gbsaObc_cpu.cl 39 KB
Newer Older
1
2
3
#ifdef SUPPORTS_64_BIT_ATOMICS
#pragma OPENCL EXTENSION cl_khr_int64_base_atomics : enable
#endif
4
5

typedef struct {
6
7
    real x, y, z;
    real q;
8
    float radius, scaledRadius;
9
    real bornSum;
10
} AtomData1;
11
12
13
14

/**
 * Compute the Born sum.
 */
15
16
17
__kernel void computeBornSum(
#ifdef SUPPORTS_64_BIT_ATOMICS
        __global long* restrict global_bornSum,
18
#else
19
        __global real* restrict global_bornSum,
20
#endif
21
        __global const real4* restrict posq, __global const float2* restrict global_params,
22
#ifdef USE_CUTOFF
23
        __global const int* restrict tiles, __global const unsigned int* restrict interactionCount, real4 periodicBoxSize, real4 invPeriodicBoxSize, 
24
        unsigned int maxTiles, __global const real4* restrict blockCenter, __global const real4* restrict blockSize, __global const int* restrict interactingAtoms,
25
#else
26
        unsigned int numTiles,
27
#endif
28
        __global const ushort2* exclusionTiles) {
29
    __local AtomData1 localData[TILE_SIZE];
30

31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
    // First loop: process tiles that contain exclusions.
    
    const unsigned int firstExclusionTile = FIRST_EXCLUSION_TILE+get_group_id(0)*(LAST_EXCLUSION_TILE-FIRST_EXCLUSION_TILE)/get_num_groups(0);
    const unsigned int lastExclusionTile = FIRST_EXCLUSION_TILE+(get_group_id(0)+1)*(LAST_EXCLUSION_TILE-FIRST_EXCLUSION_TILE)/get_num_groups(0);
    for (int pos = firstExclusionTile; pos < lastExclusionTile; pos++) {
        const ushort2 tileIndices = exclusionTiles[pos];
        const unsigned int x = tileIndices.x;
        const unsigned int y = tileIndices.y;

        // Load the data for this tile.

        for (int localAtomIndex = 0; localAtomIndex < TILE_SIZE; localAtomIndex++) {
            unsigned int j = y*TILE_SIZE + localAtomIndex;
            real4 tempPosq = posq[j];
            localData[localAtomIndex].x = tempPosq.x;
            localData[localAtomIndex].y = tempPosq.y;
            localData[localAtomIndex].z = tempPosq.z;
            localData[localAtomIndex].q = tempPosq.w;
            float2 tempParams = global_params[j];
            localData[localAtomIndex].radius = tempParams.x;
            localData[localAtomIndex].scaledRadius = tempParams.y;
52
53
54
55
56
57
        }
        if (x == y) {
            // This tile is on the diagonal.

            for (unsigned int tgx = 0; tgx < TILE_SIZE; tgx++) {
                unsigned int atom1 = x*TILE_SIZE+tgx;
58
59
                real bornSum = 0.0f;
                real4 posq1 = posq[atom1];
60
61
                float2 params1 = global_params[atom1];
                for (unsigned int j = 0; j < TILE_SIZE; j++) {
62
63
                    real4 posq2 = (real4) (localData[j].x, localData[j].y, localData[j].z, localData[j].q);
                    real4 delta = (real4) (posq2.xyz - posq1.xyz, 0);
64
65
66
#ifdef USE_PERIODIC
                    delta.xyz -= floor(delta.xyz*invPeriodicBoxSize.xyz+0.5f)*periodicBoxSize.xyz;
#endif
67
                    real r2 = dot(delta.xyz, delta.xyz);
68
69
70
71
72
#ifdef USE_CUTOFF
                    if (atom1 < NUM_ATOMS && y*TILE_SIZE+j < NUM_ATOMS && r2 < CUTOFF_SQUARED) {
#else
                    if (atom1 < NUM_ATOMS && y*TILE_SIZE+j < NUM_ATOMS) {
#endif
73
                        real invR = RSQRT(r2);
peastman's avatar
peastman committed
74
                        real r = r2*invR;
75
                        float2 params2 = (float2) (localData[j].radius, localData[j].scaledRadius);
76
                        real rScaledRadiusJ = r+params2.y;
77
                        if ((j != tgx) && (params1.x < rScaledRadiusJ)) {
78
79
80
81
82
                            real l_ij = RECIP(max((real) params1.x, fabs(r-params2.y)));
                            real u_ij = RECIP(rScaledRadiusJ);
                            real l_ij2 = l_ij*l_ij;
                            real u_ij2 = u_ij*u_ij;
                            real ratio = LOG(u_ij * RECIP(l_ij));
83
84
85
                            bornSum += l_ij - u_ij + (0.50f*invR*ratio) + 0.25f*(r*(u_ij2-l_ij2) +
                                             (params2.y*params2.y*invR)*(l_ij2-u_ij2));
                            bornSum += (params1.x < params2.y-r ? 2.0f*(RECIP(params1.x)-l_ij) : 0);
86
87
88
89
90
91
                        }
                    }
                }

                // Write results.

