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677 lines
20 KiB
C++
677 lines
20 KiB
C++
#include "openmc/simulation.h"
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#include "openmc/bank.h"
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#include "openmc/capi.h"
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#include "openmc/container_util.h"
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#include "openmc/eigenvalue.h"
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#include "openmc/error.h"
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#include "openmc/event.h"
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#include "openmc/geometry_aux.h"
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#include "openmc/material.h"
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#include "openmc/message_passing.h"
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#include "openmc/nuclide.h"
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#include "openmc/output.h"
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#include "openmc/particle.h"
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#include "openmc/photon.h"
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#include "openmc/random_lcg.h"
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#include "openmc/settings.h"
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#include "openmc/source.h"
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#include "openmc/state_point.h"
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#include "openmc/timer.h"
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#include "openmc/tallies/derivative.h"
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#include "openmc/tallies/filter.h"
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#include "openmc/tallies/tally.h"
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#include "openmc/tallies/trigger.h"
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#include "openmc/track_output.h"
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#ifdef _OPENMP
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#include <omp.h>
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#endif
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#include "xtensor/xview.hpp"
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#ifdef OPENMC_MPI
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#include <mpi.h>
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#endif
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#include <algorithm>
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#include <string>
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//==============================================================================
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// C API functions
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//==============================================================================
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// OPENMC_RUN encompasses all the main logic where iterations are performed
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// over the batches, generations, and histories in a fixed source or k-eigenvalue
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// calculation.
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int openmc_run()
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{
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openmc::simulation::time_total.start();
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openmc_simulation_init();
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int err = 0;
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int status = 0;
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while (status == 0 && err == 0) {
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err = openmc_next_batch(&status);
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}
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openmc_simulation_finalize();
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openmc::simulation::time_total.stop();
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return err;
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}
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int openmc_simulation_init()
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{
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using namespace openmc;
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// Skip if simulation has already been initialized
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if (simulation::initialized) return 0;
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// Determine how much work each process should do
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calculate_work();
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// Allocate source and fission banks for eigenvalue simulations
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if (settings::run_mode == RunMode::EIGENVALUE) {
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allocate_banks();
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}
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// If doing an event-based simulation, intialize the particle buffer
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// and event queues
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if (settings::event_based) {
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int64_t event_buffer_length = std::min(simulation::work_per_rank,
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settings::max_particles_in_flight);
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init_event_queues(event_buffer_length);
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}
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// Allocate tally results arrays if they're not allocated yet
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for (auto& t : model::tallies) {
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t->init_results();
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}
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// Set up material nuclide index mapping
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for (auto& mat : model::materials) {
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mat->init_nuclide_index();
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}
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// Reset global variables -- this is done before loading state point (as that
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// will potentially populate k_generation and entropy)
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simulation::current_batch = 0;
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simulation::k_generation.clear();
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simulation::entropy.clear();
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simulation::need_depletion_rx = false;
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openmc_reset();
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// If this is a restart run, load the state point data and binary source
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// file
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if (settings::restart_run) {
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load_state_point();
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write_message("Resuming simulation...", 6);
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} else {
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// Only initialize primary source bank for eigenvalue simulations
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if (settings::run_mode == RunMode::EIGENVALUE) {
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initialize_source();
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}
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}
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// If fixed source and using custom source library then need to load
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if (settings::run_mode == RunMode::FIXED_SOURCE &&
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!settings::path_source_library.empty()) {
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load_custom_source_library();
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}
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// Display header
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if (mpi::master) {
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if (settings::run_mode == RunMode::FIXED_SOURCE) {
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header("FIXED SOURCE TRANSPORT SIMULATION", 3);
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} else if (settings::run_mode == RunMode::EIGENVALUE) {
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header("K EIGENVALUE SIMULATION", 3);
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if (settings::verbosity >= 7) print_columns();
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}
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}
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// Set flag indicating initialization is done
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simulation::initialized = true;
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return 0;
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}
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int openmc_simulation_finalize()
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{
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using namespace openmc;
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// Skip if simulation was never run
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if (!simulation::initialized) return 0;
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// Stop active batch timer and start finalization timer
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simulation::time_active.stop();
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simulation::time_finalize.start();
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// Clear material nuclide mapping
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for (auto& mat : model::materials) {
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mat->mat_nuclide_index_.clear();
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}
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// Increment total number of generations
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simulation::total_gen += simulation::current_batch*settings::gen_per_batch;
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#ifdef OPENMC_MPI
