Skip to main content

mollify_parse/
lib.rs

1//! # mollify-parse
2//!
3//! Python parsing for Mollify. **Parser abstraction** so the rest of the engine
4//! never touches the concrete parser directly.
5//!
6//! ## ADR-0001: full-fidelity ruff AST
7//! Built on Astral's `ruff_python_parser` / `ruff_python_ast` (pinned crates.io release) —
8//! the same battle-tested, error-resilient parser that powers `ruff`. The types
9//! below (`ParsedModule`, `Definition`, `Import`, …) are parser-agnostic, so the
10//! concrete parser remains an implementation detail confined to this crate.
11
12use camino::Utf8Path;
13use ruff_python_ast::token::TokenKind;
14use ruff_python_ast::visitor::{walk_expr, walk_stmt, Visitor};
15use ruff_python_ast::{
16    Expr, ExprContext, Parameters, Stmt, StmtClassDef, StmtFunctionDef, StmtImport, StmtImportFrom,
17};
18use ruff_python_parser::parse_module;
19use ruff_source_file::LineIndex;
20use ruff_text_size::{Ranged, TextRange, TextSize};
21use std::collections::{HashMap, HashSet};
22
23#[derive(Debug, thiserror::Error)]
24pub enum ParseError {
25    #[error("failed to initialize the Python grammar")]
26    Grammar,
27    #[error("parser produced no tree for {0}")]
28    NoTree(String),
29}
30
31/// What a top-level definition is, for dead-code granularity.
32#[derive(Debug, Clone, Copy, PartialEq, Eq)]
33pub enum DefKind {
34    Function,
35    Class,
36    /// A module-level name binding (assignment target).
37    Variable,
38}
39
40/// A symbol defined at module scope.
41#[derive(Debug, Clone, PartialEq, Eq)]
42pub struct Definition {
43    pub name: String,
44    pub kind: DefKind,
45    pub line: u32,
46    pub end_line: u32,
47    /// Convention: names starting with `_` are private by default.
48    pub private_by_convention: bool,
49    /// Decorator paths applied to this def, normalized to the callable path
50    /// without call args, e.g. `app.route`, `pytest.fixture`, `staticmethod`.
51    pub decorators: Vec<String>,
52}
53
54/// An `import` / `from ... import ...` statement.
55#[derive(Debug, Clone, PartialEq, Eq)]
56pub struct Import {
57    /// The module path, e.g. `os.path` or `mypkg.sub`. Empty for relative dots
58    /// captured in `relative_dots`.
59    pub module: String,
60    /// Number of leading dots in a relative import (`from . import x` -> 1).
61    pub relative_dots: u8,
62    /// Imported names (`from m import a, b` -> [a, b]). Empty for `import m`.
63    pub names: Vec<String>,
64    /// Local names this statement binds, honoring aliases: `import a.b` -> [a];
65    /// `import a.b as c` -> [c]; `from m import x as y` -> [y]. Empty for `*`.
66    pub bindings: Vec<String>,
67    /// True for `from m import *`.
68    pub is_star: bool,
69    /// True if guarded by `if TYPE_CHECKING:` / `if False:` — a deliberate
70    /// type-only import that must never be flagged as unused.
71    pub type_checking_only: bool,
72    /// Per-binding: true when written with a redundant alias (`import x as x`,
73    /// `from m import y as y`) — the PEP 484 explicit re-export convention, so
74    /// the binding is public API even with zero in-module uses.
75    pub redundant: Vec<bool>,
76    /// True if the statement sits in a `try:` body / `except:` handler, or a
77    /// module-level `if`/`else` arm — availability probes and platform
78    /// switches (`try: import x / except: …`, `if flag: from y import z`).
79    /// Removing a guarded arm changes behavior, so this is never a certain fix.
80    pub in_try: bool,
81    pub line: u32,
82    /// Last line of the statement (inclusive) — multi-line `from x import (…)`
83    /// spans several lines, and a `# noqa` on any of them counts.
84    pub end_line: u32,
85}
86
87/// Per-function complexity metrics (cyclomatic + cognitive) and type-annotation
88/// coverage.
89#[derive(Debug, Clone, PartialEq, Eq)]
90pub struct FunctionComplexity {
91    pub name: String,
92    pub line: u32,
93    /// Last line of the function (inclusive) — for coverage range checks.
94    pub end_line: u32,
95    /// McCabe cyclomatic complexity (1 + decision points).
96    pub cyclomatic: u32,
97    /// SonarSource-style cognitive complexity (nesting-weighted).
98    pub cognitive: u32,
99    /// Parameters excluding `self`/`cls`.
100    pub params_total: u32,
101    /// Of those, how many carry a type annotation.
102    pub params_annotated: u32,
103    /// Whether the function has a `-> T` return annotation.
104    pub return_annotated: bool,
105}
106
107/// A potential security issue detected syntactically (a *candidate*, per the
108/// candidate-producer/verifier split — never a confirmed vulnerability).
109#[derive(Debug, Clone, PartialEq, Eq)]
110pub struct SecurityHit {
111    /// Stable rule id, e.g. `dangerous-eval`, `subprocess-shell-true`.
112    pub rule: &'static str,
113    pub line: u32,
114    pub detail: String,
115}
116
117/// A single call expression's callee text and 1-based line.
118#[derive(Debug, Clone, PartialEq, Eq)]
119pub struct CallSite {
120    pub callee: String,
121    pub line: u32,
122}
123
124/// An unused local binding within a function scope.
125#[derive(Debug, Clone, PartialEq, Eq)]
126pub struct ScopeFinding {
127    pub name: String,
128    pub line: u32,
129    /// True for a parameter, false for a local-variable assignment.
130    pub is_param: bool,
131}
132
133/// A class and, per method, the set of `self.<attr>` it touches — the input to
134/// the LCOM* cohesion metric. Also carries member + base metadata for unused
135/// class-member / unused enum-member detection.
136#[derive(Debug, Clone, PartialEq, Eq)]
137pub struct ClassInfo {
138    pub name: String,
139    pub line: u32,
140    pub end_line: u32,
141    /// True if this is private by convention (`_Name`).
142    pub is_private: bool,
143    /// Decorator paths on the class (`dataclass`, `runtime_checkable`, …).
144    pub decorators: Vec<String>,
145    /// Base-class paths as written (`Enum`, `enum.IntEnum`, `BaseModel`, …).
146    pub bases: Vec<String>,
147    /// True if a base resolves to an `enum`-family class (Enum/IntEnum/…).
148    pub is_enum: bool,
149    /// `(method_name, set-of-instance-attributes-it-references)`.
150    pub methods: Vec<(String, Vec<String>)>,
151    /// Declared members: methods and class-level attribute/constant assignments.
152    pub members: Vec<ClassMember>,
153}
154
155/// One member declared directly in a class body (a method or a class-level
156/// attribute / enum value).
157#[derive(Debug, Clone, PartialEq, Eq)]
158pub struct ClassMember {
159    pub name: String,
160    pub line: u32,
161    pub end_line: u32,
162    /// True for a `def`, false for a class-level assignment (attribute/constant).
163    pub is_method: bool,
164    pub is_private: bool,
165    /// Decorator paths (`property`, `staticmethod`, `abstractmethod`, …).
166    pub decorators: Vec<String>,
167}
168
169/// A statement that can never execute because it follows an unconditional
170/// terminator (`return`/`raise`/`break`/`continue`/`sys.exit()`) in the same
171/// block.
172#[derive(Debug, Clone, PartialEq, Eq)]
173pub struct UnreachableCode {
174    pub line: u32,
175    /// The terminator that makes it unreachable, e.g. `return`, `raise`.
176    pub after: &'static str,
177}
178
179/// A **private type** (`_Name`) referenced in the signature of a *public*
180/// function/method — an API-hygiene leak (callers can't name the type).
181#[derive(Debug, Clone, PartialEq, Eq)]
182pub struct TypeLeak {
183    /// `func` or `Class.method`.
184    pub function: String,
185    /// The private type name referenced (`_Internal`).
186    pub type_name: String,
187    pub line: u32,
188    /// True if the leak is in the return annotation (else a parameter).
189    pub is_return: bool,
190}
191
192/// The parsed view of one Python module that the graph builds on.
193#[derive(Debug, Clone)]
194pub struct ParsedModule {
195    pub path: camino::Utf8PathBuf,
196    pub definitions: Vec<Definition>,
197    pub imports: Vec<Import>,
198    /// Imports nested inside function/class bodies (lazy/deferred imports). Kept
199    /// separate from `imports` so module-scope unused-import analysis is
200    /// unaffected, while dependency-usage and reachability can still see them.
201    pub nested_imports: Vec<Import>,
202    pub calls: Vec<CallSite>,
203    pub functions: Vec<FunctionComplexity>,
204    pub security_hits: Vec<SecurityHit>,
205    pub dunder_all: Option<Vec<String>>,
206    /// True when `__all__` exists but part of it is not statically knowable
207    /// (`__all__ = sub.__all__ + [...]`, `.extend(func())`). `dunder_all`
208    /// then holds only the literal names that could be collected, so
209    /// "not in `__all__`" is no longer evidence of certainty.
210    pub dunder_all_dynamic: bool,
211    pub used_names: Vec<String>,
212    pub local_uses: Vec<String>,
213    /// Names accessed as an attribute (`obj.attr`, `self.attr`, `Class.attr`) —
214    /// the precise "member used" signal for unused class / enum members (sorted,
215    /// deduped). Distinct from `local_uses`, which also mixes in bare/store names
216    /// that would otherwise mask an unused attribute via its own definition.
