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rucc_sema/
print.rs

1//! The printer for the typed tree, which is what `--emit=tast` writes.
2//!
3//! Design: `spec/07-types-and-semantics.md` section 7.1.
4//!
5//! This one does not print C and does not try to. The tree it prints is not source any more:
6//! every conversion the language performs is a node of its own, so the shortest useful
7//! expression has more nodes than the program has operators, and writing that back as C would
8//! print exactly the text that hides what there is to see. What comes out instead is one node
9//! per line, indented by depth, with the type spelled out at every expression.
10//!
11//! The single most useful thing it does is make a conversion visible. When an IR bug turns out
12//! to be a sema bug, the question is almost always which conversion is missing or which one is
13//! the wrong one, and this is the artifact that answers it without a debugger.
14//!
15//! # Cross references
16//!
17//! A tree with jump tables in it is not a tree. A `switch` holds a table of cases whose bodies
18//! are statements inside its own body, and a `goto` names a label defined somewhere else
19//! entirely. Printing those by recursion would print the same statement twice, so they are
20//! printed as references instead, written `#n` after the word that says what kind of thing `n`
21//! counts: `case #3` is the fourth entry of the case table, `decl #3` the fourth declaration,
22//! `label #3` the fourth label. The numbers are arena indices, which is what makes a dump
23//! greppable: the definition and every use of one thing carry the same number.
24//!
25//! # Using it
26//!
27//! ```
28//! use rucc_base::Interner;
29//! use rucc_diag::Span;
30//! use rucc_sema::{Category, Const, Conversion, Expr, ExprKind, Printer, Tast};
31//! use rucc_types::{IntKind, Types};
32//!
33//! let types = Types::new();
34//! let names = Interner::new();
35//! let (char_type, int) = (types.int(IntKind::Char), types.int(IntKind::Int));
36//! let mut tast = Tast::new();
37//!
38//! let c = tast.add_const(Const::Int(97));
39//! let c = tast.expr(Expr::new(ExprKind::Const(c), char_type, Category::Rvalue), Span::DUMMY);
40//! let widened = ExprKind::Convert { kind: Conversion::Arithmetic, operand: c };
41//! let widened = tast.expr(Expr::new(widened, int, Category::Rvalue), Span::DUMMY);
42//!
43//! let mut printer = Printer::new(&tast, &types, &names);
44//! printer.expr(widened);
45//! assert_eq!(printer.finish(), "convert arithmetic : int\n  const 97 : char\n");
46//! ```
47
48use rucc_ast::AsmQuals;
49use rucc_base::Interner;
50use rucc_types::{TypeKind, Types, spell};
51
52use crate::asm::{AsmId, AsmOperandList};
53use crate::decl::{DeclId, DeclKind, Definition, Linkage, StorageDuration};
54use crate::expr::{Category, Expr, ExprId, ExprKind};
55use crate::stmt::{CaseId, Stmt, StmtId};
56use crate::tast::{Base, Const, LabelId, Tast};
57
58/// The whole typed translation unit, as text.
59#[must_use]
60pub fn print(tast: &Tast, types: &Types, names: &Interner) -> String {
61    let mut printer = Printer::new(tast, types, names);
62    printer.unit();
63    printer.finish()
64}
65
66/// A typed tree being written out.
67///
68/// The whole unit is [`print()`]. This is here for the caller that wants one subtree, which is
69/// what a test wants and what a diagnostic that quotes a node would want.
70#[derive(Debug)]
71pub struct Printer<'a> {
72    tast: &'a Tast,
73    types: &'a Types,
74    names: &'a Interner,
75    out: String,
76    depth: usize,
77}
78
79impl<'a> Printer<'a> {
80    /// A printer over one tree, whose types are in `types` and whose names are in `names`.
81    #[must_use]
82    pub fn new(tast: &'a Tast, types: &'a Types, names: &'a Interner) -> Printer<'a> {
83        Printer { tast, types, names, out: String::new(), depth: 0 }
84    }
85
86    /// The text written so far.
87    #[must_use]
88    pub fn finish(self) -> String {
89        self.out
90    }
91
92    /// Every declaration of the translation unit, in the order they were declared.
93    pub fn unit(&mut self) {
94        for &id in self.tast.top_level() {
95            self.decl(id);
96        }
97    }
98
99    /// One declaration, and its initializer or its body.