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broadcast_results();
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#endif
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// Write tally results to tallies.out
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if (settings::output_tallies && mpi::master) write_tallies();
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// Deactivate all tallies
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for (auto& t : model::tallies) {
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t->active_ = false;
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}
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// If fixed source and using custom source library then need to close
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if (settings::run_mode == RunMode::FIXED_SOURCE &&
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!settings::path_source_library.empty()) {
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close_custom_source_library();
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}
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// Stop timers and show timing statistics
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simulation::time_finalize.stop();
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simulation::time_total.stop();
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if (mpi::master) {
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if (settings::verbosity >= 6) print_runtime();
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if (settings::verbosity >= 4) print_results();
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}
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if (settings::check_overlaps) print_overlap_check();
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// Reset flags
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simulation::need_depletion_rx = false;
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simulation::initialized = false;
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return 0;
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}
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int openmc_next_batch(int* status)
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{
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using namespace openmc;
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using openmc::simulation::current_gen;
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// Make sure simulation has been initialized
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if (!simulation::initialized) {
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set_errmsg("Simulation has not been initialized yet.");
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return OPENMC_E_ALLOCATE;
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}
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initialize_batch();
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// =======================================================================
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// LOOP OVER GENERATIONS
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for (current_gen = 1; current_gen <= settings::gen_per_batch; ++current_gen) {
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initialize_generation();
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// Start timer for transport
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simulation::time_transport.start();
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// Transport loop
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if (settings::event_based) {
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transport_event_based();
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} else {
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transport_history_based();
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}
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// Accumulate time for transport
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simulation::time_transport.stop();
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finalize_generation();
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}
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finalize_batch();
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// Check simulation ending criteria
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if (status) {
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if (simulation::current_batch == settings::n_max_batches) {
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*status = STATUS_EXIT_MAX_BATCH;
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} else if (simulation::satisfy_triggers) {
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*status = STATUS_EXIT_ON_TRIGGER;
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} else {
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*status = STATUS_EXIT_NORMAL;
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}
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}
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return 0;
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}
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bool openmc_is_statepoint_batch() {
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using namespace openmc;
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using openmc::simulation::current_gen;
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if (!simulation::initialized)
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return false;
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else
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return contains(settings::statepoint_batch, simulation::current_batch);
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}
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namespace openmc {
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//==============================================================================
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// Global variables
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//==============================================================================
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namespace simulation {
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int current_batch;
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int current_gen;
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bool initialized {false};
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double keff {1.0};
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double keff_std;
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double k_col_abs {0.0};
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double k_col_tra {0.0};
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double k_abs_tra {0.0};
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double log_spacing;
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int n_lost_particles {0};
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bool need_depletion_rx {false};
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int restart_batch;
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bool satisfy_triggers {false};
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int total_gen {0};
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double total_weight;
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int64_t work_per_rank;
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const RegularMesh* entropy_mesh {nullptr};
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const RegularMesh* ufs_mesh {nullptr};
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std::vector<double> k_generation;
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std::vector<int64_t> work_index;
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} // namespace simulation
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//==============================================================================
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// Non-member functions
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//==============================================================================
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void allocate_banks()
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{
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// Allocate source bank
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simulation::source_bank.resize(simulation::work_per_rank);
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// Allocate fission bank
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init_fission_bank(3*simulation::work_per_rank);
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}
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void initialize_batch()
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{
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// Increment current batch
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++simulation::current_batch;
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if (settings::run_mode == RunMode::FIXED_SOURCE) {
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int b = simulation::current_batch;
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write_message("Simulating batch " + std::to_string(b), 6);
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}
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// Reset total starting particle weight used for normalizing tallies
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simulation::total_weight = 0.0;
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// Determine if this batch is the first inactive or active batch.
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bool first_inactive = false;
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bool first_active = false;
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if (!settings::restart_run) {
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first_inactive = settings::n_inactive > 0 && simulation::current_batch == 1;
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first_active = simulation::current_batch == settings::n_inactive + 1;
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} else if (simulation::current_batch == simulation::restart_batch + 1){
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first_inactive = simulation::restart_batch < settings::n_inactive;
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first_active = !first_inactive;
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}
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// Manage active/inactive timers and activate tallies if necessary.
