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[rust.git] / crates / ide_completion / src / context.rs
1 //! See `CompletionContext` structure.
2
3 use hir::{Local, ScopeDef, Semantics, SemanticsScope, Type};
4 use ide_db::base_db::{FilePosition, SourceDatabase};
5 use ide_db::{call_info::ActiveParameter, RootDatabase};
6 use syntax::{
7     algo::find_node_at_offset,
8     ast::{self, NameOrNameRef, NameOwner},
9     match_ast, AstNode, NodeOrToken,
10     SyntaxKind::*,
11     SyntaxNode, SyntaxToken, TextRange, TextSize,
12 };
13
14 use text_edit::Indel;
15
16 use crate::{
17     patterns::{
18         fn_is_prev, for_is_prev2, has_bind_pat_parent, has_block_expr_parent,
19         has_field_list_parent, has_impl_as_prev_sibling, has_impl_parent,
20         has_item_list_or_source_file_parent, has_ref_parent, has_trait_as_prev_sibling,
21         has_trait_parent, if_is_prev, inside_impl_trait_block, is_in_loop_body, is_match_arm,
22         unsafe_is_prev,
23     },
24     CompletionConfig,
25 };
26
27 /// `CompletionContext` is created early during completion to figure out, where
28 /// exactly is the cursor, syntax-wise.
29 #[derive(Debug)]
30 pub(crate) struct CompletionContext<'a> {
31     pub(super) sema: Semantics<'a, RootDatabase>,
32     pub(super) scope: SemanticsScope<'a>,
33     pub(super) db: &'a RootDatabase,
34     pub(super) config: &'a CompletionConfig,
35     pub(super) position: FilePosition,
36     /// The token before the cursor, in the original file.
37     pub(super) original_token: SyntaxToken,
38     /// The token before the cursor, in the macro-expanded file.
39     pub(super) token: SyntaxToken,
40     pub(super) krate: Option<hir::Crate>,
41     pub(super) expected_name: Option<NameOrNameRef>,
42     pub(super) expected_type: Option<Type>,
43     pub(super) name_ref_syntax: Option<ast::NameRef>,
44     pub(super) lifetime_syntax: Option<ast::Lifetime>,
45     pub(super) lifetime_param_syntax: Option<ast::LifetimeParam>,
46     pub(super) function_syntax: Option<ast::Fn>,
47     pub(super) use_item_syntax: Option<ast::Use>,
48     pub(super) record_lit_syntax: Option<ast::RecordExpr>,
49     pub(super) record_pat_syntax: Option<ast::RecordPat>,
50     pub(super) record_field_syntax: Option<ast::RecordExprField>,
51     pub(super) impl_def: Option<ast::Impl>,
52     pub(super) lifetime_allowed: bool,
53     /// FIXME: `ActiveParameter` is string-based, which is very very wrong
54     pub(super) active_parameter: Option<ActiveParameter>,
55     pub(super) is_param: bool,
56     pub(super) is_label_ref: bool,
57     /// If a name-binding or reference to a const in a pattern.
58     /// Irrefutable patterns (like let) are excluded.
59     pub(super) is_pat_binding_or_const: bool,
60     pub(super) is_irrefutable_pat_binding: bool,
61     /// A single-indent path, like `foo`. `::foo` should not be considered a trivial path.
62     pub(super) is_trivial_path: bool,
63     /// If not a trivial path, the prefix (qualifier).
64     pub(super) path_qual: Option<ast::Path>,
65     pub(super) after_if: bool,
66     /// `true` if we are a statement or a last expr in the block.
67     pub(super) can_be_stmt: bool,
68     /// `true` if we expect an expression at the cursor position.
69     pub(super) is_expr: bool,
70     /// Something is typed at the "top" level, in module or impl/trait.
71     pub(super) is_new_item: bool,
72     /// The receiver if this is a field or method access, i.e. writing something.$0
73     pub(super) dot_receiver: Option<ast::Expr>,
74     pub(super) dot_receiver_is_ambiguous_float_literal: bool,
75     /// If this is a call (method or function) in particular, i.e. the () are already there.
76     pub(super) is_call: bool,
77     /// Like `is_call`, but for tuple patterns.
78     pub(super) is_pattern_call: bool,
79     /// If this is a macro call, i.e. the () are already there.
