xref: /honee/qfunctions/utils.h (revision 64667825fc3a044fd0c653d9decdc4f122c439b6)
1dc936754SJeremy L Thompson // Copyright (c) 2017-2024, Lawrence Livermore National Security, LLC and other CEED contributors.
2704b8bbeSJames Wright // All Rights Reserved. See the top-level LICENSE and NOTICE files for details.
3704b8bbeSJames Wright //
4704b8bbeSJames Wright // SPDX-License-Identifier: BSD-2-Clause
5704b8bbeSJames Wright //
6704b8bbeSJames Wright // This file is part of CEED:  http://github.com/ceed
7c7ece6efSJeremy L Thompson #pragma once
8704b8bbeSJames Wright 
9704b8bbeSJames Wright #include <ceed.h>
10d0cce58aSJeremy L Thompson #include <math.h>
11704b8bbeSJames Wright 
12704b8bbeSJames Wright #ifndef M_PI
13704b8bbeSJames Wright #define M_PI 3.14159265358979323846
14704b8bbeSJames Wright #endif
15704b8bbeSJames Wright 
16704b8bbeSJames Wright CEED_QFUNCTION_HELPER CeedScalar Max(CeedScalar a, CeedScalar b) { return a < b ? b : a; }
17704b8bbeSJames Wright CEED_QFUNCTION_HELPER CeedScalar Min(CeedScalar a, CeedScalar b) { return a < b ? a : b; }
18704b8bbeSJames Wright 
19bfa7851aSJames Wright CEED_QFUNCTION_HELPER void SwapScalar(CeedScalar *a, CeedScalar *b) {
20bfa7851aSJames Wright   CeedScalar temp = *a;
21bfa7851aSJames Wright   *a              = *b;
22bfa7851aSJames Wright   *b              = temp;
23bfa7851aSJames Wright }
24bfa7851aSJames Wright 
25704b8bbeSJames Wright CEED_QFUNCTION_HELPER CeedScalar Square(CeedScalar x) { return x * x; }
26704b8bbeSJames Wright CEED_QFUNCTION_HELPER CeedScalar Cube(CeedScalar x) { return x * x * x; }
27704b8bbeSJames Wright 
28e7754af5SKenneth E. Jansen // @brief Scale vector of length N by scalar alpha
29e7754af5SKenneth E. Jansen CEED_QFUNCTION_HELPER void ScaleN(CeedScalar *u, const CeedScalar alpha, const CeedInt N) {
308e5e3595SJames Wright   CeedPragmaSIMD for (CeedInt i = 0; i < N; i++) u[i] *= alpha;
318e5e3595SJames Wright }
328e5e3595SJames Wright 
338e5e3595SJames Wright // @brief Set vector of length N to a value alpha
348e5e3595SJames Wright CEED_QFUNCTION_HELPER void SetValueN(CeedScalar *u, const CeedScalar alpha, const CeedInt N) {
358e5e3595SJames Wright   CeedPragmaSIMD for (CeedInt i = 0; i < N; i++) u[i] = alpha;
368e5e3595SJames Wright }
378e5e3595SJames Wright 
388e5e3595SJames Wright // @brief Copy N elements from x to y
398e5e3595SJames Wright CEED_QFUNCTION_HELPER void CopyN(const CeedScalar *x, CeedScalar *y, const CeedInt N) { CeedPragmaSIMD for (CeedInt i = 0; i < N; i++) y[i] = x[i]; }
408e5e3595SJames Wright 
418e5e3595SJames Wright // @brief Copy 3x3 matrix from A to B
428e5e3595SJames Wright CEED_QFUNCTION_HELPER void CopyMat3(const CeedScalar A[3][3], CeedScalar B[3][3]) { CopyN((const CeedScalar *)A, (CeedScalar *)B, 9); }
438e5e3595SJames Wright 
448e5e3595SJames Wright // @brief Dot product of vectors with N elements
458e5e3595SJames Wright CEED_QFUNCTION_HELPER CeedScalar DotN(const CeedScalar *u, const CeedScalar *v, const CeedInt N) {
