CpuPmeKernels.cpp 27.2 KB
Newer Older
peastman's avatar
peastman committed
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
/* -------------------------------------------------------------------------- *
 *                                   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.               *
 *                                                                            *
 * Portions copyright (c) 2013 Stanford University and the Authors.           *
 * Authors: Peter Eastman                                                     *
 * Contributors:                                                              *
 *                                                                            *
 * Permission is hereby granted, free of charge, to any person obtaining a    *
 * copy of this software and associated documentation files (the "Software"), *
 * to deal in the Software without restriction, including without limitation  *
 * the rights to use, copy, modify, merge, publish, distribute, sublicense,   *
 * and/or sell copies of the Software, and to permit persons to whom the      *
 * Software is furnished to do so, subject to the following conditions:       *
 *                                                                            *
 * The above copyright notice and this permission notice shall be included in *
 * all copies or substantial portions of the Software.                        *
 *                                                                            *
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR *
 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,   *
 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL    *
 * THE AUTHORS, CONTRIBUTORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM,    *
 * DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR      *
 * OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE  *
 * USE OR OTHER DEALINGS IN THE SOFTWARE.                                     *
 * -------------------------------------------------------------------------- */

32
33
34
#ifdef WIN32
  #define _USE_MATH_DEFINES // Needed to get M_PI
#endif
35
#include "CpuPmeKernels.h"
36
#include "SimTKOpenMMRealType.h"
37
#include <cmath>
peastman's avatar
peastman committed
38
#include <cstring>
39
#include <smmintrin.h>
peastman's avatar
peastman committed
40
41
42
43
44
45

using namespace OpenMM;
using namespace std;

static const int PME_ORDER = 5;

46
47
bool CpuCalcPmeReciprocalForceKernel::hasInitializedThreads = false;
int CpuCalcPmeReciprocalForceKernel::numThreads = 0;
48

49
#define EXTRACT_FLOAT(v, element) _mm_cvtss_f32(_mm_shuffle_ps(v, v, _MM_SHUFFLE(0, 0, 0, element)))
peastman's avatar
peastman committed
50

51
52
// Define function to get the number of processors.

53
54
55
56
57
58
59
60
61
62
63
#ifdef __APPLE__
   #include <sys/sysctl.h>
   #include <dlfcn.h>
#else
   #ifdef WIN32
      #include <windows.h>
   #else
      #include <dlfcn.h>
      #include <unistd.h>
   #endif
#endif
peastman's avatar
peastman committed
64

65
66
67
68
69
70
71
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
static int getNumProcessors() {
#ifdef __APPLE__
    int ncpu;
    size_t len = 4;
    if (sysctlbyname("hw.logicalcpu", &ncpu, &len, NULL, 0) == 0)
       return ncpu;
    else
       return 1;
#else
#ifdef WIN32
    SYSTEM_INFO siSysInfo;
    int ncpu;
    GetSystemInfo(&siSysInfo);
    ncpu = siSysInfo.dwNumberOfProcessors;
    if (ncpu < 1)
        ncpu = 1;
    return ncpu;
#else
    long nProcessorsOnline = sysconf(_SC_NPROCESSORS_ONLN);
    if (nProcessorsOnline == -1)
        return 1;
    else
        return (int) nProcessorsOnline;
#endif
#endif
peastman's avatar
peastman committed
90
91
}

92
93
94
95
96
97
98
// Define a function to check the CPU's capabilities.

#ifdef _WIN32
#define cpuid __cpuid
#else
static void cpuid(int cpuInfo[4], int infoType){
    __asm__ __volatile__ (
99
100
101
102
        "pushl %%ebx\n"
        "cpuid\n"
        "movl %%ebx, %1\n"
        "popl %%ebx\n" :
103
        "=a" (cpuInfo[0]),
104
        "=r" (cpuInfo[1]),
105
106
107
108
109
110
111
        "=c" (cpuInfo[2]),
        "=d" (cpuInfo[3]) :
        "a" (infoType)
    );
}
#endif

