XIAN-FEM-2026June/3D opticsfem-master/tools/build_SBCmesh_from_mph.py

176 lines
5.7 KiB
Python

"""Build SBCmesh.mat / SBCmesh.dat from COMSOL SBC.mph (same logic as getMesh.m)."""
from __future__ import annotations
import argparse
from pathlib import Path
import mph
import numpy as np
import scipy.io as sio
def _build_mesh_struct(mph_path: Path) -> dict:
client = mph.start()
model = client.load(str(mph_path))
m = model.java.component("comp1").mesh("mesh1")
vertex = np.array(m.getVertex(), dtype=float).T
nbr_vertex = vertex.shape[0]
tet_raw = np.array(m.getElem("tet"), dtype=int).T
nbr_tet = tet_raw.shape[0]
domain_of_tet = np.array(m.getElemEntity("tet"), dtype=int).reshape(-1, 1)
tet = np.sort(tet_raw, axis=1) + 1
el2no = tet.T
rows_n1 = [0, 0, 0, 1, 1, 2]
rows_n2 = [1, 2, 3, 2, 3, 3]
n1 = el2no[rows_n1, :].reshape(-1, order="F")
n2 = el2no[rows_n2, :].reshape(-1, order="F")
el_ed2no_array = np.column_stack([n1, n2])
edge, edge_of_tet_flat = np.unique(el_ed2no_array, axis=0, return_inverse=True)
nbr_edge = edge.shape[0]
edge_of_tet = edge_of_tet_flat.reshape(6, nbr_tet, order="F").T
rows_f1 = [0, 0, 0, 1]
rows_f2 = [1, 1, 2, 2]
rows_f3 = [2, 3, 3, 3]
f1 = el2no[rows_f1, :].reshape(-1, order="F")
f2 = el2no[rows_f2, :].reshape(-1, order="F")
f3 = el2no[rows_f3, :].reshape(-1, order="F")
el_face_array = np.column_stack([f1, f2, f3])
tri_raw = np.array(m.getElem("tri"), dtype=int).T
tri = np.sort(tri_raw, axis=1) + 1
domain_of_tri = np.array(m.getElemEntity("tri"), dtype=int).reshape(-1, 1)
nbr_tri = tri.shape[0]
conn_of_tri = np.zeros((nbr_tri, 2), dtype=int)
for i in range(nbr_tri):
matches = np.where(np.all(el_face_array == tri[i], axis=1))[0]
if matches.size == 0:
raise RuntimeError(f"boundary tri {i + 1} not found in tet faces")
index = int(matches[0]) + 1
conn_of_tri[i, 0] = (index - 1) // 4 + 1
conn_of_tri[i, 1] = index - (conn_of_tri[i, 0] - 1) * 4
norm_of_face = np.zeros((14, 3), dtype=float)
norm_of_face[0] = [-1, 0, 0]
norm_of_face[1] = [0, -1, 0]
norm_of_face[2] = [0, 0, -1]
norm_of_face[3] = [0, 0, 1]
norm_of_face[4] = [0, 1, 0]
norm_of_face[13] = [1, 0, 0]
return {
"NbrVertex": np.int32(nbr_vertex),
"Vertex": vertex,
"NbrTet": np.int32(nbr_tet),
"DomainOfTet": domain_of_tet,
"Tet": tet,
"NbrEdge": np.int32(nbr_edge),
"Edge": edge.astype(np.int32),
"EdgeOfTet": edge_of_tet.astype(np.int32),
"NbrTri": np.int32(nbr_tri),
"Tri": tri.astype(np.int32),
"DomainOfTri": domain_of_tri,
"ConnOfTri": conn_of_tri.astype(np.int32),
"NormOfFace": norm_of_face,
}
def _write_dat(mesh: dict, dat_path: Path) -> None:
lines: list[str] = []
lines.append("NbrVertex")
lines.append(str(int(mesh["NbrVertex"])))
lines.append("Vertex")
for row in mesh["Vertex"]:
lines.append(f"{row[0]:.16g} {row[1]:.16g} {row[2]:.16g}")
lines.append("NbrTet")
lines.append(str(int(mesh["NbrTet"])))
lines.append("Tet")
for row in mesh["Tet"]:
lines.append(f"{int(row[0])} {int(row[1])} {int(row[2])} {int(row[3])}")
lines.append("DomainOfTet")
for v in mesh["DomainOfTet"].reshape(-1):
lines.append(str(int(v)))
lines.append("NbrEdge")
lines.append(str(int(mesh["NbrEdge"])))
lines.append("Edge")
for row in mesh["Edge"]:
lines.append(f"{int(row[0])} {int(row[1])}")
lines.append("EdgeOfTet")
for row in mesh["EdgeOfTet"]:
lines.append(" ".join(str(int(x) + 1) for x in row))
lines.append("NbrTri")
lines.append(str(int(mesh["NbrTri"])))
lines.append("Tri")
for row in mesh["Tri"]:
lines.append(f"{int(row[0])} {int(row[1])} {int(row[2])}")
lines.append("DomainOfTri")
for v in mesh["DomainOfTri"].reshape(-1):
lines.append(str(int(v)))
lines.append("ConnOfTri")
for row in mesh["ConnOfTri"]:
lines.append(f"{int(row[0])} {int(row[1])}")
norm_rows = [1, 2, 3, 4, 5, 14]
lines.append("NormOfFace")
lines.append(str(len(norm_rows)))
for d in norm_rows:
n = mesh["NormOfFace"][d - 1]
lines.append(f"{d} {n[0]:.16g} {n[1]:.16g} {n[2]:.16g}")
dat_path.parent.mkdir(parents=True, exist_ok=True)
dat_path.write_text("\n".join(lines) + "\n", encoding="ascii")
def build_sbcmesh(mph_path: Path, out_dir: Path, deploy: Path | None = None) -> dict:
mesh = _build_mesh_struct(mph_path)
out_dir.mkdir(parents=True, exist_ok=True)
mat_path = out_dir / "SBCmesh.mat"
dat_path = out_dir / "SBCmesh.dat"
sio.savemat(str(mat_path), {"mesh": mesh}, do_compression=True)
_write_dat(mesh, dat_path)
if deploy is not None:
deploy.mkdir(parents=True, exist_ok=True)
import shutil
shutil.copy2(mat_path, deploy / "SBCmesh.mat")
shutil.copy2(dat_path, deploy / "SBCmesh.dat")
print(f"Wrote {mat_path}")
print(f"Wrote {dat_path}")
print(
f" NbrVertex={mesh['NbrVertex']}, NbrTet={mesh['NbrTet']}, "
f"NbrEdge={mesh['NbrEdge']}, NbrTri={mesh['NbrTri']}"
)
print(f" A COO estimate (NbrTet*36) = {int(mesh['NbrTet']) * 36}")
if deploy is not None:
print(f"Deployed to {deploy}")
return mesh
def main() -> None:
parser = argparse.ArgumentParser(description="Build SBCmesh from COMSOL mph")
parser.add_argument("mph_file", type=Path)
parser.add_argument("-o", "--output-dir", type=Path, default=None)
parser.add_argument("--deploy", type=Path, default=None)
args = parser.parse_args()
out_dir = args.output_dir or args.mph_file.parent
build_sbcmesh(args.mph_file, out_dir, deploy=args.deploy)
if __name__ == "__main__":
main()