76b21c00eb
Deletes `ParamMode::Implicit`. `ParamMode` is now `{Own, Borrow}`:
every fn-type slot on every signature carries an explicit `own` or
`borrow`, no defaulted position survives anywhere (model 0008 §2,
spec 0062). The parser rejects a bare fn-type slot; `borrow-return`
and `borrow-over-value` reject at the signature; the corpus is
migrated to minimal-ownership modes (consumed ⇒ own, read-only-heap
⇒ borrow, value ⇒ trivial-own). The documented `Implicit`-ret-mode
leak is fixed: an owned heap return now drops exactly once (live=0,
acceptance criterion 5).
This was the easy half. Removing the default ACTIVATED a family of
drop paths that `Implicit` had silently skipped — the pre-cutover
language was leaking (and in places mis-dropping) here rather than
crashing, because an Implicit scrutinee turned the drop off. Making
the modes explicit (Own) turned those paths on and exposed two
latent-bug clusters, all fixed RED-first as part of this cutover:
Drop-soundness family (four legs):
A. lit-sub-pattern double-free — the desugar re-matched the same
owned scrutinee in the lit fall-through; fixed by grouping
consecutive same-ctor arms into one match (bind fields once),
in ailang-core desugar.
B. Cons-husk leak on non-tail arm bodies — the lit-sub-pattern
desugar rebound the owned scrutinee via `Let $mp = xs`, which
bumped consume_count and suppressed the existing fn-return
partial_drop. Fixed by not rebinding a bare-Var scrutinee
(one husk-freeing mechanism, not two).
C. polymorphic `drop_<T>` rc_dec'd monomorphised value fields —
the per-ADT drop fn was emitted once from the polymorphic
TypeDef, defaulting type-var fields to ptr and rc_dec'ing
inline Ints (segfault). Fixed with per-monomorph drop
functions (new ailang-codegen::dropmono): the drop set is
collected from the lowered MIR, value-type fields are skipped,
heap fields still freed once; monomorphic-concrete ADTs keep
their byte-identical un-suffixed drop symbol.
D. static Str literal passed to an `(own Str)` param — the
literal lowers to a header-less rodata constant; the callee's
now-active rc_dec read its length field as a refcount and
freed a static address (segfault). Fixed with the missing
fourth StrRep::Static→Heap promotion in lower_to_mir's App arm,
gated on Own mode (borrow args stay static, no regression).
over-strict-mode lint over-fired: it suggested `(borrow V)` for
value-typed params (which `borrow-over-value` rejects — own is the
only legal mode there) and fired on `(intrinsic)` bodies (whose
consumption the linearity walk cannot observe). Tightened to skip
both; contract 0008 updated to the narrowed firing scope.
Irreversible step — canonical-form hash reset (model 0008 §6,
acceptance criterion 6). Every signature now carries explicit modes,
so the hashable canonical JSON changed for every module. RATIFY:
the corpus-wide hash-pin reset (hash_pin, prelude_module_hash_pin,
mono_hash_stability, eq_ord_e2e, embed_export_hash_stable, the
ct4/iter*/loop_recur schema-extension pins) and the list ir_snapshot
golden were regenerated once, deliberately, as the intended one-time
consequence of removing the mode elision from the canonical form —
not a regression. Each regenerated hash verified deterministic across
two runs.
Also fixes a pre-existing latent failure surfaced by the verification
gate, unrelated to this cutover: the `every_contract_names_a_resolvable_
ratifying_test` resolver (design_index_pin) could not resolve the
" + " dual-link ratifying-test form (`uniqueness.rs + linearity.rs`)
that the #57 audit-close (dfdc65f) introduced — it shipped red on that
commit. Resolver taught the dual-link form, mirroring its sibling.
Verification: cargo test --workspace = 731 passed, 0 failed (twice,
stable); e2e 102 passed, no binary exits non-zero (corpus crash-free);
grep-clean for Implicit/fn_implicit/mode_eq across crates; every drop
fix confirmed via emitted IR + AILANG_RC_STATS balance on the head==K,
head!=K, and Nil paths. Three BLOCKEDs en route (the unsound first
husk-dec attempt, the over-strict derivation premise, the leg-B fix
direction) were each treated as a real design/spec gap and rediagnosed,
not patched over.
Supersedes #54 (return-position-only leak patch). Precondition #57
(linearity hardening) was already met. Spec docs/specs/0062, plan
docs/plans/0121.
closes #55
229 lines
8.1 KiB
Plaintext
229 lines
8.1 KiB
Plaintext
; Latency-distribution bench fixture — Implicit-mode variant.
