use crate::ast::{AngleBracketedArgs, ParenthesizedArgs, AttrStyle, BareFnTy};
use crate::ast::{GenericBound, TraitBoundModifier};
use crate::ast::Unsafety;
use crate::ast::{Mod, AnonConst, Arg, Arm, Guard, Attribute, BindingMode, TraitItemKind};
use crate::ast::Block;
use crate::ast::{BlockCheckMode, CaptureBy, Movability};
use crate::ast::{Constness, Crate};
use crate::ast::Defaultness;
use crate::ast::EnumDef;
use crate::ast::{Expr, ExprKind, RangeLimits};
use crate::ast::{Field, FnDecl, FnHeader};
use crate::ast::{ForeignItem, ForeignItemKind, FunctionRetTy};
use crate::ast::{GenericParam, GenericParamKind};
use crate::ast::GenericArg;
use crate::ast::{Ident, ImplItem, IsAsync, IsAuto, Item, ItemKind};
use crate::ast::{Label, Lifetime, Lit, LitKind};
use crate::ast::Local;
use crate::ast::MacStmtStyle;
use crate::ast::{Mac, Mac_, MacDelimiter};
use crate::ast::{MutTy, Mutability};
use crate::ast::{Pat, PatKind, PathSegment};
use crate::ast::{PolyTraitRef, QSelf};
use crate::ast::{Stmt, StmtKind};
use crate::ast::{VariantData, StructField};
use crate::ast::StrStyle;
use crate::ast::SelfKind;
use crate::ast::{TraitItem, TraitRef, TraitObjectSyntax};
use crate::ast::{Ty, TyKind, TypeBinding, GenericBounds};
use crate::ast::{Visibility, VisibilityKind, WhereClause, CrateSugar};
use crate::ast::{UseTree, UseTreeKind};
use crate::ast::{BinOpKind, UnOp};
use crate::ast::{RangeEnd, RangeSyntax};
use crate::{ast, attr};
use crate::ext::base::DummyResult;
use crate::source_map::{self, SourceMap, Spanned, respan};
use crate::parse::{self, SeqSep, classify, token};
use crate::parse::lexer::{TokenAndSpan, UnmatchedBrace};
use crate::parse::lexer::comments::{doc_comment_style, strip_doc_comment_decoration};
use crate::parse::token::DelimToken;
use crate::parse::{new_sub_parser_from_file, ParseSess, Directory, DirectoryOwnership};
use crate::util::parser::{AssocOp, Fixity};
use crate::print::pprust;
use crate::ptr::P;
use crate::parse::PResult;
use crate::ThinVec;
use crate::tokenstream::{self, DelimSpan, TokenTree, TokenStream, TreeAndJoint};
use crate::symbol::{Symbol, keywords};
use errors::{Applicability, DiagnosticBuilder, DiagnosticId, FatalError};
use rustc_target::spec::abi::{self, Abi};
use syntax_pos::{Span, MultiSpan, BytePos, FileName};
use log::{debug, trace};
use std::borrow::Cow;
use std::cmp;
use std::mem;
use std::path::{self, Path, PathBuf};
use std::slice;
#[derive(Debug)]
pub enum AliasKind {
    
    Weak(P<Ty>),
    
    Existential(GenericBounds),
}
bitflags::bitflags! {
    struct Restrictions: u8 {
        const STMT_EXPR         = 1 << 0;
        const NO_STRUCT_LITERAL = 1 << 1;
    }
}
type ItemInfo = (Ident, ItemKind, Option<Vec<Attribute>>);
#[derive(Copy, Clone, PartialEq)]
pub enum PathStyle {
    
    
    
    
    
    
    Expr,
    
    
    
    Type,
    
    
    
    
    
    
    Mod,
}
#[derive(Clone, Copy, PartialEq, Debug)]
enum SemiColonMode {
    Break,
    Ignore,
    Comma,
}
#[derive(Clone, Copy, PartialEq, Debug)]
enum BlockMode {
    Break,
    Ignore,
}
macro_rules! maybe_whole_expr {
    ($p:expr) => {
        if let token::Interpolated(nt) = &$p.token {
            match &**nt {
                token::NtExpr(e) | token::NtLiteral(e) => {
                    let e = e.clone();
                    $p.bump();
                    return Ok(e);
                }
                token::NtPath(path) => {
                    let path = path.clone();
                    $p.bump();
                    return Ok($p.mk_expr($p.span, ExprKind::Path(None, path), ThinVec::new()));
                }
                token::NtBlock(block) => {
                    let block = block.clone();
                    $p.bump();
                    return Ok($p.mk_expr($p.span, ExprKind::Block(block, None), ThinVec::new()));
                }
                _ => {},
            };
        }
    }
}
macro_rules! maybe_whole {
    ($p:expr, $constructor:ident, |$x:ident| $e:expr) => {
        if let token::Interpolated(nt) = &$p.token {
            if let token::$constructor(x) = &**nt {
                let $x = x.clone();
                $p.bump();
                return Ok($e);
            }
        }
    };
}
macro_rules! maybe_recover_from_interpolated_ty_qpath {
    ($self: expr, $allow_qpath_recovery: expr) => {
        if $allow_qpath_recovery && $self.look_ahead(1, |t| t == &token::ModSep) {
            if let token::Interpolated(nt) = &$self.token {
                if let token::NtTy(ty) = &**nt {
                    let ty = ty.clone();
                    $self.bump();
                    return $self.maybe_recover_from_bad_qpath_stage_2($self.prev_span, ty);
                }
            }
        }
    }
}
fn maybe_append(mut lhs: Vec<Attribute>, mut rhs: Option<Vec<Attribute>>) -> Vec<Attribute> {
    if let Some(ref mut rhs) = rhs {
        lhs.append(rhs);
    }
    lhs
}
#[derive(Debug, Clone, Copy, PartialEq)]
enum PrevTokenKind {
    DocComment,
    Comma,
    Plus,
    Interpolated,
    Eof,
    Ident,
    Other,
}
trait RecoverQPath: Sized + 'static {
    const PATH_STYLE: PathStyle = PathStyle::Expr;
    fn to_ty(&self) -> Option<P<Ty>>;
    fn recovered(qself: Option<QSelf>, path: ast::Path) -> Self;
}
impl RecoverQPath for Ty {
    const PATH_STYLE: PathStyle = PathStyle::Type;
    fn to_ty(&self) -> Option<P<Ty>> {
        Some(P(self.clone()))
    }
    fn recovered(qself: Option<QSelf>, path: ast::Path) -> Self {
        Self { span: path.span, node: TyKind::Path(qself, path), id: ast::DUMMY_NODE_ID }
    }
}
impl RecoverQPath for Pat {
    fn to_ty(&self) -> Option<P<Ty>> {
        self.to_ty()
    }
    fn recovered(qself: Option<QSelf>, path: ast::Path) -> Self {
        Self { span: path.span, node: PatKind::Path(qself, path), id: ast::DUMMY_NODE_ID }
    }
}
impl RecoverQPath for Expr {
    fn to_ty(&self) -> Option<P<Ty>> {
        self.to_ty()
    }
    fn recovered(qself: Option<QSelf>, path: ast::Path) -> Self {
        Self { span: path.span, node: ExprKind::Path(qself, path),
               attrs: ThinVec::new(), id: ast::DUMMY_NODE_ID }
    }
}
#[derive(Clone)]
pub struct Parser<'a> {
    pub sess: &'a ParseSess,
    
    pub token: token::Token,
    
    pub span: Span,
    
    meta_var_span: Option<Span>,
    pub prev_span: Span,
    
    prev_token_kind: PrevTokenKind,
    restrictions: Restrictions,
    
    crate directory: Directory<'a>,
    
    pub recurse_into_file_modules: bool,
    
    
    
    pub root_module_name: Option<String>,
    crate expected_tokens: Vec<TokenType>,
    token_cursor: TokenCursor,
    desugar_doc_comments: bool,
    
    pub cfg_mods: bool,
    
    
    
    
    
    crate unmatched_angle_bracket_count: u32,
    crate max_angle_bracket_count: u32,
    
    
    
    crate unclosed_delims: Vec<UnmatchedBrace>,
    last_unexpected_token_span: Option<Span>,
}
impl<'a> Drop for Parser<'a> {
    fn drop(&mut self) {
        let diag = self.diagnostic();
        emit_unclosed_delims(&mut self.unclosed_delims, diag);
    }
}
#[derive(Clone)]
struct TokenCursor {
    frame: TokenCursorFrame,
    stack: Vec<TokenCursorFrame>,
}
#[derive(Clone)]
struct TokenCursorFrame {
    delim: token::DelimToken,
    span: DelimSpan,
    open_delim: bool,
    tree_cursor: tokenstream::Cursor,
    close_delim: bool,
    last_token: LastToken,
}
#[derive(Clone)]
enum LastToken {
    Collecting(Vec<TreeAndJoint>),
    Was(Option<TreeAndJoint>),
}
impl TokenCursorFrame {
    fn new(sp: DelimSpan, delim: DelimToken, tts: &TokenStream) -> Self {
        TokenCursorFrame {
            delim: delim,
            span: sp,
            open_delim: delim == token::NoDelim,
            tree_cursor: tts.clone().into_trees(),
            close_delim: delim == token::NoDelim,
            last_token: LastToken::Was(None),
        }
    }
}
impl TokenCursor {
    fn next(&mut self) -> TokenAndSpan {
        loop {
            let tree = if !self.frame.open_delim {
                self.frame.open_delim = true;
                TokenTree::open_tt(self.frame.span.open, self.frame.delim)
            } else if let Some(tree) = self.frame.tree_cursor.next() {
                tree
            } else if !self.frame.close_delim {
                self.frame.close_delim = true;
                TokenTree::close_tt(self.frame.span.close, self.frame.delim)
            } else if let Some(frame) = self.stack.pop() {
                self.frame = frame;
                continue
            } else {
                return TokenAndSpan { tok: token::Eof, sp: syntax_pos::DUMMY_SP }
            };
            match self.frame.last_token {
                LastToken::Collecting(ref mut v) => v.push(tree.clone().into()),
                LastToken::Was(ref mut t) => *t = Some(tree.clone().into()),
            }
            match tree {
                TokenTree::Token(sp, tok) => return TokenAndSpan { tok: tok, sp: sp },
                TokenTree::Delimited(sp, delim, tts) => {
                    let frame = TokenCursorFrame::new(sp, delim, &tts);
                    self.stack.push(mem::replace(&mut self.frame, frame));
                }
            }
        }
    }
    fn next_desugared(&mut self) -> TokenAndSpan {
        let (sp, name) = match self.next() {
            TokenAndSpan { sp, tok: token::DocComment(name) } => (sp, name),
            tok => return tok,
        };
        let stripped = strip_doc_comment_decoration(&name.as_str());
        
        
        let mut num_of_hashes = 0;
        let mut count = 0;
        for ch in stripped.chars() {
            count = match ch {
                '"' => 1,
                '#' if count > 0 => count + 1,
                _ => 0,
            };
            num_of_hashes = cmp::max(num_of_hashes, count);
        }
        let delim_span = DelimSpan::from_single(sp);
        let body = TokenTree::Delimited(
            delim_span,
            token::Bracket,
            [TokenTree::Token(sp, token::Ident(ast::Ident::from_str("doc"), false)),
             TokenTree::Token(sp, token::Eq),
             TokenTree::Token(sp, token::Literal(
                token::StrRaw(Symbol::intern(&stripped), num_of_hashes), None))
            ]
            .iter().cloned().collect::<TokenStream>().into(),
        );
        self.stack.push(mem::replace(&mut self.frame, TokenCursorFrame::new(
            delim_span,
            token::NoDelim,
            &if doc_comment_style(&name.as_str()) == AttrStyle::Inner {
                [TokenTree::Token(sp, token::Pound), TokenTree::Token(sp, token::Not), body]
                    .iter().cloned().collect::<TokenStream>().into()
            } else {
                [TokenTree::Token(sp, token::Pound), body]
                    .iter().cloned().collect::<TokenStream>().into()
            },
        )));
        self.next()
    }
}
#[derive(Clone, PartialEq)]
crate enum TokenType {
    Token(token::Token),
    Keyword(keywords::Keyword),
    Operator,
    Lifetime,
    Ident,
    Path,
    Type,
    Const,
}
impl TokenType {
    fn to_string(&self) -> String {
        match *self {
            TokenType::Token(ref t) => format!("`{}`", pprust::token_to_string(t)),
            TokenType::Keyword(kw) => format!("`{}`", kw.name()),
            TokenType::Operator => "an operator".to_string(),
            TokenType::Lifetime => "lifetime".to_string(),
            TokenType::Ident => "identifier".to_string(),
            TokenType::Path => "path".to_string(),
            TokenType::Type => "type".to_string(),
            TokenType::Const => "const".to_string(),
        }
    }
}
fn can_continue_type_after_non_fn_ident(t: &token::Token) -> bool {
    t == &token::ModSep || t == &token::Lt ||
    t == &token::BinOp(token::Shl)
}
pub struct ModulePath {
    name: String,
    path_exists: bool,
    pub result: Result<ModulePathSuccess, Error>,
}
pub struct ModulePathSuccess {
    pub path: PathBuf,
    pub directory_ownership: DirectoryOwnership,
    warn: bool,
}
pub enum Error {
    FileNotFoundForModule {
        mod_name: String,
        default_path: String,
        secondary_path: String,
        dir_path: String,
    },
    DuplicatePaths {
        mod_name: String,
        default_path: String,
        secondary_path: String,
    },
    UselessDocComment,
    InclusiveRangeWithNoEnd,
}
impl Error {
    fn span_err<S: Into<MultiSpan>>(self,
                                        sp: S,
                                        handler: &errors::Handler) -> DiagnosticBuilder<'_> {
        match self {
            Error::FileNotFoundForModule { ref mod_name,
                                           ref default_path,
                                           ref secondary_path,
                                           ref dir_path } => {
                let mut err = struct_span_err!(handler, sp, E0583,
                                               "file not found for module `{}`", mod_name);
                err.help(&format!("name the file either {} or {} inside the directory \"{}\"",
                                  default_path,
                                  secondary_path,
                                  dir_path));
                err
            }
            Error::DuplicatePaths { ref mod_name, ref default_path, ref secondary_path } => {
                let mut err = struct_span_err!(handler, sp, E0584,
                                               "file for module `{}` found at both {} and {}",
                                               mod_name,
                                               default_path,
                                               secondary_path);
                err.help("delete or rename one of them to remove the ambiguity");
                err
            }
            Error::UselessDocComment => {
                let mut err = struct_span_err!(handler, sp, E0585,
                                  "found a documentation comment that doesn't document anything");
                err.help("doc comments must come before what they document, maybe a comment was \
                          intended with `//`?");
                err
            }
            Error::InclusiveRangeWithNoEnd => {
                let mut err = struct_span_err!(handler, sp, E0586,
                                               "inclusive range with no end");
                err.help("inclusive ranges must be bounded at the end (`..=b` or `a..=b`)");
                err
            }
        }
    }
}
#[derive(Debug)]
enum LhsExpr {
    NotYetParsed,
    AttributesParsed(ThinVec<Attribute>),
    AlreadyParsed(P<Expr>),
}
impl From<Option<ThinVec<Attribute>>> for LhsExpr {
    fn from(o: Option<ThinVec<Attribute>>) -> Self {
        if let Some(attrs) = o {
            LhsExpr::AttributesParsed(attrs)
        } else {
            LhsExpr::NotYetParsed
        }
    }
}
impl From<P<Expr>> for LhsExpr {
    fn from(expr: P<Expr>) -> Self {
        LhsExpr::AlreadyParsed(expr)
    }
}
fn dummy_arg(span: Span) -> Arg {
    let ident = Ident::new(keywords::Invalid.name(), span);
    let pat = P(Pat {
        id: ast::DUMMY_NODE_ID,
        node: PatKind::Ident(BindingMode::ByValue(Mutability::Immutable), ident, None),
        span,
    });
    let ty = Ty {
        node: TyKind::Err,
        span,
        id: ast::DUMMY_NODE_ID
    };
    Arg { ty: P(ty), pat: pat, id: ast::DUMMY_NODE_ID }
}
#[derive(Copy, Clone, Debug)]
enum TokenExpectType {
    Expect,
    NoExpect,
}
impl<'a> Parser<'a> {
    pub fn new(sess: &'a ParseSess,
               tokens: TokenStream,
               directory: Option<Directory<'a>>,
               recurse_into_file_modules: bool,
               desugar_doc_comments: bool)
               -> Self {
        let mut parser = Parser {
            sess,
            token: token::Whitespace,
            span: syntax_pos::DUMMY_SP,
            prev_span: syntax_pos::DUMMY_SP,
            meta_var_span: None,
            prev_token_kind: PrevTokenKind::Other,
            restrictions: Restrictions::empty(),
            recurse_into_file_modules,
            directory: Directory {
                path: Cow::from(PathBuf::new()),
                ownership: DirectoryOwnership::Owned { relative: None }
            },
            root_module_name: None,
            expected_tokens: Vec::new(),
            token_cursor: TokenCursor {
                frame: TokenCursorFrame::new(
                    DelimSpan::dummy(),
                    token::NoDelim,
                    &tokens.into(),
                ),
                stack: Vec::new(),
            },
            desugar_doc_comments,
            cfg_mods: true,
            unmatched_angle_bracket_count: 0,
            max_angle_bracket_count: 0,
            unclosed_delims: Vec::new(),
            last_unexpected_token_span: None,
        };
        let tok = parser.next_tok();
        parser.token = tok.tok;
        parser.span = tok.sp;
        if let Some(directory) = directory {
            parser.directory = directory;
        } else if !parser.span.is_dummy() {
            if let FileName::Real(mut path) = sess.source_map().span_to_unmapped_path(parser.span) {
                path.pop();
                parser.directory.path = Cow::from(path);
            }
        }
        parser.process_potential_macro_variable();
        parser
    }
    fn next_tok(&mut self) -> TokenAndSpan {
        let mut next = if self.desugar_doc_comments {
            self.token_cursor.next_desugared()
        } else {
            self.token_cursor.next()
        };
        if next.sp.is_dummy() {
            
            next.sp = self.prev_span.with_ctxt(next.sp.ctxt());
        }
        next
    }
    
    pub fn this_token_to_string(&self) -> String {
        pprust::token_to_string(&self.token)
    }
    fn token_descr(&self) -> Option<&'static str> {
        Some(match &self.token {
            t if t.is_special_ident() => "reserved identifier",
            t if t.is_used_keyword() => "keyword",
            t if t.is_unused_keyword() => "reserved keyword",
            token::DocComment(..) => "doc comment",
            _ => return None,
        })
    }
    fn this_token_descr(&self) -> String {
        if let Some(prefix) = self.token_descr() {
            format!("{} `{}`", prefix, self.this_token_to_string())
        } else {
            format!("`{}`", self.this_token_to_string())
        }
    }
    fn unexpected_last<T>(&self, t: &token::Token) -> PResult<'a, T> {
        let token_str = pprust::token_to_string(t);
        Err(self.span_fatal(self.prev_span, &format!("unexpected token: `{}`", token_str)))
    }
    crate fn unexpected<T>(&mut self) -> PResult<'a, T> {
        match self.expect_one_of(&[], &[]) {
            Err(e) => Err(e),
            Ok(_) => unreachable!(),
        }
    }
    
    pub fn expect(&mut self, t: &token::Token) -> PResult<'a,  bool > {
        if self.expected_tokens.is_empty() {
            if self.token == *t {
                self.bump();
                Ok(false)
            } else {
                let token_str = pprust::token_to_string(t);
                let this_token_str = self.this_token_descr();
                let mut err = self.fatal(&format!("expected `{}`, found {}",
                                                  token_str,
                                                  this_token_str));
                let sp = if self.token == token::Token::Eof {
                    
                    self.prev_span
                } else {
                    self.sess.source_map().next_point(self.prev_span)
                };
                let label_exp = format!("expected `{}`", token_str);
                match self.recover_closing_delimiter(&[t.clone()], err) {
                    Err(e) => err = e,
                    Ok(recovered) => {
                        return Ok(recovered);
                    }
                }
                let cm = self.sess.source_map();
                match (cm.lookup_line(self.span.lo()), cm.lookup_line(sp.lo())) {
                    (Ok(ref a), Ok(ref b)) if a.line == b.line => {
                        
                        
                        err.span_label(self.span, label_exp);
                    }
                    _ => {
                        err.span_label(sp, label_exp);
                        err.span_label(self.span, "unexpected token");
                    }
                }
                Err(err)
            }
        } else {
            self.expect_one_of(slice::from_ref(t), &[])
        }
    }
    fn recover_closing_delimiter(
        &mut self,
        tokens: &[token::Token],
        mut err: DiagnosticBuilder<'a>,
    ) -> PResult<'a, bool> {
        let mut pos = None;
        
        for (i, unmatched) in self.unclosed_delims.iter().enumerate().rev() {
            if tokens.contains(&token::CloseDelim(unmatched.expected_delim))
                && Some(self.span) > unmatched.unclosed_span
            {
                pos = Some(i);
            }
        }
        match pos {
            Some(pos) => {
                
                
                
                 
                let unmatched = self.unclosed_delims.remove(pos);
                let delim = TokenType::Token(token::CloseDelim(unmatched.expected_delim));
                 
                
                
                
                
                
                
                
                
                if let Some(sp) = unmatched.unclosed_span {
                    err.span_label(sp, "unclosed delimiter");
                }
                err.span_suggestion_short(
                    self.sess.source_map().next_point(self.prev_span),
                    &format!("{} may belong here", delim.to_string()),
                    delim.to_string(),
                    Applicability::MaybeIncorrect,
                );
                err.emit();
                self.expected_tokens.clear();  
                Ok(true)
            }
            _ => Err(err),
        }
    }
    
    
    
    pub fn expect_one_of(
        &mut self,
        edible: &[token::Token],
        inedible: &[token::Token],
    ) -> PResult<'a, bool > {
        fn tokens_to_string(tokens: &[TokenType]) -> String {
            let mut i = tokens.iter();
            
            let b = i.next()
                     .map_or(String::new(), |t| t.to_string());
            i.enumerate().fold(b, |mut b, (i, a)| {
                if tokens.len() > 2 && i == tokens.len() - 2 {
                    b.push_str(", or ");
                } else if tokens.len() == 2 && i == tokens.len() - 2 {
                    b.push_str(" or ");
                } else {
                    b.push_str(", ");
                }
                b.push_str(&a.to_string());
                b
            })
        }
        if edible.contains(&self.token) {
            self.bump();
            Ok(false)
        } else if inedible.contains(&self.token) {
            
            Ok(false)
        } else if self.last_unexpected_token_span == Some(self.span) {
            FatalError.raise();
        } else {
            let mut expected = edible.iter()
                .map(|x| TokenType::Token(x.clone()))
                .chain(inedible.iter().map(|x| TokenType::Token(x.clone())))
                .chain(self.expected_tokens.iter().cloned())
                .collect::<Vec<_>>();
            expected.sort_by_cached_key(|x| x.to_string());
            expected.dedup();
            let expect = tokens_to_string(&expected[..]);
            let actual = self.this_token_to_string();
            let (msg_exp, (label_sp, label_exp)) = if expected.len() > 1 {
                let short_expect = if expected.len() > 6 {
                    format!("{} possible tokens", expected.len())
                } else {
                    expect.clone()
                };
                (format!("expected one of {}, found `{}`", expect, actual),
                 (self.sess.source_map().next_point(self.prev_span),
                  format!("expected one of {} here", short_expect)))
            } else if expected.is_empty() {
                (format!("unexpected token: `{}`", actual),
                 (self.prev_span, "unexpected token after this".to_string()))
            } else {
                (format!("expected {}, found `{}`", expect, actual),
                 (self.sess.source_map().next_point(self.prev_span),
                  format!("expected {} here", expect)))
            };
            self.last_unexpected_token_span = Some(self.span);
            let mut err = self.fatal(&msg_exp);
            if self.token.is_ident_named("and") {
                err.span_suggestion_short(
                    self.span,
                    "use `&&` instead of `and` for the boolean operator",
                    "&&".to_string(),
                    Applicability::MaybeIncorrect,
                );
            }
            if self.token.is_ident_named("or") {
                err.span_suggestion_short(
                    self.span,
                    "use `||` instead of `or` for the boolean operator",
                    "||".to_string(),
                    Applicability::MaybeIncorrect,
                );
            }
            let sp = if self.token == token::Token::Eof {
                
                self.prev_span
            } else {
                label_sp
            };
            match self.recover_closing_delimiter(&expected.iter().filter_map(|tt| match tt {
                TokenType::Token(t) => Some(t.clone()),
                _ => None,
            }).collect::<Vec<_>>(), err) {
                Err(e) => err = e,
                Ok(recovered) => {
                    return Ok(recovered);
                }
            }
            let cm = self.sess.source_map();
            match (cm.lookup_line(self.span.lo()), cm.lookup_line(sp.lo())) {
                (Ok(ref a), Ok(ref b)) if a.line == b.line => {
                    
                    
                    
                    
                    
                    
                    
                    
                    
                    
                    
                    
                    err.span_label(self.span, label_exp);
                }
                _ if self.prev_span == syntax_pos::DUMMY_SP => {
                    
                    
                    err.span_label(self.span, "unexpected token");
                }
                _ => {
                    err.span_label(sp, label_exp);
                    err.span_label(self.span, "unexpected token");
                }
            }
            Err(err)
        }
    }
    
    fn interpolated_or_expr_span(&self,
                                 expr: PResult<'a, P<Expr>>)
                                 -> PResult<'a, (Span, P<Expr>)> {
        expr.map(|e| {
            if self.prev_token_kind == PrevTokenKind::Interpolated {
                (self.prev_span, e)
            } else {
                (e.span, e)
            }
        })
    }
    fn expected_ident_found(&self) -> DiagnosticBuilder<'a> {
        let mut err = self.struct_span_err(self.span,
                                           &format!("expected identifier, found {}",
                                                    self.this_token_descr()));
        if let token::Ident(ident, false) = &self.token {
            if ident.is_raw_guess() {
                err.span_suggestion(
                    self.span,
                    "you can escape reserved keywords to use them as identifiers",
                    format!("r#{}", ident),
                    Applicability::MaybeIncorrect,
                );
            }
        }
        if let Some(token_descr) = self.token_descr() {
            err.span_label(self.span, format!("expected identifier, found {}", token_descr));
        } else {
            err.span_label(self.span, "expected identifier");
            if self.token == token::Comma && self.look_ahead(1, |t| t.is_ident()) {
                err.span_suggestion(
                    self.span,
                    "remove this comma",
                    String::new(),
                    Applicability::MachineApplicable,
                );
            }
        }
        err
    }
    pub fn parse_ident(&mut self) -> PResult<'a, ast::Ident> {
        self.parse_ident_common(true)
    }
    fn parse_ident_common(&mut self, recover: bool) -> PResult<'a, ast::Ident> {
        match self.token {
            token::Ident(ident, _) => {
                if self.token.is_reserved_ident() {
                    let mut err = self.expected_ident_found();
                    if recover {
                        err.emit();
                    } else {
                        return Err(err);
                    }
                }
                let span = self.span;
                self.bump();
                Ok(Ident::new(ident.name, span))
            }
            _ => {
                Err(if self.prev_token_kind == PrevTokenKind::DocComment {
                        self.span_fatal_err(self.prev_span, Error::UselessDocComment)
                    } else {
                        self.expected_ident_found()
                    })
            }
        }
    }
    
    
    
    
    crate fn check(&mut self, tok: &token::Token) -> bool {
        let is_present = self.token == *tok;
        if !is_present { self.expected_tokens.push(TokenType::Token(tok.clone())); }
        is_present
    }
    
    pub fn eat(&mut self, tok: &token::Token) -> bool {
        let is_present = self.check(tok);
        if is_present { self.bump() }
        is_present
    }
    fn check_keyword(&mut self, kw: keywords::Keyword) -> bool {
        self.expected_tokens.push(TokenType::Keyword(kw));
        self.token.is_keyword(kw)
    }
    
    
    pub fn eat_keyword(&mut self, kw: keywords::Keyword) -> bool {
        if self.check_keyword(kw) {
            self.bump();
            true
        } else {
            false
        }
    }
    fn eat_keyword_noexpect(&mut self, kw: keywords::Keyword) -> bool {
        if self.token.is_keyword(kw) {
            self.bump();
            true
        } else {
            false
        }
    }
    
    
    
    fn expect_keyword(&mut self, kw: keywords::Keyword) -> PResult<'a, ()> {
        if !self.eat_keyword(kw) {
            self.unexpected()
        } else {
            Ok(())
        }
    }
    fn check_ident(&mut self) -> bool {
        if self.token.is_ident() {
            true
        } else {
            self.expected_tokens.push(TokenType::Ident);
            false
        }
    }
    fn check_path(&mut self) -> bool {
        if self.token.is_path_start() {
            true
        } else {
            self.expected_tokens.push(TokenType::Path);
            false
        }
    }
    fn check_type(&mut self) -> bool {
        if self.token.can_begin_type() {
            true
        } else {
            self.expected_tokens.push(TokenType::Type);
            false
        }
    }
    fn check_const_arg(&mut self) -> bool {
        if self.token.can_begin_const_arg() {
            true
        } else {
            self.expected_tokens.push(TokenType::Const);
            false
        }
    }
    
    
    
    
    
    fn eat_plus(&mut self) -> bool {
        self.expected_tokens.push(TokenType::Token(token::BinOp(token::Plus)));
        match self.token {
            token::BinOp(token::Plus) => {
                self.bump();
                true
            }
            token::BinOpEq(token::Plus) => {
                let span = self.span.with_lo(self.span.lo() + BytePos(1));
                self.bump_with(token::Eq, span);
                true
            }
            _ => false,
        }
    }
    
    
    fn check_plus(&mut self) -> bool {
        if self.token.is_like_plus() {
            true
        }
        else {
            self.expected_tokens.push(TokenType::Token(token::BinOp(token::Plus)));
            false
        }
    }
    
    
    fn expect_and(&mut self) -> PResult<'a, ()> {
        self.expected_tokens.push(TokenType::Token(token::BinOp(token::And)));
        match self.token {
            token::BinOp(token::And) => {
                self.bump();
                Ok(())
            }
            token::AndAnd => {
                let span = self.span.with_lo(self.span.lo() + BytePos(1));
                Ok(self.bump_with(token::BinOp(token::And), span))
            }
            _ => self.unexpected()
        }
    }
    
    
    fn expect_or(&mut self) -> PResult<'a, ()> {
        self.expected_tokens.push(TokenType::Token(token::BinOp(token::Or)));
        match self.token {
            token::BinOp(token::Or) => {
                self.bump();
                Ok(())
            }
            token::OrOr => {
                let span = self.span.with_lo(self.span.lo() + BytePos(1));
                Ok(self.bump_with(token::BinOp(token::Or), span))
            }
            _ => self.unexpected()
        }
    }
    fn expect_no_suffix(&self, sp: Span, kind: &str, suffix: Option<ast::Name>) {
        match suffix {
            None => {}
            Some(suf) => {
                let text = suf.as_str();
                if text.is_empty() {
                    self.span_bug(sp, "found empty literal suffix in Some")
                }
                self.struct_span_err(sp, &format!("suffixes on {} are invalid", kind))
                    .span_label(sp, format!("invalid suffix `{}`", text))
                    .emit();
            }
        }
    }
    
    
    
    
    
    
    fn eat_lt(&mut self) -> bool {
        self.expected_tokens.push(TokenType::Token(token::Lt));
        let ate = match self.token {
            token::Lt => {
                self.bump();
                true
            }
            token::BinOp(token::Shl) => {
                let span = self.span.with_lo(self.span.lo() + BytePos(1));
                self.bump_with(token::Lt, span);
                true
            }
            token::LArrow => {
                let span = self.span.with_lo(self.span.lo() + BytePos(1));
                self.bump_with(token::BinOp(token::Minus), span);
                true
            }
            _ => false,
        };
        if ate {
            
            self.unmatched_angle_bracket_count += 1;
            self.max_angle_bracket_count += 1;
            debug!("eat_lt: (increment) count={:?}", self.unmatched_angle_bracket_count);
        }
        ate
    }
    fn expect_lt(&mut self) -> PResult<'a, ()> {
        if !self.eat_lt() {
            self.unexpected()
        } else {
            Ok(())
        }
    }
    
    
    fn expect_gt(&mut self) -> PResult<'a, ()> {
        self.expected_tokens.push(TokenType::Token(token::Gt));
        let ate = match self.token {
            token::Gt => {
                self.bump();
                Some(())
            }
            token::BinOp(token::Shr) => {
                let span = self.span.with_lo(self.span.lo() + BytePos(1));
                Some(self.bump_with(token::Gt, span))
            }
            token::BinOpEq(token::Shr) => {
                let span = self.span.with_lo(self.span.lo() + BytePos(1));
                Some(self.bump_with(token::Ge, span))
            }
            token::Ge => {
                let span = self.span.with_lo(self.span.lo() + BytePos(1));
                Some(self.bump_with(token::Eq, span))
            }
            _ => None,
        };
        match ate {
            Some(_) => {
                
                if self.unmatched_angle_bracket_count > 0 {
                    self.unmatched_angle_bracket_count -= 1;
                    debug!("expect_gt: (decrement) count={:?}", self.unmatched_angle_bracket_count);
                }
                Ok(())
            },
            None => self.unexpected(),
        }
    }
    
    
    fn eat_to_tokens(&mut self, kets: &[&token::Token]) {
        let handler = self.diagnostic();
        if let Err(ref mut err) = self.parse_seq_to_before_tokens(kets,
                                                                  SeqSep::none(),
                                                                  TokenExpectType::Expect,
                                                                  |p| Ok(p.parse_token_tree())) {
            handler.cancel(err);
        }
    }
    