100    pub fn decl(&mut self, id: DeclId) {
101        let node = &self.tast[id];
102        let mut head = format!("decl #{}", id.index());
103        if let Some(name) = node.name {
104            head.push(' ');
105            head.push_str(self.names.resolve(name));
106        }
107        head.push_str(" : ");
108        head.push_str(&spell(self.types, self.names, node.ty));
109        head.push_str(match node.kind {
110            DeclKind::Object => " object",
111            DeclKind::Function => " function",
112        });
113        head.push_str(match node.linkage {
114            Linkage::None => "",
115            Linkage::Internal => " internal",
116            Linkage::External => " external",
117        });
118        if node.kind == DeclKind::Object {
119            head.push_str(match node.duration {
120                StorageDuration::Static => " static",
121                StorageDuration::Thread => " thread",
122                StorageDuration::Automatic => " automatic",
123            });
124        }
125        head.push_str(match node.state {
126            Definition::Declared => " declared",
127            Definition::Tentative => " tentative",
128            Definition::Defined => " defined",
129        });
130        if node.constant {
131            head.push_str(" constexpr");
132        }
133        if let Some(align) = node.alignment {
134            head.push_str(&format!(" alignas {align}"));
135        }
136        self.line(&head);
137
138        // An initializer that is present and empty is `= {}`, which zero-initializes and is not
139        // the same as no initializer at all, so the word is written whether there is anything
140        // under it or not.
141        if let Some(list) = node.init {
142            self.depth += 1;
143            self.line("init");
144            self.depth += 1;
145            // Copied out because printing a value takes `&mut self`, so the borrow of the
146            // table cannot be held across the walk. The same is true of every run below.
147            let entries = self.tast[list].to_vec();
148            for entry in entries {
149                let mut at = format!("+{}", entry.offset);
150                if entry.is_bit_field() {
151                    at.push_str(&format!(" bit {} width {}", entry.bit_offset, entry.bit_width));
152                }
153                self.line(&at);
154                self.depth += 1;
155                self.expr(entry.value);
156                self.depth -= 1;
157            }
158            self.depth -= 2;
159        }
160        // Before the body, because the body refers to them and a reader who meets `decl #1` in
161        // an expression should have been told what it is first.
162        let params = self.tast[id].params;
163        if !params.is_empty() {
164            self.depth += 1;
165            self.line("params");
166            self.depth += 1;
167            let params = self.tast[params].to_vec();
168            for param in params {
169                self.decl(param);
170            }
171            self.depth -= 2;
172        }
173        if let Some(body) = self.tast[id].body {
174            self.depth += 1;
175            self.line("body");
176            self.depth += 1;
177            self.stmt(body);
178            self.depth -= 2;
179        }
180    }
181
182    /// One statement and everything under it.
183    pub fn stmt(&mut self, id: StmtId) {
184        match self.tast[id] {
185            Stmt::Error => self.line("error"),
186            Stmt::Empty => self.line("empty"),
187            Stmt::Expr(value) => {
188                self.line("expr");
189                self.under(|p| p.expr(value));
190            }
191            Stmt::Block(body) => {
192                self.line("block");
193                self.depth += 1;
194                let body = self.tast[body].to_vec();
195                for stmt in body {
196                    self.stmt(stmt);
197                }
198                self.depth -= 1;
199            }
200            Stmt::Decls(decls) => {
201                self.line("decls");
202                self.depth += 1;
203                let decls = self.tast[decls].to_vec();
204                for decl in decls {
205                    self.decl(decl);
206                }
207                self.depth -= 1;
208            }
209            Stmt::If { cond, then, otherwise } => {
210                self.line("if");
211                self.depth += 1;
212                self.group("cond", |p| p.expr(cond));
213                self.group("then", |p| p.stmt(then));
214                if let Some(otherwise) = otherwise {
215                    self.group("else", |p| p.stmt(otherwise));
216                }
217                self.depth -= 1;
218            }
219            Stmt::While { cond, body } => {
220                self.line("while");
221                self.depth += 1;
222                self.group("cond", |p| p.expr(cond));
223                self.group("body", |p| p.stmt(body));
224                self.depth -= 1;
225            }
226            Stmt::DoWhile { body, cond } => {
227                self.line("do-while");
228                self.depth += 1;
229                self.group("body", |p| p.stmt(body));
230                self.group("cond", |p| p.expr(cond));
231                self.depth -= 1;
232            }
233            Stmt::For { init, cond, step, body } => {
234                self.line("for");
235                self.depth += 1;
236                if let Some(init) = init {
237                    self.group("init", |p| p.stmt(init));
238                }
239                if let Some(cond) = cond {
240                    self.group("cond", |p| p.expr(cond));
241                }
242                if let Some(step) = step {
243                    self.group("step", |p| p.expr(step));
244                }
245                self.group("body", |p| p.stmt(body));
246                self.depth -= 1;
247            }
248            Stmt::Switch { cond, body, cases, default } => {
249                self.line("switch");
250                self.depth += 1;
251                self.group("cond", |p| p.expr(cond));
252                self.line("cases");
253                self.depth += 1;
254                for index in cases.iter() {
255                    self.case(index);
256                }
257                if default.is_some() {
258                    self.line("default");
259                }
260                self.depth -= 1;
261                self.group("body", |p| p.stmt(body));
262                self.depth -= 1;
263            }
264            // The value is in the table under the `switch` and is not repeated here, so that
265            // the jump table has one home and a case in the body is a reference into it.
