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if self.swapped:
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print(f"[MiniProgram] Restoring original {self.target_file}...")
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os.remove(self.target_file)
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if os.path.exists(self.backup_file):
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shutil.move(self.backup_file, self.target_file)
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def main():
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# Use the swapper to ensure all imported modules see the mini configuration
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with InputFileSwapper():
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# Import modules AFTER swapping input file
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try:
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import AMSS_NCKU_Input as input_data
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import print_information
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import setup
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import numerical_grid
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import generate_macrodef
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import makefile_and_run
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import generate_TwoPuncture_input
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import renew_puncture_parameter
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import plot_xiaoqu
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import plot_GW_strain_amplitude_xiaoqu
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except ImportError as e:
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print(f"Error importing modules: {e}")
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return
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print_information.print_program_introduction()
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print("\n" + "#"*60)
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print(" RUNNING MINI TEST CASE: GW150914-mini")
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print("#"*60 + "\n")
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# --- Directory Setup ---
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File_directory = os.path.join(input_data.File_directory)
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if os.path.exists(File_directory):
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print(f" Output directory '{File_directory}' exists. Removing for mini test...")
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shutil.rmtree(File_directory, ignore_errors=True)
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os.mkdir(File_directory)
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shutil.copy("AMSS_NCKU_Input.py", File_directory) # Copies the current (mini) input
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output_directory = os.path.join(File_directory, "AMSS_NCKU_output")
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os.mkdir(output_directory)
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binary_results_directory = os.path.join(output_directory, input_data.Output_directory)
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os.mkdir(binary_results_directory)
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figure_directory = os.path.join(File_directory, "figure")
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os.mkdir(figure_directory)
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print(" Output directories generated.\n")
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||||||
# --- Setup and Input Generation ---
|
|
||||||
setup.print_input_data(File_directory)
|
|
||||||
setup.generate_AMSSNCKU_input()
|
|
||||||
setup.print_puncture_information()
|
|
||||||
|
|
||||||
print("\n Generating AMSS-NCKU input parfile...")
|
|
||||||
numerical_grid.append_AMSSNCKU_cgh_input()
|
|
||||||
|
|
||||||
print("\n Plotting initial grid...")
|
|
||||||
numerical_grid.plot_initial_grid()
|
|
||||||
|
|
||||||
print("\n Generating macro files...")
|
|
||||||
generate_macrodef.generate_macrodef_h()
|
|
||||||
generate_macrodef.generate_macrodef_fh()
|
|
||||||
|
|
||||||
# --- Compilation Preparation ---
|
|
||||||
print("\n Preparing to compile and run...")
|
|
||||||
|
|
||||||
AMSS_NCKU_source_path = "AMSS_NCKU_source"
|
|
||||||
AMSS_NCKU_source_copy = os.path.join(File_directory, "AMSS_NCKU_source_copy")
|
|
||||||
|
|
||||||
if not os.path.exists(AMSS_NCKU_source_path):
|
|
||||||
print(" Error: AMSS_NCKU_source not found! Please run in the project root.")
|
|
||||||
return
|
|
||||||
|
|
||||||
shutil.copytree(AMSS_NCKU_source_path, AMSS_NCKU_source_copy)
|
|
||||||
|
|
||||||
macrodef_h_path = os.path.join(File_directory, "macrodef.h")
|
|
||||||
macrodef_fh_path = os.path.join(File_directory, "macrodef.fh")
|
|
||||||
|
|
||||||
shutil.copy2(macrodef_h_path, AMSS_NCKU_source_copy)
|
|
||||||
shutil.copy2(macrodef_fh_path, AMSS_NCKU_source_copy)
|
|
||||||
|
|
||||||
# --- Compilation ---
|
|
||||||
cwd = os.getcwd()
|
|
||||||
os.chdir(AMSS_NCKU_source_copy)
|
|
||||||
|
|
||||||
print(" Compiling ABE...")
|
|
||||||
makefile_and_run.makefile_ABE()
|
|
||||||
|
|
||||||
if (input_data.Initial_Data_Method == "Ansorg-TwoPuncture" ):
|
|
||||||
print(" Compiling TwoPunctureABE...")
|
|
||||||
makefile_and_run.makefile_TwoPunctureABE()
|
|
||||||
|
|
||||||
os.chdir(cwd)
|
|
||||||
|
|
||||||
# --- Copy Executables ---
|
|
||||||
if (input_data.GPU_Calculation == "no"):
|
|
||||||
ABE_file = os.path.join(AMSS_NCKU_source_copy, "ABE")
|
|
||||||
else:
|
|
||||||
ABE_file = os.path.join(AMSS_NCKU_source_copy, "ABEGPU")
|
|
||||||
|
|
||||||
if not os.path.exists(ABE_file):
|
|
||||||
print(" Error: ABE executable compilation failed.")
|
|
||||||
return
|
|
||||||
|
|
||||||
shutil.copy2(ABE_file, output_directory)
|
|
||||||
|
|
||||||
TwoPuncture_file = os.path.join(AMSS_NCKU_source_copy, "TwoPunctureABE")
|
|
||||||
if (input_data.Initial_Data_Method == "Ansorg-TwoPuncture" ):
|
|
||||||
if not os.path.exists(TwoPuncture_file):
|
|
||||||
print(" Error: TwoPunctureABE compilation failed.")
|
|
||||||
return
|
|
||||||
shutil.copy2(TwoPuncture_file, output_directory)
|
|
||||||
|
|
||||||
# --- Execution ---
|
|
||||||
start_time = time.time()
|
|
||||||
|
|
||||||
if (input_data.Initial_Data_Method == "Ansorg-TwoPuncture" ):
|
|
||||||
print("\n Generating TwoPuncture input...")
|
|
||||||
generate_TwoPuncture_input.generate_AMSSNCKU_TwoPuncture_input()
|
|
||||||
|
|
||||||
AMSS_NCKU_TwoPuncture_inputfile = 'AMSS-NCKU-TwoPuncture.input'
|
|
||||||
AMSS_NCKU_TwoPuncture_inputfile_path = os.path.join( File_directory, AMSS_NCKU_TwoPuncture_inputfile )
|
|
||||||
shutil.copy2( AMSS_NCKU_TwoPuncture_inputfile_path, os.path.join(output_directory, 'TwoPunctureinput.par') )
|
|
||||||
|
|
||||||
print(" Running TwoPunctureABE...")
|
|
||||||
os.chdir(output_directory)
|
|
||||||
makefile_and_run.run_TwoPunctureABE()
|
|
||||||
os.chdir(cwd)
|
|
||||||
|
|
||||||
# Update Puncture Parameter
|
|
||||||
renew_puncture_parameter.append_AMSSNCKU_BSSN_input(File_directory, output_directory)
|
|
||||||
|
|
||||||
AMSS_NCKU_inputfile = 'AMSS-NCKU.input'
|
|
||||||
AMSS_NCKU_inputfile_path = os.path.join(File_directory, AMSS_NCKU_inputfile)
|
|
||||||
shutil.copy2( AMSS_NCKU_inputfile_path, os.path.join(output_directory, 'input.par') )
|
|
||||||
|
|
||||||
print("\n Input files ready. Launching ABE...")
|
|
||||||
|
|
||||||
os.chdir(output_directory)
|
|
||||||
makefile_and_run.run_ABE()
|
|
||||||
os.chdir(cwd)
|
|
||||||
|
|
||||||
end_time = time.time()
|
|
||||||
elapsed_time = end_time - start_time
|
|
||||||
|
|
||||||
# --- Post-processing ---
|
|
||||||
print("\n Copying output files for inspection...")
|
|
||||||
AMSS_NCKU_error_file_path = os.path.join(binary_results_directory, "setting.par")
|
|
||||||
if os.path.exists(AMSS_NCKU_error_file_path):
|
|
||||||
shutil.copy( AMSS_NCKU_error_file_path, os.path.join(output_directory, "AMSSNCKU_setting_parameter") )
|
|
||||||
|
|
||||||
AMSS_NCKU_error_file_path = os.path.join(binary_results_directory, "Error.log")
|
|
||||||
if os.path.exists(AMSS_NCKU_error_file_path):
|
|
||||||
shutil.copy( AMSS_NCKU_error_file_path, os.path.join(output_directory, "Error.log") )
|
|
||||||
|
|
||||||
for fname in ["bssn_BH.dat", "bssn_ADMQs.dat", "bssn_psi4.dat", "bssn_constraint.dat"]:
|
|
||||||
fpath = os.path.join(binary_results_directory, fname)
|
|
||||||
if os.path.exists(fpath):
|
|
||||||
shutil.copy(fpath, os.path.join(output_directory, fname))
|
|
||||||
|
|
||||||
# --- Plotting ---
|
|
||||||
print("\n Plotting results...")
|
|
||||||
try:
|
|
||||||
plot_xiaoqu.generate_puncture_orbit_plot( binary_results_directory, figure_directory )
|
|
||||||
plot_xiaoqu.generate_puncture_orbit_plot3D( binary_results_directory, figure_directory )
|
|
||||||
plot_xiaoqu.generate_puncture_distence_plot( binary_results_directory, figure_directory )
|
|
||||||
|
|
||||||
for i in range(input_data.Detector_Number):
|
|
||||||
plot_xiaoqu.generate_gravitational_wave_psi4_plot( binary_results_directory, figure_directory, i )
|
|
||||||
plot_GW_strain_amplitude_xiaoqu.generate_gravitational_wave_amplitude_plot( binary_results_directory, figure_directory, i )
|
|
||||||
|
|
||||||
for i in range(input_data.Detector_Number):
|
|
||||||
plot_xiaoqu.generate_ADMmass_plot( binary_results_directory, figure_directory, i )
|
|
||||||
|
|
||||||
for i in range(input_data.grid_level):
|
|
||||||
plot_xiaoqu.generate_constraint_check_plot( binary_results_directory, figure_directory, i )
|
|
||||||
|
|
||||||
plot_xiaoqu.generate_binary_data_plot( binary_results_directory, figure_directory )
|
|
||||||
except Exception as e:
|
|
||||||
print(f"Warning: Plotting failed: {e}")
|
|
||||||
|
|
||||||
print(f"\n Program Cost = {elapsed_time:.2f} Seconds \n")
|
|
||||||
print(" AMSS-NCKU-Python simulation finished (Mini Test).\n")
|
|
||||||
|
|
||||||
if __name__ == "__main__":
|
|
||||||
main()
|
|
||||||
@@ -8,6 +8,14 @@
|
|||||||
##
|
##
|
||||||
##################################################################
|
##################################################################
|
||||||
|
|
||||||
|
## Guard against re-execution by multiprocessing child processes.
|
||||||
|
## Without this, using 'spawn' or 'forkserver' context would cause every
|
||||||
|
## worker to re-run the entire script, spawning exponentially more
|
||||||
|
## workers (fork bomb).
|
||||||
|
if __name__ != '__main__':
|
||||||
|
import sys as _sys
|
||||||
|
_sys.exit(0)
|
||||||
|
|
||||||
|
|
||||||
##################################################################
|
##################################################################
|
||||||
|
|
||||||
@@ -424,26 +432,31 @@ print(
|
|||||||
|
|
||||||
import plot_xiaoqu
|
import plot_xiaoqu
|
||||||
import plot_GW_strain_amplitude_xiaoqu
|
import plot_GW_strain_amplitude_xiaoqu
|
||||||
|
from parallel_plot_helper import run_plot_tasks_parallel
|
||||||
|
|
||||||
|
plot_tasks = []
|
||||||
|
|
||||||
## Plot black hole trajectory
|
## Plot black hole trajectory
|
||||||
plot_xiaoqu.generate_puncture_orbit_plot( binary_results_directory, figure_directory )
|
plot_tasks.append( ( plot_xiaoqu.generate_puncture_orbit_plot, (binary_results_directory, figure_directory) ) )
|
||||||
plot_xiaoqu.generate_puncture_orbit_plot3D( binary_results_directory, figure_directory )
|
plot_tasks.append( ( plot_xiaoqu.generate_puncture_orbit_plot3D, (binary_results_directory, figure_directory) ) )
|
||||||
|
|
||||||
## Plot black hole separation vs. time
|
## Plot black hole separation vs. time
|
||||||
plot_xiaoqu.generate_puncture_distence_plot( binary_results_directory, figure_directory )
|
plot_tasks.append( ( plot_xiaoqu.generate_puncture_distence_plot, (binary_results_directory, figure_directory) ) )
|
||||||
|
|
||||||
## Plot gravitational waveforms (psi4 and strain amplitude)
|
## Plot gravitational waveforms (psi4 and strain amplitude)
|
||||||
for i in range(input_data.Detector_Number):
|
for i in range(input_data.Detector_Number):
|
||||||
plot_xiaoqu.generate_gravitational_wave_psi4_plot( binary_results_directory, figure_directory, i )
|
plot_tasks.append( ( plot_xiaoqu.generate_gravitational_wave_psi4_plot, (binary_results_directory, figure_directory, i) ) )
|
||||||
plot_GW_strain_amplitude_xiaoqu.generate_gravitational_wave_amplitude_plot( binary_results_directory, figure_directory, i )
|
plot_tasks.append( ( plot_GW_strain_amplitude_xiaoqu.generate_gravitational_wave_amplitude_plot, (binary_results_directory, figure_directory, i) ) )
|
||||||
|
|
||||||
## Plot ADM mass evolution
|
## Plot ADM mass evolution
|
||||||
for i in range(input_data.Detector_Number):
|
for i in range(input_data.Detector_Number):
|
||||||
plot_xiaoqu.generate_ADMmass_plot( binary_results_directory, figure_directory, i )
|
plot_tasks.append( ( plot_xiaoqu.generate_ADMmass_plot, (binary_results_directory, figure_directory, i) ) )
|
||||||
|
|
||||||
## Plot Hamiltonian constraint violation over time
|
## Plot Hamiltonian constraint violation over time
|
||||||
for i in range(input_data.grid_level):
|
for i in range(input_data.grid_level):
|
||||||
plot_xiaoqu.generate_constraint_check_plot( binary_results_directory, figure_directory, i )
|
plot_tasks.append( ( plot_xiaoqu.generate_constraint_check_plot, (binary_results_directory, figure_directory, i) ) )
|
||||||
|
|
||||||
|
run_plot_tasks_parallel(plot_tasks)
|
||||||
|
|
||||||
## Plot stored binary data
|
## Plot stored binary data
|
||||||
plot_xiaoqu.generate_binary_data_plot( binary_results_directory, figure_directory )
|
plot_xiaoqu.generate_binary_data_plot( binary_results_directory, figure_directory )
|
||||||
|
|||||||
@@ -313,7 +313,7 @@ MyList<Block> *Parallel::distribute(MyList<Patch> *PatchLIST, int cpusize, int i
|
|||||||
|
|
||||||
int split_size, min_size, block_size = 0;
|
int split_size, min_size, block_size = 0;
|
||||||
|
|
||||||
int min_width = Mymax(2 * ghost_width + 2, buffer_width + 2);
|
int min_width = 2 * Mymax(ghost_width, buffer_width);
|
||||||
int nxyz[dim], mmin_width[dim], min_shape[dim];
|
int nxyz[dim], mmin_width[dim], min_shape[dim];
|
||||||
|
|
||||||
MyList<Patch> *PLi = PatchLIST;
|
MyList<Patch> *PLi = PatchLIST;
|
||||||
@@ -641,7 +641,7 @@ MyList<Block> *Parallel::distribute(MyList<Patch> *PatchLIST, int cpusize, int i
|
|||||||
|
|
||||||
int split_size, min_size, block_size = 0;
|
int split_size, min_size, block_size = 0;
|
||||||
|
|
||||||
int min_width = Mymax(2 * ghost_width + 2, buffer_width + 2);
|
int min_width = 2 * Mymax(ghost_width, buffer_width);
|
||||||
int nxyz[dim], mmin_width[dim], min_shape[dim];
|
int nxyz[dim], mmin_width[dim], min_shape[dim];
|
||||||
|
|
||||||
MyList<Patch> *PLi = PatchLIST;
|
MyList<Patch> *PLi = PatchLIST;
|
||||||
@@ -3756,6 +3756,358 @@ void Parallel::Sync(MyList<Patch> *PatL, MyList<var> *VarList, int Symmetry)
|
|||||||
delete[] transfer_src;
|
delete[] transfer_src;
|
||||||
delete[] transfer_dst;
|
delete[] transfer_dst;
|
||||||
}
|
}
|
||||||
|
//
|
||||||
|
// Async Sync: split into SyncBegin (initiate MPI) and SyncEnd (wait + unpack)
|
||||||
|
// This allows overlapping MPI communication with computation.
|
||||||
|
//
|
||||||
|
static void transfer_begin(Parallel::TransferState *ts)
|
||||||
|
{
|
||||||
|
int myrank;
|
||||||
|
MPI_Comm_rank(MPI_COMM_WORLD, &myrank);
|
||||||
|
int cpusize = ts->cpusize;
|
||||||
|
|
||||||
|
ts->reqs = new MPI_Request[2 * cpusize];
|
||||||
|
ts->stats = new MPI_Status[2 * cpusize];
|
||||||
|
ts->req_no = 0;
|
||||||
|
ts->send_data = new double *[cpusize];
|
||||||
|
ts->rec_data = new double *[cpusize];
|
||||||
|
int length;
|
||||||
|
|
||||||
|
for (int node = 0; node < cpusize; node++)
|
||||||
|
{
|
||||||
|
ts->send_data[node] = ts->rec_data[node] = 0;
|
||||||
|
if (node == myrank)
|
||||||
|
{
|
||||||
|
// Local copy: pack then immediately unpack (no MPI needed)
|
||||||
|
if ((length = Parallel::data_packer(0, ts->transfer_src[myrank], ts->transfer_dst[myrank],
|
||||||
|
node, PACK, ts->VarList1, ts->VarList2, ts->Symmetry)))
|
||||||
|
{
|
||||||
|
double *local_data = new double[length];
|
||||||
|
if (!local_data)
|
||||||
|
{
|
||||||
|
cout << "out of memory in transfer_begin, local copy" << endl;
|
||||||
|
MPI_Abort(MPI_COMM_WORLD, 1);
|
||||||
|
}
|
||||||
|
Parallel::data_packer(local_data, ts->transfer_src[myrank], ts->transfer_dst[myrank],
|
||||||
|
node, PACK, ts->VarList1, ts->VarList2, ts->Symmetry);
|
||||||
|
Parallel::data_packer(local_data, ts->transfer_src[node], ts->transfer_dst[node],
|
||||||
|
node, UNPACK, ts->VarList1, ts->VarList2, ts->Symmetry);
|
||||||
|
delete[] local_data;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
else
|
||||||
|
{
|
||||||
|
// send from this cpu to cpu#node
|
||||||
|
if ((length = Parallel::data_packer(0, ts->transfer_src[myrank], ts->transfer_dst[myrank],
|
||||||
|
node, PACK, ts->VarList1, ts->VarList2, ts->Symmetry)))
|
||||||
|
{
|
||||||
|
ts->send_data[node] = new double[length];
|
||||||
|
if (!ts->send_data[node])
|
||||||
|
{
|
||||||
|
cout << "out of memory in transfer_begin, send" << endl;
|
||||||
|
MPI_Abort(MPI_COMM_WORLD, 1);
|
||||||
|
}
|
||||||
|
Parallel::data_packer(ts->send_data[node], ts->transfer_src[myrank], ts->transfer_dst[myrank],
|
||||||
|
node, PACK, ts->VarList1, ts->VarList2, ts->Symmetry);
|
||||||
|
MPI_Isend((void *)ts->send_data[node], length, MPI_DOUBLE, node, 1, MPI_COMM_WORLD,
|
||||||
|
ts->reqs + ts->req_no++);
|
||||||
|
}
|
||||||
|
// receive from cpu#node to this cpu
|
||||||
|
if ((length = Parallel::data_packer(0, ts->transfer_src[node], ts->transfer_dst[node],
|
||||||
|
node, UNPACK, ts->VarList1, ts->VarList2, ts->Symmetry)))
|
||||||
|
{
|
||||||
|
ts->rec_data[node] = new double[length];
|
||||||
|
if (!ts->rec_data[node])
|
||||||
|
{
|
||||||
|
cout << "out of memory in transfer_begin, recv" << endl;
|
||||||
|
MPI_Abort(MPI_COMM_WORLD, 1);
|
||||||
|
}
|
||||||
|
MPI_Irecv((void *)ts->rec_data[node], length, MPI_DOUBLE, node, 1, MPI_COMM_WORLD,
|
||||||
|
ts->reqs + ts->req_no++);
|
||||||
|
}
|
||||||
|
}
|
||||||
|
}
|
||||||
|
// NOTE: MPI_Waitall is NOT called here - that happens in transfer_end
|
||||||
|
}
|
||||||
|
//
|
||||||
|
static void transfer_end(Parallel::TransferState *ts)
|
||||||
|
{
|
||||||
|
// Wait for all pending MPI operations
|
||||||
|
MPI_Waitall(ts->req_no, ts->reqs, ts->stats);
|
||||||
|
|
||||||
|
// Unpack received data from remote ranks
|
||||||
|
for (int node = 0; node < ts->cpusize; node++)
|
||||||
|
if (ts->rec_data[node])
|
||||||
|
Parallel::data_packer(ts->rec_data[node], ts->transfer_src[node], ts->transfer_dst[node],
|
||||||
|
node, UNPACK, ts->VarList1, ts->VarList2, ts->Symmetry);
|
||||||
|
|
||||||
|
// Cleanup MPI buffers
|
||||||
|
for (int node = 0; node < ts->cpusize; node++)
|
||||||
|
{
|
||||||
|
if (ts->send_data[node])
|
||||||
|
delete[] ts->send_data[node];
|
||||||
|
if (ts->rec_data[node])
|
||||||
|
delete[] ts->rec_data[node];
|
||||||
|
}
|
||||||
|
delete[] ts->reqs;
|
||||||
|
delete[] ts->stats;
|
||||||
|
delete[] ts->send_data;
|
||||||
|
delete[] ts->rec_data;
|
||||||
|
}
|
||||||
|
//
|
||||||
|
Parallel::SyncHandle *Parallel::SyncBegin(Patch *Pat, MyList<var> *VarList, int Symmetry)
|
||||||
|
{
|
||||||
|
int cpusize;
|
||||||
|
MPI_Comm_size(MPI_COMM_WORLD, &cpusize);
|
||||||
|
|
||||||
|
SyncHandle *handle = new SyncHandle;
|
||||||
|
handle->num_states = 1;
|
||||||
|
handle->states = new TransferState[1];
|
||||||
|
|
||||||
|
TransferState *ts = &handle->states[0];
|
||||||
|
ts->cpusize = cpusize;
|
||||||
|
ts->VarList1 = VarList;
|
||||||
|
ts->VarList2 = VarList;
|
||||||
|
ts->Symmetry = Symmetry;
|
||||||
|
ts->owns_gsl = true;
|
||||||
|
|
||||||
|
ts->dst = build_ghost_gsl(Pat);
|
||||||
|
ts->src = new MyList<Parallel::gridseg> *[cpusize];
|
||||||
|
ts->transfer_src = new MyList<Parallel::gridseg> *[cpusize];
|
||||||
|
ts->transfer_dst = new MyList<Parallel::gridseg> *[cpusize];
|
||||||
|
for (int node = 0; node < cpusize; node++)
|
||||||
|
{
|
||||||
|
ts->src[node] = build_owned_gsl0(Pat, node);
|
||||||
|
build_gstl(ts->src[node], ts->dst, &ts->transfer_src[node], &ts->transfer_dst[node]);
|
||||||
|
}
|
||||||
|
|
||||||
|
transfer_begin(ts);
|
||||||
|
|
||||||
|
return handle;
|
||||||
|
}
|
||||||
|
//
|
||||||
|
Parallel::SyncHandle *Parallel::SyncBegin(MyList<Patch> *PatL, MyList<var> *VarList, int Symmetry)
|
||||||
|
{
|
||||||
|
int cpusize;
|
||||||
|
MPI_Comm_size(MPI_COMM_WORLD, &cpusize);
|
||||||
|
|
||||||
|
// Count patches
|
||||||
|
int num_patches = 0;
|
||||||
|
MyList<Patch> *Pp = PatL;
|
||||||
|
while (Pp) { num_patches++; Pp = Pp->next; }
|
||||||
|
|
||||||
|
SyncHandle *handle = new SyncHandle;
|
||||||
|
handle->num_states = num_patches + 1; // intra-patch transfers + 1 inter-patch transfer
|
||||||
|
handle->states = new TransferState[handle->num_states];
|
||||||
|
|
||||||
|
// Intra-patch sync: for each patch, build ghost lists and initiate transfer
|
||||||
|
int idx = 0;
|
||||||
|
Pp = PatL;
|
||||||
|
while (Pp)
|
||||||
|
{
|
||||||
|
TransferState *ts = &handle->states[idx];
|
||||||
|
ts->cpusize = cpusize;
|
||||||
|
ts->VarList1 = VarList;
|
||||||
|
ts->VarList2 = VarList;
|
||||||
|
ts->Symmetry = Symmetry;
|
||||||
|
ts->owns_gsl = true;
|
||||||
|
|
||||||
|
ts->dst = build_ghost_gsl(Pp->data);
|
||||||
|
ts->src = new MyList<Parallel::gridseg> *[cpusize];
|
||||||
|
ts->transfer_src = new MyList<Parallel::gridseg> *[cpusize];
|
||||||
|
ts->transfer_dst = new MyList<Parallel::gridseg> *[cpusize];
|
||||||
|
for (int node = 0; node < cpusize; node++)
|
||||||
|
{
|
||||||
|
ts->src[node] = build_owned_gsl0(Pp->data, node);
|
||||||
|
build_gstl(ts->src[node], ts->dst, &ts->transfer_src[node], &ts->transfer_dst[node]);
|
||||||
|
}
|
||||||
|
|
||||||
|
transfer_begin(ts);
|
||||||
|
|
||||||
|
idx++;
|
||||||
|
Pp = Pp->next;
|
||||||
|
}
|
||||||
|
|
||||||
|
// Inter-patch sync: buffer zone exchange between patches
|
||||||
|
{
|
||||||
|
TransferState *ts = &handle->states[idx];
|
||||||
|
ts->cpusize = cpusize;
|
||||||
|
ts->VarList1 = VarList;
|
||||||
|
ts->VarList2 = VarList;
|
||||||
|
ts->Symmetry = Symmetry;
|
||||||
|
ts->owns_gsl = true;
|
||||||
|
|
||||||
|
ts->dst = build_buffer_gsl(PatL);
|
||||||
|
ts->src = new MyList<Parallel::gridseg> *[cpusize];
|
||||||
|
ts->transfer_src = new MyList<Parallel::gridseg> *[cpusize];
|
||||||
|
ts->transfer_dst = new MyList<Parallel::gridseg> *[cpusize];
|
||||||
|
for (int node = 0; node < cpusize; node++)
|
||||||
|
{
|
||||||
|
ts->src[node] = build_owned_gsl(PatL, node, 5, Symmetry);
|
||||||
|
build_gstl(ts->src[node], ts->dst, &ts->transfer_src[node], &ts->transfer_dst[node]);
|
||||||
|
}
|
||||||
|
|
||||||
|
transfer_begin(ts);
|
||||||
|
}
|
||||||
|
|
||||||
|
return handle;
|
||||||
|
}
|
||||||
|
//
|
||||||
|
void Parallel::SyncEnd(SyncHandle *handle)
|
||||||
|
{
|
||||||
|
if (!handle)
|
||||||
|
return;
|
||||||
|
|
||||||
|
// Wait for all pending transfers and unpack
|
||||||
|
for (int i = 0; i < handle->num_states; i++)
|
||||||
|
{
|
||||||
|
TransferState *ts = &handle->states[i];
|
||||||
|
transfer_end(ts);
|
||||||
|
|
||||||
|
// Cleanup grid segment lists only if this state owns them
|
||||||
|
if (ts->owns_gsl)
|
||||||
|
{
|
||||||
|
if (ts->dst)
|
||||||
|
ts->dst->destroyList();
|
||||||
|
for (int node = 0; node < ts->cpusize; node++)
|
||||||
|
{
|
||||||
|
if (ts->src[node])
|
||||||
|
ts->src[node]->destroyList();
|
||||||
|
if (ts->transfer_src[node])
|
||||||
|
ts->transfer_src[node]->destroyList();
|
||||||
|
if (ts->transfer_dst[node])
|
||||||
|
ts->transfer_dst[node]->destroyList();
|
||||||
|
}
|
||||||
|
delete[] ts->src;
|
||||||
|
delete[] ts->transfer_src;
|
||||||
|
delete[] ts->transfer_dst;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
delete[] handle->states;
|
||||||
|
delete handle;
|
||||||
|
}
|
||||||
|
//
|
||||||
|
// SyncPreparePlan: Pre-build grid segment lists for a patch list.