80     pub(super) is_macro_call: bool,
81     pub(super) is_path_type: bool,
82     pub(super) has_type_args: bool,
83     pub(super) attribute_under_caret: Option<ast::Attr>,
84     pub(super) mod_declaration_under_caret: Option<ast::Module>,
85     pub(super) unsafe_is_prev: bool,
86     pub(super) if_is_prev: bool,
87     pub(super) block_expr_parent: bool,
88     pub(super) bind_pat_parent: bool,
89     pub(super) ref_pat_parent: bool,
90     pub(super) in_loop_body: bool,
91     pub(super) has_trait_parent: bool,
92     pub(super) has_impl_parent: bool,
93     pub(super) inside_impl_trait_block: bool,
94     pub(super) has_field_list_parent: bool,
95     pub(super) trait_as_prev_sibling: bool,
96     pub(super) impl_as_prev_sibling: bool,
97     pub(super) is_match_arm: bool,
98     pub(super) has_item_list_or_source_file_parent: bool,
99     pub(super) for_is_prev2: bool,
100     pub(super) fn_is_prev: bool,
101     pub(super) incomplete_let: bool,
102     pub(super) locals: Vec<(String, Local)>,
103 }
104
105 impl<'a> CompletionContext<'a> {
106     pub(super) fn new(
107         db: &'a RootDatabase,
108         position: FilePosition,
109         config: &'a CompletionConfig,
110     ) -> Option<CompletionContext<'a>> {
111         let sema = Semantics::new(db);
112
113         let original_file = sema.parse(position.file_id);
114
115         // Insert a fake ident to get a valid parse tree. We will use this file
116         // to determine context, though the original_file will be used for
117         // actual completion.
118         let file_with_fake_ident = {
119             let parse = db.parse(position.file_id);
120             let edit = Indel::insert(position.offset, "intellijRulezz".to_string());
121             parse.reparse(&edit).tree()
122         };
123         let fake_ident_token =
124             file_with_fake_ident.syntax().token_at_offset(position.offset).right_biased().unwrap();
125
126         let krate = sema.to_module_def(position.file_id).map(|m| m.krate());
127         let original_token =
128             original_file.syntax().token_at_offset(position.offset).left_biased()?;
129         let token = sema.descend_into_macros(original_token.clone());
130         let scope = sema.scope_at_offset(&token, position.offset);
131         let mut locals = vec![];
132         scope.process_all_names(&mut |name, scope| {
133             if let ScopeDef::Local(local) = scope {
134                 locals.push((name.to_string(), local));
135             }
136         });
137         let mut ctx = CompletionContext {
138             sema,
139             scope,
140             db,
141             config,
142             position,
143             original_token,
144             token,
145             krate,
146             lifetime_allowed: false,
147             expected_name: None,
148             expected_type: None,
149             name_ref_syntax: None,
150             lifetime_syntax: None,
151             lifetime_param_syntax: None,
152             function_syntax: None,
153             use_item_syntax: None,
154             record_lit_syntax: None,
155             record_pat_syntax: None,
156             record_field_syntax: None,
157             impl_def: None,
158             active_parameter: ActiveParameter::at(db, position),
159             is_label_ref: false,
160             is_param: false,
161             is_pat_binding_or_const: false,
162             is_irrefutable_pat_binding: false,
163             is_trivial_path: false,
164             path_qual: None,
165             after_if: false,
166             can_be_stmt: false,
167             is_expr: false,
168             is_new_item: false,
169             dot_receiver: None,
170             dot_receiver_is_ambiguous_float_literal: false,
171             is_call: false,
172             is_pattern_call: false,
173             is_macro_call: false,
174             is_path_type: false,
175             has_type_args: false,
176             attribute_under_caret: None,
177             mod_declaration_under_caret: None,
178             unsafe_is_prev: false,
179             if_is_prev: false,
180             block_expr_parent: false,
181             bind_pat_parent: false,
182             ref_pat_parent: false,
183             in_loop_body: false,
184             has_trait_parent: false,
185             has_impl_parent: false,
186             inside_impl_trait_block: false,
187             has_field_list_parent: false,
188             trait_as_prev_sibling: false,
189             impl_as_prev_sibling: false,
190             is_match_arm: false,
191             has_item_list_or_source_file_parent: false,
192             for_is_prev2: false,
193             fn_is_prev: false,
194             incomplete_let: false,
195             locals,
196         };
197
198         let mut original_file = original_file.syntax().clone();
199         let mut speculative_file = file_with_fake_ident.syntax().clone();
200         let mut offset = position.offset;
201         let mut fake_ident_token = fake_ident_token;
202
203         // Are we inside a macro call?
