1a515125bSLeila Ghaffari // Copyright (c) 2017, Lawrence Livermore National Security, LLC. Produced at 2a515125bSLeila Ghaffari // the Lawrence Livermore National Laboratory. LLNL-CODE-734707. All Rights 3a515125bSLeila Ghaffari // reserved. See files LICENSE and NOTICE for details. 4a515125bSLeila Ghaffari // 5a515125bSLeila Ghaffari // This file is part of CEED, a collection of benchmarks, miniapps, software 6a515125bSLeila Ghaffari // libraries and APIs for efficient high-order finite element and spectral 7a515125bSLeila Ghaffari // element discretizations for exascale applications. For more information and 8a515125bSLeila Ghaffari // source code availability see http://github.com/ceed. 9a515125bSLeila Ghaffari // 10a515125bSLeila Ghaffari // The CEED research is supported by the Exascale Computing Project 17-SC-20-SC, 11a515125bSLeila Ghaffari // a collaborative effort of two U.S. Department of Energy organizations (Office 12a515125bSLeila Ghaffari // of Science and the National Nuclear Security Administration) responsible for 13a515125bSLeila Ghaffari // the planning and preparation of a capable exascale ecosystem, including 14a515125bSLeila Ghaffari // software, applications, hardware, advanced system engineering and early 15a515125bSLeila Ghaffari // testbed platforms, in support of the nation's exascale computing imperative. 16a515125bSLeila Ghaffari 17a515125bSLeila Ghaffari /// @file 18a515125bSLeila Ghaffari /// Geometric factors (3D) for Navier-Stokes example using PETSc 19a515125bSLeila Ghaffari 20a515125bSLeila Ghaffari #ifndef setup_geo_h 21a515125bSLeila Ghaffari #define setup_geo_h 22a515125bSLeila Ghaffari 23a515125bSLeila Ghaffari #include <math.h> 24*3a8779fbSJames Wright #include <ceed.h> 25a515125bSLeila Ghaffari 26a515125bSLeila Ghaffari // ***************************************************************************** 27a515125bSLeila Ghaffari // This QFunction sets up the geometric factors required for integration and 28a515125bSLeila Ghaffari // coordinate transformations 29a515125bSLeila Ghaffari // 30a515125bSLeila Ghaffari // Reference (parent) coordinates: X 31a515125bSLeila Ghaffari // Physical (current) coordinates: x 32a515125bSLeila Ghaffari // Change of coordinate matrix: dxdX_{i,j} = x_{i,j} (indicial notation) 33a515125bSLeila Ghaffari // Inverse of change of coordinate matrix: dXdx_{i,j} = (detJ^-1) * X_{i,j} 34a515125bSLeila Ghaffari // 35a515125bSLeila Ghaffari // All quadrature data is stored in 10 field vector of quadrature data. 36a515125bSLeila Ghaffari // 37a515125bSLeila Ghaffari // We require the determinant of the Jacobian to properly compute integrals of 38a515125bSLeila Ghaffari // the form: int( v u ) 39a515125bSLeila Ghaffari // 40a515125bSLeila Ghaffari // Determinant of Jacobian: 41a515125bSLeila Ghaffari // detJ = J11*A11 + J21*A12 + J31*A13 42a515125bSLeila Ghaffari // Jij = Jacobian entry ij 43a515125bSLeila Ghaffari // Aij = Adjoint ij 44a515125bSLeila Ghaffari // 45a515125bSLeila Ghaffari // Stored: w detJ 46a515125bSLeila Ghaffari // in q_data[0] 47a515125bSLeila Ghaffari // 48a515125bSLeila Ghaffari // We require the transpose of the inverse of the Jacobian to properly compute 49a515125bSLeila Ghaffari // integrals of the form: int( gradv u ) 50a515125bSLeila Ghaffari // 51a515125bSLeila Ghaffari // Inverse of Jacobian: 52a515125bSLeila Ghaffari // dXdx_i,j = Aij / detJ 53a515125bSLeila Ghaffari // 54a515125bSLeila Ghaffari // Stored: Aij / detJ 55a515125bSLeila Ghaffari // in q_data[1:9] as 56a515125bSLeila Ghaffari // (detJ^-1) * [A11 A12 A13] 57a515125bSLeila Ghaffari // [A21 A22 A23] 58a515125bSLeila Ghaffari // [A31 A32 A33] 59a515125bSLeila