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//! Running the front end over one file, from the bytes on disk to the typed tree.
//!
//! Design: `spec/04-driver-and-cli.md` section 4.3, and the `M2` exit criterion in
//! `spec/17-milestones.md` that says `--emit=tast` works.
//!
//! [`preprocess`](mod@crate::preprocess) stops after phase 4 because `-E` stops there. This
//! carries on: phase 7, the parse, and the checking. It is one function rather than four composed
//! ones because of what the four share. The tokens hold interned symbols, the untyped tree holds
//! tokens, the typed tree holds the untyped tree's spans, and none of them owns the table it is
//! reading, so one [`Session`] has to outlive all of them and there has to be one place that
//! holds it.
use std::path::Path;
use rucc_base::Interner;
use rucc_codegen::coverage::Fired;
use rucc_codegen::elsewhere::Elsewhere;
use rucc_codegen::lowering::Lowerings;
use rucc_codegen::pipeline::{self, Machine, Recording};
use rucc_codegen::pressure::Pressure;
use rucc_cost::Goal;
use rucc_diag::{Diagnostic, Severity, Span};
use rucc_ir::{FpContract, Pic as IrPic, Visibility as IrVisibility};
use rucc_lex::{Convert, Keywords, PpToken, convert};
use rucc_lower::Protector as LowerProtector;
use rucc_sema::{Checker, Context as CheckContext};
use rucc_session::{
Contract, EmitKind, FileSystem, Options, Padding, Pic, Protector, Session, Visibility,
};
use rucc_target::TargetInfo;
use rucc_tuple::{Arch, ObjectFormat};
use crate::preprocess::render;
/// What a compilation produced, which is text for most of the kinds and bytes for one of them.
///
/// Two variants rather than a string, because an object file is not text and a `Vec<u8>` holding
/// UTF-8 for six kinds and a file format for the seventh would leave every reader guessing which
/// it had. [`Artifact::Nothing`] is what a compilation that stopped early gives back, and it is
/// not the same as an empty file: nothing is written for it at all.
#[derive(Debug, Clone, PartialEq, Eq, Default)]
pub enum Artifact {
/// The compilation stopped before it produced anything, or the kind asked for produces
/// nothing yet.
#[default]
Nothing,
/// Text, which is every kind up to and including assembly.
Text(String),
/// An object file, which is `-c`, and the names a linker can find in it.
///
/// The names travel with the bytes rather than beside them because what wants them is the
/// archive step, and an index entry that does not match the member is worse than no archive:
/// the linker searches the index, pulls the member out, and still reports the name undefined.
/// One value holding both is one value the two cannot disagree in.
Object {
/// The file.
bytes: Vec<u8>,
/// Every name another object can reach, as the object writer wrote them. Empty is a real
/// answer: a translation unit of nothing but `static` functions is a member an archive
/// carries and nothing ever pulls out.
defines: Vec<String>,
},
}
impl Artifact {
/// The bytes to write, which is nothing at all for [`Artifact::Nothing`].
#[must_use]
pub fn bytes(&self) -> &[u8] {
match self {
Artifact::Nothing => &[],
Artifact::Text(text) => text.as_bytes(),
Artifact::Object { bytes, .. } => bytes,
}
}
}
/// What compiling one file produced.
#[derive(Debug, Clone, PartialEq, Eq)]
pub struct Compiled {
/// What to write, which is nothing when the compilation failed or produced nothing.
pub artifact: Artifact,
/// The diagnostics, already rendered, one per element, in the order they were reported.
pub messages: Vec<String>,
/// How many of them were errors.
pub errors: u32,
/// Which lowering rules this file fired, for `-Zrule-coverage`.
///
/// Empty for a compilation that stopped before the back end, which every kind up to and
/// including `--emit=ir` does. That is not the same as a rule set nothing reaches and the
/// caller unions these rather than reading one, so a file that fired nothing adds nothing.
pub fired: Fired,
/// What the register allocator had to put on the stack, for `-Zregister-pressure`.
///
/// Empty for the same compilations `fired` is empty for and for the same reason, since both
/// are written by the back end and neither is a fact a file that stopped before it has.
pub pressure: Pressure,
/// What the pre-selection lowering group did, for `-Zlowering`.
///
/// Empty for the same compilations `fired` is empty for and for the same reason, since the
/// group runs in the back end and a file that stopped before it lowered nothing.
pub lowerings: Lowerings,
/// What `-fdump-ir=` asked to see, in the order the passes ran.
///
/// The optimizer does not write files, because nothing below the driver in
/// `spec/18-package-layout.md` knows what a file is, so the text comes back here and the
/// caller decides where it goes.
pub dumps: Vec<rucc_opt::Dump>,
/// What `-fopt-info` asked to hear, already rendered, one remark per line.
///
/// Empty when the flag was not given, and also empty when it was given and no pass had
/// anything of the kinds asked for to say. Those two are the same text and different facts,
/// which is why a misspelled keyword is an error rather than a quiet nothing.
pub remarks: String,
/// Every file an `#include` found, for the `-M` family.
///
/// The same list `Preprocessed` carries and for the same reason. A `-MD` writes it beside
/// the object, so the compiling path needs it as much as the preprocessing one does.
pub deps: Vec<rucc_pp::Dependency>,
/// What `-save-temps` asked to be kept, which is nothing at all unless it was given.
///
/// It comes back from here rather than being produced by a second run of the compiler under
/// different flags, because a second run is a second answer: the file a person reads has to
/// be the file that was compiled, and two runs of anything with a `__TIME__` in it are not
/// the same text.
pub temps: Temps,
}
/// The intermediate text a compilation went through, kept when `-save-temps` asked for it.
///
/// Both are `None` on a compilation that was not asked to keep anything, and the assembly is
/// `None` on one that stopped before there was any. Holding the text rather than writing it is
/// what keeps this function free of the file system, which is what lets it be tested against a
/// map from path to bytes.
#[derive(Debug, Clone, PartialEq, Eq, Default)]
pub struct Temps {
/// Phase 4's output, the same text `-E` would have printed.
pub preprocessed: Option<String>,
/// The assembly the back end produced on the way to the object file.
pub assembly: Option<String>,
}
impl Compiled {
/// Whether anything went wrong badly enough that the output should not be used.
#[must_use]
pub fn failed(&self) -> bool {
self.errors > 0
}
/// The text that was produced, and the empty string for anything that is not text.
///
/// A caller that asked for one of the text kinds knows which it asked for, so this saves it
/// matching on a variant it has already ruled out.
#[must_use]
pub fn text(&self) -> &str {
match &self.artifact {
Artifact::Text(text) => text,
_ => "",
}
}
}
/// Compiles one file as far as `opts.emit` asks for and renders the result.
///
/// `name` is the path as the user wrote it, which is the name every diagnostic about the file
/// uses. Every kind but the executable produces something today, and that one runs the same front
/// end and gives back nothing, so that a file with a mistake in it is reported the same way
/// whichever kind was asked for, rather than compiling silently until the part that is written
/// notices.
///
/// The checking is skipped when the parse reported an error. The two poisoning rules mean a
/// diagnosed expression produces no further complaints, but a declaration the parser had to skip
/// past leaves no declaration behind at all, and every later use of that name would be reported
/// as undeclared. One mistake is worth one message.
#[must_use]
pub fn compile(opts: &Options, name: &str, fs: &dyn FileSystem) -> Compiled {
let mut sess = Session::new(opts.clone());
// Before anything else interns a name. The keyword symbols have to be one unbroken run for
// a lookup to be a subtraction, and the preprocessor interns every identifier it reads, so
// building this after the expansion would mean building it after `char` had been seen.
let keywords = Keywords::new(&mut sess.interner, opts.std, opts.gnu_extensions);
let mut diagnostics: Vec<Diagnostic> = Vec::new();
// Filled in by the back end when there is one, and empty for every kind that stops before it.
let mut fired = Fired::new();
// The same, and the other thing the back end is asked to record about itself.
let mut pressure = Pressure::new();
let mut lowerings = Lowerings::asked(opts.lowering_dump.is_some());
// Filled in by the optimizer, and only when `-fdump-ir=` asked for something.
let mut dumps = Vec::new();
let mut remarks = String::new();
// Filled in as the compilation goes past each of them, and only under `-save-temps`.
let mut temps = Temps::default();
let bytes = match fs.read(Path::new(name)) {
Ok(bytes) => bytes,
Err(e) => return failure(format!("{name}: {e}")),
};
let Ok(file) = sess.sources.add_shared(name, bytes, None) else {
return failure(format!("{name}: the source map has no room left for this file"));
};
// Phases 1 to 4. The expanded stream is turned into pp-tokens straight away, because the
// include context borrows the source map that rendering a diagnostic reads and the borrow
// has to end before anything is rendered.
let mut pp = rucc_pp::Preprocessor::with_prefix_map(opts.prefix_map.macros.clone());
let predef = rucc_pp::Predef::for_options(opts);
let expanded: Vec<PpToken> = {
let mut tokens = Vec::new();
// The inner block is the borrow. The printer under `-save-temps` reads the source map
// that the include context is holding, so the context has to be gone before it runs, and
// nothing happens in between, which is what makes the text it prints the text that is
// compiled below rather than a second answer to the same question.
{
let mut cx =
rucc_pp::Context::new(&mut sess.interner, &mut sess.sources, fs, &opts.search);
cx.lex = rucc_lex::Options::for_dialect(opts.std, opts.gnu_extensions);
cx.pedantic = opts.pedantic;
if pp.predefine(&sess.target, &predef, &mut cx).is_err() {
return failure(format!(
"{name}: the source map has no room for the built in macros"
));
}
if pp.preinclude(&opts.preincludes, &mut tokens, &mut cx).is_err() {
return failure(format!("{name}: the source map has no room for the command line"));
}
tokens.append(&mut pp.run(file, &mut cx));
}
if opts.save_temps.wanted() {
temps.preprocessed = Some(rucc_pp::print(
file,
&tokens,
pp.line_directives(),
&sess.sources,
&sess.interner,
rucc_pp::PrintOptions { line_markers: opts.line_markers },
));
}
tokens.iter().map(|token| token.to_pp()).collect()
};
diagnostics.extend(pp.take_diagnostics());
// Taken here rather than at the end, because the preprocessor is done with and everything
// after this is about the tree it produced.
let deps = pp.dependencies().to_vec();
// Phase 7, which is where a spelling becomes a keyword and a preprocessing number becomes
// a constant of a type.
let cx = Convert {
keywords: &keywords,
interner: &sess.interner,
target: &sess.target,
std: opts.std,
gnu: opts.gnu_extensions,
pedantic: opts.pedantic,
};
let (tokens, complaints) = convert(&expanded, &cx);
diagnostics.extend(complaints);
let parsed = rucc_parse::parse(
&tokens,
rucc_parse::Context {
interner: &sess.interner,
std: opts.std,
gnu: opts.gnu_extensions,
pedantic: opts.pedantic,
error_limit: opts.error_limit as usize,
},
);
let parse_failed = parsed.diagnostics.iter().any(|d| d.severity.is_fatal());
diagnostics.extend(parsed.diagnostics);
let mut artifact = Artifact::Nothing;
// Zero when nothing instruments, which is the truthful summary of a file built without
// `-fsafety`: no checks went in, so none is standing, and every call it makes is unmodelled.
let mut instrumented = Instrumented::default();
if !parse_failed {
let mut checker = Checker::new(
&parsed.ast,
CheckContext {
names: &sess.interner,
target: &sess.target,
std: opts.std,
gnu: opts.gnu_extensions,
pedantic: opts.pedantic,
permissive: opts.permissive,
gnu89_inline: opts.gnu89_inline,
error_limit: opts.error_limit as usize,
// A freestanding program has no C library, so a name that is the library's
// everywhere else is the program's own here and means whatever it defined.
builtins: opts.builtins && opts.hosted,
no_builtin: &opts.no_builtin,
short_enums: opts.short_enums,
ms_extensions: sess.ms_extensions(),
trapping_math: opts.trapping_math,
},
);
checker.check_unit();
let checked = checker.finish();
if !checked.failed() {
match opts.emit {
EmitKind::Tast => {
artifact = Artifact::Text(rucc_sema::print(
&checked.tast,
&checked.types,
&sess.interner,
));
}
// Nothing past the checker, because a granule is a fact about a layout and a
// layout is settled the moment the closing brace is seen. Lowering the
// function bodies would take minutes on an amalgamation and answer nothing.
EmitKind::TypeGranules => {
artifact = Artifact::Text(rucc_types::granule_report(
&checked.types,
&sess.interner,
&sess.target,
));
}
EmitKind::Ir
| EmitKind::MirFinal
| EmitKind::Asm
| EmitKind::Object
| EmitKind::Archive
| EmitKind::Executable
| EmitKind::SafetySummary => {
// What a `.incbin` in an `asm` at file scope names is read through the same
// file system the sources came through, and from where the compiler was run
// rather than from beside the source, because that is where an assembler
// looks for it.
let mut read = |named: &str| {
fs.read(Path::new(named))
.map(|bytes| bytes.as_slice().to_vec())
.map_err(|why| why.to_string())
};
let mut lowered = rucc_lower::lower(
name,
rucc_lower::Context {
tast: &checked.tast,
types: &checked.types,
target: &sess.target,
names: &mut sess.interner,
visibility: match opts.visibility {
Visibility::Default => IrVisibility::Default,
Visibility::Hidden => IrVisibility::Hidden,
Visibility::Protected => IrVisibility::Protected,
},
protector: match opts.protector {
Protector::None => LowerProtector::None,
Protector::Buffers => LowerProtector::Buffers,
Protector::Strong => LowerProtector::Strong,
Protector::All => LowerProtector::All,
},
wrapping: rucc_lower::Wrapping {
signed: opts.wrapping.signed,
pointer: opts.wrapping.pointer,
trap: opts.wrapping.trap,
},
aliasing: opts.strict_aliasing,
padding: opts.padding == Padding::Ignored,
contract: match opts.fp_contract {
Contract::Off => FpContract::Off,
Contract::On => FpContract::On,
Contract::Fast => FpContract::Fast,
},
read: &mut read,
},
);
// The walk reports what it cannot build, and what it did build is printed
// anyway: a file with one construct missing from it is more use to read
// than nothing at all, and the errors are what stop it being compiled.
let failed = lowered.diagnostics.iter().any(|d| d.severity.is_fatal());
if !failed {
// The verifier runs on everything the walk builds, always. It is the
// one check that a bug in the walk cannot talk its way past, and a
// wrong instruction found here costs a message rather than an hour
// in front of a debugger over the assembly it turned into.
if let Err(errors) = rucc_ir::verify(&lowered.module, &sess.interner) {
for error in errors {
diagnostics.push(internal(&format!("invalid IR, {error}")));
}
} else if let Err(complaints) =
instrument(&mut lowered.module, &mut sess.interner, opts)
.map(|done| instrumented = done)
{
diagnostics.extend(complaints);
} else if let Err(complaints) = optimize(
&mut lowered.module,
&sess.interner,
&sess.target,
opts,
name,
&mut dumps,
&mut remarks,
) {
diagnostics.extend(complaints);
} else if opts.emit == EmitKind::SafetySummary {
// After the optimizer, because the number that matters is how many
// checks are still standing and there is no way to know that before it
// has run. Before the back end, because the back end turns a check into
// a call and a summary of calls is not a summary of checks.
artifact = Artifact::Text(
rucc_safety::summarize(
&lowered.module,
&sess.interner,
name,
opts.safety.as_str(),
instrumented.checks,
instrumented.interposed,
instrumented.crossings,
)
.render(),
);
} else if opts.emit == EmitKind::Ir {
// After the optimizer rather than before it, so that `--emit=ir -O2`
// is the IR the back end will be given rather than the IR it would
// have been given at `-O0`. There is no other way to see what a pass
// did without reading the assembly it turned into.
artifact =
Artifact::Text(rucc_ir::print(&lowered.module, &sess.interner));
} else {
// The back end, which is every pass after the IR and which is
// where a construct nothing has a rule for is finally noticed.
match generate(
&mut lowered.module,
&mut sess.interner,
&sess.target,
opts,
&mut Recording {
fired: &mut fired,
pressure: &mut pressure,
lowerings: &mut lowerings,
},
&mut temps.assembly,
) {
Ok(made) => artifact = made,
Err(complaints) => diagnostics.extend(complaints),
}
}
}
diagnostics.extend(lowered.diagnostics);
}
_ => {}
}
}
diagnostics.extend(checked.diagnostics);
}
let mut messages = Vec::with_capacity(diagnostics.len());
let mut errors = 0;
for diag in &diagnostics {
// `-w` drops the warning here rather than at the several hundred places one is raised,
// and it drops it before the count, so `-w -Werror` compiles. A warning that was never
// raised is not a warning there is anything to promote.
if !opts.warnings && diag.severity == Severity::Warning {
continue;
}
if diag.severity.is_fatal()
|| (diag.severity == Severity::Warning && opts.warnings_are_errors)
{
errors += 1;
}
messages.push(render(diag, &sess.sources, opts.warnings_are_errors));
}
if errors > 0 {
// A tree built from a file that did not compile is not a tree anything should read.
artifact = Artifact::Nothing;
}
// Kept even when the compilation failed, because a rule that fired did fire and a report about
// which rules a corpus reaches should not lose the ones a file with a mistake in it reached.
Compiled { artifact, messages, errors, fired, pressure, lowerings, dumps, remarks, deps, temps }
}
/// Reads one file of IR, checks it, and prints it back.
///
/// This is the compiler's own textual IR arriving as an input rather than leaving as an output,
/// which is what makes the round trip in the M2 exit criterion something to run rather than
/// something to believe: what the printer wrote is read back, verified, and written again, and
/// the two files are either the same bytes or they are not.
///
/// The verifier runs here for the reason it runs after the walk. A module that was printed by
/// this compiler has been through it once already, and one that a person edited has not.
#[must_use]
pub fn compile_ir(opts: &Options, name: &str, fs: &dyn FileSystem) -> Compiled {
let mut sess = Session::new(opts.clone());
if opts.emit != EmitKind::Ir {
return failure(format!(
"{name}: an input of IR can only be emitted as IR, and `--emit={}` asks for what \
the C in front of it became",
opts.emit.as_str()
));
}
let bytes = match fs.read(Path::new(name)) {
Ok(bytes) => bytes,
Err(e) => return failure(format!("{name}: {e}")),
};
let Ok(text) = std::str::from_utf8(bytes.as_slice()) else {
return failure(format!("{name}: this is not text, so it is not IR"));
};
let module = match rucc_ir::parse(text, &mut sess.interner) {
Ok(module) => module,
Err(error) => {
return failure(format!("{name}:{}: {}", error.line, error.message));
}
};
let mut diagnostics: Vec<Diagnostic> = Vec::new();
if let Err(errors) = rucc_ir::verify(&module, &sess.interner) {
for error in errors {
diagnostics.push(invalid(&format!("invalid IR, {error}")));
}
}
let mut messages = Vec::with_capacity(diagnostics.len());
for diag in &diagnostics {
messages.push(render(diag, &sess.sources, opts.warnings_are_errors));
}
let errors = u32::try_from(messages.len()).unwrap_or(u32::MAX);
let artifact = if errors > 0 {
Artifact::Nothing
} else {
Artifact::Text(rucc_ir::print(&module, &sess.interner))
};
// Nothing here reaches the back end, so no rule fired and there is nothing to record.
Compiled {
artifact,
messages,
errors,
fired: Fired::new(),
pressure: Pressure::new(),
lowerings: Lowerings::new(),
dumps: Vec::new(),
remarks: String::new(),
deps: Vec::new(),
temps: Temps::default(),
}
}
/// Puts the memory safety checks in and redirects the calls that cross the boundary, when
/// `-fsafety=` asked for them.
///
/// Between the walk and the optimizer, which is where section 15.3 of
/// `spec/safe-memory/15-integration.md` puts it and which is the whole design in one line: the
/// checks go in while the addresses the program computes still exist, and the optimizer then
/// discharges the ones it can prove. Every sanitizer that came before instruments after the
/// optimizer so that its checks cannot be deleted, and pays for all of them forever.
///
/// The calls to the C library are redirected here too, and in the same window and for a related
/// reason. `spec/safe-memory/10-boundaries.md` section 10.3 wants a `memcpy` modelled by a wrapper
/// that performs the judgements, and `rucc_safety::wrap` is why that has to happen before the
/// optimizer sees the call rather than after.
///
/// The verifier runs again afterwards, for the reason it runs after the walk. This pass rewrites
/// every function in the module, and a pass that produced IR nothing else accepts should say so
/// here rather than in the assembly it turned into.
///
/// # Errors
///
/// When the inserted checks left the module in a state the verifier refuses, which is a bug in
/// this compiler and not in the program being compiled.
fn instrument(
module: &mut rucc_ir::Module,
names: &mut Interner,
opts: &Options,
) -> Result<Instrumented, Vec<Diagnostic>> {
if !opts.safety.instruments() {
return Ok(Instrumented::default());
}
let mut checks = rucc_safety::run(module, opts.subobject, opts.promise, opts.races);
// The one check that is about a call rather than about an access, so it is a walk of its own
// and it is here rather than in the walk above. `rucc_safety::ending` is why, and the short
// version is that deciding it means resolving a name, which takes the interner.
//
// Before the redirection for the same reason the redirection is before the optimizer: what this
// reads is the name the program wrote, and a pass that had already pointed the call somewhere
// else would leave it with a name this one has no row for.
checks.freed = rucc_safety::ending::checks(module, names);
// Before the optimizer rather than beside the check lowering, which is what
// `rucc_safety::wrap` argues out: `memcpy` is a name an optimizer knows things about, and a
// pass that turns a short copy into a pair of loads and stores would leave behind accesses the
// check insertion has already finished walking past.
let interposed = rucc_safety::redirect(module, names);
// After the redirection, so that a call this build models with a wrapper is not also counted
// as a crossing it did not model.
let crossings = rucc_safety::witness(module, names);
match rucc_ir::verify(module, names) {
Ok(()) => Ok(Instrumented { checks, interposed, crossings }),
Err(errors) => Err(errors
.iter()
.map(|e| internal(&format!("invalid IR after check insertion, {e}")))
.collect()),
}
}
/// What the instrumentation did, which nothing but the summary reads.
///
/// Carried out of [`instrument`] rather than recovered from the module afterwards because neither
/// number survives the optimizer: a check that was discharged leaves nothing behind saying it was
/// ever there, and a call that was pointed at a wrapper looks like a call that always named one.
#[derive(Clone, Copy, Debug, Default)]
struct Instrumented {
/// How many checks of each class went in.
checks: rucc_safety::Counts,
/// How many calls were pointed at an interposition wrapper.
interposed: usize,
/// How many places a pointer crosses to or from code this build did not instrument.
crossings: rucc_safety::Sites,
}
/// Runs the optimizer over the module, and collects whatever the dumps asked for.
///
/// The level chooses a pipeline, the `-f` flags edit it, and at `-O0` there is nothing in it, so
/// this is a walk over an empty list rather than a branch on the level. See section 9.1 of
/// `spec/09-optimizer.md` for why the pipelines are written out rather than assembled.
///
/// # Errors
///
/// When a pass left the module in a state the verifier refuses, which is a bug in the pass and
/// not in the program being compiled, so it is reported as an internal error the way a bad
/// lowering is.
fn optimize(
module: &mut rucc_ir::Module,
names: &Interner,
target: &TargetInfo,
opts: &Options,
file: &str,
dumps: &mut Vec<rucc_opt::Dump>,
remarks: &mut String,
) -> Result<(), Vec<Diagnostic>> {
let mut settings = rucc_opt::Options::for_level(opts.opt_level);
// What the analyses that read a body may believe about it. The same question the back end asks
// about addresses, with one thing on top: `-fno-semantic-interposition` is the build promising
// that a name it exports is the one that will run, which is what every distribution builds a
// library with. It says nothing about how an address is reached, and gcc does not change that
// under the flag either, so the back end is not given this value.
settings.interposition = match opts.interposition {
true => replaceable(target, opts),
false => IrPic::Executable,
};
settings.toggles.clone_from(&opts.passes);
settings.fuel = opts.pass_fuel.iter().cloned().collect();
settings.global_fuel = opts.pass_fuel_global;
settings.verify |= opts.verify_each;
for (on, spec) in &opts.pass_gates {
// Same argument as the dumps below: every spelling in here was checked while the
// arguments were parsed, so a rejection now is this compiler disagreeing with itself.
if let Err(why) = settings.gates.add(*on, spec) {
return Err(vec![internal(&why)]);
}
}
for spec in &opts.dump_ir {
// Every spelling in here was checked while the arguments were parsed, so a rejection
// now is this compiler disagreeing with itself rather than the command line being wrong.
if let Err(why) = settings.dumps.add(spec) {
return Err(vec![internal(&why)]);
}
}
let mut wants = rucc_opt::Wants::none();
for spec in &opts.opt_info {
// Same argument as the dumps above: every spelling was checked while the arguments were
// parsed, so a rejection now is the compiler disagreeing with itself.
if let Err(why) = wants.add(spec) {
return Err(vec![internal(&why)]);
}
}
let report = rucc_opt::run(module, names, &settings);
remarks.push_str(&rucc_opt::optinfo::render(file, &report, names, wants));
dumps.extend(report.dumps);
match report.broke.is_empty() {
true => Ok(()),
false => Err(report.broke.iter().map(|why| internal(why)).collect()),
}
}
/// Runs the back end over every function in `module` and writes what came out.
///
/// One machine function per definition in the module, in the order the module holds them, every
/// register physical and every frame offset a constant. A declaration has no body and is skipped,
/// because there is nothing in it to compile.
///
/// What the last step is, is the only thing `--emit=mir-final`, `-S` and `-c` disagree about. The
/// three read the same functions and differ in whether they are printed as machine IR, printed as
/// assembly, or encoded and put in a file, which is the point of section 11.1 of
/// `spec/11-asm-objects-debug.md`: a listing that disagrees with the object file beside it is
/// worse than no listing, and the way to make that impossible is to have one description of an
/// instruction and two ways of writing it down.
///
/// # Errors
///
/// One diagnostic per function the back end could not compile, or one about the target when no
/// back end covers it at all. Every function is attempted rather than stopping at the first, so a
/// file with three constructs missing from the rule set reports three rather than one at a time.
///
/// `assembly` is where `-save-temps` gets its listing from on the path that does not print one,
/// which is the same functions written the other way rather than a second compilation of the same
/// file. A listing that disagrees with the object beside it would be worse than none.
/// Whether a name this file exports is one another object may define or replace.
///
/// The link that reads the object decides half of what is in it, and the command line is where that
/// is said, which is why the flag reaches this far down. See #756.
///
/// ELF only, because it is a question about a format rather than about a machine and the other two
/// answer it differently. Mach-O has a two level namespace, so a name a library defines is bound to
/// that library and is not replaced by a definition loaded earlier, and it has no copy relocations,
/// so a variable defined elsewhere needs the table whichever link is coming. COFF decides what
/// leaves a DLL by an export table the linker is handed. Neither has an object writer here yet, so
/// what this does is decline to say the ELF answer about them.
fn replaceable(target: &TargetInfo, opts: &Options) -> IrPic {
match (target.tuple.os().object_format(), opts.pic) {
(Some(ObjectFormat::Elf), Pic::Library) => IrPic::Library,
_ => IrPic::Executable,
}
}
fn generate(
module: &mut rucc_ir::Module,
names: &mut Interner,
target: &TargetInfo,
opts: &Options,
recording: &mut Recording<'_>,
assembly: &mut Option<String>,
) -> Result<Artifact, Vec<Diagnostic>> {
let Some(machine) = Machine::for_target(target) else {
return Err(vec![unsupported(&format!(
"there is no back end for {} in this compiler yet, so there is nothing to generate",
target.tuple
))]);
};
// Refused rather than dropped. A command line that asks for a stack protector on a target
// that has nowhere to keep the word one is compared against would otherwise get code with no
// protection in it and no indication that the flag did nothing, which is the one outcome worse
// than the error. Windows is the case: it has a protector and it is a different mechanism.
if opts.protector != Protector::None && machine.conv.guard.is_none() {
return Err(vec![unsupported(&format!(
"{} is not supported for {} yet, because the stack protector on that target is not \
the one this compiler writes",
opts.protector, target.tuple
))]);
}
// The same answer for the same reason. What says a file was built to have its control flow
// checked is a note, the note is an ELF one, and a target whose objects are not ELF has nowhere
// to put it: the landing pads would go in and nothing would ever turn the check on. Windows has
// the same hardware and asks for it a different way, which is a bit in the image the linker is
// told to set rather than anything a compiler writes into an object.
if opts.control.any() && target.tuple.os().object_format() != Some(ObjectFormat::Elf) {
return Err(vec![unsupported(&format!(
"-fcf-protection={} is not supported for {} yet, because what says a file was built \
for it there is not the note this compiler writes",
opts.control, target.tuple
))]);
}
// And once more. A profiled build is one whose functions call a routine the runtime provides,
// and a target whose runtime provides no such routine would get a call to a name nothing
// defines, which is a link error a long way from the flag that caused it. Windows profiles a
// build by calling something else, asked for a different way and taking its argument in a
// register, so it is not this hook spelled differently.
let profile = match machine.conv.trace {
Some(trace) => opts.profile.then(|| opts.hook.early(trace.fentry)),
None if opts.profile => {
return Err(vec![unsupported(&format!(
"-pg is not supported for {} yet, because the profiler's hook on that target is \
not the one this compiler calls",
target.tuple
))]);
}
None => None,
};
// And once more. The room a patcher was promised is only half the feature: the other half is a
// section listing where every function's room is, and both the section's shape and the way it
// points at the text it belongs to are ELF's. A format that has no such section would take the
// nops and quietly lose the list, which is a build that looks patchable and is not.
if opts.patchable.any() && target.tuple.os().object_format() != Some(ObjectFormat::Elf) {
return Err(vec![unsupported(&format!(
"-fpatchable-function-entry= is not supported for {} yet, because what records where \
the room is there is not the section this compiler writes",
target.tuple
))]);
}
let flags = pipeline::Flags {
frame_pointer: opts.frame_pointer,
red_zone: opts.red_zone,
stack_clash: opts.stack_clash,
landing: opts.control.branch(),
profile: match profile {
None => pipeline::Profile::No,
Some(true) => pipeline::Profile::Early,
Some(false) => pipeline::Profile::Late,
},
patch: pipeline::Room { after: opts.patchable.after(), before: opts.patchable.before },
// On at every level above `-O0`, which is where gcc turns `-freorder-blocks` on
// (`gcc/opts.cc:604`) and what `spec/optimizer/38-scheduling-and-layout.md` section 38.3
// reads off that: it is one of the earliest optimizations there is, it is nearly free,
// and it helps every target. `-O0` keeps the order the shape of the graph gives, so that
// the blocks come out in the order they were written and a person stepping through the
// code walks down the screen.
reorder: opts.reorder_blocks.unwrap_or_else(|| opts.opt_level.runs_optimizer()),
// On at every level above `-O0`, for the reason the line above is off at it. Sharing one
// run of bytes between two locals is a smaller frame and a worse debugger: a variable that
// is out of scope reads as whatever took its place, which is what `-O0` exists not to do.
// Above it the frame is the win, and `-fstack-reuse=` says either answer at any level.
reuse: opts.stack_reuse.unwrap_or_else(|| opts.opt_level.runs_optimizer()),
// On from `-O2`, which is where gcc turns `-fschedule-insns2` on and what
// `spec/optimizer/38-scheduling-and-layout.md` section 38.6 asks for. Not at `-O1`,
// because a schedule is a whole dependence graph per block and `-O1` is the level whose
// budget is roughly `-O0`'s. Not at `-O0` for the reason nothing else is.
schedule: opts.schedule_insns.unwrap_or_else(|| opts.opt_level.schedules()),
// Whatever the command line said, and the model's own answer when it said nothing.
accurate: opts.cycle_accurate_model,
// The same flag that turns the IR verifier on in a release build, since what it says is
// that this run should check itself and the back end has checks of its own.
verify: opts.verify_each,
// What the level asked for. The back end had no way to know until now, which is
// tamnd/rucc#741: `-Os` picked a shorter list of middle end passes and then compiled the
// result exactly as `-O2` would have. The level is asked whether it optimizes for size
// rather than matched against, so a level added later answers this without editing it.
goal: Goal::for_size(opts.opt_level.is_size()),
};
// The checks become calls here rather than beside the insertion, because the id each one
// carries is an index into a table and a row for a check the optimizer deleted is a row nothing
// will ever name. Section 6.3.1 of `spec/safe-memory/06-instrumentation.md` is what this
// eventually becomes and `rucc_safety::lower` says why it is not that yet.
//
// It is inside the back end rather than beside the optimizer so that `--emit=ir` still shows
// the checks. The IR a person reads should say what the compiler decided, not how it spelled it
// for the machine.
if opts.safety.instruments() {
// Which calls hand back storage, which the lowering needs and `-O0` has not worked out.
// `rucc_opt::pipeline` runs this only when some pass in the run reads the summaries, since a
// flag nothing reads is noise in a dump, and at `-O0` nothing did. Something does now: the
// capability for a pointer an allocator just returned is the one capability that is exact
// and costs a load, and `rucc_safety::slot` finds those sites by the flag. The safety suite
// runs at `-O0`, so without this the cheap case would be the one case that never happens.
//
// Safe to run twice and safe to run late, because it only ever sets the flag and never
// clears one, so a build that had it already gets the same module back.
rucc_opt::heap::annotate(module, names);
// Which calls hand their capabilities to the callee and which say there are none. Here and
// not beside the insertion, because the rule is what each function still has left to check
// and the optimizer is what makes that small: running before it would give every callee a
// frame for checks that are about to be discharged. `rucc_safety::handover` is the rule and
// the pass both, and the census in `--emit=safety-summary` reads the same rule, so the
// buckets it prints describe the code that was actually built.
rucc_safety::handover::arrange(module);
rucc_safety::lower(module, names);
if let Err(errors) = rucc_ir::verify(module, names) {
return Err(errors
.iter()
.map(|e| internal(&format!("invalid IR after check lowering, {e}")))
.collect());
}
}
// Worked out before the loop and not inside it, because it reads the whole module and the loop
// is holding one function of it. It has to be after the check lowering above, since that adds
// calls to the runtime and so can add a name this file does not define.
//
// The link that reads the object decides half of what is in it, and the command line is where
// that is said, which is why the flag reaches this far down. See #756. The format decides the
// other half, since a table only exists on a format that has one to reach through.
//
let elsewhere = Elsewhere::of(module, replaceable(target, opts), target.object_format);
let mut funcs = Vec::new();
let mut complaints = Vec::new();
for id in module.funcs() {
if module[id].is_declaration() {
continue;
}
match pipeline::compile_recording(
&mut module[id],
names,
&machine,
&elsewhere,
flags,
recording,
) {
Ok(func) => funcs.push(func),
Err(why) => {
let name = names.resolve(module[id].name).to_owned();
// The function knows where the instruction came from, so the message lands on
// the line somebody wrote rather than on the file as a whole.
let span = why.inst().map_or(Span::DUMMY, |inst| module[id].span(inst));
let said = format!("cannot generate code for '{name}': {why}");
complaints.push(unsupported_at(&said, span));
}
}
}
if !complaints.is_empty() {
return Err(complaints);
}
// The variables the file defines, which go through the back end the way the functions did not:
// there is nothing in a variable to select instructions for, so the module is what says what
// one is right up to the point where it is written down.
// The second names go the same way and for the same reason, and they are neither a function
// nor a variable: an alias is an entry in the symbol table and no bytes of anything.
let (globals, aliases) = match opts.emit {
EmitKind::Asm | EmitKind::Object | EmitKind::Archive | EmitKind::Executable => (
rucc_asm::globals(module, names, target.object_format).map_err(refused)?,
rucc_asm::aliases(module, names).map_err(refused)?,
),
_ => (rucc_asm::Globals::default(), Vec::new()),
};
// A failure in either of the last two is a bug here rather than a program this compiler is
// behind on, because every instruction in a function that got this far came out of the same
// description both of them read and every register in it has been allocated.
let unwind = opts.unwinds();
match opts.emit {
EmitKind::Asm => {
rucc_asm::print(&funcs, &globals, &aliases, names, target, unwind, output(opts, target))
.map(Artifact::Text)
.map_err(refused)
}
// An executable is an object as far as this gets: one is what each file of a link
// contributes, and the linker is what turns them into the other. An archive is the same
// again, with the archive writer in place of the linker.
EmitKind::Object | EmitKind::Archive | EmitKind::Executable => {
if opts.save_temps.wanted() {
let listing = rucc_asm::print(
&funcs,
&globals,
&aliases,
names,
target,
unwind,
output(opts, target),
);
*assembly = Some(listing.map_err(refused)?);
}
let text = rucc_asm::assemble(&funcs, names, target, unwind).map_err(refused)?;
let data = globals.image();
// A format with no writer is a target this compiler is behind on and anything else
// the writer refused is a bug here, and the two are not the same news to get.
let bytes = rucc_object::write(&text, &data, &aliases, target, output(opts, target))
.map_err(wrote)?;
// Asked of the writer rather than worked out from the same three values here, so that
// what the archive's index says and what is in the member cannot come apart. It is
// wanted only by `--emit=archive` and is cheap enough that the other two kinds are not
// worth a second path.
let defines = rucc_object::defines(&text, &data, &aliases, target).map_err(wrote)?;
Ok(Artifact::Object { bytes, defines })
}
_ => Ok(Artifact::Text(rucc_mir::print(&funcs, names, target.regs))),
}
}
/// What the command line decided about the file being written, in the words the assembler and the
/// object writer use.
///
/// Two spellings of the same facts, because the flags are the command line's and the answer the two
/// writers want is the object format's. The conversion is here rather than in either of them so
/// that the two output paths are handed the same thing and cannot come to disagree about what is
/// in a file.
///
/// The feature word is empty on a machine whose bits these are not. It is the x86 one, and a target
/// that wanted its control flow checked would want a property of its own with a key of its own, so
/// writing this one there would be recording something untrue rather than recording nothing.
fn output(opts: &Options, target: &TargetInfo) -> rucc_object::Output {
let mut features = 0;
if target.tuple.arch() == Arch::X86_64 {
if opts.control.branch() {
features |= rucc_object::Property::IBT;
}
if opts.control.ret() {
features |= rucc_object::Property::SHSTK;
}
}
rucc_object::Output {
sections: rucc_object::Sections {
functions: opts.function_sections,
data: opts.data_sections,
},
property: rucc_object::Property { features },
}
}
/// What the object writer said, as the kind of news it is.
///
/// A format with no writer is a target this compiler is behind on, which is a program nobody can
/// compile today and not a mistake in the one being compiled. Anything else it refused is a bug
/// here, because every value it was handed came out of this compiler.
fn wrote(why: rucc_object::Error) -> Vec<Diagnostic> {
match why {
rucc_object::Error::Format { .. } => vec![unsupported(&why.to_string())],
rucc_object::Error::Refused { .. } => vec![internal(&why.to_string())],
}
}
/// What the assembler said, as the kind of news it is.
///
/// Three of these are about a program and the rest are about this compiler. A thread-local
/// variable, an ifunc and a prologue the target's unwind table cannot describe are all valid C that
/// the back end does not build yet, and everything else the assembler refuses is something that
/// should never have reached it.
fn refused(why: rucc_asm::Error) -> Vec<Diagnostic> {
match why {
rucc_asm::Error::Thread { .. }
| rucc_asm::Error::IFunc { .. }
| rucc_asm::Error::Frame { .. } => {
vec![unsupported(&why.to_string())]
}
_ => vec![internal(&why.to_string())],
}
}
/// A diagnostic about a program this compiler is not finished enough to compile.
///
/// Not an internal error, because nothing here is wrong: the program is valid C and the part of
/// the back end that would handle it has not been written. The note says so, so that a report
/// about one of these is filed against the milestone rather than as a miscompilation.
fn unsupported(message: &str) -> Diagnostic {
unsupported_at(message, Span::DUMMY)
}
/// The same, about somewhere in the file rather than about the file.
///
/// The note names the issue tracker rather than `spec/17-milestones.md`, which is a document
/// about the plan: a reader who follows it wants to know whether the construct in front of them
/// is already written down as work, and the milestone list does not answer that.
fn unsupported_at(message: &str, span: Span) -> Diagnostic {
Diagnostic::error(message.to_owned(), span)
.with_code("E0653")
.note("this construct is not lowered yet, see https://github.com/tamnd/rucc/issues", span)
}
/// A diagnostic about IR that was handed to us rather than built by us.
fn invalid(message: &str) -> Diagnostic {
Diagnostic::error(message.to_owned(), Span::DUMMY).with_code("E0661")
}
/// A diagnostic about this compiler rather than about the program it was given.
fn internal(message: &str) -> Diagnostic {
Diagnostic::error(format!("internal error: {message}"), Span::DUMMY)
.with_code("E0652")
.note("this is a bug in rucc rather than in the program, please report it", Span::DUMMY)
}
/// A result that is nothing but one message, for the failures that happen before there is
/// anything to compile.
fn failure(message: String) -> Compiled {
Compiled {
artifact: Artifact::Nothing,
messages: vec![format!("rucc: error: {message}")],
errors: 1,
fired: Fired::new(),
pressure: Pressure::new(),
lowerings: Lowerings::new(),
dumps: Vec::new(),
remarks: String::new(),
deps: Vec::new(),
temps: Temps::default(),
}
}
#[cfg(test)]
mod tests {
use rucc_session::{MemoryFileSystem, Std};
use rucc_target::Triple;
use super::*;
fn options() -> Options {
let mut opts = Options::new("x86_64-unknown-linux-gnu".parse::<Triple>().unwrap());
opts.emit = EmitKind::Tast;
opts
}
fn run(opts: &Options, source: &str) -> Compiled {
let mut fs = MemoryFileSystem::new();
fs.insert("/main.c", source.to_owned().into_bytes());
compile(opts, "/main.c", &fs)
}
/// Options with the compiler's own headers on the search path and nothing else, which is
/// what a freestanding compilation is. There is no file system underneath these tests,
/// so a header that reached for one would fail to resolve and say so.
fn freestanding() -> Options {
let mut opts = options();
opts.hosted = false;
opts.search.push_system(rucc_session::runtime::DIR);
opts
}
/// The typed tree of a freestanding `source`, insisting that it compiled cleanly.
fn shipped(source: &str) -> String {
let result = run(&freestanding(), source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
result.text().to_owned()
}
/// The typed tree of `source`, insisting that it compiled cleanly.
fn tast(source: &str) -> String {
let result = run(&options(), source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
result.text().to_owned()
}
#[test]
fn the_shipped_stdarg_declares_a_list_and_the_four_operators() {
let text = shipped(concat!(
"#include <stdarg.h>\n",
"int sum(int n, ...) {\n",
" va_list ap, copy;\n",
" va_start(ap, n);\n",
" va_copy(copy, ap);\n",
" int total = va_arg(ap, int) + va_arg(copy, int);\n",
" va_end(ap);\n",
" va_end(copy);\n",
" return total;\n",
"}\n",
));
assert!(text.contains("va-start"), "{text}");
assert!(text.contains("va-copy"), "{text}");
assert!(text.contains("va-arg"), "{text}");
assert!(text.contains("va-end"), "{text}");
}
/// glibc includes `<stdarg.h>` this way from every header that declares a `vprintf`, and
/// what it wants is the type without the four macro names. Answering the whole header
/// would put `va_start` in the way of a program that has its own.