217    pub attr_accessed: Vec<String>,
218    /// Module-level names referenced by a **resolved** free load — i.e. a
219    /// `Name` in load context whose scope resolution reaches module/global scope
220    /// (not shadowed by a function-local binding, and not an attribute access).
221    /// This is the precise signal for whether a top-level symbol is used
222    /// internally, replacing coarse token-frequency counting. Sorted + deduped.
223    pub module_used: Vec<String>,
224    pub ignores: Vec<(u32, String)>,
225    pub scope_findings: Vec<ScopeFinding>,
226    pub classes: Vec<ClassInfo>,
227    /// Statements that can never execute (follow a terminator in their block).
228    pub unreachable: Vec<UnreachableCode>,
229    /// Private types leaked through public function/method signatures.
230    pub type_leaks: Vec<TypeLeak>,
231    pub name_counts: HashMap<String, u32>,
232    pub has_dynamic_sink: bool,
233    /// True if the module has a top-level `if __name__ == "__main__":` guard —
234    /// it's a runnable script, hence a reachability root.
235    pub has_main_guard: bool,
236    pub halstead_volume: f64,
237    had_errors: bool,
238}
239
240impl ParsedModule {
241    /// Whether the parser reported syntax errors (we still extract best-effort).
242    pub fn had_errors(&self) -> bool {
243        self.had_errors
244    }
245}
246
247/// A reusable parser handle. The ruff parser is stateless (a free function), so
248/// this is a zero-sized handle kept for API stability and ergonomic call sites.
249#[derive(Default)]
250pub struct PyParser;
251
252impl PyParser {
253    pub fn new() -> Result<Self, ParseError> {
254        Ok(Self)
255    }
256
257    /// Parse and extract the module view.
258    pub fn parse(&mut self, path: &Utf8Path, source: &str) -> Result<ParsedModule, ParseError> {
259        let li = LineIndex::from_source_text(source);
260        let mut m = ParsedModule {
261            path: path.to_owned(),
262            definitions: Vec::new(),
263            imports: Vec::new(),
264            nested_imports: Vec::new(),
265            calls: Vec::new(),
266            functions: Vec::new(),
267            security_hits: Vec::new(),
268            dunder_all: None,
269            dunder_all_dynamic: false,
270            used_names: Vec::new(),
271            local_uses: Vec::new(),
272            attr_accessed: Vec::new(),
273            module_used: Vec::new(),
274            ignores: Vec::new(),
275            scope_findings: Vec::new(),
276            classes: Vec::new(),
277            unreachable: Vec::new(),
278            type_leaks: Vec::new(),
279            name_counts: HashMap::new(),
280            has_dynamic_sink: false,
281            has_main_guard: false,
282            halstead_volume: 0.0,
283            had_errors: false,
284        };
285
286        let parsed = match parse_module(source) {
287            Ok(p) => p,
288            Err(_) => {
289                // Catastrophic parse failure: return an empty best-effort view.
290                m.had_errors = true;
291                return Ok(m);
292            }
293        };
294        m.had_errors = !parsed.errors().is_empty();
295        let module = parsed.syntax();
296
297        // Token-derived data (mirrors the old "every identifier token" model):
298        // name occurrence counts, used-name set, Halstead volume, ignores, and a
299        // per-position Name index for scope frequency.
300        let mut name_tokens: Vec<(TextSize, &str)> = Vec::new();
301        let mut h_total_ops = 0u64;
302        let mut h_total_oprs = 0u64;
303        let mut h_ops: HashSet<TokenKind> = HashSet::new();
304        let mut h_oprs: HashSet<&str> = HashSet::new();
305        for tok in parsed.tokens() {
306            let kind = tok.kind();
307            let text = &source[tok.range()];
308            if kind == TokenKind::Name {
309                *m.name_counts.entry(text.to_string()).or_insert(0) += 1;
310                m.used_names.push(text.to_string());
311                name_tokens.push((tok.range().start(), text));
312            }
313            if kind == TokenKind::Comment {
314                let line = line1(&li, tok.range().start());
315                if let Some(rules) = parse_ignore_comment(text) {
316                    for r in rules {
317                        m.ignores.push((line, r));
318                    }
319                }
320                if let Some(rules) = parse_noqa_comment(text) {
321                    for r in rules {
322                        m.ignores.push((line, r));
323                    }
324                }
325            }
326            // Halstead classification.
327            if is_operand(kind) {
328                h_total_oprs += 1;
329                h_oprs.insert(text);
330            } else if !kind.is_trivia()
331                && !matches!(
332                    kind,
333                    TokenKind::Newline
334                        | TokenKind::Indent
335                        | TokenKind::Dedent
336                        | TokenKind::EndOfFile
337                )
338            {
339                h_total_ops += 1;
340                h_ops.insert(kind);
341            }
342        }
343        m.used_names.sort();
344        m.used_names.dedup();
345        let vocab = (h_ops.len() + h_oprs.len()) as f64;
346        let length = (h_total_ops + h_total_oprs) as f64;
347        m.halstead_volume = if vocab <= 1.0 {
348            0.0
349        } else {
350            length * vocab.log2()
351        };
352
353        // Top-level definitions / imports / __all__ / module vars.
354        scan_top_level(&module.body, &li, false, &mut m);
355
356        // Lazy/deferred imports inside function & class bodies (collected
357        // separately — see `nested_imports`).
358        let mut nested = NestedImportVisitor {
359            li: &li,
360            depth: 0,
361            out: Vec::new(),
362        };
363        for stmt in &module.body {
364            nested.visit_stmt(stmt);
365        }
366        m.nested_imports = nested.out;
367
368        // Calls, dynamic sinks, security candidates (whole-tree walk).
369        let mut main = MainVisitor { li: &li, m: &mut m };
370        for stmt in &module.body {
371            main.visit_stmt(stmt);
372        }
373
374        // Identifiers used outside import statements (for unused-import), plus
375        // the set of attribute-accessed names (for unused class/enum members).
376        let mut lu = LocalUseVisitor {
377            uses: Vec::new(),
378            attrs: Vec::new(),
379        };
380        for stmt in &module.body {
381            lu.visit_stmt(stmt);
382        }
383        lu.uses.sort();
384        lu.uses.dedup();
385        m.local_uses = lu.uses;
386        lu.attrs.sort();
387        lu.attrs.dedup();
388        m.attr_accessed = lu.attrs;
389
390        // Scope/binding resolution: which module-level names are referenced by a
391        // free load that resolves to module scope (not a shadowing local).
392        let mut res = Resolver {
393            scopes: Vec::new(),
394            used: HashSet::new(),
395        };
396        for stmt in &module.body {
397            res.visit_stmt(stmt);
398        }
399        let mut mu: Vec<String> = res.used.into_iter().collect();
400        mu.sort();
401        m.module_used = mu;
402
403        // Per-function complexity, per-function scope analysis, per-class cohesion.
404        let mut defs = DefVisitor {
405            funcs: Vec::new(),
406            classes: Vec::new(),
407        };
408        for stmt in &module.body {
409            defs.visit_stmt(stmt);
410        }
411        for f in &defs.funcs {
412            m.functions.push(function_complexity(f, &li));
413            analyze_scope(f, &name_tokens, &mut m.scope_findings, &li);
414        }
415        m.functions.sort_by_key(|f| f.line);
416        m.scope_findings.sort_by_key(|s| s.line);
417        for c in &defs.classes {
418            m.classes.push(class_info(c, &li));
419        }
420        m.classes.sort_by_key(|c| c.line);
421
422        // Unreachable code: statements following an unconditional terminator in
423        // any block (whole-tree walk over suites).
424        let mut ur = UnreachableVisitor {
425            li: &li,
426            out: Vec::new(),
427        };
428        ur.scan(&module.body);
429        for stmt in &module.body {
430            ur.visit_stmt(stmt);
431        }
432        ur.out.sort_by_key(|u| u.line);
433        ur.out.dedup();
434        m.unreachable = ur.out;
435
436        // Private-type leaks through public function/method signatures.
437        scan_type_leaks(&module.body, &li, &mut m.type_leaks);
438        m.type_leaks
439            .sort_by(|a, b| a.line.cmp(&b.line).then(a.type_name.cmp(&b.type_name)));
440        m.type_leaks.dedup();
441
442        // Import-based weak-cipher candidates (needs the parsed import list).
443        security_imports(&mut m);
444        m.security_hits
445            .sort_by(|a, b| a.line.cmp(&b.line).then(a.rule.cmp(b.rule)));
446        m.security_hits
447            .dedup_by(|a, b| a.rule == b.rule && a.line == b.line);
448
449        // A suppression comment on ANY line of a multi-line import statement
450        // counts for the whole statement: mollify reports the finding at the
451        // statement's first line, while ruff anchors F401 at the alias — so
452        // users legitimately write `name,  # noqa: F401` inside the parens
453        // (seen live in astropy's test suite).
454        let mut span_ignores: Vec<(u32, String)> = Vec::new();
455        for (line, rule) in &m.ignores {
456            for imp in &m.imports {
457                if *line > imp.line && *line <= imp.end_line {
458                    span_ignores.push((imp.line, rule.clone()));
459                }
460            }
461        }
462        m.ignores.extend(span_ignores);
463        Ok(m)
464    }
465}
466
467// ---------------------------------------------------------------------------
468// Helpers
469// ---------------------------------------------------------------------------
470
471const DYNAMIC_SINKS: &[&str] = &["getattr", "setattr", "eval", "exec", "__import__"];
472
473/// 1-based line for a byte offset.
