opm-simulators
ReservoirCouplingMaster.hpp
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2  Copyright 2024 Equinor ASA
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19 
20 #ifndef OPM_RESERVOIR_COUPLING_MASTER_HPP
21 #define OPM_RESERVOIR_COUPLING_MASTER_HPP
22 
23 #include <opm/simulators/utils/ParallelCommunication.hpp>
24 #include <opm/simulators/flow/rescoup/ReservoirCoupling.hpp>
25 #include <opm/simulators/flow/rescoup/ReservoirCouplingMasterReportStep.hpp>
26 #include <opm/simulators/flow/rescoup/ReservoirCouplingTimeStepper.hpp>
27 #include <opm/input/eclipse/Schedule/Schedule.hpp>
28 #include <opm/common/OpmLog/OpmLog.hpp>
29 
30 #include <mpi.h>
31 
32 #include <filesystem>
33 #include <vector>
34 
35 namespace Opm {
36 
37 template <class Scalar>
39 public:
40  using MessageTag = ReservoirCoupling::MessageTag;
47 
49  const Parallel::Communication &comm,
50  const Schedule &schedule,
51  int argc, char **argv
52  );
53 
54  bool activated() { return this->activated_; }
55  void addSlaveCommunicator(MPI_Comm comm) {
56  this->master_slave_comm_.push_back(comm);
57  }
58  void addSlaveName(const std::string &name) { this->slave_names_.push_back(name); }
59  void addSlaveActivationDate(double date) { this->slave_activation_dates_.push_back(date); }
60  void addSlaveStartDate(std::time_t date) { this->slave_start_dates_.push_back(date); }
61  void clearDeferredLogger() { logger_.clearDeferredLogger(); }
62 
74  int effectiveGCW(const std::string& group_name) const {
75  const auto it = this->effective_gcw_.find(group_name);
76  return (it == this->effective_gcw_.end()) ? 1 : it->second;
77  }
78  void setEffectiveGCW(const std::string& group_name, int value) {
79  this->effective_gcw_[group_name] = value;
80  }
81 
85  void resetEffectiveGCW() { this->effective_gcw_.clear(); }
86 
87  double getActivationDate() const { return this->activation_date_; }
88  int getArgc() const { return this->argc_; }
89  char *getArgv(int index) const { return this->argv_[index]; }
90  char **getArgv() const { return this->argv_; }
91  const Parallel::Communication &getComm() const { return this->comm_; }
92 
105  const std::vector<std::string>& getMasterGroupNamesForSlave(std::size_t slave_idx) const;
106 
113  std::size_t getMasterGroupCanonicalIdx(
114  const std::string &slave_name, const std::string &master_group_name) const;
115 
116  Scalar getMasterGroupRate(
117  const std::string &group_name, ReservoirCoupling::Phase phase, ReservoirCoupling::RateKind kind) const;
118  std::map<std::string, std::string>& getMasterGroupToSlaveNameMap() {
119  return this->master_group_slave_names_;
120  }
121  double getSimulationStartDate() const { return this->schedule_.getStartTime(); }
122  double getSlaveActivationDate(int index) const { return this->slave_activation_dates_[index]; }
123  const double *getSlaveActivationDates() const { return this->slave_activation_dates_.data(); }
124  MPI_Comm getSlaveComm(int index) const { return this->master_slave_comm_[index]; }
125  std::map<std::string, std::vector<std::string>> &getSlaveNameToMasterGroupsMap() {
126  return this->slave_name_to_master_groups_map_;
127  }
128  const Potentials& getSlaveGroupPotentials(const std::string &master_group_name);
129  int getSlaveIdx(const std::string &slave_name) const;
130  const std::string &getSlaveName(int index) const { return this->slave_names_[index]; }
131  double getSlaveStartDate(int index) const { return this->slave_start_dates_[index]; }
132  const double *getSlaveStartDates() { return this->slave_start_dates_.data(); }
133  void initStartOfReportStep(int report_step_idx);
134  void initTimeStepping();
135  bool isFirstSubstepOfSyncTimestep() const;
136  bool isMasterGroup(const std::string &group_name) const;
137 
144  bool needsSlaveDataReceive() const;
145 
149  void setNeedsSlaveDataReceive(bool value);
150 
151  ReservoirCoupling::Logger& logger() { return this->logger_; }
152  ReservoirCoupling::Logger& logger() const { return this->logger_; }
153  void maybeActivate(int report_step);
154  void maybeReceiveActivationHandshakeFromSlaves(double current_time);
155  double maybeChopSubStep(double suggested_timestep, double current_time) const;
156  void maybeSpawnSlaveProcesses(int report_step);
157  std::size_t numSlaveGroups(unsigned int index);
158  std::size_t numSlaves() const { return this->numSlavesStarted(); }