#[test]
fn stdarg_hands_out_the_type_alone_when_that_is_all_that_was_asked_for() {
let text = shipped(concat!(
"#define __need___va_list\n",
"#include <stdarg.h>\n",
"int vprint(const char *f, __gnuc_va_list ap);\n",
"#ifdef va_start\n",
"#error va_start should not be defined\n",
"#endif\n",
"#ifdef _VA_LIST_DEFINED\n",
"#error va_list should not have been made\n",
"#endif\n",
));
assert!(text.contains("vprint"), "{text}");
}
/// The same protocol on `<stddef.h>`, which glibc uses far more heavily: `<stdio.h>` asks
/// for `size_t` and `NULL` and would be wrong to receive `offsetof` as well.
#[test]
fn stddef_answers_one_piece_at_a_time_and_the_next_request_still_gets_through() {
let text = shipped(concat!(
"#define __need_size_t\n",
"#include <stddef.h>\n",
"#ifdef offsetof\n",
"#error offsetof should not be defined yet\n",
"#endif\n",
"#define __need_ptrdiff_t\n",
"#include <stddef.h>\n",
"#include <stddef.h>\n",
"size_t a;\n",
"ptrdiff_t b;\n",
"wchar_t c;\n",
"max_align_t d;\n",
"void *e = NULL;\n",
"struct P { int x; long y; };\n",
"size_t f = offsetof(struct P, y);\n",
));
assert!(text.contains("decl #0 a : unsigned long"), "{text}");
assert!(text.contains("decl #1 b : long"), "{text}");
}
#[test]
fn the_shipped_limits_and_float_are_the_targets_own_answers() {
let text = shipped(concat!(
"#include <limits.h>\n",
"#include <float.h>\n",
"int bits = CHAR_BIT;\n",
"long big = LONG_MAX;\n",
"int low = INT_MIN;\n",
"int radix = FLT_RADIX;\n",
"int digits = DBL_MANT_DIG;\n",
));
assert!(text.contains("const 8 : int"), "{text}");
assert!(text.contains("const 9223372036854775807 : long"), "{text}");
assert!(text.contains("const 2 : int"), "{text}");
assert!(text.contains("const 53 : int"), "{text}");
}
/// Freestanding, so there is no library header to chain to and `<stdint.h>` writes the
/// whole set out itself. The widths are the ones the target picked, which is the only
/// reason this header is the compiler's.
#[test]
fn the_shipped_stdint_writes_the_whole_set_when_there_is_no_library_to_defer_to() {
let text = shipped(concat!(
"#include <stdint.h>\n",
"int64_t a = INT64_C(1);\n",
"uint_least16_t b;\n",
"intptr_t c;\n",
"uintmax_t d = UINTMAX_MAX;\n",
"int wide = sizeof(int_fast64_t);\n",
));
assert!(text.contains("decl #0 a : long"), "{text}");
assert!(text.contains("decl #1 b : unsigned short"), "{text}");
assert!(text.contains("decl #2 c : long"), "{text}");
}
/// `<mmintrin.h>` is the base of the vector header chain and the first one whose contents
/// are C rather than declarations, so what this checks is that the C in it compiles: a
/// header that is nothing but definitions fails as a whole or not at all.
///
/// What the intrinsics answer is not checked here and cannot be, because the answer is
/// only interesting next to another compiler's. Every intrinsic in the header was built
/// and run against GCC 16.2.0 on the same inputs, at `-O0`, `-O1`, `-O2` and `-Os`, and
/// gave the same bytes in all four. Carrying that comparison rather than repeating it by
/// hand needs a facet in `tamnd/rucc-corpus` that works out the expected bytes itself,
/// which is a second implementation of MMX and is `tamnd/rucc#1150`.
#[test]
fn the_shipped_mmintrin_defines_the_mmx_type_and_the_operations_over_it() {
let text = shipped(concat!(
"#include <mmintrin.h>\n",
"__m64 add(__m64 a, __m64 b) { return _mm_add_pi16(a, b); }\n",
"__m64 pack(__m64 a, __m64 b) { return _m_packsswb(a, b); }\n",
"__m64 shift(__m64 a) { return _mm_srai_pi32(a, 3); }\n",
"int low(__m64 a) { return _mm_cvtsi64_si32(a); }\n",
"void done(void) { _mm_empty(); }\n",
));
assert!(text.contains("add"), "{text}");
assert!(text.contains("pack"), "{text}");
assert!(text.contains("shift"), "{text}");
}
/// The allocator beside the vector headers, which is the one piece of the family that is
/// not a vector operation. It reaches for `<stddef.h>` and for three names out of the
/// library, and the point of the test is that the reach resolves with nothing on the
/// search path but the compiler's own directory.
#[test]
fn the_shipped_mm_malloc_asks_for_aligned_memory_and_gives_it_back() {
let text = shipped(concat!(
"#include <mm_malloc.h>\n",
"void *get(void) { return _mm_malloc(64, 16); }\n",
"void put(void *p) { _mm_free(p); }\n",
));
assert!(text.contains("get"), "{text}");
assert!(text.contains("put"), "{text}");
}
/// `<xmmintrin.h>` is the next rung of the chain and pulls the other two in behind it, so a
/// program that includes this one alone has to get all three. What the intrinsics answer is
/// checked the same way `<mmintrin.h>` next door is checked and for the same reason: a
/// hundred and forty eight lines of answers over nans, infinities, both zeros and values
/// that do not fit in the integer they convert to, identical to GCC 16.2.0 at `-O0`, `-O1`,
/// `-O2` and `-Os`.
///
/// `_mm_rcp_ps` is the one answer in that run that is not identical, and is not meant to be.
/// The instruction approximates a reciprocal and this computes one exactly, so the bits
/// differ while both sit inside the relative error Intel documents, which the same program
/// checks directly rather than by comparing bits.
#[test]
fn the_shipped_xmmintrin_defines_the_sse_type_and_the_operations_over_it() {
let text = shipped(concat!(
"#include <xmmintrin.h>\n",
"__m128 add(__m128 a, __m128 b) { return _mm_add_ps(a, b); }\n",
"__m128 one(__m128 a, __m128 b) { return _mm_max_ss(a, b); }\n",
"__m128 mask(__m128 a, __m128 b) { return _mm_cmpnle_ps(a, b); }\n",
"__m128 pick(__m128 a, __m128 b) { return _mm_shuffle_ps(a, b, _MM_SHUFFLE(0,1,2,3)); }\n",
"int bits(__m128 a) { return _mm_movemask_ps(a); }\n",
"int near(__m128 a) { return _mm_cvtss_si32(a); }\n",
"__m128 wide(__m64 a) { return _mm_cvtpi16_ps(a); }\n",
"void *room(void) { return _mm_malloc(64, 16); }\n",
"void hint(const float *p) { _mm_prefetch(p, _MM_HINT_T0); _mm_sfence(); }\n",
));
assert!(text.contains("add"), "{text}");
assert!(text.contains("mask"), "{text}");
assert!(text.contains("pick"), "{text}");
assert!(text.contains("wide"), "{text}");
}
/// The six names of gcc's header this one leaves out, each of which is an instruction whose
/// answer no plain C reproduces exactly. Leaving them out is what turns a program that wants
/// one into a diagnostic naming the function it called, rather than into a wrong answer, and
/// this is what notices if one is ever quietly defined to something close.
///
/// `tamnd/rucc#1157` is the square root, which brings the first four back.
#[test]
fn the_shipped_xmmintrin_leaves_out_the_names_that_need_an_instruction() {
let text = rucc_session::runtime::header("xmmintrin.h").expect("xmmintrin.h is shipped");
for absent in [
"_mm_sqrt_ps",
"_mm_sqrt_ss",
"_mm_rsqrt_ps",
"_mm_rsqrt_ss",
"_mm_getcsr",
"_mm_setcsr",
] {
let defined = text.contains(&format!("{absent}("));
assert!(!defined, "{absent} is defined and the header says it is not");
assert!(text.contains(absent), "{absent} is absent and unexplained");
}
}
#[test]
fn the_shipped_emmintrin_defines_both_sse2_types_and_the_operations_over_them() {
let text = shipped(concat!(
"#include <emmintrin.h>\n",
"__m128i add(__m128i a, __m128i b) { return _mm_add_epi64(a, b); }\n",
"__m128i wide(__m128i a, __m128i b) { return _mm_mul_epu32(a, b); }\n",
"__m128i pick(__m128i a) { return _mm_shuffle_epi32(a, _MM_SHUFFLE(0,1,2,3)); }\n",
"__m128i up(__m128i a) { return _mm_slli_epi64(a, 13); }\n",
"__m128i down(__m128i a) { return _mm_srli_si128(a, 3); }\n",
"__m128i pack(__m128i a, __m128i b) { return _mm_packus_epi16(a, b); }\n",
"int bits(__m128i a) { return _mm_movemask_epi8(a); }\n",
"__m128d sum(__m128d a, __m128d b) { return _mm_add_sd(a, b); }\n",
"__m128d mask(__m128d a, __m128d b) { return _mm_cmpunord_pd(a, b); }\n",
"__m128i near(__m128d a) { return _mm_cvtpd_epi32(a); }\n",
"__m128d over(__m128 a) { return _mm_cvtps_pd(a); }\n",
"__m128i half(__m64 a) { return _mm_movpi64_epi64(a); }\n",
"__m128i grab(void const *p) { return _mm_loadu_si128(p); }\n",
"void wall(void) { _mm_lfence(); _mm_mfence(); }\n",
));
assert!(text.contains("wide"), "{text}");
assert!(text.contains("pack"), "{text}");
assert!(text.contains("near"), "{text}");
assert!(text.contains("half"), "{text}");
}
/// The umbrella header reaches the three underneath it. This is brotli's use of it, from
/// `c/enc/matching_tag_mask.h`, which is the whole of what `tamnd/rucc#1236` was about: four
/// SSE2 names that were already shipped and no way to get at them by the name gcc uses.
#[test]
fn the_shipped_immintrin_reaches_the_names_the_headers_under_it_define() {
let text = shipped(concat!(
"#include <immintrin.h>\n",
"unsigned long long matching(unsigned char tag, unsigned char const *bucket) {\n",
" __m128i const want = _mm_set1_epi8((char)tag);\n",
" __m128i const chunk = _mm_loadu_si128((__m128i const *)(void const *)bucket);\n",
" __m128i const same = _mm_cmpeq_epi8(chunk, want);\n",
" return (unsigned long long)_mm_movemask_epi8(same);\n",
"}\n",
"__m64 narrow(__m64 a, __m64 b) { return _mm_add_pi32(a, b); }\n",
"__m128 single(__m128 a, __m128 b) { return _mm_add_ps(a, b); }\n",
));
assert!(text.contains("matching"), "{text}");
assert!(text.contains("narrow"), "the MMX header is not reached: {text}");
assert!(text.contains("single"), "the SSE header is not reached: {text}");
}
/// The wider umbrella reaches everything the narrower one does, and the fence family with it.
/// This is what mingw-w64's `<winnt.h>` includes and what it then uses, so a Windows program
/// that has never heard of an intrinsic gets here through `<windows.h>`.
#[test]
fn the_shipped_x86intrin_reaches_the_fences_windows_headers_ask_it_for() {
let text = shipped(concat!(
"#include <x86intrin.h>\n",
"void barriers(void *p) {\n",
" _mm_lfence();\n",
" _mm_sfence();\n",
" _mm_mfence();\n",
" _mm_pause();\n",
" _mm_clflush(p);\n",
"}\n",
"__m128i wide(__m128i a, __m128i b) { return _mm_add_epi32(a, b); }\n",
));
assert!(text.contains("barriers"), "{text}");
assert!(text.contains("wide"), "the SSE2 header is not reached: {text}");
}
/// Including it twice is the same as including it once, and so is including it beside the
/// header it reaches. A program that includes both spellings is the usual case rather than an
/// odd one, because one of its own headers includes the umbrella and another includes SSE2.
#[test]
fn the_umbrella_and_the_header_under_it_can_both_be_included() {
let text = shipped(concat!(
"#include <immintrin.h>\n",
"#include <emmintrin.h>\n",
"#include <immintrin.h>\n",
"#include <x86intrin.h>\n",
"__m128i twice(__m128i a, __m128i b) { return _mm_add_epi32(a, b); }\n",
));
assert!(text.contains("twice"), "{text}");
}
/// The float header omits four square roots and SSE2 omits the matching two, for the reason
/// both headers write down. A later change that quietly defines one as an approximation
/// would be a wrong answer nobody sees, so the absence is held in place here.
#[test]
fn the_shipped_emmintrin_leaves_out_the_two_square_roots() {
let text = rucc_session::runtime::header("emmintrin.h").expect("emmintrin.h is shipped");
for absent in ["_mm_sqrt_pd", "_mm_sqrt_sd"] {
let defined = text.contains(&format!("{absent}("));
assert!(!defined, "{absent} is defined and the header says it is not");
assert!(text.contains(absent), "{absent} is absent and unexplained");
}
}
#[test]
fn the_three_formality_headers_still_have_to_work() {
let text = shipped(concat!(
"#include <stdbool.h>\n",
"#include <stdalign.h>\n",
"#include <iso646.h>\n",
"#include <stdnoreturn.h>\n",
"int t = true and not false;\n",
"_Alignas(16) char buf[16];\n",
"int a = alignof(long);\n",
));
assert!(text.contains("decl #0 t : int"), "{text}");
assert!(text.contains("const 8 : unsigned long"), "{text}");
}
/// Including everything twice has to change nothing, because that is what happens in any
/// program large enough to matter and a guard that is wrong shows up nowhere else.
///
/// Stated as the two trees being the same rather than as a fact about what is in either
/// one. A header that carries definitions puts them in the tree and moves everything
/// after them along, so an assertion about where the program's own declaration landed is
/// an assertion about how much `<mmintrin.h>` defines, which is not what is being asked.
#[test]
fn every_shipped_header_can_be_included_twice() {
let once: String = rucc_session::runtime::names()
.iter()
.map(|name| format!("#include <{name}>\n"))
.collect();
let twice = once.repeat(2);
assert_eq!(shipped(&format!("{once}int x;\n")), shipped(&format!("{twice}int x;\n")));
}
#[test]
fn a_file_that_is_not_there_says_so_and_produces_nothing() {
let fs = MemoryFileSystem::new();
let result = compile(&options(), "/nope.c", &fs);
assert!(result.failed());
assert!(result.messages[0].contains("/nope.c"), "{:?}", result.messages);
assert!(result.text().is_empty());
}
#[test]
fn an_object_comes_out_with_its_type_its_linkage_and_how_much_of_a_definition_it_is() {
let text = tast("int x = 1;\n");
let expected = "\
decl #0 x : int object external static defined
init
+0
const 1 : int
";
assert_eq!(text, expected);
}
#[test]
fn the_macros_are_expanded_before_anything_is_parsed() {
// The whole pipeline in one line. The bound came out of a macro, so it was expanded,
// converted from a preprocessing number to a constant of a type, parsed as an
// expression, and folded to the number the array type carries.
let text = tast("#define N 2\nint a[N];\n");
assert!(text.starts_with("decl #0 a : int[2] object external static tentative"), "{text}");
}
/// A pragma survives the preprocessor on purpose, since what one means is not its
/// business, and nothing after it has a place for a `#` in the grammar. `pack` is the one
/// the parser reads and every other line is walked past. Both spellings are here because
/// they arrive by different routes and only one of them was ever on a line of its own in
/// the source.
#[test]
fn a_pragma_is_not_a_declaration_and_the_parse_walks_past_the_ones_it_does_not_read() {
let text = tast(concat!(
"#pragma pack(4)\n",
"struct s { int a; };\n",
"#pragma pack()\n",
"int b;\n",
"_Pragma(\"GCC visibility push(default)\") int c;\n",
));
assert!(text.contains("decl #0 b : int"), "{text}");
assert!(text.contains("decl #1 c : int"), "{text}");
}
/// Every number in these two tests was read off gcc 16 on x86-64 under `-std=gnu23`
/// rather than reasoned about, which is why they are written as assertions the program
/// makes about itself: a compilation with no messages is every one of them holding.
///
/// This half is the attributes. `packed` takes the padding out, on the record or on one
/// member, `aligned` raises and never lowers, and the two written together are the
/// combination that packs and then aligns the whole thing.
#[test]
fn the_layout_attributes_move_the_members_and_the_record_the_way_gcc_lays_them_out() {
tast(concat!(
"struct A { char c; int i; } __attribute__((packed));\n",
"_Static_assert(sizeof(struct A) == 5 && _Alignof(struct A) == 1, \"A\");\n",
"_Static_assert(__builtin_offsetof(struct A, i) == 1, \"A.i\");\n",
// `aligned` with nothing in the parentheses is the largest alignment the target
// has, which gcc calls BIGGEST_ALIGNMENT and which is sixteen everywhere here.
"struct B { char c; int i; } __attribute__((aligned));\n",
"_Static_assert(sizeof(struct B) == 16 && _Alignof(struct B) == 16, \"B\");\n",
"struct C { char c; int i __attribute__((packed)); };\n",
"_Static_assert(sizeof(struct C) == 5 && _Alignof(struct C) == 1, \"C\");\n",
"_Static_assert(__builtin_offsetof(struct C, i) == 1, \"C.i\");\n",
"struct D { char c; int i; } __attribute__((packed, aligned(4)));\n",
"_Static_assert(sizeof(struct D) == 8 && _Alignof(struct D) == 4, \"D\");\n",
"_Static_assert(__builtin_offsetof(struct D, i) == 1, \"D.i\");\n",
"struct E { char c; _Alignas(8) int i; };\n",
"_Static_assert(sizeof(struct E) == 16 && _Alignof(struct E) == 8, \"E\");\n",
"_Static_assert(__builtin_offsetof(struct E, i) == 8, \"E.i\");\n",
"struct F { char c; int i __attribute__((aligned(8))); };\n",
"_Static_assert(sizeof(struct F) == 16 && _Alignof(struct F) == 8, \"F\");\n",
// Two the record already had, so the attribute asks for nothing new, and two
// where four was already there, so the attribute is ignored rather than obeyed.
"struct G { char c; short s; } __attribute__((aligned(2)));\n",
"_Static_assert(sizeof(struct G) == 4 && _Alignof(struct G) == 2, \"G\");\n",
"struct H { char c; int i; } __attribute__((aligned(2)));\n",
"_Static_assert(sizeof(struct H) == 8 && _Alignof(struct H) == 4, \"H\");\n",
// `packed` on a member takes the padding out in front of that member alone, so on
// the first one it does nothing and on the second one it does all of it.
"struct I { [[gnu::packed]] char c; int i; };\n",
"_Static_assert(sizeof(struct I) == 8 && _Alignof(struct I) == 4, \"I\");\n",
"struct J { char c; [[gnu::packed]] int i; };\n",
"_Static_assert(sizeof(struct J) == 5 && _Alignof(struct J) == 1, \"J\");\n",
"struct M { char c; int i : 5; int j : 20; } __attribute__((packed));\n",
"_Static_assert(sizeof(struct M) == 5 && _Alignof(struct M) == 1, \"M\");\n",
"struct N { char c; long long l; } __attribute__((aligned(32)));\n",
"_Static_assert(sizeof(struct N) == 32 && _Alignof(struct N) == 32, \"N\");\n",
"union L { char c; int i; } __attribute__((packed));\n",
"_Static_assert(sizeof(union L) == 4 && _Alignof(union L) == 1, \"L\");\n",
// The armoured spellings, which are the ones a system header writes, since a
// program is entitled to a macro called `packed` and is not entitled to one called
// `__packed__`. The two names are one attribute and the layout is the same one.
"struct O { char c; int i; } __attribute__((__packed__));\n",
"_Static_assert(sizeof(struct O) == 5 && _Alignof(struct O) == 1, \"O\");\n",
"struct P { char c; int i; } __attribute__((__aligned__(8)));\n",
"_Static_assert(sizeof(struct P) == 8 && _Alignof(struct P) == 8, \"P\");\n",
));
}
/// The attribute that changes what a call means rather than what a record lays out.
///
/// Both halves are here. A call hands a value to a parameter of the union type and the value
/// goes into the member that takes it, which is a compound literal of the union and is the
/// same object the GNU cast to a union builds. And a declaration written with a member's type
/// declares the same function as one written with the union, which is what lets a pointer to
/// either be assigned from the other, and is what gnulib's signature checks do.
///
/// The `void *` member is last on purpose: the search takes a member whose type the value
/// already has wherever it sits, and falls back to a pointer member that would take the value
/// silently only when there is no such member, so `char *` reaches the catch-all past two
/// members that are not it.
#[test]
fn a_transparent_union_takes_the_member_a_value_fits_and_is_declared_either_way() {
let text = tast(concat!(
"struct one { int x; };\n",
"struct two { long y; };\n",
"typedef union { struct one *a; struct two *b; void *any; }\n",
" __attribute__((__transparent_union__)) arg;\n",
"int takes(arg v);\n",
"int f(struct one *p, struct two *q, char *c) {\n",
" return takes(p) + takes(q) + takes(c) + takes(0);\n",
"}\n",
// The other half, which is about declarations and not about values.
"int takes(struct one *p);\n",
"int (*as_a_member)(struct one *) = takes;\n",
"int (*as_the_union)(arg) = takes;\n",
));
assert!(text.contains("compound-literal"), "{text}");
}
/// The other place glibc writes it, which is the one that matters.
///
/// `sys/socket.h` puts the attribute on the declarator of the typedef rather than after the
/// closing brace, so a compiler that reads only the second position reads nothing at all of
/// the eleven pointer union that `bind` and `connect` and five others take.
#[test]
fn the_attribute_on_the_declarator_of_a_typedef_is_the_one_glibc_writes() {
let text = tast(concat!(
"struct sockaddr { int family; };\n",
"struct sockaddr_in { int family; int addr; };\n",
"typedef union { struct sockaddr *plain; struct sockaddr_in *inet; }\n",
" addr_arg __attribute__((__transparent_union__));\n",
"int bind_to(int fd, addr_arg where);\n",
"int f(struct sockaddr_in *where) { return bind_to(0, where); }\n",
));
assert!(text.contains("compound-literal"), "{text}");
}
/// What the attribute promises has to be a promise this can keep, and is checked rather than
/// believed.
///
/// A union wider than its first member is not passed the way that member is, and a structure
/// has no members that are alternatives to each other at all. gcc drops the attribute in both
/// cases with a warning and compiles the program, because the type is still a perfectly good
/// type and only the extra rule is gone.
#[test]
fn a_transparent_union_that_cannot_keep_the_promise_is_dropped_with_a_word_about_it() {
let result = run(
&options(),
concat!(
"union wider { int small; double large; } __attribute__((transparent_union));\n",
"struct plain { int x; } __attribute__((transparent_union));\n",
),
);
assert_eq!(result.messages.len(), 2, "{:?}", result.messages);
assert!(!result.failed(), "{:?}", result.messages);
for message in &result.messages {
assert!(message.contains("'transparent_union' attribute ignored"), "{message}");
}
assert!(result.messages[0].contains("first member"), "{:?}", result.messages);
assert!(result.messages[1].contains("only a union"), "{:?}", result.messages);
}
/// What an access to a packed member is allowed to assume about where it starts.
///
/// C 6.2.8 gives an object of type `int` four byte alignment and `packed` takes it away: the
/// member goes wherever the members in front of it ended, and an `int` one byte into a record
/// is aligned to one. The number on the access has to say so, because it is what the back end
/// picks instructions from and what judgement J1 of `spec/safe-memory/04-safety-model.md`
/// tests at run time. Four on an address that is a multiple of one is the compiler refusing a
/// program that is doing nothing wrong.
#[test]
fn an_access_to_a_packed_member_says_the_alignment_the_layout_left_it() {
let packed = body(concat!(
"struct P { char c; int v; } __attribute__((packed));\n",
"int f(struct P *p) { return p->v; }\n",
));
assert!(packed.contains("load.i32 %2, align 1,"), "{packed}");
// The same record without the attribute, which is where the type's own answer is right.
let plain = body(concat!(
"struct P { char c; int v; };\n",
"int f(struct P *p) { return p->v; }\n",
));
assert!(plain.contains("load.i32 %2, align 4,"), "{plain}");
}
/// The same, for the two ways of being further in than the member itself.
///
/// An array member is stepped through rather than offset to, and a record member is offset to
/// twice, and both have to carry the outer record's alignment with them. A step of a whole
/// number of elements leaves what the element width and the address had in common, which for
/// a one byte aligned base is one byte however wide the elements are.
#[test]
fn what_is_inside_a_packed_member_is_no_more_aligned_than_the_member_is() {
let stepped = body(concat!(
"struct P { char c; int v[4]; } __attribute__((packed));\n",
"int f(struct P *p, int i) { return p->v[i]; }\n",
));
assert!(stepped.contains(", align 1,"), "{stepped}");
assert!(!stepped.contains(", align 4,"), "{stepped}");
let nested = body(concat!(
"struct Inner { int v; };\n",
"struct P { char c; struct Inner in; } __attribute__((packed));\n",
"int f(struct P *p) { return p->in.v; }\n",
));
assert!(nested.contains(", align 1,"), "{nested}");
assert!(!nested.contains(", align 4,"), "{nested}");
}
/// The other way an access gets an alignment its type would not have given it, which is a
/// typedef that lowered one.
///
/// `aligned` raises on a declaration and replaces on a typedef, so `typedef aligned(1) U32
/// unalign32` really is a four byte integer that may sit anywhere. Reading a word out of a
/// buffer nothing aligned is what every compression library does and this is how they write
/// it: zstd's `lib/common/mem.h` is four typedefs of exactly this shape and `MEM_read32` is
/// `*(const unalign32 *)ptr`.
///
/// What made this worth a test is where it went wrong. `__alignof__` was right the whole time,
/// because that asks about the type and the type knew. The access was wrong, because the type
/// of `*p` was worked out by resolving every typedef in `p`'s type rather than only the one on
/// the pointer, so the thing being read came back as the `unsigned int` the typedef stands for
/// and the alignment came off that. The number on the access is what judgement J1 tests, so
/// the monitor refused fifty six of zstd's reads, all of them correct.
#[test]
fn an_access_through_a_typedef_that_lowered_its_alignment_says_the_one_the_typedef_asked_for() {
let through = body(concat!(
"typedef __attribute__((aligned(1))) unsigned int unalign32;\n",
"unsigned int f(const void *p) { return *(const unalign32 *)p; }\n",
));
assert!(through.contains("load.i32 %0, align 1,"), "{through}");
// A subscript is `*(p + i)` and a member through an arrow is a dereference and then an
// offset, so both read the pointee the same way and both have to come out the same.
let stepped = body(concat!(
"typedef __attribute__((aligned(1))) unsigned int unalign32;\n",
"unsigned int f(unalign32 *p, int i) { return p[i]; }\n",
));
assert!(stepped.contains(", align 1,"), "{stepped}");
assert!(!stepped.contains(", align 4,"), "{stepped}");
// And the same typedef without the attribute, which is where the type's own answer is the
// right one and nothing above should have changed it.
let plain = body(concat!(
"typedef unsigned int word;\n",
"unsigned int f(const void *p) { return *(const word *)p; }\n",
));
assert!(plain.contains("load.i32 %0, align 4,"), "{plain}");
}
/// The same thing where the object does not fit in a register, which is what `_mm_loadu_si128`
/// is and is the reason the intrinsic header exists at all.
///
/// `__m128i_u` is `__m128i` with `aligned(1)` on it and `_mm_loadu_si128` is one line,
/// `return *(const __m128i_u *)__p;`. Two things had to be right for that to come out as the
/// unaligned read it is. The dereference has to keep the typedef, which is what the test above
/// covers, and then the return has to read the object as aligned as the object is rather than
/// as aligned as the type it is being returned as: a vector comes back in registers on this
/// ABI, so the sixteen bytes are read as two pieces of eight and the ABI's own alignment is
/// what lays the two pieces out rather than what either read may claim.
#[test]
fn a_vector_read_through_a_typedef_that_lowered_its_alignment_comes_back_a_piece_at_a_time() {
let prefix = concat!(
"typedef long long v2di __attribute__((__vector_size__(16)));\n",
"typedef long long v2di_u __attribute__((__vector_size__(16), __aligned__(1)));\n",
);
let loaded =
body(&format!("{prefix}v2di f(const void *p) {{ return *(const v2di_u *)p; }}"));
assert_eq!(loaded.matches("align 1\n").count(), 2, "{loaded}");
assert!(!loaded.contains("align 16"), "{loaded}");
// The store side, which travels as a copy into whatever the pointer names and so carries
// one number for both ends of it.
let stored = body(&format!("{prefix}void f(void *p, v2di b) {{ *(v2di_u *)p = b; }}"));
assert!(stored.contains("memcpy %0, %3, size 16, align 1"), "{stored}");
// And the aligned spelling of the same two, which is where sixteen is the right answer.
let aligned =
body(&format!("{prefix}v2di f(const void *p) {{ return *(const v2di *)p; }}"));
assert!(aligned.contains("align 16"), "{aligned}");
}
/// The same attribute on a declaration rather than on a type, which asks that this object or
/// this function be at a multiple of that, and which is where a program that has to hand a
/// buffer to hardware or keep two counters off one cache line writes it.
///
/// A raise and never a lower, which is the one place it does not agree with `_Alignas`: below
/// what the type already has, `_Alignas` is a constraint violation and this is ignored without
/// a word. `__alignof__` of the object answers what the object got and not what its type has,
/// because that is the question a program asking it is asking.
#[test]
fn the_aligned_attribute_on_a_declaration_raises_what_that_one_object_is_aligned_to() {
tast(concat!(
"int v __attribute__((aligned(64)));\n",
"_Static_assert(__alignof__(v) == 64, \"v\");\n",
// Written on the specifiers rather than after the declarator, which asks the same
// thing and is the spelling a header is more likely to use.
"__attribute__((aligned(32))) int w;\n",
"_Static_assert(__alignof__(w) == 32, \"w\");\n",
"[[gnu::aligned(16)]] int x;\n",
"_Static_assert(__alignof__(x) == 16, \"x\");\n",
// Two below the four an `int` already has, so nothing is asked for and nothing is
// said, and the type still answers for the object.
"int y __attribute__((aligned(2)));\n",
"_Static_assert(__alignof__(y) == 4, \"y\");\n",
// A local, which is the same question one scope down.
"void f(void) { int a __attribute__((aligned(128)));\n",
"_Static_assert(__alignof__(a) == 128, \"a\"); (void)a; }\n",
// The type is untouched by any of it: `aligned` on a declaration says where that
// declaration goes and says nothing about every other `int` in the program.
"_Static_assert(__alignof__(int) == 4, \"int\");\n",
// A function, which has no alignment of its own for this to be measured against and
// takes whatever was asked for.
"void g(void) __attribute__((aligned(256)));\n",
"void g(void) {}\n",
"_Static_assert(__alignof__(g) == 256, \"g\");\n",
));
}
/// And what the object file says, which is the half that makes the answer above true. A
/// function is at a fixed offset inside the text section, so it is at a multiple of two
/// hundred and fifty six only if the section is at one too.
#[test]
fn what_a_declaration_asked_to_be_aligned_to_is_what_the_assembler_is_told() {
let text = asm(concat!(
"int v __attribute__((aligned(64)));\n",
"void g(void) __attribute__((aligned(256)));\n",
"void g(void) {}\n",
"void plain(void) {}\n",
));
assert!(text.contains("\t.p2align\t6\n\t.type\tv, @object\n"), "{text}");
assert!(text.contains("\t.p2align\t8, 0x90\n\t.globl\tg\n"), "{text}");
assert!(text.contains("\t.p2align\t4, 0x90\n\t.globl\tplain\n"), "{text}");
}
/// And the one position where the attribute means something else. On a declaration it raises
/// what that one object is aligned to, and on a typedef it says what the type is aligned to,
/// which gcc lets it lower as well: `typedef int L __attribute__((aligned(2)))` really is an
/// `int` at a multiple of two and a record with one in it really is smaller for it.
///
/// The size is left alone, which is gcc's answer rather than an omission here. An aligned
/// typedef whose alignment is larger than what it stands for keeps the size it stands for,
/// and gcc refuses an array of one rather than padding the elements out to fit.
#[test]
fn an_aligned_typedef_says_what_an_object_of_it_is_aligned_to_and_may_lower_it() {
tast(concat!(
"typedef int L __attribute__((aligned(2)));\n",
"_Static_assert(__alignof__(L) == 2, \"L\");\n",
"_Static_assert(_Alignof(L) == 2, \"L alignof\");\n",
// Below what an `int` has, which is the half a declaration cannot ask for.
"_Static_assert(sizeof(L) == 4, \"L size\");\n",
"struct T { char c; L x; };\n",
"_Static_assert(sizeof(struct T) == 6, \"T\");\n",
"_Static_assert(__builtin_offsetof(struct T, x) == 2, \"T.x\");\n",
// And upwards, which is the ordinary direction and the one a header writes.
"typedef int H __attribute__((aligned(16)));\n",
"_Static_assert(__alignof__(H) == 16, \"H\");\n",
"_Static_assert(sizeof(H) == 4, \"H size\");\n",
"struct U { char c; H x; };\n",
"_Static_assert(sizeof(struct U) == 32, \"U\");\n",
"_Static_assert(__builtin_offsetof(struct U, x) == 16, \"U.x\");\n",
// A typedef of a typedef, where the nearer one is the one the declaration was
// written with and is the one that answers.
"typedef L M __attribute__((aligned(8)));\n",
"_Static_assert(__alignof__(M) == 8, \"M\");\n",
// And one that asked for nothing, which still has whatever the one behind it asked
// for because it is the same type spelled again.
"typedef L N;\n",
"_Static_assert(__alignof__(N) == 2, \"N\");\n",
// The type it stands for is untouched by any of it.
"_Static_assert(__alignof__(int) == 4, \"int\");\n",
));
let text = asm(concat!(
"typedef int L __attribute__((aligned(2)));\n",
"typedef int H __attribute__((aligned(16)));\n",
"L low;\n",
"H high;\n",
));
assert!(text.contains("\t.p2align\t1\n\t.type\tlow, @object\n"), "{text}");
assert!(text.contains("\t.p2align\t4\n\t.type\thigh, @object\n"), "{text}");
}
/// The attribute that builds a type rather than changing a layout. `vector_size(n)` says the
/// declared type is `n` bytes of what was written, taken as lanes, and every operator over
/// one is that operator over each lane.
///
/// The size is in bytes and not in lanes, which is the part a reader gets backwards: sixteen
/// of `int` is four lanes and sixteen of `char` is sixteen. A vector is aligned to its own
/// size, which is what a machine that has the registers wants and what gcc gives one here.
#[test]
fn the_vector_size_attribute_builds_a_type_of_lanes_and_measures_it_in_bytes() {
tast(concat!(
"typedef int __attribute__((vector_size(16))) v4si;\n",
"_Static_assert(sizeof(v4si) == 16 && _Alignof(v4si) == 16, \"v4si\");\n",
"typedef char __attribute__((vector_size(16))) v16qi;\n",
"_Static_assert(sizeof(v16qi) == 16, \"v16qi\");\n",
// One lane, which is a power of two and is a vector rather than the type it was
// written on: the operators it takes are the vector's and not the scalar's.
"typedef int __attribute__((vector_size(4))) v1si;\n",
"_Static_assert(sizeof(v1si) == 4, \"v1si\");\n",
// The armoured spelling and the bracket one, which are the same attribute.
"typedef float __attribute__((__vector_size__(8))) v2sf;\n",
"_Static_assert(sizeof(v2sf) == 8, \"v2sf\");\n",
"typedef short [[gnu::vector_size(8)]] v4hi;\n",
"_Static_assert(sizeof(v4hi) == 8, \"v4hi\");\n",
// A lane is what a subscript answers with, and a vector is not a pointer: there is
// nothing to decay and the lane type is the one the arithmetic happens in.
"v4si g;\n",
"_Static_assert(sizeof(g[0]) == 4, \"lane\");\n",
"_Static_assert(sizeof(g + g) == 16, \"whole\");\n",
// A scalar beside a vector stands for itself in every lane, so the answer is still
// the vector and not the wider of the two types.
"_Static_assert(sizeof(g + 1) == 16, \"broadcast\");\n",
// An array of them, which is the ordinary way a program holds several.
"_Static_assert(sizeof(v4si[3]) == 48, \"array\");\n",
));
}
/// A whole vector written into an array of them, and a vector named by a type name rather
/// than by a typedef.
///
/// Both are the same question asked twice. A vector is filled like an array of its lanes when
/// a list is written into it, so a braced element that is itself a vector has to be taken
/// whole rather than started as the first lane, and the type of what was written is the only
/// thing that says which was meant. And a type name is where a compound literal and a cast
/// spell the type out, which a macro taking a lane type and a lane count does, so the
/// attribute has to be read there and not only on a declaration.
#[test]
fn a_vector_is_written_whole_into_an_array_of_them_and_named_by_a_type_name() {
tast(concat!(
"typedef int __attribute__((vector_size(8))) v2si;\n",
"v2si table[] = { (v2si){ 1, 2 }, (v2si){ 3, 4 } };\n",
"_Static_assert(sizeof(table) == 16, \"two of them and not eight lanes\");\n",
// The size written out rather than named, which is the spelling a macro expands to.
"v2si written = (int __attribute__((vector_size(8)))){ 5, 6 };\n",
"_Static_assert(sizeof((int __attribute__((vector_size(16)))){ 0 }) == 16, \"named\");\n",
// A lane is still a lane, so a list of them fills the vector the way it always did
// and the rule above did not turn brace elision off.
"v2si lanes[2] = { 1, 2, 3, 4 };\n",
"_Static_assert(sizeof(lanes) == 16, \"still elided\");\n",
));
}
/// A lane written rather than read, and a shift whose two vectors are not the same type.
///
/// Both are places where a vector is not the aggregate it looks like. A subscript of one is
/// an lvalue because the vector it came from is an object, so a lane can be assigned to and
/// has an address, and a qualifier written on the vector reaches every lane the way it does
/// on an array. And a shift is the one lanewise operator whose sides are not brought to a
/// single type, since the right side counts rather than computes.
#[test]
fn a_lane_is_assignable_and_a_shift_takes_a_count_of_its_own_lane() {
let result = run(
&options(),
concat!(
"typedef int __attribute__((vector_size(16))) v4si;\n",
"typedef unsigned __attribute__((vector_size(16))) v4ui;\n",
"void write(v4si *out, v4ui a, v4si b, int n) {\n",
" v4si v = { 1, 2, 3, 4 };\n",
" v[0] = n;\n",
" v[1] += n;\n",
" v[2]++;\n",
" *&v[3] = n;\n",
// The count is signed and the value is not, which no other operator allows.
" v4ui shifted = a >> b;\n",
" shifted <<= b;\n",
// A scalar stands in every lane on either side of a shift, which is the half
// that looks wrong: the shape of the answer comes off the count here.
" *out = v + (v4si)shifted + (1 << b);\n",
"}\n",
// A qualifier on the vector is a qualifier on the lane, so there is nothing here
// to write to.
"void refused(const v4si c) {\n",
" c[0] = 1;\n",
"}\n",
),
);
assert_eq!(result.messages.len(), 1, "{:?}", result.messages);
assert!(result.messages[0].contains("assignment of read-only"), "{:?}", result.messages);
}
/// The third layout attribute, and the one that is refused rather than read. Reversing the
/// byte order of every scalar in a record is not something a compiler can do half of, and a
/// compilation that ignored it would lay the record out in the host's order and hand back
/// every field with its bytes the wrong way round. Both spellings are here because a header
/// writes the armoured one, and the member is here because the refusal has to arrive before
/// the layout is used rather than after.
#[test]
fn a_record_that_asks_for_the_other_byte_order_is_refused_rather_than_laid_out_in_this_one() {
let opts = options();
let big = "struct s { int i; } __attribute__((scalar_storage_order(\"big-endian\")));\n";
assert_eq!(
run(&opts, big).messages,
["/main.c:1:36: error: 'scalar_storage_order' is not implemented yet [E0688]\n\
/main.c:1:36: note: every scalar in this record would be read in the wrong byte \
order"]
);
let armoured =
"struct s { int i; } __attribute__((__scalar_storage_order__(\"little-endian\")));\n";
let messages = run(&opts, armoured).messages;
assert!(messages[0].contains("[E0688]"), "{messages:?}");
// The attribute in front of the body reaches the same list as the one behind it, and
// the C23 spelling in gcc's namespace is the same attribute written a third way.
let front = "struct __attribute__((scalar_storage_order(\"big-endian\"))) s { int i; };\n";
assert!(run(&opts, front).messages[0].contains("[E0688]"), "{front}");
let standard = "struct s { int i; } [[gnu::scalar_storage_order(\"big-endian\")]];\n";
assert!(run(&opts, standard).messages[0].contains("[E0688]"), "{standard}");
}
/// Where a bit-field goes, which packing decides and which is the part of all this that
/// is not what the names suggest. A bit-field goes at the next free bit unless that would
/// make it span more storage than its own type occupies, and then it moves to the next
/// boundary of its alignment. Any packing at all takes that rule out, and `#pragma pack`
/// counts even where it lowers nothing, which is the fourth and seventh cases here.
///
/// Nothing in the language can be asked where a bit-field is, since `offsetof` refuses one
/// and every size below comes out the same either way, so what is asked is the byte a read
/// of the field loads from.
#[test]
fn packing_is_what_decides_whether_a_bit_field_may_straddle_its_own_storage() {
// A `char` field after twelve bits, which will not straddle unpacked and does packed.
assert_eq!(bit_field_byte("struct s { int x : 12; char y : 6; };"), 2);
assert_eq!(
bit_field_byte("struct s { int x : 12; char y : 6; } __attribute__((packed));"),
1
);
assert_eq!(
bit_field_byte("struct s { int x : 12; __attribute__((packed)) char y : 6; };"),
1
);
assert_eq!(bit_field_byte("#pragma pack(4)\nstruct s { int x : 12; char y : 6; };"), 1);
// A thirty bit field after a byte, which is the case the rule was written for.
assert_eq!(bit_field_byte("struct s { char x; int y : 30; };"), 4);
assert_eq!(bit_field_byte("struct s { char x; int y : 30; } __attribute__((packed));"), 1);
// Four is what an `int` asked for anyway, so this caps nothing and still counts.
assert_eq!(bit_field_byte("#pragma pack(4)\nstruct s { char x; int y : 30; };"), 1);
assert_eq!(bit_field_byte("#pragma pack(2)\nstruct s { char x; int y : 30; };"), 1);
}
/// The byte a read of `s.y` loads from, which is where the bit-field was placed.
fn bit_field_byte(record: &str) -> u64 {
let source = format!("{record}\nint f(struct s *p) {{ return p->y; }}\n");
let body = body(&source);
let Some((before, _)) = body.split_once("ptr_add") else { return 0 };
let (_, constant) = before.rsplit_once("iconst.i64 ").expect("an offset constant");
constant.lines().next().expect("a line").trim().parse().expect("a byte offset")
}
/// An attribute in the middle of a specifier list, which is where a member usually carries
/// one and which was read and then thrown away. The `[[...]]` spelling and whatever was
/// written in front of the declaration are collected as the list is walked and the
/// `__attribute__` spelling is put straight on the specifiers, and the two were assigned
/// over each other rather than joined.
#[test]
fn an_attribute_among_the_specifiers_is_kept_beside_the_ones_written_in_front() {
tast(concat!(
"struct a { char c; __attribute__((aligned(8))) int i; };\n",
"_Static_assert(sizeof(struct a) == 16 && _Alignof(struct a) == 8, \"a\");\n",
"_Static_assert(__builtin_offsetof(struct a, i) == 8, \"a.i\");\n",
"struct b { char c; __attribute__((packed)) int i; };\n",
"_Static_assert(sizeof(struct b) == 5 && _Alignof(struct b) == 1, \"b\");\n",
"_Static_assert(__builtin_offsetof(struct b, i) == 1, \"b.i\");\n",
"typedef struct { char c; int i; } __attribute__((packed)) c;\n",
"_Static_assert(sizeof(c) == 5 && _Alignof(c) == 1, \"c\");\n",
));
}
/// The other half, which is `#pragma pack`. It caps a member's alignment where `packed`
/// drops it, so `pack(2)` leaves a `short` where it was and moves an `int`, and it caps a
/// member the program asked to align as well, which is where the two differ. It is read
/// at the closing brace of the body, so a line written in the middle of one settles the
/// whole record rather than the members after it, and `push` and `pop` nest.
