customGBValueN2_nvidia.cl 9.52 KB
Newer Older
1
2
3
4
5
6
#define TILE_SIZE 32

/**
 * Compute a value based on pair interactions.
 */

7
8
__kernel __attribute__((reqd_work_group_size(WORK_GROUP_SIZE, 1, 1)))
void computeN2Value(__global float4* posq, __local float4* local_posq, __global unsigned int* exclusions,
9
        __global unsigned int* exclusionIndices, __global unsigned int* exclusionRowIndices, __global float* global_value, __local float* local_value,
10
        __local float* tempBuffer,
11
#ifdef USE_CUTOFF
12
        __global ushort2* tiles, __global unsigned int* interactionFlags, __global unsigned int* interactionCount, float4 periodicBoxSize, float4 invPeriodicBoxSize
13
14
15
16
17
18
19
20
21
22
23
24
25
#else
        unsigned int numTiles
#endif
        PARAMETER_ARGUMENTS) {
#ifdef USE_CUTOFF
    unsigned int numTiles = interactionCount[0];
#endif
    unsigned int totalWarps = get_global_size(0)/TILE_SIZE;
    unsigned int warp = get_global_id(0)/TILE_SIZE;
    unsigned int pos = warp*numTiles/totalWarps;
    unsigned int end = (warp+1)*numTiles/totalWarps;
    float energy = 0.0f;
    unsigned int lasty = 0xFFFFFFFF;
26
27
    __local unsigned int exclusionRange[4];
    __local int exclusionIndex[2];
28
29
30

    while (pos < end) {
        // Extract the coordinates of this tile
31
#ifdef USE_CUTOFF
32
33
34
        ushort2 tileIndices = tiles[pos];
        unsigned int x = tileIndices.x;
        unsigned int y = tileIndices.y;
35
36
37
38
39
40
41
42
#else
        unsigned int y = (unsigned int) floor(NUM_BLOCKS+0.5f-sqrt((NUM_BLOCKS+0.5f)*(NUM_BLOCKS+0.5f)-2*pos));
        unsigned int x = (pos-y*NUM_BLOCKS+y*(y+1)/2);
        if (x >= NUM_BLOCKS) { // Occasionally happens due to roundoff error.
            y++;
            x = (pos-y*NUM_BLOCKS+y*(y+1)/2);
        }
#endif
43
44
        unsigned int tgx = get_local_id(0) & (TILE_SIZE-1);
        unsigned int tbx = get_local_id(0) - tgx;
45
        unsigned int atom1 = x*TILE_SIZE + tgx;
46
47
48
        float value = 0.0f;
        float4 posq1 = posq[atom1];
        LOAD_ATOM1_PARAMETERS
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64

        // Locate the exclusion data for this tile.

#ifdef USE_EXCLUSIONS
        int localGroupIndex = get_local_id(0)/TILE_SIZE;
        if (tgx < 2)
            exclusionRange[2*localGroupIndex+tgx] = exclusionRowIndices[x+tgx];
        if (tgx == 0)
            exclusionIndex[localGroupIndex] = -1;
        for (int i = exclusionRange[2*localGroupIndex]+tgx; i < exclusionRange[2*localGroupIndex+1]; i += TILE_SIZE)
            if (exclusionIndices[i] == y)
                exclusionIndex[localGroupIndex] = i*TILE_SIZE;
        bool hasExclusions = (exclusionIndex[localGroupIndex] > -1);
#else
        bool hasExclusions = false;
#endif
65
66
67
68
69
70
        if (x == y) {
            // This tile is on the diagonal.

