786 lines
27 KiB
Rust
786 lines
27 KiB
Rust
//! Rewrite a list some items with overflow.
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use std::cmp::min;
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use itertools::Itertools;
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use rustc_ast::token::Delimiter;
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use rustc_ast::{ast, ptr};
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use rustc_span::Span;
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use crate::closures;
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use crate::config::lists::*;
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use crate::config::Version;
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use crate::expr::{
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can_be_overflowed_expr, is_every_expr_simple, is_method_call, is_nested_call, is_simple_expr,
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rewrite_cond,
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};
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use crate::lists::{
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definitive_tactic, itemize_list, write_list, ListFormatting, ListItem, Separator,
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};
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use crate::macros::MacroArg;
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use crate::patterns::{can_be_overflowed_pat, TuplePatField};
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use crate::rewrite::{Rewrite, RewriteContext};
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use crate::shape::Shape;
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use crate::source_map::SpanUtils;
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use crate::spanned::Spanned;
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use crate::types::{can_be_overflowed_type, SegmentParam};
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use crate::utils::{count_newlines, extra_offset, first_line_width, last_line_width, mk_sp};
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/// A list of `format!`-like macros, that take a long format string and a list of arguments to
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/// format.
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///
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/// Organized as a list of `(&str, usize)` tuples, giving the name of the macro and the number of
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/// arguments before the format string (none for `format!("format", ...)`, one for `assert!(result,
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/// "format", ...)`, two for `assert_eq!(left, right, "format", ...)`).
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const SPECIAL_MACRO_WHITELIST: &[(&str, usize)] = &[
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// format! like macros
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// From the Rust Standard Library.
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("eprint!", 0),
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("eprintln!", 0),
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("format!", 0),
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("format_args!", 0),
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("print!", 0),
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("println!", 0),
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("panic!", 0),
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("unreachable!", 0),
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// From the `log` crate.
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("debug!", 0),
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("error!", 0),
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("info!", 0),
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("warn!", 0),
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// write! like macros
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("assert!", 1),
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("debug_assert!", 1),
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("write!", 1),
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("writeln!", 1),
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// assert_eq! like macros
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("assert_eq!", 2),
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("assert_ne!", 2),
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("debug_assert_eq!", 2),
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("debug_assert_ne!", 2),
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];
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const SPECIAL_ATTR_WHITELIST: &[(&str, usize)] = &[
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// From the `failure` crate.
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("fail", 0),
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];
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#[derive(Debug)]
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pub(crate) enum OverflowableItem<'a> {
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Expr(&'a ast::Expr),
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GenericParam(&'a ast::GenericParam),
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MacroArg(&'a MacroArg),
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NestedMetaItem(&'a ast::NestedMetaItem),
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SegmentParam(&'a SegmentParam<'a>),
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FieldDef(&'a ast::FieldDef),
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TuplePatField(&'a TuplePatField<'a>),
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Ty(&'a ast::Ty),
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Pat(&'a ast::Pat),
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}
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impl<'a> Rewrite for OverflowableItem<'a> {
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fn rewrite(&self, context: &RewriteContext<'_>, shape: Shape) -> Option<String> {
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self.map(|item| item.rewrite(context, shape))
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}
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}
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impl<'a> Spanned for OverflowableItem<'a> {
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fn span(&self) -> Span {
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self.map(|item| item.span())
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}
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}
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impl<'a> OverflowableItem<'a> {
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fn has_attrs(&self) -> bool {
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match self {
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OverflowableItem::Expr(ast::Expr { attrs, .. })
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| OverflowableItem::GenericParam(ast::GenericParam { attrs, .. }) => !attrs.is_empty(),
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OverflowableItem::FieldDef(ast::FieldDef { attrs, .. }) => !attrs.is_empty(),
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OverflowableItem::MacroArg(MacroArg::Expr(expr)) => !expr.attrs.is_empty(),
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OverflowableItem::MacroArg(MacroArg::Item(item)) => !item.attrs.is_empty(),
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_ => false,
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}
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}
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pub(crate) fn map<F, T>(&self, f: F) -> T
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where
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F: Fn(&dyn IntoOverflowableItem<'a>) -> T,
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{
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match self {
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OverflowableItem::Expr(expr) => f(*expr),
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OverflowableItem::GenericParam(gp) => f(*gp),
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OverflowableItem::MacroArg(macro_arg) => f(*macro_arg),
