use ArgumentType::*;
use Position::*;
use rustc_ast as ast;
use rustc_ast::ptr::P;
use rustc_ast::token;
use rustc_ast::tokenstream::TokenStream;
use rustc_data_structures::fx::{FxHashMap, FxHashSet};
use rustc_errors::{pluralize, Applicability, DiagnosticBuilder};
use rustc_expand::base::{self, *};
use rustc_parse_format as parse;
use rustc_span::symbol::{sym, Ident, Symbol};
use rustc_span::{MultiSpan, Span};
use std::borrow::Cow;
use std::collections::hash_map::Entry;
#[derive(PartialEq)]
enum ArgumentType {
Placeholder(&'static str),
Count,
}
enum Position {
Exact(usize),
Named(Symbol),
}
struct Context<'a, 'b> {
ecx: &'a mut ExtCtxt<'b>,
macsp: Span,
fmtsp: Span,
args: Vec<P<ast::Expr>>,
arg_types: Vec<Vec<usize>>,
arg_unique_types: Vec<Vec<ArgumentType>>,
names: FxHashMap<Symbol, usize>,
literal: String,
pieces: Vec<P<ast::Expr>>,
str_pieces: Vec<P<ast::Expr>>,
all_pieces_simple: bool,
arg_index_map: Vec<Vec<usize>>,
count_args_index_offset: usize,
count_args: Vec<Position>,
count_positions: FxHashMap<usize, usize>,
count_positions_count: usize,
curarg: usize,
curpiece: usize,
invalid_refs: Vec<(usize, usize)>,
arg_spans: Vec<Span>,
arg_with_formatting: Vec<parse::FormatSpec<'a>>,
is_literal: bool,
}
fn parse_args<'a>(
ecx: &mut ExtCtxt<'a>,
sp: Span,
tts: TokenStream,
) -> Result<(P<ast::Expr>, Vec<P<ast::Expr>>, FxHashMap<Symbol, usize>), DiagnosticBuilder<'a>> {
let mut args = Vec::<P<ast::Expr>>::new();
let mut names = FxHashMap::<Symbol, usize>::default();
let mut p = ecx.new_parser_from_tts(tts);
if p.token == token::Eof {
return Err(ecx.struct_span_err(sp, "requires at least a format string argument"));
}
let first_token = &p.token;
let fmtstr = match first_token.kind {
token::TokenKind::Literal(token::Lit {
kind: token::LitKind::Str | token::LitKind::StrRaw(_),
..
}) => {
p.parse_literal_maybe_minus()?
}
_ => {
p.parse_expr()?
}
};
let mut first = true;
let mut named = false;
while p.token != token::Eof {
if !p.eat(&token::Comma) {
if first {
p.clear_expected_tokens();
}
let mut err = p.expect(&token::Comma).unwrap_err();
match token::TokenKind::Comma.similar_tokens() {
Some(tks) if tks.contains(&p.token.kind) => {
err.emit();
p.bump();
}
_ => return Err(err),
}
}
first = false;
if p.token == token::Eof {
break;
}
match p.token.ident() {
Some((ident, _)) if p.look_ahead(1, |t| *t == token::Eq) => {
named = true;
p.bump();
p.expect(&token::Eq)?;
let e = p.parse_expr()?;
if let Some(prev) = names.get(&ident.name) {
ecx.struct_span_err(e.span, &format!("duplicate argument named `{}`", ident))
.span_label(args[*prev].span, "previously here")
.span_label(e.span, "duplicate argument")
.emit();
continue;
}
let slot = args.len();
names.insert(ident.name, slot);
args.push(e);
}
_ => {
let e = p.parse_expr()?;
if named {
let mut err = ecx.struct_span_err(
e.span,
"positional arguments cannot follow named arguments",
);
err.span_label(e.span, "positional arguments must be before named arguments");
for pos in names.values() {
err.span_label(args[*pos].span, "named argument");
}
err.emit();
}
args.push(e);
}
}
}
Ok((fmtstr, args, names))
}
impl<'a, 'b> Context<'a, 'b> {
fn resolve_name_inplace(&self, p: &mut parse::Piece<'_>) {
let lookup = |s: Symbol| *self.names.get(&s).unwrap_or(&0);
match *p {
parse::String(_) => {}
parse::NextArgument(ref mut arg) => {
if let parse::ArgumentNamed(s) = arg.position {
