xref: /libCEED/include/ceed/jit-source/magma/magma-basis-grad-3d.h (revision ca94c3ddc8f82b7d93a79f9e4812e99b8be840ff)
1 // Copyright (c) 2017-2022, Lawrence Livermore National Security, LLC and other CEED contributors.
2 // All Rights Reserved. See the top-level LICENSE and NOTICE files for details.
3 //
4 // SPDX-License-Identifier: BSD-2-Clause
5 //
6 // This file is part of CEED:  http://github.com/ceed
7 
8 /// @file
9 /// Internal header for MAGMA tensor basis gradient in 3D
10 #ifndef CEED_MAGMA_BASIS_GRAD_3D_H
11 #define CEED_MAGMA_BASIS_GRAD_3D_H
12 
13 #include "magma-common-tensor.h"
14 
15 // macros to abstract access of shared memory and reg. file
16 #define sT(i, j) sT[(j)*P + (i)]
17 #define sTmp(i, j, ldw) sTmp[(j) * (ldw) + (i)]
18 #define sTmp2(i, j, ldw) sTmp2[(j) * (ldw) + (i)]
19 
20 ////////////////////////////////////////////////////////////////////////////////
21 // Helper function to add or set into V
22 template <typename T, bool Add>
23 struct magma_grad_3d_device_accumulate;
24 
25 template <typename T>
26 struct magma_grad_3d_device_accumulate<T, true> {
27   static __device__ __inline__ void op(T &rV, const T &rTmp) { rV += rTmp; }
28 };
29 
30 template <typename T>
31 struct magma_grad_3d_device_accumulate<T, false> {
32   static __device__ __inline__ void op(T &rV, const T &rTmp) { rV = rTmp; }
33 };
34 
35 ////////////////////////////////////////////////////////////////////////////////
36 // grad basis action (3D)
37 // This function is called three times at a higher level for 3D
38 // DIM_U   -- for the size of rU[DIM_U * NUM_COMP * MAX_P_Q]
39 // DIM_V   -- for the size of rV[DIM_V * NUM_COMP * MAX_P_Q]
40 // i_DIM   -- the index of the outermost loop over dimensions in grad
41 // i_DIM_U -- which dim index of rU is accessed (always 0 for notrans, 0, 1, or 2 for trans)
42 // i_DIM_V -- which dim index of rV is accessed (0, 1, or 2 for notrans, always 0 for trans)
43 template <typename T, int DIM_U, int DIM_V, int NUM_COMP, int P, int Q, int rU_SIZE, int rV_SIZE, int i_DIM, int i_DIM_U, int i_DIM_V, bool ADD>
44 static __device__ __inline__ void magma_grad_3d_device(const T *sTinterp, const T *sTgrad, T rU[DIM_U][NUM_COMP][rU_SIZE],
45                                                        T rV[DIM_V][NUM_COMP][rV_SIZE], const int tx, T rTmp, T *swork) {
46   // Assumptions
47   // 0. This device routine applies grad for one dim only (i_DIM), so it should be thrice for 3D
48   // 1. 1D threads of size max(P,Q)^2
49   // 2. input:  rU[DIM_U x NUM_COMP x rU_SIZE] in registers (per thread)
50   // 3. output: rV[DIM_V x NUM_COMP x rV_SIZE] in registers (per thread)
51   // 4. Three products per each (dim,component) pair
52   //  4.1 Batch P^2 of (1xP) matrices times (PxQ) matrix => Batch P^2 of (1xQ) matrices
53   //  4.2 Batch P   of (QxP) matrices times (PxQ) matrix => Batch P   of (QxQ) matrices
54   //  4.3 Batch 1   of (Q^2xP_) matrix times (PxQ) matrix => (Q^2xQ_) matrix
55   // 6. Each thread computes one row of the output of each product
56   // 7. Sync is recommended before and after the call