112
static void spreadCharge(int start, int end, float* posq, float* grid, int gridx, int gridy, int gridz, int numParticles, Vec3 periodicBoxSize) {
113
    float temp[4];
peastman's avatar
peastman committed
114
115
116
    __m128 boxSize = _mm_set_ps(0, (float) periodicBoxSize[2], (float) periodicBoxSize[1], (float) periodicBoxSize[0]);
    __m128 invBoxSize = _mm_set_ps(0, (float) (1/periodicBoxSize[2]), (float) (1/periodicBoxSize[1]), (float) (1/periodicBoxSize[0]));
    __m128 gridSize = _mm_set_ps(0, gridz, gridy, gridx);
peastman's avatar
peastman committed
117
    __m128i gridSizeInt = _mm_set_epi32(0, gridz, gridy, gridx);
peastman's avatar
peastman committed
118
119
120
    __m128 one  = _mm_set1_ps(1);
    __m128 scale = _mm_set1_ps(1.0f/(PME_ORDER-1));
    const float epsilonFactor = sqrt(ONE_4PI_EPS0);
121
    memset(grid, 0, sizeof(float)*gridx*gridy*gridz);
122
    for (int i = start; i < end; i++) {
peastman's avatar
peastman committed
123
124
        // Find the position relative to the nearest grid point.
        
125
126
127
        __m128 pos = _mm_loadu_ps(&posq[4*i]);
        __m128 posFloor = _mm_floor_ps(_mm_mul_ps(pos, invBoxSize));
        __m128 posInBox = _mm_sub_ps(pos, _mm_mul_ps(boxSize, posFloor));
peastman's avatar
peastman committed
128
        __m128 t = _mm_mul_ps(_mm_mul_ps(posInBox, invBoxSize), gridSize);
peastman's avatar
peastman committed
129
        __m128i ti = _mm_cvttps_epi32(t);
peastman's avatar
peastman committed
130
        __m128 dr = _mm_sub_ps(t, _mm_cvtepi32_ps(ti));
peastman's avatar
peastman committed
131
        __m128i gridIndex = _mm_sub_epi32(ti, _mm_and_si128(gridSizeInt, _mm_cmpeq_epi32(ti, gridSizeInt)));
peastman's avatar
peastman committed
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
        
        // Compute the B-spline coefficients.
        
        __m128 data[PME_ORDER];
        data[PME_ORDER-1] = _mm_setzero_ps();
        data[1] = dr;
        data[0] = _mm_sub_ps(one, dr);
        for (int j = 3; j < PME_ORDER; j++) {
            __m128 div = _mm_set1_ps(1.0f/(j-1));
            data[j-1] = _mm_mul_ps(_mm_mul_ps(div, dr), data[j-2]);
            for (int k = 1; k < j-1; k++)
                data[j-k-1] = _mm_mul_ps(div, _mm_add_ps(_mm_mul_ps(_mm_add_ps(dr, _mm_set1_ps(k)), data[j-k-2]), _mm_mul_ps(_mm_sub_ps(_mm_set1_ps(j-k), dr), data[j-k-1])));
            data[0] = _mm_mul_ps(_mm_mul_ps(div, _mm_sub_ps(one, dr)), data[0]);
        }
        data[PME_ORDER-1] = _mm_mul_ps(_mm_mul_ps(scale, dr), data[PME_ORDER-2]);
        for (int j = 1; j < (PME_ORDER-1); j++)
            data[PME_ORDER-j-1] = _mm_mul_ps(scale, _mm_add_ps(_mm_mul_ps(_mm_add_ps(dr, _mm_set1_ps(j)), data[PME_ORDER-j-2]), _mm_mul_ps(_mm_sub_ps(_mm_set1_ps(PME_ORDER-j), dr), data[PME_ORDER-j-1])));
        data[0] = _mm_mul_ps(_mm_mul_ps(scale, _mm_sub_ps(one, dr)), data[0]);
        
        // Spread the charges.
        