468e5e3595SJames Wright   CeedScalar output = 0;
478e5e3595SJames Wright   CeedPragmaSIMD for (CeedInt i = 0; i < N; i++) output += u[i] * v[i];
488e5e3595SJames Wright   return output;
49e7754af5SKenneth E. Jansen }
50e7754af5SKenneth E. Jansen 
51704b8bbeSJames Wright // @brief Dot product of 3 element vectors
528fff8293SJames Wright CEED_QFUNCTION_HELPER CeedScalar Dot3(const CeedScalar *u, const CeedScalar *v) { return u[0] * v[0] + u[1] * v[1] + u[2] * v[2]; }
53704b8bbeSJames Wright 
54*64667825SJames Wright // @brief \ell^2 norm of 3 element vectors
55*64667825SJames Wright CEED_QFUNCTION_HELPER CeedScalar Norm3(const CeedScalar *u) { return sqrt(u[0] * u[0] + u[1] * u[1] + u[2] * u[2]); }
56*64667825SJames Wright 
578e5e3595SJames Wright // @brief Cross product of vectors with 3 elements
588e5e3595SJames Wright CEED_QFUNCTION_HELPER void Cross3(const CeedScalar u[3], const CeedScalar v[3], CeedScalar w[3]) {
598e5e3595SJames Wright   w[0] = (u[1] * v[2]) - (u[2] * v[1]);
608e5e3595SJames Wright   w[1] = (u[2] * v[0]) - (u[0] * v[2]);
618e5e3595SJames Wright   w[2] = (u[0] * v[1]) - (u[1] * v[0]);
628e5e3595SJames Wright }
638e5e3595SJames Wright 
648e5e3595SJames Wright // @brief Curl of vector given its gradient
658e5e3595SJames Wright CEED_QFUNCTION_HELPER void Curl3(const CeedScalar gradient[3][3], CeedScalar v[3]) {
668e5e3595SJames Wright   v[0] = gradient[2][1] - gradient[1][2];
678e5e3595SJames Wright   v[1] = gradient[0][2] - gradient[2][0];
688e5e3595SJames Wright   v[2] = gradient[1][0] - gradient[0][1];
698e5e3595SJames Wright }
708e5e3595SJames Wright 
718e5e3595SJames Wright // @brief Matrix vector product, b = Ax + b. A is NxM, x is M, b is N
728e5e3595SJames Wright CEED_QFUNCTION_HELPER void MatVecNM(const CeedScalar *A, const CeedScalar *x, const CeedInt N, const CeedInt M, const CeedTransposeMode transpose_A,
738e5e3595SJames Wright                                     CeedScalar *b) {
748e5e3595SJames Wright   switch (transpose_A) {
758e5e3595SJames Wright     case CEED_NOTRANSPOSE:
768e5e3595SJames Wright       CeedPragmaSIMD for (CeedInt i = 0; i < N; i++) b[i] += DotN(&A[i * M], x, M);
778e5e3595SJames Wright       break;
788e5e3595SJames Wright     case CEED_TRANSPOSE:
798e5e3595SJames Wright       CeedPragmaSIMD for (CeedInt i = 0; i < M; i++) { CeedPragmaSIMD for (CeedInt j = 0; j < N; j++) b[i] += A[j * M + i] * x[j]; }
808e5e3595SJames Wright       break;
818e5e3595SJames Wright   }
828e5e3595SJames Wright }
838e5e3595SJames Wright 
848e5e3595SJames Wright // @brief 3x3 Matrix vector product  b = Ax + b.
858e5e3595SJames Wright CEED_QFUNCTION_HELPER void MatVec3(const CeedScalar A[3][3], const CeedScalar x[3], const CeedTransposeMode transpose_A, CeedScalar b[3]) {
868e5e3595SJames Wright   MatVecNM((const CeedScalar *)A, (const CeedScalar *)x, 3, 3, transpose_A, (CeedScalar *)b);
878e5e3595SJames Wright }
888e5e3595SJames Wright 
898e5e3595SJames Wright // @brief Matrix-Matrix product, B = DA + B, where D is diagonal.
