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lib.rs
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//! Source positions and related helper functions.
//!
//! Important concepts in this module include:
//!
//! - the *span*, represented by [`SpanData`] and related types;
//! - source code as represented by a [`SourceMap`]; and
//! - interned strings, represented by [`Symbol`]s, with some common symbols available statically
//! in the [`sym`] module.
//!
//! Unlike most compilers, the span contains not only the position in the source code, but also
//! various other metadata, such as the edition and macro hygiene. This metadata is stored in
//! [`SyntaxContext`] and [`ExpnData`].
//!
//! ## Note
//!
//! This API is completely unstable and subject to change.
// tidy-alphabetical-start
#![allow(internal_features)]
#![doc(html_root_url = "https://doc.rust-lang.org/nightly/nightly-rustc/")]
#![doc(rust_logo)]
#![feature(array_windows)]
#![feature(cfg_match)]
#![feature(core_io_borrowed_buf)]
#![feature(if_let_guard)]
#![feature(let_chains)]
#![feature(min_specialization)]
#![feature(negative_impls)]
#![feature(read_buf)]
#![feature(round_char_boundary)]
#![feature(rustc_attrs)]
#![feature(rustdoc_internals)]
#![warn(unreachable_pub)]
// tidy-alphabetical-end
// The code produced by the `Encodable`/`Decodable` derive macros refer to
// `rustc_span::Span{Encoder,Decoder}`. That's fine outside this crate, but doesn't work inside
// this crate without this line making `rustc_span` available.
extern crate self as rustc_span;
use derive_where::derive_where;
use rustc_data_structures::{AtomicRef, outline};
use rustc_macros::{Decodable, Encodable, HashStable_Generic};
use rustc_serialize::opaque::{FileEncoder, MemDecoder};
use rustc_serialize::{Decodable, Decoder, Encodable, Encoder};
use tracing::debug;
mod caching_source_map_view;
pub mod source_map;
use source_map::{SourceMap, SourceMapInputs};
pub use self::caching_source_map_view::CachingSourceMapView;
pub mod edition;
use edition::Edition;
pub mod hygiene;
use hygiene::Transparency;
pub use hygiene::{
DesugaringKind, ExpnData, ExpnHash, ExpnId, ExpnKind, LocalExpnId, MacroKind, SyntaxContext,
};
use rustc_data_structures::stable_hasher::HashingControls;
pub mod def_id;
use def_id::{CrateNum, DefId, DefIndex, DefPathHash, LOCAL_CRATE, LocalDefId, StableCrateId};
pub mod edit_distance;
mod span_encoding;
pub use span_encoding::{DUMMY_SP, Span};
pub mod symbol;
pub use symbol::{Symbol, sym};
mod analyze_source_file;
pub mod fatal_error;
pub mod profiling;
use std::borrow::Cow;
use std::cmp::{self, Ordering};
use std::fmt::Display;
use std::hash::Hash;
use std::io::{self, Read};
use std::ops::{Add, Range, Sub};
use std::path::{Path, PathBuf};
use std::str::FromStr;
use std::{fmt, iter};
use md5::{Digest, Md5};
use rustc_data_structures::fx::FxHashMap;
use rustc_data_structures::stable_hasher::{Hash64, Hash128, HashStable, StableHasher};
use rustc_data_structures::sync::{FreezeLock, FreezeWriteGuard, Lock, Lrc};
use sha1::Sha1;
use sha2::Sha256;
#[cfg(test)]
mod tests;
/// Per-session global variables: this struct is stored in thread-local storage
/// in such a way that it is accessible without any kind of handle to all
/// threads within the compilation session, but is not accessible outside the
/// session.
pub struct SessionGlobals {
symbol_interner: symbol::Interner,
span_interner: Lock<span_encoding::SpanInterner>,
/// Maps a macro argument token into use of the corresponding metavariable in the macro body.
