Replace bool with enum class in DomdecOptions
[alexxy/gromacs.git] / src / gromacs / mdrun / runner.cpp
1 /*
2  * This file is part of the GROMACS molecular simulation package.
3  *
4  * Copyright (c) 1991-2000, University of Groningen, The Netherlands.
5  * Copyright (c) 2001-2004, The GROMACS development team.
6  * Copyright (c) 2011-2019,2020,2021, by the GROMACS development team, led by
7  * Mark Abraham, David van der Spoel, Berk Hess, and Erik Lindahl,
8  * and including many others, as listed in the AUTHORS file in the
9  * top-level source directory and at http://www.gromacs.org.
10  *
11  * GROMACS is free software; you can redistribute it and/or
12  * modify it under the terms of the GNU Lesser General Public License
13  * as published by the Free Software Foundation; either version 2.1
14  * of the License, or (at your option) any later version.
15  *
16  * GROMACS is distributed in the hope that it will be useful,
17  * but WITHOUT ANY WARRANTY; without even the implied warranty of
18  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
19  * Lesser General Public License for more details.
20  *
21  * You should have received a copy of the GNU Lesser General Public
22  * License along with GROMACS; if not, see
23  * http://www.gnu.org/licenses, or write to the Free Software Foundation,
24  * Inc., 51 Franklin Street, Fifth Floor, Boston, MA  02110-1301  USA.
25  *
26  * If you want to redistribute modifications to GROMACS, please
27  * consider that scientific software is very special. Version
28  * control is crucial - bugs must be traceable. We will be happy to
29  * consider code for inclusion in the official distribution, but
30  * derived work must not be called official GROMACS. Details are found
31  * in the README & COPYING files - if they are missing, get the
32  * official version at http://www.gromacs.org.
33  *
34  * To help us fund GROMACS development, we humbly ask that you cite
35  * the research papers on the package. Check out http://www.gromacs.org.
36  */
37 /*! \internal \file
38  *
39  * \brief Implements the MD runner routine calling all integrators.
40  *
41  * \author David van der Spoel <david.vanderspoel@icm.uu.se>
42  * \ingroup module_mdrun
43  */
44 #include "gmxpre.h"
45
46 #include "runner.h"
47
48 #include "config.h"
49
50 #include <cassert>
51 #include <cinttypes>
52 #include <csignal>
53 #include <cstdlib>
54 #include <cstring>
55
56 #include <algorithm>
57 #include <memory>
58
59 #include "gromacs/commandline/filenm.h"
60 #include "gromacs/domdec/builder.h"
61 #include "gromacs/domdec/domdec.h"
62 #include "gromacs/domdec/domdec_struct.h"
63 #include "gromacs/domdec/gpuhaloexchange.h"
64 #include "gromacs/domdec/localatomsetmanager.h"
65 #include "gromacs/domdec/partition.h"
66 #include "gromacs/ewald/ewald_utils.h"
67 #include "gromacs/ewald/pme.h"
68 #include "gromacs/ewald/pme_gpu_program.h"
69 #include "gromacs/ewald/pme_only.h"
70 #include "gromacs/ewald/pme_pp_comm_gpu.h"
71 #include "gromacs/fileio/checkpoint.h"
72 #include "gromacs/fileio/gmxfio.h"
73 #include "gromacs/fileio/oenv.h"
74 #include "gromacs/fileio/tpxio.h"
75 #include "gromacs/gmxlib/network.h"
76 #include "gromacs/gmxlib/nrnb.h"
77 #include "gromacs/gpu_utils/device_stream_manager.h"
78 #include "gromacs/hardware/cpuinfo.h"
79 #include "gromacs/hardware/detecthardware.h"
80 #include "gromacs/hardware/device_management.h"
81 #include "gromacs/hardware/hardwaretopology.h"
82 #include "gromacs/hardware/printhardware.h"
83 #include "gromacs/imd/imd.h"
84 #include "gromacs/listed_forces/disre.h"
85 #include "gromacs/listed_forces/gpubonded.h"
86 #include "gromacs/listed_forces/listed_forces.h"
87 #include "gromacs/listed_forces/orires.h"
88 #include "gromacs/math/functions.h"
89 #include "gromacs/math/utilities.h"
90 #include "gromacs/math/vec.h"
91 #include "gromacs/mdlib/boxdeformation.h"
92 #include "gromacs/mdlib/broadcaststructs.h"
93 #include "gromacs/mdlib/calc_verletbuf.h"
94 #include "gromacs/mdlib/dispersioncorrection.h"
95 #include "gromacs/mdlib/enerdata_utils.h"
96 #include "gromacs/mdlib/force.h"
97 #include "gromacs/mdlib/forcerec.h"
98 #include "gromacs/mdlib/gmx_omp_nthreads.h"
99 #include "gromacs/mdlib/gpuforcereduction.h"
100 #include "gromacs/mdlib/makeconstraints.h"
101 #include "gromacs/mdlib/md_support.h"
102 #include "gromacs/mdlib/mdatoms.h"
103 #include "gromacs/mdlib/sighandler.h"
104 #include "gromacs/mdlib/stophandler.h"
105 #include "gromacs/mdlib/tgroup.h"
106 #include "gromacs/mdlib/updategroups.h"
107 #include "gromacs/mdlib/vsite.h"
108 #include "gromacs/mdrun/mdmodules.h"
109 #include "gromacs/mdrun/simulationcontext.h"
110 #include "gromacs/mdrun/simulationinput.h"
111 #include "gromacs/mdrun/simulationinputhandle.h"
112 #include "gromacs/mdrunutility/handlerestart.h"
113 #include "gromacs/mdrunutility/logging.h"
114 #include "gromacs/mdrunutility/multisim.h"
115 #include "gromacs/mdrunutility/printtime.h"
116 #include "gromacs/mdrunutility/threadaffinity.h"
117 #include "gromacs/mdtypes/checkpointdata.h"
118 #include "gromacs/mdtypes/commrec.h"
119 #include "gromacs/mdtypes/enerdata.h"
120 #include "gromacs/mdtypes/fcdata.h"
121 #include "gromacs/mdtypes/forcerec.h"
122 #include "gromacs/mdtypes/group.h"
123 #include "gromacs/mdtypes/inputrec.h"
124 #include "gromacs/mdtypes/interaction_const.h"
125 #include "gromacs/mdtypes/md_enums.h"
126 #include "gromacs/mdtypes/mdatom.h"
127 #include "gromacs/mdtypes/mdrunoptions.h"
128 #include "gromacs/mdtypes/observableshistory.h"
129 #include "gromacs/mdtypes/simulation_workload.h"
130 #include "gromacs/mdtypes/state.h"
131 #include "gromacs/mdtypes/state_propagator_data_gpu.h"
132 #include "gromacs/modularsimulator/modularsimulator.h"
133 #include "gromacs/nbnxm/gpu_data_mgmt.h"
134 #include "gromacs/nbnxm/nbnxm.h"
135 #include "gromacs/nbnxm/pairlist_tuning.h"
136 #include "gromacs/pbcutil/pbc.h"
137 #include "gromacs/pulling/output.h"
138 #include "gromacs/pulling/pull.h"
139 #include "gromacs/pulling/pull_rotation.h"
140 #include "gromacs/restraint/manager.h"
141 #include "gromacs/restraint/restraintmdmodule.h"
142 #include "gromacs/restraint/restraintpotential.h"
143 #include "gromacs/swap/swapcoords.h"
144 #include "gromacs/taskassignment/decidegpuusage.h"
145 #include "gromacs/taskassignment/decidesimulationworkload.h"
146 #include "gromacs/taskassignment/resourcedivision.h"
147 #include "gromacs/taskassignment/taskassignment.h"
148 #include "gromacs/taskassignment/usergpuids.h"
149 #include "gromacs/timing/gpu_timing.h"
150 #include "gromacs/timing/wallcycle.h"
151 #include "gromacs/timing/wallcyclereporting.h"
152 #include "gromacs/topology/mtop_util.h"
153 #include "gromacs/trajectory/trajectoryframe.h"
154 #include "gromacs/utility/basenetwork.h"
155 #include "gromacs/utility/cstringutil.h"
156 #include "gromacs/utility/exceptions.h"
157 #include "gromacs/utility/fatalerror.h"
158 #include "gromacs/utility/filestream.h"
159 #include "gromacs/utility/gmxassert.h"
160 #include "gromacs/utility/gmxmpi.h"
161 #include "gromacs/utility/keyvaluetree.h"
162 #include "gromacs/utility/logger.h"
163 #include "gromacs/utility/loggerbuilder.h"
164 #include "gromacs/utility/mdmodulesnotifiers.h"
165 #include "gromacs/utility/physicalnodecommunicator.h"
166 #include "gromacs/utility/pleasecite.h"
167 #include "gromacs/utility/programcontext.h"
168 #include "gromacs/utility/smalloc.h"
169 #include "gromacs/utility/stringutil.h"
170 #include "gromacs/utility/mpiinfo.h"
171
172 #include "isimulator.h"
173 #include "membedholder.h"
174 #include "replicaexchange.h"
175 #include "simulatorbuilder.h"
176
177 namespace gmx
178 {
179
180
181 /*! \brief Manage any development feature flag variables encountered
182  *
183  * The use of dev features indicated by environment variables is
184  * logged in order to ensure that runs with such features enabled can
185  * be identified from their log and standard output. Any cross
186  * dependencies are also checked, and if unsatisfied, a fatal error
187  * issued.
188  *
189  * Note that some development features overrides are applied already here:
190  * the GPU communication flags are set to false in non-tMPI and non-CUDA builds.
191  *
192  * \param[in]  mdlog                Logger object.
193  * \param[in]  useGpuForNonbonded   True if the nonbonded task is offloaded in this run.
194  * \param[in]  pmeRunMode           The PME run mode for this run
195  * \returns                         The object populated with development feature flags.
196  */
197 static DevelopmentFeatureFlags manageDevelopmentFeatures(const gmx::MDLogger& mdlog,
198                                                          const bool           useGpuForNonbonded,
199                                                          const PmeRunMode     pmeRunMode)
200 {
201     DevelopmentFeatureFlags devFlags;
202
203     // Some builds of GCC 5 give false positive warnings that these
204     // getenv results are ignored when clearly they are used.
205 #pragma GCC diagnostic push
206 #pragma GCC diagnostic ignored "-Wunused-result"
207
208     devFlags.enableGpuBufferOps =
209             GMX_GPU_CUDA && useGpuForNonbonded && (getenv("GMX_USE_GPU_BUFFER_OPS") != nullptr);
210     devFlags.enableGpuHaloExchange = GMX_GPU_CUDA && getenv("GMX_GPU_DD_COMMS") != nullptr;
211     devFlags.forceGpuUpdateDefault = (getenv("GMX_FORCE_UPDATE_DEFAULT_GPU") != nullptr) || GMX_FAHCORE;
212     devFlags.enableGpuPmePPComm = GMX_GPU_CUDA && getenv("GMX_GPU_PME_PP_COMMS") != nullptr;
213
214 #pragma GCC diagnostic pop
215
216     // Direct GPU comm path is being used with CUDA_AWARE_MPI
217     // make sure underlying MPI implementation is CUDA-aware
218     if (!GMX_THREAD_MPI && (devFlags.enableGpuPmePPComm || devFlags.enableGpuHaloExchange))
219     {
220         const bool haveDetectedCudaAwareMpi =
221                 (checkMpiCudaAwareSupport() == CudaAwareMpiStatus::Supported);
222         const bool forceCudaAwareMpi = (getenv("GMX_FORCE_CUDA_AWARE_MPI") != nullptr);
223
224         if (!haveDetectedCudaAwareMpi && forceCudaAwareMpi)
225         {
226             // CUDA-aware support not detected in MPI library but, user has forced it's use
227             GMX_LOG(mdlog.warning)
228                     .asParagraph()
229                     .appendTextFormatted(
230                             "This run has forced use of 'CUDA-aware MPI'. "
231                             "But, GROMACS cannot determine if underlying MPI "
232                             "is CUDA-aware. GROMACS recommends use of latest openMPI version "
233                             "for CUDA-aware support. "
234                             "If you observe failures at runtime, try unsetting "
235                             "GMX_FORCE_CUDA_AWARE_MPI environment variable.");
236         }
237
238         if (haveDetectedCudaAwareMpi || forceCudaAwareMpi)
239         {
240             devFlags.usingCudaAwareMpi = true;
241             GMX_LOG(mdlog.warning)
242                     .asParagraph()
243                     .appendTextFormatted(
244                             "Using CUDA-aware MPI for 'GPU halo exchange' or 'GPU PME-PP "
245                             "communications' feature.");
246         }
247         else
248         {
249             if (devFlags.enableGpuHaloExchange)
250             {
251                 GMX_LOG(mdlog.warning)
252                         .asParagraph()
253                         .appendTextFormatted(
254                                 "GMX_GPU_DD_COMMS environment variable detected, but the 'GPU "
255                                 "halo exchange' feature will not be enabled as GROMACS couldn't "
256                                 "detect CUDA_aware support in underlying MPI implementation.");
257                 devFlags.enableGpuHaloExchange = false;
258             }
259             if (devFlags.enableGpuPmePPComm)
260             {
261                 GMX_LOG(mdlog.warning)
262                         .asParagraph()
263                         .appendText(
264                                 "GMX_GPU_PME_PP_COMMS environment variable detected, but the "
265                                 "'GPU PME-PP communications' feature will not be enabled as "
266                                 "GROMACS couldn't "
267                                 "detect CUDA_aware support in underlying MPI implementation.");
268                 devFlags.enableGpuPmePPComm = false;
269             }
270
271             GMX_LOG(mdlog.warning)
272                     .asParagraph()
273                     .appendTextFormatted(
274                             "GROMACS recommends use of latest OpenMPI version for CUDA-aware "
275                             "support. "
276                             "If you are certain about CUDA-aware support in your MPI library, "
277                             "you can force it's use by setting environment variable "
278                             " GMX_FORCE_CUDA_AWARE_MPI.");
279         }
280     }
281
282     if (devFlags.enableGpuBufferOps)
283     {
284         GMX_LOG(mdlog.warning)
285                 .asParagraph()
286                 .appendTextFormatted(
287                         "This run uses the 'GPU buffer ops' feature, enabled by the "
288                         "GMX_USE_GPU_BUFFER_OPS environment variable.");
289     }
290
291     if (devFlags.forceGpuUpdateDefault)
292     {
293         GMX_LOG(mdlog.warning)
294                 .asParagraph()
295                 .appendTextFormatted(
296                         "This run will default to '-update gpu' as requested by the "
297                         "GMX_FORCE_UPDATE_DEFAULT_GPU environment variable. GPU update with domain "
298                         "decomposition lacks substantial testing and should be used with caution.");
299     }
300
301     if (devFlags.enableGpuHaloExchange)
302     {
303         if (useGpuForNonbonded)
304         {
305             if (!devFlags.enableGpuBufferOps)
306             {
307                 GMX_LOG(mdlog.warning)
308                         .asParagraph()
309                         .appendTextFormatted(
310                                 "Enabling GPU buffer operations required by GMX_GPU_DD_COMMS "
311                                 "(equivalent with GMX_USE_GPU_BUFFER_OPS=1).");
312                 devFlags.enableGpuBufferOps = true;
313             }
314             GMX_LOG(mdlog.warning)
315                     .asParagraph()
316                     .appendTextFormatted(
317                             "This run has requested the 'GPU halo exchange' feature, enabled by "
318                             "the "
319                             "GMX_GPU_DD_COMMS environment variable.");
320         }
321         else
322         {
323             GMX_LOG(mdlog.warning)
324                     .asParagraph()
325                     .appendTextFormatted(
326                             "GMX_GPU_DD_COMMS environment variable detected, but the 'GPU "
327                             "halo exchange' feature will not be enabled as nonbonded interactions "
328                             "are not offloaded.");
329             devFlags.enableGpuHaloExchange = false;
330         }
331     }
332
333     if (devFlags.enableGpuPmePPComm)
334     {
335         if (pmeRunMode == PmeRunMode::GPU)
336         {
337             if (!devFlags.enableGpuBufferOps)
338             {
339                 GMX_LOG(mdlog.warning)
340                         .asParagraph()
341                         .appendTextFormatted(
342                                 "Enabling GPU buffer operations required by GMX_GPU_PME_PP_COMMS "
343                                 "(equivalent with GMX_USE_GPU_BUFFER_OPS=1).");
344                 devFlags.enableGpuBufferOps = true;
345             }
346             GMX_LOG(mdlog.warning)
347                     .asParagraph()
348                     .appendTextFormatted(
349                             "This run uses the 'GPU PME-PP communications' feature, enabled "
350                             "by the GMX_GPU_PME_PP_COMMS environment variable.");
351         }
352         else
353         {
354             std::string clarification;
355             if (pmeRunMode == PmeRunMode::Mixed)
356             {
357                 clarification =
358                         "PME FFT and gather are not offloaded to the GPU (PME is running in mixed "
359                         "mode).";
360             }
361             else
362             {
363                 clarification = "PME is not offloaded to the GPU.";
364             }
365             GMX_LOG(mdlog.warning)
366                     .asParagraph()
367                     .appendText(
368                             "GMX_GPU_PME_PP_COMMS environment variable detected, but the "
369                             "'GPU PME-PP communications' feature was not enabled as "
370                             + clarification);
371             devFlags.enableGpuPmePPComm = false;
372         }
373     }
374
375     return devFlags;
376 }
377
378 /*! \brief Barrier for safe simultaneous thread access to mdrunner data
379  *
380  * Used to ensure that the master thread does not modify mdrunner during copy
381  * on the spawned threads. */
382 static void threadMpiMdrunnerAccessBarrier()
383 {
384 #if GMX_THREAD_MPI
385     MPI_Barrier(MPI_COMM_WORLD);
386 #endif
387 }
388
389 Mdrunner Mdrunner::cloneOnSpawnedThread() const
390 {
391     auto newRunner = Mdrunner(std::make_unique<MDModules>());
392
393     // All runners in the same process share a restraint manager resource because it is
394     // part of the interface to the client code, which is associated only with the
395     // original thread. Handles to the same resources can be obtained by copy.