474fn line1(li: &LineIndex, off: TextSize) -> u32 {
475    li.line_index(off).get() as u32
476}
477
478/// 1-based line of the last byte covered by `range` (for inclusive end lines).
479fn end_line1(li: &LineIndex, range: TextRange) -> u32 {
480    let end = range.end();
481    if end > range.start() {
482        line1(li, end.checked_sub(TextSize::from(1)).unwrap_or(end))
483    } else {
484        line1(li, end)
485    }
486}
487
488/// Whether a token kind is a Halstead "operand" (identifier or literal).
489fn is_operand(kind: TokenKind) -> bool {
490    matches!(
491        kind,
492        TokenKind::Name
493            | TokenKind::Int
494            | TokenKind::Float
495            | TokenKind::Complex
496            | TokenKind::String
497            | TokenKind::FStringStart
498            | TokenKind::FStringMiddle
499            | TokenKind::FStringEnd
500            | TokenKind::True
501            | TokenKind::False
502            | TokenKind::None
503    )
504}
505
506/// Render an attribute/name expression to a dotted path (`os.path.join`).
507fn expr_path(e: &Expr) -> Option<String> {
508    match e {
509        Expr::Name(n) => Some(n.id.as_str().to_string()),
510        Expr::Attribute(a) => Some(format!("{}.{}", expr_path(&a.value)?, a.attr.as_str())),
511        _ => None,
512    }
513}
514
515/// The decorator's normalized callable path (strip any call arguments).
516fn decorator_path(e: &Expr) -> Option<String> {
517    match e {
518        Expr::Call(c) => expr_path(&c.func),
519        other => expr_path(other),
520    }
521}
522
523fn is_private(name: &str) -> bool {
524    name.starts_with('_')
525}
526
527// ---------------------------------------------------------------------------
528// Top-level scan: definitions, imports, __all__, module vars.
529// ---------------------------------------------------------------------------
530
531fn scan_top_level(stmts: &[Stmt], li: &LineIndex, type_checking: bool, m: &mut ParsedModule) {
532    for stmt in stmts {
533        match stmt {
534            Stmt::FunctionDef(f) => m.definitions.push(Definition {
535                private_by_convention: is_private(f.name.as_str()),
536                name: f.name.to_string(),
537                kind: DefKind::Function,
538                // The full range includes decorators; point `line` at the `def`.
539                line: line1(li, f.name.range().start()),
540                end_line: end_line1(li, f.range()),
541                decorators: f
542                    .decorator_list
543                    .iter()
544                    .filter_map(|d| decorator_path(&d.expression))
545                    .collect(),
546            }),
547            Stmt::ClassDef(c) => m.definitions.push(Definition {
548                private_by_convention: is_private(c.name.as_str()),
549                name: c.name.to_string(),
550                kind: DefKind::Class,
551                line: line1(li, c.name.range().start()),
552                end_line: end_line1(li, c.range()),
553                decorators: c
554                    .decorator_list
555                    .iter()
556                    .filter_map(|d| decorator_path(&d.expression))
557                    .collect(),
558            }),
559            Stmt::Import(i) => parse_import(i, li, &mut m.imports),
560            Stmt::ImportFrom(i) => {
561                let mut imp = parse_import_from(i, li);
562                imp.type_checking_only = type_checking;
563                m.imports.push(imp);
564            }
565            Stmt::Assign(a) => {
566                if let [Expr::Name(target)] = a.targets.as_slice() {
567                    let name = target.id.as_str();
568                    if name == "__all__" {
569                        match string_list(&a.value) {
570                            Some(items) => m.dunder_all = Some(items),
571                            // `__all__ = sub.__all__ + [...]`: unknowable.
572                            None => m.dunder_all_dynamic = true,
573                        }
574                    } else {
575                        m.definitions.push(Definition {
576                            private_by_convention: is_private(name),
577                            name: name.to_string(),
578                            kind: DefKind::Variable,
579                            line: line1(li, a.range().start()),
580                            end_line: end_line1(li, a.range()),
581                            decorators: Vec::new(),
582                        });
583                    }
584                }
585            }
586            Stmt::AnnAssign(a) => {
587                if let Expr::Name(target) = &*a.target {
588                    let name = target.id.as_str();
589                    if name == "__all__" {
590                        if let Some(v) = &a.value {
591                            match string_list(v) {
592                                Some(items) => m.dunder_all = Some(items),
593                                None => m.dunder_all_dynamic = true,
594                            }
595                        }
596                    } else {
597                        m.definitions.push(Definition {
598                            private_by_convention: is_private(name),
599                            name: name.to_string(),
600                            kind: DefKind::Variable,
601                            line: line1(li, a.range().start()),
602                            end_line: end_line1(li, a.range()),
603                            decorators: Vec::new(),
604                        });
605                    }
606                }
607            }
608            // `__all__ += [...]` extends the export list. When the base was
609            // dynamic (`__all__ = sub.__all__ + …`), keep the literal names we
610            // CAN see (they are exports) and remember the list is partial via
611            // `dunder_all_dynamic` — "not in __all__" then proves nothing.
612            Stmt::AugAssign(a) => {
613                if let Expr::Name(t) = &*a.target {
614                    if t.id.as_str() == "__all__" {
615                        match string_list(&a.value) {
616                            Some(items) => match &mut m.dunder_all {
617                                Some(all) => all.extend(items),
618                                None => m.dunder_all = Some(items),
619                            },
620                            None => {
621                                m.dunder_all = None;
622                                m.dunder_all_dynamic = true;
623                            }
624                        }
625                    }
626                }
627            }
628            // `__all__.extend([...])` / `__all__.append('x')` — same policy.
629            Stmt::Expr(e) => {
630                if let Expr::Call(c) = &*e.value {
631                    match expr_path(&c.func).as_deref() {
632                        Some("__all__.extend") => {
633                            match c.arguments.args.first().and_then(string_list) {
634                                Some(items) => match &mut m.dunder_all {
635                                    Some(all) => all.extend(items),
636                                    None => m.dunder_all = Some(items),
637                                },
638                                None => {
639                                    m.dunder_all = None;
640                                    m.dunder_all_dynamic = true;
641                                }
642                            }
643                        }
644                        Some("__all__.append") => match c.arguments.args.first() {
645                            Some(Expr::StringLiteral(s)) => match &mut m.dunder_all {
646                                Some(all) => all.push(s.value.to_str().to_string()),
647                                None => m.dunder_all = Some(vec![s.value.to_str().to_string()]),
648                            },
649                            _ => {
650                                m.dunder_all = None;
651                                m.dunder_all_dynamic = true;
652                            }
653                        },
654                        _ => {}
655                    }
656                }
657            }
658            // Recurse into top-level guards for conditional imports/defs.
659            Stmt::If(i) => {
660                if is_main_guard(&i.test) {
661                    m.has_main_guard = true;
662                }
663                // Only the if-body executes under `if TYPE_CHECKING:`; the
664                // elif/else clauses are the runtime branches. Conversely,
665                // `if not TYPE_CHECKING:` makes the *else* the type-only side.
666                let body_tc = type_checking || is_type_checking_guard(&i.test);
667                let else_tc = type_checking || is_not_type_checking_guard(&i.test);
668                let before = m.imports.len();
669                scan_top_level(&i.body, li, body_tc, m);
670                for imp in m.imports[before..].iter_mut() {
671                    if body_tc {
672                        imp.type_checking_only = true;
673                    } else {
674                        // A module-level conditional import is the try/except
675                        // availability probe spelled with `if` (scipy:
676                        // `if _has_uarray: from uarray import _Function`),
677                        // or a platform switch — removing one arm changes
678                        // behavior, so it must never be a certain fix.
679                        imp.in_try = true;
680                    }
681                }
682                for clause in &i.elif_else_clauses {
683                    let before = m.imports.len();
684                    scan_top_level(&clause.body, li, else_tc, m);
685                    for imp in m.imports[before..].iter_mut() {
686                        if else_tc {
687                            imp.type_checking_only = true;
688                        } else {
689                            imp.in_try = true;
690                        }
691                    }
692                }
693            }
694            Stmt::Try(t) => {
695                // Imports in the `try:` body or an `except:` handler are the
696                // availability-probe idiom; mark them so unused-import analysis
697                // never grades them certain. The `else:`/`finally:` suites run
698                // unconditionally and carry no probe semantics.
699                let before = m.imports.len();
700                scan_top_level(&t.body, li, type_checking, m);
701                for h in &t.handlers {
702                    let ruff_python_ast::ExceptHandler::ExceptHandler(eh) = h;
703                    scan_top_level(&eh.body, li, type_checking, m);
704                }
705                for imp in m.imports[before..].iter_mut() {
706                    imp.in_try = true;
707                }
708                scan_top_level(&t.orelse, li, type_checking, m);
709                scan_top_level(&t.finalbody, li, type_checking, m);
710            }
711            // These suites also execute at module import time.