        int gridIndexX = _mm_extract_epi32(gridIndex, 0);
        int gridIndexY = _mm_extract_epi32(gridIndex, 1);
        int gridIndexZ = _mm_extract_epi32(gridIndex, 2);
peastman's avatar
peastman committed
156
157
158
159
160
        int zindex[PME_ORDER];
        for (int j = 0; j < PME_ORDER; j++) {
            zindex[j] = gridIndexZ+j;
            zindex[j] -= (zindex[j] >= gridz ? gridz : 0);
        }
peastman's avatar
peastman committed
161
        float charge = epsilonFactor*posq[4*i+3];
162
163
        __m128 zdata0to3 = _mm_set_ps(EXTRACT_FLOAT(data[3], 2), EXTRACT_FLOAT(data[2], 2), EXTRACT_FLOAT(data[1], 2), EXTRACT_FLOAT(data[0], 2));
        float zdata4 = EXTRACT_FLOAT(data[4], 2);
164
165
166
167
168
        if (gridIndexZ+4 < gridz) {
            for (int ix = 0; ix < PME_ORDER; ix++) {
                int xbase = gridIndexX+ix;
                xbase -= (xbase >= gridx ? gridx : 0);
                xbase = xbase*gridy*gridz;
169
                float xdata = charge*EXTRACT_FLOAT(data[ix], 0);
170
171
172
173
                for (int iy = 0; iy < PME_ORDER; iy++) {
                    int ybase = gridIndexY+iy;
                    ybase -= (ybase >= gridy ? gridy : 0);
                    ybase = xbase + ybase*gridz;
174
                    float multiplier = xdata*EXTRACT_FLOAT(data[iy], 1);
175
                    __m128 add0to3 = _mm_mul_ps(zdata0to3, _mm_set1_ps(multiplier));
176
                    _mm_storeu_ps(&grid[ybase+gridIndexZ], _mm_add_ps(_mm_loadu_ps(&grid[ybase+gridIndexZ]), add0to3));
177
178
179
180
181
182
183
184
185
                    grid[ybase+zindex[4]] += multiplier*zdata4;
                }
            }
        }
        else {
            for (int ix = 0; ix < PME_ORDER; ix++) {
                int xbase = gridIndexX+ix;
                xbase -= (xbase >= gridx ? gridx : 0);
                xbase = xbase*gridy*gridz;
186
                float xdata = charge*EXTRACT_FLOAT(data[ix], 0);
187
188
189
190
                for (int iy = 0; iy < PME_ORDER; iy++) {
                    int ybase = gridIndexY+iy;
                    ybase -= (ybase >= gridy ? gridy : 0);
                    ybase = xbase + ybase*gridz;
191
                    float multiplier = xdata*EXTRACT_FLOAT(data[iy], 1);
192
                    __m128 add0to3 = _mm_mul_ps(zdata0to3, _mm_set1_ps(multiplier));
peastman's avatar
peastman committed
193
                    _mm_store_ps(temp, add0to3);
peastman's avatar
peastman committed
194
195
196
197
                    grid[ybase+zindex[0]] += temp[0];
                    grid[ybase+zindex[1]] += temp[1];
                    grid[ybase+zindex[2]] += temp[2];
                    grid[ybase+zindex[3]] += temp[3];
198
                    grid[ybase+zindex[4]] += multiplier*zdata4;
peastman's avatar
peastman committed
199
200
201
202
203
204
                }
            }
        }
    }
}

205
206
207
static void computeReciprocalEterm(int start, int end, int gridx, int gridy, int gridz, vector<float>& recipEterm, double alpha, vector<float>* bsplineModuli, Vec3 periodicBoxSize) {
    const unsigned int zsize = gridz/2+1;
    const unsigned int yzsize = gridy*zsize;
208
209
210
211
212
213
    const float scaleFactor = (float) (M_PI*periodicBoxSize[0]*periodicBoxSize[1]*periodicBoxSize[2]);
    const float recipExpFactor = (float) (M_PI*M_PI/(alpha*alpha));
    const float invPeriodicBoxSizeX = (float) (1.0/periodicBoxSize[0]);
    const float invPeriodicBoxSizeY = (float) (1.0/periodicBoxSize[1]);
    const float invPeriodicBoxSizeZ = (float) (1.0/periodicBoxSize[2]);

214
215
    int firstz = (start == 0 ? 1 : 0);
    for (int kx = start; kx < end; kx++) {
216
217
218
219
220
221
        int mx = (kx < (gridx+1)/2) ? kx : kx-gridx;
        float mhx = mx*invPeriodicBoxSizeX;
        float bx = scaleFactor*bsplineModuli[0][kx];
        for (int ky = 0; ky < gridy; ky++) {
            int my = (ky < (gridy+1)/2) ? ky : ky-gridy;
            float mhy = my*invPeriodicBoxSizeY;
222
223
            float mhx2y2 = mhx*mhx + mhy*mhy;
            float bxby = bx*bsplineModuli[1][ky];
224
225
            for (int kz = firstz; kz < zsize; kz++) {
                int index = kx*yzsize + ky*zsize + kz;
226
227
228
                int mz = (kz < (gridz+1)/2) ? kz : kz-gridz;
                float mhz = mz*invPeriodicBoxSizeZ;
                float bz = bsplineModuli[2][kz];
229
230
                float m2 = mhx2y2 + mhz*mhz;
                float denom = m2*bxby*bz;
231
232
233
234
235
236
237
                recipEterm[index] = exp(-recipExpFactor*m2)/denom;
            }
            firstz = 0;
        }
    }
}