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;
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; Companion to bench_latency_explicit. Together they test the
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; hypothesis "RC under explicit-mode has p99 per-operation latency
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; within a small constant factor of the median, even under
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; continuous alloc pressure with a large persistent live working
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; set; RC under implicit-mode is the control arm — it LEAKS
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; because Implicit params are not dec'd, so its p99 is
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; alloc-pressure-bounded but the live set grows monotonically".
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;
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; Implicit-mode variant: no `(borrow T)`, `(own T)`, `(reuse-as)`,
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; `(drop-iterative)` annotations. This is the control arm — the
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; way you'd write the program without thinking about modes. Under
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; `--alloc=rc` this variant LEAKS (Implicit params are not dec'd);
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; the bench harness runs it as a control to measure the
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; alloc-only-no-free latency floor against the RC-fair explicit
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; arm.
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;
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; Workload:
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; - Live cache: balanced binary tree of depth 19 (524_287 nodes,
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; ~16 MB). Stays referenced through the entire bench loop.
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; - Per-op work: build a 500-cell IntList of 0..499, sum it
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; (sum = 124750), print one stdout marker line every PRINT_K
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; ops. Total churn: 20000 * 500 cells = 10M cell-allocs ≈
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; 240 MB ≫ live-set; in the implicit-mode arm the live set
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; grows monotonically (no free), so the working set tracks
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; total allocation.
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; - Total ops: 20_000. Print every PRINT_K=20 ops → 1000 timing
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; samples + 1 final summary line.
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;
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; What the harness sees:
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; - One "READY" line at startup once the tree is built.
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; - 1000 lines, each containing the per-chunk sum (always 124750)
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; so output stays validatable. The harness ignores values and
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; records only inter-arrival times.
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; - One final "DONE" line.
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;
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; The harness times each line's arrival via clock_gettime on its
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; end of a PTY-controlled stdout (PTY forces line-buffering through
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; libc's printf), then computes median / p99 / p99.9 / max of the
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; gaps.
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;
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; Why a print-driven gap measurement: AILang has no high-resolution
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; clock extern. Adding one would mean a codegen change (a new `do
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; bench/clock` op routed into the codegen seam), which is
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; implementer territory, not bencher territory. Stdout-gap timing
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; has a noise floor of ~10-50 µs (printf + pipe roundtrip) which is
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; well below the millisecond-scale STW pauses the hypothesis
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; predicts; if the hypothesis is right, the signal swamps the
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; noise. If the data shows a tighter distribution than that noise
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; floor, we'll have to escalate to in-process clocks; otherwise the
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; bench is sufficient.
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(module bench_latency_implicit
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(data Tree
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(doc "Balanced binary tree, 32-byte cells (tag + Int payload + 2 ptrs).")
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(ctor TLeaf)
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(ctor TNode (con Int) (con Tree) (con Tree)))
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(data IntList
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(doc "Singly-linked Int list, 24-byte cells.")
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(ctor LNil)
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(ctor LCons (con Int) (con IntList)))
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; ---------- Live cache: balanced tree of given depth ----------
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(fn build_tree
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(doc "Build a balanced tree of given depth, every value = 1. Constructor-blocked — recursion depth = `depth`, fits 8MB stack at depth 19.")
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(type
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(fn-type
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(params (own (con Int)))
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(ret (own (con Tree)))))
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(params depth)
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(body
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(if (app eq depth 0)
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(term-ctor Tree TLeaf)
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(term-ctor Tree TNode
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1
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(app build_tree (app - depth 1))
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(app build_tree (app - depth 1))))))
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(fn sum_tree
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(doc "Touch every node of the tree (ensures liveness across the loop).")
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(type
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(fn-type
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(params (own (con Tree)))
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(ret (own (con Int)))))
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(params t)
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(body
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(match t
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(case (pat-ctor TLeaf) 0)
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(case (pat-ctor TNode v l r)
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(app + v (app + (app sum_tree l) (app sum_tree r)))))))
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; ---------- Per-op work: build/sum an N-cell list ----------
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(fn cons_n_acc
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(doc "Tail-recursive list builder. Result = [n-1, n-2, ..., 0] :: IntList.")