204         while let (Some(actual_macro_call), Some(macro_call_with_fake_ident)) = (
205             find_node_at_offset::<ast::MacroCall>(&original_file, offset),
206             find_node_at_offset::<ast::MacroCall>(&speculative_file, offset),
207         ) {
208             if actual_macro_call.path().as_ref().map(|s| s.syntax().text())
209                 != macro_call_with_fake_ident.path().as_ref().map(|s| s.syntax().text())
210             {
211                 break;
212             }
213             let speculative_args = match macro_call_with_fake_ident.token_tree() {
214                 Some(tt) => tt,
215                 None => break,
216             };
217             if let (Some(actual_expansion), Some(speculative_expansion)) = (
218                 ctx.sema.expand(&actual_macro_call),
219                 ctx.sema.speculative_expand(
220                     &actual_macro_call,
221                     &speculative_args,
222                     fake_ident_token,
223                 ),
224             ) {
225                 let new_offset = speculative_expansion.1.text_range().start();
226                 if new_offset > actual_expansion.text_range().end() {
227                     break;
228                 }
229                 original_file = actual_expansion;
230                 speculative_file = speculative_expansion.0;
231                 fake_ident_token = speculative_expansion.1;
232                 offset = new_offset;
233             } else {
234                 break;
235             }
236         }
237         ctx.fill_keyword_patterns(&speculative_file, offset);
238         ctx.fill(&original_file, speculative_file, offset);
239         Some(ctx)
240     }
241
242     /// Checks whether completions in that particular case don't make much sense.
243     /// Examples:
244     /// - `fn $0` -- we expect function name, it's unlikely that "hint" will be helpful.
245     ///   Exception for this case is `impl Trait for Foo`, where we would like to hint trait method names.
246     /// - `for _ i$0` -- obviously, it'll be "in" keyword.
247     pub(crate) fn no_completion_required(&self) -> bool {
248         (self.fn_is_prev && !self.inside_impl_trait_block) || self.for_is_prev2
249     }
250
251     /// The range of the identifier that is being completed.
252     pub(crate) fn source_range(&self) -> TextRange {
253         // check kind of macro-expanded token, but use range of original token
254         let kind = self.token.kind();
255         if kind == IDENT || kind == LIFETIME_IDENT || kind == UNDERSCORE || kind.is_keyword() {
256             cov_mark::hit!(completes_if_prefix_is_keyword);
257             self.original_token.text_range()
258         } else if kind == CHAR {
259             // assume we are completing a lifetime but the user has only typed the '
260             cov_mark::hit!(completes_if_lifetime_without_idents);
261             TextRange::at(self.original_token.text_range().start(), TextSize::from(1))
262         } else {
263             TextRange::empty(self.position.offset)
264         }
265     }
266
267     fn fill_keyword_patterns(&mut self, file_with_fake_ident: &SyntaxNode, offset: TextSize) {
268         let fake_ident_token = file_with_fake_ident.token_at_offset(offset).right_biased().unwrap();
269         let syntax_element = NodeOrToken::Token(fake_ident_token);
270         self.block_expr_parent = has_block_expr_parent(syntax_element.clone());
271         self.unsafe_is_prev = unsafe_is_prev(syntax_element.clone());
272         self.if_is_prev = if_is_prev(syntax_element.clone());
273         self.bind_pat_parent = has_bind_pat_parent(syntax_element.clone());
274         self.ref_pat_parent = has_ref_parent(syntax_element.clone());
275         self.in_loop_body = is_in_loop_body(syntax_element.clone());
276         self.has_trait_parent = has_trait_parent(syntax_element.clone());
277         self.has_impl_parent = has_impl_parent(syntax_element.clone());
278         self.inside_impl_trait_block = inside_impl_trait_block(syntax_element.clone());
279         self.has_field_list_parent = has_field_list_parent(syntax_element.clone());
280         self.impl_as_prev_sibling = has_impl_as_prev_sibling(syntax_element.clone());
281         self.trait_as_prev_sibling = has_trait_as_prev_sibling(syntax_element.clone());
282         self.is_match_arm = is_match_arm(syntax_element.clone());
283         self.has_item_list_or_source_file_parent =
284             has_item_list_or_source_file_parent(syntax_element.clone());
285         self.mod_declaration_under_caret =
286             find_node_at_offset::<ast::Module>(&file_with_fake_ident, offset)
287                 .filter(|module| module.item_list().is_none());
288         self.for_is_prev2 = for_is_prev2(syntax_element.clone());
289         self.fn_is_prev = fn_is_prev(syntax_element.clone());
290         self.incomplete_let =
291             syntax_element.ancestors().take(6).find_map(ast::LetStmt::cast).map_or(false, |it| {
292                 it.syntax().text_range().end() == syntax_element.text_range().end()
293             });
294     }
295
296     fn fill_impl_def(&mut self) {
297         self.impl_def = self
298             .sema
299             .token_ancestors_with_macros(self.token.clone())
300             .take_while(|it| it.kind() != SOURCE_FILE && it.kind() != MODULE)
301             .find_map(ast::Impl::cast);
302     }
303
304     fn expected_type_and_name(&self) -> (Option<Type>, Option<NameOrNameRef>) {
305         let mut node = match self.token.parent() {
306             Some(it) => it,
307             None => return (None, None),
308         };
309         loop {
310             break match_ast! {