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if (first_inactive) {
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simulation::time_inactive.start();
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} else if (first_active) {
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simulation::time_inactive.stop();
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simulation::time_active.start();
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for (auto& t : model::tallies) {
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t->active_ = true;
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}
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}
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// Add user tallies to active tallies list
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setup_active_tallies();
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}
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void finalize_batch()
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{
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// Reduce tallies onto master process and accumulate
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simulation::time_tallies.start();
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accumulate_tallies();
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simulation::time_tallies.stop();
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// Reset global tally results
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if (simulation::current_batch <= settings::n_inactive) {
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xt::view(simulation::global_tallies, xt::all()) = 0.0;
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simulation::n_realizations = 0;
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}
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// Check_triggers
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if (mpi::master) check_triggers();
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#ifdef OPENMC_MPI
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MPI_Bcast(&simulation::satisfy_triggers, 1, MPI_C_BOOL, 0, mpi::intracomm);
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#endif
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if (simulation::satisfy_triggers || (settings::trigger_on &&
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simulation::current_batch == settings::n_max_batches)) {
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settings::statepoint_batch.insert(simulation::current_batch);
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}
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// Write out state point if it's been specified for this batch and is not
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// a CMFD run instance
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if (contains(settings::statepoint_batch, simulation::current_batch)
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&& !settings::cmfd_run) {
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if (contains(settings::sourcepoint_batch, simulation::current_batch)
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&& settings::source_write && !settings::source_separate) {
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bool b = (settings::run_mode == RunMode::EIGENVALUE);
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openmc_statepoint_write(nullptr, &b);
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} else {
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bool b = false;
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openmc_statepoint_write(nullptr, &b);
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}
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}
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if (settings::run_mode == RunMode::EIGENVALUE) {
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// Write out a separate source point if it's been specified for this batch
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if (contains(settings::sourcepoint_batch, simulation::current_batch)
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&& settings::source_write && settings::source_separate) {
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write_source_point(nullptr);
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}
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// Write a continously-overwritten source point if requested.
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if (settings::source_latest) {
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auto filename = settings::path_output + "source.h5";
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write_source_point(filename.c_str());
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}
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}
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}
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void initialize_generation()
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{
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if (settings::run_mode == RunMode::EIGENVALUE) {
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// Clear out the fission bank
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simulation::fission_bank.resize(0);
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// Count source sites if using uniform fission source weighting
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if (settings::ufs_on) ufs_count_sites();
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// Store current value of tracklength k
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simulation::keff_generation = simulation::global_tallies(
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GlobalTally::K_TRACKLENGTH, TallyResult::VALUE);
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}
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}
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void finalize_generation()
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{
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auto& gt = simulation::global_tallies;
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// Update global tallies with the accumulation variables
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if (settings::run_mode == RunMode::EIGENVALUE) {
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gt(GlobalTally::K_COLLISION, TallyResult::VALUE) += global_tally_collision;
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gt(GlobalTally::K_ABSORPTION, TallyResult::VALUE) += global_tally_absorption;
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gt(GlobalTally::K_TRACKLENGTH, TallyResult::VALUE) += global_tally_tracklength;
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}
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gt(GlobalTally::LEAKAGE, TallyResult::VALUE) += global_tally_leakage;
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// reset tallies
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if (settings::run_mode == RunMode::EIGENVALUE) {
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global_tally_collision = 0.0;
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global_tally_absorption = 0.0;
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global_tally_tracklength = 0.0;
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}
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global_tally_leakage = 0.0;
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if (settings::run_mode == RunMode::EIGENVALUE) {
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// If using shared memory, stable sort the fission bank (by parent IDs)
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// so as to allow for reproducibility regardless of which order particles
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// are run in.