|
||||||
|
// The plan can be reused across multiple SyncBeginWithPlan calls
|
||||||
|
// as long as the mesh topology does not change (no regridding).
|
||||||
|
//
|
||||||
|
Parallel::SyncPlan *Parallel::SyncPreparePlan(MyList<Patch> *PatL, int Symmetry)
|
||||||
|
{
|
||||||
|
int cpusize;
|
||||||
|
MPI_Comm_size(MPI_COMM_WORLD, &cpusize);
|
||||||
|
|
||||||
|
// Count patches
|
||||||
|
int num_patches = 0;
|
||||||
|
MyList<Patch> *Pp = PatL;
|
||||||
|
while (Pp) { num_patches++; Pp = Pp->next; }
|
||||||
|
|
||||||
|
SyncPlan *plan = new SyncPlan;
|
||||||
|
plan->num_entries = num_patches + 1; // intra-patch + 1 inter-patch
|
||||||
|
plan->Symmetry = Symmetry;
|
||||||
|
plan->entries = new SyncPlanEntry[plan->num_entries];
|
||||||
|
|
||||||
|
// Intra-patch entries: ghost zone exchange within each patch
|
||||||
|
int idx = 0;
|
||||||
|
Pp = PatL;
|
||||||
|
while (Pp)
|
||||||
|
{
|
||||||
|
SyncPlanEntry *pe = &plan->entries[idx];
|
||||||
|
pe->cpusize = cpusize;
|
||||||
|
pe->dst = build_ghost_gsl(Pp->data);
|
||||||
|
pe->src = new MyList<Parallel::gridseg> *[cpusize];
|
||||||
|
pe->transfer_src = new MyList<Parallel::gridseg> *[cpusize];
|
||||||
|
pe->transfer_dst = new MyList<Parallel::gridseg> *[cpusize];
|
||||||
|
for (int node = 0; node < cpusize; node++)
|
||||||
|
{
|
||||||
|
pe->src[node] = build_owned_gsl0(Pp->data, node);
|
||||||
|
build_gstl(pe->src[node], pe->dst, &pe->transfer_src[node], &pe->transfer_dst[node]);
|
||||||
|
}
|
||||||
|
idx++;
|
||||||
|
Pp = Pp->next;
|
||||||
|
}
|
||||||
|
|
||||||
|
// Inter-patch entry: buffer zone exchange between patches
|
||||||
|
{
|
||||||
|
SyncPlanEntry *pe = &plan->entries[idx];
|
||||||
|
pe->cpusize = cpusize;
|
||||||
|
pe->dst = build_buffer_gsl(PatL);
|
||||||
|
pe->src = new MyList<Parallel::gridseg> *[cpusize];
|
||||||
|
pe->transfer_src = new MyList<Parallel::gridseg> *[cpusize];
|
||||||
|
pe->transfer_dst = new MyList<Parallel::gridseg> *[cpusize];
|
||||||
|
for (int node = 0; node < cpusize; node++)
|
||||||
|
{
|
||||||
|
pe->src[node] = build_owned_gsl(PatL, node, 5, Symmetry);
|
||||||
|
build_gstl(pe->src[node], pe->dst, &pe->transfer_src[node], &pe->transfer_dst[node]);
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
return plan;
|
||||||
|
}
|
||||||
|
//
|
||||||
|
void Parallel::SyncFreePlan(SyncPlan *plan)
|
||||||
|
{
|
||||||
|
if (!plan)
|
||||||
|
return;
|
||||||
|
|
||||||
|
for (int i = 0; i < plan->num_entries; i++)
|
||||||
|
{
|
||||||
|
SyncPlanEntry *pe = &plan->entries[i];
|
||||||
|
if (pe->dst)
|
||||||
|
pe->dst->destroyList();
|
||||||
|
for (int node = 0; node < pe->cpusize; node++)
|
||||||
|
{
|
||||||
|
if (pe->src[node])
|
||||||
|
pe->src[node]->destroyList();
|
||||||
|
if (pe->transfer_src[node])
|
||||||
|
pe->transfer_src[node]->destroyList();
|
||||||
|
if (pe->transfer_dst[node])
|
||||||
|
pe->transfer_dst[node]->destroyList();
|
||||||
|
}
|
||||||
|
delete[] pe->src;
|
||||||
|
delete[] pe->transfer_src;
|
||||||
|
delete[] pe->transfer_dst;
|
||||||
|
}
|
||||||
|
delete[] plan->entries;
|
||||||
|
delete plan;
|
||||||
|
}
|
||||||
|
//
|
||||||
|
// SyncBeginWithPlan: Use pre-built GSLs from a SyncPlan to initiate async transfer.
|
||||||
|
// This avoids the O(cpusize * blocks^2) cost of rebuilding GSLs on every call.
|
||||||
|
//
|
||||||
|
Parallel::SyncHandle *Parallel::SyncBeginWithPlan(SyncPlan *plan, MyList<var> *VarList)
|
||||||
|
{
|
||||||
|
return SyncBeginWithPlan(plan, VarList, VarList);
|
||||||
|
}
|
||||||
|
//
|
||||||
|
Parallel::SyncHandle *Parallel::SyncBeginWithPlan(SyncPlan *plan, MyList<var> *VarList1, MyList<var> *VarList2)
|
||||||
|
{
|
||||||
|
SyncHandle *handle = new SyncHandle;
|
||||||
|
handle->num_states = plan->num_entries;
|
||||||
|
handle->states = new TransferState[handle->num_states];
|
||||||
|
|
||||||
|
for (int i = 0; i < plan->num_entries; i++)
|
||||||
|
{
|
||||||
|
SyncPlanEntry *pe = &plan->entries[i];
|
||||||
|
TransferState *ts = &handle->states[i];
|
||||||
|
|
||||||
|
ts->cpusize = pe->cpusize;
|
||||||
|
ts->VarList1 = VarList1;
|
||||||
|
ts->VarList2 = VarList2;
|
||||||
|
ts->Symmetry = plan->Symmetry;
|
||||||
|
ts->owns_gsl = false; // GSLs are owned by the plan, not this handle
|
||||||
|
|
||||||
|
// Borrow GSL pointers from the plan (do NOT free them in SyncEnd)
|
||||||
|
ts->transfer_src = pe->transfer_src;
|
||||||
|
ts->transfer_dst = pe->transfer_dst;
|
||||||
|
ts->src = pe->src;
|
||||||
|
ts->dst = pe->dst;
|
||||||
|
|
||||||
|
transfer_begin(ts);
|
||||||
|
}
|
||||||
|
|
||||||
|
return handle;
|
||||||
|
}
|
||||||
// collect buffer grid segments or blocks for the periodic boundary condition of given patch
|
// collect buffer grid segments or blocks for the periodic boundary condition of given patch
|
||||||
// ---------------------------------------------------
|
// ---------------------------------------------------
|
||||||
// |con | |con |
|
// |con | |con |
|
||||||
|
|||||||
@@ -81,6 +81,53 @@ namespace Parallel
|
|||||||
int Symmetry);
|
int Symmetry);
|
||||||
void Sync(Patch *Pat, MyList<var> *VarList, int Symmetry);
|
void Sync(Patch *Pat, MyList<var> *VarList, int Symmetry);
|
||||||
void Sync(MyList<Patch> *PatL, MyList<var> *VarList, int Symmetry);
|
void Sync(MyList<Patch> *PatL, MyList<var> *VarList, int Symmetry);
|
||||||
|
|
||||||
|
// Async Sync: overlap MPI communication with computation
|
||||||
|
struct TransferState
|
||||||
|
{
|
||||||
|
MPI_Request *reqs;
|
||||||
|
MPI_Status *stats;
|
||||||
|
int req_no;
|
||||||
|
double **send_data;
|
||||||
|
double **rec_data;
|
||||||
|
int cpusize;
|
||||||
|
MyList<gridseg> **transfer_src;
|
||||||
|
MyList<gridseg> **transfer_dst;
|
||||||
|
MyList<gridseg> **src;
|
||||||
|
MyList<gridseg> *dst;
|
||||||
|
MyList<var> *VarList1;
|
||||||
|
MyList<var> *VarList2;
|
||||||
|
int Symmetry;
|
||||||
|
bool owns_gsl; // true if this state owns and should free the GSLs
|
||||||
|
};
|
||||||
|
struct SyncHandle
|
||||||
|
{
|
||||||
|
TransferState *states;
|
||||||
|
int num_states;
|
||||||
|
};
|
||||||
|
SyncHandle *SyncBegin(Patch *Pat, MyList<var> *VarList, int Symmetry);
|
||||||
|
SyncHandle *SyncBegin(MyList<Patch> *PatL, MyList<var> *VarList, int Symmetry);
|
||||||
|
void SyncEnd(SyncHandle *handle);
|
||||||
|
|
||||||
|
// Cached GSL plan: pre-build grid segment lists once, reuse across multiple Sync calls
|
||||||
|
struct SyncPlanEntry
|
||||||
|
{
|
||||||
|
int cpusize;
|
||||||
|
MyList<gridseg> **transfer_src;
|
||||||
|
MyList<gridseg> **transfer_dst;
|
||||||
|
MyList<gridseg> **src;
|
||||||
|
MyList<gridseg> *dst;
|
||||||
|
};
|
||||||
|
struct SyncPlan
|
||||||
|
{
|
||||||
|
SyncPlanEntry *entries;
|
||||||
|
int num_entries;
|
||||||
|
int Symmetry;
|
||||||
|
};
|
||||||
|
SyncPlan *SyncPreparePlan(MyList<Patch> *PatL, int Symmetry);
|
||||||
|
void SyncFreePlan(SyncPlan *plan);
|
||||||
|
SyncHandle *SyncBeginWithPlan(SyncPlan *plan, MyList<var> *VarList);
|
||||||
|
SyncHandle *SyncBeginWithPlan(SyncPlan *plan, MyList<var> *VarList1, MyList<var> *VarList2);
|
||||||
void OutBdLow2Hi(Patch *Patc, Patch *Patf,
|
void OutBdLow2Hi(Patch *Patc, Patch *Patf,
|
||||||
MyList<var> *VarList1 /* source */, MyList<var> *VarList2 /* target */,
|
MyList<var> *VarList1 /* source */, MyList<var> *VarList2 /* target */,
|
||||||
int Symmetry);
|
int Symmetry);
|
||||||
|
|||||||
File diff suppressed because it is too large
Load Diff
@@ -1,7 +1,8 @@
|
|||||||
|
|
||||||
#ifndef TWO_PUNCTURES_H
|
#ifndef TWO_PUNCTURES_H
|
||||||
#define TWO_PUNCTURES_H
|
#define TWO_PUNCTURES_H
|
||||||
|
|
||||||
|
#include <omp.h>
|
||||||
|
|
||||||
#define StencilSize 19
|
#define StencilSize 19
|
||||||
#define N_PlaneRelax 1
|
#define N_PlaneRelax 1
|
||||||
#define NRELAX 200
|
#define NRELAX 200
|
||||||
@@ -42,6 +43,18 @@ private:
|
|||||||
|
|
||||||
int ntotal;
|
int ntotal;
|
||||||
|
|
||||||
|
// ===== Precomputed spectral derivative matrices =====
|
||||||
|
double *D1_A, *D2_A;
|
||||||
|
double *D1_B, *D2_B;
|
||||||
|
double *DF1_phi, *DF2_phi;
|
||||||
|
|
||||||
|
// ===== Pre-allocated workspace for LineRelax (per-thread) =====
|
||||||
|
int max_threads;
|
||||||
|
double **ws_diag_be, **ws_e_be, **ws_f_be, **ws_b_be, **ws_x_be;
|
||||||
|
double **ws_l_be, **ws_u_be, **ws_d_be, **ws_y_be;
|
||||||
|
double **ws_diag_al, **ws_e_al, **ws_f_al, **ws_b_al, **ws_x_al;
|
||||||
|
double **ws_l_al, **ws_u_al, **ws_d_al, **ws_y_al;
|
||||||
|
|
||||||
struct parameters
|
struct parameters
|
||||||
{
|
{
|
||||||
int nvar, n1, n2, n3;
|
int nvar, n1, n2, n3;
|
||||||
@@ -58,6 +71,28 @@ public:
|
|||||||
int Newtonmaxit);
|
int Newtonmaxit);
|
||||||
~TwoPunctures();
|
~TwoPunctures();
|
||||||
|
|
||||||
|
// 02/07: New/modified methods
|
||||||
|
void allocate_workspace();
|
||||||
|
void free_workspace();
|
||||||
|
void precompute_derivative_matrices();
|
||||||
|
void build_cheb_deriv_matrices(int n, double *D1, double *D2);
|
||||||
|
void build_fourier_deriv_matrices(int N, double *DF1, double *DF2);
|
||||||
|
void Derivatives_AB3_MatMul(int nvar, int n1, int n2, int n3, derivs v);
|
||||||
|
void ThomasAlgorithm_ws(int N, double *b, double *a, double *c, double *x, double *q,
|
||||||
|
double *l, double *u_ws, double *d, double *y);
|
||||||
|
void LineRelax_be_omp(double *dv,
|
||||||
|
int const i, int const k, int const nvar,
|
||||||
|
int const n1, int const n2, int const n3,
|
||||||
|
double const *rhs, int const *ncols, int **cols,
|
||||||
|
double **JFD, int tid);
|
||||||
|
void LineRelax_al_omp(double *dv,
|
||||||
|
int const j, int const k, int const nvar,
|
||||||
|
int const n1, int const n2, int const n3,
|
||||||
|
double const *rhs, int const *ncols,
|
||||||
|
int **cols, double **JFD, int tid);
|
||||||
|
void relax_omp(double *dv, int const nvar, int const n1, int const n2, int const n3,
|
||||||
|
double const *rhs, int const *ncols, int **cols, double **JFD);
|
||||||
|
|
||||||
void Solve();
|
void Solve();
|
||||||
void set_initial_guess(derivs v);
|
void set_initial_guess(derivs v);
|
||||||
int index(int i, int j, int k, int l, int a, int b, int c, int d);
|
int index(int i, int j, int k, int l, int a, int b, int c, int d);
|
||||||
@@ -116,23 +151,11 @@ public:
|
|||||||
double BY_KKofxyz(double x, double y, double z);
|
double BY_KKofxyz(double x, double y, double z);
|
||||||
void SetMatrix_JFD(int nvar, int n1, int n2, int n3, derivs u, int *ncols, int **cols, double **Matrix);
|
void SetMatrix_JFD(int nvar, int n1, int n2, int n3, derivs u, int *ncols, int **cols, double **Matrix);
|
||||||
void J_times_dv(int nvar, int n1, int n2, int n3, derivs dv, double *Jdv, derivs u);
|
void J_times_dv(int nvar, int n1, int n2, int n3, derivs dv, double *Jdv, derivs u);
|
||||||
void relax(double *dv, int const nvar, int const n1, int const n2, int const n3,
|
|
||||||
double const *rhs, int const *ncols, int **cols, double **JFD);
|
|
||||||
void LineRelax_be(double *dv,
|
|
||||||
int const i, int const k, int const nvar,
|
|
||||||
int const n1, int const n2, int const n3,
|
|
||||||
double const *rhs, int const *ncols, int **cols,
|
|
||||||
double **JFD);
|
|
||||||
void JFD_times_dv(int i, int j, int k, int nvar, int n1, int n2,
|
void JFD_times_dv(int i, int j, int k, int nvar, int n1, int n2,
|
||||||
int n3, derivs dv, derivs u, double *values);
|
int n3, derivs dv, derivs u, double *values);
|
||||||
void LinEquations(double A, double B, double X, double R,
|
void LinEquations(double A, double B, double X, double R,
|
||||||
double x, double r, double phi,
|
double x, double r, double phi,
|
||||||
double y, double z, derivs dU, derivs U, double *values);
|
double y, double z, derivs dU, derivs U, double *values);
|
||||||
void LineRelax_al(double *dv,
|
|
||||||
int const j, int const k, int const nvar,
|
|
||||||
int const n1, int const n2, int const n3,
|
|
||||||
double const *rhs, int const *ncols,
|
|
||||||
int **cols, double **JFD);
|
|
||||||
void ThomasAlgorithm(int N, double *b, double *a, double *c, double *x, double *q);
|
void ThomasAlgorithm(int N, double *b, double *a, double *c, double *x, double *q);
|
||||||
void Save(char *fname);
|
void Save(char *fname);
|
||||||
// provided by Vasileios Paschalidis (vpaschal@illinois.edu)
|
// provided by Vasileios Paschalidis (vpaschal@illinois.edu)
|
||||||
|
|||||||
@@ -186,6 +186,12 @@ void Z4c_class::Step(int lev, int YN)
|
|||||||
int ERROR = 0;
|
int ERROR = 0;
|
||||||
|
|
||||||
MyList<ss_patch> *sPp;
|
MyList<ss_patch> *sPp;
|
||||||
|
|
||||||
|
// Pre-build grid segment lists once for this level's patches.
|
||||||
|
// These are reused across predictor + 3 corrector SyncBegin calls,
|
||||||
|
// avoiding O(cpusize * blocks^2) rebuild each time.
|
||||||
|
Parallel::SyncPlan *sync_plan = Parallel::SyncPreparePlan(GH->PatL[lev], Symmetry);
|
||||||
|
|
||||||
// Predictor
|
// Predictor
|
||||||
MyList<Patch> *Pp = GH->PatL[lev];
|
MyList<Patch> *Pp = GH->PatL[lev];
|
||||||
while (Pp)
|
while (Pp)
|
||||||
@@ -321,13 +327,17 @@ void Z4c_class::Step(int lev, int YN)
|
|||||||
}
|
}
|
||||||
Pp = Pp->next;
|
Pp = Pp->next;
|
||||||
}
|
}
|
||||||
// check error information
|
// Start async ghost zone exchange - overlaps with error check and Shell computation
|
||||||
|
Parallel::SyncHandle *sync_pre = Parallel::SyncBeginWithPlan(sync_plan, SynchList_pre);
|
||||||
|
|
||||||
|
// check error information (overlaps with MPI transfer)
|
||||||
{
|
{
|
||||||
int erh = ERROR;
|
int erh = ERROR;
|
||||||
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, MPI_COMM_WORLD);
|
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, MPI_COMM_WORLD);
|
||||||
}
|
}
|
||||||
if (ERROR)
|
if (ERROR)
|
||||||
{
|
{
|
||||||
|
Parallel::SyncEnd(sync_pre); sync_pre = 0;
|
||||||
Parallel::Dump_Data(GH->PatL[lev], StateList, 0, PhysTime, dT_lev);
|
Parallel::Dump_Data(GH->PatL[lev], StateList, 0, PhysTime, dT_lev);
|
||||||
if (myrank == 0)
|
if (myrank == 0)
|
||||||
{
|
{
|
||||||
@@ -475,6 +485,7 @@ void Z4c_class::Step(int lev, int YN)
|
|||||||
}
|
}
|
||||||
if (ERROR)
|
if (ERROR)
|
||||||
{
|
{
|
||||||
|
Parallel::SyncEnd(sync_pre); sync_pre = 0;
|
||||||
SH->Dump_Data(StateList, 0, PhysTime, dT_lev);
|
SH->Dump_Data(StateList, 0, PhysTime, dT_lev);
|
||||||
if (myrank == 0)
|
if (myrank == 0)
|
||||||
{
|
{
|
||||||
@@ -485,7 +496,8 @@ void Z4c_class::Step(int lev, int YN)
|
|||||||
}
|
}
|
||||||
#endif
|
#endif
|
||||||
|
|
||||||
Parallel::Sync(GH->PatL[lev], SynchList_pre, Symmetry);
|
// Complete async ghost zone exchange
|
||||||
|
if (sync_pre) Parallel::SyncEnd(sync_pre);
|
||||||
|
|
||||||
#ifdef WithShell
|
#ifdef WithShell
|
||||||
if (lev == 0)
|
if (lev == 0)
|
||||||
@@ -693,13 +705,17 @@ void Z4c_class::Step(int lev, int YN)
|
|||||||
Pp = Pp->next;
|
Pp = Pp->next;
|
||||||
}
|
}
|
||||||
|
|
||||||
// check error information
|
// Start async ghost zone exchange - overlaps with error check and Shell computation
|
||||||
|
Parallel::SyncHandle *sync_cor = Parallel::SyncBeginWithPlan(sync_plan, SynchList_cor);
|
||||||
|
|
||||||
|
// check error information (overlaps with MPI transfer)
|
||||||
{
|
{
|
||||||
int erh = ERROR;
|
int erh = ERROR;
|
||||||
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, MPI_COMM_WORLD);
|
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, MPI_COMM_WORLD);
|
||||||
}
|
}
|
||||||
if (ERROR)
|
if (ERROR)
|
||||||
{
|
{
|
||||||
|
Parallel::SyncEnd(sync_cor); sync_cor = 0;
|
||||||
Parallel::Dump_Data(GH->PatL[lev], SynchList_pre, 0, PhysTime, dT_lev);
|
Parallel::Dump_Data(GH->PatL[lev], SynchList_pre, 0, PhysTime, dT_lev);
|
||||||
if (myrank == 0)
|
if (myrank == 0)
|
||||||
{
|
{
|
||||||
@@ -857,6 +873,7 @@ void Z4c_class::Step(int lev, int YN)
|
|||||||
}
|
}
|
||||||
if (ERROR)
|
if (ERROR)
|
||||||
{
|
{
|
||||||
|
Parallel::SyncEnd(sync_cor); sync_cor = 0;
|
||||||
SH->Dump_Data(SynchList_pre, 0, PhysTime, dT_lev);
|
SH->Dump_Data(SynchList_pre, 0, PhysTime, dT_lev);
|
||||||
if (myrank == 0)
|
if (myrank == 0)
|
||||||
{
|
{
|
||||||
@@ -868,7 +885,8 @@ void Z4c_class::Step(int lev, int YN)
|
|||||||
}
|
}
|
||||||
#endif
|
#endif
|
||||||
|
|
||||||
Parallel::Sync(GH->PatL[lev], SynchList_cor, Symmetry);
|
// Complete async ghost zone exchange
|
||||||
|
if (sync_cor) Parallel::SyncEnd(sync_cor);
|
||||||
|
|
||||||
#ifdef WithShell
|
#ifdef WithShell
|
||||||
if (lev == 0)
|
if (lev == 0)
|
||||||
@@ -1042,6 +1060,8 @@ void Z4c_class::Step(int lev, int YN)
|
|||||||
Porg0[ithBH][2] = Porg1[ithBH][2];
|
Porg0[ithBH][2] = Porg1[ithBH][2];
|
||||||
}
|
}
|
||||||
}
|
}
|
||||||
|
|
||||||
|
Parallel::SyncFreePlan(sync_plan);
|
||||||
}
|
}
|
||||||
#else
|
#else
|
||||||
// for constraint preserving boundary (CPBC)
|
// for constraint preserving boundary (CPBC)
|
||||||
@@ -1075,6 +1095,10 @@ void Z4c_class::Step(int lev, int YN)
|
|||||||
int ERROR = 0;
|
int ERROR = 0;
|
||||||
|
|
||||||
MyList<ss_patch> *sPp;
|
MyList<ss_patch> *sPp;
|
||||||
|
|
||||||
|
// Pre-build grid segment lists once for this level's patches.
|
||||||
|
Parallel::SyncPlan *sync_plan = Parallel::SyncPreparePlan(GH->PatL[lev], Symmetry);
|
||||||
|
|
||||||
// Predictor
|
// Predictor
|
||||||
MyList<Patch> *Pp = GH->PatL[lev];
|
MyList<Patch> *Pp = GH->PatL[lev];
|
||||||
while (Pp)
|
while (Pp)
|
||||||
@@ -1542,13 +1566,17 @@ void Z4c_class::Step(int lev, int YN)
|
|||||||
}
|
}
|
||||||
#endif
|
#endif
|
||||||
}
|
}
|
||||||
// check error information
|
// Start async ghost zone exchange - overlaps with error check
|
||||||
|
Parallel::SyncHandle *sync_pre = Parallel::SyncBeginWithPlan(sync_plan, SynchList_pre);
|
||||||
|
|
||||||
|
// check error information (overlaps with MPI transfer)
|
||||||
{
|
{
|
||||||
int erh = ERROR;
|
int erh = ERROR;
|
||||||
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, MPI_COMM_WORLD);
|
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, MPI_COMM_WORLD);
|
||||||
}
|
}
|
||||||
if (ERROR)
|
if (ERROR)
|
||||||
{
|
{
|
||||||
|
Parallel::SyncEnd(sync_pre); sync_pre = 0;
|
||||||
SH->Dump_Data(StateList, 0, PhysTime, dT_lev);
|
SH->Dump_Data(StateList, 0, PhysTime, dT_lev);
|
||||||
if (myrank == 0)
|
if (myrank == 0)
|
||||||
{
|
{
|
||||||
@@ -1558,7 +1586,8 @@ void Z4c_class::Step(int lev, int YN)
|
|||||||
}
|
}
|
||||||
}
|
}
|
||||||
|
|
||||||
Parallel::Sync(GH->PatL[lev], SynchList_pre, Symmetry);
|
// Complete async ghost zone exchange
|
||||||
|
if (sync_pre) Parallel::SyncEnd(sync_pre);
|
||||||
|
|
||||||
if (lev == 0)
|
if (lev == 0)
|
||||||
{
|
{
|
||||||
@@ -2103,13 +2132,17 @@ void Z4c_class::Step(int lev, int YN)
|
|||||||
sPp = sPp->next;
|
sPp = sPp->next;
|
||||||
}
|
}
|
||||||
}
|
}
|
||||||
// check error information
|
// Start async ghost zone exchange - overlaps with error check
|
||||||
|
Parallel::SyncHandle *sync_cor = Parallel::SyncBeginWithPlan(sync_plan, SynchList_cor);
|
||||||
|
|
||||||
|
// check error information (overlaps with MPI transfer)
|
||||||
{
|
{
|
||||||
int erh = ERROR;
|
int erh = ERROR;
|
||||||
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, MPI_COMM_WORLD);
|
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, MPI_COMM_WORLD);
|
||||||
}
|
}
|
||||||
if (ERROR)
|
if (ERROR)
|
||||||
{
|
{
|
||||||
|
Parallel::SyncEnd(sync_cor); sync_cor = 0;
|
||||||
SH->Dump_Data(SynchList_pre, 0, PhysTime, dT_lev);
|
SH->Dump_Data(SynchList_pre, 0, PhysTime, dT_lev);
|
||||||
if (myrank == 0)
|
if (myrank == 0)
|
||||||
{
|
{
|
||||||
@@ -2120,7 +2153,8 @@ void Z4c_class::Step(int lev, int YN)
|
|||||||
}
|
}
|
||||||
}
|
}
|
||||||
|
|
||||||
Parallel::Sync(GH->PatL[lev], SynchList_cor, Symmetry);
|
// Complete async ghost zone exchange
|
||||||
|
if (sync_cor) Parallel::SyncEnd(sync_cor);
|
||||||
|
|
||||||
if (lev == 0)
|
if (lev == 0)
|
||||||
{
|
{
|
||||||
@@ -2346,6 +2380,8 @@ void Z4c_class::Step(int lev, int YN)
|
|||||||
DG_List->clearList();
|
DG_List->clearList();
|
||||||
}
|
}
|
||||||
#endif
|
#endif
|
||||||
|
|
||||||
|
Parallel::SyncFreePlan(sync_plan);
|
||||||
}
|
}
|
||||||
#endif
|
#endif
|
||||||
#undef MRBD
|
#undef MRBD
|
||||||
|
|||||||
@@ -3035,6 +3035,12 @@ void bssn_class::Step(int lev, int YN)
|
|||||||
int ERROR = 0;
|
int ERROR = 0;
|
||||||
|
|
||||||
MyList<ss_patch> *sPp;
|
MyList<ss_patch> *sPp;
|
||||||
|
|
||||||
|
// Pre-build grid segment lists once for this level's patches.