Ghaffari // 60a515125bSLeila Ghaffari // ***************************************************************************** 61a515125bSLeila Ghaffari CEED_QFUNCTION(Setup)(void *ctx, CeedInt Q, 62a515125bSLeila Ghaffari const CeedScalar *const *in, CeedScalar *const *out) { 63a515125bSLeila Ghaffari // *INDENT-OFF* 64a515125bSLeila Ghaffari // Inputs 65a515125bSLeila Ghaffari const CeedScalar (*J)[3][CEED_Q_VLA] = (const CeedScalar(*)[3][CEED_Q_VLA])in[0], 66a515125bSLeila Ghaffari (*w) = in[1]; 67a515125bSLeila Ghaffari 68a515125bSLeila Ghaffari // Outputs 69a515125bSLeila Ghaffari CeedScalar (*q_data)[CEED_Q_VLA] = (CeedScalar(*)[CEED_Q_VLA])out[0]; 70a515125bSLeila Ghaffari // *INDENT-ON* 71a515125bSLeila Ghaffari 72a515125bSLeila Ghaffari CeedPragmaSIMD 73a515125bSLeila Ghaffari // Quadrature Point Loop 74a515125bSLeila Ghaffari for (CeedInt i=0; i<Q; i++) { 75a515125bSLeila Ghaffari // Setup 76a515125bSLeila Ghaffari const CeedScalar J11 = J[0][0][i]; 77a515125bSLeila Ghaffari const CeedScalar J21 = J[0][1][i]; 78a515125bSLeila Ghaffari const CeedScalar J31 = J[0][2][i]; 79a515125bSLeila Ghaffari const CeedScalar J12 = J[1][0][i]; 80a515125bSLeila Ghaffari const CeedScalar J22 = J[1][1][i]; 81a515125bSLeila Ghaffari const CeedScalar J32 = J[1][2][i]; 82a515125bSLeila Ghaffari const CeedScalar J13 = J[2][0][i]; 83a515125bSLeila Ghaffari const CeedScalar J23 = J[2][1][i]; 84a515125bSLeila Ghaffari const CeedScalar J33 = J[2][2][i]; 85a515125bSLeila Ghaffari const CeedScalar A11 = J22*J33 - J23*J32; 86a515125bSLeila Ghaffari const CeedScalar A12 = J13*J32 - J12*J33; 87a515125bSLeila Ghaffari const CeedScalar A13 = J12*J23 - J13*J22; 88a515125bSLeila Ghaffari const CeedScalar A21 = J23*J31 - J21*J33; 89a515125bSLeila Ghaffari const CeedScalar A22 = J11*J33 - J13*J31; 90a515125bSLeila Ghaffari const CeedScalar A23 = J13*J21 - J11*J23; 91a515125bSLeila Ghaffari const CeedScalar A31 = J21*J32 - J22*J31; 92a515125bSLeila Ghaffari const CeedScalar A32 = J12*J31 - J11*J32; 93a515125bSLeila Ghaffari const CeedScalar A33 = J11*J22 - J12*J21; 94a515125bSLeila Ghaffari const CeedScalar detJ = J11*A11 + J21*A12 + J31*A13; 95a515125bSLeila Ghaffari 96a515125bSLeila Ghaffari // Qdata 97a515125bSLeila Ghaffari // -- Interp-to-Interp q_data 98a515125bSLeila Ghaffari q_data[0][i] = w[i] * detJ; 99a515125bSLeila Ghaffari // -- Interp-to-Grad q_data 100a515125bSLeila Ghaffari // Inverse of change of coordinate matrix: X_i,j 101a515125bSLeila Ghaffari q_data[1][i] = A11 / detJ; 102a515125bSLeila Ghaffari q_data[2][i] = A12 / detJ; 103a515125bSLeila Ghaffari q_data[3][i] = A13 / detJ; 104a515125bSLeila Ghaffari q_data[4][i] = A21 / detJ; 105a515125bSLeila Ghaffari q_data[5][i] = A22 / detJ; 106a515125bSLeila Ghaffari q_data[6][i] = A23 / detJ; 107a515125bSLeila Ghaffari q_data[7][i] = A31 / detJ; 108a515125bSLeila Ghaffari q_data[8][i] = A32 / detJ; 109a515125bSLeila Ghaffari q_data[9][i] = A33 / detJ; 110a515125bSLeila Ghaffari 111a515125bSLeila Ghaffari } // End of Quadrature Point Loop 112a515125bSLeila Ghaffari 113a515125bSLeila Ghaffari // Return 114a515125bSLeila Ghaffari return 0; 115a515125bSLeila Ghaffari } 116a515125bSLeila Ghaffari 117a515125bSLeila Ghaffari // ***************************************************************************** 118a515125bSLeila Ghaffari // This QFunction sets up the geometric factor required for integration when 119a515125bSLeila Ghaffari // reference coordinates are in 2D and the physical coordinates are in 3D 120a515125bSLeila Ghaffari // 121a515125bSLeila Ghaffari // Reference (parent) 2D coordinates: X 122a515125bSLeila Ghaffari // Physical (current) 3D coordinates: x 123a515125bSLeila