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(type
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(fn-type
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(params (own (con Int)) (own (con IntList)))
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(ret (own (con IntList)))))
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(params n acc)
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(body
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(if (app eq n 0)
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acc
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(tail-app cons_n_acc
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(app - n 1)
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(term-ctor IntList LCons (app - n 1) acc)))))
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(fn cons_n
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(doc "Build [0,1,...,n-1] :: IntList.")
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(type
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(fn-type
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(params (own (con Int)))
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(ret (own (con IntList)))))
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(params n)
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(body
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(app cons_n_acc n (term-ctor IntList LNil))))
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(fn sum_list_acc
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(doc "Tail-recursive sum.")
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(type
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(fn-type
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(params (own (con IntList)) (own (con Int)))
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(ret (own (con Int)))))
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(params xs acc)
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(body
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(match xs
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(case (pat-ctor LNil) acc)
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(case (pat-ctor LCons h t)
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(tail-app sum_list_acc t (app + acc h))))))
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(fn sum_list
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(doc "Sum every element. Calls sum_list_acc with seed 0.")
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(type
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(fn-type
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(params (own (con IntList)))
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(ret (own (con Int)))))
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(params xs)
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(body
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(app sum_list_acc xs 0)))
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; One operation: build and sum a list of length CHUNK_LEN, return
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; the sum. The tree `t` is passed through and subjected to
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; `sum_tree` so the optimizer can't eliminate it, but the result
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; is XOR'd back into the int we return so the value chain stays
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; live without unbounded accumulation.
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;
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; Note: we don't actually want sum_tree to fire on every op (it
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; would dominate the per-op cost and bury allocator effects).
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; Instead we touch only the tree's root via a cheap `pin_root`
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; that pattern-matches once. The tree pointer remains a live
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; root through the entire loop scope; under RC every per-op
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; alloc pays inc/dec instrumentation against that root.
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(fn pin_root
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(doc "Constant-time tree liveness pin — read root tag, return 1 (TNode) or 0 (TLeaf).")
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(type
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(fn-type
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(params (borrow (con Tree)))
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(ret (own (con Int)))))
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(params t)
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(body
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(match t
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(case (pat-ctor TLeaf) 0)
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(case (pat-ctor TNode v l r) 1))))
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(fn one_op
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(doc "One bench operation: build+sum a fresh CHUNK_LEN-cell list, pin the tree's root, return their sum so the value chain stays observable.")
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(type
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(fn-type
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(params (own (con Int)) (borrow (con Tree)))
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(ret (own (con Int)))))
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(params chunk_len t)
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(body
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(app + (app sum_list (app cons_n chunk_len)) (app pin_root t))))
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; ---------- Bench loop ----------
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; Loop runs `remaining` ops. Every PRINT_K ops, prints the
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; rolling sum from the most-recent op (always equal to
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; CHUNK_LEN*(CHUNK_LEN-1)/2 + 1 = 124750 + 1 = 124751 for
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; CHUNK_LEN=500). The print is the timing event. The
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; print_every counter's role is to keep stdout lines per second
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; tractable for the harness (1000 timings instead of 20000).
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;
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; The tree `t` is passed through every recursive call so it
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; stays a live root for the duration of the bench loop.
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(fn loop
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(doc "Tail-recursive bench loop. Ops countdown in `remaining`; print marker every time `print_countdown` hits 0.")
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(type
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(fn-type
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(params (own (con Int)) (own (con Int)) (own (con Int)) (own (con Int)) (borrow (con Tree)))
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(ret (own (con Unit)))
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(effects IO)))
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(params remaining print_countdown chunk_len print_k t)
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(body
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(if (app eq remaining 0)
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(seq (app print 9999) (do io/print_str "\n"))
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(if (app eq print_countdown 0)
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(seq
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(seq (app print (app one_op chunk_len t)) (do io/print_str "\n"))
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(tail-app loop
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(app - remaining 1)
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(app - print_k 1)
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chunk_len
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print_k
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t))
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(let _v (app one_op chunk_len t)
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(tail-app loop
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(app - remaining 1)
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(app - print_countdown 1)
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chunk_len
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print_k
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t))))))
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(fn main
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(doc "Top-level: build tree, signal READY (8888), run loop, signal DONE (9999 emitted by loop).")
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(type (fn-type (params) (ret (own (con Unit))) (effects IO)))
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(params)
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(body
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(let t (app build_tree 19)
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(let _root (app pin_root t)
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(seq
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(seq (app print 8888) (do io/print_str "\n"))
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(app loop 20000 0 500 20 t)))))))
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