266            Stmt::Case { case, body } => {
267                self.line(&format!("case #{}", case.index()));
268                self.under(|p| p.stmt(body));
269            }
270            Stmt::Default { body } => {
271                self.line("default");
272                self.under(|p| p.stmt(body));
273            }
274            Stmt::Label { label, body } => {
275                let head = self.label(label);
276                self.line(&format!("label {head}"));
277                self.under(|p| p.stmt(body));
278            }
279            Stmt::Goto(label) => {
280                let target = self.label(label);
281                self.line(&format!("goto {target}"));
282            }
283            Stmt::IndirectGoto(target) => {
284                self.line("indirect-goto");
285                self.under(|p| p.expr(target));
286            }
287            Stmt::Asm(asm) => self.asm(asm),
288            Stmt::Break => self.line("break"),
289            Stmt::Continue => self.line("continue"),
290            Stmt::Return(None) => self.line("return"),
291            Stmt::Return(Some(value)) => {
292                self.line("return");
293                self.under(|p| p.expr(value));
294            }
295        }
296    }
297
298    /// One assembly statement, with its operands in the order the template numbers them.
299    ///
300    /// The operands are flat rather than grouped under `outputs` and `inputs`, because the
301    /// numbering runs through both of them and a reader counting to find `%2` should be able to
302    /// count lines. Each one says whether it travels as an address, which is a decision made
303    /// here rather than in the walk and is the kind of thing this dump exists to show.
304    fn asm(&mut self, id: AsmId) {
305        let node = self.tast[id];
306        let mut head = String::from("asm");
307        for (qual, name) in [
308            (AsmQuals::VOLATILE, " volatile"),
309            (AsmQuals::INLINE, " inline"),
310            (AsmQuals::GOTO, " goto"),
311        ] {
312            if node.quals.has(qual) {
313                head.push_str(name);
314            }
315        }
316        self.line(&head);
317        self.depth += 1;
318        self.line(&format!("template {}", self.tast[node.template].spell()));
319        self.asm_operands(node.outputs, "output");
320        self.asm_operands(node.inputs, "input");
321        for index in 0..self.tast[node.clobbers].len() {
322            let clobber = self.tast[node.clobbers][index];
323            self.line(&format!("clobber {}", self.tast[clobber].spell()));
324        }
325        for index in 0..self.tast[node.labels].len() {
326            let label = self.tast[node.labels][index];
327            let head = self.label(label);
328            self.line(&format!("label {head}"));
329        }
330        self.depth -= 1;
331    }
332
333    /// One section of an assembly statement's operands.
334    fn asm_operands(&mut self, list: AsmOperandList, what: &str) {
335        for index in 0..self.tast[list].len() {
336            let operand = self.tast[list][index];
337            let name = match operand.name {
338                Some(name) => format!(" [{}]", self.names.resolve(name)),
339                None => String::new(),
340            };
341            let memory = if operand.memory { " memory" } else { "" };
342            let constraint = self.tast[operand.constraint].spell();
343            self.line(&format!("{what}{name} {constraint}{memory}"));
344            self.under(|p| p.expr(operand.value));
345        }
346    }
347
348    /// One expression, its type, and everything under it.