|
||||||
|
// These are reused across predictor + 3 corrector SyncBegin calls,
|
||||||
|
// avoiding O(cpusize * blocks^2) rebuild each time.
|
||||||
|
Parallel::SyncPlan *sync_plan = Parallel::SyncPreparePlan(GH->PatL[lev], Symmetry);
|
||||||
|
|
||||||
// Predictor
|
// Predictor
|
||||||
MyList<Patch> *Pp = GH->PatL[lev];
|
MyList<Patch> *Pp = GH->PatL[lev];
|
||||||
while (Pp)
|
while (Pp)
|
||||||
@@ -3158,13 +3164,18 @@ void bssn_class::Step(int lev, int YN)
|
|||||||
}
|
}
|
||||||
Pp = Pp->next;
|
Pp = Pp->next;
|
||||||
}
|
}
|
||||||
// check error information
|
|
||||||
|
// Start async ghost zone exchange - overlaps with error check and Shell computation
|
||||||
|
Parallel::SyncHandle *sync_pre = Parallel::SyncBeginWithPlan(sync_plan, SynchList_pre);
|
||||||
|
|
||||||
|
// check error information (overlaps with MPI transfer)
|
||||||
{
|
{
|
||||||
int erh = ERROR;
|
int erh = ERROR;
|
||||||
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, MPI_COMM_WORLD);
|
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, MPI_COMM_WORLD);
|
||||||
}
|
}
|
||||||
if (ERROR)
|
if (ERROR)
|
||||||
{
|
{
|
||||||
|
Parallel::SyncEnd(sync_pre); sync_pre = 0;
|
||||||
Parallel::Dump_Data(GH->PatL[lev], StateList, 0, PhysTime, dT_lev);
|
Parallel::Dump_Data(GH->PatL[lev], StateList, 0, PhysTime, dT_lev);
|
||||||
if (myrank == 0)
|
if (myrank == 0)
|
||||||
{
|
{
|
||||||
@@ -3324,6 +3335,7 @@ void bssn_class::Step(int lev, int YN)
|
|||||||
|
|
||||||
if (ERROR)
|
if (ERROR)
|
||||||
{
|
{
|
||||||
|
Parallel::SyncEnd(sync_pre); sync_pre = 0;
|
||||||
SH->Dump_Data(StateList, 0, PhysTime, dT_lev);
|
SH->Dump_Data(StateList, 0, PhysTime, dT_lev);
|
||||||
if (myrank == 0)
|
if (myrank == 0)
|
||||||
{
|
{
|
||||||
@@ -3334,7 +3346,8 @@ void bssn_class::Step(int lev, int YN)
|
|||||||
}
|
}
|
||||||
#endif
|
#endif
|
||||||
|
|
||||||
Parallel::Sync(GH->PatL[lev], SynchList_pre, Symmetry);
|
// Complete async ghost zone exchange
|
||||||
|
if (sync_pre) Parallel::SyncEnd(sync_pre);
|
||||||
|
|
||||||
#ifdef WithShell
|
#ifdef WithShell
|
||||||
if (lev == 0)
|
if (lev == 0)
|
||||||
@@ -3528,7 +3541,10 @@ void bssn_class::Step(int lev, int YN)
|
|||||||
Pp = Pp->next;
|
Pp = Pp->next;
|
||||||
}
|
}
|
||||||
|
|
||||||
// check error information
|
// Start async ghost zone exchange - overlaps with error check and Shell computation
|
||||||
|
Parallel::SyncHandle *sync_cor = Parallel::SyncBeginWithPlan(sync_plan, SynchList_cor);
|
||||||
|
|
||||||
|
// check error information (overlaps with MPI transfer)
|
||||||
{
|
{
|
||||||
int erh = ERROR;
|
int erh = ERROR;
|
||||||
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, MPI_COMM_WORLD);
|
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, MPI_COMM_WORLD);
|
||||||
@@ -3536,6 +3552,7 @@ void bssn_class::Step(int lev, int YN)
|
|||||||
|
|
||||||
if (ERROR)
|
if (ERROR)
|
||||||
{
|
{
|
||||||
|
Parallel::SyncEnd(sync_cor); sync_cor = 0;
|
||||||
Parallel::Dump_Data(GH->PatL[lev], SynchList_pre, 0, PhysTime, dT_lev);
|
Parallel::Dump_Data(GH->PatL[lev], SynchList_pre, 0, PhysTime, dT_lev);
|
||||||
if (myrank == 0)
|
if (myrank == 0)
|
||||||
{
|
{
|
||||||
@@ -3692,6 +3709,7 @@ void bssn_class::Step(int lev, int YN)
|
|||||||
}
|
}
|
||||||
if (ERROR)
|
if (ERROR)
|
||||||
{
|
{
|
||||||
|
Parallel::SyncEnd(sync_cor); sync_cor = 0;
|
||||||
SH->Dump_Data(SynchList_pre, 0, PhysTime, dT_lev);
|
SH->Dump_Data(SynchList_pre, 0, PhysTime, dT_lev);
|
||||||
if (myrank == 0)
|
if (myrank == 0)
|
||||||
{
|
{
|
||||||
@@ -3704,7 +3722,8 @@ void bssn_class::Step(int lev, int YN)
|
|||||||
}
|
}
|
||||||
#endif
|
#endif
|
||||||
|
|
||||||
Parallel::Sync(GH->PatL[lev], SynchList_cor, Symmetry);
|
// Complete async ghost zone exchange
|
||||||
|
if (sync_cor) Parallel::SyncEnd(sync_cor);
|
||||||
|
|
||||||
#ifdef WithShell
|
#ifdef WithShell
|
||||||
if (lev == 0)
|
if (lev == 0)
|
||||||
@@ -3895,6 +3914,8 @@ void bssn_class::Step(int lev, int YN)
|
|||||||
Porg0[ithBH][2] = Porg1[ithBH][2];
|
Porg0[ithBH][2] = Porg1[ithBH][2];
|
||||||
}
|
}
|
||||||
}
|
}
|
||||||
|
|
||||||
|
Parallel::SyncFreePlan(sync_plan);
|
||||||
}
|
}
|
||||||
|
|
||||||
//================================================================================================
|
//================================================================================================
|
||||||
@@ -4817,6 +4838,12 @@ void bssn_class::Step(int lev, int YN)
|
|||||||
int ERROR = 0;
|
int ERROR = 0;
|
||||||
|
|
||||||
MyList<ss_patch> *sPp;
|
MyList<ss_patch> *sPp;
|
||||||
|
|
||||||
|
// Pre-build grid segment lists once for this level's patches.
|
||||||
|
// These are reused across predictor + 3 corrector SyncBegin calls,
|
||||||
|
// avoiding O(cpusize * blocks^2) rebuild each time.
|
||||||
|
Parallel::SyncPlan *sync_plan = Parallel::SyncPreparePlan(GH->PatL[lev], Symmetry);
|
||||||
|
|
||||||
// Predictor
|
// Predictor
|
||||||
MyList<Patch> *Pp = GH->PatL[lev];
|
MyList<Patch> *Pp = GH->PatL[lev];
|
||||||
while (Pp)
|
while (Pp)
|
||||||
@@ -4943,13 +4970,17 @@ void bssn_class::Step(int lev, int YN)
|
|||||||
|
|
||||||
// misc::tillherecheck(GH->Commlev[lev],GH->start_rank[lev],"after Predictor rhs calculation");
|
// misc::tillherecheck(GH->Commlev[lev],GH->start_rank[lev],"after Predictor rhs calculation");
|
||||||
|
|
||||||
// check error information
|
// Start async ghost zone exchange - overlaps with error check and BH position
|
||||||
|
Parallel::SyncHandle *sync_pre = Parallel::SyncBeginWithPlan(sync_plan, SynchList_pre);
|
||||||
|
|
||||||
|
// check error information (overlaps with MPI transfer)
|
||||||
{
|
{
|
||||||
int erh = ERROR;
|
int erh = ERROR;
|
||||||
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, GH->Commlev[lev]);
|
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, GH->Commlev[lev]);
|
||||||
}
|
}
|
||||||
if (ERROR)
|
if (ERROR)
|
||||||
{
|
{
|
||||||
|
Parallel::SyncEnd(sync_pre); sync_pre = 0;
|
||||||
Parallel::Dump_Data(GH->PatL[lev], StateList, 0, PhysTime, dT_lev);
|
Parallel::Dump_Data(GH->PatL[lev], StateList, 0, PhysTime, dT_lev);
|
||||||
if (myrank == 0)
|
if (myrank == 0)
|
||||||
{
|
{
|
||||||
@@ -4961,7 +4992,8 @@ void bssn_class::Step(int lev, int YN)
|
|||||||
|
|
||||||
// misc::tillherecheck(GH->Commlev[lev],GH->start_rank[lev],"before Predictor sync");
|
// misc::tillherecheck(GH->Commlev[lev],GH->start_rank[lev],"before Predictor sync");
|
||||||
|
|
||||||
Parallel::Sync(GH->PatL[lev], SynchList_pre, Symmetry);
|
// Complete async ghost zone exchange
|
||||||
|
if (sync_pre) Parallel::SyncEnd(sync_pre);
|
||||||
|
|
||||||
#if (MAPBH == 0)
|
#if (MAPBH == 0)
|
||||||
// for black hole position
|
// for black hole position
|
||||||
@@ -5140,13 +5172,17 @@ void bssn_class::Step(int lev, int YN)
|
|||||||
|
|
||||||
// misc::tillherecheck(GH->Commlev[lev],GH->start_rank[lev],"before Corrector error check");
|
// misc::tillherecheck(GH->Commlev[lev],GH->start_rank[lev],"before Corrector error check");
|
||||||
|
|
||||||
// check error information
|
// Start async ghost zone exchange - overlaps with error check and BH position
|
||||||
|
Parallel::SyncHandle *sync_cor = Parallel::SyncBeginWithPlan(sync_plan, SynchList_cor);
|
||||||
|
|
||||||
|
// check error information (overlaps with MPI transfer)
|
||||||
{
|
{
|
||||||
int erh = ERROR;
|
int erh = ERROR;
|
||||||
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, GH->Commlev[lev]);
|
MPI_Allreduce(&erh, &ERROR, 1, MPI_INT, MPI_SUM, GH->Commlev[lev]);
|
||||||
}
|
}
|
||||||
if (ERROR)
|
if (ERROR)
|
||||||
{
|
{
|
||||||
|
Parallel::SyncEnd(sync_cor); sync_cor = 0;
|
||||||
Parallel::Dump_Data(GH->PatL[lev], SynchList_pre, 0, PhysTime, dT_lev);
|
Parallel::Dump_Data(GH->PatL[lev], SynchList_pre, 0, PhysTime, dT_lev);
|
||||||
if (myrank == 0)
|
if (myrank == 0)
|
||||||
{
|
{
|
||||||
@@ -5160,7 +5196,8 @@ void bssn_class::Step(int lev, int YN)
|
|||||||
|
|
||||||
// misc::tillherecheck(GH->Commlev[lev],GH->start_rank[lev],"before Corrector sync");
|
// misc::tillherecheck(GH->Commlev[lev],GH->start_rank[lev],"before Corrector sync");
|
||||||
|
|
||||||
Parallel::Sync(GH->PatL[lev], SynchList_cor, Symmetry);
|
// Complete async ghost zone exchange
|
||||||
|
if (sync_cor) Parallel::SyncEnd(sync_cor);
|
||||||
|
|
||||||
// misc::tillherecheck(GH->Commlev[lev],GH->start_rank[lev],"after Corrector sync");
|
// misc::tillherecheck(GH->Commlev[lev],GH->start_rank[lev],"after Corrector sync");
|
||||||
|
|
||||||
@@ -5276,6 +5313,8 @@ void bssn_class::Step(int lev, int YN)
|
|||||||
|
|
||||||
// if(myrank==GH->start_rank[lev]) cout<<GH->mylev<<endl;
|
// if(myrank==GH->start_rank[lev]) cout<<GH->mylev<<endl;
|
||||||
// misc::tillherecheck(GH->Commlev[lev],GH->start_rank[lev],"complet GH Step");
|
// misc::tillherecheck(GH->Commlev[lev],GH->start_rank[lev],"complet GH Step");
|
||||||
|
|
||||||
|
Parallel::SyncFreePlan(sync_plan);
|
||||||
}
|
}
|
||||||
|
|
||||||
//================================================================================================
|
//================================================================================================
|
||||||
|
|||||||
@@ -61,9 +61,7 @@
|
|||||||
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) :: 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
|
real*8, dimension(ex(1),ex(2),ex(3)),intent(inout) :: Gmx_Res, Gmy_Res, Gmz_Res
|
||||||
! gont = 0: success; gont = 1: something wrong
|
! gont = 0: success; gont = 1: something wrong
|
||||||
integer::gont,i,j,k
|
integer::gont
|
||||||
real*8 :: val1, val2
|
|
||||||
real*8 :: det, t_gupxx, t_gupxy, t_gupxz, t_gupyy, t_gupyz, t_gupzz
|
|
||||||
|
|
||||||
!~~~~~~> Other variables:
|
!~~~~~~> Other variables:
|
||||||
|
|
||||||
@@ -86,10 +84,7 @@
|
|||||||
real*8, dimension(ex(1),ex(2),ex(3)) :: gupyy,gupyz,gupzz
|
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,dimension(3) ::SSS,AAS,ASA,SAA,ASS,SAS,SSA
|
||||||
real*8 :: PI
|
real*8 :: dX, dY, dZ, PI
|
||||||
#if (DEBUG_NAN_CHECK)
|
|
||||||
real*8 :: dX
|
|
||||||
#endif
|
|
||||||
real*8, parameter :: ZEO = 0.d0,ONE = 1.D0, TWO = 2.D0, FOUR = 4.D0
|
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 :: EIGHT = 8.D0, HALF = 0.5D0, THR = 3.d0
|
||||||
real*8, parameter :: SYM = 1.D0, ANTI= - 1.D0
|
real*8, parameter :: SYM = 1.D0, ANTI= - 1.D0
|
||||||
@@ -111,8 +106,8 @@
|
|||||||
call getpbh(BHN,Porg,Mass)
|
call getpbh(BHN,Porg,Mass)
|
||||||
#endif
|
#endif
|
||||||
|
|
||||||
#if (DEBUG_NAN_CHECK)
|
!!! sanity check (disabled in production builds for performance)
|
||||||
!!! sanity check
|
#ifdef DEBUG
|
||||||
dX = sum(chi)+sum(trK)+sum(dxx)+sum(gxy)+sum(gxz)+sum(dyy)+sum(gyz)+sum(dzz) &
|
dX = sum(chi)+sum(trK)+sum(dxx)+sum(gxy)+sum(gxz)+sum(dyy)+sum(gyz)+sum(dzz) &
|
||||||
+sum(Axx)+sum(Axy)+sum(Axz)+sum(Ayy)+sum(Ayz)+sum(Azz) &
|
+sum(Axx)+sum(Axy)+sum(Axz)+sum(Ayy)+sum(Ayz)+sum(Azz) &
|
||||||
+sum(Gamx)+sum(Gamy)+sum(Gamz) &
|
+sum(Gamx)+sum(Gamy)+sum(Gamz) &
|
||||||
@@ -146,6 +141,10 @@
|
|||||||
|
|
||||||
PI = dacos(-ONE)
|
PI = dacos(-ONE)
|
||||||
|
|
||||||
|
dX = X(2) - X(1)
|
||||||
|
dY = Y(2) - Y(1)
|
||||||
|
dZ = Z(2) - Z(1)
|
||||||
|
|
||||||
alpn1 = Lap + ONE
|
alpn1 = Lap + ONE
|
||||||
chin1 = chi + ONE
|
chin1 = chi + ONE
|
||||||
gxx = dxx + ONE
|
gxx = dxx + ONE
|
||||||
@@ -159,16 +158,16 @@
|
|||||||
div_beta = betaxx + betayy + betazz
|
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)
|
||||||
call fderivs(ex,dxx,gxxx,gxxy,gxxz,X,Y,Z,SYM ,SYM ,SYM ,Symmetry,Lev)
|
|
||||||
call fderivs(ex,dyy,gyyx,gyyy,gyyz,X,Y,Z,SYM ,SYM ,SYM ,Symmetry,Lev)
|
|
||||||
call fderivs(ex,dzz,gzzx,gzzy,gzzz,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,gyz,gyzx,gyzy,gyzz,X,Y,Z,SYM ,ANTI,ANTI,Symmetry,Lev)
|
|
||||||
|
|
||||||
chi_rhs = F2o3 *chin1*( alpn1 * trK - div_beta ) !rhs for chi
|
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 + &
|
gxx_rhs = - TWO * alpn1 * Axx - F2o3 * gxx * div_beta + &
|
||||||
TWO *( gxx * betaxx + gxy * betayx + gxz * betazx)
|
TWO *( gxx * betaxx + gxy * betayx + gxz * betazx)
|
||||||
|
|
||||||
@@ -193,99 +192,71 @@
|
|||||||
gyz * betayx + gzz * betazx &
|
gyz * betayx + gzz * betazx &
|
||||||
- gxz * betayy !rhs for gij
|
- gxz * betayy !rhs for gij
|
||||||
|
|
||||||
! fused loop for metric inversion and connections
|
! invert tilted metric
|
||||||
!DIR$ SIMD
|
gupzz = gxx * gyy * gzz + gxy * gyz * gxz + gxz * gxy * gyz - &
|
||||||
do k=1,ex(3)
|
gxz * gyy * gxz - gxy * gxy * gzz - gxx * gyz * gyz
|
||||||
do j=1,ex(2)
|
gupxx = ( gyy * gzz - gyz * gyz ) / gupzz
|
||||||
do i=1,ex(1)
|
gupxy = - ( gxy * gzz - gyz * gxz ) / gupzz
|
||||||
! 1. Metric Inversion
|
gupxz = ( gxy * gyz - gyy * gxz ) / gupzz
|
||||||
det = ONE / ( &
|
gupyy = ( gxx * gzz - gxz * gxz ) / gupzz
|
||||||
gxx(i,j,k) * gyy(i,j,k) * gzz(i,j,k) + gxy(i,j,k) * gyz(i,j,k) * gxz(i,j,k) + &
|
gupyz = - ( gxx * gyz - gxy * gxz ) / gupzz
|
||||||
gxz(i,j,k) * gxy(i,j,k) * gyz(i,j,k) - gxz(i,j,k) * gyy(i,j,k) * gxz(i,j,k) - &
|
gupzz = ( gxx * gyy - gxy * gxy ) / gupzz
|
||||||
gxy(i,j,k) * gxy(i,j,k) * gzz(i,j,k) - gxx(i,j,k) * gyz(i,j,k) * gyz(i,j,k) )
|
|
||||||
|
|
||||||
t_gupxx = ( gyy(i,j,k) * gzz(i,j,k) - gyz(i,j,k) * gyz(i,j,k) ) * det
|
|
||||||
t_gupxy = - ( gxy(i,j,k) * gzz(i,j,k) - gyz(i,j,k) * gxz(i,j,k) ) * det
|
|
||||||
t_gupxz = ( gxy(i,j,k) * gyz(i,j,k) - gyy(i,j,k) * gxz(i,j,k) ) * det
|
|
||||||
t_gupyy = ( gxx(i,j,k) * gzz(i,j,k) - gxz(i,j,k) * gxz(i,j,k) ) * det
|
|
||||||
t_gupyz = - ( gxx(i,j,k) * gyz(i,j,k) - gxy(i,j,k) * gxz(i,j,k) ) * det
|
|
||||||
t_gupzz = ( gxx(i,j,k) * gyy(i,j,k) - gxy(i,j,k) * gxy(i,j,k) ) * det
|
|
||||||
|
|
||||||
gupxx(i,j,k) = t_gupxx
|
|
||||||
gupxy(i,j,k) = t_gupxy
|
|
||||||
gupxz(i,j,k) = t_gupxz
|
|
||||||
gupyy(i,j,k) = t_gupyy
|
|
||||||
gupyz(i,j,k) = t_gupyz
|
|
||||||
gupzz(i,j,k) = t_gupzz
|
|
||||||
|
|
||||||
if(co == 0)then
|
if(co == 0)then
|
||||||
Gmx_Res(i,j,k) = Gamx(i,j,k) - (t_gupxx*(t_gupxx*gxxx(i,j,k)+t_gupxy*gxyx(i,j,k)+t_gupxz*gxzx(i,j,k))&
|
! Gam^i_Res = Gam^i + gup^ij_,j
|
||||||
+t_gupxy*(t_gupxx*gxyx(i,j,k)+t_gupxy*gyyx(i,j,k)+t_gupxz*gyzx(i,j,k))&
|
Gmx_Res = Gamx - (gupxx*(gupxx*gxxx+gupxy*gxyx+gupxz*gxzx)&
|
||||||
+t_gupxz*(t_gupxx*gxzx(i,j,k)+t_gupxy*gyzx(i,j,k)+t_gupxz*gzzx(i,j,k))&
|
+gupxy*(gupxx*gxyx+gupxy*gyyx+gupxz*gyzx)&
|
||||||
+t_gupxx*(t_gupxy*gxxy(i,j,k)+t_gupyy*gxyy(i,j,k)+t_gupyz*gxzy(i,j,k))&
|
+gupxz*(gupxx*gxzx+gupxy*gyzx+gupxz*gzzx)&
|
||||||
+t_gupxy*(t_gupxy*gxyy(i,j,k)+t_gupyy*gyyy(i,j,k)+t_gupyz*gyzy(i,j,k))&
|
+gupxx*(gupxy*gxxy+gupyy*gxyy+gupyz*gxzy)&
|
||||||
+t_gupxz*(t_gupxy*gxzy(i,j,k)+t_gupyy*gyzy(i,j,k)+t_gupyz*gzzy(i,j,k))&
|
+gupxy*(gupxy*gxyy+gupyy*gyyy+gupyz*gyzy)&
|
||||||
+t_gupxx*(t_gupxz*gxxz(i,j,k)+t_gupyz*gxyz(i,j,k)+t_gupzz*gxzz(i,j,k))&
|
+gupxz*(gupxy*gxzy+gupyy*gyzy+gupyz*gzzy)&
|
||||||
+t_gupxy*(t_gupxz*gxyz(i,j,k)+t_gupyz*gyyz(i,j,k)+t_gupzz*gyzz(i,j,k))&
|
+gupxx*(gupxz*gxxz+gupyz*gxyz+gupzz*gxzz)&
|
||||||
+t_gupxz*(t_gupxz*gxzz(i,j,k)+t_gupyz*gyzz(i,j,k)+t_gupzz*gzzz(i,j,k)))
|
+gupxy*(gupxz*gxyz+gupyz*gyyz+gupzz*gyzz)&
|
||||||
Gmy_Res(i,j,k) = Gamy(i,j,k) - (t_gupxx*(t_gupxy*gxxx(i,j,k)+t_gupyy*gxyx(i,j,k)+t_gupyz*gxzx(i,j,k))&
|
+gupxz*(gupxz*gxzz+gupyz*gyzz+gupzz*gzzz))
|
||||||
+t_gupxy*(t_gupxy*gxyx(i,j,k)+t_gupyy*gyyx(i,j,k)+t_gupyz*gyzx(i,j,k))&
|
Gmy_Res = Gamy - (gupxx*(gupxy*gxxx+gupyy*gxyx+gupyz*gxzx)&
|
||||||
+t_gupxz*(t_gupxy*gxzx(i,j,k)+t_gupyy*gyzx(i,j,k)+t_gupyz*gzzx(i,j,k))&
|
+gupxy*(gupxy*gxyx+gupyy*gyyx+gupyz*gyzx)&
|
||||||
+t_gupxy*(t_gupxy*gxxy(i,j,k)+t_gupyy*gxyy(i,j,k)+t_gupyz*gxzy(i,j,k))&
|
+gupxz*(gupxy*gxzx+gupyy*gyzx+gupyz*gzzx)&
|
||||||
+t_gupyy*(t_gupxy*gxyy(i,j,k)+t_gupyy*gyyy(i,j,k)+t_gupyz*gyzy(i,j,k))&
|
+gupxy*(gupxy*gxxy+gupyy*gxyy+gupyz*gxzy)&
|
||||||
+t_gupyz*(t_gupxy*gxzy(i,j,k)+t_gupyy*gyzy(i,j,k)+t_gupyz*gzzy(i,j,k))&
|
+gupyy*(gupxy*gxyy+gupyy*gyyy+gupyz*gyzy)&
|
||||||
+t_gupxy*(t_gupxz*gxxz(i,j,k)+t_gupyz*gxyz(i,j,k)+t_gupzz*gxzz(i,j,k))&
|
+gupyz*(gupxy*gxzy+gupyy*gyzy+gupyz*gzzy)&
|
||||||
+t_gupyy*(t_gupxz*gxyz(i,j,k)+t_gupyz*gyyz(i,j,k)+t_gupzz*gyzz(i,j,k))&
|
+gupxy*(gupxz*gxxz+gupyz*gxyz+gupzz*gxzz)&
|
||||||
+t_gupyz*(t_gupxz*gxzz(i,j,k)+t_gupyz*gyzz(i,j,k)+t_gupzz*gzzz(i,j,k)))
|
+gupyy*(gupxz*gxyz+gupyz*gyyz+gupzz*gyzz)&
|
||||||
Gmz_Res(i,j,k) = Gamz(i,j,k) - (t_gupxx*(t_gupxz*gxxx(i,j,k)+t_gupyz*gxyx(i,j,k)+t_gupzz*gxzx(i,j,k))&
|
+gupyz*(gupxz*gxzz+gupyz*gyzz+gupzz*gzzz))
|
||||||
+t_gupxy*(t_gupxz*gxyx(i,j,k)+t_gupyz*gyyx(i,j,k)+t_gupzz*gyzx(i,j,k))&
|
Gmz_Res = Gamz - (gupxx*(gupxz*gxxx+gupyz*gxyx+gupzz*gxzx)&
|
||||||
+t_gupxz*(t_gupxz*gxzx(i,j,k)+t_gupyz*gyzx(i,j,k)+t_gupzz*gzzx(i,j,k))&
|
+gupxy*(gupxz*gxyx+gupyz*gyyx+gupzz*gyzx)&
|
||||||
+t_gupxy*(t_gupxz*gxxy(i,j,k)+t_gupyz*gxyy(i,j,k)+t_gupzz*gxzy(i,j,k))&
|
+gupxz*(gupxz*gxzx+gupyz*gyzx+gupzz*gzzx)&
|
||||||
+t_gupyy*(t_gupxz*gxyy(i,j,k)+t_gupyz*gyyy(i,j,k)+t_gupzz*gyzy(i,j,k))&
|
+gupxy*(gupxz*gxxy+gupyz*gxyy+gupzz*gxzy)&
|
||||||
+t_gupyz*(t_gupxz*gxzy(i,j,k)+t_gupyz*gyzy(i,j,k)+t_gupzz*gzzy(i,j,k))&
|
+gupyy*(gupxz*gxyy+gupyz*gyyy+gupzz*gyzy)&
|
||||||
+t_gupxz*(t_gupxz*gxxz(i,j,k)+t_gupyz*gxyz(i,j,k)+t_gupzz*gxzz(i,j,k))&
|
+gupyz*(gupxz*gxzy+gupyz*gyzy+gupzz*gzzy)&
|
||||||
+t_gupyz*(t_gupxz*gxyz(i,j,k)+t_gupyz*gyyz(i,j,k)+t_gupzz*gyzz(i,j,k))&
|
+gupxz*(gupxz*gxxz+gupyz*gxyz+gupzz*gxzz)&
|
||||||
+t_gupzz*(t_gupxz*gxzz(i,j,k)+t_gupyz*gyzz(i,j,k)+t_gupzz*gzzz(i,j,k)))
|
+gupyz*(gupxz*gxyz+gupyz*gyyz+gupzz*gyzz)&
|
||||||
|
+gupzz*(gupxz*gxzz+gupyz*gyzz+gupzz*gzzz))
|
||||||
endif
|
endif
|
||||||
|
|
||||||
! 2. Christoffel Symbols
|
! second kind of connection
|
||||||
val1 = TWO * gxyx(i,j,k) - gxxy(i,j,k)
|
Gamxxx =HALF*( gupxx*gxxx + gupxy*(TWO*gxyx - gxxy ) + gupxz*(TWO*gxzx - gxxz ))
|
||||||
val2 = TWO * gxzx(i,j,k) - gxxz(i,j,k)
|
Gamyxx =HALF*( gupxy*gxxx + gupyy*(TWO*gxyx - gxxy ) + gupyz*(TWO*gxzx - gxxz ))
|
||||||
Gamxxx(i,j,k) =HALF*( t_gupxx*gxxx(i,j,k) + t_gupxy*val1 + t_gupxz*val2 )
|
Gamzxx =HALF*( gupxz*gxxx + gupyz*(TWO*gxyx - gxxy ) + gupzz*(TWO*gxzx - gxxz ))
|
||||||
Gamyxx(i,j,k) =HALF*( t_gupxy*gxxx(i,j,k) + t_gupyy*val1 + t_gupyz*val2 )
|
|
||||||
Gamzxx(i,j,k) =HALF*( t_gupxz*gxxx(i,j,k) + t_gupyz*val1 + t_gupzz*val2 )
|
|
||||||
|
|
||||||
val1 = TWO * gxyy(i,j,k) - gyyx(i,j,k)
|