238
static float reciprocalEnergy(int start, int end, fftwf_complex* grid, int gridx, int gridy, int gridz, double alpha, vector<float>* bsplineModuli, Vec3 periodicBoxSize) {
239
240
    const unsigned int zsizeHalf = gridz/2+1;
    const unsigned int yzsizeHalf = gridy*zsizeHalf;
241
242
243
244
245
    const float scaleFactor = (float) (M_PI*periodicBoxSize[0]*periodicBoxSize[1]*periodicBoxSize[2]);
    const float recipExpFactor = (float) (M_PI*M_PI/(alpha*alpha));
    const float invPeriodicBoxSizeX = (float) (1.0/periodicBoxSize[0]);
    const float invPeriodicBoxSizeY = (float) (1.0/periodicBoxSize[1]);
    const float invPeriodicBoxSizeZ = (float) (1.0/periodicBoxSize[2]);
246
247
248
249
    float energy = 0.0f;

    int firstz = (start == 0 ? 1 : 0);
    for (int kx = start; kx < end; kx++) {
250
251
252
        int mx = (kx < (gridx+1)/2) ? kx : kx-gridx;
        float mhx = mx*invPeriodicBoxSizeX;
        float bx = scaleFactor*bsplineModuli[0][kx];
253
254
        for (int ky = 0; ky < gridy; ky++) {
            int my = (ky < (gridy+1)/2) ? ky : ky-gridy;
255
256
257
            float mhy = my*invPeriodicBoxSizeY;
            float mhx2y2 = mhx*mhx + mhy*mhy;
            float bxby = bx*bsplineModuli[1][ky];
258
            for (int kz = firstz; kz < gridz; kz++) {
259
260
261
262
263
264
                int mz = (kz < (gridz+1)/2) ? kz : kz-gridz;
                float mhz = mz*invPeriodicBoxSizeZ;
                float bz = bsplineModuli[2][kz];
                float m2 = mhx2y2 + mhz*mhz;
                float denom = m2*bxby*bz;
                float eterm = exp(-recipExpFactor*m2)/denom;
265
266
267
268
269
270
271
272
273
274
275
                int kx1, ky1, kz1;
                if (kz >= gridz/2+1) {
                    kx1 = (kx == 0 ? kx : gridx-kx);
                    ky1 = (ky == 0 ? ky : gridy-ky);
                    kz1 = gridz-kz;
                }
                else {
                    kx1 = kx;
                    ky1 = ky;
                    kz1 = kz;
                }
276
                int index = kx1*yzsizeHalf + ky1*zsizeHalf + kz1;
277
278
279
280
281
282
283
                float gridReal = grid[index][0];
                float gridImag = grid[index][1];
                energy += eterm*(gridReal*gridReal+gridImag*gridImag);
            }
            firstz = 0;
        }
    }
284
    return 0.5f*energy;
285
286
}

287
static void reciprocalConvolution(int start, int end, fftwf_complex* grid, int gridx, int gridy, int gridz, vector<float>& recipEterm) {
288
289
290
    const unsigned int zsize = gridz/2+1;
    const unsigned int yzsize = gridy*zsize;

291
292
    int firstz = (start == 0 ? 1 : 0);
    for (int kx = start; kx < end; kx++) {
293
294
295
        for (int ky = 0; ky < gridy; ky++) {
            for (int kz = firstz; kz < zsize; kz++) {
                int index = kx*yzsize + ky*zsize + kz;
296
                float eterm = recipEterm[index];
297
298
                grid[index][0] *= eterm;
                grid[index][1] *= eterm;
299
300
301
302
303
304
            }
            firstz = 0;
        }
    }
}

305
static void interpolateForces(int start, int end, float* posq, float* force, float* grid, int gridx, int gridy, int gridz, int numParticles, Vec3 periodicBoxSize) {
306
307
308
    __m128 boxSize = _mm_set_ps(0, (float) periodicBoxSize[2], (float) periodicBoxSize[1], (float) periodicBoxSize[0]);
    __m128 invBoxSize = _mm_set_ps(0, (float) (1/periodicBoxSize[2]), (float) (1/periodicBoxSize[1]), (float) (1/periodicBoxSize[0]));
    __m128 gridSize = _mm_set_ps(0, gridz, gridy, gridx);
peastman's avatar
peastman committed
309
    __m128i gridSizeInt = _mm_set_epi32(0, gridz, gridy, gridx);
310
311
312
    __m128 one  = _mm_set1_ps(1);
    __m128 scale = _mm_set1_ps(1.0f/(PME_ORDER-1));
    const float epsilonFactor = sqrt(ONE_4PI_EPS0);
313
    for (int i = start; i < end; i++) {
314
315
        // Find the position relative to the nearest grid point.
        