/// Collisions are possible and processed in `maybe_use_metavar_location` on best effort basis.
metavar_spans: Lock<FxHashMap<Span, Span>>,
hygiene_data: Lock<hygiene::HygieneData>,
/// The session's source map, if there is one. This field should only be
/// used in places where the `Session` is truly not available, such as
/// `<Span as Debug>::fmt`.
source_map: Option<Lrc<SourceMap>>,
}
impl SessionGlobals {
pub fn new(edition: Edition, sm_inputs: Option<SourceMapInputs>) -> SessionGlobals {
SessionGlobals {
symbol_interner: symbol::Interner::fresh(),
span_interner: Lock::new(span_encoding::SpanInterner::default()),
metavar_spans: Default::default(),
hygiene_data: Lock::new(hygiene::HygieneData::new(edition)),
source_map: sm_inputs.map(|inputs| Lrc::new(SourceMap::with_inputs(inputs))),
}
}
}
pub fn create_session_globals_then<R>(
edition: Edition,
sm_inputs: Option<SourceMapInputs>,
f: impl FnOnce() -> R,
) -> R {
assert!(
!SESSION_GLOBALS.is_set(),
"SESSION_GLOBALS should never be overwritten! \
Use another thread if you need another SessionGlobals"
);
let session_globals = SessionGlobals::new(edition, sm_inputs);
SESSION_GLOBALS.set(&session_globals, f)
}
pub fn set_session_globals_then<R>(session_globals: &SessionGlobals, f: impl FnOnce() -> R) -> R {
assert!(
!SESSION_GLOBALS.is_set(),
"SESSION_GLOBALS should never be overwritten! \
Use another thread if you need another SessionGlobals"
);
SESSION_GLOBALS.set(session_globals, f)
}
/// No source map.
pub fn create_session_if_not_set_then<R, F>(edition: Edition, f: F) -> R
where
F: FnOnce(&SessionGlobals) -> R,
{
if !SESSION_GLOBALS.is_set() {
let session_globals = SessionGlobals::new(edition, None);
SESSION_GLOBALS.set(&session_globals, || SESSION_GLOBALS.with(f))
} else {
SESSION_GLOBALS.with(f)
}
}
pub fn with_session_globals<R, F>(f: F) -> R
where
F: FnOnce(&SessionGlobals) -> R,
{
SESSION_GLOBALS.with(f)
}
/// Default edition, no source map.
pub fn create_default_session_globals_then<R>(f: impl FnOnce() -> R) -> R {
create_session_globals_then(edition::DEFAULT_EDITION, None, f)
}
// If this ever becomes non thread-local, `decode_syntax_context`
// and `decode_expn_id` will need to be updated to handle concurrent
// deserialization.
scoped_tls::scoped_thread_local!(static SESSION_GLOBALS: SessionGlobals);
#[inline]
pub fn with_metavar_spans<R>(f: impl FnOnce(&mut FxHashMap<Span, Span>) -> R) -> R {
with_session_globals(|session_globals| f(&mut session_globals.metavar_spans.lock()))
}
// FIXME: We should use this enum or something like it to get rid of the
// use of magic `/rust/1.x/...` paths across the board.
#[derive(Debug, Eq, PartialEq, Clone, Ord, PartialOrd, Decodable)]
pub enum RealFileName {
LocalPath(PathBuf),
/// For remapped paths (namely paths into libstd that have been mapped
/// to the appropriate spot on the local host's file system, and local file
/// system paths that have been remapped with `FilePathMapping`),
Remapped {
/// `local_path` is the (host-dependent) local path to the file. This is
/// None if the file was imported from another crate
local_path: Option<PathBuf>,
/// `virtual_name` is the stable path rustc will store internally within
/// build artifacts.
virtual_name: PathBuf,
},
}
impl Hash for RealFileName {
fn hash<H: std::hash::Hasher>(&self, state: &mut H) {
// To prevent #70924 from happening again we should only hash the
// remapped (virtualized) path if that exists. This is because
// virtualized paths to sysroot crates (/rust/$hash or /rust/$version)
// remain stable even if the corresponding local_path changes
self.remapped_path_if_available().hash(state)
}
}
// This is functionally identical to #[derive(Encodable)], with the exception of
// an added assert statement
impl<S: Encoder> Encodable<S> for RealFileName {
fn encode(&self, encoder: &mut S) {
match *self {
RealFileName::LocalPath(ref local_path) => {
encoder.emit_u8(0);
local_path.encode(encoder);
}
RealFileName::Remapped { ref local_path, ref virtual_name } => {
encoder.emit_u8(1);
// For privacy and build reproducibility, we must not embed host-dependant path
// in artifacts if they have been remapped by --remap-path-prefix
assert!(local_path.is_none());
local_path.encode(encoder);
virtual_name.encode(encoder);
}
}
}
}
impl RealFileName {
/// Returns the path suitable for reading from the file system on the local host,
/// if this information exists.