349    pub fn expr(&mut self, id: ExprId) {
350        let node = self.tast[id];
351        let head = self.head(node);
352        let ty = spell(self.types, self.names, node.ty);
353        let category = match node.category {
354            Category::Rvalue => "",
355            Category::Lvalue => " lvalue",
356            Category::Bitfield => " bit-field",
357            Category::Function => " function",
358        };
359        self.line(&format!("{head} : {ty}{category}"));
360        self.depth += 1;
361        self.operands(node.kind);
362        self.depth -= 1;
363    }
364
365    /// What an expression is, without its type or its operands.
366    fn head(&self, node: Expr) -> String {
367        match node.kind {
368            ExprKind::Error => "error".to_owned(),
369            ExprKind::Const(value) => match self.tast[value] {
370                // Hexadecimal for the same reason the C printer uses it: a decimal spelling
371                // that reads back unchanged needs a shortest round trip algorithm, and one
372                // without such an algorithm quietly prints a different number.
373                Const::Int(value) => format!("const {value}"),
374                Const::Float(value) => format!("const {}", value.to_hex()),
375                Const::Address(address) => {
376                    let base = match address.base {
377                        Base::Decl(decl) => format!("decl #{}", decl.index()),
378                        Base::Str(id) => format!("string {}", self.tast[id].spell()),
379                    };
380                    format!("const address {base} + {}", address.offset)
381                }
382            },
383            ExprKind::Str(value) => format!("string {}", self.tast[value].spell()),
384            ExprKind::Decl(decl) => {
385                let mut head = format!("decl #{}", decl.index());
386                if let Some(name) = self.tast[decl].name {
387                    head.push(' ');
388                    head.push_str(self.names.resolve(name));
389                }
390                head
391            }
392            ExprKind::Member { base, field } => {
393                let mut head = format!("member #{field}");
394                if let Some(name) = self.field_name(base, field) {
395                    head.push(' ');
396                    head.push_str(name);
397                }
398                head
399            }
400            ExprKind::Subscript { .. } => "subscript".to_owned(),
401            ExprKind::Call { .. } => "call".to_owned(),
402            ExprKind::Unary { op, .. } if op.is_postfix() => {
403                format!("unary post {}", op.spelling())
404            }
405            ExprKind::Unary { op, .. } => format!("unary {}", op.spelling()),
406            ExprKind::Binary { op, .. } => format!("binary {}", op.spelling()),
407            // The computation type is written only when it is not the type of the assignment
408            // itself, which is the case that is worth seeing: `i /= 0.5` divides in `double`.
409            ExprKind::Assign { op, computation, .. } => {
410                let mut head = match op {
411                    None => "assign =".to_owned(),
412                    Some(op) => format!("assign {}=", op.spelling()),
413                };
414                if computation != node.ty {
415                    let ty = spell(self.types, self.names, computation);
416                    head.push_str(&format!(" in {ty}"));
417                }
418                head
419            }
420            ExprKind::Cond { .. } => "cond".to_owned(),
421            ExprKind::Comma { .. } => "comma".to_owned(),
422            ExprKind::Cast(_) => "cast".to_owned(),
423            ExprKind::Convert { kind, .. } => format!("convert {}", kind.as_str()),
424            ExprKind::CompoundLiteral(decl) => format!("compound-literal #{}", decl.index()),
425            ExprKind::StmtExpr(_) => "stmt-expr".to_owned(),
426            ExprKind::LabelAddr(label) => format!("label-addr {}", self.label(label)),
427            ExprKind::VaArg { .. } => "va-arg".to_owned(),
428            ExprKind::VaStart { .. } => "va-start".to_owned(),
429            ExprKind::VaEnd { .. } => "va-end".to_owned(),
430            ExprKind::VaCopy { .. } => "va-copy".to_owned(),
431            ExprKind::Classify { op, .. } => format!("classify {}", op.as_str()),
432            ExprKind::Sign { op, .. } => format!("sign {}", op.as_str()),
433        }
434    }
435
436    /// Whatever hangs under an expression, already indented by the caller.
437    fn operands(&mut self, kind: ExprKind) {
438        match kind {
439            ExprKind::Error
440            | ExprKind::Const(_)
441            | ExprKind::Str(_)
442            | ExprKind::Decl(_)
443            | ExprKind::LabelAddr(_) => {}
444            // A compound literal is a declaration of its own, printed where it is used, since
445            // it has no other place in the tree to be printed from.