    
    
    pub fn parse_seq_to_end<T, F>(&mut self,
                                  ket: &token::Token,
                                  sep: SeqSep,
                                  f: F)
                                  -> PResult<'a, Vec<T>> where
        F: FnMut(&mut Parser<'a>) -> PResult<'a,  T>,
    {
        let (val, recovered) = self.parse_seq_to_before_end(ket, sep, f)?;
        if !recovered {
            self.bump();
        }
        Ok(val)
    }
    
    
    
    pub fn parse_seq_to_before_end<T, F>(
        &mut self,
        ket: &token::Token,
        sep: SeqSep,
        f: F,
    ) -> PResult<'a, (Vec<T>, bool)>
        where F: FnMut(&mut Parser<'a>) -> PResult<'a, T>
    {
        self.parse_seq_to_before_tokens(&[ket], sep, TokenExpectType::Expect, f)
    }
    fn parse_seq_to_before_tokens<T, F>(
        &mut self,
        kets: &[&token::Token],
        sep: SeqSep,
        expect: TokenExpectType,
        mut f: F,
    ) -> PResult<'a, (Vec<T>, bool )>
        where F: FnMut(&mut Parser<'a>) -> PResult<'a, T>
    {
        let mut first = true;
        let mut recovered = false;
        let mut v = vec![];
        while !kets.iter().any(|k| {
                match expect {
                    TokenExpectType::Expect => self.check(k),
                    TokenExpectType::NoExpect => self.token == **k,
                }
            }) {
            match self.token {
                token::CloseDelim(..) | token::Eof => break,
                _ => {}
            };
            if let Some(ref t) = sep.sep {
                if first {
                    first = false;
                } else {
                    match self.expect(t) {
                        Ok(false) => {}
                        Ok(true) => {
                            recovered = true;
                            break;
                        }
                        Err(mut e) => {
                            
                            if let Some(ref tokens) = t.similar_tokens() {
                                if tokens.contains(&self.token) {
                                    self.bump();
                                }
                            }
                            e.emit();
                            
                            match f(self) {
                                Ok(t) => {
                                    v.push(t);
                                    continue;
                                },
                                Err(mut e) => {
                                    e.cancel();
                                    break;
                                }
                            }
                        }
                    }
                }
            }
            if sep.trailing_sep_allowed && kets.iter().any(|k| {
                match expect {
                    TokenExpectType::Expect => self.check(k),
                    TokenExpectType::NoExpect => self.token == **k,
                }
            }) {
                break;
            }
            let t = f(self)?;
            v.push(t);
        }
        Ok((v, recovered))
    }
    
    
    
    fn parse_unspanned_seq<T, F>(
        &mut self,
        bra: &token::Token,
        ket: &token::Token,
        sep: SeqSep,
        f: F,
    ) -> PResult<'a, Vec<T>> where
        F: FnMut(&mut Parser<'a>) -> PResult<'a, T>,
    {
        self.expect(bra)?;
        let (result, recovered) = self.parse_seq_to_before_end(ket, sep, f)?;
        if !recovered {
            self.eat(ket);
        }
        Ok(result)
    }
    
    pub fn bump(&mut self) {
        if self.prev_token_kind == PrevTokenKind::Eof {
            
            self.bug("attempted to bump the parser past EOF (may be stuck in a loop)");
        }
        self.prev_span = self.meta_var_span.take().unwrap_or(self.span);
        
        self.prev_token_kind = match self.token {
            token::DocComment(..) => PrevTokenKind::DocComment,
            token::Comma => PrevTokenKind::Comma,
            token::BinOp(token::Plus) => PrevTokenKind::Plus,
            token::Interpolated(..) => PrevTokenKind::Interpolated,
            token::Eof => PrevTokenKind::Eof,
            token::Ident(..) => PrevTokenKind::Ident,
            _ => PrevTokenKind::Other,
        };
        let next = self.next_tok();
        self.span = next.sp;
        self.token = next.tok;
        self.expected_tokens.clear();
        
        self.process_potential_macro_variable();
    }
    
    
    fn bump_with(&mut self, next: token::Token, span: Span) {
        self.prev_span = self.span.with_hi(span.lo());
        
        
        
        self.prev_token_kind = PrevTokenKind::Other;
        self.span = span;
        self.token = next;
        self.expected_tokens.clear();
    }
    pub fn look_ahead<R, F>(&self, dist: usize, f: F) -> R where
        F: FnOnce(&token::Token) -> R,
    {
        if dist == 0 {
            return f(&self.token)
        }
        f(&match self.token_cursor.frame.tree_cursor.look_ahead(dist - 1) {
            Some(tree) => match tree {
                TokenTree::Token(_, tok) => tok,
                TokenTree::Delimited(_, delim, _) => token::OpenDelim(delim),
            },
            None => token::CloseDelim(self.token_cursor.frame.delim),
        })
    }
    fn look_ahead_span(&self, dist: usize) -> Span {
        if dist == 0 {
            return self.span
        }
        match self.token_cursor.frame.tree_cursor.look_ahead(dist - 1) {
            Some(TokenTree::Token(span, _)) => span,
            Some(TokenTree::Delimited(span, ..)) => span.entire(),
            None => self.look_ahead_span(dist - 1),
        }
    }
    pub fn fatal(&self, m: &str) -> DiagnosticBuilder<'a> {
        self.sess.span_diagnostic.struct_span_fatal(self.span, m)
    }
    pub fn span_fatal<S: Into<MultiSpan>>(&self, sp: S, m: &str) -> DiagnosticBuilder<'a> {
        self.sess.span_diagnostic.struct_span_fatal(sp, m)
    }
    fn span_fatal_err<S: Into<MultiSpan>>(&self, sp: S, err: Error) -> DiagnosticBuilder<'a> {
        err.span_err(sp, self.diagnostic())
    }
    fn bug(&self, m: &str) -> ! {
        self.sess.span_diagnostic.span_bug(self.span, m)
    }
    fn span_err<S: Into<MultiSpan>>(&self, sp: S, m: &str) {
        self.sess.span_diagnostic.span_err(sp, m)
    }
    fn struct_span_err<S: Into<MultiSpan>>(&self, sp: S, m: &str) -> DiagnosticBuilder<'a> {
        self.sess.span_diagnostic.struct_span_err(sp, m)
    }
    crate fn span_bug<S: Into<MultiSpan>>(&self, sp: S, m: &str) -> ! {
        self.sess.span_diagnostic.span_bug(sp, m)
    }
    fn cancel(&self, err: &mut DiagnosticBuilder<'_>) {
        self.sess.span_diagnostic.cancel(err)
    }
    crate fn diagnostic(&self) -> &'a errors::Handler {
        &self.sess.span_diagnostic
    }
    
    fn token_is_bare_fn_keyword(&mut self) -> bool {
        self.check_keyword(keywords::Fn) ||
            self.check_keyword(keywords::Unsafe) ||
            self.check_keyword(keywords::Extern)
    }
    
    fn parse_ty_bare_fn(&mut self, generic_params: Vec<GenericParam>) -> PResult<'a, TyKind> {
        
        let unsafety = self.parse_unsafety();
        let abi = if self.eat_keyword(keywords::Extern) {
            self.parse_opt_abi()?.unwrap_or(Abi::C)
        } else {
            Abi::Rust
        };
        self.expect_keyword(keywords::Fn)?;
        let (inputs, c_variadic) = self.parse_fn_args(false, true)?;
        let ret_ty = self.parse_ret_ty(false)?;
        let decl = P(FnDecl {
            inputs,
            output: ret_ty,
            c_variadic,
        });
        Ok(TyKind::BareFn(P(BareFnTy {
            abi,
            unsafety,
            generic_params,
            decl,
        })))
    }
    
    fn parse_asyncness(&mut self) -> IsAsync {
        if self.eat_keyword(keywords::Async) {
            IsAsync::Async {
                closure_id: ast::DUMMY_NODE_ID,
                return_impl_trait_id: ast::DUMMY_NODE_ID,
            }
        } else {
            IsAsync::NotAsync
        }
    }
    
    fn parse_unsafety(&mut self) -> Unsafety {
        if self.eat_keyword(keywords::Unsafe) {
            Unsafety::Unsafe
        } else {
            Unsafety::Normal
        }
    }
    
    pub fn parse_trait_item(&mut self, at_end: &mut bool) -> PResult<'a, TraitItem> {
        maybe_whole!(self, NtTraitItem, |x| x);
        let attrs = self.parse_outer_attributes()?;
        let mut unclosed_delims = vec![];
        let (mut item, tokens) = self.collect_tokens(|this| {
            let item = this.parse_trait_item_(at_end, attrs);
            unclosed_delims.append(&mut this.unclosed_delims);
            item
        })?;
        self.unclosed_delims.append(&mut unclosed_delims);
        
        if !item.attrs.iter().any(|attr| attr.style == AttrStyle::Inner) {
            item.tokens = Some(tokens);
        }
        Ok(item)
    }
    fn parse_trait_item_(&mut self,
                         at_end: &mut bool,
                         mut attrs: Vec<Attribute>) -> PResult<'a, TraitItem> {
        let lo = self.span;
        self.eat_bad_pub();
        let (name, node, generics) = if self.eat_keyword(keywords::Type) {
            self.parse_trait_item_assoc_ty()?
        } else if self.is_const_item() {
            self.expect_keyword(keywords::Const)?;
            let ident = self.parse_ident()?;
            self.expect(&token::Colon)?;
            let ty = self.parse_ty()?;
            let default = if self.eat(&token::Eq) {
                let expr = self.parse_expr()?;
                self.expect(&token::Semi)?;
                Some(expr)
            } else {
                self.expect(&token::Semi)?;
                None
            };
            (ident, TraitItemKind::Const(ty, default), ast::Generics::default())
        } else if let Some(mac) = self.parse_assoc_macro_invoc("trait", None, &mut false)? {
            
            (keywords::Invalid.ident(), ast::TraitItemKind::Macro(mac), ast::Generics::default())
        } else {
            let (constness, unsafety, asyncness, abi) = self.parse_fn_front_matter()?;
            let ident = self.parse_ident()?;
            let mut generics = self.parse_generics()?;
            let d = self.parse_fn_decl_with_self(|p: &mut Parser<'a>| {
                
                
                
                
                p.parse_arg_general(p.span.rust_2018(), true, false)
            })?;
            generics.where_clause = self.parse_where_clause()?;
            let sig = ast::MethodSig {
                header: FnHeader {
                    unsafety,
                    constness,
                    abi,
                    asyncness,
                },
                decl: d,
            };
            let body = match self.token {
                token::Semi => {
                    self.bump();
                    *at_end = true;
                    debug!("parse_trait_methods(): parsing required method");
                    None
                }
                token::OpenDelim(token::Brace) => {
                    debug!("parse_trait_methods(): parsing provided method");
                    *at_end = true;
                    let (inner_attrs, body) = self.parse_inner_attrs_and_block()?;
                    attrs.extend(inner_attrs.iter().cloned());
                    Some(body)
                }
                token::Interpolated(ref nt) => {
                    match **nt {
                        token::NtBlock(..) => {
                            *at_end = true;
                            let (inner_attrs, body) = self.parse_inner_attrs_and_block()?;
                            attrs.extend(inner_attrs.iter().cloned());
                            Some(body)
                        }
                        _ => {
                            let token_str = self.this_token_descr();
                            let mut err = self.fatal(&format!("expected `;` or `{{`, found {}",
                                                              token_str));
                            err.span_label(self.span, "expected `;` or `{`");
                            return Err(err);
                        }
                    }
                }
                _ => {
                    let token_str = self.this_token_descr();
                    let mut err = self.fatal(&format!("expected `;` or `{{`, found {}",
                                                      token_str));
                    err.span_label(self.span, "expected `;` or `{`");
                    return Err(err);
                }
            };
            (ident, ast::TraitItemKind::Method(sig, body), generics)
        };
        Ok(TraitItem {
            id: ast::DUMMY_NODE_ID,
            ident: name,
            attrs,
            generics,
            node,
            span: lo.to(self.prev_span),
            tokens: None,
        })
    }
    
    fn parse_ret_ty(&mut self, allow_plus: bool) -> PResult<'a, FunctionRetTy> {
        if self.eat(&token::RArrow) {
            Ok(FunctionRetTy::Ty(self.parse_ty_common(allow_plus, true, false)?))
        } else {
            Ok(FunctionRetTy::Default(self.span.shrink_to_lo()))
        }
    }
    
    pub fn parse_ty(&mut self) -> PResult<'a, P<Ty>> {
        self.parse_ty_common(true, true, false)
    }
    
    
    
    
    
    
    fn parse_ty_no_plus(&mut self) -> PResult<'a, P<Ty>> {
        self.parse_ty_common(false, true, false)
    }
    fn parse_ty_common(&mut self, allow_plus: bool, allow_qpath_recovery: bool,
                       allow_c_variadic: bool) -> PResult<'a, P<Ty>> {
        maybe_recover_from_interpolated_ty_qpath!(self, allow_qpath_recovery);
        maybe_whole!(self, NtTy, |x| x);
        let lo = self.span;
        let mut impl_dyn_multi = false;
        let node = if self.eat(&token::OpenDelim(token::Paren)) {
            
            
            let mut ts = vec![];
            let mut last_comma = false;
            while self.token != token::CloseDelim(token::Paren) {
                ts.push(self.parse_ty()?);
                if self.eat(&token::Comma) {
                    last_comma = true;
                } else {
                    last_comma = false;
                    break;
                }
            }
            let trailing_plus = self.prev_token_kind == PrevTokenKind::Plus;
            self.expect(&token::CloseDelim(token::Paren))?;
            if ts.len() == 1 && !last_comma {
                let ty = ts.into_iter().nth(0).unwrap().into_inner();
                let maybe_bounds = allow_plus && self.token.is_like_plus();
                match ty.node {
                    
                    TyKind::Path(None, ref path) if maybe_bounds => {
                        self.parse_remaining_bounds(Vec::new(), path.clone(), lo, true)?
                    }
                    TyKind::TraitObject(ref bounds, TraitObjectSyntax::None)
                            if maybe_bounds && bounds.len() == 1 && !trailing_plus => {
                        let path = match bounds[0] {
                            GenericBound::Trait(ref pt, ..) => pt.trait_ref.path.clone(),
                            GenericBound::Outlives(..) => self.bug("unexpected lifetime bound"),
                        };
                        self.parse_remaining_bounds(Vec::new(), path, lo, true)?
                    }
                    
                    _ => TyKind::Paren(P(ty))
                }
            } else {
                TyKind::Tup(ts)
            }
        } else if self.eat(&token::Not) {
            
            TyKind::Never
        } else if self.eat(&token::BinOp(token::Star)) {
            
            TyKind::Ptr(self.parse_ptr()?)
        } else if self.eat(&token::OpenDelim(token::Bracket)) {
            
            let t = self.parse_ty()?;
            
            let t = match self.maybe_parse_fixed_length_of_vec()? {
                None => TyKind::Slice(t),
                Some(length) => TyKind::Array(t, AnonConst {
                    id: ast::DUMMY_NODE_ID,
                    value: length,
                }),
            };
            self.expect(&token::CloseDelim(token::Bracket))?;
            t
        } else if self.check(&token::BinOp(token::And)) || self.check(&token::AndAnd) {
            
            self.expect_and()?;
            self.parse_borrowed_pointee()?
        } else if self.eat_keyword_noexpect(keywords::Typeof) {
            
            
            self.expect(&token::OpenDelim(token::Paren))?;
            let e = AnonConst {
                id: ast::DUMMY_NODE_ID,
                value: self.parse_expr()?,
            };
            self.expect(&token::CloseDelim(token::Paren))?;
            TyKind::Typeof(e)
        } else if self.eat_keyword(keywords::Underscore) {
            
            TyKind::Infer
        } else if self.token_is_bare_fn_keyword() {
            
            self.parse_ty_bare_fn(Vec::new())?
        } else if self.check_keyword(keywords::For) {
            
            
            
            let lo = self.span;
            let lifetime_defs = self.parse_late_bound_lifetime_defs()?;
            if self.token_is_bare_fn_keyword() {
                self.parse_ty_bare_fn(lifetime_defs)?
            } else {
                let path = self.parse_path(PathStyle::Type)?;
                let parse_plus = allow_plus && self.check_plus();
                self.parse_remaining_bounds(lifetime_defs, path, lo, parse_plus)?
            }
        } else if self.eat_keyword(keywords::Impl) {
            
            let bounds = self.parse_generic_bounds(None)?;
            impl_dyn_multi = bounds.len() > 1 || self.prev_token_kind == PrevTokenKind::Plus;
            TyKind::ImplTrait(ast::DUMMY_NODE_ID, bounds)
        } else if self.check_keyword(keywords::Dyn) &&
                  (self.span.rust_2018() ||
                   self.look_ahead(1, |t| t.can_begin_bound() &&
                                          !can_continue_type_after_non_fn_ident(t))) {
            self.bump(); 
            
            let bounds = self.parse_generic_bounds(None)?;
            impl_dyn_multi = bounds.len() > 1 || self.prev_token_kind == PrevTokenKind::Plus;
            TyKind::TraitObject(bounds, TraitObjectSyntax::Dyn)
        } else if self.check(&token::Question) ||
                  self.check_lifetime() && self.look_ahead(1, |t| t.is_like_plus()) {
            
            TyKind::TraitObject(self.parse_generic_bounds_common(allow_plus, None)?,
                                TraitObjectSyntax::None)
        } else if self.eat_lt() {
            
            let (qself, path) = self.parse_qpath(PathStyle::Type)?;
            TyKind::Path(Some(qself), path)
        } else if self.token.is_path_start() {
            
            let path = self.parse_path(PathStyle::Type)?;
            if self.eat(&token::Not) {
                
                let (delim, tts) = self.expect_delimited_token_tree()?;
                let node = Mac_ { path, tts, delim };
                TyKind::Mac(respan(lo.to(self.prev_span), node))
            } else {
                
                
                
                if allow_plus && self.check_plus() {
                    self.parse_remaining_bounds(Vec::new(), path, lo, true)?
                } else {
                    TyKind::Path(None, path)
                }
            }
        } else if self.check(&token::DotDotDot) {
            if allow_c_variadic {
                self.eat(&token::DotDotDot);
                TyKind::CVarArgs
            } else {
                return Err(self.fatal(
                    "only foreign functions are allowed to be C-variadic"
                ));
            }
        } else {
            let msg = format!("expected type, found {}", self.this_token_descr());
            return Err(self.fatal(&msg));
        };
        let span = lo.to(self.prev_span);
        let ty = P(Ty { node, span, id: ast::DUMMY_NODE_ID });
        
        self.maybe_report_ambiguous_plus(allow_plus, impl_dyn_multi, &ty);
        self.maybe_recover_from_bad_type_plus(allow_plus, &ty)?;
        self.maybe_recover_from_bad_qpath(ty, allow_qpath_recovery)
    }
    fn parse_remaining_bounds(&mut self, generic_params: Vec<GenericParam>, path: ast::Path,
                              lo: Span, parse_plus: bool) -> PResult<'a, TyKind> {
        let poly_trait_ref = PolyTraitRef::new(generic_params, path, lo.to(self.prev_span));
        let mut bounds = vec![GenericBound::Trait(poly_trait_ref, TraitBoundModifier::None)];
        if parse_plus {
            self.eat_plus(); 
            bounds.append(&mut self.parse_generic_bounds(Some(self.prev_span))?);
        }
        Ok(TyKind::TraitObject(bounds, TraitObjectSyntax::None))
    }
    fn maybe_report_ambiguous_plus(&mut self, allow_plus: bool, impl_dyn_multi: bool, ty: &Ty) {
        if !allow_plus && impl_dyn_multi {
            let sum_with_parens = format!("({})", pprust::ty_to_string(&ty));
            self.struct_span_err(ty.span, "ambiguous `+` in a type")
                .span_suggestion(
                    ty.span,
                    "use parentheses to disambiguate",
                    sum_with_parens,
                    Applicability::MachineApplicable
                ).emit();
        }
    }
    fn maybe_recover_from_bad_type_plus(&mut self, allow_plus: bool, ty: &Ty) -> PResult<'a, ()> {
        
        if !allow_plus || !self.token.is_like_plus() {
            return Ok(())
        }
        self.bump(); 
        let bounds = self.parse_generic_bounds(None)?;
        let sum_span = ty.span.to(self.prev_span);
        let mut err = struct_span_err!(self.sess.span_diagnostic, sum_span, E0178,
            "expected a path on the left-hand side of `+`, not `{}`", pprust::ty_to_string(ty));
        match ty.node {
            TyKind::Rptr(ref lifetime, ref mut_ty) => {
                let sum_with_parens = pprust::to_string(|s| {
                    use crate::print::pprust::PrintState;
                    s.s.word("&")?;
                    s.print_opt_lifetime(lifetime)?;
                    s.print_mutability(mut_ty.mutbl)?;
                    s.popen()?;
                    s.print_type(&mut_ty.ty)?;
                    s.print_type_bounds(" +", &bounds)?;
                    s.pclose()
                });
                err.span_suggestion(
                    sum_span,
                    "try adding parentheses",
                    sum_with_parens,
                    Applicability::MachineApplicable
                );
            }
            TyKind::Ptr(..) | TyKind::BareFn(..) => {
                err.span_label(sum_span, "perhaps you forgot parentheses?");
            }
            _ => {
                err.span_label(sum_span, "expected a path");
            },
        }
        err.emit();
        Ok(())
    }
    
    
    
    fn maybe_recover_from_bad_qpath<T: RecoverQPath>(&mut self, base: P<T>, allow_recovery: bool)
                                                     -> PResult<'a, P<T>> {
        
        if allow_recovery && self.token == token::ModSep {
            if let Some(ty) = base.to_ty() {
                return self.maybe_recover_from_bad_qpath_stage_2(ty.span, ty);
            }
        }
        Ok(base)
    }
    
    
    fn maybe_recover_from_bad_qpath_stage_2<T: RecoverQPath>(&mut self, ty_span: Span, ty: P<Ty>)
                                                             -> PResult<'a, P<T>> {
        self.expect(&token::ModSep)?;
        let mut path = ast::Path { segments: Vec::new(), span: syntax_pos::DUMMY_SP };
        self.parse_path_segments(&mut path.segments, T::PATH_STYLE)?;
        path.span = ty_span.to(self.prev_span);
        let ty_str = self.sess.source_map().span_to_snippet(ty_span)
            .unwrap_or_else(|_| pprust::ty_to_string(&ty));
        self.diagnostic()
            .struct_span_err(path.span, "missing angle brackets in associated item path")
            .span_suggestion( 
                path.span, "try", format!("<{}>::{}", ty_str, path), Applicability::MaybeIncorrect
            ).emit();
        let path_span = ty_span.shrink_to_hi(); 
        Ok(P(T::recovered(Some(QSelf { ty, path_span, position: 0 }), path)))
    }
    fn parse_borrowed_pointee(&mut self) -> PResult<'a, TyKind> {
        let opt_lifetime = if self.check_lifetime() { Some(self.expect_lifetime()) } else { None };
        let mutbl = self.parse_mutability();
        let ty = self.parse_ty_no_plus()?;
        return Ok(TyKind::Rptr(opt_lifetime, MutTy { ty: ty, mutbl: mutbl }));
    }
    fn parse_ptr(&mut self) -> PResult<'a, MutTy> {
        let mutbl = if self.eat_keyword(keywords::Mut) {
            Mutability::Mutable
        } else if self.eat_keyword(keywords::Const) {
            Mutability::Immutable
        } else {
            let span = self.prev_span;
            let msg = "expected mut or const in raw pointer type";
            self.struct_span_err(span, msg)
                .span_label(span, msg)
                .help("use `*mut T` or `*const T` as appropriate")
                .emit();
            Mutability::Immutable
        };
        let t = self.parse_ty_no_plus()?;
        Ok(MutTy { ty: t, mutbl: mutbl })
    }
    fn is_named_argument(&mut self) -> bool {
        let offset = match self.token {
            token::Interpolated(ref nt) => match **nt {
                token::NtPat(..) => return self.look_ahead(1, |t| t == &token::Colon),
                _ => 0,
            }
            token::BinOp(token::And) | token::AndAnd => 1,
            _ if self.token.is_keyword(keywords::Mut) => 1,
            _ => 0,
        };
        self.look_ahead(offset, |t| t.is_ident()) &&
        self.look_ahead(offset + 1, |t| t == &token::Colon)
    }
    
    
    fn eat_incorrect_doc_comment(&mut self, applied_to: &str) {
        if let token::DocComment(_) = self.token {
            let mut err = self.diagnostic().struct_span_err(
                self.span,
                &format!("documentation comments cannot be applied to {}", applied_to),
            );
            err.span_label(self.span, "doc comments are not allowed here");
            err.emit();
            self.bump();
        } else if self.token == token::Pound && self.look_ahead(1, |t| {
            *t == token::OpenDelim(token::Bracket)
        }) {
            let lo = self.span;
            
            while self.token != token::CloseDelim(token::Bracket) {
                self.bump();
            }
            let sp = lo.to(self.span);
            self.bump();
            let mut err = self.diagnostic().struct_span_err(
                sp,
                &format!("attributes cannot be applied to {}", applied_to),
            );
            err.span_label(sp, "attributes are not allowed here");
            err.emit();
        }
    }
    
    fn parse_arg_general(&mut self, require_name: bool, is_trait_item: bool,
                         allow_c_variadic: bool) -> PResult<'a, Arg> {
        maybe_whole!(self, NtArg, |x| x);
        if let Ok(Some(_)) = self.parse_self_arg() {
            let mut err = self.struct_span_err(self.prev_span,
                "unexpected `self` argument in function");
            err.span_label(self.prev_span,
                "`self` is only valid as the first argument of an associated function");
            return Err(err);
        }
        let (pat, ty) = if require_name || self.is_named_argument() {
            debug!("parse_arg_general parse_pat (require_name:{})",
                   require_name);
            self.eat_incorrect_doc_comment("method arguments");
            let pat = self.parse_pat(Some("argument name"))?;
            if let Err(mut err) = self.expect(&token::Colon) {
                
                
                if self.check_ident() && self.look_ahead(1, |t| {
                    *t == token::Comma || *t == token::CloseDelim(token::Paren)
                }) {
                    let ident = self.parse_ident().unwrap();
                    let span = pat.span.with_hi(ident.span.hi());
                    err.span_suggestion(
                        span,
                        "declare the type after the parameter binding",
                        String::from("<identifier>: <type>"),
                        Applicability::HasPlaceholders,
                    );
                } else if require_name && is_trait_item {
                    if let PatKind::Ident(_, ident, _) = pat.node {
                        err.span_suggestion(
                            pat.span,
                            "explicitly ignore parameter",
                            format!("_: {}", ident),
                            Applicability::MachineApplicable,
                        );
                    }
                    err.note("anonymous parameters are removed in the 2018 edition (see RFC 1685)");
                }
                return Err(err);
            }
            self.eat_incorrect_doc_comment("a method argument's type");
            (pat, self.parse_ty_common(true, true, allow_c_variadic)?)
        } else {
            debug!("parse_arg_general ident_to_pat");
            let parser_snapshot_before_ty = self.clone();
            self.eat_incorrect_doc_comment("a method argument's type");
            let mut ty = self.parse_ty_common(true, true, allow_c_variadic);
            if ty.is_ok() && self.token != token::Comma &&
               self.token != token::CloseDelim(token::Paren) {
                
                
                ty = self.unexpected();
            }
            match ty {
                Ok(ty) => {
                    let ident = Ident::new(keywords::Invalid.name(), self.prev_span);
                    let pat = P(Pat {
                        id: ast::DUMMY_NODE_ID,
                        node: PatKind::Ident(
                            BindingMode::ByValue(Mutability::Immutable), ident, None),
                        span: ty.span,
                    });
                    (pat, ty)
                }
                Err(mut err) => {
                    
                    
                    if self.token == token::DotDotDot {
                        return Err(err);
                    }
                    
                    err.cancel();
                    mem::replace(self, parser_snapshot_before_ty);
                    let pat = self.parse_pat(Some("argument name"))?;
                    self.expect(&token::Colon)?;
                    let ty = self.parse_ty()?;
                    let mut err = self.diagnostic().struct_span_err_with_code(
                        pat.span,
                        "patterns aren't allowed in methods without bodies",
                        DiagnosticId::Error("E0642".into()),
                    );
                    err.span_suggestion_short(
                        pat.span,
                        "give this argument a name or use an underscore to ignore it",
                        "_".to_owned(),
                        Applicability::MachineApplicable,
                    );
                    err.emit();
                    
                    let pat = P(Pat {
                        node: PatKind::Wild,
                        span: pat.span,
                        id: ast::DUMMY_NODE_ID
                    });
                    (pat, ty)
                }
            }
        };
        Ok(Arg { ty, pat, id: ast::DUMMY_NODE_ID })
    }
    
    crate fn parse_arg(&mut self) -> PResult<'a, Arg> {
        self.parse_arg_general(true, false, false)
    }
    
    fn parse_fn_block_arg(&mut self) -> PResult<'a, Arg> {
        let pat = self.parse_pat(Some("argument name"))?;
        let t = if self.eat(&token::Colon) {
            self.parse_ty()?
        } else {
            P(Ty {
                id: ast::DUMMY_NODE_ID,
                node: TyKind::Infer,
                span: self.prev_span,
            })
        };
        Ok(Arg {
            ty: t,
            pat,
            id: ast::DUMMY_NODE_ID
        })
    }
    fn maybe_parse_fixed_length_of_vec(&mut self) -> PResult<'a, Option<P<ast::Expr>>> {
        if self.eat(&token::Semi) {
            Ok(Some(self.parse_expr()?))
        } else {
            Ok(None)
        }
    }
    
    fn parse_lit_token(&mut self) -> PResult<'a, LitKind> {
        let out = match self.token {
            token::Interpolated(ref nt) => match **nt {
                token::NtExpr(ref v) | token::NtLiteral(ref v) => match v.node {
                    ExprKind::Lit(ref lit) => { lit.node.clone() }
                    _ => { return self.unexpected_last(&self.token); }
                },
                _ => { return self.unexpected_last(&self.token); }
            },
            token::Literal(lit, suf) => {
                let diag = Some((self.span, &self.sess.span_diagnostic));
                let (suffix_illegal, result) = parse::lit_token(lit, suf, diag);
                if suffix_illegal {
                    let sp = self.span;
                    self.expect_no_suffix(sp, &format!("a {}", lit.literal_name()), suf)
                }
                result.unwrap()
            }
            token::Dot if self.look_ahead(1, |t| match t {
                token::Literal(parse::token::Lit::Integer(_) , _) => true,
                _ => false,
            }) => { 
                let lo = self.span;
                self.bump();
                if let token::Literal(
                    parse::token::Lit::Integer(val),
                    suffix,
                ) = self.token {
                    let suffix = suffix.and_then(|s| {
                        let s = s.as_str();
                        if s == "f32" {
                            Some("f32")
                        } else if s == "f64" {
                            Some("f64")
                        } else {
                            None
                        }
                    }).unwrap_or("");
                    self.bump();
                    let sp = lo.to(self.prev_span);
                    let mut err = self.diagnostic()
                        .struct_span_err(sp, "float literals must have an integer part");
                    err.span_suggestion(
                        sp,
                        "must have an integer part",
                        format!("0.{}{}", val, suffix),
                        Applicability::MachineApplicable,
                    );
                    err.emit();
                    return Ok(match suffix {
                        "f32" => ast::LitKind::Float(val, ast::FloatTy::F32),
                        "f64" => ast::LitKind::Float(val, ast::FloatTy::F64),
                        _ => ast::LitKind::FloatUnsuffixed(val),
                    });
                } else {
                    unreachable!();
                };
            }
            _ => { return self.unexpected_last(&self.token); }
        };
        self.bump();
        Ok(out)
    }
    
    crate fn parse_lit(&mut self) -> PResult<'a, Lit> {
        let lo = self.span;
        let lit = if self.eat_keyword(keywords::True) {
            LitKind::Bool(true)
        } else if self.eat_keyword(keywords::False) {
            LitKind::Bool(false)
        } else {
            let lit = self.parse_lit_token()?;
            lit
        };
        Ok(source_map::Spanned { node: lit, span: lo.to(self.prev_span) })
    }
    
    crate fn parse_literal_maybe_minus(&mut self) -> PResult<'a, P<Expr>> {
        maybe_whole_expr!(self);
        let minus_lo = self.span;
        let minus_present = self.eat(&token::BinOp(token::Minus));
        let lo = self.span;
        let literal = self.parse_lit()?;
        let hi = self.prev_span;
        let expr = self.mk_expr(lo.to(hi), ExprKind::Lit(literal), ThinVec::new());
        if minus_present {
            let minus_hi = self.prev_span;
            let unary = self.mk_unary(UnOp::Neg, expr);
            Ok(self.mk_expr(minus_lo.to(minus_hi), unary, ThinVec::new()))
        } else {
            Ok(expr)
        }
    }
    fn parse_path_segment_ident(&mut self) -> PResult<'a, ast::Ident> {
        match self.token {
            token::Ident(ident, _) if self.token.is_path_segment_keyword() => {
                let span = self.span;
                self.bump();
                Ok(Ident::new(ident.name, span))
            }
            _ => self.parse_ident(),
        }
    }
    fn parse_ident_or_underscore(&mut self) -> PResult<'a, ast::Ident> {
        match self.token {
            token::Ident(ident, false) if ident.name == keywords::Underscore.name() => {
                let span = self.span;
                self.bump();
                Ok(Ident::new(ident.name, span))
            }
            _ => self.parse_ident(),
        }
    }
    