Gamxyy =HALF*( gupxx*(TWO*gxyy - gyyx ) + gupxy*gyyy + gupxz*(TWO*gyzy - gyyz ))
|
||||||
val2 = TWO * gyzy(i,j,k) - gyyz(i,j,k)
|
Gamyyy =HALF*( gupxy*(TWO*gxyy - gyyx ) + gupyy*gyyy + gupyz*(TWO*gyzy - gyyz ))
|
||||||
Gamxyy(i,j,k) =HALF*( t_gupxx*val1 + t_gupxy*gyyy(i,j,k) + t_gupxz*val2 )
|
Gamzyy =HALF*( gupxz*(TWO*gxyy - gyyx ) + gupyz*gyyy + gupzz*(TWO*gyzy - gyyz ))
|
||||||
Gamyyy(i,j,k) =HALF*( t_gupxy*val1 + t_gupyy*gyyy(i,j,k) + t_gupyz*val2 )
|
|
||||||
Gamzyy(i,j,k) =HALF*( t_gupxz*val1 + t_gupyz*gyyy(i,j,k) + t_gupzz*val2 )
|
|
||||||
|
|
||||||
val1 = TWO * gxzz(i,j,k) - gzzx(i,j,k)
|
Gamxzz =HALF*( gupxx*(TWO*gxzz - gzzx ) + gupxy*(TWO*gyzz - gzzy ) + gupxz*gzzz)
|
||||||
val2 = TWO * gyzz(i,j,k) - gzzy(i,j,k)
|
Gamyzz =HALF*( gupxy*(TWO*gxzz - gzzx ) + gupyy*(TWO*gyzz - gzzy ) + gupyz*gzzz)
|
||||||
Gamxzz(i,j,k) =HALF*( t_gupxx*val1 + t_gupxy*val2 + t_gupxz*gzzz(i,j,k) )
|
Gamzzz =HALF*( gupxz*(TWO*gxzz - gzzx ) + gupyz*(TWO*gyzz - gzzy ) + gupzz*gzzz)
|
||||||
Gamyzz(i,j,k) =HALF*( t_gupxy*val1 + t_gupyy*val2 + t_gupyz*gzzz(i,j,k) )
|
|
||||||
Gamzzz(i,j,k) =HALF*( t_gupxz*val1 + t_gupyz*val2 + t_gupzz*gzzz(i,j,k) )
|
|
||||||
|
|
||||||
val1 = gxzy(i,j,k) + gyzx(i,j,k) - gxyz(i,j,k)
|
Gamxxy =HALF*( gupxx*gxxy + gupxy*gyyx + gupxz*( gxzy + gyzx - gxyz ) )
|
||||||
Gamxxy(i,j,k) =HALF*( t_gupxx*gxxy(i,j,k) + t_gupxy*gyyx(i,j,k) + t_gupxz*val1 )
|
Gamyxy =HALF*( gupxy*gxxy + gupyy*gyyx + gupyz*( gxzy + gyzx - gxyz ) )
|
||||||
Gamyxy(i,j,k) =HALF*( t_gupxy*gxxy(i,j,k) + t_gupyy*gyyx(i,j,k) + t_gupyz*val1 )
|
Gamzxy =HALF*( gupxz*gxxy + gupyz*gyyx + gupzz*( gxzy + gyzx - gxyz ) )
|
||||||
Gamzxy(i,j,k) =HALF*( t_gupxz*gxxy(i,j,k) + t_gupyz*gyyx(i,j,k) + t_gupzz*val1 )
|
|
||||||
|
|
||||||
val1 = gxyz(i,j,k) + gyzx(i,j,k) - gxzy(i,j,k)
|
|
||||||
Gamxxz(i,j,k) =HALF*( t_gupxx*gxxz(i,j,k) + t_gupxy*val1 + t_gupxz*gzzx(i,j,k) )
|
|
||||||
Gamyxz(i,j,k) =HALF*( t_gupxy*gxxz(i,j,k) + t_gupyy*val1 + t_gupyz*gzzx(i,j,k) )
|
|
||||||
Gamzxz(i,j,k) =HALF*( t_gupxz*gxxz(i,j,k) + t_gupyz*val1 + t_gupzz*gzzx(i,j,k) )
|
|
||||||
|
|
||||||
val1 = gxyz(i,j,k) + gxzy(i,j,k) - gyzx(i,j,k)
|
|
||||||
Gamxyz(i,j,k) =HALF*( t_gupxx*val1 + t_gupxy*gyyz(i,j,k) + t_gupxz*gzzy(i,j,k) )
|
|
||||||
Gamyyz(i,j,k) =HALF*( t_gupxy*val1 + t_gupyy*gyyz(i,j,k) + t_gupyz*gzzy(i,j,k) )
|
|
||||||
Gamzyz(i,j,k) =HALF*( t_gupxz*val1 + t_gupyz*gyyz(i,j,k) + t_gupzz*gzzy(i,j,k) )
|
|
||||||
enddo
|
|
||||||
enddo
|
|
||||||
enddo
|
|
||||||
|
|
||||||
|
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
|
! Raise indices of \tilde A_{ij} and store in R_ij
|
||||||
|
|
||||||
Rxx = gupxx * gupxx * Axx + gupxy * gupxy * Ayy + gupxz * gupxz * Azz + &
|
Rxx = gupxx * gupxx * Axx + gupxy * gupxy * Ayy + gupxz * gupxz * Azz + &
|
||||||
@@ -316,40 +287,30 @@
|
|||||||
call fderivs(ex,Lap,Lapx,Lapy,Lapz,X,Y,Z,SYM,SYM,SYM,Symmetry,Lev)
|
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)
|
call fderivs(ex,trK,Kx,Ky,Kz,X,Y,Z,SYM,SYM,SYM,symmetry,Lev)
|
||||||
|
|
||||||
! reuse fxx/fxy/fxz as temporaries for matter-source combinations
|
|
||||||
fxx = F2o3 * Kx + EIGHT * PI * Sx
|
|
||||||
fxy = F2o3 * Ky + EIGHT * PI * Sy
|
|
||||||
fxz = F2o3 * Kz + EIGHT * PI * Sz
|
|
||||||
|
|
||||||
! reuse Gamxa/Gamya/Gamza as temporaries for chix*R combinations
|
|
||||||
Gamxa = chix * Rxx + chiy * Rxy + chiz * Rxz
|
|
||||||
Gamya = chix * Rxy + chiy * Ryy + chiz * Ryz
|
|
||||||
Gamza = chix * Rxz + chiy * Ryz + chiz * Rzz
|
|
||||||
|
|
||||||
Gamx_rhs = - TWO * ( Lapx * Rxx + Lapy * Rxy + Lapz * Rxz ) + &
|
Gamx_rhs = - TWO * ( Lapx * Rxx + Lapy * Rxy + Lapz * Rxz ) + &
|
||||||
TWO * alpn1 * ( &
|
TWO * alpn1 * ( &
|
||||||
-F3o2 * ONE/chin1 * Gamxa - &
|
-F3o2/chin1 * ( chix * Rxx + chiy * Rxy + chiz * Rxz ) - &
|
||||||
gupxx * fxx - &
|
gupxx * ( F2o3 * Kx + EIGHT * PI * Sx ) - &
|
||||||
gupxy * fxy - &
|
gupxy * ( F2o3 * Ky + EIGHT * PI * Sy ) - &
|
||||||
gupxz * fxz + &
|
gupxz * ( F2o3 * Kz + EIGHT * PI * Sz ) + &
|
||||||
Gamxxx * Rxx + Gamxyy * Ryy + Gamxzz * Rzz + &
|
Gamxxx * Rxx + Gamxyy * Ryy + Gamxzz * Rzz + &
|
||||||
TWO * ( Gamxxy * Rxy + Gamxxz * Rxz + Gamxyz * Ryz ) )
|
TWO * ( Gamxxy * Rxy + Gamxxz * Rxz + Gamxyz * Ryz ) )
|
||||||
|
|
||||||
Gamy_rhs = - TWO * ( Lapx * Rxy + Lapy * Ryy + Lapz * Ryz ) + &
|
Gamy_rhs = - TWO * ( Lapx * Rxy + Lapy * Ryy + Lapz * Ryz ) + &
|
||||||
TWO * alpn1 * ( &
|
TWO * alpn1 * ( &
|
||||||
-F3o2 * ONE/chin1 * Gamya - &
|
-F3o2/chin1 * ( chix * Rxy + chiy * Ryy + chiz * Ryz ) - &
|
||||||
gupxy * fxx - &
|
gupxy * ( F2o3 * Kx + EIGHT * PI * Sx ) - &
|
||||||
gupyy * fxy - &
|
gupyy * ( F2o3 * Ky + EIGHT * PI * Sy ) - &
|
||||||
gupyz * fxz + &
|
gupyz * ( F2o3 * Kz + EIGHT * PI * Sz ) + &
|
||||||
Gamyxx * Rxx + Gamyyy * Ryy + Gamyzz * Rzz + &
|
Gamyxx * Rxx + Gamyyy * Ryy + Gamyzz * Rzz + &
|
||||||
TWO * ( Gamyxy * Rxy + Gamyxz * Rxz + Gamyyz * Ryz ) )
|
TWO * ( Gamyxy * Rxy + Gamyxz * Rxz + Gamyyz * Ryz ) )
|
||||||
|
|
||||||
Gamz_rhs = - TWO * ( Lapx * Rxz + Lapy * Ryz + Lapz * Rzz ) + &
|
Gamz_rhs = - TWO * ( Lapx * Rxz + Lapy * Ryz + Lapz * Rzz ) + &
|
||||||
TWO * alpn1 * ( &
|
TWO * alpn1 * ( &
|
||||||
-F3o2 * ONE/chin1 * Gamza - &
|
-F3o2/chin1 * ( chix * Rxz + chiy * Ryz + chiz * Rzz ) - &
|
||||||
gupxz * fxx - &
|
gupxz * ( F2o3 * Kx + EIGHT * PI * Sx ) - &
|
||||||
gupyz * fxy - &
|
gupyz * ( F2o3 * Ky + EIGHT * PI * Sy ) - &
|
||||||
gupzz * fxz + &
|
gupzz * ( F2o3 * Kz + EIGHT * PI * Sz ) + &
|
||||||
Gamzxx * Rxx + Gamzyy * Ryy + Gamzzz * Rzz + &
|
Gamzxx * Rxx + Gamzyy * Ryy + Gamzzz * Rzz + &
|
||||||
TWO * ( Gamzxy * Rxy + Gamzxz * Rxz + Gamzyz * Ryz ) )
|
TWO * ( Gamzxy * Rxy + Gamzxz * Rxz + Gamzyz * Ryz ) )
|
||||||
|
|
||||||
@@ -651,47 +612,47 @@
|
|||||||
fzz = fzz - Gamxzz * chix - Gamyzz * chiy - Gamzzz * 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
|
! Store D^l D_l chi - 3/(2*chi) D^l chi D_l chi in f
|
||||||
|
|
||||||
f = gupxx * ( fxx - F3o2 * ONE/chin1 * chix * chix ) + &
|
f = gupxx * ( fxx - F3o2/chin1 * chix * chix ) + &
|
||||||
gupyy * ( fyy - F3o2 * ONE/chin1 * chiy * chiy ) + &
|
gupyy * ( fyy - F3o2/chin1 * chiy * chiy ) + &
|
||||||
gupzz * ( fzz - F3o2 * ONE/chin1 * chiz * chiz ) + &
|
gupzz * ( fzz - F3o2/chin1 * chiz * chiz ) + &
|
||||||
TWO * gupxy * ( fxy - F3o2 * ONE/chin1 * chix * chiy ) + &
|
TWO * gupxy * ( fxy - F3o2/chin1 * chix * chiy ) + &
|
||||||
TWO * gupxz * ( fxz - F3o2 * ONE/chin1 * chix * chiz ) + &
|
TWO * gupxz * ( fxz - F3o2/chin1 * chix * chiz ) + &
|
||||||
TWO * gupyz * ( fyz - F3o2 * ONE/chin1 * chiy * chiz )
|
TWO * gupyz * ( fyz - F3o2/chin1 * chiy * chiz )
|
||||||
! Add chi part to Ricci tensor:
|
! Add chi part to Ricci tensor:
|
||||||
|
|
||||||
Rxx = Rxx + (fxx - chix*chix*ONE/chin1*HALF + gxx * f) * ONE/chin1 * HALF
|
Rxx = Rxx + (fxx - chix*chix/chin1/TWO + gxx * f)/chin1/TWO
|
||||||
Ryy = Ryy + (fyy - chiy*chiy*ONE/chin1*HALF + gyy * f) * ONE/chin1 * HALF
|
Ryy = Ryy + (fyy - chiy*chiy/chin1/TWO + gyy * f)/chin1/TWO
|
||||||
Rzz = Rzz + (fzz - chiz*chiz*ONE/chin1*HALF + gzz * f) * ONE/chin1 * HALF
|
Rzz = Rzz + (fzz - chiz*chiz/chin1/TWO + gzz * f)/chin1/TWO
|
||||||
Rxy = Rxy + (fxy - chix*chiy*ONE/chin1*HALF + gxy * f) * ONE/chin1 * HALF
|
Rxy = Rxy + (fxy - chix*chiy/chin1/TWO + gxy * f)/chin1/TWO
|
||||||
Rxz = Rxz + (fxz - chix*chiz*ONE/chin1*HALF + gxz * f) * ONE/chin1 * HALF
|
Rxz = Rxz + (fxz - chix*chiz/chin1/TWO + gxz * f)/chin1/TWO
|
||||||
Ryz = Ryz + (fyz - chiy*chiz*ONE/chin1*HALF + gyz * f) * ONE/chin1 * HALF
|
Ryz = Ryz + (fyz - chiy*chiz/chin1/TWO + gyz * f)/chin1/TWO
|
||||||
|
|
||||||
! covariant second derivatives of the lapse respect to physical metric
|
! covariant second derivatives of the lapse respect to physical metric
|
||||||
call fdderivs(ex,Lap,fxx,fxy,fxz,fyy,fyz,fzz,X,Y,Z, &
|
call fdderivs(ex,Lap,fxx,fxy,fxz,fyy,fyz,fzz,X,Y,Z, &
|
||||||
SYM,SYM,SYM,symmetry,Lev)
|
SYM,SYM,SYM,symmetry,Lev)
|
||||||
|
|
||||||
gxxx = (gupxx * chix + gupxy * chiy + gupxz * chiz) * ONE/chin1
|
gxxx = (gupxx * chix + gupxy * chiy + gupxz * chiz)/chin1
|
||||||
gxxy = (gupxy * chix + gupyy * chiy + gupyz * chiz) * ONE/chin1
|
gxxy = (gupxy * chix + gupyy * chiy + gupyz * chiz)/chin1
|
||||||
gxxz = (gupxz * chix + gupyz * chiy + gupzz * chiz) * ONE/chin1
|
gxxz = (gupxz * chix + gupyz * chiy + gupzz * chiz)/chin1
|
||||||
! now get physical second kind of connection
|
! now get physical second kind of connection
|
||||||
Gamxxx = Gamxxx - ( TWO * chix * ONE/chin1 - gxx * gxxx )*HALF
|
Gamxxx = Gamxxx - ( (chix + chix)/chin1 - gxx * gxxx )*HALF
|
||||||
Gamyxx = Gamyxx - ( - gxx * gxxy )*HALF
|
Gamyxx = Gamyxx - ( - gxx * gxxy )*HALF
|
||||||
Gamzxx = Gamzxx - ( - gxx * gxxz )*HALF
|
Gamzxx = Gamzxx - ( - gxx * gxxz )*HALF
|
||||||
Gamxyy = Gamxyy - ( - gyy * gxxx )*HALF
|
Gamxyy = Gamxyy - ( - gyy * gxxx )*HALF
|
||||||
Gamyyy = Gamyyy - ( TWO * chiy * ONE/chin1 - gyy * gxxy )*HALF
|
Gamyyy = Gamyyy - ( (chiy + chiy)/chin1 - gyy * gxxy )*HALF
|
||||||
Gamzyy = Gamzyy - ( - gyy * gxxz )*HALF
|
Gamzyy = Gamzyy - ( - gyy * gxxz )*HALF
|
||||||
Gamxzz = Gamxzz - ( - gzz * gxxx )*HALF
|
Gamxzz = Gamxzz - ( - gzz * gxxx )*HALF
|
||||||
Gamyzz = Gamyzz - ( - gzz * gxxy )*HALF
|
Gamyzz = Gamyzz - ( - gzz * gxxy )*HALF
|
||||||
Gamzzz = Gamzzz - ( TWO * chiz * ONE/chin1 - gzz * gxxz )*HALF
|
Gamzzz = Gamzzz - ( (chiz + chiz)/chin1 - gzz * gxxz )*HALF
|
||||||
Gamxxy = Gamxxy - ( chiy * ONE/chin1 - gxy * gxxx )*HALF
|
Gamxxy = Gamxxy - ( chiy /chin1 - gxy * gxxx )*HALF
|
||||||
Gamyxy = Gamyxy - ( chix * ONE/chin1 - gxy * gxxy )*HALF
|
Gamyxy = Gamyxy - ( chix /chin1 - gxy * gxxy )*HALF
|
||||||
Gamzxy = Gamzxy - ( - gxy * gxxz )*HALF
|
Gamzxy = Gamzxy - ( - gxy * gxxz )*HALF
|
||||||
Gamxxz = Gamxxz - ( chiz * ONE/chin1 - gxz * gxxx )*HALF
|
Gamxxz = Gamxxz - ( chiz /chin1 - gxz * gxxx )*HALF
|
||||||
Gamyxz = Gamyxz - ( - gxz * gxxy )*HALF
|
Gamyxz = Gamyxz - ( - gxz * gxxy )*HALF
|
||||||
Gamzxz = Gamzxz - ( chix * ONE/chin1 - gxz * gxxz )*HALF
|
Gamzxz = Gamzxz - ( chix /chin1 - gxz * gxxz )*HALF
|
||||||
Gamxyz = Gamxyz - ( - gyz * gxxx )*HALF
|
Gamxyz = Gamxyz - ( - gyz * gxxx )*HALF
|
||||||
Gamyyz = Gamyyz - ( chiz * ONE/chin1 - gyz * gxxy )*HALF
|
Gamyyz = Gamyyz - ( chiz /chin1 - gyz * gxxy )*HALF
|
||||||
Gamzyz = Gamzyz - ( chiy * ONE/chin1 - gyz * gxxz )*HALF
|
Gamzyz = Gamzyz - ( chiy /chin1 - gyz * gxxz )*HALF
|
||||||
|
|
||||||
fxx = fxx - Gamxxx*Lapx - Gamyxx*Lapy - Gamzxx*Lapz
|
fxx = fxx - Gamxxx*Lapx - Gamyxx*Lapy - Gamzxx*Lapz
|
||||||
fyy = fyy - Gamxyy*Lapx - Gamyyy*Lapy - Gamzyy*Lapz
|
fyy = fyy - Gamxyy*Lapx - Gamyyy*Lapy - Gamzyy*Lapz
|
||||||
@@ -734,7 +695,7 @@
|
|||||||
gupxz * (Axy * Azz + Ayz * Axz) + &
|
gupxz * (Axy * Azz + Ayz * Axz) + &
|
||||||
gupyz * (Ayy * Azz + Ayz * Ayz) ) )) -1.6d1*PI*rho + EIGHT * PI * S
|
gupyz * (Ayy * Azz + Ayz * Ayz) ) )) -1.6d1*PI*rho + EIGHT * PI * S
|
||||||
f = - F1o3 *( gupxx * fxx + gupyy * fyy + gupzz * fzz + &
|
f = - F1o3 *( gupxx * fxx + gupyy * fyy + gupzz * fzz + &
|
||||||
TWO* ( gupxy * fxy + gupxz * fxz + gupyz * fyz ) + alpn1 * ONE/chin1 * f)
|
TWO* ( gupxy * fxy + gupxz * fxz + gupyz * fyz ) + alpn1/chin1*f)
|
||||||
|
|
||||||
fxx = alpn1 * (Rxx - EIGHT * PI * Sxx) - fxx
|
fxx = alpn1 * (Rxx - EIGHT * PI * Sxx) - fxx
|
||||||
fxy = alpn1 * (Rxy - EIGHT * PI * Sxy) - fxy
|
fxy = alpn1 * (Rxy - EIGHT * PI * Sxy) - fxy
|
||||||
@@ -854,8 +815,7 @@
|
|||||||
call fderivs(ex,chi,dtSfx_rhs,dtSfy_rhs,dtSfz_rhs,X,Y,Z,SYM,SYM,SYM,Symmetry,Lev)
|
call fderivs(ex,chi,dtSfx_rhs,dtSfy_rhs,dtSfz_rhs,X,Y,Z,SYM,SYM,SYM,Symmetry,Lev)
|
||||||
reta = gupxx * dtSfx_rhs * dtSfx_rhs + gupyy * dtSfy_rhs * dtSfy_rhs + gupzz * dtSfz_rhs * dtSfz_rhs + &
|
reta = gupxx * dtSfx_rhs * dtSfx_rhs + gupyy * dtSfy_rhs * dtSfy_rhs + gupzz * dtSfz_rhs * dtSfz_rhs + &
|
||||||
TWO * (gupxy * dtSfx_rhs * dtSfy_rhs + gupxz * dtSfx_rhs * dtSfz_rhs + gupyz * dtSfy_rhs * dtSfz_rhs)
|
TWO * (gupxy * dtSfx_rhs * dtSfy_rhs + gupxz * dtSfx_rhs * dtSfz_rhs + gupyz * dtSfy_rhs * dtSfz_rhs)
|
||||||
fxx = dsqrt(chin1)
|
reta = 1.31d0/2*dsqrt(reta/chin1)/(1-dsqrt(chin1))**2
|
||||||
reta = 1.31d0/2*dsqrt(reta*ONE/chin1)/(ONE-fxx)**2
|
|
||||||
dtSfx_rhs = Gamx_rhs - reta*dtSfx
|
dtSfx_rhs = Gamx_rhs - reta*dtSfx
|
||||||
dtSfy_rhs = Gamy_rhs - reta*dtSfy
|
dtSfy_rhs = Gamy_rhs - reta*dtSfy
|
||||||
dtSfz_rhs = Gamz_rhs - reta*dtSfz
|
dtSfz_rhs = Gamz_rhs - reta*dtSfz
|
||||||
@@ -867,7 +827,7 @@
|
|||||||
call fderivs(ex,chi,dtSfx_rhs,dtSfy_rhs,dtSfz_rhs,X,Y,Z,SYM,SYM,SYM,Symmetry,Lev)
|
call fderivs(ex,chi,dtSfx_rhs,dtSfy_rhs,dtSfz_rhs,X,Y,Z,SYM,SYM,SYM,Symmetry,Lev)
|
||||||
reta = gupxx * dtSfx_rhs * dtSfx_rhs + gupyy * dtSfy_rhs * dtSfy_rhs + gupzz * dtSfz_rhs * dtSfz_rhs + &
|
reta = gupxx * dtSfx_rhs * dtSfx_rhs + gupyy * dtSfy_rhs * dtSfy_rhs + gupzz * dtSfz_rhs * dtSfz_rhs + &
|
||||||
TWO * (gupxy * dtSfx_rhs * dtSfy_rhs + gupxz * dtSfx_rhs * dtSfz_rhs + gupyz * dtSfy_rhs * dtSfz_rhs)
|
TWO * (gupxy * dtSfx_rhs * dtSfy_rhs + gupxz * dtSfx_rhs * dtSfz_rhs + gupyz * dtSfy_rhs * dtSfz_rhs)
|
||||||
reta = 1.31d0/2*dsqrt(reta*ONE/chin1)/(ONE-chin1)**2
|
reta = 1.31d0/2*dsqrt(reta/chin1)/(1-chin1)**2
|
||||||
dtSfx_rhs = Gamx_rhs - reta*dtSfx
|
dtSfx_rhs = Gamx_rhs - reta*dtSfx
|
||||||
dtSfy_rhs = Gamy_rhs - reta*dtSfy
|
dtSfy_rhs = Gamy_rhs - reta*dtSfy
|
||||||
dtSfz_rhs = Gamz_rhs - reta*dtSfz
|
dtSfz_rhs = Gamz_rhs - reta*dtSfz
|
||||||
@@ -875,8 +835,7 @@
|
|||||||
call fderivs(ex,chi,dtSfx_rhs,dtSfy_rhs,dtSfz_rhs,X,Y,Z,SYM,SYM,SYM,Symmetry,Lev)
|
call fderivs(ex,chi,dtSfx_rhs,dtSfy_rhs,dtSfz_rhs,X,Y,Z,SYM,SYM,SYM,Symmetry,Lev)
|
||||||
reta = gupxx * dtSfx_rhs * dtSfx_rhs + gupyy * dtSfy_rhs * dtSfy_rhs + gupzz * dtSfz_rhs * dtSfz_rhs + &
|
reta = gupxx * dtSfx_rhs * dtSfx_rhs + gupyy * dtSfy_rhs * dtSfy_rhs + gupzz * dtSfz_rhs * dtSfz_rhs + &
|
||||||
TWO * (gupxy * dtSfx_rhs * dtSfy_rhs + gupxz * dtSfx_rhs * dtSfz_rhs + gupyz * dtSfy_rhs * dtSfz_rhs)
|
TWO * (gupxy * dtSfx_rhs * dtSfy_rhs + gupxz * dtSfx_rhs * dtSfz_rhs + gupyz * dtSfy_rhs * dtSfz_rhs)
|
||||||
fxx = dsqrt(chin1)
|
reta = 1.31d0/2*dsqrt(reta/chin1)/(1-dsqrt(chin1))**2
|
||||||
reta = 1.31d0/2*dsqrt(reta*ONE/chin1)/(ONE-fxx)**2
|
|
||||||
betax_rhs = FF*Gamx - reta*betax
|
betax_rhs = FF*Gamx - reta*betax
|
||||||
betay_rhs = FF*Gamy - reta*betay
|
betay_rhs = FF*Gamy - reta*betay
|
||||||
betaz_rhs = FF*Gamz - reta*betaz
|
betaz_rhs = FF*Gamz - reta*betaz
|
||||||
@@ -888,7 +847,7 @@
|
|||||||
call fderivs(ex,chi,dtSfx_rhs,dtSfy_rhs,dtSfz_rhs,X,Y,Z,SYM,SYM,SYM,Symmetry,Lev)
|
call fderivs(ex,chi,dtSfx_rhs,dtSfy_rhs,dtSfz_rhs,X,Y,Z,SYM,SYM,SYM,Symmetry,Lev)
|
||||||
reta = gupxx * dtSfx_rhs * dtSfx_rhs + gupyy * dtSfy_rhs * dtSfy_rhs + gupzz * dtSfz_rhs * dtSfz_rhs + &
|
reta = gupxx * dtSfx_rhs * dtSfx_rhs + gupyy * dtSfy_rhs * dtSfy_rhs + gupzz * dtSfz_rhs * dtSfz_rhs + &
|
||||||
TWO * (gupxy * dtSfx_rhs * dtSfy_rhs + gupxz * dtSfx_rhs * dtSfz_rhs + gupyz * dtSfy_rhs * dtSfz_rhs)
|
TWO * (gupxy * dtSfx_rhs * dtSfy_rhs + gupxz * dtSfx_rhs * dtSfz_rhs + gupyz * dtSfy_rhs * dtSfz_rhs)
|
||||||
reta = 1.31d0/2*dsqrt(reta*ONE/chin1)/(ONE-chin1)**2
|
reta = 1.31d0/2*dsqrt(reta/chin1)/(1-chin1)**2
|
||||||
betax_rhs = FF*Gamx - reta*betax
|
betax_rhs = FF*Gamx - reta*betax
|
||||||
betay_rhs = FF*Gamy - reta*betay
|
betay_rhs = FF*Gamy - reta*betay
|
||||||
betaz_rhs = FF*Gamz - reta*betaz
|
betaz_rhs = FF*Gamz - reta*betaz
|
||||||
@@ -986,103 +945,60 @@
|
|||||||
SSA(2)=SYM
|
SSA(2)=SYM
|
||||||
SSA(3)=ANTI
|
SSA(3)=ANTI
|
||||||
|
|
||||||
!!!!!!!!!advection term part
|
!!!!!!!!!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(ex,X,Y,Z,gxx,gxx_rhs,betax,betay,betaz,Symmetry,SSS)
|
call lopsided_kodis(ex,X,Y,Z,gxx,gxx_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||||
call lopsided(ex,X,Y,Z,gxy,gxy_rhs,betax,betay,betaz,Symmetry,AAS)
|
call lopsided_kodis(ex,X,Y,Z,gxy,gxy_rhs,betax,betay,betaz,Symmetry,AAS,eps)
|
||||||
call lopsided(ex,X,Y,Z,gxz,gxz_rhs,betax,betay,betaz,Symmetry,ASA)
|
call lopsided_kodis(ex,X,Y,Z,gxz,gxz_rhs,betax,betay,betaz,Symmetry,ASA,eps)
|
||||||
call lopsided(ex,X,Y,Z,gyy,gyy_rhs,betax,betay,betaz,Symmetry,SSS)
|
call lopsided_kodis(ex,X,Y,Z,gyy,gyy_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||||
call lopsided(ex,X,Y,Z,gyz,gyz_rhs,betax,betay,betaz,Symmetry,SAA)
|
call lopsided_kodis(ex,X,Y,Z,gyz,gyz_rhs,betax,betay,betaz,Symmetry,SAA,eps)
|
||||||
call lopsided(ex,X,Y,Z,gzz,gzz_rhs,betax,betay,betaz,Symmetry,SSS)
|
call lopsided_kodis(ex,X,Y,Z,gzz,gzz_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||||
|
|
||||||
call lopsided(ex,X,Y,Z,Axx,Axx_rhs,betax,betay,betaz,Symmetry,SSS)
|
call lopsided_kodis(ex,X,Y,Z,Axx,Axx_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||||
call lopsided(ex,X,Y,Z,Axy,Axy_rhs,betax,betay,betaz,Symmetry,AAS)
|
call lopsided_kodis(ex,X,Y,Z,Axy,Axy_rhs,betax,betay,betaz,Symmetry,AAS,eps)
|
||||||
call lopsided(ex,X,Y,Z,Axz,Axz_rhs,betax,betay,betaz,Symmetry,ASA)
|
call lopsided_kodis(ex,X,Y,Z,Axz,Axz_rhs,betax,betay,betaz,Symmetry,ASA,eps)
|
||||||
call lopsided(ex,X,Y,Z,Ayy,Ayy_rhs,betax,betay,betaz,Symmetry,SSS)
|
call lopsided_kodis(ex,X,Y,Z,Ayy,Ayy_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||||
call lopsided(ex,X,Y,Z,Ayz,Ayz_rhs,betax,betay,betaz,Symmetry,SAA)
|
call lopsided_kodis(ex,X,Y,Z,Ayz,Ayz_rhs,betax,betay,betaz,Symmetry,SAA,eps)
|
||||||
call lopsided(ex,X,Y,Z,Azz,Azz_rhs,betax,betay,betaz,Symmetry,SSS)
|
call lopsided_kodis(ex,X,Y,Z,Azz,Azz_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||||
|
|
||||||
call lopsided(ex,X,Y,Z,chi,chi_rhs,betax,betay,betaz,Symmetry,SSS)
|
call lopsided_kodis(ex,X,Y,Z,chi,chi_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||||
call lopsided(ex,X,Y,Z,trK,trK_rhs,betax,betay,betaz,Symmetry,SSS)
|
call lopsided_kodis(ex,X,Y,Z,trK,trK_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||||
|
|
||||||
call lopsided(ex,X,Y,Z,Gamx,Gamx_rhs,betax,betay,betaz,Symmetry,ASS)
|
call lopsided_kodis(ex,X,Y,Z,Gamx,Gamx_rhs,betax,betay,betaz,Symmetry,ASS,eps)
|
||||||
call lopsided(ex,X,Y,Z,Gamy,Gamy_rhs,betax,betay,betaz,Symmetry,SAS)
|
call lopsided_kodis(ex,X,Y,Z,Gamy,Gamy_rhs,betax,betay,betaz,Symmetry,SAS,eps)
|
||||||
call lopsided(ex,X,Y,Z,Gamz,Gamz_rhs,betax,betay,betaz,Symmetry,SSA)
|
call lopsided_kodis(ex,X,Y,Z,Gamz,Gamz_rhs,betax,betay,betaz,Symmetry,SSA,eps)
|
||||||
!!