311                 match node {
312                     ast::LetStmt(it) => {
313                         cov_mark::hit!(expected_type_let_with_leading_char);
314                         cov_mark::hit!(expected_type_let_without_leading_char);
315                         let ty = it.pat()
316                             .and_then(|pat| self.sema.type_of_pat(&pat))
317                             .or_else(|| it.initializer().and_then(|it| self.sema.type_of_expr(&it)));
318                         let name = if let Some(ast::Pat::IdentPat(ident)) = it.pat() {
319                             ident.name().map(NameOrNameRef::Name)
320                         } else {
321                             None
322                         };
323
324                         (ty, name)
325                     },
326                     ast::ArgList(_it) => {
327                         cov_mark::hit!(expected_type_fn_param_with_leading_char);
328                         cov_mark::hit!(expected_type_fn_param_without_leading_char);
329                         ActiveParameter::at_token(
330                             &self.sema,
331                             self.token.clone(),
332                         ).map(|ap| {
333                             let name = ap.ident().map(NameOrNameRef::Name);
334                             (Some(ap.ty), name)
335                         })
336                         .unwrap_or((None, None))
337                     },
338                     ast::RecordExprFieldList(_it) => {
339                         cov_mark::hit!(expected_type_struct_field_without_leading_char);
340                         // wouldn't try {} be nice...
341                         (|| {
342                             let expr_field = self.token.prev_sibling_or_token()?
343                                       .into_node()
344                                       .and_then(|node| ast::RecordExprField::cast(node))?;
345                             let (_, _, ty) = self.sema.resolve_record_field(&expr_field)?;
346                             Some((
347                                 Some(ty),
348                                 expr_field.field_name().map(NameOrNameRef::NameRef),
349                             ))
350                         })().unwrap_or((None, None))
351                     },
352                     ast::RecordExprField(it) => {
353                         cov_mark::hit!(expected_type_struct_field_with_leading_char);
354                         (
355                             it.expr().as_ref().and_then(|e| self.sema.type_of_expr(e)),
356                             it.field_name().map(NameOrNameRef::NameRef),
357                         )
358                     },
359                     ast::MatchExpr(it) => {
360                         cov_mark::hit!(expected_type_match_arm_without_leading_char);
361                         let ty = it.expr()
362                             .and_then(|e| self.sema.type_of_expr(&e));
363                         (ty, None)
364                     },
365                     ast::IfExpr(it) => {
366                         cov_mark::hit!(expected_type_if_let_without_leading_char);
367                         let ty = it.condition()
368                             .and_then(|cond| cond.expr())
369                             .and_then(|e| self.sema.type_of_expr(&e));
370                         (ty, None)
371                     },
372                     ast::IdentPat(it) => {
373                         cov_mark::hit!(expected_type_if_let_with_leading_char);
374                         cov_mark::hit!(expected_type_match_arm_with_leading_char);
375                         let ty = self.sema.type_of_pat(&ast::Pat::from(it));
376                         (ty, None)
377                     },
378                     ast::Fn(it) => {
379                         cov_mark::hit!(expected_type_fn_ret_with_leading_char);
380                         cov_mark::hit!(expected_type_fn_ret_without_leading_char);
381                         let def = self.sema.to_def(&it);
382                         (def.map(|def| def.ret_type(self.db)), None)
383                     },
384                     ast::ClosureExpr(it) => {
385                         let ty = self.sema.type_of_expr(&it.into());
386                         ty.and_then(|ty| ty.as_callable(self.db))
387                             .map(|c| (Some(c.return_type()), None))
388                             .unwrap_or((None, None))
389                     },
390                     ast::Stmt(_it) => (None, None),
391                     _ => {
392                         match node.parent() {
393                             Some(n) => {
394                                 node = n;
395                                 continue;
396                             },
397                             None => (None, None),
398                         }
399                     },
400                 }
401             };
402         }
403     }
404
405     fn fill(
406         &mut self,
407         original_file: &SyntaxNode,
408         file_with_fake_ident: SyntaxNode,
409         offset: TextSize,
410     ) {
411         let (expected_type, expected_name) = self.expected_type_and_name();
412         self.expected_type = expected_type;
413         self.expected_name = expected_name;
414         self.attribute_under_caret = find_node_at_offset(&file_with_fake_ident, offset);
415
416         if let Some(lifetime) = find_node_at_offset::<ast::Lifetime>(&file_with_fake_ident, offset)
417         {
418             self.classify_lifetime(original_file, lifetime, offset);
419         }
420
421         // First, let's try to complete a reference to some declaration.