#[test]
fn pragma_pack_caps_every_member_and_is_read_where_the_body_closes() {
tast(concat!(
"#pragma pack(1)\n",
"struct A { char c; int i; };\n",
"_Static_assert(sizeof(struct A) == 5 && _Alignof(struct A) == 1, \"A\");\n",
"_Static_assert(__builtin_offsetof(struct A, i) == 1, \"A.i\");\n",
"#pragma pack()\n",
"struct B { char c; int i; };\n",
"_Static_assert(sizeof(struct B) == 8 && _Alignof(struct B) == 4, \"B\");\n",
"#pragma pack(2)\n",
"struct C { char c; int i; double d; };\n",
"_Static_assert(sizeof(struct C) == 14 && _Alignof(struct C) == 2, \"C\");\n",
"_Static_assert(__builtin_offsetof(struct C, d) == 6, \"C.d\");\n",
// A member the program aligned, which `pack` caps and `packed` would not.
"struct K { char c; int i __attribute__((aligned(8))); };\n",
"_Static_assert(sizeof(struct K) == 6 && _Alignof(struct K) == 2, \"K\");\n",
"_Static_assert(__builtin_offsetof(struct K, i) == 2, \"K.i\");\n",
// The record's own `aligned` is not a member's, so it is not capped.
"struct J { char c; int i; } __attribute__((aligned(8)));\n",
"_Static_assert(sizeof(struct J) == 8 && _Alignof(struct J) == 8, \"J\");\n",
"#pragma pack()\n",
"#pragma pack(push, 1)\n",
"struct D { char c; short s; };\n",
"_Static_assert(sizeof(struct D) == 3 && _Alignof(struct D) == 1, \"D\");\n",
"#pragma pack(pop)\n",
"struct E { char c; short s; };\n",
"_Static_assert(sizeof(struct E) == 4 && _Alignof(struct E) == 2, \"E\");\n",
// Written in the middle of a body, and it still settles the whole record.
"struct H { char c;\n",
"#pragma pack(1)\n",
" int i; };\n",
"_Static_assert(sizeof(struct H) == 5 && _Alignof(struct H) == 1, \"H\");\n",
"#pragma pack(1)\n",
"struct I { char c;\n",
"#pragma pack()\n",
" int i; };\n",
"_Static_assert(sizeof(struct I) == 8 && _Alignof(struct I) == 4, \"I\");\n",
"#pragma pack()\n",
// Nested pushes, each one giving back what the one under it had.
"#pragma pack(push, 8)\n",
"#pragma pack(push, 1)\n",
"struct P { char c; int i; };\n",
"_Static_assert(sizeof(struct P) == 5 && _Alignof(struct P) == 1, \"P\");\n",
"#pragma pack(pop)\n",
"struct Q { char c; int i; };\n",
"_Static_assert(sizeof(struct Q) == 8 && _Alignof(struct Q) == 4, \"Q\");\n",
"#pragma pack(pop)\n",
// A cap above what every member already asks for changes nothing at all.
"#pragma pack(16)\n",
"struct R { char c; int i; };\n",
"_Static_assert(sizeof(struct R) == 8 && _Alignof(struct R) == 4, \"R\");\n",
"#pragma pack()\n",
"#pragma pack(1)\n",
"struct S { char c; int i : 5; int j : 20; };\n",
"_Static_assert(sizeof(struct S) == 5 && _Alignof(struct S) == 1, \"S\");\n",
"union T { char c; int i; };\n",
"_Static_assert(sizeof(union T) == 4 && _Alignof(union T) == 1, \"T\");\n",
"#pragma pack()\n",
));
}
/// A line the reader cannot make sense of is a warning and the line is dropped, which is
/// what GCC does with one, and these are its words for each of them. The last line is the
/// one nothing else would reach, since it stands after every record in the file.
#[test]
fn a_pack_line_that_is_not_one_is_reported_in_the_words_gcc_uses() {
let result = run(
&options(),
concat!(
"#pragma pack 4\n",
"#pragma pack(pop)\n",
"#pragma pack(3)\n",
"#pragma pack(1) junk\n",
"#pragma pack(push, 1\n",
"#pragma pack(x)\n",
// These two are well formed and say nothing. Zero is how a line asks for the
// target's own alignments back without writing empty parentheses.
"#pragma pack(0)\n",
"#pragma pack(push)\n",
"struct s { char c; int i; };\n",
"#pragma pack(pop)\n",
"#pragma pack(pop, foo)\n",
),
);
let expected = [
"missing `(` after `#pragma pack` - ignored",
"`#pragma pack (pop)` encountered without matching `#pragma pack (push)`",
"alignment must be a small power of two, not 3",
"junk at end of `#pragma pack`",
"malformed `#pragma pack(push[, id][, <n>])` - ignored",
"unknown action `x` for `#pragma pack` - ignored",
"`#pragma pack(pop, foo)` encountered without matching `#pragma pack(push, foo)`",
];
assert_eq!(result.messages.len(), expected.len(), "{:?}", result.messages);
for (message, want) in result.messages.iter().zip(expected) {
assert!(message.contains(want), "expected {want:?} in {message:?}");
}
}
/// A pragma line ends where the next line starts, so a macro that comes to nothing and was
/// written first on that next line has to hand the line on rather than take it away. This
/// is SQLite through mingw-w64's headers: `<stdarg.h>` leaves a `#pragma pack(pop)` behind
/// it and `sqlite3.h` writes every declaration with `SQLITE_API` in front, which is empty.
/// Without it the pragma swallows the declaration, the program is left without it, and the
/// only thing said about any of it is that there was junk on the pragma.
#[test]
fn a_declaration_behind_an_empty_macro_is_not_eaten_by_the_pragma_above_it() {
let result = run(
&options(),
concat!(
"#pragma pack(push, 1)\n",
"#pragma pack(pop)\n",
"#define API\n",
"API const char version[] = \"3.53.4\";\n",
"const char *get(void) { return version; }\n",
),
);
assert!(result.messages.is_empty(), "{:?}", result.messages);
}
/// The two typedef spellings of the 128 bit types. gcc offers them as keywords rather
/// than as typedefs in a header, which is the only way a program that includes nothing at
/// all can still use them, and Apple's `<mach/arm/_structs.h>` is one such program.
#[test]
fn the_wide_integer_answers_to_all_three_of_its_names() {
let text = tast("__uint128_t a; __int128_t b; unsigned __int128 c;\n");
assert!(text.contains("decl #0 a : unsigned __int128"), "{text}");
assert!(text.contains("decl #1 b : __int128"), "{text}");
assert!(text.contains("decl #2 c : unsigned __int128"), "{text}");
}
#[test]
fn every_conversion_the_language_performs_is_a_node_in_the_output() {
// The point of a typed tree. The source has one operator and the output has the
// widening that operator asked for, spelled out, so that nothing downstream has to
// work out the conversion rules a second time.
let text = tast("long f(int a, long b) { return a + b; }\n");
assert!(text.contains("convert arithmetic"), "{text}");
}
#[test]
fn a_mistake_in_each_phase_reaches_the_caller_and_writes_no_tree() {
for source in [
"#error stop\n",
"int f(void) { return 1 + ; }\n",
"int f(void) { return undeclared; }\n",
] {
let result = run(&options(), source);
assert!(result.failed(), "expected this to fail:\n{source}");
assert!(
result.text().is_empty(),
"a file that did not compile wrote a tree:\n{source}"
);
}
}
#[test]
fn one_undeclared_name_is_one_message_and_not_one_per_use() {
// The poisoning rule from `spec/06-lexer-and-parser.md` section 6.8, seen from the
// outside. Three uses of a name that was never declared, and the operators over them
// say nothing at all.
let result = run(&options(), "int f(void) { return nope + nope * nope; }\n");
assert_eq!(result.errors, 1, "{:?}", result.messages);
}
#[test]
fn a_declaration_the_parser_skipped_does_not_become_an_undeclared_name_as_well() {
// The reason the checking is skipped after a failed parse. The parser gave up on the
// first line and there is no `x` in the tree, so a checker run over it would report
// every use of `x` below as undeclared, which is a second message about one mistake.
let result = run(&options(), "int x = ;\nint f(void) { return x; }\n");
assert_eq!(result.errors, 1, "{:?}", result.messages);
}
#[test]
fn werror_turns_a_warning_into_an_error_in_the_count_and_in_the_word() {
let source = "int f(void) { char c = 300; return c; }\n";
let plain = run(&options(), source);
assert_eq!(plain.errors, 0, "{:?}", plain.messages);
assert_eq!(plain.messages.len(), 1, "expected a warning about the narrowed constant");
assert!(!plain.text().is_empty(), "a warning is not a reason to write nothing");
let mut opts = options();
opts.warnings_are_errors = true;
let strict = run(&opts, source);
assert!(strict.failed());
assert!(strict.text().is_empty(), "and under -Werror it is a reason to write nothing");
for message in &strict.messages {
assert!(!message.contains("warning:"), "{message}");
}
}
#[test]
fn w_drops_the_warning_before_werror_can_promote_it() {
let source = "int f(void) { char c = 300; return c; }\n";
let mut opts = options();
opts.warnings = false;
let quiet = run(&opts, source);
assert_eq!(quiet.messages, Vec::<String>::new());
assert_eq!(quiet.errors, 0);
assert!(!quiet.text().is_empty(), "and the file still compiles");
// A build that passes both means it wants neither, and the order it wrote them in is not
// something to make it think about.
opts.warnings_are_errors = true;
let both = run(&opts, source);
assert_eq!(both.messages, Vec::<String>::new());
assert!(!both.failed(), "-w -Werror is not an error about a warning nobody saw");
}
#[test]
fn the_dialect_reaches_the_keywords_and_the_checking() {
// `typeof` is C23's and GNU's, so the same source is a declaration under one dialect
// and a mistake under the other, which is the keyword table being built per dialect.
let source = "typeof(1) x;\n";
let mut opts = options();
opts.std = Std::C23;
opts.gnu_extensions = false;
assert!(!run(&opts, source).failed(), "{:?}", run(&opts, source).messages);
opts.std = Std::C17;
assert!(run(&opts, source).failed());
}
#[test]
fn asking_for_a_kind_that_is_not_written_yet_runs_the_front_end_and_writes_nothing() {
let mut opts = options();
opts.emit = EmitKind::Object;
let result = run(&opts, "int x = 1;\n");
assert!(!result.failed(), "{:?}", result.messages);
assert!(result.text().is_empty());
// And it still finds what the checking finds, so a later kind on a broken file is not
// a silent success.
assert!(run(&opts, "int f(void) { return undeclared; }\n").failed());
}
/// The machine code of `source`, insisting that it compiled cleanly.
fn mir(source: &str) -> String {
let mut opts = options();
opts.emit = EmitKind::MirFinal;
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
result.text().to_owned()
}
/// The whole compiler in one assertion, which is what this emit kind is for.
///
/// C in, machine instructions out, every register a real one and every frame offset a
/// number. Everything between the two is checked somewhere else, one pass at a time. What is
/// checked here is that the passes are joined up and that the driver runs them.
#[test]
fn a_function_goes_from_c_to_instructions_with_real_registers_in_them() {
let text = mir("int add(int a, int b) { return a + b; }\n");
assert!(text.starts_with("mfunc @add {"), "{text}");
assert!(text.contains("x64.add_rr_32"), "{text}");
assert!(text.contains("x64.ret"), "{text}");
// A virtual register is what the allocator was there to remove, so one left in the
// output is the difference between code and something that looks like code.
assert!(!text.contains('%'), "{text}");
}
/// A declaration has no body, so there is nothing to generate for one and nothing is.
#[test]
fn a_function_with_no_body_produces_no_machine_function() {
let text = mir("int g(int);\nint f(int a) { return g(a); }\n");
assert_eq!(text.matches("mfunc @").count(), 1, "{text}");
assert!(text.contains("mfunc @f {"), "{text}");
assert!(text.contains("x64.call"), "{text}");
}
/// Two functions come out in the order the module holds them, which is source order.
#[test]
fn every_definition_in_the_file_is_generated_and_they_keep_their_order() {
let text = mir("int a(int x) { return x; }\nint b(int x) { return x; }\n");
let first = text.find("mfunc @a").expect("the first function");
let second = text.find("mfunc @b").expect("the second function");
assert!(first < second, "{text}");
}
/// The target reaches the back end, so the same C is different instructions on Windows.
#[test]
fn the_target_decides_which_convention_the_generated_code_follows() {
let mut opts = options();
opts.emit = EmitKind::MirFinal;
let linux = run(&opts, "int f(int a) { return a; }\n").text().to_owned();
assert!(linux.contains("$rdi"), "{linux}");
opts.target = "x86_64-pc-windows-msvc".parse::<Triple>().unwrap();
let windows = run(&opts, "int f(int a) { return a; }\n").text().to_owned();
assert!(windows.contains("$rcx"), "{windows}");
assert!(!windows.contains("$rdi"), "{windows}");
}
/// And it reaches the front end, where it decides what an anonymous member is.
///
/// This is the shape `<objidl.h>` writes and the Windows headers are full of: the union inside
/// `STGMEDIUM` closes with `} DUMMYUNIONNAME;`, and the macro expands to nothing unless the
/// program defined `NONAMELESSUNION`, so what is left is a union with a tag and no name. On a
/// Windows target that is an anonymous member, and reading it as a declaration of nothing
/// drops it, which loses the names and the eight bytes the member takes up both.
#[test]
fn a_tagged_member_with_no_name_is_a_member_on_windows_and_nothing_on_linux() {
let source = concat!(
"struct S { union U { int i; void *p; }; unsigned long tymed; };\n",
"int size(void) { return sizeof(struct S); }\n",
"int f(struct S *s) { s->i = 1; return s->i; }\n",
);
let mut opts = options();
opts.target = "x86_64-pc-windows-gnu".parse::<Triple>().unwrap();
let windows = run(&opts, source);
assert!(windows.messages.is_empty(), "{:?}", windows.messages);
let linux = run(&options(), source);
assert_eq!(linux.messages.len(), 3, "{:?}", linux.messages);
assert!(linux.messages[0].contains("does not declare anything"), "{:?}", linux.messages);
// And the flag answers for either of them, so a program built for Linux against a header
// written for Windows can be read the way the header meant it.
let mut opts = options();
opts.ms_extensions = Some(true);
let asked = run(&opts, source);
assert!(asked.messages.is_empty(), "{:?}", asked.messages);
}
/// A target with no back end says so rather than generating something for another machine.
#[test]
fn a_target_this_has_no_back_end_for_is_reported_rather_than_generated() {
let mut opts = options();
opts.emit = EmitKind::MirFinal;
opts.target = "aarch64-unknown-linux-gnu".parse::<Triple>().unwrap();
let result = run(&opts, "int f(int a) { return a; }\n");
assert!(result.failed());
assert!(result.messages[0].contains("no back end for aarch64"), "{:?}", result.messages);
assert!(result.text().is_empty());
}
/// A construct the rule set does not reach yet is named, along with the function it is in.
///
/// The message is about this compiler being unfinished rather than about the program, which
/// is valid C either way, so it carries the note that says where the work is tracked. Both
/// functions are attempted, so a file that is ahead of the back end in three places says so
/// three times rather than one recompilation at a time.
#[test]
fn a_construct_the_back_end_cannot_reach_yet_is_reported_against_its_function() {
let mut opts = options();
opts.emit = EmitKind::MirFinal;
let source = "void a(int n) { int v[n] __attribute__((aligned(32))); v[0] = 1; }\n\
void b(int n) { int v[n] __attribute__((aligned(32))); v[0] = 1; }\n";
let result = run(&opts, source);
assert!(result.failed());
assert_eq!(result.messages.len(), 2, "{:?}", result.messages);
assert!(result.messages[0].contains("cannot generate code for 'a'"), "{:?}", result);
assert!(result.messages[0].contains("wants more alignment"), "{:?}", result);
assert!(result.messages[1].contains("cannot generate code for 'b'"), "{:?}", result);
assert!(result.text().is_empty());
}
/// A variable length array walks its pages under the flag that says every page is touched.
///
/// The pages the prologue takes are touched by the prologue. The pages the array takes are
/// however many the size worked out to, so touching them is a loop written around the
/// declaration rather than anything a prologue can do. What says the loop is there is the
/// ordered comparison it ends each step with, which nothing else in a function writes, and the
/// touch behind it. Without the flag the declaration is still the one subtraction it always was.
#[test]
fn a_variable_length_array_walks_its_pages_where_every_page_of_the_frame_is_to_be_touched() {
let mut opts = options();
opts.emit = EmitKind::MirFinal;
let source = "void a(int n) { int v[n]; v[0] = 1; }\n";
let plain = run(&opts, source);
assert!(!plain.failed(), "{:?}", plain.messages);
assert!(!plain.text().contains("cmp_set_a_64"), "{}", plain.text());
opts.stack_clash = true;
let result = run(&opts, source);
assert!(!result.failed(), "{:?}", result.messages);
assert!(result.text().contains("cmp_set_a_64"), "{}", result.text());
assert!(result.text().contains("or_mi_8"), "{}", result.text());
}
/// A function that keeps a frame pointer on Windows now has an unwind record and an object.
///
/// The record that platform carries counts every slot in it from where the stack pointer ends
/// the prologue, and it gets to that place by taking a constant off the frame pointer, so a
/// register pushed after the pointer was established has no row the format can write. The order
/// that does have one is the pushes, then the frame, and only then the pointer, which is what
/// the back end writes there and only there. A variable length array and an `alloca` keep a
/// pointer whatever the flags asked for, so before this they were the two shapes of C that
/// could not be compiled for that target at all. See tamnd/rucc#1403.
#[test]
fn a_function_that_keeps_a_frame_pointer_on_windows_reaches_an_object_file() {
let mut opts = options();
opts.emit = EmitKind::Object;
opts.target = "x86_64-pc-windows-gnu".parse::<Triple>().unwrap();
let source = concat!(
"void use(void *p);\n",
"void array(int n) { int v[n]; v[0] = 1; use(v); }\n",
"void taken(unsigned long n) { use(__builtin_alloca(n)); }\n",
);
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "{result:?}");
let bytes = match result.artifact {
Artifact::Object { bytes, .. } => bytes,
other => panic!("expected an object, got {other:?}"),
};
assert_eq!(&bytes[..2], b"\x64\x86", "an object that says which machine it is for");
// And the same two functions for Linux, so that what the test is measuring is the target
// rather than the program being one this compiler cannot reach yet.
let mut opts = options();
opts.emit = EmitKind::Object;
assert_eq!(run(&opts, source).messages, Vec::<String>::new());
}
/// The address of a name this file only declares, on the format with no table to read it out
/// of.
///
/// Every such name went into the table on every target, and COFF has no table, so the object
/// writer was handed a relocation it has no way to write and refused the whole file. What the
/// name stands for on this format is an address in the image whichever way the link supplies
/// it, so the instruction pointer reaches it and gcc writes the same. Three shapes here, since
/// the one that found it was a callback stored in a table of its own: a function passed as an
/// argument, one put in a variable that lives past the call, and one called outright, which
/// never needed the table and is here so the test says which of the three changed.
#[test]
fn the_address_of_a_function_this_file_only_declares_reaches_a_windows_object() {
let source = concat!(
"void other(void *p);\n",
"void takes(void (*f)(void *));\n",
"void (*held)(void *);\n",
"void pass(void) { takes(other); }\n",
"void keep(void) { held = other; }\n",
"void call(void) { other(0); }\n",
);
let mut opts = options();
opts.emit = EmitKind::Object;
opts.target = "x86_64-pc-windows-gnu".parse::<Triple>().unwrap();
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "{result:?}");
let bytes = match result.artifact {
Artifact::Object { bytes, .. } => bytes,
other => panic!("expected an object, got {other:?}"),
};
assert_eq!(&bytes[..2], b"\x64\x86", "an object that says which machine it is for");
// And the same source for Linux, which does have a table and still uses it, so what this
// measures is the format rather than the program.
let mut opts = options();
opts.emit = EmitKind::Object;
assert_eq!(run(&opts, source).messages, Vec::<String>::new());
}
/// An opcode the rule language has no word for is named anyway, and pointed at.
///
/// The rule language's spelling is the better name when there is one, but an opcode it has
/// no word for is exactly the opcode no rule lowers, so falling back to the opcode and the
/// type is what makes the message say anything at all in the cases that happen. The span is
/// the instruction's own, so the message lands on the line rather than on the file.
///
/// The width of the float is what keeps the program refused. Everything else here is split into
/// halves by `rucc_codegen::wide`, including the divisions and the conversions to a `float` and
/// a `double`, which became calls into the compiler runtime. A `long double` is the eighty bit
/// float on this target, the runtime has no conversion at that width because the back end has no
/// register that holds one, which is tamnd/rucc#326, so a function converting to it is left with
/// its wide values and reaches the selector the way every function of this width used to.
#[test]
fn an_opcode_with_no_name_in_the_rule_language_is_named_by_its_own_spelling() {
let mut opts = options();
opts.emit = EmitKind::MirFinal;
let source =
"long double f(int a) {\n __int128 wide = a;\n return (long double) wide;\n}\n";
let result = run(&opts, source);
assert!(result.failed());
assert!(
result.messages[0].contains("no rule lowers a `sext` producing a `i128`"),
"{result:?}"
);
assert!(result.messages[0].contains(":2:"), "the line the widening is on: {result:?}");
assert!(!result.messages[0].contains("this instruction"), "{result:?}");
}
/// The note names the issue tracker, which is where a reader finds out whether it is known.
#[test]
fn the_note_on_unfinished_work_points_at_the_issues_rather_than_at_the_plan() {
let mut opts = options();
opts.emit = EmitKind::MirFinal;
let source = "long double f(int a) { __int128 wide = a; return (long double) wide; }\n";
let result = run(&opts, source);
assert!(result.failed());
let note = result.messages.iter().find(|line| line.contains("note:")).expect("a note");
assert!(note.contains("https://github.com/tamnd/rucc/issues"), "{note}");
assert!(!note.contains("spec/17-milestones.md"), "{note}");
}
/// The two frame flags reach the frame, which is the only thing either of them does.
#[test]
fn the_frame_flags_on_the_command_line_reach_the_generated_frame() {
let source = "int f(int a) { return a; }\n";
assert!(!mir(source).contains("$rbp"), "a leaf needs no frame pointer by default");
let mut opts = options();
opts.emit = EmitKind::MirFinal;
opts.frame_pointer = true;
let kept = run(&opts, source).text().to_owned();
assert!(kept.contains("x64.push_64 $rbp"), "{kept}");
}
/// The assembly of `source`, insisting that it compiled cleanly.
fn asm(source: &str) -> String {
let mut opts = options();
opts.emit = EmitKind::Asm;
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
result.text().to_owned()
}
/// `-S`, which is the same compiler as the kind above it with a different last step.
///
/// What the assembly says is checked in `rucc-asm`, one instruction at a time and against the
/// target's own description of what an instruction is. What is checked here is that a C file
/// goes all the way to a listing an assembler would take, which means the directives around
/// the function as well as the instructions in it.
#[test]
fn a_function_goes_from_c_to_assembly_an_assembler_would_take() {
let text = asm("int add(int a, int b) { return a + b; }\n");
assert!(text.contains("\t.globl\tadd\n"), "{text}");
assert!(text.contains("\t.type\tadd, @function\n"), "{text}");
assert!(text.contains("\nadd:\n"), "{text}");
assert!(text.contains("\taddl\t"), "{text}");
assert!(text.contains("\tret\n"), "{text}");
assert!(text.contains("\t.size\tadd, .-add\n"), "{text}");
// Without this the stack the program runs on is executable, which is not a default
// anybody chose and is not a thing a reader would notice missing.
assert!(text.contains(".note.GNU-stack"), "{text}");
}
/// A call through a function pointer, which is a different instruction from a call to a name.
///
/// Both are in the one function on purpose. What is being read is that the two calls are told
/// apart all the way down: one carries a name the linker resolves and one carries a register,
/// and neither turns into the other on the way.
#[test]
fn a_call_through_a_function_pointer_goes_through_the_register_it_is_in() {
let text = asm("int g(int);\nint f(int (*p)(int), int a) { return p(a) + g(a); }\n");
assert!(text.contains("\tcall\t*%"), "{text}");
assert!(text.contains("\tcall\tg\n"), "{text}");
// The address arrived in the first argument register and the argument the call passes has
// to end up there, so the two cannot be the same register and the compiler has to have
// moved one of them.
assert!(text.contains("%rdi"), "{text}");
}
/// A name at file scope, which is the one address a function cannot compute for itself. The
/// `lea` that computes it is folded into the load that reads through it, so what is left to
/// read is the addressing mode, which is where the instruction pointer shows up.
#[test]
fn the_address_of_a_global_is_read_from_the_instruction_pointer() {
let text = asm("extern int counter;\nint f(void) { return counter; }\n");
assert!(text.contains("\tmovl\tcounter(%rip), %eax\n"), "{text}");
}
/// Every comparison a branch can be on, which the machine jumps on without keeping a byte.
///
/// Ten conditions, and each of them comes out as its opposite because the block falls into the
/// arm the comparison is true for and jumps to the other one. That is the half of this most
/// worth pinning: a jump on the condition rather than on its opposite compiles, encodes and
/// runs, and gets every one of these ten functions backwards. The unsigned four and the signed
/// four are separate for the same reason, since `jl` where `jb` was meant is a program that
/// works until an address is above two gigabytes.
#[test]
fn a_branch_on_a_comparison_jumps_on_the_opposite_of_what_it_compared() {
let arms = "return 1; return 2;";
let signed = [("==", "jne"), ("!=", "je"), ("<", "jge"), ("<=", "jg"), (">", "jle")];
for (operator, jump) in signed.into_iter().chain([(">=", "jl")]) {
let text = asm(&format!("int f(int a, int b) {{ if (a {operator} b) {arms} }}\n"));
assert!(
text.contains(&format!("\tcmpl\t%esi, %edi\n\t{jump}\t")),
"{operator}: {text}"
);
assert!(!text.contains("\tset"), "{operator}: {text}");
assert!(!text.contains("\ttest"), "{operator}: {text}");
}
let unsigned = [("<", "jae"), ("<=", "ja"), (">", "jbe"), (">=", "jb")];
for (operator, jump) in unsigned {
let source =
format!("int f(unsigned a, unsigned b) {{ if (a {operator} b) {arms} }}\n");
let text = asm(&source);
assert!(
text.contains(&format!("\tcmpl\t%esi, %edi\n\t{jump}\t")),
"{operator}: {text}"
);
}
// And against a constant, which is four comparisons in five and is where the saving
// mostly is, since the byte that goes was the only reason the constant was in a register.
let text = asm("int f(int a) { if (a < 7) return 1; return 2; }\n");
assert!(text.contains("\tcmpl\t$7, %edi\n\tjge\t"), "{text}");
}
/// The comparison whose answer is a value rather than a branch, which keeps its byte.
///
/// The one that goes is the byte nothing but the branch reads. A comparison the program asked
/// for the answer of is not that, and there is no branch behind it to fold into in any case,
/// so this is here to say that what was taken out was taken out of one place and not two.
#[test]
fn a_comparison_whose_answer_the_program_wanted_still_writes_a_byte() {
let text = asm("int f(int a, int b) { return a < b; }\n");
assert!(text.contains("\tsetl\t"), "{text}");
}
/// The same source at `-O2`, which is where the optimizer's passes are in the list.
fn optimized(source: &str) -> String {
let mut opts = options();
opts.emit = EmitKind::Asm;
opts.opt_level = rucc_session::OptLevel::O2;
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
result.text().to_owned()
}
/// A dense `switch` whose arms are a function of the label, which is arithmetic.
///
/// Sixteen labels, and the arm for label `k` gives `k + 1`. What came out of this was a
/// comparison and a jump for every one of them, which is tamnd/rucc#728. What comes out now is
/// one comparison and one addition, and the count is the whole of the claim: it does not grow
/// with the number of labels, so sixteen and a hundred and sixty compile to the same thing.
///
/// The comparison is unsigned because the range check is the label minus the lowest one, which
/// is a count and not a number the program wrote.
#[test]
fn a_switch_whose_arms_are_a_function_of_the_label_is_a_range_check_and_arithmetic() {
let arms: String =
(0..16).map(|k| format!("case {k}: return {};", k + 1)).collect::<Vec<_>>().join(" ");
let text = optimized(&format!("int f(int x) {{ switch (x) {{ {arms} }} return 0; }}\n"));
assert!(text.contains("\tcmpl\t$15, %edi\n\tja\t"), "{text}");
assert!(text.contains("\taddl\t$1, %edi"), "{text}");
assert_eq!(text.matches("\tcmp").count(), 1, "{text}");
}
/// The same `switch` with one arm off the line, which keeps every comparison it had.
///
/// The answers being a line is what licenses the range check, since a range check answers for
/// every label in the range at once. One label whose arm disagrees is a label the check would
/// answer wrongly, so this is here to say that the pass is reading the arms and not counting
/// the labels.
#[test]
fn a_dense_switch_whose_arms_are_not_a_line_keeps_its_comparisons() {
let arms: String = (0..16)
.map(|k| format!("case {k}: return {};", if k == 9 { 100 } else { k + 1 }))
.collect::<Vec<_>>()
.join(" ");
let text = optimized(&format!("int f(int x) {{ switch (x) {{ {arms} }} return 0; }}\n"));
assert!(text.matches("\tcmp").count() > 1, "{text}");
}
/// A conversion whose operand the optimizer turned into a constant, which is the whole of what
/// `rucc_opt::fold` does with floating point.
///
/// The cast is not a constant expression, so the front end leaves it alone and the pipeline is
/// what has to see it. Load forwarding turns the local back into the constant that was stored
/// into it, and the conversion then has an `fconst` in front of it. What came out before was
/// the sixty four bit pattern moved into a register, moved into an `xmm`, and a `cvttsd2si`.
#[test]
fn a_conversion_from_a_constant_double_is_the_number_it_converts_to() {
let text = optimized("int f(void) { double d = 2.75; return (int) d; }\n");
assert!(text.contains("movl\t$2, %eax"), "{text}");
assert!(!text.contains("cvttsd2si"), "{text}");
}
/// A slot of a `const` table read at an index the optimizer works out, which is what
/// `rucc_opt::image` is for.
///
/// The subscript is not a constant expression and the front end does not fold it. What it
/// writes is the index sign extended, multiplied by four and added to the address of the
/// table, so the offset only exists once `fold` has run and the load only folds after that.
/// What came out before was a `movl t+8(%rip), %eax`.
#[test]
fn a_slot_of_a_read_only_table_is_the_value_the_table_holds() {
let text =
optimized("static const int t[4] = {10, 20, 30, 40};\nint f(void) { return t[2]; }\n");
assert!(text.contains("movl\t$30, %eax"), "{text}");
assert!(!text.contains("t(%rip)"), "{text}");
}
/// A byte of a string literal, which is the same fold reading literal bytes rather than the
/// scalars an `int` array is written as.
#[test]
fn a_byte_of_a_read_only_string_is_the_byte_the_string_spells() {
let text = optimized("static const char s[] = \"abc\";\nint f(void) { return s[1]; }\n");
assert!(text.contains("movl\t$98, %eax"), "{text}");
}
/// A global something can write to, which is the condition the fold turns on and therefore
/// the one worth a test of its own. Nothing here is `const`, so the store in `g` could be the
/// store that ran last and the load has to happen.
#[test]
fn a_table_that_is_not_read_only_keeps_its_load() {
let text = optimized(
"static int t[4] = {10, 20, 30, 40};\nvoid g(int x) { t[2] = x; }\nint f(void) { return t[2]; }\n",
);
assert!(!text.contains("movl\t$30, %eax"), "{text}");
}
/// `gcc.c-torture/execute/20030216-1.c`, which is the program the whole of this is for.
///
/// It calls a function nothing defines, guarded by a condition the optimizer is meant to prove
/// false, so the program links exactly when the call has been folded away. Getting there is
/// three folds standing on each other: the load of the `const double`, the conversion of it to
/// an `int`, and the comparison against one.
#[test]
fn a_call_guarded_by_a_condition_a_read_only_object_settles_is_not_emitted() {
let text = optimized(
"void link_error(void);\nconst double one = 1.0;\nint main(void) { if ((int) one != 1) link_error(); return 0; }\n",
);
assert!(!text.contains("call\tlink_error"), "{text}");
}
/// A cast between a pointer and an integer as wide as one, which is every one C writes here.
#[test]
fn a_cast_between_a_pointer_and_an_integer_leaves_the_value_where_it_is() {
let text = asm("long f(void *p) { return (long)p; }\n");
// Every instruction in the body is a full width move or the return. The copies are the
// allocator taking no hints, and what matters here is what is not among them: nothing
// narrows the value and nothing widens it again, which is what a cast that did something
// would look like.
for line in text.lines().filter(|line| line.starts_with('\t') && !line.contains('.')) {
let mnemonic = line.split_whitespace().next().unwrap_or("");
assert!(matches!(mnemonic, "movq" | "ret"), "{line} in\n{text}");
}
}
/// The arguments past the sixth arrive in the caller's memory rather than in a register, and
/// where that memory is depends on what the prologue did, so this is checked at the end of the
/// pipeline rather than in the middle of it.
#[test]
fn an_argument_past_the_last_register_is_read_out_of_the_caller_s_stack() {
let six = "long a, long b, long c, long d, long e, long f";
let text = asm(&format!("long f({six}, long g, long h) {{ return g + h; }}\n"));
// Nothing is pushed and no frame is taken, so the only thing between the stack pointer and
// the caller's arguments is the return address the call pushed. Which is where gcc 16.2.0
// reads them from too, at `-O0`, though it reads them in three instructions where this
// reads them in two: the second read is the addition's own memory operand, which is
// `rucc_codegen::combine`, and the offset in it is the one the frame layout wrote into the
// load before the two were put together.
assert!(text.contains("\tmovq\t8(%rsp), "), "{text}");
assert!(text.contains("\taddq\t16(%rsp), "), "{text}");
// A narrower one is read at its own width, because the bits above it are bits the
// convention says nothing about, and one in the other register file with the other file's
// instruction.
let narrow = asm(&format!("int f({six}, int g) {{ return g; }}\n"));
assert!(narrow.contains("\tmovl\t8(%rsp), "), "{narrow}");
let eight =
"double a, double b, double c, double d, double e, double f, double g, double h";
let float = asm(&format!("double f({eight}, double i) {{ return i; }}\n"));
assert!(float.contains("\tmovsd\t8(%rsp), "), "{float}");
}
/// The other end of the same thing. What the caller writes is at the stack pointer, because
/// that is the bottom of its frame and the bottom of its frame is where the callee looks.
#[test]
fn a_call_writes_the_arguments_with_no_register_left_at_the_stack_pointer() {
let six = "1, 2, 3, 4, 5, 6";
let decl = "long g(long, long, long, long, long, long, long, long);\n";
let text = asm(&format!("{decl}long f(void) {{ return g({six}, 7, 8); }}\n"));
assert!(text.contains("\tmovq\t%"), "{text}");
assert!(text.contains(", (%rsp)\n"), "{text}");
assert!(text.contains(", 8(%rsp)\n"), "{text}");
// And it reserved the bytes it wrote into, so nothing else in the frame is on top of them.
assert!(text.contains("\tsubq\t$"), "{text}");
// A narrower one is written at its own width, matching what the callee reads it back with.
let narrow = "int g(int, int, int, int, int, int, int);\n";
let text = asm(&format!("{narrow}int f(void) {{ return g({six}, 7); }}\n"));
assert!(text.contains("\tmovl\t%"), "{text}");
assert!(text.contains(", (%rsp)\n"), "{text}");
}
/// The count a variadic callee on this convention reads is a count of vector registers, so a
/// float that ran out of them and went to memory is not in it.
#[test]
fn a_variadic_call_counts_registers_and_not_arguments() {
let nine = "1., 2., 3., 4., 5., 6., 7., 8., 9.";
let decl = "int g(int, ...);\n";
let text = asm(&format!("{decl}int f(void) {{ return g(0, {nine}); }}\n"));
assert!(text.contains("\tmovl\t$8, "), "eight registers, not nine: {text}");
assert!(text.contains("\tmovsd\t%"), "{text}");
assert!(text.contains(", (%rsp)\n"), "{text}");
}
/// The callee's half of the same convention. Every argument register it was handed is written
/// into its frame on the way in, because which of them hold anything is a thing only the caller
/// knew, and the ones the signature does name are left out because `va_start` sets the offsets
/// past them and nothing ever reads their slots.
#[test]
fn a_variadic_function_writes_the_argument_registers_it_was_handed_into_its_frame() {
let body =
"__builtin_va_list ap; __builtin_va_start(ap, n); __builtin_va_end(ap); return n;";
let text = asm(&format!("int f(int n, ...) {{ {body} }}\n"));
// Five general purpose registers and eight vector ones, since the one parameter the
// signature names took the first of the six.
let stores = |mnemonic: &str| text.matches(&format!("\t{mnemonic}\t%")).count();
assert!(text.contains(", 8(%r"), "the second slot, not the first: {text}");
assert!(!text.contains(", 0(%r"), "{text}");
// All sixteen bytes of each vector register, which is what gcc writes and what a `va_arg`
// of a `_Float128` reads back, so the mnemonic is the one that moves a whole register.
assert_eq!(stores("movaps"), 8, "every vector register: {text}");
assert_eq!(stores("movsd"), 0, "and the whole of each one: {text}");
// And the area is one of the function's own stack objects, so the frame holds it.
assert!(text.contains("\tsubq\t$"), "{text}");
}
/// What `va_start` writes is the four fields of the list, and the two numbers among them are
/// where the arguments the signature names left the walk over each file's registers.
#[test]
fn va_start_writes_the_four_fields_the_psabi_describes() {
let start = "__builtin_va_list ap; __builtin_va_start(ap, d);";
let params = "int a, int b, int c, double d";
let text = asm(&format!("int f({params}, ...) {{ {start} return a; }}\n"));
// Three integers took three of the six general purpose registers, and one double took one
// of the eight vector ones, so the walk starts at twenty four bytes into the first half and
// sixteen bytes into the second, which begins at forty eight.
assert!(text.contains(" movl $24, "), "{text}");
assert!(text.contains(" movl $64, "), "{text}");
// The other two fields are addresses rather than numbers, so each is stored as a word and
// each is a `lea` away. One of them reaches above the frame, which is where the caller's
// arguments are and is the only thing in this function that is not below the stack pointer.
assert!(text.contains(", 8(%r"), "{text}");
assert!(text.contains(", 16(%r"), "{text}");
let frame: u32 = text
.lines()
.find_map(|line| line.trim().strip_prefix("subq $")?.split(',').next()?.parse().ok())
.expect("a variadic function takes a frame for the save area");
let above = |line: &str| {
let at: u32 = line.trim().strip_prefix("leaq ")?.split('(').next()?.parse().ok()?;
Some(at > frame)
};
assert!(text.lines().filter_map(above).any(|it| it), "{frame}: {text}");
}
/// A `va_arg` is a branch on whether the argument it wants is still in the save area, and which
/// of the two halves it walks is the type's answer.
#[test]
fn va_arg_branches_on_whether_the_argument_is_still_in_the_save_area() {
let read = "__builtin_va_list ap; __builtin_va_start(ap, n);";
let ints = format!("int f(int n, ...) {{ {read} return __builtin_va_arg(ap, int); }}\n");
let text = asm(&ints);
// The last general purpose slot begins at forty, so an offset above it is an argument the
// caller left in its own memory instead.
assert!(text.contains("$40, "), "{text}");
assert!(text.contains(" cmpl "), "{text}");
// The jump is the unsigned one, since an offset is a count of bytes. It is the opposite
// of the comparison the front end wrote, because the block falls into the half taken when
// the argument is still in the save area and jumps to the other one.
assert!(text.contains(" ja "), "{text}");
let arg = "__builtin_va_arg(ap, double)";
let text = asm(&format!("double f(int n, ...) {{ {read} return {arg}; }}\n"));
assert!(text.contains("$160, "), "the last vector slot: {text}");
}
/// A structure assigned is a copy of a known size, and a copy of a known size is a run of
/// moves rather than a call to a library this compiler has no way to reach yet.
#[test]
fn a_structure_assignment_is_a_move_for_each_word_of_it() {
let decl = "struct pair { long a, b; };\n";
let body = "struct pair p = *q; return p.a + p.b;";
let text = asm(&format!("{decl}long f(struct pair *q) {{ {body} }}\n"));
assert!(!text.contains("memcpy"), "nothing calls the library: {text}");
assert!(!text.contains("\tcall"), "{text}");
// Sixteen bytes aligned to eight is two words, and each is a load and a store.
assert!(text.matches("\tmovq\t").count() >= 4, "two words each way: {text}");
}
/// A word is as wide as the object is aligned to and no wider, so a character array is copied
/// a byte at a time and a structure of longs eight bytes at a time.
#[test]
fn how_wide_a_word_of_a_copy_is_follows_the_alignment() {
let decl = "struct bytes { char a[8]; };\n";
let body = "struct bytes p = *q; return p.a[0];";
let text = asm(&format!("{decl}int f(struct bytes *q) {{ {body} }}\n"));
// Eight bytes aligned to one is eight words, and each is a load and a store.
assert!(text.matches("\tmovb\t").count() >= 16, "a byte at a time: {text}");
}
/// What an initialiser does not name is zero, which the front end writes as a fill and this
/// writes as the byte spread across each word.
#[test]
fn the_part_of_an_initialiser_that_names_nothing_is_stored_as_zero() {
let decl = "struct wide { long a, b, c; };\n";
let text = asm(&format!("{decl}long f(void) {{ struct wide w = {{ 7 }}; return w.c; }}\n"));
assert!(!text.contains("memset"), "nothing calls the library: {text}");
// Either spelling of a zero in a register, the move of one or the exclusive or of the
// register with itself that `rucc_codegen::shorten` writes instead where it is free. The
// exclusive or is the thirty-two bit one whatever the width of the word, since the half of
// the register it does not write is cleared rather than left alone.
assert!(text.contains("\tmovq\t$0, ") || text.contains("\txorl\t"), "the zero: {text}");
}
/// A copy too large to be worth unrolling is a call to the runtime, which is the C library on
/// a hosted target and `rucc-builtins` on a freestanding one.
#[test]
fn a_copy_too_large_to_unroll_calls_the_runtime() {
let decl = "struct huge { char a[4096]; };\n";
let mut opts = options();
opts.emit = EmitKind::Asm;
let source = format!("{decl}void f(struct huge *p, struct huge *q) {{ *p = *q; }}\n");
let result = run(&opts, &source);
assert!(!result.failed(), "{:?}", result.messages);
let text = result.text();
assert!(text.contains("call") && text.contains("memcpy"), "{text}");
// The size in the register the convention passes the third argument in, which is what
// says the call was built from the convention and not from the shape of the IR.
assert!(text.contains("4096"), "the size travels: {text}");
}
/// And an object passed by value with more words in it than that is the same call again,
/// written in front of the call the object is an argument of.
///
/// The copy is one the caller owes the callee, since the callee is free to write to what it
/// was handed, so it is not an optimization that the size decides but the only way the call
/// can be made at all.