908e5e3595SJames Wright // @details A is NxM, D is diagonal NxN, represented by a vector of length N, and B is NxM. Optionally, A may be transposed.
918e5e3595SJames Wright CEED_QFUNCTION_HELPER void MatDiagNM(const CeedScalar *A, const CeedScalar *D, const CeedInt N, const CeedInt M, const CeedTransposeMode transpose_A,
928e5e3595SJames Wright                                      CeedScalar *B) {
938e5e3595SJames Wright   switch (transpose_A) {
948e5e3595SJames Wright     case CEED_NOTRANSPOSE:
958e5e3595SJames Wright       CeedPragmaSIMD for (CeedInt i = 0; i < N; i++) { CeedPragmaSIMD for (CeedInt j = 0; j < M; j++) B[i * M + j] += D[i] * A[i * M + j]; }
968e5e3595SJames Wright       break;
978e5e3595SJames Wright     case CEED_TRANSPOSE:
988e5e3595SJames Wright       CeedPragmaSIMD for (CeedInt i = 0; i < M; i++) { CeedPragmaSIMD for (CeedInt j = 0; j < N; j++) B[i * N + j] += D[i] * A[j * M + i]; }
998e5e3595SJames Wright       break;
1008e5e3595SJames Wright   }
1018e5e3595SJames Wright }
1028e5e3595SJames Wright 
1038e5e3595SJames Wright // @brief 3x3 Matrix-Matrix product, B = DA + B, where D is diagonal.
1048e5e3595SJames Wright // @details Optionally, A may be transposed.
1058e5e3595SJames Wright CEED_QFUNCTION_HELPER void MatDiag3(const CeedScalar A[3][3], const CeedScalar D[3], const CeedTransposeMode transpose_A, CeedScalar B[3][3]) {
1068e5e3595SJames Wright   MatDiagNM((const CeedScalar *)A, (const CeedScalar *)D, 3, 3, transpose_A, (CeedScalar *)B);
1078e5e3595SJames Wright }
108e975cfccSJames Wright // @brief NxN Matrix-Matrix product, C = AB + C
109e975cfccSJames Wright CEED_QFUNCTION_HELPER void MatMatN(const CeedScalar *A, const CeedScalar *B, const CeedInt N, const CeedTransposeMode transpose_A,
110e975cfccSJames Wright                                    const CeedTransposeMode transpose_B, CeedScalar *C) {
1118e5e3595SJames Wright   switch (transpose_A) {
1128e5e3595SJames Wright     case CEED_NOTRANSPOSE:
1138e5e3595SJames Wright       switch (transpose_B) {
1148e5e3595SJames Wright         case CEED_NOTRANSPOSE:
115e975cfccSJames Wright           CeedPragmaSIMD for (CeedInt i = 0; i < N; i++) {
116e975cfccSJames Wright             CeedPragmaSIMD for (CeedInt j = 0; j < N; j++) {
117e975cfccSJames Wright               CeedPragmaSIMD for (CeedInt k = 0; k < N; k++) C[i * N + j] += A[i * N + k] * B[k * N + j];
118e975cfccSJames Wright             }
1198e5e3595SJames Wright           }
1208e5e3595SJames Wright           break;
1218e5e3595SJames Wright         case CEED_TRANSPOSE:
122e975cfccSJames Wright           CeedPragmaSIMD for (CeedInt i = 0; i < N; i++) {
123e975cfccSJames Wright             CeedPragmaSIMD for (CeedInt j = 0; j < N; j++) {
124e975cfccSJames Wright               CeedPragmaSIMD for (CeedInt k = 0; k < N; k++) C[i * N + j] += A[i * N + k] * B[j * N + k];
125e975cfccSJames Wright             }
1268e5e3595SJames Wright           }
1278e5e3595SJames Wright           break;
1288e5e3595SJames Wright       }
1298e5e3595SJames Wright       break;
1308e5e3595SJames Wright     case CEED_TRANSPOSE:
1318e5e3595SJames Wright       switch (transpose_B) {
1328e5e3595SJames Wright         case CEED_NOTRANSPOSE:
133e975cfccSJames Wright           CeedPragmaSIMD for (CeedInt i = 0; i < N; i++) {