    
    
    
    
    
    
    
    
    
    fn parse_qpath(&mut self, style: PathStyle) -> PResult<'a, (QSelf, ast::Path)> {
        let lo = self.prev_span;
        let ty = self.parse_ty()?;
        
        
        
        
        let (mut path, path_span);
        if self.eat_keyword(keywords::As) {
            let path_lo = self.span;
            path = self.parse_path(PathStyle::Type)?;
            path_span = path_lo.to(self.prev_span);
        } else {
            path = ast::Path { segments: Vec::new(), span: syntax_pos::DUMMY_SP };
            path_span = self.span.to(self.span);
        }
        
        self.expect(&token::Gt)?;
        if self.unmatched_angle_bracket_count > 0 {
            self.unmatched_angle_bracket_count -= 1;
            debug!("parse_qpath: (decrement) count={:?}", self.unmatched_angle_bracket_count);
        }
        self.expect(&token::ModSep)?;
        let qself = QSelf { ty, path_span, position: path.segments.len() };
        self.parse_path_segments(&mut path.segments, style)?;
        Ok((qself, ast::Path { segments: path.segments, span: lo.to(self.prev_span) }))
    }
    
    
    
    
    
    
    
    
    
    
    pub fn parse_path(&mut self, style: PathStyle) -> PResult<'a, ast::Path> {
        maybe_whole!(self, NtPath, |path| {
            if style == PathStyle::Mod &&
               path.segments.iter().any(|segment| segment.args.is_some()) {
                self.diagnostic().span_err(path.span, "unexpected generic arguments in path");
            }
            path
        });
        let lo = self.meta_var_span.unwrap_or(self.span);
        let mut segments = Vec::new();
        let mod_sep_ctxt = self.span.ctxt();
        if self.eat(&token::ModSep) {
            segments.push(PathSegment::path_root(lo.shrink_to_lo().with_ctxt(mod_sep_ctxt)));
        }
        self.parse_path_segments(&mut segments, style)?;
        Ok(ast::Path { segments, span: lo.to(self.prev_span) })
    }
    
    
    
    pub fn parse_path_allowing_meta(&mut self, style: PathStyle) -> PResult<'a, ast::Path> {
        let meta_ident = match self.token {
            token::Interpolated(ref nt) => match **nt {
                token::NtMeta(ref meta) => match meta.node {
                    ast::MetaItemKind::Word => Some(meta.path.clone()),
                    _ => None,
                },
                _ => None,
            },
            _ => None,
        };
        if let Some(path) = meta_ident {
            self.bump();
            return Ok(path);
        }
        self.parse_path(style)
    }
    fn parse_path_segments(&mut self,
                           segments: &mut Vec<PathSegment>,
                           style: PathStyle)
                           -> PResult<'a, ()> {
        loop {
            let segment = self.parse_path_segment(style)?;
            if style == PathStyle::Expr {
                
                
                
                
                
                
                
                
                
                
                
                
                
                
                
                
                self.check_trailing_angle_brackets(&segment, token::ModSep);
            }
            segments.push(segment);
            if self.is_import_coupler() || !self.eat(&token::ModSep) {
                return Ok(());
            }
        }
    }
    fn parse_path_segment(&mut self, style: PathStyle) -> PResult<'a, PathSegment> {
        let ident = self.parse_path_segment_ident()?;
        let is_args_start = |token: &token::Token| match *token {
            token::Lt | token::BinOp(token::Shl) | token::OpenDelim(token::Paren) => true,
            _ => false,
        };
        let check_args_start = |this: &mut Self| {
            this.expected_tokens.extend_from_slice(
                &[TokenType::Token(token::Lt), TokenType::Token(token::OpenDelim(token::Paren))]
            );
            is_args_start(&this.token)
        };
        Ok(if style == PathStyle::Type && check_args_start(self) ||
              style != PathStyle::Mod && self.check(&token::ModSep)
                                      && self.look_ahead(1, |t| is_args_start(t)) {
            
            
            
            if style == PathStyle::Expr {
                self.unmatched_angle_bracket_count = 0;
                self.max_angle_bracket_count = 0;
            }
            
            self.eat(&token::ModSep);
            let lo = self.span;
            let args = if self.eat_lt() {
                
                let (args, bindings) =
                    self.parse_generic_args_with_leaning_angle_bracket_recovery(style, lo)?;
                self.expect_gt()?;
                let span = lo.to(self.prev_span);
                AngleBracketedArgs { args, bindings, span }.into()
            } else {
                
                self.bump(); 
                let (inputs, recovered) = self.parse_seq_to_before_tokens(
                    &[&token::CloseDelim(token::Paren)],
                    SeqSep::trailing_allowed(token::Comma),
                    TokenExpectType::Expect,
                    |p| p.parse_ty())?;
                if !recovered {
                    self.bump(); 
                }
                let span = lo.to(self.prev_span);
                let output = if self.eat(&token::RArrow) {
                    Some(self.parse_ty_common(false, false, false)?)
                } else {
                    None
                };
                ParenthesizedArgs { inputs, output, span }.into()
            };
            PathSegment { ident, args, id: ast::DUMMY_NODE_ID }
        } else {
            
            PathSegment::from_ident(ident)
        })
    }
    crate fn check_lifetime(&mut self) -> bool {
        self.expected_tokens.push(TokenType::Lifetime);
        self.token.is_lifetime()
    }
    
    crate fn expect_lifetime(&mut self) -> Lifetime {
        if let Some(ident) = self.token.lifetime() {
            let span = self.span;
            self.bump();
            Lifetime { ident: Ident::new(ident.name, span), id: ast::DUMMY_NODE_ID }
        } else {
            self.span_bug(self.span, "not a lifetime")
        }
    }
    fn eat_label(&mut self) -> Option<Label> {
        if let Some(ident) = self.token.lifetime() {
            let span = self.span;
            self.bump();
            Some(Label { ident: Ident::new(ident.name, span) })
        } else {
            None
        }
    }
    
    fn parse_mutability(&mut self) -> Mutability {
        if self.eat_keyword(keywords::Mut) {
            Mutability::Mutable
        } else {
            Mutability::Immutable
        }
    }
    fn parse_field_name(&mut self) -> PResult<'a, Ident> {
        if let token::Literal(token::Integer(name), suffix) = self.token {
            self.expect_no_suffix(self.span, "a tuple index", suffix);
            self.bump();
            Ok(Ident::new(name, self.prev_span))
        } else {
            self.parse_ident_common(false)
        }
    }
    
    fn parse_field(&mut self) -> PResult<'a, Field> {
        let attrs = self.parse_outer_attributes()?;
        let lo = self.span;
        
        let (fieldname, expr, is_shorthand) = if self.look_ahead(1, |t| {
            t == &token::Colon || t == &token::Eq
        }) {
            let fieldname = self.parse_field_name()?;
            
            
            if self.token == token::Eq {
                self.diagnostic()
                    .struct_span_err(self.span, "expected `:`, found `=`")
                    .span_suggestion(
                        fieldname.span.shrink_to_hi().to(self.span),
                        "replace equals symbol with a colon",
                        ":".to_string(),
                        Applicability::MachineApplicable,
                    )
                    .emit();
            }
            self.bump(); 
            (fieldname, self.parse_expr()?, false)
        } else {
            let fieldname = self.parse_ident_common(false)?;
            
            let path = ast::Path::from_ident(fieldname);
            let expr = self.mk_expr(fieldname.span, ExprKind::Path(None, path), ThinVec::new());
            (fieldname, expr, true)
        };
        Ok(ast::Field {
            ident: fieldname,
            span: lo.to(expr.span),
            expr,
            is_shorthand,
            attrs: attrs.into(),
        })
    }
    fn mk_expr(&mut self, span: Span, node: ExprKind, attrs: ThinVec<Attribute>) -> P<Expr> {
        P(Expr { node, span, attrs, id: ast::DUMMY_NODE_ID })
    }
    fn mk_unary(&mut self, unop: ast::UnOp, expr: P<Expr>) -> ast::ExprKind {
        ExprKind::Unary(unop, expr)
    }
    fn mk_binary(&mut self, binop: ast::BinOp, lhs: P<Expr>, rhs: P<Expr>) -> ast::ExprKind {
        ExprKind::Binary(binop, lhs, rhs)
    }
    fn mk_call(&mut self, f: P<Expr>, args: Vec<P<Expr>>) -> ast::ExprKind {
        ExprKind::Call(f, args)
    }
    fn mk_index(&mut self, expr: P<Expr>, idx: P<Expr>) -> ast::ExprKind {
        ExprKind::Index(expr, idx)
    }
    fn mk_range(&mut self,
                    start: Option<P<Expr>>,
                    end: Option<P<Expr>>,
                    limits: RangeLimits)
                    -> PResult<'a, ast::ExprKind> {
        if end.is_none() && limits == RangeLimits::Closed {
            Err(self.span_fatal_err(self.span, Error::InclusiveRangeWithNoEnd))
        } else {
            Ok(ExprKind::Range(start, end, limits))
        }
    }
    fn mk_assign_op(&mut self, binop: ast::BinOp,
                        lhs: P<Expr>, rhs: P<Expr>) -> ast::ExprKind {
        ExprKind::AssignOp(binop, lhs, rhs)
    }
    fn expect_delimited_token_tree(&mut self) -> PResult<'a, (MacDelimiter, TokenStream)> {
        let delim = match self.token {
            token::OpenDelim(delim) => delim,
            _ => {
                let msg = "expected open delimiter";
                let mut err = self.fatal(msg);
                err.span_label(self.span, msg);
                return Err(err)
            }
        };
        let tts = match self.parse_token_tree() {
            TokenTree::Delimited(_, _, tts) => tts,
            _ => unreachable!(),
        };
        let delim = match delim {
            token::Paren => MacDelimiter::Parenthesis,
            token::Bracket => MacDelimiter::Bracket,
            token::Brace => MacDelimiter::Brace,
            token::NoDelim => self.bug("unexpected no delimiter"),
        };
        Ok((delim, tts.into()))
    }
    
    
    
    
    
    fn parse_bottom_expr(&mut self) -> PResult<'a, P<Expr>> {
        maybe_recover_from_interpolated_ty_qpath!(self, true);
        maybe_whole_expr!(self);
        
        
        
        
        
        let mut attrs = ThinVec::new();
        let lo = self.span;
        let mut hi = self.span;
        let ex: ExprKind;
        
        match self.token {
            token::OpenDelim(token::Paren) => {
                self.bump();
                attrs.extend(self.parse_inner_attributes()?);
                
                
                let mut es = vec![];
                let mut trailing_comma = false;
                let mut recovered = false;
                while self.token != token::CloseDelim(token::Paren) {
                    es.push(match self.parse_expr() {
                        Ok(es) => es,
                        Err(err) => {
                            
                            return Ok(self.recover_seq_parse_error(token::Paren, lo, Err(err)));
                        }
                    });
                    recovered = self.expect_one_of(
                        &[],
                        &[token::Comma, token::CloseDelim(token::Paren)],
                    )?;
                    if self.eat(&token::Comma) {
                        trailing_comma = true;
                    } else {
                        trailing_comma = false;
                        break;
                    }
                }
                if !recovered {
                    self.bump();
                }
                hi = self.prev_span;
                ex = if es.len() == 1 && !trailing_comma {
                    ExprKind::Paren(es.into_iter().nth(0).unwrap())
                } else {
                    ExprKind::Tup(es)
                };
            }
            token::OpenDelim(token::Brace) => {
                return self.parse_block_expr(None, lo, BlockCheckMode::Default, attrs);
            }
            token::BinOp(token::Or) | token::OrOr => {
                return self.parse_lambda_expr(attrs);
            }
            token::OpenDelim(token::Bracket) => {
                self.bump();
                attrs.extend(self.parse_inner_attributes()?);
                if self.eat(&token::CloseDelim(token::Bracket)) {
                    
                    ex = ExprKind::Array(Vec::new());
                } else {
                    
                    let first_expr = self.parse_expr()?;
                    if self.eat(&token::Semi) {
                        
                        let count = AnonConst {
                            id: ast::DUMMY_NODE_ID,
                            value: self.parse_expr()?,
                        };
                        self.expect(&token::CloseDelim(token::Bracket))?;
                        ex = ExprKind::Repeat(first_expr, count);
                    } else if self.eat(&token::Comma) {
                        
                        let remaining_exprs = self.parse_seq_to_end(
                            &token::CloseDelim(token::Bracket),
                            SeqSep::trailing_allowed(token::Comma),
                            |p| Ok(p.parse_expr()?)
                        )?;
                        let mut exprs = vec![first_expr];
                        exprs.extend(remaining_exprs);
                        ex = ExprKind::Array(exprs);
                    } else {
                        
                        self.expect(&token::CloseDelim(token::Bracket))?;
                        ex = ExprKind::Array(vec![first_expr]);
                    }
                }
                hi = self.prev_span;
            }
            _ => {
                if self.eat_lt() {
                    let (qself, path) = self.parse_qpath(PathStyle::Expr)?;
                    hi = path.span;
                    return Ok(self.mk_expr(lo.to(hi), ExprKind::Path(Some(qself), path), attrs));
                }
                if self.span.rust_2018() && self.check_keyword(keywords::Async)
                {
                    if self.is_async_block() { 
                        return self.parse_async_block(attrs);
                    } else {
                        return self.parse_lambda_expr(attrs);
                    }
                }
                if self.check_keyword(keywords::Move) || self.check_keyword(keywords::Static) {
                    return self.parse_lambda_expr(attrs);
                }
                if self.eat_keyword(keywords::If) {
                    return self.parse_if_expr(attrs);
                }
                if self.eat_keyword(keywords::For) {
                    let lo = self.prev_span;
                    return self.parse_for_expr(None, lo, attrs);
                }
                if self.eat_keyword(keywords::While) {
                    let lo = self.prev_span;
                    return self.parse_while_expr(None, lo, attrs);
                }
                if let Some(label) = self.eat_label() {
                    let lo = label.ident.span;
                    self.expect(&token::Colon)?;
                    if self.eat_keyword(keywords::While) {
                        return self.parse_while_expr(Some(label), lo, attrs)
                    }
                    if self.eat_keyword(keywords::For) {
                        return self.parse_for_expr(Some(label), lo, attrs)
                    }
                    if self.eat_keyword(keywords::Loop) {
                        return self.parse_loop_expr(Some(label), lo, attrs)
                    }
                    if self.token == token::OpenDelim(token::Brace) {
                        return self.parse_block_expr(Some(label),
                                                     lo,
                                                     BlockCheckMode::Default,
                                                     attrs);
                    }
                    let msg = "expected `while`, `for`, `loop` or `{` after a label";
                    let mut err = self.fatal(msg);
                    err.span_label(self.span, msg);
                    return Err(err);
                }
                if self.eat_keyword(keywords::Loop) {
                    let lo = self.prev_span;
                    return self.parse_loop_expr(None, lo, attrs);
                }
                if self.eat_keyword(keywords::Continue) {
                    let label = self.eat_label();
                    let ex = ExprKind::Continue(label);
                    let hi = self.prev_span;
                    return Ok(self.mk_expr(lo.to(hi), ex, attrs));
                }
                if self.eat_keyword(keywords::Match) {
                    let match_sp = self.prev_span;
                    return self.parse_match_expr(attrs).map_err(|mut err| {
                        err.span_label(match_sp, "while parsing this match expression");
                        err
                    });
                }
                if self.eat_keyword(keywords::Unsafe) {
                    return self.parse_block_expr(
                        None,
                        lo,
                        BlockCheckMode::Unsafe(ast::UserProvided),
                        attrs);
                }
                if self.is_do_catch_block() {
                    let mut db = self.fatal("found removed `do catch` syntax");
                    db.help("Following RFC #2388, the new non-placeholder syntax is `try`");
                    return Err(db);
                }
                if self.is_try_block() {
                    let lo = self.span;
                    assert!(self.eat_keyword(keywords::Try));
                    return self.parse_try_block(lo, attrs);
                }
                if self.eat_keyword(keywords::Return) {
                    if self.token.can_begin_expr() {
                        let e = self.parse_expr()?;
                        hi = e.span;
                        ex = ExprKind::Ret(Some(e));
                    } else {
                        ex = ExprKind::Ret(None);
                    }
                } else if self.eat_keyword(keywords::Break) {
                    let label = self.eat_label();
                    let e = if self.token.can_begin_expr()
                               && !(self.token == token::OpenDelim(token::Brace)
                                    && self.restrictions.contains(
                                           Restrictions::NO_STRUCT_LITERAL)) {
                        Some(self.parse_expr()?)
                    } else {
                        None
                    };
                    ex = ExprKind::Break(label, e);
                    hi = self.prev_span;
                } else if self.eat_keyword(keywords::Yield) {
                    if self.token.can_begin_expr() {
                        let e = self.parse_expr()?;
                        hi = e.span;
                        ex = ExprKind::Yield(Some(e));
                    } else {
                        ex = ExprKind::Yield(None);
                    }
                } else if self.token.is_keyword(keywords::Let) {
                    
                    
                    let mut db = self.fatal("expected expression, found statement (`let`)");
                    db.span_label(self.span, "expected expression");
                    db.note("variable declaration using `let` is a statement");
                    return Err(db);
                } else if self.token.is_path_start() {
                    let path = self.parse_path(PathStyle::Expr)?;
                    
                    if self.eat(&token::Not) {
                        
                        let (delim, tts) = self.expect_delimited_token_tree()?;
                        hi = self.prev_span;
                        ex = ExprKind::Mac(respan(lo.to(hi), Mac_ { path, tts, delim }));
                    } else if self.check(&token::OpenDelim(token::Brace)) &&
                              !self.restrictions.contains(Restrictions::NO_STRUCT_LITERAL) {
                        
                        
                        return self.parse_struct_expr(lo, path, attrs);
                    } else {
                        hi = path.span;
                        ex = ExprKind::Path(None, path);
                    }
                } else {
                    if !self.unclosed_delims.is_empty() && self.check(&token::Semi) {
                        
                        
                        
                        
                        
                        
                        
                        
                        
                        
                        
                        self.bump();
                        return Ok(self.mk_expr(self.span, ExprKind::Err, ThinVec::new()));
                    }
                    match self.parse_literal_maybe_minus() {
                        Ok(expr) => {
                            hi = expr.span;
                            ex = expr.node.clone();
                        }
                        Err(mut err) => {
                            self.cancel(&mut err);
                            let msg = format!("expected expression, found {}",
                                              self.this_token_descr());
                            let mut err = self.fatal(&msg);
                            err.span_label(self.span, "expected expression");
                            return Err(err);
                        }
                    }
                }
            }
        }
        let expr = self.mk_expr(lo.to(hi), ex, attrs);
        self.maybe_recover_from_bad_qpath(expr, true)
    }
    fn parse_struct_expr(&mut self, lo: Span, pth: ast::Path, mut attrs: ThinVec<Attribute>)
                         -> PResult<'a, P<Expr>> {
        let struct_sp = lo.to(self.prev_span);
        self.bump();
        let mut fields = Vec::new();
        let mut base = None;
        attrs.extend(self.parse_inner_attributes()?);
        while self.token != token::CloseDelim(token::Brace) {
            if self.eat(&token::DotDot) {
                let exp_span = self.prev_span;
                match self.parse_expr() {
                    Ok(e) => {
                        base = Some(e);
                    }
                    Err(mut e) => {
                        e.emit();
                        self.recover_stmt();
                    }
                }
                if self.token == token::Comma {
                    let mut err = self.sess.span_diagnostic.mut_span_err(
                        exp_span.to(self.prev_span),
                        "cannot use a comma after the base struct",
                    );
                    err.span_suggestion_short(
                        self.span,
                        "remove this comma",
                        String::new(),
                        Applicability::MachineApplicable
                    );
                    err.note("the base struct must always be the last field");
                    err.emit();
                    self.recover_stmt();
                }
                break;
            }
            let mut recovery_field = None;
            if let token::Ident(ident, _) = self.token {
                if !self.token.is_reserved_ident() && self.look_ahead(1, |t| *t == token::Colon) {
                    
                    let mut ident = ident.clone();
                    ident.span = self.span;
                    recovery_field = Some(ast::Field {
                        ident,
                        span: self.span,
                        expr: self.mk_expr(self.span, ExprKind::Err, ThinVec::new()),
                        is_shorthand: false,
                        attrs: ThinVec::new(),
                    });
                }
            }
            let mut parsed_field = None;
            match self.parse_field() {
                Ok(f) => parsed_field = Some(f),
                Err(mut e) => {
                    e.span_label(struct_sp, "while parsing this struct");
                    e.emit();
                    
                    
                    
                    if self.token != token::Comma {
                        self.recover_stmt_(SemiColonMode::Comma, BlockMode::Ignore);
                        if self.token != token::Comma {
                            break;
                        }
                    }
                }
            }
            match self.expect_one_of(&[token::Comma],
                                     &[token::CloseDelim(token::Brace)]) {
                Ok(_) => if let Some(f) = parsed_field.or(recovery_field) {
                    
                    fields.push(f);
                }
                Err(mut e) => {
                    if let Some(f) = recovery_field {
                        fields.push(f);
                    }
                    e.span_label(struct_sp, "while parsing this struct");
                    e.emit();
                    self.recover_stmt_(SemiColonMode::Comma, BlockMode::Ignore);
                    self.eat(&token::Comma);
                }
            }
        }
        let span = lo.to(self.span);
        self.expect(&token::CloseDelim(token::Brace))?;
        return Ok(self.mk_expr(span, ExprKind::Struct(pth, fields, base), attrs));
    }
    fn parse_or_use_outer_attributes(&mut self,
                                     already_parsed_attrs: Option<ThinVec<Attribute>>)
                                     -> PResult<'a, ThinVec<Attribute>> {
        if let Some(attrs) = already_parsed_attrs {
            Ok(attrs)
        } else {
            self.parse_outer_attributes().map(|a| a.into())
        }
    }
    
    fn parse_block_expr(&mut self, opt_label: Option<Label>,
                            lo: Span, blk_mode: BlockCheckMode,
                            outer_attrs: ThinVec<Attribute>)
                            -> PResult<'a, P<Expr>> {
        self.expect(&token::OpenDelim(token::Brace))?;
        let mut attrs = outer_attrs;
        attrs.extend(self.parse_inner_attributes()?);
        let blk = self.parse_block_tail(lo, blk_mode)?;
        return Ok(self.mk_expr(blk.span, ExprKind::Block(blk, opt_label), attrs));
    }
    
    fn parse_dot_or_call_expr(&mut self,
                                  already_parsed_attrs: Option<ThinVec<Attribute>>)
                                  -> PResult<'a, P<Expr>> {
        let attrs = self.parse_or_use_outer_attributes(already_parsed_attrs)?;
        let b = self.parse_bottom_expr();
        let (span, b) = self.interpolated_or_expr_span(b)?;
        self.parse_dot_or_call_expr_with(b, span, attrs)
    }
    fn parse_dot_or_call_expr_with(&mut self,
                                       e0: P<Expr>,
                                       lo: Span,
                                       mut attrs: ThinVec<Attribute>)
                                       -> PResult<'a, P<Expr>> {
        
        
        
        self.parse_dot_or_call_expr_with_(e0, lo)
        .map(|expr|
            expr.map(|mut expr| {
                attrs.extend::<Vec<_>>(expr.attrs.into());
                expr.attrs = attrs;
                match expr.node {
                    ExprKind::If(..) | ExprKind::IfLet(..) => {
                        if !expr.attrs.is_empty() {
                            
                            let span = expr.attrs[0].span;
                            self.span_err(span,
                                "attributes are not yet allowed on `if` \
                                expressions");
                        }
                    }
                    _ => {}
                }
                expr
            })
        )
    }
    
    fn parse_dot_suffix(&mut self, self_arg: P<Expr>, lo: Span) -> PResult<'a, P<Expr>> {
        let segment = self.parse_path_segment(PathStyle::Expr)?;
        self.check_trailing_angle_brackets(&segment, token::OpenDelim(token::Paren));
        Ok(match self.token {
            token::OpenDelim(token::Paren) => {
                
                let mut args = self.parse_unspanned_seq(
                    &token::OpenDelim(token::Paren),
                    &token::CloseDelim(token::Paren),
                    SeqSep::trailing_allowed(token::Comma),
                    |p| Ok(p.parse_expr()?)
                )?;
                args.insert(0, self_arg);
                let span = lo.to(self.prev_span);
                self.mk_expr(span, ExprKind::MethodCall(segment, args), ThinVec::new())
            }
            _ => {
                
                if let Some(args) = segment.args {
                    self.span_err(args.span(),
                                  "field expressions may not have generic arguments");
                }
                let span = lo.to(self.prev_span);
                self.mk_expr(span, ExprKind::Field(self_arg, segment.ident), ThinVec::new())
            }
        })
    }
    
    
    
    
    
    
    
    fn check_trailing_angle_brackets(&mut self, segment: &PathSegment, end: token::Token) {
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        let parsed_angle_bracket_args = segment.args
            .as_ref()
            .map(|args| args.is_angle_bracketed())
            .unwrap_or(false);
        debug!(
            "check_trailing_angle_brackets: parsed_angle_bracket_args={:?}",
            parsed_angle_bracket_args,
        );
        if !parsed_angle_bracket_args {
            return;
        }
        
        
        let lo = self.span;
        
        
        
        let mut position = 0;
        
        
        
        let mut number_of_shr = 0;
        let mut number_of_gt = 0;
        while self.look_ahead(position, |t| {
            trace!("check_trailing_angle_brackets: t={:?}", t);
            if *t == token::BinOp(token::BinOpToken::Shr) {
                number_of_shr += 1;
                true
            } else if *t == token::Gt {
                number_of_gt += 1;
                true
            } else {
                false
            }
        }) {
            position += 1;
        }
        
        debug!(
            "check_trailing_angle_brackets: number_of_gt={:?} number_of_shr={:?}",
            number_of_gt, number_of_shr,
        );
        if number_of_gt < 1 && number_of_shr < 1 {
            return;
        }
        
        
        if self.look_ahead(position, |t| {
            trace!("check_trailing_angle_brackets: t={:?}", t);
            *t == end
        }) {
            
            
            self.eat_to_tokens(&[&end]);
            let span = lo.until(self.span);
            let plural = number_of_gt > 1 || number_of_shr >= 1;
            self.diagnostic()
                .struct_span_err(
                    span,
                    &format!("unmatched angle bracket{}", if plural { "s" } else { "" }),
                )
                .span_suggestion(
                    span,
                    &format!("remove extra angle bracket{}", if plural { "s" } else { "" }),
                    String::new(),
                    Applicability::MachineApplicable,
                )
                .emit();
        }
    }
    fn parse_dot_or_call_expr_with_(&mut self, e0: P<Expr>, lo: Span) -> PResult<'a, P<Expr>> {
        let mut e = e0;
        let mut hi;
        loop {
            
            while self.eat(&token::Question) {
                let hi = self.prev_span;
                e = self.mk_expr(lo.to(hi), ExprKind::Try(e), ThinVec::new());
            }
            
            if self.eat(&token::Dot) {
                match self.token {
                    token::Ident(..) => {
                        e = self.parse_dot_suffix(e, lo)?;
                    }
                    token::Literal(token::Integer(name), suffix) => {
                        let span = self.span;
                        self.bump();
                        let field = ExprKind::Field(e, Ident::new(name, span));
                        e = self.mk_expr(lo.to(span), field, ThinVec::new());
                        self.expect_no_suffix(span, "a tuple index", suffix);
                    }
                    token::Literal(token::Float(n), _suf) => {
                      self.bump();
                      let fstr = n.as_str();
                      let mut err = self.diagnostic()
                          .struct_span_err(self.prev_span, &format!("unexpected token: `{}`", n));
                      err.span_label(self.prev_span, "unexpected token");
                      if fstr.chars().all(|x| "0123456789.".contains(x)) {
                          let float = match fstr.parse::<f64>().ok() {
                              Some(f) => f,
                              None => continue,
                          };
                          let sugg = pprust::to_string(|s| {
                              use crate::print::pprust::PrintState;
                              s.popen()?;
                              s.print_expr(&e)?;
                              s.s.word( ".")?;
                              s.print_usize(float.trunc() as usize)?;
                              s.pclose()?;
                              s.s.word(".")?;
                              s.s.word(fstr.splitn(2, ".").last().unwrap().to_string())
                          });
                          err.span_suggestion(
                              lo.to(self.prev_span),
                              "try parenthesizing the first index",
                              sugg,
                              Applicability::MachineApplicable
                          );
                      }
                      return Err(err);
                    }
                    _ => {
                        
                        let actual = self.this_token_to_string();
                        self.span_err(self.span, &format!("unexpected token: `{}`", actual));
                    }
                }
                continue;
            }
            if self.expr_is_complete(&e) { break; }
            match self.token {
                
                token::OpenDelim(token::Paren) => {
                    let seq = self.parse_unspanned_seq(
                        &token::OpenDelim(token::Paren),
                        &token::CloseDelim(token::Paren),
                        SeqSep::trailing_allowed(token::Comma),
                        |p| Ok(p.parse_expr()?)
                    ).map(|es| {
                        let nd = self.mk_call(e, es);
                        let hi = self.prev_span;
                        self.mk_expr(lo.to(hi), nd, ThinVec::new())
                    });
                    e = self.recover_seq_parse_error(token::Paren, lo, seq);
                }
                
                
                token::OpenDelim(token::Bracket) => {
                    self.bump();
                    let ix = self.parse_expr()?;
                    hi = self.span;
                    self.expect(&token::CloseDelim(token::Bracket))?;
                    let index = self.mk_index(e, ix);
                    e = self.mk_expr(lo.to(hi), index, ThinVec::new())
                }
                _ => return Ok(e)
            }
        }
        return Ok(e);
    }
    fn recover_seq_parse_error(
        &mut self,
        delim: token::DelimToken,
        lo: Span,
        result: PResult<'a, P<Expr>>,
    ) -> P<Expr> {
        match result {
            Ok(x) => x,
            Err(mut err) => {
                err.emit();
                
                self.consume_block(delim);
                self.mk_expr(lo.to(self.prev_span), ExprKind::Err, ThinVec::new())
            }
        }
    }
    crate fn process_potential_macro_variable(&mut self) {
        let (token, span) = match self.token {
            token::Dollar if self.span.ctxt() != syntax_pos::hygiene::SyntaxContext::empty() &&
                             self.look_ahead(1, |t| t.is_ident()) => {
                self.bump();
                let name = match self.token {
                    token::Ident(ident, _) => ident,
                    _ => unreachable!()
                };
                let mut err = self.fatal(&format!("unknown macro variable `{}`", name));
                err.span_label(self.span, "unknown macro variable");
                err.emit();
                self.bump();
                return
            }
            token::Interpolated(ref nt) => {
                self.meta_var_span = Some(self.span);
                