arg.position = parse::ArgumentIs(lookup(s));
}
if let parse::CountIsName(s) = arg.format.width {
arg.format.width = parse::CountIsParam(lookup(s));
}
if let parse::CountIsName(s) = arg.format.precision {
arg.format.precision = parse::CountIsParam(lookup(s));
}
}
}
}
fn verify_piece(&mut self, p: &parse::Piece<'_>) {
match *p {
parse::String(..) => {}
parse::NextArgument(ref arg) => {
self.verify_count(arg.format.width);
self.verify_count(arg.format.precision);
let pos = match arg.position {
parse::ArgumentIs(i) | parse::ArgumentImplicitlyIs(i) => Exact(i),
parse::ArgumentNamed(s) => Named(s),
};
let ty = Placeholder(match &arg.format.ty[..] {
"" => "Display",
"?" => "Debug",
"e" => "LowerExp",
"E" => "UpperExp",
"o" => "Octal",
"p" => "Pointer",
"b" => "Binary",
"x" => "LowerHex",
"X" => "UpperHex",
_ => {
let fmtsp = self.fmtsp;
let sp = arg.format.ty_span.map(|sp| fmtsp.from_inner(sp));
let mut err = self.ecx.struct_span_err(
sp.unwrap_or(fmtsp),
&format!("unknown format trait `{}`", arg.format.ty),
);
err.note(
"the only appropriate formatting traits are:\n\
- ``, which uses the `Display` trait\n\
- `?`, which uses the `Debug` trait\n\
- `e`, which uses the `LowerExp` trait\n\
- `E`, which uses the `UpperExp` trait\n\
- `o`, which uses the `Octal` trait\n\
- `p`, which uses the `Pointer` trait\n\
- `b`, which uses the `Binary` trait\n\
- `x`, which uses the `LowerHex` trait\n\
- `X`, which uses the `UpperHex` trait",
);
if let Some(sp) = sp {
for (fmt, name) in &[
("", "Display"),
("?", "Debug"),
("e", "LowerExp"),
("E", "UpperExp"),
("o", "Octal"),
("p", "Pointer"),
("b", "Binary"),
("x", "LowerHex"),
("X", "UpperHex"),
] {
err.tool_only_span_suggestion(
sp,
&format!("use the `{}` trait", name),
(*fmt).to_string(),
Applicability::MaybeIncorrect,
);
}
}
err.emit();
"<invalid>"
}
});
self.verify_arg_type(pos, ty);
self.curpiece += 1;
}
}
}
fn verify_count(&mut self, c: parse::Count) {
match c {
parse::CountImplied | parse::CountIs(..) => {}
parse::CountIsParam(i) => {
self.verify_arg_type(Exact(i), Count);
}
parse::CountIsName(s) => {
self.verify_arg_type(Named(s), Count);
}
}
}
fn describe_num_args(&self) -> Cow<'_, str> {
match self.args.len() {
0 => "no arguments were given".into(),
1 => "there is 1 argument".into(),
x => format!("there are {} arguments", x).into(),
}
}
fn report_invalid_references(&self, numbered_position_args: bool) {
let mut e;
let sp = if !self.arg_spans.is_empty() {
MultiSpan::from_spans(self.arg_spans.clone())
} else {
MultiSpan::from_span(self.fmtsp)
};
let refs =
self.invalid_refs.iter().map(|(r, pos)| (r.to_string(), self.arg_spans.get(*pos)));
let mut zero_based_note = false;
let count = self.pieces.len()
+ self.arg_with_formatting.iter().filter(|fmt| fmt.precision_span.is_some()).count();
if self.names.is_empty() && !numbered_position_args && count != self.args.len() {
e = self.ecx.struct_span_err(
sp,
&format!(
"{} positional argument{} in format string, but {}",
count,
pluralize!(count),
self.describe_num_args(),
),
);
for arg in &self.args {
e.span_label(arg.span, "");
}
} else {
let (mut refs, spans): (Vec<_>, Vec<_>) = refs.unzip();
refs.sort();
refs.dedup();
let spans: Vec<_> = spans.into_iter().filter_map(|sp| sp.copied()).collect();
let sp = if self.arg_spans.is_empty() || spans.is_empty() {
MultiSpan::from_span(self.fmtsp)
} else {
