CudaContext.cpp 52.2 KB
Newer Older
1
2
3
4
5
6
7
8
/* -------------------------------------------------------------------------- *
 *                                   OpenMM                                   *
 * -------------------------------------------------------------------------- *
 * This is part of the OpenMM molecular simulation toolkit originating from   *
 * Simbios, the NIH National Center for Physics-Based Simulation of           *
 * Biological Structures at Stanford, funded under the NIH Roadmap for        *
 * Medical Research, grant U54 GM072970. See https://simtk.org.               *
 *                                                                            *
9
 * Portions copyright (c) 2009-2013 Stanford University and the Authors.      *
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
 * Authors: Peter Eastman                                                     *
 * Contributors:                                                              *
 *                                                                            *
 * This program is free software: you can redistribute it and/or modify       *
 * it under the terms of the GNU Lesser General Public License as published   *
 * by the Free Software Foundation, either version 3 of the License, or       *
 * (at your option) any later version.                                        *
 *                                                                            *
 * This program is distributed in the hope that it will be useful,            *
 * but WITHOUT ANY WARRANTY; without even the implied warranty of             *
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the              *
 * GNU Lesser General Public License for more details.                        *
 *                                                                            *
 * You should have received a copy of the GNU Lesser General Public License   *
 * along with this program.  If not, see <http://www.gnu.org/licenses/>.      *
 * -------------------------------------------------------------------------- */

#ifdef WIN32
  #define _USE_MATH_DEFINES // Needed to get M_PI
#endif
#include <cmath>
#include "CudaContext.h"
#include "CudaArray.h"
33
#include "CudaBondedUtilities.h"
34
#include "CudaForceInfo.h"
35
#include "CudaIntegrationUtilities.h"
36
#include "CudaKernelSources.h"
37
#include "CudaNonbondedUtilities.h"
38
#include "SHA1.h"
39
40
41
42
43
#include "hilbert.h"
#include "openmm/OpenMMException.h"
#include "openmm/Platform.h"
#include "openmm/System.h"
#include "openmm/VirtualSite.h"
44
#include "CudaExpressionUtilities.h"
45
#include "openmm/internal/ContextImpl.h"
46
47
48
#include <algorithm>
#include <cstdlib>
#include <fstream>
49
#include <iomanip>
50
51
52
#include <iostream>
#include <sstream>
#include <typeinfo>
53
#include <cudaProfiler.h>
54
55
56
#ifndef WIN32
  #include <unistd.h>
#endif
57
58
59
60
61
62


#define CHECK_RESULT(result) CHECK_RESULT2(result, errorMessage);
#define CHECK_RESULT2(result, prefix) \
    if (result != CUDA_SUCCESS) { \
        std::stringstream m; \
63
        m<<prefix<<": "<<getErrorString(result)<<" ("<<result<<")"<<" at "<<__FILE__<<":"<<__LINE__; \
64
65
66
67
68
69
70
        throw OpenMMException(m.str());\
    }

using namespace OpenMM;
using namespace std;

const int CudaContext::ThreadBlockSize = 64;
71
const int CudaContext::TileSize = sizeof(tileflags)*8;
72
73
74
bool CudaContext::hasInitializedCuda = false;

CudaContext::CudaContext(const System& system, int deviceIndex, bool useBlockingSync, const string& precision, const string& compiler,
75
        const string& tempDir, const std::string& hostCompiler, CudaPlatform::PlatformData& platformData) : system(system), currentStream(0),
76
        time(0.0), platformData(platformData), stepCount(0), computeForceCount(0), stepsSinceReorder(99999), contextIsValid(false), atomsWereReordered(false), pinnedBuffer(NULL), posq(NULL),
77
        posqCorrection(NULL), velm(NULL), force(NULL), energyBuffer(NULL), integration(NULL), expression(NULL), bonded(NULL), nonbonded(NULL), thread(NULL) {
78
    this->compiler = "\""+compiler+"\"";
79
80
    if (hostCompiler.size() > 0)
        this->compiler = compiler+" --compiler-bindir "+hostCompiler;
81
82
83
84
85
86
    if (!hasInitializedCuda) {
        CHECK_RESULT2(cuInit(0), "Error initializing CUDA");
        hasInitializedCuda = true;
    }
    if (precision == "single") {
        useDoublePrecision = false;
87
        useMixedPrecision = false;
88
89
90
    }
    else if (precision == "mixed") {
        useDoublePrecision = false;
91
        useMixedPrecision = true;
92
93
94
    }
    else if (precision == "double") {
        useDoublePrecision = true;
95
        useMixedPrecision = false;
96
97
98
    }
    else
        throw OpenMMException("Illegal value for CudaPrecision: "+precision);
99
100
    char* cacheVariable = getenv("OPENMM_CACHE_DIR");
    cacheDir = (cacheVariable == NULL ? tempDir : string(cacheVariable));
101
#ifdef WIN32
102
    this->tempDir = tempDir+"\\";
103
    cacheDir = cacheDir+"\\";
104
105
#else
    this->tempDir = tempDir+"/";
106
    cacheDir = cacheDir+"/";
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
#endif
    contextIndex = platformData.contexts.size();
    int numDevices;
    string errorMessage = "Error initializing Context";
    CHECK_RESULT(cuDeviceGetCount(&numDevices));
    if (deviceIndex < 0 || deviceIndex >= numDevices) {
        // Try to figure out which device is the fastest.

        int bestSpeed = -1;
        int bestCompute = -1;
        for (int i = 0; i < numDevices; i++) {
            CHECK_RESULT(cuDeviceGet(&device, i));
            int major, minor, clock, multiprocessors;
            CHECK_RESULT(cuDeviceComputeCapability(&major, &minor, device));
            if (major == 1 && minor < 2)
                continue; // 1.0 and 1.1 are not supported
            CHECK_RESULT(cuDeviceGetAttribute(&clock, CU_DEVICE_ATTRIBUTE_CLOCK_RATE, device));
            CHECK_RESULT(cuDeviceGetAttribute(&multiprocessors, CU_DEVICE_ATTRIBUTE_MULTIPROCESSOR_COUNT, device));
            int speed = clock*multiprocessors;
            if (major > bestCompute || (major == bestCompute && speed > bestSpeed)) {
                deviceIndex = i;
                bestSpeed = speed;
                bestCompute = major;
            }
        }
    }
    if (deviceIndex == -1)
        throw OpenMMException("No compatible CUDA device is available");
    CHECK_RESULT(cuDeviceGet(&device, deviceIndex));
    this->deviceIndex = deviceIndex;
137
138
139
    int major, minor;
    CHECK_RESULT(cuDeviceComputeCapability(&major, &minor, device));
    gpuArchitecture = intToString(major)+intToString(minor);
140
    computeCapability = major+0.1*minor;
141
142
    if ((useDoublePrecision || useMixedPrecision) && computeCapability < 1.3)
        throw OpenMMException("This device does not support double precision");
143
    defaultOptimizationOptions = "--use_fast_math";
144
145
146
147
148
149
    unsigned int flags = CU_CTX_MAP_HOST;
    if (useBlockingSync)
        flags += CU_CTX_SCHED_BLOCKING_SYNC;
    else
        flags += CU_CTX_SCHED_SPIN;
    CHECK_RESULT(cuCtxCreate(&context, flags, device));
150
    contextIsValid = true;
151
    CHECK_RESULT(cuCtxSetCacheConfig(CU_FUNC_CACHE_PREFER_SHARED));
152
153
154
155
156
    numAtoms = system.getNumParticles();
    paddedNumAtoms = TileSize*((numAtoms+TileSize-1)/TileSize);
    numAtomBlocks = (paddedNumAtoms+(TileSize-1))/TileSize;
    int multiprocessors;
    CHECK_RESULT(cuDeviceGetAttribute(&multiprocessors, CU_DEVICE_ATTRIBUTE_MULTIPROCESSOR_COUNT, device));
157
    int numThreadBlocksPerComputeUnit = 6;
158
    numThreadBlocks = numThreadBlocksPerComputeUnit*multiprocessors;
159
    if (useDoublePrecision) {
160
161
        posq = CudaArray::create<double4>(*this, paddedNumAtoms, "posq");
        velm = CudaArray::create<double4>(*this, paddedNumAtoms, "velm");
162
        compilationDefines["USE_DOUBLE_PRECISION"] = "1";
163
164
165
        compilationDefines["make_real2"] = "make_double2";
        compilationDefines["make_real3"] = "make_double3";
        compilationDefines["make_real4"] = "make_double4";
166
167
168
        compilationDefines["make_mixed2"] = "make_double2";
        compilationDefines["make_mixed3"] = "make_double3";
        compilationDefines["make_mixed4"] = "make_double4";
169
    }
170
171
172
173
174
175
176
177
178
179
180
181
    else if (useMixedPrecision) {
        posq = CudaArray::create<float4>(*this, paddedNumAtoms, "posq");
        posqCorrection = CudaArray::create<float4>(*this, paddedNumAtoms, "posqCorrection");
        velm = CudaArray::create<double4>(*this, paddedNumAtoms, "velm");
        compilationDefines["USE_MIXED_PRECISION"] = "1";
        compilationDefines["make_real2"] = "make_float2";
        compilationDefines["make_real3"] = "make_float3";
        compilationDefines["make_real4"] = "make_float4";
        compilationDefines["make_mixed2"] = "make_double2";
        compilationDefines["make_mixed3"] = "make_double3";
        compilationDefines["make_mixed4"] = "make_double4";
    }
182
    else {
183
184
        posq = CudaArray::create<float4>(*this, paddedNumAtoms, "posq");
        velm = CudaArray::create<float4>(*this, paddedNumAtoms, "velm");
185
186
187
        compilationDefines["make_real2"] = "make_float2";
        compilationDefines["make_real3"] = "make_float3";
        compilationDefines["make_real4"] = "make_float4";
188
189
190
        compilationDefines["make_mixed2"] = "make_float2";
        compilationDefines["make_mixed3"] = "make_float3";
        compilationDefines["make_mixed4"] = "make_float4";
191
    }
192
193
194
195
196
    posCellOffsets.resize(paddedNumAtoms, make_int4(0, 0, 0, 0));