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OverflowableItem::NestedMetaItem(nmi) => f(*nmi),
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OverflowableItem::SegmentParam(sp) => f(*sp),
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OverflowableItem::FieldDef(sf) => f(*sf),
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OverflowableItem::TuplePatField(pat) => f(*pat),
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OverflowableItem::Ty(ty) => f(*ty),
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OverflowableItem::Pat(pat) => f(*pat),
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}
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}
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pub(crate) fn is_simple(&self) -> bool {
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match self {
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OverflowableItem::Expr(expr) => is_simple_expr(expr),
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OverflowableItem::MacroArg(MacroArg::Keyword(..)) => true,
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OverflowableItem::MacroArg(MacroArg::Expr(expr)) => is_simple_expr(expr),
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OverflowableItem::NestedMetaItem(nested_meta_item) => match nested_meta_item {
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ast::NestedMetaItem::Literal(..) => true,
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ast::NestedMetaItem::MetaItem(ref meta_item) => {
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matches!(meta_item.kind, ast::MetaItemKind::Word)
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}
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},
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_ => false,
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}
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}
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pub(crate) fn is_expr(&self) -> bool {
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matches!(
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self,
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OverflowableItem::Expr(..) | OverflowableItem::MacroArg(MacroArg::Expr(..))
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)
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}
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pub(crate) fn is_nested_call(&self) -> bool {
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match self {
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OverflowableItem::Expr(expr) => is_nested_call(expr),
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OverflowableItem::MacroArg(MacroArg::Expr(expr)) => is_nested_call(expr),
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_ => false,
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}
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}
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pub(crate) fn to_expr(&self) -> Option<&'a ast::Expr> {
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match self {
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OverflowableItem::Expr(expr) => Some(expr),
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OverflowableItem::MacroArg(MacroArg::Expr(ref expr)) => Some(expr),
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_ => None,
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}
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}
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pub(crate) fn can_be_overflowed(&self, context: &RewriteContext<'_>, len: usize) -> bool {
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match self {
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OverflowableItem::Expr(expr) => can_be_overflowed_expr(context, expr, len),
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OverflowableItem::MacroArg(macro_arg) => match macro_arg {
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MacroArg::Expr(ref expr) => can_be_overflowed_expr(context, expr, len),
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MacroArg::Ty(ref ty) => can_be_overflowed_type(context, ty, len),
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MacroArg::Pat(..) => false,
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MacroArg::Item(..) => len == 1,
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MacroArg::Keyword(..) => false,
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},
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OverflowableItem::NestedMetaItem(nested_meta_item) if len == 1 => {
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match nested_meta_item {
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ast::NestedMetaItem::Literal(..) => false,
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ast::NestedMetaItem::MetaItem(..) => true,
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}
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}
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OverflowableItem::SegmentParam(SegmentParam::Type(ty)) => {
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can_be_overflowed_type(context, ty, len)
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}
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OverflowableItem::TuplePatField(pat) => can_be_overflowed_pat(context, pat, len),
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OverflowableItem::Ty(ty) => can_be_overflowed_type(context, ty, len),
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_ => false,
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}
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}
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fn whitelist(&self) -> &'static [(&'static str, usize)] {
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match self {
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OverflowableItem::MacroArg(..) => SPECIAL_MACRO_WHITELIST,
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OverflowableItem::NestedMetaItem(..) => SPECIAL_ATTR_WHITELIST,
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_ => &[],
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}
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}
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}
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pub(crate) trait IntoOverflowableItem<'a>: Rewrite + Spanned {
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fn into_overflowable_item(&'a self) -> OverflowableItem<'a>;
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}
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impl<'a, T: 'a + IntoOverflowableItem<'a>> IntoOverflowableItem<'a> for ptr::P<T> {
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fn into_overflowable_item(&'a self) -> OverflowableItem<'a> {
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(**self).into_overflowable_item()
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}
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}
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macro_rules! impl_into_overflowable_item_for_ast_node {
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($($ast_node:ident),*) => {
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$(
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impl<'a> IntoOverflowableItem<'a> for ast::$ast_node {
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fn into_overflowable_item(&'a self) -> OverflowableItem<'a> {
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OverflowableItem::$ast_node(self)
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}
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}
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)*
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}
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}
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macro_rules! impl_into_overflowable_item_for_rustfmt_types {
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([$($ty:ident),*], [$($ty_with_lifetime:ident),*]) => {
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$(
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impl<'a> IntoOverflowableItem<'a> for $ty {
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fn into_overflowable_item(&'a self) -> OverflowableItem<'a> {
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OverflowableItem::$ty(self)
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}
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}