/// Avoid embedding this in build artifacts; see `remapped_path_if_available()` for that.
pub fn local_path(&self) -> Option<&Path> {
match self {
RealFileName::LocalPath(p) => Some(p),
RealFileName::Remapped { local_path, virtual_name: _ } => local_path.as_deref(),
}
}
/// Returns the path suitable for reading from the file system on the local host,
/// if this information exists.
/// Avoid embedding this in build artifacts; see `remapped_path_if_available()` for that.
pub fn into_local_path(self) -> Option<PathBuf> {
match self {
RealFileName::LocalPath(p) => Some(p),
RealFileName::Remapped { local_path: p, virtual_name: _ } => p,
}
}
/// Returns the path suitable for embedding into build artifacts. This would still
/// be a local path if it has not been remapped. A remapped path will not correspond
/// to a valid file system path: see `local_path_if_available()` for something that
/// is more likely to return paths into the local host file system.
pub fn remapped_path_if_available(&self) -> &Path {
match self {
RealFileName::LocalPath(p)
| RealFileName::Remapped { local_path: _, virtual_name: p } => p,
}
}
/// Returns the path suitable for reading from the file system on the local host,
/// if this information exists. Otherwise returns the remapped name.
/// Avoid embedding this in build artifacts; see `remapped_path_if_available()` for that.
pub fn local_path_if_available(&self) -> &Path {
match self {
RealFileName::LocalPath(path)
| RealFileName::Remapped { local_path: None, virtual_name: path }
| RealFileName::Remapped { local_path: Some(path), virtual_name: _ } => path,
}
}
/// Return the path remapped or not depending on the [`FileNameDisplayPreference`].
///
/// For the purpose of this function, local and short preference are equal.
pub fn to_path(&self, display_pref: FileNameDisplayPreference) -> &Path {
match display_pref {
FileNameDisplayPreference::Local | FileNameDisplayPreference::Short => {
self.local_path_if_available()
}
FileNameDisplayPreference::Remapped => self.remapped_path_if_available(),
}
}
pub fn to_string_lossy(&self, display_pref: FileNameDisplayPreference) -> Cow<'_, str> {
match display_pref {
FileNameDisplayPreference::Local => self.local_path_if_available().to_string_lossy(),
FileNameDisplayPreference::Remapped => {
self.remapped_path_if_available().to_string_lossy()
}
FileNameDisplayPreference::Short => self
.local_path_if_available()
.file_name()
.map_or_else(|| "".into(), |f| f.to_string_lossy()),
}
}
}
/// Differentiates between real files and common virtual files.
#[derive(Debug, Eq, PartialEq, Clone, Ord, PartialOrd, Hash, Decodable, Encodable)]
pub enum FileName {
Real(RealFileName),
/// Call to `quote!`.
QuoteExpansion(Hash64),
/// Command line.
Anon(Hash64),
/// Hack in `src/librustc_ast/parse.rs`.
// FIXME(jseyfried)
MacroExpansion(Hash64),
ProcMacroSourceCode(Hash64),
/// Strings provided as crate attributes in the CLI.
CliCrateAttr(Hash64),
/// Custom sources for explicit parser calls from plugins and drivers.
Custom(String),
DocTest(PathBuf, isize),
/// Post-substitution inline assembly from LLVM.
InlineAsm(Hash64),
}
impl From<PathBuf> for FileName {
fn from(p: PathBuf) -> Self {
FileName::Real(RealFileName::LocalPath(p))
}
}
#[derive(Clone, Copy, Eq, PartialEq, Hash, Debug)]
pub enum FileNameDisplayPreference {
/// Display the path after the application of rewrite rules provided via `--remap-path-prefix`.
/// This is appropriate for paths that get embedded into files produced by the compiler.
Remapped,
/// Display the path before the application of rewrite rules provided via `--remap-path-prefix`.
/// This is appropriate for use in user-facing output (such as diagnostics).
Local,
/// Display only the filename, as a way to reduce the verbosity of the output.
/// This is appropriate for use in user-facing output (such as diagnostics).