57 
58   T *sW1 = swork;
59   T *sW2 = sW1 + P * P * Q;
60   for (int comp = 0; comp < NUM_COMP; comp++) {
61     // Batch P^2 of (1xP) matrices [reg] times (PxQ) matrix [shmem] => Batch P^2 of (1xQ) matrices [shmem]
62     if (tx < (P * P)) {
63       const int batchid = tx;
64       const int sld     = 1;
65       const T  *sT      = (i_DIM == 0) ? sTgrad : sTinterp;
66       T        *sTmp    = sW1 + batchid * (1 * Q);
67       for (int j = 0; j < Q; j++) {
68         rTmp = 0.0;
69         for (int i = 0; i < P; i++) {
70           rTmp += rU[i_DIM_U][comp][i] * sT(i, j);
71         }
72         sTmp(0, j, sld) = rTmp;
73       }
74     }  // end of: if (tx < P*P)
75     __syncthreads();
76 
77     // Batch P of (QxP) matrices [shmem] times (PxQ) matrix [shmem] => Batch P of (QxQ) matrices [reg]
78     if (tx < (P * Q)) {
79       const int batchid = tx / Q;
80       const int tx_     = tx % Q;
81       const int sld     = Q;
82       const T  *sT      = (i_DIM == 1) ? sTgrad : sTinterp;
83       T        *sTmp    = sW1 + batchid * (Q * P);  // sTmp is input
84       T        *sTmp2   = sW2 + batchid * (Q * Q);  // sTmp2 is output
85       for (int j = 0; j < Q; j++) {
86         rTmp = 0.0;
87         for (int i = 0; i < P; i++) {
88           rTmp += sTmp(tx_, i, sld) * sT(i, j);
89         }
90         sTmp2(tx_, j, sld) = rTmp;
91       }
92     }
93     __syncthreads();
94 
95     // Batch 1 of (Q^2xP_) matrices [shmem] times (PxQ) matrix [shmem] => Batch 1 of (Q^2xQ_) matrices [reg]
96     if (tx < (Q * Q)) {
97       // No need to declare batchid = (tx  / Q^2) = always zero
98       // No need to declare tx_     = (tx_ % Q^2) = always tx
99       const int sld  = Q * Q;
100       const T  *sT   = (i_DIM == 2) ? sTgrad : sTinterp;
101       T        *sTmp = sW2;  // sTmp is input
102       for (int j = 0; j < Q; j++) {
103         rTmp = 0.0;
104         for (int i = 0; i < P; i++) {
105           rTmp += sTmp(tx, i, sld) * sT(i, j);
106         }
107         magma_grad_3d_device_accumulate<T, ADD>::op(rV[i_DIM_V][comp][j], rTmp);
108       }
109     }
110     __syncthreads();
111   }  // loop over NUM_COMP
112 }
113 
114 ////////////////////////////////////////////////////////////////////////////////
115 extern "C" __launch_bounds__(MAGMA_BASIS_BOUNDS(BASIS_MAX_P_Q *BASIS_MAX_P_Q, MAGMA_MAXTHREADS_3D)) __global__
116     void magma_gradn_3d_kernel(const CeedScalar *dinterp1d, const CeedScalar *dgrad1d, const CeedScalar *dU, const int estrdU, const int cstrdU,
117                                const int dstrdU, CeedScalar *dV, const int estrdV, const int cstrdV, const int dstrdV, const int nelem) {
118   MAGMA_DEVICE_SHARED(CeedScalar, shared_data)
119 
120   const int tx      = threadIdx.x;
121   const int ty      = threadIdx.y;
122   const int elem_id = (blockIdx.x * blockDim.y) + ty;
123 
124   if (elem_id >= nelem) return;
125 
126   CeedScalar rU[1][BASIS_NUM_COMP][BASIS_P] = {0.0};  // here DIM_U = 1, but might be different for a fused operator