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)*
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$(
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impl<'a> IntoOverflowableItem<'a> for $ty_with_lifetime<'a> {
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fn into_overflowable_item(&'a self) -> OverflowableItem<'a> {
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OverflowableItem::$ty_with_lifetime(self)
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}
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}
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)*
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}
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}
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impl_into_overflowable_item_for_ast_node!(Expr, GenericParam, NestedMetaItem, FieldDef, Ty, Pat);
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impl_into_overflowable_item_for_rustfmt_types!([MacroArg], [SegmentParam, TuplePatField]);
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pub(crate) fn into_overflowable_list<'a, T>(
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iter: impl Iterator<Item = &'a T>,
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) -> impl Iterator<Item = OverflowableItem<'a>>
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where
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T: 'a + IntoOverflowableItem<'a>,
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{
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iter.map(|x| IntoOverflowableItem::into_overflowable_item(x))
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}
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pub(crate) fn rewrite_with_parens<'a, T: 'a + IntoOverflowableItem<'a>>(
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context: &'a RewriteContext<'_>,
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ident: &'a str,
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items: impl Iterator<Item = &'a T>,
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shape: Shape,
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span: Span,
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item_max_width: usize,
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force_separator_tactic: Option<SeparatorTactic>,
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) -> Option<String> {
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Context::new(
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context,
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items,
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ident,
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shape,
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span,
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"(",
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")",
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item_max_width,
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force_separator_tactic,
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None,
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)
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.rewrite(shape)
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}
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pub(crate) fn rewrite_with_angle_brackets<'a, T: 'a + IntoOverflowableItem<'a>>(
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context: &'a RewriteContext<'_>,
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ident: &'a str,
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items: impl Iterator<Item = &'a T>,
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shape: Shape,
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span: Span,
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) -> Option<String> {
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Context::new(
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context,
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items,
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ident,
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shape,
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span,
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"<",
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">",
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context.config.max_width(),
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None,
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None,
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)
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.rewrite(shape)
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}
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pub(crate) fn rewrite_with_square_brackets<'a, T: 'a + IntoOverflowableItem<'a>>(
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context: &'a RewriteContext<'_>,
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name: &'a str,
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items: impl Iterator<Item = &'a T>,
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shape: Shape,
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span: Span,
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force_separator_tactic: Option<SeparatorTactic>,
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delim_token: Option<Delimiter>,
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) -> Option<String> {
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let (lhs, rhs) = match delim_token {
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Some(Delimiter::Parenthesis) => ("(", ")"),
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Some(Delimiter::Brace) => ("{", "}"),
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_ => ("[", "]"),
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};
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Context::new(
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context,
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items,
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name,
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shape,
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span,
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lhs,
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rhs,
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context.config.array_width(),
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force_separator_tactic,
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Some(("[", "]")),
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)
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.rewrite(shape)
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}
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struct Context<'a> {
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context: &'a RewriteContext<'a>,
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items: Vec<OverflowableItem<'a>>,
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ident: &'a str,
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prefix: &'static str,
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suffix: &'static str,
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one_line_shape: Shape,
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nested_shape: Shape,
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span: Span,
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item_max_width: usize,
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one_line_width: usize,
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force_separator_tactic: Option<SeparatorTactic>,
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custom_delims: Option<(&'a str, &'a str)>,
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}
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impl<'a> Context<'a> {
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fn new<T: 'a + IntoOverflowableItem<'a>>(
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context: &'a RewriteContext<'_>,
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items: impl Iterator<Item = &'a T>,
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ident: &'a str,
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shape: Shape,
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span: Span,
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prefix: &'static str,
