Most of what remained on #26. **Property tests (`tests/properties.rs`, proptest as a dev-dependency).** Four invariants over generated 1v1 schedules rather than hand-written fixtures, which is where this crate's shipped defects actually hid — a linear evidence product that underflowed only past ~1000 teams, and a batching path no golden exercised because every golden ingests in one call: - converged posteriors are always finite with positive sigma - log-evidence, batch and filtered, is finite and never above zero - filtered evidence is invariant to whether `converge` has run - one-at-a-time ingestion reaches the same fixed point as batched The invariance property was mutation-proved: making `filtered_step` read `skill.forward` instead of the carried message fails it with `-1.1038430064192069 -> -1.1135747072822761`. **Shared finiteness helper (`tests/common/mod.rs`).** `assert_finite` was local to `degenerate_inputs.rs`. It now also rejects a non-positive sigma, which the old version let through — `Gaussian::sigma` reports a non-positive precision as improper rather than trapping, so a collapsed posterior would have passed a finite-only check. **Boundary inputs.** Zero and negative weights, out-of-order timestamps, and extreme beta/sigma combinations. Worth recording that zero weight reaches `(m - performance.exclude(..)) * (1.0 / w)` — a division by zero — and the posterior comes out finite anyway; the test pins that rather than asserting what ought to happen. The weight tests `expect()` the commit rather than returning early on error, because an early return would have made them vacuous the moment validation changed. I checked that specifically by turning the return into a failure and confirming it did not fire. Not done, and left on #26: benchmark regression gating. Nothing fails on a regression today; making it fail needs a threshold chosen against how noisy the shared runner is, which is a policy call rather than a mechanical one. 60 test binaries, up from 56. MSRV 1.85 verified with proptest in the graph. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01T5SYDExxL4vZgvunrcNSMc
424 lines
12 KiB
Rust
424 lines
12 KiB
Rust
//! Degenerate, boundary, and error-path coverage.
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//!
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//! These run in both debug and release: the defects they pin were all
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//! guarded only by `debug_assert!`, so a debug-only suite never saw them.
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mod common;
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use common::assert_finite;
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use trueskill_tt::{
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ConstantDrift, ConvergenceOptions, Game, GameOptions, Gaussian, History, InferenceError,
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NullObserver, Outcome, Rating,
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};
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type R = Rating<i64, ConstantDrift>;
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fn rating() -> R {
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R::new(
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Gaussian::from_ms(25.0, 25.0 / 3.0),
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25.0 / 6.0,
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ConstantDrift(25.0 / 300.0),
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)
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}
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#[test]
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fn record_draw_without_draw_probability_is_rejected() {
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let mut h = History::default();
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let err = h.record_draw(&"a", &"b", 1).unwrap_err();
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assert!(matches!(
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err,
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InferenceError::TieWithoutDrawProbability { .. }
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));
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}
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#[test]
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fn builder_draw_without_draw_probability_is_rejected() {
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let mut h = History::default();
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let err = h
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.event(1)
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.team(["a"])
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.team(["b"])
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.draw()
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.commit()
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.unwrap_err();
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assert!(matches!(
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err,
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InferenceError::TieWithoutDrawProbability { .. }
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));
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}
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#[test]
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fn draw_with_positive_draw_probability_is_finite() {
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let mut h = History::builder().p_draw(0.25).build();
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h.record_draw(&"a", &"b", 1).unwrap();
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let report = h.converge().unwrap();
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assert_finite(h.current_skill("a").unwrap(), "drawn competitor skill");
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assert_finite(h.current_skill("b").unwrap(), "drawn competitor skill");
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assert!(report.log_evidence.is_finite());
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assert!(report.converged);
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}
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#[test]
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fn game_ranked_rejects_tie_without_draw_probability() {
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let a = [rating()];
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let b = [rating()];
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let teams: Vec<&[R]> = vec![&a, &b];
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let err = Game::ranked(&teams, Outcome::draw(2), &GameOptions::default()).unwrap_err();
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assert!(matches!(
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err,
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InferenceError::TieWithoutDrawProbability { .. }
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));
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}
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/// `Outcome::winner(w, n)` ties every loser, so any n >= 3 free-for-all hits
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/// the tie path even though the caller never asked for a draw.
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#[test]
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fn winner_of_three_or_more_requires_draw_probability() {
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let a = [rating()];
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let b = [rating()];
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let c = [rating()];
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let teams: Vec<&[R]> = vec![&a, &b, &c];
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let err = Game::ranked(&teams, Outcome::winner(0, 3), &GameOptions::default()).unwrap_err();
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assert!(matches!(
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err,
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InferenceError::TieWithoutDrawProbability { .. }
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));
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let opts = GameOptions {
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p_draw: 0.1,
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..GameOptions::default()
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};
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let game = Game::ranked(&teams, Outcome::winner(0, 3), &opts).unwrap();
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for team in game.posteriors() {
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for skill in team {
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assert_finite(skill, "3-team winner posterior");
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}
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}
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}
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#[test]
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fn full_ranking_without_ties_needs_no_draw_probability() {
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let a = [rating()];
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let b = [rating()];
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let c = [rating()];
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let teams: Vec<&[R]> = vec![&a, &b, &c];
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let game = Game::ranked(&teams, Outcome::ranking([0, 1, 2]), &GameOptions::default()).unwrap();
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for team in game.posteriors() {
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for skill in team {
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assert_finite(skill, "strict ranking posterior");
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}
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}
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}
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#[test]
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fn empty_history_converges_trivially() {
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let mut h = History::default();
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let report = h.converge().unwrap();
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assert_eq!(report.iterations, 0);
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assert!(report.converged);
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}
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/// Issue #27's exact reproduction: a non-default key type reaching `converge`
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/// with no events at all. The underflow it reported trapped in debug and
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/// indexed out of bounds in release, so this must run in both profiles.