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sort_fission_bank();
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// Distribute fission bank across processors evenly
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synchronize_bank();
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// Calculate shannon entropy
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if (settings::entropy_on) shannon_entropy();
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// Collect results and statistics
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calculate_generation_keff();
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calculate_average_keff();
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// Write generation output
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if (mpi::master && settings::verbosity >= 7) {
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print_generation();
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}
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}
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}
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void initialize_history(Particle& p, int64_t index_source)
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{
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// set defaults
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if (settings::run_mode == RunMode::FIXED_SOURCE) {
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// initialize random number seed
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int64_t id = (simulation::total_gen + overall_generation() - 1)*settings::n_particles +
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simulation::work_index[mpi::rank] + index_source;
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uint64_t seed = init_seed(id, STREAM_SOURCE);
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// sample from external source distribution or custom library then set
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auto site = sample_external_source(&seed);
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p.from_source(&site);
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} else if (settings::run_mode == RunMode::EIGENVALUE) {
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// set defaults for eigenvalue simulations from primary bank
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p.from_source(&simulation::source_bank[index_source - 1]);
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}
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p.current_work_ = index_source;
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// set identifier for particle
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p.id_ = simulation::work_index[mpi::rank] + index_source;
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// set progeny count to zero
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p.n_progeny_ = 0;
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// set random number seed
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int64_t particle_seed = (simulation::total_gen + overall_generation() - 1)
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* settings::n_particles + p.id_;
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init_particle_seeds(particle_seed, p.seeds_);
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// set particle trace
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p.trace_ = false;
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if (simulation::current_batch == settings::trace_batch &&
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simulation::current_gen == settings::trace_gen &&
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p.id_ == settings::trace_particle) p.trace_ = true;
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// Set particle track.
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p.write_track_ = false;
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if (settings::write_all_tracks) {
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p.write_track_ = true;
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} else if (settings::track_identifiers.size() > 0) {
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for (const auto& t : settings::track_identifiers) {
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if (simulation::current_batch == t[0] &&
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simulation::current_gen == t[1] &&
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p.id_ == t[2]) {
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p.write_track_ = true;
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break;
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}
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}
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}
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// Display message if high verbosity or trace is on
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if (settings::verbosity >= 9 || p.trace_) {
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write_message("Simulating Particle " + std::to_string(p.id_));
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}
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// Add paricle's starting weight to count for normalizing tallies later
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#pragma omp atomic
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simulation::total_weight += p.wgt_;
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initialize_history_partial(p);
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}
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void initialize_history_partial(Particle& p)
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{
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// Force calculation of cross-sections by setting last energy to zero
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if (settings::run_CE) {
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for (auto& micro : p.neutron_xs_) micro.last_E = 0.0;
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}
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// Prepare to write out particle track.
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if (p.write_track_) add_particle_track(p);