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suffix: &'static str,
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item_max_width: usize,
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force_separator_tactic: Option<SeparatorTactic>,
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custom_delims: Option<(&'a str, &'a str)>,
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) -> Context<'a> {
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let used_width = extra_offset(ident, shape);
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// 1 = `()`
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let one_line_width = shape.width.saturating_sub(used_width + 2);
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// 1 = "(" or ")"
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let one_line_shape = shape
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.offset_left(last_line_width(ident) + 1)
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.and_then(|shape| shape.sub_width(1))
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.unwrap_or(Shape { width: 0, ..shape });
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let nested_shape = shape_from_indent_style(context, shape, used_width + 2, used_width + 1);
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Context {
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context,
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items: into_overflowable_list(items).collect(),
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ident,
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one_line_shape,
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nested_shape,
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span,
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prefix,
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suffix,
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item_max_width,
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one_line_width,
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force_separator_tactic,
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custom_delims,
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}
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}
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fn last_item(&self) -> Option<&OverflowableItem<'_>> {
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self.items.last()
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}
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fn items_span(&self) -> Span {
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let span_lo = self
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.context
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.snippet_provider
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.span_after(self.span, self.prefix);
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mk_sp(span_lo, self.span.hi())
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}
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fn rewrite_last_item_with_overflow(
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&self,
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last_list_item: &mut ListItem,
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shape: Shape,
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) -> Option<String> {
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let last_item = self.last_item()?;
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let rewrite = match last_item {
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OverflowableItem::Expr(expr) => {
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match expr.kind {
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// When overflowing the closure which consists of a single control flow
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// expression, force to use block if its condition uses multi line.
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ast::ExprKind::Closure(..) => {
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// If the argument consists of multiple closures, we do not overflow
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// the last closure.
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if closures::args_have_many_closure(&self.items) {
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None
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} else {
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closures::rewrite_last_closure(self.context, expr, shape)
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}
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}
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// When overflowing the expressions which consists of a control flow
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// expression, avoid condition to use multi line.
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ast::ExprKind::If(..)
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| ast::ExprKind::ForLoop(..)
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| ast::ExprKind::Loop(..)
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| ast::ExprKind::While(..)
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| ast::ExprKind::Match(..) => {
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let multi_line = rewrite_cond(self.context, expr, shape)
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.map_or(false, |cond| cond.contains('\n'));
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if multi_line {
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None
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} else {
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expr.rewrite(self.context, shape)
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}
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}
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_ => expr.rewrite(self.context, shape),
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}
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}
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item => item.rewrite(self.context, shape),
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};
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if let Some(rewrite) = rewrite {
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// splitn(2, *).next().unwrap() is always safe.
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let rewrite_first_line = Some(rewrite.splitn(2, '\n').next().unwrap().to_owned());
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last_list_item.item = rewrite_first_line;
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Some(rewrite)
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} else {
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None
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}
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}
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fn default_tactic(&self, list_items: &[ListItem]) -> DefinitiveListTactic {
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definitive_tactic(
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list_items,
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ListTactic::LimitedHorizontalVertical(self.item_max_width),
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Separator::Comma,
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self.one_line_width,
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)
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}
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fn try_overflow_last_item(&self, list_items: &mut Vec<ListItem>) -> DefinitiveListTactic {
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// 1 = "("
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let combine_arg_with_callee = self.items.len() == 1
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&& self.items[0].is_expr()
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&& !self.items[0].has_attrs()
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&& self.ident.len() < self.context.config.tab_spaces();
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let overflow_last = combine_arg_with_callee || can_be_overflowed(self.context, &self.items);
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|
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// Replace the last item with its first line to see if it fits with
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// first arguments.