712            Stmt::With(w) => scan_top_level(&w.body, li, type_checking, m),
713            Stmt::For(f) => {
714                scan_top_level(&f.body, li, type_checking, m);
715                scan_top_level(&f.orelse, li, type_checking, m);
716            }
717            Stmt::While(w) => {
718                scan_top_level(&w.body, li, type_checking, m);
719                scan_top_level(&w.orelse, li, type_checking, m);
720            }
721            Stmt::Match(mt) => {
722                for case in &mt.cases {
723                    scan_top_level(&case.body, li, type_checking, m);
724                }
725            }
726            _ => {}
727        }
728    }
729}
730
731/// Collects imports nested inside function/class bodies. `depth` tracks how many
732/// function/class scopes deep we are; `depth > 0` means the import is lazy.
733struct NestedImportVisitor<'a> {
734    li: &'a LineIndex,
735    depth: u32,
736    out: Vec<Import>,
737}
738
739impl<'a> Visitor<'a> for NestedImportVisitor<'a> {
740    fn visit_stmt(&mut self, stmt: &'a Stmt) {
741        match stmt {
742            Stmt::FunctionDef(_) | Stmt::ClassDef(_) => {
743                self.depth += 1;
744                walk_stmt(self, stmt);
745                self.depth -= 1;
746            }
747            Stmt::Import(i) if self.depth > 0 => {
748                parse_import(i, self.li, &mut self.out);
749                walk_stmt(self, stmt);
750            }
751            Stmt::ImportFrom(i) if self.depth > 0 => {
752                self.out.push(parse_import_from(i, self.li));
753                walk_stmt(self, stmt);
754            }
755            _ => walk_stmt(self, stmt),
756        }
757    }
758}
759
760/// `if __name__ == "__main__":` (either operand order) — the module is a
761/// runnable script.
762fn is_main_guard(test: &Expr) -> bool {
763    let Expr::Compare(c) = test else {
764        return false;
765    };
766    let Some((left, op, right)) = c.as_single() else {
767        return false;
768    };
769    if *op != ruff_python_ast::CmpOp::Eq {
770        return false;
771    }
772    let is_name = |e: &Expr| matches!(e, Expr::Name(n) if n.id.as_str() == "__name__");
773    let is_main_str =
774        |e: &Expr| matches!(e, Expr::StringLiteral(s) if s.value.to_str() == "__main__");
775    (is_name(left) && is_main_str(right)) || (is_main_str(left) && is_name(right))
776}
777
778/// `if TYPE_CHECKING:` / `if typing.TYPE_CHECKING:` / `if False:` guard.
779/// Exact match only — `MY_TYPE_CHECKING_OVERRIDE` is not a guard.
780fn is_type_checking_guard(test: &Expr) -> bool {
781    if let Expr::BooleanLiteral(b) = test {
782        return !b.value; // `if False:`
783    }
784    expr_path(test)
785        .map(|p| p == "TYPE_CHECKING" || p.ends_with(".TYPE_CHECKING"))
786        .unwrap_or(false)
787}
788
789/// `if not TYPE_CHECKING:` — the body is the runtime branch; the else clause
790/// is the type-only side.
791fn is_not_type_checking_guard(test: &Expr) -> bool {
792    if let Expr::UnaryOp(u) = test {
793        return matches!(u.op, ruff_python_ast::UnaryOp::Not) && is_type_checking_guard(&u.operand);
794    }
795    false
796}
797
798fn parse_import(i: &StmtImport, li: &LineIndex, out: &mut Vec<Import>) {
799    let line = line1(li, i.range().start());
800    let end_line = end_line1(li, i.range());
801    for alias in &i.names {
802        let module = alias.name.as_str().to_string();
803        let redundant = matches!(&alias.asname, Some(a) if a.as_str() == alias.name.as_str());
804        let binding = match &alias.asname {
805            Some(a) => a.as_str().to_string(),
806            None => module.split('.').next().unwrap_or(&module).to_string(),
807        };
808        if !module.is_empty() {
809            let bindings = if binding.is_empty() {
810                vec![]
811            } else {
812                vec![binding]
813            };
814            out.push(Import {
815                module,
816                relative_dots: 0,
817                names: vec![],
818                redundant: vec![redundant; bindings.len()],
819                bindings,
820                is_star: false,
821                type_checking_only: false,
822                in_try: false,
823                line,
824                end_line,
825            });
826        }
827    }
828}
829
830fn parse_import_from(i: &StmtImportFrom, li: &LineIndex) -> Import {
831    let line = line1(li, i.range().start());
832    let end_line = end_line1(li, i.range());
833    let module = i.module.as_ref().map(|m| m.to_string()).unwrap_or_default();
834    let mut names = Vec::new();
835    let mut bindings = Vec::new();
836    let mut redundant = Vec::new();
837    let mut is_star = false;
838    for alias in &i.names {
839        let name = alias.name.as_str();
840        if name == "*" {
841            is_star = true;
842            continue;
843        }
844        names.push(name.to_string());
845        redundant.push(matches!(&alias.asname, Some(a) if a.as_str() == name));
846        bindings.push(match &alias.asname {
847            Some(a) => a.as_str().to_string(),
848            None => name.to_string(),
849        });
850    }
851    Import {
852        module,
853        relative_dots: i.level.min(u8::MAX as u32) as u8,
854        names,
855        bindings,
856        redundant,
857        is_star,
858        type_checking_only: false,
859        in_try: false,
860        line,
861        end_line,
862    }
863}
864
865/// Extract a list/tuple of string-literal values (for `__all__`).
866fn string_list(e: &Expr) -> Option<Vec<String>> {
867    let elts = match e {
868        Expr::List(l) => &l.elts,
869        Expr::Tuple(t) => &t.elts,
870        _ => return None,
871    };
872    Some(
873        elts.iter()
874            .filter_map(|el| match el {
875                Expr::StringLiteral(s) => Some(s.value.to_str().to_string()),
876                _ => None,
877            })
878            .collect(),
879    )
880}
881
882// ---------------------------------------------------------------------------
883// Complexity
884// ---------------------------------------------------------------------------
885
886fn function_complexity(f: &StmtFunctionDef, li: &LineIndex) -> FunctionComplexity {
887    let (params_total, params_annotated) = count_params(&f.parameters);
888    let mut cv = CycloVisitor { count: 0 };
889    for s in &f.body {
890        cv.visit_stmt(s);
891    }
892    FunctionComplexity {
893        name: f.name.to_string(),
894        // The full range includes decorators; point `line` at the `def`.
895        line: line1(li, f.name.range().start()),
896        end_line: end_line1(li, f.range()),
897        cyclomatic: 1 + cv.count,
898        cognitive: cog_stmts(&f.body, 0),
899        params_total,
900        params_annotated,
901        return_annotated: f.returns.is_some(),
902    }
903}
904
905fn count_params(params: &Parameters) -> (u32, u32) {
906    let positional: Vec<_> = params
907        .posonlyargs
908        .iter()
909        .chain(params.args.iter())
910        .collect();
911    let mut total = 0u32;
912    let mut annotated = 0u32;
913    for (idx, p) in positional.iter().enumerate() {
914        let name = p.parameter.name.as_str();
915        if idx == 0 && (name == "self" || name == "cls") {
916            continue;
917        }
918        total += 1;
919        if p.parameter.annotation.is_some() {
920            annotated += 1;
921        }
922    }
923    for p in &params.kwonlyargs {
924        total += 1;
925        if p.parameter.annotation.is_some() {
926            annotated += 1;
927        }
928    }
929    (total, annotated.min(total))
930}
931
932/// Cyclomatic decision-point counter; does not descend into nested scopes.
933struct CycloVisitor {
934    count: u32,
935}
936impl<'a> Visitor<'a> for CycloVisitor {
937    fn visit_stmt(&mut self, stmt: &'a Stmt) {
938        match stmt {
939            Stmt::FunctionDef(_) | Stmt::ClassDef(_) => return, // attributed separately
940            Stmt::If(i) => {
941                self.count += 1 + i
942                    .elif_else_clauses
943                    .iter()
944                    .filter(|c| c.test.is_some())
945                    .count() as u32;
946            }
947            Stmt::For(_) | Stmt::While(_) => self.count += 1,
948            Stmt::Try(t) => self.count += t.handlers.len() as u32,
949            Stmt::Assert(_) => self.count += 1,
950            Stmt::Match(mt) => self.count += mt.cases.len() as u32,
951            _ => {}
952        }
953        walk_stmt(self, stmt);
954    }
955    fn visit_expr(&mut self, expr: &'a Expr) {
956        match expr {
957            Expr::BoolOp(b) => self.count += (b.values.len() as u32).saturating_sub(1),
958            Expr::If(_) => self.count += 1, // ternary
959            Expr::ListComp(c) => self.count += comp_points(&c.generators),
960            Expr::SetComp(c) => self.count += comp_points(&c.generators),
961            Expr::DictComp(c) => self.count += comp_points(&c.generators),
962            Expr::Generator(c) => self.count += comp_points(&c.generators),
963            _ => {}
964        }
965        walk_expr(self, expr);
966    }
967}
968
969fn comp_points(gens: &[ruff_python_ast::Comprehension]) -> u32 {
970    gens.iter().map(|g| 1 + g.ifs.len() as u32).sum()
971}
972
973/// Cognitive complexity (nesting-weighted approximation of the SonarSource model).