134e975cfccSJames Wright             CeedPragmaSIMD for (CeedInt j = 0; j < N; j++) {
135e975cfccSJames Wright               CeedPragmaSIMD for (CeedInt k = 0; k < N; k++) C[i * N + j] += A[k * N + i] * B[k * N + j];
136e975cfccSJames Wright             }
1378e5e3595SJames Wright           }
1388e5e3595SJames Wright           break;
1398e5e3595SJames Wright         case CEED_TRANSPOSE:
140e975cfccSJames Wright           CeedPragmaSIMD for (CeedInt i = 0; i < N; i++) {
141e975cfccSJames Wright             CeedPragmaSIMD for (CeedInt j = 0; j < N; j++) {
142e975cfccSJames Wright               CeedPragmaSIMD for (CeedInt k = 0; k < N; k++) C[i * N + j] += A[k * N + i] * B[j * N + k];
143e975cfccSJames Wright             }
1448e5e3595SJames Wright           }
1458e5e3595SJames Wright           break;
1468e5e3595SJames Wright       }
1478e5e3595SJames Wright       break;
1488e5e3595SJames Wright   }
1498e5e3595SJames Wright }
1508e5e3595SJames Wright 
151e975cfccSJames Wright // @brief 3x3 Matrix-Matrix product, C = AB + C
152e975cfccSJames Wright CEED_QFUNCTION_HELPER void MatMat3(const CeedScalar A[3][3], const CeedScalar B[3][3], const CeedTransposeMode transpose_A,
153e975cfccSJames Wright                                    const CeedTransposeMode transpose_B, CeedScalar C[3][3]) {
154e975cfccSJames Wright   MatMatN((const CeedScalar *)A, (const CeedScalar *)B, 3, transpose_A, transpose_B, (CeedScalar *)C);
155e975cfccSJames Wright }
156e975cfccSJames Wright 
157704b8bbeSJames Wright // @brief Unpack Kelvin-Mandel notation symmetric tensor into full tensor
158704b8bbeSJames Wright CEED_QFUNCTION_HELPER void KMUnpack(const CeedScalar v[6], CeedScalar A[3][3]) {
159704b8bbeSJames Wright   const CeedScalar weight = 1 / sqrt(2.);
160704b8bbeSJames Wright   A[0][0]                 = v[0];
161704b8bbeSJames Wright   A[1][1]                 = v[1];
162704b8bbeSJames Wright   A[2][2]                 = v[2];
163704b8bbeSJames Wright   A[2][1] = A[1][2] = weight * v[3];
164704b8bbeSJames Wright   A[2][0] = A[0][2] = weight * v[4];
165704b8bbeSJames Wright   A[1][0] = A[0][1] = weight * v[5];
166704b8bbeSJames Wright }
167704b8bbeSJames Wright 
1688e5e3595SJames Wright // @brief Pack full tensor into Kelvin-Mandel notation symmetric tensor
1698e5e3595SJames Wright CEED_QFUNCTION_HELPER void KMPack(const CeedScalar A[3][3], CeedScalar v[6]) {
1708e5e3595SJames Wright   const CeedScalar weight = sqrt(2.);
1718e5e3595SJames Wright   v[0]                    = A[0][0];
1728e5e3595SJames Wright   v[1]                    = A[1][1];
1738e5e3595SJames Wright   v[2]                    = A[2][2];
1748e5e3595SJames Wright   v[3]                    = A[2][1] * weight;
1758e5e3595SJames Wright   v[4]                    = A[2][0] * weight;
1768e5e3595SJames Wright   v[5]                    = A[1][0] * weight;
1778e5e3595SJames Wright }
1788e5e3595SJames Wright 
1798e5e3595SJames Wright // @brief Calculate metric tensor from mapping, g_{ij} = xi_{k,i} xi_{k,j} = dXdx^T dXdx
1808e5e3595SJames Wright CEED_QFUNCTION_HELPER void KMMetricTensor(const CeedScalar dXdx[3][3], CeedScalar km_g_ij[6]) {
1818e5e3595SJames Wright   CeedScalar g_ij[3][3] = {{0.}};
1828e5e3595SJames Wright   MatMat3(dXdx, dXdx, CEED_TRANSPOSE, CEED_NOTRANSPOSE, g_ij);