                
                match **nt {
                    token::NtIdent(ident, is_raw) => (token::Ident(ident, is_raw), ident.span),
                    token::NtLifetime(ident) => (token::Lifetime(ident), ident.span),
                    _ => return,
                }
            }
            _ => return,
        };
        self.token = token;
        self.span = span;
    }
    
    crate fn parse_token_tree(&mut self) -> TokenTree {
        match self.token {
            token::OpenDelim(..) => {
                let frame = mem::replace(&mut self.token_cursor.frame,
                                         self.token_cursor.stack.pop().unwrap());
                self.span = frame.span.entire();
                self.bump();
                TokenTree::Delimited(
                    frame.span,
                    frame.delim,
                    frame.tree_cursor.stream.into(),
                )
            },
            token::CloseDelim(_) | token::Eof => unreachable!(),
            _ => {
                let (token, span) = (mem::replace(&mut self.token, token::Whitespace), self.span);
                self.bump();
                TokenTree::Token(span, token)
            }
        }
    }
    
    
    pub fn parse_all_token_trees(&mut self) -> PResult<'a, Vec<TokenTree>> {
        let mut tts = Vec::new();
        while self.token != token::Eof {
            tts.push(self.parse_token_tree());
        }
        Ok(tts)
    }
    pub fn parse_tokens(&mut self) -> TokenStream {
        let mut result = Vec::new();
        loop {
            match self.token {
                token::Eof | token::CloseDelim(..) => break,
                _ => result.push(self.parse_token_tree().into()),
            }
        }
        TokenStream::new(result)
    }
    
    fn parse_prefix_expr(&mut self,
                             already_parsed_attrs: Option<ThinVec<Attribute>>)
                             -> PResult<'a, P<Expr>> {
        let attrs = self.parse_or_use_outer_attributes(already_parsed_attrs)?;
        let lo = self.span;
        
        let (hi, ex) = match self.token {
            token::Not => {
                self.bump();
                let e = self.parse_prefix_expr(None);
                let (span, e) = self.interpolated_or_expr_span(e)?;
                (lo.to(span), self.mk_unary(UnOp::Not, e))
            }
            
            token::Tilde => {
                self.bump();
                let e = self.parse_prefix_expr(None);
                let (span, e) = self.interpolated_or_expr_span(e)?;
                let span_of_tilde = lo;
                let mut err = self.diagnostic()
                    .struct_span_err(span_of_tilde, "`~` cannot be used as a unary operator");
                err.span_suggestion_short(
                    span_of_tilde,
                    "use `!` to perform bitwise negation",
                    "!".to_owned(),
                    Applicability::MachineApplicable
                );
                err.emit();
                (lo.to(span), self.mk_unary(UnOp::Not, e))
            }
            token::BinOp(token::Minus) => {
                self.bump();
                let e = self.parse_prefix_expr(None);
                let (span, e) = self.interpolated_or_expr_span(e)?;
                (lo.to(span), self.mk_unary(UnOp::Neg, e))
            }
            token::BinOp(token::Star) => {
                self.bump();
                let e = self.parse_prefix_expr(None);
                let (span, e) = self.interpolated_or_expr_span(e)?;
                (lo.to(span), self.mk_unary(UnOp::Deref, e))
            }
            token::BinOp(token::And) | token::AndAnd => {
                self.expect_and()?;
                let m = self.parse_mutability();
                let e = self.parse_prefix_expr(None);
                let (span, e) = self.interpolated_or_expr_span(e)?;
                (lo.to(span), ExprKind::AddrOf(m, e))
            }
            token::Ident(..) if self.token.is_keyword(keywords::In) => {
                self.bump();
                let place = self.parse_expr_res(
                    Restrictions::NO_STRUCT_LITERAL,
                    None,
                )?;
                let blk = self.parse_block()?;
                let span = blk.span;
                let blk_expr = self.mk_expr(span, ExprKind::Block(blk, None), ThinVec::new());
                (lo.to(span), ExprKind::ObsoleteInPlace(place, blk_expr))
            }
            token::Ident(..) if self.token.is_keyword(keywords::Box) => {
                self.bump();
                let e = self.parse_prefix_expr(None);
                let (span, e) = self.interpolated_or_expr_span(e)?;
                (lo.to(span), ExprKind::Box(e))
            }
            token::Ident(..) if self.token.is_ident_named("not") => {
                
                
                
                let token_cannot_continue_expr = |t: &token::Token| match *t {
                    
                    
                    token::Ident(ident, is_raw) => token::ident_can_begin_expr(ident, is_raw),
                    token::Literal(..) | token::Pound => true,
                    token::Interpolated(ref nt) => match **nt {
                        token::NtIdent(..) | token::NtExpr(..) |
                        token::NtBlock(..) | token::NtPath(..) => true,
                        _ => false,
                    },
                    _ => false
                };
                let cannot_continue_expr = self.look_ahead(1, token_cannot_continue_expr);
                if cannot_continue_expr {
                    self.bump();
                    
                    let mut err = self.diagnostic()
                        .struct_span_err(self.span,
                                         &format!("unexpected {} after identifier",
                                                  self.this_token_descr()));
                    
                    
                    let to_replace = self.sess.source_map()
                        .span_until_non_whitespace(lo.to(self.span));
                    err.span_suggestion_short(
                        to_replace,
                        "use `!` to perform logical negation",
                        "!".to_owned(),
                        Applicability::MachineApplicable
                    );
                    err.emit();
                    
                    
                    let e = self.parse_prefix_expr(None);
                    let (span, e) = self.interpolated_or_expr_span(e)?;
                    (lo.to(span), self.mk_unary(UnOp::Not, e))
                } else {
                    return self.parse_dot_or_call_expr(Some(attrs));
                }
            }
            _ => { return self.parse_dot_or_call_expr(Some(attrs)); }
        };
        return Ok(self.mk_expr(lo.to(hi), ex, attrs));
    }
    
    
    
    
    #[inline]
    fn parse_assoc_expr(&mut self,
                            already_parsed_attrs: Option<ThinVec<Attribute>>)
                            -> PResult<'a, P<Expr>> {
        self.parse_assoc_expr_with(0, already_parsed_attrs.into())
    }
    
    fn parse_assoc_expr_with(&mut self,
                                 min_prec: usize,
                                 lhs: LhsExpr)
                                 -> PResult<'a, P<Expr>> {
        let mut lhs = if let LhsExpr::AlreadyParsed(expr) = lhs {
            expr
        } else {
            let attrs = match lhs {
                LhsExpr::AttributesParsed(attrs) => Some(attrs),
                _ => None,
            };
            if [token::DotDot, token::DotDotDot, token::DotDotEq].contains(&self.token) {
                return self.parse_prefix_range_expr(attrs);
            } else {
                self.parse_prefix_expr(attrs)?
            }
        };
        if self.expr_is_complete(&lhs) {
            
            return Ok(lhs);
        }
        self.expected_tokens.push(TokenType::Operator);
        while let Some(op) = AssocOp::from_token(&self.token) {
            
            
            
            
            let lhs_span = match (self.prev_token_kind, &lhs.node) {
                (PrevTokenKind::Interpolated, _) => self.prev_span,
                (PrevTokenKind::Ident, &ExprKind::Path(None, ref path))
                    if path.segments.len() == 1 => self.prev_span,
                _ => lhs.span,
            };
            let cur_op_span = self.span;
            let restrictions = if op.is_assign_like() {
                self.restrictions & Restrictions::NO_STRUCT_LITERAL
            } else {
                self.restrictions
            };
            if op.precedence() < min_prec {
                break;
            }
            
            if self.token == token::DotDotDot && op == AssocOp::DotDotEq {
                self.err_dotdotdot_syntax(self.span);
            }
            self.bump();
            if op.is_comparison() {
                self.check_no_chained_comparison(&lhs, &op);
            }
            
            if op == AssocOp::As {
                lhs = self.parse_assoc_op_cast(lhs, lhs_span, ExprKind::Cast)?;
                continue
            } else if op == AssocOp::Colon {
                let maybe_path = self.could_ascription_be_path(&lhs.node);
                let next_sp = self.span;
                lhs = match self.parse_assoc_op_cast(lhs, lhs_span, ExprKind::Type) {
                    Ok(lhs) => lhs,
                    Err(mut err) => {
                        self.bad_type_ascription(
                            &mut err,
                            lhs_span,
                            cur_op_span,
                            next_sp,
                            maybe_path,
                        );
                        return Err(err);
                    }
                };
                continue
            } else if op == AssocOp::DotDot || op == AssocOp::DotDotEq {
                
                
                
                
                
                let rhs = if self.is_at_start_of_range_notation_rhs() {
                    Some(self.parse_assoc_expr_with(op.precedence() + 1,
                                                    LhsExpr::NotYetParsed)?)
                } else {
                    None
                };
                let (lhs_span, rhs_span) = (lhs.span, if let Some(ref x) = rhs {
                    x.span
                } else {
                    cur_op_span
                });
                let limits = if op == AssocOp::DotDot {
                    RangeLimits::HalfOpen
                } else {
                    RangeLimits::Closed
                };
                let r = self.mk_range(Some(lhs), rhs, limits)?;
                lhs = self.mk_expr(lhs_span.to(rhs_span), r, ThinVec::new());
                break
            }
            let rhs = match op.fixity() {
                Fixity::Right => self.with_res(
                    restrictions - Restrictions::STMT_EXPR,
                    |this| {
                        this.parse_assoc_expr_with(op.precedence(),
                            LhsExpr::NotYetParsed)
                }),
                Fixity::Left => self.with_res(
                    restrictions - Restrictions::STMT_EXPR,
                    |this| {
                        this.parse_assoc_expr_with(op.precedence() + 1,
                            LhsExpr::NotYetParsed)
                }),
                
                
                Fixity::None => self.with_res(
                    restrictions - Restrictions::STMT_EXPR,
                    |this| {
                        this.parse_assoc_expr_with(op.precedence() + 1,
                            LhsExpr::NotYetParsed)
                }),
            }?;
            
            
            let lhs_span = lhs
                .attrs
                .iter()
                .filter(|a| a.style == AttrStyle::Outer)
                .next()
                .map_or(lhs_span, |a| a.span);
            let span = lhs_span.to(rhs.span);
            lhs = match op {
                AssocOp::Add | AssocOp::Subtract | AssocOp::Multiply | AssocOp::Divide |
                AssocOp::Modulus | AssocOp::LAnd | AssocOp::LOr | AssocOp::BitXor |
                AssocOp::BitAnd | AssocOp::BitOr | AssocOp::ShiftLeft | AssocOp::ShiftRight |
                AssocOp::Equal | AssocOp::Less | AssocOp::LessEqual | AssocOp::NotEqual |
                AssocOp::Greater | AssocOp::GreaterEqual => {
                    let ast_op = op.to_ast_binop().unwrap();
                    let binary = self.mk_binary(source_map::respan(cur_op_span, ast_op), lhs, rhs);
                    self.mk_expr(span, binary, ThinVec::new())
                }
                AssocOp::Assign =>
                    self.mk_expr(span, ExprKind::Assign(lhs, rhs), ThinVec::new()),
                AssocOp::ObsoleteInPlace =>
                    self.mk_expr(span, ExprKind::ObsoleteInPlace(lhs, rhs), ThinVec::new()),
                AssocOp::AssignOp(k) => {
                    let aop = match k {
                        token::Plus =>    BinOpKind::Add,
                        token::Minus =>   BinOpKind::Sub,
                        token::Star =>    BinOpKind::Mul,
                        token::Slash =>   BinOpKind::Div,
                        token::Percent => BinOpKind::Rem,
                        token::Caret =>   BinOpKind::BitXor,
                        token::And =>     BinOpKind::BitAnd,
                        token::Or =>      BinOpKind::BitOr,
                        token::Shl =>     BinOpKind::Shl,
                        token::Shr =>     BinOpKind::Shr,
                    };
                    let aopexpr = self.mk_assign_op(source_map::respan(cur_op_span, aop), lhs, rhs);
                    self.mk_expr(span, aopexpr, ThinVec::new())
                }
                AssocOp::As | AssocOp::Colon | AssocOp::DotDot | AssocOp::DotDotEq => {
                    self.bug("AssocOp should have been handled by special case")
                }
            };
            if op.fixity() == Fixity::None { break }
        }
        Ok(lhs)
    }
    fn could_ascription_be_path(&self, node: &ast::ExprKind) -> bool {
        self.token.is_ident() &&
            if let ast::ExprKind::Path(..) = node { true } else { false } &&
            !self.token.is_reserved_ident() &&           
            self.look_ahead(1, |t| t == &token::OpenDelim(token::Paren)) ||
            self.look_ahead(1, |t| t == &token::Lt) &&     
            self.look_ahead(2, |t| t.is_ident()) ||
            self.look_ahead(1, |t| t == &token::Colon) &&  
            self.look_ahead(2, |t| t.is_ident()) ||
            self.look_ahead(1, |t| t == &token::ModSep) &&  
            self.look_ahead(2, |t| t.is_ident())
    }
    fn bad_type_ascription(
        &self,
        err: &mut DiagnosticBuilder<'a>,
        lhs_span: Span,
        cur_op_span: Span,
        next_sp: Span,
        maybe_path: bool,
    ) {
        err.span_label(self.span, "expecting a type here because of type ascription");
        let cm = self.sess.source_map();
        let next_pos = cm.lookup_char_pos(next_sp.lo());
        let op_pos = cm.lookup_char_pos(cur_op_span.hi());
        if op_pos.line != next_pos.line {
            err.span_suggestion(
                cur_op_span,
                "try using a semicolon",
                ";".to_string(),
                Applicability::MaybeIncorrect,
            );
        } else {
            if maybe_path {
                err.span_suggestion(
                    cur_op_span,
                    "maybe you meant to write a path separator here",
                    "::".to_string(),
                    Applicability::MaybeIncorrect,
                );
            } else {
                err.note("type ascription is a nightly-only feature that lets \
                          you annotate an expression with a type: `<expr>: <type>`");
                err.span_note(
                    lhs_span,
                    "this expression expects an ascribed type after the colon",
                );
                err.help("this might be indicative of a syntax error elsewhere");
            }
        }
    }
    fn parse_assoc_op_cast(&mut self, lhs: P<Expr>, lhs_span: Span,
                           expr_kind: fn(P<Expr>, P<Ty>) -> ExprKind)
                           -> PResult<'a, P<Expr>> {
        let mk_expr = |this: &mut Self, rhs: P<Ty>| {
            this.mk_expr(lhs_span.to(rhs.span), expr_kind(lhs, rhs), ThinVec::new())
        };
        
        
        let parser_snapshot_before_type = self.clone();
        match self.parse_ty_no_plus() {
            Ok(rhs) => {
                Ok(mk_expr(self, rhs))
            }
            Err(mut type_err) => {
                
                
                
                let parser_snapshot_after_type = self.clone();
                mem::replace(self, parser_snapshot_before_type);
                match self.parse_path(PathStyle::Expr) {
                    Ok(path) => {
                        let (op_noun, op_verb) = match self.token {
                            token::Lt => ("comparison", "comparing"),
                            token::BinOp(token::Shl) => ("shift", "shifting"),
                            _ => {
                                
                                
                                
                                
                                mem::replace(self, parser_snapshot_after_type);
                                return Err(type_err);
                            }
                        };
                        
                        type_err.cancel();
                        
                        
                        let msg = format!("`<` is interpreted as a start of generic \
                                           arguments for `{}`, not a {}", path, op_noun);
                        let mut err = self.sess.span_diagnostic.struct_span_err(self.span, &msg);
                        err.span_label(self.look_ahead_span(1).to(parser_snapshot_after_type.span),
                                       "interpreted as generic arguments");
                        err.span_label(self.span, format!("not interpreted as {}", op_noun));
                        let expr = mk_expr(self, P(Ty {
                            span: path.span,
                            node: TyKind::Path(None, path),
                            id: ast::DUMMY_NODE_ID
                        }));
                        let expr_str = self.sess.source_map().span_to_snippet(expr.span)
                                                .unwrap_or_else(|_| pprust::expr_to_string(&expr));
                        err.span_suggestion(
                            expr.span,
                            &format!("try {} the cast value", op_verb),
                            format!("({})", expr_str),
                            Applicability::MachineApplicable
                        );
                        err.emit();
                        Ok(expr)
                    }
                    Err(mut path_err) => {
                        
                        path_err.cancel();
                        mem::replace(self, parser_snapshot_after_type);
                        Err(type_err)
                    }
                }
            }
        }
    }
    
    
    
    fn check_no_chained_comparison(&mut self, lhs: &Expr, outer_op: &AssocOp) {
        debug_assert!(outer_op.is_comparison(),
                      "check_no_chained_comparison: {:?} is not comparison",
                      outer_op);
        match lhs.node {
            ExprKind::Binary(op, _, _) if op.node.is_comparison() => {
                
                let op_span = op.span.to(self.span);
                let mut err = self.diagnostic().struct_span_err(op_span,
                    "chained comparison operators require parentheses");
                if op.node == BinOpKind::Lt &&
                    *outer_op == AssocOp::Less ||  
                    *outer_op == AssocOp::Greater  
                {                                  
                    err.help(
                        "use `::<...>` instead of `<...>` if you meant to specify type arguments");
                    err.help("or use `(...)` if you meant to specify fn arguments");
                }
                err.emit();
            }
            _ => {}
        }
    }
    
    fn parse_prefix_range_expr(&mut self,
                               already_parsed_attrs: Option<ThinVec<Attribute>>)
                               -> PResult<'a, P<Expr>> {
        
        if self.token == token::DotDotDot {
            self.err_dotdotdot_syntax(self.span);
        }
        debug_assert!([token::DotDot, token::DotDotDot, token::DotDotEq].contains(&self.token),
                      "parse_prefix_range_expr: token {:?} is not DotDot/DotDotEq",
                      self.token);
        let tok = self.token.clone();
        let attrs = self.parse_or_use_outer_attributes(already_parsed_attrs)?;
        let lo = self.span;
        let mut hi = self.span;
        self.bump();
        let opt_end = if self.is_at_start_of_range_notation_rhs() {
            
            let next_prec = AssocOp::from_token(&tok).unwrap().precedence() + 1;
            Some(self.parse_assoc_expr_with(next_prec,
                                            LhsExpr::NotYetParsed)
                .map(|x|{
                    hi = x.span;
                    x
                })?)
         } else {
            None
        };
        let limits = if tok == token::DotDot {
            RangeLimits::HalfOpen
        } else {
            RangeLimits::Closed
        };
        let r = self.mk_range(None, opt_end, limits)?;
        Ok(self.mk_expr(lo.to(hi), r, attrs))
    }
    fn is_at_start_of_range_notation_rhs(&self) -> bool {
        if self.token.can_begin_expr() {
            
            if self.token == token::OpenDelim(token::Brace) {
                return !self.restrictions.contains(Restrictions::NO_STRUCT_LITERAL);
            }
            true
        } else {
            false
        }
    }
    
    fn parse_if_expr(&mut self, attrs: ThinVec<Attribute>) -> PResult<'a, P<Expr>> {
        if self.check_keyword(keywords::Let) {
            return self.parse_if_let_expr(attrs);
        }
        let lo = self.prev_span;
        let cond = self.parse_expr_res(Restrictions::NO_STRUCT_LITERAL, None)?;
        
        
        
        
        if self.eat_keyword(keywords::Else) || !cond.returns() {
            let sp = self.sess.source_map().next_point(lo);
            let mut err = self.diagnostic()
                .struct_span_err(sp, "missing condition for `if` statemement");
            err.span_label(sp, "expected if condition here");
            return Err(err)
        }
        let not_block = self.token != token::OpenDelim(token::Brace);
        let thn = self.parse_block().map_err(|mut err| {
            if not_block {
                err.span_label(lo, "this `if` statement has a condition, but no block");
            }
            err
        })?;
        let mut els: Option<P<Expr>> = None;
        let mut hi = thn.span;
        if self.eat_keyword(keywords::Else) {
            let elexpr = self.parse_else_expr()?;
            hi = elexpr.span;
            els = Some(elexpr);
        }
        Ok(self.mk_expr(lo.to(hi), ExprKind::If(cond, thn, els), attrs))
    }
    
    fn parse_if_let_expr(&mut self, attrs: ThinVec<Attribute>)
                             -> PResult<'a, P<Expr>> {
        let lo = self.prev_span;
        self.expect_keyword(keywords::Let)?;
        let pats = self.parse_pats()?;
        self.expect(&token::Eq)?;
        let expr = self.parse_expr_res(Restrictions::NO_STRUCT_LITERAL, None)?;
        let thn = self.parse_block()?;
        let (hi, els) = if self.eat_keyword(keywords::Else) {
            let expr = self.parse_else_expr()?;
            (expr.span, Some(expr))
        } else {
            (thn.span, None)
        };
        Ok(self.mk_expr(lo.to(hi), ExprKind::IfLet(pats, expr, thn, els), attrs))
    }
    
    fn parse_lambda_expr(&mut self,
                             attrs: ThinVec<Attribute>)
                             -> PResult<'a, P<Expr>>
    {
        let lo = self.span;
        let movability = if self.eat_keyword(keywords::Static) {
            Movability::Static
        } else {
            Movability::Movable
        };
        let asyncness = if self.span.rust_2018() {
            self.parse_asyncness()
        } else {
            IsAsync::NotAsync
        };
        let capture_clause = if self.eat_keyword(keywords::Move) {
            CaptureBy::Value
        } else {
            CaptureBy::Ref
        };
        let decl = self.parse_fn_block_decl()?;
        let decl_hi = self.prev_span;
        let body = match decl.output {
            FunctionRetTy::Default(_) => {
                let restrictions = self.restrictions - Restrictions::STMT_EXPR;
                self.parse_expr_res(restrictions, None)?
            },
            _ => {
                
                
                let body_lo = self.span;
                self.parse_block_expr(None, body_lo, BlockCheckMode::Default, ThinVec::new())?
            }
        };
        Ok(self.mk_expr(
            lo.to(body.span),
            ExprKind::Closure(capture_clause, asyncness, movability, decl, body, lo.to(decl_hi)),
            attrs))
    }
    
    fn parse_else_expr(&mut self) -> PResult<'a, P<Expr>> {
        if self.eat_keyword(keywords::If) {
            return self.parse_if_expr(ThinVec::new());
        } else {
            let blk = self.parse_block()?;
            return Ok(self.mk_expr(blk.span, ExprKind::Block(blk, None), ThinVec::new()));
        }
    }
    
    fn parse_for_expr(&mut self, opt_label: Option<Label>,
                          span_lo: Span,
                          mut attrs: ThinVec<Attribute>) -> PResult<'a, P<Expr>> {
        
        let pat = self.parse_top_level_pat()?;
        if !self.eat_keyword(keywords::In) {
            let in_span = self.prev_span.between(self.span);
            let mut err = self.sess.span_diagnostic
                .struct_span_err(in_span, "missing `in` in `for` loop");
            err.span_suggestion_short(
                in_span, "try adding `in` here", " in ".into(),
                
                Applicability::MaybeIncorrect
            );
            err.emit();
        }
        let in_span = self.prev_span;
        if self.eat_keyword(keywords::In) {
            
            let mut err = self.sess.span_diagnostic.struct_span_err(
                self.prev_span,
                "expected iterable, found keyword `in`",
            );
            err.span_suggestion_short(
                in_span.until(self.prev_span),
                "remove the duplicated `in`",
                String::new(),
                Applicability::MachineApplicable,
            );
            err.note("if you meant to use emplacement syntax, it is obsolete (for now, anyway)");
            err.note("for more information on the status of emplacement syntax, see <\
                      https://github.com/rust-lang/rust/issues/27779#issuecomment-378416911>");
            err.emit();
        }
        let expr = self.parse_expr_res(Restrictions::NO_STRUCT_LITERAL, None)?;
        let (iattrs, loop_block) = self.parse_inner_attrs_and_block()?;
        attrs.extend(iattrs);
        let hi = self.prev_span;
        Ok(self.mk_expr(span_lo.to(hi), ExprKind::ForLoop(pat, expr, loop_block, opt_label), attrs))
    }
    
    fn parse_while_expr(&mut self, opt_label: Option<Label>,
                            span_lo: Span,
                            mut attrs: ThinVec<Attribute>) -> PResult<'a, P<Expr>> {
        if self.token.is_keyword(keywords::Let) {
            return self.parse_while_let_expr(opt_label, span_lo, attrs);
        }
        let cond = self.parse_expr_res(Restrictions::NO_STRUCT_LITERAL, None)?;
        let (iattrs, body) = self.parse_inner_attrs_and_block()?;
        attrs.extend(iattrs);
        let span = span_lo.to(body.span);
        return Ok(self.mk_expr(span, ExprKind::While(cond, body, opt_label), attrs));
    }
    
    fn parse_while_let_expr(&mut self, opt_label: Option<Label>,
                                span_lo: Span,
                                mut attrs: ThinVec<Attribute>) -> PResult<'a, P<Expr>> {
        self.expect_keyword(keywords::Let)?;
        let pats = self.parse_pats()?;
        self.expect(&token::Eq)?;
        let expr = self.parse_expr_res(Restrictions::NO_STRUCT_LITERAL, None)?;
        let (iattrs, body) = self.parse_inner_attrs_and_block()?;
        attrs.extend(iattrs);
        let span = span_lo.to(body.span);
        return Ok(self.mk_expr(span, ExprKind::WhileLet(pats, expr, body, opt_label), attrs));
    }
    
    fn parse_loop_expr(&mut self, opt_label: Option<Label>,
                           span_lo: Span,
                           mut attrs: ThinVec<Attribute>) -> PResult<'a, P<Expr>> {
        let (iattrs, body) = self.parse_inner_attrs_and_block()?;
        attrs.extend(iattrs);
        let span = span_lo.to(body.span);
        Ok(self.mk_expr(span, ExprKind::Loop(body, opt_label), attrs))
    }
    
    pub fn parse_async_block(&mut self, mut attrs: ThinVec<Attribute>)
        -> PResult<'a, P<Expr>>
    {
        let span_lo = self.span;
        self.expect_keyword(keywords::Async)?;
        let capture_clause = if self.eat_keyword(keywords::Move) {
            CaptureBy::Value
        } else {
            CaptureBy::Ref
        };
        let (iattrs, body) = self.parse_inner_attrs_and_block()?;
        attrs.extend(iattrs);
        Ok(self.mk_expr(
            span_lo.to(body.span),
            ExprKind::Async(capture_clause, ast::DUMMY_NODE_ID, body), attrs))
    }
    
    fn parse_try_block(&mut self, span_lo: Span, mut attrs: ThinVec<Attribute>)
        -> PResult<'a, P<Expr>>
    {
        let (iattrs, body) = self.parse_inner_attrs_and_block()?;
        attrs.extend(iattrs);
        Ok(self.mk_expr(span_lo.to(body.span), ExprKind::TryBlock(body), attrs))
    }
    
    fn parse_match_expr(&mut self, mut attrs: ThinVec<Attribute>) -> PResult<'a, P<Expr>> {
        let match_span = self.prev_span;
        let lo = self.prev_span;
        let discriminant = self.parse_expr_res(Restrictions::NO_STRUCT_LITERAL,
                                               None)?;
        if let Err(mut e) = self.expect(&token::OpenDelim(token::Brace)) {
            if self.token == token::Token::Semi {
                e.span_suggestion_short(
                    match_span,
                    "try removing this `match`",
                    String::new(),
                    Applicability::MaybeIncorrect 
                );
            }
            return Err(e)
        }
        attrs.extend(self.parse_inner_attributes()?);
        let mut arms: Vec<Arm> = Vec::new();
        while self.token != token::CloseDelim(token::Brace) {
            match self.parse_arm() {
                Ok(arm) => arms.push(arm),
                Err(mut e) => {
                    
                    e.emit();
                    self.recover_stmt();
                    let span = lo.to(self.span);
                    if self.token == token::CloseDelim(token::Brace) {
                        self.bump();
                    }
                    return Ok(self.mk_expr(span, ExprKind::Match(discriminant, arms), attrs));
                }
            }
        }
        let hi = self.span;
        self.bump();
        return Ok(self.mk_expr(lo.to(hi), ExprKind::Match(discriminant, arms), attrs));
    }
    crate fn parse_arm(&mut self) -> PResult<'a, Arm> {
        maybe_whole!(self, NtArm, |x| x);
        let attrs = self.parse_outer_attributes()?;
        let pats = self.parse_pats()?;
        let guard = if self.eat_keyword(keywords::If) {
            Some(Guard::If(self.parse_expr()?))
        } else {
            None
        };
        let arrow_span = self.span;
        self.expect(&token::FatArrow)?;
        let arm_start_span = self.span;
        let expr = self.parse_expr_res(Restrictions::STMT_EXPR, None)
            .map_err(|mut err| {
                err.span_label(arrow_span, "while parsing the `match` arm starting here");
                err
            })?;
        let require_comma = classify::expr_requires_semi_to_be_stmt(&expr)
            && self.token != token::CloseDelim(token::Brace);
        if require_comma {
            let cm = self.sess.source_map();
            self.expect_one_of(&[token::Comma], &[token::CloseDelim(token::Brace)])
                .map_err(|mut err| {
                    match (cm.span_to_lines(expr.span), cm.span_to_lines(arm_start_span)) {
                        (Ok(ref expr_lines), Ok(ref arm_start_lines))
                        if arm_start_lines.lines[0].end_col == expr_lines.lines[0].end_col
                            && expr_lines.lines.len() == 2
                            && self.token == token::FatArrow => {
                            
                            
                            
                            
                            
                            
                            
                            
                            
                            
                            
                            err.span_suggestion_short(
                                cm.next_point(arm_start_span),
                                "missing a comma here to end this `match` arm",
                                ",".to_owned(),
                                Applicability::MachineApplicable
                            );
                        }
                        _ => {
                            err.span_label(arrow_span,
                                           "while parsing the `match` arm starting here");
                        }
                    }
                    err
                })?;
        } else {
            self.eat(&token::Comma);
        }
        Ok(ast::Arm {
            attrs,
            pats,
            guard,
            body: expr,
        })
    }
    
    #[inline]
    pub fn parse_expr(&mut self) -> PResult<'a, P<Expr>> {
        self.parse_expr_res(Restrictions::empty(), None)
    }
    
    
    
    fn with_res<F, T>(&mut self, r: Restrictions, f: F) -> T
        where F: FnOnce(&mut Self) -> T
    {
        let old = self.restrictions;
        self.restrictions = r;
        let r = f(self);
        self.restrictions = old;
        return r;
    }
    
    #[inline]
    fn parse_expr_res(&mut self, r: Restrictions,
                          already_parsed_attrs: Option<ThinVec<Attribute>>)
                          -> PResult<'a, P<Expr>> {
        self.with_res(r, |this| this.parse_assoc_expr(already_parsed_attrs))
    }
    
    fn parse_initializer(&mut self, skip_eq: bool) -> PResult<'a, Option<P<Expr>>> {
        if self.eat(&token::Eq) {
            Ok(Some(self.parse_expr()?))
        } else if skip_eq {
            Ok(Some(self.parse_expr()?))
        } else {
            Ok(None)
        }
    }
    
    fn parse_pats(&mut self) -> PResult<'a, Vec<P<Pat>>> {
        
        self.eat(&token::BinOp(token::Or));
        let mut pats = Vec::new();
        loop {
            pats.push(self.parse_top_level_pat()?);
            if self.token == token::OrOr {
                let mut err = self.struct_span_err(self.span,
                                                   "unexpected token `||` after pattern");
                err.span_suggestion(
                    self.span,
                    "use a single `|` to specify multiple patterns",
                    "|".to_owned(),
                    Applicability::MachineApplicable
                );
                err.emit();
                self.bump();
            } else if self.eat(&token::BinOp(token::Or)) {
                
                
            } else {
                return Ok(pats);
            }
        };
    }
    
    
    
