[2055] | 1 | #!/usr/bin/env python |
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[2072] | 2 | ### |
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| 3 | # Same as run_parallel_sw_merimbula.py, but uses pmesh_divide_metis |
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| 4 | # to partition the mesh. |
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[2055] | 5 | ######################################################### |
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| 6 | # |
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| 7 | # Main file for parallel mesh testing. |
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| 8 | # |
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| 9 | # This is a modification of the run_parallel_advection.py |
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| 10 | # file. |
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| 11 | # |
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| 12 | # *) The test files currently avaliable are of the form |
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| 13 | # test*.out, eg test_5l_4c.out. The term infront of the l |
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| 14 | # corresponds to the number of levels of refinement |
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| 15 | # required to build the grid, i.e. a higher number |
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| 16 | # corresponds to a finer grid. The term infront of the c |
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| 17 | # corresponds to the number of processors. |
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| 18 | # |
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| 19 | # *) The (new) files that have been added to manage the |
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| 20 | # grid partitioning are |
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| 21 | # +) mg2ga.py: read in the test files. |
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| 22 | # +) pmesh_divide.py: subdivide a pmesh |
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| 23 | # +) build_submesh.py: build the submeshes on the host |
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| 24 | # processor. |
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| 25 | # +) build_local.py: build the GA mesh datastructure |
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| 26 | # on each processor. |
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| 27 | # +) build_commun.py: handle the communication between |
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| 28 | # the host and processors |
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| 29 | # |
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| 30 | # *) Things still to do: |
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| 31 | # +) Overlap the communication and computation: The |
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| 32 | # communication routines in build_commun.py should be |
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| 33 | # interdispersed in the build_submesh.py and build_local.py |
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| 34 | # files. This will overlap the communication and |
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| 35 | # computation and will be far more efficient. This should |
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| 36 | # be done after more testing and there more confidence in |
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| 37 | # the subpartioning. |
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| 38 | # +) Much more testing especially with large numbers of |
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| 39 | # processors. |
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| 40 | # Authors: Linda Stals, Steve Roberts and Matthew Hardy, |
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| 41 | # June 2005 |
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| 42 | # |
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| 43 | # |
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| 44 | # |
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| 45 | ######################################################### |
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| 46 | import sys |
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| 47 | import pypar # The Python-MPI interface |
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| 48 | import time |
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| 49 | |
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| 50 | |
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| 51 | from os import sep |
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| 52 | sys.path.append('..'+sep+'pyvolution') |
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| 53 | |
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| 54 | from Numeric import array |
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| 55 | # pmesh |
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| 56 | |
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| 57 | #from shallow_water import Domain |
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| 58 | |
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| 59 | from shallow_water import Domain |
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| 60 | from parallel_shallow_water import Parallel_Domain |
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| 61 | |
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| 62 | # mesh partition routines |
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| 63 | |
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| 64 | from pmesh_divide import pmesh_divide_metis |
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| 65 | from build_submesh import * |
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| 66 | from build_local import * |
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| 67 | from build_commun import * |
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| 68 | from pmesh2domain import pmesh_to_domain_instance |
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| 69 | |
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| 70 | # read in the processor information |
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| 71 | |
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| 72 | numprocs = pypar.size() |
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| 73 | myid = pypar.rank() |
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| 74 | processor_name = pypar.Get_processor_name() |
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| 75 | |
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| 76 | #------- |
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| 77 | # Domain |
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| 78 | rect = zeros( 4, Float) # Buffer for results |
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| 79 | |
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| 80 | class Set_Stage: |
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| 81 | """Set an initial condition with constant water height, for x<x0 |
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| 82 | """ |
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| 83 | |
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| 84 | def __init__(self, x0=0.25, x1=0.5, h=1.0): |
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| 85 | self.x0 = x0 |
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| 86 | self.x1 = x1 |
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| 87 | self.h = h |
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| 88 | |
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| 89 | def __call__(self, x, y): |
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| 90 | return self.h*((x>self.x0)&(x<self.x1)) |
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| 91 | |
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| 92 | |
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| 93 | if myid == 0: |
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| 94 | |
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| 95 | # read in the test files |
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| 96 | |
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| 97 | # filename = 'test-100.tsh' |
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| 98 | filename = 'merimbula_10785_1.tsh' |
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| 99 | |
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| 100 | domain_full = pmesh_to_domain_instance(filename, Domain) |
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| 101 | |
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| 102 | # domain_full.set_quantity('stage', Set_Stage(200.0,300.0,1.0)) |
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| 103 | domain_full.set_quantity('stage', Set_Stage(756000.0,756500.0,2.0)) |
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| 104 | |
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[2072] | 105 | # Note the different arguments compared with pmesh_divide, |