92
93
94
95
#ifdef SUPPORTS_64_BIT_ATOMICS
                atom_add(&global_bornSum[atom1], (long) (bornSum*0x100000000));
#else
                unsigned int offset = atom1 + get_group_id(0)*PADDED_NUM_ATOMS;
96
                global_bornSum[offset] += bornSum;
97
#endif
98
99
100
101
102
103
            }
        }
        else {
            // This is an off-diagonal tile.

            for (int tgx = 0; tgx < TILE_SIZE; tgx++)
104
                localData[tgx].bornSum = 0;
105
106
            for (unsigned int tgx = 0; tgx < TILE_SIZE; tgx++) {
                unsigned int atom1 = x*TILE_SIZE+tgx;
107
                real bornSum = 0;
108
                real4 posq1 = posq[atom1];
109
110
                float2 params1 = global_params[atom1];
                for (unsigned int j = 0; j < TILE_SIZE; j++) {
111
112
                    real4 posq2 = (real4) (localData[j].x, localData[j].y, localData[j].z, localData[j].q);
                    real4 delta = (real4) (posq2.xyz - posq1.xyz, 0);
113
114
115
#ifdef USE_PERIODIC
                    delta.xyz -= floor(delta.xyz*invPeriodicBoxSize.xyz+0.5f)*periodicBoxSize.xyz;
#endif
116
                    real r2 = delta.x*delta.x + delta.y*delta.y + delta.z*delta.z;
117
118
119
120
121
#ifdef USE_CUTOFF
                    if (atom1 < NUM_ATOMS && y*TILE_SIZE+j < NUM_ATOMS && r2 < CUTOFF_SQUARED) {
#else
                    if (atom1 < NUM_ATOMS && y*TILE_SIZE+j < NUM_ATOMS) {
#endif
122
                        real invR = RSQRT(r2);
peastman's avatar
peastman committed
123
                        real r = r2*invR;
124
                        float2 params2 = (float2) (localData[j].radius, localData[j].scaledRadius);
125
                        real rScaledRadiusJ = r+params2.y;
126
                        if (params1.x < rScaledRadiusJ) {
127
128
129
130
131
                            real l_ij = RECIP(max((real) params1.x, fabs(r-params2.y)));
                            real u_ij = RECIP(rScaledRadiusJ);
                            real l_ij2 = l_ij*l_ij;
                            real u_ij2 = u_ij*u_ij;
                            real ratio = LOG(u_ij * RECIP(l_ij));
132
133
134
                            bornSum += l_ij - u_ij + (0.50f*invR*ratio) + 0.25f*(r*(u_ij2-l_ij2) +
                                             (params2.y*params2.y*invR)*(l_ij2-u_ij2));
                            bornSum += (params1.x < params2.y-r ? 2.0f*(RECIP(params1.x)-l_ij) : 0);
135
                        }
136
                        real rScaledRadiusI = r+params1.y;
137
                        if (params2.x < rScaledRadiusI) {
138
139
140
141
142
                            real l_ij = RECIP(max((real) params2.x, fabs(r-params1.y)));
                            real u_ij = RECIP(rScaledRadiusI);
                            real l_ij2 = l_ij*l_ij;
                            real u_ij2 = u_ij*u_ij;
                            real ratio = LOG(u_ij * RECIP(l_ij));
143
144
145
                            real term = l_ij - u_ij + (0.50f*invR*ratio) + 0.25f*(r*(u_ij2-l_ij2) +
                                             (params1.y*params1.y*invR)*(l_ij2-u_ij2));
                            term += (params2.x < params1.y-r ? 2.0f*(RECIP(params2.x)-l_ij) : 0);
146
147
148
149
150
151
152
                            localData[j].bornSum += term;
                        }
                    }
                }

               // Write results for atom1.

153
154
155
#ifdef SUPPORTS_64_BIT_ATOMICS
                atom_add(&global_bornSum[atom1], (long) (bornSum*0x100000000));
#else
156
                unsigned int offset = atom1 + get_group_id(0)*PADDED_NUM_ATOMS;
157
                global_bornSum[offset] += bornSum;
158
#endif
159
160
            }

161
            // Write results.
162

163
            for (int tgx = 0; tgx < TILE_SIZE; tgx++) {
164
165
166
167
#ifdef SUPPORTS_64_BIT_ATOMICS
                unsigned int offset = y*TILE_SIZE + tgx;
                atom_add(&global_bornSum[offset], (long) (localData[tgx].bornSum*0x100000000));
#else
168
169
                unsigned int offset = y*TILE_SIZE+tgx + get_group_id(0)*PADDED_NUM_ATOMS;
                global_bornSum[offset] += localData[tgx].bornSum;
170
#endif
171
            }
172
173
174
        }
    }

175
176
    // Second loop: tiles without exclusions, either from the neighbor list (with cutoff) or just enumerating all
    // of them (no cutoff).
177

178
179
#ifdef USE_CUTOFF
    unsigned int numTiles = interactionCount[0];
180
181
    int pos = get_group_id(0)*(numTiles > maxTiles ? NUM_BLOCKS*(NUM_BLOCKS+1)/2 : numTiles)/get_num_groups(0);
    int end = (get_group_id(0)+1)*(numTiles > maxTiles ? NUM_BLOCKS*(NUM_BLOCKS+1)/2 : numTiles)/get_num_groups(0);
182
#else
183
184
    int pos = get_group_id(0)*numTiles/get_num_groups(0);
    int end = (get_group_id(0)+1)*numTiles/get_num_groups(0);
185
#endif
186
187
188
    int nextToSkip = -1;
    int currentSkipIndex = 0;
    __local int atomIndices[TILE_SIZE];
189
190

    while (pos < end) {
191
192
193
194
        bool includeTile = true;

        // Extract the coordinates of this tile.
        