|
|
||||||
|
#if 1
|
||||||
|
!! bam does not apply dissipation on gauge variables
|
||||||
|
call lopsided_kodis(ex,X,Y,Z,Lap,Lap_rhs,betax,betay,betaz,Symmetry,SSS,eps)
|
||||||
|
#if (GAUGE == 0 || GAUGE == 1 || GAUGE == 2 || GAUGE == 3 || GAUGE == 4 || GAUGE == 5 || GAUGE == 6 || GAUGE == 7)
|
||||||
|
call lopsided_kodis(ex,X,Y,Z,betax,betax_rhs,betax,betay,betaz,Symmetry,ASS,eps)
|
||||||
|
call lopsided_kodis(ex,X,Y,Z,betay,betay_rhs,betax,betay,betaz,Symmetry,SAS,eps)
|
||||||
|
call lopsided_kodis(ex,X,Y,Z,betaz,betaz_rhs,betax,betay,betaz,Symmetry,SSA,eps)
|
||||||
|
#endif
|
||||||
|
#if (GAUGE == 0 || GAUGE == 2 || GAUGE == 3 || GAUGE == 6 || GAUGE == 7)
|
||||||
|
call lopsided_kodis(ex,X,Y,Z,dtSfx,dtSfx_rhs,betax,betay,betaz,Symmetry,ASS,eps)
|
||||||
|
call lopsided_kodis(ex,X,Y,Z,dtSfy,dtSfy_rhs,betax,betay,betaz,Symmetry,SAS,eps)
|
||||||
|
call lopsided_kodis(ex,X,Y,Z,dtSfz,dtSfz_rhs,betax,betay,betaz,Symmetry,SSA,eps)
|
||||||
|
#endif
|
||||||
|
#else
|
||||||
|
! No dissipation on gauge variables (advection only)
|
||||||
call lopsided(ex,X,Y,Z,Lap,Lap_rhs,betax,betay,betaz,Symmetry,SSS)
|
call lopsided(ex,X,Y,Z,Lap,Lap_rhs,betax,betay,betaz,Symmetry,SSS)
|
||||||
|
|
||||||
#if (GAUGE == 0 || GAUGE == 1 || GAUGE == 2 || GAUGE == 3 || GAUGE == 4 || GAUGE == 5 || GAUGE == 6 || GAUGE == 7)
|
#if (GAUGE == 0 || GAUGE == 1 || GAUGE == 2 || GAUGE == 3 || GAUGE == 4 || GAUGE == 5 || GAUGE == 6 || GAUGE == 7)
|
||||||
call lopsided(ex,X,Y,Z,betax,betax_rhs,betax,betay,betaz,Symmetry,ASS)
|
call lopsided(ex,X,Y,Z,betax,betax_rhs,betax,betay,betaz,Symmetry,ASS)
|
||||||
call lopsided(ex,X,Y,Z,betay,betay_rhs,betax,betay,betaz,Symmetry,SAS)
|
call lopsided(ex,X,Y,Z,betay,betay_rhs,betax,betay,betaz,Symmetry,SAS)
|
||||||
call lopsided(ex,X,Y,Z,betaz,betaz_rhs,betax,betay,betaz,Symmetry,SSA)
|
call lopsided(ex,X,Y,Z,betaz,betaz_rhs,betax,betay,betaz,Symmetry,SSA)
|
||||||
#endif
|
#endif
|
||||||
|
|
||||||
#if (GAUGE == 0 || GAUGE == 2 || GAUGE == 3 || GAUGE == 6 || GAUGE == 7)
|
#if (GAUGE == 0 || GAUGE == 2 || GAUGE == 3 || GAUGE == 6 || GAUGE == 7)
|
||||||
call lopsided(ex,X,Y,Z,dtSfx,dtSfx_rhs,betax,betay,betaz,Symmetry,ASS)
|
call lopsided(ex,X,Y,Z,dtSfx,dtSfx_rhs,betax,betay,betaz,Symmetry,ASS)
|
||||||
call lopsided(ex,X,Y,Z,dtSfy,dtSfy_rhs,betax,betay,betaz,Symmetry,SAS)
|
call lopsided(ex,X,Y,Z,dtSfy,dtSfy_rhs,betax,betay,betaz,Symmetry,SAS)
|
||||||
call lopsided(ex,X,Y,Z,dtSfz,dtSfz_rhs,betax,betay,betaz,Symmetry,SSA)
|
call lopsided(ex,X,Y,Z,dtSfz,dtSfz_rhs,betax,betay,betaz,Symmetry,SSA)
|
||||||
#endif
|
#endif
|
||||||
|
|
||||||
if(eps>0)then
|
|
||||||
! usual Kreiss-Oliger dissipation
|
|
||||||
call kodis(ex,X,Y,Z,chi,chi_rhs,SSS,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,trK,trK_rhs,SSS,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,dxx,gxx_rhs,SSS,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,gxy,gxy_rhs,AAS,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,gxz,gxz_rhs,ASA,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,dyy,gyy_rhs,SSS,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,gyz,gyz_rhs,SAA,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,dzz,gzz_rhs,SSS,Symmetry,eps)
|
|
||||||
#if 0
|
|
||||||
#define i 42
|
|
||||||
#define j 40
|
|
||||||
#define k 40
|
|
||||||
if(Lev == 1)then
|
|
||||||
write(*,*) X(i),Y(j),Z(k)
|
|
||||||
write(*,*) "before",Axx_rhs(i,j,k)
|
|
||||||
endif
|
|
||||||
#undef i
|
|
||||||
#undef j
|
|
||||||
#undef k
|
|
||||||
!!stop
|
|
||||||
#endif
|
#endif
|
||||||
call kodis(ex,X,Y,Z,Axx,Axx_rhs,SSS,Symmetry,eps)
|
|
||||||
#if 0
|
|
||||||
#define i 42
|
|
||||||
#define j 40
|
|
||||||
#define k 40
|
|
||||||
if(Lev == 1)then
|
|
||||||
write(*,*) X(i),Y(j),Z(k)
|
|
||||||
write(*,*) "after",Axx_rhs(i,j,k)
|
|
||||||
endif
|
|
||||||
#undef i
|
|
||||||
#undef j
|
|
||||||
#undef k
|
|
||||||
!!stop
|
|
||||||
#endif
|
|
||||||
call kodis(ex,X,Y,Z,Axy,Axy_rhs,AAS,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,Axz,Axz_rhs,ASA,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,Ayy,Ayy_rhs,SSS,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,Ayz,Ayz_rhs,SAA,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,Azz,Azz_rhs,SSS,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,Gamx,Gamx_rhs,ASS,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,Gamy,Gamy_rhs,SAS,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,Gamz,Gamz_rhs,SSA,Symmetry,eps)
|
|
||||||
|
|
||||||
#if 1
|
|
||||||
!! bam does not apply dissipation on gauge variables
|
|
||||||
call kodis(ex,X,Y,Z,Lap,Lap_rhs,SSS,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,betax,betax_rhs,ASS,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,betay,betay_rhs,SAS,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,betaz,betaz_rhs,SSA,Symmetry,eps)
|
|
||||||
#if (GAUGE == 0 || GAUGE == 2 || GAUGE == 3 || GAUGE == 6 || GAUGE == 7)
|
|
||||||
call kodis(ex,X,Y,Z,dtSfx,dtSfx_rhs,ASS,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,dtSfy,dtSfy_rhs,SAS,Symmetry,eps)
|
|
||||||
call kodis(ex,X,Y,Z,dtSfz,dtSfz_rhs,SSA,Symmetry,eps)
|
|
||||||
#endif
|
|
||||||
#endif
|
|
||||||
|
|
||||||
endif
|
|
||||||
|
|
||||||
if(co == 0)then
|
if(co == 0)then
|
||||||
! ham_Res = trR + 2/3 * K^2 - A_ij * A^ij - 16 * PI * rho
|
! ham_Res = trR + 2/3 * K^2 - A_ij * A^ij - 16 * PI * rho
|
||||||
@@ -1120,48 +1036,48 @@ endif
|
|||||||
! mov_Res_j = gupkj*(-1/chi d_k chi*A_ij + D_k A_ij) - 2/3 d_j trK - 8 PI s_j where D respect to physical metric
|
! mov_Res_j = gupkj*(-1/chi d_k chi*A_ij + D_k A_ij) - 2/3 d_j trK - 8 PI s_j where D respect to physical metric
|
||||||
! store D_i A_jk - 1/chi d_i chi*A_jk in gjk_i
|
! store D_i A_jk - 1/chi d_i chi*A_jk in gjk_i
|
||||||
call fderivs(ex,Axx,gxxx,gxxy,gxxz,X,Y,Z,SYM ,SYM ,SYM ,Symmetry,0)
|
call fderivs(ex,Axx,gxxx,gxxy,gxxz,X,Y,Z,SYM ,SYM ,SYM ,Symmetry,0)
|
||||||
call fderivs(ex,Ayy,gyyx,gyyy,gyyz,X,Y,Z,SYM ,SYM ,SYM ,Symmetry,0)
|
|
||||||
call fderivs(ex,Azz,gzzx,gzzy,gzzz,X,Y,Z,SYM ,SYM ,SYM ,Symmetry,0)
|
|
||||||
call fderivs(ex,Axy,gxyx,gxyy,gxyz,X,Y,Z,ANTI,ANTI,SYM ,Symmetry,0)
|
call fderivs(ex,Axy,gxyx,gxyy,gxyz,X,Y,Z,ANTI,ANTI,SYM ,Symmetry,0)
|
||||||
call fderivs(ex,Axz,gxzx,gxzy,gxzz,X,Y,Z,ANTI,SYM ,ANTI,Symmetry,0)
|
call fderivs(ex,Axz,gxzx,gxzy,gxzz,X,Y,Z,ANTI,SYM ,ANTI,Symmetry,0)
|
||||||
|
call fderivs(ex,Ayy,gyyx,gyyy,gyyz,X,Y,Z,SYM ,SYM ,SYM ,Symmetry,0)
|
||||||
call fderivs(ex,Ayz,gyzx,gyzy,gyzz,X,Y,Z,SYM ,ANTI,ANTI,Symmetry,0)
|
call fderivs(ex,Ayz,gyzx,gyzy,gyzz,X,Y,Z,SYM ,ANTI,ANTI,Symmetry,0)
|
||||||
|
call fderivs(ex,Azz,gzzx,gzzy,gzzz,X,Y,Z,SYM ,SYM ,SYM ,Symmetry,0)
|
||||||
|
|
||||||
gxxx = gxxx - ( Gamxxx * Axx + Gamyxx * Axy + Gamzxx * Axz &
|
gxxx = gxxx - ( Gamxxx * Axx + Gamyxx * Axy + Gamzxx * Axz &
|
||||||
+ Gamxxx * Axx + Gamyxx * Axy + Gamzxx * Axz) - chix*Axx*ONE/chin1
|
+ Gamxxx * Axx + Gamyxx * Axy + Gamzxx * Axz) - chix*Axx/chin1
|
||||||
gxyx = gxyx - ( Gamxxy * Axx + Gamyxy * Axy + Gamzxy * Axz &
|
gxyx = gxyx - ( Gamxxy * Axx + Gamyxy * Axy + Gamzxy * Axz &
|
||||||
+ Gamxxx * Axy + Gamyxx * Ayy + Gamzxx * Ayz) - chix*Axy*ONE/chin1
|
+ Gamxxx * Axy + Gamyxx * Ayy + Gamzxx * Ayz) - chix*Axy/chin1
|
||||||
gxzx = gxzx - ( Gamxxz * Axx + Gamyxz * Axy + Gamzxz * Axz &
|
gxzx = gxzx - ( Gamxxz * Axx + Gamyxz * Axy + Gamzxz * Axz &
|
||||||
+ Gamxxx * Axz + Gamyxx * Ayz + Gamzxx * Azz) - chix*Axz*ONE/chin1
|
+ Gamxxx * Axz + Gamyxx * Ayz + Gamzxx * Azz) - chix*Axz/chin1
|
||||||
gyyx = gyyx - ( Gamxxy * Axy + Gamyxy * Ayy + Gamzxy * Ayz &
|
gyyx = gyyx - ( Gamxxy * Axy + Gamyxy * Ayy + Gamzxy * Ayz &
|
||||||
+ Gamxxy * Axy + Gamyxy * Ayy + Gamzxy * Ayz) - chix*Ayy*ONE/chin1
|
+ Gamxxy * Axy + Gamyxy * Ayy + Gamzxy * Ayz) - chix*Ayy/chin1
|
||||||
gyzx = gyzx - ( Gamxxz * Axy + Gamyxz * Ayy + Gamzxz * Ayz &
|
gyzx = gyzx - ( Gamxxz * Axy + Gamyxz * Ayy + Gamzxz * Ayz &
|
||||||
+ Gamxxy * Axz + Gamyxy * Ayz + Gamzxy * Azz) - chix*Ayz*ONE/chin1
|
+ Gamxxy * Axz + Gamyxy * Ayz + Gamzxy * Azz) - chix*Ayz/chin1
|
||||||
gzzx = gzzx - ( Gamxxz * Axz + Gamyxz * Ayz + Gamzxz * Azz &
|
gzzx = gzzx - ( Gamxxz * Axz + Gamyxz * Ayz + Gamzxz * Azz &
|
||||||
+ Gamxxz * Axz + Gamyxz * Ayz + Gamzxz * Azz) - chix*Azz*ONE/chin1
|
+ Gamxxz * Axz + Gamyxz * Ayz + Gamzxz * Azz) - chix*Azz/chin1
|
||||||
gxxy = gxxy - ( Gamxxy * Axx + Gamyxy * Axy + Gamzxy * Axz &
|
gxxy = gxxy - ( Gamxxy * Axx + Gamyxy * Axy + Gamzxy * Axz &
|
||||||
+ Gamxxy * Axx + Gamyxy * Axy + Gamzxy * Axz) - chiy*Axx*ONE/chin1
|
+ Gamxxy * Axx + Gamyxy * Axy + Gamzxy * Axz) - chiy*Axx/chin1
|
||||||
gxyy = gxyy - ( Gamxyy * Axx + Gamyyy * Axy + Gamzyy * Axz &
|
gxyy = gxyy - ( Gamxyy * Axx + Gamyyy * Axy + Gamzyy * Axz &
|
||||||
+ Gamxxy * Axy + Gamyxy * Ayy + Gamzxy * Ayz) - chiy*Axy*ONE/chin1
|
+ Gamxxy * Axy + Gamyxy * Ayy + Gamzxy * Ayz) - chiy*Axy/chin1
|
||||||
gxzy = gxzy - ( Gamxyz * Axx + Gamyyz * Axy + Gamzyz * Axz &
|
gxzy = gxzy - ( Gamxyz * Axx + Gamyyz * Axy + Gamzyz * Axz &
|
||||||
+ Gamxxy * Axz + Gamyxy * Ayz + Gamzxy * Azz) - chiy*Axz*ONE/chin1
|
+ Gamxxy * Axz + Gamyxy * Ayz + Gamzxy * Azz) - chiy*Axz/chin1
|
||||||
gyyy = gyyy - ( Gamxyy * Axy + Gamyyy * Ayy + Gamzyy * Ayz &
|
gyyy = gyyy - ( Gamxyy * Axy + Gamyyy * Ayy + Gamzyy * Ayz &
|
||||||
+ Gamxyy * Axy + Gamyyy * Ayy + Gamzyy * Ayz) - chiy*Ayy*ONE/chin1
|
+ Gamxyy * Axy + Gamyyy * Ayy + Gamzyy * Ayz) - chiy*Ayy/chin1
|
||||||
gyzy = gyzy - ( Gamxyz * Axy + Gamyyz * Ayy + Gamzyz * Ayz &
|
gyzy = gyzy - ( Gamxyz * Axy + Gamyyz * Ayy + Gamzyz * Ayz &
|
||||||
+ Gamxyy * Axz + Gamyyy * Ayz + Gamzyy * Azz) - chiy*Ayz*ONE/chin1
|
+ Gamxyy * Axz + Gamyyy * Ayz + Gamzyy * Azz) - chiy*Ayz/chin1
|
||||||
gzzy = gzzy - ( Gamxyz * Axz + Gamyyz * Ayz + Gamzyz * Azz &
|
gzzy = gzzy - ( Gamxyz * Axz + Gamyyz * Ayz + Gamzyz * Azz &
|
||||||
+ Gamxyz * Axz + Gamyyz * Ayz + Gamzyz * Azz) - chiy*Azz*ONE/chin1
|
+ Gamxyz * Axz + Gamyyz * Ayz + Gamzyz * Azz) - chiy*Azz/chin1
|
||||||
gxxz = gxxz - ( Gamxxz * Axx + Gamyxz * Axy + Gamzxz * Axz &
|
gxxz = gxxz - ( Gamxxz * Axx + Gamyxz * Axy + Gamzxz * Axz &
|
||||||
+ Gamxxz * Axx + Gamyxz * Axy + Gamzxz * Axz) - chiz*Axx*ONE/chin1
|
+ Gamxxz * Axx + Gamyxz * Axy + Gamzxz * Axz) - chiz*Axx/chin1
|
||||||
gxyz = gxyz - ( Gamxyz * Axx + Gamyyz * Axy + Gamzyz * Axz &
|
gxyz = gxyz - ( Gamxyz * Axx + Gamyyz * Axy + Gamzyz * Axz &
|
||||||
+ Gamxxz * Axy + Gamyxz * Ayy + Gamzxz * Ayz) - chiz*Axy*ONE/chin1
|
+ Gamxxz * Axy + Gamyxz * Ayy + Gamzxz * Ayz) - chiz*Axy/chin1
|
||||||
gxzz = gxzz - ( Gamxzz * Axx + Gamyzz * Axy + Gamzzz * Axz &
|
gxzz = gxzz - ( Gamxzz * Axx + Gamyzz * Axy + Gamzzz * Axz &
|
||||||
+ Gamxxz * Axz + Gamyxz * Ayz + Gamzxz * Azz) - chiz*Axz*ONE/chin1
|
+ Gamxxz * Axz + Gamyxz * Ayz + Gamzxz * Azz) - chiz*Axz/chin1
|
||||||
gyyz = gyyz - ( Gamxyz * Axy + Gamyyz * Ayy + Gamzyz * Ayz &
|
gyyz = gyyz - ( Gamxyz * Axy + Gamyyz * Ayy + Gamzyz * Ayz &
|
||||||
+ Gamxyz * Axy + Gamyyz * Ayy + Gamzyz * Ayz) - chiz*Ayy*ONE/chin1
|
+ Gamxyz * Axy + Gamyyz * Ayy + Gamzyz * Ayz) - chiz*Ayy/chin1
|
||||||
gyzz = gyzz - ( Gamxzz * Axy + Gamyzz * Ayy + Gamzzz * Ayz &
|
gyzz = gyzz - ( Gamxzz * Axy + Gamyzz * Ayy + Gamzzz * Ayz &
|
||||||
+ Gamxyz * Axz + Gamyyz * Ayz + Gamzyz * Azz) - chiz*Ayz*ONE/chin1
|
+ Gamxyz * Axz + Gamyyz * Ayz + Gamzyz * Azz) - chiz*Ayz/chin1
|
||||||
gzzz = gzzz - ( Gamxzz * Axz + Gamyzz * Ayz + Gamzzz * Azz &
|
gzzz = gzzz - ( Gamxzz * Axz + Gamyzz * Ayz + Gamzzz * Azz &
|
||||||
+ Gamxzz * Axz + Gamyzz * Ayz + Gamzzz * Azz) - chiz*Azz*ONE/chin1
|
+ Gamxzz * Axz + Gamyzz * Ayz + Gamzzz * Azz) - chiz*Azz/chin1
|
||||||
movx_Res = gupxx*gxxx + gupyy*gxyy + gupzz*gxzz &
|
movx_Res = gupxx*gxxx + gupyy*gxyy + gupzz*gxzz &
|
||||||
+gupxy*gxyx + gupxz*gxzx + gupyz*gxzy &
|
+gupxy*gxyx + gupxz*gxzx + gupyz*gxzy &
|
||||||
+gupxy*gxxy + gupxz*gxxz + gupyz*gxyz
|
+gupxy*gxxy + gupxz*gxxz + gupyz*gxyz
|
||||||
|
|||||||
@@ -1939,309 +1939,6 @@
|
|||||||
return
|
return
|
||||||
|
|
||||||
end subroutine fddyz
|
end subroutine fddyz
|
||||||
subroutine fderivs_batch4(ex,f1,f2,f3,f4, &
|
|
||||||
f1x,f1y,f1z,f2x,f2y,f2z,f3x,f3y,f3z,f4x,f4y,f4z, &
|
|
||||||
X,Y,Z,SYM1,SYM2,SYM3,symmetry,onoff)
|
|
||||||
implicit none
|
|
||||||
|
|
||||||
integer, intent(in ):: ex(1:3),symmetry,onoff
|
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)), intent(in ):: f1,f2,f3,f4
|
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)), intent(out):: f1x,f1y,f1z
|
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)), intent(out):: f2x,f2y,f2z
|
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)), intent(out):: f3x,f3y,f3z
|
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)), intent(out):: f4x,f4y,f4z
|
|
||||||
real*8, intent(in) :: X(ex(1)),Y(ex(2)),Z(ex(3))
|
|
||||||
real*8, intent(in ):: SYM1,SYM2,SYM3