446            ExprKind::CompoundLiteral(decl) => self.decl(decl),
447            ExprKind::StmtExpr(body) => self.stmt(body),
448            ExprKind::Member { base, .. }
449            | ExprKind::Cast(base)
450            | ExprKind::VaArg { list: base }
451            | ExprKind::VaStart { list: base }
452            | ExprKind::VaEnd { list: base }
453            | ExprKind::Convert { operand: base, .. }
454            | ExprKind::Unary { operand: base, .. } => self.expr(base),
455            ExprKind::Subscript { base: lhs, index: rhs }
456            | ExprKind::Binary { lhs, rhs, .. }
457            | ExprKind::Assign { lhs, rhs, .. }
458            | ExprKind::VaCopy { dst: lhs, src: rhs }
459            | ExprKind::Comma { lhs, rhs } => {
460                self.expr(lhs);
461                self.expr(rhs);
462            }
463            ExprKind::Call { callee, args } => {
464                self.expr(callee);
465                let args = self.tast[args].to_vec();
466                for arg in args {
467                    self.expr(arg);
468                }
469            }
470            ExprKind::Cond { cond, then, otherwise } => {
471                self.expr(cond);
472                self.expr(then);
473                self.expr(otherwise);
474            }
475            ExprKind::Classify { lhs, rhs, .. } | ExprKind::Sign { lhs, rhs, .. } => {
476                self.expr(lhs);
477                if let Some(rhs) = rhs {
478                    self.expr(rhs);
479                }
480            }
481        }
482    }
483
484    /// One entry of a case table, which is a value or a range of them.
485    fn case(&mut self, id: CaseId) {
486        let case = self.tast[id];
487        let head = if case.low == case.high {
488            format!("case #{} {}", id.index(), case.low)
489        } else {
490            format!("case #{} {} ... {}", id.index(), case.low, case.high)
491        };
492        self.line(&head);
493    }
494
495    /// A label, as its index and its name.
496    fn label(&self, id: LabelId) -> String {
497        format!("#{} {}", id.index(), self.names.resolve(self.tast[id].name))
498    }
499
500    /// The name of the member at an index, where the base is a record that has one there.
501    ///
502    /// It is a convenience and not a fact the tree depends on. The index is what the node
503    /// holds, an anonymous member has no name to print, and a member of an incomplete record
504    /// cannot happen but is not worth panicking over in a printer.
505    fn field_name(&self, base: ExprId, field: u32) -> Option<&'a str> {
506        let ty = self.types.canonical(self.tast[base].ty);
507        let TypeKind::Record(record) = self.types.kind(ty) else { return None };
508        let field = self.types.record_info(record).fields.get(field as usize)?;
509        Some(self.names.resolve(field.name?))
510    }
511
512    /// Writes a named group and puts what the closure writes one level under it.
513    fn group(&mut self, name: &str, write: impl FnOnce(&mut Printer<'a>)) {
514        self.line(name);
515        self.under(write);
516    }
517
518    /// Writes what the closure writes one level in.
519    fn under(&mut self, write: impl FnOnce(&mut Printer<'a>)) {
520        self.depth += 1;
521        write(self);
522        self.depth -= 1;
523    }
524
525    /// Writes one line at the current depth.
526    fn line(&mut self, text: &str) {
527        for _ in 0..self.depth {
528            self.out.push_str("  ");
529        }
530        self.out.push_str(text);
531        self.out.push('\n');
532    }
533}
534
535#[cfg(test)]
536mod tests {
537    use rucc_ast::{BinaryOp, UnaryOp};
538    use rucc_diag::Span;
539    use rucc_types::{ArrayLen, IntKind};
540
541    use super::*;
542    use crate::decl::{Decl, DeclList, InitEntry};
543    use crate::expr::{Conversion, Expr};
544    use crate::stmt::Case;
545    use crate::tast::Label;
546
547    struct Fixture {
548        tast: Tast,
549        types: Types,
550        names: Interner,
551    }
552
553    impl Fixture {
554        fn new() -> Fixture {
555            Fixture { tast: Tast::new(), types: Types::new(), names: Interner::new() }
556        }
557
558        fn int(&self) -> rucc_types::TypeId {
559            self.types.int(IntKind::Int)
560        }
561
562        /// An rvalue of the given type and kind, which is most of what a test needs.