195
        unsigned int x, y;
196
        bool singlePeriodicCopy = false;
197
198
#ifdef USE_CUTOFF
        if (numTiles <= maxTiles) {
199
            x = tiles[pos];
200
201
202
203
            real4 blockSizeX = blockSize[x];
            singlePeriodicCopy = (0.5f*periodicBoxSize.x-blockSizeX.x >= CUTOFF &&
                                  0.5f*periodicBoxSize.y-blockSizeX.y >= CUTOFF &&
                                  0.5f*periodicBoxSize.z-blockSizeX.z >= CUTOFF);
204
205
206
207
        }
        else
#endif
        {
208
            y = (unsigned int) floor(NUM_BLOCKS+0.5f-SQRT((NUM_BLOCKS+0.5f)*(NUM_BLOCKS+0.5f)-2*pos));
209
            x = (pos-y*NUM_BLOCKS+y*(y+1)/2);
210
211
            if (x < y || x >= NUM_BLOCKS) { // Occasionally happens due to roundoff error.
                y += (x < y ? -1 : 1);
212
213
214
                x = (pos-y*NUM_BLOCKS+y*(y+1)/2);
            }

215
216
217
218
219
220
221
222
223
224
225
226
227
228
            // Skip over tiles that have exclusions, since they were already processed.

            while (nextToSkip < pos) {
                if (currentSkipIndex < NUM_TILES_WITH_EXCLUSIONS) {
                    ushort2 tile = exclusionTiles[currentSkipIndex++];
                    nextToSkip = tile.x + tile.y*NUM_BLOCKS - tile.y*(tile.y+1)/2;
                }
                else
                    nextToSkip = end;
            }
            includeTile = (nextToSkip != pos);
        }
        if (includeTile) {
            // Load the data for this tile.
229
230

            for (int localAtomIndex = 0; localAtomIndex < TILE_SIZE; localAtomIndex++) {
231
232
233
234
235
236
237
238
239
240
241
242
243
244
245
246
247
248
249
250
251
252
253
254
255
256
257
258
259
260
261
262
263
264
265
266
267
268
269
270
271
#ifdef USE_CUTOFF
                unsigned int j = (numTiles <= maxTiles ? interactingAtoms[pos*TILE_SIZE+localAtomIndex] : y*TILE_SIZE+localAtomIndex);
#else
                unsigned int j = y*TILE_SIZE+localAtomIndex;
#endif
                atomIndices[localAtomIndex] = j;
                if (j < PADDED_NUM_ATOMS) {
                    real4 tempPosq = posq[j];
                    localData[localAtomIndex].x = tempPosq.x;
                    localData[localAtomIndex].y = tempPosq.y;
                    localData[localAtomIndex].z = tempPosq.z;
                    localData[localAtomIndex].q = tempPosq.w;
                    float2 tempParams = global_params[j];
                    localData[localAtomIndex].radius = tempParams.x;
                    localData[localAtomIndex].scaledRadius = tempParams.y;
                    localData[localAtomIndex].bornSum = 0.0f;
                }
            }
#ifdef USE_PERIODIC
            if (singlePeriodicCopy) {
                // The box is small enough that we can just translate all the atoms into a single periodic
                // box, then skip having to apply periodic boundary conditions later.

                real4 blockCenterX = blockCenter[x];
                for (unsigned int tgx = 0; tgx < TILE_SIZE; tgx++) {
                    localData[tgx].x -= floor((localData[tgx].x-blockCenterX.x)*invPeriodicBoxSize.x+0.5f)*periodicBoxSize.x;
                    localData[tgx].y -= floor((localData[tgx].y-blockCenterX.y)*invPeriodicBoxSize.y+0.5f)*periodicBoxSize.y;
                    localData[tgx].z -= floor((localData[tgx].z-blockCenterX.z)*invPeriodicBoxSize.z+0.5f)*periodicBoxSize.z;
                }
                for (unsigned int tgx = 0; tgx < TILE_SIZE; tgx++) {
                    unsigned int atom1 = x*TILE_SIZE+tgx;
                    real bornSum = 0;
                    real4 posq1 = posq[atom1];
                    float2 params1 = global_params[atom1];
                    for (unsigned int j = 0; j < TILE_SIZE; j++) {
                        real4 posq2 = (real4) (localData[j].x, localData[j].y, localData[j].z, localData[j].q);
                        real4 delta = (real4) (posq2.xyz - posq1.xyz, 0);
                        real r2 = delta.x*delta.x + delta.y*delta.y + delta.z*delta.z;
                        int atom2 = atomIndices[j];
                        if (atom1 < NUM_ATOMS && atom2 < NUM_ATOMS && r2 < CUTOFF_SQUARED) {
                            real invR = RSQRT(r2);
peastman's avatar
peastman committed
272
                            real r = r2*invR;
273
274
275
276
277
278
279
280
281
282
283
284
285
286
287
288
289
290
291
292
293
294
295
296
297
298
299
300
301
302
303
304
305
306
307
308
309
310
311
312
313
314
315
316
317
318
319
320
321
322
323
324
325
326
327
328
329
330
331
332
333
                            float2 params2 = (float2) (localData[j].radius, localData[j].scaledRadius);
                            real rScaledRadiusJ = r+params2.y;
                            if (params1.x < rScaledRadiusJ) {
                                real l_ij = RECIP(max((real) params1.x, fabs(r-params2.y)));
                                real u_ij = RECIP(rScaledRadiusJ);
                                real l_ij2 = l_ij*l_ij;
                                real u_ij2 = u_ij*u_ij;
                                real ratio = LOG(u_ij * RECIP(l_ij));
                                bornSum += l_ij - u_ij + (0.50f*invR*ratio) + 0.25f*(r*(u_ij2-l_ij2) +
                                                 (params2.y*params2.y*invR)*(l_ij2-u_ij2));
                                bornSum += (params1.x < params2.y-r ? 2.0f*(RECIP(params1.x)-l_ij) : 0);
                            }
                            real rScaledRadiusI = r+params1.y;
                            if (params2.x < rScaledRadiusI) {
                                real l_ij = RECIP(max((real) params2.x, fabs(r-params1.y)));
                                real u_ij = RECIP(rScaledRadiusI);
                                real l_ij2 = l_ij*l_ij;
                                real u_ij2 = u_ij*u_ij;
                                real ratio = LOG(u_ij * RECIP(l_ij));
                                real term = l_ij - u_ij + (0.50f*invR*ratio) + 0.25f*(r*(u_ij2-l_ij2) +
                                                 (params1.y*params1.y*invR)*(l_ij2-u_ij2));
                                term += (params2.x < params1.y-r ? 2.0f*(RECIP(params2.x)-l_ij) : 0);
                                localData[j].bornSum += term;
                            }
                        }
                    }

                    // Write results for atom1.