1838e5e3595SJames Wright   KMPack(g_ij, km_g_ij);
1848e5e3595SJames Wright }
1858e5e3595SJames Wright 
186e7754af5SKenneth E. Jansen // @brief Linear ramp evaluation
187e7754af5SKenneth E. Jansen CEED_QFUNCTION_HELPER CeedScalar LinearRampCoefficient(CeedScalar amplitude, CeedScalar length, CeedScalar start, CeedScalar x) {
188e7754af5SKenneth E. Jansen   if (x < start) {
189e7754af5SKenneth E. Jansen     return amplitude;
190e7754af5SKenneth E. Jansen   } else if (x < start + length) {
191e7754af5SKenneth E. Jansen     return amplitude * ((x - start) * (-1 / length) + 1);
192e7754af5SKenneth E. Jansen   } else {
193e7754af5SKenneth E. Jansen     return 0;
194e7754af5SKenneth E. Jansen   }
195e7754af5SKenneth E. Jansen }
196e7754af5SKenneth E. Jansen 
197ade49511SJames Wright /**
198ade49511SJames Wright   @brief Pack stored values at quadrature point
199ade49511SJames Wright 
200ade49511SJames Wright   @param[in]   Q              Number of quadrature points
201ade49511SJames Wright   @param[in]   i              Current quadrature point
202ade49511SJames Wright   @param[in]   start          Starting index to store components
203ade49511SJames Wright   @param[in]   num_comp       Number of components to store
2046764667bSJames Wright   @param[in]   values_at_qpnt Local values for quadrature point i
205ade49511SJames Wright   @param[out]  stored         Stored values
206ade49511SJames Wright 
207ade49511SJames Wright   @return An error code: 0 - success, otherwise - failure
208ade49511SJames Wright **/
2096764667bSJames Wright CEED_QFUNCTION_HELPER int StoredValuesPack(CeedInt Q, CeedInt i, CeedInt start, CeedInt num_comp, const CeedScalar *values_at_qpnt,
2106764667bSJames Wright                                            CeedScalar *stored) {
2116764667bSJames Wright   for (CeedInt j = 0; j < num_comp; j++) stored[(start + j) * Q + i] = values_at_qpnt[j];
212ade49511SJames Wright 
213ade49511SJames Wright   return CEED_ERROR_SUCCESS;
214ade49511SJames Wright }
215ade49511SJames Wright 
216ade49511SJames Wright /**
217ade49511SJames Wright   @brief Unpack stored values at quadrature point
218ade49511SJames Wright 
219ade49511SJames Wright   @param[in]   Q              Number of quadrature points
220ade49511SJames Wright   @param[in]   i              Current quadrature point
221ade49511SJames Wright   @param[in]   start          Starting index to store components
222ade49511SJames Wright   @param[in]   num_comp       Number of components to store
223ade49511SJames Wright   @param[in]   stored         Stored values
2246764667bSJames Wright   @param[out]  values_at_qpnt Local values for quadrature point i
225ade49511SJames Wright 
226ade49511SJames Wright   @return An error code: 0 - success, otherwise - failure
227ade49511SJames Wright **/
2286764667bSJames Wright CEED_QFUNCTION_HELPER int StoredValuesUnpack(CeedInt Q, CeedInt i, CeedInt start, CeedInt num_comp, const CeedScalar *stored,
2296764667bSJames Wright                                              CeedScalar *values_at_qpnt) {
2306764667bSJames Wright   for (CeedInt j = 0; j < num_comp; j++) values_at_qpnt[j] = stored[(start + j) * Q + i];
231ade49511SJames Wright 
232ade49511SJames Wright   return CEED_ERROR_SUCCESS;
233ade49511SJames Wright }
234ade49511SJames Wright 
235ade49511SJames Wright /**