    
    
    
    fn parse_parenthesized_pat_list(&mut self) -> PResult<'a, (Vec<P<Pat>>, Option<usize>, bool)> {
        self.expect(&token::OpenDelim(token::Paren))?;
        let result = match self.parse_pat_list() {
            Ok(result) => result,
            Err(mut err) => { 
                err.emit();
                self.consume_block(token::Paren);
                return Ok((vec![], Some(0), false));
            }
        };
        self.expect(&token::CloseDelim(token::Paren))?;
        Ok(result)
    }
    fn parse_pat_list(&mut self) -> PResult<'a, (Vec<P<Pat>>, Option<usize>, bool)> {
        let mut fields = Vec::new();
        let mut ddpos = None;
        let mut prev_dd_sp = None;
        let mut trailing_comma = false;
        loop {
            if self.eat(&token::DotDot) {
                if ddpos.is_none() {
                    ddpos = Some(fields.len());
                    prev_dd_sp = Some(self.prev_span);
                } else {
                    
                    let mut err = self.struct_span_err(
                        self.prev_span,
                        "`..` can only be used once per tuple or tuple struct pattern",
                    );
                    err.span_label(self.prev_span, "can only be used once per pattern");
                    if let Some(sp) = prev_dd_sp {
                        err.span_label(sp, "previously present here");
                    }
                    err.emit();
                }
            } else if !self.check(&token::CloseDelim(token::Paren)) {
                fields.push(self.parse_pat(None)?);
            } else {
                break
            }
            trailing_comma = self.eat(&token::Comma);
            if !trailing_comma {
                break
            }
        }
        if ddpos == Some(fields.len()) && trailing_comma {
            
            let msg = "trailing comma is not permitted after `..`";
            self.struct_span_err(self.prev_span, msg)
                .span_label(self.prev_span, msg)
                .emit();
        }
        Ok((fields, ddpos, trailing_comma))
    }
    fn parse_pat_vec_elements(
        &mut self,
    ) -> PResult<'a, (Vec<P<Pat>>, Option<P<Pat>>, Vec<P<Pat>>)> {
        let mut before = Vec::new();
        let mut slice = None;
        let mut after = Vec::new();
        let mut first = true;
        let mut before_slice = true;
        while self.token != token::CloseDelim(token::Bracket) {
            if first {
                first = false;
            } else {
                self.expect(&token::Comma)?;
                if self.token == token::CloseDelim(token::Bracket)
                        && (before_slice || !after.is_empty()) {
                    break
                }
            }
            if before_slice {
                if self.eat(&token::DotDot) {
                    if self.check(&token::Comma) ||
                            self.check(&token::CloseDelim(token::Bracket)) {
                        slice = Some(P(Pat {
                            id: ast::DUMMY_NODE_ID,
                            node: PatKind::Wild,
                            span: self.prev_span,
                        }));
                        before_slice = false;
                    }
                    continue
                }
            }
            let subpat = self.parse_pat(None)?;
            if before_slice && self.eat(&token::DotDot) {
                slice = Some(subpat);
                before_slice = false;
            } else if before_slice {
                before.push(subpat);
            } else {
                after.push(subpat);
            }
        }
        Ok((before, slice, after))
    }
    fn parse_pat_field(
        &mut self,
        lo: Span,
        attrs: Vec<Attribute>
    ) -> PResult<'a, source_map::Spanned<ast::FieldPat>> {
        
        let hi;
        let (subpat, fieldname, is_shorthand) = if self.look_ahead(1, |t| t == &token::Colon) {
            
            let fieldname = self.parse_field_name()?;
            self.bump();
            let pat = self.parse_pat(None)?;
            hi = pat.span;
            (pat, fieldname, false)
        } else {
            
            let is_box = self.eat_keyword(keywords::Box);
            let boxed_span = self.span;
            let is_ref = self.eat_keyword(keywords::Ref);
            let is_mut = self.eat_keyword(keywords::Mut);
            let fieldname = self.parse_ident()?;
            hi = self.prev_span;
            let bind_type = match (is_ref, is_mut) {
                (true, true) => BindingMode::ByRef(Mutability::Mutable),
                (true, false) => BindingMode::ByRef(Mutability::Immutable),
                (false, true) => BindingMode::ByValue(Mutability::Mutable),
                (false, false) => BindingMode::ByValue(Mutability::Immutable),
            };
            let fieldpat = P(Pat {
                id: ast::DUMMY_NODE_ID,
                node: PatKind::Ident(bind_type, fieldname, None),
                span: boxed_span.to(hi),
            });
            let subpat = if is_box {
                P(Pat {
                    id: ast::DUMMY_NODE_ID,
                    node: PatKind::Box(fieldpat),
                    span: lo.to(hi),
                })
            } else {
                fieldpat
            };
            (subpat, fieldname, true)
        };
        Ok(source_map::Spanned {
            span: lo.to(hi),
            node: ast::FieldPat {
                ident: fieldname,
                pat: subpat,
                is_shorthand,
                attrs: attrs.into(),
           }
        })
    }
    
    fn parse_pat_fields(&mut self) -> PResult<'a, (Vec<source_map::Spanned<ast::FieldPat>>, bool)> {
        let mut fields = Vec::new();
        let mut etc = false;
        let mut ate_comma = true;
        let mut delayed_err: Option<DiagnosticBuilder<'a>> = None;
        let mut etc_span = None;
        while self.token != token::CloseDelim(token::Brace) {
            let attrs = self.parse_outer_attributes()?;
            let lo = self.span;
            
            if !ate_comma {
                let err = self.struct_span_err(self.prev_span, "expected `,`");
                if let Some(mut delayed) = delayed_err {
                    delayed.emit();
                }
                return Err(err);
            }
            ate_comma = false;
            if self.check(&token::DotDot) || self.token == token::DotDotDot {
                etc = true;
                let mut etc_sp = self.span;
                if self.token == token::DotDotDot { 
                    
                    let mut err = self.struct_span_err(self.span,
                                                       "expected field pattern, found `...`");
                    err.span_suggestion(
                        self.span,
                        "to omit remaining fields, use one fewer `.`",
                        "..".to_owned(),
                        Applicability::MachineApplicable
                    );
                    err.emit();
                }
                self.bump();  
                if self.token == token::CloseDelim(token::Brace) {
                    etc_span = Some(etc_sp);
                    break;
                }
                let token_str = self.this_token_descr();
                let mut err = self.fatal(&format!("expected `}}`, found {}", token_str));
                err.span_label(self.span, "expected `}`");
                let mut comma_sp = None;
                if self.token == token::Comma { 
                    etc_sp = etc_sp.to(self.sess.source_map().span_until_non_whitespace(self.span));
                    err.span_label(etc_sp,
                                   "`..` must be at the end and cannot have a trailing comma");
                    comma_sp = Some(self.span);
                    self.bump();
                    ate_comma = true;
                }
                etc_span = Some(etc_sp.until(self.span));
                if self.token == token::CloseDelim(token::Brace) {
                    
                    if let Some(sp) = comma_sp {
                        err.span_suggestion_short(
                            sp,
                            "remove this comma",
                            String::new(),
                            Applicability::MachineApplicable,
                        );
                    }
                    err.emit();
                    break;
                } else if self.token.is_ident() && ate_comma {
                    
                    
                    
                    
                    if let Some(mut delayed_err) = delayed_err {
                        delayed_err.emit();
                        return Err(err);
                    } else {
                        delayed_err = Some(err);
                    }
                } else {
                    if let Some(mut err) = delayed_err {
                        err.emit();
                    }
                    return Err(err);
                }
            }
            fields.push(match self.parse_pat_field(lo, attrs) {
                Ok(field) => field,
                Err(err) => {
                    if let Some(mut delayed_err) = delayed_err {
                        delayed_err.emit();
                    }
                    return Err(err);
                }
            });
            ate_comma = self.eat(&token::Comma);
        }
        if let Some(mut err) = delayed_err {
            if let Some(etc_span) = etc_span {
                err.multipart_suggestion(
                    "move the `..` to the end of the field list",
                    vec![
                        (etc_span, String::new()),
                        (self.span, format!("{}.. }}", if ate_comma { "" } else { ", " })),
                    ],
                    Applicability::MachineApplicable,
                );
            }
            err.emit();
        }
        return Ok((fields, etc));
    }
    fn parse_pat_range_end(&mut self) -> PResult<'a, P<Expr>> {
        if self.token.is_path_start() {
            let lo = self.span;
            let (qself, path) = if self.eat_lt() {
                
                let (qself, path) = self.parse_qpath(PathStyle::Expr)?;
                (Some(qself), path)
            } else {
                
                (None, self.parse_path(PathStyle::Expr)?)
            };
            let hi = self.prev_span;
            Ok(self.mk_expr(lo.to(hi), ExprKind::Path(qself, path), ThinVec::new()))
        } else {
            self.parse_literal_maybe_minus()
        }
    }
    
    
    fn parse_as_ident(&mut self) -> bool {
        self.look_ahead(1, |t| match *t {
            token::OpenDelim(token::Paren) | token::OpenDelim(token::Brace) |
            token::DotDotDot | token::DotDotEq | token::ModSep | token::Not => Some(false),
            
            
            token::DotDot => None,
            _ => Some(true),
        }).unwrap_or_else(|| self.look_ahead(2, |t| match *t {
            token::Comma | token::CloseDelim(token::Bracket) => true,
            _ => false,
        }))
    }
    
    
    
    fn parse_top_level_pat(&mut self) -> PResult<'a, P<Pat>> {
        let pat = self.parse_pat(None)?;
        if self.token == token::Comma {
            
            
            
            
            
            let comma_span = self.span;
            self.bump();
            if let Err(mut err) = self.parse_pat_list() {
                
                
                
                err.cancel();
            }
            let seq_span = pat.span.to(self.prev_span);
            let mut err = self.struct_span_err(comma_span,
                                               "unexpected `,` in pattern");
            if let Ok(seq_snippet) = self.sess.source_map().span_to_snippet(seq_span) {
                err.span_suggestion(
                    seq_span,
                    "try adding parentheses to match on a tuple..",
                    format!("({})", seq_snippet),
                    Applicability::MachineApplicable
                ).span_suggestion(
                    seq_span,
                    "..or a vertical bar to match on multiple alternatives",
                    format!("{}", seq_snippet.replace(",", " |")),
                    Applicability::MachineApplicable
                );
            }
            return Err(err);
        }
        Ok(pat)
    }
    
    pub fn parse_pat(&mut self, expected: Option<&'static str>) -> PResult<'a, P<Pat>> {
        self.parse_pat_with_range_pat(true, expected)
    }
    
    
    fn parse_pat_with_range_pat(
        &mut self,
        allow_range_pat: bool,
        expected: Option<&'static str>,
    ) -> PResult<'a, P<Pat>> {
        maybe_recover_from_interpolated_ty_qpath!(self, true);
        maybe_whole!(self, NtPat, |x| x);
        let lo = self.span;
        let pat;
        match self.token {
            token::BinOp(token::And) | token::AndAnd => {
                
                self.expect_and()?;
                let mutbl = self.parse_mutability();
                if let token::Lifetime(ident) = self.token {
                    let mut err = self.fatal(&format!("unexpected lifetime `{}` in pattern",
                                                      ident));
                    err.span_label(self.span, "unexpected lifetime");
                    return Err(err);
                }
                let subpat = self.parse_pat_with_range_pat(false, expected)?;
                pat = PatKind::Ref(subpat, mutbl);
            }
            token::OpenDelim(token::Paren) => {
                
                let (fields, ddpos, trailing_comma) = self.parse_parenthesized_pat_list()?;
                pat = if fields.len() == 1 && ddpos.is_none() && !trailing_comma {
                    PatKind::Paren(fields.into_iter().nth(0).unwrap())
                } else {
                    PatKind::Tuple(fields, ddpos)
                };
            }
            token::OpenDelim(token::Bracket) => {
                
                self.bump();
                let (before, slice, after) = self.parse_pat_vec_elements()?;
                self.expect(&token::CloseDelim(token::Bracket))?;
                pat = PatKind::Slice(before, slice, after);
            }
            
            _ => if self.eat_keyword(keywords::Underscore) {
                
                pat = PatKind::Wild;
            } else if self.eat_keyword(keywords::Mut) {
                
                let mutref_span = self.prev_span.to(self.span);
                let binding_mode = if self.eat_keyword(keywords::Ref) {
                    self.diagnostic()
                        .struct_span_err(mutref_span, "the order of `mut` and `ref` is incorrect")
                        .span_suggestion(
                            mutref_span,
                            "try switching the order",
                            "ref mut".into(),
                            Applicability::MachineApplicable
                        ).emit();
                    BindingMode::ByRef(Mutability::Mutable)
                } else {
                    BindingMode::ByValue(Mutability::Mutable)
                };
                pat = self.parse_pat_ident(binding_mode)?;
            } else if self.eat_keyword(keywords::Ref) {
                
                let mutbl = self.parse_mutability();
                pat = self.parse_pat_ident(BindingMode::ByRef(mutbl))?;
            } else if self.eat_keyword(keywords::Box) {
                
                let subpat = self.parse_pat_with_range_pat(false, None)?;
                pat = PatKind::Box(subpat);
            } else if self.token.is_ident() && !self.token.is_reserved_ident() &&
                      self.parse_as_ident() {
                
                
                
                let binding_mode = BindingMode::ByValue(Mutability::Immutable);
                pat = self.parse_pat_ident(binding_mode)?;
            } else if self.token.is_path_start() {
                
                let (qself, path) = if self.eat_lt() {
                    
                    let (qself, path) = self.parse_qpath(PathStyle::Expr)?;
                    (Some(qself), path)
                } else {
                    
                    (None, self.parse_path(PathStyle::Expr)?)
                };
                match self.token {
                    token::Not if qself.is_none() => {
                        
                        self.bump();
                        let (delim, tts) = self.expect_delimited_token_tree()?;
                        let mac = respan(lo.to(self.prev_span), Mac_ { path, tts, delim });
                        pat = PatKind::Mac(mac);
                    }
                    token::DotDotDot | token::DotDotEq | token::DotDot => {
                        let end_kind = match self.token {
                            token::DotDot => RangeEnd::Excluded,
                            token::DotDotDot => RangeEnd::Included(RangeSyntax::DotDotDot),
                            token::DotDotEq => RangeEnd::Included(RangeSyntax::DotDotEq),
                            _ => panic!("can only parse `..`/`...`/`..=` for ranges \
                                         (checked above)"),
                        };
                        let op_span = self.span;
                        
                        let span = lo.to(self.prev_span);
                        let begin = self.mk_expr(span, ExprKind::Path(qself, path), ThinVec::new());
                        self.bump();
                        let end = self.parse_pat_range_end()?;
                        let op = Spanned { span: op_span, node: end_kind };
                        pat = PatKind::Range(begin, end, op);
                    }
                    token::OpenDelim(token::Brace) => {
                        if qself.is_some() {
                            let msg = "unexpected `{` after qualified path";
                            let mut err = self.fatal(msg);
                            err.span_label(self.span, msg);
                            return Err(err);
                        }
                        
                        self.bump();
                        let (fields, etc) = self.parse_pat_fields().unwrap_or_else(|mut e| {
                            e.emit();
                            self.recover_stmt();
                            (vec![], true)
                        });
                        self.bump();
                        pat = PatKind::Struct(path, fields, etc);
                    }
                    token::OpenDelim(token::Paren) => {
                        if qself.is_some() {
                            let msg = "unexpected `(` after qualified path";
                            let mut err = self.fatal(msg);
                            err.span_label(self.span, msg);
                            return Err(err);
                        }
                        
                        let (fields, ddpos, _) = self.parse_parenthesized_pat_list()?;
                        pat = PatKind::TupleStruct(path, fields, ddpos)
                    }
                    _ => pat = PatKind::Path(qself, path),
                }
            } else {
                
                match self.parse_literal_maybe_minus() {
                    Ok(begin) => {
                        let op_span = self.span;
                        if self.check(&token::DotDot) || self.check(&token::DotDotEq) ||
                                self.check(&token::DotDotDot) {
                            let end_kind = if self.eat(&token::DotDotDot) {
                                RangeEnd::Included(RangeSyntax::DotDotDot)
                            } else if self.eat(&token::DotDotEq) {
                                RangeEnd::Included(RangeSyntax::DotDotEq)
                            } else if self.eat(&token::DotDot) {
                                RangeEnd::Excluded
                            } else {
                                panic!("impossible case: we already matched \
                                        on a range-operator token")
                            };
                            let end = self.parse_pat_range_end()?;
                            let op = Spanned { span: op_span, node: end_kind };
                            pat = PatKind::Range(begin, end, op);
                        } else {
                            pat = PatKind::Lit(begin);
                        }
                    }
                    Err(mut err) => {
                        self.cancel(&mut err);
                        let expected = expected.unwrap_or("pattern");
                        let msg = format!(
                            "expected {}, found {}",
                            expected,
                            self.this_token_descr(),
                        );
                        let mut err = self.fatal(&msg);
                        err.span_label(self.span, format!("expected {}", expected));
                        return Err(err);
                    }
                }
            }
        }
        let pat = P(Pat { node: pat, span: lo.to(self.prev_span), id: ast::DUMMY_NODE_ID });
        let pat = self.maybe_recover_from_bad_qpath(pat, true)?;
        if !allow_range_pat {
            match pat.node {
                PatKind::Range(
                    _, _, Spanned { node: RangeEnd::Included(RangeSyntax::DotDotDot), .. }
                ) => {},
                PatKind::Range(..) => {
                    let mut err = self.struct_span_err(
                        pat.span,
                        "the range pattern here has ambiguous interpretation",
                    );
                    err.span_suggestion(
                        pat.span,
                        "add parentheses to clarify the precedence",
                        format!("({})", pprust::pat_to_string(&pat)),
                        
                        Applicability::MaybeIncorrect
                    );
                    return Err(err);
                }
                _ => {}
            }
        }
        Ok(pat)
    }
    
    
    
    fn parse_pat_ident(&mut self,
                       binding_mode: ast::BindingMode)
                       -> PResult<'a, PatKind> {
        let ident = self.parse_ident()?;
        let sub = if self.eat(&token::At) {
            Some(self.parse_pat(Some("binding pattern"))?)
        } else {
            None
        };
        
        
        
        
        
        
        if self.token == token::OpenDelim(token::Paren) {
            return Err(self.span_fatal(
                self.prev_span,
                "expected identifier, found enum pattern"))
        }
        Ok(PatKind::Ident(binding_mode, ident, sub))
    }
    
    fn parse_local(&mut self, attrs: ThinVec<Attribute>) -> PResult<'a, P<Local>> {
        let lo = self.prev_span;
        let pat = self.parse_top_level_pat()?;
        let (err, ty) = if self.eat(&token::Colon) {
            
            
            let parser_snapshot_before_type = self.clone();
            let colon_sp = self.prev_span;
            match self.parse_ty() {
                Ok(ty) => (None, Some(ty)),
                Err(mut err) => {
                    
                    let parser_snapshot_after_type = self.clone();
                    mem::replace(self, parser_snapshot_before_type);
                    let snippet = self.sess.source_map().span_to_snippet(pat.span).unwrap();
                    err.span_label(pat.span, format!("while parsing the type for `{}`", snippet));
                    (Some((parser_snapshot_after_type, colon_sp, err)), None)
                }
            }
        } else {
            (None, None)
        };
        let init = match (self.parse_initializer(err.is_some()), err) {
            (Ok(init), None) => {  
                init
            }
            (Ok(init), Some((_, colon_sp, mut err))) => {  
                
                
                err.span_suggestion_short(
                    colon_sp,
                    "use `=` if you meant to assign",
                    "=".to_string(),
                    Applicability::MachineApplicable
                );
                err.emit();
                
                
                
                init
            }
            (Err(mut init_err), Some((snapshot, _, ty_err))) => {  
                init_err.cancel();
                
                
                
                mem::replace(self, snapshot);
                return Err(ty_err);
            }
            (Err(err), None) => {  
                
                
                return Err(err);
            }
        };
        let hi = if self.token == token::Semi {
            self.span
        } else {
            self.prev_span
        };
        Ok(P(ast::Local {
            ty,
            pat,
            init,
            id: ast::DUMMY_NODE_ID,
            span: lo.to(hi),
            attrs,
        }))
    }
    
    fn parse_name_and_ty(&mut self,
                         lo: Span,
                         vis: Visibility,
                         attrs: Vec<Attribute>)
                         -> PResult<'a, StructField> {
        let name = self.parse_ident()?;
        self.expect(&token::Colon)?;
        let ty = self.parse_ty()?;
        Ok(StructField {
            span: lo.to(self.prev_span),
            ident: Some(name),
            vis,
            id: ast::DUMMY_NODE_ID,
            ty,
            attrs,
        })
    }
    
    fn expected_item_err(&mut self, attrs: &[Attribute]) -> PResult<'a,  ()> {
        let message = match attrs.last() {
            Some(&Attribute { is_sugared_doc: true, .. }) => "expected item after doc comment",
            _ => "expected item after attributes",
        };
        let mut err = self.diagnostic().struct_span_err(self.prev_span, message);
        if attrs.last().unwrap().is_sugared_doc {
            err.span_label(self.prev_span, "this doc comment doesn't document anything");
        }
        Err(err)
    }
    
    
    pub fn parse_stmt(&mut self) -> PResult<'a, Option<Stmt>> {
        Ok(self.parse_stmt_(true))
    }
    
    
    
    
    fn recover_stmt(&mut self) {
        self.recover_stmt_(SemiColonMode::Ignore, BlockMode::Ignore)
    }
    
    
    
    
    
    
    
    fn recover_stmt_(&mut self, break_on_semi: SemiColonMode, break_on_block: BlockMode) {
        let mut brace_depth = 0;
        let mut bracket_depth = 0;
        let mut in_block = false;
        debug!("recover_stmt_ enter loop (semi={:?}, block={:?})",
               break_on_semi, break_on_block);
        loop {
            debug!("recover_stmt_ loop {:?}", self.token);
            match self.token {
                token::OpenDelim(token::DelimToken::Brace) => {
                    brace_depth += 1;
                    self.bump();
                    if break_on_block == BlockMode::Break &&
                       brace_depth == 1 &&
                       bracket_depth == 0 {
                        in_block = true;
                    }
                }
                token::OpenDelim(token::DelimToken::Bracket) => {
                    bracket_depth += 1;
                    self.bump();
                }
                token::CloseDelim(token::DelimToken::Brace) => {
                    if brace_depth == 0 {
                        debug!("recover_stmt_ return - close delim {:?}", self.token);
                        break;
                    }
                    brace_depth -= 1;
                    self.bump();
                    if in_block && bracket_depth == 0 && brace_depth == 0 {
                        debug!("recover_stmt_ return - block end {:?}", self.token);
                        break;
                    }
                }
                token::CloseDelim(token::DelimToken::Bracket) => {
                    bracket_depth -= 1;
                    if bracket_depth < 0 {
                        bracket_depth = 0;
                    }
                    self.bump();
                }
                token::Eof => {
                    debug!("recover_stmt_ return - Eof");
                    break;
                }
                token::Semi => {
                    self.bump();
                    if break_on_semi == SemiColonMode::Break &&
                       brace_depth == 0 &&
                       bracket_depth == 0 {
                        debug!("recover_stmt_ return - Semi");
                        break;
                    }
                }
                token::Comma => {
                    if break_on_semi == SemiColonMode::Comma &&
                       brace_depth == 0 &&
                       bracket_depth == 0 {
                        debug!("recover_stmt_ return - Semi");
                        break;
                    } else {
                        self.bump();
                    }
                }
                _ => {
                    self.bump()
                }
            }
        }
    }
    fn parse_stmt_(&mut self, macro_legacy_warnings: bool) -> Option<Stmt> {
        self.parse_stmt_without_recovery(macro_legacy_warnings).unwrap_or_else(|mut e| {
            e.emit();
            self.recover_stmt_(SemiColonMode::Break, BlockMode::Ignore);
            None
        })
    }
    fn is_async_block(&mut self) -> bool {
        self.token.is_keyword(keywords::Async) &&
        (
            ( 
                self.look_ahead(1, |t| t.is_keyword(keywords::Move)) &&
                self.look_ahead(2, |t| *t == token::OpenDelim(token::Brace))
            ) || ( 
                self.look_ahead(1, |t| *t == token::OpenDelim(token::Brace))
            )
        )
    }
    fn is_async_fn(&mut self) -> bool {
        self.token.is_keyword(keywords::Async) &&
            self.look_ahead(1, |t| t.is_keyword(keywords::Fn))
    }
    fn is_do_catch_block(&mut self) -> bool {
        self.token.is_keyword(keywords::Do) &&
        self.look_ahead(1, |t| t.is_keyword(keywords::Catch)) &&
        self.look_ahead(2, |t| *t == token::OpenDelim(token::Brace)) &&
        !self.restrictions.contains(Restrictions::NO_STRUCT_LITERAL)
    }
    fn is_try_block(&mut self) -> bool {
        self.token.is_keyword(keywords::Try) &&
        self.look_ahead(1, |t| *t == token::OpenDelim(token::Brace)) &&
        self.span.rust_2018() &&
        
        !self.restrictions.contains(Restrictions::NO_STRUCT_LITERAL)
    }
    fn is_union_item(&self) -> bool {
        self.token.is_keyword(keywords::Union) &&
        self.look_ahead(1, |t| t.is_ident() && !t.is_reserved_ident())
    }
    fn is_crate_vis(&self) -> bool {
        self.token.is_keyword(keywords::Crate) && self.look_ahead(1, |t| t != &token::ModSep)
    }
    fn is_existential_type_decl(&self) -> bool {
        self.token.is_keyword(keywords::Existential) &&
        self.look_ahead(1, |t| t.is_keyword(keywords::Type))
    }
    fn is_auto_trait_item(&mut self) -> bool {
        
        (self.token.is_keyword(keywords::Auto)
            && self.look_ahead(1, |t| t.is_keyword(keywords::Trait)))
        || 
        (self.token.is_keyword(keywords::Unsafe) &&
         self.look_ahead(1, |t| t.is_keyword(keywords::Auto)) &&
         self.look_ahead(2, |t| t.is_keyword(keywords::Trait)))
    }
    fn eat_macro_def(&mut self, attrs: &[Attribute], vis: &Visibility, lo: Span)
                     -> PResult<'a, Option<P<Item>>> {
        let token_lo = self.span;
        let (ident, def) = match self.token {
            token::Ident(ident, false) if ident.name == keywords::Macro.name() => {
                self.bump();
                let ident = self.parse_ident()?;
                let tokens = if self.check(&token::OpenDelim(token::Brace)) {
                    match self.parse_token_tree() {
                        TokenTree::Delimited(_, _, tts) => tts,
                        _ => unreachable!(),
                    }
                } else if self.check(&token::OpenDelim(token::Paren)) {
                    let args = self.parse_token_tree();
                    let body = if self.check(&token::OpenDelim(token::Brace)) {
                        self.parse_token_tree()
                    } else {
                        self.unexpected()?;
                        unreachable!()
                    };
                    TokenStream::new(vec![
                        args.into(),
                        TokenTree::Token(token_lo.to(self.prev_span), token::FatArrow).into(),
                        body.into(),
                    ])
                } else {
                    self.unexpected()?;
                    unreachable!()
                };
                (ident, ast::MacroDef { tokens: tokens.into(), legacy: false })
            }
            token::Ident(ident, _) if ident.name == "macro_rules" &&
                                   self.look_ahead(1, |t| *t == token::Not) => {
                let prev_span = self.prev_span;
                self.complain_if_pub_macro(&vis.node, prev_span);
                self.bump();
                self.bump();
                let ident = self.parse_ident()?;
                let (delim, tokens) = self.expect_delimited_token_tree()?;
                if delim != MacDelimiter::Brace && !self.eat(&token::Semi) {
                    self.report_invalid_macro_expansion_item();
                }
                (ident, ast::MacroDef { tokens: tokens, legacy: true })
            }
            _ => return Ok(None),
        };
        let span = lo.to(self.prev_span);
        Ok(Some(self.mk_item(span, ident, ItemKind::MacroDef(def), vis.clone(), attrs.to_vec())))
    }
    fn parse_stmt_without_recovery(&mut self,
                                   macro_legacy_warnings: bool)
                                   -> PResult<'a, Option<Stmt>> {
        maybe_whole!(self, NtStmt, |x| Some(x));
        let attrs = self.parse_outer_attributes()?;
        let lo = self.span;
        Ok(Some(if self.eat_keyword(keywords::Let) {
            Stmt {
                id: ast::DUMMY_NODE_ID,
                node: StmtKind::Local(self.parse_local(attrs.into())?),
                span: lo.to(self.prev_span),
            }
        } else if let Some(macro_def) = self.eat_macro_def(
            &attrs,
            &source_map::respan(lo, VisibilityKind::Inherited),
            lo,
        )? {
            Stmt {
                id: ast::DUMMY_NODE_ID,
                node: StmtKind::Item(macro_def),
                span: lo.to(self.prev_span),
            }
        
        
        
        
        
        
        } else if self.token.is_path_start() &&
                  !self.token.is_qpath_start() &&
                  !self.is_union_item() &&
                  !self.is_crate_vis() &&
                  !self.is_existential_type_decl() &&
                  !self.is_auto_trait_item() &&
                  !self.is_async_fn() {
            let pth = self.parse_path(PathStyle::Expr)?;
            if !self.eat(&token::Not) {
                let expr = if self.check(&token::OpenDelim(token::Brace)) {
                    self.parse_struct_expr(lo, pth, ThinVec::new())?
                } else {
                    let hi = self.prev_span;
                    self.mk_expr(lo.to(hi), ExprKind::Path(None, pth), ThinVec::new())
                };
                let expr = self.with_res(Restrictions::STMT_EXPR, |this| {
                    let expr = this.parse_dot_or_call_expr_with(expr, lo, attrs.into())?;
                    this.parse_assoc_expr_with(0, LhsExpr::AlreadyParsed(expr))
                })?;
                return Ok(Some(Stmt {
                    id: ast::DUMMY_NODE_ID,
                    node: StmtKind::Expr(expr),
                    span: lo.to(self.prev_span),
                }));
            }
            
            let id = match self.token {
                token::OpenDelim(_) => keywords::Invalid.ident(), 
                _ => self.parse_ident()?,
            };
            
            
            
            match self.token {
                token::OpenDelim(_) => {}
                _ => {
                    
                    
                    let ident_str = if id.name == keywords::Invalid.name() {
                        "identifier, "
                    } else {
                        ""
                    };
                    let tok_str = self.this_token_descr();
                    let mut err = self.fatal(&format!("expected {}`(` or `{{`, found {}",
                                                      ident_str,
                                                      tok_str));
                    err.span_label(self.span, format!("expected {}`(` or `{{`", ident_str));
                    return Err(err)
                },
            }
            let (delim, tts) = self.expect_delimited_token_tree()?;
            let hi = self.prev_span;
            let style = if delim == MacDelimiter::Brace {
                MacStmtStyle::Braces
            } else {
                MacStmtStyle::NoBraces
            };
            if id.name == keywords::Invalid.name() {
                let mac = respan(lo.to(hi), Mac_ { path: pth, tts, delim });
                let node = if delim == MacDelimiter::Brace ||
                              self.token == token::Semi || self.token == token::Eof {
                    StmtKind::Mac(P((mac, style, attrs.into())))
                }
                
                
                
                else if macro_legacy_warnings && self.token.can_begin_expr() && match self.token {
                    
                    token::OpenDelim(token::Paren) | token::OpenDelim(token::Bracket) |
                    token::BinOp(token::Minus) | token::BinOp(token::Star) |
                    token::BinOp(token::And) | token::BinOp(token::Or) |
                    token::AndAnd | token::OrOr |
                    token::DotDot | token::DotDotDot | token::DotDotEq => false,
                    _ => true,
                } {
                    self.warn_missing_semicolon();
                    StmtKind::Mac(P((mac, style, attrs.into())))
                } else {
                    let e = self.mk_expr(mac.span, ExprKind::Mac(mac), ThinVec::new());
                    let e = self.maybe_recover_from_bad_qpath(e, true)?;
                    let e = self.parse_dot_or_call_expr_with(e, lo, attrs.into())?;
                    let e = self.parse_assoc_expr_with(0, LhsExpr::AlreadyParsed(e))?;
                    StmtKind::Expr(e)
                };
                Stmt {
                    id: ast::DUMMY_NODE_ID,
                    span: lo.to(hi),
                    node,
                }
            } else {
                
                
                
                if style != MacStmtStyle::Braces && !self.eat(&token::Semi) {
                    self.report_invalid_macro_expansion_item();
                }
                let span = lo.to(hi);
                Stmt {
                    id: ast::DUMMY_NODE_ID,
                    span,
                    node: StmtKind::Item({
                        self.mk_item(
                            span, id ,
                            ItemKind::Mac(respan(span, Mac_ { path: pth, tts, delim })),
                            respan(lo, VisibilityKind::Inherited),
                            attrs)
                    }),
                }
            }
        } else {
            
            let old_directory_ownership =
                mem::replace(&mut self.directory.ownership, DirectoryOwnership::UnownedViaBlock);
            let item = self.parse_item_(attrs.clone(), false, true)?;
            self.directory.ownership = old_directory_ownership;
            match item {
                Some(i) => Stmt {
                    id: ast::DUMMY_NODE_ID,
                    span: lo.to(i.span),
                    node: StmtKind::Item(i),
                },
                None => {
                    let unused_attrs = |attrs: &[Attribute], s: &mut Self| {
                        if !attrs.is_empty() {
                            if s.prev_token_kind == PrevTokenKind::DocComment {
                                s.span_fatal_err(s.prev_span, Error::UselessDocComment).emit();
                            } else if attrs.iter().any(|a| a.style == AttrStyle::Outer) {
                                s.span_err(s.span, "expected statement after outer attribute");
                            }
                        }
                    };
                    
                    if self.token == token::Semi {
                        unused_attrs(&attrs, self);
                        self.bump();
                        return Ok(None);
                    }
                    if self.token == token::CloseDelim(token::Brace) {
                        unused_attrs(&attrs, self);
                        return Ok(None);
                    }
                    
                    let e = self.parse_expr_res(
                        Restrictions::STMT_EXPR, Some(attrs.into()))?;
                    Stmt {
                        id: ast::DUMMY_NODE_ID,
                        span: lo.to(e.span),
                        node: StmtKind::Expr(e),
                    }
                }
            }
        }))
    }
    
    fn expr_is_complete(&mut self, e: &Expr) -> bool {
        self.restrictions.contains(Restrictions::STMT_EXPR) &&
            !classify::expr_requires_semi_to_be_stmt(e)
    }
    
    pub fn parse_block(&mut self) -> PResult<'a, P<Block>> {
        maybe_whole!(self, NtBlock, |x| x);
        let lo = self.span;
        if !self.eat(&token::OpenDelim(token::Brace)) {
            let sp = self.span;
            let tok = self.this_token_descr();
            let mut e = self.span_fatal(sp, &format!("expected `{{`, found {}", tok));
            let do_not_suggest_help =
                self.token.is_keyword(keywords::In) || self.token == token::Colon;
            if self.token.is_ident_named("and") {
                e.span_suggestion_short(
                    self.span,
                    "use `&&` instead of `and` for the boolean operator",
                    "&&".to_string(),
                    Applicability::MaybeIncorrect,
                );
            }
            if self.token.is_ident_named("or") {
                e.span_suggestion_short(
                    self.span,
                    "use `||` instead of `or` for the boolean operator",
                    "||".to_string(),
                    Applicability::MaybeIncorrect,
                );
            }
            
            
            
            
            
            
            match self.parse_stmt_without_recovery(false) {
                Ok(Some(stmt)) => {
                    if self.look_ahead(1, |t| t == &token::OpenDelim(token::Brace))
                        || do_not_suggest_help {
                        