#ifdef SUPPORTS_64_BIT_ATOMICS
                    atom_add(&global_bornSum[atom1], (long) (bornSum*0x100000000));
#else
                    unsigned int offset = atom1 + get_group_id(0)*PADDED_NUM_ATOMS;
                    global_bornSum[offset] += bornSum;
#endif
                }
            }
            else
#endif
            {
                // We need to apply periodic boundary conditions separately for each interaction.

                for (unsigned int tgx = 0; tgx < TILE_SIZE; tgx++) {
                    unsigned int atom1 = x*TILE_SIZE+tgx;
                    real bornSum = 0;
                    real4 posq1 = posq[atom1];
                    float2 params1 = global_params[atom1];
                    for (unsigned int j = 0; j < TILE_SIZE; j++) {
                        real4 posq2 = (real4) (localData[j].x, localData[j].y, localData[j].z, localData[j].q);
                        real4 delta = (real4) (posq2.xyz - posq1.xyz, 0);
#ifdef USE_PERIODIC
                        delta.xyz -= floor(delta.xyz*invPeriodicBoxSize.xyz+0.5f)*periodicBoxSize.xyz;
#endif
                        real r2 = delta.x*delta.x + delta.y*delta.y + delta.z*delta.z;
                        int atom2 = atomIndices[j];
#ifdef USE_CUTOFF
                        if (atom1 < NUM_ATOMS && atom2 < NUM_ATOMS && r2 < CUTOFF_SQUARED) {
#else
                        if (atom1 < NUM_ATOMS && atom2 < NUM_ATOMS) {
#endif
                            real invR = RSQRT(r2);
peastman's avatar
peastman committed
334
                            real r = r2*invR;
335
336
337
338
339
340
341
342
343
344
345
346
347
348
349
350
351
352
353
354
355
356
357
358
359
360
361
362
363
364
365
366
367
368
369
370
371
372
373
374
375
376
377
378
379
380
381
382
383
384
385
386
387
388
                            float2 params2 = (float2) (localData[j].radius, localData[j].scaledRadius);
                            real rScaledRadiusJ = r+params2.y;
                            if (params1.x < rScaledRadiusJ) {
                                real l_ij = RECIP(max((real) params1.x, fabs(r-params2.y)));
                                real u_ij = RECIP(rScaledRadiusJ);
                                real l_ij2 = l_ij*l_ij;
                                real u_ij2 = u_ij*u_ij;
                                real ratio = LOG(u_ij * RECIP(l_ij));
                                bornSum += l_ij - u_ij + (0.50f*invR*ratio) + 0.25f*(r*(u_ij2-l_ij2) +
                                                 (params2.y*params2.y*invR)*(l_ij2-u_ij2));
                                bornSum += (params1.x < params2.y-r ? 2.0f*(RECIP(params1.x)-l_ij) : 0);
                            }
                            real rScaledRadiusI = r+params1.y;
                            if (params2.x < rScaledRadiusI) {
                                real l_ij = RECIP(max((real) params2.x, fabs(r-params1.y)));
                                real u_ij = RECIP(rScaledRadiusI);
                                real l_ij2 = l_ij*l_ij;
                                real u_ij2 = u_ij*u_ij;
                                real ratio = LOG(u_ij * RECIP(l_ij));
                                real term = l_ij - u_ij + (0.50f*invR*ratio) + 0.25f*(r*(u_ij2-l_ij2) +
                                                 (params1.y*params1.y*invR)*(l_ij2-u_ij2));
                                term += (params2.x < params1.y-r ? 2.0f*(RECIP(params2.x)-l_ij) : 0);
                                localData[j].bornSum += term;
                            }
                        }
                    }

                    // Write results for atom1.

#ifdef SUPPORTS_64_BIT_ATOMICS
                    atom_add(&global_bornSum[atom1], (long) (bornSum*0x100000000));
#else
                    unsigned int offset = atom1 + get_group_id(0)*PADDED_NUM_ATOMS;
                    global_bornSum[offset] += bornSum;
#endif
                }
            }

            // Write results.

            for (int tgx = 0; tgx < TILE_SIZE; tgx++) {
#ifdef USE_CUTOFF
                unsigned int atom2 = atomIndices[tgx];
#else
                unsigned int atom2 = y*TILE_SIZE + tgx;
#endif
                if (atom2 < PADDED_NUM_ATOMS) {
#ifdef SUPPORTS_64_BIT_ATOMICS
                    atom_add(&global_bornSum[atom2], (long) (localData[tgx].bornSum*0x100000000));
#else
                    unsigned int offset = atom2 + get_group_id(0)*PADDED_NUM_ATOMS;
                    global_bornSum[offset] += localData[tgx].bornSum;
#endif
                }
389
390
            }
        }
391
392
393
394
395
396
397
398
399
400
401
402
403
404
405
406
407
408
409
410
411
412
413
        pos++;
    }
}

typedef struct {
    real x, y, z;
    real q;
    real fx, fy, fz, fw;
    real bornRadius;
} AtomData2;

/**
 * First part of computing the GBSA interaction.
 */

__kernel void computeGBSAForce1(
#ifdef SUPPORTS_64_BIT_ATOMICS
        __global long* restrict forceBuffers, __global long* restrict global_bornForce,
#else
        __global real4* restrict forceBuffers, __global real* restrict global_bornForce,
#endif
        __global real* restrict energyBuffer, __global const real4* restrict posq, __global const real* restrict global_bornRadii,
#ifdef USE_CUTOFF
414
        __global const int* restrict tiles, __global const unsigned int* restrict interactionCount, real4 periodicBoxSize, real4 invPeriodicBoxSize, 
415
        unsigned int maxTiles, __global const real4* restrict blockCenter, __global const real4* restrict blockSize, __global const int* restrict interactingAtoms,
416
417
418
419
420
421
422
423
424
425
426
427
428
429
430
431
432
433
434
435
436
437
438
439
440
441
442
#else
        unsigned int numTiles,
#endif
        __global const ushort2* exclusionTiles) {
    real energy = 0.0f;
    __local AtomData2 localData[TILE_SIZE];