Ghaffari // Change of coordinate matrix: 124a515125bSLeila Ghaffari // dxdX_{i,j} = dx_i/dX_j (indicial notation) [3 * 2] 125a515125bSLeila Ghaffari // 126a515125bSLeila Ghaffari // (J1,J2,J3) is given by the cross product of the columns of dxdX_{i,j} 127a515125bSLeila Ghaffari // 128a515125bSLeila Ghaffari // detJb is the magnitude of (J1,J2,J3) 129a515125bSLeila Ghaffari // 130a515125bSLeila Ghaffari // All quadrature data is stored in 4 field vector of quadrature data. 131a515125bSLeila Ghaffari // 132a515125bSLeila Ghaffari // We require the determinant of the Jacobian to properly compute integrals of 133a515125bSLeila Ghaffari // the form: int( u v ) 134a515125bSLeila Ghaffari // 135a515125bSLeila Ghaffari // Stored: w detJb 136a515125bSLeila Ghaffari // in q_data_sur[0] 137a515125bSLeila Ghaffari // 138a515125bSLeila Ghaffari // Normal vector = (J1,J2,J3) / detJb 139a515125bSLeila Ghaffari // 140a515125bSLeila Ghaffari // Stored: (J1,J2,J3) / detJb 141a515125bSLeila Ghaffari // in q_data_sur[1:3] as 142a515125bSLeila Ghaffari // (detJb^-1) * [ J1 ] 143a515125bSLeila Ghaffari // [ J2 ] 144a515125bSLeila Ghaffari // [ J3 ] 145a515125bSLeila Ghaffari // 146a515125bSLeila Ghaffari // ***************************************************************************** 147a515125bSLeila Ghaffari CEED_QFUNCTION(SetupBoundary)(void *ctx, CeedInt Q, 148a515125bSLeila Ghaffari const CeedScalar *const *in, CeedScalar *const *out) { 149a515125bSLeila Ghaffari // *INDENT-OFF* 150a515125bSLeila Ghaffari // Inputs 151a515125bSLeila Ghaffari const CeedScalar (*J)[3][CEED_Q_VLA] = (const CeedScalar(*)[3][CEED_Q_VLA])in[0], 152a515125bSLeila Ghaffari (*w) = in[1]; 153a515125bSLeila Ghaffari // Outputs 154a515125bSLeila Ghaffari CeedScalar (*q_data_sur)[CEED_Q_VLA] = (CeedScalar(*)[CEED_Q_VLA])out[0]; 155a515125bSLeila Ghaffari 156a515125bSLeila Ghaffari CeedPragmaSIMD 157a515125bSLeila Ghaffari // Quadrature Point Loop 158a515125bSLeila Ghaffari for (CeedInt i=0; i<Q; i++) { 159a515125bSLeila Ghaffari // Setup 160a515125bSLeila Ghaffari const CeedScalar dxdX[3][2] = {{J[0][0][i], 161a515125bSLeila Ghaffari J[1][0][i]}, 162a515125bSLeila Ghaffari {J[0][1][i], 163a515125bSLeila Ghaffari J[1][1][i]}, 164a515125bSLeila Ghaffari {J[0][2][i], 165a515125bSLeila Ghaffari J[1][2][i]} 166a515125bSLeila Ghaffari }; 167a515125bSLeila Ghaffari // *INDENT-ON* 168a515125bSLeila Ghaffari // J1, J2, and J3 are given by the cross product of the columns of dxdX 169a515125bSLeila Ghaffari const CeedScalar J1 = dxdX[1][0]*dxdX[2][1] - dxdX[2][0]*dxdX[1][1]; 170a515125bSLeila Ghaffari const CeedScalar J2 = dxdX[2][0]*dxdX[0][1] - dxdX[0][0]*dxdX[2][1]; 171a515125bSLeila Ghaffari const CeedScalar J3 = dxdX[0][0]*dxdX[1][1] - dxdX[1][0]*dxdX[0][1]; 172a515125bSLeila Ghaffari 173a515125bSLeila Ghaffari const CeedScalar detJb = sqrt(J1*J1 + J2*J2 + J3*J3); 174a515125bSLeila Ghaffari 175a515125bSLeila Ghaffari // q_data_sur 176a515125bSLeila Ghaffari // -- Interp-to-Interp q_data_sur 177a515125bSLeila Ghaffari q_data_sur[0][i] = w[i] * detJb; 178a515125bSLeila Ghaffari q_data_sur[1][i] = J1 / detJb; 179a515125bSLeila Ghaffari q_data_sur[2][i] = J2 / detJb; 180a515125bSLeila Ghaffari q_data_sur[3][i] = J3 / detJb; 181a515125bSLeila Ghaffari 182a515125bSLeila Ghaffari } // End of Quadrature Point Loop 183a515125bSLeila Ghaffari 184a515125bSLeila Ghaffari // Return 185a515125bSLeila Ghaffari return 0; 186a515125bSLeila Ghaffari } 187a515125bSLeila Ghaffari 188a515125bSLeila Ghaffari // ***************************************************************************** 189a515125bSLeila Ghaffari 190a515125bSLeila Ghaffari #endif // setup_geo_h 191