                        
                        e.span_label(sp, "expected `{`");
                        return Err(e);
                    }
                    let mut stmt_span = stmt.span;
                    
                    if self.eat(&token::Semi) {
                        stmt_span = stmt_span.with_hi(self.prev_span.hi());
                    }
                    let sugg = pprust::to_string(|s| {
                        use crate::print::pprust::{PrintState, INDENT_UNIT};
                        s.ibox(INDENT_UNIT)?;
                        s.bopen()?;
                        s.print_stmt(&stmt)?;
                        s.bclose_maybe_open(stmt.span, INDENT_UNIT, false)
                    });
                    e.span_suggestion(
                        stmt_span,
                        "try placing this code inside a block",
                        sugg,
                        
                        Applicability::MaybeIncorrect
                    );
                }
                Err(mut e) => {
                    self.recover_stmt_(SemiColonMode::Break, BlockMode::Ignore);
                    self.cancel(&mut e);
                }
                _ => ()
            }
            e.span_label(sp, "expected `{`");
            return Err(e);
        }
        self.parse_block_tail(lo, BlockCheckMode::Default)
    }
    
    fn parse_inner_attrs_and_block(&mut self) -> PResult<'a, (Vec<Attribute>, P<Block>)> {
        maybe_whole!(self, NtBlock, |x| (Vec::new(), x));
        let lo = self.span;
        self.expect(&token::OpenDelim(token::Brace))?;
        Ok((self.parse_inner_attributes()?,
            self.parse_block_tail(lo, BlockCheckMode::Default)?))
    }
    
    
    fn parse_block_tail(&mut self, lo: Span, s: BlockCheckMode) -> PResult<'a, P<Block>> {
        let mut stmts = vec![];
        while !self.eat(&token::CloseDelim(token::Brace)) {
            let stmt = match self.parse_full_stmt(false) {
                Err(mut err) => {
                    err.emit();
                    self.recover_stmt_(SemiColonMode::Ignore, BlockMode::Ignore);
                    Some(Stmt {
                        id: ast::DUMMY_NODE_ID,
                        node: StmtKind::Expr(DummyResult::raw_expr(self.span, true)),
                        span: self.span,
                    })
                }
                Ok(stmt) => stmt,
            };
            if let Some(stmt) = stmt {
                stmts.push(stmt);
            } else if self.token == token::Eof {
                break;
            } else {
                
                continue;
            };
        }
        Ok(P(ast::Block {
            stmts,
            id: ast::DUMMY_NODE_ID,
            rules: s,
            span: lo.to(self.prev_span),
        }))
    }
    
    crate fn parse_full_stmt(&mut self, macro_legacy_warnings: bool) -> PResult<'a, Option<Stmt>> {
        
        maybe_whole!(self, NtStmt, |x| Some(x));
        let mut stmt = match self.parse_stmt_without_recovery(macro_legacy_warnings)? {
            Some(stmt) => stmt,
            None => return Ok(None),
        };
        match stmt.node {
            StmtKind::Expr(ref expr) if self.token != token::Eof => {
                
                if classify::expr_requires_semi_to_be_stmt(expr) {
                    
                    if let Err(mut e) =
                        self.expect_one_of(&[], &[token::Semi, token::CloseDelim(token::Brace)])
                    {
                        e.emit();
                        self.recover_stmt();
                    }
                }
            }
            StmtKind::Local(..) => {
                
                if macro_legacy_warnings && self.token != token::Semi {
                    self.warn_missing_semicolon();
                } else {
                    self.expect_one_of(&[], &[token::Semi])?;
                }
            }
            _ => {}
        }
        if self.eat(&token::Semi) {
            stmt = stmt.add_trailing_semicolon();
        }
        stmt.span = stmt.span.with_hi(self.prev_span.hi());
        Ok(Some(stmt))
    }
    fn warn_missing_semicolon(&self) {
        self.diagnostic().struct_span_warn(self.span, {
            &format!("expected `;`, found {}", self.this_token_descr())
        }).note({
            "This was erroneously allowed and will become a hard error in a future release"
        }).emit();
    }
    fn err_dotdotdot_syntax(&self, span: Span) {
        self.diagnostic().struct_span_err(span, {
            "unexpected token: `...`"
        }).span_suggestion(
            span, "use `..` for an exclusive range", "..".to_owned(),
            Applicability::MaybeIncorrect
        ).span_suggestion(
            span, "or `..=` for an inclusive range", "..=".to_owned(),
            Applicability::MaybeIncorrect
        ).emit();
    }
    
    
    
    
    
    
    
    
    fn parse_generic_bounds_common(&mut self,
                                   allow_plus: bool,
                                   colon_span: Option<Span>) -> PResult<'a, GenericBounds> {
        let mut bounds = Vec::new();
        let mut negative_bounds = Vec::new();
        let mut last_plus_span = None;
        let mut was_negative = false;
        loop {
            
            let is_bound_start = self.check_path() || self.check_lifetime() ||
                                 self.check(&token::Not) || 
                                 self.check(&token::Question) ||
                                 self.check_keyword(keywords::For) ||
                                 self.check(&token::OpenDelim(token::Paren));
            if is_bound_start {
                let lo = self.span;
                let has_parens = self.eat(&token::OpenDelim(token::Paren));
                let inner_lo = self.span;
                let is_negative = self.eat(&token::Not);
                let question = if self.eat(&token::Question) { Some(self.prev_span) } else { None };
                if self.token.is_lifetime() {
                    if let Some(question_span) = question {
                        self.span_err(question_span,
                                      "`?` may only modify trait bounds, not lifetime bounds");
                    }
                    bounds.push(GenericBound::Outlives(self.expect_lifetime()));
                    if has_parens {
                        let inner_span = inner_lo.to(self.prev_span);
                        self.expect(&token::CloseDelim(token::Paren))?;
                        let mut err = self.struct_span_err(
                            lo.to(self.prev_span),
                            "parenthesized lifetime bounds are not supported"
                        );
                        if let Ok(snippet) = self.sess.source_map().span_to_snippet(inner_span) {
                            err.span_suggestion_short(
                                lo.to(self.prev_span),
                                "remove the parentheses",
                                snippet.to_owned(),
                                Applicability::MachineApplicable
                            );
                        }
                        err.emit();
                    }
                } else {
                    let lifetime_defs = self.parse_late_bound_lifetime_defs()?;
                    let path = self.parse_path(PathStyle::Type)?;
                    if has_parens {
                        self.expect(&token::CloseDelim(token::Paren))?;
                    }
                    let poly_span = lo.to(self.prev_span);
                    if is_negative {
                        was_negative = true;
                        if let Some(sp) = last_plus_span.or(colon_span) {
                            negative_bounds.push(sp.to(poly_span));
                        }
                    } else {
                        let poly_trait = PolyTraitRef::new(lifetime_defs, path, poly_span);
                        let modifier = if question.is_some() {
                            TraitBoundModifier::Maybe
                        } else {
                            TraitBoundModifier::None
                        };
                        bounds.push(GenericBound::Trait(poly_trait, modifier));
                    }
                }
            } else {
                break
            }
            if !allow_plus || !self.eat_plus() {
                break
            } else {
                last_plus_span = Some(self.prev_span);
            }
        }
        if !negative_bounds.is_empty() || was_negative {
            let plural = negative_bounds.len() > 1;
            let last_span = negative_bounds.last().map(|sp| *sp);
            let mut err = self.struct_span_err(
                negative_bounds,
                "negative trait bounds are not supported",
            );
            if let Some(sp) = last_span {
                err.span_label(sp, "negative trait bounds are not supported");
            }
            if let Some(bound_list) = colon_span {
                let bound_list = bound_list.to(self.prev_span);
                let mut new_bound_list = String::new();
                if !bounds.is_empty() {
                    let mut snippets = bounds.iter().map(|bound| bound.span())
                        .map(|span| self.sess.source_map().span_to_snippet(span));
                    while let Some(Ok(snippet)) = snippets.next() {
                        new_bound_list.push_str(" + ");
                        new_bound_list.push_str(&snippet);
                    }
                    new_bound_list = new_bound_list.replacen(" +", ":", 1);
                }
                err.span_suggestion_hidden(
                    bound_list,
                    &format!("remove the trait bound{}", if plural { "s" } else { "" }),
                    new_bound_list,
                    Applicability::MachineApplicable,
                );
            }
            err.emit();
        }
        return Ok(bounds);
    }
    fn parse_generic_bounds(&mut self, colon_span: Option<Span>) -> PResult<'a, GenericBounds> {
        self.parse_generic_bounds_common(true, colon_span)
    }
    
    
    
    
    
    fn parse_lt_param_bounds(&mut self) -> GenericBounds {
        let mut lifetimes = Vec::new();
        while self.check_lifetime() {
            lifetimes.push(ast::GenericBound::Outlives(self.expect_lifetime()));
            if !self.eat_plus() {
                break
            }
        }
        lifetimes
    }
    
    fn parse_ty_param(&mut self,
                      preceding_attrs: Vec<Attribute>)
                      -> PResult<'a, GenericParam> {
        let ident = self.parse_ident()?;
        
        let bounds = if self.eat(&token::Colon) {
            self.parse_generic_bounds(Some(self.prev_span))?
        } else {
            Vec::new()
        };
        let default = if self.eat(&token::Eq) {
            Some(self.parse_ty()?)
        } else {
            None
        };
        Ok(GenericParam {
            ident,
            id: ast::DUMMY_NODE_ID,
            attrs: preceding_attrs.into(),
            bounds,
            kind: GenericParamKind::Type {
                default,
            }
        })
    }
    
    
    
    fn parse_trait_item_assoc_ty(&mut self)
        -> PResult<'a, (Ident, TraitItemKind, ast::Generics)> {
        let ident = self.parse_ident()?;
        let mut generics = self.parse_generics()?;
        
        let bounds = if self.eat(&token::Colon) {
            self.parse_generic_bounds(None)?
        } else {
            Vec::new()
        };
        generics.where_clause = self.parse_where_clause()?;
        let default = if self.eat(&token::Eq) {
            Some(self.parse_ty()?)
        } else {
            None
        };
        self.expect(&token::Semi)?;
        Ok((ident, TraitItemKind::Type(bounds, default), generics))
    }
    fn parse_const_param(&mut self, preceding_attrs: Vec<Attribute>) -> PResult<'a, GenericParam> {
        self.expect_keyword(keywords::Const)?;
        let ident = self.parse_ident()?;
        self.expect(&token::Colon)?;
        let ty = self.parse_ty()?;
        Ok(GenericParam {
            ident,
            id: ast::DUMMY_NODE_ID,
            attrs: preceding_attrs.into(),
            bounds: Vec::new(),
            kind: GenericParamKind::Const {
                ty,
            }
        })
    }
    
    
    crate fn parse_generic_params(&mut self) -> PResult<'a, Vec<ast::GenericParam>> {
        let mut params = Vec::new();
        loop {
            let attrs = self.parse_outer_attributes()?;
            if self.check_lifetime() {
                let lifetime = self.expect_lifetime();
                
                let bounds = if self.eat(&token::Colon) {
                    self.parse_lt_param_bounds()
                } else {
                    Vec::new()
                };
                params.push(ast::GenericParam {
                    ident: lifetime.ident,
                    id: lifetime.id,
                    attrs: attrs.into(),
                    bounds,
                    kind: ast::GenericParamKind::Lifetime,
                });
            } else if self.check_keyword(keywords::Const) {
                
                params.push(self.parse_const_param(attrs)?);
            } else if self.check_ident() {
                
                params.push(self.parse_ty_param(attrs)?);
            } else {
                
                if !attrs.is_empty() {
                    if !params.is_empty() {
                        self.struct_span_err(
                            attrs[0].span,
                            &format!("trailing attribute after generic parameter"),
                        )
                        .span_label(attrs[0].span, "attributes must go before parameters")
                        .emit();
                    } else {
                        self.struct_span_err(
                            attrs[0].span,
                            &format!("attribute without generic parameters"),
                        )
                        .span_label(
                            attrs[0].span,
                            "attributes are only permitted when preceding parameters",
                        )
                        .emit();
                    }
                }
                break
            }
            if !self.eat(&token::Comma) {
                break
            }
        }
        Ok(params)
    }
    
    
    
    
    
    
    
    fn parse_generics(&mut self) -> PResult<'a, ast::Generics> {
        maybe_whole!(self, NtGenerics, |x| x);
        let span_lo = self.span;
        if self.eat_lt() {
            let params = self.parse_generic_params()?;
            self.expect_gt()?;
            Ok(ast::Generics {
                params,
                where_clause: WhereClause {
                    id: ast::DUMMY_NODE_ID,
                    predicates: Vec::new(),
                    span: syntax_pos::DUMMY_SP,
                },
                span: span_lo.to(self.prev_span),
            })
        } else {
            Ok(ast::Generics::default())
        }
    }
    
    
    
    
    
    
    
    
    
    fn parse_generic_args_with_leaning_angle_bracket_recovery(
        &mut self,
        style: PathStyle,
        lo: Span,
    ) -> PResult<'a, (Vec<GenericArg>, Vec<TypeBinding>)> {
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        let is_first_invocation = style == PathStyle::Expr;
        
        let snapshot = if is_first_invocation {
            Some(self.clone())
        } else {
            None
        };
        debug!("parse_generic_args_with_leading_angle_bracket_recovery: (snapshotting)");
        match self.parse_generic_args() {
            Ok(value) => Ok(value),
            Err(ref mut e) if is_first_invocation && self.unmatched_angle_bracket_count > 0 => {
                
                
                
                e.cancel();
                
                
                let snapshot = mem::replace(self, snapshot.unwrap());
                debug!(
                    "parse_generic_args_with_leading_angle_bracket_recovery: (snapshot failure) \
                     snapshot.count={:?}",
                    snapshot.unmatched_angle_bracket_count,
                );
                
                for _ in 0..snapshot.unmatched_angle_bracket_count {
                    self.eat_lt();
                }
                
                let span = lo.with_hi(
                    lo.lo() + BytePos(snapshot.unmatched_angle_bracket_count)
                );
                let plural = snapshot.unmatched_angle_bracket_count > 1;
                self.diagnostic()
                    .struct_span_err(
                        span,
                        &format!(
                            "unmatched angle bracket{}",
                            if plural { "s" } else { "" }
                        ),
                    )
                    .span_suggestion(
                        span,
                        &format!(
                            "remove extra angle bracket{}",
                            if plural { "s" } else { "" }
                        ),
                        String::new(),
                        Applicability::MachineApplicable,
                    )
                    .emit();
                
                self.parse_generic_args()
            },
            Err(e) => Err(e),
        }
    }
    
    
    fn parse_generic_args(&mut self) -> PResult<'a, (Vec<GenericArg>, Vec<TypeBinding>)> {
        let mut args = Vec::new();
        let mut bindings = Vec::new();
        let mut misplaced_assoc_ty_bindings: Vec<Span> = Vec::new();
        let mut assoc_ty_bindings: Vec<Span> = Vec::new();
        let args_lo = self.span;
        loop {
            if self.check_lifetime() && self.look_ahead(1, |t| !t.is_like_plus()) {
                
                args.push(GenericArg::Lifetime(self.expect_lifetime()));
                misplaced_assoc_ty_bindings.append(&mut assoc_ty_bindings);
            } else if self.check_ident() && self.look_ahead(1, |t| t == &token::Eq) {
                
                let lo = self.span;
                let ident = self.parse_ident()?;
                self.bump();
                let ty = self.parse_ty()?;
                let span = lo.to(self.prev_span);
                bindings.push(TypeBinding {
                    id: ast::DUMMY_NODE_ID,
                    ident,
                    ty,
                    span,
                });
                assoc_ty_bindings.push(span);
            } else if self.check_const_arg() {
                
                
                
                
                let expr = if let token::OpenDelim(token::Brace) = self.token {
                    self.parse_block_expr(None, self.span, BlockCheckMode::Default, ThinVec::new())?
                } else if self.token.is_ident() {
                    
                    
                    
                    return Err(
                        self.fatal("identifiers may currently not be used for const generics")
                    );
                } else {
                    
                    
                    self.parse_literal_maybe_minus()?
                };
                let value = AnonConst {
                    id: ast::DUMMY_NODE_ID,
                    value: expr,
                };
                args.push(GenericArg::Const(value));
                misplaced_assoc_ty_bindings.append(&mut assoc_ty_bindings);
            } else if self.check_type() {
                
                args.push(GenericArg::Type(self.parse_ty()?));
                misplaced_assoc_ty_bindings.append(&mut assoc_ty_bindings);
            } else {
                break
            }
            if !self.eat(&token::Comma) {
                break
            }
        }
        
        
        
        if misplaced_assoc_ty_bindings.len() > 0 {
            let mut err = self.struct_span_err(
                args_lo.to(self.prev_span),
                "associated type bindings must be declared after generic parameters",
            );
            for span in misplaced_assoc_ty_bindings {
                err.span_label(
                    span,
                    "this associated type binding should be moved after the generic parameters",
                );
            }
            err.emit();
        }
        Ok((args, bindings))
    }
    
    
    
    
    
    fn parse_where_clause(&mut self) -> PResult<'a, WhereClause> {
        maybe_whole!(self, NtWhereClause, |x| x);
        let mut where_clause = WhereClause {
            id: ast::DUMMY_NODE_ID,
            predicates: Vec::new(),
            span: syntax_pos::DUMMY_SP,
        };
        if !self.eat_keyword(keywords::Where) {
            return Ok(where_clause);
        }
        let lo = self.prev_span;
        
        
        
        if self.choose_generics_over_qpath() {
            let generics = self.parse_generics()?;
            self.struct_span_err(
                generics.span,
                "generic parameters on `where` clauses are reserved for future use",
            )
                .span_label(generics.span, "currently unsupported")
                .emit();
        }
        loop {
            let lo = self.span;
            if self.check_lifetime() && self.look_ahead(1, |t| !t.is_like_plus()) {
                let lifetime = self.expect_lifetime();
                
                self.expect(&token::Colon)?;
                let bounds = self.parse_lt_param_bounds();
                where_clause.predicates.push(ast::WherePredicate::RegionPredicate(
                    ast::WhereRegionPredicate {
                        span: lo.to(self.prev_span),
                        lifetime,
                        bounds,
                    }
                ));
            } else if self.check_type() {
                
                
                
                
                
                
                let lifetime_defs = self.parse_late_bound_lifetime_defs()?;
                
                
                let ty = self.parse_ty()?;
                if self.eat(&token::Colon) {
                    let bounds = self.parse_generic_bounds(Some(self.prev_span))?;
                    where_clause.predicates.push(ast::WherePredicate::BoundPredicate(
                        ast::WhereBoundPredicate {
                            span: lo.to(self.prev_span),
                            bound_generic_params: lifetime_defs,
                            bounded_ty: ty,
                            bounds,
                        }
                    ));
                
                
                } else if self.eat(&token::Eq) || self.eat(&token::EqEq) {
                    let rhs_ty = self.parse_ty()?;
                    where_clause.predicates.push(ast::WherePredicate::EqPredicate(
                        ast::WhereEqPredicate {
                            span: lo.to(self.prev_span),
                            lhs_ty: ty,
                            rhs_ty,
                            id: ast::DUMMY_NODE_ID,
                        }
                    ));
                } else {
                    return self.unexpected();
                }
            } else {
                break
            }
            if !self.eat(&token::Comma) {
                break
            }
        }
        where_clause.span = lo.to(self.prev_span);
        Ok(where_clause)
    }
    fn parse_fn_args(&mut self, named_args: bool, allow_c_variadic: bool)
                     -> PResult<'a, (Vec<Arg> , bool)> {
        self.expect(&token::OpenDelim(token::Paren))?;
        let sp = self.span;
        let mut c_variadic = false;
        let (args, recovered): (Vec<Option<Arg>>, bool) =
            self.parse_seq_to_before_end(
                &token::CloseDelim(token::Paren),
                SeqSep::trailing_allowed(token::Comma),
                |p| {
                    
                    
                    let enforce_named_args = if p.token == token::DotDotDot {
                        false
                    } else {
                        named_args
                    };
                    match p.parse_arg_general(enforce_named_args, false,
                                              allow_c_variadic) {
                        Ok(arg) => {
                            if let TyKind::CVarArgs = arg.ty.node {
                                c_variadic = true;
                                if p.token != token::CloseDelim(token::Paren) {
                                    let span = p.span;
                                    p.span_err(span,
                                        "`...` must be the last argument of a C-variadic function");
                                    Ok(None)
                                } else {
                                    Ok(Some(arg))
                                }
                            } else {
                                Ok(Some(arg))
                            }
                        },
                        Err(mut e) => {
                            e.emit();
                            let lo = p.prev_span;
                            
                            p.eat_to_tokens(&[&token::Comma, &token::CloseDelim(token::Paren)]);
                            
                            let span = lo.to(p.prev_span);
                            Ok(Some(dummy_arg(span)))
                        }
                    }
                }
            )?;
        if !recovered {
            self.eat(&token::CloseDelim(token::Paren));
        }
        let args: Vec<_> = args.into_iter().filter_map(|x| x).collect();
        if c_variadic && args.is_empty() {
            self.span_err(sp,
                          "C-variadic function must be declared with at least one named argument");
        }
        Ok((args, c_variadic))
    }
    
    fn parse_fn_decl(&mut self, allow_c_variadic: bool) -> PResult<'a, P<FnDecl>> {
        let (args, c_variadic) = self.parse_fn_args(true, allow_c_variadic)?;
        let ret_ty = self.parse_ret_ty(true)?;
        Ok(P(FnDecl {
            inputs: args,
            output: ret_ty,
            c_variadic,
        }))
    }
    
    fn parse_self_arg(&mut self) -> PResult<'a, Option<Arg>> {
        let expect_ident = |this: &mut Self| match this.token {
            
            token::Ident(ident, _) =>
                { let span = this.span; this.bump(); Ident::new(ident.name, span) }
            _ => unreachable!()
        };
        let isolated_self = |this: &mut Self, n| {
            this.look_ahead(n, |t| t.is_keyword(keywords::SelfLower)) &&
            this.look_ahead(n + 1, |t| t != &token::ModSep)
        };
        
        
        
        let eself_lo = self.span;
        let (eself, eself_ident, eself_hi) = match self.token {
            token::BinOp(token::And) => {
                
                
                
                
                
                (if isolated_self(self, 1) {
                    self.bump();
                    SelfKind::Region(None, Mutability::Immutable)
                } else if self.look_ahead(1, |t| t.is_keyword(keywords::Mut)) &&
                          isolated_self(self, 2) {
                    self.bump();
                    self.bump();
                    SelfKind::Region(None, Mutability::Mutable)
                } else if self.look_ahead(1, |t| t.is_lifetime()) &&
                          isolated_self(self, 2) {
                    self.bump();
                    let lt = self.expect_lifetime();
                    SelfKind::Region(Some(lt), Mutability::Immutable)
                } else if self.look_ahead(1, |t| t.is_lifetime()) &&
                          self.look_ahead(2, |t| t.is_keyword(keywords::Mut)) &&
                          isolated_self(self, 3) {
                    self.bump();
                    let lt = self.expect_lifetime();
                    self.bump();
                    SelfKind::Region(Some(lt), Mutability::Mutable)
                } else {
                    return Ok(None);
                }, expect_ident(self), self.prev_span)
            }
            token::BinOp(token::Star) => {
                
                
                
                
                
                let msg = "cannot pass `self` by raw pointer";
                (if isolated_self(self, 1) {
                    self.bump();
                    self.struct_span_err(self.span, msg)
                        .span_label(self.span, msg)
                        .emit();
                    SelfKind::Value(Mutability::Immutable)
                } else if self.look_ahead(1, |t| t.is_mutability()) &&
                          isolated_self(self, 2) {
                    self.bump();
                    self.bump();
                    self.struct_span_err(self.span, msg)
                        .span_label(self.span, msg)
                        .emit();
                    SelfKind::Value(Mutability::Immutable)
                } else {
                    return Ok(None);
                }, expect_ident(self), self.prev_span)
            }
            token::Ident(..) => {
                if isolated_self(self, 0) {
                    
                    
                    let eself_ident = expect_ident(self);
                    let eself_hi = self.prev_span;
                    (if self.eat(&token::Colon) {
                        let ty = self.parse_ty()?;
                        SelfKind::Explicit(ty, Mutability::Immutable)
                    } else {
                        SelfKind::Value(Mutability::Immutable)
                    }, eself_ident, eself_hi)
                } else if self.token.is_keyword(keywords::Mut) &&
                          isolated_self(self, 1) {
                    
                    
                    self.bump();
                    let eself_ident = expect_ident(self);
                    let eself_hi = self.prev_span;
                    (if self.eat(&token::Colon) {
                        let ty = self.parse_ty()?;
                        SelfKind::Explicit(ty, Mutability::Mutable)
                    } else {
                        SelfKind::Value(Mutability::Mutable)
                    }, eself_ident, eself_hi)
                } else {
                    return Ok(None);
                }
            }
            _ => return Ok(None),
        };
        let eself = source_map::respan(eself_lo.to(eself_hi), eself);
        Ok(Some(Arg::from_self(eself, eself_ident)))
    }
    
    fn parse_fn_decl_with_self<F>(&mut self, parse_arg_fn: F) -> PResult<'a, P<FnDecl>>
        where F: FnMut(&mut Parser<'a>) -> PResult<'a,  Arg>,
    {
        self.expect(&token::OpenDelim(token::Paren))?;
        
        let self_arg = self.parse_self_arg()?;
        
        let sep = SeqSep::trailing_allowed(token::Comma);
        let (fn_inputs, recovered) = if let Some(self_arg) = self_arg {
            if self.check(&token::CloseDelim(token::Paren)) {
                (vec![self_arg], false)
            } else if self.eat(&token::Comma) {
                let mut fn_inputs = vec![self_arg];
                let (mut input, recovered) = self.parse_seq_to_before_end(
                    &token::CloseDelim(token::Paren), sep, parse_arg_fn)?;
                fn_inputs.append(&mut input);
                (fn_inputs, recovered)
            } else {
                match self.expect_one_of(&[], &[]) {
                    Err(err) => return Err(err),
                    Ok(recovered) => (vec![self_arg], recovered),
                }
            }
        } else {
            self.parse_seq_to_before_end(&token::CloseDelim(token::Paren), sep, parse_arg_fn)?
        };
        if !recovered {
            
            self.expect(&token::CloseDelim(token::Paren))?;
        }
        Ok(P(FnDecl {
            inputs: fn_inputs,
            output: self.parse_ret_ty(true)?,
            c_variadic: false
        }))
    }
    
    fn parse_fn_block_decl(&mut self) -> PResult<'a, P<FnDecl>> {
        let inputs_captures = {
            if self.eat(&token::OrOr) {
                Vec::new()
            } else {
                self.expect(&token::BinOp(token::Or))?;
                let args = self.parse_seq_to_before_tokens(
                    &[&token::BinOp(token::Or), &token::OrOr],
                    SeqSep::trailing_allowed(token::Comma),
                    TokenExpectType::NoExpect,
                    |p| p.parse_fn_block_arg()
                )?.0;
                self.expect_or()?;
                args
            }
        };
        let output = self.parse_ret_ty(true)?;
        Ok(P(FnDecl {
            inputs: inputs_captures,
            output,
            c_variadic: false
        }))
    }
    
    fn parse_fn_header(&mut self) -> PResult<'a, (Ident, ast::Generics)> {
        let id = self.parse_ident()?;
        let generics = self.parse_generics()?;
        Ok((id, generics))
    }
    fn mk_item(&mut self, span: Span, ident: Ident, node: ItemKind, vis: Visibility,
               attrs: Vec<Attribute>) -> P<Item> {
        P(Item {
            ident,
            attrs,
            id: ast::DUMMY_NODE_ID,
            node,
            vis,
            span,
            tokens: None,
        })
    }
    
    fn parse_item_fn(&mut self,
                     unsafety: Unsafety,
                     asyncness: Spanned<IsAsync>,
                     constness: Spanned<Constness>,
                     abi: Abi)
                     -> PResult<'a, ItemInfo> {
        let (ident, mut generics) = self.parse_fn_header()?;
        let allow_c_variadic = abi == Abi::C && unsafety == Unsafety::Unsafe;
        let decl = self.parse_fn_decl(allow_c_variadic)?;
        generics.where_clause = self.parse_where_clause()?;
        let (inner_attrs, body) = self.parse_inner_attrs_and_block()?;
        let header = FnHeader { unsafety, asyncness, constness, abi };
        Ok((ident, ItemKind::Fn(decl, header, generics, body), Some(inner_attrs)))
    }
    
    
    fn is_const_item(&mut self) -> bool {
        self.token.is_keyword(keywords::Const) &&
            !self.look_ahead(1, |t| t.is_keyword(keywords::Fn)) &&
            !self.look_ahead(1, |t| t.is_keyword(keywords::Unsafe))
    }
    
    
    
    
    
    
    
    
    fn parse_fn_front_matter(&mut self)
        -> PResult<'a, (
            Spanned<Constness>,
            Unsafety,
            Spanned<IsAsync>,
            Abi
        )>
    {
        let is_const_fn = self.eat_keyword(keywords::Const);
        let const_span = self.prev_span;
        let unsafety = self.parse_unsafety();
        let asyncness = self.parse_asyncness();
        let asyncness = respan(self.prev_span, asyncness);
        let (constness, unsafety, abi) = if is_const_fn {
            (respan(const_span, Constness::Const), unsafety, Abi::Rust)
        } else {
            let abi = if self.eat_keyword(keywords::Extern) {
                self.parse_opt_abi()?.unwrap_or(Abi::C)
            } else {
                Abi::Rust
            };
            (respan(self.prev_span, Constness::NotConst), unsafety, abi)
        };
        self.expect_keyword(keywords::Fn)?;
        Ok((constness, unsafety, asyncness, abi))
    }
    
    pub fn parse_impl_item(&mut self, at_end: &mut bool) -> PResult<'a, ImplItem> {
        maybe_whole!(self, NtImplItem, |x| x);
        let attrs = self.parse_outer_attributes()?;
        let mut unclosed_delims = vec![];
        let (mut item, tokens) = self.collect_tokens(|this| {
            let item = this.parse_impl_item_(at_end, attrs);
            unclosed_delims.append(&mut this.unclosed_delims);
            item
        })?;
        self.unclosed_delims.append(&mut unclosed_delims);
        
        if !item.attrs.iter().any(|attr| attr.style == AttrStyle::Inner) {
            item.tokens = Some(tokens);
        }
        Ok(item)
    }
    fn parse_impl_item_(&mut self,
                        at_end: &mut bool,
                        mut attrs: Vec<Attribute>) -> PResult<'a, ImplItem> {
        let lo = self.span;
        let vis = self.parse_visibility(false)?;
        let defaultness = self.parse_defaultness();
        let (name, node, generics) = if let Some(type_) = self.eat_type() {
            let (name, alias, generics) = type_?;
            let kind = match alias {
                AliasKind::Weak(typ) => ast::ImplItemKind::Type(typ),
                AliasKind::Existential(bounds) => ast::ImplItemKind::Existential(bounds),
            };
            (name, kind, generics)
        } else if self.is_const_item() {
            
            
            self.expect_keyword(keywords::Const)?;
            let name = self.parse_ident()?;
            self.expect(&token::Colon)?;
            let typ = self.parse_ty()?;
            self.expect(&token::Eq)?;
            let expr = self.parse_expr()?;
            self.expect(&token::Semi)?;
            (name, ast::ImplItemKind::Const(typ, expr), ast::Generics::default())
        } else {
            let (name, inner_attrs, generics, node) = self.parse_impl_method(&vis, at_end)?;
            attrs.extend(inner_attrs);
            (name, node, generics)
        };
        Ok(ImplItem {
            id: ast::DUMMY_NODE_ID,
            span: lo.to(self.prev_span),
            ident: name,
            vis,
            defaultness,
            attrs,
            generics,
            node,
            tokens: None,
        })
    }
    fn complain_if_pub_macro(&mut self, vis: &VisibilityKind, sp: Span) {
        match *vis {
            VisibilityKind::Inherited => {}
            _ => {
                let is_macro_rules: bool = match self.token {
                    token::Ident(sid, _) => sid.name == Symbol::intern("macro_rules"),
                    _ => false,
                };
                let mut err = if is_macro_rules {
                    let mut err = self.diagnostic()
                        .struct_span_err(sp, "can't qualify macro_rules invocation with `pub`");
                    err.span_suggestion(
                        sp,
                        "try exporting the macro",
                        "#[macro_export]".to_owned(),
                        Applicability::MaybeIncorrect 
                    );
                    err
                } else {
                    let mut err = self.diagnostic()
                        .struct_span_err(sp, "can't qualify macro invocation with `pub`");
                    err.help("try adjusting the macro to put `pub` inside the invocation");
                    err
                };
                err.emit();
            }
        }
    }
    fn missing_assoc_item_kind_err(&mut self, item_type: &str, prev_span: Span)
                                   -> DiagnosticBuilder<'a>
    {
        let expected_kinds = if item_type == "extern" {
            "missing `fn`, `type`, or `static`"
        } else {
            "missing `fn`, `type`, or `const`"
        };
        
        
        