|
|
||||||
|
|
||||||
!~~~~~~ other variables
|
|
||||||
|
|
||||||
real*8 :: dX,dY,dZ
|
|
||||||
real*8,dimension(-1:ex(1),-1:ex(2),-1:ex(3)) :: fh1,fh2,fh3,fh4
|
|
||||||
real*8, dimension(3) :: SoA
|
|
||||||
integer :: imin,jmin,kmin,imax,jmax,kmax,i,j,k
|
|
||||||
real*8 :: d12dx,d12dy,d12dz,d2dx,d2dy,d2dz
|
|
||||||
integer, parameter :: NO_SYMM = 0, EQ_SYMM = 1, OCTANT = 2
|
|
||||||
real*8, parameter :: ZEO=0.d0,ONE=1.d0
|
|
||||||
real*8, parameter :: TWO=2.d0,EIT=8.d0
|
|
||||||
real*8, parameter :: F12=1.2d1
|
|
||||||
|
|
||||||
dX = X(2)-X(1)
|
|
||||||
dY = Y(2)-Y(1)
|
|
||||||
dZ = Z(2)-Z(1)
|
|
||||||
|
|
||||||
imax = ex(1)
|
|
||||||
jmax = ex(2)
|
|
||||||
kmax = ex(3)
|
|
||||||
|
|
||||||
imin = 1
|
|
||||||
jmin = 1
|
|
||||||
kmin = 1
|
|
||||||
if(Symmetry > NO_SYMM .and. dabs(Z(1)) < dZ) kmin = -1
|
|
||||||
if(Symmetry > EQ_SYMM .and. dabs(X(1)) < dX) imin = -1
|
|
||||||
if(Symmetry > EQ_SYMM .and. dabs(Y(1)) < dY) jmin = -1
|
|
||||||
|
|
||||||
SoA(1) = SYM1
|
|
||||||
SoA(2) = SYM2
|
|
||||||
SoA(3) = SYM3
|
|
||||||
|
|
||||||
call symmetry_bd(2,ex,f1,fh1,SoA)
|
|
||||||
call symmetry_bd(2,ex,f2,fh2,SoA)
|
|
||||||
call symmetry_bd(2,ex,f3,fh3,SoA)
|
|
||||||
call symmetry_bd(2,ex,f4,fh4,SoA)
|
|
||||||
|
|
||||||
d12dx = ONE/F12/dX
|
|
||||||
d12dy = ONE/F12/dY
|
|
||||||
d12dz = ONE/F12/dZ
|
|
||||||
|
|
||||||
d2dx = ONE/TWO/dX
|
|
||||||
d2dy = ONE/TWO/dY
|
|
||||||
d2dz = ONE/TWO/dZ
|
|
||||||
|
|
||||||
f1x = ZEO; f1y = ZEO; f1z = ZEO
|
|
||||||
f2x = ZEO; f2y = ZEO; f2z = ZEO
|
|
||||||
f3x = ZEO; f3y = ZEO; f3z = ZEO
|
|
||||||
f4x = ZEO; f4y = ZEO; f4z = ZEO
|
|
||||||
|
|
||||||
do k=1,ex(3)-1
|
|
||||||
do j=1,ex(2)-1
|
|
||||||
do i=1,ex(1)-1
|
|
||||||
if(i+2 <= imax .and. i-2 >= imin .and. &
|
|
||||||
j+2 <= jmax .and. j-2 >= jmin .and. &
|
|
||||||
k+2 <= kmax .and. k-2 >= kmin) then
|
|
||||||
f1x(i,j,k)=d12dx*(fh1(i-2,j,k)-EIT*fh1(i-1,j,k)+EIT*fh1(i+1,j,k)-fh1(i+2,j,k))
|
|
||||||
f1y(i,j,k)=d12dy*(fh1(i,j-2,k)-EIT*fh1(i,j-1,k)+EIT*fh1(i,j+1,k)-fh1(i,j+2,k))
|
|
||||||
f1z(i,j,k)=d12dz*(fh1(i,j,k-2)-EIT*fh1(i,j,k-1)+EIT*fh1(i,j,k+1)-fh1(i,j,k+2))
|
|
||||||
|
|
||||||
f2x(i,j,k)=d12dx*(fh2(i-2,j,k)-EIT*fh2(i-1,j,k)+EIT*fh2(i+1,j,k)-fh2(i+2,j,k))
|
|
||||||
f2y(i,j,k)=d12dy*(fh2(i,j-2,k)-EIT*fh2(i,j-1,k)+EIT*fh2(i,j+1,k)-fh2(i,j+2,k))
|
|
||||||
f2z(i,j,k)=d12dz*(fh2(i,j,k-2)-EIT*fh2(i,j,k-1)+EIT*fh2(i,j,k+1)-fh2(i,j,k+2))
|
|
||||||
|
|
||||||
f3x(i,j,k)=d12dx*(fh3(i-2,j,k)-EIT*fh3(i-1,j,k)+EIT*fh3(i+1,j,k)-fh3(i+2,j,k))
|
|
||||||
f3y(i,j,k)=d12dy*(fh3(i,j-2,k)-EIT*fh3(i,j-1,k)+EIT*fh3(i,j+1,k)-fh3(i,j+2,k))
|
|
||||||
f3z(i,j,k)=d12dz*(fh3(i,j,k-2)-EIT*fh3(i,j,k-1)+EIT*fh3(i,j,k+1)-fh3(i,j,k+2))
|
|
||||||
|
|
||||||
f4x(i,j,k)=d12dx*(fh4(i-2,j,k)-EIT*fh4(i-1,j,k)+EIT*fh4(i+1,j,k)-fh4(i+2,j,k))
|
|
||||||
f4y(i,j,k)=d12dy*(fh4(i,j-2,k)-EIT*fh4(i,j-1,k)+EIT*fh4(i,j+1,k)-fh4(i,j+2,k))
|
|
||||||
f4z(i,j,k)=d12dz*(fh4(i,j,k-2)-EIT*fh4(i,j,k-1)+EIT*fh4(i,j,k+1)-fh4(i,j,k+2))
|
|
||||||
elseif(i+1 <= imax .and. i-1 >= imin .and. &
|
|
||||||
j+1 <= jmax .and. j-1 >= jmin .and. &
|
|
||||||
k+1 <= kmax .and. k-1 >= kmin) then
|
|
||||||
f1x(i,j,k)=d2dx*(-fh1(i-1,j,k)+fh1(i+1,j,k))
|
|
||||||
f1y(i,j,k)=d2dy*(-fh1(i,j-1,k)+fh1(i,j+1,k))
|
|
||||||
f1z(i,j,k)=d2dz*(-fh1(i,j,k-1)+fh1(i,j,k+1))
|
|
||||||
|
|
||||||
f2x(i,j,k)=d2dx*(-fh2(i-1,j,k)+fh2(i+1,j,k))
|
|
||||||
f2y(i,j,k)=d2dy*(-fh2(i,j-1,k)+fh2(i,j+1,k))
|
|
||||||
f2z(i,j,k)=d2dz*(-fh2(i,j,k-1)+fh2(i,j,k+1))
|
|
||||||
|
|
||||||
f3x(i,j,k)=d2dx*(-fh3(i-1,j,k)+fh3(i+1,j,k))
|
|
||||||
f3y(i,j,k)=d2dy*(-fh3(i,j-1,k)+fh3(i,j+1,k))
|
|
||||||
f3z(i,j,k)=d2dz*(-fh3(i,j,k-1)+fh3(i,j,k+1))
|
|
||||||
|
|
||||||
f4x(i,j,k)=d2dx*(-fh4(i-1,j,k)+fh4(i+1,j,k))
|
|
||||||
f4y(i,j,k)=d2dy*(-fh4(i,j-1,k)+fh4(i,j+1,k))
|
|
||||||
f4z(i,j,k)=d2dz*(-fh4(i,j,k-1)+fh4(i,j,k+1))
|
|
||||||
endif
|
|
||||||
enddo
|
|
||||||
enddo
|
|
||||||
enddo
|
|
||||||
|
|
||||||
return
|
|
||||||
|
|
||||||
end subroutine fderivs_batch4
|
|
||||||
!-----------------------------------------------------------------------------
|
|
||||||
! batch first derivatives (3 fields), same symmetry setup
|
|
||||||
!-----------------------------------------------------------------------------
|
|
||||||
subroutine fderivs_batch3(ex,f1,f2,f3, &
|
|
||||||
f1x,f1y,f1z,f2x,f2y,f2z,f3x,f3y,f3z, &
|
|
||||||
X,Y,Z,SYM1,SYM2,SYM3,symmetry,onoff)
|
|
||||||
implicit none
|
|
||||||
|
|
||||||
integer, intent(in ):: ex(1:3),symmetry,onoff
|
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)), intent(in ):: f1,f2,f3
|
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)), intent(out):: f1x,f1y,f1z
|
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)), intent(out):: f2x,f2y,f2z
|
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)), intent(out):: f3x,f3y,f3z
|
|
||||||
real*8, intent(in) :: X(ex(1)),Y(ex(2)),Z(ex(3))
|
|
||||||
real*8, intent(in ):: SYM1,SYM2,SYM3
|
|
||||||
|
|
||||||
!~~~~~~ other variables
|
|
||||||
|
|
||||||
real*8 :: dX,dY,dZ
|
|
||||||
real*8,dimension(-1:ex(1),-1:ex(2),-1:ex(3)) :: fh1,fh2,fh3
|
|
||||||
real*8, dimension(3) :: SoA
|
|
||||||
integer :: imin,jmin,kmin,imax,jmax,kmax,i,j,k
|
|
||||||
real*8 :: d12dx,d12dy,d12dz,d2dx,d2dy,d2dz
|
|
||||||
integer, parameter :: NO_SYMM = 0, EQ_SYMM = 1, OCTANT = 2
|
|
||||||
real*8, parameter :: ZEO=0.d0,ONE=1.d0
|
|
||||||
real*8, parameter :: TWO=2.d0,EIT=8.d0
|
|
||||||
real*8, parameter :: F12=1.2d1
|
|
||||||
|
|
||||||
dX = X(2)-X(1)
|
|
||||||
dY = Y(2)-Y(1)
|
|
||||||
dZ = Z(2)-Z(1)
|
|
||||||
|
|
||||||
imax = ex(1)
|
|
||||||
jmax = ex(2)
|
|
||||||
kmax = ex(3)
|
|
||||||
|
|
||||||
imin = 1
|
|
||||||
jmin = 1
|
|
||||||
kmin = 1
|
|
||||||
if(Symmetry > NO_SYMM .and. dabs(Z(1)) < dZ) kmin = -1
|
|
||||||
if(Symmetry > EQ_SYMM .and. dabs(X(1)) < dX) imin = -1
|
|
||||||
if(Symmetry > EQ_SYMM .and. dabs(Y(1)) < dY) jmin = -1
|
|
||||||
|
|
||||||
SoA(1) = SYM1
|
|
||||||
SoA(2) = SYM2
|
|
||||||
SoA(3) = SYM3
|
|
||||||
|
|
||||||
call symmetry_bd(2,ex,f1,fh1,SoA)
|
|
||||||
call symmetry_bd(2,ex,f2,fh2,SoA)
|
|
||||||
call symmetry_bd(2,ex,f3,fh3,SoA)
|
|
||||||
|
|
||||||
d12dx = ONE/F12/dX
|
|
||||||
d12dy = ONE/F12/dY
|
|
||||||
d12dz = ONE/F12/dZ
|
|
||||||
|
|
||||||
d2dx = ONE/TWO/dX
|
|
||||||
d2dy = ONE/TWO/dY
|
|
||||||
d2dz = ONE/TWO/dZ
|
|
||||||
|
|
||||||
f1x = ZEO; f1y = ZEO; f1z = ZEO
|
|
||||||
f2x = ZEO; f2y = ZEO; f2z = ZEO
|
|
||||||
f3x = ZEO; f3y = ZEO; f3z = ZEO
|
|
||||||
|
|
||||||
do k=1,ex(3)-1
|
|
||||||
do j=1,ex(2)-1
|
|
||||||
do i=1,ex(1)-1
|
|
||||||
if(i+2 <= imax .and. i-2 >= imin .and. &
|
|
||||||
j+2 <= jmax .and. j-2 >= jmin .and. &
|
|
||||||
k+2 <= kmax .and. k-2 >= kmin) then
|
|
||||||
f1x(i,j,k)=d12dx*(fh1(i-2,j,k)-EIT*fh1(i-1,j,k)+EIT*fh1(i+1,j,k)-fh1(i+2,j,k))
|
|
||||||
f1y(i,j,k)=d12dy*(fh1(i,j-2,k)-EIT*fh1(i,j-1,k)+EIT*fh1(i,j+1,k)-fh1(i,j+2,k))
|
|
||||||
f1z(i,j,k)=d12dz*(fh1(i,j,k-2)-EIT*fh1(i,j,k-1)+EIT*fh1(i,j,k+1)-fh1(i,j,k+2))
|
|
||||||
|
|
||||||
f2x(i,j,k)=d12dx*(fh2(i-2,j,k)-EIT*fh2(i-1,j,k)+EIT*fh2(i+1,j,k)-fh2(i+2,j,k))
|
|
||||||
f2y(i,j,k)=d12dy*(fh2(i,j-2,k)-EIT*fh2(i,j-1,k)+EIT*fh2(i,j+1,k)-fh2(i,j+2,k))
|
|
||||||
f2z(i,j,k)=d12dz*(fh2(i,j,k-2)-EIT*fh2(i,j,k-1)+EIT*fh2(i,j,k+1)-fh2(i,j,k+2))
|
|
||||||
|
|
||||||
f3x(i,j,k)=d12dx*(fh3(i-2,j,k)-EIT*fh3(i-1,j,k)+EIT*fh3(i+1,j,k)-fh3(i+2,j,k))
|
|
||||||
f3y(i,j,k)=d12dy*(fh3(i,j-2,k)-EIT*fh3(i,j-1,k)+EIT*fh3(i,j+1,k)-fh3(i,j+2,k))
|
|
||||||
f3z(i,j,k)=d12dz*(fh3(i,j,k-2)-EIT*fh3(i,j,k-1)+EIT*fh3(i,j,k+1)-fh3(i,j,k+2))
|
|
||||||
elseif(i+1 <= imax .and. i-1 >= imin .and. &
|
|
||||||
j+1 <= jmax .and. j-1 >= jmin .and. &
|
|
||||||
k+1 <= kmax .and. k-1 >= kmin) then
|
|
||||||
f1x(i,j,k)=d2dx*(-fh1(i-1,j,k)+fh1(i+1,j,k))
|
|
||||||
f1y(i,j,k)=d2dy*(-fh1(i,j-1,k)+fh1(i,j+1,k))
|
|
||||||
f1z(i,j,k)=d2dz*(-fh1(i,j,k-1)+fh1(i,j,k+1))
|
|
||||||
|
|
||||||
f2x(i,j,k)=d2dx*(-fh2(i-1,j,k)+fh2(i+1,j,k))
|
|
||||||
f2y(i,j,k)=d2dy*(-fh2(i,j-1,k)+fh2(i,j+1,k))
|
|
||||||
f2z(i,j,k)=d2dz*(-fh2(i,j,k-1)+fh2(i,j,k+1))
|
|
||||||
|
|
||||||
f3x(i,j,k)=d2dx*(-fh3(i-1,j,k)+fh3(i+1,j,k))
|
|
||||||
f3y(i,j,k)=d2dy*(-fh3(i,j-1,k)+fh3(i,j+1,k))
|
|
||||||
f3z(i,j,k)=d2dz*(-fh3(i,j,k-1)+fh3(i,j,k+1))
|
|
||||||
endif
|
|
||||||
enddo
|
|
||||||
enddo
|
|
||||||
enddo
|
|
||||||
|
|
||||||
return
|
|
||||||
|
|
||||||
end subroutine fderivs_batch3
|
|
||||||
!-----------------------------------------------------------------------------
|
|
||||||
! batch first derivatives (2 fields), same symmetry setup
|
|
||||||
!-----------------------------------------------------------------------------
|
|
||||||
subroutine fderivs_batch2(ex,f1,f2, &
|
|
||||||
f1x,f1y,f1z,f2x,f2y,f2z, &
|
|
||||||
X,Y,Z,SYM1,SYM2,SYM3,symmetry,onoff)
|
|
||||||
implicit none
|
|
||||||
|
|
||||||
integer, intent(in ):: ex(1:3),symmetry,onoff
|
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)), intent(in ):: f1,f2
|
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)), intent(out):: f1x,f1y,f1z
|
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)), intent(out):: f2x,f2y,f2z
|
|
||||||
real*8, intent(in) :: X(ex(1)),Y(ex(2)),Z(ex(3))
|
|
||||||
real*8, intent(in ):: SYM1,SYM2,SYM3
|
|
||||||
|
|
||||||
!~~~~~~ other variables
|
|
||||||
|
|
||||||
real*8 :: dX,dY,dZ
|
|
||||||
real*8,dimension(-1:ex(1),-1:ex(2),-1:ex(3)) :: fh1,fh2
|
|
||||||
real*8, dimension(3) :: SoA
|
|
||||||
integer :: imin,jmin,kmin,imax,jmax,kmax,i,j,k
|
|
||||||
real*8 :: d12dx,d12dy,d12dz,d2dx,d2dy,d2dz
|
|
||||||
integer, parameter :: NO_SYMM = 0, EQ_SYMM = 1, OCTANT = 2
|
|
||||||
real*8, parameter :: ZEO=0.d0,ONE=1.d0
|
|
||||||
real*8, parameter :: TWO=2.d0,EIT=8.d0
|
|
||||||
real*8, parameter :: F12=1.2d1
|
|
||||||
|
|
||||||
dX = X(2)-X(1)
|
|
||||||
dY = Y(2)-Y(1)
|
|
||||||
dZ = Z(2)-Z(1)
|
|
||||||
|
|
||||||
imax = ex(1)
|
|
||||||
jmax = ex(2)
|
|
||||||
kmax = ex(3)
|
|
||||||
|
|
||||||
imin = 1
|
|
||||||
jmin = 1
|
|
||||||
kmin = 1
|
|
||||||
if(Symmetry > NO_SYMM .and. dabs(Z(1)) < dZ) kmin = -1
|
|
||||||
if(Symmetry > EQ_SYMM .and. dabs(X(1)) < dX) imin = -1
|
|
||||||
if(Symmetry > EQ_SYMM .and. dabs(Y(1)) < dY) jmin = -1
|
|
||||||
|
|
||||||
SoA(1) = SYM1
|
|
||||||
SoA(2) = SYM2
|
|
||||||
SoA(3) = SYM3
|
|
||||||
|
|
||||||
call symmetry_bd(2,ex,f1,fh1,SoA)
|
|
||||||
call symmetry_bd(2,ex,f2,fh2,SoA)
|
|
||||||
|
|
||||||
d12dx = ONE/F12/dX
|
|
||||||
d12dy = ONE/F12/dY
|
|
||||||
d12dz = ONE/F12/dZ
|
|
||||||
|
|
||||||
d2dx = ONE/TWO/dX
|
|
||||||
d2dy = ONE/TWO/dY
|
|
||||||
d2dz = ONE/TWO/dZ
|
|
||||||
|
|
||||||
f1x = ZEO; f1y = ZEO; f1z = ZEO
|
|
||||||
f2x = ZEO; f2y = ZEO; f2z = ZEO
|
|
||||||
|
|
||||||
do k=1,ex(3)-1
|
|
||||||
do j=1,ex(2)-1
|
|
||||||
do i=1,ex(1)-1
|
|
||||||
if(i+2 <= imax .and. i-2 >= imin .and. &
|
|
||||||
j+2 <= jmax .and. j-2 >= jmin .and. &
|
|
||||||
k+2 <= kmax .and. k-2 >= kmin) then
|
|
||||||
f1x(i,j,k)=d12dx*(fh1(i-2,j,k)-EIT*fh1(i-1,j,k)+EIT*fh1(i+1,j,k)-fh1(i+2,j,k))
|
|
||||||
f1y(i,j,k)=d12dy*(fh1(i,j-2,k)-EIT*fh1(i,j-1,k)+EIT*fh1(i,j+1,k)-fh1(i,j+2,k))
|
|
||||||
f1z(i,j,k)=d12dz*(fh1(i,j,k-2)-EIT*fh1(i,j,k-1)+EIT*fh1(i,j,k+1)-fh1(i,j,k+2))
|
|
||||||
|
|
||||||
f2x(i,j,k)=d12dx*(fh2(i-2,j,k)-EIT*fh2(i-1,j,k)+EIT*fh2(i+1,j,k)-fh2(i+2,j,k))
|
|
||||||
f2y(i,j,k)=d12dy*(fh2(i,j-2,k)-EIT*fh2(i,j-1,k)+EIT*fh2(i,j+1,k)-fh2(i,j+2,k))
|
|
||||||
f2z(i,j,k)=d12dz*(fh2(i,j,k-2)-EIT*fh2(i,j,k-1)+EIT*fh2(i,j,k+1)-fh2(i,j,k+2))
|
|
||||||
elseif(i+1 <= imax .and. i-1 >= imin .and. &
|
|
||||||
j+1 <= jmax .and. j-1 >= jmin .and. &
|
|
||||||
k+1 <= kmax .and. k-1 >= kmin) then
|
|
||||||
f1x(i,j,k)=d2dx*(-fh1(i-1,j,k)+fh1(i+1,j,k))
|
|
||||||
f1y(i,j,k)=d2dy*(-fh1(i,j-1,k)+fh1(i,j+1,k))
|
|
||||||
f1z(i,j,k)=d2dz*(-fh1(i,j,k-1)+fh1(i,j,k+1))
|
|
||||||
|
|
||||||
f2x(i,j,k)=d2dx*(-fh2(i-1,j,k)+fh2(i+1,j,k))
|
|
||||||
f2y(i,j,k)=d2dy*(-fh2(i,j-1,k)+fh2(i,j+1,k))
|
|
||||||
f2z(i,j,k)=d2dz*(-fh2(i,j,k-1)+fh2(i,j,k+1))
|
|
||||||
endif
|
|
||||||
enddo
|
|
||||||
enddo
|
|
||||||
enddo
|
|
||||||
|
|
||||||
return
|
|
||||||
|
|
||||||
end subroutine fderivs_batch2
|
|
||||||
|
|
||||||
#elif (ghost_width == 4)
|
#elif (ghost_width == 4)
|
||||||
! sixth order code
|
! sixth order code
|
||||||
@@ -2380,9 +2077,6 @@
|
|||||||
|
|
||||||
end subroutine fderivs
|
end subroutine fderivs
|
||||||
!-----------------------------------------------------------------------------
|
!-----------------------------------------------------------------------------
|
||||||
! batch first derivatives (4 fields), same symmetry setup
|
|
||||||
!-----------------------------------------------------------------------------
|
|
||||||
!-----------------------------------------------------------------------------
|
|
||||||
!
|
!
|
||||||
! single derivatives dx
|
! single derivatives dx
|
||||||
!
|
!