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#[test]
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fn converge_on_an_empty_history_with_owned_keys() {
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let mut history: History<i64, ConstantDrift, NullObserver, String> =
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History::builder_with_key().score_sigma(5.0).build();
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let report = history.converge().unwrap();
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assert_eq!(report.iterations, 0);
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assert!(report.converged);
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}
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/// A weights/team length mismatch used to be a `debug_assert!`, so release
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/// builds ingested the event with the weights silently unapplied. This file's
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/// CI job runs in release too, which is the point of pinning it here.
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#[test]
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fn event_builder_rejects_a_weights_length_mismatch() {
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let mut h = History::default();
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let err = h
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.event(1)
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.team(["a"])
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.weights([1.0, 2.0])
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.team(["b"])
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.winner(0)
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.commit()
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.unwrap_err();
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assert!(
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matches!(
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err,
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InferenceError::MismatchedShape {
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kind: "weights",
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expected: 1,
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got: 2,
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}
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),
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"expected a weights MismatchedShape, got {err:?}"
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);
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}
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/// The mismatch must not be applied even partially — a half-weighted team
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/// reaching the history would be worse than the error.
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#[test]
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fn event_builder_weights_mismatch_leaves_the_history_untouched() {
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let mut h = History::default();
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// Two teams, so ingestion would otherwise succeed — a one-team event is
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// rejected for an unrelated reason and would pass this vacuously.
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let _ = h
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.event(1)
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.team(["a"])
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.weights([1.0, 2.0])
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.team(["b"])
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.winner(0)
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.commit();
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assert!(h.learning_curve("a").is_empty());
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}
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#[test]
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fn empty_event_stream_then_converge() {
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let mut h = History::default();
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h.add_events(std::iter::empty()).unwrap();
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let report = h.converge().unwrap();
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assert_eq!(report.iterations, 0);
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}
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#[test]
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fn empty_history_queries_do_not_panic() {
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let h = History::default();
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assert!(h.learning_curves().is_empty());
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assert!(h.learning_curve("nobody").is_empty());
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assert!(h.current_skill("nobody").is_none());
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}
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#[test]
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fn single_event_history_converges() {
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let mut h = History::default();
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h.record_winner(&"a", &"b", 1).unwrap();
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let report = h.converge().unwrap();
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assert!(report.converged);
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assert_finite(h.current_skill("a").unwrap(), "single-event skill");
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}
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#[test]
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fn scored_event_rejects_non_positive_sigma() {
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let mut h = History::builder().score_sigma(2.0).build();
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let err = h
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.event(1)
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.team(["a"])
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.team(["b"])
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.scores_with_sigma([3.0, 1.0], f64::NAN)
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.commit()
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.unwrap_err();
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assert!(matches!(
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err,
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InferenceError::InvalidParameter {
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name: "score_sigma",
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..
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}
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));
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}
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#[test]
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fn convergence_reports_are_finite_across_many_teams() {
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let opts = GameOptions {
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p_draw: 0.1,
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convergence: ConvergenceOptions::default(),
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..GameOptions::default()
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};
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let holders: Vec<[R; 1]> = (0..12).map(|_| [rating()]).collect();
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let teams: Vec<&[R]> = holders.iter().map(|t| t.as_slice()).collect();
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let game = Game::ranked(&teams, Outcome::ranking(0..12), &opts).unwrap();
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assert!(
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game.log_evidence().is_finite(),
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"12-team log-evidence must be finite, got {}",
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game.log_evidence()
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);
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for team in game.posteriors() {
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for skill in team {
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assert_finite(skill, "12-team posterior");
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}
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}
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}
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/// A long diff chain underflows a linear evidence product: each link
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/// contributes a probability in (0, 1], so ~1000 links flush the product to
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/// exactly 0.0 and `ln(0.0)` is `-inf`. Accumulating in log space keeps it
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/// finite.
