xref: /libCEED/tests/t532-operator.h (revision 5107b09fcb4710dffb8bf2363d6d7d4be3d24cc9)
11d102b48SJeremy L Thompson // Copyright (c) 2017-2018, Lawrence Livermore National Security, LLC.
21d102b48SJeremy L Thompson // Produced at the Lawrence Livermore National Laboratory. LLNL-CODE-734707.
31d102b48SJeremy L Thompson // All Rights reserved. See files LICENSE and NOTICE for details.
41d102b48SJeremy L Thompson //
51d102b48SJeremy L Thompson // This file is part of CEED, a collection of benchmarks, miniapps, software
61d102b48SJeremy L Thompson // libraries and APIs for efficient high-order finite element and spectral
71d102b48SJeremy L Thompson // element discretizations for exascale applications. For more information and
81d102b48SJeremy L Thompson // source code availability see http://github.com/ceed.
91d102b48SJeremy L Thompson //
101d102b48SJeremy L Thompson // The CEED research is supported by the Exascale Computing Project 17-SC-20-SC,
111d102b48SJeremy L Thompson // a collaborative effort of two U.S. Department of Energy organizations (Office
121d102b48SJeremy L Thompson // of Science and the National Nuclear Security Administration) responsible for
131d102b48SJeremy L Thompson // the planning and preparation of a capable exascale ecosystem, including
141d102b48SJeremy L Thompson // software, applications, hardware, advanced system engineering and early
151d102b48SJeremy L Thompson // testbed platforms, in support of the nation's exascale computing imperative.
161d102b48SJeremy L Thompson 
171d102b48SJeremy L Thompson CEED_QFUNCTION(setup_mass)(void *ctx, const CeedInt Q,
181d102b48SJeremy L Thompson                            const CeedScalar *const *in,
191d102b48SJeremy L Thompson                            CeedScalar *const *out) {
201d102b48SJeremy L Thompson   const CeedScalar *J = in[0], *weight = in[1];
211d102b48SJeremy L Thompson   CeedScalar *rho = out[0];
221d102b48SJeremy L Thompson   for (CeedInt i=0; i<Q; i++) {
231d102b48SJeremy L Thompson     rho[i] = weight[i] * (J[i+Q*0]*J[i+Q*3] - J[i+Q*1]*J[i+Q*2]);
241d102b48SJeremy L Thompson   }
251d102b48SJeremy L Thompson   return 0;
261d102b48SJeremy L Thompson }
271d102b48SJeremy L Thompson 
281d102b48SJeremy L Thompson CEED_QFUNCTION(setup_diff)(void *ctx, const CeedInt Q,
291d102b48SJeremy L Thompson                            const CeedScalar *const *in,
301d102b48SJeremy L Thompson                            CeedScalar *const *out) {
311d102b48SJeremy L Thompson   // At every quadrature point, compute qw/det(J).adj(J).adj(J)^T and store
321d102b48SJeremy L Thompson   // the symmetric part of the result.
331d102b48SJeremy L Thompson 
341d102b48SJeremy L Thompson   // in[0] is Jacobians with shape [2, nc=2, Q]
351d102b48SJeremy L Thompson   // in[1] is quadrature weights, size (Q)
361d102b48SJeremy L Thompson   const CeedScalar *J = in[0], *qw = in[1];
371d102b48SJeremy L Thompson 
381d102b48SJeremy L Thompson   // out[0] is qdata, size (Q)
391d102b48SJeremy L Thompson   CeedScalar *qd = out[0];
401d102b48SJeremy L Thompson 
411d102b48SJeremy L Thompson   // Quadrature point loop
421d102b48SJeremy L Thompson   for (CeedInt i=0; i<Q; i++) {
431d102b48SJeremy L Thompson     // J: 0 2   qd: 0 2   adj(J):  J22 -J12
441d102b48SJeremy L Thompson     //    1 3       2 1           -J21  J11
451d102b48SJeremy L Thompson     const CeedScalar J11 = J[i+Q*0];
461d102b48SJeremy L Thompson     const CeedScalar J21 = J[i+Q*1];
471d102b48SJeremy L Thompson     const CeedScalar J12 = J[i+Q*2];
481d102b48SJeremy L Thompson     const CeedScalar J22 = J[i+Q*3];
491d102b48SJeremy L Thompson     const CeedScalar w = qw[i] / (J11*J22 - J21*J12);
