xref: /libCEED/examples/petsc/qfunctions/bps/bp4.h (revision ccaff0309dc399f656ea11018b919b30feb8b0fa)
1 // Copyright (c) 2017, Lawrence Livermore National Security, LLC. Produced at
2 // the Lawrence Livermore National Laboratory. LLNL-CODE-734707. All Rights
3 // reserved. See files LICENSE and NOTICE for details.
4 //
5 // This file is part of CEED, a collection of benchmarks, miniapps, software
6 // libraries and APIs for efficient high-order finite element and spectral
7 // element discretizations for exascale applications. For more information and
8 // source code availability see http://github.com/ceed.
9 //
10 // The CEED research is supported by the Exascale Computing Project 17-SC-20-SC,
11 // a collaborative effort of two U.S. Department of Energy organizations (Office
12 // of Science and the National Nuclear Security Administration) responsible for
13 // the planning and preparation of a capable exascale ecosystem, including
14 // software, applications, hardware, advanced system engineering and early
15 // testbed platforms, in support of the nation's exascale computing imperative.
16 
17 /// @file
18 /// libCEED QFunctions for diffusion operator example using PETSc
19 
20 // *****************************************************************************
21 // This QFunction sets up the rhs and true solution for the problem
22 // *****************************************************************************
23 
24 // -----------------------------------------------------------------------------
25 CEED_QFUNCTION(SetupDiffRhs3)(void *ctx, CeedInt Q,
26                               const CeedScalar *const *in,
27                               CeedScalar *const *out) {
28 #ifndef M_PI
29 #  define M_PI    3.14159265358979323846
30 #endif
31   const CeedScalar *x = in[0], *J = in[1], *w = in[2];
32   CeedScalar *true_soln = out[0], *rhs = out[1];
33 
34   // Quadrature Point Loop
35   CeedPragmaSIMD
36   for (CeedInt i=0; i<Q; i++) {
37     const CeedScalar J11 = J[i+Q*0];
38     const CeedScalar J21 = J[i+Q*1];
39     const CeedScalar J31 = J[i+Q*2];
40     const CeedScalar J12 = J[i+Q*3];
41     const CeedScalar J22 = J[i+Q*4];
42     const CeedScalar J32 = J[i+Q*5];
43     const CeedScalar J13 = J[i+Q*6];
44     const CeedScalar J23 = J[i+Q*7];
45     const CeedScalar J33 = J[i+Q*8];
46     const CeedScalar A11 = J22*J33 - J23*J32;
47     const CeedScalar A12 = J13*J32 - J12*J33;
48     const CeedScalar A13 = J12*J23 - J13*J22;
49 
50     const CeedScalar c[3] = { 0, 1., 2. };
51     const CeedScalar k[3] = { 1., 2., 3. };
52 
53     // Component 1
54     true_soln[i+0*Q] = sin(M_PI*(c[0] + k[0]*x[i+Q*0])) *
55                        sin(M_PI*(c[1] + k[1]*x[i+Q*1])) *
56                        sin(M_PI*(c[2] + k[2]*x[i+Q*2]));
57     // Component 2
58     true_soln[i+1*Q] = 2 * true_soln[i+0*Q];
59     // Component 3
60     true_soln[i+2*Q] = 3 * true_soln[i+0*Q];
61 
62     const CeedScalar rho = w[i] * (J11*A11 + J21*A12 + J31*A13);
63     // Component 1
64     rhs[i+0*Q] = rho * M_PI*M_PI * (k[0]*k[0] + k[1]*k[1] + k[2]*k[2]) *
65                  true_soln[i+0*Q];
66     // Component 2
67     rhs[i+1*Q] = 2 * rhs[i+0*Q];
68     // Component 3
69     rhs[i+2*Q] = 3 * rhs[i+0*Q];
70   } // End of Quadrature Point Loop
71 
72   return 0;
73 }
74 
75 // *****************************************************************************
76 // This QFunction applies the diffusion operator for a vector field of 3 components.
77 //
78 // Inputs:
79 //   ug     - Input vector Jacobian at quadrature points
80 //   qdata  - Geometric factors
81 //
82 // Output:
83 //   vJ     - Output vector (test functions) Jacobian at quadrature points
84 //
85 // *****************************************************************************
86 
87 // -----------------------------------------------------------------------------
88 CEED_QFUNCTION(Diff3)(void *ctx, CeedInt Q,
89                      const CeedScalar *const *in, CeedScalar *const *out) {
90   const CeedScalar *ug = in[0], *qd = in[1];
91   CeedScalar *vg = out[0];
92 
93   // Quadrature Point Loop
94   CeedPragmaSIMD
95   for (CeedInt i=0; i<Q; i++) {
96     // Read spatial derivatives of u components
97     const CeedScalar uJ[3][3]        = {{ug[i+(0+0*3)*Q],
98                                          ug[i+(0+1*3)*Q],
99                                          ug[i+(0+2*3)*Q]},
100                                         {ug[i+(1+0*3)*Q],
101                                          ug[i+(1+1*3)*Q],
102                                          ug[i+(1+2*3)*Q]},
103                                         {ug[i+(2+0*3)*Q],
104                                          ug[i+(2+1*3)*Q],
105                                          ug[i+(2+2*3)*Q]}
106                                        };
107     // Read qdata (dXdxdXdxT symmetric matrix)
108     const CeedScalar dXdxdXdxT[3][3] = {{qd[i+0*Q],
109                                          qd[i+1*Q],
110                                          qd[i+2*Q]},
111                                         {qd[i+1*Q],
112                                          qd[i+3*Q],
113                                          qd[i+4*Q]},
114                                         {qd[i+2*Q],
115                                          qd[i+4*Q],
116                                          qd[i+5*Q]}
117                                        };
118 
119     for (int k=0; k<3; k++) // k = component
120       for (int j=0; j<3; j++) // j = direction of vg
121         vg[i+(k+j*3)*Q] = (uJ[k][0] * dXdxdXdxT[0][j] +
122                            uJ[k][1] * dXdxdXdxT[1][j] +
123                            uJ[k][2] * dXdxdXdxT[2][j]);
124   } // End of Quadrature Point Loop
125 
126   return 0;
127 }
128 // -----------------------------------------------------------------------------
129