236ade49511SJames Wright   @brief Unpack 3D element q_data at quadrature point
237ade49511SJames Wright 
238ade49511SJames Wright   @param[in]   Q         Number of quadrature points
239ade49511SJames Wright   @param[in]   i         Current quadrature point
240ade49511SJames Wright   @param[in]   q_data    Pointer to q_data (generated by `setupgeo.h:Setup`)
241ade49511SJames Wright   @param[out]  wdetJ     Quadrature weight times determinant of the mapping Jacobian
242ade49511SJames Wright   @param[out]  dXdx      Inverse of the mapping Jacobian (shape [3][3])
243ade49511SJames Wright 
244ade49511SJames Wright   @return An error code: 0 - success, otherwise - failure
245ade49511SJames Wright **/
246ade49511SJames Wright CEED_QFUNCTION_HELPER int QdataUnpack_3D(CeedInt Q, CeedInt i, const CeedScalar *q_data, CeedScalar *wdetJ, CeedScalar dXdx[3][3]) {
247ade49511SJames Wright   StoredValuesUnpack(Q, i, 0, 1, q_data, wdetJ);
248ade49511SJames Wright   StoredValuesUnpack(Q, i, 1, 9, q_data, (CeedScalar *)dXdx);
249ade49511SJames Wright   return CEED_ERROR_SUCCESS;
250ade49511SJames Wright }
251ade49511SJames Wright 
252ade49511SJames Wright /**
253ade49511SJames Wright   @brief Unpack boundary element q_data for 3D problem at quadrature point
254ade49511SJames Wright 
255ade49511SJames Wright   @param[in]   Q         Number of quadrature points
256ade49511SJames Wright   @param[in]   i         Current quadrature point
2572c512a7bSJames Wright   @param[in]   q_data    Pointer to q_data (generated by `setupgeo.h:SetupBoundary`)
258ade49511SJames Wright   @param[out]  wdetJ     Quadrature weight times determinant of the mapping Jacobian, or `NULL`
259ade49511SJames Wright   @param[out]  dXdx      Inverse of the mapping Jacobian (shape [2][3]), or `NULL`
260ade49511SJames Wright   @param[out]  normal    Components of the normal vector (shape [3]), or `NULL`
261ade49511SJames Wright 
262ade49511SJames Wright   @return An error code: 0 - success, otherwise - failure
263ade49511SJames Wright **/
264ade49511SJames Wright CEED_QFUNCTION_HELPER int QdataBoundaryUnpack_3D(CeedInt Q, CeedInt i, const CeedScalar *q_data, CeedScalar *wdetJ, CeedScalar dXdx[2][3],
265ade49511SJames Wright                                                  CeedScalar normal[3]) {
266ade49511SJames Wright   if (wdetJ) StoredValuesUnpack(Q, i, 0, 1, q_data, wdetJ);
267ade49511SJames Wright   if (normal) StoredValuesUnpack(Q, i, 1, 3, q_data, normal);
268ade49511SJames Wright   if (dXdx) StoredValuesUnpack(Q, i, 4, 6, q_data, (CeedScalar *)dXdx);
269ade49511SJames Wright   return CEED_ERROR_SUCCESS;
270ade49511SJames Wright }
271ade49511SJames Wright 
272baadde1fSJames Wright /**
27315c15616SJames Wright   @brief Unpack boundary element q_data for 3D problem at quadrature point
27415c15616SJames Wright 
27515c15616SJames Wright   @param[in]   Q         Number of quadrature points
27615c15616SJames Wright   @param[in]   i         Current quadrature point
27715c15616SJames Wright   @param[in]   q_data    Pointer to q_data (generated by `setupgeo.h:SetupBoundary`)
27815c15616SJames Wright   @param[out]  wdetJ     Quadrature weight times determinant of the mapping Jacobian, or `NULL`
27915c15616SJames Wright   @param[out]  dXdx      Inverse of the mapping Jacobian (shape [2][3]), or `NULL`
