forked from EduCraft/curriculum-project-hub
ebcb3a7589
教研工程文件根放 .cph-version(内容=面向的 cph 版本)。cph 加载时比对自身版本
(CARGO_PKG_VERSION),不相容报 CphVersionMismatch error 并拒绝。当前判定为版本完全
相等(MVP);判定逻辑孤立在 versions_compatible 单谓词,后续可放宽为 semver 区间而
不动诊断分类/spec/CLI。
spec(7 类诊断,原 6 类):
- Diagnostic.lean: DiagKind 增 cphVersionMismatch(error 级),分类注释 6→7
- Pipeline.lean: load 阶段含 .cph-version 兼容性判定
- Courseware.lean: ADR 区间 →0016
实现:
- cph-diag: DiagCode::CphVersionMismatch("E-CPH-VERSION")
- cph-model: load() 解析 manifest 成功后 check_cph_version;versions_compatible
谓词(完全相等);CPH_VERSION const。missing .cph-version 暂跳过(迁移期 OPEN);
空文件报 error
- examples/TH-141、valid/mini fixture、KenKen 课各加 .cph-version=0.0.2
测试:cph-model 4 个版本门测试;全 workspace 53 passed;lake 25 jobs 绿。
负向验证:9.9.9 .cph-version → E-CPH-VERSION error + check 拒绝(exit 1)。
bump: workspace.package 0.0.1→0.0.2;cph --version 报 cph 0.0.2;README 同步
(含版本契约说明)。
Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
362 lines
12 KiB
Rust
362 lines
12 KiB
Rust
//! Integration tests for `cph_model::load`, driven by static fixtures under
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//! `tests/fixtures/`. The fixtures double as documentation of the ADR-0008
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//! on-disk format.
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use std::path::PathBuf;
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use cph_diag::DiagCode;
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use cph_model::load;
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/// Absolute path to a fixture engineering-file root.
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fn fixture(name: &str) -> PathBuf {
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PathBuf::from(env!("CARGO_MANIFEST_DIR"))
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.join("tests/fixtures")
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.join(name)
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}
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#[test]
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fn valid_two_part_lesson_loads_in_order_with_no_errors() {
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let (lesson, diags) = load(&fixture("valid"));
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let lesson = lesson.expect("valid fixture must produce a Lesson");
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assert!(
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diags.is_empty(),
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"valid fixture must have no diagnostics, got: {diags:?}"
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);
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assert_eq!(lesson.project.id, "fixture-valid");
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assert_eq!(lesson.project.name, "valid-2-part");
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assert_eq!(lesson.info.title, "测试课:两个部件");
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// A single-string `author` loads as a one-element list.
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assert_eq!(lesson.info.authors, vec!["范式教育教研组".to_string()]);
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// Parts preserve declared order: segment first, lemma second.
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assert_eq!(lesson.parts.len(), 2);
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assert_eq!(lesson.parts[0].kind, "segment");
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assert_eq!(lesson.parts[0].path, PathBuf::from("segments/intro"));
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assert_eq!(lesson.parts[0].descriptor.kind, "segment");
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assert_eq!(lesson.parts[1].kind, "lemma");
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assert_eq!(lesson.parts[1].path, PathBuf::from("lemmas/young"));
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assert_eq!(lesson.parts[1].descriptor.kind, "lemma");
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// `source` scalar survives on the lemma descriptor; `kind` is removed.
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let scalars = &lesson.parts[1].descriptor.scalars;
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assert_eq!(
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scalars.get("source").and_then(|v| v.as_str()),
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Some("测试引理")
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);
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assert!(scalars.get("kind").is_none());
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// Targets are collected from [targets.*], in declared order.
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assert_eq!(lesson.target_names(), vec!["student", "teacher"]);
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// Empty `[targets.x]` bodies → all-default build config, no diagnostics:
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// single-file artifact at build/<name>.pdf + one typst-compile step.
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for target in &lesson.targets {
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assert_eq!(
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target.artifact,
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cph_model::Artifact::SingleFile {
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filepath: PathBuf::from(format!("build/{}.pdf", target.name)),
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}
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);
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assert_eq!(
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target.steps,
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vec![cph_model::Step::TypstCompile {
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template: PathBuf::from(format!("exports/{}.typ", target.name)),
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}]
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);
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}
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// Descriptor dir is absolute, anchored under the root.
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assert!(lesson.parts[0].descriptor.dir.is_absolute());
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assert_eq!(
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lesson.parts[0].descriptor.dir,
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lesson.root.join("segments/intro")
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);
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}
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#[test]
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fn missing_part_folder_yields_part_path_missing() {
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let (lesson, diags) = load(&fixture("missing-part"));
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// Still produces a Lesson (loader stays best-effort).