159  std::size_t numSlavesStarted() const;
160  std::size_t numActivatedSlaves() const;
161  void rebuildSlaveIdxToMasterGroupsVector();
162  void receiveNextReportDateFromSlaves();
163  void receiveProductionDataFromSlaves();
164  void receiveInjectionDataFromSlaves();
165  void resizeNextReportDates(int size);
166  void resizeSlaveActivationDates(int size) { this->slave_activation_dates_.resize(size); }
167  void resizeSlaveStartDates(int size) { this->slave_start_dates_.resize(size); }
168  const Schedule& schedule() const { return this->schedule_; }
169  void sendNextTimeStepToSlaves(double next_time_step) {
170  this->time_stepper_->sendNextTimeStepToSlaves(next_time_step);
171  }
172 
176  std::size_t slave_idx,
177  bool active
178  ) const;
179  void sendInjectionTargetsToSlave(
180  std::size_t slave_idx,
181  const std::vector<InjectionGroupTarget>& injection_targets
182  ) const;
183 
186  std::size_t slave_idx,
187  const std::vector<MasterGroupNodePressure>& pressures
188  ) const;
189  void sendNumGroupConstraintsToSlave(
190  std::size_t slave_idx,
191  std::size_t num_injection_targets,
192  std::size_t num_production_constraints
193  ) const;
194 
198  std::size_t slave_idx,
199  std::size_t num_pressures,
200  bool is_final
201  ) const;
202  void sendProductionConstraintsToSlave(
203  std::size_t slave_idx,
204  const std::vector<ProductionGroupConstraints>& production_constraints
205  ) const;
206  void setDeferredLogger(DeferredLogger *deferred_logger) {
207  this->logger_.setDeferredLogger(deferred_logger);
208  }
209  void setFirstSubstepOfSyncTimestep(bool value);
210 
214  data::ReservoirCouplingGroupRates collectGroupRatesForSummary() const;
215  // These are currently only used for unit testing
216  void setSlaveActivationDate(int index, double date) { this->slave_activation_dates_[index] = date; }
217  void setSlaveNextReportTimeOffset(int index, double offset);
218  void setSlaveStartDate(int index, std::time_t date) { this->slave_start_dates_[index] = date; }
219  bool slaveIsActivated(int index) const { return this->slave_activation_status_[index] != 0; }
220 
225  bool syncAtReportSteps() const { return this->sync_at_report_steps_; }
226  void updateMasterGroupNameOrderMap(
227  const std::string& slave_name, const std::map<std::string, std::size_t>& master_group_map);
228 
236 
247 
248 private:
249  double getMasterActivationDate_() const;
250 
251  const Parallel::Communication &comm_;
252  const Schedule& schedule_;
253  int argc_;
254  char **argv_;
255  // Whether the master process has activated the reservoir coupling
256  bool activated_{false};
257 
258  // NOTE: MPI_Comm is just an integer handle, so we can just copy it into the vector
259  std::vector<MPI_Comm> master_slave_comm_; // MPI communicators for the slave processes
260  std::vector<std::string> slave_names_;
261 
262  // The start dates are in whole seconds since the epoch. We use a double to store the value
263  // since both schedule_.getStartTime() and schedule_.stepLength(report_step) returns
264  // a double value representing whole seconds.
265  // However, note that schedule_[report_step].start_time() returns a time_point
266  // which can include milliseconds. The double values are also convenient when we need to
267  // to add fractions of seconds for sub steps to the start date.
268  std::vector<double> slave_start_dates_;
269 
270  // The activation dates are in whole seconds since the epoch.
271  std::vector<double> slave_activation_dates_;
272  double activation_date_{0.0}; // The date when SLAVES is encountered in the schedule
273 
274  // A mapping from a slave name to the master group name order used when slaves send
275  // potentials to the master process.
276  std::map<std::string, std::map<std::string, std::size_t>> master_group_name_order_;
277 
278  // Effective group-controlled-wells count per master group, used by guide-rate
279  // distribution independently of the production control mode (see effectiveGCW()).
280  // Reset and repopulated on each master-group constraint calculation.
281  std::map<std::string, int> effective_gcw_;
282 
283  mutable ReservoirCoupling::Logger logger_;
284 
285  // Whether the slave has activated. Unfortunatley, we cannot use std::vector<bool> since
286  // it is not supported to get a pointer to the underlying array of bools needed
287  // with MPI broadcast().