127   CeedScalar rV[1][BASIS_NUM_COMP][BASIS_Q] = {0.0};  // here DIM_V = 1, but might be different for a fused operator
128   CeedScalar rTmp                           = 0.0;
129 
130   // shift global memory pointers by elem stride
131   dU += elem_id * estrdU;
132   dV += elem_id * estrdV;
133 
134   // assign shared memory pointers
135   CeedScalar *sTinterp = (CeedScalar *)shared_data;
136   CeedScalar *sTgrad   = sTinterp + BASIS_P * BASIS_Q;
137   CeedScalar *sTmp     = sTgrad + BASIS_P * BASIS_Q;
138   sTmp += ty * (max(BASIS_P * BASIS_P * BASIS_P, (BASIS_P * BASIS_P * BASIS_Q) + (BASIS_P * BASIS_Q * BASIS_Q)));
139 
140   // read T
141   if (ty == 0) {
142     read_T_notrans_gm2sm<BASIS_P, BASIS_Q>(tx, dinterp1d, sTinterp);
143     read_T_notrans_gm2sm<BASIS_P, BASIS_Q>(tx, dgrad1d, sTgrad);
144   }
145   __syncthreads();
146 
147   /* read U (idim = 0 for dU, i_DIM = 0 for rU) --
148      there is a sync at the end of this function */
149   read_U_3d<CeedScalar, BASIS_P, 1, BASIS_NUM_COMP, BASIS_P, 0>(dU + (0 * dstrdU), cstrdU, rU, sTmp, tx);
150 
151   /* first call (i_DIM = 0, i_DIM_U = 0, i_DIM_V = 0) --
152      output from rV[0][][] into dV (idim = 0) */
153   magma_grad_3d_device<CeedScalar, 1, 1, BASIS_NUM_COMP, BASIS_P, BASIS_Q, BASIS_P, BASIS_Q, 0, 0, 0, false>(sTinterp, sTgrad, rU, rV, tx, rTmp,
154                                                                                                              sTmp);
155   /* there is a sync at the end of magma_grad_3d_device */
156   write_V_3d<CeedScalar, BASIS_Q, 1, BASIS_NUM_COMP, BASIS_Q, 0>(dV + (0 * dstrdV), cstrdV, rV, tx);
157 
158   /* second call (i_DIM = 1, i_DIM_U = 0, i_DIM_V = 0) --
159      output from rV[0][][] into dV (idim = 1) */
160   magma_grad_3d_device<CeedScalar, 1, 1, BASIS_NUM_COMP, BASIS_P, BASIS_Q, BASIS_P, BASIS_Q, 1, 0, 0, false>(sTinterp, sTgrad, rU, rV, tx, rTmp,
161                                                                                                              sTmp);
162   /* there is a sync at the end of magma_grad_3d_device */
163   write_V_3d<CeedScalar, BASIS_Q, 1, BASIS_NUM_COMP, BASIS_Q, 0>(dV + (1 * dstrdV), cstrdV, rV, tx);
164 
165   /* third call (i_DIM = 2, i_DIM_U = 0, i_DIM_V = 0) --
166      output from rV[0][][] into dV (idim = 2) */
167   magma_grad_3d_device<CeedScalar, 1, 1, BASIS_NUM_COMP, BASIS_P, BASIS_Q, BASIS_P, BASIS_Q, 2, 0, 0, false>(sTinterp, sTgrad, rU, rV, tx, rTmp,
168                                                                                                              sTmp);
169   /* there is a sync at the end of magma_grad_3d_device */
170   write_V_3d<CeedScalar, BASIS_Q, 1, BASIS_NUM_COMP, BASIS_Q, 0>(dV + (2 * dstrdV), cstrdV, rV, tx);
171 }
172 
173 ////////////////////////////////////////////////////////////////////////////////
174 extern "C" __launch_bounds__(MAGMA_BASIS_BOUNDS(BASIS_MAX_P_Q *BASIS_MAX_P_Q, MAGMA_MAXTHREADS_3D)) __global__
175     void magma_gradt_3d_kernel(const CeedScalar *dinterp1d, const CeedScalar *dgrad1d, const CeedScalar *dU, const int estrdU, const int cstrdU,