316
317
318
        __m128 pos = _mm_loadu_ps(&posq[4*i]);
        __m128 posFloor = _mm_floor_ps(_mm_mul_ps(pos, invBoxSize));
        __m128 posInBox = _mm_sub_ps(pos, _mm_mul_ps(boxSize, posFloor));
319
        __m128 t = _mm_mul_ps(_mm_mul_ps(posInBox, invBoxSize), gridSize);
peastman's avatar
peastman committed
320
        __m128i ti = _mm_cvttps_epi32(t);
321
        __m128 dr = _mm_sub_ps(t, _mm_cvtepi32_ps(ti));
peastman's avatar
peastman committed
322
        __m128i gridIndex = _mm_sub_epi32(ti, _mm_and_si128(gridSizeInt, _mm_cmpeq_epi32(ti, gridSizeInt)));
323
324
325
326
327
328
329
330
331
332
333
334
335
336
337
338
339
340
341
342
343
344
        
        // Compute the B-spline coefficients.
        
        __m128 data[PME_ORDER];
        __m128 ddata[PME_ORDER];
        data[PME_ORDER-1] = _mm_setzero_ps();
        data[1] = dr;
        data[0] = _mm_sub_ps(one, dr);
        for (int j = 3; j < PME_ORDER; j++) {
            __m128 div = _mm_set1_ps(1.0f/(j-1));
            data[j-1] = _mm_mul_ps(_mm_mul_ps(div, dr), data[j-2]);
            for (int k = 1; k < j-1; k++)
                data[j-k-1] = _mm_mul_ps(div, _mm_add_ps(_mm_mul_ps(_mm_add_ps(dr, _mm_set1_ps(k)), data[j-k-2]), _mm_mul_ps(_mm_sub_ps(_mm_set1_ps(j-k), dr), data[j-k-1])));
            data[0] = _mm_mul_ps(_mm_mul_ps(div, _mm_sub_ps(one, dr)), data[0]);
        }
        ddata[0] = _mm_sub_ps(_mm_set1_ps(0), data[0]);
        for (int j = 1; j < PME_ORDER; j++)
            ddata[j] = _mm_sub_ps(data[j-1], data[j]);
        data[PME_ORDER-1] = _mm_mul_ps(_mm_mul_ps(scale, dr), data[PME_ORDER-2]);
        for (int j = 1; j < (PME_ORDER-1); j++)
            data[PME_ORDER-j-1] = _mm_mul_ps(scale, _mm_add_ps(_mm_mul_ps(_mm_add_ps(dr, _mm_set1_ps(j)), data[PME_ORDER-j-2]), _mm_mul_ps(_mm_sub_ps(_mm_set1_ps(PME_ORDER-j), dr), data[PME_ORDER-j-1])));
        data[0] = _mm_mul_ps(_mm_mul_ps(scale, _mm_sub_ps(one, dr)), data[0]);
345
                
346
347
348
349
350
        // Compute the force on this atom.
        
        int gridIndexX = _mm_extract_epi32(gridIndex, 0);
        int gridIndexY = _mm_extract_epi32(gridIndex, 1);
        int gridIndexZ = _mm_extract_epi32(gridIndex, 2);
peastman's avatar
peastman committed
351
352
353
354
355
        int zindex[PME_ORDER];
        for (int j = 0; j < PME_ORDER; j++) {
            zindex[j] = gridIndexZ+j;
            zindex[j] -= (zindex[j] >= gridz ? gridz : 0);
        }
356
357
        __m128 zdata[PME_ORDER];
        for (int j = 0; j < PME_ORDER; j++)
358
            zdata[j] = _mm_set_ps(0, EXTRACT_FLOAT(ddata[j], 2), EXTRACT_FLOAT(data[j], 2), EXTRACT_FLOAT(data[j], 2));
359
360
361
362
363
        __m128 f = _mm_set1_ps(0);
        for (int ix = 0; ix < PME_ORDER; ix++) {
            int xbase = gridIndexX+ix;
            xbase -= (xbase >= gridx ? gridx : 0);
            xbase = xbase*gridy*gridz;
364
365
            float dx = EXTRACT_FLOAT(data[ix], 0);
            float ddx = EXTRACT_FLOAT(ddata[ix], 0);
366
367
368
369
370
371
            __m128 xdata = _mm_set_ps(0, dx, dx, ddx);

            for (int iy = 0; iy < PME_ORDER; iy++) {
                int ybase = gridIndexY+iy;
                ybase -= (ybase >= gridy ? gridy : 0);
                ybase = xbase + ybase*gridz;
372
373
                float dy = EXTRACT_FLOAT(data[iy], 1);
                float ddy = EXTRACT_FLOAT(ddata[iy], 1);
374
375
376
                __m128 xydata = _mm_mul_ps(xdata, _mm_set_ps(0, dy, ddy, dy));