#[test]
fn a_structure_too_large_to_unroll_is_copied_into_the_argument_area_by_the_runtime() {
let decl = "struct huge { char a[4096]; };\nint take(struct huge);\n";
let text = asm(&format!("{decl}int f(struct huge *p) {{ return take(*p); }}\n"));
let copy = text.find("call\tmemcpy").expect("the copy");
let call = text.find("call\ttake").expect("the call");
assert!(copy < call, "the copy comes first: {text}");
// Into the bottom of the outgoing area, which is where the stack pointer already is, and
// with the size in the register the convention passes the third argument in. The address
// of the bottom of the frame is the stack pointer itself, so what carries it is the move
// rather than the address computation the selector wrote. See `rucc_codegen::shorten`.
assert!(text.contains("movq\t%rsp, %rdi"), "the destination: {text}");
assert!(text.contains("$4096, %edx"), "the size: {text}");
}
/// A frame that had to force its own alignment cannot say how far away the caller's stack
/// pointer was, so it reaches back through the frame pointer instead.
#[test]
fn a_realigned_frame_reads_them_through_the_frame_pointer() {
let six = "long a, long b, long c, long d, long e, long f";
let body = "_Alignas(32) long wide[4]; wide[0] = g; return wide[0];";
let text = asm(&format!("long f({six}, long g) {{ {body} }}\n"));
// The frame pointer is saved and pointed at where it was saved before the alignment is
// forced, so the caller's arguments stay a constant distance from it: one word for the
// saved frame pointer and one for the return address.
assert!(text.contains("\tandq\t$-32, %rsp"), "{text}");
assert!(text.contains("\tmovq\t16(%rbp), "), "{text}");
assert!(!text.contains("\tmovq\t16(%rsp), "), "{text}");
}
/// The object format decides the directives, and the target decides the object format.
#[test]
fn the_target_decides_how_the_assembly_is_spelled() {
let mut opts = options();
opts.emit = EmitKind::Asm;
opts.target = "x86_64-apple-darwin".parse::<Triple>().unwrap();
let text = run(&opts, "int f(void) { return 0; }\n").text().to_owned();
assert!(text.contains("__TEXT,__text"), "{text}");
assert!(text.contains("\n_f:\n"), "{text}");
assert!(!text.contains(".note.GNU-stack"), "{text}");
}
/// The object file of `source`, insisting that it compiled cleanly.
fn obj(source: &str) -> Vec<u8> {
let mut opts = options();
opts.emit = EmitKind::Object;
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
match result.artifact {
Artifact::Object { bytes, .. } => bytes,
other => panic!("expected an object, got {other:?}"),
}
}
/// `-c`, which is the last step of the three the back end can end with.
///
/// What is in the file is checked in `rucc-object`, a field at a time. What is checked here is
/// that a C file goes all the way to one, which is the whole compiler in one line and the
/// thing that stops working when a layer between them changes its mind about something.
#[test]
fn a_function_goes_from_c_to_an_object_a_linker_would_take() {
let bytes = obj("int add(int a, int b) { return a + b; }\n");
assert_eq!(&bytes[..4], b"\x7fELF", "an object file starts by saying it is one");
let text = asm("int add(int a, int b) { return a + b; }\n");
assert!(
text.contains("\taddl\t"),
"and the listing of it is the same instructions:\n{text}"
);
}
/// A variable this file defines, which is what a reference to one has to resolve against.
#[test]
fn a_variable_goes_from_c_to_the_section_it_belongs_in() {
let text = asm("int counter = 42;\nstatic int hidden;\nconst int fixed = 7;\n");
assert!(text.contains("\t.data\n\t.globl\tcounter\n"), "{text}");
assert!(text.contains("\ncounter:\n\t.long\t42\n"), "{text}");
assert!(text.contains("\t.size\tcounter, .-counter\n"), "{text}");
// A zeroed variable carries its size and none of its bytes, and a `static` one is not
// announced to the linker at all, which is the whole of what `static` means here.
assert!(text.contains("\t.bss\n\t.p2align\t2\n"), "{text}");
assert!(text.contains("\nhidden:\n\t.space\t4\n"), "{text}");
assert!(!text.contains(".globl\thidden"), "{text}");
// Nothing writes through it, so it goes in a page the loader can map read only and every
// process running the program can share.
assert!(text.contains("\t.section\t.rodata\n"), "{text}");
}
/// A bit-field with a value in it, which is written as the bytes the value lands in.
///
/// The interesting one is the field whose lowest byte is zero. The bytes a bit-field
/// initializer makes are put together first and then taken back out as the run they make,
/// and taking them out starts at the byte the field starts at, so a zero byte at the front
/// used to end the object up in `.bss` with the rest of its value thrown away.
#[test]
fn a_bit_field_initializer_writes_every_byte_of_the_value_and_not_only_the_ones_that_are_set() {
let text = asm("struct s { unsigned f : 20; } x = { 0x12300 };\n");
assert!(text.contains("\t.data\n"), "there is something to write: {text}");
assert!(text.contains("\nx:\n\t.ascii\t\"\\000#\\001\"\n"), "and it is the value: {text}");
// Two fields, the first of them zero, which is the same thing said with the zero byte
// inside the run rather than at the front of it.
let text = asm("struct s { unsigned a : 8; unsigned b : 8; } x = { 0, 3 };\n");
assert!(text.contains("\nx:\n\t.ascii\t\"\\000\\003\"\n"), "{text}");
// Wider than an `int`, which is the same code and is worth saying because the value no
// longer fits in the thirty two bits a bit-field used to be read at.
let text = asm("struct s { unsigned long long f : 40; } x = { 0x100000 };\n");
assert!(text.contains("\nx:\n\t.ascii\t\"\\000\\000\\020\"\n\t.space\t5\n"), "{text}");
// Nothing in it, which still costs no bytes in the file.
let text = asm("struct s { unsigned f : 20; } x = { 0 };\n");
assert!(text.contains("\t.bss\n"), "an object of zeroes is zeroes: {text}");
assert!(text.contains("\nx:\n\t.space\t4\n"), "{text}");
}
/// A string literal, which is a variable the program never named.
#[test]
fn a_string_literal_is_a_variable_with_a_name_no_program_could_write() {
let text = asm("const char *f(void) { return \"hi\"; }\n");
assert!(text.contains("\t.ascii\t\"hi\\000\"\n"), "{text}");
assert!(text.contains("\t.section\t.rodata\n"), "{text}");
let label = text
.lines()
.find(|line| line.starts_with(".Lstr"))
.unwrap_or_else(|| panic!("a label for the literal in\n{text}"));
assert!(!text.contains(&format!(".globl\t{}", label.trim_end_matches(':'))), "{text}");
}
/// A variable holding the address of another one, which is the only hole an image has in it.
#[test]
fn an_address_in_an_initializer_is_left_to_the_linker() {
let source = "int counter;\nint *p = &counter;\n";
let text = asm(source);
assert!(text.contains("\np:\n\t.quad\tcounter\n"), "{text}");
// And in the object it is eight zero bytes and a relocation, which is what the two paths
// being one description is for.
let bytes = obj(source);
assert!(bytes.windows(8).any(|w| w == b"counter\0"), "the object has to name it");
}
/// A const table of function pointers, which is the shape that made SQLite link with a warning.
///
/// The table is const so nothing in the program writes it, but the addresses in it are not
/// numbers a link knows, so the loader writes it once at startup. Putting it in `.rodata`
/// leaves a relocation in a section that is never writable, and what the linker does about
/// that is set `DT_TEXTREL` on the whole image and say so. `.data.rel.ro` is writable for
/// exactly as long as the loader is writing it and read only afterwards, which is what the
/// program asked for in the first place.
#[test]
fn a_constant_holding_an_address_goes_in_the_section_the_loader_may_write_once() {
// Both names are `static` and both are defined here, so nothing else can be the one that
// defines them and the linker may lay the table out in the first pages of the segment.
let text = asm("static void a(void) {}\nstatic void b(void) {}\n\
struct m { void (*x)(void); void (*y)(void); };\n\
const struct m t = { a, b };\n");
assert!(text.contains("\t.section\t.data.rel.ro.local,\"aw\",@progbits\n"), "{text}");
assert!(text.contains("\nt:\n\t.quad\ta\n\t.quad\tb\n"), "{text}");
// One name this file only declares is enough to lose the `.local` half, because a name the
// link resolves from somewhere else is one another object may turn out to define.
let text =
asm("void a(void);\nstruct m { void (*x)(void); };\nconst struct m t = { a };\n");
assert!(text.contains("\t.section\t.data.rel.ro,\"aw\",@progbits\n"), "{text}");
// And a constant with no address in it stays exactly where it was.
let text = asm("const int fixed = 7;\n");
assert!(text.contains("\t.section\t.rodata\n"), "{text}");
}
/// A thread-local variable, which is the whole of one: the storage and the way to reach it.
///
/// The two halves are in one test on purpose. Either one alone is worse than neither: a
/// definition with no way to reach it is a variable nothing can read, and a reference with no
/// definition behind it is the bug this pair was written to prevent, where a thread-local is
/// read as though it were an ordinary global and every thread quietly shares one copy.
#[test]
fn a_thread_local_variable_is_storage_a_thread_gets_a_copy_of_and_an_offset_into_it() {
let text = asm("_Thread_local int x = 1;\nint read(void) { return x; }\n");
// The storage: the section the loader makes a copy of for every thread, and the symbol
// type that makes a linker refuse an ordinary relocation aimed at it.
assert!(text.contains("\t.section\t.tdata,\"awT\",@progbits\n"), "{text}");
assert!(text.contains("\t.type\tx, @tls_object\n"), "{text}");
// The way to reach it: how far into a thread's block it sits, out of the table, plus where
// this thread's block is, out of the segment register.
assert!(text.contains("x@GOTTPOFF(%rip)"), "{text}");
assert!(text.contains("%fs:0"), "{text}");
}
/// The second half of that on its own, which is what a program asks for when the number it
/// wants is the thread rather than anything in it.
///
/// rpmalloc writes this to find its per thread cache, and it is the whole of what stood
/// between that library and a build. gcc 16 writes the same one instruction.
#[test]
fn the_address_of_this_thread_s_own_storage_is_read_out_of_the_segment_register() {
let text = asm("void *here(void) { return __builtin_thread_pointer(); }\n");
assert!(text.contains("movq\t%fs:0, "), "{text}");
// No table slot and no addition, because there is no variable to find inside the block.
assert!(!text.contains("GOTTPOFF"), "{text}");
}
/// The four hints and the one thing that decides between them, which is the locality.
///
/// A prefetch promises nothing, so what is checked here is the instruction rather than any
/// effect: the program runs the same whichever of the four it gets, and the whole point of
/// writing one is which. The four spellings are what gcc 16.2.0 writes for the same four
/// programs, measured on x86-64 rather than read off a manual.
///
/// The write hint is not one of them. `prefetchw` is not in the base instruction set and gcc
/// writes it only when the command line says the part has it, so a prefetch for a write is the
/// same instruction as a prefetch for a read, which is the fourth line here.
#[test]
fn a_prefetch_is_one_of_four_instructions_and_the_locality_is_what_picks() {
for (locality, wanted) in
[(0, "prefetchnta"), (1, "prefetcht2"), (2, "prefetcht1"), (3, "prefetcht0")]
{
let source =
format!("void warm(void *p) {{ __builtin_prefetch(p, 0, {locality}); }}\n");
let text = asm(&source);
assert!(text.contains(&format!("\t{wanted}\t")), "locality {locality}: {text}");
}
// The one argument form, which means a read that wants all of the data afterwards.
let text = asm("void warm(void *p) { __builtin_prefetch(p); }\n");
assert!(text.contains("\tprefetcht0\t"), "{text}");
// A prefetch for a write, which on a part nobody said has `prefetchw` is the same
// instruction as the read above.
let text = asm("void warm(void *p) { __builtin_prefetch(p, 1); }\n");
assert!(text.contains("\tprefetcht0\t"), "{text}");
assert!(!text.contains("prefetchw"), "{text}");
}
/// The stop, which is the one instruction the machine is promised never to have a meaning for.
///
/// What is checked is the instruction and not any effect, because the effect is a fault and a
/// unit test has nowhere to take one. gcc 16.2.0 writes the same instruction for the same
/// program, and it is not a call, which is the half that matters in a kernel and in a
/// freestanding program: neither has an `abort` for a call to reach.
///
/// The second half is the block going on after it. A statement written under a stop is
/// compiled the way it would have been without one, so the addition is still there, and that
/// is the front end declining to treat a stop as the end of a path.
#[test]
fn a_trap_is_the_instruction_the_machine_has_no_meaning_for() {
let text = asm("void stop(void) { __builtin_trap(); }\n");
assert!(text.contains("\tud2\n"), "{text}");
assert!(!text.contains("\tcall"), "a stop is not a call to anything: {text}");
let text = asm("int stop(int a) { __builtin_trap(); return a + 1; }\n");
assert!(text.contains("\tud2\n"), "{text}");
assert!(text.contains("\taddl\t"), "the block goes on after a stop: {text}");
}
/// The promise about the low bits of an address, whose value is the address.
///
/// Nothing here reads an alignment fact about a value yet, so what the call leaves behind is
/// its first argument and no instruction at all. The claim worth checking end to end is that
/// the name is gone: a builtin nothing lowers reaches the assembler as a call to a name no
/// object file defines, which is how this one used to fail to link out of glibc's string
/// headers.
///
/// The arguments behind the address are still evaluated, because gcc 16.2.0 evaluates them at
/// every optimization level even though it has folded the call away. A constant has nothing to
/// run and is dropped, and a call does, so the second half asks for the callee by name.
#[test]
fn assume_aligned_is_its_first_argument_and_keeps_the_rest() {
let text = asm("void *aligned(char *p) { return __builtin_assume_aligned(p, 16); }\n");
assert!(!text.contains("assume_aligned"), "{text}");
assert!(!text.contains("\tcall"), "nothing is called for an alignment fact: {text}");
let source = "unsigned long width(void);\n\
void *aligned(char *p) { return __builtin_assume_aligned(p, width()); }\n";
let text = asm(source);
assert!(!text.contains("assume_aligned"), "{text}");
assert!(text.contains("width"), "the argument that is not the answer still runs: {text}");
}
/// Where a frame is, which on this machine is what the frame pointer holds.
///
/// The first half is a function that would have kept no frame pointer at all, since it is a
/// leaf with no locals, and keeps one because it asked where its frame is. The answer being
/// `%rbp` rather than an offset off `%rsp` is the whole of the builtin at a depth of zero.
///
/// The second half is the walk. Each link above zero is one load through the register the last
/// one wrote, so a depth of two is two loads and a depth of three is three, which is what gcc
/// 16.2.0 writes for the same programs at `-O2`.
#[test]
fn the_frame_address_is_the_frame_pointer_after_walking_that_many_links() {
let text = asm("void *here(void) { return __builtin_frame_address(0); }\n");
assert!(text.contains("pushq\t%rbp"), "a function that asks keeps a frame pointer: {text}");
assert!(text.contains("movq\t%rbp, %rax"), "{text}");
assert!(!text.contains("\tcall"), "a frame address is not a call to anything: {text}");
let walk = |depth: u32| {
let source = format!("void *up(void) {{ return __builtin_frame_address({depth}); }}\n");
asm(&source).matches("movq\t(%r").count()
};
assert_eq!(walk(1), 1, "one link is one load");
assert_eq!(walk(3), 3, "three links are three loads");
}
/// The address a frame returns to, which is one word above the frame the walk ended at.
///
/// A word is eight bytes here and the `8(...)` is the whole claim: the call instruction pushed
/// the return address and the prologue pushed the caller's frame pointer under it, so what the
/// frame pointer points at is the link and what is above it is where control goes back to.
/// gcc 16.2.0 writes `movq 8(%rbp), %rax` for the first of these, measured at `-O2`.
///
/// The second half is the same walk the frame address does, with the load at the end of it
/// reading one word further along rather than the register itself being the answer.
#[test]
fn the_return_address_is_one_word_above_the_frame_the_walk_ended_at() {
let text = asm("void *back(void) { return __builtin_return_address(0); }\n");
assert!(text.contains("pushq\t%rbp"), "a function that asks keeps a frame pointer: {text}");
assert!(text.contains("movq\t8(%rbp), %rax"), "{text}");
assert!(!text.contains("\tcall"), "a return address is not a call to anything: {text}");
let text = asm("void *back(void) { return __builtin_return_address(2); }\n");
assert_eq!(text.matches("movq\t(%r").count(), 2, "two links are two loads: {text}");
assert!(text.contains("movq\t8(%r"), "and the answer is above the last of them: {text}");
}
/// A depth that is not a constant is refused, and so is one past the limit.
///
/// The first is gcc's rule and not a convenience: what the call becomes is a walk that many
/// links long, written out, so a number that is not known until the program runs has nothing
/// to walk. gcc 16.2.0 says `invalid argument to '__builtin_return_address'` for the same
/// program.
///
/// The second is where this and gcc part company. gcc writes the walk however long it is, and
/// this refuses a depth no program has a use for rather than filling an object file with loads
/// that fault part way up.
#[test]
fn a_depth_that_is_not_a_small_constant_is_refused() {
let mut opts = options();
opts.emit = EmitKind::Ir;
for source in [
"void *up(int n) { return __builtin_return_address(n); }\n",
"void *up(void) { return __builtin_frame_address(1000); }\n",
] {
let messages = run(&opts, source).messages;
let named = messages.iter().any(|m| m.contains("E0705"));
assert!(named, "expected a refusal in {messages:?}");
}
}
/// Bytes off the frame, which is the stack pointer moving down and the answer being where it
/// moved to.
///
/// The rounding is the alignment: the size is taken up to the next sixteen before it is
/// subtracted, so the pointer suits anything the program puts behind it. gcc 16.2.0 rounds the
/// same way at `-O0` and spends a division doing it, which is the one place the two differ and
/// is about how the rounding is written rather than about what it answers.
///
/// There is no call anywhere in either program. An alloca that had reached the linker would
/// have found the C library's, which is a real function with a real frame and is not what a
/// program writing the builtin asked for.
#[test]
fn an_alloca_takes_the_bytes_off_the_stack_pointer_and_answers_where_they_are() {
let text =
asm("void use(void *p); void f(unsigned long n) { use(__builtin_alloca(n)); }\n");
assert!(text.contains("andq\t$-16"), "the size is rounded up to sixteen: {text}");
assert!(text.contains("subq\t%rdi, %rsp"), "and taken off the stack pointer: {text}");
assert_eq!(text.matches("\tcall").count(), 1, "the only call is the one written: {text}");
// The plain name, which a program that declares it the way the C library does means the
// same thing by. `gcc.c-torture/execute/20010122-1.c` is exactly this program.
let plain = concat!(
"extern void *alloca(__SIZE_TYPE__);\n",
"void use(void *p);\n",
"void f(unsigned long n) { use(alloca(n)); }\n",
);
let text = asm(plain);
assert!(text.contains("subq\t%rdi, %rsp"), "the plain name is the same bytes: {text}");
assert_eq!(text.matches("\tcall").count(), 1, "and is not a call either: {text}");
// And a program that means something of its own by the name keeps it, which is what the
// declaration is looked at for.
let own = concat!(
"static void *alloca(unsigned long n) { return 0; }\n",
"void *f(unsigned long n) { return alloca(n); }\n",
);
assert!(asm(own).contains("\tcall"), "a name the program took back is a call");
}
/// The bytes an alloca took live until the function returns and not until the end of the block
/// the call was written in.
///
/// That is what makes it different from a variable length array, and the way it is kept is that
/// every scope open where the call was written stops giving the stack back. The second program
/// is the mixed case: an array in the outer block and an alloca in the inner one, where the
/// inner block gives nothing back either even though an array is in scope that ordinarily
/// would. gcc 16.2.0 at `-O0` writes no restore at the end of either block, measured rather
/// than read off the manual.
#[test]
fn the_bytes_an_alloca_took_are_still_there_at_the_end_of_the_block_that_took_them() {
let inner = "{ use(__builtin_alloca(n)); }";
for body in [inner.to_owned(), format!("int a[n]; {inner} use(a);")] {
let source = format!("void use(void *p);\nvoid f(unsigned long n) {{ {body} }}\n");
let text = asm(&source);
// Every instruction that writes the stack pointer, which in a function that gives
// nothing back is the alloca taking bytes and the epilogue putting the frame pointer
// there. A restore would be a third kind, a move out of a register the save wrote.
for line in text.lines().filter(|line| line.trim_end().ends_with(", %rsp")) {
let taking = line.contains("subq");
let leaving = line.contains("%rbp");
assert!(taking || leaving, "nothing puts the stack back: {line} in {text}");
}
}
}
/// Not a rewording of the check above: what the two paths agree about is the point.
#[test]
fn the_object_and_the_listing_are_two_spellings_of_one_compilation() {
// A call, because it is the one thing whose spelling in the two differs completely: the
// listing writes a name and the object writes four zero bytes and a relocation asking the
// linker for the same name. If either path had lost the callee, one of these would fail.
let source = "int callee(void); int g(void) { return callee(); }\n";
let bytes = obj(source);
assert!(
bytes.windows(7).any(|w| w == b"callee\0"),
"the object has to name the callee for the linker to find it"
);
let text = asm(source);
assert!(text.contains("\tcall\tcallee\n"), "{text}");
}
/// What a file of a link contributes is an object, and the default emit is a link.
///
/// This is here because getting it wrong is silent in the worst way: an empty file is a valid
/// empty linker script, so a link fed one gets as far as reporting every symbol of the file as
/// undefined and says nothing about the compilation that produced nothing.
#[test]
fn compiling_for_an_executable_produces_an_object_and_not_a_dump() {
let mut opts = options();
// What a command line with no `-c` and no `-S` on it asks for.
opts.emit = EmitKind::Executable;
let result = run(&opts, "int main(void) { return 0; }\n");
assert_eq!(result.messages, Vec::<String>::new());
match result.artifact {
Artifact::Object { bytes, .. } => assert_eq!(&bytes[..4], b"\x7fELF"),
other => panic!("expected an object, got {other:?}"),
}
}
/// A target with a back end but no object writer says so rather than writing the wrong file.
#[test]
fn a_platform_with_no_object_writer_is_said_so_rather_than_written_as_elf() {
let mut opts = options();
opts.emit = EmitKind::Object;
opts.target = "x86_64-apple-darwin".parse::<Triple>().unwrap();
let result = run(&opts, "int f(void) { return 0; }\n");
assert!(result.failed(), "an object nobody can read is worse than a message");
assert!(
result.messages.iter().any(|m| m.contains("no object writer")),
"{:?}",
result.messages
);
}
/// The IR of `source`, insisting that it compiled cleanly.
fn ir(source: &str) -> String {
let mut opts = options();
opts.emit = EmitKind::Ir;
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
result.text().to_owned()
}
/// What was said about `source`, insisting that something was.
fn errors(source: &str) -> Vec<String> {
let mut opts = options();
opts.emit = EmitKind::Ir;
let result = run(&opts, source);
assert!(result.failed(), "expected this to be refused:\n{source}");
result.messages
}
/// The body of the one function in `source`, which is what most of these are about.
fn body(source: &str) -> String {
let text = ir(source);
let (_, rest) = text.split_once("{\n").expect("a function definition");
let (body, _) = rest.rsplit_once("}\n").expect("a function definition");
body.to_owned()
}
/// What `-fgnu89-inline` is for, seen at the only place it shows: whether a body reached the
/// module or only a declaration did.
///
/// The C99 reading is the one an inline definition is written for and is not being changed
/// here. What the flag is for is a program written before C99 swapped the two, which relies on
/// `inline` alone leaving something behind for another unit to call, and there are twelve of
/// those in the GCC torture suite alone.
#[test]
fn gnu89_inline_is_what_decides_whether_a_bare_inline_definition_reaches_the_module() {
let source = "inline int f(int x) { return x + 1; }\n";
let with = |flag: bool| {
let mut opts = options();
opts.emit = EmitKind::Ir;
opts.gnu89_inline = flag;
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile");
result.text().to_owned()
};
// Under C's reading the module holds the declaration and the calls in this unit go to
// whatever definition another unit has, which is C 6.7.4p7 and is what gcc does too.
assert!(!with(false).contains("block0"), "no body: {}", with(false));
// Under GNU's it is an ordinary external definition, so the body is there and the symbol
// is one the linker can resolve against.
assert!(with(true).contains("block0"), "a body: {}", with(true));
}
/// Every shape that reads or writes through a C type names that type.
///
/// The tree itself is `rucc_lower::aliasing`'s and is tested there. What this is about is that
/// the walk reaches it from every shape a program actually writes, since a node on the scalar
/// load and nothing on the member load would be a layer that answers for a third of the
/// accesses in a program and is not worth having.
#[test]
fn an_access_through_a_type_names_the_type_it_went_through() {
let source = "\
struct s { int a; float b; };\n\
union u { int i; float f; };\n\
int scalar(int *p) { return *p; }\n\
float member(struct s *p) { p->a = 1; return p->b; }\n\
int element(int *a, long i) { return a[i]; }\n\
float through_a_union(union u *p) { p->i = 1; return p->f; }\n";
let text = ir(source);
assert!(text.contains(r#"!0 = tbaa "char""#), "the root: {text}");
assert!(text.contains(r#"tbaa "int", parent !0"#), "int under it: {text}");
assert!(text.contains(r#"tbaa "float", parent !0"#), "float under it: {text}");
// One per access, and a function whose accesses all go through one type says so once per
// access rather than once per function.
let named = text.lines().filter(|line| line.contains(", tbaa !")).count();
assert_eq!(named, 6, "six accesses: {text}");
}
/// `-fno-strict-aliasing` is the front end leaving the name off.
///
/// Nothing asks the alias analysis anything yet, so no program compiles differently for having
/// passed this today. What this test is for is the day one does: the flag has to be the
/// absence of the names rather than a condition somewhere downstream, since that is the only
/// version of it that a pass added later cannot forget about.
#[test]
fn turning_strict_aliasing_off_leaves_the_type_off_every_access() {
let source = "int punned(float *f, int *i) { *i = 1; *f = 2.0f; return *i; }\n";
let mut opts = options();
opts.emit = EmitKind::Ir;
opts.strict_aliasing = false;
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile");
let text = result.text().to_owned();
assert!(!text.contains("tbaa"), "not even the root: {text}");
}
/// `return;` from a function that promised a value, which only C89 lets through and which
/// therefore only reaches the IR builder under that dialect.
///
/// Zero goes back. The alternatives are worse: an empty return list builds a `ret` the
/// verifier refuses, which is what a torture case found, and `unreachable` would be a claim
/// that the branch reaching this never runs, which is a claim about the program rather than
/// about the value and lets the optimizer delete the path that led here.
#[test]
fn a_bare_return_from_a_function_that_promised_a_value_gives_back_a_zero() {
let mut opts = options();
opts.emit = EmitKind::Ir;
opts.std = Std::C89;
let compiled = |source: &str| {
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "C89 has nothing to say about this");
result.text().to_owned()
};
let text = compiled("int f(int x) { if (x) return; return 3; }\n");
assert!(text.contains("iconst.i32 0\n return"), "zero goes back: {text}");
assert!(!text.contains("unreachable"), "the branch that reached it is kept: {text}");
// A floating point return needs the constant of its own kind rather than an integer one.
let text = compiled("double f(int x) { if (x) return; return 1.0; }\n");
assert!(text.contains("fconst.f64 0x0\n return"), "a float zero goes back: {text}");
}
/// What C89 6.3.2.2 declares for a call to a name nothing declared, seen in the IR rather than
/// in what was said about it.
///
/// `extern int f();`, so the call gives back an `int` and its arguments are promoted rather
/// than converted to parameters there are none of. The declaration lasts for the file, which
/// is what makes a second call to the same name ordinary and is why gcc says this once per
/// file rather than once per call.
#[test]
fn a_call_to_a_name_nothing_declared_declares_it_as_c89_said_to() {
let mut opts = options();
opts.emit = EmitKind::Ir;
opts.std = Std::C89;
let compiled = |source: &str| {
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "C89 has nothing to say about this");
result.text().to_owned()
};
// An `int` back, which is the whole of what the implicit declaration says.
let text = compiled("int f(void) { return g(); }\n");
assert!(text.contains("call @g"), "the call is to the name that was written: {text}");
assert!(text.contains("i32"), "and it gives back an int: {text}");
// No prototype, so a `char` argument arrives promoted to `int` the way an argument to a
// function whose parameters are unspecified does.
let text = compiled("int f(char c) { return g(c); }\n");
assert!(text.contains("sext.i32"), "the argument is promoted: {text}");
// A name written as a value rather than called is still undeclared, since the rule is
// about a call and nothing else.
let mut opts = options();
opts.std = Std::C89;
let said = run(&opts, "int f(void) { return h; }\n").messages.join("\n");
assert!(said.contains("'h' undeclared"), "not a call, so not declared: {said}");
}
/// A file that calls a name above the definition of it, which is the shape the implicit
/// declaration has to survive rather than swallow.
///
/// The definition merges into the declaration the call already made rather than making a
/// second one, so a declaration the tree does not carry at the top level takes the definition
/// down with it: the body is attached to a node nothing walks and no function comes out.
/// Nothing about the call itself looks wrong when that happens, and the program gets to the
/// linker before anyone finds out, which is where `execute/cmpsi-1.c` in the torture suite
/// found it, as an undefined reference to a name defined eleven lines further down.
#[test]
fn a_name_called_before_it_is_defined_still_gets_its_definition() {
let mut opts = options();
opts.emit = EmitKind::Ir;
opts.std = Std::C89;
let text = run(&opts, "int f(void) { return dummy(); }\ndummy () { return 7; }\n")
.text()
.to_owned();
assert!(text.contains("func @f()"), "the caller is there: {text}");
assert!(text.contains("func @dummy"), "and so is what it calls: {text}");
assert!(text.contains("iconst.i32 7"), "with the body it was given: {text}");
}
/// An old style definition whose parameter is narrower than what a call passes it.
///
/// There is no prototype for a call to convert its argument to, so the argument is promoted
/// and an `int` arrives for a parameter the body reads as an `unsigned char`. The entry block
/// is where the two meet, and gcc writes the same pair of instructions there: store the low
/// byte, read it back widened. `execute/950605-1.c` in the torture suite calls `f(-1)` and
/// checks the parameter against `0xFF`, which is the difference between converting and not.
#[test]
fn an_old_style_parameter_is_converted_from_what_the_call_promoted_it_to() {
let mut opts = options();
opts.emit = EmitKind::Ir;
opts.std = Std::C89;
let compiled = |source: &str| run(&opts, source).text().to_owned();
let text = compiled("f (c) unsigned char c; { return c; }\n");
assert!(text.contains("func @f(i32"), "an int arrives: {text}");
assert!(text.contains("trunc.i8"), "and is cut down to what was declared: {text}");
assert!(text.contains("zext.i32"), "then read back unsigned: {text}");
// A `short` is the same shape and signed, so it comes back the other way.
let text = compiled("f (s) short s; { return s; }\n");
assert!(text.contains("trunc.i16"), "cut down: {text}");
assert!(text.contains("sext.i32"), "and read back signed: {text}");
// A `float` parameter is promoted to `double`, and without the conversion the multiply
// below has one f64 operand and one f32, which the verifier refuses as invalid IR.
let text = compiled("f (x) float x; { return x * 2; }\n");
assert!(text.contains("func @f(f64"), "a double arrives: {text}");
assert!(text.contains("fptrunc.f32"), "and is narrowed to the float: {text}");
// A parameter a prototype named arrives as itself and nothing is converted, which is the
// case this must not have changed.
let text = compiled("int f(unsigned char c) { return c; }\n");
assert!(text.contains("func @f(i8)"), "the declared type arrives: {text}");
assert!(!text.contains("trunc"), "so there is nothing to cut down: {text}");
}
/// The six rules gcc 14 turned from a warning into an error, and the three answers each one
/// gets depending on the dialect and on `-fpermissive`.
///
/// The table is a measurement rather than a reading of the release notes. Six files, one per
/// rule, put through gcc 16.2.0 on x86-64 Linux under each of the four command lines below
/// with no `-W` flags on any of them, and what came back is what is written here. The three
/// rules that say nothing under C89 are the three C89 did not have, and the three that warn
/// there were constraint violations then as well.
#[test]
fn the_rules_gcc_promoted_are_decided_by_the_dialect_and_by_fpermissive() {
// `-std=gnu89`, `-std=gnu17`, `-std=gnu17 -fpermissive`, and `-std=gnu23`.
let modes = [(Std::C89, false), (Std::C17, false), (Std::C17, true), (Std::C23, false)];
let cases = [
("static counted;\n", ["", "error", "warning", "error"]),
("int f(void) { return g(); }\n", ["", "error", "warning", "error"]),
("int f(x) { return x; }\n", ["", "error", "warning", "error"]),
("int *p;\nvoid h(void) { p = 1; }\n", ["warning", "error", "warning", "error"]),
(
"char *q;\nint *r;\nvoid k(void) { r = q; }\n",
["warning", "error", "warning", "error"],
),
("int f(void) { return; }\n", ["", "error", "warning", "error"]),
("void g(void) { return 1; }\n", ["warning", "error", "warning", "error"]),
];
for (source, wanted) in cases {
for (&(std, permissive), wanted) in modes.iter().zip(wanted) {
let mut opts = options();
opts.std = std;
opts.permissive = permissive;
let said = run(&opts, source).messages.join("\n");
let severity = if said.contains(": error: ") {
"error"
} else if said.contains(": warning: ") {
"warning"
} else {
""
};
let how = if permissive { " -fpermissive" } else { "" };
assert_eq!(
severity,
wanted,
"under -std={}{how}, {source} was answered with `{said}`",
std.as_str()
);
if wanted.is_empty() {
assert!(said.is_empty(), "nothing to say, but said `{said}`");
}
}
}
}
/// A first argument that is not a list, which the four variadic operators answer in two ways.
///
/// gcc has `va_arg` as an operator, since it takes a type name and no function can, and the
/// other three as builtin functions taking the address of a list. The difference is not a
/// naming one: the operator's complaint is its own and is an error under every dialect, and
/// the three functions go through the ordinary rule about an argument of the wrong type,
/// which is one of the rules the table above is about. The same four command lines through
/// gcc 16.2.0 on x86-64 Linux is where these came from.
#[test]
fn the_three_variadic_builtins_answer_a_bad_list_the_way_a_call_answers_a_bad_argument() {
let modes = [(Std::C89, false), (Std::C17, false), (Std::C17, true), (Std::C23, false)];
let cases = [
(
"int f(int n, ...) { char *p; return __builtin_va_arg(p, int); }\n",
"first argument to 'va_arg' not of type 'va_list'",
["error", "error", "error", "error"],
),
(
"void f(int n, ...) { char *p; __builtin_va_start(p, n); }\n",
"passing argument 1 of '__builtin_va_start' from incompatible pointer type",
["warning", "error", "warning", "error"],
),
(
"void f(int n, ...) { int x; __builtin_va_end(x); }\n",
"passing argument 1 of '__builtin_va_end' makes pointer from integer without a \
cast",
["warning", "error", "warning", "error"],
),
(
"void f(int n, ...) { __builtin_va_list a; char *p; __builtin_va_copy(a, p); }\n",
"passing argument 2 of '__builtin_va_copy' from incompatible pointer type",
["warning", "error", "warning", "error"],
),
];
for (source, message, wanted) in cases {
for (&(std, permissive), wanted) in modes.iter().zip(wanted) {
let mut opts = options();
opts.std = std;
opts.permissive = permissive;
let said = run(&opts, source).messages.join("\n");
let how = if permissive { " -fpermissive" } else { "" };
assert!(
said.contains(&format!(": {wanted}: {message}")),
"under -std={}{how}, {source} was answered with `{said}`",
std.as_str()
);
}
}
}
/// The IR of `source` at one safety tier, insisting that it compiled cleanly.
fn safe_ir(tier: rucc_session::Safety, source: &str) -> String {
let mut opts = options();
opts.emit = EmitKind::Ir;
opts.safety = tier;
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
result.text().to_owned()
}
const READS_THROUGH_A_POINTER: &str = "int read(int *p) { return p[1]; }\n";
/// The IR for a source built with a tier and a padding mode.
fn padded_ir(padding: Padding, source: &str) -> String {
let mut opts = options();
opts.emit = EmitKind::Ir;
opts.safety = rucc_session::Safety::Detect;
opts.padding = padding;
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
result.text().to_owned()
}
const FILLS_A_RECORD_A_MEMBER_AT_A_TIME: &str = "struct padded { char tag; int value; };\n\
void fill(struct padded *p) { p->tag = 1; p->value = 2; }\n";
#[test]
fn a_record_filled_a_member_at_a_time_comes_out_whole_when_padding_does_not_participate() {
// Section 9.3 of document 09, and the reason the default is the one it gives library code.
// Four bytes from the `char` and four from the `int` is the whole of an eight byte record,
// so the `memcmp` or the hash or the `write` that reads it back is not refused.
let text = padded_ir(Padding::Ignored, FILLS_A_RECORD_A_MEMBER_AT_A_TIME);
assert_eq!(text.matches("owns 4").count(), 2, "{text}");
}
#[test]
fn a_store_says_only_what_it_wrote_when_padding_does_participate() {
// The kernel profile's default, which is section 9.3's actual rule: the padding stays
// unwritten and the read of the record that would leak it is the one that reports.
let text = padded_ir(Padding::Tracked, FILLS_A_RECORD_A_MEMBER_AT_A_TIME);
assert!(!text.contains("owns"), "{text}");
}
#[test]
fn a_member_of_a_union_owns_nothing_after_it() {
// The bytes after a short member of a union belong to a longer member rather than to
// padding, and saying a store through the short one wrote them would be saying the longer
// one holds a value nobody put there.
let text = padded_ir(
Padding::Ignored,
"union u { char tag; long wide; };\nvoid fill(union u *p) { p->tag = 1; }\n",
);
assert!(!text.contains("owns"), "{text}");
}
#[test]
fn an_inner_records_trailing_padding_reaches_the_outer_records() {
// The composition. `in` owns four bytes of `outer` because `x` starts there, and `c` is
// the last member of `in`, so what it owns is what `in` owns rather than its own one byte.
// Without that the three bytes between them would stay unwritten and a read of the whole
// thing would report.
let text = padded_ir(
Padding::Ignored,
"struct inner { char c; };\n\
struct outer { struct inner in; int x; };\n\
void fill(struct outer *p) { p->in.c = 1; p->x = 2; }\n",
);
assert_eq!(text.matches("owns 4").count(), 2, "{text}");
}
#[test]
fn a_build_that_did_not_ask_for_the_monitor_is_compiled_the_way_it_always_was() {
// This is the load bearing test of the whole flag. The monitor is being built in the open
// and every build in the world is compiled by this compiler with the flag absent, so a
// check that leaked into that path would be a regression for everybody.
let text = ir(READS_THROUGH_A_POINTER);
assert!(!text.contains("check_"), "{text}");
assert!(!text.contains("cap_of"), "{text}");
}
#[test]
fn asking_for_a_tier_puts_the_checks_in_before_the_optimizer_sees_them() {
let text = safe_ir(rucc_session::Safety::Detect, READS_THROUGH_A_POINTER);
assert!(text.contains("cap_of"), "{text}");
assert!(text.contains("check_bounds"), "{text}");
assert!(text.contains("check_live"), "{text}");
// The subscript is address arithmetic, so J2 applies to it as well as J1.
assert!(text.contains("check_deriv"), "{text}");
// And the read names a type, so it asks the type plane about the bytes as well.
assert!(text.contains("check_type"), "{text}");
}
#[test]
fn the_three_tiers_that_are_not_off_all_check_the_same_accesses_so_far() {
// What separates them is the reporter and the boundary, which are milestones S2 and S3.
// Pinning it here means the day they stop agreeing, this test says so rather than the
// difference going unnoticed.
let detect = safe_ir(rucc_session::Safety::Detect, READS_THROUGH_A_POINTER);
for tier in [rucc_session::Safety::Enforce, rucc_session::Safety::Kernel] {
assert_eq!(safe_ir(tier, READS_THROUGH_A_POINTER), detect, "{tier}");
}
}
/// The safety summary of `source` at one tier, insisting that it compiled cleanly.
fn summary(tier: rucc_session::Safety, source: &str) -> String {
let mut opts = options();
opts.emit = EmitKind::SafetySummary;
opts.safety = tier;
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
result.text().to_owned()
}
#[test]
fn the_summary_counts_the_checks_that_went_in_and_the_ones_still_standing() {
let text = summary(rucc_session::Safety::Detect, READS_THROUGH_A_POINTER);
assert!(text.contains("\"tier\": \"detect\""), "{text}");
// One load, so one of each of the two access checks, and the subscript is a derivation.
assert!(
text.contains("\"bounds\": { \"emitted\": 1, \"remaining\": 1, \"discharged\": 0 }"),
"{text}"
);
assert!(
text.contains(
"\"derivation\": { \"emitted\": 1, \"remaining\": 1, \"discharged\": 0 }"
),
"{text}"
);
}
#[test]
fn a_build_without_the_monitor_summarises_as_a_build_with_no_checks_in_it() {
// Which is the honest summary rather than an error. A build system that emits a summary
// for every unit should get one for the units nobody asked to instrument too, and the
// zeroes are what say that the guarantee over that file is nothing at all.
let text = summary(rucc_session::Safety::Off, READS_THROUGH_A_POINTER);
assert!(text.contains("\"tier\": \"off\""), "{text}");
assert!(
text.contains("\"bounds\": { \"emitted\": 0, \"remaining\": 0, \"discharged\": 0 }"),
"{text}"
);
}
#[test]
fn a_call_the_boundary_models_is_counted_apart_from_one_it_does_not() {
let text = summary(
rucc_session::Safety::Detect,
"void *memcpy(void *, const void *, unsigned long);\n\
int puts(const char *);\n\
void f(char *d, char *s) { memcpy(d, s, 4); puts(d); }\n",
);
assert!(text.contains("\"interposed\": 1"), "{text}");
assert!(text.contains("\"puts\""), "{text}");
// The wrapper it was pointed at is ours, so it is not on the list of things this build
// failed to model. Counting it there would make instrumenting a file look worse than
// leaving it alone.
assert!(!text.contains("__rucc_wrap_memcpy\""), "{text}");
}
#[test]
fn the_two_directions_a_pointer_crosses_the_boundary_are_counted_apart() {
// `f` is a name the linker can bind to and takes a pointer, so a pointer arrives there.