422         if let Some(name_ref) = find_node_at_offset::<ast::NameRef>(&file_with_fake_ident, offset) {
423             // Special case, `trait T { fn foo(i_am_a_name_ref) {} }`.
424             // See RFC#1685.
425             if is_node::<ast::Param>(name_ref.syntax()) {
426                 self.is_param = true;
427                 return;
428             }
429             // FIXME: remove this (V) duplication and make the check more precise
430             if name_ref.syntax().ancestors().find_map(ast::RecordPatFieldList::cast).is_some() {
431                 self.record_pat_syntax =
432                     self.sema.find_node_at_offset_with_macros(&original_file, offset);
433             }
434             self.classify_name_ref(original_file, name_ref, offset);
435         }
436
437         // Otherwise, see if this is a declaration. We can use heuristics to
438         // suggest declaration names, see `CompletionKind::Magic`.
439         if let Some(name) = find_node_at_offset::<ast::Name>(&file_with_fake_ident, offset) {
440             if let Some(bind_pat) = name.syntax().ancestors().find_map(ast::IdentPat::cast) {
441                 self.is_pat_binding_or_const = true;
442                 if bind_pat.at_token().is_some()
443                     || bind_pat.ref_token().is_some()
444                     || bind_pat.mut_token().is_some()
445                 {
446                     self.is_pat_binding_or_const = false;
447                 }
448                 if bind_pat.syntax().parent().and_then(ast::RecordPatFieldList::cast).is_some() {
449                     self.is_pat_binding_or_const = false;
450                 }
451                 if let Some(Some(pat)) = bind_pat.syntax().ancestors().find_map(|node| {
452                     match_ast! {
453                         match node {
454                             ast::LetStmt(it) => Some(it.pat()),
455                             ast::Param(it) => Some(it.pat()),
456                             _ => None,
457                         }
458                     }
459                 }) {
460                     if pat.syntax().text_range().contains_range(bind_pat.syntax().text_range()) {
461                         self.is_pat_binding_or_const = false;
462                         self.is_irrefutable_pat_binding = true;
463                     }
464                 }
465
466                 self.fill_impl_def();
467             }
468             if is_node::<ast::Param>(name.syntax()) {
469                 self.is_param = true;
470                 return;
471             }
472             // FIXME: remove this (^) duplication and make the check more precise
473             if name.syntax().ancestors().find_map(ast::RecordPatFieldList::cast).is_some() {
474                 self.record_pat_syntax =
475                     self.sema.find_node_at_offset_with_macros(&original_file, offset);
476             }
477         }
478     }
479
480     fn classify_lifetime(
481         &mut self,
482         original_file: &SyntaxNode,
483         lifetime: ast::Lifetime,
484         offset: TextSize,
485     ) {
486         self.lifetime_syntax =
487             find_node_at_offset(original_file, lifetime.syntax().text_range().start());
488         if let Some(parent) = lifetime.syntax().parent() {
489             if parent.kind() == ERROR {
490                 return;
491             }
492
493             match_ast! {
494                 match parent {
495                     ast::LifetimeParam(_it) => {
496                         self.lifetime_allowed = true;
497                         self.lifetime_param_syntax =
498                             self.sema.find_node_at_offset_with_macros(original_file, offset);
499                     },
500                     ast::BreakExpr(_it) => self.is_label_ref = true,
501                     ast::ContinueExpr(_it) => self.is_label_ref = true,
502                     ast::Label(_it) => (),
503                     _ => self.lifetime_allowed = true,
504                 }
505             }
506         }
507     }
508
509     fn classify_name_ref(
510         &mut self,
511         original_file: &SyntaxNode,
512         name_ref: ast::NameRef,
513         offset: TextSize,
514     ) {
515         self.name_ref_syntax =
516             find_node_at_offset(original_file, name_ref.syntax().text_range().start());
517         let name_range = name_ref.syntax().text_range();
518         if ast::RecordExprField::for_field_name(&name_ref).is_some() {
519             self.record_lit_syntax =