563        fn value(&mut self, kind: ExprKind, ty: rucc_types::TypeId) -> ExprId {
564            self.tast.expr(Expr::new(kind, ty, Category::Rvalue), Span::DUMMY)
565        }
566
567        fn constant(&mut self, value: i128, ty: rucc_types::TypeId) -> ExprId {
568            let id = self.tast.add_const(Const::Int(value));
569            self.value(ExprKind::Const(id), ty)
570        }
571
572        fn text(&self, write: impl FnOnce(&mut Printer<'_>)) -> String {
573            let mut printer = Printer::new(&self.tast, &self.types, &self.names);
574            write(&mut printer);
575            printer.finish()
576        }
577    }
578
579    #[test]
580    fn an_expression_carries_its_type_on_every_line() {
581        let mut f = Fixture::new();
582        let int = f.int();
583        let left = f.constant(1, int);
584        let right = f.constant(2, int);
585        let sum = f.value(ExprKind::Binary { op: BinaryOp::Add, lhs: left, rhs: right }, int);
586
587        assert_eq!(f.text(|p| p.expr(sum)), "binary + : int\n  const 1 : int\n  const 2 : int\n");
588    }
589
590    #[test]
591    fn a_conversion_is_what_the_dump_is_for() {
592        let mut f = Fixture::new();
593        let (char_type, long) = (f.types.int(IntKind::Char), f.types.int(IntKind::Long));
594        let object = f.tast.decl(object_decl(char_type), Span::DUMMY);
595        let name = f
596            .tast
597            .expr(Expr::new(ExprKind::Decl(object), char_type, Category::Lvalue), Span::DUMMY);
598        let read =
599            f.value(ExprKind::Convert { kind: Conversion::Lvalue, operand: name }, char_type);
600        let widened =
601            f.value(ExprKind::Convert { kind: Conversion::Arithmetic, operand: read }, long);
602
603        // The two steps that got a `char` to a `long` are each a line, which is the whole
604        // reason this printer exists rather than one that writes the C back.
605        assert_eq!(
606            f.text(|p| p.expr(widened)),
607            "convert arithmetic : long\n  convert lvalue : char\n    decl #0 : char lvalue\n"
608        );
609    }
610
611    #[test]
612    fn a_category_is_written_and_an_rvalue_is_the_silent_one() {
613        let mut f = Fixture::new();
614        let int = f.int();
615        let object = f.tast.decl(object_decl(int), Span::DUMMY);
616        let name =
617            f.tast.expr(Expr::new(ExprKind::Decl(object), int, Category::Lvalue), Span::DUMMY);
618        let bits =
619            f.tast.expr(Expr::new(ExprKind::Decl(object), int, Category::Bitfield), Span::DUMMY);
620
621        assert_eq!(f.text(|p| p.expr(name)), "decl #0 : int lvalue\n");
622        assert_eq!(f.text(|p| p.expr(bits)), "decl #0 : int bit-field\n");
623    }
624
625    #[test]
626    fn a_postfix_operator_is_not_printed_as_the_prefix_one() {
627        let mut f = Fixture::new();
628        let int = f.int();
629        let one = f.constant(1, int);
630        let post = f.value(ExprKind::Unary { op: UnaryOp::PostInc, operand: one }, int);
631        let pre = f.value(ExprKind::Unary { op: UnaryOp::PreInc, operand: one }, int);
632
633        assert!(f.text(|p| p.expr(post)).starts_with("unary post ++"));
634        assert!(f.text(|p| p.expr(pre)).starts_with("unary ++ :"));
635    }
636
637    #[test]
638    fn a_compound_assignment_keeps_its_operator() {
639        let mut f = Fixture::new();
640        let int = f.int();
641        let one = f.constant(1, int);
642        let plain =
643            f.value(ExprKind::Assign { op: None, computation: int, lhs: one, rhs: one }, int);
644        let shl =
645            ExprKind::Assign { op: Some(BinaryOp::Shl), computation: int, lhs: one, rhs: one };
646        let compound = f.value(shl, int);
647
648        assert!(f.text(|p| p.expr(plain)).starts_with("assign = :"));
649        assert!(f.text(|p| p.expr(compound)).starts_with("assign <<= :"));
650    }
651
652    #[test]
653    fn a_case_is_a_reference_into_the_table_and_not_a_second_copy_of_it() {
654        let mut f = Fixture::new();
655        let int = f.int();
656        let cond = f.constant(0, int);
657        let empty = f.tast.stmt(Stmt::Empty, Span::DUMMY);
658        let cases = f.tast.add_cases(&[