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let lesson = lesson.expect("missing-part fixture must still produce a Lesson");
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assert_eq!(lesson.parts.len(), 2, "both parts are recorded for order");
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let missing: Vec<_> = diags
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.iter()
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.filter(|d| d.code == DiagCode::PartPathMissing)
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.collect();
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assert_eq!(
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missing.len(),
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1,
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"exactly one PartPathMissing expected, got diags: {diags:?}"
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);
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assert_eq!(missing[0].severity, cph_diag::Severity::Error);
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}
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#[test]
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fn kind_mismatch_yields_unknown_kind_diagnostic() {
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let (lesson, diags) = load(&fixture("kind-mismatch"));
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let lesson = lesson.expect("kind-mismatch fixture must still produce a Lesson");
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assert_eq!(lesson.parts.len(), 1);
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let mismatch: Vec<_> = diags
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.iter()
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.filter(|d| d.code == DiagCode::UnknownKind)
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.collect();
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assert_eq!(
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mismatch.len(),
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1,
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"exactly one kind-mismatch diagnostic expected, got: {diags:?}"
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);
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assert!(
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mismatch[0].message.contains("segment") && mismatch[0].message.contains("lemma"),
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"message should name both kinds, got: {}",
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mismatch[0].message
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);
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}
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#[test]
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fn malformed_manifest_is_a_hard_failure() {
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let (lesson, diags) = load(&fixture("malformed-manifest"));
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assert!(
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lesson.is_none(),
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"malformed manifest must be a hard failure (None)"
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);
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assert_eq!(diags.len(), 1, "one hard-failure diagnostic expected");
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assert_eq!(diags[0].code, DiagCode::SchemaViolation);
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assert_eq!(diags[0].severity, cph_diag::Severity::Error);
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}
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#[test]
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fn missing_manifest_is_a_hard_failure() {
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// A directory with no manifest.toml at all.
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let (lesson, diags) = load(&fixture("does-not-exist-at-all"));
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assert!(lesson.is_none());
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assert_eq!(diags.len(), 1);
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assert_eq!(diags[0].code, DiagCode::SchemaViolation);
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}
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#[test]
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fn structured_target_configs_parse_into_typed_builds() {
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use cph_model::{Artifact, Step};
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let (lesson, diags) = load(&fixture("target-configs"));
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let lesson = lesson.expect("target-configs fixture must produce a Lesson");
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assert!(
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diags.is_empty(),
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"well-formed target configs must have no diagnostics, got: {diags:?}"
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);
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// An array `author` loads as the ordered author list.
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assert_eq!(
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lesson.info.authors,
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vec!["张老师".to_string(), "李老师".to_string()]
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);
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// Declared order is preserved.
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assert_eq!(lesson.target_names(), vec!["student", "archive", "teacher"]);
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// student: explicit single-file artifact (with filepath) + one
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// typst-compile step (with template).
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let student = &lesson.targets[0];
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assert_eq!(student.name, "student");
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assert_eq!(
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student.artifact,
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Artifact::SingleFile {
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filepath: PathBuf::from("build/student.pdf"),
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}
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);
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assert_eq!(
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student.steps,
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vec![Step::TypstCompile {
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template: PathBuf::from("exports/student.typ"),
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}]
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);
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// archive: file-tree artifact (root + outputs glob) + two ordered steps,
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// a typst-compile followed by a shell step (order preserved).
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let archive = &lesson.targets[1];
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assert_eq!(archive.name, "archive");
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assert_eq!(
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archive.artifact,
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Artifact::FileTree {
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root: PathBuf::from("build/archive"),
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outputs: "**/*.{html,js,json}".to_string(),
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}
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);
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assert_eq!(
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archive.steps,
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vec![
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Step::TypstCompile {
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template: PathBuf::from("exports/archive.typ"),
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},
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Step::Shell {
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run: "npm run build".to_string(),
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},
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]
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);
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// teacher: empty body → all defaults.
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let teacher = &lesson.targets[2];
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assert_eq!(teacher.name, "teacher");
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assert_eq!(
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teacher.artifact,
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Artifact::SingleFile {
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filepath: PathBuf::from("build/teacher.pdf"),
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}
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);
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assert_eq!(
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teacher.steps,
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vec![Step::TypstCompile {
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template: PathBuf::from("exports/teacher.typ"),
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}]
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);
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}
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#[test]
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fn malformed_target_config_is_non_fatal_with_schema_violations() {
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use cph_model::{Artifact, Step};
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let (lesson, diags) = load(&fixture("bad-target-config"));
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let lesson = lesson.expect("bad-target-config must still produce a Lesson");
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// Both targets survive despite their malformed fields.
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assert_eq!(lesson.target_names(), vec!["student", "teacher"]);
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// Bad `artifact.type` → SchemaViolation, target kept with default artifact.
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let student = &lesson.targets[0];
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assert_eq!(
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student.artifact,
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Artifact::SingleFile {
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filepath: PathBuf::from("build/student.pdf"),
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}
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);
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// Bad step `type` → the step is skipped; the file-tree artifact survives and
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// the empty step list falls back to the default step.