                for (int iz = 0; iz < PME_ORDER; iz++) {
peastman's avatar
peastman committed
377
                    __m128 gridValue = _mm_set1_ps(grid[ybase+zindex[iz]]);
378
                    f = _mm_add_ps(f, _mm_mul_ps(xydata, _mm_mul_ps(zdata[iz], gridValue)));
379
380
381
                }
            }
        }
382
        f = _mm_mul_ps(invBoxSize, _mm_mul_ps(gridSize, _mm_mul_ps(f, _mm_set1_ps(-epsilonFactor*posq[4*i+3]))));
peastman's avatar
peastman committed
383
        _mm_store_ps(&force[4*i], f);        
384
385
386
    }
}

387
class CpuCalcPmeReciprocalForceKernel::ThreadData {
388
public:
389
    CpuCalcPmeReciprocalForceKernel& owner;
390
    int index;
391
    float* tempGrid;
392
    ThreadData(CpuCalcPmeReciprocalForceKernel& owner, int index) : owner(owner), index(index), tempGrid(NULL) {
393
394
395
396
    }
};

static void* threadBody(void* args) {
397
    CpuCalcPmeReciprocalForceKernel::ThreadData& data = *reinterpret_cast<CpuCalcPmeReciprocalForceKernel::ThreadData*>(args);
398
    data.owner.runThread(data.index);
399
400
    if (data.tempGrid != NULL)
        fftwf_free(data.tempGrid);
401
402
403
404
    delete &data;
    return 0;
}

405
void CpuCalcPmeReciprocalForceKernel::initialize(int xsize, int ysize, int zsize, int numParticles, double alpha) {
406
407
408
409
410
    if (!hasInitializedThreads) {
        numThreads = getNumProcessors();
        fftwf_init_threads();
        hasInitializedThreads = true;
    }
411
412
413
    gridx = findFFTDimension(xsize);
    gridy = findFFTDimension(ysize);
    gridz = findFFTDimension(zsize);
414
415
416
    this->numParticles = numParticles;
    this->alpha = alpha;
    force.resize(4*numParticles);
417
    recipEterm.resize(gridx*gridy*gridz);
418
    
419
420
421
422
    // Initialize threads.
    
    pthread_cond_init(&startCondition, NULL);
    pthread_cond_init(&endCondition, NULL);
423
424
    pthread_cond_init(&mainThreadStartCondition, NULL);
    pthread_cond_init(&mainThreadEndCondition, NULL);
425
426
427
428
429
430
    pthread_mutex_init(&lock, NULL);
    thread.resize(numThreads);
    for (int i = 0; i < numThreads; i++) {
        ThreadData* data = new ThreadData(*this, i);
        threadData.push_back(data);
        pthread_create(&thread[i], NULL, threadBody, data);
431
        data->tempGrid = (float*) fftwf_malloc(sizeof(float)*(gridx*gridy*gridz+3));
432
    }
433
434
    pthread_create(&mainThread, NULL, threadBody, new ThreadData(*this, -1));
    
435
436
    // Initialize FFTW.
    
437
    realGrid = threadData[0]->tempGrid;
438
439
440
441
442
443
444
445
446
447
448
449
450
451
452
453
454
455
456
457
458
459
460
461
462
463
464
465
466
467
468
469
470
471
472
473
474
475
476
477
478
479
480
481
482
483
484
485
486
487
488
489
490
491
492
493
494
495
496
497
498
499
    complexGrid = (fftwf_complex*) fftwf_malloc(sizeof(fftwf_complex)*gridx*gridy*(gridz/2+1));
    fftwf_plan_with_nthreads(numThreads);
    forwardFFT = fftwf_plan_dft_r2c_3d(gridx, gridy, gridz, realGrid, complexGrid, FFTW_MEASURE);
    backwardFFT = fftwf_plan_dft_c2r_3d(gridx, gridy, gridz, complexGrid, realGrid, FFTW_MEASURE);
    hasCreatedPlan = true;
    
    // Initialize the b-spline moduli.

    int maxSize = max(max(gridx, gridy), gridz);
    vector<double> data(PME_ORDER);
    vector<double> ddata(PME_ORDER);
    vector<double> bsplinesData(maxSize);
    data[PME_ORDER-1] = 0.0;
    data[1] = 0.0;
    data[0] = 1.0;
    for (int i = 3; i < PME_ORDER; i++) {
        double div = 1.0/(i-1.0);
        data[i-1] = 0.0;
        for (int j = 1; j < (i-1); j++)
            data[i-j-1] = div*(j*data[i-j-2]+(i-j)*data[i-j-1]);
        data[0] = div*data[0];
    }