396     {
397         newRunner.restraintManager_ = std::make_unique<RestraintManager>(*restraintManager_);
398     }
399
400     // Copy members of master runner.
401     // \todo Replace with builder when Simulation context and/or runner phases are better defined.
402     // Ref https://gitlab.com/gromacs/gromacs/-/issues/2587 and https://gitlab.com/gromacs/gromacs/-/issues/2375
403     newRunner.hw_opt    = hw_opt;
404     newRunner.filenames = filenames;
405
406     newRunner.hwinfo_         = hwinfo_;
407     newRunner.oenv            = oenv;
408     newRunner.mdrunOptions    = mdrunOptions;
409     newRunner.domdecOptions   = domdecOptions;
410     newRunner.nbpu_opt        = nbpu_opt;
411     newRunner.pme_opt         = pme_opt;
412     newRunner.pme_fft_opt     = pme_fft_opt;
413     newRunner.bonded_opt      = bonded_opt;
414     newRunner.update_opt      = update_opt;
415     newRunner.nstlist_cmdline = nstlist_cmdline;
416     newRunner.replExParams    = replExParams;
417     newRunner.pforce          = pforce;
418     // Give the spawned thread the newly created valid communicator
419     // for the simulation.
420     newRunner.libraryWorldCommunicator = MPI_COMM_WORLD;
421     newRunner.simulationCommunicator   = MPI_COMM_WORLD;
422     newRunner.ms                       = ms;
423     newRunner.startingBehavior         = startingBehavior;
424     newRunner.stopHandlerBuilder_      = std::make_unique<StopHandlerBuilder>(*stopHandlerBuilder_);
425     newRunner.inputHolder_             = inputHolder_;
426
427     threadMpiMdrunnerAccessBarrier();
428
429     return newRunner;
430 }
431
432 /*! \brief The callback used for running on spawned threads.
433  *
434  * Obtains the pointer to the master mdrunner object from the one
435  * argument permitted to the thread-launch API call, copies it to make
436  * a new runner for this thread, reinitializes necessary data, and
437  * proceeds to the simulation. */
438 static void mdrunner_start_fn(const void* arg)
439 {
440     try
441     {
442         const auto* masterMdrunner = reinterpret_cast<const gmx::Mdrunner*>(arg);
443         /* copy the arg list to make sure that it's thread-local. This
444            doesn't copy pointed-to items, of course; fnm, cr and fplog
445            are reset in the call below, all others should be const. */
446         gmx::Mdrunner mdrunner = masterMdrunner->cloneOnSpawnedThread();
447         mdrunner.mdrunner();
448     }
449     GMX_CATCH_ALL_AND_EXIT_WITH_FATAL_ERROR
450 }
451
452
453 void Mdrunner::spawnThreads(int numThreadsToLaunch)
454 {
455 #if GMX_THREAD_MPI
456     /* now spawn new threads that start mdrunner_start_fn(), while
457        the main thread returns. Thread affinity is handled later. */
458     if (tMPI_Init_fn(TRUE, numThreadsToLaunch, TMPI_AFFINITY_NONE, mdrunner_start_fn, static_cast<const void*>(this))
459         != TMPI_SUCCESS)
460     {
461         GMX_THROW(gmx::InternalError("Failed to spawn thread-MPI threads"));
462     }
463
464     // Give the master thread the newly created valid communicator for
465     // the simulation.
466     libraryWorldCommunicator = MPI_COMM_WORLD;
467     simulationCommunicator   = MPI_COMM_WORLD;
468     threadMpiMdrunnerAccessBarrier();
469 #else
470     GMX_UNUSED_VALUE(numThreadsToLaunch);
471     GMX_UNUSED_VALUE(mdrunner_start_fn);
472 #endif
473 }
474
475 } // namespace gmx
476
477 /*! \brief Initialize variables for Verlet scheme simulation */
478 static void prepare_verlet_scheme(FILE*               fplog,
479                                   t_commrec*          cr,
480                                   t_inputrec*         ir,
481                                   int                 nstlist_cmdline,
482                                   const gmx_mtop_t&   mtop,
483                                   const matrix        box,
484                                   bool                makeGpuPairList,
485                                   const gmx::CpuInfo& cpuinfo)
486 {
487     // We checked the cut-offs in grompp, but double-check here.
488     // We have PME+LJcutoff kernels for rcoulomb>rvdw.
489     if (EEL_PME_EWALD(ir->coulombtype) && ir->vdwtype == VanDerWaalsType::Cut)
490     {
491         GMX_RELEASE_ASSERT(ir->rcoulomb >= ir->rvdw,
492                            "With Verlet lists and PME we should have rcoulomb>=rvdw");
493     }
494     else
495     {
496         GMX_RELEASE_ASSERT(ir->rcoulomb == ir->rvdw,
497                            "With Verlet lists and no PME rcoulomb and rvdw should be identical");
498     }
499     /* For NVE simulations, we will retain the initial list buffer */
500     if (EI_DYNAMICS(ir->eI) && ir->verletbuf_tol > 0
501         && !(EI_MD(ir->eI) && ir->etc == TemperatureCoupling::No))
502     {
503         /* Update the Verlet buffer size for the current run setup */
504
505         /* Here we assume SIMD-enabled kernels are being used. But as currently
506          * calc_verlet_buffer_size gives the same results for 4x8 and 4x4
507          * and 4x2 gives a larger buffer than 4x4, this is ok.
508          */
509         ListSetupType listType =
510                 (makeGpuPairList ? ListSetupType::Gpu : ListSetupType::CpuSimdWhenSupported);
511         VerletbufListSetup listSetup = verletbufGetSafeListSetup(listType);
512
513         const real rlist_new =
514                 calcVerletBufferSize(mtop, det(box), *ir, ir->nstlist, ir->nstlist - 1, -1, listSetup);
515
516         if (rlist_new != ir->rlist)
517         {
518             if (fplog != nullptr)
519             {
520                 fprintf(fplog,
521                         "\nChanging rlist from %g to %g for non-bonded %dx%d atom kernels\n\n",
522                         ir->rlist,
523                         rlist_new,
524                         listSetup.cluster_size_i,
525                         listSetup.cluster_size_j);
526             }
527             ir->rlist = rlist_new;
528         }
529     }
530
531     if (nstlist_cmdline > 0 && (!EI_DYNAMICS(ir->eI) || ir->verletbuf_tol <= 0))
532     {
533         gmx_fatal(FARGS,
534                   "Can not set nstlist without %s",
535                   !EI_DYNAMICS(ir->eI) ? "dynamics" : "verlet-buffer-tolerance");
536     }
537
538     if (EI_DYNAMICS(ir->eI))
539     {
540         /* Set or try nstlist values */
541         increaseNstlist(fplog, cr, ir, nstlist_cmdline, &mtop, box, makeGpuPairList, cpuinfo);
542     }
543 }
544
545 /*! \brief Override the nslist value in inputrec
546  *
547  * with value passed on the command line (if any)
548  */
549 static void override_nsteps_cmdline(const gmx::MDLogger& mdlog, int64_t nsteps_cmdline, t_inputrec* ir)
550 {
551     assert(ir);
552
553     /* override with anything else than the default -2 */
554     if (nsteps_cmdline > -2)
555     {
556         char sbuf_steps[STEPSTRSIZE];
557         char sbuf_msg[STRLEN];
558
559         ir->nsteps = nsteps_cmdline;
560         if (EI_DYNAMICS(ir->eI) && nsteps_cmdline != -1)
561         {
562             sprintf(sbuf_msg,
563                     "Overriding nsteps with value passed on the command line: %s steps, %.3g ps",
564                     gmx_step_str(nsteps_cmdline, sbuf_steps),
565                     fabs(nsteps_cmdline * ir->delta_t));
566         }
567         else
568         {
569             sprintf(sbuf_msg,
570                     "Overriding nsteps with value passed on the command line: %s steps",
571                     gmx_step_str(nsteps_cmdline, sbuf_steps));
572         }
573
574         GMX_LOG(mdlog.warning).asParagraph().appendText(sbuf_msg);
575     }
576     else if (nsteps_cmdline < -2)
577     {
578         gmx_fatal(FARGS, "Invalid nsteps value passed on the command line: %" PRId64, nsteps_cmdline);
579     }
580     /* Do nothing if nsteps_cmdline == -2 */
581 }
582
583 namespace gmx
584 {
585
586 /*! \brief Return whether GPU acceleration of nonbondeds is supported with the given settings.
587  *
588  * If not, and if a warning may be issued, logs a warning about
589  * falling back to CPU code. With thread-MPI, only the first
590  * call to this function should have \c issueWarning true. */
591 static bool gpuAccelerationOfNonbondedIsUseful(const MDLogger& mdlog, const t_inputrec& ir, bool issueWarning)
592 {
593     bool        gpuIsUseful = true;
594     std::string warning;
595
596     if (ir.opts.ngener - ir.nwall > 1)
597     {
598         /* The GPU code does not support more than one energy group.
599          * If the user requested GPUs explicitly, a fatal error is given later.
600          */
601         gpuIsUseful = false;
602         warning =
603                 "Multiple energy groups is not implemented for GPUs, falling back to the CPU. "
604                 "For better performance, run on the GPU without energy groups and then do "
605                 "gmx mdrun -rerun option on the trajectory with an energy group .tpr file.";
606     }
607
608     if (EI_TPI(ir.eI))
609     {
610         gpuIsUseful = false;
611         warning     = "TPI is not implemented for GPUs.";
612     }
613
614     if (!gpuIsUseful && issueWarning)
615     {
616         GMX_LOG(mdlog.warning).asParagraph().appendText(warning);
617     }
618
619     return gpuIsUseful;
620 }
621
622 //! Initializes the logger for mdrun.
623 static gmx::LoggerOwner buildLogger(FILE* fplog, const bool isSimulationMasterRank)
624 {
625     gmx::LoggerBuilder builder;
626     if (fplog != nullptr)
627     {
628         builder.addTargetFile(gmx::MDLogger::LogLevel::Info, fplog);
629     }
630     if (isSimulationMasterRank)
631     {
632         builder.addTargetStream(gmx::MDLogger::LogLevel::Warning, &gmx::TextOutputFile::standardError());
633     }
634     return builder.build();
635 }
636
637 //! Make a TaskTarget from an mdrun argument string.