520                 self.sema.find_node_at_offset_with_macros(original_file, offset);
521         }
522
523         self.fill_impl_def();
524
525         let top_node = name_ref
526             .syntax()
527             .ancestors()
528             .take_while(|it| it.text_range() == name_range)
529             .last()
530             .unwrap();
531
532         match top_node.parent().map(|it| it.kind()) {
533             Some(SOURCE_FILE) | Some(ITEM_LIST) => {
534                 self.is_new_item = true;
535                 return;
536             }
537             _ => (),
538         }
539
540         self.use_item_syntax =
541             self.sema.token_ancestors_with_macros(self.token.clone()).find_map(ast::Use::cast);
542
543         self.function_syntax = self
544             .sema
545             .token_ancestors_with_macros(self.token.clone())
546             .take_while(|it| it.kind() != SOURCE_FILE && it.kind() != MODULE)
547             .find_map(ast::Fn::cast);
548
549         self.record_field_syntax = self
550             .sema
551             .token_ancestors_with_macros(self.token.clone())
552             .take_while(|it| {
553                 it.kind() != SOURCE_FILE && it.kind() != MODULE && it.kind() != CALL_EXPR
554             })
555             .find_map(ast::RecordExprField::cast);
556
557         let parent = match name_ref.syntax().parent() {
558             Some(it) => it,
559             None => return,
560         };
561
562         if let Some(segment) = ast::PathSegment::cast(parent.clone()) {
563             let path = segment.parent_path();
564             self.is_call = path
565                 .syntax()
566                 .parent()
567                 .and_then(ast::PathExpr::cast)
568                 .and_then(|it| it.syntax().parent().and_then(ast::CallExpr::cast))
569                 .is_some();
570             self.is_macro_call = path.syntax().parent().and_then(ast::MacroCall::cast).is_some();
571             self.is_pattern_call =
572                 path.syntax().parent().and_then(ast::TupleStructPat::cast).is_some();
573
574             self.is_path_type = path.syntax().parent().and_then(ast::PathType::cast).is_some();
575             self.has_type_args = segment.generic_arg_list().is_some();
576
577             if let Some(path) = path_or_use_tree_qualifier(&path) {
578                 self.path_qual = path
579                     .segment()
580                     .and_then(|it| {
581                         find_node_with_range::<ast::PathSegment>(
582                             original_file,
583                             it.syntax().text_range(),
584                         )
585                     })
586                     .map(|it| it.parent_path());
587                 return;
588             }
589
590             if let Some(segment) = path.segment() {
591                 if segment.coloncolon_token().is_some() {
592                     return;
593                 }
594             }
595
596             self.is_trivial_path = true;
597
598             // Find either enclosing expr statement (thing with `;`) or a
599             // block. If block, check that we are the last expr.
600             self.can_be_stmt = name_ref
601                 .syntax()
602                 .ancestors()
603                 .find_map(|node| {
604                     if let Some(stmt) = ast::ExprStmt::cast(node.clone()) {
605                         return Some(stmt.syntax().text_range() == name_ref.syntax().text_range());
606                     }
607                     if let Some(block) = ast::BlockExpr::cast(node) {
608                         return Some(
609                             block.tail_expr().map(|e| e.syntax().text_range())
610                                 == Some(name_ref.syntax().text_range()),
611                         );
612                     }
613                     None
614                 })
615                 .unwrap_or(false);
616             self.is_expr = path.syntax().parent().and_then(ast::PathExpr::cast).is_some();
617
618             if let Some(off) = name_ref.syntax().text_range().start().checked_sub(2.into()) {
619                 if let Some(if_expr) =
620                     self.sema.find_node_at_offset_with_macros::<ast::IfExpr>(original_file, off)
621                 {
622                     if if_expr.syntax().text_range().end() < name_ref.syntax().text_range().start()
623                     {
624                         self.after_if = true;
625                     }
626                 }
627             }
628         }