28015c15616SJames Wright   @param[out]  normal    Components of the normal vector (shape [3]), or `NULL`
28115c15616SJames Wright 
28215c15616SJames Wright   @return An error code: 0 - success, otherwise - failure
28315c15616SJames Wright **/
28415c15616SJames Wright CEED_QFUNCTION_HELPER int QdataBoundaryGradientUnpack_3D(CeedInt Q, CeedInt i, const CeedScalar *q_data, CeedScalar *wdetJ, CeedScalar dXdx[2][3],
28515c15616SJames Wright                                                          CeedScalar normal[3]) {
28615c15616SJames Wright   if (wdetJ) StoredValuesUnpack(Q, i, 0, 1, q_data, wdetJ);
28715c15616SJames Wright   if (dXdx) StoredValuesUnpack(Q, i, 1, 9, q_data, (CeedScalar *)dXdx);
28815c15616SJames Wright   if (normal) StoredValuesUnpack(Q, i, 10, 3, q_data, normal);
28915c15616SJames Wright   return CEED_ERROR_SUCCESS;
29015c15616SJames Wright }
29115c15616SJames Wright 
29215c15616SJames Wright /**
293baadde1fSJames Wright   @brief Unpack 2D element q_data at quadrature point
294baadde1fSJames Wright 
295baadde1fSJames Wright   @param[in]   Q         Number of quadrature points
296baadde1fSJames Wright   @param[in]   i         Current quadrature point
297baadde1fSJames Wright   @param[in]   q_data    Pointer to q_data (generated by `setupgeo.h:Setup`)
298baadde1fSJames Wright   @param[out]  wdetJ     Quadrature weight times determinant of the mapping Jacobian
299baadde1fSJames Wright   @param[out]  dXdx      Inverse of the mapping Jacobian (shape [2][2])
300baadde1fSJames Wright 
301baadde1fSJames Wright   @return An error code: 0 - success, otherwise - failure
302baadde1fSJames Wright **/
303baadde1fSJames Wright CEED_QFUNCTION_HELPER int QdataUnpack_2D(CeedInt Q, CeedInt i, const CeedScalar *q_data, CeedScalar *wdetJ, CeedScalar dXdx[2][2]) {
304baadde1fSJames Wright   StoredValuesUnpack(Q, i, 0, 1, q_data, wdetJ);
305baadde1fSJames Wright   StoredValuesUnpack(Q, i, 1, 4, q_data, (CeedScalar *)dXdx);
306baadde1fSJames Wright   return CEED_ERROR_SUCCESS;
307baadde1fSJames Wright }
308baadde1fSJames Wright 
3092c512a7bSJames Wright /**
3102c512a7bSJames Wright   @brief Unpack boundary element q_data for 2D problem at quadrature point
3112c512a7bSJames Wright 
3122c512a7bSJames Wright   @param[in]   Q         Number of quadrature points
3132c512a7bSJames Wright   @param[in]   i         Current quadrature point
3142c512a7bSJames Wright   @param[in]   q_data    Pointer to q_data (generated by `setupgeo.h:SetupBoundary2d`)
3152c512a7bSJames Wright   @param[out]  wdetJ     Quadrature weight times determinant of the mapping Jacobian, or `NULL`
3162c512a7bSJames Wright   @param[out]  normal    Components of the normal vector (shape [2]), or `NULL`
3172c512a7bSJames Wright 
3182c512a7bSJames Wright   @return An error code: 0 - success, otherwise - failure
3192c512a7bSJames Wright **/
3202c512a7bSJames Wright CEED_QFUNCTION_HELPER int QdataBoundaryUnpack_2D(CeedInt Q, CeedInt i, const CeedScalar *q_data, CeedScalar *wdetJ, CeedScalar normal[2]) {
3212c512a7bSJames Wright   if (wdetJ) StoredValuesUnpack(Q, i, 0, 1, q_data, wdetJ);
3222c512a7bSJames Wright   if (normal) StoredValuesUnpack(Q, i, 1, 2, q_data, normal);
3232c512a7bSJames Wright   return CEED_ERROR_SUCCESS;
3242c512a7bSJames Wright }
325