176                                const int dstrdU, CeedScalar *dV, const int estrdV, const int cstrdV, const int dstrdV, const int nelem) {
177   MAGMA_DEVICE_SHARED(CeedScalar, shared_data)
178 
179   const int tx      = threadIdx.x;
180   const int ty      = threadIdx.y;
181   const int elem_id = (blockIdx.x * blockDim.y) + ty;
182 
183   if (elem_id >= nelem) return;
184 
185   CeedScalar rU[1][BASIS_NUM_COMP][BASIS_Q] = {0.0};  // here DIM_U = 1, but might be different for a fused operator
186   CeedScalar rV[1][BASIS_NUM_COMP][BASIS_P] = {0.0};  // here DIM_V = 1, but might be different for a fused operator
187   CeedScalar rTmp                           = 0.0;
188 
189   // shift global memory pointers by elem stride
190   dU += elem_id * estrdU;
191   dV += elem_id * estrdV;
192 
193   // assign shared memory pointers
194   CeedScalar *sTinterp = (CeedScalar *)shared_data;
195   CeedScalar *sTgrad   = sTinterp + BASIS_Q * BASIS_P;
196   CeedScalar *sTmp     = sTgrad + BASIS_Q * BASIS_P;
197   sTmp += ty * (max(BASIS_Q * BASIS_Q * BASIS_Q, (BASIS_Q * BASIS_Q * BASIS_P) + (BASIS_Q * BASIS_P * BASIS_P)));
198 
199   // read T
200   if (ty == 0) {
201     read_T_trans_gm2sm<BASIS_Q, BASIS_P>(tx, dinterp1d, sTinterp);
202     read_T_trans_gm2sm<BASIS_Q, BASIS_P>(tx, dgrad1d, sTgrad);
203   }
204   __syncthreads();
205 
206   /* read U (idim = 0 for dU, i_DIM = 0 for rU) --
207      there is a sync at the end of this function */
208   read_U_3d<CeedScalar, BASIS_Q, 1, BASIS_NUM_COMP, BASIS_Q, 0>(dU + (0 * dstrdU), cstrdU, rU, sTmp, tx);
209   /* then first call (i_DIM = 0, i_DIM_U = 0, i_DIM_V = 0) */
210   magma_grad_3d_device<CeedScalar, 1, 1, BASIS_NUM_COMP, BASIS_Q, BASIS_P, BASIS_Q, BASIS_P, 0, 0, 0, true>(sTinterp, sTgrad, rU, rV, tx, rTmp, sTmp);
211   /* there is a sync at the end of magma_grad_3d_device */
212 
213   /* read U (idim = 1 for dU, i_DIM = 0 for rU) --
214      there is a sync at the end of this function */
215   read_U_3d<CeedScalar, BASIS_Q, 1, BASIS_NUM_COMP, BASIS_Q, 0>(dU + (1 * dstrdU), cstrdU, rU, sTmp, tx);
216   /* then second call (i_DIM = 1, i_DIM_U = 0, i_DIM_V = 0) */
217   magma_grad_3d_device<CeedScalar, 1, 1, BASIS_NUM_COMP, BASIS_Q, BASIS_P, BASIS_Q, BASIS_P, 1, 0, 0, true>(sTinterp, sTgrad, rU, rV, tx, rTmp, sTmp);
218   /* there is a sync at the end of magma_grad_3d_device */
219 
220   /* read U (idim = 2 for dU, i_DIM = 0 for rU) --
221      there is a sync at the end of this function */
222   read_U_3d<CeedScalar, BASIS_Q, 1, BASIS_NUM_COMP, BASIS_Q, 0>(dU + (2 * dstrdU), cstrdU, rU, sTmp, tx);
223   /* then third call (i_DIM = 2, i_DIM_U = 0, i_DIM_V = 0) */
224   magma_grad_3d_device<CeedScalar, 1, 1, BASIS_NUM_COMP, BASIS_Q, BASIS_P, BASIS_Q, BASIS_P, 2, 0, 0, true>(sTinterp, sTgrad, rU, rV, tx, rTmp, sTmp);
225   /* there is a sync at the end of magma_grad_3d_device */
226 
227   // write V
228   write_V_3d<CeedScalar, BASIS_P, 1, BASIS_NUM_COMP, BASIS_P, 0>(dV + (0 * dstrdV), cstrdV, rV, tx);
229 }
230 
231 #endif  // CEED_MAGMA_BASIS_GRAD_3D_H
232