            local_posq[get_local_id(0)] = posq1;
            LOAD_LOCAL_PARAMETERS_FROM_1
#ifdef USE_EXCLUSIONS
71
            unsigned int excl = exclusions[exclusionIndex[localGroupIndex]+tgx];
72
73
74
75
76
77
78
79
80
#endif
            for (unsigned int j = 0; j < TILE_SIZE; j++) {
#ifdef USE_EXCLUSIONS
                bool isExcluded = !(excl & 0x1);
#endif
                int atom2 = tbx+j;
                float4 posq2 = local_posq[atom2];
                float4 delta = (float4) (posq2.xyz - posq1.xyz, 0.0f);
#ifdef USE_PERIODIC
81
82
83
                delta.x -= floor(delta.x*invPeriodicBoxSize.x+0.5f)*periodicBoxSize.x;
                delta.y -= floor(delta.y*invPeriodicBoxSize.y+0.5f)*periodicBoxSize.y;
                delta.z -= floor(delta.z*invPeriodicBoxSize.z+0.5f)*periodicBoxSize.z;
84
85
#endif
                float r2 = delta.x*delta.x + delta.y*delta.y + delta.z*delta.z;
86
87
88
#ifdef USE_CUTOFF
                if (r2 < CUTOFF_SQUARED) {
#endif
89
                float r = SQRT(r2);
90
                LOAD_ATOM2_PARAMETERS
91
                atom2 = y*TILE_SIZE+j;
92
93
94
95
96
97
98
99
100
101
                float tempValue1 = 0.0f;
                float tempValue2 = 0.0f;
#ifdef USE_EXCLUSIONS
                if (!isExcluded && atom1 < NUM_ATOMS && atom2 < NUM_ATOMS && atom1 != atom2) {
#else
                if (atom1 < NUM_ATOMS && atom2 < NUM_ATOMS && atom1 != atom2) {
#endif
                    COMPUTE_VALUE
                }
                value += tempValue1;
102
103
104
#ifdef USE_CUTOFF
                }
#endif
105
106
107
108
109
110
111
#ifdef USE_EXCLUSIONS
                excl >>= 1;
#endif
            }

            // Write results
#ifdef USE_OUTPUT_BUFFER_PER_BLOCK
112
            unsigned int offset = x*TILE_SIZE + tgx + x*PADDED_NUM_ATOMS;
113
#else
114
            unsigned int offset = x*TILE_SIZE + tgx + warp*PADDED_NUM_ATOMS;
115
116
117
118
119
120
121
#endif
            global_value[offset] += value;
        }
        else {
            // This is an off-diagonal tile.

            if (lasty != y) {
122
                unsigned int j = y*TILE_SIZE + tgx;
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
                local_posq[get_local_id(0)] = posq[j];
                LOAD_LOCAL_PARAMETERS_FROM_GLOBAL
            }
            local_value[get_local_id(0)] = 0.0f;
#ifdef USE_CUTOFF
            unsigned int flags = interactionFlags[pos];
            if (!hasExclusions && flags != 0xFFFFFFFF) {
                if (flags == 0) {
                    // No interactions in this tile.
                }
                else {
                    // Compute only a subset of the interactions in this tile.

                    for (unsigned int j = 0; j < TILE_SIZE; j++) {
                        if ((flags&(1<<j)) != 0) {
                            int atom2 = tbx+j;
                            float4 posq2 = local_posq[atom2];
                            float4 delta = (float4) (posq2.xyz - posq1.xyz, 0.0f);
#ifdef USE_PERIODIC
142
143
144
                            delta.x -= floor(delta.x*invPeriodicBoxSize.x+0.5f)*periodicBoxSize.x;
                            delta.y -= floor(delta.y*invPeriodicBoxSize.y+0.5f)*periodicBoxSize.y;
                            delta.z -= floor(delta.z*invPeriodicBoxSize.z+0.5f)*periodicBoxSize.z;
145
146
147
148
#endif
                            float r2 = delta.x*delta.x + delta.y*delta.y + delta.z*delta.z;
                            float tempValue1 = 0.0f;
                            float tempValue2 = 0.0f;
149
                            if (r2 < CUTOFF_SQUARED) {
150
                                float r = SQRT(r2);
151
                                LOAD_ATOM2_PARAMETERS
152
                                atom2 = y*TILE_SIZE+j;
153
154
155
156
                                if (atom1 < NUM_ATOMS && atom2 < NUM_ATOMS) {
                                    COMPUTE_VALUE
                                }
                                value += tempValue1;
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
                            }
                            tempBuffer[get_local_id(0)] = tempValue2;

                            // Sum the forces on atom2.