974fn cog_stmts(stmts: &[Stmt], nesting: u32) -> u32 {
975    stmts.iter().map(|s| cog_stmt(s, nesting)).sum()
976}
977
978fn cog_stmt(s: &Stmt, nesting: u32) -> u32 {
979    match s {
980        Stmt::FunctionDef(_) | Stmt::ClassDef(_) => 0,
981        Stmt::If(i) => {
982            let mut c = 1 + nesting + cog_cond(&i.test);
983            c += cog_stmts(&i.body, nesting + 1);
984            for clause in &i.elif_else_clauses {
985                c += 1; // elif/else: flat increment
986                if let Some(t) = &clause.test {
987                    c += cog_cond(t);
988                }
989                c += cog_stmts(&clause.body, nesting + 1);
990            }
991            c
992        }
993        Stmt::For(f) => {
994            1 + nesting + cog_stmts(&f.body, nesting + 1) + cog_stmts(&f.orelse, nesting + 1)
995        }
996        Stmt::While(w) => {
997            1 + nesting
998                + cog_cond(&w.test)
999                + cog_stmts(&w.body, nesting + 1)
1000                + cog_stmts(&w.orelse, nesting + 1)
1001        }
1002        Stmt::With(w) => cog_stmts(&w.body, nesting),
1003        Stmt::Try(t) => {
1004            let mut c = cog_stmts(&t.body, nesting);
1005            for h in &t.handlers {
1006                let ruff_python_ast::ExceptHandler::ExceptHandler(eh) = h;
1007                c += 1 + nesting + cog_stmts(&eh.body, nesting + 1);
1008            }
1009            c += cog_stmts(&t.orelse, nesting) + cog_stmts(&t.finalbody, nesting);
1010            c
1011        }
1012        Stmt::Match(mt) => {
1013            let mut c = 0;
1014            for case in &mt.cases {
1015                c += 1 + nesting + cog_stmts(&case.body, nesting + 1);
1016            }
1017            c
1018        }
1019        Stmt::Expr(e) => cog_cond(&e.value),
1020        Stmt::Return(r) => r.value.as_ref().map(|v| cog_cond(v)).unwrap_or(0),
1021        Stmt::Assign(a) => cog_cond(&a.value),
1022        Stmt::AugAssign(a) => cog_cond(&a.value),
1023        Stmt::AnnAssign(a) => a.value.as_ref().map(|v| cog_cond(v)).unwrap_or(0),
1024        _ => 0,
1025    }
1026}
1027
1028/// Count boolean operators (+1 each) and ternaries within a condition expr.
1029fn cog_cond(e: &Expr) -> u32 {
1030    let mut v = CondVisitor { count: 0 };
1031    v.visit_expr(e);
1032    v.count
1033}
1034struct CondVisitor {
1035    count: u32,
1036}
1037impl<'a> Visitor<'a> for CondVisitor {
1038    fn visit_expr(&mut self, expr: &'a Expr) {
1039        match expr {
1040            Expr::BoolOp(b) => self.count += (b.values.len() as u32).saturating_sub(1),
1041            Expr::If(_) => self.count += 1,
1042            _ => {}
1043        }
1044        walk_expr(self, expr);
1045    }
1046}
1047
1048// ---------------------------------------------------------------------------
1049// Scope analysis: unused locals / parameters.
1050// ---------------------------------------------------------------------------
1051
1052const SCOPE_DYNAMIC: &[&str] = &["locals", "vars", "globals", "eval", "exec"];
1053
1054fn analyze_scope(
1055    f: &StmtFunctionDef,
1056    name_tokens: &[(TextSize, &str)],
1057    out: &mut Vec<ScopeFinding>,
1058    li: &LineIndex,
1059) {
1060    // Name-token frequency within the function's byte range (binding site + uses).
1061    let range = f.range();
1062    let mut freq: HashMap<&str, u32> = HashMap::new();
1063    for (off, text) in name_tokens {
1064        if *off >= range.start() && *off < range.end() {
1065            *freq.entry(*text).or_insert(0) += 1;
1066        }
1067    }
1068    if SCOPE_DYNAMIC.iter().any(|d| freq.contains_key(*d)) {
1069        return;
1070    }
1071
1072    // global/nonlocal-declared names are not locals.
1073    let mut gv = GlobalVisitor {
1074        names: HashSet::new(),
1075    };
1076    for s in &f.body {
1077        gv.visit_stmt(s);
1078    }
1079    let declared_global = gv.names;
1080
1081    let decorated = !f.decorator_list.is_empty();
1082    let fname = f.name.as_str();
1083    let is_dunder = fname.starts_with("__") && fname.ends_with("__");
1084    let stub = is_stub_body(&f.body);
1085
1086    if !decorated && !is_dunder && !stub {
1087        let positional: Vec<_> = f
1088            .parameters
1089            .posonlyargs
1090            .iter()
1091            .chain(f.parameters.args.iter())
1092            .collect();
1093        for (idx, p) in positional.iter().enumerate() {
1094            let name = p.parameter.name.as_str();
1095            if idx == 0 && (name == "self" || name == "cls") {
1096                continue;
1097            }
1098            if name.starts_with('_') || declared_global.contains(name) {
1099                continue;
1100            }
1101            if freq.get(name).copied().unwrap_or(0) == 1 {
1102                out.push(ScopeFinding {
1103                    line: line1(li, p.parameter.range().start()),
1104                    name: name.to_string(),
1105                    is_param: true,
1106                });
1107            }
1108        }
1109        for p in &f.parameters.kwonlyargs {
1110            let name = p.parameter.name.as_str();
1111            if name.starts_with('_') || declared_global.contains(name) {
1112                continue;
1113            }
1114            if freq.get(name).copied().unwrap_or(0) == 1 {
1115                out.push(ScopeFinding {
1116                    line: line1(li, p.parameter.range().start()),
1117                    name: name.to_string(),
1118                    is_param: true,
1119                });
1120            }
1121        }
1122    }
1123
1124    // Unused local variables: top-level `name = expr` whose name occurs once.
1125    for stmt in &f.body {
1126        if let Stmt::Assign(a) = stmt {
1127            if let [Expr::Name(target)] = a.targets.as_slice() {
1128                let name = target.id.as_str();
1129                if name == "_" || declared_global.contains(name) {
1130                    continue;
1131                }
1132                if freq.get(name).copied().unwrap_or(0) == 1 {
1133                    out.push(ScopeFinding {
1134                        line: line1(li, a.range().start()),
1135                        name: name.to_string(),
1136                        is_param: false,
1137                    });
1138                }
1139            }
1140        }
1141    }
1142}
1143
1144struct GlobalVisitor {
1145    names: HashSet<String>,
1146}
1147impl<'a> Visitor<'a> for GlobalVisitor {
1148    fn visit_stmt(&mut self, stmt: &'a Stmt) {
1149        match stmt {
1150            Stmt::Global(g) => {
1151                for n in &g.names {
1152                    self.names.insert(n.as_str().to_string());
1153                }
1154            }
1155            Stmt::Nonlocal(g) => {
1156                for n in &g.names {
1157                    self.names.insert(n.as_str().to_string());
1158                }
1159            }
1160            _ => {}
1161        }
1162        walk_stmt(self, stmt);
1163    }
1164}
1165
1166/// Is a function body a stub (only `pass`, `...`, a docstring, or `raise ...`)?
1167fn is_stub_body(body: &[Stmt]) -> bool {
1168    body.iter().all(|s| match s {
1169        Stmt::Pass(_) => true,
1170        Stmt::Raise(_) => true,
1171        Stmt::Expr(e) => matches!(&*e.value, Expr::StringLiteral(_) | Expr::EllipsisLiteral(_)),
1172        _ => false,
1173    })
1174}
1175
1176// ---------------------------------------------------------------------------
1177// Classes / cohesion.
1178// ---------------------------------------------------------------------------
1179
1180fn class_info(c: &StmtClassDef, li: &LineIndex) -> ClassInfo {
1181    let mut methods = Vec::new();
1182    let mut members: Vec<ClassMember> = Vec::new();
1183    for stmt in &c.body {
1184        match stmt {
1185            Stmt::FunctionDef(f) => {
1186                methods.push((f.name.to_string(), self_attrs(f)));
1187                members.push(ClassMember {
1188                    name: f.name.to_string(),
1189                    // The full range includes decorators; point at the `def`.
1190                    line: line1(li, f.name.range().start()),
1191                    end_line: end_line1(li, f.range()),
1192                    is_method: true,
1193                    is_private: is_private(f.name.as_str()),
1194                    decorators: f
1195                        .decorator_list
1196                        .iter()
1197                        .filter_map(|d| decorator_path(&d.expression))
1198                        .collect(),
1199                });
1200            }
1201            Stmt::Assign(a) => {
1202                if let [Expr::Name(t)] = a.targets.as_slice() {
1203                    members.push(class_attr_member(t.id.as_str(), a.range(), li));
1204                }
1205            }
1206            Stmt::AnnAssign(a) => {
1207                if let Expr::Name(t) = &*a.target {
1208                    members.push(class_attr_member(t.id.as_str(), a.range(), li));
1209                }
1210            }
1211            _ => {}
1212        }
1213    }
1214    let bases: Vec<String> = c
1215        .arguments
1216        .as_ref()
1217        .map(|args| args.args.iter().filter_map(expr_path).collect())
1218        .unwrap_or_default();
1219    let is_enum = bases.iter().any(|b| {
1220        let last = b.rsplit('.').next().unwrap_or(b);
1221        matches!(
1222            last,
1223            "Enum" | "IntEnum" | "StrEnum" | "Flag" | "IntFlag" | "ReprEnum" | "EnumMeta"
1224        )
1225    });
1226    ClassInfo {
1227        name: c.name.to_string(),
1228        // The full range includes decorators; point `line` at the `class`.
