fd7a159710
Convert all the crates that have had their diagnostic migration completed (except save_analysis because that will be deleted soon and apfloat because of the licensing problem).
237 lines
6.7 KiB
Rust
237 lines
6.7 KiB
Rust
//! Proc macro which builds the Symbol table
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//!
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//! # Debugging
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//!
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//! Since this proc-macro does some non-trivial work, debugging it is important.
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//! This proc-macro can be invoked as an ordinary unit test, like so:
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//!
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//! ```bash
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//! cd compiler/rustc_macros
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//! cargo test symbols::test_symbols -- --nocapture
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//! ```
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//!
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//! This unit test finds the `symbols!` invocation in `compiler/rustc_span/src/symbol.rs`
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//! and runs it. It verifies that the output token stream can be parsed as valid module
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//! items and that no errors were produced.
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//!
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//! You can also view the generated code by using `cargo expand`:
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//!
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//! ```bash
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//! cargo install cargo-expand # this is necessary only once
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//! cd compiler/rustc_span
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//! cargo expand > /tmp/rustc_span.rs # it's a big file
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//! ```
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use proc_macro2::{Span, TokenStream};
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use quote::quote;
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use std::collections::HashMap;
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use syn::parse::{Parse, ParseStream, Result};
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use syn::{braced, punctuated::Punctuated, Ident, LitStr, Token};
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#[cfg(test)]
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mod tests;
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mod kw {
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syn::custom_keyword!(Keywords);
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syn::custom_keyword!(Symbols);
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}
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struct Keyword {
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name: Ident,
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value: LitStr,
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}
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impl Parse for Keyword {
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fn parse(input: ParseStream<'_>) -> Result<Self> {
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let name = input.parse()?;
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input.parse::<Token![:]>()?;
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let value = input.parse()?;
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Ok(Keyword { name, value })
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}
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}
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struct Symbol {
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name: Ident,
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value: Option<LitStr>,
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}
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impl Parse for Symbol {
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fn parse(input: ParseStream<'_>) -> Result<Self> {
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let name = input.parse()?;
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let value = match input.parse::<Token![:]>() {
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Ok(_) => Some(input.parse()?),
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Err(_) => None,
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};
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Ok(Symbol { name, value })
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}
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}
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struct Input {
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keywords: Punctuated<Keyword, Token![,]>,
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symbols: Punctuated<Symbol, Token![,]>,
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}
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impl Parse for Input {
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fn parse(input: ParseStream<'_>) -> Result<Self> {
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input.parse::<kw::Keywords>()?;
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let content;
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braced!(content in input);
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let keywords = Punctuated::parse_terminated(&content)?;
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input.parse::<kw::Symbols>()?;
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let content;
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braced!(content in input);
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let symbols = Punctuated::parse_terminated(&content)?;
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Ok(Input { keywords, symbols })
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}
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}
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#[derive(Default)]
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struct Errors {
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list: Vec<syn::Error>,
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}
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impl Errors {
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fn error(&mut self, span: Span, message: String) {
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self.list.push(syn::Error::new(span, message));
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}
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}
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pub fn symbols(input: TokenStream) -> TokenStream {
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let (mut output, errors) = symbols_with_errors(input);
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// If we generated any errors, then report them as compiler_error!() macro calls.
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// This lets the errors point back to the most relevant span. It also allows us
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// to report as many errors as we can during a single run.
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output.extend(errors.into_iter().map(|e| e.to_compile_error()));
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output
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}
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fn symbols_with_errors(input: TokenStream) -> (TokenStream, Vec<syn::Error>) {
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let mut errors = Errors::default();
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let input: Input = match syn::parse2(input) {
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Ok(input) => input,
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Err(e) => {
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// This allows us to display errors at the proper span, while minimizing
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// unrelated errors caused by bailing out (and not generating code).
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errors.list.push(e);
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Input { keywords: Default::default(), symbols: Default::default() }
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}
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};
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let mut keyword_stream = quote! {};
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let mut symbols_stream = quote! {};
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let mut prefill_stream = quote! {};
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let mut counter = 0u32;
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let mut keys =
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HashMap::<String, Span>::with_capacity(input.keywords.len() + input.symbols.len() + 10);
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let mut prev_key: Option<(Span, String)> = None;
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let mut check_dup = |span: Span, str: &str, errors: &mut Errors| {
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if let Some(prev_span) = keys.get(str) {
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errors.error(span, format!("Symbol `{str}` is duplicated"));
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errors.error(*prev_span, "location of previous definition".to_string());
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} else {
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keys.insert(str.to_string(), span);
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}
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};
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let mut check_order = |span: Span, str: &str, errors: &mut Errors| {
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if let Some((prev_span, ref prev_str)) = prev_key {
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if str < prev_str {
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errors.error(span, format!("Symbol `{str}` must precede `{prev_str}`"));
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errors.error(prev_span, format!("location of previous symbol `{prev_str}`"));
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}
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}
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prev_key = Some((span, str.to_string()));
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};
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// Generate the listed keywords.
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for keyword in input.keywords.iter() {
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let name = &keyword.name;
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let value = &keyword.value;
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let value_string = value.value();
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check_dup(keyword.name.span(), &value_string, &mut errors);
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prefill_stream.extend(quote! {
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#value,
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});
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keyword_stream.extend(quote! {
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pub const #name: Symbol = Symbol::new(#counter);
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});
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counter += 1;
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}
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// Generate the listed symbols.
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for symbol in input.symbols.iter() {
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let name = &symbol.name;
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let value = match &symbol.value {
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Some(value) => value.value(),
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None => name.to_string(),
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};
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check_dup(symbol.name.span(), &value, &mut errors);
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check_order(symbol.name.span(), &name.to_string(), &mut errors);
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prefill_stream.extend(quote! {
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#value,
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});
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symbols_stream.extend(quote! {
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pub const #name: Symbol = Symbol::new(#counter);
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});
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counter += 1;
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}
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// Generate symbols for the strings "0", "1", ..., "9".
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let digits_base = counter;
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counter += 10;
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for n in 0..10 {
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let n = n.to_string();
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check_dup(Span::call_site(), &n, &mut errors);
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prefill_stream.extend(quote! {
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#n,
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});
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}
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let output = quote! {
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const SYMBOL_DIGITS_BASE: u32 = #digits_base;
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const PREINTERNED_SYMBOLS_COUNT: u32 = #counter;
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#[doc(hidden)]
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#[allow(non_upper_case_globals)]
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mod kw_generated {
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use super::Symbol;
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#keyword_stream
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}
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#[allow(non_upper_case_globals)]
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#[doc(hidden)]
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pub mod sym_generated {
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use super::Symbol;
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#symbols_stream
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}
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impl Interner {
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pub(crate) fn fresh() -> Self {
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Interner::prefill(&[
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#prefill_stream
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])
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}
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}
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};
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(output, errors.list)
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// To see the generated code, use the "cargo expand" command.
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// Do this once to install:
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// cargo install cargo-expand
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//
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// Then, cd to rustc_span and run:
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// cargo expand > /tmp/rustc_span_expanded.rs
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//
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// and read that file.
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}
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