                            if (tgx % 2 == 0)
                                tempBuffer[get_local_id(0)] += tempBuffer[get_local_id(0)+1];
                            if (tgx % 4 == 0)
                                tempBuffer[get_local_id(0)] += tempBuffer[get_local_id(0)+2];
                            if (tgx % 8 == 0)
                                tempBuffer[get_local_id(0)] += tempBuffer[get_local_id(0)+4];
                            if (tgx % 16 == 0)
                                tempBuffer[get_local_id(0)] += tempBuffer[get_local_id(0)+8];
                            if (tgx == 0)
                                local_value[tbx+j] += tempBuffer[get_local_id(0)] + tempBuffer[get_local_id(0)+16];
                        }
                    }
                }
            }
            else
#endif
            {
                // Compute the full set of interactions in this tile.

#ifdef USE_EXCLUSIONS
182
                unsigned int excl = (hasExclusions ? exclusions[exclusionIndex[localGroupIndex]+tgx] : 0xFFFFFFFF);
183
184
185
186
187
188
189
190
191
192
193
                excl = (excl >> tgx) | (excl << (TILE_SIZE - tgx));
#endif
                unsigned int tj = tgx;
                for (unsigned int j = 0; j < TILE_SIZE; j++) {
#ifdef USE_EXCLUSIONS
                    bool isExcluded = !(excl & 0x1);
#endif
                    int atom2 = tbx+tj;
                    float4 posq2 = local_posq[atom2];
                    float4 delta = (float4) (posq2.xyz - posq1.xyz, 0.0f);
#ifdef USE_PERIODIC
194
195
196
                    delta.x -= floor(delta.x*invPeriodicBoxSize.x+0.5f)*periodicBoxSize.x;
                    delta.y -= floor(delta.y*invPeriodicBoxSize.y+0.5f)*periodicBoxSize.y;
                    delta.z -= floor(delta.z*invPeriodicBoxSize.z+0.5f)*periodicBoxSize.z;
197
198
#endif
                    float r2 = delta.x*delta.x + delta.y*delta.y + delta.z*delta.z;
199
200
201
#ifdef USE_CUTOFF
                    if (r2 < CUTOFF_SQUARED) {
#endif
202
                    float r = SQRT(r2);
203
                    LOAD_ATOM2_PARAMETERS
204
                    atom2 = y*TILE_SIZE+tj;
205
206
207
208
209
210
211
212
213
214
215
                    float tempValue1 = 0.0f;
                    float tempValue2 = 0.0f;
#ifdef USE_EXCLUSIONS
                    if (!isExcluded && atom1 < NUM_ATOMS && atom2 < NUM_ATOMS) {
#else
                    if (atom1 < NUM_ATOMS && atom2 < NUM_ATOMS) {
#endif
                        COMPUTE_VALUE
                    }
                    value += tempValue1;
                    local_value[tbx+tj] += tempValue2;
216
217
218
#ifdef USE_CUTOFF
                    }
#endif
219
220
221
222
223
224
225
226
227
#ifdef USE_EXCLUSIONS
                    excl >>= 1;
#endif
                    tj = (tj + 1) & (TILE_SIZE - 1);
                }
            }

            // Write results
#ifdef USE_OUTPUT_BUFFER_PER_BLOCK
228
229
            unsigned int offset1 = x*TILE_SIZE + tgx + y*PADDED_NUM_ATOMS;
            unsigned int offset2 = y*TILE_SIZE + tgx + x*PADDED_NUM_ATOMS;
230
#else
231
232
            unsigned int offset1 = x*TILE_SIZE + tgx + warp*PADDED_NUM_ATOMS;
            unsigned int offset2 = y*TILE_SIZE + tgx + warp*PADDED_NUM_ATOMS;
233
234
235
236
#endif
            global_value[offset1] += value;
            global_value[offset2] += local_value[get_local_id(0)];
        }
237
        lasty = y;
238
239
240
        pos++;
    }
}