    // Create utility kernels that are used in multiple places.

    CUmodule utilities = createModule(CudaKernelSources::vectorOps+CudaKernelSources::utilities);
197
198
199
200
201
202
    clearBufferKernel = getKernel(utilities, "clearBuffer");
    clearTwoBuffersKernel = getKernel(utilities, "clearTwoBuffers");
    clearThreeBuffersKernel = getKernel(utilities, "clearThreeBuffers");
    clearFourBuffersKernel = getKernel(utilities, "clearFourBuffers");
    clearFiveBuffersKernel = getKernel(utilities, "clearFiveBuffers");
    clearSixBuffersKernel = getKernel(utilities, "clearSixBuffers");
203
204
205
206
207
208
209
210

    // Set defines based on the requested precision.

    compilationDefines["SQRT"] = useDoublePrecision ? "sqrt" : "sqrtf";
    compilationDefines["RSQRT"] = useDoublePrecision ? "rsqrt" : "rsqrtf";
    compilationDefines["RECIP"] = useDoublePrecision ? "1.0/" : "1.0f/";
    compilationDefines["EXP"] = useDoublePrecision ? "exp" : "expf";
    compilationDefines["LOG"] = useDoublePrecision ? "log" : "logf";
211
    compilationDefines["POW"] = useDoublePrecision ? "pow" : "powf";
212
213
214
215
216
217
    compilationDefines["COS"] = useDoublePrecision ? "cos" : "cosf";
    compilationDefines["SIN"] = useDoublePrecision ? "sin" : "sinf";
    compilationDefines["TAN"] = useDoublePrecision ? "tan" : "tanf";
    compilationDefines["ACOS"] = useDoublePrecision ? "acos" : "acosf";
    compilationDefines["ASIN"] = useDoublePrecision ? "asin" : "asinf";
    compilationDefines["ATAN"] = useDoublePrecision ? "atan" : "atanf";
218
219
    compilationDefines["ERF"] = useDoublePrecision ? "erf" : "erff";
    compilationDefines["ERFC"] = useDoublePrecision ? "erfc" : "erfcf";
220
221
222
223
    
    // Create the work thread used for parallelization when running on multiple devices.
    
    thread = new WorkThread();
224
225
226
    
    // Create utilities objects.
    
227
228
    bonded = new CudaBondedUtilities(*this);
    nonbonded = new CudaNonbondedUtilities(*this);
229
230
    integration = new CudaIntegrationUtilities(*this, system);
    expression = new CudaExpressionUtilities(*this);
231
232
233
}

CudaContext::~CudaContext() {
234
    setAsCurrent();
235
236
237
238
    for (int i = 0; i < (int) forces.size(); i++)
        delete forces[i];
    for (int i = 0; i < (int) reorderListeners.size(); i++)
        delete reorderListeners[i];
239
240
241
242
    for (int i = 0; i < (int) preComputations.size(); i++)
        delete preComputations[i];
    for (int i = 0; i < (int) postComputations.size(); i++)
        delete postComputations[i];
243
244
    if (pinnedBuffer != NULL)
        cuMemFreeHost(pinnedBuffer);
245
246
    if (posq != NULL)
        delete posq;
247
248
    if (posqCorrection != NULL)
        delete posqCorrection;
249
250
    if (velm != NULL)
        delete velm;
251
252
253
254
    if (force != NULL)
        delete force;
    if (energyBuffer != NULL)
        delete energyBuffer;
255
256
257
258
    if (integration != NULL)
        delete integration;
    if (expression != NULL)
        delete expression;
259
260
    if (bonded != NULL)
        delete bonded;
261
262
    if (nonbonded != NULL)
        delete nonbonded;
263
264
265
    if (thread != NULL)
        delete thread;
    string errorMessage = "Error deleting Context";
266
267
    if (contextIsValid) {
        cuProfilerStop();
268
        CHECK_RESULT(cuCtxDestroy(context));
269
    }
270
    contextIsValid = false;
271
272
}

273
void CudaContext::initialize() {
274
    cuCtxSetCurrent(context);
275
    string errorMessage = "Error initializing Context";
276
277
278
279
280
281
282
283
284
285
286
287
288
289
290
291
    int numEnergyBuffers = max(numThreadBlocks*ThreadBlockSize, nonbonded->getNumEnergyBuffers());
    if (useDoublePrecision) {
        energyBuffer = CudaArray::create<double>(*this, numEnergyBuffers, "energyBuffer");
        int pinnedBufferSize = max(paddedNumAtoms*4, numEnergyBuffers);
        CHECK_RESULT(cuMemHostAlloc(&pinnedBuffer, pinnedBufferSize*sizeof(double), 0));
    }
    else if (useMixedPrecision) {
        energyBuffer = CudaArray::create<float>(*this, numEnergyBuffers, "energyBuffer");
        int pinnedBufferSize = max(paddedNumAtoms*4, numEnergyBuffers);
        CHECK_RESULT(cuMemHostAlloc(&pinnedBuffer, pinnedBufferSize*sizeof(double), 0));
    }
    else {
        energyBuffer = CudaArray::create<float>(*this, numEnergyBuffers, "energyBuffer");
        int pinnedBufferSize = max(paddedNumAtoms*6, numEnergyBuffers);
        CHECK_RESULT(cuMemHostAlloc(&pinnedBuffer, pinnedBufferSize*sizeof(float), 0));
    }
292
293
    for (int i = 0; i < numAtoms; i++) {
        double mass = system.getParticleMass(i);
294
        if (useDoublePrecision || useMixedPrecision)
295
296
297
298
299
            ((double4*) pinnedBuffer)[i] = make_double4(0.0, 0.0, 0.0, mass == 0.0 ? 0.0 : 1.0/mass);
        else
            ((float4*) pinnedBuffer)[i] = make_float4(0.0f, 0.0f, 0.0f, mass == 0.0 ? 0.0f : (float) (1.0/mass));
    }
    velm->upload(pinnedBuffer);
300
    bonded->initialize(system);
301
    force = CudaArray::create<long long>(*this, paddedNumAtoms*3, "force");
302
303
    addAutoclearBuffer(force->getDevicePointer(), force->getSize()*force->getElementSize());
    addAutoclearBuffer(energyBuffer->getDevicePointer(), energyBuffer->getSize()*energyBuffer->getElementSize());
304
    atomIndexDevice = CudaArray::create<int>(*this, paddedNumAtoms, "atomIndex");
305
306
307
308
309
    atomIndex.resize(paddedNumAtoms);
    for (int i = 0; i < paddedNumAtoms; ++i)
        atomIndex[i] = i;
    atomIndexDevice->upload(atomIndex);
    findMoleculeGroups();
310
    nonbonded->initialize(system);
311
}
312
313
314
315
316

void CudaContext::addForce(CudaForceInfo* force) {
    forces.push_back(force);
}