MultiSpan::from_spans(spans)
};
let arg_list = if refs.len() == 1 {
format!("argument {}", refs[0])
} else {
let reg = refs.pop().unwrap();
format!("arguments {head} and {tail}", head = refs.join(", "), tail = reg)
};
e = self.ecx.struct_span_err(
sp,
&format!(
"invalid reference to positional {} ({})",
arg_list,
self.describe_num_args()
),
);
zero_based_note = true;
};
for fmt in &self.arg_with_formatting {
if let Some(span) = fmt.precision_span {
let span = self.fmtsp.from_inner(span);
match fmt.precision {
parse::CountIsParam(pos) if pos > self.args.len() => {
e.span_label(
span,
&format!(
"this precision flag expects an `usize` argument at position {}, \
but {}",
pos,
self.describe_num_args(),
),
);
zero_based_note = true;
}
parse::CountIsParam(pos) => {
let count = self.pieces.len()
+ self
.arg_with_formatting
.iter()
.filter(|fmt| fmt.precision_span.is_some())
.count();
e.span_label(span, &format!(
"this precision flag adds an extra required argument at position {}, \
which is why there {} expected",
pos,
if count == 1 {
"is 1 argument".to_string()
} else {
format!("are {} arguments", count)
},
));
if let Some(arg) = self.args.get(pos) {
e.span_label(
arg.span,
"this parameter corresponds to the precision flag",
);
}
zero_based_note = true;
}
_ => {}
}
}
if let Some(span) = fmt.width_span {
let span = self.fmtsp.from_inner(span);
match fmt.width {
parse::CountIsParam(pos) if pos > self.args.len() => {
e.span_label(
span,
&format!(
"this width flag expects an `usize` argument at position {}, \
but {}",
pos,
self.describe_num_args(),
),
);
zero_based_note = true;
}
_ => {}
}
}
}
if zero_based_note {
e.note("positional arguments are zero-based");
}
if !self.arg_with_formatting.is_empty() {
e.note(
"for information about formatting flags, visit \
https://doc.rust-lang.org/std/fmt/index.html",
);
}
e.emit();
}
fn verify_arg_type(&mut self, arg: Position, ty: ArgumentType) {
match arg {
Exact(arg) => {
if self.args.len() <= arg {
self.invalid_refs.push((arg, self.curpiece));
return;
}
match ty {
Placeholder(_) => {
let seen_ty = &mut self.arg_unique_types[arg];
let i = seen_ty.iter().position(|x| *x == ty).unwrap_or_else(|| {
let i = seen_ty.len();
seen_ty.push(ty);
i
});
self.arg_types[arg].push(i);
}
Count => {
if let Entry::Vacant(e) = self.count_positions.entry(arg) {
let i = self.count_positions_count;
e.insert(i);
self.count_args.push(Exact(arg));
self.count_positions_count += 1;
}
}
}
}
Named(name) => {
match self.names.get(&name) {
Some(&idx) => {
self.verify_arg_type(Exact(idx), ty)
}
None => {
let capture_feature_enabled = self
.ecx
.ecfg
.features
.map_or(false, |features| features.format_args_capture);
let can_capture = capture_feature_enabled && self.is_literal;
if can_capture {
let idx = self.args.len();
self.arg_types.push(Vec::new());
self.arg_unique_types.push(Vec::new());
let span = if self.is_literal {
*self.arg_spans.get(self.curpiece).unwrap_or(&self.fmtsp)
} else {
self.fmtsp
};
self.args.push(self.ecx.expr_ident(span, Ident::new(name, span)));
self.names.insert(name, idx);
self.verify_arg_type(Exact(idx), ty)
} else {
let msg = format!("there is no argument named `{}`", name);
let sp = if self.is_literal {
*self.arg_spans.get(self.curpiece).unwrap_or(&self.fmtsp)
} else {
self.fmtsp
};
let mut err = self.ecx.struct_span_err(sp, &msg[..]);
if capture_feature_enabled && !self.is_literal {