    // First loop: process tiles that contain exclusions.
    
    const unsigned int firstExclusionTile = FIRST_EXCLUSION_TILE+get_group_id(0)*(LAST_EXCLUSION_TILE-FIRST_EXCLUSION_TILE)/get_num_groups(0);
    const unsigned int lastExclusionTile = FIRST_EXCLUSION_TILE+(get_group_id(0)+1)*(LAST_EXCLUSION_TILE-FIRST_EXCLUSION_TILE)/get_num_groups(0);
    for (int pos = firstExclusionTile; pos < lastExclusionTile; pos++) {
        const ushort2 tileIndices = exclusionTiles[pos];
        const unsigned int x = tileIndices.x;
        const unsigned int y = tileIndices.y;

        // Load the data for this tile.

        for (int localAtomIndex = 0; localAtomIndex < TILE_SIZE; localAtomIndex++) {
            unsigned int j = y*TILE_SIZE + localAtomIndex;
            real4 tempPosq = posq[j];
            localData[localAtomIndex].x = tempPosq.x;
            localData[localAtomIndex].y = tempPosq.y;
            localData[localAtomIndex].z = tempPosq.z;
            localData[localAtomIndex].q = tempPosq.w;
            localData[localAtomIndex].bornRadius = global_bornRadii[j];
        }
443
444
445
446
447
        if (x == y) {
            // This tile is on the diagonal.

            for (unsigned int tgx = 0; tgx < TILE_SIZE; tgx++) {
                unsigned int atom1 = x*TILE_SIZE+tgx;
448
                real4 force = 0;
449
450
                real4 posq1 = posq[atom1];
                real bornRadius1 = global_bornRadii[atom1];
451
                for (unsigned int j = 0; j < TILE_SIZE; j++) {
452
453
                    real4 posq2 = (real4) (localData[j].x, localData[j].y, localData[j].z, localData[j].q);
                    real4 delta = (real4) (posq2.xyz - posq1.xyz, 0);
454
455
456
#ifdef USE_PERIODIC
                    delta.xyz -= floor(delta.xyz*invPeriodicBoxSize.xyz+0.5f)*periodicBoxSize.xyz;
#endif
457
                    real r2 = delta.x*delta.x + delta.y*delta.y + delta.z*delta.z;
458
459
460
461
462
#ifdef USE_CUTOFF
                    if (atom1 < NUM_ATOMS && y*TILE_SIZE+j < NUM_ATOMS && r2 < CUTOFF_SQUARED) {
#else
                    if (atom1 < NUM_ATOMS && y*TILE_SIZE+j < NUM_ATOMS) {
#endif
463
                        real invR = RSQRT(r2);
peastman's avatar
peastman committed
464
                        real r = r2*invR;
465
466
467
468
469
470
                        real bornRadius2 = localData[j].bornRadius;
                        real alpha2_ij = bornRadius1*bornRadius2;
                        real D_ij = r2*RECIP(4.0f*alpha2_ij);
                        real expTerm = EXP(-D_ij);
                        real denominator2 = r2 + alpha2_ij*expTerm;
                        real denominator = SQRT(denominator2);
471
472
                        real scaledChargeProduct = PREFACTOR*posq1.w*posq2.w;
                        real tempEnergy = scaledChargeProduct*RECIP(denominator);
473
474
475
                        real Gpol = tempEnergy*RECIP(denominator2);
                        real dGpol_dalpha2_ij = -0.5f*Gpol*expTerm*(1.0f+D_ij);
                        real dEdR = Gpol*(1.0f - 0.25f*expTerm);
476
                        force.w += dGpol_dalpha2_ij*bornRadius2;
477
478
479
480
#ifdef USE_CUTOFF
                        if (atom1 != y*TILE_SIZE+j)
                            tempEnergy -= scaledChargeProduct/CUTOFF;
#endif
481
                        energy += 0.5f*tempEnergy;
482
483
                        delta.xyz *= dEdR;
                        force.xyz -= delta.xyz;
484
485
486
487
488
                    }
                }

                // Write results.

489
490
491
492
493
494
495
#ifdef SUPPORTS_64_BIT_ATOMICS
                atom_add(&forceBuffers[atom1], (long) (force.x*0x100000000));
                atom_add(&forceBuffers[atom1+PADDED_NUM_ATOMS], (long) (force.y*0x100000000));
                atom_add(&forceBuffers[atom1+2*PADDED_NUM_ATOMS], (long) (force.z*0x100000000));
                atom_add(&global_bornForce[atom1], (long) (force.w*0x100000000));
#else
                unsigned int offset = atom1 + get_group_id(0)*PADDED_NUM_ATOMS;
496
497
                forceBuffers[offset].xyz = forceBuffers[offset].xyz+force.xyz;
                global_bornForce[offset] += force.w;
498
#endif
499
500
501
502
503
504
            }
        }
        else {
            // This is an off-diagonal tile.

