Rewrote all CMakeLists. Now much cleaner and there's a clear separation during compilation between the core and standalone modules.
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@@ -28,71 +28,66 @@
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#include "core/errchk.h"
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void
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boundconds(const AcMeshInfo& mesh_info, ModelMesh* mesh)
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{
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#pragma omp parallel for
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#pragma omp parallel for
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for (int w = 0; w < NUM_VTXBUF_HANDLES; ++w) {
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const int3 start = (int3){0, 0, 0};
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const int3 end = (int3){
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mesh_info.int_params[AC_mx],
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mesh_info.int_params[AC_my],
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mesh_info.int_params[AC_mz]
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};
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const int3 end = (int3){mesh_info.int_params[AC_mx], mesh_info.int_params[AC_my],
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mesh_info.int_params[AC_mz]};
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const int nx = mesh_info.int_params[AC_nx];
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const int ny = mesh_info.int_params[AC_ny];
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const int nz = mesh_info.int_params[AC_nz];
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const int nx_min = mesh_info.int_params[AC_nx_min];
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const int ny_min = mesh_info.int_params[AC_ny_min];
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const int nz_min = mesh_info.int_params[AC_nz_min];
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const int nx_min = mesh_info.int_params[AC_nx_min];
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const int ny_min = mesh_info.int_params[AC_ny_min];
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const int nz_min = mesh_info.int_params[AC_nz_min];
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// The old kxt was inclusive, but our mx_max is exclusive
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const int nx_max = mesh_info.int_params[AC_nx_max];
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const int ny_max = mesh_info.int_params[AC_ny_max];
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const int nz_max = mesh_info.int_params[AC_nz_max];
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// The old kxt was inclusive, but our mx_max is exclusive
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const int nx_max = mesh_info.int_params[AC_nx_max];
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const int ny_max = mesh_info.int_params[AC_ny_max];
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const int nz_max = mesh_info.int_params[AC_nz_max];
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for (int k_dst = start.z; k_dst < end.z; ++k_dst) {
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for (int j_dst = start.y; j_dst < end.y; ++j_dst) {
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for (int i_dst = start.x; i_dst < end.x; ++i_dst) {
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for (int j_dst = start.y; j_dst < end.y; ++j_dst) {
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for (int i_dst = start.x; i_dst < end.x; ++i_dst) {
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// If destination index is inside the computational domain, return since
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// the boundary conditions are only applied to the ghost zones
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if (i_dst >= nx_min && i_dst < nx_max &&
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j_dst >= ny_min && j_dst < ny_max &&
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k_dst >= nz_min && k_dst < nz_max)
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continue;
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// If destination index is inside the computational domain, return since
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// the boundary conditions are only applied to the ghost zones
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if (i_dst >= nx_min && i_dst < nx_max && j_dst >= ny_min && j_dst < ny_max &&
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k_dst >= nz_min && k_dst < nz_max)
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continue;
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// Find the source index
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// Map to nx, ny, nz coordinates
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int i_src = i_dst - nx_min;
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int j_src = j_dst - ny_min;
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int k_src = k_dst - nz_min;
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// Find the source index
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// Map to nx, ny, nz coordinates
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int i_src = i_dst - nx_min;
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int j_src = j_dst - ny_min;
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int k_src = k_dst - nz_min;
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// Translate (s.t. the index is always positive)
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i_src += nx;
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j_src += ny;
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k_src += nz;
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// Translate (s.t. the index is always positive)
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i_src += nx;
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j_src += ny;
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k_src += nz;
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// Wrap
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i_src %= nx;
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j_src %= ny;
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k_src %= nz;
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// Wrap
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i_src %= nx;
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j_src %= ny;
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k_src %= nz;
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// Map to mx, my, mz coordinates
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i_src += nx_min;
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j_src += ny_min;
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k_src += nz_min;
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// Map to mx, my, mz coordinates
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i_src += nx_min;
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j_src += ny_min;
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k_src += nz_min;
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const size_t src_idx = acVertexBufferIdx(i_src, j_src, k_src, mesh_info);
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const size_t dst_idx = acVertexBufferIdx(i_dst, j_dst, k_dst, mesh_info);
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ERRCHK(src_idx < acVertexBufferSize(mesh_info));
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ERRCHK(dst_idx < acVertexBufferSize(mesh_info));
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mesh->vertex_buffer[w][dst_idx] = mesh->vertex_buffer[w][src_idx];
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}
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}
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const size_t src_idx = acVertexBufferIdx(i_src, j_src, k_src, mesh_info);
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const size_t dst_idx = acVertexBufferIdx(i_dst, j_dst, k_dst, mesh_info);
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ERRCHK(src_idx < acVertexBufferSize(mesh_info));
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ERRCHK(dst_idx < acVertexBufferSize(mesh_info));
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mesh->vertex_buffer[w][dst_idx] = mesh->vertex_buffer[w][src_idx];
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}
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}
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}
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}
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}
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