        
        
        
        
        
        
        let sp = prev_span.between(self.prev_span);
        let mut err = self.diagnostic().struct_span_err(
            sp,
            &format!("{} for {}-item declaration",
                     expected_kinds, item_type));
        err.span_label(sp, expected_kinds);
        err
    }
    
    fn parse_impl_method(&mut self, vis: &Visibility, at_end: &mut bool)
                         -> PResult<'a, (Ident, Vec<Attribute>, ast::Generics,
                             ast::ImplItemKind)> {
        
        if let Some(mac) = self.parse_assoc_macro_invoc("impl", Some(vis), at_end)? {
            
            Ok((keywords::Invalid.ident(), vec![], ast::Generics::default(),
                ast::ImplItemKind::Macro(mac)))
        } else {
            let (constness, unsafety, asyncness, abi) = self.parse_fn_front_matter()?;
            let ident = self.parse_ident()?;
            let mut generics = self.parse_generics()?;
            let decl = self.parse_fn_decl_with_self(|p| p.parse_arg())?;
            generics.where_clause = self.parse_where_clause()?;
            *at_end = true;
            let (inner_attrs, body) = self.parse_inner_attrs_and_block()?;
            let header = ast::FnHeader { abi, unsafety, constness, asyncness };
            Ok((ident, inner_attrs, generics, ast::ImplItemKind::Method(
                ast::MethodSig { header, decl },
                body
            )))
        }
    }
    
    fn parse_item_trait(&mut self, is_auto: IsAuto, unsafety: Unsafety) -> PResult<'a, ItemInfo> {
        let ident = self.parse_ident()?;
        let mut tps = self.parse_generics()?;
        
        let bounds = if self.eat(&token::Colon) {
            self.parse_generic_bounds(Some(self.prev_span))?
        } else {
            Vec::new()
        };
        if self.eat(&token::Eq) {
            
            let bounds = self.parse_generic_bounds(None)?;
            tps.where_clause = self.parse_where_clause()?;
            self.expect(&token::Semi)?;
            if is_auto == IsAuto::Yes {
                let msg = "trait aliases cannot be `auto`";
                self.struct_span_err(self.prev_span, msg)
                    .span_label(self.prev_span, msg)
                    .emit();
            }
            if unsafety != Unsafety::Normal {
                let msg = "trait aliases cannot be `unsafe`";
                self.struct_span_err(self.prev_span, msg)
                    .span_label(self.prev_span, msg)
                    .emit();
            }
            Ok((ident, ItemKind::TraitAlias(tps, bounds), None))
        } else {
            
            tps.where_clause = self.parse_where_clause()?;
            self.expect(&token::OpenDelim(token::Brace))?;
            let mut trait_items = vec![];
            while !self.eat(&token::CloseDelim(token::Brace)) {
                if let token::DocComment(_) = self.token {
                    if self.look_ahead(1,
                    |tok| tok == &token::Token::CloseDelim(token::Brace)) {
                        let mut err = self.diagnostic().struct_span_err_with_code(
                            self.span,
                            "found a documentation comment that doesn't document anything",
                            DiagnosticId::Error("E0584".into()),
                        );
                        err.help("doc comments must come before what they document, maybe a \
                            comment was intended with `//`?",
                        );
                        err.emit();
                        self.bump();
                        continue;
                    }
                }
                let mut at_end = false;
                match self.parse_trait_item(&mut at_end) {
                    Ok(item) => trait_items.push(item),
                    Err(mut e) => {
                        e.emit();
                        if !at_end {
                            self.recover_stmt_(SemiColonMode::Break, BlockMode::Break);
                        }
                    }
                }
            }
            Ok((ident, ItemKind::Trait(is_auto, unsafety, tps, bounds, trait_items), None))
        }
    }
    fn choose_generics_over_qpath(&self) -> bool {
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        self.token == token::Lt &&
            (self.look_ahead(1, |t| t == &token::Pound || t == &token::Gt) ||
             self.look_ahead(1, |t| t.is_lifetime() || t.is_ident()) &&
                self.look_ahead(2, |t| t == &token::Gt || t == &token::Comma ||
                                       t == &token::Colon || t == &token::Eq) ||
             self.look_ahead(1, |t| t.is_keyword(keywords::Const)))
    }
    fn parse_impl_body(&mut self) -> PResult<'a, (Vec<ImplItem>, Vec<Attribute>)> {
        self.expect(&token::OpenDelim(token::Brace))?;
        let attrs = self.parse_inner_attributes()?;
        let mut impl_items = Vec::new();
        while !self.eat(&token::CloseDelim(token::Brace)) {
            let mut at_end = false;
            match self.parse_impl_item(&mut at_end) {
                Ok(impl_item) => impl_items.push(impl_item),
                Err(mut err) => {
                    err.emit();
                    if !at_end {
                        self.recover_stmt_(SemiColonMode::Break, BlockMode::Break);
                    }
                }
            }
        }
        Ok((impl_items, attrs))
    }
    
    
    
    
    
    
    
    
    
    fn parse_item_impl(&mut self, unsafety: Unsafety, defaultness: Defaultness)
                       -> PResult<'a, ItemInfo> {
        
        let mut generics = if self.choose_generics_over_qpath() {
            self.parse_generics()?
        } else {
            ast::Generics::default()
        };
        
        let polarity = if self.check(&token::Not) && self.look_ahead(1, |t| t.can_begin_type()) {
            self.bump(); 
            ast::ImplPolarity::Negative
        } else {
            ast::ImplPolarity::Positive
        };
        
        let err_path = |span| ast::Path::from_ident(Ident::new(keywords::Invalid.name(), span));
        let ty_first = if self.token.is_keyword(keywords::For) &&
                          self.look_ahead(1, |t| t != &token::Lt) {
            let span = self.prev_span.between(self.span);
            self.struct_span_err(span, "missing trait in a trait impl").emit();
            P(Ty { node: TyKind::Path(None, err_path(span)), span, id: ast::DUMMY_NODE_ID })
        } else {
            self.parse_ty()?
        };
        
        let has_for = self.eat_keyword(keywords::For);
        let missing_for_span = self.prev_span.between(self.span);
        let ty_second = if self.token == token::DotDot {
            
            self.bump(); 
            Some(DummyResult::raw_ty(self.prev_span, true))
        } else if has_for || self.token.can_begin_type() {
            Some(self.parse_ty()?)
        } else {
            None
        };
        generics.where_clause = self.parse_where_clause()?;
        let (impl_items, attrs) = self.parse_impl_body()?;
        let item_kind = match ty_second {
            Some(ty_second) => {
                
                if !has_for {
                    self.struct_span_err(missing_for_span, "missing `for` in a trait impl")
                        .span_suggestion_short(
                            missing_for_span,
                            "add `for` here",
                            " for ".to_string(),
                            Applicability::MachineApplicable,
                        ).emit();
                }
                let ty_first = ty_first.into_inner();
                let path = match ty_first.node {
                    
                    TyKind::Path(None, path) => path,
                    _ => {
                        self.span_err(ty_first.span, "expected a trait, found type");
                        err_path(ty_first.span)
                    }
                };
                let trait_ref = TraitRef { path, ref_id: ty_first.id };
                ItemKind::Impl(unsafety, polarity, defaultness,
                               generics, Some(trait_ref), ty_second, impl_items)
            }
            None => {
                
                ItemKind::Impl(unsafety, polarity, defaultness,
                               generics, None, ty_first, impl_items)
            }
        };
        Ok((keywords::Invalid.ident(), item_kind, Some(attrs)))
    }
    fn parse_late_bound_lifetime_defs(&mut self) -> PResult<'a, Vec<GenericParam>> {
        if self.eat_keyword(keywords::For) {
            self.expect_lt()?;
            let params = self.parse_generic_params()?;
            self.expect_gt()?;
            
            
            Ok(params)
        } else {
            Ok(Vec::new())
        }
    }
    
    fn parse_item_struct(&mut self) -> PResult<'a, ItemInfo> {
        let class_name = self.parse_ident()?;
        let mut generics = self.parse_generics()?;
        
        
        
        
        
        
        
        
        
        
        
        
        
        let vdata = if self.token.is_keyword(keywords::Where) {
            generics.where_clause = self.parse_where_clause()?;
            if self.eat(&token::Semi) {
                
                VariantData::Unit(ast::DUMMY_NODE_ID)
            } else {
                
                let (fields, recovered) = self.parse_record_struct_body()?;
                VariantData::Struct(fields, recovered)
            }
        
        } else if self.eat(&token::Semi) {
            VariantData::Unit(ast::DUMMY_NODE_ID)
        
        } else if self.token == token::OpenDelim(token::Brace) {
            let (fields, recovered) = self.parse_record_struct_body()?;
            VariantData::Struct(fields, recovered)
        
        } else if self.token == token::OpenDelim(token::Paren) {
            let body = VariantData::Tuple(self.parse_tuple_struct_body()?, ast::DUMMY_NODE_ID);
            generics.where_clause = self.parse_where_clause()?;
            self.expect(&token::Semi)?;
            body
        } else {
            let token_str = self.this_token_descr();
            let mut err = self.fatal(&format!(
                "expected `where`, `{{`, `(`, or `;` after struct name, found {}",
                token_str
            ));
            err.span_label(self.span, "expected `where`, `{`, `(`, or `;` after struct name");
            return Err(err);
        };
        Ok((class_name, ItemKind::Struct(vdata, generics), None))
    }
    
    fn parse_item_union(&mut self) -> PResult<'a, ItemInfo> {
        let class_name = self.parse_ident()?;
        let mut generics = self.parse_generics()?;
        let vdata = if self.token.is_keyword(keywords::Where) {
            generics.where_clause = self.parse_where_clause()?;
            let (fields, recovered) = self.parse_record_struct_body()?;
            VariantData::Struct(fields, recovered)
        } else if self.token == token::OpenDelim(token::Brace) {
            let (fields, recovered) = self.parse_record_struct_body()?;
            VariantData::Struct(fields, recovered)
        } else {
            let token_str = self.this_token_descr();
            let mut err = self.fatal(&format!(
                "expected `where` or `{{` after union name, found {}", token_str));
            err.span_label(self.span, "expected `where` or `{` after union name");
            return Err(err);
        };
        Ok((class_name, ItemKind::Union(vdata, generics), None))
    }
    fn consume_block(&mut self, delim: token::DelimToken) {
        let mut brace_depth = 0;
        loop {
            if self.eat(&token::OpenDelim(delim)) {
                brace_depth += 1;
            } else if self.eat(&token::CloseDelim(delim)) {
                if brace_depth == 0 {
                    return;
                } else {
                    brace_depth -= 1;
                    continue;
                }
            } else if self.token == token::Eof || self.eat(&token::CloseDelim(token::NoDelim)) {
                return;
            } else {
                self.bump();
            }
        }
    }
    fn parse_record_struct_body(
        &mut self,
    ) -> PResult<'a, (Vec<StructField>,  bool)> {
        let mut fields = Vec::new();
        let mut recovered = false;
        if self.eat(&token::OpenDelim(token::Brace)) {
            while self.token != token::CloseDelim(token::Brace) {
                let field = self.parse_struct_decl_field().map_err(|e| {
                    self.recover_stmt();
                    recovered = true;
                    e
                });
                match field {
                    Ok(field) => fields.push(field),
                    Err(mut err) => {
                        err.emit();
                    }
                }
            }
            self.eat(&token::CloseDelim(token::Brace));
        } else {
            let token_str = self.this_token_descr();
            let mut err = self.fatal(&format!(
                    "expected `where`, or `{{` after struct name, found {}", token_str));
            err.span_label(self.span, "expected `where`, or `{` after struct name");
            return Err(err);
        }
        Ok((fields, recovered))
    }
    fn parse_tuple_struct_body(&mut self) -> PResult<'a, Vec<StructField>> {
        
        
        let fields = self.parse_unspanned_seq(
            &token::OpenDelim(token::Paren),
            &token::CloseDelim(token::Paren),
            SeqSep::trailing_allowed(token::Comma),
            |p| {
                let attrs = p.parse_outer_attributes()?;
                let lo = p.span;
                let vis = p.parse_visibility(true)?;
                let ty = p.parse_ty()?;
                Ok(StructField {
                    span: lo.to(ty.span),
                    vis,
                    ident: None,
                    id: ast::DUMMY_NODE_ID,
                    ty,
                    attrs,
                })
            })?;
        Ok(fields)
    }
    
    fn parse_single_struct_field(&mut self,
                                     lo: Span,
                                     vis: Visibility,
                                     attrs: Vec<Attribute> )
                                     -> PResult<'a, StructField> {
        let mut seen_comma: bool = false;
        let a_var = self.parse_name_and_ty(lo, vis, attrs)?;
        if self.token == token::Comma {
            seen_comma = true;
        }
        match self.token {
            token::Comma => {
                self.bump();
            }
            token::CloseDelim(token::Brace) => {}
            token::DocComment(_) => {
                let previous_span = self.prev_span;
                let mut err = self.span_fatal_err(self.span, Error::UselessDocComment);
                self.bump(); 
                let comma_after_doc_seen = self.eat(&token::Comma);
                
                
                if seen_comma == false && comma_after_doc_seen == true {
                    seen_comma = true;
                }
                if comma_after_doc_seen || self.token == token::CloseDelim(token::Brace) {
                    err.emit();
                } else {
                    if seen_comma == false {
                        let sp = self.sess.source_map().next_point(previous_span);
                        err.span_suggestion(
                            sp,
                            "missing comma here",
                            ",".into(),
                            Applicability::MachineApplicable
                        );
                    }
                    return Err(err);
                }
            }
            _ => {
                let sp = self.sess.source_map().next_point(self.prev_span);
                let mut err = self.struct_span_err(sp, &format!("expected `,`, or `}}`, found {}",
                                                                self.this_token_descr()));
                if self.token.is_ident() {
                    
                    err.span_suggestion(
                        sp,
                        "try adding a comma",
                        ",".into(),
                        Applicability::MachineApplicable,
                    );
                    err.emit();
                } else {
                    return Err(err)
                }
            }
        }
        Ok(a_var)
    }
    
    fn parse_struct_decl_field(&mut self) -> PResult<'a, StructField> {
        let attrs = self.parse_outer_attributes()?;
        let lo = self.span;
        let vis = self.parse_visibility(false)?;
        self.parse_single_struct_field(lo, vis, attrs)
    }
    
    
    
    
    
    pub fn parse_visibility(&mut self, can_take_tuple: bool) -> PResult<'a, Visibility> {
        maybe_whole!(self, NtVis, |x| x);
        self.expected_tokens.push(TokenType::Keyword(keywords::Crate));
        if self.is_crate_vis() {
            self.bump(); 
            return Ok(respan(self.prev_span, VisibilityKind::Crate(CrateSugar::JustCrate)));
        }
        if !self.eat_keyword(keywords::Pub) {
            
            
            
            return Ok(respan(self.span.shrink_to_lo(), VisibilityKind::Inherited))
        }
        let lo = self.prev_span;
        if self.check(&token::OpenDelim(token::Paren)) {
            
            
            
            
            if self.look_ahead(1, |t| t.is_keyword(keywords::Crate)) {
                
                self.bump(); 
                self.bump(); 
                self.expect(&token::CloseDelim(token::Paren))?; 
                let vis = respan(
                    lo.to(self.prev_span),
                    VisibilityKind::Crate(CrateSugar::PubCrate),
                );
                return Ok(vis)
            } else if self.look_ahead(1, |t| t.is_keyword(keywords::In)) {
                
                self.bump(); 
                self.bump(); 
                let path = self.parse_path(PathStyle::Mod)?; 
                self.expect(&token::CloseDelim(token::Paren))?; 
                let vis = respan(lo.to(self.prev_span), VisibilityKind::Restricted {
                    path: P(path),
                    id: ast::DUMMY_NODE_ID,
                });
                return Ok(vis)
            } else if self.look_ahead(2, |t| t == &token::CloseDelim(token::Paren)) &&
                      self.look_ahead(1, |t| t.is_keyword(keywords::Super) ||
                                             t.is_keyword(keywords::SelfLower))
            {
                
                self.bump(); 
                let path = self.parse_path(PathStyle::Mod)?; 
                self.expect(&token::CloseDelim(token::Paren))?; 
                let vis = respan(lo.to(self.prev_span), VisibilityKind::Restricted {
                    path: P(path),
                    id: ast::DUMMY_NODE_ID,
                });
                return Ok(vis)
            } else if !can_take_tuple {  
                
                self.bump(); 
                let msg = "incorrect visibility restriction";
                let suggestion = r##"some possible visibility restrictions are:
`pub(crate)`: visible only on the current crate
`pub(super)`: visible only in the current module's parent
`pub(in path::to::module)`: visible only on the specified path"##;
                let path = self.parse_path(PathStyle::Mod)?;
                let sp = self.prev_span;
                let help_msg = format!("make this visible only to module `{}` with `in`", path);
                self.expect(&token::CloseDelim(token::Paren))?;  
                let mut err = struct_span_err!(self.sess.span_diagnostic, sp, E0704, "{}", msg);
                err.help(suggestion);
                err.span_suggestion(
                    sp, &help_msg, format!("in {}", path), Applicability::MachineApplicable
                );
                err.emit();  
            }
        }
        Ok(respan(lo, VisibilityKind::Public))
    }
    
    fn parse_defaultness(&mut self) -> Defaultness {
        
        if self.check_keyword(keywords::Default) &&
           self.look_ahead(1, |t| t.is_keyword(keywords::Impl) ||
                                  t.is_keyword(keywords::Const) ||
                                  t.is_keyword(keywords::Fn) ||
                                  t.is_keyword(keywords::Unsafe) ||
                                  t.is_keyword(keywords::Extern) ||
                                  t.is_keyword(keywords::Type) ||
                                  t.is_keyword(keywords::Pub)) {
            self.bump(); 
            Defaultness::Default
        } else {
            Defaultness::Final
        }
    }
    fn maybe_consume_incorrect_semicolon(&mut self, items: &[P<Item>]) -> bool {
        if self.eat(&token::Semi) {
            let mut err = self.struct_span_err(self.prev_span, "expected item, found `;`");
            err.span_suggestion_short(
                self.prev_span,
                "remove this semicolon",
                String::new(),
                Applicability::MachineApplicable,
            );
            if !items.is_empty() {
                let previous_item = &items[items.len()-1];
                let previous_item_kind_name = match previous_item.node {
                    
                    
                    ItemKind::Struct(..) => Some("braced struct"),
                    ItemKind::Enum(..) => Some("enum"),
                    ItemKind::Trait(..) => Some("trait"),
                    ItemKind::Union(..) => Some("union"),
                    _ => None,
                };
                if let Some(name) = previous_item_kind_name {
                    err.help(&format!("{} declarations are not followed by a semicolon", name));
                }
            }
            err.emit();
            true
        } else {
            false
        }
    }
    
    fn parse_mod_items(&mut self, term: &token::Token, inner_lo: Span) -> PResult<'a, Mod> {
        let mut items = vec![];
        while let Some(item) = self.parse_item()? {
            items.push(item);
            self.maybe_consume_incorrect_semicolon(&items);
        }
        if !self.eat(term) {
            let token_str = self.this_token_descr();
            if !self.maybe_consume_incorrect_semicolon(&items) {
                let mut err = self.fatal(&format!("expected item, found {}", token_str));
                err.span_label(self.span, "expected item");
                return Err(err);
            }
        }
        let hi = if self.span.is_dummy() {
            inner_lo
        } else {
            self.prev_span
        };
        Ok(ast::Mod {
            inner: inner_lo.to(hi),
            items,
            inline: true
        })
    }
    fn parse_item_const(&mut self, m: Option<Mutability>) -> PResult<'a, ItemInfo> {
        let id = if m.is_none() { self.parse_ident_or_underscore() } else { self.parse_ident() }?;
        self.expect(&token::Colon)?;
        let ty = self.parse_ty()?;
        self.expect(&token::Eq)?;
        let e = self.parse_expr()?;
        self.expect(&token::Semi)?;
        let item = match m {
            Some(m) => ItemKind::Static(ty, m, e),
            None => ItemKind::Const(ty, e),
        };
        Ok((id, item, None))
    }
    
    fn parse_item_mod(&mut self, outer_attrs: &[Attribute]) -> PResult<'a, ItemInfo> {
        let (in_cfg, outer_attrs) = {
            let mut strip_unconfigured = crate::config::StripUnconfigured {
                sess: self.sess,
                features: None, 
            };
            let mut outer_attrs = outer_attrs.to_owned();
            strip_unconfigured.process_cfg_attrs(&mut outer_attrs);
            (!self.cfg_mods || strip_unconfigured.in_cfg(&outer_attrs), outer_attrs)
        };
        let id_span = self.span;
        let id = self.parse_ident()?;
        if self.eat(&token::Semi) {
            if in_cfg && self.recurse_into_file_modules {
                
                let ModulePathSuccess { path, directory_ownership, warn } =
                    self.submod_path(id, &outer_attrs, id_span)?;
                let (module, mut attrs) =
                    self.eval_src_mod(path, directory_ownership, id.to_string(), id_span)?;
                
                if warn {
                    let attr = Attribute {
                        id: attr::mk_attr_id(),
                        style: ast::AttrStyle::Outer,
                        path: ast::Path::from_ident(Ident::from_str("warn_directory_ownership")),
                        tokens: TokenStream::empty(),
                        is_sugared_doc: false,
                        span: syntax_pos::DUMMY_SP,
                    };
                    attr::mark_known(&attr);
                    attrs.push(attr);
                }
                Ok((id, ItemKind::Mod(module), Some(attrs)))
            } else {
                let placeholder = ast::Mod {
                    inner: syntax_pos::DUMMY_SP,
                    items: Vec::new(),
                    inline: false
                };
                Ok((id, ItemKind::Mod(placeholder), None))
            }
        } else {
            let old_directory = self.directory.clone();
            self.push_directory(id, &outer_attrs);
            self.expect(&token::OpenDelim(token::Brace))?;
            let mod_inner_lo = self.span;
            let attrs = self.parse_inner_attributes()?;
            let module = self.parse_mod_items(&token::CloseDelim(token::Brace), mod_inner_lo)?;
            self.directory = old_directory;
            Ok((id, ItemKind::Mod(module), Some(attrs)))
        }
    }
    fn push_directory(&mut self, id: Ident, attrs: &[Attribute]) {
        if let Some(path) = attr::first_attr_value_str_by_name(attrs, "path") {
            self.directory.path.to_mut().push(&path.as_str());
            self.directory.ownership = DirectoryOwnership::Owned { relative: None };
        } else {
            
            
            
            
            
            
            if let DirectoryOwnership::Owned { relative } = &mut self.directory.ownership {
                if let Some(ident) = relative.take() { 
                    self.directory.path.to_mut().push(ident.as_str());
                }
            }
            self.directory.path.to_mut().push(&id.as_str());
        }
    }
    pub fn submod_path_from_attr(attrs: &[Attribute], dir_path: &Path) -> Option<PathBuf> {
        if let Some(s) = attr::first_attr_value_str_by_name(attrs, "path") {
            let s = s.as_str();
            
            
            
            
            #[cfg(windows)]
            let s = s.replace("/", "\\");
            Some(dir_path.join(s))
        } else {
            None
        }
    }
    
    pub fn default_submod_path(
        id: ast::Ident,
        relative: Option<ast::Ident>,
        dir_path: &Path,
        source_map: &SourceMap) -> ModulePath
    {
        
        
        
        
        let relative_prefix_string;
        let relative_prefix = if let Some(ident) = relative {
            relative_prefix_string = format!("{}{}", ident.as_str(), path::MAIN_SEPARATOR);
            &relative_prefix_string
        } else {
            ""
        };
        let mod_name = id.to_string();
        let default_path_str = format!("{}{}.rs", relative_prefix, mod_name);
        let secondary_path_str = format!("{}{}{}mod.rs",
                                         relative_prefix, mod_name, path::MAIN_SEPARATOR);
        let default_path = dir_path.join(&default_path_str);
        let secondary_path = dir_path.join(&secondary_path_str);
        let default_exists = source_map.file_exists(&default_path);
        let secondary_exists = source_map.file_exists(&secondary_path);
        let result = match (default_exists, secondary_exists) {
            (true, false) => Ok(ModulePathSuccess {
                path: default_path,
                directory_ownership: DirectoryOwnership::Owned {
                    relative: Some(id),
                },
                warn: false,
            }),
            (false, true) => Ok(ModulePathSuccess {
                path: secondary_path,
                directory_ownership: DirectoryOwnership::Owned {
                    relative: None,
                },
                warn: false,
            }),
            (false, false) => Err(Error::FileNotFoundForModule {
                mod_name: mod_name.clone(),
                default_path: default_path_str,
                secondary_path: secondary_path_str,
                dir_path: dir_path.display().to_string(),
            }),
            (true, true) => Err(Error::DuplicatePaths {
                mod_name: mod_name.clone(),
                default_path: default_path_str,
                secondary_path: secondary_path_str,
            }),
        };
        ModulePath {
            name: mod_name,
            path_exists: default_exists || secondary_exists,
            result,
        }
    }
    fn submod_path(&mut self,
                   id: ast::Ident,
                   outer_attrs: &[Attribute],
                   id_sp: Span)
                   -> PResult<'a, ModulePathSuccess> {
        if let Some(path) = Parser::submod_path_from_attr(outer_attrs, &self.directory.path) {
            return Ok(ModulePathSuccess {
                directory_ownership: match path.file_name().and_then(|s| s.to_str()) {
                    
                    
                    
                    
                    
                    
                    
                    Some(_) => DirectoryOwnership::Owned { relative: None },
                    _ => DirectoryOwnership::UnownedViaMod(true),
                },
                path,
                warn: false,
            });
        }
        let relative = match self.directory.ownership {
            DirectoryOwnership::Owned { relative } => relative,
            DirectoryOwnership::UnownedViaBlock |
            DirectoryOwnership::UnownedViaMod(_) => None,
        };
        let paths = Parser::default_submod_path(
                        id, relative, &self.directory.path, self.sess.source_map());
        match self.directory.ownership {
            DirectoryOwnership::Owned { .. } => {
                paths.result.map_err(|err| self.span_fatal_err(id_sp, err))
            },
            DirectoryOwnership::UnownedViaBlock => {
                let msg =
                    "Cannot declare a non-inline module inside a block \
                    unless it has a path attribute";
                let mut err = self.diagnostic().struct_span_err(id_sp, msg);
                if paths.path_exists {
                    let msg = format!("Maybe `use` the module `{}` instead of redeclaring it",
                                      paths.name);
                    err.span_note(id_sp, &msg);
                }
                Err(err)
            }
            DirectoryOwnership::UnownedViaMod(warn) => {
                if warn {
                    if let Ok(result) = paths.result {
                        return Ok(ModulePathSuccess { warn: true, ..result });
                    }
                }
                let mut err = self.diagnostic().struct_span_err(id_sp,
                    "cannot declare a new module at this location");
                if !id_sp.is_dummy() {
                    let src_path = self.sess.source_map().span_to_filename(id_sp);
                    if let FileName::Real(src_path) = src_path {
                        if let Some(stem) = src_path.file_stem() {
                            let mut dest_path = src_path.clone();
                            dest_path.set_file_name(stem);
                            dest_path.push("mod.rs");
                            err.span_note(id_sp,
                                    &format!("maybe move this module `{}` to its own \
                                                directory via `{}`", src_path.display(),
                                            dest_path.display()));
                        }
                    }
                }
                if paths.path_exists {
                    err.span_note(id_sp,
                                  &format!("... or maybe `use` the module `{}` instead \
                                            of possibly redeclaring it",
                                           paths.name));
                }
                Err(err)
            }
        }
    }
    
    fn eval_src_mod(&mut self,
                    path: PathBuf,
                    directory_ownership: DirectoryOwnership,
                    name: String,
                    id_sp: Span)
                    -> PResult<'a, (ast::Mod, Vec<Attribute> )> {
        let mut included_mod_stack = self.sess.included_mod_stack.borrow_mut();
        if let Some(i) = included_mod_stack.iter().position(|p| *p == path) {
            let mut err = String::from("circular modules: ");
            let len = included_mod_stack.len();
            for p in &included_mod_stack[i.. len] {
                err.push_str(&p.to_string_lossy());
                err.push_str(" -> ");
            }
            err.push_str(&path.to_string_lossy());
            return Err(self.span_fatal(id_sp, &err[..]));
        }
        included_mod_stack.push(path.clone());
        drop(included_mod_stack);
        let mut p0 =
            new_sub_parser_from_file(self.sess, &path, directory_ownership, Some(name), id_sp);
        p0.cfg_mods = self.cfg_mods;
        let mod_inner_lo = p0.span;
        let mod_attrs = p0.parse_inner_attributes()?;
        let mut m0 = p0.parse_mod_items(&token::Eof, mod_inner_lo)?;
        m0.inline = false;
        self.sess.included_mod_stack.borrow_mut().pop();
        Ok((m0, mod_attrs))
    }
    
    fn parse_item_foreign_fn(&mut self, vis: ast::Visibility, lo: Span, attrs: Vec<Attribute>)
                             -> PResult<'a, ForeignItem> {
        self.expect_keyword(keywords::Fn)?;
        let (ident, mut generics) = self.parse_fn_header()?;
        let decl = self.parse_fn_decl(true)?;
        generics.where_clause = self.parse_where_clause()?;
        let hi = self.span;
        self.expect(&token::Semi)?;
        Ok(ast::ForeignItem {
            ident,
            attrs,
            node: ForeignItemKind::Fn(decl, generics),
            id: ast::DUMMY_NODE_ID,
            span: lo.to(hi),
            vis,
        })
    }
    
    
    fn parse_item_foreign_static(&mut self, vis: ast::Visibility, lo: Span, attrs: Vec<Attribute>)
                                 -> PResult<'a, ForeignItem> {
        let mutbl = self.eat_keyword(keywords::Mut);
        let ident = self.parse_ident()?;
        self.expect(&token::Colon)?;
        let ty = self.parse_ty()?;
        let hi = self.span;
        self.expect(&token::Semi)?;
        Ok(ForeignItem {
            ident,
            attrs,
            node: ForeignItemKind::Static(ty, mutbl),
            id: ast::DUMMY_NODE_ID,
            span: lo.to(hi),
            vis,
        })
    }
    
    fn parse_item_foreign_type(&mut self, vis: ast::Visibility, lo: Span, attrs: Vec<Attribute>)
                             -> PResult<'a, ForeignItem> {
        self.expect_keyword(keywords::Type)?;
        let ident = self.parse_ident()?;
        let hi = self.span;
        self.expect(&token::Semi)?;
        Ok(ast::ForeignItem {
            ident: ident,
            attrs: attrs,
            node: ForeignItemKind::Ty,
            id: ast::DUMMY_NODE_ID,
            span: lo.to(hi),
            vis: vis
        })
    }
    fn parse_crate_name_with_dashes(&mut self) -> PResult<'a, ast::Ident> {
        let error_msg = "crate name using dashes are not valid in `extern crate` statements";
        let suggestion_msg = "if the original crate name uses dashes you need to use underscores \
                              in the code";
        let mut ident = if self.token.is_keyword(keywords::SelfLower) {
            self.parse_path_segment_ident()
        } else {
            self.parse_ident()
        }?;
        let mut idents = vec![];
        let mut replacement = vec![];
        let mut fixed_crate_name = false;
        
        let dash = token::Token::BinOp(token::BinOpToken::Minus);
        if self.token == dash {  
            while self.eat(&dash) {
                fixed_crate_name = true;
                replacement.push((self.prev_span, "_".to_string()));
                idents.push(self.parse_ident()?);
            }
        }
        if fixed_crate_name {
            let fixed_name_sp = ident.span.to(idents.last().unwrap().span);
            let mut fixed_name = format!("{}", ident.name);
            for part in idents {
                fixed_name.push_str(&format!("_{}", part.name));
            }
            ident = Ident::from_str(&fixed_name).with_span_pos(fixed_name_sp);
            let mut err = self.struct_span_err(fixed_name_sp, error_msg);
            err.span_label(fixed_name_sp, "dash-separated idents are not valid");
            err.multipart_suggestion(
                suggestion_msg,
                replacement,
                Applicability::MachineApplicable,
            );
            err.emit();
        }
        Ok(ident)
    }
    
    
    
    
    
    
    
    
    fn parse_item_extern_crate(&mut self,
                               lo: Span,
                               visibility: Visibility,
                               attrs: Vec<Attribute>)
                               -> PResult<'a, P<Item>> {
        
        let orig_name = self.parse_crate_name_with_dashes()?;
        let (item_name, orig_name) = if let Some(rename) = self.parse_rename()? {
            (rename, Some(orig_name.name))
        } else {
            (orig_name, None)
        };
        self.expect(&token::Semi)?;
        let span = lo.to(self.prev_span);
        Ok(self.mk_item(span, item_name, ItemKind::ExternCrate(orig_name), visibility, attrs))
    }
    
    
    
    
    
    
    
    
    