638 static TaskTarget findTaskTarget(const char* optionString)
639 {
640     TaskTarget returnValue = TaskTarget::Auto;
641
642     if (strncmp(optionString, "auto", 3) == 0)
643     {
644         returnValue = TaskTarget::Auto;
645     }
646     else if (strncmp(optionString, "cpu", 3) == 0)
647     {
648         returnValue = TaskTarget::Cpu;
649     }
650     else if (strncmp(optionString, "gpu", 3) == 0)
651     {
652         returnValue = TaskTarget::Gpu;
653     }
654     else
655     {
656         GMX_ASSERT(false, "Option string should have been checked for sanity already");
657     }
658
659     return returnValue;
660 }
661
662 //! Finish run, aggregate data to print performance info.
663 static void finish_run(FILE*                     fplog,
664                        const gmx::MDLogger&      mdlog,
665                        const t_commrec*          cr,
666                        const t_inputrec&         inputrec,
667                        t_nrnb                    nrnb[],
668                        gmx_wallcycle*            wcycle,
669                        gmx_walltime_accounting_t walltime_accounting,
670                        nonbonded_verlet_t*       nbv,
671                        const gmx_pme_t*          pme,
672                        gmx_bool                  bWriteStat)
673 {
674     double delta_t = 0;
675     double nbfs = 0, mflop = 0;
676     double elapsed_time, elapsed_time_over_all_ranks, elapsed_time_over_all_threads,
677             elapsed_time_over_all_threads_over_all_ranks;
678     /* Control whether it is valid to print a report. Only the
679        simulation master may print, but it should not do so if the run
680        terminated e.g. before a scheduled reset step. This is
681        complicated by the fact that PME ranks are unaware of the
682        reason why they were sent a pmerecvqxFINISH. To avoid
683        communication deadlocks, we always do the communication for the
684        report, even if we've decided not to write the report, because
685        how long it takes to finish the run is not important when we've
686        decided not to report on the simulation performance.
687
688        Further, we only report performance for dynamical integrators,
689        because those are the only ones for which we plan to
690        consider doing any optimizations. */
691     bool printReport = EI_DYNAMICS(inputrec.eI) && SIMMASTER(cr);
692
693     if (printReport && !walltime_accounting_get_valid_finish(walltime_accounting))
694     {
695         GMX_LOG(mdlog.warning)
696                 .asParagraph()
697                 .appendText("Simulation ended prematurely, no performance report will be written.");
698         printReport = false;
699     }
700
701     t_nrnb*                 nrnb_tot;
702     std::unique_ptr<t_nrnb> nrnbTotalStorage;
703     if (cr->nnodes > 1)
704     {
705         nrnbTotalStorage = std::make_unique<t_nrnb>();
706         nrnb_tot         = nrnbTotalStorage.get();
707 #if GMX_MPI
708         MPI_Allreduce(nrnb->n.data(), nrnb_tot->n.data(), eNRNB, MPI_DOUBLE, MPI_SUM, cr->mpi_comm_mysim);
709 #endif
710     }
711     else
712     {
713         nrnb_tot = nrnb;
714     }
715
716     elapsed_time = walltime_accounting_get_time_since_reset(walltime_accounting);
717     elapsed_time_over_all_threads =
718             walltime_accounting_get_time_since_reset_over_all_threads(walltime_accounting);
719     if (cr->nnodes > 1)
720     {
721 #if GMX_MPI
722         /* reduce elapsed_time over all MPI ranks in the current simulation */
723         MPI_Allreduce(&elapsed_time, &elapsed_time_over_all_ranks, 1, MPI_DOUBLE, MPI_SUM, cr->mpi_comm_mysim);
724         elapsed_time_over_all_ranks /= cr->nnodes;
725         /* Reduce elapsed_time_over_all_threads over all MPI ranks in the
726          * current simulation. */
727         MPI_Allreduce(&elapsed_time_over_all_threads,
728                       &elapsed_time_over_all_threads_over_all_ranks,
729                       1,
730                       MPI_DOUBLE,
731                       MPI_SUM,
732                       cr->mpi_comm_mysim);
733 #endif
734     }
735     else
736     {
737         elapsed_time_over_all_ranks                  = elapsed_time;
738         elapsed_time_over_all_threads_over_all_ranks = elapsed_time_over_all_threads;
739     }
740
741     if (printReport)
742     {
743         print_flop(fplog, nrnb_tot, &nbfs, &mflop);
744     }
745
746     if (thisRankHasDuty(cr, DUTY_PP) && DOMAINDECOMP(cr))
747     {
748         print_dd_statistics(cr, inputrec, fplog);
749     }
750
751     /* TODO Move the responsibility for any scaling by thread counts
752      * to the code that handled the thread region, so that there's a
753      * mechanism to keep cycle counting working during the transition
754      * to task parallelism. */
755     int nthreads_pp  = gmx_omp_nthreads_get(ModuleMultiThread::Nonbonded);
756     int nthreads_pme = gmx_omp_nthreads_get(ModuleMultiThread::Pme);
757     wallcycle_scale_by_num_threads(
758             wcycle, thisRankHasDuty(cr, DUTY_PME) && !thisRankHasDuty(cr, DUTY_PP), nthreads_pp, nthreads_pme);
759     auto cycle_sum(wallcycle_sum(cr, wcycle));
760
761     if (printReport)
762     {
763         auto* nbnxn_gpu_timings =
764                 (nbv != nullptr && nbv->useGpu()) ? Nbnxm::gpu_get_timings(nbv->gpu_nbv) : nullptr;
765         gmx_wallclock_gpu_pme_t pme_gpu_timings = {};
766
767         if (pme_gpu_task_enabled(pme))
768         {
769             pme_gpu_get_timings(pme, &pme_gpu_timings);
770         }
771         wallcycle_print(fplog,
772                         mdlog,
773                         cr->nnodes,
774                         cr->npmenodes,
775                         nthreads_pp,
776                         nthreads_pme,
777                         elapsed_time_over_all_ranks,
778                         wcycle,
779                         cycle_sum,
780                         nbnxn_gpu_timings,
781                         &pme_gpu_timings);
782
783         if (EI_DYNAMICS(inputrec.eI))
784         {
785             delta_t = inputrec.delta_t;
786         }
787
788         if (fplog)
789         {
790             print_perf(fplog,
791                        elapsed_time_over_all_threads_over_all_ranks,
792                        elapsed_time_over_all_ranks,
793                        walltime_accounting_get_nsteps_done_since_reset(walltime_accounting),
794                        delta_t,
795                        nbfs,
796                        mflop);
797         }
798         if (bWriteStat)
799         {
800             print_perf(stderr,
801                        elapsed_time_over_all_threads_over_all_ranks,
802                        elapsed_time_over_all_ranks,
803                        walltime_accounting_get_nsteps_done_since_reset(walltime_accounting),
804                        delta_t,
805                        nbfs,
806                        mflop);
807         }
808     }
809 }
810
811 int Mdrunner::mdrunner()
812 {
813     matrix                      box;
814     std::unique_ptr<t_forcerec> fr;
815     real                        ewaldcoeff_q     = 0;
816     real                        ewaldcoeff_lj    = 0;
817     int                         nChargePerturbed = -1, nTypePerturbed = 0;
818     gmx_walltime_accounting_t   walltime_accounting = nullptr;
819     MembedHolder                membedHolder(filenames.size(), filenames.data());
820
821     /* CAUTION: threads may be started later on in this function, so
822        cr doesn't reflect the final parallel state right now */
823     gmx_mtop_t mtop;
824
825     /* TODO: inputrec should tell us whether we use an algorithm, not a file option */
826     const bool doEssentialDynamics = opt2bSet("-ei", filenames.size(), filenames.data());
827     const bool doRerun             = mdrunOptions.rerun;
828
829     // Handle task-assignment related user options.
830     EmulateGpuNonbonded emulateGpuNonbonded =
831             (getenv("GMX_EMULATE_GPU") != nullptr ? EmulateGpuNonbonded::Yes : EmulateGpuNonbonded::No);
832
833     std::vector<int> userGpuTaskAssignment;
834     try
835     {
836         userGpuTaskAssignment = parseUserTaskAssignmentString(hw_opt.userGpuTaskAssignment);
837     }
838     GMX_CATCH_ALL_AND_EXIT_WITH_FATAL_ERROR
839     auto nonbondedTarget = findTaskTarget(nbpu_opt);
840     auto pmeTarget       = findTaskTarget(pme_opt);
841     auto pmeFftTarget    = findTaskTarget(pme_fft_opt);
842     auto bondedTarget    = findTaskTarget(bonded_opt);
843     auto updateTarget    = findTaskTarget(update_opt);
844
845     FILE* fplog = nullptr;
846     // If we are appending, we don't write log output because we need
847     // to check that the old log file matches what the checkpoint file
848     // expects. Otherwise, we should start to write log output now if
849     // there is a file ready for it.
850     if (logFileHandle != nullptr && startingBehavior != StartingBehavior::RestartWithAppending)
851     {
852         fplog = gmx_fio_getfp(logFileHandle);
853     }
854     const bool isSimulationMasterRank = findIsSimulationMasterRank(ms, simulationCommunicator);
855     gmx::LoggerOwner logOwner(buildLogger(fplog, isSimulationMasterRank));
856     gmx::MDLogger    mdlog(logOwner.logger());
857
858     gmx_print_detected_hardware(fplog, isSimulationMasterRank && isMasterSim(ms), mdlog, hwinfo_);
859
860     std::vector<int> availableDevices =
861             makeListOfAvailableDevices(hwinfo_->deviceInfoList, hw_opt.devicesSelectedByUser);
862     const int numAvailableDevices = gmx::ssize(availableDevices);
863
864     // Print citation requests after all software/hardware printing
865     pleaseCiteGromacs(fplog);
866
867     // Note: legacy program logic relies on checking whether these pointers are assigned.
868     // Objects may or may not be allocated later.
869     std::unique_ptr<t_inputrec> inputrec;
870     std::unique_ptr<t_state>    globalState;
871
872     auto partialDeserializedTpr = std::make_unique<PartialDeserializedTprFile>();
873
874     if (isSimulationMasterRank)
875     {
876         // Allocate objects to be initialized by later function calls.
877         /* Only the master rank has the global state */
878         globalState = std::make_unique<t_state>();
879         inputrec    = std::make_unique<t_inputrec>();
880
881         /* Read (nearly) all data required for the simulation
882          * and keep the partly serialized tpr contents to send to other ranks later
883          */
884         applyGlobalSimulationState(
885                 *inputHolder_.get(), partialDeserializedTpr.get(), globalState.get(), inputrec.get(), &mtop);
886     }
887
888     /* Check and update the hardware options for internal consistency */
889     checkAndUpdateHardwareOptions(
890             mdlog, &hw_opt, isSimulationMasterRank, domdecOptions.numPmeRanks, inputrec.get());
891
892     if (GMX_THREAD_MPI && isSimulationMasterRank)
893     {
894         bool useGpuForNonbonded = false;
895         bool useGpuForPme       = false;
896         try
897         {
898             GMX_RELEASE_ASSERT(inputrec != nullptr, "Keep the compiler happy");
899
900             // If the user specified the number of ranks, then we must
901             // respect that, but in default mode, we need to allow for
902             // the number of GPUs to choose the number of ranks.
903             auto canUseGpuForNonbonded = buildSupportsNonbondedOnGpu(nullptr);
904             useGpuForNonbonded         = decideWhetherToUseGpusForNonbondedWithThreadMpi(
905                     nonbondedTarget,
906                     numAvailableDevices > 0,
907                     userGpuTaskAssignment,
908                     emulateGpuNonbonded,
909                     canUseGpuForNonbonded,
910                     gpuAccelerationOfNonbondedIsUseful(mdlog, *inputrec, GMX_THREAD_MPI),
911                     hw_opt.nthreads_tmpi);
912             useGpuForPme = decideWhetherToUseGpusForPmeWithThreadMpi(useGpuForNonbonded,
913                                                                      pmeTarget,
914                                                                      numAvailableDevices,
915                                                                      userGpuTaskAssignment,
916                                                                      *hwinfo_,
917                                                                      *inputrec,
918                                                                      hw_opt.nthreads_tmpi,
919                                                                      domdecOptions.numPmeRanks);
920         }
921         GMX_CATCH_ALL_AND_EXIT_WITH_FATAL_ERROR
922
923         /* Determine how many thread-MPI ranks to start.
924          *
925          * TODO Over-writing the user-supplied value here does
926          * prevent any possible subsequent checks from working
927          * correctly. */
928         hw_opt.nthreads_tmpi = get_nthreads_mpi(hwinfo_,
929                                                 &hw_opt,
930                                                 numAvailableDevices,
931                                                 useGpuForNonbonded,
932                                                 useGpuForPme,
933                                                 inputrec.get(),
934                                                 mtop,
935                                                 mdlog,
936                                                 membedHolder.doMembed());
937
938         // Now start the threads for thread MPI.
939         spawnThreads(hw_opt.nthreads_tmpi);
940         // The spawned threads enter mdrunner() and execution of
941         // master and spawned threads joins at the end of this block.
942     }
943
944     GMX_RELEASE_ASSERT(ms || simulationCommunicator != MPI_COMM_NULL,
945                        "Must have valid communicator unless running a multi-simulation");
946     CommrecHandle crHandle = init_commrec(simulationCommunicator);
947     t_commrec*    cr       = crHandle.get();
948     GMX_RELEASE_ASSERT(cr != nullptr, "Must have valid commrec");
949
950     PhysicalNodeCommunicator physicalNodeComm(libraryWorldCommunicator, gmx_physicalnode_id_hash());
951
952     // If we detected the topology on this system, double-check that it makes sense
953     if (hwinfo_->hardwareTopology->isThisSystem())
954     {
955         hardwareTopologyDoubleCheckDetection(mdlog, *hwinfo_->hardwareTopology);
956     }
957
958     if (PAR(cr))
959     {
960         /* now broadcast everything to the non-master nodes/threads: */
961         if (!isSimulationMasterRank)
962         {
963             // Until now, only the master rank has a non-null pointer.
964             // On non-master ranks, allocate the object that will receive data in the following call.
965             inputrec = std::make_unique<t_inputrec>();
966         }
967         init_parallel(cr->mpiDefaultCommunicator,
968                       MASTER(cr),
969                       inputrec.get(),
970                       &mtop,
971                       partialDeserializedTpr.get());
972     }
973     GMX_RELEASE_ASSERT(inputrec != nullptr, "All ranks should have a valid inputrec now");
974     partialDeserializedTpr.reset(nullptr);
975
976     GMX_RELEASE_ASSERT(
977             !inputrec->useConstantAcceleration,
978             "Linear acceleration has been removed in GROMACS 2022, and was broken for many years "
979             "before that. Use GROMACS 4.5 or earlier if you need this feature.");
980
981     // Now the number of ranks is known to all ranks, and each knows
982     // the inputrec read by the master rank. The ranks can now all run
983     // the task-deciding functions and will agree on the result
984     // without needing to communicate.