317
318
319
320
321
void CudaContext::setAsCurrent() {
    if (contextIsValid)
        cuCtxSetCurrent(context);
}

322
323
324
325
326
327
328
329
330
331
332
333
334
335
336
337
338
string CudaContext::replaceStrings(const string& input, const std::map<std::string, std::string>& replacements) const {
    string result = input;
    for (map<string, string>::const_iterator iter = replacements.begin(); iter != replacements.end(); iter++) {
        int index = -1;
        do {
            index = result.find(iter->first);
            if (index != result.npos)
                result.replace(index, iter->first.size(), iter->second);
        } while (index != result.npos);
    }
    return result;
}

CUmodule CudaContext::createModule(const string source, const char* optimizationFlags) {
    return createModule(source, map<string, string>(), optimizationFlags);
}

339
340
341
342
343
344
345
346
347
348
349
350
351
#ifdef WIN32
#include <Windows.h>
static bool compileInWindows(const string &command) {
    // COMSPEC is an env variable pointing to full dir of cmd.exe
    // it always defined on pretty much all Windows OSes
    string fullcommand = getenv("COMSPEC") + string(" /C ") + command;
    STARTUPINFO si;
    PROCESS_INFORMATION pi;
    ZeroMemory( &si, sizeof(si) );
    si.cb = sizeof(si);
    ZeroMemory( &pi, sizeof(pi) );
    vector<char> args(std::max(1000, (int) fullcommand.size()+1));
    strcpy(&args[0], fullcommand.c_str());
352
    si.dwFlags = STARTF_USESHOWWINDOW;
353
    si.wShowWindow = SW_HIDE;
354
355
356
    if (!CreateProcess(NULL, &args[0], NULL, NULL, FALSE, 0, NULL, NULL, &si, &pi)) {
        return -1;
    }
357
    WaitForSingleObject(pi.hProcess, INFINITE);
358
359
360
361
362
363
364
365
366
    DWORD exitCode = -1;  
    if(!GetExitCodeProcess(pi.hProcess, &exitCode)) {
        throw(OpenMMException("Could not get nvcc.exe's exit code\n"));
    } else {
        if(exitCode == 0) 
            return 0;
        else
            return -1;
    }
367
368
369
}
#endif

370
CUmodule CudaContext::createModule(const string source, const map<string, string>& defines, const char* optimizationFlags) {
371
    string bits = intToString(8*sizeof(void*));
372
373
374
375
376
377
378
379
380
381
382
383
    string options = (optimizationFlags == NULL ? defaultOptimizationOptions : string(optimizationFlags));
    stringstream src;
    if (!options.empty())
        src << "// Compilation Options: " << options << endl << endl;
    for (map<string, string>::const_iterator iter = compilationDefines.begin(); iter != compilationDefines.end(); ++iter) {
        src << "#define " << iter->first;
        if (!iter->second.empty())
            src << " " << iter->second;
        src << endl;
    }
    if (!compilationDefines.empty())
        src << endl;
384
385
386
387
388
389
390
391
392
393
394
395
    if (useDoublePrecision) {
        src << "typedef double real;\n";
        src << "typedef double2 real2;\n";
        src << "typedef double3 real3;\n";
        src << "typedef double4 real4;\n";
    }
    else {
        src << "typedef float real;\n";
        src << "typedef float2 real2;\n";
        src << "typedef float3 real3;\n";
        src << "typedef float4 real4;\n";
    }
396
397
398
399
400
401
402
403
404
405
406
407
    if (useDoublePrecision || useMixedPrecision) {
        src << "typedef double mixed;\n";
        src << "typedef double2 mixed2;\n";
        src << "typedef double3 mixed3;\n";
        src << "typedef double4 mixed4;\n";
    }
    else {
        src << "typedef float mixed;\n";
        src << "typedef float2 mixed2;\n";
        src << "typedef float3 mixed3;\n";
        src << "typedef float4 mixed4;\n";
    }
408
    src << "typedef unsigned int tileflags;\n";
409
410
411
412
413
414
415
416
417
418
    for (map<string, string>::const_iterator iter = defines.begin(); iter != defines.end(); ++iter) {
        src << "#define " << iter->first;
        if (!iter->second.empty())
            src << " " << iter->second;
        src << endl;
    }
    if (!defines.empty())
        src << endl;
    src << source << endl;
    
419
420
421
422
423
424
425
426
    // See whether we already have PTX for this kernel cached.
    
    CSHA1 sha1;
    sha1.Update((const UINT_8*) src.str().c_str(), src.str().size());
    sha1.Final();
    UINT_8 hash[20];
    sha1.GetHash(hash);
    stringstream cacheFile;
427
    cacheFile << cacheDir;
428
429
430
    cacheFile.flags(ios::hex);
    for (int i = 0; i < 20; i++)
        cacheFile << setw(2) << setfill('0') << (int) hash[i];
431
    cacheFile << '_' << gpuArchitecture << '_' << bits;
432
433
434
435
    CUmodule module;
    if (cuModuleLoad(&module, cacheFile.str().c_str()) == CUDA_SUCCESS)
        return module;
    
436
437
438
439
    // Write out the source to a temporary file.
    
    stringstream tempFileName;
    tempFileName << "openmmTempKernel" << this; // Include a pointer to this context as part of the filename to avoid collisions.
440
441
442
443
444
#ifdef WIN32
    tempFileName << "_" << GetCurrentProcessId();
#else
    tempFileName << "_" << getpid();
#endif
445
446
447
448
449
450
451
    string inputFile = (tempDir+tempFileName.str()+".cu");
    string outputFile = (tempDir+tempFileName.str()+".ptx");
    string logFile = (tempDir+tempFileName.str()+".log");
    ofstream out(inputFile.c_str());
    out << src.str();
    out.close();
#ifdef WIN32
452
#ifdef _DEBUG
453
    string command = compiler+" --ptx -G -g --machine "+bits+" -arch=sm_"+gpuArchitecture+" -o "+outputFile+" "+options+" "+inputFile+" 2> "+logFile;
454
#else
455
    string command = compiler+" --ptx -lineinfo --machine "+bits+" -arch=sm_"+gpuArchitecture+" -o "+outputFile+" "+options+" "+inputFile+" 2> "+logFile;
456
#endif
457
    int res = compileInWindows(command);
458
#else
459
    string command = compiler+" --ptx --machine "+bits+" -arch=sm_"+gpuArchitecture+" -o \""+outputFile+"\" "+options+" \""+inputFile+"\" 2> \""+logFile+"\"";
460
    int res = std::system(command.c_str());
461
#endif
462
463
464
465
466
467
468
469
470
471
472
473
474
475
476
477
478
479
480
481
    try {
        if (res != 0) {
            // Load the error log.

            stringstream error;
            error << "Error launching CUDA compiler: " << res;
            ifstream log(logFile.c_str());
            if (log.is_open()) {
                string line;
                while (!log.eof()) {
                    getline(log, line);
                    error << '\n' << line;
                }
                log.close();
            }
            throw OpenMMException(error.str());
        }
        CUresult result = cuModuleLoad(&module, outputFile.c_str());
        if (result != CUDA_SUCCESS) {
            std::stringstream m;
482
            m<<"Error loading CUDA module: "<<getErrorString(result)<<" ("<<result<<")";
483
484
485
            throw OpenMMException(m.str());
        }
        remove(inputFile.c_str());
486
487
        if (rename(outputFile.c_str(), cacheFile.str().c_str()) != 0)
            remove(outputFile.c_str());
488
489
490
491
492
493
494
495
496
497
        remove(logFile.c_str());
        return module;
    }
    catch (...) {
        remove(inputFile.c_str());
        remove(outputFile.c_str());
        remove(logFile.c_str());
        throw;
    }
}
498
499
500
501
502
503
504
505
506
507
508
509