            for (int tgx = 0; tgx < TILE_SIZE; tgx++) {
505
506
507
508
                localData[tgx].fx = 0;
                localData[tgx].fy = 0;
                localData[tgx].fz = 0;
                localData[tgx].fw = 0;
509
510
511
            }
            for (unsigned int tgx = 0; tgx < TILE_SIZE; tgx++) {
                unsigned int atom1 = x*TILE_SIZE+tgx;
512
                real4 force = 0;
513
514
                real4 posq1 = posq[atom1];
                real bornRadius1 = global_bornRadii[atom1];
515
                for (unsigned int j = 0; j < TILE_SIZE; j++) {
516
517
                    real4 posq2 = (real4) (localData[j].x, localData[j].y, localData[j].z, localData[j].q);
                    real4 delta = (real4) (posq2.xyz - posq1.xyz, 0);
518
519
520
#ifdef USE_PERIODIC
                    delta.xyz -= floor(delta.xyz*invPeriodicBoxSize.xyz+0.5f)*periodicBoxSize.xyz;
#endif
521
                    real r2 = delta.x*delta.x + delta.y*delta.y + delta.z*delta.z;
522
523
524
525
526
#ifdef USE_CUTOFF
                    if (atom1 < NUM_ATOMS && y*TILE_SIZE+j < NUM_ATOMS && r2 < CUTOFF_SQUARED) {
#else
                    if (atom1 < NUM_ATOMS && y*TILE_SIZE+j < NUM_ATOMS) {
#endif
527
                        real invR = RSQRT(r2);
peastman's avatar
peastman committed
528
                        real r = r2*invR;
529
530
531
532
533
534
                        real bornRadius2 = localData[j].bornRadius;
                        real alpha2_ij = bornRadius1*bornRadius2;
                        real D_ij = r2*RECIP(4.0f*alpha2_ij);
                        real expTerm = EXP(-D_ij);
                        real denominator2 = r2 + alpha2_ij*expTerm;
                        real denominator = SQRT(denominator2);
535
536
                        real scaledChargeProduct = PREFACTOR*posq1.w*posq2.w;
                        real tempEnergy = scaledChargeProduct*RECIP(denominator);
537
538
539
                        real Gpol = tempEnergy*RECIP(denominator2);
                        real dGpol_dalpha2_ij = -0.5f*Gpol*expTerm*(1.0f+D_ij);
                        real dEdR = Gpol*(1.0f - 0.25f*expTerm);
540
                        force.w += dGpol_dalpha2_ij*bornRadius2;
541
542
543
#ifdef USE_CUTOFF
                        tempEnergy -= scaledChargeProduct/CUTOFF;
#endif
544
545
546
547
548
549
550
551
552
553
                        energy += tempEnergy;
                        delta.xyz *= dEdR;
                        force.xyz -= delta.xyz;
                        localData[j].fx += delta.x;
                        localData[j].fy += delta.y;
                        localData[j].fz += delta.z;
                        localData[j].fw += dGpol_dalpha2_ij*bornRadius1;
                    }
                }

554
               // Write results for atom1.
555

556
557
558
559
560
561
#ifdef SUPPORTS_64_BIT_ATOMICS
                atom_add(&forceBuffers[atom1], (long) (force.x*0x100000000));
                atom_add(&forceBuffers[atom1+PADDED_NUM_ATOMS], (long) (force.y*0x100000000));
                atom_add(&forceBuffers[atom1+2*PADDED_NUM_ATOMS], (long) (force.z*0x100000000));
                atom_add(&global_bornForce[atom1], (long) (force.w*0x100000000));
#else
562
563
                unsigned int offset = atom1 + get_group_id(0)*PADDED_NUM_ATOMS;
                forceBuffers[offset].xyz = forceBuffers[offset].xyz+force.xyz;
564
                global_bornForce[offset] += force.w;
565
#endif
566
567
            }

568
            // Write results.
569

570
            for (int tgx = 0; tgx < TILE_SIZE; tgx++) {
571
572
573
574
575
576
577
#ifdef SUPPORTS_64_BIT_ATOMICS
                unsigned int offset = y*TILE_SIZE + tgx;
                atom_add(&forceBuffers[offset], (long) (localData[tgx].fx*0x100000000));
                atom_add(&forceBuffers[offset+PADDED_NUM_ATOMS], (long) (localData[tgx].fy*0x100000000));
                atom_add(&forceBuffers[offset+2*PADDED_NUM_ATOMS], (long) (localData[tgx].fz*0x100000000));
                atom_add(&global_bornForce[offset], (long) (localData[tgx].fw*0x100000000));
#else
578
                unsigned int offset = y*TILE_SIZE+tgx + get_group_id(0)*PADDED_NUM_ATOMS;
579
                real4 f = forceBuffers[offset];
580
581
582
583
584
                f.x += localData[tgx].fx;
                f.y += localData[tgx].fy;
                f.z += localData[tgx].fz;
                forceBuffers[offset] = f;
                global_bornForce[offset] += localData[tgx].fw;
585
586
587
588
589
590
591
592
593
594
595
596
597
598
599
600
601
602
603
604
605
606
607
608
609
610
611
612
613
#endif
            }
        }
    }

    // Second loop: tiles without exclusions, either from the neighbor list (with cutoff) or just enumerating all
    // of them (no cutoff).

#ifdef USE_CUTOFF
    unsigned int numTiles = interactionCount[0];
    int pos = get_group_id(0)*(numTiles > maxTiles ? NUM_BLOCKS*(NUM_BLOCKS+1)/2 : numTiles)/get_num_groups(0);
    int end = (get_group_id(0)+1)*(numTiles > maxTiles ? NUM_BLOCKS*(NUM_BLOCKS+1)/2 : numTiles)/get_num_groups(0);
#else
    int pos = get_group_id(0)*numTiles/get_num_groups(0);
    int end = (get_group_id(0)+1)*numTiles/get_num_groups(0);
#endif
    int nextToSkip = -1;
    int currentSkipIndex = 0;
    __local int atomIndices[TILE_SIZE];

    while (pos < end) {
        bool includeTile = true;

        // Extract the coordinates of this tile.
        
