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Auto merge of #146216 - LorrensP-2158466:miri-float-nondet-foreign-items-take2, r=RalfJung
Miri: non-deterministic floating point operations in foreign_items Take 2 of rust-lang/rust#143906. The last 2 commits are what changed compared to the original pr. Verified the tests using (fish shell): ```fish env MIRIFLAGS="-Zmiri-max-extra-rounding-error -Zmiri-many-seeds" ./x miri --no-fail-fast std core coretests -- f32 f64 ``` r? `@RalfJung`
2 parents e497526 + 009daa8 commit 30b3e41

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4 files changed

+489
-278
lines changed

4 files changed

+489
-278
lines changed

src/intrinsics/mod.rs

Lines changed: 27 additions & 134 deletions
Original file line numberDiff line numberDiff line change
@@ -3,11 +3,8 @@
33
mod atomic;
44
mod simd;
55

6-
use std::ops::Neg;
7-
86
use rand::Rng;
97
use rustc_abi::Size;
10-
use rustc_apfloat::ieee::{IeeeFloat, Semantics};
118
use rustc_apfloat::{self, Float, Round};
129
use rustc_middle::mir;
1310
use rustc_middle::ty::{self, FloatTy};
@@ -16,7 +13,6 @@ use rustc_span::{Symbol, sym};
1613
use self::atomic::EvalContextExt as _;
1714
use self::helpers::{ToHost, ToSoft};
1815
use self::simd::EvalContextExt as _;
19-
use crate::math::{IeeeExt, apply_random_float_error_ulp};
2016
use crate::*;
2117

2218
/// Check that the number of args is what we expect.
@@ -209,7 +205,7 @@ pub trait EvalContextExt<'tcx>: crate::MiriInterpCxExt<'tcx> {
209205
let [f] = check_intrinsic_arg_count(args)?;
210206
let f = this.read_scalar(f)?.to_f32()?;
211207

212-
let res = fixed_float_value(this, intrinsic_name, &[f]).unwrap_or_else(|| {
208+
let res = math::fixed_float_value(this, intrinsic_name, &[f]).unwrap_or_else(|| {
213209
// Using host floats (but it's fine, these operations do not have
214210
// guaranteed precision).
215211
let host = f.to_host();
@@ -227,15 +223,15 @@ pub trait EvalContextExt<'tcx>: crate::MiriInterpCxExt<'tcx> {
227223

228224
// Apply a relative error of 4ULP to introduce some non-determinism
229225
// simulating imprecise implementations and optimizations.
230-
let res = apply_random_float_error_ulp(
226+
let res = math::apply_random_float_error_ulp(
231227
this,
232228
res,
233229
4,
234230
);
235231

236232
// Clamp the result to the guaranteed range of this function according to the C standard,
237233
// if any.
238-
clamp_float_value(intrinsic_name, res)
234+
math::clamp_float_value(intrinsic_name, res)
239235
});
240236
let res = this.adjust_nan(res, &[f]);
241237
this.write_scalar(res, dest)?;
@@ -253,7 +249,7 @@ pub trait EvalContextExt<'tcx>: crate::MiriInterpCxExt<'tcx> {
253249
let [f] = check_intrinsic_arg_count(args)?;
254250
let f = this.read_scalar(f)?.to_f64()?;
255251

256-
let res = fixed_float_value(this, intrinsic_name, &[f]).unwrap_or_else(|| {
252+
let res = math::fixed_float_value(this, intrinsic_name, &[f]).unwrap_or_else(|| {
257253
// Using host floats (but it's fine, these operations do not have
258254
// guaranteed precision).
259255
let host = f.to_host();
@@ -271,15 +267,15 @@ pub trait EvalContextExt<'tcx>: crate::MiriInterpCxExt<'tcx> {
271267

272268
// Apply a relative error of 4ULP to introduce some non-determinism
273269
// simulating imprecise implementations and optimizations.
274-
let res = apply_random_float_error_ulp(
270+
let res = math::apply_random_float_error_ulp(
275271
this,
276272
res,
277273
4,
278274
);
279275

280276
// Clamp the result to the guaranteed range of this function according to the C standard,
281277
// if any.
282-
clamp_float_value(intrinsic_name, res)
278+
math::clamp_float_value(intrinsic_name, res)
283279
});
284280
let res = this.adjust_nan(res, &[f]);
285281
this.write_scalar(res, dest)?;
@@ -330,14 +326,15 @@ pub trait EvalContextExt<'tcx>: crate::MiriInterpCxExt<'tcx> {
330326
let f1 = this.read_scalar(f1)?.to_f32()?;
331327
let f2 = this.read_scalar(f2)?.to_f32()?;
332328

333-
let res = fixed_float_value(this, intrinsic_name, &[f1, f2]).unwrap_or_else(|| {
334-
// Using host floats (but it's fine, this operation does not have guaranteed precision).
335-
let res = f1.to_host().powf(f2.to_host()).to_soft();
329+
let res =
330+
math::fixed_float_value(this, intrinsic_name, &[f1, f2]).unwrap_or_else(|| {
331+
// Using host floats (but it's fine, this operation does not have guaranteed precision).
332+
let res = f1.to_host().powf(f2.to_host()).to_soft();
336333