985     const bool useDomainDecomposition =
986             (PAR(cr) && !(EI_TPI(inputrec->eI) || inputrec->eI == IntegrationAlgorithm::NM));
987
988     // Note that these variables describe only their own node.
989     //
990     // Note that when bonded interactions run on a GPU they always run
991     // alongside a nonbonded task, so do not influence task assignment
992     // even though they affect the force calculation workload.
993     bool useGpuForNonbonded = false;
994     bool useGpuForPme       = false;
995     bool useGpuForBonded    = false;
996     bool useGpuForUpdate    = false;
997     bool gpusWereDetected   = hwinfo_->ngpu_compatible_tot > 0;
998     try
999     {
1000         // It's possible that there are different numbers of GPUs on
1001         // different nodes, which is the user's responsibility to
1002         // handle. If unsuitable, we will notice that during task
1003         // assignment.
1004         auto canUseGpuForNonbonded = buildSupportsNonbondedOnGpu(nullptr);
1005         useGpuForNonbonded         = decideWhetherToUseGpusForNonbonded(
1006                 nonbondedTarget,
1007                 userGpuTaskAssignment,
1008                 emulateGpuNonbonded,
1009                 canUseGpuForNonbonded,
1010                 gpuAccelerationOfNonbondedIsUseful(mdlog, *inputrec, !GMX_THREAD_MPI),
1011                 gpusWereDetected);
1012         useGpuForPme    = decideWhetherToUseGpusForPme(useGpuForNonbonded,
1013                                                     pmeTarget,
1014                                                     userGpuTaskAssignment,
1015                                                     *hwinfo_,
1016                                                     *inputrec,
1017                                                     cr->sizeOfDefaultCommunicator,
1018                                                     domdecOptions.numPmeRanks,
1019                                                     gpusWereDetected);
1020         useGpuForBonded = decideWhetherToUseGpusForBonded(
1021                 useGpuForNonbonded, useGpuForPme, bondedTarget, *inputrec, mtop, domdecOptions.numPmeRanks, gpusWereDetected);
1022     }
1023     GMX_CATCH_ALL_AND_EXIT_WITH_FATAL_ERROR
1024
1025     const PmeRunMode pmeRunMode = determinePmeRunMode(useGpuForPme, pmeFftTarget, *inputrec);
1026
1027     // Initialize development feature flags that enabled by environment variable
1028     // and report those features that are enabled.
1029     const DevelopmentFeatureFlags devFlags =
1030             manageDevelopmentFeatures(mdlog, useGpuForNonbonded, pmeRunMode);
1031
1032     const bool useModularSimulator = checkUseModularSimulator(false,
1033                                                               inputrec.get(),
1034                                                               doRerun,
1035                                                               mtop,
1036                                                               ms,
1037                                                               replExParams,
1038                                                               nullptr,
1039                                                               doEssentialDynamics,
1040                                                               membedHolder.doMembed());
1041
1042     // Build restraints.
1043     // TODO: hide restraint implementation details from Mdrunner.
1044     // There is nothing unique about restraints at this point as far as the
1045     // Mdrunner is concerned. The Mdrunner should just be getting a sequence of
1046     // factory functions from the SimulationContext on which to call mdModules_->add().
1047     // TODO: capture all restraints into a single RestraintModule, passed to the runner builder.
1048     for (auto&& restraint : restraintManager_->getRestraints())
1049     {
1050         auto module = RestraintMDModule::create(restraint, restraint->sites());
1051         mdModules_->add(std::move(module));
1052     }
1053
1054     // TODO: Error handling
1055     mdModules_->assignOptionsToModules(*inputrec->params, nullptr);
1056     // now that the MDModules know their options, they know which callbacks to sign up to
1057     mdModules_->subscribeToSimulationSetupNotifications();
1058     const auto& setupNotifier = mdModules_->notifiers().simulationSetupNotifier_;
1059
1060     if (inputrec->internalParameters != nullptr)
1061     {
1062         setupNotifier.notify(*inputrec->internalParameters);
1063     }
1064
1065     if (fplog != nullptr)
1066     {
1067         pr_inputrec(fplog, 0, "Input Parameters", inputrec.get(), FALSE);
1068         fprintf(fplog, "\n");
1069     }
1070
1071     if (SIMMASTER(cr))
1072     {
1073         /* In rerun, set velocities to zero if present */
1074         if (doRerun && ((globalState->flags & enumValueToBitMask(StateEntry::V)) != 0))
1075         {
1076             // rerun does not use velocities
1077             GMX_LOG(mdlog.info)
1078                     .asParagraph()
1079                     .appendText(
1080                             "Rerun trajectory contains velocities. Rerun does only evaluate "
1081                             "potential energy and forces. The velocities will be ignored.");
1082             for (int i = 0; i < globalState->natoms; i++)
1083             {
1084                 clear_rvec(globalState->v[i]);
1085             }
1086             globalState->flags &= ~enumValueToBitMask(StateEntry::V);
1087         }
1088
1089         /* now make sure the state is initialized and propagated */
1090         set_state_entries(globalState.get(), inputrec.get(), useModularSimulator);
1091     }
1092
1093     /* NM and TPI parallelize over force/energy calculations, not atoms,
1094      * so we need to initialize and broadcast the global state.
1095      */
1096     if (inputrec->eI == IntegrationAlgorithm::NM || inputrec->eI == IntegrationAlgorithm::TPI)
1097     {
1098         if (!MASTER(cr))
1099         {
1100             globalState = std::make_unique<t_state>();
1101         }
1102         broadcastStateWithoutDynamics(
1103                 cr->mpiDefaultCommunicator, DOMAINDECOMP(cr), PAR(cr), globalState.get());
1104     }
1105
1106     /* A parallel command line option consistency check that we can
1107        only do after any threads have started. */
1108     if (!PAR(cr)
1109         && (domdecOptions.numCells[XX] > 1 || domdecOptions.numCells[YY] > 1
1110             || domdecOptions.numCells[ZZ] > 1 || domdecOptions.numPmeRanks > 0))
1111     {
1112         gmx_fatal(FARGS,
1113                   "The -dd or -npme option request a parallel simulation, "
1114 #if !GMX_MPI
1115                   "but %s was compiled without threads or MPI enabled",
1116                   output_env_get_program_display_name(oenv));
1117 #elif GMX_THREAD_MPI
1118                   "but the number of MPI-threads (option -ntmpi) is not set or is 1");
1119 #else
1120                   "but %s was not started through mpirun/mpiexec or only one rank was requested "
1121                   "through mpirun/mpiexec",
1122                   output_env_get_program_display_name(oenv));
1123 #endif
1124     }
1125
1126     if (doRerun && (EI_ENERGY_MINIMIZATION(inputrec->eI) || IntegrationAlgorithm::NM == inputrec->eI))
1127     {
1128         gmx_fatal(FARGS,
1129                   "The .mdp file specified an energy mininization or normal mode algorithm, and "
1130                   "these are not compatible with mdrun -rerun");
1131     }
1132
1133     /* Object for collecting reasons for not using PME-only ranks */
1134     SeparatePmeRanksPermitted separatePmeRanksPermitted;
1135
1136     /* Permit MDModules to notify whether they want to use PME-only ranks */
1137     setupNotifier.notify(&separatePmeRanksPermitted);
1138
1139     /* If simulation is not using PME then disable PME-only ranks */
1140     if (!(EEL_PME(inputrec->coulombtype) || EVDW_PME(inputrec->vdwtype)))
1141     {
1142         separatePmeRanksPermitted.disablePmeRanks(
1143                 "PME-only ranks are requested, but the system does not use PME "
1144                 "for electrostatics or LJ");
1145     }
1146
1147     /* With NB GPUs we don't automatically use PME-only CPU ranks. PME ranks can
1148      * improve performance with many threads per GPU, since our OpenMP
1149      * scaling is bad, but it's difficult to automate the setup.
1150      */
1151     if (useGpuForNonbonded && domdecOptions.numPmeRanks < 0)
1152     {
1153         separatePmeRanksPermitted.disablePmeRanks(
1154                 "PME-only CPU ranks are not automatically used when "
1155                 "non-bonded interactions are computed on GPUs");
1156     }
1157
1158     /* If GPU is used for PME then only 1 PME rank is permitted */
1159     if (useGpuForPme && (domdecOptions.numPmeRanks < 0 || domdecOptions.numPmeRanks > 1))
1160     {
1161         separatePmeRanksPermitted.disablePmeRanks(
1162                 "PME GPU decomposition is not supported. Only one separate PME-only GPU rank "
1163                 "can be used.");
1164     }
1165
1166     /* Disable PME-only ranks if some parts of the code requested so and it's up to GROMACS to decide */
1167     if (!separatePmeRanksPermitted.permitSeparatePmeRanks() && domdecOptions.numPmeRanks < 0)
1168     {
1169         domdecOptions.numPmeRanks = 0;
1170         GMX_LOG(mdlog.info)
1171                 .asParagraph()
1172                 .appendText("Simulation will not use PME-only ranks because: "
1173                             + separatePmeRanksPermitted.reasonsWhyDisabled());
1174     }
1175
1176     /* If some parts of the code could not use PME-only ranks and
1177      * user explicitly used mdrun -npme option then throw an error */
1178     if (!separatePmeRanksPermitted.permitSeparatePmeRanks() && domdecOptions.numPmeRanks > 0)
1179     {
1180         gmx_fatal_collective(FARGS,
1181                              cr->mpiDefaultCommunicator,
1182                              MASTER(cr),
1183                              "Requested -npme %d option is not viable because: %s",
1184                              domdecOptions.numPmeRanks,
1185                              separatePmeRanksPermitted.reasonsWhyDisabled().c_str());
1186     }
1187
1188     /* NMR restraints must be initialized before load_checkpoint,
1189      * since with time averaging the history is added to t_state.
1190      * For proper consistency check we therefore need to extend
1191      * t_state here.
1192      * So the PME-only nodes (if present) will also initialize
1193      * the distance restraints.
1194      */
1195
1196     /* This needs to be called before read_checkpoint to extend the state */
1197     t_disresdata* disresdata;
1198     snew(disresdata, 1);
1199     init_disres(fplog,
1200                 mtop,
1201                 inputrec.get(),
1202                 DisResRunMode::MDRun,
1203                 MASTER(cr) ? DDRole::Master : DDRole::Agent,
1204                 PAR(cr) ? NumRanks::Multiple : NumRanks::Single,
1205                 cr->mpi_comm_mysim,
1206                 ms,
1207                 disresdata,
1208                 globalState.get(),
1209                 replExParams.exchangeInterval > 0);
1210
1211     t_oriresdata* oriresdata;
1212     snew(oriresdata, 1);
1213     init_orires(fplog, mtop, inputrec.get(), cr, ms, globalState.get(), oriresdata);
1214
1215     auto deform = prepareBoxDeformation(globalState != nullptr ? globalState->box : box,
1216                                         MASTER(cr) ? DDRole::Master : DDRole::Agent,
1217                                         PAR(cr) ? NumRanks::Multiple : NumRanks::Single,
1218                                         cr->mpi_comm_mygroup,
1219                                         *inputrec);
1220
1221 #if GMX_FAHCORE
1222     /* We have to remember the generation's first step before reading checkpoint.
1223        This way, we can report to the F@H core both the generation's first step
1224        and the restored first step, thus making it able to distinguish between
1225        an interruption/resume and start of the n-th generation simulation.
1226        Having this information, the F@H core can correctly calculate and report
1227        the progress.
1228      */
1229     int gen_first_step = 0;
1230     if (MASTER(cr))
1231     {
1232         gen_first_step = inputrec->init_step;
1233     }
1234 #endif
1235
1236     ObservablesHistory observablesHistory = {};
1237
1238     auto modularSimulatorCheckpointData = std::make_unique<ReadCheckpointDataHolder>();
1239     if (startingBehavior != StartingBehavior::NewSimulation)
1240     {
1241         /* Check if checkpoint file exists before doing continuation.
1242          * This way we can use identical input options for the first and subsequent runs...
1243          */
1244         if (mdrunOptions.numStepsCommandline > -2)
1245         {
1246             /* Temporarily set the number of steps to unlimited to avoid
1247              * triggering the nsteps check in load_checkpoint().
1248              * This hack will go away soon when the -nsteps option is removed.
1249              */
1250             inputrec->nsteps = -1;
1251         }
1252
1253         // Finish applying initial simulation state information from external sources on all ranks.
1254         // Reconcile checkpoint file data with Mdrunner state established up to this point.
1255         applyLocalState(*inputHolder_.get(),
1256                         logFileHandle,
1257                         cr,
1258                         domdecOptions.numCells,
1259                         inputrec.get(),
1260                         globalState.get(),
1261                         &observablesHistory,
1262                         mdrunOptions.reproducible,
1263                         mdModules_->notifiers(),
1264                         modularSimulatorCheckpointData.get(),
1265                         useModularSimulator);
1266         // TODO: (#3652) Synchronize filesystem state, SimulationInput contents, and program
1267         //  invariants
1268         //  on all code paths.
1269         // Write checkpoint or provide hook to update SimulationInput.
1270         // If there was a checkpoint file, SimulationInput contains more information
1271         // than if there wasn't. At this point, we have synchronized the in-memory
1272         // state with the filesystem state only for restarted simulations. We should
1273         // be calling applyLocalState unconditionally and expect that the completeness
1274         // of SimulationInput is not dependent on its creation method.
1275
1276         if (startingBehavior == StartingBehavior::RestartWithAppending && logFileHandle)
1277         {
1278             // Now we can start normal logging to the truncated log file.