288  std::vector<std::uint8_t> slave_activation_status_;
289 
290  // A mapping from master group names to slave names
291  std::map<std::string, std::string> master_group_slave_names_;
292 
293  // A mapping from slave names to master group names
294  // NOTE: The order of the master groups in the vector is important,
295  // as the slaves will communicate the indices of the master groups in
296  // the vector instead of the group names themselves.
297  // NOTE: This map is created by ReservoirCouplingSpawnSlaves.cpp
298  std::map<std::string, std::vector<std::string>> slave_name_to_master_groups_map_;
299 
300  // Direct index-based lookup for performance optimization (O(1) instead of O(log n))
301  // This vector is populated in parallel with slave_name_to_master_groups_map_
302  // and maintains the same ordering as slave_names_ vector for consistent indexing
303  std::vector<std::vector<std::string>> slave_idx_to_master_groups_;
304 
305  // Stores data that changes for a single report step or for timesteps within a report step.
306  std::unique_ptr<ReservoirCouplingMasterReportStep<Scalar>> report_step_data_{nullptr};
307 
308  // Handles time stepping for the master and slaves
309  std::unique_ptr<ReservoirCouplingTimeStepper<Scalar>> time_stepper_{nullptr};
310 
311  // CLI flag --rescoup-sync-at-report-steps. When true, the master syncs with
312  // its slaves at report-step boundaries (RSYNC). When false
313  // (default), it syncs at every master time step (TSYNC).
314  bool sync_at_report_steps_{false};
315 };
316 
317 } // namespace Opm
318 
319 #endif // OPM_RESERVOIR_COUPLING_MASTER_HPP
bool needsSlaveDataReceive() const
Check if the master needs to receive production data from the slaves.
Definition: ReservoirCouplingMaster.cpp:189
data::ReservoirCouplingGroupRates collectGroupRatesForSummary() const
Collect production/injection rates for all master groups.
Definition: ReservoirCouplingMaster.cpp:557
Master-computed network-leaf node pressure for a single master group.
Definition: ReservoirCoupling.hpp:287
std::size_t getMasterGroupCanonicalIdx(const std::string &slave_name, const std::string &master_group_name) const
Get the canonical index of the master group for a given slave name and master group name...
Definition: ReservoirCouplingMaster.cpp:102
void sendCoupledNetworkActiveStatusToSlave(std::size_t slave_idx, bool active) const
Send a single boolean to a slave telling it whether the master will iterate the cross-rescoup network...
Definition: ReservoirCouplingMaster.cpp:462
bool syncAtReportSteps() const
Whether the master syncs with slaves at slave report-step boundaries (true) or at every master actual...
Definition: ReservoirCouplingMaster.hpp:225
Structs needed for tpfalinearizer and its gpuparams struct extracted to be defined in one place that ...
Definition: blackoilbioeffectsmodules.hh:45
void sendMasterGroupNodePressuresToSlave(std::size_t slave_idx, const std::vector< MasterGroupNodePressure > &pressures) const
Send master-computed network-leaf node pressures to a slave.
Definition: ReservoirCouplingMaster.cpp:452
Utility class for comparing double values representing epoch dates or elapsed time.
Definition: ReservoirCoupling.hpp:328
void sendDontTerminateSignalToSlaves()
Send "don&#39;t terminate" signal (value=0) to all active slaves.
Definition: ReservoirCouplingMaster.cpp:405
void sendTerminateAndDisconnect()
Send terminate signal to all active slaves and disconnect intercommunicators.
Definition: ReservoirCouplingMaster.cpp:504
const std::vector< std::string > & getMasterGroupNamesForSlave(std::size_t slave_idx) const
Get the master group names associated with a slave reservoir by index.
Definition: ReservoirCouplingMaster.cpp:83
Definition: ReservoirCoupling.hpp:196
int effectiveGCW(const std::string &group_name) const
Effective group-controlled-wells (GCW) count for a master group, used by guide-rate distribution inde...
Definition: ReservoirCouplingMaster.hpp:74
void resetEffectiveGCW()
Clear all effective-GCW entries.
Definition: ReservoirCouplingMaster.hpp:85
Definition: ReservoirCoupling.hpp:254
Definition: ReservoirCouplingMaster.hpp:38
void setNeedsSlaveDataReceive(bool value)
Set whether the master needs to receive production data from the slaves.
Definition: ReservoirCouplingMaster.cpp:198
void sendNumMasterGroupNodePressuresToSlave(std::size_t slave_idx, std::size_t num_pressures, bool is_final) const
Send the count of master-computed network-leaf node pressures plus the master&#39;s is_final flag for thi...
Definition: ReservoirCouplingMaster.cpp:482
Definition: ReservoirCoupling.hpp:244
Definition: ReservoirCoupling.hpp:220