// `notes_open` is a library this build did not instrument, so a pointer comes back from
// it. Both are crossings and neither is the other, which is why there are two numbers.
let text = summary(
rucc_session::Safety::Detect,
"void *notes_open(void);\n\
char *f(char *p) { char *q = notes_open(); return q ? q : p; }\n",
);
assert!(text.contains("\"crossings\": { \"entered\": 1, \"returned\": 1 }"), "{text}");
assert!(text.contains("\"notes_open\""), "{text}");
}
#[test]
fn a_static_function_nobody_takes_the_address_of_is_not_a_crossing() {
// Nothing outside the file can reach it, so a witness on its parameters would be counting
// a crossing that does not happen.
let text = summary(
rucc_session::Safety::Detect,
"static int len(const char *p) { return p ? 1 : 0; }\n\
int f(void) { return len(\"x\"); }\n",
);
assert!(text.contains("\"crossings\": { \"entered\": 0, \"returned\": 0 }"), "{text}");
}
/// The granule report for `source`, insisting that it compiled cleanly.
fn granules(source: &str) -> String {
let mut opts = options();
opts.emit = EmitKind::TypeGranules;
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
result.text().to_owned()
}
#[test]
fn the_granule_report_names_every_record_and_both_keyings() {
let text = granules(
"struct hot { char *p; int a; int b; };\n\
int f(struct hot *h) { return h->a; }\n",
);
assert!(text.contains("struct hot"), "{text}");
// Both keyings are reported because which types count as one is a decision the design
// has not made yet, and a report that picked one would be hiding the cost of the other.
assert!(text.contains("every type distinct"), "{text}");
assert!(text.contains("every pointer one type"), "{text}");
assert!(text.contains("budget"), "{text}");
}
#[test]
fn a_record_nothing_uses_is_still_measured() {
// The measurement is about what a program declares, not about what it runs, so a type
// that is only ever declared still costs the plane whatever its layout costs.
let text = granules("struct unused { long a; double b; };\nint f(void) { return 0; }\n");
assert!(text.contains("struct unused"), "{text}");
}
#[test]
fn the_granule_report_stops_before_anything_is_lowered() {
// A layout is settled at the closing brace, so lowering the function bodies would take
// minutes on an amalgamation and answer nothing. The evidence that it stops is that a
// body the back end has no way to compile still produces a report.
let text = granules(
"struct wide { long double d; };\n\
long double f(long double x) { return x * x; }\n",
);
assert!(text.contains("struct wide"), "{text}");
}
#[test]
fn a_witness_reaches_the_assembler_as_a_call_to_the_runtime() {
// The count only means anything if the call is really there, and a summary saying one is
// there is not evidence that the back end emitted it.
let text = safe_asm(rucc_session::Safety::Detect, "char *f(char *p) { return p; }\n");
assert!(text.contains("\tcall\t__rucc_cap_witness\n"), "{text}");
}
#[test]
fn a_pointer_turned_into_an_integer_is_on_the_trust_set() {
let text = summary(
rucc_session::Safety::Detect,
"unsigned long f(int *p) { return (unsigned long) p; }\n",
);
assert!(text.contains("\"exposed\": 1"), "{text}");
}
/// The assembly of `source` at one safety tier, insisting that it compiled cleanly.
fn safe_asm(tier: rucc_session::Safety, source: &str) -> String {
let mut opts = options();
opts.emit = EmitKind::Asm;
opts.safety = tier;
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
result.text().to_owned()
}
#[test]
fn a_check_reaches_the_assembler_as_a_call_to_the_runtime() {
let text = safe_asm(rucc_session::Safety::Detect, READS_THROUGH_A_POINTER);
assert!(text.contains("\tcall\t__rucc_check_bounds\n"), "{text}");
assert!(text.contains("\tcall\t__rucc_check_live\n"), "{text}");
assert!(text.contains("\tcall\t__rucc_check_deriv\n"), "{text}");
assert!(text.contains("\tcall\t__rucc_check_type\n"), "{text}");
assert!(text.contains("\tcall\t__rucc_check_init\n"), "{text}");
}
#[test]
fn every_check_that_reached_the_assembler_has_a_row_describing_it() {
// Five checks and five descriptors, each in the section the runtime's reporter reads.
// The width is `rucc_safety::lower::WIDTH` and the row is `rucc_safe_rt::fail::Descriptor`,
// and the two agreeing is what makes the address a check is handed mean anything.
let text = safe_asm(rucc_session::Safety::Detect, READS_THROUGH_A_POINTER);
let section = format!("\t.section\t{},", rucc_safety::SECTION);
assert_eq!(text.matches(§ion).count(), 5, "{text}");
for index in 0..5 {
let name = format!("__rucc_safety_desc_{index}");
// Defined once and referenced once, because a descriptor nothing points at describes
// nothing and a reference with no definition does not link.
assert!(text.contains(&format!("{name}:\n")), "{text}");
assert!(text.contains(&format!("{name}(%rip)")), "{text}");
}
assert!(!text.contains("__rucc_safety_desc_5"), "{text}");
}
/// `__builtin_constant_p` is answered in the front end and never reaches the IR.
///
/// gcc folds it after optimization, so its answer for an argument that is not written as a
/// constant can differ between `-O0` and `-O2`. What is checked here is the front end's
/// answer, which is the same at every level, and the four cases where gcc gives the same
/// answer at both levels are the ones measured on gcc 16: a literal is one, a variable is
/// zero, a string literal is one and the address of an object is zero.
#[test]
fn builtin_constant_p_is_folded_where_it_is_written_rather_than_called() {
let text = ir(concat!(
"int g;\n",
"int a = __builtin_constant_p(1);\n",
"int b = __builtin_constant_p(g);\n",
"int c = __builtin_constant_p(\"abc\");\n",
"int d = __builtin_constant_p(&g);\n",
"int e = __builtin_constant_p(1.5);\n",
"int h = __builtin_choose_expr(__builtin_constant_p(3), 11, 22);\n",
));
assert!(text.contains("global @a : i32 = 1,"), "{text}");
assert!(text.contains("global @b : i32 = 0,"), "{text}");
assert!(text.contains("global @c : i32 = 1,"), "{text}");
assert!(text.contains("global @d : i32 = 0,"), "{text}");
assert!(text.contains("global @e : i32 = 1,"), "{text}");
assert!(text.contains("global @h : i32 = 11,"), "{text}");
assert!(!text.contains("__builtin_constant_p"), "it is not a call to anything:\n{text}");
// The argument is not evaluated, which is what gcc does with it as well, so `i` is
// still zero. The second constant is the answer, which nothing reads and which the
// first pass that looks for dead code will take out.
let text = body("int f(void) { int i = 0; __builtin_constant_p(i++); return i; }\n");
assert_eq!(text, "block0:\n %0 = iconst.i32 0\n %1 = iconst.i32 0\n return %0\n");
}
/// A library builtin is the library function of the same name, and the call says so.
///
/// A program writes `__builtin_strlen` rather than `strlen` to reach the function the C
/// library promises where its own name has been taken by a macro, and to say that the usual
/// meaning is the one intended. So the name in the program and the name in the object file
/// are two different names and the call carries the second one. gcc folds several of these
/// when the arguments allow it, which is an optimization on top of a call that is already
/// right rather than instead of it, so nothing here depends on any folding happening.
#[test]
fn a_call_to_a_library_builtin_reaches_the_library_function() {
let text = body("void f(void) { __builtin_abort(); }\n");
assert_eq!(text, "block0:\n call @abort() : ()\n return\n");
// Nothing declared either of these and nothing had to: the prefix is what says the name
// belongs to the implementation, and the type comes out of `features.toml`.
let text = ir("int f(const char *s) { return __builtin_puts(s) + __builtin_strlen(s); }\n");
assert!(text.contains("call @puts(%0) : (ptr) -> i32"), "{text}");
assert!(text.contains("call @strlen(%0) : (ptr) -> i64"), "{text}");
assert!(!text.contains("__builtin_"), "the prefix is not part of any name here:\n{text}");
}
/// A `_chk` builtin reaches the checking function in the library with the object size still
/// on the end of it.
///
/// This is what a fortified `string.h` turns every copy into, so it is what a program built
/// the way a distribution builds one is full of, and the whole of what makes the call right
/// is that the size goes with it. The checking function takes `(size_t) -1` to mean nothing
/// is known and does no check, which is what the header passes when the destination's object
/// is not in sight, so the unconditional call means the same thing in both cases and costs a
/// call gcc would have folded away in the second.
///
/// The name is the one place this family reads like an exception and is not one:
/// `__builtin___memcpy_chk` with `__builtin_` taken off is `__memcpy_chk`.
#[test]
fn a_chk_builtin_reaches_the_checking_function_and_keeps_the_size() {
let text = ir(concat!(
"char d[8];\n",
"void f(const char *s, unsigned long n) {\n",
" __builtin___memcpy_chk(d, s, n, __builtin_object_size(d, 0));\n",
" __builtin___strcpy_chk(d, s, __builtin_object_size(d, 1));\n",
" __builtin___memset_chk(d, 0, n, 8);\n",
"}\n",
));
assert!(text.contains("call @__memcpy_chk("), "{text}");
assert!(text.contains("call @__strcpy_chk("), "{text}");
assert!(text.contains("call @__memset_chk("), "{text}");
assert!(text.contains("iconst.i64 8"), "the object size reaches the call: {text}");
assert!(!text.contains("__builtin_"), "the prefix is not part of any name here:\n{text}");
}
/// A checking call whose object size says nothing is known is the plain library call.
///
/// That is the whole of the folding half of the family. The checking function reads the all
/// ones value as do not check, so the call it was going to make is the function it guards with
/// an argument nobody reads on the end of it, and gcc drops the argument and calls the plain
/// function at every level including `-O0`. Where the size is a real number the checking call
/// stands, because the check is the point.
#[test]
fn a_checking_call_whose_size_says_nothing_is_known_is_the_plain_library_call() {
let text = ir(concat!(
"extern char *p;\n",
"char d[8];\n",
"void f(const char *s, unsigned long n) {\n",
" __builtin___memcpy_chk(d, s, n, __builtin_object_size(d, 0));\n",
" __builtin___memcpy_chk(p, s, n, __builtin_object_size(p, 0));\n",
" __builtin___strcpy_chk(p, s, __builtin_object_size(p, 0));\n",
" __builtin___stpncpy_chk(p, s, n, __builtin_object_size(p, 0));\n",
" __builtin___sprintf_chk(p, 1, __builtin_object_size(p, 0), s);\n",
"}\n",
));
// The destination whose object is in sight keeps its check, size and all.
assert!(
text.contains("call @__memcpy_chk(%2, %0, %1, %3) : (ptr, ptr, i64, i64)"),
"{text}"
);
// The three whose object is not lose the argument and the name along with it. The type of
// the call goes with them, which is what says the argument is gone rather than ignored.
assert!(text.contains("call @memcpy(%6, %0, %1) : (ptr, ptr, i64) -> ptr"), "{text}");
assert!(text.contains("call @strcpy(%10, %0) : (ptr, ptr) -> ptr"), "{text}");
assert!(text.contains("call @stpncpy(%14, %0, %1) : (ptr, ptr, i64) -> ptr"), "{text}");
// The formatted one never folds, whatever the size says, because refusing a `%n` in a
// writable format is the other half of what it was asked to do.
assert!(text.contains("call @__sprintf_chk("), "{text}");
// Nothing is left behind in the instructions either. The size the folded calls no longer
// take is a constant nobody reads, and no instruction is written for one.
let asm = asm(concat!(
"void f(char *p, const char *s, unsigned long n) {\n",
" __builtin___memcpy_chk(p, s, n, __builtin_object_size(p, 0));\n",
"}\n",
));
assert!(asm.contains("call\tmemcpy"), "{asm}");
assert!(!asm.contains("$-1"), "the size that went away leaves no instruction:\n{asm}");
}
/// The `v` spellings take a `__builtin_va_list`, which is the first type in the table the
/// target chooses the shape of rather than the width of.
///
/// On x86-64 it is an array of one, so what the prototype has to say is the pointer that
/// array decays to, which is the same adjustment C makes to any parameter written as an array
/// and is what a `va_list` parameter already holds. A prototype that kept the array would be
/// one no argument could ever match.
#[test]
fn the_v_spellings_of_the_chk_family_take_the_list_a_va_list_parameter_holds() {
let text = ir(concat!(
"char d[64];\n",
"int f(const char *fmt, ...) {\n",
" __builtin_va_list ap;\n",
" __builtin_va_start(ap, fmt);\n",
" int n = __builtin___vsprintf_chk(d, 1, __builtin_object_size(d, 0), fmt, ap);\n",
" __builtin_va_end(ap);\n",
" return n;\n",
"}\n",
));
assert!(text.contains("call @__vsprintf_chk("), "{text}");
assert!(text.contains("iconst.i64 64"), "the object size reaches the call: {text}");
}
/// The absolute value family is four instructions and not a call, whoever declared the name.
///
/// `abs`, `labs` and `llabs` are reserved to the implementation, so a program that writes one
/// means the one the C library promises and the compiler is allowed to know what it does. The
/// program in `gcc.c-torture/execute/20021127-1.c` is the one that insists: it defines `llabs`
/// to abort and expects the call not to reach it. Measured against gcc 16.2.0, which writes a
/// `neg` and a `cmovns` and never calls the definition either.
///
/// The most negative value comes back as itself, which is what the arithmetic gives and what
/// gcc's pair of instructions gives, and C says the answer is undefined there.
#[test]
fn the_absolute_value_family_is_the_magnitude_and_not_a_call() {
let text = body(concat!(
"long long llabs(long long);\n",
"long long f(long long x) { return llabs(x); }\n",
));
assert!(text.contains("%1 = iconst.i64 63"), "{text}");
assert!(text.contains("%2 = ashr %0, %1"), "{text}");
assert!(text.contains("%3 = xor %0, %2"), "{text}");
assert!(text.contains("%4 = sub %3, %2"), "{text}");
assert!(!text.contains("call"), "the call does not happen:\n{text}");
// The narrower two, whose width comes from the type the library gives the name and not
// from anything at the call.
let text = body("int abs(int);\nint f(int x) { return abs(x); }\n");
assert!(text.contains("iconst.i32 31"), "{text}");
let text = body("long labs(long);\nlong f(long x) { return labs(x); }\n");
assert!(text.contains("iconst.i64 63"), "{text}");
// The prefixed spelling is the same node, and it is what a program writes to reach the
// library's meaning where the plain name has been taken.
let text = body("long long f(long long x) { return __builtin_llabs(x); }\n");
assert!(!text.contains("call"), "{text}");
// A definition of the name in the same file changes nothing, which is the whole point.
let text = ir(concat!(
"long long llabs(long long b);\n",
"long long g(long long x) { return llabs(x); }\n",
"long long llabs(long long b) { return 7; }\n",
));
assert!(!text.contains("call @llabs"), "{text}");
}
/// A byte swap is one instruction and not a call, and nothing had to declare it.
///
/// SQLite writes these for its page headers and glibc's `<endian.h>` defines `htobe32` and its
/// neighbours as exactly these, so a program that reads a file format reaches one without ever
/// naming it. There is no object file anywhere that defines `__builtin_bswap32`, so a call left
/// standing here would not link.
#[test]
fn a_byte_swap_is_arithmetic_and_not_a_call() {
let text = body("unsigned f(unsigned x) { return __builtin_bswap32(x); }\n");
assert_eq!(text, "block0(%0: i32):\n %1 = bswap %0\n return %1\n");
// The argument is converted by the prototype the way any other call's would be, so the
// swap happens at the width the name says and not at the width the program wrote.
let text = body("unsigned f(unsigned char c) { return __builtin_bswap32(c); }\n");
assert!(text.contains("zext.i32 %0"), "widened first: {text}");
assert!(text.contains("bswap %1"), "and swapped at four bytes: {text}");
}
/// Each of the three reverses in the width its name says, which is the type of the node.
///
/// The width matters more here than it looks. `__builtin_bswap16` is the two bytes of a
/// `uint16_t` exchanged, and if the node came out at the machine's width instead then the bits
/// above the value would be dragged into the answer and the result would be zero.
#[test]
fn the_byte_swaps_reverse_at_the_width_their_name_says() {
for (name, ty, width) in [
("__builtin_bswap16", "unsigned short", "i16"),
("__builtin_bswap32", "unsigned", "i32"),
("__builtin_bswap64", "unsigned long long", "i64"),
] {
let source = format!("{ty} f({ty} x) {{ return {name}(x); }}\n");
let text = body(&source);
assert_eq!(
text,
format!("block0(%0: {width}):\n %1 = bswap %0\n return %1\n"),
"{name}"
);
}
}
/// The three bit counts the IR has an instruction for are that instruction and not a call.
///
/// Eighteen rows of `features.toml` come out of six questions, and three of the six are one
/// instruction each. The kernel's bitmap search is built on them, ffmpeg counts leading zeroes
/// in its bitstream reader and SQLite uses one to size a page, so a call left standing here
/// would not link against anything and would be slow if it did.
#[test]
fn the_bit_counts_are_instructions_and_not_calls() {
let text = body("int f(unsigned x) { return __builtin_clz(x); }\n");
assert_eq!(text, "block0(%0: i32):\n %1 = ctlz %0\n return %1\n");
let text = body("int f(unsigned x) { return __builtin_ctz(x); }\n");
assert_eq!(text, "block0(%0: i32):\n %1 = cttz %0\n return %1\n");
let text = body("int f(unsigned x) { return __builtin_popcount(x); }\n");
assert_eq!(text, "block0(%0: i32):\n %1 = ctpop %0\n return %1\n");
}
/// The width counted is the operand's and the width answered is `int`, which are two different
/// things at every spelling but the narrowest.
///
/// This is the mistake the family invites. `__builtin_clz` of a value counts the leading zeroes
/// of it narrowed to `unsigned int` and `__builtin_clzll` counts them at sixty four bits, and
/// those are different numbers for the same value. What decides it is the prototype the row
/// carries, so the count happens after the conversion and the narrowing back to `int` happens
/// after the count.
#[test]
fn the_bit_counts_ask_about_the_width_their_name_says() {
let text = body("int f(unsigned long long x) { return __builtin_clzll(x); }\n");
assert!(text.starts_with("block0(%0: i64):"), "counted at eight bytes: {text}");
assert!(text.contains("%1 = ctlz %0"), "{text}");
assert!(text.contains("trunc.i32 %1"), "and answered in an int: {text}");
// The same value asked about at the narrower width, which converts first and so counts
// something else.
let text = body("int f(unsigned long long x) { return __builtin_clz(x); }\n");
assert!(text.contains("trunc.i32 %0"), "narrowed to what was asked about: {text}");
assert!(text.contains("ctlz %1"), "and counted there: {text}");
let text = body("int f(unsigned long x) { return __builtin_popcountl(x); }\n");
assert!(text.contains("%1 = ctpop %0"), "{text}");
assert!(!text.contains("call"), "{text}");
}
/// A parity is whether the count of set bits is odd, which is that count and its low bit.
///
/// Not the machine's parity flag, which on x86-64 is over the low byte of a result and so is a
/// different question, and not the count itself, since C says the answer is zero or one.
#[test]
fn a_parity_is_the_low_bit_of_the_set_bit_count() {
let text = body("int f(unsigned x) { return __builtin_parity(x); }\n");
assert!(text.contains("%1 = ctpop %0"), "{text}");
assert!(text.contains("iconst.i32 1"), "{text}");
assert!(text.contains("and %1, %2"), "the low bit of it: {text}");
}
/// `__builtin_ffs` is the trailing zero count and one, kept only when there was a bit to find.
///
/// The one in the family defined at zero, where it answers zero. Written as a mask rather than
/// as a branch: the count and the comparison do not depend on each other and both are cheap, so
/// a branch would buy nothing and cost two blocks and a join.
#[test]
fn the_first_set_bit_is_one_based_and_zero_for_a_zero() {
let text = body("int f(int x) { return __builtin_ffs(x); }\n");
assert!(text.contains("%1 = cttz %0"), "{text}");
assert!(text.contains("%4 = add %1, %2"), "one more than the count: {text}");
assert!(text.contains("%5 = icmp ne %0, %3"), "whether there was a bit at all: {text}");
assert!(text.contains("%7 = sub %3, %6"), "spread to a mask: {text}");
assert!(text.contains("%8 = and %4, %7"), "and kept only then: {text}");
assert!(!text.contains("br_if"), "no branch: {text}");
}
/// `__builtin_clrsb` is how many bits below the sign bit repeat it, which is a leading zero
/// count of the value folded onto its own sign.
///
/// Exclusive or with the sign spread over every bit turns a negative value into its complement
/// and leaves one that is not negative alone, so in both cases the top bit is clear and there
/// is one zero above the highest bit that does not repeat the sign. The answer is one less
/// than that count, and the shift left is what takes the one off, with the low bit set on the
/// way so that zero and minus one have something to count: both of them fold to a word with no
/// bits in it, which is the one input a leading zero count says nothing about.
#[test]
fn the_redundant_sign_bit_count_is_instructions_and_not_a_call() {
let text = body("int f(int x) { return __builtin_clrsb(x); }\n");
assert!(text.contains("%1 = iconst.i32 31"), "{text}");
assert!(text.contains("%2 = ashr %0, %1"), "the sign over every bit: {text}");
assert!(text.contains("%3 = xor %0, %2"), "folded onto it: {text}");
assert!(text.contains("%5 = shl %3, %4"), "one less than the count: {text}");
assert!(text.contains("%6 = or %5, %4"), "with something to count at zero: {text}");
assert!(text.contains("%7 = ctlz %6"), "{text}");
assert!(!text.contains("call"), "{text}");
assert!(!text.contains("br_if"), "no branch: {text}");
}
/// The unsigned four are the same four instructions answering in the unsigned type.
///
/// Which on a two's complement machine is the same bits, so what this checks is that the type
/// of the answer is the unsigned one. The reason the family exists is the most negative value,
/// whose magnitude is not representable in the signed type and is representable in this one.
#[test]
fn the_unsigned_absolute_value_family_answers_in_the_unsigned_type() {
let text = body("unsigned f(int x) { return __builtin_uabs(x); }\n");
assert!(text.contains("%1 = iconst.i32 31"), "{text}");
assert!(text.contains("%4 = sub %3, %2"), "{text}");
assert!(!text.contains("call"), "nothing declares uabs, so a call would not link: {text}");
let text = body("unsigned long long f(long long x) { return __builtin_ullabs(x); }\n");
assert!(text.contains("iconst.i64 63"), "at the width the name says: {text}");
// The answer is the unsigned type and not the signed one, which is what a comparison
// against it is decided by.
let text = body("int f(int x) { return __builtin_uabs(x) > 2147483647u; }\n");
assert!(text.contains("icmp ugt"), "compared unsigned: {text}");
}
/// `intmax_t` is not a fixed type, so the two widest spellings ask the target what it is.
///
/// `long` where that is sixty four bits wide and `long long` where it is not, which is the rule
/// `rucc_pp::predef` writes `__INTMAX_TYPE__` out of. The three targets here are all LP64, so
/// the answer is `long` and the shift is sixty three, and the point of the test is that the
/// signature was understood at all rather than refused for naming a type the table could not
/// spell.
#[test]
fn the_widest_absolute_value_is_whichever_type_the_target_makes_intmax_t() {
let text = body("long f(long x) { return __builtin_imaxabs(x); }\n");
assert!(text.contains("iconst.i64 63"), "{text}");
assert!(text.contains("%4 = sub %3, %2"), "{text}");
assert!(!text.contains("call"), "{text}");
let text = body("unsigned long f(long x) { return __builtin_umaxabs(x); }\n");
assert!(text.contains("iconst.i64 63"), "{text}");
assert!(!text.contains("call"), "{text}");
}
/// The `_p` spellings ask the same question, write nothing, and do not evaluate the third
/// argument.
///
/// gcc says the third argument is there for its type alone, so a call is two operands and a
/// type by the time it reaches the IR. What the type decides is the same thing it decides for
/// the three that write: whether the exact answer would have fit there, which is why the
/// second call below is done at a wider width than the first.
#[test]
fn an_overflow_predicate_writes_nothing_and_answers_the_bit_the_check_would() {
let text =
body("int f(int a, int b) { return __builtin_add_overflow_p(a, b, (int) 0); }\n");
assert!(text.contains("%2, %3 = sadd_overflow.(i32, i1) %0, %1"), "{text}");
assert!(!text.contains("store"), "nothing is written: {text}");
assert!(!text.contains("call"), "{text}");
// A wider destination is a wider arithmetic, and the narrowing test that goes with it is
// what says whether the answer got there, exactly as for the spelling that stores.
let text =
body("int f(int a, int b) { return __builtin_mul_overflow_p(a, b, (long long) 0); }\n");
assert!(text.contains("smul_overflow.(i64, i1)"), "{text}");
assert!(!text.contains("store"), "{text}");
// The third argument is a value and not a pointer, and a side effect written in it does
// not happen, because what the argument is there for is its type.
let text = body(concat!(
"int g(void);\n",
"int f(int a, int b) { return __builtin_sub_overflow_p(a, b, g()); }\n",
));
assert!(!text.contains("call @g"), "the third argument is not evaluated: {text}");
}
/// The three overflow checks are arithmetic and a flag, and not a call to anything.
///
/// gcc has emitted these since 5.0 and there is no object file that defines one, so a call left
/// standing here would not link. SQLite reaches all three within twenty lines of each other, in
/// `sqlite3AddInt64` and its two neighbours, which is the reason they were done now.
///
/// The IR instruction answers two things at once, the wrapped value and whether it wrapped,
/// which is a shape nothing else in the IR has. The store is the builtin writing the answer
/// through the pointer it was handed.
#[test]
fn an_overflow_check_is_arithmetic_and_not_a_call() {
let text =
body("int f(int a, int b, int *r) { return __builtin_add_overflow(a, b, r); }\n");
assert!(text.contains("%3, %4 = sadd_overflow.(i32, i1) %0, %1"), "{text}");
assert!(text.contains("store %3 -> %2"), "{text}");
assert!(!text.contains("call"), "{text}");
let text =
body("int f(int a, int b, int *r) { return __builtin_sub_overflow(a, b, r); }\n");
assert!(text.contains("ssub_overflow.(i32, i1) %0, %1"), "{text}");
let text =
body("int f(int a, int b, int *r) { return __builtin_mul_overflow(a, b, r); }\n");
assert!(text.contains("smul_overflow.(i32, i1) %0, %1"), "{text}");
// Unsigned operands get the unsigned form, which is a different question about the same
// arithmetic: an unsigned sum wraps where a signed one of the same bits does not.
let text = body(
"int f(unsigned a, unsigned b, unsigned *r) { return __builtin_add_overflow(a, b, r); }\n",
);
assert!(text.contains("uadd_overflow.(i32, i1) %0, %1"), "{text}");
}
/// The arithmetic happens at a type that holds every value all three written types can hold.
///
/// That is what makes the check exact. `unsigned int` and `int` in one call need thirty three
/// bits between them, so the add is done at sixty four with each operand extended the way its
/// own signedness says: the unsigned one zero extended, the signed one sign extended. Sign
/// extending the unsigned one would turn three billion into a negative number before the
/// addition ever saw it.
#[test]
fn an_overflow_check_is_done_at_a_type_that_holds_every_operand() {
let text = body(
"int f(unsigned a, int b, long long *r) { return __builtin_add_overflow(a, b, r); }\n",
);
assert!(text.contains("%3 = zext.i64 %0"), "the unsigned operand keeps its value: {text}");
assert!(text.contains("%4 = sext.i64 %1"), "and so does the signed one: {text}");
assert!(text.contains("sadd_overflow.(i64, i1) %3, %4"), "{text}");
// Three types that agree need no extension at all, which is what nearly every real call
// is written as.
let text = body(
"int f(long long a, long long b, long long *r) { return __builtin_mul_overflow(a, b, r); }\n",
);
assert!(text.contains("smul_overflow.(i64, i1) %0, %1"), "{text}");
assert!(!text.contains("sext."), "{text}");
// The one widening left is the answer, which is a bit becoming the `int` C says it is.
assert!(!text.contains("zext.i64"), "{text}");
}
/// The wrapped answer is written through the pointer whether or not it fit.
///
/// That is gcc's rule and it is what makes the builtin usable as a wrapping add with a flag on
/// the side. A destination narrower than the arithmetic is narrowed and widened back, and the
/// answer being different is the second half of the test: the instruction says whether the
/// arithmetic itself needed more room, and the round trip says whether what came out survived
/// the trip down to where it was going.
#[test]
fn an_overflow_check_writes_the_wrapped_answer_whether_or_not_it_fit() {
let text =
body("int f(int a, int b, char *r) { return __builtin_sub_overflow(a, b, r); }\n");
assert!(text.contains("%3, %4 = ssub_overflow.(i32, i1) %0, %1"), "{text}");
assert!(text.contains("%5 = trunc.i8 %3"), "narrowed to where it goes: {text}");
assert!(text.contains("%6 = sext.i32 %5"), "and back: {text}");
assert!(text.contains("%7 = icmp ne %6, %3"), "which is whether it fit: {text}");
assert!(text.contains("store %5 -> %2"), "the narrowed value is stored either way: {text}");
assert!(text.contains("%8 = or %4, %7"), "and either bit is an overflow: {text}");
}
/// A call needing more than the widest type there is compiles, by not asking for such a type.
///
/// One way to reach it: an unsigned `__int128` mixed with a signed type, which needs a hundred
/// and twenty nine bits to represent both and so has nowhere left to go. That used to be refused
/// by name. It is done now by carrying the sign of each operand alongside its value rather than
/// inside it, which is what gcc does, so all three of the family compile for that mix.
#[test]
fn a_call_needing_more_than_the_widest_type_still_compiles() {
for name in ["add", "sub", "mul"] {
let source = format!(
"int f(unsigned __int128 a, long long b, __int128 *r) {{\n \
return __builtin_{name}_overflow(a, b, r);\n}}\n"
);
let mut opts = options();
opts.emit = EmitKind::MirFinal;
assert!(!run(&opts, &source).failed(), "{name} was refused or stopped the back end");
}
}
/// An operand that is not an integer at all is the older message, from the type checking every
/// type generic builtin shares.
#[test]
fn an_overflow_check_over_something_that_is_not_an_integer_says_so() {
let messages =
errors("int f(double a, int b, int *r) { return __builtin_add_overflow(a, b, r); }\n");
assert!(messages.iter().any(|line| line.contains("E0671")), "{messages:?}");
let messages =
errors("int f(int a, int b, double *r) { return __builtin_add_overflow(a, b, r); }\n");
assert!(messages.iter().any(|line| line.contains("E0671")), "{messages:?}");
}
/// An ordered access is an ordered access in the IR, with the ordering the program wrote.
///
/// Which is the point of the node existing at all. An ordering is not an argument anything is
/// passed, it is a thing the IR says about an access, so the number in the source is read once
/// in the front end and after that the ordering travels on the instruction where every pass
/// that moves code can see it.
///
/// SQLite is why these are done: `AtomicLoad` and `AtomicStore` in `sqlite3.c` are
/// `__atomic_load_n` and `__atomic_store_n` at the relaxed ordering, and there are thirty five
/// calls to the pair.
#[test]
fn an_ordered_access_is_ordered_in_the_ir() {
let text = body("int f(int *p) { return __atomic_load_n(p, 0); }\n");
assert!(text.contains("atomic_load.i32 %0, align 4, relaxed"), "{text}");
let text = body("long f(long *p) { return __atomic_load_n(p, 2); }\n");
assert!(text.contains("atomic_load.i64 %0, align 8, acquire"), "{text}");
let text = body("void f(int *p, int v) { __atomic_store_n(p, v, 3); }\n");
assert!(text.contains("atomic_store %1 -> %0, align 4, release"), "{text}");
let text = body("void f(int *p, int v) { __atomic_store_n(p, v, 5); }\n");
assert!(text.contains("atomic_store %1 -> %0, align 4, seq_cst"), "{text}");
// The value is converted to what the pointer points at before it is stored, which is what
// the call would have done if it had a prototype to convert against.
let text = body("void f(char *p, int v) { __atomic_store_n(p, v, 0); }\n");
assert!(text.contains("trunc.i8 %1"), "{text}");
assert!(text.contains("atomic_store %2 -> %0, align 1, relaxed"), "{text}");
}
/// On this machine the ordered access is the plain instruction, except at the strongest
/// ordering of a store.
///
/// x86-64 is total store order: every load is already an acquire and every store is already a
/// release, and an aligned access no wider than a word is indivisible whether or not anybody
/// asked. So the whole family is `mov` and the one thing the machine does not give away is a
/// store staying in front of a later load, which is `mfence` behind the store. Every line below
/// is what gcc 16.2.0 writes for the same function.
#[test]
fn an_ordered_access_is_the_plain_instruction_on_this_machine() {
let text = asm("int f(int *p) { return __atomic_load_n(p, 5); }\n");
assert!(text.contains("movl\t(%rdi), %eax"), "{text}");
assert!(!text.contains("mfence"), "a load needs no barrier here: {text}");
let text = asm("void f(int *p, int v) { __atomic_store_n(p, v, 3); }\n");
assert!(text.contains("movl\t%esi, (%rdi)"), "{text}");
assert!(!text.contains("mfence"), "a release store needs no barrier here: {text}");
let text = asm("void f(int *p, int v) { __atomic_store_n(p, v, 5); }\n");
let (before, after) = text.split_once("mfence").expect("a barrier: {text}");
assert!(before.contains("movl\t%esi, (%rdi)"), "the store comes first: {text}");
assert!(!after.contains("movl"), "and nothing else is between them: {text}");
}
/// A barrier is one instruction at the strongest ordering and no instruction below it.
///
/// The same reasoning the other way round. An acquire, a release and an acquire release fence
/// are already true of every program running on this machine, and what a program wanted from
/// one is that the compiler not move accesses across it, which is already so by the time any
/// instruction is picked. Sequential consistency is the one that costs something.
///
/// `__sync_synchronize` is the older family's spelling of the strongest one and compiles to
/// exactly the same instruction, which is what SQLite calls twice in `sqlite3.c`.
#[test]
fn a_barrier_is_one_instruction_at_the_strongest_ordering_and_none_below_it() {
assert!(asm("void f(void) { __atomic_thread_fence(5); }\n").contains("mfence"));
assert!(asm("void f(void) { __sync_synchronize(); }\n").contains("mfence"));
for weaker in ["1", "2", "3", "4"] {
let source = format!("void f(void) {{ __atomic_thread_fence({weaker}); }}\n");
assert!(!asm(&source).contains("mfence"), "{weaker} costs nothing here");
}
}
/// The three x86 fences under gcc's names are that same barrier at that same ordering.
///
/// Exact for `mfence` and stronger than asked for the other two, which is a safe answer: a
/// program that wanted its stores ordered gets that and more. Narrowing the two is worth doing
/// once an instruction can be named from there, which is the note the shipped `xmmintrin.h`
/// already carries at `_mm_sfence`.
///
/// Each carries a signature, so an argument written on one is reported like an argument
/// written on any other call, which is the whole reason they have one.
#[test]
fn the_three_x86_fences_are_the_barrier_the_strongest_ordering_gives() {
for name in ["__builtin_ia32_sfence", "__builtin_ia32_lfence", "__builtin_ia32_mfence"] {
let source = format!("void f(void) {{ {name}(); }}\n");
assert!(asm(&source).contains("mfence"), "{name} is a barrier");
let text = body(&source);
assert!(text.contains("fence seq_cst"), "{name}: {text}");
}
let result = run(&options(), "void f(void) { __builtin_ia32_sfence(1); }\n");
assert_eq!(result.messages.len(), 1, "{:?}", result.messages);
assert!(result.messages[0].contains("too many arguments"), "{:?}", result.messages);
}
/// The four compare and exchange names are one IR instruction producing two values.
///
/// Which of the two the expression answers is the difference between three of the four names,
/// and the fourth difference is the C11 pair writing what they found back through the pointer
/// they were handed, which is the branch after the instruction.
#[test]
fn a_compare_and_exchange_is_one_instruction_answering_two_things() {
// The older family, whose two names are the same instruction read two ways. Neither has a
// memory order argument and both are a full barrier, which is what `seq_cst` says.
let text =
body("int f(int *p, int e, int d) { return __sync_val_compare_and_swap(p, e, d); }\n");
assert!(text.contains("%3, %4 = cmpxchg.(i32, i1) %0, %1, %2, align 4, seq_cst"), "{text}");
assert!(text.contains("return %3"), "the value it found: {text}");
let text =
body("int f(int *p, int e, int d) { return __sync_bool_compare_and_swap(p, e, d); }\n");
assert!(text.contains("%3, %4 = cmpxchg.(i32, i1) %0, %1, %2, align 4, seq_cst"), "{text}");
assert!(text.contains("zext.i32 %4"), "whether it happened: {text}");
// The C11 form, whose value expected arrives by pointer and is read before the exchange,
// and whose answer is whether it happened. The write back is on the path where it did not.
let text = body(
"int f(int *p, int *e, int d) { return __atomic_compare_exchange_n(p, e, d, 0, 4, 2); }\n",
);
assert!(text.contains("%3 = load.i32 %1, align 4"), "{text}");
assert!(text.contains("%4, %5 = cmpxchg.(i32, i1) %0, %3, %2, align 4, acq_rel"), "{text}");
assert!(text.contains("br_if %5, block2, block1"), "{text}");
assert!(text.contains("store %4 -> %1, align 4"), "{text}");
// And the form that takes the value to put there by pointer as well, which is one more
// read and is otherwise the same node.
let text = body(
"int f(int *p, int *e, int *d) { return __atomic_compare_exchange(p, e, d, 0, 5, 5); }\n",
);
assert!(text.contains("%3 = load.i32 %1, align 4"), "{text}");
assert!(text.contains("%4 = load.i32 %2, align 4"), "{text}");
assert!(text.contains("%5, %6 = cmpxchg.(i32, i1) %0, %3, %4, align 4, seq_cst"), "{text}");
}
/// On this machine it is `lock cmpxchg`, at the width of the object and at every ordering.
///
/// The `lock` is what makes the whole of it one step as far as every other processor is
/// concerned, and it is also what makes the instruction a full barrier, which is why the
/// ordering the program wrote changes nothing in what is written here. Every line below is what
/// gcc 16.2.0 writes for the same function.
#[test]
fn a_compare_and_exchange_is_a_locked_instruction_at_the_width_of_the_object() {
let widths = [("char", "b", "%dl"), ("short", "w", "%dx"), ("int", "l", "%edx")];
for (ty, suffix, reg) in widths {
let source = format!(
"int f({ty} *p, {ty} e, {ty} d) {{ return __sync_bool_compare_and_swap(p, e, d); }}\n"
);
let text = asm(&source);
assert!(text.contains("\tlock\n"), "{ty}: {text}");
assert!(text.contains(&format!("cmpxchg{suffix}\t{reg}, (%rdi)")), "{ty}: {text}");
assert!(text.contains("sete\t"), "{ty}: {text}");
}
let source =
"int f(long *p, long e, long d) { return __sync_bool_compare_and_swap(p, e, d); }\n";
assert!(asm(source).contains("cmpxchgq\t%rdx, (%rdi)"), "{}", asm(source));
// The ordering the program asked for changes nothing, because a locked instruction on this
// machine orders everything whatever it was asked for, so there is never a barrier beside
// it either.
for order in ["0", "2", "3", "4", "5"] {
let call = format!("__atomic_compare_exchange_n(p, e, d, 0, {order}, 0)");
let source = format!("int f(int *p, int *e, int d) {{ return {call}; }}\n");
let text = asm(&source);
assert!(text.contains("cmpxchgl\t"), "{order}: {text}");
assert!(!text.contains("mfence"), "{order} needs no barrier here: {text}");
}
}
/// A read modify write is one IR instruction, and a name that asks for the value afterwards is
/// that instruction and one more operation.
///
/// The instruction answers what was there before, which is the convention every machine and
/// every language in this area uses. Half the names in the family ask for the value afterwards
/// instead, and that is the answer and the operand put together again, which is arithmetic on
/// two values already in registers rather than a second flavour of the instruction.
///
/// The two lock names are here too. They are not read modify writes in the same sense: one is
/// an exchange and the other is a store of a zero, and what makes them a pair is the ordering,
/// which is the one place in the older family that is not sequential consistency.
#[test]
fn a_read_modify_write_is_one_instruction_and_the_arithmetic_a_name_asks_for() {
let text = body("int f(int *p, int v) { return __atomic_fetch_add(p, v, 5); }\n");
assert!(text.contains("%2 = atomic_rmw.i32 add %0, %1, align 4, seq_cst"), "{text}");
assert!(text.contains("return %2"), "the value that was there: {text}");
let text = body("int f(int *p, int v) { return __atomic_add_fetch(p, v, 5); }\n");
assert!(text.contains("%2 = atomic_rmw.i32 add %0, %1, align 4, seq_cst"), "{text}");
assert!(text.contains("%3 = add %2, %1"), "and the value afterwards: {text}");
let text = body("int f(int *p, int v) { return __atomic_sub_fetch(p, v, 5); }\n");
assert!(text.contains("%2 = atomic_rmw.i32 sub %0, %1, align 4, seq_cst"), "{text}");
assert!(text.contains("%3 = sub %2, %1"), "{text}");
// The older family, which passes no ordering and is a full barrier.
let text = body("int f(int *p, int v) { return __sync_fetch_and_sub(p, v); }\n");
assert!(text.contains("%2 = atomic_rmw.i32 sub %0, %1, align 4, seq_cst"), "{text}");
// The exchange, and the older family's spelling of it, which is taking a lock and so is an
// acquire rather than the full barrier the rest of that family is.
let text = body("int f(int *p, int v) { return __atomic_exchange_n(p, v, 5); }\n");
assert!(text.contains("%2 = atomic_rmw.i32 xchg %0, %1, align 4, seq_cst"), "{text}");
let text = body("int f(int *p, int v) { return __sync_lock_test_and_set(p, v); }\n");
assert!(text.contains("%2 = atomic_rmw.i32 xchg %0, %1, align 4, acquire"), "{text}");
// Giving the lock back, which is one of the two names in the family that is handed no value
// to put there, because what it puts there is a zero.
let text = body("void f(int *p) { __sync_lock_release(p); }\n");
assert!(text.contains("release"), "{text}");
assert!(text.contains("%1 = iconst.i32 0"), "{text}");
// And with something after the pointer, which is the list of variables the call promises to
// protect rather than a value to write. Reading it as a value would store whatever the
// caller happened to name there, which is the one thing giving a lock back must not do.
let text = body("void f(int *p, int guard) { __sync_lock_release(p, guard); }\n");
assert!(text.contains("%2 = iconst.i32 0"), "{text}");
assert!(text.contains("atomic_store %2 -> %0, align 4, release"), "{text}");
// The bitwise four, which look no different here from the arithmetic ones: what the machine
// has an instruction for is a question further down and this level does not ask it.
let text = body("int f(int *p, int v) { return __atomic_fetch_and(p, v, 5); }\n");
assert!(text.contains("%2 = atomic_rmw.i32 and %0, %1, align 4, seq_cst"), "{text}");
let text = body("int f(int *p, int v) { return __sync_or_and_fetch(p, v); }\n");
assert!(text.contains("%2 = atomic_rmw.i32 or %0, %1, align 4, seq_cst"), "{text}");
assert!(text.contains("%3 = or %2, %1"), "and the value afterwards: {text}");
// The nand, which is the one of the six that is two operations. The flip is an exclusive or
// against every bit set because the IR has no not and that is what one is.
let text = body("int f(int *p, int v) { return __atomic_nand_fetch(p, v, 5); }\n");
assert!(text.contains("%2 = atomic_rmw.i32 nand %0, %1, align 4, seq_cst"), "{text}");
assert!(text.contains("%3 = and %2, %1"), "{text}");
assert!(text.contains("%4 = iconst.i32 -1"), "{text}");
assert!(text.contains("%5 = xor %3, %4"), "{text}");
}
/// The four operations with no instruction on this machine are a loop around `lock cmpxchg`.
///
/// The shape is the one every architecture manual writes out by hand: read the word, work out
/// what should be there instead, put it back if nothing else got in first, and go round again
/// when something did. What is checked is that the loop is there at every width, that the
/// operation is inside it, and that no `xchg` or `xadd` got used for something neither of them
/// does.
///
/// gcc 16.2.0 writes the same loop for the same functions, down to which register holds the
/// value that was read.
