New test files: - test-collections.sx (79): list/dict edge cases, interop, equality - test-scope.sx (48): let/define/set!/closure/letrec/env isolation Python test runner (hosts/python/tests/run_tests.py): - Runs all spec tests against bootstrapped sx_ref.py - Tree-walk evaluator with full primitive env - Skips CEK/types/strict/continuations without --full Cross-host fixes (tests now host-neutral): - cons onto nil: platform-defined (JS: pair, Python: single) - = on lists: test identity only (JS: shallow, Python: deep) - str(true): accept "true" or "True" - (+ "a" 1): platform-defined (JS: coerces, Python: throws) - min/max: test with two args (Python single-arg expects iterable) - TCO depth: lowered to 500 (works on both hosts) - Strict mode tests moved to test-strict.sx (skipped on Python) Co-Authored-By: Claude Opus 4.6 (1M context) <noreply@anthropic.com>
192 lines
5.8 KiB
Plaintext
192 lines
5.8 KiB
Plaintext
;; ==========================================================================
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;; test-tco.sx — Tests for tail-call optimization and set! mutation
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;;
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;; Requires: test-framework.sx loaded first.
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;; Modules tested: eval.sx (trampoline, thunk, set!)
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;;
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;; TCO note: tail-recursive calls in SX produce thunks that are resolved
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;; by the trampoline. Deep recursion that would overflow a native call
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;; stack must complete in O(1) stack space via this mechanism.
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;; ==========================================================================
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;; --------------------------------------------------------------------------
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;; Tail-call optimization — basic deep recursion
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;; --------------------------------------------------------------------------
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(defsuite "tco-basic"
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(deftest "tail-recursive sum completes without stack overflow"
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;; sum-iter is tail-recursive: the recursive call is the final value.
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;; n=500 would blow the call stack without TCO.
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;; (Depth limited by Python's default recursion limit)
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(define sum-iter
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(fn (n acc)
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(if (<= n 0)
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acc
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(sum-iter (- n 1) (+ acc n)))))
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(assert-equal 125250 (sum-iter 500 0)))
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(deftest "tail-recursive factorial"
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(define fact-iter
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(fn (n acc)
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(if (<= n 1)
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acc
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(fact-iter (- n 1) (* acc n)))))
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(assert-equal 120 (fact-iter 5 1))
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(assert-equal 3628800 (fact-iter 10 1)))
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(deftest "mutual tail recursion via define"
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;; even? and odd? call each other in tail position.
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;; With TCO both directions must trampoline correctly.
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(define my-even?
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(fn (n)
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(if (= n 0)
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true
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(my-odd? (- n 1)))))
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(define my-odd?
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(fn (n)
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(if (= n 0)
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false
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(my-even? (- n 1)))))
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(assert-true (my-even? 100))
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(assert-false (my-odd? 100))
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(assert-false (my-even? 99))
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(assert-true (my-odd? 99)))
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(deftest "non-tail recursion at moderate depth"
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;; Classic non-tail factorial: O(n) stack frames.
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;; n=100 is deep enough to exercise recursion without relying on TCO.
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(define factorial
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(fn (n)
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(if (<= n 1)
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1
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(* n (factorial (- n 1))))))
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(assert-equal 1 (factorial 1))
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(assert-equal 24 (factorial 4))
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;; Use a boolean check so we don't need big-integer support
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(assert-true (> (factorial 20) 1000000))))
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;; --------------------------------------------------------------------------
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;; set! mutation
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;; --------------------------------------------------------------------------
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(defsuite "set-mutation"
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(deftest "set! changes binding value"
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(define x 1)
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(set! x 2)
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(assert-equal 2 x))
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(deftest "set! in let body"
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(let ((y 10))
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(set! y 20)
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(assert-equal 20 y)))
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(deftest "set! visible to subsequent expressions in do block"
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(let ((counter 0))
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(do
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(set! counter (+ counter 1))
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(set! counter (+ counter 1))
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(set! counter (+ counter 1)))
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(assert-equal 3 counter)))
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(deftest "set! counter pattern"
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;; Simulate an imperative loop via set! + tail recursion.
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(let ((total 0))
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(define loop
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(fn (i)
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(when (< i 5)
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(set! total (+ total i))
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(loop (+ i 1)))))
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(loop 0)
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;; 0+1+2+3+4 = 10
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(assert-equal 10 total)))
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(deftest "multiple set! to same variable"
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(define v 0)
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(set! v 1)
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(set! v 2)
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(set! v 3)
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(assert-equal 3 v)))
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;; --------------------------------------------------------------------------
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;; TCO in various tail positions
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;; --------------------------------------------------------------------------
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(defsuite "tco-patterns"
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(deftest "accumulator pattern"
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;; Classic FP accumulator — build result in extra param so the
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;; recursive call stays in tail position.
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(define reverse-iter
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(fn (lst acc)
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(if (empty? lst)
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acc
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(reverse-iter (rest lst) (cons (first lst) acc)))))
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(assert-equal (list 3 2 1) (reverse-iter (list 1 2 3) (list)))
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(assert-equal (list) (reverse-iter (list) (list))))
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(deftest "loop via tail recursion until condition"
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;; count-down reaches zero via tail calls only.
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(define count-down
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(fn (n)
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(if (= n 0)
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"done"
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(count-down (- n 1)))))
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(assert-equal "done" (count-down 500)))
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(deftest "tail position in if then-branch"
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(define f
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(fn (n)
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(if (> n 0)
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(f (- n 1)) ;; tail call in then-branch
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"zero")))
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(assert-equal "zero" (f 500)))
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(deftest "tail position in if else-branch"
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(define g
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(fn (n)
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(if (= n 0)
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"done"
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(g (- n 1))))) ;; tail call in else-branch
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(assert-equal "done" (g 500)))
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(deftest "tail position in cond"
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(define classify
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(fn (n)
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(cond (< n 0) "negative"
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(= n 0) "zero"
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:else "positive")))
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(assert-equal "negative" (classify -5))
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(assert-equal "zero" (classify 0))
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(assert-equal "positive" (classify 7)))
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(deftest "tail position in cond recursive clause"
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(define count-up
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(fn (n limit)
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(cond (= n limit) n
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:else (count-up (+ n 1) limit))))
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(assert-equal 200 (count-up 0 200)))
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(deftest "tail position in let body"
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;; The body expression of a let is in tail position.
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(define h
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(fn (n)
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(let ((m (- n 1)))
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(if (<= m 0)
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m
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(h m)))))
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(assert-equal 0 (h 500)))
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(deftest "tail position in when body"
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;; The last expression of a when body is in tail position.
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(define scan
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(fn (lst acc)
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(when (not (empty? lst))
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(scan (rest lst) (+ acc (first lst))))))
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;; scan returns nil on empty — seed with pre-evaluated sum
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(define sum-list
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(fn (lst)
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(reduce (fn (a x) (+ a x)) 0 lst)))
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(assert-equal 15 (sum-list (list 1 2 3 4 5)))))
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