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// Every particle starts with no accumulated flux derivative.
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if (!model::active_tallies.empty())
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{
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p.flux_derivs_.resize(model::tally_derivs.size(), 0.0);
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std::fill(p.flux_derivs_.begin(), p.flux_derivs_.end(), 0.0);
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}
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// Allocate space for tally filter matches
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p.filter_matches_.resize(model::tally_filters.size());
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}
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int overall_generation()
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{
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using namespace simulation;
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return settings::gen_per_batch*(current_batch - 1) + current_gen;
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}
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void calculate_work()
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{
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// Determine minimum amount of particles to simulate on each processor
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int64_t min_work = settings::n_particles / mpi::n_procs;
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// Determine number of processors that have one extra particle
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int64_t remainder = settings::n_particles % mpi::n_procs;
|
|
|
|
int64_t i_bank = 0;
|
|
simulation::work_index.resize(mpi::n_procs + 1);
|
|
simulation::work_index[0] = 0;
|
|
for (int i = 0; i < mpi::n_procs; ++i) {
|
|
// Number of particles for rank i
|
|
int64_t work_i = i < remainder ? min_work + 1 : min_work;
|
|
|
|
// Set number of particles
|
|
if (mpi::rank == i) simulation::work_per_rank = work_i;
|
|
|
|
// Set index into source bank for rank i
|
|
i_bank += work_i;
|
|
simulation::work_index[i + 1] = i_bank;
|
|
}
|
|
}
|
|
|
|
#ifdef OPENMC_MPI
|
|
void broadcast_results() {
|
|
// Broadcast tally results so that each process has access to results
|
|
for (auto& t : model::tallies) {
|
|
// Create a new datatype that consists of all values for a given filter
|
|
// bin and then use that to broadcast. This is done to minimize the
|
|
// chance of the 'count' argument of MPI_BCAST exceeding 2**31
|
|
auto& results = t->results_;
|
|
|
|
auto shape = results.shape();
|
|
int count_per_filter = shape[1] * shape[2];
|
|
MPI_Datatype result_block;
|
|
MPI_Type_contiguous(count_per_filter, MPI_DOUBLE, &result_block);
|
|
MPI_Type_commit(&result_block);
|
|
MPI_Bcast(results.data(), shape[0], result_block, 0, mpi::intracomm);
|
|
MPI_Type_free(&result_block);
|
|
}
|
|
|
|
// Also broadcast global tally results
|
|
auto& gt = simulation::global_tallies;
|
|
MPI_Bcast(gt.data(), gt.size(), MPI_DOUBLE, 0, mpi::intracomm);
|
|
|
|
// These guys are needed so that non-master processes can calculate the
|
|
// combined estimate of k-effective
|
|
double temp[] {simulation::k_col_abs, simulation::k_col_tra,
|
|
simulation::k_abs_tra};
|
|
MPI_Bcast(temp, 3, MPI_DOUBLE, 0, mpi::intracomm);
|
|
simulation::k_col_abs = temp[0];
|
|
simulation::k_col_tra = temp[1];
|
|
simulation::k_abs_tra = temp[2];
|
|
}
|
|
|
|
#endif
|
|
|
|
void free_memory_simulation()
|
|
{
|
|
simulation::k_generation.clear();
|
|
simulation::entropy.clear();
|
|
}
|
|
|
|
void transport_history_based_single_particle(Particle& p)
|
|
{
|
|
while (true) {
|
|
p.event_calculate_xs();
|
|
p.event_advance();
|
|
if (p.collision_distance_ > p.boundary_.distance) {
|
|
p.event_cross_surface();
|
|
} else {
|
|
p.event_collide();
|
|
}
|
|
p.event_revive_from_secondary();
|
|
if (!p.alive_)
|
|
break;
|
|
}
|
|
p.event_death();
|
|
}
|
|
|
|
void transport_history_based()
|
|
{
|
|
#pragma omp parallel for schedule(runtime)
|
|
for (int64_t i_work = 1; i_work <= simulation::work_per_rank; ++i_work) {
|
|
Particle p;
|
|
initialize_history(p, i_work);
|
|
transport_history_based_single_particle(p);
|
|
}
|
|
}
|
|
|
|
void transport_event_based()
|
|
{
|
|
int64_t remaining_work = simulation::work_per_rank;
|
|
int64_t source_offset = 0;
|
|
|
|
// To cap the total amount of memory used to store particle object data, the
|
|
// number of particles in flight at any point in time can bet set. In the case
|
|
// that the maximum in flight particle count is lower than the total number
|
|
// of particles that need to be run this iteration, the event-based transport
|
|
// loop is executed multiple times until all particles have been completed.
|
|
while (remaining_work > 0) {
|
|
// Figure out # of particles to run for this subiteration
|
|
int64_t n_particles = std::min(remaining_work, settings::max_particles_in_flight);
|
|
|
|
// Initialize all particle histories for this subiteration
|
|
process_init_events(n_particles, source_offset);
|
|
|
|
// Event-based transport loop
|
|
while (true) {
|
|
// Determine which event kernel has the longest queue
|
|
int64_t max = std::max({
|
|
simulation::calculate_fuel_xs_queue.size(),
|
|
simulation::calculate_nonfuel_xs_queue.size(),
|
|
simulation::advance_particle_queue.size(),
|
|
simulation::surface_crossing_queue.size(),
|
|
simulation::collision_queue.size()});
|
|
|
|
// Execute event with the longest queue
|
|
if (max == 0) {
|
|
break;
|
|
} else if (max == simulation::calculate_fuel_xs_queue.size()) {
|
|
process_calculate_xs_events(simulation::calculate_fuel_xs_queue);
|
|
} else if (max == simulation::calculate_nonfuel_xs_queue.size()) {
|
|
process_calculate_xs_events(simulation::calculate_nonfuel_xs_queue);
|
|
} else if (max == simulation::advance_particle_queue.size()) {
|
|
process_advance_particle_events();
|
|
} else if (max == simulation::surface_crossing_queue.size()) {
|
|
process_surface_crossing_events();
|
|
} else if (max == simulation::collision_queue.size()) {
|
|
process_collision_events();
|
|
}
|
|
}
|
|
|
|
// Execute death event for all particles
|
|
process_death_events(n_particles);
|
|
|
|
// Adjust remaining work and source offset variables
|
|
remaining_work -= n_particles;
|
|
source_offset += n_particles;
|
|
}
|
|
}
|
|
|
|
} // namespace openmc
|