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let placeholder = if overflow_last {
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let old_value = self.context.force_one_line_chain.get();
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match self.last_item() {
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Some(OverflowableItem::Expr(expr))
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if !combine_arg_with_callee && is_method_call(expr) =>
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{
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self.context.force_one_line_chain.replace(true);
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}
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Some(OverflowableItem::MacroArg(MacroArg::Expr(expr)))
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if !combine_arg_with_callee
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&& is_method_call(expr)
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&& self.context.config.version() == Version::Two =>
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{
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self.context.force_one_line_chain.replace(true);
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}
|
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_ => (),
|
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}
|
|
let result = last_item_shape(
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&self.items,
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list_items,
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self.one_line_shape,
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self.item_max_width,
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)
|
|
.and_then(|arg_shape| {
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self.rewrite_last_item_with_overflow(
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&mut list_items[self.items.len() - 1],
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arg_shape,
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)
|
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});
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self.context.force_one_line_chain.replace(old_value);
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result
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} else {
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None
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};
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|
|
let mut tactic = definitive_tactic(
|
|
&*list_items,
|
|
ListTactic::LimitedHorizontalVertical(self.item_max_width),
|
|
Separator::Comma,
|
|
self.one_line_width,
|
|
);
|
|
|
|
// Replace the stub with the full overflowing last argument if the rewrite
|
|
// succeeded and its first line fits with the other arguments.
|
|
match (overflow_last, tactic, placeholder) {
|
|
(true, DefinitiveListTactic::Horizontal, Some(ref overflowed))
|
|
if self.items.len() == 1 =>
|
|
{
|
|
// When we are rewriting a nested function call, we restrict the
|
|
// budget for the inner function to avoid them being deeply nested.
|
|
// However, when the inner function has a prefix or a suffix
|
|
// (e.g., `foo() as u32`), this budget reduction may produce poorly
|
|
// formatted code, where a prefix or a suffix being left on its own
|
|
// line. Here we explicitlly check those cases.
|
|
if count_newlines(overflowed) == 1 {
|
|
let rw = self
|
|
.items
|
|
.last()
|
|
.and_then(|last_item| last_item.rewrite(self.context, self.nested_shape));
|
|
let no_newline = rw.as_ref().map_or(false, |s| !s.contains('\n'));
|
|
if no_newline {
|
|
list_items[self.items.len() - 1].item = rw;
|
|
} else {
|
|
list_items[self.items.len() - 1].item = Some(overflowed.to_owned());
|
|
}
|
|
} else {
|
|
list_items[self.items.len() - 1].item = Some(overflowed.to_owned());
|
|
}
|
|
}
|
|
(true, DefinitiveListTactic::Horizontal, placeholder @ Some(..)) => {
|
|
list_items[self.items.len() - 1].item = placeholder;
|
|
}
|
|
_ if !self.items.is_empty() => {
|
|
list_items[self.items.len() - 1].item = self
|
|
.items
|
|
.last()
|
|
.and_then(|last_item| last_item.rewrite(self.context, self.nested_shape));
|
|
|
|
// Use horizontal layout for a function with a single argument as long as
|
|
// everything fits in a single line.
|
|
// `self.one_line_width == 0` means vertical layout is forced.