err.note(&format!(
"did you intend to capture a variable `{}` from \
the surrounding scope?",
name
));
err.note(
"to avoid ambiguity, `format_args!` cannot capture variables \
when the format string is expanded from a macro",
);
} else if self.ecx.parse_sess().unstable_features.is_nightly_build() {
err.help(&format!(
"if you intended to capture `{}` from the surrounding scope, add \
`#![feature(format_args_capture)]` to the crate attributes",
name
));
}
err.emit();
}
}
}
}
}
}
fn build_index_map(&mut self) {
let args_len = self.args.len();
self.arg_index_map.reserve(args_len);
let mut sofar = 0usize;
for i in 0..args_len {
let arg_types = &self.arg_types[i];
let arg_offsets = arg_types.iter().map(|offset| sofar + *offset).collect::<Vec<_>>();
self.arg_index_map.push(arg_offsets);
sofar += self.arg_unique_types[i].len();
}
self.count_args_index_offset = sofar;
}
fn rtpath(ecx: &ExtCtxt<'_>, s: Symbol) -> Vec<Ident> {
ecx.std_path(&[sym::fmt, sym::rt, sym::v1, s])
}
fn build_count(&self, c: parse::Count) -> P<ast::Expr> {
let sp = self.macsp;
let count = |c, arg| {
let mut path = Context::rtpath(self.ecx, sym::Count);
path.push(Ident::new(c, sp));
match arg {
Some(arg) => self.ecx.expr_call_global(sp, path, vec![arg]),
None => self.ecx.expr_path(self.ecx.path_global(sp, path)),
}
};
match c {
parse::CountIs(i) => count(sym::Is, Some(self.ecx.expr_usize(sp, i))),
parse::CountIsParam(i) => {
let i = self.count_positions.get(&i).cloned().unwrap_or(0)
+ self.count_args_index_offset;
count(sym::Param, Some(self.ecx.expr_usize(sp, i)))
}
parse::CountImplied => count(sym::Implied, None),
parse::CountIsName(_) => panic!("should never happen"),
}
}
fn build_literal_string(&mut self) -> P<ast::Expr> {
let sp = self.fmtsp;
let s = Symbol::intern(&self.literal);
self.literal.clear();
self.ecx.expr_str(sp, s)
}
fn build_piece(
&mut self,
piece: &parse::Piece<'a>,
arg_index_consumed: &mut Vec<usize>,
) -> Option<P<ast::Expr>> {
let sp = self.macsp;
match *piece {
parse::String(s) => {
self.literal.push_str(s);
None
}
parse::NextArgument(ref arg) => {
let pos = {
match arg.position {
parse::ArgumentIs(i) | parse::ArgumentImplicitlyIs(i) => {
let arg_idx = match arg_index_consumed.get_mut(i) {
None => 0,
Some(offset) => {
let idx_map = &self.arg_index_map[i];
let arg_idx = *idx_map.get(*offset).unwrap_or(&0);
*offset += 1;
arg_idx
}
};
self.ecx.expr_usize(sp, arg_idx)
}
parse::ArgumentNamed(_) => panic!("should never happen"),
}
};
let simple_arg = parse::Argument {
position: {
let i = self.curarg;
self.curarg += 1;
parse::ArgumentIs(i)
},
format: parse::FormatSpec {
fill: arg.format.fill,
align: parse::AlignUnknown,
flags: 0,
precision: parse::CountImplied,
precision_span: None,
width: parse::CountImplied,
width_span: None,
ty: arg.format.ty,
ty_span: arg.format.ty_span,
},
};
let fill = arg.format.fill.unwrap_or(' ');
let pos_simple = arg.position.index() == simple_arg.position.index();
if arg.format.precision_span.is_some() || arg.format.width_span.is_some() {
self.arg_with_formatting.push(arg.format);
}
if !pos_simple || arg.format != simple_arg.format || fill != ' ' {
self.all_pieces_simple = false;
}
let fill = self.ecx.expr_lit(sp, ast::LitKind::Char(fill));
let align = |name| {
let mut p = Context::rtpath(self.ecx, sym::Alignment);
p.push(Ident::new(name, sp));
self.ecx.path_global(sp, p)