629         if let Some(field_expr) = ast::FieldExpr::cast(parent.clone()) {
630             // The receiver comes before the point of insertion of the fake
631             // ident, so it should have the same range in the non-modified file
632             self.dot_receiver = field_expr
633                 .expr()
634                 .map(|e| e.syntax().text_range())
635                 .and_then(|r| find_node_with_range(original_file, r));
636             self.dot_receiver_is_ambiguous_float_literal =
637                 if let Some(ast::Expr::Literal(l)) = &self.dot_receiver {
638                     match l.kind() {
639                         ast::LiteralKind::FloatNumber { .. } => l.token().text().ends_with('.'),
640                         _ => false,
641                     }
642                 } else {
643                     false
644                 };
645         }
646         if let Some(method_call_expr) = ast::MethodCallExpr::cast(parent) {
647             // As above
648             self.dot_receiver = method_call_expr
649                 .receiver()
650                 .map(|e| e.syntax().text_range())
651                 .and_then(|r| find_node_with_range(original_file, r));
652             self.is_call = true;
653         }
654     }
655 }
656
657 fn find_node_with_range<N: AstNode>(syntax: &SyntaxNode, range: TextRange) -> Option<N> {
658     syntax.covering_element(range).ancestors().find_map(N::cast)
659 }
660
661 fn is_node<N: AstNode>(node: &SyntaxNode) -> bool {
662     match node.ancestors().find_map(N::cast) {
663         None => false,
664         Some(n) => n.syntax().text_range() == node.text_range(),
665     }
666 }
667
668 fn path_or_use_tree_qualifier(path: &ast::Path) -> Option<ast::Path> {
669     if let Some(qual) = path.qualifier() {
670         return Some(qual);
671     }
672     let use_tree_list = path.syntax().ancestors().find_map(ast::UseTreeList::cast)?;
673     let use_tree = use_tree_list.syntax().parent().and_then(ast::UseTree::cast)?;
674     use_tree.path()
675 }
676
677 #[cfg(test)]
678 mod tests {
679     use expect_test::{expect, Expect};
680     use hir::HirDisplay;
681
682     use crate::test_utils::{position, TEST_CONFIG};
683
684     use super::CompletionContext;
685
686     fn check_expected_type_and_name(ra_fixture: &str, expect: Expect) {
687         let (db, pos) = position(ra_fixture);
688         let completion_context = CompletionContext::new(&db, pos, &TEST_CONFIG).unwrap();
689
690         let ty = completion_context
691             .expected_type
692             .map(|t| t.display_test(&db).to_string())
693             .unwrap_or("?".to_owned());
694
695         let name = completion_context
696             .expected_name
697             .map_or_else(|| "?".to_owned(), |name| name.to_string());
698
699         expect.assert_eq(&format!("ty: {}, name: {}", ty, name));
700     }
701
702     #[test]
703     fn expected_type_let_without_leading_char() {
704         cov_mark::check!(expected_type_let_without_leading_char);
705         check_expected_type_and_name(
706             r#"
707 fn foo() {
708     let x: u32 = $0;
709 }
710 "#,
711             expect![[r#"ty: u32, name: x"#]],
712         );
713     }
714
715     #[test]
716     fn expected_type_let_with_leading_char() {
717         cov_mark::check!(expected_type_let_with_leading_char);
718         check_expected_type_and_name(
719             r#"
720 fn foo() {
721     let x: u32 = c$0;
722 }
723 "#,
724             expect![[r#"ty: u32, name: x"#]],
725         );
726     }
727
728     #[test]
729     fn expected_type_let_pat() {
730         check_expected_type_and_name(
731             r#"
732 fn foo() {
733     let x$0 = 0u32;
734 }
735 "#,
736             expect![[r#"ty: u32, name: ?"#]],
737         );
738         check_expected_type_and_name(
739             r#"
740 fn foo() {
741     let $0 = 0u32;
742 }
743 "#,
744             expect![[r#"ty: u32, name: ?"#]],
745         );
746     }
747
748     #[test]
749     fn expected_type_fn_param_without_leading_char() {
750         cov_mark::check!(expected_type_fn_param_without_leading_char);
751         check_expected_type_and_name(
752             r#"
753 fn foo() {
754     bar($0);
755 }
756
757 fn bar(x: u32) {}
758 "#,
759             expect![[r#"ty: u32, name: x"#]],
760         );
761     }
762
763     #[test]
764     fn expected_type_fn_param_with_leading_char() {
765         cov_mark::check!(expected_type_fn_param_with_leading_char);
766         check_expected_type_and_name(
767             r#"
768 fn foo() {
769     bar(c$0);
770 }
771
772 fn bar(x: u32) {}
773 "#,