501d102b48SJeremy L Thompson     qd[i+Q*0] =   w * (J12*J12 + J22*J22);
511d102b48SJeremy L Thompson     qd[i+Q*1] =   w * (J11*J11 + J21*J21);
521d102b48SJeremy L Thompson     qd[i+Q*2] = - w * (J11*J12 + J21*J22);
531d102b48SJeremy L Thompson   }
541d102b48SJeremy L Thompson 
551d102b48SJeremy L Thompson   return 0;
561d102b48SJeremy L Thompson }
571d102b48SJeremy L Thompson 
581d102b48SJeremy L Thompson CEED_QFUNCTION(apply)(void *ctx, const CeedInt Q, const CeedScalar *const *in,
591d102b48SJeremy L Thompson                       CeedScalar *const *out) {
601d102b48SJeremy L Thompson   // in[0] is gradient u, shape [2, nc=1, Q]
611d102b48SJeremy L Thompson   // in[1] is mass quadrature data, size (Q)
62*5107b09fSJeremy L Thompson   // in[2] is Poisson quadrature data, size (3*Q)
631d102b48SJeremy L Thompson   // in[3] is u, size (Q)
641d102b48SJeremy L Thompson   const CeedScalar *du = in[0], *qd_mass = in[1], *qd_diff = in[2], *u = in[3];
651d102b48SJeremy L Thompson 
661d102b48SJeremy L Thompson   // out[0] is output to multiply against v, size (Q)
671d102b48SJeremy L Thompson   // out[1] is output to multiply against gradient v, shape [2, nc=1, Q]
681d102b48SJeremy L Thompson   CeedScalar *v = out[0], *dv = out[1];
691d102b48SJeremy L Thompson 
701d102b48SJeremy L Thompson   // Quadrature point loop
711d102b48SJeremy L Thompson   for (CeedInt i=0; i<Q; i++) {
721d102b48SJeremy L Thompson     // Mass
731d102b48SJeremy L Thompson     v[i] = qd_mass[i]*u[i];
741d102b48SJeremy L Thompson     // Diff
751d102b48SJeremy L Thompson     const CeedScalar du0 = du[i+Q*0];
761d102b48SJeremy L Thompson     const CeedScalar du1 = du[i+Q*1];
771d102b48SJeremy L Thompson     dv[i+Q*0] = qd_diff[i+Q*0]*du0 + qd_diff[i+Q*2]*du1;
781d102b48SJeremy L Thompson     dv[i+Q*1] = qd_diff[i+Q*2]*du0 + qd_diff[i+Q*1]*du1;
791d102b48SJeremy L Thompson   }
801d102b48SJeremy L Thompson 
811d102b48SJeremy L Thompson   return 0;
821d102b48SJeremy L Thompson }
831d102b48SJeremy L Thompson 
841d102b48SJeremy L Thompson CEED_QFUNCTION(apply_lin)(void *ctx, const CeedInt Q,
851d102b48SJeremy L Thompson                           const CeedScalar *const *in,
861d102b48SJeremy L Thompson                           CeedScalar *const *out) {
871d102b48SJeremy L Thompson   // in[0] is gradient u, shape [2, nc=1, Q]
88*5107b09fSJeremy L Thompson   // in[1] is assembled quadrature data, size (9*Q)
891d102b48SJeremy L Thompson   // in[2] is u, size (Q)
901d102b48SJeremy L Thompson   const CeedScalar *du = in[0], *qd = in[1], *u = in[2];
911d102b48SJeremy L Thompson 
921d102b48SJeremy L Thompson   // out[0] is output to multiply against v, size (Q)
931d102b48SJeremy L Thompson   // out[1] is output to multiply against gradient v, shape [2, nc=1, Q]
941d102b48SJeremy L Thompson   CeedScalar *v = out[0], *dv = out[1];
951d102b48SJeremy L Thompson 
961d102b48SJeremy L Thompson   // Quadrature point loop
971d102b48SJeremy L Thompson   for (CeedInt i=0; i<Q; i++) {
981d102b48SJeremy L Thompson     const CeedScalar du0 = du[i+Q*0];
991d102b48SJeremy L Thompson     const CeedScalar du1 = du[i+Q*1];
1001d102b48SJeremy L Thompson     v[i+Q*0] = qd[i+Q*0]*du0 + qd[i+Q*3]*du1 + qd[i+Q*6]*u[i];
1011d102b48SJeremy L Thompson     dv[i+Q*0] = qd[i+Q*1]*du0 + qd[i+Q*4]*du1 + qd[i+Q*7]*u[i];
1021d102b48SJeremy L Thompson     dv[i+Q*1] = qd[i+Q*2]*du0 + qd[i+Q*5]*du1 + qd[i+Q*8]*u[i];
1031d102b48SJeremy L Thompson   }
1041d102b48SJeremy L Thompson 
1051d102b48SJeremy L Thompson   return 0;
1061d102b48SJeremy L Thompson }
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