1229        line: line1(li, c.name.range().start()),
1230        end_line: end_line1(li, c.range()),
1231        is_private: is_private(c.name.as_str()),
1232        decorators: c
1233            .decorator_list
1234            .iter()
1235            .filter_map(|d| decorator_path(&d.expression))
1236            .collect(),
1237        bases,
1238        is_enum,
1239        methods,
1240        members,
1241    }
1242}
1243
1244fn class_attr_member(name: &str, range: TextRange, li: &LineIndex) -> ClassMember {
1245    ClassMember {
1246        name: name.to_string(),
1247        line: line1(li, range.start()),
1248        end_line: end_line1(li, range),
1249        is_method: false,
1250        is_private: is_private(name),
1251        decorators: Vec::new(),
1252    }
1253}
1254
1255// ---------------------------------------------------------------------------
1256// Unreachable code: statements after an unconditional terminator in a block.
1257// ---------------------------------------------------------------------------
1258
1259struct UnreachableVisitor<'li> {
1260    li: &'li LineIndex,
1261    out: Vec<UnreachableCode>,
1262}
1263impl<'li> UnreachableVisitor<'li> {
1264    /// Inspect one suite (block) for a terminator followed by more statements.
1265    fn scan(&mut self, body: &[Stmt]) {
1266        for (i, stmt) in body.iter().enumerate() {
1267            if let Some(term) = terminator_kind(stmt) {
1268                if let Some(next) = body.get(i + 1) {
1269                    // Ignore a lone trailing string (rare) — still report code.
1270                    self.out.push(UnreachableCode {
1271                        line: line1(self.li, next.range().start()),
1272                        after: term,
1273                    });
1274                }
1275                break; // first terminator in the block is enough
1276            }
1277        }
1278    }
1279}
1280impl<'a, 'li> Visitor<'a> for UnreachableVisitor<'li> {
1281    fn visit_stmt(&mut self, stmt: &'a Stmt) {
1282        // Scan every nested suite, then recurse.
1283        match stmt {
1284            Stmt::FunctionDef(f) => self.scan(&f.body),
1285            Stmt::ClassDef(c) => self.scan(&c.body),
1286            Stmt::If(i) => {
1287                self.scan(&i.body);
1288                for c in &i.elif_else_clauses {
1289                    self.scan(&c.body);
1290                }
1291            }
1292            Stmt::For(f) => {
1293                self.scan(&f.body);
1294                self.scan(&f.orelse);
1295            }
1296            Stmt::While(w) => {
1297                self.scan(&w.body);
1298                self.scan(&w.orelse);
1299            }
1300            Stmt::With(w) => self.scan(&w.body),
1301            Stmt::Try(t) => {
1302                self.scan(&t.body);
1303                for h in &t.handlers {
1304                    let ruff_python_ast::ExceptHandler::ExceptHandler(eh) = h;
1305                    self.scan(&eh.body);
1306                }
1307                self.scan(&t.orelse);
1308                self.scan(&t.finalbody);
1309            }
1310            Stmt::Match(mt) => {
1311                for case in &mt.cases {
1312                    self.scan(&case.body);
1313                }
1314            }
1315            _ => {}
1316        }
1317        walk_stmt(self, stmt);
1318    }
1319}
1320
1321/// If `stmt` unconditionally exits its block, return the terminator label.
1322fn terminator_kind(stmt: &Stmt) -> Option<&'static str> {
1323    match stmt {
1324        Stmt::Return(_) => Some("return"),
1325        Stmt::Raise(_) => Some("raise"),
1326        Stmt::Break(_) => Some("break"),
1327        Stmt::Continue(_) => Some("continue"),
1328        Stmt::Expr(e) if is_noreturn_call(&e.value) => Some("exit call"),
1329        _ => None,
1330    }
1331}
1332
1333/// `sys.exit(...)`, `os._exit(...)`, `exit(...)`, `quit(...)` — process-ending.
1334fn is_noreturn_call(e: &Expr) -> bool {
1335    if let Expr::Call(c) = e {
1336        if let Some(p) = expr_path(&c.func) {
1337            // Exact paths only — avoids treating a user method `self.exit()` as
1338            // process-ending.
1339            return matches!(p.as_str(), "sys.exit" | "os._exit" | "exit" | "quit");
1340        }
1341    }
1342    false
1343}
1344
1345// ---------------------------------------------------------------------------
1346// Private-type leaks: a public function/method exposing a `_Private` type.
1347// ---------------------------------------------------------------------------
1348
1349/// A type name is "private by convention" if it starts with a single underscore
1350/// (but is not a dunder like `__init__`).
1351fn is_private_type(name: &str) -> bool {
1352    name.starts_with('_') && !(name.starts_with("__") && name.ends_with("__"))
1353}
1354
1355fn scan_type_leaks(body: &[Stmt], li: &LineIndex, out: &mut Vec<TypeLeak>) {
1356    // `_T = TypeVar(...)` and friends are *intentionally* private type params,
1357    // not API leaks — collect and exclude them.
1358    let mut typevars: HashSet<String> = HashSet::new();
1359    collect_typevars(body, &mut typevars);
1360    for stmt in body {
1361        match stmt {
1362            Stmt::FunctionDef(f) if !is_private(f.name.as_str()) => {
1363                collect_fn_leaks(None, f, li, &typevars, out);
1364            }
1365            Stmt::ClassDef(c) if !is_private(c.name.as_str()) => {
1366                for s in &c.body {
1367                    if let Stmt::FunctionDef(f) = s {
1368                        if !is_private(f.name.as_str()) {
1369                            collect_fn_leaks(Some(c.name.as_str()), f, li, &typevars, out);
1370                        }
1371                    }
1372                }
1373            }
1374            _ => {}
1375        }
1376    }
1377}
1378
1379/// Collect names bound to `TypeVar`/`ParamSpec`/`TypeVarTuple` (anywhere),
1380/// including under `if TYPE_CHECKING:`-style guards and try blocks.
1381fn collect_typevars(body: &[Stmt], out: &mut HashSet<String>) {
1382    for stmt in body {
1383        match stmt {
1384            Stmt::Assign(a) => {
1385                if let (Some(Expr::Name(t)), Expr::Call(c)) = (a.targets.first(), &*a.value) {
1386                    if let Some(p) = expr_path(&c.func) {
1387                        let last = p.rsplit('.').next().unwrap_or(&p);
1388                        if matches!(last, "TypeVar" | "ParamSpec" | "TypeVarTuple") {
1389                            out.insert(t.id.as_str().to_string());
1390                        }
1391                    }
1392                }
1393            }
1394            Stmt::If(i) => {
1395                collect_typevars(&i.body, out);
1396                for clause in &i.elif_else_clauses {
1397                    collect_typevars(&clause.body, out);
1398                }
1399            }
1400            Stmt::Try(t) => {
1401                collect_typevars(&t.body, out);
1402                for h in &t.handlers {
1403                    let ruff_python_ast::ExceptHandler::ExceptHandler(eh) = h;
1404                    collect_typevars(&eh.body, out);
1405                }
1406                collect_typevars(&t.orelse, out);
1407                collect_typevars(&t.finalbody, out);
1408            }
1409            _ => {}
1410        }
1411    }
1412}
1413
1414fn collect_fn_leaks(
1415    class: Option<&str>,
1416    f: &StmtFunctionDef,
1417    li: &LineIndex,
1418    typevars: &HashSet<String>,
1419    out: &mut Vec<TypeLeak>,
1420) {
1421    let qualified = match class {
1422        Some(c) => format!("{c}.{}", f.name),
1423        None => f.name.to_string(),
1424    };
1425    let push_leaks = |ann: &Expr, line: u32, is_return: bool, out: &mut Vec<TypeLeak>| {
1426        let mut idents = Vec::new();
1427        annotation_idents(ann, &mut idents);
1428        for id in idents {
1429            if is_private_type(&id) && !typevars.contains(&id) {
1430                out.push(TypeLeak {
1431                    function: qualified.clone(),
1432                    type_name: id,
1433                    line,
1434                    is_return,
1435                });
1436            }
1437        }
1438    };
1439    for p in f
1440        .parameters
1441        .posonlyargs
1442        .iter()
1443        .chain(f.parameters.args.iter())
1444        .chain(f.parameters.kwonlyargs.iter())
1445    {
1446        if let Some(ann) = &p.parameter.annotation {
1447            push_leaks(ann, line1(li, p.parameter.range().start()), false, out);
1448        }
1449    }
1450    if let Some(r) = &f.returns {
1451        // Point at the `def` line, not the first decorator.
1452        push_leaks(r, line1(li, f.name.range().start()), true, out);
1453    }
1454}
1455
1456/// Collect type-name identifiers referenced in an annotation expression,
1457/// descending through subscripts/unions/strings (`Optional[_Foo]`, `_A | _B`,
1458/// `"_Forward"`, `mod._Priv`).