|
||||||
|
|||||||
@@ -19,48 +19,60 @@
|
|||||||
|
|
||||||
!~~~~~~~> Local variable:
|
!~~~~~~~> Local variable:
|
||||||
|
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)) :: trA,detg
|
integer :: i,j,k
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)) :: gxx,gyy,gzz
|
real*8 :: lgxx,lgyy,lgzz,ldetg
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)) :: gupxx,gupxy,gupxz,gupyy,gupyz,gupzz
|
real*8 :: lgupxx,lgupxy,lgupxz,lgupyy,lgupyz,lgupzz
|
||||||
|
real*8 :: ltrA,lscale
|
||||||
real*8, parameter :: F1o3 = 1.D0 / 3.D0, ONE = 1.D0, TWO = 2.D0
|
real*8, parameter :: F1o3 = 1.D0 / 3.D0, ONE = 1.D0, TWO = 2.D0
|
||||||
|
|
||||||
!~~~~~~>
|
!~~~~~~>
|
||||||
|
|
||||||
gxx = dxx + ONE
|
do k=1,ex(3)
|
||||||
gyy = dyy + ONE
|
do j=1,ex(2)
|
||||||
gzz = dzz + ONE
|
do i=1,ex(1)
|
||||||
|
|
||||||
detg = gxx * gyy * gzz + gxy * gyz * gxz + gxz * gxy * gyz - &
|
lgxx = dxx(i,j,k) + ONE
|
||||||
gxz * gyy * gxz - gxy * gxy * gzz - gxx * gyz * gyz
|
lgyy = dyy(i,j,k) + ONE
|
||||||
gupxx = ( gyy * gzz - gyz * gyz ) / detg
|
lgzz = dzz(i,j,k) + ONE
|
||||||
gupxy = - ( gxy * gzz - gyz * gxz ) / detg
|
|
||||||
gupxz = ( gxy * gyz - gyy * gxz ) / detg
|
|
||||||
gupyy = ( gxx * gzz - gxz * gxz ) / detg
|
|
||||||
gupyz = - ( gxx * gyz - gxy * gxz ) / detg
|
|
||||||
gupzz = ( gxx * gyy - gxy * gxy ) / detg
|
|
||||||
|
|
||||||
trA = gupxx * Axx + gupyy * Ayy + gupzz * Azz &
|
ldetg = lgxx * lgyy * lgzz &
|
||||||
+ TWO * (gupxy * Axy + gupxz * Axz + gupyz * Ayz)
|
+ 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) * lgyy * gxz(i,j,k) &
|
||||||
|
- gxy(i,j,k) * gxy(i,j,k) * lgzz &
|
||||||
|
- lgxx * gyz(i,j,k) * gyz(i,j,k)
|
||||||
|
|
||||||
Axx = Axx - F1o3 * gxx * trA
|
lgupxx = ( lgyy * lgzz - gyz(i,j,k) * gyz(i,j,k) ) / ldetg
|
||||||
Axy = Axy - F1o3 * gxy * trA
|
lgupxy = - ( gxy(i,j,k) * lgzz - gyz(i,j,k) * gxz(i,j,k) ) / ldetg
|
||||||
Axz = Axz - F1o3 * gxz * trA
|
lgupxz = ( gxy(i,j,k) * gyz(i,j,k) - lgyy * gxz(i,j,k) ) / ldetg
|
||||||
Ayy = Ayy - F1o3 * gyy * trA
|
lgupyy = ( lgxx * lgzz - gxz(i,j,k) * gxz(i,j,k) ) / ldetg
|
||||||
Ayz = Ayz - F1o3 * gyz * trA
|
lgupyz = - ( lgxx * gyz(i,j,k) - gxy(i,j,k) * gxz(i,j,k) ) / ldetg
|
||||||
Azz = Azz - F1o3 * gzz * trA
|
lgupzz = ( lgxx * lgyy - gxy(i,j,k) * gxy(i,j,k) ) / ldetg
|
||||||
|
|
||||||
detg = ONE / ( detg ** F1o3 )
|
ltrA = lgupxx * Axx(i,j,k) + lgupyy * Ayy(i,j,k) &
|
||||||
|
+ lgupzz * Azz(i,j,k) &
|
||||||
|
+ TWO * (lgupxy * Axy(i,j,k) + lgupxz * Axz(i,j,k) &
|
||||||
|
+ lgupyz * Ayz(i,j,k))
|
||||||
|
|
||||||
gxx = gxx * detg
|
Axx(i,j,k) = Axx(i,j,k) - F1o3 * lgxx * ltrA
|
||||||
gxy = gxy * detg
|
Axy(i,j,k) = Axy(i,j,k) - F1o3 * gxy(i,j,k) * ltrA
|
||||||
gxz = gxz * detg
|
Axz(i,j,k) = Axz(i,j,k) - F1o3 * gxz(i,j,k) * ltrA
|
||||||
gyy = gyy * detg
|
Ayy(i,j,k) = Ayy(i,j,k) - F1o3 * lgyy * ltrA
|
||||||
gyz = gyz * detg
|
Ayz(i,j,k) = Ayz(i,j,k) - F1o3 * gyz(i,j,k) * ltrA
|
||||||
gzz = gzz * detg
|
Azz(i,j,k) = Azz(i,j,k) - F1o3 * lgzz * ltrA
|
||||||
|
|
||||||
dxx = gxx - ONE
|
lscale = ONE / ( ldetg ** F1o3 )
|
||||||
dyy = gyy - ONE
|
|
||||||
dzz = gzz - ONE
|
dxx(i,j,k) = lgxx * lscale - ONE
|
||||||
|
gxy(i,j,k) = gxy(i,j,k) * lscale
|
||||||
|
gxz(i,j,k) = gxz(i,j,k) * lscale
|
||||||
|
dyy(i,j,k) = lgyy * lscale - ONE
|
||||||
|
gyz(i,j,k) = gyz(i,j,k) * lscale
|
||||||
|
dzz(i,j,k) = lgzz * lscale - ONE
|
||||||
|
|
||||||
|
enddo
|
||||||
|
enddo
|
||||||
|
enddo
|
||||||
|
|
||||||
return
|
return
|
||||||
|
|
||||||
@@ -83,50 +95,70 @@
|
|||||||
|
|
||||||
!~~~~~~~> Local variable:
|
!~~~~~~~> Local variable:
|
||||||
|
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)) :: trA
|
integer :: i,j,k
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)) :: gxx,gyy,gzz
|
real*8 :: lgxx,lgyy,lgzz,lscale
|
||||||
real*8, dimension(ex(1),ex(2),ex(3)) :: gupxx,gupxy,gupxz,gupyy,gupyz,gupzz
|
real*8 :: lgxy,lgxz,lgyz
|
||||||
|
real*8 :: lgupxx,lgupxy,lgupxz,lgupyy,lgupyz,lgupzz
|
||||||
|
real*8 :: ltrA
|
||||||
real*8, parameter :: F1o3 = 1.D0 / 3.D0, ONE = 1.D0, TWO = 2.D0
|
real*8, parameter :: F1o3 = 1.D0 / 3.D0, ONE = 1.D0, TWO = 2.D0
|
||||||
|
|
||||||
!~~~~~~>
|
!~~~~~~>
|
||||||
|
|
||||||
gxx = dxx + ONE
|
do k=1,ex(3)
|
||||||
gyy = dyy + ONE
|
do j=1,ex(2)
|
||||||
gzz = dzz + ONE
|
do i=1,ex(1)
|
||||||
! for g
|
|
||||||
gupzz = gxx * gyy * gzz + gxy * gyz * gxz + gxz * gxy * gyz - &
|
|
||||||
gxz * gyy * gxz - gxy * gxy * gzz - gxx * gyz * gyz
|
|
||||||
|
|
||||||
gupzz = ONE / ( gupzz ** F1o3 )
|
! for g: normalize determinant first
|
||||||
|
lgxx = dxx(i,j,k) + ONE
|
||||||
|
lgyy = dyy(i,j,k) + ONE
|
||||||
|
lgzz = dzz(i,j,k) + ONE
|
||||||
|
lgxy = gxy(i,j,k)
|
||||||
|
lgxz = gxz(i,j,k)
|
||||||
|
lgyz = gyz(i,j,k)
|
||||||
|
|
||||||
gxx = gxx * gupzz
|
lscale = lgxx * lgyy * lgzz + lgxy * lgyz * lgxz &
|
||||||
gxy = gxy * gupzz
|
+ lgxz * lgxy * lgyz - lgxz * lgyy * lgxz &
|
||||||
gxz = gxz * gupzz
|
- lgxy * lgxy * lgzz - lgxx * lgyz * lgyz
|
||||||
gyy = gyy * gupzz
|
|
||||||
gyz = gyz * gupzz
|
|
||||||
gzz = gzz * gupzz
|
|
||||||
|
|
||||||
dxx = gxx - ONE
|
lscale = ONE / ( lscale ** F1o3 )
|
||||||
dyy = gyy - ONE
|
|
||||||
dzz = gzz - ONE
|
|
||||||
! for A
|
|
||||||
|
|
||||||
gupxx = ( gyy * gzz - gyz * gyz )
|
lgxx = lgxx * lscale
|
||||||
gupxy = - ( gxy * gzz - gyz * gxz )
|
lgxy = lgxy * lscale
|
||||||
gupxz = ( gxy * gyz - gyy * gxz )
|
lgxz = lgxz * lscale
|
||||||
gupyy = ( gxx * gzz - gxz * gxz )
|
lgyy = lgyy * lscale
|
||||||
gupyz = - ( gxx * gyz - gxy * gxz )
|
lgyz = lgyz * lscale
|
||||||
gupzz = ( gxx * gyy - gxy * gxy )
|
lgzz = lgzz * lscale
|
||||||
|
|
||||||
trA = gupxx * Axx + gupyy * Ayy + gupzz * Azz &
|
dxx(i,j,k) = lgxx - ONE
|
||||||
+ TWO * (gupxy * Axy + gupxz * Axz + gupyz * Ayz)
|
gxy(i,j,k) = lgxy
|
||||||
|
gxz(i,j,k) = lgxz
|
||||||
|
dyy(i,j,k) = lgyy - ONE
|
||||||
|
gyz(i,j,k) = lgyz
|
||||||
|
dzz(i,j,k) = lgzz - ONE
|
||||||
|
|
||||||
Axx = Axx - F1o3 * gxx * trA
|
! for A: trace-free using normalized metric (det=1, no division needed)
|
||||||
Axy = Axy - F1o3 * gxy * trA
|
lgupxx = ( lgyy * lgzz - lgyz * lgyz )
|
||||||
Axz = Axz - F1o3 * gxz * trA
|
lgupxy = - ( lgxy * lgzz - lgyz * lgxz )
|
||||||
Ayy = Ayy - F1o3 * gyy * trA
|
lgupxz = ( lgxy * lgyz - lgyy * lgxz )
|
||||||
Ayz = Ayz - F1o3 * gyz * trA
|
lgupyy = ( lgxx * lgzz - lgxz * lgxz )
|
||||||
Azz = Azz - F1o3 * gzz * trA
|
lgupyz = - ( lgxx * lgyz - lgxy * lgxz )
|
||||||
|
lgupzz = ( lgxx * lgyy - lgxy * lgxy )
|
||||||
|
|
||||||
|
ltrA = lgupxx * Axx(i,j,k) + lgupyy * Ayy(i,j,k) &
|
||||||
|
+ lgupzz * Azz(i,j,k) &
|
||||||
|
+ TWO * (lgupxy * Axy(i,j,k) + lgupxz * Axz(i,j,k) &
|
||||||
|
+ lgupyz * Ayz(i,j,k))
|
||||||
|
|
||||||
|
Axx(i,j,k) = Axx(i,j,k) - F1o3 * lgxx * ltrA
|
||||||
|
Axy(i,j,k) = Axy(i,j,k) - F1o3 * lgxy * ltrA
|
||||||
|
Axz(i,j,k) = Axz(i,j,k) - F1o3 * lgxz * ltrA
|
||||||
|
Ayy(i,j,k) = Ayy(i,j,k) - F1o3 * lgyy * ltrA
|
||||||
|
Ayz(i,j,k) = Ayz(i,j,k) - F1o3 * lgyz * ltrA
|
||||||
|
Azz(i,j,k) = Azz(i,j,k) - F1o3 * lgzz * ltrA
|
||||||
|
|
||||||
|
enddo
|
||||||
|
enddo
|
||||||
|
enddo
|
||||||
|
|
||||||
return
|
return
|
||||||
|
|
||||||
|
|||||||
@@ -324,7 +324,6 @@ subroutine symmetry_bd(ord,extc,func,funcc,SoA)
|
|||||||
|
|
||||||
integer::i
|
integer::i
|
||||||
|
|
||||||
funcc = 0.d0
|
|
||||||
funcc(1:extc(1),1:extc(2),1:extc(3)) = func
|
funcc(1:extc(1),1:extc(2),1:extc(3)) = func
|
||||||
do i=0,ord-1
|
do i=0,ord-1
|
||||||
funcc(-i,1:extc(2),1:extc(3)) = funcc(i+2,1:extc(2),1:extc(3))*SoA(1)
|
funcc(-i,1:extc(2),1:extc(3)) = funcc(i+2,1:extc(2),1:extc(3))*SoA(1)
|
||||||
@@ -350,7 +349,6 @@ subroutine symmetry_tbd(ord,extc,func,funcc,SoA)
|
|||||||
|
|
||||||
integer::i
|
integer::i
|
||||||
|
|
||||||
funcc = 0.d0
|
|
||||||
funcc(1:extc(1),1:extc(2),1:extc(3)) = func
|
funcc(1:extc(1),1:extc(2),1:extc(3)) = func
|
||||||
do i=0,ord-1
|
do i=0,ord-1
|
||||||
funcc(-i,1:extc(2),1:extc(3)) = funcc(i+2,1:extc(2),1:extc(3))*SoA(1)
|
funcc(-i,1:extc(2),1:extc(3)) = funcc(i+2,1:extc(2),1:extc(3))*SoA(1)
|
||||||
@@ -379,7 +377,6 @@ subroutine symmetry_stbd(ord,extc,func,funcc,SoA)
|
|||||||
|
|
||||||
integer::i
|
integer::i
|
||||||
|
|
||||||
funcc = 0.d0
|
|
||||||
funcc(1:extc(1),1:extc(2),1:extc(3)) = func
|
funcc(1:extc(1),1:extc(2),1:extc(3)) = func
|
||||||
do i=0,ord-1
|
do i=0,ord-1
|
||||||
funcc(-i,1:extc(2),1:extc(3)) = funcc(i+2,1:extc(2),1:extc(3))*SoA(1)
|
funcc(-i,1:extc(2),1:extc(3)) = funcc(i+2,1:extc(2),1:extc(3))*SoA(1)
|
||||||
@@ -886,7 +883,6 @@ subroutine symmetry_bd(ord,extc,func,funcc,SoA)
|
|||||||
|
|
||||||
integer::i
|
integer::i
|
||||||
|
|
||||||
funcc = 0.d0
|
|
||||||
funcc(1:extc(1),1:extc(2),1:extc(3)) = func
|
funcc(1:extc(1),1:extc(2),1:extc(3)) = func
|
||||||
do i=0,ord-1
|
do i=0,ord-1
|
||||||
funcc(-i,1:extc(2),1:extc(3)) = funcc(i+1,1:extc(2),1:extc(3))*SoA(1)
|
funcc(-i,1:extc(2),1:extc(3)) = funcc(i+1,1:extc(2),1:extc(3))*SoA(1)
|
||||||
@@ -912,7 +908,6 @@ subroutine symmetry_tbd(ord,extc,func,funcc,SoA)
|
|||||||
|
|
||||||
integer::i
|
integer::i
|
||||||
|
|
||||||
funcc = 0.d0
|
|
||||||
funcc(1:extc(1),1:extc(2),1:extc(3)) = func
|
funcc(1:extc(1),1:extc(2),1:extc(3)) = func
|
||||||
do i=0,ord-1
|
do i=0,ord-1
|
||||||
funcc(-i,1:extc(2),1:extc(3)) = funcc(i+1,1:extc(2),1:extc(3))*SoA(1)
|
funcc(-i,1:extc(2),1:extc(3)) = funcc(i+1,1:extc(2),1:extc(3))*SoA(1)
|
||||||
@@ -941,7 +936,6 @@ subroutine symmetry_stbd(ord,extc,func,funcc,SoA)
|
|||||||
|
|
||||||
integer::i
|
integer::i
|
||||||
|
|
||||||
funcc = 0.d0
|
|
||||||
funcc(1:extc(1),1:extc(2),1:extc(3)) = func
|
funcc(1:extc(1),1:extc(2),1:extc(3)) = func
|
||||||
do i=0,ord-1
|
do i=0,ord-1
|
||||||
funcc(-i,1:extc(2),1:extc(3)) = funcc(i+1,1:extc(2),1:extc(3))*SoA(1)
|
funcc(-i,1:extc(2),1:extc(3)) = funcc(i+1,1:extc(2),1:extc(3))*SoA(1)
|
||||||
@@ -1119,25 +1113,16 @@ end subroutine d2dump
|
|||||||
!------------------------------------------------------------------------------
|
!------------------------------------------------------------------------------
|
||||||
|
|
||||||
subroutine polint(xa, ya, x, y, dy, ordn)
|
subroutine polint(xa, ya, x, y, dy, ordn)
|
||||||
|
|
||||||
implicit none
|
implicit none
|
||||||
|
|
||||||
!~~~~~~> Input Parameter:
|
|
||||||
integer, intent(in) :: ordn
|
integer, intent(in) :: ordn
|
||||||
real*8, dimension(ordn), intent(in) :: xa, ya
|
real*8, dimension(ordn), intent(in) :: xa, ya
|
||||||
real*8, intent(in) :: x
|
real*8, intent(in) :: x
|
||||||
real*8, intent(out) :: y, dy
|
real*8, intent(out) :: y, dy
|
||||||
|
|
||||||
!~~~~~~> Other parameter:
|
integer :: i, m, ns, n_m
|
||||||
|
real*8, dimension(ordn) :: c, d, ho
|
||||||
integer :: m,n,ns
|
real*8 :: dif, dift, hp, h, den_val
|
||||||
real*8, dimension(ordn) :: c,d,den,ho
|
|
||||||
real*8 :: dif,dift
|
|
||||||
|
|
||||||
!~~~~~~>
|
|
||||||
|
|
||||||
n=ordn
|
|
||||||
m=ordn
|
|
||||||
|
|
||||||
c = ya
|
c = ya
|
||||||
d = ya
|
d = ya
|
||||||
@@ -1145,27 +1130,38 @@ end subroutine d2dump
|
|||||||
|
|
||||||
ns = 1
|
ns = 1
|
||||||
dif = abs(x - xa(1))
|
dif = abs(x - xa(1))
|
||||||
do m=1,n
|
|
||||||
dift=abs(x-xa(m))
|
do i = 2, ordn
|
||||||
|
dift = abs(x - xa(i))
|
||||||
if (dift < dif) then
|
if (dift < dif) then
|
||||||
ns=m
|
ns = i
|
||||||
dif = dift
|
dif = dift
|
||||||
end if
|
end if
|
||||||
end do
|
end do
|
||||||
|
|
||||||
y = ya(ns)
|
y = ya(ns)
|
||||||
ns = ns - 1
|
ns = ns - 1
|
||||||
do m=1,n-1
|
|
||||||
den(1:n-m)=ho(1:n-m)-ho(1+m:n)
|
do m = 1, ordn - 1
|
||||||
if (any(den(1:n-m) == 0.0))then
|
n_m = ordn - 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(*,*) 'failure in polint for point',x
|
||||||
write(*,*) 'with input points: ',xa
|
write(*,*) 'with input points: ',xa
|
||||||
stop
|
stop
|
||||||
end if
|
end if
|
||||||
den(1:n-m)=(c(2:n-m+1)-d(1:n-m))/den(1:n-m)
|
|
||||||
d(1:n-m)=ho(1+m:n)*den(1:n-m)
|
den_val = (c(i+1) - d(i)) / den_val
|
||||||
c(1:n-m)=ho(1:n-m)*den(1:n-m)
|
|
||||||
if (2*ns < n-m) then
|
d(i) = h * den_val
|
||||||
|
c(i) = hp * den_val
|
||||||
|
end do
|
||||||
|
|
||||||
|
if (2 * ns < n_m) then
|
||||||
dy = c(ns + 1)
|
dy = c(ns + 1)
|
||||||
else
|
else
|
||||||
dy = d(ns)
|
dy = d(ns)
|
||||||
@@ -1175,7 +1171,6 @@ end subroutine d2dump
|
|||||||
end do
|
end do
|
||||||
|
|
||||||
return
|
return
|
||||||
|
|
||||||
end subroutine polint
|
end subroutine polint
|
||||||
!------------------------------------------------------------------------------
|
!------------------------------------------------------------------------------
|
||||||
!
|
!
|
||||||
@@ -1183,35 +1178,37 @@ end subroutine d2dump
|
|||||||
!
|
!
|
||||||
!------------------------------------------------------------------------------
|
!------------------------------------------------------------------------------
|
||||||
subroutine polin2(x1a,x2a,ya,x1,x2,y,dy,ordn)
|
subroutine polin2(x1a,x2a,ya,x1,x2,y,dy,ordn)
|
||||||
|
|
||||||
implicit none
|
implicit none
|
||||||
|
|
||||||
!~~~~~~> Input parameters:
|
|
||||||
integer,intent(in) :: ordn
|
integer,intent(in) :: ordn
|
||||||
real*8, dimension(1:ordn), intent(in) :: x1a,x2a
|
real*8, dimension(1:ordn), intent(in) :: x1a,x2a
|
||||||
real*8, dimension(1:ordn,1:ordn), intent(in) :: ya
|
real*8, dimension(1:ordn,1:ordn), intent(in) :: ya
|
||||||
real*8, intent(in) :: x1,x2
|
real*8, intent(in) :: x1,x2
|
||||||
real*8, intent(out) :: y,dy
|
real*8, intent(out) :: y,dy
|
||||||
|
|
||||||
!~~~~~~> Other parameters:
|
#ifdef POLINT_LEGACY_ORDER
|
||||||
|
|
||||||
integer :: i,m
|
integer :: i,m
|
||||||
real*8, dimension(ordn) :: ymtmp
|
real*8, dimension(ordn) :: ymtmp
|
||||||
real*8, dimension(ordn) :: yntmp
|
real*8, dimension(ordn) :: yntmp
|
||||||
|
|
||||||
m=size(x1a)
|
m=size(x1a)
|
||||||
|
|
||||||
do i=1,m
|
do i=1,m
|
||||||
|
|
||||||
yntmp=ya(i,:)
|
yntmp=ya(i,:)
|
||||||
call polint(x2a,yntmp,x2,ymtmp(i),dy,ordn)
|
call polint(x2a,yntmp,x2,ymtmp(i),dy,ordn)
|
||||||
|
|
||||||
end do
|
end do
|
||||||
|
|
||||||
call polint(x1a,ymtmp,x1,y,dy,ordn)
|
call polint(x1a,ymtmp,x1,y,dy,ordn)
|
||||||
|
#else
|
||||||
|
integer :: j
|
||||||
|
real*8, dimension(ordn) :: ymtmp
|
||||||
|
real*8 :: dy_temp
|
||||||
|
|
||||||
|
do j=1,ordn
|
||||||
|
call polint(x1a, ya(:,j), x1, ymtmp(j), dy_temp, ordn)
|
||||||
|
end do
|
||||||
|
call polint(x2a, ymtmp, x2, y, dy, ordn)
|
||||||
|
#endif
|
||||||
|
|
||||||
return
|
return
|
||||||
|
|
||||||
end subroutine polin2
|
end subroutine polin2
|
||||||
!------------------------------------------------------------------------------
|
!------------------------------------------------------------------------------
|
||||||
!
|
!
|
||||||
@@ -1219,18 +1216,15 @@ end subroutine d2dump
|
|||||||
!
|
!
|
||||||
!------------------------------------------------------------------------------
|
!------------------------------------------------------------------------------
|
||||||
subroutine polin3(x1a,x2a,x3a,ya,x1,x2,x3,y,dy,ordn)
|
subroutine polin3(x1a,x2a,x3a,ya,x1,x2,x3,y,dy,ordn)
|
||||||
|
|
||||||
implicit none
|
implicit none
|
||||||
|
|
||||||
!~~~~~~> Input parameters:
|
|
||||||
integer,intent(in) :: ordn
|
integer,intent(in) :: ordn
|
||||||
real*8, dimension(1:ordn), intent(in) :: x1a,x2a,x3a
|
real*8, dimension(1:ordn), intent(in) :: x1a,x2a,x3a
|
||||||
real*8, dimension(1:ordn,1:ordn,1:ordn), intent(in) :: ya
|
real*8, dimension(1:ordn,1:ordn,1:ordn), intent(in) :: ya
|
||||||
real*8, intent(in) :: x1,x2,x3
|
real*8, intent(in) :: x1,x2,x3
|
||||||
real*8, intent(out) :: y,dy
|
real*8, intent(out) :: y,dy
|
||||||
|
|
||||||
!~~~~~~> Other parameters:
|
#ifdef POLINT_LEGACY_ORDER
|
||||||
|
|
||||||
integer :: i,j,m,n
|
integer :: i,j,m,n
|
||||||
real*8, dimension(ordn,ordn) :: yatmp
|
real*8, dimension(ordn,ordn) :: yatmp
|
||||||
real*8, dimension(ordn) :: ymtmp
|
real*8, dimension(ordn) :: ymtmp
|
||||||
@@ -1239,24 +1233,33 @@ end subroutine d2dump
|
|||||||
|
|
||||||
m=size(x1a)
|
m=size(x1a)
|
||||||
n=size(x2a)
|
n=size(x2a)
|
||||||
|
|
||||||
do i=1,m
|
do i=1,m
|
||||||
do j=1,n
|
do j=1,n
|
||||||
|
|
||||||
yqtmp=ya(i,j,:)
|
yqtmp=ya(i,j,:)
|
||||||
call polint(x3a,yqtmp,x3,yatmp(i,j),dy,ordn)
|
call polint(x3a,yqtmp,x3,yatmp(i,j),dy,ordn)
|
||||||
|
|
||||||
end do
|
end do
|
||||||
|
|
||||||
yntmp=yatmp(i,:)
|
yntmp=yatmp(i,:)
|
||||||
call polint(x2a,yntmp,x2,ymtmp(i),dy,ordn)
|
call polint(x2a,yntmp,x2,ymtmp(i),dy,ordn)
|
||||||
|
|
||||||
end do
|
end do
|
||||||
|
|
||||||
call polint(x1a,ymtmp,x1,y,dy,ordn)
|
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
|
return
|
||||||
|
|
||||||
end subroutine polin3
|
end subroutine polin3
|
||||||
!--------------------------------------------------------------------------------------
|
!--------------------------------------------------------------------------------------
|
||||||
! calculate L2norm
|
! calculate L2norm
|
||||||
|
|||||||
@@ -487,6 +487,201 @@ subroutine lopsided(ex,X,Y,Z,f,f_rhs,Sfx,Sfy,Sfz,Symmetry,SoA)
|
|||||||
|
|
||||||
end subroutine lopsided
|
end subroutine lopsided
|
||||||
|
|
||||||
|
!-----------------------------------------------------------------------------
|
||||||
|
! Combined advection (lopsided) + Kreiss-Oliger dissipation (kodis)
|
||||||
|
! Shares the symmetry_bd buffer fh, eliminating one full-grid copy per call.
|
||||||
|
! Mathematically identical to calling lopsided then kodis separately.