    
    
    fn parse_item_foreign_mod(&mut self,
                              lo: Span,
                              opt_abi: Option<Abi>,
                              visibility: Visibility,
                              mut attrs: Vec<Attribute>)
                              -> PResult<'a, P<Item>> {
        self.expect(&token::OpenDelim(token::Brace))?;
        let abi = opt_abi.unwrap_or(Abi::C);
        attrs.extend(self.parse_inner_attributes()?);
        let mut foreign_items = vec![];
        while !self.eat(&token::CloseDelim(token::Brace)) {
            foreign_items.push(self.parse_foreign_item()?);
        }
        let prev_span = self.prev_span;
        let m = ast::ForeignMod {
            abi,
            items: foreign_items
        };
        let invalid = keywords::Invalid.ident();
        Ok(self.mk_item(lo.to(prev_span), invalid, ItemKind::ForeignMod(m), visibility, attrs))
    }
    
    
    
    
    
    
    fn eat_type(&mut self) -> Option<PResult<'a, (Ident, AliasKind, ast::Generics)>> {
        
        
        if self.check_keyword(keywords::Type) ||
           self.check_keyword(keywords::Existential) &&
                self.look_ahead(1, |t| t.is_keyword(keywords::Type)) {
            let existential = self.eat_keyword(keywords::Existential);
            assert!(self.eat_keyword(keywords::Type));
            Some(self.parse_existential_or_alias(existential))
        } else {
            None
        }
    }
    
    fn parse_existential_or_alias(
        &mut self,
        existential: bool,
    ) -> PResult<'a, (Ident, AliasKind, ast::Generics)> {
        let ident = self.parse_ident()?;
        let mut tps = self.parse_generics()?;
        tps.where_clause = self.parse_where_clause()?;
        let alias = if existential {
            self.expect(&token::Colon)?;
            let bounds = self.parse_generic_bounds(Some(self.prev_span))?;
            AliasKind::Existential(bounds)
        } else {
            self.expect(&token::Eq)?;
            let ty = self.parse_ty()?;
            AliasKind::Weak(ty)
        };
        self.expect(&token::Semi)?;
        Ok((ident, alias, tps))
    }
    
    fn parse_enum_def(&mut self, _generics: &ast::Generics) -> PResult<'a, EnumDef> {
        let mut variants = Vec::new();
        let mut all_nullary = true;
        let mut any_disr = vec![];
        while self.token != token::CloseDelim(token::Brace) {
            let variant_attrs = self.parse_outer_attributes()?;
            let vlo = self.span;
            let struct_def;
            let mut disr_expr = None;
            self.eat_bad_pub();
            let ident = self.parse_ident()?;
            if self.check(&token::OpenDelim(token::Brace)) {
                
                all_nullary = false;
                let (fields, recovered) = self.parse_record_struct_body()?;
                struct_def = VariantData::Struct(fields, recovered);
            } else if self.check(&token::OpenDelim(token::Paren)) {
                all_nullary = false;
                struct_def = VariantData::Tuple(
                    self.parse_tuple_struct_body()?,
                    ast::DUMMY_NODE_ID,
                );
            } else if self.eat(&token::Eq) {
                disr_expr = Some(AnonConst {
                    id: ast::DUMMY_NODE_ID,
                    value: self.parse_expr()?,
                });
                if let Some(sp) = disr_expr.as_ref().map(|c| c.value.span) {
                    any_disr.push(sp);
                }
                struct_def = VariantData::Unit(ast::DUMMY_NODE_ID);
            } else {
                struct_def = VariantData::Unit(ast::DUMMY_NODE_ID);
            }
            let vr = ast::Variant_ {
                ident,
                id: ast::DUMMY_NODE_ID,
                attrs: variant_attrs,
                data: struct_def,
                disr_expr,
            };
            variants.push(respan(vlo.to(self.prev_span), vr));
            if !self.eat(&token::Comma) {
                if self.token.is_ident() && !self.token.is_reserved_ident() {
                    let sp = self.sess.source_map().next_point(self.prev_span);
                    let mut err = self.struct_span_err(sp, "missing comma");
                    err.span_suggestion_short(
                        sp,
                        "missing comma",
                        ",".to_owned(),
                        Applicability::MaybeIncorrect,
                    );
                    err.emit();
                } else {
                    break;
                }
            }
        }
        self.expect(&token::CloseDelim(token::Brace))?;
        if !any_disr.is_empty() && !all_nullary {
            let mut err = self.struct_span_err(
                any_disr.clone(),
                "discriminator values can only be used with a field-less enum",
            );
            for sp in any_disr {
                err.span_label(sp, "only valid in field-less enums");
            }
            err.emit();
        }
        Ok(ast::EnumDef { variants })
    }
    
    fn parse_item_enum(&mut self) -> PResult<'a, ItemInfo> {
        let id = self.parse_ident()?;
        let mut generics = self.parse_generics()?;
        generics.where_clause = self.parse_where_clause()?;
        self.expect(&token::OpenDelim(token::Brace))?;
        let enum_definition = self.parse_enum_def(&generics).map_err(|e| {
            self.recover_stmt();
            self.eat(&token::CloseDelim(token::Brace));
            e
        })?;
        Ok((id, ItemKind::Enum(enum_definition, generics), None))
    }
    
    
    fn parse_opt_abi(&mut self) -> PResult<'a, Option<Abi>> {
        match self.token {
            token::Literal(token::Str_(s), suf) | token::Literal(token::StrRaw(s, _), suf) => {
                let sp = self.span;
                self.expect_no_suffix(sp, "an ABI spec", suf);
                self.bump();
                match abi::lookup(&s.as_str()) {
                    Some(abi) => Ok(Some(abi)),
                    None => {
                        let prev_span = self.prev_span;
                        let mut err = struct_span_err!(
                            self.sess.span_diagnostic,
                            prev_span,
                            E0703,
                            "invalid ABI: found `{}`",
                            s);
                        err.span_label(prev_span, "invalid ABI");
                        err.help(&format!("valid ABIs: {}", abi::all_names().join(", ")));
                        err.emit();
                        Ok(None)
                    }
                }
            }
            _ => Ok(None),
        }
    }
    fn is_static_global(&mut self) -> bool {
        if self.check_keyword(keywords::Static) {
            
            !self.look_ahead(1, |token| {
                if token.is_keyword(keywords::Move) {
                    return true;
                }
                match *token {
                    token::BinOp(token::Or) | token::OrOr => true,
                    _ => false,
                }
            })
        } else {
            false
        }
    }
    fn parse_item_(
        &mut self,
        attrs: Vec<Attribute>,
        macros_allowed: bool,
        attributes_allowed: bool,
    ) -> PResult<'a, Option<P<Item>>> {
        let mut unclosed_delims = vec![];
        let (ret, tokens) = self.collect_tokens(|this| {
            let item = this.parse_item_implementation(attrs, macros_allowed, attributes_allowed);
            unclosed_delims.append(&mut this.unclosed_delims);
            item
        })?;
        self.unclosed_delims.append(&mut unclosed_delims);
        
        
        
        
        
        
        
        
        
        
        
        
        
        
        Ok(ret.map(|item| {
            item.map(|mut i| {
                if !i.attrs.iter().any(|attr| attr.style == AttrStyle::Inner) {
                    i.tokens = Some(tokens);
                }
                i
            })
        }))
    }
    
    fn parse_item_implementation(
        &mut self,
        attrs: Vec<Attribute>,
        macros_allowed: bool,
        attributes_allowed: bool,
    ) -> PResult<'a, Option<P<Item>>> {
        maybe_whole!(self, NtItem, |item| {
            let mut item = item.into_inner();
            let mut attrs = attrs;
            mem::swap(&mut item.attrs, &mut attrs);
            item.attrs.extend(attrs);
            Some(P(item))
        });
        let lo = self.span;
        let visibility = self.parse_visibility(false)?;
        if self.eat_keyword(keywords::Use) {
            
            let item_ = ItemKind::Use(P(self.parse_use_tree()?));
            self.expect(&token::Semi)?;
            let span = lo.to(self.prev_span);
            let item = self.mk_item(span, keywords::Invalid.ident(), item_, visibility, attrs);
            return Ok(Some(item));
        }
        if self.eat_keyword(keywords::Extern) {
            if self.eat_keyword(keywords::Crate) {
                return Ok(Some(self.parse_item_extern_crate(lo, visibility, attrs)?));
            }
            let opt_abi = self.parse_opt_abi()?;
            if self.eat_keyword(keywords::Fn) {
                
                let fn_span = self.prev_span;
                let abi = opt_abi.unwrap_or(Abi::C);
                let (ident, item_, extra_attrs) =
                    self.parse_item_fn(Unsafety::Normal,
                                       respan(fn_span, IsAsync::NotAsync),
                                       respan(fn_span, Constness::NotConst),
                                       abi)?;
                let prev_span = self.prev_span;
                let item = self.mk_item(lo.to(prev_span),
                                        ident,
                                        item_,
                                        visibility,
                                        maybe_append(attrs, extra_attrs));
                return Ok(Some(item));
            } else if self.check(&token::OpenDelim(token::Brace)) {
                return Ok(Some(self.parse_item_foreign_mod(lo, opt_abi, visibility, attrs)?));
            }
            self.unexpected()?;
        }
        if self.is_static_global() {
            self.bump();
            
            let m = if self.eat_keyword(keywords::Mut) {
                Mutability::Mutable
            } else {
                Mutability::Immutable
            };
            let (ident, item_, extra_attrs) = self.parse_item_const(Some(m))?;
            let prev_span = self.prev_span;
            let item = self.mk_item(lo.to(prev_span),
                                    ident,
                                    item_,
                                    visibility,
                                    maybe_append(attrs, extra_attrs));
            return Ok(Some(item));
        }
        if self.eat_keyword(keywords::Const) {
            let const_span = self.prev_span;
            if self.check_keyword(keywords::Fn)
                || (self.check_keyword(keywords::Unsafe)
                    && self.look_ahead(1, |t| t.is_keyword(keywords::Fn))) {
                
                let unsafety = self.parse_unsafety();
                self.bump();
                let (ident, item_, extra_attrs) =
                    self.parse_item_fn(unsafety,
                                       respan(const_span, IsAsync::NotAsync),
                                       respan(const_span, Constness::Const),
                                       Abi::Rust)?;
                let prev_span = self.prev_span;
                let item = self.mk_item(lo.to(prev_span),
                                        ident,
                                        item_,
                                        visibility,
                                        maybe_append(attrs, extra_attrs));
                return Ok(Some(item));
            }
            
            if self.eat_keyword(keywords::Mut) {
                let prev_span = self.prev_span;
                let mut err = self.diagnostic()
                    .struct_span_err(prev_span, "const globals cannot be mutable");
                err.span_label(prev_span, "cannot be mutable");
                err.span_suggestion(
                    const_span,
                    "you might want to declare a static instead",
                    "static".to_owned(),
                    Applicability::MaybeIncorrect,
                );
                err.emit();
            }
            let (ident, item_, extra_attrs) = self.parse_item_const(None)?;
            let prev_span = self.prev_span;
            let item = self.mk_item(lo.to(prev_span),
                                    ident,
                                    item_,
                                    visibility,
                                    maybe_append(attrs, extra_attrs));
            return Ok(Some(item));
        }
        
        if (
            self.check_keyword(keywords::Unsafe) &&
            self.look_ahead(1, |t| t.is_keyword(keywords::Async))
        ) || (
            self.check_keyword(keywords::Async) &&
            self.look_ahead(1, |t| t.is_keyword(keywords::Fn))
        )
        {
            
            let unsafety = self.parse_unsafety();
            self.expect_keyword(keywords::Async)?;
            let async_span = self.prev_span;
            self.expect_keyword(keywords::Fn)?;
            let fn_span = self.prev_span;
            let (ident, item_, extra_attrs) =
                self.parse_item_fn(unsafety,
                                   respan(async_span, IsAsync::Async {
                                       closure_id: ast::DUMMY_NODE_ID,
                                       return_impl_trait_id: ast::DUMMY_NODE_ID,
                                   }),
                                   respan(fn_span, Constness::NotConst),
                                   Abi::Rust)?;
            let prev_span = self.prev_span;
            let item = self.mk_item(lo.to(prev_span),
                                    ident,
                                    item_,
                                    visibility,
                                    maybe_append(attrs, extra_attrs));
            if self.span.rust_2015() {
                self.diagnostic().struct_span_err_with_code(
                    async_span,
                    "`async fn` is not permitted in the 2015 edition",
                    DiagnosticId::Error("E0670".into())
                ).emit();
            }
            return Ok(Some(item));
        }
        if self.check_keyword(keywords::Unsafe) &&
            (self.look_ahead(1, |t| t.is_keyword(keywords::Trait)) ||
            self.look_ahead(1, |t| t.is_keyword(keywords::Auto)))
        {
            
            self.bump(); 
            let is_auto = if self.eat_keyword(keywords::Trait) {
                IsAuto::No
            } else {
                self.expect_keyword(keywords::Auto)?;
                self.expect_keyword(keywords::Trait)?;
                IsAuto::Yes
            };
            let (ident, item_, extra_attrs) =
                self.parse_item_trait(is_auto, Unsafety::Unsafe)?;
            let prev_span = self.prev_span;
            let item = self.mk_item(lo.to(prev_span),
                                    ident,
                                    item_,
                                    visibility,
                                    maybe_append(attrs, extra_attrs));
            return Ok(Some(item));
        }
        if self.check_keyword(keywords::Impl) ||
           self.check_keyword(keywords::Unsafe) &&
                self.look_ahead(1, |t| t.is_keyword(keywords::Impl)) ||
           self.check_keyword(keywords::Default) &&
                self.look_ahead(1, |t| t.is_keyword(keywords::Impl)) ||
           self.check_keyword(keywords::Default) &&
                self.look_ahead(1, |t| t.is_keyword(keywords::Unsafe)) {
            
            let defaultness = self.parse_defaultness();
            let unsafety = self.parse_unsafety();
            self.expect_keyword(keywords::Impl)?;
            let (ident, item, extra_attrs) = self.parse_item_impl(unsafety, defaultness)?;
            let span = lo.to(self.prev_span);
            return Ok(Some(self.mk_item(span, ident, item, visibility,
                                        maybe_append(attrs, extra_attrs))));
        }
        if self.check_keyword(keywords::Fn) {
            
            self.bump();
            let fn_span = self.prev_span;
            let (ident, item_, extra_attrs) =
                self.parse_item_fn(Unsafety::Normal,
                                   respan(fn_span, IsAsync::NotAsync),
                                   respan(fn_span, Constness::NotConst),
                                   Abi::Rust)?;
            let prev_span = self.prev_span;
            let item = self.mk_item(lo.to(prev_span),
                                    ident,
                                    item_,
                                    visibility,
                                    maybe_append(attrs, extra_attrs));
            return Ok(Some(item));
        }
        if self.check_keyword(keywords::Unsafe)
            && self.look_ahead(1, |t| *t != token::OpenDelim(token::Brace)) {
            
            self.bump(); 
            
            self.check(&token::OpenDelim(token::Brace));
            let abi = if self.eat_keyword(keywords::Extern) {
                self.parse_opt_abi()?.unwrap_or(Abi::C)
            } else {
                Abi::Rust
            };
            self.expect_keyword(keywords::Fn)?;
            let fn_span = self.prev_span;
            let (ident, item_, extra_attrs) =
                self.parse_item_fn(Unsafety::Unsafe,
                                   respan(fn_span, IsAsync::NotAsync),
                                   respan(fn_span, Constness::NotConst),
                                   abi)?;
            let prev_span = self.prev_span;
            let item = self.mk_item(lo.to(prev_span),
                                    ident,
                                    item_,
                                    visibility,
                                    maybe_append(attrs, extra_attrs));
            return Ok(Some(item));
        }
        if self.eat_keyword(keywords::Mod) {
            
            let (ident, item_, extra_attrs) =
                self.parse_item_mod(&attrs[..])?;
            let prev_span = self.prev_span;
            let item = self.mk_item(lo.to(prev_span),
                                    ident,
                                    item_,
                                    visibility,
                                    maybe_append(attrs, extra_attrs));
            return Ok(Some(item));
        }
        if let Some(type_) = self.eat_type() {
            let (ident, alias, generics) = type_?;
            
            let item_ = match alias {
                AliasKind::Weak(ty) => ItemKind::Ty(ty, generics),
                AliasKind::Existential(bounds) => ItemKind::Existential(bounds, generics),
            };
            let prev_span = self.prev_span;
            let item = self.mk_item(lo.to(prev_span),
                                    ident,
                                    item_,
                                    visibility,
                                    attrs);
            return Ok(Some(item));
        }
        if self.eat_keyword(keywords::Enum) {
            
            let (ident, item_, extra_attrs) = self.parse_item_enum()?;
            let prev_span = self.prev_span;
            let item = self.mk_item(lo.to(prev_span),
                                    ident,
                                    item_,
                                    visibility,
                                    maybe_append(attrs, extra_attrs));
            return Ok(Some(item));
        }
        if self.check_keyword(keywords::Trait)
            || (self.check_keyword(keywords::Auto)
                && self.look_ahead(1, |t| t.is_keyword(keywords::Trait)))
        {
            let is_auto = if self.eat_keyword(keywords::Trait) {
                IsAuto::No
            } else {
                self.expect_keyword(keywords::Auto)?;
                self.expect_keyword(keywords::Trait)?;
                IsAuto::Yes
            };
            
            let (ident, item_, extra_attrs) =
                self.parse_item_trait(is_auto, Unsafety::Normal)?;
            let prev_span = self.prev_span;
            let item = self.mk_item(lo.to(prev_span),
                                    ident,
                                    item_,
                                    visibility,
                                    maybe_append(attrs, extra_attrs));
            return Ok(Some(item));
        }
        if self.eat_keyword(keywords::Struct) {
            
            let (ident, item_, extra_attrs) = self.parse_item_struct()?;
            let prev_span = self.prev_span;
            let item = self.mk_item(lo.to(prev_span),
                                    ident,
                                    item_,
                                    visibility,
                                    maybe_append(attrs, extra_attrs));
            return Ok(Some(item));
        }
        if self.is_union_item() {
            
            self.bump();
            let (ident, item_, extra_attrs) = self.parse_item_union()?;
            let prev_span = self.prev_span;
            let item = self.mk_item(lo.to(prev_span),
                                    ident,
                                    item_,
                                    visibility,
                                    maybe_append(attrs, extra_attrs));
            return Ok(Some(item));
        }
        if let Some(macro_def) = self.eat_macro_def(&attrs, &visibility, lo)? {
            return Ok(Some(macro_def));
        }
        
        
        if visibility.node.is_pub() &&
            self.check_ident() &&
            self.look_ahead(1, |t| *t != token::Not)
        {
            
            
            
            
            let sp = self.prev_span.between(self.span);
            let full_sp = self.prev_span.to(self.span);
            let ident_sp = self.span;
            if self.look_ahead(1, |t| *t == token::OpenDelim(token::Brace)) {
                
                let ident = self.parse_ident().unwrap();
                let msg = format!("add `struct` here to parse `{}` as a public struct",
                                  ident);
                let mut err = self.diagnostic()
                    .struct_span_err(sp, "missing `struct` for struct definition");
                err.span_suggestion_short(
                    sp, &msg, " struct ".into(), Applicability::MaybeIncorrect 
                );
                return Err(err);
            } else if self.look_ahead(1, |t| *t == token::OpenDelim(token::Paren)) {
                let ident = self.parse_ident().unwrap();
                self.bump();  
                let kw_name = if let Ok(Some(_)) = self.parse_self_arg() {
                    "method"
                } else {
                    "function"
                };
                self.consume_block(token::Paren);
                let (kw, kw_name, ambiguous) = if self.check(&token::RArrow) {
                    self.eat_to_tokens(&[&token::OpenDelim(token::Brace)]);
                    self.bump();  
                    ("fn", kw_name, false)
                } else if self.check(&token::OpenDelim(token::Brace)) {
                    self.bump();  
                    ("fn", kw_name, false)
                } else if self.check(&token::Colon) {
                    let kw = "struct";
                    (kw, kw, false)
                } else {
                    ("fn` or `struct", "function or struct", true)
                };
                self.consume_block(token::Brace);
                let msg = format!("missing `{}` for {} definition", kw, kw_name);
                let mut err = self.diagnostic().struct_span_err(sp, &msg);
                if !ambiguous {
                    let suggestion = format!("add `{}` here to parse `{}` as a public {}",
                                             kw,
                                             ident,
                                             kw_name);
                    err.span_suggestion_short(
                        sp, &suggestion, format!(" {} ", kw), Applicability::MachineApplicable
                    );
                } else {
                    if let Ok(snippet) = self.sess.source_map().span_to_snippet(ident_sp) {
                        err.span_suggestion(
                            full_sp,
                            "if you meant to call a macro, try",
                            format!("{}!", snippet),
                            
                            Applicability::MaybeIncorrect
                        );
                    } else {
                        err.help("if you meant to call a macro, remove the `pub` \
                                  and add a trailing `!` after the identifier");
                    }
                }
                return Err(err);
            } else if self.look_ahead(1, |t| *t == token::Lt) {
                let ident = self.parse_ident().unwrap();
                self.eat_to_tokens(&[&token::Gt]);
                self.bump();  
                let (kw, kw_name, ambiguous) = if self.eat(&token::OpenDelim(token::Paren)) {
                    if let Ok(Some(_)) = self.parse_self_arg() {
                        ("fn", "method", false)
                    } else {
                        ("fn", "function", false)
                    }
                } else if self.check(&token::OpenDelim(token::Brace)) {
                    ("struct", "struct", false)
                } else {
                    ("fn` or `struct", "function or struct", true)
                };
                let msg = format!("missing `{}` for {} definition", kw, kw_name);
                let mut err = self.diagnostic().struct_span_err(sp, &msg);
                if !ambiguous {
                    err.span_suggestion_short(
                        sp,
                        &format!("add `{}` here to parse `{}` as a public {}", kw, ident, kw_name),
                        format!(" {} ", kw),
                        Applicability::MachineApplicable,
                    );
                }
                return Err(err);
            }
        }
        self.parse_macro_use_or_failure(attrs, macros_allowed, attributes_allowed, lo, visibility)
    }
    
    crate fn parse_foreign_item(&mut self) -> PResult<'a, ForeignItem> {
        maybe_whole!(self, NtForeignItem, |ni| ni);
        let attrs = self.parse_outer_attributes()?;
        let lo = self.span;
        let visibility = self.parse_visibility(false)?;
        
        
        if self.check_keyword(keywords::Static) || self.token.is_keyword(keywords::Const) {
            if self.token.is_keyword(keywords::Const) {
                self.diagnostic()
                    .struct_span_err(self.span, "extern items cannot be `const`")
                    .span_suggestion(
                        self.span,
                        "try using a static value",
                        "static".to_owned(),
                        Applicability::MachineApplicable
                    ).emit();
            }
            self.bump(); 
            return Ok(self.parse_item_foreign_static(visibility, lo, attrs)?);
        }
        
        if self.check_keyword(keywords::Fn) {
            return Ok(self.parse_item_foreign_fn(visibility, lo, attrs)?);
        }
        
        if self.check_keyword(keywords::Type) {
            return Ok(self.parse_item_foreign_type(visibility, lo, attrs)?);
        }
        match self.parse_assoc_macro_invoc("extern", Some(&visibility), &mut false)? {
            Some(mac) => {
                Ok(
                    ForeignItem {
                        ident: keywords::Invalid.ident(),
                        span: lo.to(self.prev_span),
                        id: ast::DUMMY_NODE_ID,
                        attrs,
                        vis: visibility,
                        node: ForeignItemKind::Macro(mac),
                    }
                )
            }
            None => {
                if !attrs.is_empty()  {
                    self.expected_item_err(&attrs)?;
                }
                self.unexpected()
            }
        }
    }
    
    fn parse_macro_use_or_failure(
        &mut self,
        attrs: Vec<Attribute> ,
        macros_allowed: bool,
        attributes_allowed: bool,
        lo: Span,
        visibility: Visibility
    ) -> PResult<'a, Option<P<Item>>> {
        if macros_allowed && self.token.is_path_start() &&
                !(self.is_async_fn() && self.span.rust_2015()) {
            
            let prev_span = self.prev_span;
            self.complain_if_pub_macro(&visibility.node, prev_span);
            let mac_lo = self.span;
            
            let pth = self.parse_path(PathStyle::Mod)?;
            self.expect(&token::Not)?;
            
            
            
            let id = if self.token.is_ident() {
                self.parse_ident()?
            } else {
                keywords::Invalid.ident() 
            };
            
            let (delim, tts) = self.expect_delimited_token_tree()?;
            if delim != MacDelimiter::Brace && !self.eat(&token::Semi) {
                self.report_invalid_macro_expansion_item();
            }
            let hi = self.prev_span;
            let mac = respan(mac_lo.to(hi), Mac_ { path: pth, tts, delim });
            let item = self.mk_item(lo.to(hi), id, ItemKind::Mac(mac), visibility, attrs);
            return Ok(Some(item));
        }
        
        match visibility.node {
            VisibilityKind::Inherited => {}
            _ => {
                return Err(self.span_fatal(self.prev_span, "unmatched visibility `pub`"));
            }
        }
        if !attributes_allowed && !attrs.is_empty() {
            self.expected_item_err(&attrs)?;
        }
        Ok(None)
    }
    
    fn parse_assoc_macro_invoc(&mut self, item_kind: &str, vis: Option<&Visibility>,
                               at_end: &mut bool) -> PResult<'a, Option<Mac>>
    {
        if self.token.is_path_start() &&
                !(self.is_async_fn() && self.span.rust_2015()) {
            let prev_span = self.prev_span;
            let lo = self.span;
            let pth = self.parse_path(PathStyle::Mod)?;
            if pth.segments.len() == 1 {
                if !self.eat(&token::Not) {
                    return Err(self.missing_assoc_item_kind_err(item_kind, prev_span));
                }
            } else {
                self.expect(&token::Not)?;
            }
            if let Some(vis) = vis {
                self.complain_if_pub_macro(&vis.node, prev_span);
            }
            *at_end = true;
            
            let (delim, tts) = self.expect_delimited_token_tree()?;
            if delim != MacDelimiter::Brace {
                self.expect(&token::Semi)?;
            }
            Ok(Some(respan(lo.to(self.prev_span), Mac_ { path: pth, tts, delim })))
        } else {
            Ok(None)
        }
    }
    fn collect_tokens<F, R>(&mut self, f: F) -> PResult<'a, (R, TokenStream)>
        where F: FnOnce(&mut Self) -> PResult<'a, R>
    {
        
        let mut tokens = Vec::new();
        let prev_collecting = match self.token_cursor.frame.last_token {
            LastToken::Collecting(ref mut list) => {
                Some(mem::replace(list, Vec::new()))
            }
            LastToken::Was(ref mut last) => {
                tokens.extend(last.take());
                None
            }
        };
        self.token_cursor.frame.last_token = LastToken::Collecting(tokens);
        let prev = self.token_cursor.stack.len();
        let ret = f(self);
        let last_token = if self.token_cursor.stack.len() == prev {
            &mut self.token_cursor.frame.last_token
        } else {
            &mut self.token_cursor.stack[prev].last_token
        };
        
        let mut collected_tokens = match *last_token {
            LastToken::Collecting(ref mut v) => mem::replace(v, Vec::new()),
            LastToken::Was(_) => panic!("our vector went away?"),
        };
        
        
        
        let extra_token = if self.token != token::Eof {
            collected_tokens.pop()
        } else {
            None
        };
        
        
        
        
        match prev_collecting {
            Some(mut list) => {
                list.extend(collected_tokens.iter().cloned());
                list.extend(extra_token);
                *last_token = LastToken::Collecting(list);
            }
            None => {
                *last_token = LastToken::Was(extra_token);
            }
        }
        Ok((ret?, TokenStream::new(collected_tokens)))
    }
    pub fn parse_item(&mut self) -> PResult<'a, Option<P<Item>>> {
        let attrs = self.parse_outer_attributes()?;
        self.parse_item_(attrs, true, false)
    }
    
    fn is_import_coupler(&mut self) -> bool {
        self.check(&token::ModSep) &&
            self.look_ahead(1, |t| *t == token::OpenDelim(token::Brace) ||
                                   *t == token::BinOp(token::Star))
    }
    
    
    
    
    
    
    
    
    
    fn parse_use_tree(&mut self) -> PResult<'a, UseTree> {
        let lo = self.span;
        let mut prefix = ast::Path { segments: Vec::new(), span: lo.shrink_to_lo() };
        let kind = if self.check(&token::OpenDelim(token::Brace)) ||
                      self.check(&token::BinOp(token::Star)) ||
                      self.is_import_coupler() {
            
            let mod_sep_ctxt = self.span.ctxt();
            if self.eat(&token::ModSep) {
                prefix.segments.push(
                    PathSegment::path_root(lo.shrink_to_lo().with_ctxt(mod_sep_ctxt))
                );
            }
            if self.eat(&token::BinOp(token::Star)) {
                UseTreeKind::Glob
            } else {
                UseTreeKind::Nested(self.parse_use_tree_list()?)
            }
        } else {
            
            prefix = self.parse_path(PathStyle::Mod)?;
            if self.eat(&token::ModSep) {
                if self.eat(&token::BinOp(token::Star)) {
                    UseTreeKind::Glob
                } else {
                    UseTreeKind::Nested(self.parse_use_tree_list()?)
                }
            } else {
                UseTreeKind::Simple(self.parse_rename()?, ast::DUMMY_NODE_ID, ast::DUMMY_NODE_ID)
            }
        };
        Ok(UseTree { prefix, kind, span: lo.to(self.prev_span) })
    }
    
    
    
    
    
    fn parse_use_tree_list(&mut self) -> PResult<'a, Vec<(UseTree, ast::NodeId)>> {
        self.parse_unspanned_seq(&token::OpenDelim(token::Brace),
                                 &token::CloseDelim(token::Brace),
                                 SeqSep::trailing_allowed(token::Comma), |this| {
            Ok((this.parse_use_tree()?, ast::DUMMY_NODE_ID))
        })
    }
    fn parse_rename(&mut self) -> PResult<'a, Option<Ident>> {
        if self.eat_keyword(keywords::As) {
            self.parse_ident_or_underscore().map(Some)
        } else {
            Ok(None)
        }
    }
    
    pub fn parse_crate_mod(&mut self) -> PResult<'a, Crate> {
        let lo = self.span;
        let krate = Ok(ast::Crate {
            attrs: self.parse_inner_attributes()?,
            module: self.parse_mod_items(&token::Eof, lo)?,
            span: lo.to(self.span),
        });
        krate
    }
    pub fn parse_optional_str(&mut self) -> Option<(Symbol, ast::StrStyle, Option<ast::Name>)> {
        let ret = match self.token {
            token::Literal(token::Str_(s), suf) => (s, ast::StrStyle::Cooked, suf),
            token::Literal(token::StrRaw(s, n), suf) => (s, ast::StrStyle::Raw(n), suf),
            _ => return None
        };
        self.bump();
        Some(ret)
    }
    pub fn parse_str(&mut self) -> PResult<'a, (Symbol, StrStyle)> {
        match self.parse_optional_str() {
            Some((s, style, suf)) => {
                let sp = self.prev_span;
                self.expect_no_suffix(sp, "a string literal", suf);
                Ok((s, style))
            }
            _ => {
                let msg = "expected string literal";
                let mut err = self.fatal(msg);
                err.span_label(self.span, msg);
                Err(err)
            }
        }
    }
    fn report_invalid_macro_expansion_item(&self) {
        self.struct_span_err(
            self.prev_span,
            "macros that expand to items must be delimited with braces or followed by a semicolon",
        ).multipart_suggestion(
            "change the delimiters to curly braces",
            vec![
                (self.prev_span.with_hi(self.prev_span.lo() + BytePos(1)), String::from(" {")),
                (self.prev_span.with_lo(self.prev_span.hi() - BytePos(1)), '}'.to_string()),
            ],
            Applicability::MaybeIncorrect,
        ).span_suggestion(
            self.sess.source_map.next_point(self.prev_span),
            "add a semicolon",
            ';'.to_string(),
            Applicability::MaybeIncorrect,
        ).emit();
    }
    
    fn eat_bad_pub(&mut self) {
        if self.token.is_keyword(keywords::Pub) {
            match self.parse_visibility(false) {
                Ok(vis) => {
                    let mut err = self.diagnostic()
                        .struct_span_err(vis.span, "unnecessary visibility qualifier");
                    err.span_label(vis.span, "`pub` not permitted here");
                    err.emit();
                }
                Err(mut err) => err.emit(),
            }
        }
    }
}
pub fn emit_unclosed_delims(unclosed_delims: &mut Vec<UnmatchedBrace>, handler: &errors::Handler) {
    for unmatched in unclosed_delims.iter() {
        let mut err = handler.struct_span_err(unmatched.found_span, &format!(
            "incorrect close delimiter: `{}`",
            pprust::token_to_string(&token::Token::CloseDelim(unmatched.found_delim)),
        ));
        err.span_label(unmatched.found_span, "incorrect close delimiter");
        if let Some(sp) = unmatched.candidate_span {
            err.span_label(sp, "close delimiter possibly meant for this");
        }
        if let Some(sp) = unmatched.unclosed_span {
            err.span_label(sp, "un-closed delimiter");
        }
        err.emit();
    }
    unclosed_delims.clear();
}