stof64/stof32 (f64|f32 | invalid | overflow) via Eisel-Lemire fast-path (powers_of_ten[596][2]u64 + eisel_lemire 128-bit multiply) + decimal slow-path fallback (decimal.ww, fold-3). 16 fns + faithful powers_of_ten (byte-identical to Hare). u128 via pure-u64 64×64→128 (ftos_ryu.ha). Consumes &math.f64info (γ-cleanup), tagged-float-return (PREREQ-2 #157), 2D double-index (PREREQ-1 #156). 13 documented spelling-divergences (rule-9, each cites stof.ha): #155 (po10 double-index + per-field struct-copy), #161 (compound-assign explicit form), #144 (-0.0 via 1u64<<63), #158, #138, test-only #143/parsef64. Test 909 (DEC+hex+NaN/Inf/invalid/overflow, bit-exact, cstage ww run). Make test 185/185 incl 990-997 byte-id + combined_ww_fresh. Makefile: stof.ww added to w6c_ww/wwdump_ww deps (freshness, fold-3 precedent). Drew's strconv 5-fold plan 4/5. Followup #162 (wwstage lexer parsef64 1-ULP — could adopt stof64).
228 lines
8.3 KiB
Plaintext
228 lines
8.3 KiB
Plaintext
// stoftest — exercises lib/strconv/stof.ww (Hare stof.ha port).
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// Run with `out/bin/ww run lib/strconv/test/stoftest.ww`. Same
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// signalled-then-os.exit(signalled+10) pattern as decimaltest: a
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// non-zero exit names the failing @test (1..N → exit 11..N+10).
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//
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// Ports ref/hare/strconv/stof.ha's @test vectors (stof64 / stof32 /
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// stofhex). Comparisons are BIT-level (math.f64bits / f32bits) so a
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// sign flip (-0.0 vs 0.0) or a 1-ulp miss fails the row rather than
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// silently passing on IEEE `==`. NaN via math.isnan; ±Inf via
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// f64frombits(INF_BITS) (ww math has no NAN/INF f32/f64 const — see
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// math/floats.ww). Hex extremes (Hare's math::F64_MAX_NORMAL etc.,
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// absent in ww math) assert against the IEEE-754 bit patterns directly.
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//
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// Lives in lib/strconv/test/ so `import strconv` resolves to the
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// DIRECTORY (full package: strconv.ww + decimal.ww + stof_data.ww +
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// stof.ww), not the strconv.ww FILE — same rationale as decimaltest.
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package strconv;
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import strconv;
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import os;
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import math;
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let signalled: i32 = 0;
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fn fail() void = { os.exit(signalled + 10); };
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// ---- unwrap helpers (bit-exact value checks) -------------------------
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fn chk64(s: str, b: base, want: f64) bool = {
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match (stof64(s, b)) {
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case let v: f64 => { return math.f64bits(v) == math.f64bits(want); };
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case let e: invalid => { return false; };
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case let e: overflow => { return false; };
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};
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return false;
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};
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fn chk32(s: str, b: base, want: f32) bool = {
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match (stof32(s, b)) {
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case let v: f32 => { return math.f32bits(v) == math.f32bits(want); };
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case let e: invalid => { return false; };
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case let e: overflow => { return false; };
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};
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return false;
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};
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fn ovf64(s: str, b: base) bool = {
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match (stof64(s, b)) {
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case let v: f64 => { return false; };
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case let e: invalid => { return false; };
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case let e: overflow => { return true; };
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};
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return false;
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};
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fn ovf32(s: str, b: base) bool = {
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match (stof32(s, b)) {
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case let v: f32 => { return false; };
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case let e: invalid => { return false; };
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case let e: overflow => { return true; };
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};
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return false;
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};
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// inv64 — the invalid byte-index, or -1 if not invalid.