|
||||||
|
!-----------------------------------------------------------------------------
|
||||||
|
subroutine lopsided_kodis(ex,X,Y,Z,f,f_rhs,Sfx,Sfy,Sfz,Symmetry,SoA,eps)
|
||||||
|
implicit none
|
||||||
|
|
||||||
|
!~~~~~~> Input parameters:
|
||||||
|
|
||||||
|
integer, intent(in) :: ex(1:3),Symmetry
|
||||||
|
real*8, intent(in) :: X(1:ex(1)),Y(1:ex(2)),Z(1:ex(3))
|
||||||
|
real*8,dimension(ex(1),ex(2),ex(3)),intent(in) :: f,Sfx,Sfy,Sfz
|
||||||
|
|
||||||
|
real*8,dimension(ex(1),ex(2),ex(3)),intent(inout):: f_rhs
|
||||||
|
real*8,dimension(3),intent(in) ::SoA
|
||||||
|
real*8,intent(in) :: eps
|
||||||
|
|
||||||
|
!~~~~~~> local variables:
|
||||||
|
! note index -2,-1,0, so we have 3 extra points
|
||||||
|
real*8,dimension(-2:ex(1),-2:ex(2),-2:ex(3)) :: fh
|
||||||
|
integer :: imin,jmin,kmin,imax,jmax,kmax,i,j,k
|
||||||
|
real*8 :: dX,dY,dZ
|
||||||
|
real*8 :: d12dx,d12dy,d12dz,d2dx,d2dy,d2dz
|
||||||
|
real*8, parameter :: ZEO=0.d0,ONE=1.d0, F3=3.d0
|
||||||
|
real*8, parameter :: TWO=2.d0,F6=6.0d0,F18=1.8d1
|
||||||
|
real*8, parameter :: F12=1.2d1, F10=1.d1,EIT=8.d0
|
||||||
|
integer, parameter :: NO_SYMM = 0, EQ_SYMM = 1, OCTANT = 2
|
||||||
|
! kodis parameters
|
||||||
|
real*8, parameter :: SIX=6.d0,FIT=1.5d1,TWT=2.d1
|
||||||
|
real*8, parameter :: cof=6.4d1 ! 2^6
|
||||||
|
|
||||||
|
dX = X(2)-X(1)
|
||||||
|
dY = Y(2)-Y(1)
|
||||||
|
dZ = Z(2)-Z(1)
|
||||||
|
|
||||||
|
d12dx = ONE/F12/dX
|
||||||
|
d12dy = ONE/F12/dY
|
||||||
|
d12dz = ONE/F12/dZ
|
||||||
|
|
||||||
|
d2dx = ONE/TWO/dX
|
||||||
|
d2dy = ONE/TWO/dY
|
||||||
|
d2dz = ONE/TWO/dZ
|
||||||
|
|
||||||
|
imax = ex(1)
|
||||||
|
jmax = ex(2)
|
||||||
|
kmax = ex(3)
|
||||||
|
|
||||||
|
imin = 1
|
||||||
|
jmin = 1
|
||||||
|
kmin = 1
|
||||||
|
if(Symmetry > NO_SYMM .and. dabs(Z(1)) < dZ) kmin = -2
|
||||||
|
if(Symmetry > EQ_SYMM .and. dabs(X(1)) < dX) imin = -2
|
||||||
|
if(Symmetry > EQ_SYMM .and. dabs(Y(1)) < dY) jmin = -2
|
||||||
|
|
||||||
|
! Single symmetry_bd call shared by both advection and dissipation
|
||||||
|
call symmetry_bd(3,ex,f,fh,SoA)
|
||||||
|
|
||||||
|
! ---- Advection (lopsided) loop ----
|
||||||
|
! upper bound set ex-1 only for efficiency,
|
||||||
|
! the loop body will set ex 0 also
|
||||||
|
do k=1,ex(3)-1
|
||||||
|
do j=1,ex(2)-1
|
||||||
|
do i=1,ex(1)-1
|
||||||
|
! x direction
|
||||||
|
if(Sfx(i,j,k) > ZEO)then
|
||||||
|
if(i+3 <= imax)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)+ &
|
||||||
|
Sfx(i,j,k)*d12dx*(-F3*fh(i-1,j,k)-F10*fh(i,j,k)+F18*fh(i+1,j,k) &
|
||||||
|
-F6*fh(i+2,j,k)+ fh(i+3,j,k))
|
||||||
|
elseif(i+2 <= imax)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)+ &
|
||||||
|
Sfx(i,j,k)*d12dx*(fh(i-2,j,k)-EIT*fh(i-1,j,k)+EIT*fh(i+1,j,k)-fh(i+2,j,k))
|
||||||
|
|
||||||
|
elseif(i+1 <= imax)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)- &
|
||||||
|
Sfx(i,j,k)*d12dx*(-F3*fh(i+1,j,k)-F10*fh(i,j,k)+F18*fh(i-1,j,k) &
|
||||||
|
-F6*fh(i-2,j,k)+ fh(i-3,j,k))
|
||||||
|
endif
|
||||||
|
elseif(Sfx(i,j,k) < ZEO)then
|
||||||
|
if(i-3 >= imin)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)- &
|
||||||
|
Sfx(i,j,k)*d12dx*(-F3*fh(i+1,j,k)-F10*fh(i,j,k)+F18*fh(i-1,j,k) &
|
||||||
|
-F6*fh(i-2,j,k)+ fh(i-3,j,k))
|
||||||
|
elseif(i-2 >= imin)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)+ &
|
||||||
|
Sfx(i,j,k)*d12dx*(fh(i-2,j,k)-EIT*fh(i-1,j,k)+EIT*fh(i+1,j,k)-fh(i+2,j,k))
|
||||||
|
|
||||||
|
elseif(i-1 >= imin)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)+ &
|
||||||
|
Sfx(i,j,k)*d12dx*(-F3*fh(i-1,j,k)-F10*fh(i,j,k)+F18*fh(i+1,j,k) &
|
||||||
|
-F6*fh(i+2,j,k)+ fh(i+3,j,k))
|
||||||
|
endif
|
||||||
|
endif
|
||||||
|
|
||||||
|
! y direction
|
||||||
|
if(Sfy(i,j,k) > ZEO)then
|
||||||
|
if(j+3 <= jmax)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)+ &
|
||||||
|
Sfy(i,j,k)*d12dy*(-F3*fh(i,j-1,k)-F10*fh(i,j,k)+F18*fh(i,j+1,k) &
|
||||||
|
-F6*fh(i,j+2,k)+ fh(i,j+3,k))
|
||||||
|
elseif(j+2 <= jmax)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)+ &
|
||||||
|
Sfy(i,j,k)*d12dy*(fh(i,j-2,k)-EIT*fh(i,j-1,k)+EIT*fh(i,j+1,k)-fh(i,j+2,k))
|
||||||
|
|
||||||
|
elseif(j+1 <= jmax)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)- &
|
||||||
|
Sfy(i,j,k)*d12dy*(-F3*fh(i,j+1,k)-F10*fh(i,j,k)+F18*fh(i,j-1,k) &
|
||||||
|
-F6*fh(i,j-2,k)+ fh(i,j-3,k))
|
||||||
|
endif
|
||||||
|
elseif(Sfy(i,j,k) < ZEO)then
|
||||||
|
if(j-3 >= jmin)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)- &
|
||||||
|
Sfy(i,j,k)*d12dy*(-F3*fh(i,j+1,k)-F10*fh(i,j,k)+F18*fh(i,j-1,k) &
|
||||||
|
-F6*fh(i,j-2,k)+ fh(i,j-3,k))
|
||||||
|
elseif(j-2 >= jmin)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)+ &
|
||||||
|
Sfy(i,j,k)*d12dy*(fh(i,j-2,k)-EIT*fh(i,j-1,k)+EIT*fh(i,j+1,k)-fh(i,j+2,k))
|
||||||
|
|
||||||
|
elseif(j-1 >= jmin)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)+ &
|
||||||
|
Sfy(i,j,k)*d12dy*(-F3*fh(i,j-1,k)-F10*fh(i,j,k)+F18*fh(i,j+1,k) &
|
||||||
|
-F6*fh(i,j+2,k)+ fh(i,j+3,k))
|
||||||
|
endif
|
||||||
|
endif
|
||||||
|
|
||||||
|
! z direction
|
||||||
|
if(Sfz(i,j,k) > ZEO)then
|
||||||
|
if(k+3 <= kmax)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)+ &
|
||||||
|
Sfz(i,j,k)*d12dz*(-F3*fh(i,j,k-1)-F10*fh(i,j,k)+F18*fh(i,j,k+1) &
|
||||||
|
-F6*fh(i,j,k+2)+ fh(i,j,k+3))
|
||||||
|
elseif(k+2 <= kmax)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)+ &
|
||||||
|
Sfz(i,j,k)*d12dz*(fh(i,j,k-2)-EIT*fh(i,j,k-1)+EIT*fh(i,j,k+1)-fh(i,j,k+2))
|
||||||
|
|
||||||
|
elseif(k+1 <= kmax)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)- &
|
||||||
|
Sfz(i,j,k)*d12dz*(-F3*fh(i,j,k+1)-F10*fh(i,j,k)+F18*fh(i,j,k-1) &
|
||||||
|
-F6*fh(i,j,k-2)+ fh(i,j,k-3))
|
||||||
|
endif
|
||||||
|
elseif(Sfz(i,j,k) < ZEO)then
|
||||||
|
if(k-3 >= kmin)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)- &
|
||||||
|
Sfz(i,j,k)*d12dz*(-F3*fh(i,j,k+1)-F10*fh(i,j,k)+F18*fh(i,j,k-1) &
|
||||||
|
-F6*fh(i,j,k-2)+ fh(i,j,k-3))
|
||||||
|
elseif(k-2 >= kmin)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)+ &
|
||||||
|
Sfz(i,j,k)*d12dz*(fh(i,j,k-2)-EIT*fh(i,j,k-1)+EIT*fh(i,j,k+1)-fh(i,j,k+2))
|
||||||
|
|
||||||
|
elseif(k-1 >= kmin)then
|
||||||
|
f_rhs(i,j,k)=f_rhs(i,j,k)+ &
|
||||||
|
Sfz(i,j,k)*d12dz*(-F3*fh(i,j,k-1)-F10*fh(i,j,k)+F18*fh(i,j,k+1) &
|
||||||
|
-F6*fh(i,j,k+2)+ fh(i,j,k+3))
|
||||||
|
endif
|
||||||
|
endif
|
||||||
|
enddo
|
||||||
|
enddo
|
||||||
|
enddo
|
||||||
|
|
||||||
|
! ---- Dissipation (kodis) loop ----
|
||||||
|
if(eps > ZEO) then
|
||||||
|
do k=1,ex(3)
|
||||||
|
do j=1,ex(2)
|
||||||
|
do i=1,ex(1)
|
||||||
|
|
||||||
|
if(i-3 >= imin .and. i+3 <= imax .and. &
|
||||||
|
j-3 >= jmin .and. j+3 <= jmax .and. &
|
||||||
|
k-3 >= kmin .and. k+3 <= kmax) then
|
||||||
|
f_rhs(i,j,k) = f_rhs(i,j,k) + eps/cof *( ( &
|
||||||
|
(fh(i-3,j,k)+fh(i+3,j,k)) - &
|
||||||
|
SIX*(fh(i-2,j,k)+fh(i+2,j,k)) + &
|
||||||
|
FIT*(fh(i-1,j,k)+fh(i+1,j,k)) - &
|
||||||
|
TWT* fh(i,j,k) )/dX + &
|
||||||
|
( &
|
||||||
|
(fh(i,j-3,k)+fh(i,j+3,k)) - &
|
||||||
|
SIX*(fh(i,j-2,k)+fh(i,j+2,k)) + &
|
||||||
|
FIT*(fh(i,j-1,k)+fh(i,j+1,k)) - &
|
||||||
|
TWT* fh(i,j,k) )/dY + &
|
||||||
|
( &
|
||||||
|
(fh(i,j,k-3)+fh(i,j,k+3)) - &
|
||||||
|
SIX*(fh(i,j,k-2)+fh(i,j,k+2)) + &
|
||||||
|
FIT*(fh(i,j,k-1)+fh(i,j,k+1)) - &
|
||||||
|
TWT* fh(i,j,k) )/dZ )
|
||||||
|
endif
|
||||||
|
|
||||||
|
enddo
|
||||||
|
enddo
|
||||||
|
enddo
|
||||||
|
endif
|
||||||
|
|
||||||
|
return
|
||||||
|
|
||||||
|
end subroutine lopsided_kodis
|
||||||
|
|
||||||
#elif (ghost_width == 4)
|
#elif (ghost_width == 4)
|
||||||
! sixth order code
|
! sixth order code
|
||||||
! Compute advection terms in right hand sides of field equations
|
! Compute advection terms in right hand sides of field equations
|
||||||
|
|||||||
@@ -16,6 +16,12 @@ include makefile.inc
|
|||||||
.cu.o:
|
.cu.o:
|
||||||
$(Cu) $(CUDA_APP_FLAGS) -c $< -o $@ $(CUDA_LIB_PATH)
|
$(Cu) $(CUDA_APP_FLAGS) -c $< -o $@ $(CUDA_LIB_PATH)
|
||||||
|
|
||||||
|
TwoPunctures.o: TwoPunctures.C
|
||||||
|
${CXX} $(CXXAPPFLAGS) -qopenmp -c $< -o $@
|
||||||
|
|
||||||
|
TwoPunctureABE.o: TwoPunctureABE.C
|
||||||
|
${CXX} $(CXXAPPFLAGS) -qopenmp -c $< -o $@
|
||||||
|
|
||||||
# Input files
|
# Input files
|
||||||
C++FILES = ABE.o Ansorg.o Block.o misc.o monitor.o Parallel.o MPatch.o var.o\
|
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\
|
cgh.o bssn_class.o surface_integral.o ShellPatch.o\
|
||||||
@@ -96,7 +102,7 @@ ABEGPU: $(C++FILES_GPU) $(F90FILES) $(F77FILES) $(AHFDOBJS) $(CUDAFILES)
|
|||||||
$(CLINKER) $(CXXAPPFLAGS) -o $@ $(C++FILES_GPU) $(F90FILES) $(F77FILES) $(AHFDOBJS) $(CUDAFILES) $(LDLIBS)
|
$(CLINKER) $(CXXAPPFLAGS) -o $@ $(C++FILES_GPU) $(F90FILES) $(F77FILES) $(AHFDOBJS) $(CUDAFILES) $(LDLIBS)
|
||||||
|
|
||||||
TwoPunctureABE: $(TwoPunctureFILES)
|
TwoPunctureABE: $(TwoPunctureFILES)
|
||||||
$(CLINKER) $(CXXAPPFLAGS) -o $@ $(TwoPunctureFILES) $(LDLIBS)
|
$(CLINKER) $(CXXAPPFLAGS) -qopenmp -o $@ $(TwoPunctureFILES) $(LDLIBS)
|
||||||
|
|
||||||
clean:
|
clean:
|
||||||
rm *.o ABE ABEGPU TwoPunctureABE make.log -f
|
rm *.o ABE ABEGPU TwoPunctureABE make.log -f
|
||||||
|
|||||||
@@ -15,11 +15,10 @@ LDLIBS = -L${MKLROOT}/lib -lmkl_intel_lp64 -lmkl_sequential -lmkl_core -lifcore
|
|||||||
## -xHost: Optimize for the host CPU architecture (Intel/AMD compatible)
|
## -xHost: Optimize for the host CPU architecture (Intel/AMD compatible)
|
||||||
## -fp-model fast=2: Aggressive floating-point optimizations
|
## -fp-model fast=2: Aggressive floating-point optimizations
|
||||||
## -fma: Enable fused multiply-add instructions
|
## -fma: Enable fused multiply-add instructions
|
||||||
## Note: OpenMP has been disabled (-qopenmp removed) due to performance issues
|
CXXAPPFLAGS = -O3 -xHost -fp-model fast=2 -fma -ipo \
|
||||||
CXXAPPFLAGS = -O3 -xHost -fp-model fast=2 -fma \
|
|
||||||
-Dfortran3 -Dnewc -I${MKLROOT}/include
|
-Dfortran3 -Dnewc -I${MKLROOT}/include
|
||||||
f90appflags = -O3 -xHost -fp-model fast=2 -fma \
|
f90appflags = -O3 -xHost -fp-model fast=2 -fma -ipo \
|
||||||
-fpp -I${MKLROOT}/include
|
-align array64byte -fpp -I${MKLROOT}/include
|
||||||
f90 = ifx
|
f90 = ifx
|
||||||
f77 = ifx
|
f77 = ifx
|
||||||
CXX = icpx
|
CXX = icpx
|
||||||
|
|||||||
@@ -253,19 +253,7 @@ def generate_macrodef_h():
|
|||||||
# Define macro buffer_width
|
# Define macro buffer_width
|
||||||
# number of buffer points for mesh-refinement interfaces
|
# number of buffer points for mesh-refinement interfaces
|
||||||
|
|
||||||
# Calculate ghost_width based on Finite_Diffenence_Method to optimize buffer_width
|
print( "#define buffer_width 6", file=file1 )
|
||||||
if ( input_data.Finite_Diffenence_Method == "2nd-order" ):
|
|
||||||
gw = 2
|
|
||||||
elif ( input_data.Finite_Diffenence_Method == "4th-order" ):
|
|
||||||
gw = 3
|
|
||||||
elif ( input_data.Finite_Diffenence_Method == "6th-order" ):
|
|
||||||
gw = 4
|
|
||||||
elif ( input_data.Finite_Diffenence_Method == "8th-order" ):
|
|
||||||
gw = 5
|
|
||||||
else:
|
|
||||||
gw = 5 # Default conservative value
|
|
||||||
|
|
||||||
print( f"#define buffer_width {gw + 1}", file=file1 )
|
|
||||||
print( file=file1 )
|
print( file=file1 )
|
||||||
|
|
||||||
# Define macro SC_width as buffer_width
|
# Define macro SC_width as buffer_width
|
||||||
@@ -404,17 +392,6 @@ def generate_macrodef_fh():
|
|||||||
print( "# Finite_Difference_Method #define ghost_width setting error!!!", file=file1 )
|
print( "# Finite_Difference_Method #define ghost_width setting error!!!", file=file1 )
|
||||||
print( file=file1 )
|
print( file=file1 )
|
||||||
|
|
||||||
# Define macro DEBUG_NAN_CHECK
|
|
||||||
# 0: off (default), 1: on
|
|
||||||
|
|
||||||
debug_nan_check = getattr(input_data, "Debug_NaN_Check", 0)
|
|
||||||
if debug_nan_check:
|
|
||||||
print( "#define DEBUG_NAN_CHECK 1", file=file1 )
|
|
||||||
print( file=file1 )
|
|
||||||
else:
|
|
||||||
print( "#define DEBUG_NAN_CHECK 0", file=file1 )
|
|
||||||
print( file=file1 )
|
|
||||||
|
|
||||||
# Whether to use a shell-patch grid
|
# Whether to use a shell-patch grid
|
||||||
# use shell or not
|
# use shell or not
|
||||||
|
|
||||||
@@ -537,9 +514,6 @@ def generate_macrodef_fh():
|
|||||||
print( " 6th order: 4", file=file1 )
|
print( " 6th order: 4", file=file1 )
|
||||||
print( " 8th order: 5", file=file1 )
|
print( " 8th order: 5", file=file1 )
|
||||||
print( file=file1 )
|
print( file=file1 )
|
||||||
print( "define DEBUG_NAN_CHECK", file=file1 )
|
|
||||||
print( " 0: off (default), 1: on", file=file1 )
|
|
||||||
print( file=file1 )
|
|
||||||
print( "define WithShell", file=file1 )
|
print( "define WithShell", file=file1 )
|
||||||
print( " use shell or not", file=file1 )
|
print( " use shell or not", file=file1 )
|
||||||
print( file=file1 )
|
print( file=file1 )
|
||||||
|
|||||||
@@ -36,7 +36,6 @@ Equation_Class = "BSSN" ## Evolution Equation: choose
|
|||||||
Initial_Data_Method = "Ansorg-TwoPuncture" ## initial data method: choose "Ansorg-TwoPuncture", "Lousto-Analytical", "Cao-Analytical", "KerrSchild-Analytical"
|
Initial_Data_Method = "Ansorg-TwoPuncture" ## initial data method: choose "Ansorg-TwoPuncture", "Lousto-Analytical", "Cao-Analytical", "KerrSchild-Analytical"
|
||||||
Time_Evolution_Method = "runge-kutta-45" ## time evolution method: choose "runge-kutta-45"
|
Time_Evolution_Method = "runge-kutta-45" ## time evolution method: choose "runge-kutta-45"
|
||||||
Finite_Diffenence_Method = "4th-order" ## finite-difference method: choose "2nd-order", "4th-order", "6th-order", "8th-order"
|
Finite_Diffenence_Method = "4th-order" ## finite-difference method: choose "2nd-order", "4th-order", "6th-order", "8th-order"
|
||||||
Debug_NaN_Check = 0 ## enable NaN checks in compute_rhs_bssn: 0 (off) or 1 (on)
|
|
||||||
|
|
||||||
#################################################
|
#################################################
|
||||||
|
|
||||||
|
|||||||
@@ -10,18 +10,17 @@
|
|||||||
|
|
||||||
import AMSS_NCKU_Input as input_data
|
import AMSS_NCKU_Input as input_data
|
||||||
import subprocess
|
import subprocess
|
||||||
|
import time
|
||||||
## CPU core binding configuration using taskset
|
## CPU core binding configuration using taskset
|
||||||
## taskset ensures all child processes inherit the CPU affinity mask
|
## taskset ensures all child processes inherit the CPU affinity mask
|
||||||
## This forces make and all compiler processes to use only nohz_full cores (4-55, 60-111)
|
## This forces make and all compiler processes to use only nohz_full cores (4-55, 60-111)
|
||||||
## Format: taskset -c 4-55,60-111 ensures processes only run on these cores
|
## Format: taskset -c 4-55,60-111 ensures processes only run on these cores
|
||||||
#NUMACTL_CPU_BIND = "taskset -c 4-55,60-111"
|
NUMACTL_CPU_BIND = "taskset -c 0-111"
|
||||||
NUMACTL_CPU_BIND = ""
|
|
||||||
|
|
||||||
## Build parallelism configuration
|
## Build parallelism configuration
|
||||||
## Use nohz_full cores (4-55, 60-111) for compilation: 52 + 52 = 104 cores
|
## Use nohz_full cores (4-55, 60-111) for compilation: 52 + 52 = 104 cores
|
||||||
## Set make -j to utilize available cores for faster builds
|
## Set make -j to utilize available cores for faster builds
|
||||||
BUILD_JOBS = 14
|
BUILD_JOBS = 104
|
||||||
|
|
||||||
|
|
||||||
##################################################################
|
##################################################################
|
||||||
@@ -153,7 +152,7 @@ def run_ABE():
|
|||||||
## Run the AMSS-NCKU TwoPuncture program TwoPunctureABE
|
## Run the AMSS-NCKU TwoPuncture program TwoPunctureABE
|
||||||
|
|
||||||
def run_TwoPunctureABE():
|
def run_TwoPunctureABE():
|
||||||
|
tp_time1=time.time()
|
||||||
print( )
|
print( )
|
||||||
print( " Running the AMSS-NCKU executable file TwoPunctureABE " )
|
print( " Running the AMSS-NCKU executable file TwoPunctureABE " )
|
||||||
print( )
|
print( )
|
||||||
@@ -180,7 +179,9 @@ def run_TwoPunctureABE():
|
|||||||
print( )
|
print( )
|
||||||
print( " The TwoPunctureABE simulation is finished " )
|
print( " The TwoPunctureABE simulation is finished " )
|
||||||
print( )
|
print( )
|
||||||
|
tp_time2=time.time()
|
||||||
|
et=tp_time2-tp_time1
|
||||||
|
print(f"Used time: {et}")
|
||||||
return
|
return
|
||||||
|
|
||||||
##################################################################
|
##################################################################
|
||||||
|
|||||||
29
parallel_plot_helper.py
Normal file
29
parallel_plot_helper.py
Normal file
@@ -0,0 +1,29 @@
|
|||||||
|
import multiprocessing
|
||||||
|
|
||||||
|
def run_plot_task(task):
|
||||||
|
"""Execute a single plotting task.
|
||||||
|
|
||||||
|
Parameters
|
||||||
|
----------
|
||||||
|
task : tuple
|
||||||
|
A tuple of (function, args_tuple) where function is a callable
|
||||||
|
plotting function and args_tuple contains its arguments.
|
||||||
|
"""
|
||||||
|
func, args = task
|
||||||
|
return func(*args)
|
||||||
|
|
||||||
|
|
||||||
|
def run_plot_tasks_parallel(plot_tasks):
|
||||||
|
"""Execute a list of independent plotting tasks in parallel.
|
||||||
|
|
||||||
|
Uses the 'fork' context to create worker processes so that the main
|
||||||
|
script is NOT re-imported/re-executed in child processes.
|
||||||
|
|
||||||
|
Parameters
|
||||||
|
----------
|
||||||
|
plot_tasks : list of tuples
|
||||||
|
Each element is (function, args_tuple).
|
||||||
|
"""
|
||||||
|
ctx = multiprocessing.get_context('fork')
|
||||||
|
with ctx.Pool() as pool:
|
||||||
|
pool.map(run_plot_task, plot_tasks)
|
||||||
@@ -11,6 +11,8 @@
|
|||||||
import numpy ## numpy for array operations
|
import numpy ## numpy for array operations
|
||||||
import scipy ## scipy for interpolation and signal processing
|
import scipy ## scipy for interpolation and signal processing
|
||||||
import math
|
import math
|
||||||
|
import matplotlib
|
||||||
|
matplotlib.use('Agg') ## use non-interactive backend for multiprocessing safety
|
||||||
import matplotlib.pyplot as plt ## matplotlib for plotting
|
import matplotlib.pyplot as plt ## matplotlib for plotting
|
||||||
import os ## os for system/file operations
|
import os ## os for system/file operations
|
||||||
|
|
||||||
|
|||||||
@@ -8,16 +8,23 @@
|
|||||||
##
|
##
|
||||||
#################################################
|
#################################################
|
||||||
|
|
||||||
|
## Restrict OpenMP to one thread per process so that running
|
||||||
|
## many workers in parallel does not create an O(workers * BLAS_threads)
|
||||||
|
## thread explosion. The variable MUST be set before numpy/scipy
|
||||||
|
## are imported, because the BLAS library reads them only at load time.
|
||||||
|
import os
|
||||||
|
os.environ.setdefault("OMP_NUM_THREADS", "1")
|
||||||
|
|
||||||
import numpy
|
import numpy
|
||||||
import scipy
|
import scipy
|
||||||
|
import matplotlib
|
||||||
|
matplotlib.use('Agg') ## use non-interactive backend for multiprocessing safety
|
||||||
import matplotlib.pyplot as plt
|
import matplotlib.pyplot as plt
|
||||||
from matplotlib.colors import LogNorm
|
from matplotlib.colors import LogNorm
|
||||||
from mpl_toolkits.mplot3d import Axes3D
|
from mpl_toolkits.mplot3d import Axes3D
|
||||||
## import torch
|
## import torch
|
||||||
import AMSS_NCKU_Input as input_data
|
import AMSS_NCKU_Input as input_data
|
||||||
|
|
||||||
import os
|
|
||||||
|
|
||||||
|
|
||||||
#########################################################################################
|
#########################################################################################
|
||||||
|
|
||||||
@@ -192,3 +199,19 @@ def get_data_xy( Rmin, Rmax, n, data0, time, figure_title, figure_outdir ):
|
|||||||
|
|
||||||
####################################################################################
|
####################################################################################
|
||||||
|
|
||||||
|
|
||||||
|
####################################################################################
|
||||||
|
## Allow this module to be run as a standalone script so that each
|
||||||
|
## binary-data plot can be executed in a fresh subprocess whose BLAS
|
||||||
|
## environment variables (set above) take effect before numpy loads.
|
||||||
|
##
|
||||||
|
## Usage: python3 plot_binary_data.py <filename> <binary_outdir> <figure_outdir>
|
||||||
|
####################################################################################
|
||||||
|
|
||||||
|
if __name__ == '__main__':
|
||||||
|
import sys
|
||||||
|
if len(sys.argv) != 4:
|
||||||
|
print(f"Usage: {sys.argv[0]} <filename> <binary_outdir> <figure_outdir>")
|
||||||
|
sys.exit(1)
|
||||||
|
plot_binary_data(sys.argv[1], sys.argv[2], sys.argv[3])
|
||||||
|
|
||||||
|
|||||||
@@ -8,6 +8,8 @@
|
|||||||
#################################################
|
#################################################
|
||||||
|
|
||||||
import numpy ## numpy for array operations
|
import numpy ## numpy for array operations
|
||||||
|
import matplotlib
|
||||||
|
matplotlib.use('Agg') ## use non-interactive backend for multiprocessing safety
|
||||||
import matplotlib.pyplot as plt ## matplotlib for plotting
|
import matplotlib.pyplot as plt ## matplotlib for plotting
|
||||||
from mpl_toolkits.mplot3d import Axes3D ## needed for 3D plots
|
from mpl_toolkits.mplot3d import Axes3D ## needed for 3D plots
|
||||||
import glob
|
import glob
|
||||||
@@ -15,6 +17,9 @@ import os ## operating system utilities
|
|||||||
|
|
||||||
import plot_binary_data
|
import plot_binary_data
|
||||||
import AMSS_NCKU_Input as input_data
|
import AMSS_NCKU_Input as input_data
|
||||||
|
import subprocess
|
||||||
|
import sys
|
||||||
|
import multiprocessing
|
||||||
|
|
||||||
# plt.rcParams['text.usetex'] = True ## enable LaTeX fonts in plots
|
# plt.rcParams['text.usetex'] = True ## enable LaTeX fonts in plots
|
||||||
|
|
||||||
@@ -50,10 +55,40 @@ def generate_binary_data_plot( binary_outdir, figure_outdir ):
|
|||||||
file_list.append(x)
|
file_list.append(x)
|
||||||
print(x)
|
print(x)
|
||||||
|
|
||||||
## Plot each file in the list
|
## Plot each file in parallel using subprocesses.
|
||||||
|
## Each subprocess is a fresh Python process where the BLAS thread-count
|
||||||
|
## environment variables (set at the top of plot_binary_data.py) take
|
||||||
|
## effect before numpy is imported. This avoids the thread explosion
|
||||||
|
## that occurs when multiprocessing.Pool with 'fork' context inherits
|
||||||
|
## already-initialized multi-threaded BLAS from the parent.
|
||||||
|
script = os.path.join( os.path.dirname(__file__), "plot_binary_data.py" )
|
||||||
|
max_workers = min( multiprocessing.cpu_count(), len(file_list) ) if file_list else 0
|
||||||
|
|
||||||
|
running = []
|
||||||
|
failed = []
|
||||||
for filename in file_list:
|
for filename in file_list:
|
||||||
print(filename)
|
print(filename)
|
||||||
plot_binary_data.plot_binary_data(filename, binary_outdir, figure_outdir)
|
proc = subprocess.Popen(
|
||||||
|
[sys.executable, script, filename, binary_outdir, figure_outdir],
|
||||||
|
)
|
||||||
|
running.append( (proc, filename) )
|
||||||
|
## Keep at most max_workers subprocesses active at a time
|
||||||
|
if len(running) >= max_workers:
|
||||||
|
p, fn = running.pop(0)
|
||||||
|
p.wait()
|
||||||
|
if p.returncode != 0:
|
||||||
|
failed.append(fn)
|
||||||
|
|
||||||
|
## Wait for all remaining subprocesses to finish
|
||||||
|
for p, fn in running:
|
||||||
|
p.wait()
|
||||||
|
if p.returncode != 0:
|
||||||
|
failed.append(fn)
|
||||||
|
|
||||||
|
if failed:
|
||||||
|
print( " WARNING: the following binary data plots failed:" )
|
||||||
|
for fn in failed:
|
||||||
|
print( " ", fn )
|
||||||
|
|
||||||
print( )
|
print( )
|
||||||
print( " Binary Data Plot Has been Finished " )
|
print( " Binary Data Plot Has been Finished " )
|
||||||
|
|||||||
Reference in New Issue
Block a user