Files
OpenNest-Engines/OpenNest.Engine.Qwen38FlashNext/tests/Qwen38FlashNextNestingEngineTests.cs
T
0cdef009f8 fix(qwen38flashnext): make layouts deterministic and use host services
The gap-fill pass stopped on a 120 ms stopwatch and QWEN_* environment
variables switched strategies, so the same job could nest differently
with machine load or environment. Gap fill now stops after eight failed
insertion sweeps, and the switches are internal properties with the
old defaults. Part reading, work area, rotation angles, scoring and
result assembly now use the host APIs; its collision gate is unchanged.

Synthetic benchmark (5 jobs, salvage 0.5): all valid, cost 7660.01 ->
7572.05, time 839 -> 553 ms. Not yet calibrated on production-size jobs.

Co-Authored-By: Codex <noreply@openai.com>
Co-Authored-By: Claude Opus 5.5 <noreply@anthropic.com>
2026-09-25 09:29:28 -04:00

146 lines
5.3 KiB
C#

using OpenNest.Engine.Testing;
using static OpenNest.Engine.Testing.JobBuilder;
using static OpenNest.Engine.Testing.Shapes;
using System;
using System.Collections.Generic;
using System.Linq;
using OpenNest.CNC;
using OpenNest.Engine.Jobs;
using OpenNest.Engine.Jobs.Adapters;
using OpenNest.Geometry;
namespace OpenNest.Engine.Qwen38FlashNext.Tests;
/// <summary>
/// Starter acceptance tests. Every layout is checked by the same NestValidator the benchmark
/// scores with, so a passing test means the benchmark will accept the layout. They fail until
/// Solve() is implemented; add engine-specific tests alongside them.
/// </summary>
public class Qwen38FlashNextNestingEngineTests
{
[Fact]
public void HasPublicParameterlessConstructorForPluginDiscovery()
{
var engine = Activator.CreateInstance(typeof(Qwen38FlashNextNestingEngine));
Assert.IsAssignableFrom<INestingEngine>(engine);
}
[Fact]
public void RectanglesFitOnOneSheetWithSpacing()
{
var job = Job(new[] { Part("rect", Rectangle(10, 5), 12) }, new[] { Stock("sheet", 48, 96, spacing: 0.25) });
var result = new Qwen38FlashNextNestingEngine().Solve(job);
LayoutAssert.Valid(job, result);
Assert.Equal(NestJobStatus.Complete, result.Status);
Assert.Single(result.Plates);
Assert.Equal(12, result.Plates[0].Placements.Count);
}
[Theory]
[InlineData(1)]
[InlineData(2)]
[InlineData(3)]
[InlineData(4)]
public void MixedArcAndConcavePartsAreValidInEveryQuadrant(int quadrant)
{
var job = Job(
new[]
{
Part("disc", Disc(3), 10),
Part("ell", LShape(12, 8, 4), 10),
Part("tri", Triangle(9, 6), 10),
},
new[] { Stock("sheet", 40, 60, spacing: 0.5, edge: new Spacing(0.5, 0.5, 0.5, 0.5), quadrant: quadrant) }
);
var result = new Qwen38FlashNextNestingEngine().Solve(job);
LayoutAssert.Valid(job, result);
Assert.Equal(NestJobStatus.Complete, result.Status);
}
[Fact]
public void RotatedConcavePartsKeepSpacingAtFixedAngles()
{
// Regression: the per-orientation spacing inflation must live in the rotated
// frame. L-shapes pinned to 90/270 degrees exercise exactly the orientations
// where an unrotated inflation misrepresents the material and lets parts
// rest closer than the spacing.
var l = Part(
"l90",
LShape(12, 8, 4),
8,
RotationPolicy.Fixed(System.Math.PI / 2, allow180Equivalent: true)
);
var job = Job(new[] { l }, new[] { Stock("sheet", 40, 60, spacing: 0.5) });
var result = new Qwen38FlashNextNestingEngine().Solve(job);
LayoutAssert.Valid(job, result);
Assert.Equal(NestJobStatus.Complete, result.Status);
}
[Fact]
public void OverflowSpillsOntoAdditionalSheets()
{
var job = Job(new[] { Part("square", Rectangle(10, 10), 30) }, new[] { Stock("sheet", 25, 45, spacing: 0.25) });
var result = new Qwen38FlashNextNestingEngine().Solve(job);
LayoutAssert.Valid(job, result);
Assert.Equal(NestJobStatus.Complete, result.Status);
Assert.True(result.Plates.Count > 1);
}
[Fact]
public void PartTooBigForAnySheetIsReportedUnplaced()
{
var job = Job(
new[] { Part("huge", Rectangle(50, 50), 1), Part("small", Rectangle(5, 5), 4) },
new[] { Stock("sheet", 20, 20, spacing: 0.25) }
);
var result = new Qwen38FlashNextNestingEngine().Solve(job);
LayoutAssert.Valid(job, result);
var huge = Assert.Single(result.Fulfillment, f => f.PartId == "huge");
Assert.Equal(1, huge.Unplaced);
}
[Fact]
public void EtchMarksAreLeftOutOfNestingGeometry()
{
// A bend tick starts on material and ends 1.0 into a side notch, outside the part but
// inside its bounding box (the PEP case that crashed nesting before 1b5e1b1). As
// material it is open geometry leaving the part; as a mark it must be ignored.
var etched = Polyline((0, 0), (10, 0), (10, 4), (8, 4), (8, 6), (10, 6), (10, 10), (0, 10));
etched.Codes.Add(new RapidMove(7.5, 5));
etched.Codes.Add(new LinearMove(9, 5) { Layer = LayerType.Scribe });
var job = Job(new[] { Part("part", etched, 2, RotationPolicy.Fixed(0)) }, new[] { Stock("sheet", 10.4, 20.6, spacing: 0.2) });
var result = new Qwen38FlashNextNestingEngine().Solve(job);
LayoutAssert.Valid(job, result);
Assert.Equal(NestJobStatus.Complete, result.Status);
Assert.Equal(2, Assert.Single(result.Plates).Placements.Count);
}
[Fact]
public void PlateIndicesRunInCommitOrder()
{
// Every sheet comes from the same stock (index 0), so the stock index must not leak
// into PlateIndex: the host and OpenNest.Api treat it as the sheet's position.
var job = Job(new[] { Part("square", Rectangle(10, 10), 30) }, new[] { Stock("sheet", 25, 45, spacing: 0.25) });
var result = new Qwen38FlashNextNestingEngine().Solve(job);
Assert.True(result.Plates.Count > 1);
Assert.Equal(Enumerable.Range(0, result.Plates.Count), result.Plates.Select(p => p.PlateIndex));
}
}
public sealed class Qwen38FlashNextContractTests : EngineContractTests<Qwen38FlashNextNestingEngine> { }