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fn inv64(s: str) i32 = {
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match (stof64(s, base.DEC)) {
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case let v: f64 => { return -1; };
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case let e: invalid => { return (e: i32); };
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case let e: overflow => { return -1; };
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};
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return -1;
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};
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fn inv32(s: str) i32 = {
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match (stof32(s, base.DEC)) {
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case let v: f32 => { return -1; };
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case let e: invalid => { return (e: i32); };
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case let e: overflow => { return -1; };
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};
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return -1;
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};
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fn nan64(s: str) bool = {
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match (stof64(s, base.DEC)) {
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case let v: f64 => { return math.isnan(v); };
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case let e: invalid => { return false; };
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case let e: overflow => { return false; };
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};
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return false;
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};
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fn nan32(s: str) bool = {
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match (stof32(s, base.DEC)) {
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case let v: f32 => { return math.isnan((v: f64)); };
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case let e: invalid => { return false; };
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case let e: overflow => { return false; };
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};
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return false;
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};
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// ---- stof64 ----------------------------------------------------------
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// ref/hare/strconv/stof.ha:530.
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@test fn stof64_dec() void = {
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let inf: f64 = math.f64frombits(math.INF_BITS);
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let ninf: f64 = math.f64frombits(0xFFF0000000000000u64);
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let nzero: f64 = math.f64frombits(1u64 << 63u64); // -0.0 (1<<63 dodges the I64_MIN-literal emit bug #144)
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let subn: f64 = math.f64frombits(0x0000000000000001u64); // 5e-324
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if (!chk64("0", base.DEC, 0.0)) { fail(); };
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if (!chk64("200", base.DEC, 200.0)) { fail(); };
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if (!chk64("12345", base.DEC, 12345.0)) { fail(); };
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if (!chk64("+112233445566778899", base.DEC, 1.122334455667789e17)) { fail(); };
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if (!chk64("3.14", base.DEC, 3.14)) { fail(); };
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if (!chk64("2.99792458E+8", base.DEC, 299792458.0)) { fail(); };
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if (!chk64("6.022e23", base.DEC, 6.022e23)) { fail(); };
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if (!ovf64("1e310", base.DEC)) { fail(); };
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if (!chk64("9007199254740991", base.DEC, 9007199254740991.0)) { fail(); };
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if (!chk64("90071992547409915", base.DEC, 90071992547409920.0)) { fail(); };
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if (!chk64("90071992547409925", base.DEC, 90071992547409920.0)) { fail(); };
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if (!chk64("2.2250738585072014e-308", base.DEC, 2.2250738585072014e-308)) { fail(); };
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if (!chk64("-1e-324", base.DEC, nzero)) { fail(); };
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if (!chk64("5e-324", base.DEC, subn)) { fail(); };
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if (inv64("") != 0) { fail(); };
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if (inv64("0ZO") != 1) { fail(); };
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if (inv64("1.23ezz") != 5) { fail(); };
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if (!chk64("Infinity", base.DEC, inf)) { fail(); };
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if (!chk64("+Infinity", base.DEC, inf)) { fail(); };
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if (!chk64("-Infinity", base.DEC, ninf)) { fail(); };
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if (!chk64("infinity", base.DEC, inf)) { fail(); };
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if (!chk64("inFinIty", base.DEC, inf)) { fail(); };
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if (!chk64("-infinity", base.DEC, ninf)) { fail(); };
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if (!chk64("-infiNity", base.DEC, ninf)) { fail(); };
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if (!nan64("NaN")) { fail(); };
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if (!nan64("nan")) { fail(); };
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if (!nan64("naN")) { fail(); };
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};
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// ---- stof32 ----------------------------------------------------------
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// ref/hare/strconv/stof.ha:560.