774             expect![[r#"ty: u32, name: x"#]],
775         );
776     }
777
778     #[test]
779     fn expected_type_struct_field_without_leading_char() {
780         cov_mark::check!(expected_type_struct_field_without_leading_char);
781         check_expected_type_and_name(
782             r#"
783 struct Foo { a: u32 }
784 fn foo() {
785     Foo { a: $0 };
786 }
787 "#,
788             expect![[r#"ty: u32, name: a"#]],
789         )
790     }
791
792     #[test]
793     fn expected_type_generic_struct_field() {
794         check_expected_type_and_name(
795             r#"
796 struct Foo<T> { a: T }
797 fn foo() -> Foo<u32> {
798     Foo { a: $0 }
799 }
800 "#,
801             expect![[r#"ty: u32, name: a"#]],
802         )
803     }
804
805     #[test]
806     fn expected_type_struct_field_with_leading_char() {
807         cov_mark::check!(expected_type_struct_field_with_leading_char);
808         check_expected_type_and_name(
809             r#"
810 struct Foo { a: u32 }
811 fn foo() {
812     Foo { a: c$0 };
813 }
814 "#,
815             expect![[r#"ty: u32, name: a"#]],
816         );
817     }
818
819     #[test]
820     fn expected_type_match_arm_without_leading_char() {
821         cov_mark::check!(expected_type_match_arm_without_leading_char);
822         check_expected_type_and_name(
823             r#"
824 enum E { X }
825 fn foo() {
826    match E::X { $0 }
827 }
828 "#,
829             expect![[r#"ty: E, name: ?"#]],
830         );
831     }
832
833     #[test]
834     fn expected_type_match_arm_with_leading_char() {
835         cov_mark::check!(expected_type_match_arm_with_leading_char);
836         check_expected_type_and_name(
837             r#"
838 enum E { X }
839 fn foo() {
840    match E::X { c$0 }
841 }
842 "#,
843             expect![[r#"ty: E, name: ?"#]],
844         );
845     }
846
847     #[test]
848     fn expected_type_if_let_without_leading_char() {
849         cov_mark::check!(expected_type_if_let_without_leading_char);
850         check_expected_type_and_name(
851             r#"
852 enum Foo { Bar, Baz, Quux }
853
854 fn foo() {
855     let f = Foo::Quux;
856     if let $0 = f { }
857 }
858 "#,
859             expect![[r#"ty: Foo, name: ?"#]],
860         )
861     }
862
863     #[test]
864     fn expected_type_if_let_with_leading_char() {
865         cov_mark::check!(expected_type_if_let_with_leading_char);
866         check_expected_type_and_name(
867             r#"
868 enum Foo { Bar, Baz, Quux }
869
870 fn foo() {
871     let f = Foo::Quux;
872     if let c$0 = f { }
873 }
874 "#,
875             expect![[r#"ty: Foo, name: ?"#]],
876         )
877     }
878
879     #[test]
880     fn expected_type_fn_ret_without_leading_char() {
881         cov_mark::check!(expected_type_fn_ret_without_leading_char);
882         check_expected_type_and_name(
883             r#"
884 fn foo() -> u32 {
885     $0
886 }
887 "#,
888             expect![[r#"ty: u32, name: ?"#]],
889         )
890     }
891
892     #[test]
893     fn expected_type_fn_ret_with_leading_char() {
894         cov_mark::check!(expected_type_fn_ret_with_leading_char);
895         check_expected_type_and_name(
896             r#"
897 fn foo() -> u32 {
898     c$0
899 }
900 "#,
901             expect![[r#"ty: u32, name: ?"#]],
902         )
903     }
904
905     #[test]
906     fn expected_type_fn_ret_fn_ref_fully_typed() {
907         check_expected_type_and_name(
908             r#"
909 fn foo() -> u32 {
910     foo$0
911 }
912 "#,
913             expect![[r#"ty: u32, name: ?"#]],
914         )
915     }
916
917     #[test]
918     fn expected_type_closure_param_return() {
919         // FIXME: make this work with `|| $0`
920         check_expected_type_and_name(
921             r#"
922 fn foo() {
923     bar(|| a$0);
924 }
925
926 fn bar(f: impl FnOnce() -> u32) {}
927 #[lang = "fn_once"]
928 trait FnOnce { type Output; }
929 "#,
930             expect![[r#"ty: u32, name: ?"#]],
931         );
932     }
933
934     #[test]
935     fn expected_type_generic_function() {
936         check_expected_type_and_name(
937             r#"
938 fn foo() {
939     bar::<u32>($0);
940 }
941
942 fn bar<T>(t: T) {}
943 "#,
944             expect![[r#"ty: u32, name: t"#]],
945         );
946     }
947
948     #[test]
949     fn expected_type_generic_method() {
950         check_expected_type_and_name(
951             r#"
952 fn foo() {
953     S(1u32).bar($0);
954 }
955
956 struct S<T>(T);
957 impl<T> S<T> {
958     fn bar(self, t: T) {}
959 }
960 "#,
961             expect![[r#"ty: u32, name: t"#]],
962         );
963     }
964 }