1279             fplog = gmx_fio_getfp(logFileHandle);
1280             prepareLogAppending(fplog);
1281             logOwner = buildLogger(fplog, MASTER(cr));
1282             mdlog    = logOwner.logger();
1283         }
1284     }
1285
1286 #if GMX_FAHCORE
1287     if (MASTER(cr))
1288     {
1289         fcRegisterSteps(inputrec->nsteps + inputrec->init_step, gen_first_step);
1290     }
1291 #endif
1292
1293     if (mdrunOptions.numStepsCommandline > -2)
1294     {
1295         GMX_LOG(mdlog.info)
1296                 .asParagraph()
1297                 .appendText(
1298                         "The -nsteps functionality is deprecated, and may be removed in a future "
1299                         "version. "
1300                         "Consider using gmx convert-tpr -nsteps or changing the appropriate .mdp "
1301                         "file field.");
1302     }
1303     /* override nsteps with value set on the commandline */
1304     override_nsteps_cmdline(mdlog, mdrunOptions.numStepsCommandline, inputrec.get());
1305
1306     if (isSimulationMasterRank)
1307     {
1308         copy_mat(globalState->box, box);
1309     }
1310
1311     if (PAR(cr))
1312     {
1313         gmx_bcast(sizeof(box), box, cr->mpiDefaultCommunicator);
1314     }
1315
1316     if (inputrec->cutoff_scheme != CutoffScheme::Verlet)
1317     {
1318         gmx_fatal(FARGS,
1319                   "This group-scheme .tpr file can no longer be run by mdrun. Please update to the "
1320                   "Verlet scheme, or use an earlier version of GROMACS if necessary.");
1321     }
1322     /* Update rlist and nstlist. */
1323     /* Note: prepare_verlet_scheme is calling increaseNstlist(...), which (while attempting to
1324      * increase rlist) tries to check if the newly chosen value fits with the DD scheme. As this is
1325      * run before any DD scheme is set up, this check is never executed. See #3334 for more details.
1326      */
1327     prepare_verlet_scheme(fplog,
1328                           cr,
1329                           inputrec.get(),
1330                           nstlist_cmdline,
1331                           mtop,
1332                           box,
1333                           useGpuForNonbonded || (emulateGpuNonbonded == EmulateGpuNonbonded::Yes),
1334                           *hwinfo_->cpuInfo);
1335
1336     // This builder is necessary while we have multi-part construction
1337     // of DD. Before DD is constructed, we use the existence of
1338     // the builder object to indicate that further construction of DD
1339     // is needed.
1340     std::unique_ptr<DomainDecompositionBuilder> ddBuilder;
1341     if (useDomainDecomposition)
1342     {
1343         ddBuilder = std::make_unique<DomainDecompositionBuilder>(
1344                 mdlog,
1345                 cr,
1346                 domdecOptions,
1347                 mdrunOptions,
1348                 mtop,
1349                 *inputrec,
1350                 box,
1351                 positionsFromStatePointer(globalState.get()));
1352     }
1353     else
1354     {
1355         /* PME, if used, is done on all nodes with 1D decomposition */
1356         cr->nnodes     = cr->sizeOfDefaultCommunicator;
1357         cr->sim_nodeid = cr->rankInDefaultCommunicator;
1358         cr->nodeid     = cr->rankInDefaultCommunicator;
1359         cr->npmenodes  = 0;
1360         cr->duty       = (DUTY_PP | DUTY_PME);
1361
1362         if (inputrec->pbcType == PbcType::Screw)
1363         {
1364             gmx_fatal(FARGS, "pbc=screw is only implemented with domain decomposition");
1365         }
1366     }
1367
1368     // Produce the task assignment for this rank - done after DD is constructed
1369     GpuTaskAssignments gpuTaskAssignments = GpuTaskAssignmentsBuilder::build(
1370             availableDevices,
1371             userGpuTaskAssignment,
1372             *hwinfo_,
1373             simulationCommunicator,
1374             physicalNodeComm,
1375             nonbondedTarget,
1376             pmeTarget,
1377             bondedTarget,
1378             updateTarget,
1379             useGpuForNonbonded,
1380             useGpuForPme,
1381             thisRankHasDuty(cr, DUTY_PP),
1382             // TODO cr->duty & DUTY_PME should imply that a PME
1383             // algorithm is active, but currently does not.
1384             EEL_PME(inputrec->coulombtype) && thisRankHasDuty(cr, DUTY_PME));
1385
1386     // Get the device handles for the modules, nullptr when no task is assigned.
1387     int                deviceId   = -1;
1388     DeviceInformation* deviceInfo = gpuTaskAssignments.initDevice(&deviceId);
1389
1390     // timing enabling - TODO put this in gpu_utils (even though generally this is just option handling?)
1391     bool useTiming = true;
1392
1393     if (GMX_GPU_CUDA)
1394     {
1395         /* WARNING: CUDA timings are incorrect with multiple streams.
1396          *          This is the main reason why they are disabled by default.
1397          */
1398         // TODO: Consider turning on by default when we can detect nr of streams.
1399         useTiming = (getenv("GMX_ENABLE_GPU_TIMING") != nullptr);
1400     }
1401     else if (GMX_GPU_OPENCL)
1402     {
1403         useTiming = (getenv("GMX_DISABLE_GPU_TIMING") == nullptr);
1404     }
1405
1406     // TODO Currently this is always built, yet DD partition code
1407     // checks if it is built before using it. Probably it should
1408     // become an MDModule that is made only when another module
1409     // requires it (e.g. pull, CompEl, density fitting), so that we
1410     // don't update the local atom sets unilaterally every step.
1411     LocalAtomSetManager atomSets;
1412     if (ddBuilder)
1413     {
1414         // TODO Pass the GPU streams to ddBuilder to use in buffer
1415         // transfers (e.g. halo exchange)
1416         cr->dd = ddBuilder->build(&atomSets);
1417         // The builder's job is done, so destruct it
1418         ddBuilder.reset(nullptr);
1419         // Note that local state still does not exist yet.
1420     }
1421
1422     // The GPU update is decided here because we need to know whether the constraints or
1423     // SETTLEs can span accross the domain borders (i.e. whether or not update groups are
1424     // defined). This is only known after DD is initialized, hence decision on using GPU
1425     // update is done so late.
1426     try
1427     {
1428         const bool useUpdateGroups = cr->dd ? ddUsesUpdateGroups(*cr->dd) : false;
1429         const bool haveFrozenAtoms = inputrecFrozenAtoms(inputrec.get());
1430
1431         useGpuForUpdate = decideWhetherToUseGpuForUpdate(useDomainDecomposition,
1432                                                          useUpdateGroups,
1433                                                          pmeRunMode,
1434                                                          domdecOptions.numPmeRanks > 0,
1435                                                          useGpuForNonbonded,
1436                                                          updateTarget,
1437                                                          gpusWereDetected,
1438                                                          *inputrec,
1439                                                          mtop,
1440                                                          doEssentialDynamics,
1441                                                          gmx_mtop_ftype_count(mtop, F_ORIRES) > 0,
1442                                                          replExParams.exchangeInterval > 0,
1443                                                          haveFrozenAtoms,
1444                                                          doRerun,
1445                                                          devFlags,
1446                                                          mdlog);
1447     }
1448     GMX_CATCH_ALL_AND_EXIT_WITH_FATAL_ERROR
1449
1450     const bool printHostName = (cr->nnodes > 1);
1451     gpuTaskAssignments.reportGpuUsage(mdlog, printHostName, useGpuForBonded, pmeRunMode, useGpuForUpdate);
1452
1453     const bool disableNonbondedCalculation = (getenv("GMX_NO_NONBONDED") != nullptr);
1454     if (disableNonbondedCalculation)
1455     {
1456         /* turn off non-bonded calculations */
1457         GMX_LOG(mdlog.warning)
1458                 .asParagraph()
1459                 .appendText(
1460                         "Found environment variable GMX_NO_NONBONDED.\n"
1461                         "Disabling nonbonded calculations.");
1462     }
1463
1464     MdrunScheduleWorkload runScheduleWork;
1465
1466     bool useGpuDirectHalo = decideWhetherToUseGpuForHalo(devFlags,
1467                                                          havePPDomainDecomposition(cr),
1468                                                          useGpuForNonbonded,
1469                                                          useModularSimulator,
1470                                                          doRerun,
1471                                                          EI_ENERGY_MINIMIZATION(inputrec->eI));
1472
1473     // Also populates the simulation constant workload description.
1474     runScheduleWork.simulationWork = createSimulationWorkload(*inputrec,
1475                                                               disableNonbondedCalculation,
1476                                                               devFlags,
1477                                                               useGpuForNonbonded,
1478                                                               pmeRunMode,
1479                                                               useGpuForBonded,
1480                                                               useGpuForUpdate,
1481                                                               useGpuDirectHalo);
1482
1483     std::unique_ptr<DeviceStreamManager> deviceStreamManager = nullptr;
1484
1485     if (deviceInfo != nullptr)
1486     {
1487         if (DOMAINDECOMP(cr) && thisRankHasDuty(cr, DUTY_PP))
1488         {
1489             dd_setup_dlb_resource_sharing(cr, deviceId);
1490         }
1491         deviceStreamManager = std::make_unique<DeviceStreamManager>(
1492                 *deviceInfo, havePPDomainDecomposition(cr), runScheduleWork.simulationWork, useTiming);
1493     }
1494
1495     // If the user chose a task assignment, give them some hints
1496     // where appropriate.
1497     if (!userGpuTaskAssignment.empty())
1498     {
1499         gpuTaskAssignments.logPerformanceHints(mdlog, numAvailableDevices);
1500     }
1501
1502     if (PAR(cr))
1503     {
1504         /* After possible communicator splitting in make_dd_communicators.
1505          * we can set up the intra/inter node communication.
1506          */
1507         gmx_setup_nodecomm(fplog, cr);
1508     }
1509
1510 #if GMX_MPI
1511     if (isMultiSim(ms))
1512     {
1513         GMX_LOG(mdlog.warning)
1514                 .asParagraph()
1515                 .appendTextFormatted(
1516                         "This is simulation %d out of %d running as a composite GROMACS\n"
1517                         "multi-simulation job. Setup for this simulation:\n",
1518                         ms->simulationIndex_,
1519                         ms->numSimulations_);
1520     }
1521     GMX_LOG(mdlog.warning)
1522             .appendTextFormatted("Using %d MPI %s\n",
1523                                  cr->nnodes,
1524 #    if GMX_THREAD_MPI
1525                                  cr->nnodes == 1 ? "thread" : "threads"
1526 #    else
1527                                  cr->nnodes == 1 ? "process" : "processes"
1528 #    endif
1529             );
1530     fflush(stderr);
1531 #endif
1532
1533     // If mdrun -pin auto honors any affinity setting that already
1534     // exists. If so, it is nice to provide feedback about whether
1535     // that existing affinity setting was from OpenMP or something
1536     // else, so we run this code both before and after we initialize
1537     // the OpenMP support.
1538     gmx_check_thread_affinity_set(mdlog, &hw_opt, hwinfo_->nthreads_hw_avail, FALSE);
1539     /* Check and update the number of OpenMP threads requested */
1540     checkAndUpdateRequestedNumOpenmpThreads(
1541             &hw_opt, *hwinfo_, cr, ms, physicalNodeComm.size_, pmeRunMode, mtop, *inputrec);
1542
1543     gmx_omp_nthreads_init(mdlog,
1544                           cr,
1545                           hwinfo_->nthreads_hw_avail,
1546                           physicalNodeComm.size_,
1547                           hw_opt.nthreads_omp,
1548                           hw_opt.nthreads_omp_pme,
1549                           !thisRankHasDuty(cr, DUTY_PP));
1550
1551     const bool bEnableFPE = gmxShouldEnableFPExceptions();
1552     // FIXME - reconcile with gmx_feenableexcept() call from CommandLineModuleManager::run()
1553     if (bEnableFPE)
1554     {
1555         gmx_feenableexcept();
1556     }
1557
1558     /* Now that we know the setup is consistent, check for efficiency */
1559     check_resource_division_efficiency(
1560             hwinfo_, gpuTaskAssignments.thisRankHasAnyGpuTask(), mdrunOptions.ntompOptionIsSet, cr, mdlog);
1561
1562     /* getting number of PP/PME threads on this MPI / tMPI rank.
1563        PME: env variable should be read only on one node to make sure it is
1564        identical everywhere;
1565      */
1566     const int numThreadsOnThisRank = thisRankHasDuty(cr, DUTY_PP)
1567                                              ? gmx_omp_nthreads_get(ModuleMultiThread::Nonbonded)
1568                                              : gmx_omp_nthreads_get(ModuleMultiThread::Pme);
1569     checkHardwareOversubscription(
1570             numThreadsOnThisRank, cr->nodeid, *hwinfo_->hardwareTopology, physicalNodeComm, mdlog);
1571
1572     // Enable Peer access between GPUs where available
1573     // Only for DD, only master PP rank needs to perform setup, and only if thread MPI plus
1574     // any of the GPU communication features are active.
1575     if (DOMAINDECOMP(cr) && MASTER(cr) && thisRankHasDuty(cr, DUTY_PP) && GMX_THREAD_MPI
1576         && (runScheduleWork.simulationWork.useGpuHaloExchange
1577             || runScheduleWork.simulationWork.useGpuPmePpCommunication))
1578     {
1579         setupGpuDevicePeerAccess(gpuTaskAssignments.deviceIdsAssigned(), mdlog);
1580     }
1581
1582     if (hw_opt.threadAffinity != ThreadAffinity::Off)
1583     {
1584         /* Before setting affinity, check whether the affinity has changed
1585          * - which indicates that probably the OpenMP library has changed it
1586          * since we first checked).