1459fn annotation_idents(e: &Expr, out: &mut Vec<String>) {
1460    match e {
1461        Expr::Name(n) => out.push(n.id.as_str().to_string()),
1462        Expr::Attribute(a) => {
1463            annotation_idents(&a.value, out);
1464            out.push(a.attr.as_str().to_string());
1465        }
1466        Expr::Subscript(s) => {
1467            annotation_idents(&s.value, out);
1468            annotation_idents(&s.slice, out);
1469        }
1470        Expr::Tuple(t) => t.elts.iter().for_each(|el| annotation_idents(el, out)),
1471        Expr::List(l) => l.elts.iter().for_each(|el| annotation_idents(el, out)),
1472        Expr::BinOp(b) => {
1473            annotation_idents(&b.left, out);
1474            annotation_idents(&b.right, out);
1475        }
1476        Expr::StringLiteral(s) => {
1477            for tok in identifier_tokens(s.value.to_str()) {
1478                out.push(tok);
1479            }
1480        }
1481        _ => {}
1482    }
1483}
1484
1485fn self_attrs(f: &StmtFunctionDef) -> Vec<String> {
1486    let mut v = SelfAttrVisitor {
1487        attrs: std::collections::BTreeSet::new(),
1488    };
1489    for s in &f.body {
1490        v.visit_stmt(s);
1491    }
1492    v.attrs.into_iter().collect()
1493}
1494
1495struct SelfAttrVisitor {
1496    attrs: std::collections::BTreeSet<String>,
1497}
1498impl<'a> Visitor<'a> for SelfAttrVisitor {
1499    fn visit_expr(&mut self, expr: &'a Expr) {
1500        if let Expr::Attribute(a) = expr {
1501            if let Expr::Name(obj) = &*a.value {
1502                if obj.id.as_str() == "self" || obj.id.as_str() == "cls" {
1503                    self.attrs.insert(a.attr.as_str().to_string());
1504                }
1505            }
1506        }
1507        walk_expr(self, expr);
1508    }
1509}
1510
1511// ---------------------------------------------------------------------------
1512// Collect definitions of nested functions/classes (whole tree).
1513// ---------------------------------------------------------------------------
1514
1515struct DefVisitor<'a> {
1516    funcs: Vec<&'a StmtFunctionDef>,
1517    classes: Vec<&'a StmtClassDef>,
1518}
1519impl<'a> Visitor<'a> for DefVisitor<'a> {
1520    fn visit_stmt(&mut self, stmt: &'a Stmt) {
1521        match stmt {
1522            Stmt::FunctionDef(f) => self.funcs.push(f),
1523            Stmt::ClassDef(c) => self.classes.push(c),
1524            _ => {}
1525        }
1526        walk_stmt(self, stmt);
1527    }
1528}
1529
1530// ---------------------------------------------------------------------------
1531// Local uses (identifiers outside import statements + string annotations).
1532// ---------------------------------------------------------------------------
1533
1534struct LocalUseVisitor {
1535    uses: Vec<String>,
1536    /// Attribute names accessed (`obj.attr`) — the "member used" signal.
1537    attrs: Vec<String>,
1538}
1539impl<'a> Visitor<'a> for LocalUseVisitor {
1540    fn visit_stmt(&mut self, stmt: &'a Stmt) {
1541        // Import bindings are not "uses".
1542        if matches!(stmt, Stmt::Import(_) | Stmt::ImportFrom(_)) {
1543            return;
1544        }
1545        // String forward-ref annotations: extract identifier tokens.
1546        if let Stmt::AnnAssign(a) = stmt {
1547            collect_annotation_strings(&a.annotation, &mut self.uses);
1548            // A quoted TypeAlias *value* is type syntax too:
1549            // `_P: TypeAlias = 'partial[Any] | partialmethod[Any]'` uses
1550            // `partial`/`partialmethod` (type checkers — and pydantic at
1551            // runtime — evaluate the string). Found live on pydantic, where
1552            // the import was wrongly certain + auto-fixable.
1553            if is_type_alias_annotation(&a.annotation) {
1554                if let Some(v) = &a.value {
1555                    collect_annotation_strings(v, &mut self.uses);
1556                }
1557            }
1558        }
1559        if let Stmt::FunctionDef(f) = stmt {
1560            if let Some(r) = &f.returns {
1561                collect_annotation_strings(r, &mut self.uses);
1562            }
1563            for p in f
1564                .parameters
1565                .posonlyargs
1566                .iter()
1567                .chain(f.parameters.args.iter())
1568                .chain(f.parameters.kwonlyargs.iter())
1569            {
1570                if let Some(ann) = &p.parameter.annotation {
1571                    collect_annotation_strings(ann, &mut self.uses);
1572                }
1573            }
1574        }
1575        walk_stmt(self, stmt);
1576    }
1577    fn visit_expr(&mut self, expr: &'a Expr) {
1578        match expr {
1579            Expr::Name(n) => self.uses.push(n.id.as_str().to_string()),
1580            Expr::Attribute(a) => {
1581                self.uses.push(a.attr.as_str().to_string());
1582                self.attrs.push(a.attr.as_str().to_string());
1583            }
1584            // `cast("dict[int, Foo]", x)`: the string is a type expression
1585            // referencing `Foo` — removing Foo's import breaks type checking.
1586            // Found live on lmcache, where `fix --apply` introduced four F821s.
1587            Expr::Call(c) => {
1588                let is_cast = expr_path(&c.func)
1589                    .map(|p| p == "cast" || p.ends_with(".cast"))
1590                    .unwrap_or(false);
1591                if is_cast {
1592                    if let Some(first) = c.arguments.args.first() {
1593                        collect_annotation_strings(first, &mut self.uses);
1594                    }
1595                }
1596            }
1597            _ => {}
1598        }
1599        walk_expr(self, expr);
1600    }
1601}
1602
1603/// `TypeAlias` / `typing.TypeAlias` / `typing_extensions.TypeAlias` as an
1604/// AnnAssign annotation — marks the assigned value as type syntax.
1605fn is_type_alias_annotation(e: &Expr) -> bool {
1606    expr_path(e)
1607        .map(|p| p == "TypeAlias" || p.ends_with(".TypeAlias"))
1608        .unwrap_or(false)
1609}
1610
1611/// Pull identifier-like tokens out of any string literal inside an annotation
1612/// expression (`x: "Foo"`, `List["pkg.Bar"]`), plus referenced Names.
1613fn collect_annotation_strings(e: &Expr, out: &mut Vec<String>) {
1614    match e {
1615        Expr::StringLiteral(s) => {
1616            for tok in identifier_tokens(s.value.to_str()) {
1617                out.push(tok);
1618            }
1619        }
1620        Expr::Subscript(s) => {
1621            collect_annotation_strings(&s.value, out);
1622            collect_annotation_strings(&s.slice, out);
1623        }
1624        Expr::Tuple(t) => {
1625            for el in &t.elts {
1626                collect_annotation_strings(el, out);
1627            }
1628        }
1629        Expr::List(l) => {
1630            for el in &l.elts {
1631                collect_annotation_strings(el, out);
1632            }
1633        }
1634        Expr::BinOp(b) => {
1635            collect_annotation_strings(&b.left, out);
1636            collect_annotation_strings(&b.right, out);
1637        }
1638        _ => {}
1639    }
1640}
1641
1642fn identifier_tokens(s: &str) -> Vec<String> {
1643    let mut out = Vec::new();
1644    let mut cur = String::new();
1645    let flush = |cur: &mut String, out: &mut Vec<String>| {
1646        if !cur.is_empty() && !cur.chars().next().unwrap().is_ascii_digit() {
1647            out.push(std::mem::take(cur));
1648        } else {
1649            cur.clear();
1650        }
1651    };
1652    for ch in s.chars() {
1653        if ch.is_ascii_alphanumeric() || ch == '_' {
1654            cur.push(ch);
1655        } else {
1656            flush(&mut cur, &mut out);
1657        }
1658    }
1659    flush(&mut cur, &mut out);
1660    out
1661}
1662
1663// ---------------------------------------------------------------------------
1664// Scope/binding resolution.
1665//
1666// A real (if compact) LEGB resolver: it tracks a stack of *function* scopes,
1667// each with its statically-determined local bindings (Python's rule: a name
1668// assigned anywhere in a function body is local to it, unless declared
1669// `global`). A `Name` load resolves to module/global scope when no enclosing
1670// function scope binds it. `global x` forces module resolution; `nonlocal x`
1671// binds to an enclosing function (treated as local-here so it never bubbles to
1672// module). Class bodies are transparent to nested functions, matching Python.
1673// ---------------------------------------------------------------------------
1674
1675struct FnScope {
1676    locals: HashSet<String>,
1677    globals: HashSet<String>,
1678}
1679
1680struct Resolver {
1681    scopes: Vec<FnScope>,
1682    used: HashSet<String>,
1683}
1684
1685impl Resolver {
1686    fn resolve_load(&mut self, name: &str) {
1687        for s in self.scopes.iter().rev() {
1688            if s.globals.contains(name) {
1689                self.used.insert(name.to_string()); // `global` → module binding
1690                return;
1691            }
1692            if s.locals.contains(name) {
1693                return; // bound by an enclosing function scope
1694            }
1695        }
1696        // Not bound by any function scope → module/global scope.
1697        self.used.insert(name.to_string());
1698    }
1699
1700    fn enter_function(&mut self, f: &StmtFunctionDef) {
1701        let mut bv = BindingVisitor {
1702            locals: HashSet::new(),
1703            globals: HashSet::new(),
1704        };
1705        for p in param_names(&f.parameters) {
1706            bv.locals.insert(p);
1707        }
1708        for stmt in &f.body {
1709            bv.visit_stmt(stmt);
1710        }
1711        // `global` names are not locals.
1712        for g in &bv.globals {
1713            bv.locals.remove(g);
1714        }
1715        self.scopes.push(FnScope {
1716            locals: bv.locals,
1717            globals: bv.globals,
1718        });
1719    }
1720
1721    /// Parameter defaults and annotations (and the return annotation) evaluate
1722    /// in the *enclosing* scope, before the function/lambda scope exists.