Short,
}
pub struct FileNameDisplay<'a> {
inner: &'a FileName,
display_pref: FileNameDisplayPreference,
}
impl fmt::Display for FileNameDisplay<'_> {
fn fmt(&self, fmt: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
use FileName::*;
match *self.inner {
Real(ref name) => {
write!(fmt, "{}", name.to_string_lossy(self.display_pref))
}
QuoteExpansion(_) => write!(fmt, "<quote expansion>"),
MacroExpansion(_) => write!(fmt, "<macro expansion>"),
Anon(_) => write!(fmt, "<anon>"),
ProcMacroSourceCode(_) => write!(fmt, "<proc-macro source code>"),
CliCrateAttr(_) => write!(fmt, "<crate attribute>"),
Custom(ref s) => write!(fmt, "<{s}>"),
DocTest(ref path, _) => write!(fmt, "{}", path.display()),
InlineAsm(_) => write!(fmt, "<inline asm>"),
}
}
}
impl<'a> FileNameDisplay<'a> {
pub fn to_string_lossy(&self) -> Cow<'a, str> {
match self.inner {
FileName::Real(ref inner) => inner.to_string_lossy(self.display_pref),
_ => Cow::from(self.to_string()),
}
}
}
impl FileName {
pub fn is_real(&self) -> bool {
use FileName::*;
match *self {
Real(_) => true,
Anon(_)
| MacroExpansion(_)
| ProcMacroSourceCode(_)
| CliCrateAttr(_)
| Custom(_)
| QuoteExpansion(_)
| DocTest(_, _)
| InlineAsm(_) => false,
}
}
pub fn prefer_remapped_unconditionaly(&self) -> FileNameDisplay<'_> {
FileNameDisplay { inner: self, display_pref: FileNameDisplayPreference::Remapped }
}
/// This may include transient local filesystem information.
/// Must not be embedded in build outputs.
pub fn prefer_local(&self) -> FileNameDisplay<'_> {
FileNameDisplay { inner: self, display_pref: FileNameDisplayPreference::Local }
}
pub fn display(&self, display_pref: FileNameDisplayPreference) -> FileNameDisplay<'_> {
FileNameDisplay { inner: self, display_pref }
}
pub fn macro_expansion_source_code(src: &str) -> FileName {
let mut hasher = StableHasher::new();
src.hash(&mut hasher);
FileName::MacroExpansion(hasher.finish())
}
pub fn anon_source_code(src: &str) -> FileName {
let mut hasher = StableHasher::new();
src.hash(&mut hasher);
FileName::Anon(hasher.finish())
}
pub fn proc_macro_source_code(src: &str) -> FileName {
let mut hasher = StableHasher::new();
src.hash(&mut hasher);
FileName::ProcMacroSourceCode(hasher.finish())
}
pub fn cfg_spec_source_code(src: &str) -> FileName {
let mut hasher = StableHasher::new();
src.hash(&mut hasher);
FileName::QuoteExpansion(hasher.finish())
}
pub fn cli_crate_attr_source_code(src: &str) -> FileName {
let mut hasher = StableHasher::new();
src.hash(&mut hasher);
FileName::CliCrateAttr(hasher.finish())
}
pub fn doc_test_source_code(path: PathBuf, line: isize) -> FileName {
FileName::DocTest(path, line)
}
pub fn inline_asm_source_code(src: &str) -> FileName {
let mut hasher = StableHasher::new();
src.hash(&mut hasher);
FileName::InlineAsm(hasher.finish())
}
/// Returns the path suitable for reading from the file system on the local host,
/// if this information exists.
/// Avoid embedding this in build artifacts; see `remapped_path_if_available()` for that.
pub fn into_local_path(self) -> Option<PathBuf> {
match self {
FileName::Real(path) => path.into_local_path(),
FileName::DocTest(path, _) => Some(path),
_ => None,
}
}
}
/// Represents a span.
///
/// Spans represent a region of code, used for error reporting. Positions in spans
/// are *absolute* positions from the beginning of the [`SourceMap`], not positions
/// relative to [`SourceFile`]s. Methods on the `SourceMap` can be used to relate spans back
/// to the original source.
///
/// You must be careful if the span crosses more than one file, since you will not be
/// able to use many of the functions on spans in source_map and you cannot assume
/// that the length of the span is equal to `span.hi - span.lo`; there may be space in the
/// [`BytePos`] range between files.
///
/// `SpanData` is public because `Span` uses a thread-local interner and can't be
/// sent to other threads, but some pieces of performance infra run in a separate thread.
/// Using `Span` is generally preferred.
#[derive(Clone, Copy, Hash, PartialEq, Eq)]
#[derive_where(PartialOrd, Ord)]
pub struct SpanData {
pub lo: BytePos,
pub hi: BytePos,
/// Information about where the macro came from, if this piece of
/// code was created by a macro expansion.
#[derive_where(skip)]
// `SyntaxContext` does not implement `Ord`.
// The other fields are enough to determine in-file order.
pub ctxt: SyntaxContext,
#[derive_where(skip)]
// `LocalDefId` does not implement `Ord`.