1587          */
1588         gmx_check_thread_affinity_set(mdlog, &hw_opt, hwinfo_->nthreads_hw_avail, TRUE);
1589
1590         int numThreadsOnThisNode, intraNodeThreadOffset;
1591         analyzeThreadsOnThisNode(
1592                 physicalNodeComm, numThreadsOnThisRank, &numThreadsOnThisNode, &intraNodeThreadOffset);
1593
1594         /* Set the CPU affinity */
1595         gmx_set_thread_affinity(mdlog,
1596                                 cr,
1597                                 &hw_opt,
1598                                 *hwinfo_->hardwareTopology,
1599                                 numThreadsOnThisRank,
1600                                 numThreadsOnThisNode,
1601                                 intraNodeThreadOffset,
1602                                 nullptr);
1603     }
1604
1605     if (mdrunOptions.timingOptions.resetStep > -1)
1606     {
1607         GMX_LOG(mdlog.info)
1608                 .asParagraph()
1609                 .appendText(
1610                         "The -resetstep functionality is deprecated, and may be removed in a "
1611                         "future version.");
1612     }
1613     std::unique_ptr<gmx_wallcycle> wcycle =
1614             wallcycle_init(fplog, mdrunOptions.timingOptions.resetStep, cr);
1615
1616     if (PAR(cr))
1617     {
1618         /* Master synchronizes its value of reset_counters with all nodes
1619          * including PME only nodes */
1620         int64_t reset_counters = wcycle_get_reset_counters(wcycle.get());
1621         gmx_bcast(sizeof(reset_counters), &reset_counters, cr->mpi_comm_mysim);
1622         wcycle_set_reset_counters(wcycle.get(), reset_counters);
1623     }
1624
1625     // Membrane embedding must be initialized before we call init_forcerec()
1626     membedHolder.initializeMembed(fplog,
1627                                   filenames.size(),
1628                                   filenames.data(),
1629                                   &mtop,
1630                                   inputrec.get(),
1631                                   globalState.get(),
1632                                   cr,
1633                                   &mdrunOptions.checkpointOptions.period);
1634
1635     const bool               thisRankHasPmeGpuTask = gpuTaskAssignments.thisRankHasPmeGpuTask();
1636     std::unique_ptr<MDAtoms> mdAtoms;
1637     std::unique_ptr<VirtualSitesHandler> vsite;
1638     std::unique_ptr<GpuBonded>           gpuBonded;
1639
1640     t_nrnb nrnb;
1641     if (thisRankHasDuty(cr, DUTY_PP))
1642     {
1643         setupNotifier.notify(*cr);
1644         setupNotifier.notify(&atomSets);
1645         setupNotifier.notify(mtop);
1646         setupNotifier.notify(inputrec->pbcType);
1647         setupNotifier.notify(SimulationTimeStep{ inputrec->delta_t });
1648         /* Initiate forcerecord */
1649         fr                 = std::make_unique<t_forcerec>();
1650         fr->forceProviders = mdModules_->initForceProviders();
1651         init_forcerec(fplog,
1652                       mdlog,
1653                       fr.get(),
1654                       *inputrec,
1655                       mtop,
1656                       cr,
1657                       box,
1658                       opt2fn("-table", filenames.size(), filenames.data()),
1659                       opt2fn("-tablep", filenames.size(), filenames.data()),
1660                       opt2fns("-tableb", filenames.size(), filenames.data()),
1661                       pforce);
1662         // Dirty hack, for fixing disres and orires should be made mdmodules
1663         fr->fcdata->disres = disresdata;
1664         fr->fcdata->orires = oriresdata;
1665
1666         // Save a handle to device stream manager to use elsewhere in the code
1667         // TODO: Forcerec is not a correct place to store it.
1668         fr->deviceStreamManager = deviceStreamManager.get();
1669
1670         if (runScheduleWork.simulationWork.useGpuPmePpCommunication && !thisRankHasDuty(cr, DUTY_PME))
1671         {
1672             GMX_RELEASE_ASSERT(
1673                     deviceStreamManager != nullptr,
1674                     "GPU device stream manager should be valid in order to use PME-PP direct "
1675                     "communications.");
1676             GMX_RELEASE_ASSERT(
1677                     deviceStreamManager->streamIsValid(DeviceStreamType::PmePpTransfer),
1678                     "GPU PP-PME stream should be valid in order to use GPU PME-PP direct "
1679                     "communications.");
1680             fr->pmePpCommGpu = std::make_unique<gmx::PmePpCommGpu>(
1681                     cr->mpi_comm_mysim,
1682                     cr->dd->pme_nodeid,
1683                     deviceStreamManager->context(),
1684                     deviceStreamManager->stream(DeviceStreamType::PmePpTransfer));
1685         }
1686
1687         fr->nbv = Nbnxm::init_nb_verlet(mdlog,
1688                                         *inputrec,
1689                                         *fr,
1690                                         cr,
1691                                         *hwinfo_,
1692                                         runScheduleWork.simulationWork.useGpuNonbonded,
1693                                         deviceStreamManager.get(),
1694                                         mtop,
1695                                         box,
1696                                         wcycle.get());
1697         // TODO: Move the logic below to a GPU bonded builder
1698         if (runScheduleWork.simulationWork.useGpuBonded)
1699         {
1700             GMX_RELEASE_ASSERT(deviceStreamManager != nullptr,
1701                                "GPU device stream manager should be valid in order to use GPU "
1702                                "version of bonded forces.");
1703             gpuBonded = std::make_unique<GpuBonded>(
1704                     mtop.ffparams,
1705                     fr->ic->epsfac * fr->fudgeQQ,
1706                     deviceStreamManager->context(),
1707                     deviceStreamManager->bondedStream(havePPDomainDecomposition(cr)),
1708                     wcycle.get());
1709             fr->gpuBonded = gpuBonded.get();
1710         }
1711
1712         /* Initialize the mdAtoms structure.
1713          * mdAtoms is not filled with atom data,
1714          * as this can not be done now with domain decomposition.
1715          */
1716         mdAtoms = makeMDAtoms(fplog, mtop, *inputrec, thisRankHasPmeGpuTask);
1717         if (globalState && thisRankHasPmeGpuTask)
1718         {
1719             // The pinning of coordinates in the global state object works, because we only use
1720             // PME on GPU without DD or on a separate PME rank, and because the local state pointer
1721             // points to the global state object without DD.
1722             // FIXME: MD and EM separately set up the local state - this should happen in the same
1723             // function, which should also perform the pinning.
1724             changePinningPolicy(&globalState->x, pme_get_pinning_policy());
1725         }
1726
1727         /* Initialize the virtual site communication */
1728         vsite = makeVirtualSitesHandler(mtop, cr, fr->pbcType);
1729
1730         calc_shifts(box, fr->shift_vec);
1731
1732         /* With periodic molecules the charge groups should be whole at start up
1733          * and the virtual sites should not be far from their proper positions.
1734          */
1735         if (!inputrec->bContinuation && MASTER(cr)
1736             && !(inputrec->pbcType != PbcType::No && inputrec->bPeriodicMols))
1737         {
1738             /* Make molecules whole at start of run */
1739             if (fr->pbcType != PbcType::No)
1740             {
1741                 do_pbc_first_mtop(fplog, inputrec->pbcType, box, &mtop, globalState->x.rvec_array());
1742             }
1743             if (vsite)
1744             {
1745                 /* Correct initial vsite positions are required
1746                  * for the initial distribution in the domain decomposition
1747                  * and for the initial shell prediction.
1748                  */
1749                 constructVirtualSitesGlobal(mtop, globalState->x);
1750             }
1751         }
1752
1753         if (EEL_PME(fr->ic->eeltype) || EVDW_PME(fr->ic->vdwtype))
1754         {
1755             ewaldcoeff_q  = fr->ic->ewaldcoeff_q;
1756             ewaldcoeff_lj = fr->ic->ewaldcoeff_lj;
1757         }
1758     }
1759     else
1760     {
1761         /* This is a PME only node */
1762
1763         GMX_ASSERT(globalState == nullptr,
1764                    "We don't need the state on a PME only rank and expect it to be unitialized");
1765
1766         ewaldcoeff_q  = calc_ewaldcoeff_q(inputrec->rcoulomb, inputrec->ewald_rtol);
1767         ewaldcoeff_lj = calc_ewaldcoeff_lj(inputrec->rvdw, inputrec->ewald_rtol_lj);
1768     }
1769
1770     gmx_pme_t* sepPmeData = nullptr;
1771     // This reference hides the fact that PME data is owned by runner on PME-only ranks and by forcerec on other ranks
1772     GMX_ASSERT(thisRankHasDuty(cr, DUTY_PP) == (fr != nullptr),
1773                "Double-checking that only PME-only ranks have no forcerec");
1774     gmx_pme_t*& pmedata = fr ? fr->pmedata : sepPmeData;
1775
1776     // TODO should live in ewald module once its testing is improved
1777     //
1778     // Later, this program could contain kernels that might be later
1779     // re-used as auto-tuning progresses, or subsequent simulations
1780     // are invoked.
1781     PmeGpuProgramStorage pmeGpuProgram;
1782     if (thisRankHasPmeGpuTask)
1783     {
1784         GMX_RELEASE_ASSERT(
1785                 (deviceStreamManager != nullptr),
1786                 "GPU device stream manager should be initialized in order to use GPU for PME.");
1787         GMX_RELEASE_ASSERT((deviceInfo != nullptr),
1788                            "GPU device should be initialized in order to use GPU for PME.");
1789         pmeGpuProgram = buildPmeGpuProgram(deviceStreamManager->context());
1790     }
1791
1792     /* Initiate PME if necessary,
1793      * either on all nodes or on dedicated PME nodes only. */
1794     if (EEL_PME(inputrec->coulombtype) || EVDW_PME(inputrec->vdwtype))
1795     {
1796         if (mdAtoms && mdAtoms->mdatoms())
1797         {
1798             nChargePerturbed = mdAtoms->mdatoms()->nChargePerturbed;
1799             if (EVDW_PME(inputrec->vdwtype))
1800             {
1801                 nTypePerturbed = mdAtoms->mdatoms()->nTypePerturbed;
1802             }
1803         }
1804         if (cr->npmenodes > 0)
1805         {
1806             /* The PME only nodes need to know nChargePerturbed(FEP on Q) and nTypePerturbed(FEP on LJ)*/
1807             gmx_bcast(sizeof(nChargePerturbed), &nChargePerturbed, cr->mpi_comm_mysim);
1808             gmx_bcast(sizeof(nTypePerturbed), &nTypePerturbed, cr->mpi_comm_mysim);
1809         }
1810
1811         if (thisRankHasDuty(cr, DUTY_PME))
1812         {
1813             try
1814             {
1815                 // TODO: This should be in the builder.
1816                 GMX_RELEASE_ASSERT(!runScheduleWork.simulationWork.useGpuPme
1817                                            || (deviceStreamManager != nullptr),
1818                                    "Device stream manager should be valid in order to use GPU "
1819                                    "version of PME.");
1820                 GMX_RELEASE_ASSERT(
1821                         !runScheduleWork.simulationWork.useGpuPme
1822                                 || deviceStreamManager->streamIsValid(DeviceStreamType::Pme),
1823                         "GPU PME stream should be valid in order to use GPU version of PME.");
1824
1825                 const DeviceContext* deviceContext = runScheduleWork.simulationWork.useGpuPme
1826                                                              ? &deviceStreamManager->context()
1827                                                              : nullptr;
1828                 const DeviceStream* pmeStream =
1829                         runScheduleWork.simulationWork.useGpuPme
1830                                 ? &deviceStreamManager->stream(DeviceStreamType::Pme)
1831                                 : nullptr;
1832
1833                 pmedata = gmx_pme_init(cr,
1834                                        getNumPmeDomains(cr->dd),
1835                                        inputrec.get(),
1836                                        nChargePerturbed != 0,
1837                                        nTypePerturbed != 0,
1838                                        mdrunOptions.reproducible,
1839                                        ewaldcoeff_q,
1840                                        ewaldcoeff_lj,
1841                                        gmx_omp_nthreads_get(ModuleMultiThread::Pme),
1842                                        pmeRunMode,
1843                                        nullptr,
1844                                        deviceContext,
1845                                        pmeStream,
1846                                        pmeGpuProgram.get(),
1847                                        mdlog);
1848             }
1849             GMX_CATCH_ALL_AND_EXIT_WITH_FATAL_ERROR
1850         }
1851     }
1852
1853
1854     if (EI_DYNAMICS(inputrec->eI))
1855     {
1856         /* Turn on signal handling on all nodes */
1857         /*
1858          * (A user signal from the PME nodes (if any)
1859          * is communicated to the PP nodes.
1860          */
1861         signal_handler_install();
1862     }
1863
1864     pull_t* pull_work = nullptr;
1865     if (thisRankHasDuty(cr, DUTY_PP))
1866     {
1867         /* Assumes uniform use of the number of OpenMP threads */
1868         walltime_accounting = walltime_accounting_init(gmx_omp_nthreads_get(ModuleMultiThread::Default));
1869
1870         if (inputrec->bPull)
1871         {
1872             /* Initialize pull code */
1873             pull_work = init_pull(fplog,
1874                                   inputrec->pull.get(),
1875                                   inputrec.get(),
1876                                   mtop,
1877                                   cr,
1878                                   &atomSets,
1879                                   inputrec->fepvals->init_lambda);
1880             if (inputrec->pull->bXOutAverage || inputrec->pull->bFOutAverage)
1881             {
1882                 initPullHistory(pull_work, &observablesHistory);
1883             }
1884             if (EI_DYNAMICS(inputrec->eI) && MASTER(cr))
1885             {
1886                 init_pull_output_files(pull_work, filenames.size(), filenames.data(), oenv, startingBehavior);
1887             }
1888         }
1889
1890         std::unique_ptr<EnforcedRotation> enforcedRotation;
1891         if (inputrec->bRot)
1892         {
1893             /* Initialize enforced rotation code */
1894             enforcedRotation = init_rot(fplog,
1895                                         inputrec.get(),
1896                                         filenames.size(),
1897                                         filenames.data(),
1898                                         cr,
1899                                         &atomSets,
1900                                         globalState.get(),
1901                                         mtop,
1902                                         oenv,
1903                                         mdrunOptions,
1904                                         startingBehavior);
1905         }
1906
1907         t_swap* swap = nullptr;
1908         if (inputrec->eSwapCoords != SwapType::No)
1909         {
1910             /* Initialize ion swapping code */
1911             swap = init_swapcoords(fplog,
1912                                    inputrec.get(),
1913                                    opt2fn_master("-swap", filenames.size(), filenames.data(), cr),
1914                                    mtop,
1915                                    globalState.get(),
1916                                    &observablesHistory,
1917                                    cr,
1918                                    &atomSets,
1919                                    oenv,
1920                                    mdrunOptions,
1921                                    startingBehavior);
1922         }
1923
1924         /* Let makeConstraints know whether we have essential dynamics constraints. */
1925         auto constr = makeConstraints(
1926                 mtop, *inputrec, pull_work, doEssentialDynamics, fplog, cr, ms, &nrnb, wcycle.get(), fr->bMolPBC);
1927
1928         /* Energy terms and groups */
1929         gmx_enerdata_t enerd(mtop.groups.groups[SimulationAtomGroupType::EnergyOutput].size(),
1930                              inputrec->fepvals->n_lambda);
1931
1932         // cos acceleration is only supported by md, but older tpr
1933         // files might still combine it with other integrators
1934         GMX_RELEASE_ASSERT(inputrec->cos_accel == 0.0 || inputrec->eI == IntegrationAlgorithm::MD,
1935                            "cos_acceleration is only supported by integrator=md");
1936
1937         /* Kinetic energy data */
1938         gmx_ekindata_t ekind(inputrec->opts.ngtc,
1939                              inputrec->cos_accel,
1940                              gmx_omp_nthreads_get(ModuleMultiThread::Update));
1941
1942         /* Set up interactive MD (IMD) */
1943         auto imdSession = makeImdSession(inputrec.get(),
1944                                          cr,
1945                                          wcycle.get(),
1946                                          &enerd,
1947                                          ms,
1948                                          mtop,
1949                                          mdlog,
1950                                          MASTER(cr) ? globalState->x : gmx::ArrayRef<gmx::RVec>(),
1951                                          filenames.size(),
1952                                          filenames.data(),
1953                                          oenv,
1954                                          mdrunOptions.imdOptions,
1955                                          startingBehavior);
1956
1957         if (DOMAINDECOMP(cr))
1958         {
1959             GMX_RELEASE_ASSERT(fr, "fr was NULL while cr->duty was DUTY_PP");
1960             /* This call is not included in init_domain_decomposition mainly
1961              * because fr->cginfo_mb is set later.