};
let align = match arg.format.align {
parse::AlignLeft => align(sym::Left),
parse::AlignRight => align(sym::Right),
parse::AlignCenter => align(sym::Center),
parse::AlignUnknown => align(sym::Unknown),
};
let align = self.ecx.expr_path(align);
let flags = self.ecx.expr_u32(sp, arg.format.flags);
let prec = self.build_count(arg.format.precision);
let width = self.build_count(arg.format.width);
let path = self.ecx.path_global(sp, Context::rtpath(self.ecx, sym::FormatSpec));
let fmt = self.ecx.expr_struct(
sp,
path,
vec![
self.ecx.field_imm(sp, Ident::new(sym::fill, sp), fill),
self.ecx.field_imm(sp, Ident::new(sym::align, sp), align),
self.ecx.field_imm(sp, Ident::new(sym::flags, sp), flags),
self.ecx.field_imm(sp, Ident::new(sym::precision, sp), prec),
self.ecx.field_imm(sp, Ident::new(sym::width, sp), width),
],
);
let path = self.ecx.path_global(sp, Context::rtpath(self.ecx, sym::Argument));
Some(self.ecx.expr_struct(
sp,
path,
vec![
self.ecx.field_imm(sp, Ident::new(sym::position, sp), pos),
self.ecx.field_imm(sp, Ident::new(sym::format, sp), fmt),
],
))
}
}
}
fn into_expr(self) -> P<ast::Expr> {
let mut locals =
Vec::with_capacity((0..self.args.len()).map(|i| self.arg_unique_types[i].len()).sum());
let mut counts = Vec::with_capacity(self.count_args.len());
let mut pats = Vec::with_capacity(self.args.len());
let mut heads = Vec::with_capacity(self.args.len());
let names_pos: Vec<_> = (0..self.args.len())
.map(|i| Ident::from_str_and_span(&format!("arg{}", i), self.macsp))
.collect();
let pieces = self.ecx.expr_vec_slice(self.fmtsp, self.str_pieces);
let spans_pos: Vec<_> = self.args.iter().map(|e| e.span).collect();
for (i, e) in self.args.into_iter().enumerate() {
let name = names_pos[i];
let span = self.ecx.with_def_site_ctxt(e.span);
pats.push(self.ecx.pat_ident(span, name));
for arg_ty in self.arg_unique_types[i].iter() {
locals.push(Context::format_arg(self.ecx, self.macsp, e.span, arg_ty, name));
}
heads.push(self.ecx.expr_addr_of(e.span, e));
}
for pos in self.count_args {
let index = match pos {
Exact(i) => i,
_ => panic!("should never happen"),
};
let name = names_pos[index];
let span = spans_pos[index];
counts.push(Context::format_arg(self.ecx, self.macsp, span, &Count, name));
}
let args = locals.into_iter().chain(counts.into_iter());
let args_array = self.ecx.expr_vec(self.macsp, args.collect());
let pat = self.ecx.pat_tuple(self.macsp, pats);
let arm = self.ecx.arm(self.macsp, pat, args_array);
let head = self.ecx.expr(self.macsp, ast::ExprKind::Tup(heads));
let result = self.ecx.expr_match(self.macsp, head, vec![arm]);
let args_slice = self.ecx.expr_addr_of(self.macsp, result);
let (fn_name, fn_args) = if self.all_pieces_simple {
("new_v1", vec![pieces, args_slice])
} else {
let fmt = self.ecx.expr_vec_slice(self.macsp, self.pieces);
("new_v1_formatted", vec![pieces, args_slice, fmt])
};
let path = self.ecx.std_path(&[sym::fmt, sym::Arguments, Symbol::intern(fn_name)]);
self.ecx.expr_call_global(self.macsp, path, fn_args)
}
fn format_arg(
ecx: &ExtCtxt<'_>,
macsp: Span,
mut sp: Span,
ty: &ArgumentType,
arg: Ident,
) -> P<ast::Expr> {
sp = ecx.with_def_site_ctxt(sp);
let arg = ecx.expr_ident(sp, arg);
let trait_ = match *ty {
Placeholder(trait_) if trait_ == "<invalid>" => return DummyResult::raw_expr(sp, true),
Placeholder(trait_) => trait_,
Count => {