#[test]
fn a_bitwise_read_modify_write_is_a_loop_around_the_compare_and_exchange() {
let widths = [("char", "b", "%dl"), ("short", "w", "%dx"), ("int", "l", "%edx")];
for (ty, suffix, reg) in widths {
for (name, call, insn) in [
("and", "__atomic_fetch_and(p, v, 5)", "and"),
("or", "__sync_fetch_and_or(p, v)", "or"),
("xor", "__atomic_xor_fetch(p, v, 5)", "xor"),
] {
let source = format!("{ty} f({ty} *p, {ty} v) {{ return {call}; }}\n");
let text = asm(&source);
assert!(text.contains("\tlock\n"), "{ty} {name}: {text}");
assert!(
text.contains(&format!("cmpxchg{suffix}\t{reg}, (%rdi)")),
"{ty} {name}: {text}"
);
assert!(text.contains(&format!("{insn}{suffix}\t")), "{ty} {name}: {text}");
// The tab matters on the second of these, since `cmpxchg` ends in the other name.
assert!(!text.contains("\txadd"), "{ty} {name} is not an add: {text}");
assert!(!text.contains("\txchg"), "{ty} {name} is not an exchange: {text}");
}
}
let source = "long f(long *p, long v) { return __atomic_fetch_or(p, v, 5); }\n";
assert!(asm(source).contains("cmpxchgq\t%rdx, (%rdi)"), "{}", asm(source));
// The nand, which puts two instructions inside the loop rather than one. The flip is an
// exclusive or against every bit set in the IR and the folder turns that into the `not` the
// machine has, which is what gcc writes here too.
let text = asm("int f(int *p, int v) { return __sync_fetch_and_nand(p, v); }\n");
assert!(text.contains("cmpxchgl\t"), "{text}");
assert!(text.contains("andl\t"), "{text}");
assert!(text.contains("notl\t"), "{text}");
}
/// The three names that pass a value through a pointer are the same access and one plain one.
///
/// They exist for an object too big to come back in a register, and the front end takes them at
/// their word rather than folding them into the `_n` spellings, because the extra access is real:
/// the caller handed over somewhere to read from or write into and that is where the value has
/// to come from or go. Both of those accesses are plain. The object at the end of the caller's
/// pointer is the caller's own and no other thread has its address, which is what the whole
/// shape is for.
#[test]
fn an_access_through_a_second_pointer_is_the_same_access_and_one_more() {
let text = body("void f(int *p, int *r) { __atomic_load(p, r, 5); }\n");
assert!(text.contains("%2 = atomic_load.i32 %0, align 4, seq_cst"), "{text}");
assert!(text.contains("store %2 -> %1, align 4"), "and out through the place: {text}");
let text = body("void f(int *p, int *v) { __atomic_store(p, v, 3); }\n");
assert!(text.contains("%2 = load.i32 %1, align 4"), "in through the place: {text}");
assert!(text.contains("atomic_store %2 -> %0, align 4, release"), "{text}");
// The exchange, which reads through one pointer and writes through another and is the same
// instruction in between as the spelling that takes and answers values.
let text = body("void f(int *p, int *v, int *r) { __atomic_exchange(p, v, r, 5); }\n");
assert!(text.contains("%3 = load.i32 %1, align 4"), "{text}");
assert!(text.contains("%4 = atomic_rmw.i32 xchg %0, %3, align 4, seq_cst"), "{text}");
assert!(text.contains("store %4 -> %2, align 4"), "{text}");
}
/// The flag pair is an exchange of one byte and a store of a zero over the same byte.
///
/// One byte whatever the pointer was written as, which is the standard's reading rather than a
/// liberty: the object is an `atomic_flag`, there is no other way to read or write one, so the
/// type the pointer carries says nothing about the access and the width is the implementation's
/// to fix. gcc 16.2.0 writes `xchgb` here through an `int *` too.
///
/// The answer is a comparison against zero rather than the byte itself, because the type of the
/// call is `_Bool` and a byte that is neither zero nor one is not one. gcc answers the raw byte,
/// and the two agree wherever the flag is only ever touched through this pair.
#[test]
fn a_flag_is_an_exchange_of_one_byte_and_a_store_of_a_zero_over_the_same_byte() {
for pointer in ["char", "int", "void"] {
let source = format!("int f({pointer} *p) {{ return __atomic_test_and_set(p, 5); }}\n");
let text = body(&source);
assert!(text.contains("%1 = iconst.i8 1"), "{pointer}: {text}");
assert!(
text.contains("%2 = atomic_rmw.i8 xchg %0, %1, align 1, seq_cst"),
"{pointer}: {text}"
);
assert!(text.contains("%4 = icmp ne %2, %3"), "{pointer}: {text}");
let source = format!("void f({pointer} *p) {{ __atomic_clear(p, 3); }}\n");
let text = body(&source);
assert!(text.contains("atomic_store %2 -> %0, align 1, release"), "{pointer}: {text}");
}
// And on this machine, where the exchange carries no `lock` because one with memory locks
// the bus whether it was asked to or not. Both lines are what gcc 16.2.0 writes.
let text = asm("int f(int *p) { return __atomic_test_and_set(p, 5); }\n");
assert!(text.contains("xchgb\t%al, (%rdi)"), "{text}");
assert!(text.contains("setne\t"), "{text}");
}
/// On this machine it is `xchg` where the machine has an exchange and `lock xadd` where it has
/// an add, at the width of the object.
///
/// The exchange carries no prefix and the add carries one, which is the machine rather than an
/// oversight: an exchange with memory locks the bus whether it is asked to or not. Both are
/// therefore full barriers whatever ordering the program wrote, so no ordering costs an
/// `mfence` beside them. Every line below is what gcc 16.2.0 writes for the same function.
#[test]
fn a_read_modify_write_is_an_exchange_or_a_locked_add_at_the_width_of_the_object() {
let widths = [("char", "b", "%sil"), ("short", "w", "%si"), ("int", "l", "%esi")];
for (ty, suffix, reg) in widths {
let source =
format!("{ty} f({ty} *p, {ty} v) {{ return __atomic_fetch_add(p, v, 5); }}\n");
let text = asm(&source);
assert!(text.contains("\tlock\n"), "{ty}: {text}");
assert!(text.contains(&format!("xadd{suffix}\t{reg}, (%rdi)")), "{ty}: {text}");
let source =
format!("{ty} f({ty} *p, {ty} v) {{ return __atomic_exchange_n(p, v, 5); }}\n");
let text = asm(&source);
assert!(text.contains(&format!("xchg{suffix}\t{reg}, (%rdi)")), "{ty}: {text}");
assert!(!text.contains("\tlock\n"), "an exchange is locked already: {ty}: {text}");
}
let source = "long f(long *p, long v) { return __atomic_fetch_add(p, v, 5); }\n";
assert!(asm(source).contains("xaddq\t%rsi, (%rdi)"), "{}", asm(source));
// A subtraction is the same instruction over the negated operand, which is right at every
// width because the machine's arithmetic wraps.
let source = "int f(int *p, int v) { return __atomic_fetch_sub(p, v, 5); }\n";
let text = asm(source);
assert!(text.contains("negl\t"), "{text}");
assert!(text.contains("xaddl\t"), "{text}");
// The ordering changes nothing, for the reason it changes nothing for a compare and
// exchange: a locked instruction on this machine orders everything whatever it was asked.
for order in ["0", "2", "3", "4", "5"] {
let source =
format!("int f(int *p, int v) {{ return __atomic_fetch_add(p, v, {order}); }}\n");
let text = asm(&source);
assert!(text.contains("xaddl\t"), "{order}: {text}");
assert!(!text.contains("mfence"), "{order} needs no barrier here: {text}");
}
// And the lock pair, which is the exchange and a store of a zero. Neither is a barrier
// instruction: the exchange is one already and the store is a release, which this machine
// gives away.
let text = asm("int f(int *p, int v) { return __sync_lock_test_and_set(p, v); }\n");
assert!(text.contains("xchgl\t%esi, (%rdi)"), "{text}");
// The zero goes through a register on the way, which is where every constant this
// compiler stores goes: gcc writes the one instruction because it has a store that takes an
// immediate and no rule here does. That is a rule this rule set is missing rather than
// anything about the builtin, and it is the same two instructions a plain `*p = 0` makes.
// The register gets its zero from an exclusive or with itself rather than from a move of a
// zero, which is `rucc_codegen::shorten` writing the shorter of the two spellings.
let text = asm("void f(int *p) { __sync_lock_release(p); }\n");
assert!(text.contains("xorl\t%eax, %eax"), "{text}");
assert!(text.contains("movl\t%eax, (%rdi)"), "{text}");
assert!(!text.contains("mfence"), "a release store needs no barrier here: {text}");
}
/// The two lock free questions are numbers in the program rather than calls to anything.
///
/// Both answer from the size, which has to be a power of two no wider than the widest access
/// this compiler writes, and from what the pointer says about the alignment. Sixteen bytes is
/// no here and is no in gcc without `-mcx16`, because `cmpxchg16b` is not in the baseline and
/// nothing here writes it. Three bytes is no because there is no three byte access at all.
///
/// The whole point of both names is that the answer is available before the program runs, so
/// what is checked is that a `mov` of a constant is the whole function and that no call was
/// left behind. A call would be to `__atomic_is_lock_free` in libatomic, which is not a library
/// this links against.
#[test]
fn the_lock_free_questions_are_answered_as_constants() {
for size in ["1", "2", "4", "8"] {
let source =
format!("int f(void) {{ return __atomic_always_lock_free({size}, 0); }}\n");
let text = asm(&source);
assert!(text.contains("movb\t$1, %al"), "{size} bytes is lock free: {text}");
assert!(!text.contains("call"), "and is not a call: {text}");
}
for size in ["3", "16", "sizeof(long double)"] {
let source = format!("int f(void) {{ return __atomic_is_lock_free({size}, 0); }}\n");
let text = asm(&source);
assert!(text.contains("movb\t$0, %al"), "{size} bytes is not: {text}");
assert!(!text.contains("call"), "and is not a call either: {text}");
}
// A size the compiler cannot work out, which is no rather than a refusal, and an object
// whose type is aligned under the size asked about, which is the whole of what the second
// argument is for.
let text = asm("int f(int n) { return __atomic_is_lock_free(n, 0); }\n");
assert!(text.contains("movb\t$0, %al"), "a size nobody knows is not lock free: {text}");
let text = asm("int f(int *p) { return __atomic_always_lock_free(8, p); }\n");
assert!(text.contains("movb\t$0, %al"), "eight bytes at four is not: {text}");
let text = asm("int f(long *p) { return __atomic_always_lock_free(8, p); }\n");
assert!(text.contains("movb\t$1, %al"), "and at eight it is: {text}");
}
/// A memory order an operation cannot carry is read as the strongest one, and said so about.
///
/// There are three ways the number is not one the operation can take: it is not a constant at
/// all, it is not one of the six the headers define, or it is one of them and means nothing for
/// this operation, which is a release load or an acquire store. All three become sequential
/// consistency, which is stronger than anything the program could have meant, so a program that
/// wrote nonsense gets a correct answer rather than a fast one. gcc does the same.
///
/// The last two also warn, because the number was written down and is wrong. The first does
/// not: gcc takes a computed order, and so does the C11 spelling, so a warning there would fire
/// on correct programs.
#[test]
fn a_memory_order_an_operation_cannot_carry_is_read_as_the_strongest() {
let mut opts = options();
opts.emit = EmitKind::Ir;
let acquire_store = run(&opts, "void f(int *p, int v) { __atomic_store_n(p, v, 2); }\n");
assert!(acquire_store.text().contains("seq_cst"), "{:?}", acquire_store.text());
assert!(acquire_store.messages[0].contains("[W0333]"), "{:?}", acquire_store.messages);
let nonsense = run(&opts, "int f(int *p) { return __atomic_load_n(p, 99); }\n");
assert!(nonsense.text().contains("seq_cst"), "{:?}", nonsense.text());
assert!(nonsense.messages[0].contains("[W0333]"), "{:?}", nonsense.messages);
let computed = run(&opts, "int f(int *p, int n) { return __atomic_load_n(p, n); }\n");
assert!(computed.text().contains("seq_cst"), "{:?}", computed.text());
assert_eq!(computed.messages, Vec::<String>::new(), "a computed order is not a mistake");
}
/// A conversion between a float and the widest unsigned integer, which the machine has not got.
///
/// Every other conversion between a float and an integer is the signed one at some width with a
/// widening in front or a narrowing behind. These two are not, because there is no signed width
/// that holds every value of an unsigned sixty four bit integer, so each is the signed
/// conversion with arithmetic around it that brings the value into range and puts it back.
///
/// What is checked here is that the conversion happens at all and that it happens without a
/// branch. gcc writes a branch for both; this writes the choice as a mask, because every rewrite
/// in that pass stays inside the block it started in. The arithmetic itself is checked in
/// `rucc-codegen`, where it can be run against the answer rather than read in the assembly.
#[test]
fn a_conversion_between_a_float_and_the_widest_unsigned_integer_is_written_without_a_branch() {
let text = asm("double f(unsigned long long x) { return (double)x; }\n");
assert!(text.contains("cvtsi2sdq"), "the signed conversion is what runs: {text}");
assert!(text.contains("shrq"), "with the value halved first: {text}");
assert!(text.contains("addsd"), "and doubled after: {text}");
assert!(!text.contains("\tj"), "and no branch anywhere: {text}");
let text = asm("unsigned long long f(double d) { return (unsigned long long)d; }\n");
assert!(text.contains("cvttsd2siq"), "the signed conversion is what runs: {text}");
assert!(text.contains("subsd"), "with half the range taken off first: {text}");
assert!(text.contains("shlq\t$63"), "and the top bit put back: {text}");
assert!(!text.contains("\tj"), "and no branch anywhere: {text}");
}
/// The plain names are the library's only where nothing else has taken them.
///
/// Four ways a program says it means something else. A `static` definition is its own
/// function and the name outside the file is somebody else's. A declaration of another type
/// is another function. `-fno-builtin` and `-fno-builtin-<name>` say so outright, and
/// `-ffreestanding` says there is no C library for the name to be the name of. Every one of
/// these was measured against gcc 16.2.0, which calls the program's function in all of them.
///
/// The `__builtin_` spelling goes on meaning the library's function through all of it, which
/// is what the prefix is for and what lets a freestanding build reach one deliberately.
#[test]
fn a_plain_name_the_program_took_is_the_programs_own_function() {
let taken = concat!(
"static long long llabs(long long b) { return 7; }\n",
"long long f(long long x) { return llabs(x); }\n",
);
assert!(ir(taken).contains("call @llabs"), "a static definition is the program's own");
let retyped = concat!("int llabs(int b);\n", "int f(int x) { return llabs(x); }\n",);
assert!(ir(retyped).contains("call @llabs"), "another type is another function");
let plain = concat!(
"long long llabs(long long b);\n",
"long long f(long long x) { return llabs(x); }\n",
);
let mut opts = options();
opts.emit = EmitKind::Ir;
assert!(!run(&opts, plain).text().contains("call @llabs"), "the library's by default");
opts.builtins = false;
assert!(run(&opts, plain).text().contains("call @llabs"), "-fno-builtin");
opts.builtins = true;
opts.no_builtin = vec!["llabs".to_owned()];
assert!(run(&opts, plain).text().contains("call @llabs"), "-fno-builtin-llabs");
let one = "long labs(long b);\nlong f(long x) { return labs(x); }\n";
assert!(!run(&opts, one).text().contains("call @labs"), "one name and not the family");
// `-ffreestanding` reaches the front end as the same answer, which is what the driver
// does with it in `compile`, and the prefixed spelling is untouched by any of it.
opts.no_builtin = Vec::new();
opts.builtins = false;
let prefixed = "long long f(long long x) { return __builtin_llabs(x); }\n";
assert!(!run(&opts, prefixed).text().contains("call @llabs"), "the prefix is a promise");
}
/// The hint builtins are their first argument, and nothing is left of the hint.
///
/// Which way a branch is expected to go is the whole of what they say, and there is nothing
/// here that reads a branch weight yet, so what reaches the IR is the value and the hint is
/// gone. The one thing the prototype has to keep doing is converting: gcc gives both of them
/// a `long` result, so `sizeof(__builtin_expect((char)1, 1))` is eight and a narrower argument
/// widens before it is answered with.
///
/// Whether a side effect in the hint happens depends on the first argument, which is gcc's
/// answer rather than a rule anybody designed. A constant first argument folds the whole call
/// where it is written and the hint goes with it, and a first argument that is not a constant
/// leaves the hint standing. Both halves are below and both were measured on gcc 16.2.0.
#[test]
fn the_hint_builtins_are_their_first_argument_and_the_hint_leaves_no_trace() {
let text = ir(concat!(
"long a = __builtin_expect(7, 1);\n",
"long b = __builtin_expect_with_probability(9, 1, 0.9);\n",
"unsigned long c = sizeof(__builtin_expect((char)1, 1));\n",
));
assert!(text.contains("global @a : i64 = 7,"), "{text}");
assert!(text.contains("global @b : i64 = 9,"), "{text}");
assert!(text.contains("global @c : i64 = 8,"), "{text}");
assert!(!text.contains("__builtin_expect"), "it is not a call to anything:\n{text}");
// A narrower argument is widened by the prototype before it is handed back, and it is
// widened with its sign, since the parameter is a signed `long`.
let text = body("long f(char c) { return __builtin_expect(c, 1); }\n");
assert!(text.contains("sext"), "{text}");
// The first argument is a constant, so the second is not evaluated and `i` is still zero,
// and neither is the third. What is left of each statement is the first argument widened,
// which nothing reads and which the first pass that looks for dead code will take out.
let one = "block0:\n %0 = iconst.i32 0\n %1 = iconst.i32 1\n %2 = sext.i64 %1\n return %0\n";
assert_eq!(body("int f(void) { int i = 0; __builtin_expect(1, i++); return i; }\n"), one);
let source = "int g(void) { int i = 0; __builtin_expect_with_probability(1, i++, 0.5); return i; }\n";
assert_eq!(body(source), one);
// The first argument is not a constant, so the hint runs and `i` comes back one. There is
// an increment in the body and the value it returns is the load after it, which is what
// gcc gives for the same program, and the whole of tamnd/rucc#584 is that this used to
// come out the same as the pair above.
let kept = body("int f(int n) { int i = 0; __builtin_expect(n, i++); return i; }\n");
assert!(kept.contains("add.nsw"), "the hint still runs: {kept}");
assert!(kept.ends_with("return %3\n"), "and the answer is what it left behind: {kept}");
let both = "int g(int n) { int i = 0; __builtin_expect_with_probability(n, i++, 0.5); return i; }\n";
assert!(body(both).contains("add.nsw"), "and so does the one with three arguments");
}
/// A point control does not arrive at, in both of the ways the compiler has one.
///
/// `__builtin_unreachable()` is the promise written down, and a function whose body can run
/// off the bottom is the walk arriving at the same place on its own. Neither writes an
/// instruction, which is what gcc 16.2.0 does at `-O0`: it emits the epilogue and the `ret`
/// for both of the functions below and nothing else, and the two of them come out byte for
/// byte the same there.
///
/// The `ret` is the part worth holding on to. It is not there because anything runs it, it is
/// there because a function whose last instruction is not a return is one that falls into
/// whatever the assembler puts after it.
#[test]
fn a_promise_that_control_does_not_arrive_writes_no_instruction() {
let promised = "int f(int x) { if (x) return 1; __builtin_unreachable(); }\n";
let text = ir(promised);
assert!(text.contains(" unreachable_hint\n"), "{text}");
assert!(!text.contains("call"), "it is not a call to anything:\n{text}");
// The statement after it is still lowered. Continuing to translate a path the program
// promised is dead is one of the things a compiler may do with undefined behaviour, and
// it is the one that keeps a program built at `-O0` behaving the way it was watched to.
let after = body("int g(int x) { __builtin_unreachable(); return x; }\n");
assert!(after.contains("return"), "{after}");
// Both functions are the same instructions, because the hint writes none of them and the
// terminator underneath it writes none either.
let text = asm(promised);
let mine = text.split_once("\nf:\n").expect("a definition").1;
let mine = mine.split_once("\t.size").expect("a definition").0;
let plain = asm("int f(int x) { if (x) return 1; }\n");
let plain = plain.split_once("\nf:\n").expect("a definition").1;
let plain = plain.split_once("\t.size").expect("a definition").0;
assert_eq!(mine, plain);
// The last instruction, rather than the last line, because the unwind record is closed
// after it and a directive is not something the machine runs.
let last = mine.lines().rfind(|line| !line.trim_start().starts_with('.'));
assert_eq!(last.map(str::trim), Some("ret"), "{mine}");
assert!(!mine.contains("ud2"), "{mine}");
}
/// The two names stay apart, which is what having both of them is for.
///
/// The one the program wrote is what the call is checked against and what a diagnostic about
/// it says, and the one the library defines is what the call ends up carrying. A compiler
/// that kept only the second would report this against `abort`, which is a function the
/// program never mentions.
#[test]
fn a_library_builtin_is_diagnosed_under_the_name_the_program_wrote() {
let mut opts = options();
opts.emit = EmitKind::Ir;
let messages = run(&opts, "void f(void) { __builtin_abort(1); }\n").messages;
assert!(
messages.iter().any(|m| m.contains("__builtin_abort")),
"expected the written name in {messages:?}"
);
}
/// A builtin nothing lowers is refused where it is written, rather than at the link.
///
/// One name is left, which is the last of the atomic family that is refused and is also the
/// one whose prefix is not `__builtin_`; its older half has nothing left in it at all, and so
/// does the half of the family that carries a prototype. What the message has to carry is the
/// name, because the whole complaint about the link error this replaces is that the name in it
/// was one the compiler chose.
#[test]
fn a_builtin_nothing_lowers_is_refused_by_name() {
let mut opts = options();
opts.emit = EmitKind::Ir;
let builtin = "__atomic_signal_fence";
let source = format!("int counter;\nint f(void) {{ return ({builtin}(5), 0); }}\n");
let messages = run(&opts, &source).messages;
let named = messages.iter().any(|m| m.contains(builtin) && m.contains("E0686"));
assert!(named, "expected {builtin} to be refused by name in {messages:?}");
}
/// The refusal is about a call and not about the name, so a program that defines the name
/// itself gets the function it wrote.
///
/// That is not the reason the refusal exists, but a definition in front of us is a definition
/// and the call to it links. It works here because the name is one with no prototype and no
/// meaning the front end knows, which is what is left once the rest of the family is
/// implemented: a `__builtin_` name the front end does answer is answered whatever the program
/// declares, the way gcc answers one.
#[test]
fn what_is_refused_is_the_call_and_not_the_name() {
let text = ir(concat!(
"void __atomic_signal_fence(int order) { (void)order; }\n",
"void f(void) { __atomic_signal_fence(5); }\n",
));
assert!(text.contains("call @__atomic_signal_fence"), "{text}");
}
/// How many bytes are behind an address is read off the layout, for every shape the walk
/// covers.
///
/// This is what `_FORTIFY_SOURCE` runs on, so the numbers matter one at a time rather than in
/// aggregate: a size too small turns a correct copy into an abort, and a size too large turns
/// a checked copy back into an unchecked one. Every answer here was measured against gcc
/// 16.2.0 first. They are written as initializers so that each one is a constant in the
/// output and the test reads as the table it is.
#[test]
fn the_object_size_of_an_address_is_what_the_layout_leaves_in_front_of_it() {
let text = ir(concat!(
"struct S { char a[8]; int n; char b[12]; };\n",
"char g[32];\n",
"struct S gs;\n",
"unsigned long whole = __builtin_object_size(g, 0);\n",
"unsigned long moved = __builtin_object_size(g + 4, 0);\n",
"unsigned long back = __builtin_object_size(g + 30 - 2, 0);\n",
"unsigned long outer = __builtin_object_size(gs.a, 0);\n",
"unsigned long inner = __builtin_object_size(gs.a, 1);\n",
"unsigned long scalar = __builtin_object_size(&gs.n, 1);\n",
"unsigned long after = __builtin_object_size(&gs.n, 0);\n",
"unsigned long into = __builtin_object_size(&gs.b[2], 1);\n",
"unsigned long text = __builtin_object_size(\"hello\", 0);\n",
"unsigned long dyn = __builtin_dynamic_object_size(gs.b, 1);\n",
));
for (name, size) in [
("whole", 32),
("moved", 28),
("back", 4),
("outer", 24),
("inner", 8),
("scalar", 4),
("after", 16),
("into", 10),
("text", 6),
("dyn", 12),
] {
let said = format!("global @{name} : i64 = {size},");
assert!(text.contains(&said), "expected `{said}` in:\n{text}");
}
}
/// A local is as knowable as a global, which is the whole point of asking on the way into a
/// copy.
///
/// A fortified header expands around the destination the caller wrote, and the destination a
/// program most wants checked is the buffer on its own stack. Nothing in the answer depends on
/// storage duration, unlike in a constant expression, where the address of a local is exactly
/// what is not allowed.
#[test]
fn the_object_behind_an_address_can_be_one_with_automatic_storage() {
let text = body(concat!(
"struct S { char a[8]; int n; char b[12]; };\n",
"unsigned long f(void) {\n",
" char loc[20];\n",
" struct S ls;\n",
" return __builtin_object_size(loc + 3, 0) + __builtin_object_size(ls.b + 2, 1);\n",
"}\n",
));
assert!(text.contains("iconst.i64 17"), "twenty bytes with three used: {text}");
assert!(text.contains("iconst.i64 10"), "twelve bytes with two used: {text}");
}
/// An address whose object the walk cannot see answers at whichever end of the range the kind
/// asks for.
///
/// The two bits are a question and the answer has to fit it. A kind wanting the largest object
/// the address could be in has to name a size nothing is bigger than, and a kind wanting the
/// smallest has to name a size nothing is smaller than, so the unknown answers are all ones
/// and zero. That pair is what a fortified header compares against to decide whether to check
/// at all, and getting either of them the wrong way round turns every unknown copy into an
/// abort.
#[test]
fn an_address_with_no_object_in_sight_answers_at_the_end_of_the_range_its_kind_asks_for() {
let text = ir(concat!(
"struct T { int n; char f[]; };\n",
"extern char *p;\n",
"extern struct T *t;\n",
"unsigned long largest = __builtin_object_size(p, 0);\n",
"unsigned long nearest = __builtin_object_size(p, 1);\n",
"unsigned long least = __builtin_object_size(p, 2);\n",
"unsigned long tight = __builtin_object_size(p, 3);\n",
"unsigned long flex = __builtin_object_size(t->f, 1);\n",
"int says = __builtin_object_size(p, 0) == (unsigned long)-1;\n",
));
for name in ["largest", "nearest", "flex"] {
// All ones, printed as the signed rendering of the sixty four bits it is held in.
// `says` is what pins the pattern itself, since it is the comparison a fortified
// header writes and it folds only if every bit is set.
let said = format!("global @{name} : i64 = -1,");
assert!(text.contains(&said), "expected `{said}` in:\n{text}");
}
for name in ["least", "tight"] {
let said = format!("global @{name} : i64 = 0,");
assert!(text.contains(&said), "expected `{said}` in:\n{text}");
}
assert!(text.contains("global @says : i32 = 1,"), "{text}");
}
/// The address is not evaluated, which is the rule `sizeof` follows and for the same reason.
///
/// What the builtin reads is the shape of the expression rather than the value it would
/// produce, so there is nothing to run. It matters because a fortified header writes the
/// destination twice, once into the copy and once into the size, and a program whose
/// destination is `*next()` would advance twice if this evaluated.
#[test]
fn the_address_an_object_size_is_asked_about_is_not_evaluated() {
let text = body(concat!(
"extern char *side(void);\n",
"unsigned long f(void) { return __builtin_object_size(side(), 0); }\n",
));
assert!(!text.contains("call"), "nothing is called: {text}");
}
/// The kind has to be a constant in range, because it says which of four questions was asked.
///
/// A number that is not known until the program runs decides nothing, and one outside the two
/// bits names no question at all. gcc refuses both in one sentence and so does this.
#[test]
fn a_kind_that_is_not_one_of_the_four_is_refused() {
for source in [
"extern char *p;\nextern int k;\nunsigned long f(void) ".to_owned()
+ "{ return __builtin_object_size(p, k); }\n",
"extern char *p;\nunsigned long f(void) { return __builtin_object_size(p, 4); }\n"
.to_owned(),
"extern char *p;\nunsigned long f(void) ".to_owned()
+ "{ return __builtin_dynamic_object_size(p, -1); }\n",
] {
let messages = errors(&source);
let named = messages.iter().any(|m| m.contains("E0709") && m.contains("0 to 3"));
assert!(named, "expected a complaint about the kind in {messages:?}");
}
}
/// The pair that saves a place in a function and comes back to it, which is not a call.
///
/// What the IR has to show is one instruction each and no call to anything: there is no
/// function of either name for a call to reach, and a program that got one would fail to link.
/// The save answers an `int`, which is the value that says how control got there.
#[test]
fn the_pair_that_saves_a_place_lowers_to_the_two_markers() {
let text = ir(concat!(
"void *buf[5];\n",
"int f(void) {\n",
" if (__builtin_setjmp(buf)) return 2;\n",
" return 1;\n",
"}\n",
"void g(void) { __builtin_longjmp(buf, 1); }\n",
));
assert!(text.contains("= setjmp_marker.i32 %0\n"), "the save answers a value: {text}");
assert!(text.contains(" longjmp_marker %0\n"), "the restore answers nothing: {text}");
assert!(!text.contains("call @"), "neither of them is a call: {text}");
}
/// Every local of a function that saves a place lives in the frame, and not in a value.
///
/// The edge a restore travels is not an edge of the graph, so a local the SSA construction
/// renamed would answer the write that reached the read along the edges there are rather than
/// the write that last ran. The second function here is the same code without the save, where
/// the local is a value and there is no slot at all, which is what makes the first one a rule
/// about the save and not about the shape of the code.
#[test]
fn a_local_of_a_function_that_saves_a_place_gets_a_slot() {
let text = ir(concat!(
"void *buf[5];\n",
"int f(int x) { int a = 0; if (__builtin_setjmp(buf)) return a; a = 1; return x; }\n",
"int g(int x) { int a = 0; if (x) return a; a = 1; return x; }\n",
));
let (saves, plain) = text.split_once("func @g").expect("both functions");
assert_eq!(saves.matches("= alloca").count(), 2, "the parameter and the local: {text}");
assert!(saves.contains("store %9 -> %2"), "the local is written through: {text}");
assert!(!plain.contains("alloca"), "nothing in the plain one needs a slot: {text}");
}
/// What the save writes and where it leaves control, which is a new block.
///
/// Four words: the frame pointer, the address to come back to, the stack pointer, and the
/// address of the word the answer arrives in, which is this compiler's own and is why the
/// block after the save opens with a load. The frame pointer is kept although the function
/// asked for nothing and calls nothing, since the epilogue has to find the caller's frame
/// after control has come back, and the frame is grown although there is one word in it,
/// since a function control comes back into cannot use the red zone.
#[test]
fn the_save_writes_four_words_and_carries_on_in_a_new_block() {
let text =
asm(concat!("void *buf[5];\n", "int f(void) { return __builtin_setjmp(buf); }\n",));
let body = text.split_once("\nf:\n").expect("the function").1;
assert!(body.contains("\tmovq\t%rsp, %rbp\n"), "a frame pointer whatever: {text}");
assert!(body.contains("\tsubq\t$8, %rsp\n"), "no red zone: {text}");
assert!(body.contains("\tmovq\t%rbp, (%rax)\n"), "the frame pointer: {text}");
assert!(body.contains("\tmovq\t%rsp, 16(%rax)\n"), "the stack pointer: {text}");
assert!(body.contains("\tleaq\t.Lf_1(%rip), %rcx\n"), "where to come back to: {text}");
assert!(body.contains("\tmovq\t%rcx, 8(%rax)\n"), "and that goes in the buffer: {text}");
let back = body.split_once(".Lf_1:\n").expect("the block control comes back to").1;
assert!(back.starts_with("\tmovq\t(%rsp), %rax\n"), "the answer is read back: {text}");
}
/// Nothing stays in a register across the save, which is said with a write of every one of
/// them and shows up as the callee-saved registers the function saves and restores.
///
/// The restore puts back two registers and no others, so a function coming back through one
/// finds every other register holding whatever the code between the two put there. The pushes
/// are what makes the epilogue right on that path: the values popped are the caller's, off the
/// stack the restore put back, rather than whatever is in the registers when control arrives.
#[test]
fn a_save_destroys_every_register_the_allocator_hands_out() {
let text =
asm(concat!("void *buf[5];\n", "int f(void) { return __builtin_setjmp(buf); }\n",));
for reg in ["%rbx", "%r12", "%r13", "%r14", "%r15"] {
assert!(text.contains(&format!("\tpushq\t{reg}\n")), "{reg} is saved: {text}");
assert!(text.contains(&format!("\tpopq\t{reg}\n")), "{reg} is restored: {text}");
}
}
/// The restore puts both registers back before it goes, at every level.
///
/// The jump reads the two of them as well as the address it goes through, which is what keeps
/// it behind them. Without that the two instructions write registers nothing reads, and the
/// scheduler at `-O2` puts the jump in front of both and the program comes back to a frame
/// that is not there.
#[test]
fn the_restore_puts_the_frame_back_before_it_jumps() {
for level in [rucc_session::OptLevel::O0, rucc_session::OptLevel::O2] {
let mut opts = options();
opts.emit = EmitKind::Asm;
opts.opt_level = level;
let source = "void *buf[5];\nvoid g(void) { __builtin_longjmp(buf, 1); }\n";
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile");
let text = result.text().to_owned();
let jump = text.find("\tjmp\t*%").unwrap_or_else(|| panic!("an indirect jump: {text}"));
let stack = text.find(", %rsp\n").unwrap_or_else(|| panic!("the stack back: {text}"));
let frame = text.find(", %rbp\n").unwrap_or_else(|| panic!("the frame back: {text}"));
assert!(stack < jump, "the stack goes back first at {level:?}: {text}");
assert!(frame < jump, "and so does the frame at {level:?}: {text}");
}
}
/// The second argument of the restore has one allowed value, which gcc 16.2.0 also insists on.
///
/// This pair does not carry a value back the way the library's `longjmp` does, because what
/// the matching save answers is decided by which way control reached it. So the argument is a
/// place-holder, and a program that wrote anything else meant the library's function.
#[test]
fn a_longjmp_whose_second_argument_is_not_one_is_turned_down() {
for source in [
"void *buf[5];\nvoid f(void) { __builtin_longjmp(buf, 0); }\n",
"void *buf[5];\nextern int v;\nvoid f(void) { __builtin_longjmp(buf, v); }\n",
] {
let messages = errors(source);
let named = messages.iter().any(|m| m.contains("E0710"));
assert!(named, "expected a complaint about the value in {messages:?}");
}
}
/// A `static` function nothing refers to is not emitted, and one that is refered to is.
///
/// The pair is written as one program so that the two answers come out of one walk. What
/// makes the difference is the call in `main` and nothing else about either definition.
#[test]
fn a_static_function_nothing_refers_to_is_not_emitted() {
let text = ir("static int dropped(void) { return 1; }\n\
static int kept(void) { return 2; }\n\
int main(void) { return kept(); }\n");
assert!(text.contains("func @kept"), "{text}");
assert!(!text.contains("dropped"), "{text}");
}
/// The set is transitive, so two of them that only call each other are both dropped.
///
/// Counting the references to a name would keep this pair, since each is named once, and
/// that is the mistake this is here to catch: what decides it is whether a root reaches the
/// definition, and a root is something the file has a reason to emit on its own.
#[test]
fn two_static_functions_that_only_call_each_other_are_both_dropped() {
let text = ir("static int ping(void);\n\
static int pong(void) { return ping(); }\n\
static int ping(void) { return pong(); }\n\
int main(void) { return 0; }\n");
assert!(!text.contains("ping"), "{text}");
assert!(!text.contains("pong"), "{text}");
}
/// Everything that names a function keeps it, whether or not the name is being called.
///
/// An address taken in a body, an image that holds one, and a body that is only reached
/// through another `static` function are three different ways for a definition to be needed
/// and none of them is a call at the top level of a reachable function.
#[test]
fn naming_a_static_function_anywhere_keeps_it() {
let text = ir("static int by_address(void) { return 1; }\n\
static int in_an_image(void) { return 2; }\n\
static int deeper(void) { return 3; }\n\
static int reaches_deeper(void) { return deeper(); }\n\
static int (*table[1])(void) = {in_an_image};\n\
int main(void) {\n\
int (*p)(void) = by_address;\n\
return p() + table[0]() + reaches_deeper();\n\
}\n");
for kept in ["by_address", "in_an_image", "deeper", "reaches_deeper"] {
assert!(text.contains(&format!("func @{kept}")), "expected {kept} in:\n{text}");
}
}
/// An attribute that says something outside the file reaches it keeps the definition.
///
/// None of the five is implemented as anything else yet, and this is the part of each of
/// them that a program notices first: a symbol a linker script names or a function the
/// run-up to `main` calls is not written about anywhere a C file can see.
#[test]
fn an_attribute_keeps_a_static_function_nothing_refers_to() {
for attribute in ["used", "retain", "constructor", "destructor", "__used__"] {
let source = format!(
"__attribute__(({attribute})) static int kept(void) {{ return 1; }}\n\
int main(void) {{ return 0; }}\n"
);
let text = ir(&source);
assert!(text.contains("func @kept"), "for {attribute}:\n{text}");
}
}
/// A function with external linkage is emitted whatever this file does with it, because
/// another one may call it, and that is what external linkage is.
#[test]
fn a_function_anything_could_call_is_emitted_without_being_called() {
let text =
ir("int nobody_here_calls_it(void) { return 1; }\nint main(void) { return 0; }\n");
assert!(text.contains("func @nobody_here_calls_it"), "{text}");
}
/// Four of the classification builtins are operators C already has, and become those.
///
/// What the standard's macro promises over the operator is that it does not raise the
/// invalid operation exception on a quiet NaN. This compiler does not model floating point
/// exceptions, so there is nothing left for a node of its own to carry and a second way of
/// spelling a comparison would be a second thing every pass has to know about.
#[test]
fn a_classification_c_has_an_operator_for_is_that_operator() {
for (builtin, operator) in [
("__builtin_isgreater", "binary >"),
("__builtin_isgreaterequal", "binary >="),
("__builtin_isless", "binary <"),
("__builtin_islessequal", "binary <="),
] {
let source = format!("int f(double x, double y) {{ return {builtin}(x, y); }}\n");
let text = tast(&source);
assert!(text.contains(&format!("{operator} : int")), "for {builtin}:\n{text}");
}
}
/// The rest of the family are comparisons in the IR and never a call to anything.
///
/// `math.h` defines the macro of each of these names as the builtin of the same name, so
/// there is no function under any of them for a call to reach. `isunordered` and
/// `islessgreater` are predicates the IR's comparison already has, `isnan` is the value that
/// is unordered with itself, and the two that ask about a magnitude are written against the
/// infinities. `signbit` is the one that is not a question about the value, since a negative
/// zero compares equal to a positive one, so its answer comes from the bits.
#[test]
fn the_classification_builtins_are_comparisons_and_not_calls() {
let text = body("int f(double x, double y) { return __builtin_isunordered(x, y); }\n");
assert_eq!(
text,
"block0(%0: f64, %1: f64):\n %2 = fcmp uno %0, %1\n %3 = zext.i32 \
%2\n return %3\n"
);
// Not `x != y`, which is true when the two are unordered and so is true of a NaN.
let text = body("int f(double x, double y) { return __builtin_islessgreater(x, y); }\n");
assert!(text.contains("fcmp one %0, %1"), "{text}");
let text = body("int f(double x) { return __builtin_isnan(x); }\n");
assert!(text.contains("fcmp uno %0, %0"), "{text}");
let text = body("int f(double x) { return __builtin_isinf(x); }\n");
assert!(text.contains("fconst.f64 0x7ff0000000000000"), "{text}");
assert!(text.contains("fconst.f64 0xfff0000000000000"), "{text}");
assert!(text.contains("%3 = fcmp oeq %0, %1"), "{text}");
assert!(text.contains("%4 = fcmp oeq %0, %2"), "{text}");
assert!(text.contains("%5 = or %3, %4"), "{text}");
// Strictly between the two infinities, which a NaN is not, because an ordered comparison
// against either of them is false. That is what makes this one test rather than two.
let text = body("int f(double x) { return __builtin_isfinite(x); }\n");
assert!(text.contains("%3 = fcmp olt %2, %0"), "{text}");
assert!(text.contains("%4 = fcmp olt %0, %1"), "{text}");
assert!(text.contains("%5 = and %3, %4"), "{text}");
let text = body("int f(double x) { return __builtin_signbit(x); }\n");
assert!(text.contains("%1 = bitcast.i64 %0"), "{text}");
assert!(text.contains("icmp slt %1, %2"), "{text}");
// The same question of a value in the target's widest format, where the bits are eighty
// and the object they sit in is sixteen bytes.
let text = body("int f(long double x) { return __builtin_signbitl(x); }\n");
assert!(text.contains("%1 = bitcast.i80 %0"), "{text}");
// The operand is evaluated once however many times it is compared, which is the whole
// reason these are nodes rather than a rewriting into the operators.
let text = body("double g(void);\nint f(void) { return __builtin_isnan(g()); }\n");
assert_eq!(text.matches("call @g()").count(), 1, "{text}");
}
/// A spelling that names a width converts its argument before it asks.
///
/// gcc gives `__builtin_isinff` a `float` parameter and `__builtin_isinf` no parameter type
/// at all, and the difference is visible rather than academic: `1e300` does not fit in a
/// `float`, so converting it first is an infinity and not converting it is not. Both numbers
/// here are what gcc 16 gives.
#[test]
fn a_classification_spelling_that_names_a_width_converts_before_it_asks() {
let text = ir(concat!(
"int a = __builtin_isinff(1e300);\n",
"int b = __builtin_isinf(1e300);\n",
// Folded here rather than compared at run time, because a question about a value has
// an answer as soon as the value is a constant, and an initializer for an object
// with static storage duration has to have one.
"int c = __builtin_isnan(0.0);\n",
"int d = __builtin_signbit(-0.0);\n",
"int e = __builtin_islessgreater(1.0, 2.0);\n",
));
assert!(text.contains("global @a : i32 = 1,"), "{text}");
assert!(text.contains("global @b : i32 = 0,"), "{text}");
assert!(text.contains("global @c : i32 = 0,"), "{text}");
assert!(text.contains("global @d : i32 = 1,"), "{text}");
assert!(text.contains("global @e : i32 = 1,"), "{text}");
}
/// An argument that is not floating point is refused, in gcc's words.
#[test]
fn a_classification_builtin_refuses_an_argument_that_is_not_floating_point() {
let mut opts = options();
opts.emit = EmitKind::Ir;
let source = concat!(
"int a(int x) { return __builtin_isnan(x); }\n",
"int b(int x, int y) { return __builtin_isunordered(x, y); }\n",
"int c(double x) { return __builtin_isnan(x, x); }\n",
);
let messages = run(&opts, source).messages;
assert_eq!(
messages,
[
"/main.c:1:23: error: non-floating-point argument in call to function \
'__builtin_isnan' [E0685]",
"/main.c:2:30: error: non-floating-point arguments in call to function \
'__builtin_isunordered' [E0685]",
"/main.c:3:26: error: too many arguments to function '__builtin_isnan' [E0511]",
]
);
}
/// The three of the family that need a constant of the format other than an infinity.
///
/// `isnormal` is the one that needs the smallest normal, and it is asked of the magnitude, so
/// the sign comes off first and what is left is the same shape as `isfinite`. `isinf_sign` is
/// the one whose answer is a number: the two comparisons `isinf` builds, subtracted rather
/// than combined. `fpclassify` is four questions of one value and five answers to pick from,
/// and the picking is a mask because all five are constants and neither of them can have an
/// effect.