// The other fields are enough to determine in-file order.
pub parent: Option<LocalDefId>,
}
impl SpanData {
#[inline]
pub fn span(&self) -> Span {
Span::new(self.lo, self.hi, self.ctxt, self.parent)
}
#[inline]
pub fn with_lo(&self, lo: BytePos) -> Span {
Span::new(lo, self.hi, self.ctxt, self.parent)
}
#[inline]
pub fn with_hi(&self, hi: BytePos) -> Span {
Span::new(self.lo, hi, self.ctxt, self.parent)
}
/// Avoid if possible, `Span::map_ctxt` should be preferred.
#[inline]
fn with_ctxt(&self, ctxt: SyntaxContext) -> Span {
Span::new(self.lo, self.hi, ctxt, self.parent)
}
/// Avoid if possible, `Span::with_parent` should be preferred.
#[inline]
fn with_parent(&self, parent: Option<LocalDefId>) -> Span {
Span::new(self.lo, self.hi, self.ctxt, parent)
}
/// Returns `true` if this is a dummy span with any hygienic context.
#[inline]
pub fn is_dummy(self) -> bool {
self.lo.0 == 0 && self.hi.0 == 0
}
/// Returns `true` if `self` fully encloses `other`.
pub fn contains(self, other: Self) -> bool {
self.lo <= other.lo && other.hi <= self.hi
}
}
// The interner is pointed to by a thread local value which is only set on the main thread
// with parallelization is disabled. So we don't allow `Span` to transfer between threads
// to avoid panics and other errors, even though it would be memory safe to do so.
#[cfg(not(parallel_compiler))]
impl !Send for Span {}
#[cfg(not(parallel_compiler))]
impl !Sync for Span {}
impl PartialOrd for Span {
fn partial_cmp(&self, rhs: &Self) -> Option<Ordering> {
PartialOrd::partial_cmp(&self.data(), &rhs.data())
}
}
impl Ord for Span {
fn cmp(&self, rhs: &Self) -> Ordering {
Ord::cmp(&self.data(), &rhs.data())
}
}
impl Span {
#[inline]
pub fn lo(self) -> BytePos {
self.data().lo
}
#[inline]
pub fn with_lo(self, lo: BytePos) -> Span {
self.data().with_lo(lo)
}
#[inline]
pub fn hi(self) -> BytePos {
self.data().hi
}
#[inline]
pub fn with_hi(self, hi: BytePos) -> Span {
self.data().with_hi(hi)
}
#[inline]
pub fn with_ctxt(self, ctxt: SyntaxContext) -> Span {
self.map_ctxt(|_| ctxt)
}
#[inline]
pub fn is_visible(self, sm: &SourceMap) -> bool {
!self.is_dummy() && sm.is_span_accessible(self)
}
/// Returns `true` if this span comes from any kind of macro, desugaring or inlining.
#[inline]
pub fn from_expansion(self) -> bool {
!self.ctxt().is_root()
}
/// Returns `true` if `span` originates in a derive-macro's expansion.
pub fn in_derive_expansion(self) -> bool {
matches!(self.ctxt().outer_expn_data().kind, ExpnKind::Macro(MacroKind::Derive, _))
}
/// Gate suggestions that would not be appropriate in a context the user didn't write.
pub fn can_be_used_for_suggestions(self) -> bool {
!self.from_expansion()
// FIXME: If this span comes from a `derive` macro but it points at code the user wrote,
// the callsite span and the span will be pointing at different places. It also means that
// we can safely provide suggestions on this span.
|| (self.in_derive_expansion()
&& self.parent_callsite().map(|p| (p.lo(), p.hi())) != Some((self.lo(), self.hi())))
}
#[inline]
pub fn with_root_ctxt(lo: BytePos, hi: BytePos) -> Span {
Span::new(lo, hi, SyntaxContext::root(), None)
}
/// Returns a new span representing an empty span at the beginning of this span.
#[inline]
pub fn shrink_to_lo(self) -> Span {
let span = self.data_untracked();
span.with_hi(span.lo)
}
/// Returns a new span representing an empty span at the end of this span.