1962              */
1963             dd_init_bondeds(
1964                     fplog, cr->dd, mtop, vsite.get(), *inputrec, domdecOptions.ddBondedChecking, fr->cginfo_mb);
1965         }
1966
1967         if (runScheduleWork.simulationWork.useGpuBufferOps)
1968         {
1969             fr->gpuForceReduction[gmx::AtomLocality::Local] = std::make_unique<gmx::GpuForceReduction>(
1970                     deviceStreamManager->context(),
1971                     deviceStreamManager->stream(gmx::DeviceStreamType::NonBondedLocal),
1972                     wcycle.get());
1973             fr->gpuForceReduction[gmx::AtomLocality::NonLocal] = std::make_unique<gmx::GpuForceReduction>(
1974                     deviceStreamManager->context(),
1975                     deviceStreamManager->stream(gmx::DeviceStreamType::NonBondedNonLocal),
1976                     wcycle.get());
1977         }
1978
1979         std::unique_ptr<gmx::StatePropagatorDataGpu> stateGpu;
1980         if (gpusWereDetected
1981             && ((runScheduleWork.simulationWork.useGpuPme && thisRankHasDuty(cr, DUTY_PME))
1982                 || runScheduleWork.simulationWork.useGpuBufferOps))
1983         {
1984             GpuApiCallBehavior transferKind =
1985                     (inputrec->eI == IntegrationAlgorithm::MD && !doRerun && !useModularSimulator)
1986                             ? GpuApiCallBehavior::Async
1987                             : GpuApiCallBehavior::Sync;
1988             GMX_RELEASE_ASSERT(deviceStreamManager != nullptr,
1989                                "GPU device stream manager should be initialized to use GPU.");
1990             stateGpu = std::make_unique<gmx::StatePropagatorDataGpu>(
1991                     *deviceStreamManager, transferKind, pme_gpu_get_block_size(fr->pmedata), wcycle.get());
1992             fr->stateGpu = stateGpu.get();
1993         }
1994
1995         GMX_ASSERT(stopHandlerBuilder_, "Runner must provide StopHandlerBuilder to simulator.");
1996         SimulatorBuilder simulatorBuilder;
1997
1998         simulatorBuilder.add(SimulatorStateData(globalState.get(), &observablesHistory, &enerd, &ekind));
1999         simulatorBuilder.add(std::move(membedHolder));
2000         simulatorBuilder.add(std::move(stopHandlerBuilder_));
2001         simulatorBuilder.add(SimulatorConfig(mdrunOptions, startingBehavior, &runScheduleWork));
2002
2003
2004         simulatorBuilder.add(SimulatorEnv(fplog, cr, ms, mdlog, oenv));
2005         simulatorBuilder.add(Profiling(&nrnb, walltime_accounting, wcycle.get()));
2006         simulatorBuilder.add(ConstraintsParam(
2007                 constr.get(), enforcedRotation ? enforcedRotation->getLegacyEnfrot() : nullptr, vsite.get()));
2008         // TODO: Separate `fr` to a separate add, and make the `build` handle the coupling sensibly.
2009         simulatorBuilder.add(LegacyInput(
2010                 static_cast<int>(filenames.size()), filenames.data(), inputrec.get(), fr.get()));
2011         simulatorBuilder.add(ReplicaExchangeParameters(replExParams));
2012         simulatorBuilder.add(InteractiveMD(imdSession.get()));
2013         simulatorBuilder.add(SimulatorModules(mdModules_->outputProvider(), mdModules_->notifiers()));
2014         simulatorBuilder.add(CenterOfMassPulling(pull_work));
2015         // Todo move to an MDModule
2016         simulatorBuilder.add(IonSwapping(swap));
2017         simulatorBuilder.add(TopologyData(mtop, mdAtoms.get()));
2018         simulatorBuilder.add(BoxDeformationHandle(deform.get()));
2019         simulatorBuilder.add(std::move(modularSimulatorCheckpointData));
2020
2021         // build and run simulator object based on user-input
2022         auto simulator = simulatorBuilder.build(useModularSimulator);
2023         simulator->run();
2024
2025         if (fr->pmePpCommGpu)
2026         {
2027             // destroy object since it is no longer required. (This needs to be done while the GPU context still exists.)
2028             fr->pmePpCommGpu.reset();
2029         }
2030
2031         if (inputrec->bPull)
2032         {
2033             finish_pull(pull_work);
2034         }
2035         finish_swapcoords(swap);
2036     }
2037     else
2038     {
2039         GMX_RELEASE_ASSERT(pmedata, "pmedata was NULL while cr->duty was not DUTY_PP");
2040         /* do PME only */
2041         walltime_accounting = walltime_accounting_init(gmx_omp_nthreads_get(ModuleMultiThread::Pme));
2042         gmx_pmeonly(pmedata,
2043                     cr,
2044                     &nrnb,
2045                     wcycle.get(),
2046                     walltime_accounting,
2047                     inputrec.get(),
2048                     pmeRunMode,
2049                     runScheduleWork.simulationWork.useGpuPmePpCommunication,
2050                     deviceStreamManager.get());
2051     }
2052
2053     wallcycle_stop(wcycle.get(), WallCycleCounter::Run);
2054
2055     /* Finish up, write some stuff
2056      * if rerunMD, don't write last frame again
2057      */
2058     finish_run(fplog,
2059                mdlog,
2060                cr,
2061                *inputrec,
2062                &nrnb,
2063                wcycle.get(),
2064                walltime_accounting,
2065                fr ? fr->nbv.get() : nullptr,
2066                pmedata,
2067                EI_DYNAMICS(inputrec->eI) && !isMultiSim(ms));
2068
2069
2070     deviceStreamManager.reset(nullptr);
2071     // Free PME data
2072     if (pmedata)
2073     {
2074         gmx_pme_destroy(pmedata);
2075         pmedata = nullptr;
2076     }
2077
2078     // FIXME: this is only here to manually unpin mdAtoms->chargeA_ and state->x,
2079     // before we destroy the GPU context(s)
2080     // Pinned buffers are associated with contexts in CUDA.
2081     // As soon as we destroy GPU contexts after mdrunner() exits, these lines should go.
2082     mdAtoms.reset(nullptr);
2083     globalState.reset(nullptr);
2084     mdModules_.reset(nullptr); // destruct force providers here as they might also use the GPU
2085     gpuBonded.reset(nullptr);
2086     fr.reset(nullptr); // destruct forcerec before gpu
2087     // TODO convert to C++ so we can get rid of these frees
2088     sfree(disresdata);
2089     sfree(oriresdata);
2090
2091     if (!hwinfo_->deviceInfoList.empty())
2092     {
2093         /* stop the GPU profiler (only CUDA) */
2094         stopGpuProfiler();
2095     }
2096
2097     /* With tMPI we need to wait for all ranks to finish deallocation before
2098      * destroying the CUDA context as some tMPI ranks may be sharing
2099      * GPU and context.
2100      *
2101      * This is not a concern in OpenCL where we use one context per rank.
2102      *
2103      * Note: it is safe to not call the barrier on the ranks which do not use GPU,
2104      * but it is easier and more futureproof to call it on the whole node.
2105      *
2106      * Note that this function needs to be called even if GPUs are not used
2107      * in this run because the PME ranks have no knowledge of whether GPUs
2108      * are used or not, but all ranks need to enter the barrier below.
2109      * \todo Remove this physical node barrier after making sure
2110      * that it's not needed anymore (with a shared GPU run).
2111      */
2112     if (GMX_THREAD_MPI)
2113     {
2114         physicalNodeComm.barrier();
2115     }
2116
2117     if (!devFlags.usingCudaAwareMpi)
2118     {
2119         // Don't reset GPU in case of CUDA-AWARE MPI
2120         // UCX creates CUDA buffers which are cleaned-up as part of MPI_Finalize()
2121         // resetting the device before MPI_Finalize() results in crashes inside UCX
2122         releaseDevice(deviceInfo);
2123     }
2124
2125     /* Does what it says */
2126     print_date_and_time(fplog, cr->nodeid, "Finished mdrun", gmx_gettime());
2127     walltime_accounting_destroy(walltime_accounting);
2128
2129     // Ensure log file content is written
2130     if (logFileHandle)
2131     {
2132         gmx_fio_flush(logFileHandle);
2133     }
2134
2135     /* Reset FPEs (important for unit tests) by disabling them. Assumes no
2136      * exceptions were enabled before function was called. */
2137     if (bEnableFPE)
2138     {
2139         gmx_fedisableexcept();
2140     }
2141
2142     auto rc = static_cast<int>(gmx_get_stop_condition());
2143
2144 #if GMX_THREAD_MPI
2145     /* we need to join all threads. The sub-threads join when they
2146        exit this function, but the master thread needs to be told to
2147        wait for that. */
2148     if (MASTER(cr))
2149     {
2150         tMPI_Finalize();
2151     }
2152 #endif
2153     return rc;
2154 } // namespace gmx
2155
2156 Mdrunner::~Mdrunner()
2157 {
2158     // Clean up of the Manager.
2159     // This will end up getting called on every thread-MPI rank, which is unnecessary,
2160     // but okay as long as threads synchronize some time before adding or accessing
2161     // a new set of restraints.
2162     if (restraintManager_)
2163     {
2164         restraintManager_->clear();
2165         GMX_ASSERT(restraintManager_->countRestraints() == 0,
2166                    "restraints added during runner life time should be cleared at runner "
2167                    "destruction.");
2168     }
2169 };
2170
2171 void Mdrunner::addPotential(std::shared_ptr<gmx::IRestraintPotential> puller, const std::string& name)
2172 {
2173     GMX_ASSERT(restraintManager_, "Mdrunner must have a restraint manager.");
2174     // Not sure if this should be logged through the md logger or something else,
2175     // but it is helpful to have some sort of INFO level message sent somewhere.
2176     //    std::cout << "Registering restraint named " << name << std::endl;
2177
2178     // When multiple restraints are used, it may be wasteful to register them separately.
2179     // Maybe instead register an entire Restraint Manager as a force provider.
2180     restraintManager_->addToSpec(std::move(puller), name);
2181 }
2182
2183 Mdrunner::Mdrunner(std::unique_ptr<MDModules> mdModules) : mdModules_(std::move(mdModules)) {}
2184
2185 Mdrunner::Mdrunner(Mdrunner&&) noexcept = default;
2186
2187 //NOLINTNEXTLINE(performance-noexcept-move-constructor) working around GCC bug 58265 in CentOS 7
2188 Mdrunner& Mdrunner::operator=(Mdrunner&& /*handle*/) noexcept(BUGFREE_NOEXCEPT_STRING) = default;
2189
2190 class Mdrunner::BuilderImplementation
2191 {
2192 public:
2193     BuilderImplementation() = delete;
2194     BuilderImplementation(std::unique_ptr<MDModules> mdModules, compat::not_null<SimulationContext*> context);
2195     ~BuilderImplementation();
2196
2197     BuilderImplementation& setExtraMdrunOptions(const MdrunOptions& options,
2198                                                 real                forceWarningThreshold,
2199                                                 StartingBehavior    startingBehavior);
2200
2201     void addHardwareDetectionResult(const gmx_hw_info_t* hwinfo);
2202
2203     void addDomdec(const DomdecOptions& options);
2204
2205     void addInput(SimulationInputHandle inputHolder);
2206
2207     void addVerletList(int nstlist);
2208
2209     void addReplicaExchange(const ReplicaExchangeParameters& params);
2210
2211     void addNonBonded(const char* nbpu_opt);
2212
2213     void addPME(const char* pme_opt_, const char* pme_fft_opt_);
2214
2215     void addBondedTaskAssignment(const char* bonded_opt);
2216
2217     void addUpdateTaskAssignment(const char* update_opt);
2218
2219     void addHardwareOptions(const gmx_hw_opt_t& hardwareOptions);
2220
2221     void addFilenames(ArrayRef<const t_filenm> filenames);
2222
2223     void addOutputEnvironment(gmx_output_env_t* outputEnvironment);
2224
2225     void addLogFile(t_fileio* logFileHandle);
2226
2227     void addStopHandlerBuilder(std::unique_ptr<StopHandlerBuilder> builder);
2228
2229     Mdrunner build();
2230
2231 private:
2232     // Default parameters copied from runner.h
2233     // \todo Clarify source(s) of default parameters.
2234
2235     const char* nbpu_opt_    = nullptr;
2236     const char* pme_opt_     = nullptr;
2237     const char* pme_fft_opt_ = nullptr;
2238     const char* bonded_opt_  = nullptr;
2239     const char* update_opt_  = nullptr;
2240
2241     MdrunOptions mdrunOptions_;
2242
2243     DomdecOptions domdecOptions_;
2244
2245     ReplicaExchangeParameters replicaExchangeParameters_;
2246
2247     //! Command-line override for the duration of a neighbor list with the Verlet scheme.
2248     int nstlist_ = 0;
2249
2250     //! World communicator, used for hardware detection and task assignment
2251     MPI_Comm libraryWorldCommunicator_ = MPI_COMM_NULL;
2252
2253     //! Multisim communicator handle.