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| 106 | # pmesh_divide_steve etc. |
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[2090] | 107 | |
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[2055] | 108 | nodes, triangles, boundary, triangles_per_proc, quantities = \ |
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| 109 | pmesh_divide_metis(domain_full, numprocs) |
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| 110 | |
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| 111 | rect = array(domain_full.xy_extent, Float) |
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| 112 | |
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| 113 | submesh = build_submesh(nodes, triangles, boundary,\ |
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| 114 | quantities, triangles_per_proc) |
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| 115 | |
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| 116 | # send the mesh partition to the appropriate processor |
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| 117 | |
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| 118 | for p in range(1, numprocs): |
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| 119 | send_submesh(submesh, triangles_per_proc, p) |
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| 120 | |
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| 121 | hostmesh = extract_hostmesh(submesh) |
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| 122 | points, vertices, boundary, quantities, ghost_recv_dict, full_send_dict = \ |
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| 123 | build_local_mesh(hostmesh, 0, triangles_per_proc[0], numprocs) |
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| 124 | |
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| 125 | # read in the mesh partition that belongs to this |
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| 126 | # processor (note that the information is in the |
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| 127 | # correct form for the GA data structure |
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| 128 | |
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| 129 | else: |
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| 130 | points, vertices, boundary, quantities, ghost_recv_dict, full_send_dict \ |
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| 131 | = rec_submesh(0) |
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| 132 | |
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| 133 | #if myid == 0: |
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| 134 | # print 'ghost' |
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| 135 | # print ghost_recv_dict |
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| 136 | #processor_name |
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| 137 | #if myid == 0: |
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| 138 | # print 'full' |
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| 139 | # print full_send_dict |
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| 140 | |
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| 141 | |
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| 142 | pypar.broadcast(rect,0) |
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| 143 | #print rect |
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| 144 | |
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| 145 | domain = Parallel_Domain(points, vertices, boundary, |
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| 146 | full_send_dict = full_send_dict, |
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| 147 | ghost_recv_dict = ghost_recv_dict) |
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| 148 | |
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| 149 | |
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| 150 | try: |
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| 151 | domain.initialise_visualiser(rect=rect) |
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| 152 | #domain.visualiser.coloring['stage'] = True |
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| 153 | domain.visualiser.scale_z['stage'] = 0.2 |
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| 154 | domain.visualiser.scale_z['elevation'] = 0.05 |
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| 155 | except: |
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| 156 | print 'No visualiser' |
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| 157 | |
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| 158 | |
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| 159 | domain.default_order = 1 |
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| 160 | |
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| 161 | #Boundaries |
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| 162 | from parallel_shallow_water import Transmissive_boundary, Reflective_boundary |
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| 163 | |
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| 164 | T = Transmissive_boundary(domain) |
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| 165 | R = Reflective_boundary(domain) |
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| 166 | domain.set_boundary( {'outflow': R, 'inflow': R, 'inner':R, 'exterior': R, 'open':R} ) |
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| 167 | |
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| 168 | |
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| 169 | domain.set_quantity('stage', quantities['stage']) |
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| 170 | domain.set_quantity('elevation', quantities['elevation']) |
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| 171 | |
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| 172 | #domain.store = True |
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| 173 | #domain.filename = 'merimbula-%d' %domain.processor |
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| 174 | |
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| 175 | #--------- |
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| 176 | # Evolution |
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| 177 | t0 = time.time() |
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| 178 | |
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| 179 | print 'Processor %d on %s: No of elements %d'%(domain.processor,processor_name,domain.number_of_elements) |
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| 180 | yieldstep = 0.05 |
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| 181 | finaltime = 500.0 |
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| 182 | |
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[2090] | 183 | yieldstep = 1 |
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| 184 | finaltime = 30 |
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| 185 | |
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[2055] | 186 | #yieldstep = 1 |
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| 187 | #finaltime = 1 |
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| 188 | #processor_name |
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| 189 | for t in domain.evolve(yieldstep = yieldstep, finaltime = finaltime): |
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| 190 | if myid == 0: |
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| 191 | domain.write_time() |
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| 192 | #print 'Processor %d, Integral of stage %d'%\ |
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| 193 | # (domain.processor,domain.quantities['stage'].get_integral()) |
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| 194 | |
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| 195 | |
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| 196 | #print 'P%d: That took %.2f seconds' %(myid, time.time()-t0) |
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| 197 | #print 'P%d: Communication time %.2f seconds' %(myid, domain.communication_time) |
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| 198 | #print 'P%d: Reduction Communication time %.2f seconds' %(myid, domain.communication_reduce_time) |
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| 199 | #print 'P%d: Broadcast time %.2f seconds' %(myid, domain.communication_broadcast_time) |
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| 200 | |
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| 201 | |
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| 202 | |
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| 203 | if myid == 0: |
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| 204 | print 'That took %.2f seconds' %(time.time()-t0) |
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| 205 | print 'Communication time %.2f seconds'%domain.communication_time |
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| 206 | print 'Reduction Communication time %.2f seconds'%domain.communication_reduce_time |
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| 207 | print 'Broadcast time %.2f seconds'%domain.communication_broadcast_time |
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