|
|
if self.items.len() == 1
|
|
&& self.one_line_width != 0
|
|
&& !list_items[0].has_comment()
|
|
&& !list_items[0].inner_as_ref().contains('\n')
|
|
&& crate::lists::total_item_width(&list_items[0]) <= self.one_line_width
|
|
{
|
|
tactic = DefinitiveListTactic::Horizontal;
|
|
} else {
|
|
tactic = self.default_tactic(list_items);
|
|
|
|
if tactic == DefinitiveListTactic::Vertical {
|
|
if let Some((all_simple, num_args_before)) =
|
|
maybe_get_args_offset(self.ident, &self.items)
|
|
{
|
|
let one_line = all_simple
|
|
&& definitive_tactic(
|
|
&list_items[..num_args_before],
|
|
ListTactic::HorizontalVertical,
|
|
Separator::Comma,
|
|
self.nested_shape.width,
|
|
) == DefinitiveListTactic::Horizontal
|
|
&& definitive_tactic(
|
|
&list_items[num_args_before + 1..],
|
|
ListTactic::HorizontalVertical,
|
|
Separator::Comma,
|
|
self.nested_shape.width,
|
|
) == DefinitiveListTactic::Horizontal;
|
|
|
|
if one_line {
|
|
tactic = DefinitiveListTactic::SpecialMacro(num_args_before);
|
|
};
|
|
} else if is_every_expr_simple(&self.items)
|
|
&& no_long_items(
|
|
list_items,
|
|
self.context.config.short_array_element_width_threshold(),
|
|
)
|
|
{
|
|
tactic = DefinitiveListTactic::Mixed;
|
|
}
|
|
}
|
|
}
|
|
}
|
|
_ => (),
|
|
}
|
|
|
|
tactic
|
|
}
|
|
|
|
fn rewrite_items(&self) -> Option<(bool, String)> {
|
|
let span = self.items_span();
|
|
let items = itemize_list(
|
|
self.context.snippet_provider,
|
|
self.items.iter(),
|
|
self.suffix,
|
|
",",
|
|
|item| item.span().lo(),
|
|
|item| item.span().hi(),
|
|
|item| item.rewrite(self.context, self.nested_shape),
|
|
span.lo(),
|
|
span.hi(),
|
|
true,
|
|
);
|
|
let mut list_items: Vec<_> = items.collect();
|
|
|
|
// Try letting the last argument overflow to the next line with block
|
|
// indentation. If its first line fits on one line with the other arguments,
|
|
// we format the function arguments horizontally.
|
|
let tactic = self.try_overflow_last_item(&mut list_items);
|
|
let trailing_separator = if let Some(tactic) = self.force_separator_tactic {
|
|
tactic
|
|
} else if !self.context.use_block_indent() {
|
|
SeparatorTactic::Never
|
|
} else {
|
|
self.context.config.trailing_comma()
|
|
};
|
|
let ends_with_newline = match tactic {
|
|
DefinitiveListTactic::Vertical | DefinitiveListTactic::Mixed => {
|
|
self.context.use_block_indent()
|
|
}
|
|
_ => false,
|
|
};
|
|
|
|
let fmt = ListFormatting::new(self.nested_shape, self.context.config)
|
|
.tactic(tactic)
|
|
.trailing_separator(trailing_separator)
|
|
.ends_with_newline(ends_with_newline);
|
|
|
|
write_list(&list_items, &fmt)
|
|
.map(|items_str| (tactic == DefinitiveListTactic::Horizontal, items_str))
|
|
}
|
|
|
|
fn wrap_items(&self, items_str: &str, shape: Shape, is_extendable: bool) -> String {
|
|
let shape = Shape {
|
|
width: shape.width.saturating_sub(last_line_width(self.ident)),
|
|
..shape
|
|
};
|
|
|
|
let (prefix, suffix) = match self.custom_delims {
|
|
Some((lhs, rhs)) => (lhs, rhs),
|
|
_ => (self.prefix, self.suffix),
|
|
};
|
|
|
|
let extend_width = if items_str.is_empty() {
|
|
2
|
|
} else {
|
|
first_line_width(items_str) + 1
|
|
};
|
|
let nested_indent_str = self
|
|
.nested_shape
|
|
.indent
|
|
.to_string_with_newline(self.context.config);
|
|
let indent_str = shape
|
|
.block()
|
|
.indent
|
|
.to_string_with_newline(self.context.config);
|
|
let mut result = String::with_capacity(
|
|
self.ident.len() + items_str.len() + 2 + indent_str.len() + nested_indent_str.len(),
|
|
);
|
|
result.push_str(self.ident);
|
|
result.push_str(prefix);
|
|
let force_single_line = if self.context.config.version() == Version::Two {
|
|
!self.context.use_block_indent() || (is_extendable && extend_width <= shape.width)
|
|
} else {
|
|
// 2 = `()`
|
|
let fits_one_line = items_str.len() + 2 <= shape.width;
|
|
!self.context.use_block_indent()
|
|
|| (self.context.inside_macro() && !items_str.contains('\n') && fits_one_line)
|
|
|| (is_extendable && extend_width <= shape.width)
|
|
};
|
|
if force_single_line {
|
|
result.push_str(items_str);
|
|
} else {
|
|
if !items_str.is_empty() {
|
|
result.push_str(&nested_indent_str);
|
|
result.push_str(items_str);
|
|
}
|
|
result.push_str(&indent_str);
|
|
}
|
|
result.push_str(suffix);
|
|
result
|
|
}
|
|
|
|
fn rewrite(&self, shape: Shape) -> Option<String> {
|
|
let (extendable, items_str) = self.rewrite_items()?;
|
|
|
|
// If we are using visual indent style and failed to format, retry with block indent.