2254     gmx_multisim_t* multiSimulation_;
2255
2256     //! mdrun communicator
2257     MPI_Comm simulationCommunicator_ = MPI_COMM_NULL;
2258
2259     //! Print a warning if any force is larger than this (in kJ/mol nm).
2260     real forceWarningThreshold_ = -1;
2261
2262     //! Whether the simulation will start afresh, or restart with/without appending.
2263     StartingBehavior startingBehavior_ = StartingBehavior::NewSimulation;
2264
2265     //! The modules that comprise the functionality of mdrun.
2266     std::unique_ptr<MDModules> mdModules_;
2267
2268     //! Detected hardware.
2269     const gmx_hw_info_t* hwinfo_ = nullptr;
2270
2271     //! \brief Parallelism information.
2272     gmx_hw_opt_t hardwareOptions_;
2273
2274     //! filename options for simulation.
2275     ArrayRef<const t_filenm> filenames_;
2276
2277     /*! \brief Handle to output environment.
2278      *
2279      * \todo gmx_output_env_t needs lifetime management.
2280      */
2281     gmx_output_env_t* outputEnvironment_ = nullptr;
2282
2283     /*! \brief Non-owning handle to MD log file.
2284      *
2285      * \todo Context should own output facilities for client.
2286      * \todo Improve log file handle management.
2287      * \internal
2288      * Code managing the FILE* relies on the ability to set it to
2289      * nullptr to check whether the filehandle is valid.
2290      */
2291     t_fileio* logFileHandle_ = nullptr;
2292
2293     /*!
2294      * \brief Builder for simulation stop signal handler.
2295      */
2296     std::unique_ptr<StopHandlerBuilder> stopHandlerBuilder_ = nullptr;
2297
2298     /*!
2299      * \brief Sources for initial simulation state.
2300      *
2301      * See issue #3652 for near-term refinements to the SimulationInput interface.
2302      *
2303      * See issue #3379 for broader discussion on API aspects of simulation inputs and outputs.
2304      */
2305     SimulationInputHandle inputHolder_;
2306 };
2307
2308 Mdrunner::BuilderImplementation::BuilderImplementation(std::unique_ptr<MDModules> mdModules,
2309                                                        compat::not_null<SimulationContext*> context) :
2310     mdModules_(std::move(mdModules))
2311 {
2312     libraryWorldCommunicator_ = context->libraryWorldCommunicator_;
2313     simulationCommunicator_   = context->simulationCommunicator_;
2314     multiSimulation_          = context->multiSimulation_.get();
2315 }
2316
2317 Mdrunner::BuilderImplementation::~BuilderImplementation() = default;
2318
2319 Mdrunner::BuilderImplementation&
2320 Mdrunner::BuilderImplementation::setExtraMdrunOptions(const MdrunOptions&    options,
2321                                                       const real             forceWarningThreshold,
2322                                                       const StartingBehavior startingBehavior)
2323 {
2324     mdrunOptions_          = options;
2325     forceWarningThreshold_ = forceWarningThreshold;
2326     startingBehavior_      = startingBehavior;
2327     return *this;
2328 }
2329
2330 void Mdrunner::BuilderImplementation::addDomdec(const DomdecOptions& options)
2331 {
2332     domdecOptions_ = options;
2333 }
2334
2335 void Mdrunner::BuilderImplementation::addVerletList(int nstlist)
2336 {
2337     nstlist_ = nstlist;
2338 }
2339
2340 void Mdrunner::BuilderImplementation::addReplicaExchange(const ReplicaExchangeParameters& params)
2341 {
2342     replicaExchangeParameters_ = params;
2343 }
2344
2345 Mdrunner Mdrunner::BuilderImplementation::build()
2346 {
2347     auto newRunner = Mdrunner(std::move(mdModules_));
2348
2349     newRunner.mdrunOptions     = mdrunOptions_;
2350     newRunner.pforce           = forceWarningThreshold_;
2351     newRunner.startingBehavior = startingBehavior_;
2352     newRunner.domdecOptions    = domdecOptions_;
2353
2354     // \todo determine an invariant to check or confirm that all gmx_hw_opt_t objects are valid
2355     newRunner.hw_opt = hardwareOptions_;
2356
2357     // No invariant to check. This parameter exists to optionally override other behavior.
2358     newRunner.nstlist_cmdline = nstlist_;
2359
2360     newRunner.replExParams = replicaExchangeParameters_;
2361
2362     newRunner.filenames = filenames_;
2363
2364     newRunner.libraryWorldCommunicator = libraryWorldCommunicator_;
2365
2366     newRunner.simulationCommunicator = simulationCommunicator_;
2367
2368     // nullptr is a valid value for the multisim handle
2369     newRunner.ms = multiSimulation_;
2370
2371     if (hwinfo_)
2372     {
2373         newRunner.hwinfo_ = hwinfo_;
2374     }
2375     else
2376     {
2377         GMX_THROW(gmx::APIError(
2378                 "MdrunnerBuilder::addHardwareDetectionResult() is required before build()"));
2379     }
2380
2381     if (inputHolder_)
2382     {
2383         newRunner.inputHolder_ = std::move(inputHolder_);
2384     }
2385     else
2386     {
2387         GMX_THROW(gmx::APIError("MdrunnerBuilder::addInput() is required before build()."));
2388     }
2389
2390     // \todo Clarify ownership and lifetime management for gmx_output_env_t
2391     // \todo Update sanity checking when output environment has clearly specified invariants.
2392     // Initialization and default values for oenv are not well specified in the current version.
2393     if (outputEnvironment_)
2394     {
2395         newRunner.oenv = outputEnvironment_;
2396     }
2397     else
2398     {
2399         GMX_THROW(gmx::APIError(
2400                 "MdrunnerBuilder::addOutputEnvironment() is required before build()"));
2401     }
2402
2403     newRunner.logFileHandle = logFileHandle_;
2404
2405     if (nbpu_opt_)
2406     {
2407         newRunner.nbpu_opt = nbpu_opt_;
2408     }
2409     else
2410     {
2411         GMX_THROW(gmx::APIError("MdrunnerBuilder::addNonBonded() is required before build()"));
2412     }
2413
2414     if (pme_opt_ && pme_fft_opt_)
2415     {
2416         newRunner.pme_opt     = pme_opt_;
2417         newRunner.pme_fft_opt = pme_fft_opt_;
2418     }
2419     else
2420     {
2421         GMX_THROW(gmx::APIError("MdrunnerBuilder::addElectrostatics() is required before build()"));
2422     }
2423
2424     if (bonded_opt_)
2425     {
2426         newRunner.bonded_opt = bonded_opt_;
2427     }
2428     else
2429     {
2430         GMX_THROW(gmx::APIError(
2431                 "MdrunnerBuilder::addBondedTaskAssignment() is required before build()"));
2432     }
2433
2434     if (update_opt_)
2435     {
2436         newRunner.update_opt = update_opt_;
2437     }
2438     else
2439     {
2440         GMX_THROW(gmx::APIError(
2441                 "MdrunnerBuilder::addUpdateTaskAssignment() is required before build()  "));
2442     }
2443
2444
2445     newRunner.restraintManager_ = std::make_unique<gmx::RestraintManager>();
2446
2447     if (stopHandlerBuilder_)
2448     {
2449         newRunner.stopHandlerBuilder_ = std::move(stopHandlerBuilder_);
2450     }
2451     else
2452     {
2453         newRunner.stopHandlerBuilder_ = std::make_unique<StopHandlerBuilder>();
2454     }
2455
2456     return newRunner;
2457 }
2458
2459 void Mdrunner::BuilderImplementation::addHardwareDetectionResult(const gmx_hw_info_t* hwinfo)
2460 {
2461     hwinfo_ = hwinfo;
2462 }
2463
2464 void Mdrunner::BuilderImplementation::addNonBonded(const char* nbpu_opt)
2465 {
2466     nbpu_opt_ = nbpu_opt;
2467 }
2468
2469 void Mdrunner::BuilderImplementation::addPME(const char* pme_opt, const char* pme_fft_opt)
2470 {
2471     pme_opt_     = pme_opt;
2472     pme_fft_opt_ = pme_fft_opt;
2473 }
2474
2475 void Mdrunner::BuilderImplementation::addBondedTaskAssignment(const char* bonded_opt)
2476 {
2477     bonded_opt_ = bonded_opt;
2478 }
2479
2480 void Mdrunner::BuilderImplementation::addUpdateTaskAssignment(const char* update_opt)
2481 {
2482     update_opt_ = update_opt;
2483 }
2484
2485 void Mdrunner::BuilderImplementation::addHardwareOptions(const gmx_hw_opt_t& hardwareOptions)
2486 {
2487     hardwareOptions_ = hardwareOptions;
2488 }
2489
2490 void Mdrunner::BuilderImplementation::addFilenames(ArrayRef<const t_filenm> filenames)
2491 {
2492     filenames_ = filenames;
2493 }
2494
2495 void Mdrunner::BuilderImplementation::addOutputEnvironment(gmx_output_env_t* outputEnvironment)
2496 {
2497     outputEnvironment_ = outputEnvironment;
2498 }
2499
2500 void Mdrunner::BuilderImplementation::addLogFile(t_fileio* logFileHandle)
2501 {
2502     logFileHandle_ = logFileHandle;
2503 }
2504
2505 void Mdrunner::BuilderImplementation::addStopHandlerBuilder(std::unique_ptr<StopHandlerBuilder> builder)
2506 {
2507     stopHandlerBuilder_ = std::move(builder);
2508 }
2509
2510 void Mdrunner::BuilderImplementation::addInput(SimulationInputHandle inputHolder)
2511 {
2512     inputHolder_ = std::move(inputHolder);
2513 }
2514
2515 MdrunnerBuilder::MdrunnerBuilder(std::unique_ptr<MDModules>           mdModules,
2516                                  compat::not_null<SimulationContext*> context) :
2517     impl_{ std::make_unique<Mdrunner::BuilderImplementation>(std::move(mdModules), context) }
2518 {
2519 }
2520
2521 MdrunnerBuilder::~MdrunnerBuilder() = default;
2522
2523 MdrunnerBuilder& MdrunnerBuilder::addHardwareDetectionResult(const gmx_hw_info_t* hwinfo)
2524 {
2525     impl_->addHardwareDetectionResult(hwinfo);
2526     return *this;
2527 }
2528
2529 MdrunnerBuilder& MdrunnerBuilder::addSimulationMethod(const MdrunOptions&    options,
2530                                                       real                   forceWarningThreshold,
2531                                                       const StartingBehavior startingBehavior)
2532 {
2533     impl_->setExtraMdrunOptions(options, forceWarningThreshold, startingBehavior);
2534     return *this;
2535 }
2536
2537 MdrunnerBuilder& MdrunnerBuilder::addDomainDecomposition(const DomdecOptions& options)
2538 {
2539     impl_->addDomdec(options);
2540     return *this;
2541 }
2542
2543 MdrunnerBuilder& MdrunnerBuilder::addNeighborList(int nstlist)
2544 {
2545     impl_->addVerletList(nstlist);
2546     return *this;
2547 }
2548
2549 MdrunnerBuilder& MdrunnerBuilder::addReplicaExchange(const ReplicaExchangeParameters& params)
2550 {
2551     impl_->addReplicaExchange(params);
2552     return *this;
2553 }
2554
2555 MdrunnerBuilder& MdrunnerBuilder::addNonBonded(const char* nbpu_opt)
2556 {
2557     impl_->addNonBonded(nbpu_opt);
2558     return *this;
2559 }
2560
2561 MdrunnerBuilder& MdrunnerBuilder::addElectrostatics(const char* pme_opt, const char* pme_fft_opt)
2562 {
2563     // The builder method may become more general in the future, but in this version,
2564     // parameters for PME electrostatics are both required and the only parameters
2565     // available.
2566     if (pme_opt && pme_fft_opt)
2567     {
2568         impl_->addPME(pme_opt, pme_fft_opt);
2569     }
2570     else
2571     {
2572         GMX_THROW(
2573                 gmx::InvalidInputError("addElectrostatics() arguments must be non-null pointers."));
2574     }
2575     return *this;
2576 }
2577
2578 MdrunnerBuilder& MdrunnerBuilder::addBondedTaskAssignment(const char* bonded_opt)
2579 {
2580     impl_->addBondedTaskAssignment(bonded_opt);
2581     return *this;
2582 }
2583
2584 MdrunnerBuilder& MdrunnerBuilder::addUpdateTaskAssignment(const char* update_opt)
2585 {
2586     impl_->addUpdateTaskAssignment(update_opt);
2587     return *this;
2588 }
2589
2590 Mdrunner MdrunnerBuilder::build()
2591 {
2592     return impl_->build();
2593 }
2594
2595 MdrunnerBuilder& MdrunnerBuilder::addHardwareOptions(const gmx_hw_opt_t& hardwareOptions)
2596 {
2597     impl_->addHardwareOptions(hardwareOptions);
2598     return *this;
2599 }
2600
2601 MdrunnerBuilder& MdrunnerBuilder::addFilenames(ArrayRef<const t_filenm> filenames)
2602 {
2603     impl_->addFilenames(filenames);
2604     return *this;
2605 }
2606
2607 MdrunnerBuilder& MdrunnerBuilder::addOutputEnvironment(gmx_output_env_t* outputEnvironment)
2608 {
2609     impl_->addOutputEnvironment(outputEnvironment);
2610     return *this;
2611 }
2612
2613 MdrunnerBuilder& MdrunnerBuilder::addLogFile(t_fileio* logFileHandle)
2614 {
2615     impl_->addLogFile(logFileHandle);
2616     return *this;
2617 }
2618
2619 MdrunnerBuilder& MdrunnerBuilder::addStopHandlerBuilder(std::unique_ptr<StopHandlerBuilder> builder)
2620 {
2621     impl_->addStopHandlerBuilder(std::move(builder));
2622     return *this;
2623 }
2624
2625 MdrunnerBuilder& MdrunnerBuilder::addInput(SimulationInputHandle input)
2626 {
2627     impl_->addInput(std::move(input));
2628     return *this;
2629 }
2630
2631 MdrunnerBuilder::MdrunnerBuilder(MdrunnerBuilder&&) noexcept = default;
2632
2633 MdrunnerBuilder& MdrunnerBuilder::operator=(MdrunnerBuilder&&) noexcept = default;
2634
2635 } // namespace gmx