#[test]
fn the_last_three_classification_builtins_are_comparisons_and_not_calls() {
let text = body("int f(double x) { return __builtin_isnormal(x); }\n");
// The sign off, which is the magnitude, and then the range, asked of the bits rather than
// of the number, since the encoding of a value whose sign bit is clear rises with the
// value in every format this compiles for.
assert!(text.contains("%1 = bitcast.i64 %0"), "{text}");
assert!(text.contains("%2 = iconst.i64 9223372036854775807"), "{text}");
assert!(text.contains("%3 = and %1, %2"), "{text}");
assert!(text.contains("%4 = iconst.i64 4503599627370496"), "{text}");
assert!(text.contains("%5 = iconst.i64 9218868437227405312"), "{text}");
assert!(text.contains("%6 = icmp uge %3, %4"), "{text}");
assert!(text.contains("%7 = icmp ult %3, %5"), "{text}");
assert!(text.contains("%8 = and %6, %7"), "{text}");
// The same question in the target's widest format, where the smallest normal has the
// leading significand bit stored rather than implied, so its encoding is two bits and not
// one.
let text = body("int f(long double x) { return __builtin_isnormal(x); }\n");
assert!(text.contains("%4 = iconst.i80 27670116110564327424"), "{text}");
assert!(text.contains("%5 = iconst.i80 604453686435277732577280"), "{text}");
let text = body("int f(double x) { return __builtin_isinf_sign(x); }\n");
assert!(text.contains("%3 = fcmp oeq %0, %1"), "{text}");
assert!(text.contains("%4 = fcmp oeq %0, %2"), "{text}");
assert!(text.contains("%7 = sub %5, %6"), "{text}");
let text = body("int f(double x) { return __builtin_fpclassify(0, 1, 2, 3, 4, x); }\n");
assert!(text.contains("fcmp uno %0, %0"), "{text}");
assert!(text.contains("fcmp oeq %0, %6"), "{text}");
// Four questions, each of them a bit widened into the type of the answer and then spread
// into a mask that picks between the answer and whatever the questions after it settled
// on. Nothing sign extends, because no rule lowers a sign extension out of one bit.
assert_eq!(text.matches(" = zext.i32 ").count(), 4, "{text}");
assert_eq!(text.matches(" = xor ").count(), 4, "{text}");
assert!(!text.contains("call"), "{text}");
// The value is evaluated once however many questions are asked of it, which is the whole
// reason `fpclassify` is a node rather than the chain of tests it turns into.
let text = body(concat!(
"double g(void);\n",
"int f(void) { return __builtin_fpclassify(0, 1, 2, 3, 4, g()); }\n",
));
assert_eq!(text.matches("call @g()").count(), 1, "{text}");
}
/// Each of the three answers a constant where its operand is one.
///
/// glibc's `fpclassify` macro is exactly this builtin, so a program that writes
/// `fpclassify(0.0)` in a static initializer is writing this, and it has to have a value at
/// translation time or the program is refused rather than merely compiled slowly. Every
/// number here is what gcc 16 gives.
#[test]
fn the_last_three_classification_builtins_fold_where_their_operand_is_a_constant() {
let text = ir(concat!(
"int a = __builtin_isnormal(1.0);\n",
"int b = __builtin_isnormal(0.0);\n",
"int c = __builtin_isnormal(1.0 / 0.0);\n",
"int d = __builtin_isinf_sign(-1.0 / 0.0);\n",
"int e = __builtin_isinf_sign(1.0);\n",
"int g = __builtin_fpclassify(0, 1, 2, 3, 4, 0.0);\n",
"int h = __builtin_fpclassify(0, 1, 2, 3, 4, 1.0);\n",
"int i = __builtin_fpclassify(0, 1, 2, 3, 4, 1.0 / 0.0);\n",
));
assert!(text.contains("global @a : i32 = 1,"), "{text}");
assert!(text.contains("global @b : i32 = 0,"), "{text}");
assert!(text.contains("global @c : i32 = 0,"), "{text}");
assert!(text.contains("global @d : i32 = -1,"), "{text}");
assert!(text.contains("global @e : i32 = 0,"), "{text}");
assert!(text.contains("global @g : i32 = 4,"), "{text}");
assert!(text.contains("global @h : i32 = 2,"), "{text}");
assert!(text.contains("global @i : i32 = 1,"), "{text}");
}
/// `fpclassify` refuses what gcc refuses, in gcc's words.
///
/// The five answers have to be integer constant expressions, because what the builtin does is
/// pick one of them and a pick between values that are not known here would be a chain of
/// conditionals over expressions the call has already evaluated.
#[test]
fn fpclassify_refuses_an_answer_that_is_not_an_integer_constant() {
let mut opts = options();
opts.emit = EmitKind::Ir;
let source = concat!(
"int a(double x, int n) { return __builtin_fpclassify(0, 1, n, 3, 4, x); }\n",
"int b(double x) { return __builtin_fpclassify(0, 1, 2, 3, x); }\n",
"int c(int x) { return __builtin_fpclassify(0, 1, 2, 3, 4, x); }\n",
);
let messages = run(&opts, source).messages;
assert_eq!(
messages,
[
"/main.c:1:60: error: non-const integer argument 3 in call to function \
'__builtin_fpclassify' [E0687]",
"/main.c:2:26: error: too few arguments to function '__builtin_fpclassify' \
[E0511]",
"/main.c:3:23: error: non-floating-point argument in call to function \
'__builtin_fpclassify' [E0685]",
]
);
}
/// A builtin whose answer is a constant is one, and is not a call to the library.
///
/// This is the reason the family is answered in the front end at all. `double x =
/// __builtin_inf();` at file scope initializes an object with static storage duration, so
/// there is no point in the program at which a call could be made, and a compiler that
/// lowered it to one would reject a program gcc accepts. Every number here is the encoding
/// gcc 16 gives on x86-64.
#[test]
fn a_builtin_whose_answer_is_a_constant_is_one_and_not_a_call() {
let text = ir(concat!(
"double a = __builtin_inf();\n",
"float b = __builtin_huge_valf();\n",
"long double c = __builtin_infl();\n",
"double d = __builtin_huge_val();\n",
));
assert!(text.contains("global @a : f64 = 0x7ff0000000000000,"), "{text}");
assert!(text.contains("global @b : f32 = 0x7f800000,"), "{text}");
assert!(text.contains("f80 0x7fff8000000000000000"), "{text}");
assert!(text.contains("global @d : f64 = 0x7ff0000000000000,"), "{text}");
assert!(!text.contains("call"), "{text}");
}
/// A nan is written with the payload the program asked for.
///
/// The string is read the way `strtoull` reads a number, which is what the library function
/// of the same name does with it, and a string that is not one at all leaves the call for the
/// library to answer at run time. A quiet nan has the high fraction bit set and a signalling
/// one does not, except that a signalling nan with nothing in it would be an infinity, so it
/// gets the next bit down instead. Every encoding here was measured against gcc 16, the two
/// `long double` ones on a machine with the x87 format.
#[test]
fn a_nan_is_written_with_the_payload_the_program_asked_for() {
let text = ir(concat!(
"double a = __builtin_nan(\"\");\n",
"double b = __builtin_nan(\"0x1\");\n",
// Octal, since there is a leading zero, so this is eight and not ten.
"double c = __builtin_nan(\"010\");\n",
"double d = __builtin_nans(\"\");\n",
"double e = __builtin_nans(\"0x1\");\n",
"float f = __builtin_nanf(\"0x1\");\n",
"float g = __builtin_nansf(\"\");\n",
"long double h = __builtin_nansl(\"\");\n",
));
assert!(text.contains("global @a : f64 = 0x7ff8000000000000,"), "{text}");
assert!(text.contains("global @b : f64 = 0x7ff8000000000001,"), "{text}");
assert!(text.contains("global @c : f64 = 0x7ff8000000000008,"), "{text}");
assert!(text.contains("global @d : f64 = 0x7ff4000000000000,"), "{text}");
assert!(text.contains("global @e : f64 = 0x7ff0000000000001,"), "{text}");
assert!(text.contains("global @f : f32 = 0x7fc00001,"), "{text}");
assert!(text.contains("global @g : f32 = 0x7fa00000,"), "{text}");
assert!(text.contains("f80 0x7fffa000000000000000"), "{text}");
// A payload that is not a number, and one that is not known until run time, are both
// left to the library, which is the same thing gcc emits for either of them.
let text = ir(concat!(
"double f(const char *p) { return __builtin_nan(p); }\n",
"double g(void) { return __builtin_nans(\"1x\"); }\n",
));
assert_eq!(text.matches("call @nan(").count(), 1, "{text}");
assert_eq!(text.matches("call @nans(").count(), 1, "{text}");
}
/// The length and the order of a string literal are known here.
///
/// A program that asks for either of them is asking about something the translation already
/// has in front of it, and folding is not only an optimization: `execute/921007-1.c` in the
/// torture suite calls `__builtin_strcmp` in a file that defines its own `strcmp` with a
/// different signature, so leaving the call behind is a name collision that gcc does not
/// have. The comparison is over `unsigned char`, which is why the second one is negative.
#[test]
fn the_length_and_the_order_of_a_string_literal_are_known_here() {
let text = ir(concat!(
"unsigned long a = __builtin_strlen(\"hello\");\n",
"unsigned long b = __builtin_strlen(\"a\\0bc\");\n",
"int c = __builtin_strcmp(\"X\", \"X\\376\") < 0;\n",
"int d = __builtin_strcmp(\"abc\", \"abc\");\n",
"int e = __builtin_strcmp(\"abc\", \"ab\") > 0;\n",
));
assert!(text.contains("global @a : i64 = 5,"), "{text}");
assert!(text.contains("global @b : i64 = 1,"), "{text}");
assert!(text.contains("global @c : i32 = 1,"), "{text}");
assert!(text.contains("global @d : i32 = 0,"), "{text}");
assert!(text.contains("global @e : i32 = 1,"), "{text}");
assert!(!text.contains("call"), "{text}");
// An argument that is not a literal is the library's to answer, as it has to be.
let text = ir("unsigned long f(const char *p) { return __builtin_strlen(p); }\n");
assert!(text.contains("call @strlen("), "{text}");
}
/// A sign builtin is a mask over the bits, and is not a call.
///
/// `fabs` and `copysign` are in the math library rather than the C one, so a program that
/// only ever wrote the prefixed spelling never asked for `-lm` and a call left behind here
/// would not link. Neither needs anything the library has: one clears the sign bit and the
/// other takes it from the second operand, and every other bit goes through untouched.
#[test]
fn a_sign_builtin_is_a_mask_over_the_bits_and_not_a_call() {
let text = body("double f(double x) { return __builtin_fabs(x); }\n");
assert!(text.contains("bitcast.i64 %0"), "{text}");
assert!(text.contains("iconst.i64 9223372036854775807"), "{text}");
assert!(text.contains("and %1, %2"), "{text}");
assert!(text.contains("bitcast.f64 %3"), "{text}");
assert!(!text.contains("call"), "{text}");
let text = body("double f(double x, double y) { return __builtin_copysign(x, y); }\n");
assert!(text.contains("iconst.i64 -9223372036854775808"), "{text}");
assert!(text.contains("%8 = or %4, %7"), "{text}");
assert!(!text.contains("call"), "{text}");
// The x87 format, whose value is eighty bits sitting in an object of sixteen. The mask is
// as wide as the value and not as wide as the object, so the padding is not part of it.
let text = body("long double f(long double x) { return __builtin_fabsl(x); }\n");
assert!(text.contains("bitcast.i80 %0"), "{text}");
assert!(text.contains("bitcast.f80"), "{text}");
// The width a name does not spell out is `double`, so a `float` argument widens first and
// the answer is a `double`, which is what gcc's declaration of it says.
let text = body("double f(float x) { return __builtin_fabs(x); }\n");
assert!(text.contains("fpext.f64 %0"), "{text}");
assert!(text.contains("bitcast.i64 %1"), "{text}");
}
/// The plain math library names are the same mask, which is what makes a program link.
///
/// `math.h` declares `fabs` and never spells `__builtin_fabs`, so the plain name is the one
/// every program that includes the header reaches. Recognising only the prefixed spelling
/// leaves a call to the math library behind, and the math library is not on the link line
/// unless the program asked for `-lm`. parson is the project that shows it: its makefile has
/// no `-lm`, it does not need one under gcc, and `undefined reference to 'fabs'` is where the
/// build stopped. That is issue 630.
#[test]
fn the_plain_math_names_are_the_same_mask_and_not_a_call() {
let text =
body(concat!("double fabs(double x);\n", "double f(double x) { return fabs(x); }\n",));
assert!(text.contains("iconst.i64 9223372036854775807"), "{text}");
assert!(!text.contains("call"), "{text}");
let text =
body(concat!("float fabsf(float x);\n", "float f(float x) { return fabsf(x); }\n",));
assert!(text.contains("bitcast.i32 %0"), "{text}");
assert!(!text.contains("call"), "{text}");
let text = body(concat!(
"double copysign(double x, double y);\n",
"double f(double x, double y) { return copysign(x, y); }\n",
));
assert!(text.contains("iconst.i64 -9223372036854775808"), "{text}");
assert!(!text.contains("call"), "{text}");
let text = body(concat!(
"float copysignf(float x, float y);\n",
"float f(float x, float y) { return copysignf(x, y); }\n",
));
assert!(!text.contains("call"), "{text}");
// The `long double` pair is left alone on purpose. The prefixed spelling of both stops in
// the back end with `no rule lowers a bitcast producing an i80`, so expanding the plain
// name would trade a link error for a worse one. They go in with issue 540.
let text = ir(concat!(
"long double fabsl(long double x);\n",
"long double f(long double x) { return fabsl(x); }\n",
));
assert!(text.contains("call @fabsl"), "{text}");
}
/// A plain math name the program took is the program's own function.
///
/// The same four ways as the absolute value family next door, asked again here because these
/// two go through a different path: the plain names of this family are taken after the call
/// has been checked against the declaration, and the declaration is the whole reason the
/// question can be answered at all. Measured against gcc 16.2.0, which calls the program's
/// function in every one of them.
#[test]
fn a_plain_math_name_the_program_took_is_the_programs_own_function() {
let taken = concat!(
"static double fabs(double b) { return 7; }\n",
"double f(double x) { return fabs(x); }\n",
);
assert!(ir(taken).contains("call @fabs"), "a static definition is the program's own");
let retyped = concat!("int fabs(int b);\n", "int f(int x) { return fabs(x); }\n");
assert!(ir(retyped).contains("call @fabs"), "another type is another function");
let plain = concat!("double fabs(double b);\n", "double f(double x) { return fabs(x); }\n");
let mut opts = options();
opts.emit = EmitKind::Ir;
assert!(!run(&opts, plain).text().contains("call @fabs"), "the library's by default");
opts.builtins = false;
assert!(run(&opts, plain).text().contains("call @fabs"), "-fno-builtin");
opts.builtins = true;
opts.no_builtin = vec!["fabs".to_owned()];
assert!(run(&opts, plain).text().contains("call @fabs"), "-fno-builtin-fabs");
let one = concat!(
"double copysign(double a, double b);\n",
"double f(double x) { return copysign(x, 1.0); }\n",
);
assert!(!run(&opts, one).text().contains("call @copysign"), "one name and not the family");
// The prefixed spelling is untouched by any of it, which is what the prefix is for.
opts.no_builtin = Vec::new();
opts.builtins = false;
let prefixed = "double f(double x) { return __builtin_fabs(x); }\n";
assert!(!run(&opts, prefixed).text().contains("call @fabs"), "the prefix is not a library");
}
/// The sign builtins answer a zero and a nan the way the bits say.
///
/// This is why they are described over the bits rather than written with comparisons and
/// negation. A negative zero compares equal to a positive one and has a sign bit to clear,
/// and a nan compares equal to nothing at all and keeps its payload through both operations.
/// `execute/ieee/copysign1.c` in the torture suite is the test that notices, because it
/// compares its answers with `memcmp`. Every number here is what gcc 16 gives, the two in the
/// x87 format measured on a machine that has it.
#[test]
fn the_sign_builtins_answer_a_zero_and_a_nan_the_way_the_bits_say() {
let text = ir(concat!(
"double a = __builtin_fabs(-3.5);\n",
"double b = __builtin_copysign(1.0, -0.0);\n",
"double c = __builtin_copysign(0.0, -2.0);\n",
// The payload survives both, and only the sign bit moves.
"double d = __builtin_copysign(-__builtin_nan(\"\"), 1.0);\n",
"double e = __builtin_fabs(-__builtin_nan(\"0x1\"));\n",
"float g = __builtin_copysignf(-0.0f, 2.0f);\n",
"long double h = __builtin_copysignl(1.0L, -1.0L);\n",
"long double i = __builtin_fabsl(-__builtin_infl());\n",
));
assert!(text.contains("global @a : f64 = 0x400c000000000000,"), "{text}");
assert!(text.contains("global @b : f64 = 0xbff0000000000000,"), "{text}");
assert!(text.contains("global @c : f64 = 0x8000000000000000,"), "{text}");
assert!(text.contains("global @d : f64 = 0x7ff8000000000000,"), "{text}");
assert!(text.contains("global @e : f64 = 0x7ff8000000000001,"), "{text}");
assert!(text.contains("global @g : f32 = 0x0,"), "{text}");
assert!(text.contains("f80 0xbfff8000000000000000"), "{text}");
assert!(text.contains("f80 0x7fff8000000000000000"), "{text}");
}
/// The complex builtins are the halves of the value, and are not a call.
///
/// `conj`, `creal` and `cimag` are `~`, `__real__` and `__imag__` under the names `complex.h`
/// gives them, so there is nothing for the math library to do that the translation cannot do
/// with the object in front of it. Leaving the call behind would not link either, since all
/// three are in the math library and a program that wrote one never had a reason to ask for
/// `-lm`. Measured against gcc 16.2.0, which emits no call for any of them even at `-O0`.
#[test]
fn the_complex_builtins_are_the_halves_of_the_value_and_not_a_call() {
let text = body("double f(_Complex double z) { return __builtin_creal(z); }\n");
assert!(!text.contains("call"), "{text}");
let text = body("double f(_Complex double z) { return __builtin_cimag(z); }\n");
assert!(!text.contains("call"), "{text}");
// The conjugate is the imaginary half negated and the real half as it stands, so there is
// one negation in it. A complex negation is the one with two.
let text = body("_Complex double f(_Complex double z) { return __builtin_conj(z); }\n");
assert_eq!(text.matches("fneg").count(), 1, "{text}");
assert!(!text.contains("call"), "{text}");
let negated = body("_Complex double f(_Complex double z) { return -z; }\n");
assert_eq!(negated.matches("fneg").count(), 2, "{negated}");
// `~` on a complex operand is the same operator, which is the spelling the language has
// had all along and the one a program that never included the header writes.
let written = body("_Complex double f(_Complex double z) { return ~z; }\n");
assert_eq!(written, text, "the name and the operator are the same thing");
// The plain names, which are the ones the header declares and so the ones programs write.
let text = body(concat!(
"double creal(_Complex double z);\n",
"double f(_Complex double z) { return creal(z); }\n",
));
assert!(!text.contains("call"), "{text}");
let text = body(concat!(
"_Complex float conjf(_Complex float z);\n",
"_Complex float f(_Complex float z) { return conjf(z); }\n",
));
assert_eq!(text.matches("fneg").count(), 1, "{text}");
assert!(!text.contains("call"), "{text}");
// A program that took the name means its own function, the same four ways the absolute
// value family next door asks it.
let taken = concat!(
"static double creal(_Complex double z) { return 7; }\n",
"double f(_Complex double z) { return creal(z); }\n",
);
assert!(ir(taken).contains("call @creal"), "a static definition is the program's own");
let retyped = concat!("int cimag(int z);\n", "int f(int z) { return cimag(z); }\n");
assert!(ir(retyped).contains("call @cimag"), "another type is another function");
let plain = concat!(
"double cimag(_Complex double z);\n",
"double f(_Complex double z) { return cimag(z); }\n",
);
let mut opts = options();
opts.emit = EmitKind::Ir;
opts.builtins = false;
assert!(run(&opts, plain).text().contains("call @cimag"), "-fno-builtin");
opts.builtins = true;
opts.no_builtin = vec!["cimag".to_owned()];
assert!(run(&opts, plain).text().contains("call @cimag"), "-fno-builtin-cimag");
// A constant folds, which is what a static initializer written with one needs.
let text = ir(concat!(
"double a = __builtin_creal(1.5 + 2.5i);\n",
"double b = __builtin_cimag(1.5 + 2.5i);\n",
"_Complex double c = __builtin_conj(1.5 + 2.5i);\n",
));
assert!(text.contains("global @a : f64 = 0x3ff8000000000000,"), "{text}");
assert!(text.contains("global @b : f64 = 0x4004000000000000,"), "{text}");
assert!(
text.contains("{ f64 0x3ff8000000000000, f64 0xc004000000000000 }"),
"the conjugate of a constant is the constant with the second half negated: {text}"
);
assert!(!text.contains("call"), "{text}");
}
/// A math library builtin handed a constant is the answer, and is not a call.
///
/// This is the reason the family is answered in the front end at all. `double x =
/// __builtin_ceil(1.5);` at file scope initializes an object with static storage duration, so
/// there is no point in the program at which a call could be made, and a compiler that lowered
/// it to one would refuse a program gcc accepts. Every number here is the encoding gcc 16.2.0
/// gives on x86-64, read out of the object file one initializer at a time.
#[test]
fn a_math_library_builtin_of_a_constant_is_the_answer_and_not_a_call() {
let text = ir(concat!(
"double a = __builtin_ceil(1.5);\n",
"double b = __builtin_floor(1.5);\n",
"double c = __builtin_trunc(-1.5);\n",
// A half goes away from zero and not to even, which is where C and the default
// rounding of IEEE 754 part company.
"double d = __builtin_round(2.5);\n",
// The sign survives a number that rounds away to nothing, so this is a negative zero.
"double e = __builtin_ceil(-0.5);\n",
"double f = __builtin_fmax(1.0, 2.0);\n",
"double g = __builtin_fmin(1.0, 2.0);\n",
"float h = __builtin_ceilf(1.25f);\n",
// The plain name is the same answer, which is what a program that included `math.h`
// and never wrote a prefix reaches.
"double ceil(double x);\n",
"double i = ceil(2.25);\n",
));
assert!(text.contains("global @a : f64 = 0x4000000000000000,"), "{text}");
assert!(text.contains("global @b : f64 = 0x3ff0000000000000,"), "{text}");
assert!(text.contains("global @c : f64 = 0xbff0000000000000,"), "{text}");
assert!(text.contains("global @d : f64 = 0x4008000000000000,"), "{text}");
assert!(text.contains("global @e : f64 = 0x8000000000000000,"), "{text}");
assert!(text.contains("global @f : f64 = 0x4000000000000000,"), "{text}");
assert!(text.contains("global @g : f64 = 0x3ff0000000000000,"), "{text}");
assert!(text.contains("global @h : f32 = 0x40000000,"), "{text}");
assert!(text.contains("global @i : f64 = 0x4008000000000000,"), "{text}");
assert!(!text.contains("call"), "{text}");
}
/// A math library builtin handed anything else is a call to the library function it is.
///
/// gcc emits `jmp ceil` for `__builtin_ceil` on x86-64 at the default architecture, measured
/// on gcc 16.2.0, and reaches the `roundsd` instruction only under `-msse4.1`. So the call is
/// what a program gets from gcc too, and the name on it is the plain one, which is the whole
/// point of the prefixed spelling: a program writing it reaches the library's function even
/// where a macro or a definition of its own has taken the short name.
#[test]
fn a_math_library_builtin_of_anything_else_is_a_call_to_the_library() {
let text = ir(concat!(
"double f(double x) { return __builtin_ceil(x); }\n",
"float g(float x) { return __builtin_floorf(x); }\n",
"double h(double x, double y) { return __builtin_fmax(x, y); }\n",
));
assert!(text.contains("call @ceil("), "{text}");
assert!(text.contains("call @floorf("), "{text}");
assert!(text.contains("call @fmax("), "{text}");
// The two the rounding mode decides are calls even when the argument is a constant, since
// what they answer is not known until the program runs. gcc refuses a static initializer
// written with one for that reason, so there is nothing to fold here either.
let text = ir(concat!(
"double f(void) { return __builtin_rint(2.5); }\n",
"double g(void) { return __builtin_nearbyint(2.5); }\n",
));
assert!(text.contains("call @rint("), "{text}");
assert!(text.contains("call @nearbyint("), "{text}");
// A nan operand is the library's rule rather than the machine's, 7.12.12.2 saying the
// answer is the other operand, and gcc will not fold that one either.
let text = ir("double f(void) { return __builtin_fmin(__builtin_nan(\"\"), 1.0); }\n");
assert!(text.contains("call @fmin("), "{text}");
// `-fno-builtin-ceil` is a program saying it means its own `ceil`, and it leaves the
// prefixed spelling alone, which is what writing the prefix is for.
let plain = concat!("double ceil(double x);\n", "double f(void) { return ceil(2.25); }\n");
let mut opts = options();
opts.emit = EmitKind::Ir;
opts.no_builtin = vec!["ceil".to_owned()];
assert!(run(&opts, plain).text().contains("call @ceil("), "-fno-builtin-ceil");
}
/// A `constexpr` object is a named constant, which is the whole reason the keyword exists.
///
/// C23 6.6p8 puts two of them on the list an integer constant expression is built from: one
/// of an arithmetic type, and a member of one of a structure or union type. A subscript of
/// one is not on the list and is a variably modified type in gcc 16 as well, and every
/// number here is what gcc 16 gives on x86-64.
#[test]
fn a_constexpr_object_is_a_constant_wherever_one_is_required() {
let text = ir(concat!(
"constexpr int side = 4;\n",
"constexpr int wider = side + 1;\n",
"constexpr double half = 1.5;\n",
"struct point { int x; int y; };\n",
"constexpr struct point origin = { 5, 6 };\n",
"int square[side * side];\n",
"int rectangle[wider];\n",
"int rounded[(int)half * 2];\n",
"int across[origin.y];\n",
"enum named { four = side };\n",
"int e = four;\n",
));
assert!(text.contains("global @square : bytes 64 ="), "{text}");
assert!(text.contains("global @rectangle : bytes 20 ="), "{text}");
assert!(text.contains("global @rounded : bytes 8 ="), "{text}");
assert!(text.contains("global @across : bytes 24 ="), "{text}");
assert!(text.contains("global @e : i32 = 4,"), "{text}");
// A `const` object is not one of them, which is what makes `int a[n];` a variable
// length array in C and is the distinction the keyword was added to draw.
let mut opts = options();
opts.emit = EmitKind::Ir;
let konst = "const int n = 1;\nint a[n];\n";
let message = "/main.c:2:5: error: variably modified 'a' at file scope [E0538]";
assert_eq!(run(&opts, konst).messages, [message]);
// Nor is a subscript of one, which gcc 16 refuses in the same words.
let subscript = "constexpr int t[3] = { 1, 2, 3 };\nint a[t[1]];\n";
assert_eq!(run(&opts, subscript).messages, [message]);
// And `constexpr` implies `const`, so the address of one is an address of a `const`.
let address = "constexpr int c = 3;\nint *p = &c;\n";
let warning = "/main.c:2:6: warning: initialization discards 'const' qualifier from \
pointer target type [E0514]";
assert_eq!(run(&opts, address).messages, [warning]);
}
/// A pointer to an array, where the qualifiers are on the element and the comparison is not.
///
/// 6.7.3p10 says the qualifiers in an array declaration belong to the element, so `const int
/// [4]` is an unqualified array of `const int` and not a qualified array of `int`. Compatibility
/// then reads the element types, finds one `const` and one not, and calls the two arrays
/// incompatible, which makes `const int (*)[4] = p` an incompatible pointer rather than a
/// pointer that gained a qualifier. That is what the wording said before C23 and it is not what
/// any compiler does: gcc and clang take it, C23 wrote the rule the way they read it, and the
/// two directions are told apart the way they are everywhere else, which is that adding a
/// qualifier is silent and dropping one is worth a word.
///
/// Found in libwebp, where `src/enc/vp8l_enc.c` takes the address of a `HistogramBuckets` out of
/// a structure into a `const HistogramBuckets *const`, and a whole file of a real library did
/// not compile for it.
#[test]
fn a_pointer_to_an_array_gains_a_qualifier_the_same_way_a_pointer_to_anything_else_does() {
let mut opts = options();
opts.emit = EmitKind::Ir;
let prefix = "typedef unsigned int B[4];\nstruct H { B category[2]; };\n";
// Adding it, which is the direction the library writes and the one nothing is owed for.
let adding = format!("{prefix}const B *f(struct H *h) {{ return &h->category[0]; }}\n");
assert_eq!(run(&opts, &adding).messages, [] as [String; 0]);
// And the same thing written out rather than through the typedef, since the typedef is a
// spelling and the rule is about the array.
let plain = concat!(
"const unsigned int (*f(unsigned int (*p)[4]))[4] { return p; }\n",
"const unsigned int (*g(unsigned int (*p)[2][3]))[2][3] { return p; }\n",
);
assert_eq!(run(&opts, plain).messages, [] as [String; 0]);
// Dropping it, which is the direction that is worth a word, and the word is the one every
// other pointer target gets rather than a complaint about the types not matching.
let dropping = format!("{prefix}B *f(const B *p) {{ return p; }}\n");
let warning = "/main.c:3:27: warning: return discards 'const' qualifier from pointer target type \
[E0514]";
assert_eq!(run(&opts, &dropping).messages, [warning]);
// A pointer to an array of something else is still an incompatible pointer, because
// nothing here is about the element being a different type.
let wrong = "const unsigned int (*f(unsigned short (*p)[4]))[4] { return p; }\n";
let error = "/main.c:1:61: error: returning 'unsigned short (*)[4]' from a function with \
incompatible return type 'const unsigned int (*)[4]' [E0512]";
assert_eq!(run(&opts, wrong).messages, [error]);
}
/// A definition that names its parameters and then declares them under the list.
///
/// The declarations say what the types are, 6.9.1p6, and what the function takes is those
/// types with the default argument promotions over them, which is what a caller of an
/// unprototyped function hands over. A prototype already in scope overrules the promoted
/// types, since a header saying `int narrow(char);` over a definition written this way is
/// the pairing all the code written this way relies on and 6.7.6.3p15 is read that way by
/// every compiler.
#[test]
fn an_old_style_definition_takes_its_types_from_the_declarations_under_its_list() {
// C17, since the default dialect is the one that warns about the form and this is
// about what it means rather than about the warning.
let mut opts = options();
opts.std = Std::C17;
let source = concat!(
"int add(a, b)\n",
"int a;\n",
"int b;\n",
"{ return a + b; }\n",
"int promoted(c)\n",
"char c;\n",
"{ return c; }\n",
"int narrow(char);\n",
"int narrow(c)\n",
"char c;\n",
"{ return c; }\n",
"int first(a)\n",
"int a[4];\n",
"{ return a[0]; }\n",
);
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to compile:\n{source}");
let text = result.text();
assert!(text.contains("add : int(int, int) function external defined"), "{text}");
assert!(text.contains("promoted : int(int) function external defined"), "{text}");
// The body still sees the `char` it was declared as, whatever the caller hands over.
assert!(text.contains("c : char object automatic defined"), "{text}");
assert!(text.contains("narrow : int(char) function external defined"), "{text}");
// An array parameter is a pointer here as much as it is in a prototype.
assert!(text.contains("first : int(int *) function external defined"), "{text}");
}
/// What the two halves of an old-style parameter list can disagree about.
///
/// Each of these is a sentence gcc 16 has, and every message below is the one it prints,
/// read off it on x86-64 rather than reasoned about. The last two are the dialect: a name
/// with no declaration is an `int` in C89 and a diagnostic from C99 on, and the whole form
/// left the language in C23, where gcc still takes it and warns.
#[test]
fn the_two_halves_of_an_old_style_parameter_list_have_to_agree() {
let mut opts = options();
opts.std = Std::C17;
for (source, message) in [
("int f(a, a)\nint a;\n{ return a; }\n", "1:10: error: multiple parameters named 'a'"),
(
"int f(a)\nint a;\nint b;\n{ return a; }\n",
"3:5: error: declaration for parameter 'b' but no such parameter",
),
("int f(a)\nint a;\nint a;\n{ return a; }\n", "3:5: error: redefinition of parameter"),
("int f(a)\nint a = 1;\n{ return a; }\n", "2:5: error: parameter 'a' is initialized"),
(
"int f(a)\nstatic int a;\n{ return a; }\n",
"2:12: error: storage class specified for parameter 'a'",
),
(
"int f(char);\nint f(a)\nshort a;\n{ return a; }\n",
"2:7: error: argument 'a' doesn't match prototype",
),
] {
let result = run(&opts, source);
assert!(result.failed(), "expected this to fail:\n{source}");
assert!(result.messages[0].contains(message), "{:?}", result.messages);
}
// A name the declarations never mention. C89 gave it an `int` and gcc still takes it
// in that dialect, and every dialect after it made the same line a diagnostic.
let implicit = "int f(a, b)\nint a;\n{ return a + b; }\n";
let mut older = options();
older.std = Std::C89;
assert!(!run(&older, implicit).failed(), "{:?}", run(&older, implicit).messages);
let result = run(&opts, implicit);
assert!(
result.messages[0].contains("1:10: error: type of 'b' defaults to 'int'"),
"{:?}",
result.messages
);
// C23 took the form out of the language and gcc kept accepting it with a warning, and
// a warning is what this is, because the code written this way is not going to be
// rewritten and refusing it would put the compiler out of reach of it.
let mut newer = options();
newer.std = Std::C23;
let plain = "int f(a)\nint a;\n{ return a; }\n";
let result = run(&newer, plain);
assert!(!result.failed(), "{:?}", result.messages);
assert_eq!(
result.messages,
["/main.c:1:5: warning: old-style function definition [E0412]"]
);
assert!(run(&opts, plain).messages.is_empty(), "and nothing to say in the dialects before");
}
/// The two obsolete designators, which are silent until `-pedantic` asks about them.
///
/// `[3] 7` is what GCC had for an array before C99 settled on `[3] = 7`, and `x: 7` is the
/// same era's spelling for a member. Both are still in code written against a compiler of
/// that era, and gcc 16 takes both without a word unless it is asked to be pedantic, which
/// is where the columns below come from as well.
#[test]
fn the_obsolete_designators_are_taken_and_are_pedantic_warnings() {
let array = "int a[8] = { [3] 7 };\n";
let member = "struct s { int x; } v = { x: 7 };\n";
for source in [array, member] {
let result = run(&options(), source);
assert!(!result.failed(), "{:?}", result.messages);
assert!(result.messages.is_empty(), "nothing to say: {:?}", result.messages);
}
let mut asked = options();
asked.pedantic = true;
assert_eq!(
run(&asked, array).messages,
["/main.c:1:18: warning: obsolete designator, write `[i] =` instead [E0415]"]
);
assert_eq!(
run(&asked, member).messages,
["/main.c:1:27: warning: obsolete designator, write `.field =` instead [E0413]"]
);
}
/// A type nothing is ever an object of is a type `sizeof` still has to answer about, which
/// is what `991014-1.c` in the gcc.c-torture execution suite asks.
///
/// The limit is `PTRDIFF_MAX` and it is the same one for an array and for a record, so a
/// record of every byte an object may have is laid out and one byte more is refused. All
/// four numbers are what gcc 16 gives on x86-64.
#[test]
fn a_type_is_refused_when_it_passes_the_largest_object_and_not_before() {
let text = ir(concat!(
"struct huge_struct { short buf[(1L << 62) - 256]; int a, b, c, d; };\n",
"struct brim { char buf[9223372036854775807L]; };\n",
"struct bitty { char buf[9223372036854775800L]; int x : 1; };\n",
"unsigned long h = sizeof(struct huge_struct);\n",
"unsigned long b = sizeof(struct brim);\n",
"unsigned long y = sizeof(struct bitty);\n",
));
assert!(text.contains("global @h : i64 = 9223372036854775312,"), "{text}");
assert!(text.contains("global @b : i64 = 9223372036854775807,"), "{text}");
assert!(text.contains("global @y : i64 = 9223372036854775804,"), "{text}");
let mut opts = options();
opts.emit = EmitKind::Ir;
let over = "struct over { char buf[9223372036854775800L]; char x[8]; };\n";
let message = "/main.c:1:1: error: type 'struct over' is too large [E0560]";
assert_eq!(run(&opts, over).messages, [message]);
let array = "struct wide { short buf[1L << 62]; };\n";
let message = "/main.c:1:25: error: size of array 'buf' exceeds \
maximum object size '9223372036854775807' [E0537]";
assert_eq!(run(&opts, array).messages[0], message);
}
/// A byte in the source that is not part of a character, which only a literal may hold.
///
/// The source cannot be a `&str` here, which is the whole point: a file is bytes and only
/// mostly text.
fn compile_bytes(source: &[u8]) -> Compiled {
let mut opts = options();
opts.emit = EmitKind::Ir;
let mut fs = MemoryFileSystem::new();
fs.insert("/main.c", source.to_vec());
compile(&opts, "/main.c", &fs)
}
/// A raw byte inside a string literal is that byte, which gcc has always taken and which is
/// the only place in a source file where a byte does not have to be part of a character.
/// Replacing it would give the object three bytes rather than one, since the replacement
/// character is three bytes of UTF-8, so the object would not be the one that was written
/// even where the diagnostic is ignored. Anywhere else the byte is still a mistake, which
/// is where gcc draws the same line.
#[test]
fn a_byte_that_is_not_a_character_is_kept_in_a_literal_and_refused_outside_one() {
let mut source = b"char s[] = \"a".to_vec();
source.push(0xff);
source.extend_from_slice(b"b\";\nchar c = '");
source.push(0xff);
source.extend_from_slice(b"';\n");
let result = compile_bytes(&source);
assert_eq!(result.messages, Vec::<String>::new(), "a raw byte in a literal is that byte");
assert!(result.text().contains(r#"bytes "a\ffb\00""#), "{}", result.text());
// Plain `char` is signed on this target, so the constant is minus one rather than 255.
assert!(result.text().contains("global @c : i8 = -1,"), "{}", result.text());
let mut stray = b"int a".to_vec();
stray.push(0xff);
stray.extend_from_slice(b" = 1;\n");
let result = compile_bytes(&stray);
assert!(
result.messages.iter().any(|m| m.contains("source is not valid UTF-8 here")),
"{:?}",
result.messages
);
}
#[test]
fn an_object_becomes_a_global_with_an_image_and_a_function_becomes_a_func() {
let text = ir("int x = 7;\nint add(int a, int b) { return a + b; }\n");
assert!(text.contains("global @x : i32 = 7, align 4, linkage(external)\n"), "{text}");
let expected = "\
func @add(i32, i32) -> i32, linkage(external) {
block0(%0: i32, %1: i32):
%2 = add.nsw %0, %1
return %2
}
";
assert!(text.contains(expected), "{text}");
}
#[test]
fn a_local_nothing_takes_the_address_of_is_a_value_and_never_a_stack_slot() {
let text = body("int f(int n) { int a = n + 1; int b = a * 2; return a + b; }\n");
assert!(!text.contains("alloca"), "{text}");
assert!(!text.contains("load"), "{text}");
assert!(!text.contains("store"), "{text}");
}
#[test]
fn a_local_whose_address_is_taken_gets_a_slot_in_the_entry_block() {
let text = body("int g(int *);\nint f(void) { int a = 1; return g(&a); }\n");
let expected = "\
block0:
%0 = alloca, size 4, align 4
%1 = iconst.i32 1
store %1 -> %0, align 4, tbaa !1
%2 = call @g(%0) : (ptr) -> i32
return %2
";
assert_eq!(text, expected);
}
#[test]
fn a_loop_carries_what_it_changes_as_block_parameters() {
// The whole point of building SSA during the walk rather than after it: `i` and
// `total` are values that arrive on an edge, and neither has ever been in memory.
let text = body(
"int f(int n) {\n int total = 0;\n for (int i = 0; i < n; i++) total += i;\n \
return total;\n}\n",
);
assert!(!text.contains("alloca"), "{text}");
assert!(text.contains("block1(%3: i32, %4: i32):"), "{text}");
assert!(text.contains("jump block1("), "{text}");
}
#[test]
fn a_comparison_used_as_a_condition_is_not_widened_and_narrowed_again() {
let text = body("int f(int a, int b) { if (a < b) return 1; return 0; }\n");
assert!(text.contains("icmp slt %0, %1"), "{text}");
assert!(!text.contains("zext"), "{text}");
}
#[test]
fn the_right_side_of_a_short_circuit_is_in_a_block_of_its_own() {
let text = body("int f(int a, int b) { return a && b; }\n");
let expected = "\
block0(%0: i32, %1: i32):
%2 = iconst.i32 0
%3 = icmp ne %0, %2
%4 = iconst.i1 0
br_if %3, block1, block2(%4)
block1:
%5 = iconst.i32 0
%6 = icmp ne %1, %5
jump block2(%6)
block2(%7: i1):
%8 = zext.i32 %7
return %8
";
assert_eq!(text, expected);
}
#[test]
fn code_after_a_return_is_not_built_and_does_not_leave_an_empty_block_behind() {
let text = body("int f(int a) { if (a) return 1; else return 2; return 3; }\n");
// Three blocks, the test and the two arms. The join the `return 3` would need is
// never created, because a block nothing branches to is not a block.
assert!(!text.contains("block3"), "{text}");
assert!(!text.contains("iconst.i32 3"), "{text}");
}
#[test]
fn falling_off_the_end_returns_zero_from_main_and_nothing_from_a_void_function() {
assert!(body("int main(void) { }\n").contains("iconst.i32 0\n return"));
assert_eq!(body("void f(void) { }\n"), "block0:\n return\n");
assert!(body("int f(void) { }\n").contains("unreachable"));
}
#[test]
fn a_structure_is_copied_rather_than_held_in_a_value() {
let text = body(
"struct point { int x, y; };\n\
int f(void) { struct point p = { 1, 2 }; struct point q = p; return q.x; }\n",
);
assert!(text.contains("memcpy"), "{text}");
}
#[test]
fn an_initializer_that_leaves_part_of_an_object_unwritten_zeroes_it_first() {
let text = body("int f(void) { int a[4] = { 1 }; return a[3]; }\n");
assert!(text.contains("memset"), "{text}");
}
#[test]
fn a_switch_is_one_branch_and_a_case_that_falls_through_carries_what_it_wrote() {
let text = body(
"int f(int x) { int r = 0; switch (x) { case 1: r = 1; case 2: r += 2; break; \
default: r = 4; } return r; }\n",
);
let expected = "\
block0(%0: i32):
%1 = iconst.i32 0
switch %0, block1, [1 => block2, 2 => block3(%1)]
block1:
%2 = iconst.i32 4
jump block4(%2)
block2:
%3 = iconst.i32 1
jump block3(%3)
block3(%4: i32):
%5 = iconst.i32 2
%6 = add.nsw %4, %5
jump block4(%6)
block4(%7: i32):
return %7
";
assert_eq!(text, expected);
}
#[test]
fn a_case_range_is_tested_for_rather_than_put_in_the_table() {
// GNU's `case 1 ... 9`. Nine table entries would be nine here and four billion for the
// range a program is allowed to write, so it is a subtraction and one unsigned compare.
let text = body("int f(int x) { switch (x) { case 1 ... 9: return 1; } return 0; }\n");
assert!(text.contains("%2 = sub %0, %1"), "{text}");
assert!(text.contains("icmp ule"), "{text}");
assert!(!text.contains("switch"), "{text}");
}
#[test]
fn break_leaves_the_switch_and_continue_leaves_the_loop_around_it() {
let text = body(
"int f(int n) { int t = 0; for (int i = 0; i < n; i++) { switch (i) { \
case 0: continue; case 1: break; default: t += i; } t++; } return t; }\n",
);
// The `continue` goes to the step and the `break` goes to the `t++` after the switch,
// which is also where the default falls out to.
assert!(text.contains("switch %3, block4, [0 => block5, 1 => block6]"), "{text}");
assert!(text.contains("block5:\n jump block7("), "{text}");
assert!(text.contains("block6:\n jump block8("), "{text}");
}
#[test]
fn a_switch_with_nothing_to_branch_on_still_runs_what_comes_after_it() {
assert_eq!(body("void f(int x) { switch (x) { } }\n"), "block0(%0: i32):\n return\n");
}
#[test]
fn a_label_a_loop_is_only_entered_through_builds_the_loop_around_it() {
// A branch into the middle of a loop that nothing else reaches, the Duff's device shape.