CUfunction CudaContext::getKernel(CUmodule& module, const string& name) {
    CUfunction function;
    CUresult result = cuModuleGetFunction(&function, module, name.c_str());
    if (result != CUDA_SUCCESS) {
        std::stringstream m;
        m<<"Error creating kernel "<<name<<": "<<getErrorString(result)<<" ("<<result<<")";
        throw OpenMMException(m.str());
    }
    return function;
}

510
511
512
513
514
515
516
517
518
519
520
521
CUstream CudaContext::getCurrentStream() {
    return currentStream;
}

void CudaContext::setCurrentStream(CUstream stream) {
    currentStream = stream;
}

void CudaContext::restoreDefaultStream() {
    setCurrentStream(0);
}

522
523
524
525
526
527
528
529
530
531
532
533
534
535
536
537
538
539
540
541
542
543
544
545
546
547
548
549
550
551
552
553
554
555
556
557
558
559
560
561
562
563
564
565
566
567
568
569
570
571
572
573
574
575
576
577
578
579
580
581
582
583
584
585
586
587
588
589
string CudaContext::doubleToString(double value) {
    stringstream s;
    s.precision(useDoublePrecision ? 16 : 8);
    s << scientific << value;
    if (!useDoublePrecision)
        s << "f";
    return s.str();
}

string CudaContext::intToString(int value) {
    stringstream s;
    s << value;
    return s.str();
}

std::string CudaContext::getErrorString(CUresult result) {
    switch (result) {
        case CUDA_SUCCESS: return "CUDA_SUCCESS";
        case CUDA_ERROR_INVALID_VALUE: return "CUDA_ERROR_INVALID_VALUE";
        case CUDA_ERROR_OUT_OF_MEMORY: return "CUDA_ERROR_OUT_OF_MEMORY";
        case CUDA_ERROR_NOT_INITIALIZED: return "CUDA_ERROR_NOT_INITIALIZED";
        case CUDA_ERROR_DEINITIALIZED: return "CUDA_ERROR_DEINITIALIZED";
        case CUDA_ERROR_PROFILER_DISABLED: return "CUDA_ERROR_PROFILER_DISABLED";
        case CUDA_ERROR_PROFILER_NOT_INITIALIZED: return "CUDA_ERROR_PROFILER_NOT_INITIALIZED";
        case CUDA_ERROR_PROFILER_ALREADY_STARTED: return "CUDA_ERROR_PROFILER_ALREADY_STARTED";
        case CUDA_ERROR_PROFILER_ALREADY_STOPPED: return "CUDA_ERROR_PROFILER_ALREADY_STOPPED";
        case CUDA_ERROR_NO_DEVICE: return "CUDA_ERROR_NO_DEVICE";
        case CUDA_ERROR_INVALID_DEVICE: return "CUDA_ERROR_INVALID_DEVICE";
        case CUDA_ERROR_INVALID_IMAGE: return "CUDA_ERROR_INVALID_IMAGE";
        case CUDA_ERROR_INVALID_CONTEXT: return "CUDA_ERROR_INVALID_CONTEXT";
        case CUDA_ERROR_CONTEXT_ALREADY_CURRENT: return "CUDA_ERROR_CONTEXT_ALREADY_CURRENT";
        case CUDA_ERROR_MAP_FAILED: return "CUDA_ERROR_MAP_FAILED";
        case CUDA_ERROR_UNMAP_FAILED: return "CUDA_ERROR_UNMAP_FAILED";
        case CUDA_ERROR_ARRAY_IS_MAPPED: return "CUDA_ERROR_ARRAY_IS_MAPPED";
        case CUDA_ERROR_ALREADY_MAPPED: return "CUDA_ERROR_ALREADY_MAPPED";
        case CUDA_ERROR_NO_BINARY_FOR_GPU: return "CUDA_ERROR_NO_BINARY_FOR_GPU";
        case CUDA_ERROR_ALREADY_ACQUIRED: return "CUDA_ERROR_ALREADY_ACQUIRED";
        case CUDA_ERROR_NOT_MAPPED: return "CUDA_ERROR_NOT_MAPPED";
        case CUDA_ERROR_NOT_MAPPED_AS_ARRAY: return "CUDA_ERROR_NOT_MAPPED_AS_ARRAY";
        case CUDA_ERROR_NOT_MAPPED_AS_POINTER: return "CUDA_ERROR_NOT_MAPPED_AS_POINTER";
        case CUDA_ERROR_ECC_UNCORRECTABLE: return "CUDA_ERROR_ECC_UNCORRECTABLE";
        case CUDA_ERROR_UNSUPPORTED_LIMIT: return "CUDA_ERROR_UNSUPPORTED_LIMIT";
        case CUDA_ERROR_CONTEXT_ALREADY_IN_USE: return "CUDA_ERROR_CONTEXT_ALREADY_IN_USE";
        case CUDA_ERROR_INVALID_SOURCE: return "CUDA_ERROR_INVALID_SOURCE";
        case CUDA_ERROR_FILE_NOT_FOUND: return "CUDA_ERROR_FILE_NOT_FOUND";
        case CUDA_ERROR_SHARED_OBJECT_SYMBOL_NOT_FOUND: return "CUDA_ERROR_SHARED_OBJECT_SYMBOL_NOT_FOUND";
        case CUDA_ERROR_SHARED_OBJECT_INIT_FAILED: return "CUDA_ERROR_SHARED_OBJECT_INIT_FAILED";
        case CUDA_ERROR_OPERATING_SYSTEM: return "CUDA_ERROR_OPERATING_SYSTEM";
        case CUDA_ERROR_INVALID_HANDLE: return "CUDA_ERROR_INVALID_HANDLE";
        case CUDA_ERROR_NOT_FOUND: return "CUDA_ERROR_NOT_FOUND";
        case CUDA_ERROR_NOT_READY: return "CUDA_ERROR_NOT_READY";
        case CUDA_ERROR_LAUNCH_FAILED: return "CUDA_ERROR_LAUNCH_FAILED";
        case CUDA_ERROR_LAUNCH_OUT_OF_RESOURCES: return "CUDA_ERROR_LAUNCH_OUT_OF_RESOURCES";
        case CUDA_ERROR_LAUNCH_TIMEOUT: return "CUDA_ERROR_LAUNCH_TIMEOUT";
        case CUDA_ERROR_LAUNCH_INCOMPATIBLE_TEXTURING: return "CUDA_ERROR_LAUNCH_INCOMPATIBLE_TEXTURING";
        case CUDA_ERROR_PEER_ACCESS_ALREADY_ENABLED: return "CUDA_ERROR_PEER_ACCESS_ALREADY_ENABLED";
        case CUDA_ERROR_PEER_ACCESS_NOT_ENABLED: return "CUDA_ERROR_PEER_ACCESS_NOT_ENABLED";
        case CUDA_ERROR_PRIMARY_CONTEXT_ACTIVE: return "CUDA_ERROR_PRIMARY_CONTEXT_ACTIVE";
        case CUDA_ERROR_CONTEXT_IS_DESTROYED: return "CUDA_ERROR_CONTEXT_IS_DESTROYED";
        case CUDA_ERROR_UNKNOWN: return "CUDA_ERROR_UNKNOWN";
    }
    return "Invalid error code";
}

void CudaContext::executeKernel(CUfunction kernel, void** arguments, int threads, int blockSize, unsigned int sharedSize) {
    if (blockSize == -1)
        blockSize = ThreadBlockSize;
    int gridSize = std::min((threads+blockSize-1)/blockSize, numThreadBlocks);
590
    CUresult result = cuLaunchKernel(kernel, gridSize, 1, 1, blockSize, 1, 1, sharedSize, currentStream, arguments, NULL);
591
592
593
594
595
596
597
    if (result != CUDA_SUCCESS) {
        stringstream str;
        str<<"Error invoking kernel: "<<getErrorString(result)<<" ("<<result<<")";
        throw OpenMMException(str.str());
    }
}