|
|
if !self.context.use_block_indent()
|
|
&& need_block_indent(&items_str, self.nested_shape)
|
|
&& !extendable
|
|
{
|
|
self.context.use_block.replace(true);
|
|
let result = self.rewrite(shape);
|
|
self.context.use_block.replace(false);
|
|
return result;
|
|
}
|
|
|
|
Some(self.wrap_items(&items_str, shape, extendable))
|
|
}
|
|
}
|
|
|
|
fn need_block_indent(s: &str, shape: Shape) -> bool {
|
|
s.lines().skip(1).any(|s| {
|
|
s.find(|c| !char::is_whitespace(c))
|
|
.map_or(false, |w| w + 1 < shape.indent.width())
|
|
})
|
|
}
|
|
|
|
fn can_be_overflowed(context: &RewriteContext<'_>, items: &[OverflowableItem<'_>]) -> bool {
|
|
items
|
|
.last()
|
|
.map_or(false, |x| x.can_be_overflowed(context, items.len()))
|
|
}
|
|
|
|
/// Returns a shape for the last argument which is going to be overflowed.
|
|
fn last_item_shape(
|
|
lists: &[OverflowableItem<'_>],
|
|
items: &[ListItem],
|
|
shape: Shape,
|
|
args_max_width: usize,
|
|
) -> Option<Shape> {
|
|
if items.len() == 1 && !lists.get(0)?.is_nested_call() {
|
|
return Some(shape);
|
|
}
|
|
let offset = items
|
|
.iter()
|
|
.dropping_back(1)
|
|
.map(|i| {
|
|
// 2 = ", "
|
|
2 + i.inner_as_ref().len()
|
|
})
|
|
.sum();
|
|
Shape {
|
|
width: min(args_max_width, shape.width),
|
|
..shape
|
|
}
|
|
.offset_left(offset)
|
|
}
|
|
|
|
fn shape_from_indent_style(
|
|
context: &RewriteContext<'_>,
|
|
shape: Shape,
|
|
overhead: usize,
|
|
offset: usize,
|
|
) -> Shape {
|
|
let (shape, overhead) = if context.use_block_indent() {
|
|
let shape = shape
|
|
.block()
|
|
.block_indent(context.config.tab_spaces())
|
|
.with_max_width(context.config);
|
|
(shape, 1) // 1 = ","
|
|
} else {
|
|
(shape.visual_indent(offset), overhead)
|
|
};
|
|
Shape {
|
|
width: shape.width.saturating_sub(overhead),
|
|
..shape
|
|
}
|
|
}
|
|
|
|
fn no_long_items(list: &[ListItem], short_array_element_width_threshold: usize) -> bool {
|
|
list.iter()
|
|
.all(|item| item.inner_as_ref().len() <= short_array_element_width_threshold)
|
|
}
|
|
|
|
/// In case special-case style is required, returns an offset from which we start horizontal layout.
|
|
pub(crate) fn maybe_get_args_offset(
|
|
callee_str: &str,
|
|
args: &[OverflowableItem<'_>],
|
|
) -> Option<(bool, usize)> {
|
|
if let Some(&(_, num_args_before)) = args
|
|
.get(0)?
|
|
.whitelist()
|
|
.iter()
|
|
.find(|&&(s, _)| s == callee_str)
|
|
{
|
|
let all_simple = args.len() > num_args_before
|
|
&& is_every_expr_simple(&args[0..num_args_before])
|
|
&& is_every_expr_simple(&args[num_args_before + 1..]);
|
|
|
|
Some((all_simple, num_args_before))
|
|
} else {
|
|
None
|
|
}
|
|
}
|