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LiebLin_DSF_MosesState_par_Run.cc 5.1KB

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  1. /**********************************************************
  2. This software is part of J.-S. Caux's ABACUS library.
  3. Copyright (c) J.-S. Caux.
  4. -----------------------------------------------------------
  5. File: LiebLin_DSF_par.cc
  6. Purpose: Parallel version of ABACUS using MPICH.
  7. ***********************************************************/
  8. #include "ABACUS.h"
  9. #include "mpi.h"
  10. using namespace std;
  11. using namespace ABACUS;
  12. int main(int argc, char *argv[])
  13. {
  14. char whichDSF;
  15. DP c_int, L;
  16. int N, Nl, DIl, DIr, iKmin, iKmax, Max_Secs, supercycle_time, paralevel;
  17. DP target_sumrule = 1.0e+6; // effectively deactivated here
  18. bool refine = true; // always true for parallel mode
  19. DP kBT = 0.0; // dummy
  20. if (argc < 13) { // provide some info
  21. cout << endl << "Welcome to ABACUS\t(copyright J.-S. Caux)." << endl;
  22. cout << endl << "Usage of LiebLin_DSF_MosesState_par_Run executable: " << endl;
  23. cout << endl << "This function runs ABACUS in parallel mode, starting from a preexisting "
  24. "serial run (obtained using the LiebLin_DSF executable) using the same model parameters." << endl;
  25. cout << endl << "Provide the following arguments:" << endl << endl;
  26. cout << "char whichDSF \t\t Which structure factor should be calculated ? Options are: "
  27. "d for rho rho, g for psi psi{dagger}, o for psi{dagger} psi" << endl;
  28. cout << "DP c_int \t\t Value of the interaction parameter: use positive real values only" << endl;
  29. cout << "DP L \t\t\t Length of the system: use positive real values only" << endl;
  30. cout << "int N \t\t\t Number of particles: use positive integer values only" << endl;
  31. cout << "int Nl \t\t\t Number of particles in left Fermi sea (Nr is then N - Nl)" << endl;
  32. cout << "int DIl \t\t shift of left sea as compared to its ground state position" << endl;
  33. cout << "int DIr \t\t shift of right sea as compared to its ground state position" << endl;
  34. cout << "int iKmin" << endl << "int iKmax \t\t Min and max momentum integers to scan over: "
  35. "recommended values: -2*N and 2*N" << endl;
  36. cout << "int paralevel" << endl;
  37. cout << "rank[i], nr_processors[i] \t rank and nr_processors of each earlier paralevels." << endl;
  38. cout << "int Max_Secs \t\t Allowed computational time: (in seconds)" << endl;
  39. cout << "int supercycle_time \t\t time for one supercycle (in seconds)" << endl;
  40. return(0);
  41. }
  42. //else { // correct nr of arguments
  43. int n = 1;
  44. whichDSF = *argv[n++];
  45. c_int = atof(argv[n++]);
  46. L = atof(argv[n++]);
  47. N = atoi(argv[n++]);
  48. Nl = atoi(argv[n++]);
  49. DIl = atoi(argv[n++]);
  50. DIr = atoi(argv[n++]);
  51. iKmin = atoi(argv[n++]);
  52. iKmax = atoi(argv[n++]);
  53. paralevel = atoi(argv[n++]); // paralevel == 1 means that we have one layer of parallelization, so no previous rank and nr_processors to specify
  54. if (argc != 13 + 2*(paralevel - 1)) ABACUSerror("Wrong nr of arguments in LiebLin_DSF_par_Prepare.");
  55. Vect<int> rank_lower_paralevels(paralevel - 1);
  56. Vect<int> nr_processors_lower_paralevels(paralevel - 1);
  57. for (int i = 0; i < paralevel - 1; ++i) {
  58. rank_lower_paralevels[i] = atoi(argv[n++]);
  59. nr_processors_lower_paralevels[i] = atoi(argv[n++]);
  60. }
  61. Max_Secs = atoi(argv[n++]);
  62. supercycle_time = atoi(argv[n++]);
  63. if (Max_Secs <= supercycle_time) ABACUSerror("Please allow more time in LiebLin_DSF_par_Run.");
  64. MPI::Init(argc, argv);
  65. DP tstart = MPI::Wtime();
  66. int rank_here = MPI::COMM_WORLD.Get_rank();
  67. int nr_processors_here = MPI::COMM_WORLD.Get_size();
  68. Vect<int> rank (paralevel);
  69. Vect<int> nr_processors (paralevel);
  70. for (int i = 0; i < paralevel - 1; ++i) {
  71. rank[i] = rank_lower_paralevels[i];
  72. nr_processors[i] = nr_processors_lower_paralevels[i];
  73. }
  74. rank[paralevel-1] = rank_here;
  75. nr_processors[paralevel-1] = nr_processors_here;
  76. if (nr_processors_here < 2) ABACUSerror("Give at least 2 processors to ABACUS parallel !");
  77. refine = true;
  78. // ASSUMPTION: preexisting files (raw, thr, ...) exist for the run.
  79. DP tnow = MPI::Wtime();
  80. // Define the Moses state:
  81. LiebLin_Bethe_State MosesState (c_int, L, N);
  82. // Split the sea:
  83. for (int i = 0; i < Nl; ++i) MosesState.Ix2[i] += 2 * DIl;
  84. for (int i = Nl; i < N; ++i) MosesState.Ix2[i] += 2 * DIr;
  85. MosesState.Compute_All (true);
  86. // Handy default name:
  87. stringstream defaultScanStatename_strstream;
  88. defaultScanStatename_strstream << "Moses_Nl_" << Nl << "_DIl_" << DIl << "_DIr_" << DIr;
  89. string defaultScanStatename = defaultScanStatename_strstream.str();
  90. MPI_Barrier (MPI::COMM_WORLD);
  91. while (tnow - tstart < Max_Secs - supercycle_time - 120) { // space for one more supercycle, + 2 minutes safety
  92. // Barrier synchronization, to make sure other processes wait for process of rank 0
  93. // to have finished splitting up the thr file into pieces before starting:
  94. MPI_Barrier (MPI::COMM_WORLD);
  95. // then everybody gets going on their own chunk !
  96. Scan_LiebLin (whichDSF, MosesState, defaultScanStatename, iKmin, iKmax, supercycle_time,
  97. target_sumrule, refine, paralevel, rank, nr_processors);
  98. // Another barrier synchronization
  99. MPI_Barrier (MPI::COMM_WORLD);
  100. tnow = MPI::Wtime();
  101. } // while (tnow - tstart...
  102. MPI::Finalize();
  103. return(0);
  104. }