598
599
600
601
602
603
604
605
606
607
608
609
610
int CudaContext::computeThreadBlockSize(double memory, bool preferShared) const {
    int maxShared = 16*1024;
    if (computeCapability >= 2.0 && preferShared)
        maxShared = 48*1024;
    int max = (int) (maxShared/memory);
    if (max < 64)
        return 32;
    int threads = 64;
    while (threads+64 < max)
        threads += 64;
    return threads;
}

611
void CudaContext::clearBuffer(CudaArray& array) {
612
    clearBuffer(array.getDevicePointer(), array.getSize()*array.getElementSize());
613
614
615
}

void CudaContext::clearBuffer(CUdeviceptr memory, int size) {
616
617
    int words = size/4;
    void* args[] = {&memory, &words};
Peter Eastman's avatar
Peter Eastman committed
618
    executeKernel(clearBufferKernel, args, words, 128);
619
620
}

621
622
623
624
void CudaContext::addAutoclearBuffer(CudaArray& array) {
    addAutoclearBuffer(array.getDevicePointer(), array.getSize()*array.getElementSize());
}

625
626
void CudaContext::addAutoclearBuffer(CUdeviceptr memory, int size) {
    autoclearBuffers.push_back(memory);
627
    autoclearBufferSizes.push_back(size/4);
628
629
}

630
631
632
633
634
635
636
637
638
639
640
641
642
643
644
645
646
647
648
649
650
651
652
653
654
655
656
657
658
659
660
661
662
663
664
665
666
667
668
669
670
671
672
void CudaContext::clearAutoclearBuffers() {
    int base = 0;
    int total = autoclearBufferSizes.size();
    while (total-base >= 6) {
        void* args[] = {&autoclearBuffers[base], &autoclearBufferSizes[base],
                        &autoclearBuffers[base+1], &autoclearBufferSizes[base+1],
                        &autoclearBuffers[base+2], &autoclearBufferSizes[base+2],
                        &autoclearBuffers[base+3], &autoclearBufferSizes[base+3],
                        &autoclearBuffers[base+4], &autoclearBufferSizes[base+4],
                        &autoclearBuffers[base+5], &autoclearBufferSizes[base+5]};
        executeKernel(clearSixBuffersKernel, args, max(max(max(max(max(autoclearBufferSizes[base], autoclearBufferSizes[base+1]), autoclearBufferSizes[base+2]), autoclearBufferSizes[base+3]), autoclearBufferSizes[base+4]), autoclearBufferSizes[base+5]), 128);
        base += 6;
    }
    if (total-base == 5) {
        void* args[] = {&autoclearBuffers[base], &autoclearBufferSizes[base],
                        &autoclearBuffers[base+1], &autoclearBufferSizes[base+1],
                        &autoclearBuffers[base+2], &autoclearBufferSizes[base+2],
                        &autoclearBuffers[base+3], &autoclearBufferSizes[base+3],
                        &autoclearBuffers[base+4], &autoclearBufferSizes[base+4]};
        executeKernel(clearFiveBuffersKernel, args, max(max(max(max(autoclearBufferSizes[base], autoclearBufferSizes[base+1]), autoclearBufferSizes[base+2]), autoclearBufferSizes[base+3]), autoclearBufferSizes[base+4]), 128);
    }
    else if (total-base == 4) {
        void* args[] = {&autoclearBuffers[base], &autoclearBufferSizes[base],
                        &autoclearBuffers[base+1], &autoclearBufferSizes[base+1],
                        &autoclearBuffers[base+2], &autoclearBufferSizes[base+2],
                        &autoclearBuffers[base+3], &autoclearBufferSizes[base+3]};
        executeKernel(clearFourBuffersKernel, args, max(max(max(autoclearBufferSizes[base], autoclearBufferSizes[base+1]), autoclearBufferSizes[base+2]), autoclearBufferSizes[base+3]), 128);
    }
    else if (total-base == 3) {
        void* args[] = {&autoclearBuffers[base], &autoclearBufferSizes[base],
                        &autoclearBuffers[base+1], &autoclearBufferSizes[base+1],
                        &autoclearBuffers[base+2], &autoclearBufferSizes[base+2]};
        executeKernel(clearThreeBuffersKernel, args, max(max(autoclearBufferSizes[base], autoclearBufferSizes[base+1]), autoclearBufferSizes[base+2]), 128);
    }
    else if (total-base == 2) {
        void* args[] = {&autoclearBuffers[base], &autoclearBufferSizes[base],
                        &autoclearBuffers[base+1], &autoclearBufferSizes[base+1]};
        executeKernel(clearTwoBuffersKernel, args, max(autoclearBufferSizes[base], autoclearBufferSizes[base+1]), 128);
    }
    else if (total-base == 1) {
        clearBuffer(autoclearBuffers[base], autoclearBufferSizes[base]*4);
    }
}
673

674
675
676
677
678
/**
 * This class ensures that atom reordering doesn't break virtual sites.
 */
class CudaContext::VirtualSiteInfo : public CudaForceInfo {
public:
679
    VirtualSiteInfo(const System& system) {
680
681
682
683
684
685
686
687
688
689
690
691
692
693
694
695
696
697
698
699
700
701
702
703
704
705
706
707
708
709
710
711
712
713
714
715
716
717
718
719
720
721
722
723
724
725
726
727
728
729
730
731
732
733
734
735
736
737
738
739
740
741
742
743
744
745
746
747
748
749
750
751
752
753
754
755
756
757
758
759
760
761
762
763
764
765
766
767
        for (int i = 0; i < system.getNumParticles(); i++) {
            if (system.isVirtualSite(i)) {
                siteTypes.push_back(&typeid(system.getVirtualSite(i)));
                vector<int> particles;
                particles.push_back(i);
                for (int j = 0; j < system.getVirtualSite(i).getNumParticles(); j++)
                    particles.push_back(system.getVirtualSite(i).getParticle(j));
                siteParticles.push_back(particles);
                vector<double> weights;
                if (dynamic_cast<const TwoParticleAverageSite*>(&system.getVirtualSite(i)) != NULL) {
                    // A two particle average.

                    const TwoParticleAverageSite& site = dynamic_cast<const TwoParticleAverageSite&>(system.getVirtualSite(i));
                    weights.push_back(site.getWeight(0));
                    weights.push_back(site.getWeight(1));
                }
                else if (dynamic_cast<const ThreeParticleAverageSite*>(&system.getVirtualSite(i)) != NULL) {
                    // A three particle average.

                    const ThreeParticleAverageSite& site = dynamic_cast<const ThreeParticleAverageSite&>(system.getVirtualSite(i));
                    weights.push_back(site.getWeight(0));
                    weights.push_back(site.getWeight(1));
                    weights.push_back(site.getWeight(2));
                }
                else if (dynamic_cast<const OutOfPlaneSite*>(&system.getVirtualSite(i)) != NULL) {
                    // An out of plane site.

                    const OutOfPlaneSite& site = dynamic_cast<const OutOfPlaneSite&>(system.getVirtualSite(i));
                    weights.push_back(site.getWeight12());
                    weights.push_back(site.getWeight13());
                    weights.push_back(site.getWeightCross());
                }
                siteWeights.push_back(weights);
            }
        }
    }
    int getNumParticleGroups() {
        return siteTypes.size();
    }
    void getParticlesInGroup(int index, std::vector<int>& particles) {
        particles = siteParticles[index];
    }
    bool areGroupsIdentical(int group1, int group2) {
        if (siteTypes[group1] != siteTypes[group2])
            return false;
        int numParticles = siteWeights[group1].size();
        if (siteWeights[group2].size() != numParticles)
            return false;
        for (int i = 0; i < numParticles; i++)
            if (siteWeights[group1][i] != siteWeights[group2][i])
                return false;
        return true;
    }
private:
    vector<const type_info*> siteTypes;
    vector<vector<int> > siteParticles;
    vector<vector<double> > siteWeights;
};

void CudaContext::findMoleculeGroups() {
    // The first time this is called, we need to identify all the molecules in the system.
    
    if (moleculeGroups.size() == 0) {
        // Add a ForceInfo that makes sure reordering doesn't break virtual sites.