let path = ecx.std_path(&[sym::fmt, sym::ArgumentV1, sym::from_usize]);
return ecx.expr_call_global(macsp, path, vec![arg]);
}
};
let path = ecx.std_path(&[sym::fmt, Symbol::intern(trait_), sym::fmt]);
let format_fn = ecx.path_global(sp, path);
let path = ecx.std_path(&[sym::fmt, sym::ArgumentV1, sym::new]);
ecx.expr_call_global(macsp, path, vec![arg, ecx.expr_path(format_fn)])
}
}
fn expand_format_args_impl<'cx>(
ecx: &'cx mut ExtCtxt<'_>,
mut sp: Span,
tts: TokenStream,
nl: bool,
) -> Box<dyn base::MacResult + 'cx> {
sp = ecx.with_def_site_ctxt(sp);
match parse_args(ecx, sp, tts) {
Ok((efmt, args, names)) => {
MacEager::expr(expand_preparsed_format_args(ecx, sp, efmt, args, names, nl))
}
Err(mut err) => {
err.emit();
DummyResult::any(sp)
}
}
}
pub fn expand_format_args<'cx>(
ecx: &'cx mut ExtCtxt<'_>,
sp: Span,
tts: TokenStream,
) -> Box<dyn base::MacResult + 'cx> {
expand_format_args_impl(ecx, sp, tts, false)
}
pub fn expand_format_args_nl<'cx>(
ecx: &'cx mut ExtCtxt<'_>,
sp: Span,
tts: TokenStream,
) -> Box<dyn base::MacResult + 'cx> {
expand_format_args_impl(ecx, sp, tts, true)
}
pub fn expand_preparsed_format_args(
ecx: &mut ExtCtxt<'_>,
sp: Span,
efmt: P<ast::Expr>,
args: Vec<P<ast::Expr>>,
names: FxHashMap<Symbol, usize>,
append_newline: bool,
) -> P<ast::Expr> {
let arg_types: Vec<_> = (0..args.len()).map(|_| Vec::new()).collect();
let arg_unique_types: Vec<_> = (0..args.len()).map(|_| Vec::new()).collect();
let mut macsp = ecx.call_site();
macsp = ecx.with_def_site_ctxt(macsp);
let msg = "format argument must be a string literal";
let fmt_sp = efmt.span;
let (fmt_str, fmt_style, fmt_span) = match expr_to_spanned_string(ecx, efmt, msg) {
Ok(mut fmt) if append_newline => {
fmt.0 = Symbol::intern(&format!("{}\n", fmt.0));
fmt
}
Ok(fmt) => fmt,
Err(err) => {
if let Some(mut err) = err {
let sugg_fmt = match args.len() {
0 => "{}".to_string(),
_ => format!("{}{{}}", "{} ".repeat(args.len())),
};
err.span_suggestion(
fmt_sp.shrink_to_lo(),
"you might be missing a string literal to format with",
format!("\"{}\", ", sugg_fmt),
Applicability::MaybeIncorrect,
);
err.emit();
}
return DummyResult::raw_expr(sp, true);
}
};
let str_style = match fmt_style {
ast::StrStyle::Cooked => None,
ast::StrStyle::Raw(raw) => Some(raw as usize),
};
let fmt_str = &fmt_str.as_str();
let fmt_snippet = ecx.source_map().span_to_snippet(fmt_sp).ok();
let mut parser = parse::Parser::new(
fmt_str,
str_style,
fmt_snippet,
append_newline,
parse::ParseMode::Format,
);
let mut unverified_pieces = Vec::new();
while let Some(piece) = parser.next() {
if !parser.errors.is_empty() {
break;
} else {
unverified_pieces.push(piece);
}
}
if !parser.errors.is_empty() {
let err = parser.errors.remove(0);
let sp = fmt_span.from_inner(err.span);
let mut e = ecx.struct_span_err(sp, &format!("invalid format string: {}", err.description));
e.span_label(sp, err.label + " in format string");
if let Some(note) = err.note {
e.note(¬e);
}
if let Some((label, span)) = err.secondary_label {
let sp = fmt_span.from_inner(span);
e.span_label(sp, label);
}
e.emit();
return DummyResult::raw_expr(sp, true);
}
let arg_spans = parser.arg_places.iter().map(|span| fmt_span.from_inner(*span)).collect();
let named_pos: FxHashSet<usize> = names.values().cloned().collect();
let mut cx = Context {
ecx,
args,
arg_types,
arg_unique_types,
names,
curarg: 0,
curpiece: 0,