#[inline]
pub fn shrink_to_hi(self) -> Span {
let span = self.data_untracked();
span.with_lo(span.hi)
}
#[inline]
/// Returns `true` if `hi == lo`.
pub fn is_empty(self) -> bool {
let span = self.data_untracked();
span.hi == span.lo
}
/// Returns `self` if `self` is not the dummy span, and `other` otherwise.
pub fn substitute_dummy(self, other: Span) -> Span {
if self.is_dummy() { other } else { self }
}
/// Returns `true` if `self` fully encloses `other`.
pub fn contains(self, other: Span) -> bool {
let span = self.data();
let other = other.data();
span.contains(other)
}
/// Returns `true` if `self` touches `other`.
pub fn overlaps(self, other: Span) -> bool {
let span = self.data();
let other = other.data();
span.lo < other.hi && other.lo < span.hi
}
/// Returns `true` if `self` touches or adjoins `other`.
pub fn overlaps_or_adjacent(self, other: Span) -> bool {
let span = self.data();
let other = other.data();
span.lo <= other.hi && other.lo <= span.hi
}
/// Returns `true` if the spans are equal with regards to the source text.
///
/// Use this instead of `==` when either span could be generated code,
/// and you only care that they point to the same bytes of source text.
pub fn source_equal(self, other: Span) -> bool {
let span = self.data();
let other = other.data();
span.lo == other.lo && span.hi == other.hi
}
/// Returns `Some(span)`, where the start is trimmed by the end of `other`.
pub fn trim_start(self, other: Span) -> Option<Span> {
let span = self.data();
let other = other.data();
if span.hi > other.hi { Some(span.with_lo(cmp::max(span.lo, other.hi))) } else { None }
}
/// Returns `Some(span)`, where the end is trimmed by the start of `other`.
pub fn trim_end(self, other: Span) -> Option<Span> {
let span = self.data();
let other = other.data();
if span.lo < other.lo { Some(span.with_hi(cmp::min(span.hi, other.lo))) } else { None }
}
/// Returns the source span -- this is either the supplied span, or the span for
/// the macro callsite that expanded to it.
pub fn source_callsite(self) -> Span {
let ctxt = self.ctxt();
if !ctxt.is_root() { ctxt.outer_expn_data().call_site.source_callsite() } else { self }
}
/// The `Span` for the tokens in the previous macro expansion from which `self` was generated,
/// if any.
pub fn parent_callsite(self) -> Option<Span> {
let ctxt = self.ctxt();
(!ctxt.is_root()).then(|| ctxt.outer_expn_data().call_site)
}
/// Walk down the expansion ancestors to find a span that's contained within `outer`.
///
/// The span returned by this method may have a different [`SyntaxContext`] as `outer`.
/// If you need to extend the span, use [`find_ancestor_inside_same_ctxt`] instead,
/// because joining spans with different syntax contexts can create unexpected results.
///
/// [`find_ancestor_inside_same_ctxt`]: Self::find_ancestor_inside_same_ctxt
pub fn find_ancestor_inside(mut self, outer: Span) -> Option<Span> {
while !outer.contains(self) {
self = self.parent_callsite()?;
}
Some(self)
}
/// Walk down the expansion ancestors to find a span with the same [`SyntaxContext`] as
/// `other`.
///
/// Like [`find_ancestor_inside_same_ctxt`], but specifically for when spans might not
/// overlap. Take care when using this, and prefer [`find_ancestor_inside`] or
/// [`find_ancestor_inside_same_ctxt`] when you know that the spans are nested (modulo
/// macro expansion).
///
/// [`find_ancestor_inside`]: Self::find_ancestor_inside
/// [`find_ancestor_inside_same_ctxt`]: Self::find_ancestor_inside_same_ctxt
pub fn find_ancestor_in_same_ctxt(mut self, other: Span) -> Option<Span> {
while !self.eq_ctxt(other) {
self = self.parent_callsite()?;
}
Some(self)
}
/// Walk down the expansion ancestors to find a span that's contained within `outer` and
/// has the same [`SyntaxContext`] as `outer`.
///
/// This method is the combination of [`find_ancestor_inside`] and
/// [`find_ancestor_in_same_ctxt`] and should be preferred when extending the returned span.
/// If you do not need to modify the span, use [`find_ancestor_inside`] instead.
///
/// [`find_ancestor_inside`]: Self::find_ancestor_inside
/// [`find_ancestor_in_same_ctxt`]: Self::find_ancestor_in_same_ctxt
pub fn find_ancestor_inside_same_ctxt(mut self, outer: Span) -> Option<Span> {
while !outer.contains(self) || !self.eq_ctxt(outer) {
self = self.parent_callsite()?;
}
Some(self)
}
/// Recursively walk down the expansion ancestors to find the oldest ancestor span with the same
/// [`SyntaxContext`] the initial span.