        unsigned int x, y;
        bool singlePeriodicCopy = false;
#ifdef USE_CUTOFF
        if (numTiles <= maxTiles) {
614
            x = tiles[pos];
615
616
617
618
            real4 blockSizeX = blockSize[x];
            singlePeriodicCopy = (0.5f*periodicBoxSize.x-blockSizeX.x >= CUTOFF &&
                                  0.5f*periodicBoxSize.y-blockSizeX.y >= CUTOFF &&
                                  0.5f*periodicBoxSize.z-blockSizeX.z >= CUTOFF);
619
620
621
622
623
624
625
626
627
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
673
674
675
676
677
678
679
680
681
682
683
684
685
686
687
688
        }
        else
#endif
        {
            y = (unsigned int) floor(NUM_BLOCKS+0.5f-SQRT((NUM_BLOCKS+0.5f)*(NUM_BLOCKS+0.5f)-2*pos));
            x = (pos-y*NUM_BLOCKS+y*(y+1)/2);
            if (x < y || x >= NUM_BLOCKS) { // Occasionally happens due to roundoff error.
                y += (x < y ? -1 : 1);
                x = (pos-y*NUM_BLOCKS+y*(y+1)/2);
            }

            // Skip over tiles that have exclusions, since they were already processed.

            while (nextToSkip < pos) {
                if (currentSkipIndex < NUM_TILES_WITH_EXCLUSIONS) {
                    ushort2 tile = exclusionTiles[currentSkipIndex++];
                    nextToSkip = tile.x + tile.y*NUM_BLOCKS - tile.y*(tile.y+1)/2;
                }
                else
                    nextToSkip = end;
            }
            includeTile = (nextToSkip != pos);
        }
        if (includeTile) {
            // Load the data for this tile.

            for (int localAtomIndex = 0; localAtomIndex < TILE_SIZE; localAtomIndex++) {
#ifdef USE_CUTOFF
                unsigned int j = (numTiles <= maxTiles ? interactingAtoms[pos*TILE_SIZE+localAtomIndex] : y*TILE_SIZE+localAtomIndex);
#else
                unsigned int j = y*TILE_SIZE+localAtomIndex;
#endif
                atomIndices[localAtomIndex] = j;
                if (j < PADDED_NUM_ATOMS) {
                    real4 tempPosq = posq[j];
                    localData[localAtomIndex].x = tempPosq.x;
                    localData[localAtomIndex].y = tempPosq.y;
                    localData[localAtomIndex].z = tempPosq.z;
                    localData[localAtomIndex].q = tempPosq.w;
                    localData[localAtomIndex].bornRadius = global_bornRadii[j];
                    localData[localAtomIndex].fx = 0.0f;
                    localData[localAtomIndex].fy = 0.0f;
                    localData[localAtomIndex].fz = 0.0f;
                    localData[localAtomIndex].fw = 0.0f;
                }
            }
#ifdef USE_PERIODIC
            if (singlePeriodicCopy) {
                // The box is small enough that we can just translate all the atoms into a single periodic
                // box, then skip having to apply periodic boundary conditions later.

                real4 blockCenterX = blockCenter[x];
                for (unsigned int tgx = 0; tgx < TILE_SIZE; tgx++) {
                    localData[tgx].x -= floor((localData[tgx].x-blockCenterX.x)*invPeriodicBoxSize.x+0.5f)*periodicBoxSize.x;
                    localData[tgx].y -= floor((localData[tgx].y-blockCenterX.y)*invPeriodicBoxSize.y+0.5f)*periodicBoxSize.y;
                    localData[tgx].z -= floor((localData[tgx].z-blockCenterX.z)*invPeriodicBoxSize.z+0.5f)*periodicBoxSize.z;
                }
                for (unsigned int tgx = 0; tgx < TILE_SIZE; tgx++) {
                    unsigned int atom1 = x*TILE_SIZE+tgx;
                    real4 force = 0;
                    real4 posq1 = posq[atom1];
                    posq1.xyz -= floor((posq1.xyz-blockCenterX.xyz)*invPeriodicBoxSize.xyz+0.5f)*periodicBoxSize.xyz;
                    float bornRadius1 = global_bornRadii[atom1];
                    for (unsigned int j = 0; j < TILE_SIZE; j++) {
                        real4 posq2 = (real4) (localData[j].x, localData[j].y, localData[j].z, localData[j].q);
                        real4 delta = (real4) (posq2.xyz - posq1.xyz, 0);
                        real r2 = delta.x*delta.x + delta.y*delta.y + delta.z*delta.z;
                        int atom2 = atomIndices[j];
                        if (atom1 < NUM_ATOMS && atom2 < NUM_ATOMS && r2 < CUTOFF_SQUARED) {
                            real invR = RSQRT(r2);
peastman's avatar
peastman committed
689
                            real r = r2*invR;
690
691
692
693
694
695
                            real bornRadius2 = localData[j].bornRadius;
                            real alpha2_ij = bornRadius1*bornRadius2;
                            real D_ij = r2*RECIP(4.0f*alpha2_ij);
                            real expTerm = EXP(-D_ij);
                            real denominator2 = r2 + alpha2_ij*expTerm;
                            real denominator = SQRT(denominator2);
696
697
                            real scaledChargeProduct = PREFACTOR*posq1.w*posq2.w;
                            real tempEnergy = scaledChargeProduct*RECIP(denominator);
698
699
700
701
                            real Gpol = tempEnergy*RECIP(denominator2);
                            real dGpol_dalpha2_ij = -0.5f*Gpol*expTerm*(1.0f+D_ij);
                            real dEdR = Gpol*(1.0f - 0.25f*expTerm);
                            force.w += dGpol_dalpha2_ij*bornRadius2;
702
703
704
#ifdef USE_CUTOFF
                            tempEnergy -= scaledChargeProduct/CUTOFF;
#endif
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
                            energy += tempEnergy;
                            delta.xyz *= dEdR;
                            force.xyz -= delta.xyz;
                            localData[j].fx += delta.x;
                            localData[j].fy += delta.y;
                            localData[j].fz += delta.z;
                            localData[j].fw += dGpol_dalpha2_ij*bornRadius1;
                        }
                    }

                    // Write results for atom1.

