xref: /libCEED/examples/petsc/qfunctions/area/areacube.h (revision 3d8e882215d238700cdceb37404f76ca7fa24eaa)
1*3d8e8822SJeremy L Thompson // Copyright (c) 2017-2022, Lawrence Livermore National Security, LLC and other CEED contributors.
2*3d8e8822SJeremy L Thompson // All Rights Reserved. See the top-level LICENSE and NOTICE files for details.
332d2ee49SValeria Barra //
4*3d8e8822SJeremy L Thompson // SPDX-License-Identifier: BSD-2-Clause
532d2ee49SValeria Barra //
6*3d8e8822SJeremy L Thompson // This file is part of CEED:  http://github.com/ceed
732d2ee49SValeria Barra 
832d2ee49SValeria Barra /// @file
932d2ee49SValeria Barra /// libCEED QFunctions for mass operator example for a scalar field on the sphere using PETSc
1032d2ee49SValeria Barra 
11f6b55d2cSvaleriabarra #ifndef areacube_h
12f6b55d2cSvaleriabarra #define areacube_h
13f6b55d2cSvaleriabarra 
1432d2ee49SValeria Barra #include <math.h>
1532d2ee49SValeria Barra 
16e83e87a5Sjeremylt // -----------------------------------------------------------------------------
1732d2ee49SValeria Barra // This QFunction sets up the geometric factor required for integration when
1832d2ee49SValeria Barra //   reference coordinates have a different dimension than the one of
19ed264d09SValeria Barra //   physical coordinates
2032d2ee49SValeria Barra //
2132d2ee49SValeria Barra // Reference (parent) 2D coordinates: X \in [-1, 1]^2
2232d2ee49SValeria Barra //
2332d2ee49SValeria Barra // Global physical coordinates given by the mesh (3D): xx \in [-l, l]^3
2432d2ee49SValeria Barra //
2532d2ee49SValeria Barra // Local physical coordinates on the manifold (2D): x \in [-l, l]^2
2632d2ee49SValeria Barra //
2732d2ee49SValeria Barra // Change of coordinates matrix computed by the library:
28ed264d09SValeria Barra //   (physical 3D coords relative to reference 2D coords)
2932d2ee49SValeria Barra //   dxx_j/dX_i (indicial notation) [3 * 2]
3032d2ee49SValeria Barra //
31ed264d09SValeria Barra // Change of coordinates x (physical 2D) relative to xx (phyisical 3D):
3232d2ee49SValeria Barra //   dx_i/dxx_j (indicial notation) [2 * 3]
3332d2ee49SValeria Barra //
3432d2ee49SValeria Barra // Change of coordinates x (physical 2D) relative to X (reference 2D):
3532d2ee49SValeria Barra //   (by chain rule)
3632d2ee49SValeria Barra //   dx_i/dX_j = dx_i/dxx_k * dxx_k/dX_j
3732d2ee49SValeria Barra //
389b072555Sjeremylt // The quadrature data is stored in the array q_data.
3932d2ee49SValeria Barra //
4032d2ee49SValeria Barra // We require the determinant of the Jacobian to properly compute integrals of
4132d2ee49SValeria Barra //   the form: int( u v )
4232d2ee49SValeria Barra //
4332d2ee49SValeria Barra // Qdata: w * det(dx_i/dX_j)
4432d2ee49SValeria Barra //
4532d2ee49SValeria Barra // -----------------------------------------------------------------------------
4632d2ee49SValeria Barra CEED_QFUNCTION(SetupMassGeoCube)(void *ctx, const CeedInt Q,
4732d2ee49SValeria Barra                              const CeedScalar *const *in,
4832d2ee49SValeria Barra                              CeedScalar *const *out) {
4932d2ee49SValeria Barra   // Inputs
5032d2ee49SValeria Barra   const CeedScalar *J = in[1], *w = in[2];
5132d2ee49SValeria Barra   // Outputs
529b072555Sjeremylt   CeedScalar *q_data = out[0];
5332d2ee49SValeria Barra 
5432d2ee49SValeria Barra   // Quadrature Point Loop
5532d2ee49SValeria Barra   CeedPragmaSIMD
5632d2ee49SValeria Barra   for (CeedInt i=0; i<Q; i++) {
5732d2ee49SValeria Barra     // Read dxxdX Jacobian entries, stored as
5832d2ee49SValeria Barra     // 0 3
5932d2ee49SValeria Barra     // 1 4
6032d2ee49SValeria Barra     // 2 5
6132d2ee49SValeria Barra     const CeedScalar dxxdX[3][2] = {{J[i+Q*0],
6232d2ee49SValeria Barra                                      J[i+Q*3]},
6332d2ee49SValeria Barra                                     {J[i+Q*1],