337-
// Apply a relative error of 4ULP to introduce some non-determinism
338-
// simulating imprecise implementations and optimizations.
339-
apply_random_float_error_ulp(this, res, 4)
340-
});
334+
// Apply a relative error of 4ULP to introduce some non-determinism
335+
// simulating imprecise implementations and optimizations.
336+
math::apply_random_float_error_ulp(this, res, 4)
337+
});
341338
let res = this.adjust_nan(res, &[f1, f2]);
342339
this.write_scalar(res, dest)?;
343340
}
@@ -346,14 +343,15 @@ pub trait EvalContextExt<'tcx>: crate::MiriInterpCxExt<'tcx> {
346343
let f1 = this.read_scalar(f1)?.to_f64()?;
347344
let f2 = this.read_scalar(f2)?.to_f64()?;
348345

349-
let res = fixed_float_value(this, intrinsic_name, &[f1, f2]).unwrap_or_else(|| {
350-
// Using host floats (but it's fine, this operation does not have guaranteed precision).
351-
let res = f1.to_host().powf(f2.to_host()).to_soft();
346+
let res =
347+
math::fixed_float_value(this, intrinsic_name, &[f1, f2]).unwrap_or_else(|| {
348+
// Using host floats (but it's fine, this operation does not have guaranteed precision).
349+
let res = f1.to_host().powf(f2.to_host()).to_soft();
352350

353-
// Apply a relative error of 4ULP to introduce some non-determinism
354-
// simulating imprecise implementations and optimizations.
355-
apply_random_float_error_ulp(this, res, 4)
356-
});
351+
// Apply a relative error of 4ULP to introduce some non-determinism
352+
// simulating imprecise implementations and optimizations.
353+
math::apply_random_float_error_ulp(this, res, 4)
354+
});
357355
let res = this.adjust_nan(res, &[f1, f2]);
358356
this.write_scalar(res, dest)?;
359357
}
@@ -363,13 +361,13 @@ pub trait EvalContextExt<'tcx>: crate::MiriInterpCxExt<'tcx> {
363361
let f = this.read_scalar(f)?.to_f32()?;
364362
let i = this.read_scalar(i)?.to_i32()?;
365363

366-
let res = fixed_powi_float_value(this, f, i).unwrap_or_else(|| {
364+
let res = math::fixed_powi_value(this, f, i).unwrap_or_else(|| {
367365
// Using host floats (but it's fine, this operation does not have guaranteed precision).
368366
let res = f.to_host().powi(i).to_soft();
369367

370368
// Apply a relative error of 4ULP to introduce some non-determinism
371369
// simulating imprecise implementations and optimizations.
372-
apply_random_float_error_ulp(this, res, 4)
370+
math::apply_random_float_error_ulp(this, res, 4)
373371
});
374372
let res = this.adjust_nan(res, &[f]);
375373
this.write_scalar(res, dest)?;
@@ -379,13 +377,13 @@ pub trait EvalContextExt<'tcx>: crate::MiriInterpCxExt<'tcx> {
379377
let f = this.read_scalar(f)?.to_f64()?;
380378
let i = this.read_scalar(i)?.to_i32()?;
381379

382-
let res = fixed_powi_float_value(this, f, i).unwrap_or_else(|| {
380+
let res = math::fixed_powi_value(this, f, i).unwrap_or_else(|| {
383381
// Using host floats (but it's fine, this operation does not have guaranteed precision).
384382
let res = f.to_host().powi(i).to_soft();
385383

386384
// Apply a relative error of 4ULP to introduce some non-determinism
387385
// simulating imprecise implementations and optimizations.
388-
apply_random_float_error_ulp(this, res, 4)
386+
math::apply_random_float_error_ulp(this, res, 4)
389387
});
390388
let res = this.adjust_nan(res, &[f]);
391389
this.write_scalar(res, dest)?;
@@ -440,7 +438,7 @@ pub trait EvalContextExt<'tcx>: crate::MiriInterpCxExt<'tcx> {
440438
}
441439
// Apply a relative error of 4ULP to simulate non-deterministic precision loss
442440
// due to optimizations.
443-
let res = crate::math::apply_random_float_error_to_imm(this, res, 4)?;
441+
let res = math::apply_random_float_error_to_imm(this, res, 4)?;
444442
this.write_immediate(*res, dest)?;
445443
}
446444