// The `while` is not reached in order, so the walk starts a block nothing branches to and
// builds it from there. What comes out is the loop with an edge straight into its body,
// and the header that nothing arrives at is pruned.
let text = body(
"int f(int x, int n) { switch (x) { case 1: break; while (n) { case 2: n--; } } \
return n; }\n",
);
// `case 2` lands on the body, `case 1` and the default land on the return, and the test
// at the bottom of the loop comes back round to the body.
assert!(text.contains("switch %0, block1(%1), [1 => block2, 2 => block3(%1)]"), "{text}");
assert!(text.contains("block3(%3: i32):\n %4 = iconst.i32 1"), "{text}");
assert!(text.contains("block4:\n jump block3("), "{text}");
}
#[test]
fn a_goto_into_a_loop_body_enters_it_without_the_test() {
// The same thing through a `goto`. The first pass through the body runs whatever the
// label is on, and only then does the loop reach its own test.
let text = body("int f(int x, int n) { goto in; while (n) { in: n--; } return n; }\n");
assert!(text.starts_with("block0(%0: i32, %1: i32):\n jump block1(%1)"), "{text}");
assert!(text.contains("block1(%2: i32):\n %3 = iconst.i32 1"), "{text}");
assert!(text.contains("br_if %6, block2, block3"), "{text}");
}
#[test]
fn a_goto_is_a_jump_to_the_block_the_label_starts() {
let text = body("int f(int x) { int r = 0; if (x) goto out; r = 1; out: return r; }\n");
// Both edges into `out` carry what `r` holds on the way, and neither is a stack slot. The
// block the `goto` jumps out of is empty and hands its edge on, which is what moves `out`
// up the block list to second place.
assert!(!text.contains("alloca"), "{text}");
assert!(text.contains("block2(%4: i32):\n return %4"), "{text}");
assert_eq!(text.matches("jump block2(").count(), 2, "{text}");
}
#[test]
fn a_backward_goto_is_a_loop_and_carries_what_it_changes() {
let text =
body("int f(int n) { int i = 0; again: if (i < n) { i++; goto again; } return i; }\n");
assert!(!text.contains("alloca"), "{text}");
assert!(text.contains("block1(%2: i32):"), "{text}");
assert!(text.contains("jump block1(%5)"), "{text}");
}
#[test]
fn a_label_nothing_reaches_is_taken_out_rather_than_left_for_the_verifier() {
// A block nothing branches to is not a legal function, and which labels are dead is not
// known until the last statement has been walked, since the `goto` is allowed to be it.
assert_eq!(
body("int f(int x) { return x; spare: return 0; }\n"),
"block0(%0: i32):\n return %0\n"
);
}
#[test]
fn a_bit_field_is_read_by_loading_the_bytes_it_lies_in_and_shifting() {
let text = body(
"struct s { unsigned a : 3; signed b : 5; };\nint f(struct s *p) { return p->b; }\n",
);
// One byte holds both fields, and the signed one needs no mask: shifting it down
// arithmetically is what says its top bit is a sign.
assert_eq!(
text,
"\
block0(%0: ptr):
%1 = load.i8 %0, align 1
%2 = iconst.i8 3
%3 = ashr %1, %2
%4 = sext.i32 %3
return %4
"
);
}
#[test]
fn a_store_to_a_bit_field_does_not_write_a_byte_it_has_no_bit_in() {
// C11 says an ordinary member beside a bit-field is a memory location of its own, so
// the four byte store this would take is a data race in a program that has none. The
// three bytes of `a` go in as two and one, and `c` is not touched.
let text =
body("struct s { int a : 24; char c; };\nvoid f(struct s *p, int v) { p->a = v; }\n");
assert_eq!(
text,
"\
block0(%0: ptr, %1: i32):
%2 = iconst.i32 16777215
%3 = and %1, %2
%4 = trunc.i16 %3
store %4 -> %0, align 2
%5 = iconst.i32 16
%6 = lshr %3, %5
%7 = trunc.i8 %6
%8 = iconst.i64 2
%9 = ptr_add %0, %8
store %7 -> %9, align 1
return
"
);
}
#[test]
fn what_an_assignment_to_a_bit_field_is_worth_is_what_fits_in_it() {
let text =
body("struct s { unsigned b : 5; };\nunsigned f(struct s *p) { return p->b = 33; }\n");
// 33 does not fit in five bits, and 1 is both what goes in the field and what the
// assignment is worth.
assert!(text.contains("%3 = iconst.i8 31\n %4 = and %2, %3"), "{text}");
assert!(text.ends_with("%9 = zext.i32 %4\n return %9\n"), "{text}");
}
#[test]
fn an_assignment_a_statement_throws_away_builds_none_of_what_it_is_worth() {
// The value of an assignment to a bit-field takes a shift to build, and a statement
// has no use for it. Nothing here reads back what was stored.
let text = body("struct s { signed b : 5; };\nvoid f(struct s *p) { p->b = 3; }\n");
assert_eq!(text.matches("ashr").count(), 0, "{text}");
assert!(text.ends_with("store %8 -> %0, align 1\n return\n"), "{text}");
}
#[test]
fn a_bit_field_in_an_initializer_goes_in_over_bytes_that_were_zeroed_first() {
// A bit-field writes part of a byte and leaves the rest of it alone, so the object has
// to be zero before it goes in or what the initializer did not name is whatever the
// stack held.
let text = body(
"struct s { int a : 3; int b; };\nint f(void) { struct s v = { 1 }; return v.b; }\n",
);
assert!(text.contains("memset %0, %1, size 8, align 4"), "{text}");
}
#[test]
fn the_image_of_a_static_bit_field_is_the_bytes_the_fields_share() {
// Two fields in one byte are not two entries in the image, because an image is written
// in bytes: they are the byte they are both in.
let text = ir("struct s { unsigned a : 3; unsigned b : 5; } g = { 1, 2 };\n");
assert!(
text.contains("global @g : bytes 4 = { bytes \"\\11\", zero 3 }, align 4"),
"{text}"
);
}
#[test]
fn an_initialized_flexible_array_member_makes_the_object_larger_than_its_type() {
// `sizeof` answers without the array and the definition has to hold what was written, so
// the object is the size of its image. gcc 16 gives these four, three and two bytes and
// so does this. The image used to be written at the size the type had, which left the
// verifier looking at twenty bytes going into four.
let text = ir(concat!(
"struct a { int i; int j[]; } x = { 1, { 2, 0, 2, 3 } };\n",
"struct b { char c; char p[]; } y = { 'o', \"wx\" };\n",
"struct c { char c; char p[]; } z = { '9', { 'e', 'b' } };\n",
"char s[2] = \"hi\";\n",
));
assert!(
text.contains("global @x : bytes 20 = { i32 1, i32 2, i32 0, i32 2, i32 3 }"),
"{text}"
);
assert!(text.contains("global @y : bytes 4 = { i8 111, bytes \"wx\\00\" }"), "{text}");
assert!(text.contains("global @z : bytes 3 = { i8 57, i8 101, i8 98 }"), "{text}");
// The array with a length of its own still cuts the literal down to it, which is the
// one case in C where a string initializer drops its terminator.
assert!(text.contains("global @s : bytes 2 = { bytes \"hi\" }"), "{text}");
}
#[test]
fn a_definition_takes_a_parameter_it_left_unnamed() {
// The entry block's parameters are the definition's, and one the front end dropped for
// having no name left the two lists different lengths, which the walk read as an
// old-style definition and refused. gcc has taken these for far longer than C23 has.
let text = ir("int f(int a, int) { return a; }\n");
assert!(text.contains("func @f(i32, i32) -> i32"), "{text}");
assert!(text.contains("block0(%0: i32, %1: i32):"), "{text}");
// The unnamed one first, so that the named one is the second parameter of the entry
// block and not the first: the list says the order and not only how many there are.
let text = ir("int g(int, int n) { return n; }\n");
assert!(text.contains("block0(%0: i32, %1: i32):\n return %1\n"), "{text}");
}
#[test]
fn an_assignment_of_a_structure_is_the_object_it_wrote() {
// `d = e = c` used to be refused, because the middle assignment is a value of structure
// type and the walk had nowhere to read one from. What an assignment is worth is the
// value it stored, so the object it stored into is the answer and the chain is three
// copies out of the one source with no temporary in it.
let text = body(concat!(
"struct s { int f; int g; };\n",
"void h(struct s *a, struct s *c, struct s *d, struct s *e)\n",
"{ *d = *e = a[0] = *c; }\n",
));
assert_eq!(text.matches("memcpy").count(), 3, "{text}");
assert!(text.contains("memcpy %8, %1, size 8, align 4\n"), "{text}");
assert!(text.contains("memcpy %3, %8, size 8, align 4\n"), "{text}");
assert!(text.contains("memcpy %2, %3, size 8, align 4\n"), "{text}");
}
#[test]
fn a_string_literal_stops_at_the_end_of_the_array_it_is_filling() {
// The excess used to be laid into the object anyway, so the row after was written over
// and the image refused the entry that came to it. C 6.7.10p14 says the terminator goes
// in only if there is room for it, and gcc discards the rest of a literal that is longer
// still, which is what the first of these is and why it warns.
let mut opts = options();
opts.emit = EmitKind::Ir;
let result = run(
&opts,
concat!(
"const char a[2][3] = { \"1234\", \"xyz\" };\n",
"static const char b[3][5] = { \"12345\", \"678\", \"9\" };\n",
"union u { struct { char x[4]; char y[4]; }; struct { char z[8]; }; };\n",
"const union u c = { { \"1234\", \"567\" } };\n",
),
);
let text = result.text();
assert_eq!(
result.messages,
["/main.c:1:24: warning: initializer-string for array of 'const char' is too long \
(5 chars into 3 available) [E0637]"]
);
assert!(text.contains("global @a : bytes 6 = { bytes \"123\", bytes \"xyz\" }"), "{text}");
assert!(
text.contains(
"global @b : bytes 15 = { bytes \"12345\", bytes \"678\\00\", zero 1, \
bytes \"9\\00\", zero 3 }"
),
"{text}"
);
// The eight bytes are four, three and a terminator, and then the byte the shorter
// literal left for the string in the other member of the union to end at.
assert!(
text.contains("global @c : bytes 8 = { bytes \"1234\", bytes \"567\\00\" }"),
"{text}"
);
}
#[test]
fn a_cast_of_a_record_to_its_own_type_is_the_object_that_was_cast() {
// gcc accepts one and does nothing with it, which sema already had. Lowering asked for
// the object under it and had no arm for a cast, so `(struct s)x` in an initializer was
// refused with E0519. It is one copy out of the object named, not two.
let text = body(concat!(
"struct s { int a, b; };\nstruct v { struct s s; int t; };\n",
"void g(struct v *);\n",
"void f(struct s *p) { struct v w = { (struct s)*p, 5 }; g(&w); }\n",
));
assert_eq!(text.matches("memcpy").count(), 1, "{text}");
}
#[test]
fn a_compound_literal_read_in_a_static_initializer_lays_its_bytes_into_the_image() {
// C 6.7.11p4 says a compound literal at file scope has static storage duration, which
// makes it a constant element, and tcc and c-testsuite both write one. Sema used to call
// it a non constant because reading it is a node of its own and the read was what it
// looked at, and lowering had no way to put an object where it wanted a number.
let text = ir(concat!(
"struct s { int x; };\n",
"struct t { struct s s; int o; } a = { (struct s){ 2 }, 3 };\n",
"int n = (int){ 7 };\n",
"struct u { struct s p; struct s q; } b = { (struct s){ 1 }, (struct s){ } };\n",
));
assert!(text.contains("global @a : bytes 8 = { i32 2, i32 3 }"), "{text}");
assert!(text.contains("global @n : i32 = 7,"), "{text}");
// The second literal names nothing, so what it puts in is the zeros of its own size and
// not the tail of the object it went in, which would have been the same bytes by luck.
assert!(text.contains("global @b : bytes 8 = { i32 1, zero 4 }"), "{text}");
}
#[test]
fn the_address_of_a_compound_literal_asks_for_the_object_it_points_at() {
// Nothing declares a compound literal, so the reference is the only thing that can ask
// for it to be emitted. The image named `.Lanon.0` and the module defined no such
// symbol, which the link would have been the first to find out.
let text = ir("struct s { int x; };\nstruct s *q = &(struct s){ 9 };\n");
assert!(text.contains("global @.Lanon.0 : i32 = 9, align 4, linkage(internal)"), "{text}");
assert!(text.contains("global @q : bytes 8 = { addr.8 @.Lanon.0 }"), "{text}");
}
#[test]
fn an_object_of_no_size_at_all_has_an_image_with_nothing_in_it() {
// A zero length array, which gcc allows and real code uses as the tail of a structure.
// The image is there and holds nothing, which is not the global that has no image at
// all, and the IR reader used to stop on the empty one.
let text = ir("unsigned char foo[1][0];\n");
assert!(text.contains("global @foo : bytes 0 = {}, align 1"), "{text}");
}
#[test]
fn a_null_pointer_in_an_image_is_the_bits_an_address_has_room_for() {
// `NULL` in a static initializer, which every program has. The IR type is `ptr` and a
// `ptr` has no width of its own, so the width the bits are cut to is the target's.
let text = ir("void *p = 0;\nchar *q = (char *) 4096;\n");
assert!(text.contains("global @p : i64 = 0, align 8"), "{text}");
assert!(text.contains("global @q : i64 = 4096, align 8"), "{text}");
}
#[test]
fn an_object_another_module_defines_may_be_one_that_cannot_be_written_through() {
// Which the verifier used to refuse, having read a declaration as a definition with
// nothing in it. `extern const` is how a program names something in the library's read
// only data, and glibc and Darwin both have one in a header a real program includes.
let text = ir("extern const int limit;\nint f(void) { return limit; }\n");
assert!(
text.contains("global @limit : bytes 4, align 4, linkage(external), constant"),
"{text}"
);
}
#[test]
fn a_conditional_whose_value_is_an_object_answers_where_the_object_is() {
// A structure is not a value in the IR, so the two arms cannot be joined as one. The
// addresses can, and the answer is the address of whichever arm was taken rather than
// a copy of it into a third place: both arms outlive the expression, so a copy would
// be one nothing could observe. SQLite's parser writes one of these.
let text = body(
"\
struct s { int a, b; };
struct s pick(int c, struct s x, struct s y) { return c ? x : y; }
",
);
// The join takes an address, each arm hands it the one it has, and nothing is copied.
assert!(text.contains("block3(%7: ptr)"), "{text}");
assert!(text.contains("jump block3(%3)") && text.contains("jump block3(%4)"), "{text}");
assert!(!text.contains("memcpy"), "the arms are joined rather than copied: {text}");
}
/// GNU's `a ?: b` evaluates `a` once, and the arm answers the value that was tested.
///
/// The checking keeps one node for `a` and converts it in two directions, to the bit the
/// branch is taken on and to the type the whole expression has. Walking into the arm used to
/// reach that node a second time and build a second copy of whatever it says, so `++i ?: 10`
/// incremented twice and `f() ?: 10` called twice. Measured against gcc 16.2.0, which
/// increments once.
#[test]
fn the_left_side_of_a_conditional_with_no_middle_is_evaluated_once() {
let text = body("int f(int i) { return ++i ?: 10; }\n");
assert!(text.contains("jump block3(%2)"), "the arm is the value that was tested: {text}");
assert_eq!(text.matches("add.nsw").count(), 1, "incremented once: {text}");
// The arm still converts, since what the whole expression is worth is a `long` here and
// the node under it is an `int`. What it converts is the value in hand.
let text = body("long f(int i) { return ++i ?: 10L; }\n");
assert!(text.contains("%5 = sext.i64 %2"), "the arm widens what was tested: {text}");
assert_eq!(text.matches("add.nsw").count(), 1, "incremented once: {text}");
// A call, which is where evaluating twice is a wrong answer rather than a slow one.
let text = body("int g(void);\nint f(void) { return g() ?: 10; }\n");
assert_eq!(text.matches("call @g").count(), 1, "called once: {text}");
// Written out in full it is two reads of `i`, which is what C says it is, so the middle
// operand being absent is the whole of the difference.
let text = body("int f(int i) { return ++i ? ++i : 10; }\n");
assert_eq!(text.matches("add.nsw").count(), 2, "incremented twice: {text}");
}
#[test]
fn a_structure_that_fits_in_registers_travels_as_the_registers_it_fits_in() {
// `struct pair` is two eightbytes on SysV, one of them integer, so the signature says
// one `i64` in each direction and the body takes the object apart and puts it back
// together around the call.
let text = ir("\
struct pair { int a, b; };
struct pair make(int a, int b);
struct pair twice(struct pair p) { return make(p.a, p.b); }
");
assert!(text.contains("func @make(i32, i32) -> i64"), "{text}");
assert!(text.contains("func @twice(i64) -> i64"), "{text}");
}
#[test]
fn a_structure_too_large_for_the_registers_travels_as_where_its_bytes_are() {
// Over two eightbytes the caller passes the bytes in the argument area, which is
// `byval`, and passes somewhere to write the return value, which is `sret`. Neither is
// a parameter the program wrote and both are parameters the function has.
let text = ir("\
struct big { double v[8]; };
struct big grow(struct big b);
struct big twice(struct big b) { return grow(grow(b)); }
");
assert!(
text.contains("func @grow(ptr sret(64, align 8), ptr byval(64, align 8))"),
"{text}"
);
assert!(text.contains("block0(%0: ptr, %1: ptr):"), "{text}");
// The inner call writes into a slot and the outer one reads the same slot, so the
// object between the two calls is never copied anywhere.
assert_eq!(text.matches("call @grow").count(), 2, "{text}");
}
#[test]
fn a_structure_passed_to_a_variadic_function_says_so_at_the_call() {
// The bytes travel in the argument area the same way they would for a parameter, and
// `printf` has no parameter there to say it on, so the call says it instead. The one
// that fits in registers says nothing, because travelling as the registers it fits in
// is what an argument does when nothing says otherwise.
let text = ir("\
struct big { double v[8]; };
struct pair { int a, b; };
int p(const char *, ...);
int f(struct big b, struct pair q) { return p(\"\", 1, b, q); }
");
assert!(
text.contains("call @p(%4, %5, %2 byval(64, align 8), %6) : (ptr, ...) -> i32"),
"{text}"
);
}
#[test]
fn what_a_call_produced_is_somewhere_before_anything_is_read_out_of_it() {
// `make(1, 2).b` has no object to read a member of until one is made, and what makes it
// is a slot the returned registers are written to.
let body = body(
"\
struct pair { int a, b; };
struct pair make(int a, int b);
int second(void) { return make(1, 2).b; }
",
);
assert!(body.starts_with("block0:\n %0 = alloca, size 8, align 4\n"), "{body}");
assert!(body.contains("store %3 -> %0, align 4\n"), "{body}");
}
#[test]
fn a_structure_of_floats_travels_in_floating_point_registers_on_aarch64() {
// The same declaration, classified by a different ABI: three `float` members are an
// eightbyte of two of them and a half eightbyte of the third on SysV, and three vector
// registers on AAPCS64.
let source = "\
struct hfa { float x, y, z; };
int take(struct hfa h);
int give(struct hfa h) { return take(h); }
";
assert!(ir(source).contains("func @take(f64, f32) -> i32"), "{}", ir(source));
let mut opts = options();
opts.emit = EmitKind::Ir;
opts.target = "aarch64-unknown-linux-gnu".parse::<Triple>().unwrap();
let result = run(&opts, source);
assert_eq!(result.messages, Vec::<String>::new());
assert!(result.text().contains("func @take(f32, f32, f32) -> i32"), "{}", result.text());
}
#[test]
fn an_array_whose_length_is_not_a_constant_is_a_slot_made_where_its_declaration_is() {
// The size is a multiplication rather than a number, the slot is taken from the stack
// where the declaration is, and the scope it was declared in gives it back.
let source = "\
int use(int *);
void f(int n) {
{
int a[n];
use(a);
}
use(0);
}
";
let body = body(source);
assert!(body.contains("mul.nsw"), "{body}");
assert!(body.contains("stacksave"), "{body}");
assert!(body.contains("alloca %"), "{body}");
assert!(body.contains("stackrestore"), "{body}");
}
#[test]
fn a_goto_out_of_the_scope_of_one_gives_its_stack_back_on_the_way() {
// The label is outside the block the array is in, so arriving there means the array is
// gone, and the restore that says so goes in front of the branch. The `goto` is written
// before the walk knows where the label is, which is why the restore is put there at
// the end rather than built where the branch was.
let source = "\
int use(int *);
int f(int n) {
{
int a[n];
if (use(a)) goto out;
use(0);
}
out:
return 0;
}
";
let body = body(source);
// Two ways out of the block and a restore on each: the jump and the end of the block.
assert_eq!(body.matches("stackrestore").count(), 2, "{body}");
let (_, after) = body.split_once("stackrestore").expect("the stack is given back");
assert!(after.starts_with(" %4\n jump block"), "{body}");
}
#[test]
fn a_goto_to_a_label_the_array_is_still_alive_at_leaves_the_stack_alone() {
// The label is after the declaration and in the same block, so control that arrives
// there arrives somewhere the array exists. Giving it back would be giving back an
// object the next statement reads.
let source = "\
int use(int *);
int f(int n) {
int a[n];
again:
if (use(a)) goto again;
return 0;
}
";
let body = body(source);
assert!(body.contains("stacksave"), "{body}");
assert!(!body.contains("stackrestore"), "{body}");
}
#[test]
fn a_goto_back_to_a_label_in_front_of_one_gives_it_back_every_time_round() {
// A loop written out of a `goto`, with the array made inside it. The label is in the
// same block as the declaration and before it, which is a place where the array does
// not exist yet, so the jump there leaves its scope and has to give the stack back. A
// compiler that skips this restore grows the stack once per iteration.
let source = "\
int use(int *);
int f(int n) {
again:
{
int a[n];
if (use(a)) goto again;
}
return 0;
}
";
let body = body(source);
assert_eq!(body.matches("stacksave").count(), 1, "{body}");
let (_, after) = body.split_once("stackrestore").expect("the stack is given back");
assert!(after.starts_with(" %4\n jump block1\n"), "{body}");
}
#[test]
fn the_head_of_a_for_loop_is_a_scope_that_closes_where_the_loop_is_left() {
// The scope opened for `for (int a[n];;)` used to stay open, and a scope left open is
// not one mark nobody reads. The marks are a stack, so the next close took this one
// instead of its own, and the body of the loop gave back nothing while the block after
// the loop restored a pointer saved inside it. The verifier refused that, which is how
// it was found.
let source = "\
int f(void);
void t(void) {
int count = 10;
for (; count--;) {
int b[f()];
int i;
for (i = 0; i < f(); i++) {
b[i] = count;
}
}
}
";
let body = body(source);
// One save, in the body, and one restore for it, also in the body: the block the
// restore is in is the one the inner loop leaves through, and it goes back round the
// outer loop rather than out of it.
assert_eq!(body.matches("stacksave").count(), 1, "{body}");
let (_, after) = body.split_once("stackrestore").expect("the stack is given back");
// The rest of the block the restore is in, which is the last block here, so there is not
// always another one after it to split on.
let next = after.split("\n\n").next().expect("the block the restore is in");
assert!(next.contains("jump block1("), "{body}");
}
#[test]
fn how_long_one_of_those_is_was_decided_where_it_was_declared_and_not_where_it_is_asked() {
// What C says about the length being evaluated once: `sizeof a` after `n` changed is
// still as long as the array is, which is what `n` was when the array came into being.
let source = "\
unsigned long f(int n) {
int a[n];
n = 0;
return sizeof a;
}
";
let body = body(source);
// One read of the parameter, at the declaration, and the answer is built out of it.
assert_eq!(body.matches("sext.i64 %0").count(), 2, "{body}");
}
#[test]
fn a_block_in_the_middle_of_an_expression_is_walked_where_the_expression_is() {
// GNU's statement expression: the statements happen where they are written and the last
// one is the value, so the temporary in it never becomes a slot and never is copied.
let source = "\
int use(int);
int f(int x) {
return ({
int t = use(x);
t * t;
});
}
";
let expected = "\
block0(%0: i32):
%1 = call @use(%0) : (i32) -> i32
%2 = mul.nsw %1, %1
return %2
";
assert_eq!(body(source), expected);
}
#[test]
fn one_of_those_that_control_never_leaves_is_lowered_and_what_follows_it_is_dropped() {
// A macro that always jumps, which is what this shape is in real code. The value is
// never taken, and the block the rest of the expression would have been built in is
// one nothing branches to, so it goes with the other unreachable blocks.
let source = "int f(int x) { return ({ return x; 0; }); }\n";
assert_eq!(body(source), "block0(%0: i32):\n return %0\n");
}
#[test]
fn one_argument_off_a_variable_argument_list_stays_an_intrinsic() {
// What it becomes is the target's answer, and this is not where the target's answers
// are, so the walk writes down which list and which type and leaves it at that. Two of
// them are two instructions, since each moves the list on.
let source = "double f(__builtin_va_list ap) { return __builtin_va_arg(ap, double) + __builtin_va_arg(ap, double); }\n";
let expected = "\
block0(%0: ptr):
%1 = va_arg.f64 %0
%2 = va_arg.f64 %0
%3 = fadd %1, %2
return %3
";
assert_eq!(body(source), expected);
}
#[test]
fn one_that_reads_a_structure_answers_where_the_object_is() {
// An aggregate is not a value, so there is nothing for the result of `va_arg` to be and
// the object form is a second instruction. What it answers is an address, so it is a
// place already and the walk copies nothing out of it: the copy here is the one the
// initializer asks for, into the variable being declared. The size and the alignment
// travel with it because they are what steps the list on and what a target that has to
// put registers somewhere needs to know. So does the classification, which says the two
// halves of this one arrived in general purpose registers: that is an answer about a C
// type, and this is the last place that still has one.
//
// The slot is aligned to sixteen and the copy into it to eight, which is not a
// disagreement. Sixteen is what a local aggregate of sixteen bytes gets whatever its
// members ask for, and eight is what the type asks for and so what the copy may assume
// about the object it is reading from.
let source = "\
struct s { int a; long b; };
long f(__builtin_va_list ap) { struct s v = __builtin_va_arg(ap, struct s); return v.b; }
";
let expected = "\
block0(%0: ptr):
%1 = alloca, size 16, align 16
%2 = va_object %0, size 16, align 8, in(int 8 at 0, int 8 at 8)
memcpy %1, %2, size 16, align 8
%3 = iconst.i64 8
%4 = ptr_add %1, %3
%5 = load.i64 %4, align 8, tbaa !1
return %5
";
assert_eq!(body(source), expected);
}
/// Which register file each eightbyte arrived in is the whole of what the classification adds,
/// and an object with no slots at all is one it sent to the caller's argument area, which is
/// what everything over two eightbytes is whatever its members are.
#[test]
fn the_classification_says_which_registers_the_object_arrived_in() {
let source = "\
struct s { double a; double b; };
double f(__builtin_va_list ap) { struct s v = __builtin_va_arg(ap, struct s); return v.a; }
";
assert!(
body(source)
.contains("va_object %0, size 16, align 8, in(float f64 at 0, float f64 at 8)"),
"{}",
body(source)
);
let big = "\
struct s { long a[4]; };
long f(__builtin_va_list ap) { struct s v = __builtin_va_arg(ap, struct s); return v.a[0]; }
";
assert!(body(big).contains("va_object %0, size 32, align 8\n"), "{}", body(big));
}
#[test]
fn a_jump_to_an_address_branches_to_every_label_the_function_takes_the_address_of() {
// GNU's computed goto. Which label the address holds is not known here, so all of them
// are listed, and the values arriving at one are passed on every edge the same way they
// are on an ordinary branch.
let source = "\
int f(int c) {
void *p = c ? &&one : &&two;
goto *p;
one:
return 1;
two:
return 2;
}
";
let expected = "\
block0(%0: i32):
%1 = iconst.i32 0
%2 = icmp ne %0, %1
br_if %2, block1, block2
block1:
%3 = block_addr block3
jump block4(%3)
block2:
%4 = block_addr block5
jump block4(%4)
block3:
%5 = iconst.i32 1
return %5
block4(%6: ptr):
indirect_br %6, block3, block5
block5:
%7 = iconst.i32 2
return %7
";
assert_eq!(body(source), expected);
}
#[test]
fn a_jump_to_an_address_no_label_in_the_function_has_arrives_nowhere() {
// The address came from outside the function, and a jump to a label in another function
// is undefined. The expression is still evaluated, since a call in it has to happen.
let source = "void **next(void);
void f(void) { goto *next(); }
";
let expected = "\
block0:
%0 = call @next() : () -> ptr
unreachable
";
assert_eq!(body(source), expected);
}
#[test]
fn an_asm_with_no_operands_is_volatile_and_the_clobbers_are_the_whole_of_what_it_says() {
// Nothing reads a result, so the only thing that keeps it is that it is volatile, which
// a basic asm implies.
let source = "void f(void) { __asm__(\"mfence\" ::: \"memory\"); }\n";
let expected = "\
block0:
inline_asm.volatile \"mfence\", \"\", \"memory\"()
return
";
assert_eq!(body(source), expected);
}
#[test]
fn the_constraints_are_one_list_in_the_order_the_template_counts_the_operands() {
// The outputs first and then the inputs, which is the numbering `%0` and `%1` use. An
// output in a register is a result, and one that is read as well is an argument too.
let source = "\
int f(int x, int y) {
int r;
__asm__(\"addl %2, %0\" : \"=r\"(r), \"+r\"(y) : \"r\"(x));
return r + y;
}
";
let expected = "\
block0(%0: i32, %1: i32):
%2, %3 = inline_asm.(i32, i32) \"addl %2, %0\", \"=r,+r,r\", \"\"(%1, %0)
%4 = add.nsw %2, %3
return %4
";
assert_eq!(body(source), expected);
}
#[test]
fn a_memory_operand_travels_as_the_address_of_an_object_that_is_given_a_slot() {
// The assembly is handed a pointer, so the object cannot live in a value, and the scan
// that runs before the walk has to have known that or there would be nothing to point
// at. A structure travels this way whatever else its constraint allows, since there is
// no register that holds one.
let source = "\
struct pair { int a, b; };
int f(int x) {
int slot = x;
struct pair p = { x, x };
__asm__(\"incl %0\" : \"+m\"(slot), \"=m\"(p));
return slot + p.a;
}
";
let text = body(source);
assert!(text.contains("inline_asm \"incl %0\", \"+m,=m\", \"\"(%1, %2)\n"), "{text}");
assert!(text.contains("%1 = alloca, size 4, align 4\n"), "{text}");
assert!(text.contains("%2 = alloca, size 8, align 4\n"), "{text}");
}
#[test]
fn an_asm_goto_falls_through_to_its_first_target_and_writes_its_outputs_there() {
// The output is only in scope where the instruction dominates, which is the fall through
// block, so the edge to the label carries the value the object had before the assembly
// ran. That is what document 11 asks for and it is what putting the fall through first
// buys.
let source = "\
int f(int x) {
int r = 7;
__asm__ goto(\"cbnz %0, %l1\" : \"=r\"(r) : \"r\"(x) :: away);
return r;
away:
return r;
}
";
let expected = "\
block0(%0: i32):
%1 = iconst.i32 7
%2 = inline_asm.volatile \"cbnz %0, %l1\", \"=r,r\", \"\"(%0), labels [block1, block2]
block1:
return %2
block2:
return %1
";
assert_eq!(body(source), expected);
}
#[test]
fn an_asm_statement_that_is_not_well_formed_is_reported_in_the_words_gcc_uses() {
// The operands are checked here rather than by the assembler, because by the time the
// assembler sees the template the operands have become registers and it has nothing left
// to say about the C that named them.
let mut opts = options();
opts.emit = EmitKind::Ir;
for (source, expected) in [
(
"void f(int x) { __asm__(\"\" : \"r\"(x)); }\n",
"output operand constraint lacks '='",
),
(
"void f(int x) { __asm__(\"\" : \"=r\"(x + 1)); }\n",
"lvalue required in 'asm' statement",
),
(
"const int g = 1;\nvoid f(void) { __asm__(\"\" : \"=r\"(g)); }\n",
"read-only variable 'g' used as 'asm' output",
),
(
"void f(int x) { __asm__(\"\" : : \"=r\"(x)); }\n",
"input operand constraint contains '='",
),
(
"void f(void) { __asm__(\"\" : : \"m\"(1)); }\n",
"memory input 0 is not directly addressable",
),
("void f(void) { __asm__(L\"\"); }\n", "wide string literal in 'asm'"),
(
"void f(int x, int y) { __asm__(\"\" : [a] \"=r\"(x) : [a] \"r\"(y)); }\n",
"duplicate asm operand name 'a'",
),
("void f(int x) { __asm__(\"%[in]\" : \"=r\"(x)); }\n", "undefined named operand 'in'"),
] {
let result = run(&opts, source);
assert!(result.failed(), "expected this to be reported:\n{source}");
assert!(
result.messages.iter().any(|m| m.contains(expected)),
"{expected}\n{:?}",
result.messages
);
}
}
/// An `asm` at file scope whose template is directives is the whole of what the incbin
/// header, an alias table and a hand written jump table each write, and what it says is a
/// section holding named bytes. So it becomes the globals it names, in the order it names
/// them, which is what `spec/11-asm-objects-debug.md` section 11.2 asks for.
#[test]
fn an_asm_at_file_scope_that_is_directives_becomes_the_objects_it_defines() {
let text = ir(concat!(
"__asm__(\n",
" \".section .rodata\\n\"\n",
" \".globl first\\n\"\n",
" \".balign 8\\n\"\n",
" \"first:\\n\"\n",
" \".long 1\\n\"\n",
" \".long 2\\n\"\n",
" \".globl last\\n\"\n",
" \"last:\\n\"\n",
" \".quad last - first\\n\");\n",
"extern const int first[];\n",
"extern const long last;\n",
));
assert!(text.contains("global @first : bytes 8 = { i32 1, i32 2 }, align 8"), "{text}");
assert!(text.contains("global @last : i64 = 8"), "{text}");
}
/// The distance between two labels is what the incbin header hands a program as the size of
/// the data, so a declaration of one of the names has to find the definition the template
/// made rather than turn it back into something the linker is asked for.
#[test]
fn a_name_an_asm_at_file_scope_defined_is_not_undone_by_a_declaration_of_it() {
let text = ir(concat!(
"__asm__(\".data\\n.globl counter\\ncounter:\\n.long 7\\n\");\n",
"extern int counter;\n",
"int read(void) { return counter; }\n",
));
assert!(text.contains("global @counter : i32 = 7"), "{text}");
}
/// `.incbin` is the one directive that reads something, and what it reads comes through the
/// same file system the sources did.
#[test]
fn an_incbin_at_file_scope_is_the_bytes_of_the_file_it_names() {
let mut opts = options();
opts.emit = EmitKind::Ir;
let mut fs = MemoryFileSystem::new();
fs.insert(
"/main.c",
b"__asm__(\".data\\n.globl blob\\nblob:\\n.incbin \\\"seed\\\"\\n\");\n".to_vec(),
);
fs.insert("seed", b"hi".to_vec());
let result = compile(&opts, "/main.c", &fs);
assert_eq!(result.messages, Vec::<String>::new());
let text = result.text();
assert!(text.contains("global @blob : bytes 2 = { bytes \"hi\" }"), "{text}");
}
/// A file that is not there is the mistake a build makes when it runs the compiler from the
/// wrong directory, and it is worth saying which file rather than saying the template failed.
#[test]
fn an_incbin_naming_a_file_that_is_not_there_says_which_file() {
let messages = errors("__asm__(\".data\\nb:\\n.incbin \\\"nowhere\\\"\\n\");\n");
assert!(
messages
.iter()
.any(|m| m.contains("cannot open 'nowhere' for reading") && m.contains("E0702")),
"{messages:?}"
);
}
/// The line drawn is the same one the `asm` inside a function draws: directives are read and
/// an instruction waits for an assembler. Refusing by name is what makes the wait visible.
#[test]
fn an_instruction_in_an_asm_at_file_scope_is_refused_rather_than_ignored() {
for source in [
"__asm__(\".text\\n.globl f\\nf:\\n ret\\n\");\n",
"__asm__(\".data\\n.set alias, 4\\n\");\n",
] {
let messages = errors(source);
assert!(
messages
.iter()
.any(|m| m.contains("not supported yet")
&& m.contains("in an `asm` at file scope")),
"{source}\n{messages:?}"
);
}
}
#[test]
fn what_the_walk_cannot_build_yet_is_reported_rather_than_mislowered() {
let mut opts = options();
opts.emit = EmitKind::Ir;
for source in [
"int f(int n) { void *p = &&out; if (n) goto *p; { int a[n]; out: return 1; } }\n",
"int f(int n) { int a[n]; __asm__ goto(\"\" ::::out); out: return a[0]; }\n",
] {
let result = run(&opts, source);
assert!(result.failed(), "expected this to be reported:\n{source}");
assert!(
result.messages.iter().any(|m| m.contains("not supported yet")),
"{:?}",
result.messages
);
}
}
/// Compiles `source` to IR, reads that back as an input, and gives back both texts.
fn round_trip(source: &str) -> (String, String) {
let printed = ir(source);
let mut opts = options();
opts.emit = EmitKind::Ir;
let mut fs = MemoryFileSystem::new();
fs.insert("/main.ir", printed.clone().into_bytes());
let result = compile_ir(&opts, "/main.ir", &fs);
assert_eq!(result.messages, Vec::<String>::new(), "expected this to read back:\n{printed}");
(printed, result.text().to_owned())
}
#[test]
fn ir_that_arrives_as_an_input_is_read_back_and_written_out_the_same() {
// The other half of the round trip test below, through the driver rather than through
// the library, which is what makes the property something to run over a real program
// rather than over the modules a test builds.
let (printed, again) = round_trip(
"struct point { int x, y; };\n static const char greeting[] = \"hi\";\n int puts(const char *);\n int f(int n) { struct point p = { n, 1 }; puts(greeting); return p.x; }\n",
);
assert_eq!(printed, again);
}
#[test]
fn ir_that_is_not_ir_says_which_line_stopped_it() {
let mut opts = options();
opts.emit = EmitKind::Ir;
let mut fs = MemoryFileSystem::new();
let text = "\
; ModuleID = 'a.c'
; format 0
target triple = \"x86_64-unknown-linux-gnu\"
target datalayout = \"e-p:64:64-i64:64-S128\"
func @f(), linkage(external) {
block0:
frobnicate
}
";
fs.insert("/main.ir", text.as_bytes().to_vec());
let result = compile_ir(&opts, "/main.ir", &fs);
assert!(result.failed());
assert!(result.messages[0].contains("/main.ir:8"), "{:?}", result.messages);
}
#[test]
fn ir_that_reads_but_does_not_hold_together_is_reported_by_the_verifier() {
// A module that a person edited has not been through the verifier, and the return of
// an `i32` from a function that returns nothing is the kind of thing editing produces.
let mut opts = options();
opts.emit = EmitKind::Ir;
let mut fs = MemoryFileSystem::new();
let text = "\
; ModuleID = 'a.c'
; format 0
target triple = \"x86_64-unknown-linux-gnu\"
target datalayout = \"e-p:64:64-i64:64-S128\"
func @f(), linkage(external) {
block0:
%0 = iconst.i32 1
return %0
}
";
fs.insert("/main.ir", text.as_bytes().to_vec());
let result = compile_ir(&opts, "/main.ir", &fs);
assert!(result.failed());
assert!(result.messages[0].contains("invalid IR"), "{:?}", result.messages);
}
#[test]
fn a_typed_tree_is_not_something_an_input_of_ir_can_produce() {
// The C that became this is not here any more, so there is nothing to print a tree of.
let mut fs = MemoryFileSystem::new();
fs.insert("/main.ir", Vec::new());
let result = compile_ir(&options(), "/main.ir", &fs);
assert!(result.failed());
assert!(result.messages[0].contains("can only be emitted as IR"), "{:?}", result.messages);
}
#[test]
fn the_printed_ir_reads_back_as_the_same_module() {
// The M2 exit criterion: the text is the module and nothing about it is lost by
// writing it down. Anything the printer invents or the parser drops shows up here.
let text = ir("\
struct point { int x, y; };
static const char greeting[] = \"hi\";
int table[4] = { 1, 2, 3 };
int puts(const char *);
double half(double x) { return x / 2.0; }
int f(int n) {
int total = 0;
for (int i = 0; i < n; i++) {
if (i == 3) continue;
total += table[i];
}
switch (n) {
case 0: total = 1;
case 1: total++; break;
default: total = -total;
}
struct point p = { total, 1 };
int *q = &p.y;
puts(greeting);
return p.x + *q;
}
int dispatch(int c) {
void *p = c ? &&one : &&two;
goto *p;
one:
return 1;
two:
return 2;
}
int assembly(int x, int *p) {
int r;
__asm__ volatile(\"xadd %0, %2\" : \"=r\"(r), \"+m\"(*p) : \"0\"(x) : \"cc\");
__asm__ goto(\"cbnz %0, %l1\" : : \"r\"(r) : : away);
return r;
away:
return 0;
}
");
let mut names = Interner::new();
let module = rucc_ir::parse(&text, &mut names).expect("the printer writes what it reads");
assert_eq!(rucc_ir::print(&module, &names), text);
}
#[test]
fn what_save_temps_keeps_is_the_text_that_was_compiled_and_the_assembly_that_was_assembled() {
// The point of the flag is that these two are the compilation rather than a description
// of one, so both come out of the run that produced the object rather than out of a
// second run under different flags.
let mut opts = options();
opts.emit = EmitKind::Object;
opts.save_temps = rucc_session::SaveTemps::Object;
let result = run(&opts, "#define N 2\nint a[N];\n");
assert_eq!(result.messages, Vec::<String>::new());
let text = result.temps.preprocessed.expect("the preprocessed text");
assert!(text.contains("int a[2];"), "{text}");
assert!(text.starts_with("# 1 \"/main.c\""), "{text}");
let asm = result.temps.assembly.expect("the assembly");
assert!(asm.contains("a:"), "{asm}");
assert!(matches!(result.artifact, Artifact::Object { .. }), "{:?}", result.artifact);
}
#[test]
fn nothing_is_kept_unless_the_flag_asked_for_it() {
// A compilation that was not asked to keep anything must not pay for printing text
// nobody will read, and the empty value is what says so.
let mut opts = options();
opts.emit = EmitKind::Object;
assert_eq!(run(&opts, "int a;\n").temps, Temps::default());
}
#[test]
fn a_compilation_that_stops_before_the_back_end_keeps_the_text_and_no_assembly() {
// `--emit=ir` never produces any, and the text is worth keeping all the same: it is
// what a report about the file being read wrongly has to have in it.
let mut opts = options();
opts.emit = EmitKind::Ir;
opts.save_temps = rucc_session::SaveTemps::Cwd;
let result = run(&opts, "int a;\n");
assert!(result.temps.preprocessed.is_some());
assert_eq!(result.temps.assembly, None);
}
}