659            Case { low: 1, high: 1, body: empty },
660            Case { low: 2, high: 9, body: empty },
661        ]);
662        let first = f.tast.stmt(
663            Stmt::Case { case: cases.iter().next().expect("a case"), body: empty },
664            Span::DUMMY,
665        );
666        let fallback = f.tast.stmt(Stmt::Default { body: empty }, Span::DUMMY);
667        let body = f.tast.add_stmt_refs(&[first, fallback]);
668        let body = f.tast.stmt(Stmt::Block(body), Span::DUMMY);
669        let switch =
670            f.tast.stmt(Stmt::Switch { cond, body, cases, default: Some(empty) }, Span::DUMMY);
671
672        assert_eq!(
673            f.text(|p| p.stmt(switch)),
674            "\
675switch
676  cond
677    const 0 : int
678  cases
679    case #0 1
680    case #1 2 ... 9
681    default
682  body
683    block
684      case #0
685        empty
686      default
687        empty
688"
689        );
690    }
691
692    #[test]
693    fn a_label_and_the_goto_that_reaches_it_carry_the_same_number() {
694        let mut f = Fixture::new();
695        let name = f.names.intern("done");
696        let label = f.tast.add_label(Label { name, stmt: None });
697        let empty = f.tast.stmt(Stmt::Empty, Span::DUMMY);
698        let target = f.tast.stmt(Stmt::Label { label, body: empty }, Span::DUMMY);
699        let jump = f.tast.stmt(Stmt::Goto(label), Span::DUMMY);
700        f.tast.define_label(label, target);
701
702        assert_eq!(f.text(|p| p.stmt(target)), "label #0 done\n  empty\n");
703        assert_eq!(f.text(|p| p.stmt(jump)), "goto #0 done\n");
704    }
705
706    #[test]
707    fn a_declaration_says_what_it_is_and_an_empty_initializer_is_still_one() {
708        let mut f = Fixture::new();
709        let int = f.int();
710        let array = f.types.array(int, ArrayLen::Fixed(2));
711        let mut decl = object_decl(array);
712        decl.name = Some(f.names.intern("a"));
713        decl.linkage = Linkage::Internal;
714        decl.duration = StorageDuration::Static;
715        decl.alignment = Some(16);
716        decl.init = Some(f.tast.add_init_entries(&[]));
717        let id = f.tast.decl(decl, Span::DUMMY);
718
719        assert_eq!(
720            f.text(|p| p.decl(id)),
721            "decl #0 a : int[2] object internal static defined alignas 16\n  init\n"
722        );
723    }
724
725    #[test]
726    fn an_initializer_prints_where_each_value_goes() {
727        let mut f = Fixture::new();
728        let int = f.int();
729        let array = f.types.array(int, ArrayLen::Fixed(2));
730        let one = f.constant(1, int);
731        let entries = f.tast.add_init_entries(&[
732            InitEntry::at(0, one),
733            InitEntry { offset: 4, value: one, bit_offset: 3, bit_width: 5 },
734        ]);
735        let mut decl = object_decl(array);
736        decl.init = Some(entries);
737        let id = f.tast.decl(decl, Span::DUMMY);
738
739        assert_eq!(
740            f.text(|p| p.decl(id)),
741            "\
742decl #0 : int[2] object automatic defined
743  init
744    +0
745      const 1 : int
746    +4 bit 3 width 5
747      const 1 : int
748"
749        );
750    }
751
752    #[test]
753    fn a_unit_is_its_declarations_in_order() {
754        let mut f = Fixture::new();
755        let int = f.int();
756        let first = f.tast.decl(object_decl(int), Span::DUMMY);
757        let second = f.tast.decl(object_decl(int), Span::DUMMY);
758        f.tast.add_top_level(first);
759        f.tast.add_top_level(second);
760
761        assert_eq!(
762            print(&f.tast, &f.types, &f.names),
763            "decl #0 : int object automatic defined\ndecl #1 : int object automatic defined\n"
764        );
765    }
766
767    fn object_decl(ty: rucc_types::TypeId) -> Decl {
768        Decl {
769            name: None,
770            ty,
771            kind: DeclKind::Object,
772            linkage: Linkage::None,
773            duration: StorageDuration::Automatic,
774            state: Definition::Defined,
775            alignment: None,
776            constant: false,
777            init: None,
778            params: DeclList::EMPTY,
779            body: None,
780        }
781    }
782}