#ifdef SUPPORTS_64_BIT_ATOMICS
                    atom_add(&forceBuffers[atom1], (long) (force.x*0x100000000));
                    atom_add(&forceBuffers[atom1+PADDED_NUM_ATOMS], (long) (force.y*0x100000000));
                    atom_add(&forceBuffers[atom1+2*PADDED_NUM_ATOMS], (long) (force.z*0x100000000));
                    atom_add(&global_bornForce[atom1], (long) (force.w*0x100000000));
#else
                    unsigned int offset = atom1 + get_group_id(0)*PADDED_NUM_ATOMS;
                    forceBuffers[offset].xyz = forceBuffers[offset].xyz+force.xyz;
                    global_bornForce[offset] += force.w;
#endif
                }
            }
            else
#endif
            {
                // We need to apply periodic boundary conditions separately for each interaction.

                for (unsigned int tgx = 0; tgx < TILE_SIZE; tgx++) {
                    unsigned int atom1 = x*TILE_SIZE+tgx;
                    real4 force = 0;
                    real4 posq1 = posq[atom1];
                    float bornRadius1 = global_bornRadii[atom1];
                    for (unsigned int j = 0; j < TILE_SIZE; j++) {
                        real4 posq2 = (real4) (localData[j].x, localData[j].y, localData[j].z, localData[j].q);
                        real4 delta = (real4) (posq2.xyz - posq1.xyz, 0);
#ifdef USE_PERIODIC
                        delta.xyz -= floor(delta.xyz*invPeriodicBoxSize.xyz+0.5f)*periodicBoxSize.xyz;
#endif
                        real r2 = delta.x*delta.x + delta.y*delta.y + delta.z*delta.z;
                        int atom2 = atomIndices[j];
#ifdef USE_CUTOFF
                        if (atom1 < NUM_ATOMS && atom2 < NUM_ATOMS && r2 < CUTOFF_SQUARED) {
#else
                        if (atom1 < NUM_ATOMS && atom2 < NUM_ATOMS) {
#endif
                            real invR = RSQRT(r2);
peastman's avatar
peastman committed
753
                            real r = r2*invR;
754
755
756
757
758
759
                            real bornRadius2 = localData[j].bornRadius;
                            real alpha2_ij = bornRadius1*bornRadius2;
                            real D_ij = r2*RECIP(4.0f*alpha2_ij);
                            real expTerm = EXP(-D_ij);
                            real denominator2 = r2 + alpha2_ij*expTerm;
                            real denominator = SQRT(denominator2);
760
761
                            real scaledChargeProduct = PREFACTOR*posq1.w*posq2.w;
                            real tempEnergy = scaledChargeProduct*RECIP(denominator);
762
763
764
765
                            real Gpol = tempEnergy*RECIP(denominator2);
                            real dGpol_dalpha2_ij = -0.5f*Gpol*expTerm*(1.0f+D_ij);
                            real dEdR = Gpol*(1.0f - 0.25f*expTerm);
                            force.w += dGpol_dalpha2_ij*bornRadius2;
766
767
768
#ifdef USE_CUTOFF
                            tempEnergy -= scaledChargeProduct/CUTOFF;
#endif
769
770
771
772
773
774
775
776
777
778
779
780
781
782
783
784
785
786
787
788
789
790
791
792
793
794
795
796
797
798
799
800
801
802
803
804
805
806
807
808
809
810
811
812
813
814
815
816
817
                            energy += tempEnergy;
                            delta.xyz *= dEdR;
                            force.xyz -= delta.xyz;
                            localData[j].fx += delta.x;
                            localData[j].fy += delta.y;
                            localData[j].fz += delta.z;
                            localData[j].fw += dGpol_dalpha2_ij*bornRadius1;
                        }
                    }

                    // Write results for atom1.

#ifdef SUPPORTS_64_BIT_ATOMICS
                    atom_add(&forceBuffers[atom1], (long) (force.x*0x100000000));
                    atom_add(&forceBuffers[atom1+PADDED_NUM_ATOMS], (long) (force.y*0x100000000));
                    atom_add(&forceBuffers[atom1+2*PADDED_NUM_ATOMS], (long) (force.z*0x100000000));
                    atom_add(&global_bornForce[atom1], (long) (force.w*0x100000000));
#else
                    unsigned int offset = atom1 + get_group_id(0)*PADDED_NUM_ATOMS;
                    forceBuffers[offset].xyz = forceBuffers[offset].xyz+force.xyz;
                    global_bornForce[offset] += force.w;
#endif
                }
            }

            // Write results.

            for (int tgx = 0; tgx < TILE_SIZE; tgx++) {
#ifdef USE_CUTOFF
                unsigned int atom2 = atomIndices[tgx];
#else
                unsigned int atom2 = y*TILE_SIZE + tgx;
#endif
                if (atom2 < PADDED_NUM_ATOMS) {
#ifdef SUPPORTS_64_BIT_ATOMICS
                    atom_add(&forceBuffers[atom2], (long) (localData[tgx].fx*0x100000000));
                    atom_add(&forceBuffers[atom2+PADDED_NUM_ATOMS], (long) (localData[tgx].fy*0x100000000));
                    atom_add(&forceBuffers[atom2+2*PADDED_NUM_ATOMS], (long) (localData[tgx].fz*0x100000000));
                    atom_add(&global_bornForce[atom2], (long) (localData[tgx].fw*0x100000000));
#else
                    unsigned int offset = atom2 + get_group_id(0)*PADDED_NUM_ATOMS;
                    real4 f = forceBuffers[offset];
                    f.x += localData[tgx].fx;
                    f.y += localData[tgx].fy;
                    f.z += localData[tgx].fz;
                    forceBuffers[offset] = f;
                    global_bornForce[offset] += localData[tgx].fw;
#endif
                }
818
            }
819
820
821
822
823
        }
        pos++;
    }
    energyBuffer[get_global_id(0)] += energy;
}