    // Differentiate.

    ddata[0] = -data[0];
    for (int i = 1; i < PME_ORDER; i++)
        ddata[i] = data[i-1]-data[i];
    double div = 1.0/(PME_ORDER-1);
    data[PME_ORDER-1] = 0.0;
    for (int i = 1; i < (PME_ORDER-1); i++)
        data[PME_ORDER-i-1] = div*(i*data[PME_ORDER-i-2]+(PME_ORDER-i)*data[PME_ORDER-i-1]);
    data[0] = div*data[0];
    for (int i = 0; i < maxSize; i++)
        bsplinesData[i] = 0.0;
    for (int i = 1; i <= PME_ORDER; i++)
        bsplinesData[i] = data[i-1];

    // Evaluate the actual bspline moduli for X/Y/Z.

    bsplineModuli[0].resize(gridx);
    bsplineModuli[1].resize(gridy);
    bsplineModuli[2].resize(gridz);
    for (int dim = 0; dim < 3; dim++) {
        int ndata = bsplineModuli[dim].size();
        vector<float>& moduli = bsplineModuli[dim];
        for (int i = 0; i < ndata; i++) {
            double sc = 0.0;
            double ss = 0.0;
            for (int j = 0; j < ndata; j++) {
                double arg = (2.0*M_PI*i*j)/ndata;
                sc += bsplinesData[j]*cos(arg);
                ss += bsplinesData[j]*sin(arg);
            }
            moduli[i] = (float) (sc*sc+ss*ss);
        }
        for (int i = 0; i < ndata; i++)
            if (moduli[i] < 1.0e-7f)
                moduli[i] = (moduli[i-1]+moduli[i+1])*0.5f;
    }
}

500
CpuCalcPmeReciprocalForceKernel::~CpuCalcPmeReciprocalForceKernel() {
501
502
    isDeleted = true;
    pthread_mutex_lock(&lock);
503
    pthread_cond_broadcast(&startCondition);
504
    pthread_cond_broadcast(&mainThreadStartCondition);
505
    pthread_mutex_unlock(&lock);
506
    for (int i = 0; i < (int) thread.size(); i++)
507
        pthread_join(thread[i], NULL);
508
    pthread_join(mainThread, NULL);
509
510
511
    pthread_mutex_destroy(&lock);
    pthread_cond_destroy(&startCondition);
    pthread_cond_destroy(&endCondition);
512
513
    pthread_cond_destroy(&mainThreadStartCondition);
    pthread_cond_destroy(&mainThreadEndCondition);
514
515
516
517
518
519
    if (complexGrid != NULL)
        fftwf_free(complexGrid);
    if (hasCreatedPlan) {
        fftwf_destroy_plan(forwardFFT);
        fftwf_destroy_plan(backwardFFT);
    }
520
521
}

522
void CpuCalcPmeReciprocalForceKernel::runThread(int index) {
523
524
525
    if (index == -1) {
        // This is the main thread that coordinates all the other ones.
        
526
        pthread_mutex_lock(&lock);
527
528
529
530
531
        while (true) {
            // Wait for the signal to start.
            
            pthread_cond_wait(&mainThreadStartCondition, &lock);
            if (isDeleted)
532
533
                break;
            posq = io->getPosq();
534
535
536
            advanceThreads(); // Signal threads to perform charge spreading.
            advanceThreads(); // Signal threads to sum the charge grids.
            fftwf_execute_dft_r2c(forwardFFT, realGrid, complexGrid);
537
538
            if (lastBoxSize != periodicBoxSize)
                advanceThreads(); // Signal threads to compute the reciprocal scale factors.
539
540
541
542
543
544
            if (includeEnergy)
                advanceThreads(); // Signal threads to compute energy.
            advanceThreads(); // Signal threads to perform reciprocal convolution.
            fftwf_execute_dft_c2r(backwardFFT, complexGrid, realGrid);
            advanceThreads(); // Signal threads to interpolate forces.
            isFinished = true;
545
            lastBoxSize = periodicBoxSize;
546
547
            pthread_cond_signal(&mainThreadEndCondition);
        }
548
        pthread_mutex_unlock(&lock);
549
550
551
552
553
554
555
556
557
558
559
560
    }
    else {
        // This is a worker thread.
        