        addForce(new VirtualSiteInfo(system));

        // First make a list of every other atom to which each atom is connect by a constraint or force group.

        vector<vector<int> > atomBonds(system.getNumParticles());
        for (int i = 0; i < system.getNumConstraints(); i++) {
            int particle1, particle2;
            double distance;
            system.getConstraintParameters(i, particle1, particle2, distance);
            atomBonds[particle1].push_back(particle2);
            atomBonds[particle2].push_back(particle1);
        }
        for (int i = 0; i < (int) forces.size(); i++) {
            for (int j = 0; j < forces[i]->getNumParticleGroups(); j++) {
                vector<int> particles;
                forces[i]->getParticlesInGroup(j, particles);
                for (int k = 0; k < (int) particles.size(); k++)
                    for (int m = 0; m < (int) particles.size(); m++)
                        if (k != m)
                            atomBonds[particles[k]].push_back(particles[m]);
            }
        }

768
        // Now identify atoms by which molecule they belong to.
769

770
771
772
773
774
775
        vector<vector<int> > atomIndices = ContextImpl::findMolecules(numAtoms, atomBonds);
        int numMolecules = atomIndices.size();
        vector<int> atomMolecule(numAtoms);
        for (int i = 0; i < (int) atomIndices.size(); i++)
            for (int j = 0; j < (int) atomIndices[i].size(); j++)
                atomMolecule[atomIndices[i][j]] = i;
776
777
778
779
780
781
782
783
784
785
786
787
788
789
790
791
792
793

        // Construct a description of each molecule.

        molecules.resize(numMolecules);
        for (int i = 0; i < numMolecules; i++) {
            molecules[i].atoms = atomIndices[i];
            molecules[i].groups.resize(forces.size());
        }
        for (int i = 0; i < system.getNumConstraints(); i++) {
            int particle1, particle2;
            double distance;
            system.getConstraintParameters(i, particle1, particle2, distance);
            molecules[atomMolecule[particle1]].constraints.push_back(i);
        }
        for (int i = 0; i < (int) forces.size(); i++)
            for (int j = 0; j < forces[i]->getNumParticleGroups(); j++) {
                vector<int> particles;
                forces[i]->getParticlesInGroup(j, particles);
794
795
                if (particles.size() > 0)
                    molecules[atomMolecule[particles[0]]].groups[i].push_back(j);
796
797
798
799
800
801
802
803
804
805
806
807
808
809
810
811
812
813
814
815
816
817
818
819
820
821
822
823
824
825
826
827
828
829
830
831
832
833
834
835
836
837
838
839
840
841
842
843
844
845
846
847
848
849
850
851
852
853
854
855
856
857
858
859
860
861
862
863
864
865
866
867
868
869
870
871
            }
    }

    // Sort them into groups of identical molecules.

    vector<Molecule> uniqueMolecules;
    vector<vector<int> > moleculeInstances;
    vector<vector<int> > moleculeOffsets;
    for (int molIndex = 0; molIndex < (int) molecules.size(); molIndex++) {
        Molecule& mol = molecules[molIndex];

        // See if it is identical to another molecule.

        bool isNew = true;
        for (int j = 0; j < (int) uniqueMolecules.size() && isNew; j++) {
            Molecule& mol2 = uniqueMolecules[j];
            bool identical = (mol.atoms.size() == mol2.atoms.size() && mol.constraints.size() == mol2.constraints.size());

            // See if the atoms are identical.

            int atomOffset = mol2.atoms[0]-mol.atoms[0];
            for (int i = 0; i < (int) mol.atoms.size() && identical; i++) {
                if (mol.atoms[i] != mol2.atoms[i]-atomOffset || system.getParticleMass(mol.atoms[i]) != system.getParticleMass(mol2.atoms[i]))
                    identical = false;
                for (int k = 0; k < (int) forces.size(); k++)
                    if (!forces[k]->areParticlesIdentical(mol.atoms[i], mol2.atoms[i]))
                        identical = false;
            }
            
            // See if the constraints are identical.

            for (int i = 0; i < (int) mol.constraints.size() && identical; i++) {
                int c1particle1, c1particle2, c2particle1, c2particle2;
                double distance1, distance2;
                system.getConstraintParameters(mol.constraints[i], c1particle1, c1particle2, distance1);
                system.getConstraintParameters(mol2.constraints[i], c2particle1, c2particle2, distance2);
                if (c1particle1 != c2particle1-atomOffset || c1particle2 != c2particle2-atomOffset || distance1 != distance2)
                    identical = false;
            }

            // See if the force groups are identical.

            for (int i = 0; i < (int) forces.size() && identical; i++) {
                if (mol.groups[i].size() != mol2.groups[i].size())
                    identical = false;
                for (int k = 0; k < (int) mol.groups[i].size() && identical; k++)
                    if (!forces[i]->areGroupsIdentical(mol.groups[i][k], mol2.groups[i][k]))
                        identical = false;
            }
            if (identical) {
                moleculeInstances[j].push_back(molIndex);
                moleculeOffsets[j].push_back(mol.atoms[0]);
                isNew = false;
            }
        }
        if (isNew) {
            uniqueMolecules.push_back(mol);
            moleculeInstances.push_back(vector<int>());
            moleculeInstances[moleculeInstances.size()-1].push_back(molIndex);
            moleculeOffsets.push_back(vector<int>());
            moleculeOffsets[moleculeOffsets.size()-1].push_back(mol.atoms[0]);
        }
    }
    moleculeGroups.resize(moleculeInstances.size());
    for (int i = 0; i < (int) moleculeInstances.size(); i++)
    {
        moleculeGroups[i].instances = moleculeInstances[i];
        moleculeGroups[i].offsets = moleculeOffsets[i];
        vector<int>& atoms = uniqueMolecules[i].atoms;
        moleculeGroups[i].atoms.resize(atoms.size());
        for (int j = 0; j < (int) atoms.size(); j++)
            moleculeGroups[i].atoms[j] = atoms[j]-atoms[0];
    }
}

void CudaContext::invalidateMolecules() {
872
873
874
875
876
877
878
879
880
881
882
883
884
885
886
887
888
889
890
891
892
893
894
895
896
897
898
899
900
901
902
903
904
905
906
907
908
909
910
    if (numAtoms == 0 || nonbonded == NULL || !nonbonded->getUseCutoff())
        return;
    bool valid = true;
    for (int group = 0; valid && group < (int) moleculeGroups.size(); group++) {
        MoleculeGroup& mol = moleculeGroups[group];
        vector<int>& instances = mol.instances;
        vector<int>& offsets = mol.offsets;
        vector<int>& atoms = mol.atoms;
        int numMolecules = instances.size();
        Molecule& m1 = molecules[instances[0]];
        int offset1 = offsets[0];
        for (int j = 1; valid && j < numMolecules; j++) {
            // See if the atoms are identical.

            Molecule& m2 = molecules[instances[j]];
            int offset2 = offsets[j];
            for (int i = 0; i < (int) atoms.size() && valid; i++) {
                for (int k = 0; k < (int) forces.size(); k++)
                    if (!forces[k]->areParticlesIdentical(atoms[i]+offset1, atoms[i]+offset2))
                        valid = false;
            }

            // See if the force groups are identical.

            for (int i = 0; i < (int) forces.size() && valid; i++) {
                for (int k = 0; k < (int) m1.groups[i].size() && valid; k++)
                    if (!forces[i]->areGroupsIdentical(m1.groups[i][k], m2.groups[i][k]))
                        valid = false;
            }
        }
    }
    if (valid)
        return;
    
    // The list of which molecules are identical is no longer valid.  We need to restore the
    // atoms to their original order, rebuild the list of identical molecules, and sort them
    // again.
    
