158 lines
3.8 KiB
Rust
158 lines
3.8 KiB
Rust
use femm_doc::FemmDoc;
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const FIXTURE: &str = r#"[Format] = 4.0
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[Frequency] = 60
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[Precision] = 1e-08
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[MinAngle] = 30
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[DoSmartMesh] = 1
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[Depth] = 1
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[LengthUnits] = millimeters
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[ProblemType] = planar
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[Coordinates] = cartesian
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[ACSolver] = 0
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[PrevType] = 0
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[PrevSoln] = ""
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[Comment] = "two-coil planar magnetics"
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[PointProps] = 1
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<BeginPoint>
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<PointName> = "A=0"
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<I_re> = 0
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<I_im> = 0
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<A_re> = 0
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<A_im> = 0
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<EndPoint>
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[BdryProps] = 1
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<BeginBdry>
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<BdryName> = "outer"
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<BdryType> = 0
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<A_0> = 0
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<A_1> = 0
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<A_2> = 0
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<Phi> = 0
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<c0> = 0
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<c0i> = 0
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<c1> = 0
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<c1i> = 0
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<Mu_ssd> = 0
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<Sigma_ssd> = 0
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<innerangle> = 0
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<outerangle> = 0
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<EndBdry>
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[BlockProps] = 2
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<BeginBlock>
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<BlockName> = "Air"
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<Mu_x> = 1
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<Mu_y> = 1
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<H_c> = 0
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<H_cAngle> = 0
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<J_re> = 0
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<J_im> = 0
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<Sigma> = 0
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<d_lam> = 0
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<Phi_h> = 0
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<Phi_hx> = 0
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<Phi_hy> = 0
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<LamType> = 0
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<LamFill> = 1
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<NStrands> = 0
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<WireD> = 0
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<BHPoints> = 0
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<EndBlock>
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<BeginBlock>
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<BlockName> = "Copper"
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<Mu_x> = 1
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<Mu_y> = 1
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<H_c> = 0
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<H_cAngle> = 0
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<J_re> = 0
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<J_im> = 0
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<Sigma> = 58
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<d_lam> = 0
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<Phi_h> = 0
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<Phi_hx> = 0
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<Phi_hy> = 0
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<LamType> = 0
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<LamFill> = 1
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<NStrands> = 0
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<WireD> = 0
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<BHPoints> = 0
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<EndBlock>
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[CircuitProps] = 1
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<BeginCircuit>
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<CircuitName> = "Coil"
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<TotalAmps_re> = 100
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<TotalAmps_im> = 0
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<CircuitType> = 1
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<EndCircuit>
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[NumPoints] = 4
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0 0 1 0
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10 0 0 0
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10 10 0 0
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0 10 0 0
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[NumSegments] = 4
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0 1 -1 1 0 0
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1 2 -1 1 0 0
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2 3 -1 1 0 0
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3 0 -1 1 0 0
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[NumArcSegments] = 0
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[NumHoles] = 0
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[NumBlockLabels] = 1
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5 5 2 0.1 1 0 0 100 0
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"#;
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#[test]
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fn parses_fixture_geometry() {
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let doc = FemmDoc::parse(FIXTURE).expect("parse");
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assert_eq!(doc.frequency, 60.0);
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assert_eq!(doc.nodes.len(), 4);
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assert_eq!(doc.segments.len(), 4);
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assert_eq!(doc.arcs.len(), 0);
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assert_eq!(doc.block_labels.len(), 1);
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assert_eq!(doc.materials.len(), 2);
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assert_eq!(doc.boundaries.len(), 1);
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assert_eq!(doc.points.len(), 1);
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assert_eq!(doc.circuits.len(), 1);
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assert_eq!(doc.nodes[0].boundary_marker, "A=0");
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assert_eq!(doc.segments[0].boundary_marker, "outer");
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assert_eq!(doc.block_labels[0].block_type, "Copper");
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assert_eq!(doc.block_labels[0].in_circuit, "Coil");
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}
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#[test]
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fn round_trips_parse_write_parse() {
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let a = FemmDoc::parse(FIXTURE).expect("parse a");
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let text = a.write();
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let b = FemmDoc::parse(&text).expect("parse b");
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assert_eq!(a.frequency, b.frequency);
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assert_eq!(a.precision, b.precision);
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assert_eq!(a.depth, b.depth);
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assert_eq!(a.nodes.len(), b.nodes.len());
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assert_eq!(a.segments.len(), b.segments.len());
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assert_eq!(a.materials.len(), b.materials.len());
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for (x, y) in a.nodes.iter().zip(b.nodes.iter()) {
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assert!((x.x - y.x).abs() < 1e-12);
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assert!((x.y - y.y).abs() < 1e-12);
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assert_eq!(x.boundary_marker, y.boundary_marker);
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}
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for (x, y) in a.segments.iter().zip(b.segments.iter()) {
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assert_eq!(x.n0, y.n0);
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assert_eq!(x.n1, y.n1);
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assert_eq!(x.boundary_marker, y.boundary_marker);
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}
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for (x, y) in a.materials.iter().zip(b.materials.iter()) {
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assert_eq!(x.name, y.name);
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assert!((x.mu_x - y.mu_x).abs() < 1e-12);
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assert!((x.cduct - y.cduct).abs() < 1e-12);
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}
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assert_eq!(a.block_labels.len(), b.block_labels.len());
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let la = &a.block_labels[0];
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let lb = &b.block_labels[0];
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assert!((la.x - lb.x).abs() < 1e-12);
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assert_eq!(la.block_type, lb.block_type);
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assert_eq!(la.in_circuit, lb.in_circuit);
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assert_eq!(la.turns, lb.turns);
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assert!((la.max_area - lb.max_area).abs() < 1e-10);
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}
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