6432d2ee49SValeria Barra                                      J[i+Q*4]},
6532d2ee49SValeria Barra                                     {J[i+Q*2],
6632d2ee49SValeria Barra                                      J[i+Q*5]}
6732d2ee49SValeria Barra                                    };
6832d2ee49SValeria Barra 
6932d2ee49SValeria Barra     // Modulus of dxxdX column vectors
709b072555Sjeremylt     const CeedScalar mod_g_1 = sqrt(dxxdX[0][0]*dxxdX[0][0] +
7132d2ee49SValeria Barra                                     dxxdX[1][0]*dxxdX[1][0] +
7232d2ee49SValeria Barra                                     dxxdX[2][0]*dxxdX[2][0]);
739b072555Sjeremylt     const CeedScalar mod_g_2 = sqrt(dxxdX[0][1]*dxxdX[0][1] +
7432d2ee49SValeria Barra                                     dxxdX[1][1]*dxxdX[1][1] +
7532d2ee49SValeria Barra                                     dxxdX[2][1]*dxxdX[2][1]);
7632d2ee49SValeria Barra 
7732d2ee49SValeria Barra     // Use normalized column vectors of dxxdX as rows of dxdxx
789b072555Sjeremylt     const CeedScalar dxdxx[2][3] = {{dxxdX[0][0] / mod_g_1,
799b072555Sjeremylt                                      dxxdX[1][0] / mod_g_1,
809b072555Sjeremylt                                      dxxdX[2][0] / mod_g_1},
819b072555Sjeremylt                                     {dxxdX[0][1] / mod_g_2,
829b072555Sjeremylt                                      dxxdX[1][1] / mod_g_2,
839b072555Sjeremylt                                      dxxdX[2][1] / mod_g_2}
8432d2ee49SValeria Barra                                    };
8532d2ee49SValeria Barra 
8632d2ee49SValeria Barra     CeedScalar dxdX[2][2];
8732d2ee49SValeria Barra     for (int j=0; j<2; j++)
8832d2ee49SValeria Barra       for (int k=0; k<2; k++) {
8932d2ee49SValeria Barra         dxdX[j][k] = 0;
9032d2ee49SValeria Barra         for (int l=0; l<3; l++)
9132d2ee49SValeria Barra           dxdX[j][k] += dxdxx[j][l]*dxxdX[l][k];
9232d2ee49SValeria Barra       }
9332d2ee49SValeria Barra 
949b072555Sjeremylt     q_data[i+Q*0] = (dxdX[0][0]*dxdX[1][1] - dxdX[1][0]*dxdX[0][1]) * w[i];
9532d2ee49SValeria Barra 
9632d2ee49SValeria Barra   } // End of Quadrature Point Loop
9732d2ee49SValeria Barra   return 0;
9832d2ee49SValeria Barra }
9932d2ee49SValeria Barra 
100e83e87a5Sjeremylt // -----------------------------------------------------------------------------
101ed264d09SValeria Barra // This QFunction applies the mass operator for a scalar field.
10232d2ee49SValeria Barra //
10332d2ee49SValeria Barra // Inputs:
10432d2ee49SValeria Barra //   u     - Input vector at quadrature points
1059b072555Sjeremylt //   q_data - Geometric factors
10632d2ee49SValeria Barra //
10732d2ee49SValeria Barra // Output:
10832d2ee49SValeria Barra //   v     - Output vector (test function) at quadrature points
10932d2ee49SValeria Barra //
11032d2ee49SValeria Barra // -----------------------------------------------------------------------------
11132d2ee49SValeria Barra CEED_QFUNCTION(Mass)(void *ctx, const CeedInt Q,
11232d2ee49SValeria Barra                      const CeedScalar *const *in, CeedScalar *const *out) {
11332d2ee49SValeria Barra   // Inputs
1149b072555Sjeremylt   const CeedScalar *u = in[0], *q_data = in[1];
11532d2ee49SValeria Barra   // Outputs
11632d2ee49SValeria Barra   CeedScalar *v = out[0];
11732d2ee49SValeria Barra 
11832d2ee49SValeria Barra   // Quadrature Point Loop
11932d2ee49SValeria Barra   CeedPragmaSIMD
12032d2ee49SValeria Barra   for (CeedInt i=0; i<Q; i++)
1219b072555Sjeremylt     v[i] = q_data[i] * u[i];
12232d2ee49SValeria Barra 
12332d2ee49SValeria Barra   return 0;
12432d2ee49SValeria Barra }
12532d2ee49SValeria Barra // -----------------------------------------------------------------------------
126f6b55d2cSvaleriabarra 
127f6b55d2cSvaleriabarra #endif // areacube_h
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