    vector<int4> newCellOffsets(numAtoms);
911
912
    if (useDoublePrecision) {
        vector<double4> oldPosq(paddedNumAtoms);
Peter Eastman's avatar
Peter Eastman committed
913
        vector<double4> newPosq(paddedNumAtoms, make_double4(0, 0, 0, 0));
914
        vector<double4> oldVelm(paddedNumAtoms);
Peter Eastman's avatar
Peter Eastman committed
915
        vector<double4> newVelm(paddedNumAtoms, make_double4(0, 0, 0, 0));
916
917
918
919
920
921
922
923
924
925
926
        posq->download(oldPosq);
        velm->download(oldVelm);
        for (int i = 0; i < numAtoms; i++) {
            int index = atomIndex[i];
            newPosq[index] = oldPosq[i];
            newVelm[index] = oldVelm[i];
            newCellOffsets[index] = posCellOffsets[i];
        }
        posq->upload(newPosq);
        velm->upload(newVelm);
    }
927
928
    else if (useMixedPrecision) {
        vector<float4> oldPosq(paddedNumAtoms);
Peter Eastman's avatar
Peter Eastman committed
929
        vector<float4> newPosq(paddedNumAtoms, make_float4(0, 0, 0, 0));
Peter Eastman's avatar
Peter Eastman committed
930
        vector<float4> oldPosqCorrection(paddedNumAtoms);
Peter Eastman's avatar
Peter Eastman committed
931
        vector<float4> newPosqCorrection(paddedNumAtoms, make_float4(0, 0, 0, 0));
932
        vector<double4> oldVelm(paddedNumAtoms);
Peter Eastman's avatar
Peter Eastman committed
933
        vector<double4> newVelm(paddedNumAtoms, make_double4(0, 0, 0, 0));
934
935
936
937
938
        posq->download(oldPosq);
        velm->download(oldVelm);
        for (int i = 0; i < numAtoms; i++) {
            int index = atomIndex[i];
            newPosq[index] = oldPosq[i];
Peter Eastman's avatar
Peter Eastman committed
939
            newPosqCorrection[index] = oldPosqCorrection[i];
940
941
942
943
            newVelm[index] = oldVelm[i];
            newCellOffsets[index] = posCellOffsets[i];
        }
        posq->upload(newPosq);
Peter Eastman's avatar
Peter Eastman committed
944
        posqCorrection->upload(newPosqCorrection);
945
946
        velm->upload(newVelm);
    }
947
948
    else {
        vector<float4> oldPosq(paddedNumAtoms);
Peter Eastman's avatar
Peter Eastman committed
949
        vector<float4> newPosq(paddedNumAtoms, make_float4(0, 0, 0, 0));
950
        vector<float4> oldVelm(paddedNumAtoms);
Peter Eastman's avatar
Peter Eastman committed
951
        vector<float4> newVelm(paddedNumAtoms, make_float4(0, 0, 0, 0));
952
953
954
955
956
957
958
959
960
961
        posq->download(oldPosq);
        velm->download(oldVelm);
        for (int i = 0; i < numAtoms; i++) {
            int index = atomIndex[i];
            newPosq[index] = oldPosq[i];
            newVelm[index] = oldVelm[i];
            newCellOffsets[index] = posCellOffsets[i];
        }
        posq->upload(newPosq);
        velm->upload(newVelm);
962
963
964
965
966
967
968
969
970
    }
    for (int i = 0; i < numAtoms; i++) {
        atomIndex[i] = i;
        posCellOffsets[i] = newCellOffsets[i];
    }
    atomIndexDevice->upload(atomIndex);
    findMoleculeGroups();
    for (int i = 0; i < (int) reorderListeners.size(); i++)
        reorderListeners[i]->execute();
971
    reorderAtoms();
972
973
}

974
975
976
977
void CudaContext::reorderAtoms() {
    atomsWereReordered = false;
    if (numAtoms == 0 || nonbonded == NULL || !nonbonded->getUseCutoff() || stepsSinceReorder < 100) {
        stepsSinceReorder++;
978
        return;
979
    }
980
    atomsWereReordered = true;
981
    stepsSinceReorder = 0;
982
    if (useDoublePrecision)
983
        reorderAtomsImpl<double, double4, double, double4>();
984
    else if (useMixedPrecision)
985
        reorderAtomsImpl<float, float4, double, double4>();
986
    else
987
988
        reorderAtomsImpl<float, float4, float, float4>();
    nonbonded->updateNeighborListSize();
989
}
990

991
template <class Real, class Real4, class Mixed, class Mixed4>
992
void CudaContext::reorderAtomsImpl() {
993
994
    // Find the range of positions and the number of bins along each axis.

995
996
997
    Real4 padding = {0, 0, 0, 0};
    vector<Real4> oldPosq(paddedNumAtoms, padding);
    vector<Real4> oldPosqCorrection(paddedNumAtoms, padding);
998
    Mixed4 paddingMixed = {0, 0, 0, 0};
999
    vector<Mixed4> oldVelm(paddedNumAtoms, paddingMixed);
1000
1001
    posq->download(oldPosq);
    velm->download(oldVelm);
1002
1003
    if (useMixedPrecision)
        posqCorrection->download(oldPosqCorrection);
1004
1005
1006
    Real minx = oldPosq[0].x, maxx = oldPosq[0].x;
    Real miny = oldPosq[0].y, maxy = oldPosq[0].y;
    Real minz = oldPosq[0].z, maxz = oldPosq[0].z;
1007
1008
1009
1010
1011
1012
1013
1014
    if (nonbonded->getUsePeriodic()) {
        minx = miny = minz = 0.0;
        maxx = periodicBoxSize.x;
        maxy = periodicBoxSize.y;
        maxz = periodicBoxSize.z;
    }
    else {
        for (int i = 1; i < numAtoms; i++) {
1015
            const Real4& pos = oldPosq[i];
1016
1017
1018
1019
1020
1021
1022
1023
1024
1025
1026
1027
            minx = min(minx, pos.x);
            maxx = max(maxx, pos.x);
            miny = min(miny, pos.y);
            maxy = max(maxy, pos.y);
            minz = min(minz, pos.z);
            maxz = max(maxz, pos.z);
        }
    }

    // Loop over each group of identical molecules and reorder them.

    vector<int> originalIndex(numAtoms);
1028
    vector<Real4> newPosq(paddedNumAtoms);
1029
1030
    vector<Real4> newPosqCorrection(paddedNumAtoms);
    vector<Mixed4> newVelm(paddedNumAtoms);
1031
1032
1033
1034
1035
1036
1037
    vector<int4> newCellOffsets(numAtoms);
    for (int group = 0; group < (int) moleculeGroups.size(); group++) {
        // Find the center of each molecule.

        MoleculeGroup& mol = moleculeGroups[group];
        int numMolecules = mol.offsets.size();
        vector<int>& atoms = mol.atoms;
1038
1039
        vector<Real4> molPos(numMolecules);
        Real invNumAtoms = (Real) (1.0/atoms.size());
1040
1041
1042
1043
1044
1045
        for (int i = 0; i < numMolecules; i++) {
            molPos[i].x = 0.0f;
            molPos[i].y = 0.0f;
            molPos[i].z = 0.0f;
            for (int j = 0; j < (int)atoms.size(); j++) {
                int atom = atoms[j]+mol.offsets[i];
1046
                const Real4& pos = oldPosq[atom];
1047
1048
1049
1050
1051
1052
1053
1054
1055
1056
1057
1058
1059
1060
1061
                molPos[i].x += pos.x;
                molPos[i].y += pos.y;
                molPos[i].z += pos.z;
            }
            molPos[i].x *= invNumAtoms;
            molPos[i].y *= invNumAtoms;
            molPos[i].z *= invNumAtoms;
        }
        if (nonbonded->getUsePeriodic()) {
            // Move each molecule position into the same box.

            for (int i = 0; i < numMolecules; i++) {
                int xcell = (int) floor(molPos[i].x*invPeriodicBoxSize.x);
                int ycell = (int) floor(molPos[i].y*invPeriodicBoxSize.y);
                int zcell = (int) floor(molPos[i].z*invPeriodicBoxSize.z);
1062
1063
1064
                Real dx = xcell*periodicBoxSize.x;
                Real dy = ycell*periodicBoxSize.y;
                Real dz = zcell*periodicBoxSize.z;
1065
1066
1067
1068
                if (dx != 0.0f || dy != 0.0f || dz != 0.0f) {
                    molPos[i].x -= dx;
                    molPos[i].y -= dy;
                    molPos[i].z -= dz;
1069
1070
1071
1072
1073
1074
1075
1076
1077
1078
                    for (int j = 0; j < (int) atoms.size(); j++) {
                        int atom = atoms[j]+mol.offsets[i];
                        Real4 p = oldPosq[atom];
                        p.x -= dx;
                        p.y -= dy;
                        p.z -= dz;
                        oldPosq[atom] = p;
                        posCellOffsets[atom].x -= xcell;
                        posCellOffsets[atom].y -= ycell;
                        posCellOffsets[atom].z -= zcell;
1079
1080
1081
1082
1083
1084
1085
1086
                    }
                }
            }
        }