///
/// This method is suitable for peeling through *local* macro expansions to find the "innermost"
/// span that is still local and shares the same [`SyntaxContext`]. For example, given
///
/// ```ignore (illustrative example, contains type error)
/// macro_rules! outer {
/// ($x: expr) => {
/// inner!($x)
/// }
/// }
///
/// macro_rules! inner {
/// ($x: expr) => {
/// format!("error: {}", $x)
/// //~^ ERROR mismatched types
/// }
/// }
///
/// fn bar(x: &str) -> Result<(), Box<dyn std::error::Error>> {
/// Err(outer!(x))
/// }
/// ```
///
/// if provided the initial span of `outer!(x)` inside `bar`, this method will recurse
/// the parent callsites until we reach `format!("error: {}", $x)`, at which point it is the
/// oldest ancestor span that is both still local and shares the same [`SyntaxContext`] as the
/// initial span.
pub fn find_oldest_ancestor_in_same_ctxt(self) -> Span {
let mut cur = self;
while cur.eq_ctxt(self)
&& let Some(parent_callsite) = cur.parent_callsite()
{
cur = parent_callsite;
}
cur
}
/// Edition of the crate from which this span came.
pub fn edition(self) -> edition::Edition {
self.ctxt().edition()
}
/// Is this edition 2015?
#[inline]
pub fn is_rust_2015(self) -> bool {
self.edition().is_rust_2015()
}
/// Are we allowed to use features from the Rust 2018 edition?
#[inline]
pub fn at_least_rust_2018(self) -> bool {
self.edition().at_least_rust_2018()
}
/// Are we allowed to use features from the Rust 2021 edition?
#[inline]
pub fn at_least_rust_2021(self) -> bool {
self.edition().at_least_rust_2021()
}
/// Are we allowed to use features from the Rust 2024 edition?
#[inline]
pub fn at_least_rust_2024(self) -> bool {
self.edition().at_least_rust_2024()
}
/// Returns the source callee.
///
/// Returns `None` if the supplied span has no expansion trace,
/// else returns the `ExpnData` for the macro definition
/// corresponding to the source callsite.
pub fn source_callee(self) -> Option<ExpnData> {
let mut ctxt = self.ctxt();
let mut opt_expn_data = None;
while !ctxt.is_root() {
let expn_data = ctxt.outer_expn_data();
ctxt = expn_data.call_site.ctxt();
opt_expn_data = Some(expn_data);
}
opt_expn_data
}
/// Checks if a span is "internal" to a macro in which `#[unstable]`
/// items can be used (that is, a macro marked with
/// `#[allow_internal_unstable]`).
pub fn allows_unstable(self, feature: Symbol) -> bool {
self.ctxt()
.outer_expn_data()
.allow_internal_unstable
.is_some_and(|features| features.iter().any(|&f| f == feature))
}
/// Checks if this span arises from a compiler desugaring of kind `kind`.
pub fn is_desugaring(self, kind: DesugaringKind) -> bool {
match self.ctxt().outer_expn_data().kind {
ExpnKind::Desugaring(k) => k == kind,
_ => false,
}
}
/// Returns the compiler desugaring that created this span, or `None`
/// if this span is not from a desugaring.
pub fn desugaring_kind(self) -> Option<DesugaringKind> {
match self.ctxt().outer_expn_data().kind {
ExpnKind::Desugaring(k) => Some(k),
_ => None,
}
}
/// Checks if a span is "internal" to a macro in which `unsafe`
/// can be used without triggering the `unsafe_code` lint.
/// (that is, a macro marked with `#[allow_internal_unsafe]`).
pub fn allows_unsafe(self) -> bool {
self.ctxt().outer_expn_data().allow_internal_unsafe
}
pub fn macro_backtrace(mut self) -> impl Iterator<Item = ExpnData> {
let mut prev_span = DUMMY_SP;
iter::from_fn(move || {
loop {
let ctxt = self.ctxt();
if ctxt.is_root() {
return None;
}
let expn_data = ctxt.outer_expn_data();
let is_recursive = expn_data.call_site.source_equal(prev_span);
prev_span = self;
self = expn_data.call_site;
// Don't print recursive invocations.
if !is_recursive {
return Some(expn_data);
}
}
})
}
/// Splits a span into two composite spans around a certain position.