arg_index_map: Vec::new(),
count_args: Vec::new(),
count_positions: FxHashMap::default(),
count_positions_count: 0,
count_args_index_offset: 0,
literal: String::new(),
pieces: Vec::with_capacity(unverified_pieces.len()),
str_pieces: Vec::with_capacity(unverified_pieces.len()),
all_pieces_simple: true,
macsp,
fmtsp: fmt_span,
invalid_refs: Vec::new(),
arg_spans,
arg_with_formatting: Vec::new(),
is_literal: parser.is_literal,
};
let pieces = unverified_pieces
.into_iter()
.map(|mut piece| {
cx.verify_piece(&piece);
cx.resolve_name_inplace(&mut piece);
piece
})
.collect::<Vec<_>>();
let numbered_position_args = pieces.iter().any(|arg: &parse::Piece<'_>| match *arg {
parse::String(_) => false,
parse::NextArgument(arg) => match arg.position {
parse::Position::ArgumentIs(_) => true,
_ => false,
},
});
cx.build_index_map();
let mut arg_index_consumed = vec![0usize; cx.arg_index_map.len()];
for piece in pieces {
if let Some(piece) = cx.build_piece(&piece, &mut arg_index_consumed) {
let s = cx.build_literal_string();
cx.str_pieces.push(s);
cx.pieces.push(piece);
}
}
if !cx.literal.is_empty() {
let s = cx.build_literal_string();
cx.str_pieces.push(s);
}
if !cx.invalid_refs.is_empty() {
cx.report_invalid_references(numbered_position_args);
}
let errs = cx
.arg_types
.iter()
.enumerate()
.filter(|(i, ty)| ty.is_empty() && !cx.count_positions.contains_key(&i))
.map(|(i, _)| {
let msg = if named_pos.contains(&i) {
"named argument never used"
} else {
"argument never used"
};
(cx.args[i].span, msg)
})
.collect::<Vec<_>>();
let errs_len = errs.len();
if !errs.is_empty() {
let args_used = cx.arg_types.len() - errs_len;
let args_unused = errs_len;
let mut diag = {
if let [(sp, msg)] = &errs[..] {
let mut diag = cx.ecx.struct_span_err(*sp, *msg);
diag.span_label(*sp, *msg);
diag
} else {
let mut diag = cx.ecx.struct_span_err(
errs.iter().map(|&(sp, _)| sp).collect::<Vec<Span>>(),
"multiple unused formatting arguments",
);
diag.span_label(cx.fmtsp, "multiple missing formatting specifiers");
for (sp, msg) in errs {
diag.span_label(sp, msg);
}
diag
}
};
let mut found_foreign = false;
if args_used < args_unused {
use super::format_foreign as foreign;
let mut explained = FxHashSet::default();
macro_rules! check_foreign {
($kind:ident) => {{
let mut show_doc_note = false;
let mut suggestions = vec![];
let padding = str_style.map(|i| i + 2).unwrap_or(1);
for sub in foreign::$kind::iter_subs(fmt_str, padding) {
let trn = match sub.translate() {
Some(trn) => trn,
None => continue,
};
let pos = sub.position();
let sub = String::from(sub.as_str());
if explained.contains(&sub) {
continue;
}
explained.insert(sub.clone());
if !found_foreign {
found_foreign = true;
show_doc_note = true;
}
if let Some(inner_sp) = pos {
let sp = fmt_sp.from_inner(inner_sp);
suggestions.push((sp, trn));
} else {
diag.help(&format!("`{}` should be written as `{}`", sub, trn));
}
}
if show_doc_note {
diag.note(concat!(
stringify!($kind),
" formatting not supported; see the documentation for `std::fmt`",
));
}
if suggestions.len() > 0 {
diag.multipart_suggestion(
"format specifiers use curly braces",
suggestions,
Applicability::MachineApplicable,
);
}
}};
}
check_foreign!(printf);
if !found_foreign {
check_foreign!(shell);
}
}
if !found_foreign && errs_len == 1 {
diag.span_label(cx.fmtsp, "formatting specifier missing");
}
diag.emit();
}
cx.into_expr()
}