        // Select a bin for each molecule, then sort them by bin.

        bool useHilbert = (numMolecules > 5000 || atoms.size() > 8); // For small systems, a simple zigzag curve works better than a Hilbert curve.
1087
        Real binWidth;
1088
        if (useHilbert)
Peter Eastman's avatar
Peter Eastman committed
1089
            binWidth = (Real) (max(max(maxx-minx, maxy-miny), maxz-minz)/255.0);
1090
        else
Peter Eastman's avatar
Peter Eastman committed
1091
            binWidth = (Real) (0.2*nonbonded->getCutoffDistance());
1092
        Real invBinWidth = (Real) (1.0/binWidth);
1093
1094
1095
1096
1097
1098
1099
1100
1101
1102
1103
1104
1105
1106
1107
1108
1109
1110
1111
1112
1113
1114
1115
1116
1117
1118
1119
1120
1121
1122
1123
1124
1125
1126
        int xbins = 1 + (int) ((maxx-minx)*invBinWidth);
        int ybins = 1 + (int) ((maxy-miny)*invBinWidth);
        vector<pair<int, int> > molBins(numMolecules);
        bitmask_t coords[3];
        for (int i = 0; i < numMolecules; i++) {
            int x = (int) ((molPos[i].x-minx)*invBinWidth);
            int y = (int) ((molPos[i].y-miny)*invBinWidth);
            int z = (int) ((molPos[i].z-minz)*invBinWidth);
            int bin;
            if (useHilbert) {
                coords[0] = x;
                coords[1] = y;
                coords[2] = z;
                bin = (int) hilbert_c2i(3, 8, coords);
            }
            else {
                int yodd = y&1;
                int zodd = z&1;
                bin = z*xbins*ybins;
                bin += (zodd ? ybins-y : y)*xbins;
                bin += (yodd ? xbins-x : x);
            }
            molBins[i] = pair<int, int>(bin, i);
        }
        sort(molBins.begin(), molBins.end());

        // Reorder the atoms.

        for (int i = 0; i < numMolecules; i++) {
            for (int j = 0; j < (int)atoms.size(); j++) {
                int oldIndex = mol.offsets[molBins[i].second]+atoms[j];
                int newIndex = mol.offsets[i]+atoms[j];
                originalIndex[newIndex] = atomIndex[oldIndex];
                newPosq[newIndex] = oldPosq[oldIndex];
1127
1128
                if (useMixedPrecision)
                    newPosqCorrection[newIndex] = oldPosqCorrection[oldIndex];
1129
1130
1131
1132
1133
1134
1135
1136
1137
1138
1139
1140
1141
                newVelm[newIndex] = oldVelm[oldIndex];
                newCellOffsets[newIndex] = posCellOffsets[oldIndex];
            }
        }
    }

    // Update the streams.

    for (int i = 0; i < numAtoms; i++) {
        atomIndex[i] = originalIndex[i];
        posCellOffsets[i] = newCellOffsets[i];
    }
    posq->upload(newPosq);
1142
1143
    if (useMixedPrecision)
        posqCorrection->upload(newPosqCorrection);
1144
1145
1146
1147
1148
    velm->upload(newVelm);
    atomIndexDevice->upload(atomIndex);
    for (int i = 0; i < (int) reorderListeners.size(); i++)
        reorderListeners[i]->execute();
}
1149

1150
1151
1152
1153
void CudaContext::addReorderListener(ReorderListener* listener) {
    reorderListeners.push_back(listener);
}

1154
1155
1156
1157
1158
1159
1160
1161
void CudaContext::addPreComputation(ForcePreComputation* computation) {
    preComputations.push_back(computation);
}

void CudaContext::addPostComputation(ForcePostComputation* computation) {
    postComputations.push_back(computation);
}

1162
1163
1164
1165
1166
1167
1168
1169
1170
1171
1172
1173
1174
1175
1176
1177
1178
1179
1180
1181
1182
1183
1184
1185
1186
1187
1188
1189
1190
1191
1192
1193
1194
1195
1196
1197
1198
1199
1200
1201
1202
1203
1204
1205
1206
1207
1208
1209
1210
1211
1212
1213
1214
1215
1216
1217
1218
1219
1220
1221
1222
1223
1224
1225
1226
1227
1228
1229
1230
1231
1232
1233
1234
1235
1236
1237
1238
1239
1240
1241
1242
1243
struct CudaContext::WorkThread::ThreadData {
    ThreadData(std::queue<CudaContext::WorkTask*>& tasks, bool& waiting,  bool& finished,
            pthread_mutex_t& queueLock, pthread_cond_t& waitForTaskCondition, pthread_cond_t& queueEmptyCondition) :
        tasks(tasks), waiting(waiting), finished(finished), queueLock(queueLock),
        waitForTaskCondition(waitForTaskCondition), queueEmptyCondition(queueEmptyCondition) {
    }
    std::queue<CudaContext::WorkTask*>& tasks;
    bool& waiting;
    bool& finished;
    pthread_mutex_t& queueLock;
    pthread_cond_t& waitForTaskCondition;
    pthread_cond_t& queueEmptyCondition;
};

static void* threadBody(void* args) {
    CudaContext::WorkThread::ThreadData& data = *reinterpret_cast<CudaContext::WorkThread::ThreadData*>(args);
    while (!data.finished || data.tasks.size() > 0) {
        pthread_mutex_lock(&data.queueLock);
        while (data.tasks.empty() && !data.finished) {
            data.waiting = true;
            pthread_cond_signal(&data.queueEmptyCondition);
            pthread_cond_wait(&data.waitForTaskCondition, &data.queueLock);
        }
        CudaContext::WorkTask* task = NULL;
        if (!data.tasks.empty()) {
            data.waiting = false;
            task = data.tasks.front();
            data.tasks.pop();
        }
        pthread_mutex_unlock(&data.queueLock);
        if (task != NULL) {
            task->execute();
            delete task;
        }
    }
    data.waiting = true;
    pthread_cond_signal(&data.queueEmptyCondition);
    delete &data;
    return 0;
}

CudaContext::WorkThread::WorkThread() : waiting(true), finished(false) {
    pthread_mutex_init(&queueLock, NULL);
    pthread_cond_init(&waitForTaskCondition, NULL);
    pthread_cond_init(&queueEmptyCondition, NULL);
    ThreadData* data = new ThreadData(tasks, waiting, finished, queueLock, waitForTaskCondition, queueEmptyCondition);
    pthread_create(&thread, NULL, threadBody, data);
}

CudaContext::WorkThread::~WorkThread() {
    pthread_mutex_lock(&queueLock);
    finished = true;
    pthread_cond_broadcast(&waitForTaskCondition);
    pthread_mutex_unlock(&queueLock);
    pthread_join(thread, NULL);
    pthread_mutex_destroy(&queueLock);
    pthread_cond_destroy(&waitForTaskCondition);
    pthread_cond_destroy(&queueEmptyCondition);
}

void CudaContext::WorkThread::addTask(CudaContext::WorkTask* task) {
    pthread_mutex_lock(&queueLock);
    tasks.push(task);
    waiting = false;
    pthread_cond_signal(&waitForTaskCondition);
    pthread_mutex_unlock(&queueLock);
}

bool CudaContext::WorkThread::isWaiting() {
    return waiting;
}

bool CudaContext::WorkThread::isFinished() {
    return finished;
}

void CudaContext::WorkThread::flush() {
    pthread_mutex_lock(&queueLock);
    while (!waiting)
       pthread_cond_wait(&queueEmptyCondition, &queueLock);
    pthread_mutex_unlock(&queueLock);
}