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#[test]
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fn log_evidence_survives_a_long_diff_chain() {
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let holders: Vec<[R; 1]> = (0..1200).map(|_| [rating()]).collect();
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let teams: Vec<&[R]> = holders.iter().map(|t| t.as_slice()).collect();
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let game = Game::ranked(
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&teams,
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Outcome::ranking(0..holders.len() as u32),
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&GameOptions::default(),
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)
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.unwrap();
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let log_evidence = game.log_evidence();
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assert!(
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log_evidence.is_finite(),
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"1200-team log-evidence must be finite, got {log_evidence}"
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);
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assert!(
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log_evidence < 0.0,
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"log-evidence of a probability must be negative, got {log_evidence}"
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);
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}
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/// A near-certain outcome rounds the losing tail to exactly zero in the
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/// `erfc` approximation; the evidence floor keeps `ln` finite.
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#[test]
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fn log_evidence_finite_for_near_certain_outcome() {
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let overwhelming = R::new(Gaussian::from_ms(5_000.0, 0.5), 1.0, ConstantDrift(0.0));
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let hopeless = R::new(Gaussian::from_ms(-5_000.0, 0.5), 1.0, ConstantDrift(0.0));
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let a = [overwhelming];
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let b = [hopeless];
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let teams: Vec<&[R]> = vec![&a, &b];
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let game = Game::ranked(&teams, Outcome::winner(0, 2), &GameOptions::default()).unwrap();
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assert!(
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game.log_evidence().is_finite(),
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"got {}",
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game.log_evidence()
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);
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// And the reverse — a colossal upset — must also stay finite.
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let upset = Game::ranked(&teams, Outcome::winner(1, 2), &GameOptions::default()).unwrap();
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assert!(
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upset.log_evidence().is_finite(),
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"upset log-evidence must be finite, got {}",
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upset.log_evidence()
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);
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}
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#[test]
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fn empty_history_has_no_filtered_estimates() {
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let history: History = History::builder().build();
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assert_eq!(history.filtered_log_evidence(), 0.0);
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assert!(history.filtered_learning_curves().is_empty());
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assert!(history.filtered_learning_curve("nobody").is_empty());
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}
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// --- Boundary inputs (#26) ----------------------------------------------
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fn tight() -> ConvergenceOptions {
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ConvergenceOptions {
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max_iter: 2_000,
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epsilon: 1e-12,
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..ConvergenceOptions::default()
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}
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}
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fn assert_curve_finite(h: &History, keys: &[&str], what: &str) {
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for key in keys {
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for (time, g) in h.learning_curve(*key) {
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assert!(
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g.mu().is_finite() && g.sigma().is_finite(),
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"{what}: non-finite posterior for {key} at t={time} (mu={} sigma={})",
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g.mu(),
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g.sigma()
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);
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}
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}
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}
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/// A zero weight reaches `(m - performance.exclude(..)) * (1.0 / w)`, i.e. a
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/// division by zero. The commit is accepted today, so this pins that the
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/// resulting posterior is still finite rather than quietly NaN.
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#[test]
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fn zero_weight_does_not_produce_a_non_finite_posterior() {
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let mut h = History::builder().build();
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h.event(1)
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.team(["a"])
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.weights([0.0])
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.team(["b"])
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.winner(0)
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.commit()
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.expect("a zero weight is accepted today; update this test if that changes");
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h.converge().unwrap();
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assert_curve_finite(&h, &["a", "b"], "zero weight");
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}
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#[test]
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fn negative_weight_does_not_produce_a_non_finite_posterior() {
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let mut h = History::builder().build();
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h.event(1)
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.team(["a"])
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.weights([-1.0])
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.team(["b"])
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.winner(0)
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.commit()
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.expect("a negative weight is accepted today; update this test if that changes");
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h.converge().unwrap();
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assert_curve_finite(&h, &["a", "b"], "negative weight");
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}
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/// Events supplied newest-first must land in the same slices as oldest-first:
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/// ingestion sorts by time rather than trusting arrival order.
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#[test]
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fn out_of_order_timestamps_converge_to_the_same_answer() {
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fn build(descending: bool) -> History {
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let mut h = History::builder().convergence(tight()).build();
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let mut times: Vec<i64> = (1..=6).collect();
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if descending {
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times.reverse();
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}
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for time in times {
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h.record_winner(&"a", &"b", time).unwrap();
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}
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h.converge().unwrap();
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h
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}
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let ascending = build(false);
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let descending = build(true);
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let one = ascending.current_skill("a").unwrap();
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let other = descending.current_skill("a").unwrap();
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assert!(
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(one.mu() - other.mu()).abs() < 1e-8 && (one.sigma() - other.sigma()).abs() < 1e-8,
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"arrival order changed the answer: ascending mu={} sigma={}, descending mu={} sigma={}",
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one.mu(),
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one.sigma(),
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other.mu(),
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other.sigma()
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);
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}
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#[test]
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fn extreme_beta_and_sigma_stay_finite() {
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for (beta, sigma) in [(1e-6, 1e-6), (1e6, 1e6), (1e-6, 1e6), (1e6, 1e-6)] {
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let mut h = History::builder().beta(beta).sigma(sigma).build();
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h.record_winner(&"a", &"b", 1).unwrap();
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h.record_winner(&"a", &"b", 2).unwrap();
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h.converge().unwrap();
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assert_curve_finite(&h, &["a", "b"], &format!("beta={beta} sigma={sigma}"));
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}
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}
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