@@ -477,108 +475,3 @@ pub trait EvalContextExt<'tcx>: crate::MiriInterpCxExt<'tcx> {
477475
interp_ok(EmulateItemResult::NeedsReturn)
478476
}
479477
}
480-
481-
/// For the intrinsics:
482-
/// - sinf32, sinf64
483-
/// - cosf32, cosf64
484-
/// - expf32, expf64, exp2f32, exp2f64
485-
/// - logf32, logf64, log2f32, log2f64, log10f32, log10f64
486-
/// - powf32, powf64
487-
///
488-
/// # Return
489-
///
490-
/// Returns `Some(output)` if the `intrinsic` results in a defined fixed `output` specified in the C standard
491-
/// (specifically, C23 annex F.10) when given `args` as arguments. Outputs that are unaffected by a relative error
492-
/// (such as INF and zero) are not handled here, they are assumed to be handled by the underlying
493-
/// implementation. Returns `None` if no specific value is guaranteed.
494-
///
495-
/// # Note
496-
///
497-
/// For `powf*` operations of the form:
498-
///
499-
/// - `(SNaN)^(±0)`
500-
/// - `1^(SNaN)`
501-
///
502-
/// The result is implementation-defined:
503-
/// - musl returns for both `1.0`
504-
/// - glibc returns for both `NaN`
505-
///
506-
/// This discrepancy exists because SNaN handling is not consistently defined across platforms,
507-
/// and the C standard leaves behavior for SNaNs unspecified.
508-
///
509-
/// Miri chooses to adhere to both implementations and returns either one of them non-deterministically.
510-
fn fixed_float_value<S: Semantics>(
511-
ecx: &mut MiriInterpCx<'_>,
512-
intrinsic_name: &str,
513-
args: &[IeeeFloat<S>],
514-
) -> Option<IeeeFloat<S>> {
515-
let one = IeeeFloat::<S>::one();
516-
Some(match (intrinsic_name, args) {
517-
// cos(+- 0) = 1
518-
("cosf32" | "cosf64", [input]) if input.is_zero() => one,
519-
520-
// e^0 = 1
521-
("expf32" | "expf64" | "exp2f32" | "exp2f64", [input]) if input.is_zero() => one,
522-
523-
// (-1)^(±INF) = 1
524-
("powf32" | "powf64", [base, exp]) if *base == -one && exp.is_infinite() => one,
525-
526-
// 1^y = 1 for any y, even a NaN
527-
("powf32" | "powf64", [base, exp]) if *base == one => {
528-
let rng = ecx.machine.rng.get_mut();
529-
// SNaN exponents get special treatment: they might return 1, or a NaN.
530-
let return_nan = exp.is_signaling() && ecx.machine.float_nondet && rng.random();
531-
// Handle both the musl and glibc cases non-deterministically.
532-
if return_nan { ecx.generate_nan(args) } else { one }
533-
}
534-
535-
// x^(±0) = 1 for any x, even a NaN
536-
("powf32" | "powf64", [base, exp]) if exp.is_zero() => {
537-
let rng = ecx.machine.rng.get_mut();
538-
// SNaN bases get special treatment: they might return 1, or a NaN.
539-
let return_nan = base.is_signaling() && ecx.machine.float_nondet && rng.random();
540-
// Handle both the musl and glibc cases non-deterministically.
541-
if return_nan { ecx.generate_nan(args) } else { one }
542-
}
543-
544-
// There are a lot of cases for fixed outputs according to the C Standard, but these are
545-
// mainly INF or zero which are not affected by the applied error.
546-
_ => return None,
547-
})
548-
}
549-
550-
/// Returns `Some(output)` if `powi` (called `pown` in C) results in a fixed value specified in the
551-
/// C standard (specifically, C23 annex F.10.4.6) when doing `base^exp`. Otherwise, returns `None`.
552-
fn fixed_powi_float_value<S: Semantics>(
553-
ecx: &mut MiriInterpCx<'_>,
554-
base: IeeeFloat<S>,
555-
exp: i32,
556-
) -> Option<IeeeFloat<S>> {
557-
Some(match exp {
558-
0 => {
559-
let one = IeeeFloat::<S>::one();
560-
let rng = ecx.machine.rng.get_mut();
561-
let return_nan = ecx.machine.float_nondet && rng.random() && base.is_signaling();
562-
// For SNaN treatment, we are consistent with `powf`above.
563-
// (We wouldn't have two, unlike powf all implementations seem to agree for powi,
564-
// but for now we are maximally conservative.)
565-
if return_nan { ecx.generate_nan(&[base]) } else { one }
566-
}
567-
568-
_ => return None,
569-
})
570-
}
571-
572-
/// Given an floating-point operation and a floating-point value, clamps the result to the output
573-
/// range of the given operation.
574-
fn clamp_float_value<S: Semantics>(intrinsic_name: &str, val: IeeeFloat<S>) -> IeeeFloat<S> {
575-
match intrinsic_name {
576-
// sin and cos: [-1, 1]
577-
"sinf32" | "cosf32" | "sinf64" | "cosf64" =>
578-
val.clamp(IeeeFloat::<S>::one().neg(), IeeeFloat::<S>::one()),
579-
// exp: [0, +INF]
580-
"expf32" | "exp2f32" | "expf64" | "exp2f64" =>
581-
IeeeFloat::<S>::maximum(val, IeeeFloat::<S>::ZERO),
582-
_ => val,
583-
}
584-
}

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