        int particleStart = (index*numParticles)/numThreads;
        int particleEnd = ((index+1)*numParticles)/numThreads;
        int gridxStart = (index*gridx)/numThreads;
        int gridxEnd = ((index+1)*gridx)/numThreads;
        int gridSize = (gridx*gridy*gridz+3)/4;
        int gridStart = 4*((index*gridSize)/numThreads);
        int gridEnd = 4*(((index+1)*gridSize)/numThreads);
        while (true) {
561
            threadWait();
562
            if (isDeleted)
563
                break;
564
            spreadCharge(particleStart, particleEnd, posq, threadData[index]->tempGrid, gridx, gridy, gridz, numParticles, periodicBoxSize);
565
566
567
568
569
570
571
572
573
            threadWait();
            int numGrids = threadData.size();
            for (int i = gridStart; i < gridEnd; i += 4) {
                __m128 sum = _mm_load_ps(&realGrid[i]);
                for (int j = 1; j < numGrids; j++)
                    sum = _mm_add_ps(sum, _mm_load_ps(&threadData[j]->tempGrid[i]));
                _mm_store_ps(&realGrid[i], sum);
            }
            threadWait();
574
575
576
577
            if (lastBoxSize != periodicBoxSize) {
                computeReciprocalEterm(gridxStart, gridxEnd, gridx, gridy, gridz, recipEterm, alpha, bsplineModuli, periodicBoxSize);
                threadWait();
            }
578
            if (includeEnergy) {
579
                double threadEnergy = reciprocalEnergy(gridxStart, gridxEnd, complexGrid, gridx, gridy, gridz, alpha, bsplineModuli, periodicBoxSize);
580
581
582
583
584
                pthread_mutex_lock(&lock);
                energy += threadEnergy;
                pthread_mutex_unlock(&lock);
                threadWait();
            }
585
            reciprocalConvolution(gridxStart, gridxEnd, complexGrid, gridx, gridy, gridz, recipEterm);
586
587
            threadWait();
            interpolateForces(particleStart, particleEnd, posq, &force[0], realGrid, gridx, gridy, gridz, numParticles, periodicBoxSize);
588
589
590
591
        }
    }
}

592
void CpuCalcPmeReciprocalForceKernel::threadWait() {
593
594
595
596
597
598
599
    pthread_mutex_lock(&lock);
    waitCount++;
    pthread_cond_signal(&endCondition);
    pthread_cond_wait(&startCondition, &lock);
    pthread_mutex_unlock(&lock);
}

600
void CpuCalcPmeReciprocalForceKernel::advanceThreads() {
601
602
603
604
605
606
607
    waitCount = 0;
    pthread_cond_broadcast(&startCondition);
    while (waitCount < numThreads) {
        pthread_cond_wait(&endCondition, &lock);
    }
}

608
void CpuCalcPmeReciprocalForceKernel::beginComputation(IO& io, Vec3 periodicBoxSize, bool includeEnergy) {
609
    this->io = &io;
610
611
612
    this->periodicBoxSize = periodicBoxSize;
    this->includeEnergy = includeEnergy;
    energy = 0.0;
613
    pthread_mutex_lock(&lock);
614
    isFinished = false;
615
616
617
618
    pthread_cond_signal(&mainThreadStartCondition);
    pthread_mutex_unlock(&lock);
}

619
double CpuCalcPmeReciprocalForceKernel::finishComputation(IO& io) {
620
621
622
623
624
625
    pthread_mutex_lock(&lock);
    while (!isFinished) {
        pthread_cond_wait(&mainThreadEndCondition, &lock);
    }
    pthread_mutex_unlock(&lock);
    io.setForce(&force[0]);
626
    return energy;
peastman's avatar
peastman committed
627
}
628
629
630
631
632
633
634
635
636

bool CpuCalcPmeReciprocalForceKernel::isProcessorSupported() {
    int cpuInfo[4];
    cpuid(cpuInfo, 0);
    if (cpuInfo[0] >= 1) {
        cpuid(cpuInfo, 1);
        return ((cpuInfo[2] & ((int) 1 << 19)) != 0); // Require SSE 4.1
    }
    return false;
637
}
638
639
640
641
642
643
644
645

int CpuCalcPmeReciprocalForceKernel::findFFTDimension(int minimum) {
    if (minimum < 1)
        return 1;
    while (true) {
        // Attempt to factor the current value.

        int unfactored = minimum;
646
        for (int factor = 2; factor < 8; factor++) {
647
648
649
            while (unfactored > 1 && unfactored%factor == 0)
                unfactored /= factor;
        }
650
        if (unfactored == 1 || unfactored == 11 || unfactored == 13)
651
652
653
654
            return minimum;
        minimum++;
    }
}