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let teacher = &lesson.targets[1];
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assert_eq!(
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teacher.artifact,
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Artifact::FileTree {
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root: PathBuf::from("build/teacher"),
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outputs: "**/*.html".to_string(),
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}
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);
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assert_eq!(
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teacher.steps,
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vec![Step::TypstCompile {
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template: PathBuf::from("exports/teacher.typ"),
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}]
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);
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let violations: Vec<_> = diags
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.iter()
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.filter(|d| d.code == DiagCode::SchemaViolation)
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.collect();
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assert_eq!(
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violations.len(),
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2,
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"expected one SchemaViolation per malformed field, got: {diags:?}"
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);
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assert!(
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violations.iter().any(|d| d.message.contains("pdf-thing")),
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"a diagnostic should name the bad artifact type, got: {diags:?}"
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);
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assert!(
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violations
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.iter()
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.any(|d| d.message.contains("make-it-nice")),
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"a diagnostic should name the bad step type, got: {diags:?}"
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);
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}
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// --- `.cph-version` compatibility gate (ADR-0016) ------------------------------
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/// The cph version the running CLI was built with — what `.cph-version` must
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/// match exactly (ADR-0016's MVP rule).
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const CPH_VERSION: &str = env!("CARGO_PKG_VERSION");
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/// Write a one-part lesson into a temp dir, optionally with a `.cph-version`
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/// file. Returns the temp dir so the caller runs `load`.
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fn tmp_lesson_with_version(version: Option<&str>) -> PathBuf {
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let mut p = std::env::temp_dir();
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let nanos = std::time::SystemTime::now()
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.duration_since(std::time::UNIX_EPOCH)
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.unwrap()
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.as_nanos();
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p.push(format!("cph-version-test-{nanos}"));
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std::fs::create_dir_all(&p).unwrap();
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std::fs::write(
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p.join("manifest.toml"),
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"[project]\nid = \"v\"\nname = \"v\"\n[info]\ntitle = \"v\"\n[[parts]]\nkind = \"segment\"\npath = \"segments/a\"\n",
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)
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.unwrap();
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let seg = p.join("segments").join("a");
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std::fs::create_dir_all(&seg).unwrap();
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std::fs::write(seg.join("element.toml"), "kind = \"segment\"\n").unwrap();
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std::fs::write(seg.join("textbook.typ"), "t.\n").unwrap();
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if let Some(v) = version {
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std::fs::write(p.join(".cph-version"), v).unwrap();
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}
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p
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}
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#[test]
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fn cph_version_matching_is_not_a_diagnostic() {
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let tmp = tmp_lesson_with_version(Some(CPH_VERSION));
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let (_lesson, diags) = load(&tmp);
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let _ = std::fs::remove_dir_all(&tmp);
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assert!(
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diags.iter().all(|d| d.code != DiagCode::CphVersionMismatch),
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"a matching .cph-version must not warn, got {diags:?}"
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);
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}
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#[test]
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fn cph_version_mismatch_is_an_error_diagnostic() {
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let tmp = tmp_lesson_with_version(Some("99.99.99"));
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let (lesson, diags) = load(&tmp);
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let _ = std::fs::remove_dir_all(&tmp);
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// The lesson still loads (so other defects could surface), but the
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// mismatch is an error diagnostic — which alone makes it illegal.
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assert!(lesson.is_some(), "a mismatch should not halt loading");
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let mm: Vec<_> = diags
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.iter()
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.filter(|d| d.code == DiagCode::CphVersionMismatch)
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.collect();
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assert_eq!(mm.len(), 1, "expected one CphVersionMismatch, got {diags:?}");
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assert!(
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mm[0].message.contains("99.99.99") && mm[0].message.contains(CPH_VERSION),
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"diagnostic should name both versions, got: {}",
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mm[0].message
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);
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}
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#[test]
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fn cph_version_missing_is_skipped() {
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// No `.cph-version` file at all → skipped (ADR-0016 migration period; OPEN).
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let tmp = tmp_lesson_with_version(None);
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let (_lesson, diags) = load(&tmp);
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let _ = std::fs::remove_dir_all(&tmp);
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assert!(
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diags.iter().all(|d| d.code != DiagCode::CphVersionMismatch),
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"a missing .cph-version must be skipped, got {diags:?}"
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);
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}
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#[test]
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fn cph_version_empty_is_an_error() {
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let tmp = tmp_lesson_with_version(Some(" \n"));
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let (_lesson, diags) = load(&tmp);
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let _ = std::fs::remove_dir_all(&tmp);
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assert!(
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diags
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.iter()
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.any(|d| d.code == DiagCode::CphVersionMismatch && d.message.contains("empty")),
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"an empty .cph-version should be an error, got {diags:?}"
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);
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}
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