pub fn split_at(self, pos: u32) -> (Span, Span) {
let len = self.hi().0 - self.lo().0;
debug_assert!(pos <= len);
let split_pos = BytePos(self.lo().0 + pos);
(
Span::new(self.lo(), split_pos, self.ctxt(), self.parent()),
Span::new(split_pos, self.hi(), self.ctxt(), self.parent()),
)
}
/// Check if you can select metavar spans for the given spans to get matching contexts.
fn try_metavars(a: SpanData, b: SpanData, a_orig: Span, b_orig: Span) -> (SpanData, SpanData) {
let get = |mspans: &FxHashMap<_, _>, s| mspans.get(&s).copied();
match with_metavar_spans(|mspans| (get(mspans, a_orig), get(mspans, b_orig))) {
(None, None) => {}
(Some(meta_a), None) => {
let meta_a = meta_a.data();
if meta_a.ctxt == b.ctxt {
return (meta_a, b);
}
}
(None, Some(meta_b)) => {
let meta_b = meta_b.data();
if a.ctxt == meta_b.ctxt {
return (a, meta_b);
}
}
(Some(meta_a), Some(meta_b)) => {
let meta_b = meta_b.data();
if a.ctxt == meta_b.ctxt {
return (a, meta_b);
}
let meta_a = meta_a.data();
if meta_a.ctxt == b.ctxt {
return (meta_a, b);
} else if meta_a.ctxt == meta_b.ctxt {
return (meta_a, meta_b);
}
}
}
(a, b)
}
/// Prepare two spans to a combine operation like `to` or `between`.
fn prepare_to_combine(
a_orig: Span,
b_orig: Span,
) -> Result<(SpanData, SpanData, Option<LocalDefId>), Span> {
let (a, b) = (a_orig.data(), b_orig.data());
if a.ctxt == b.ctxt {
return Ok((a, b, if a.parent == b.parent { a.parent } else { None }));
}
let (a, b) = Span::try_metavars(a, b, a_orig, b_orig);
if a.ctxt == b.ctxt {
return Ok((a, b, if a.parent == b.parent { a.parent } else { None }));
}
// Context mismatches usually happen when procedural macros combine spans copied from
// the macro input with spans produced by the macro (`Span::*_site`).
// In that case we consider the combined span to be produced by the macro and return
// the original macro-produced span as the result.
// Otherwise we just fall back to returning the first span.
// Combining locations typically doesn't make sense in case of context mismatches.
// `is_root` here is a fast path optimization.
let a_is_callsite = a.ctxt.is_root() || a.ctxt == b.span().source_callsite().ctxt();
Err(if a_is_callsite { b_orig } else { a_orig })
}
/// This span, but in a larger context, may switch to the metavariable span if suitable.
pub fn with_neighbor(self, neighbor: Span) -> Span {
match Span::prepare_to_combine(self, neighbor) {
Ok((this, ..)) => this.span(),
Err(_) => self,
}
}
/// Returns a `Span` that would enclose both `self` and `end`.
///
/// Note that this can also be used to extend the span "backwards":
/// `start.to(end)` and `end.to(start)` return the same `Span`.
///
/// ```text
/// ____ ___
/// self lorem ipsum end
/// ^^^^^^^^^^^^^^^^^^^^
/// ```
pub fn to(self, end: Span) -> Span {
match Span::prepare_to_combine(self, end) {
Ok((from, to, parent)) => {
Span::new(cmp::min(from.lo, to.lo), cmp::max(from.hi, to.hi), from.ctxt, parent)
}
Err(fallback) => fallback,
}
}
/// Returns a `Span` between the end of `self` to the beginning of `end`.
///
/// ```text
/// ____ ___
/// self lorem ipsum end
/// ^^^^^^^^^^^^^
/// ```
pub fn between(self, end: Span) -> Span {
match Span::prepare_to_combine(self, end) {
Ok((from, to, parent)) => {
Span::new(cmp::min(from.hi, to.hi), cmp::max(from.lo, to.lo), from.ctxt, parent)
}
Err(fallback) => fallback,
}
}
/// Returns a `Span` from the beginning of `self` until the beginning of `end`.
///
/// ```text
/// ____ ___
/// self lorem ipsum end
/// ^^^^^^^^^^^^^^^^^
/// ```
pub fn until(self, end: Span) -> Span {
match Span::prepare_to_combine(self, end) {
Ok((from, to, parent)) => {
Span::new(cmp::min(from.lo, to.lo), cmp::max(from.lo, to.lo), from.ctxt, parent)
}
Err(fallback) => fallback,
}
}
pub fn from_inner(self, inner: InnerSpan) -> Span {
let span = self.data();