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@test fn stof32_dec() void = {
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let inf: f32 = math.f32frombits(0x7F800000u32);
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let ninf: f32 = math.f32frombits(0xFF800000u32);
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let nzero: f32 = math.f32frombits(0x80000000u32); // -0.0
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let subn: f32 = math.f32frombits(0x00000001u32); // 1e-45
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if (!chk32("0", base.DEC, 0.0f32)) { fail(); };
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if (!chk32("1e10", base.DEC, 1.0e10f32)) { fail(); };
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if (!chk32("299792458", base.DEC, 299792458.0f32)) { fail(); };
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if (!chk32("6.022e23", base.DEC, 6.022e23f32)) { fail(); };
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if (!ovf32("1e40", base.DEC)) { fail(); };
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if (!chk32("16777215", base.DEC, 16777215.0f32)) { fail(); };
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if (!chk32("167772155", base.DEC, 167772160.0f32)) { fail(); };
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if (!chk32("167772145", base.DEC, 167772140.0f32)) { fail(); };
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if (!chk32("6.62607015e-34", base.DEC, 6.62607015e-34f32)) { fail(); };
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if (!chk32("1.1754944e-38", base.DEC, 1.1754944e-38f32)) { fail(); };
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if (!chk32("-1e-50", base.DEC, nzero)) { fail(); };
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if (!chk32("1e-45", base.DEC, subn)) { fail(); };
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if (inv32("") != 0) { fail(); };
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if (inv32("0ZO") != 1) { fail(); };
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if (inv32("1.23e-zz") != 6) { fail(); };
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if (!chk32("Infinity", base.DEC, inf)) { fail(); };
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if (!chk32("+Infinity", base.DEC, inf)) { fail(); };
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if (!chk32("-Infinity", base.DEC, ninf)) { fail(); };
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if (!chk32("infinity", base.DEC, inf)) { fail(); };
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if (!chk32("inFinIty", base.DEC, inf)) { fail(); };
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if (!chk32("-infinity", base.DEC, ninf)) { fail(); };
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if (!chk32("-infiniTy", base.DEC, ninf)) { fail(); };
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if (!nan32("NaN")) { fail(); };
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if (!nan32("nan")) { fail(); };
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if (!nan32("naN")) { fail(); };
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if (!chk32("9.19100241453305036800e+20", base.DEC, 9.19100241453305036800e+20f32)) { fail(); };
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};
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// ---- stofhex ---------------------------------------------------------
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// ref/hare/strconv/stof.ha:590. Hex-float surface-form literals (0x1.fp-2,
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// math::F64_MAX_NORMAL, …) are spelled as IEEE-754 bit patterns since ww
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// has no hex-float literal lexer / no F*_MAX_NORMAL math consts.
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@test fn stof64_hex() void = {
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if (!chk64("0p0", base.HEX, 0.0)) { fail(); };
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if (!chk64("1p0", base.HEX, 1.0)) { fail(); };
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if (!chk64("-1p0", base.HEX_LOWER, -1.0)) { fail(); };
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// 0x1.fp-2 = 1.9375 * 2^-2 = 0.484375 (exact).
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if (!chk64("1.fp-2", base.HEX, 0.484375)) { fail(); };
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// F64_MAX_NORMAL.
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if (!chk64("1.fffffffffffffp+1023", base.HEX,
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math.f64frombits(0x7FEFFFFFFFFFFFFFu64))) { fail(); };
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// F64_MIN_NORMAL.
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if (!chk64("1.0000000000000p-1022", base.HEX,
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math.f64frombits(0x0010000000000000u64))) { fail(); };
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// F64_MIN_SUBNORMAL.
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if (!chk64("0.0000000000001p-1022", base.HEX,
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math.f64frombits(0x0000000000000001u64))) { fail(); };
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if (!ovf64("1p+1024", base.HEX)) { fail(); };
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if (!chk64("0.00000000000001p-1022", base.HEX, 0.0)) { fail(); };
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};
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@test fn stof32_hex() void = {
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if (!chk32("0p0", base.HEX, 0.0f32)) { fail(); };
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if (!chk32("1p0", base.HEX, 1.0f32)) { fail(); };
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if (!chk32("-1p0", base.HEX, -1.0f32)) { fail(); };
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if (!chk32("1.fp-2", base.HEX, 0.484375f32)) { fail(); };
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// F32_MAX_NORMAL.
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if (!chk32("1.fffffd586b834p+127", base.HEX,
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math.f32frombits(0x7F7FFFFFu32))) { fail(); };
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// F32_MIN_NORMAL.
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if (!chk32("1.0p-126", base.HEX, math.f32frombits(0x00800000u32))) { fail(); };
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// F32_MIN_SUBNORMAL.
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if (!chk32("1.6p-150", base.HEX, math.f32frombits(0x00000001u32))) { fail(); };
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if (!ovf32("1.0p+128", base.HEX)) { fail(); };
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if (!chk32("1.0p-151", base.HEX, 0.0f32)) { fail(); };
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};
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export fn main() i32 = {
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signalled = 1; stof64_dec();
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signalled = 2; stof32_dec();
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signalled = 3; stof64_hex();
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signalled = 4; stof32_hex();
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return 0;
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};
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