Added graficToDensity conversion. Added missing getBoxsize() method. Fixed grafic generation
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@ -123,6 +123,9 @@ class _PySimulationAdaptor(PySimulationBase):
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def __init__(self,sim):
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self.simu = sim
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def getBoxsize(self):
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return self.simu.BoxSize
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def getPositions(self):
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return self.simu.positions
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@ -7,7 +7,7 @@ def writeGrafic(filename, field, BoxSize, scalefac, **cosmo):
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checkPoint = 4*11
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Nx,Ny,Nz = field.shape
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delta = BoxSize/Nx
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delta = BoxSize/Nx/cosmo['h']
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bad = 0.0
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f.write(struct.pack("IIIIffffffffI", checkPoint,
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@ -49,13 +49,16 @@ def run_generation(input_borg, a_borg, a_ic, **cosmo):
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# Generate vel
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vel.append((psi*velmul).astype(np.float32))
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return posx,vel,N,L,a_ic
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density = np.fft.irfftn(density_hat*D1_0)*(N/L)**3
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return posx,vel,density,N,L,a_ic
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def write_icfiles(*generated_ic, **cosmo):
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"""Write the initial conditions from the tuple returned by run_generation"""
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posx,vel,N,L,a_ic = generated_ic
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posx,vel,density,N,L,a_ic = generated_ic
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ct.simpleWriteGadget("borg.gad", posx, velocities=vel, boxsize=L, Hubble=cosmo['h'], Omega_M=cosmo['omega_M_0'], time=a_ic)
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for i,c in enumerate(['x','y','z']):
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ct.writeGrafic("borg.ic_velc%s" % c, vel[i].reshape((N,N,N)), L, a_ic, **cosmo)
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ct.writeGrafic("ic_velc%s" % c, vel[i].reshape((N,N,N)), L, a_ic, **cosmo)
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ct.writeGrafic("ic_deltab", density, L, a_ic, **cosmo)
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@ -42,6 +42,8 @@ if (HDF5_FOUND)
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add_executable(gadgetToArray gadgetToArray.cpp)
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target_link_libraries(gadgetToArray ${tolink})
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add_executable(graficToDensity graficToDensity.cpp)
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target_link_libraries(graficToDensity ${tolink})
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endif (HDF5_FOUND)
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@ -88,3 +90,4 @@ endif (Boost_FOUND)
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add_executable(gadgetToDensity gadgetToDensity.cpp)
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target_link_libraries(gadgetToDensity ${tolink})
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72
sample/graficToDensity.cpp
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72
sample/graficToDensity.cpp
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@ -0,0 +1,72 @@
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#include <cmath>
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#include <iostream>
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#include <cstdlib>
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#include <boost/multi_array.hpp>
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#include <H5Cpp.h>
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#include "hdf5_array.hpp"
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#include "miniargs.hpp"
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#include "fortran.hpp"
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using namespace std;
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using namespace CosmoTool;
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//#define GRAFIC_GUILHEM
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int main(int argc, char **argv)
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{
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uint32_t res;
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char *fname;
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int id;
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MiniArgDesc desc[] = {
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{ "GRAFIC", &fname, MINIARG_STRING },
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{ 0, 0, MINIARG_NULL }
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};
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if (!parseMiniArgs(argc, argv, desc))
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return 1;
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UnformattedRead ur(fname);
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ur.beginCheckpoint();
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int32_t nx = ur.readInt32();
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int32_t ny = ur.readInt32();
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int32_t nz = ur.readInt32();
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float dx = ur.readReal32();
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float xo = ur.readReal32();
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float yo = ur.readReal32();
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float zo = ur.readReal32();
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float astart = ur.readReal32();
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float omega_m = ur.readReal32();
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float omega_nu = ur.readReal32();
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float h0 = ur.readReal32();
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#ifdef GRAFIC_GUILHEM
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float w0 = ur.readReal32();
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#endif
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ur.endCheckpoint();
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cout << "Grafic file: Nx=" << nx << " Ny=" << ny << " Nz=" << nz << endl;
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cout << "a_start = " << astart << endl;
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cout << "z_start = " << 1/astart - 1 << endl;
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cout << "L = " << nx*dx << endl;
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boost::multi_array<float, 3> density(boost::extents[nx][ny][nz]);
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for (int32_t iz = 0; iz < nz; iz++)
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{
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ur.beginCheckpoint();
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for (int32_t iy = 0; iy < ny; iy++)
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{
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for (int32_t ix = 0; ix < nx; ix++)
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{
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density[ix][iy][iz] = ur.readReal32();
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}
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}
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ur.endCheckpoint();
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}
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H5::H5File f("density.h5", H5F_ACC_TRUNC);
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hdf5_write_array(f, "density", density);
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return 0;
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}
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