1723    fn visit_signature_exprs(&mut self, params: &Parameters) {
1724        for p in params
1725            .posonlyargs
1726            .iter()
1727            .chain(params.args.iter())
1728            .chain(params.kwonlyargs.iter())
1729        {
1730            if let Some(d) = &p.default {
1731                self.visit_expr(d);
1732            }
1733            if let Some(a) = &p.parameter.annotation {
1734                self.visit_expr(a);
1735            }
1736        }
1737        if let Some(v) = &params.vararg {
1738            if let Some(a) = &v.annotation {
1739                self.visit_expr(a);
1740            }
1741        }
1742        if let Some(k) = &params.kwarg {
1743            if let Some(a) = &k.annotation {
1744                self.visit_expr(a);
1745            }
1746        }
1747    }
1748}
1749
1750impl<'a> Visitor<'a> for Resolver {
1751    fn visit_stmt(&mut self, stmt: &'a Stmt) {
1752        match stmt {
1753            Stmt::FunctionDef(f) => {
1754                // Decorators / default values / annotations resolve in the
1755                // current scope (visited before the function scope is pushed).
1756                for d in &f.decorator_list {
1757                    self.visit_expr(&d.expression);
1758                }
1759                self.visit_signature_exprs(&f.parameters);
1760                if let Some(r) = &f.returns {
1761                    self.visit_expr(r);
1762                }
1763                self.enter_function(f);
1764                for stmt in &f.body {
1765                    self.visit_stmt(stmt);
1766                }
1767                self.scopes.pop();
1768            }
1769            Stmt::ClassDef(c) => {
1770                for d in &c.decorator_list {
1771                    self.visit_expr(&d.expression);
1772                }
1773                if let Some(args) = &c.arguments {
1774                    for a in args.args.iter() {
1775                        self.visit_expr(a);
1776                    }
1777                    for kw in args.keywords.iter() {
1778                        self.visit_expr(&kw.value);
1779                    }
1780                }
1781                // Class body is transparent (its bindings are Stores, not loads).
1782                for stmt in &c.body {
1783                    self.visit_stmt(stmt);
1784                }
1785            }
1786            _ => walk_stmt(self, stmt),
1787        }
1788    }
1789
1790    fn visit_expr(&mut self, expr: &'a Expr) {
1791        match expr {
1792            Expr::Name(n) => {
1793                if matches!(n.ctx, ExprContext::Load) {
1794                    self.resolve_load(n.id.as_str());
1795                }
1796            }
1797            Expr::Lambda(l) => {
1798                let mut locals = HashSet::new();
1799                if let Some(params) = &l.parameters {
1800                    // Defaults resolve in the enclosing scope, not the lambda's.
1801                    self.visit_signature_exprs(params);
1802                    for p in param_names(params) {
1803                        locals.insert(p);
1804                    }
1805                }
1806                self.scopes.push(FnScope {
1807                    locals,
1808                    globals: HashSet::new(),
1809                });
1810                self.visit_expr(&l.body);
1811                self.scopes.pop();
1812            }
1813            _ => walk_expr(self, expr),
1814        }
1815    }
1816}
1817
1818/// Collect a function scope's local bindings (Store names, nested def/class
1819/// names, `global`/`nonlocal` declarations) without descending into nested
1820/// function/class/lambda scopes.
1821struct BindingVisitor {
1822    locals: HashSet<String>,
1823    globals: HashSet<String>,
1824}
1825impl<'a> Visitor<'a> for BindingVisitor {
1826    fn visit_stmt(&mut self, stmt: &'a Stmt) {
1827        match stmt {
1828            Stmt::FunctionDef(f) => {
1829                self.locals.insert(f.name.to_string());
1830            }
1831            Stmt::ClassDef(c) => {
1832                self.locals.insert(c.name.to_string());
1833            }
1834            Stmt::Global(g) => {
1835                for n in &g.names {
1836                    self.globals.insert(n.to_string());
1837                }
1838            }
1839            Stmt::Nonlocal(g) => {
1840                for n in &g.names {
1841                    // nonlocal binds to an enclosing function — never module.
1842                    self.locals.insert(n.to_string());
1843                }
1844            }
1845            _ => walk_stmt(self, stmt),
1846        }
1847    }
1848    fn visit_expr(&mut self, expr: &'a Expr) {
1849        match expr {
1850            Expr::Name(n) if matches!(n.ctx, ExprContext::Store) => {
1851                self.locals.insert(n.id.as_str().to_string());
1852            }
1853            // Don't descend into nested scopes: their bindings aren't ours.
1854            // Python 3 comprehensions have their own scope, so their targets
1855            // are not locals here either. (Their iterables/conditions do
1856            // evaluate in this scope, but they only load, never bind.)
1857            Expr::Lambda(_)
1858            | Expr::ListComp(_)
1859            | Expr::SetComp(_)
1860            | Expr::DictComp(_)
1861            | Expr::Generator(_) => {}
1862            _ => walk_expr(self, expr),
1863        }
1864    }
1865}
1866
1867fn param_names(params: &Parameters) -> Vec<String> {
1868    let mut out = Vec::new();
1869    for p in params
1870        .posonlyargs
1871        .iter()
1872        .chain(params.args.iter())
1873        .chain(params.kwonlyargs.iter())
1874    {
1875        out.push(p.parameter.name.as_str().to_string());
1876    }
1877    if let Some(v) = &params.vararg {
1878        out.push(v.name.as_str().to_string());
1879    }
1880    if let Some(k) = &params.kwarg {
1881        out.push(k.name.as_str().to_string());
1882    }
1883    out
1884}
1885
1886// ---------------------------------------------------------------------------
1887// Calls, dynamic sinks, security (whole tree).
1888// ---------------------------------------------------------------------------
1889
1890struct MainVisitor<'a, 'm> {
1891    li: &'a LineIndex,
1892    m: &'m mut ParsedModule,
1893}
1894impl<'a, 'm> Visitor<'a> for MainVisitor<'a, 'm> {
1895    fn visit_stmt(&mut self, stmt: &'a Stmt) {
1896        match stmt {
1897            Stmt::Assign(a) => {
1898                if let [Expr::Name(t)] = a.targets.as_slice() {
1899                    security_secret(t.id.as_str(), &a.value, a.range(), self.li, self.m);
1900                }
1901            }
1902            Stmt::AnnAssign(a) => {
1903                if let (Expr::Name(t), Some(v)) = (&*a.target, &a.value) {
1904                    security_secret(t.id.as_str(), v, a.range(), self.li, self.m);
1905                }
1906            }
1907            Stmt::Try(t) => {
1908                // try/except/pass (B110): a broad handler that silently swallows
1909                // errors. Only flag bare `except:` or `except Exception/BaseException`.
1910                for h in &t.handlers {
1911                    let ruff_python_ast::ExceptHandler::ExceptHandler(eh) = h;
1912                    let broad = match &eh.type_ {
1913                        None => true,
1914                        Some(ty) => expr_path(ty)
1915                            .map(|p| {
1916                                matches!(
1917                                    p.rsplit('.').next().unwrap_or(&p),
1918                                    "Exception" | "BaseException"
1919                                )
1920                            })
1921                            .unwrap_or(false),
1922                    };
1923                    if broad && eh.body.iter().all(|s| matches!(s, Stmt::Pass(_))) {
1924                        self.m.security_hits.push(SecurityHit {
1925                            rule: "try-except-pass",
1926                            line: line1(self.li, eh.range().start()),
1927                            detail:
1928                                "broad `except: pass` silently swallows errors; log or handle them"
1929                                    .into(),
1930                        });
1931                    }
1932                }
1933            }
1934            _ => {}
1935        }
1936        walk_stmt(self, stmt);
1937    }
1938    fn visit_expr(&mut self, expr: &'a Expr) {
1939        if let Expr::Call(c) = expr {
1940            let callee = expr_path(&c.func).unwrap_or_default();
1941            if !callee.is_empty() {
1942                if DYNAMIC_SINKS.contains(&callee.as_str()) || callee.starts_with("importlib") {
1943                    self.m.has_dynamic_sink = true;
1944                }
1945                self.m.calls.push(CallSite {
1946                    callee: callee.clone(),
1947                    line: line1(self.li, c.func.range().start()),
1948                });
1949            }
1950            security_call(c, &callee, line1(self.li, c.range().start()), self.m);
1951        }
1952        walk_expr(self, expr);
1953    }
1954}
1955
1956const SECRET_NAMES: &[&str] = &[
1957    "password",
1958    "passwd",
1959    "secret",
1960    "token",
1961    "api_key",
1962    "apikey",
1963    "access_key",
1964    "secret_key",
1965    "private_key",
1966    "auth_token",
1967];
1968
1969fn security_secret(
1970    name: &str,
1971    value: &Expr,
1972    range: TextRange,
1973    li: &LineIndex,
1974    m: &mut ParsedModule,
1975) {
1976    let lname = name.to_ascii_lowercase();
1977    if !SECRET_NAMES.iter().any(|s| lname.contains(s)) {
1978        return;
1979    }
1980    if let Expr::StringLiteral(s) = value {
1981        let val = s.value.to_str();
1982        if val.len() >= 4 && !val.contains("${") && !val.eq_ignore_ascii_case("changeme") {
1983            m.security_hits.push(SecurityHit {
1984                rule: "hardcoded-secret",
1985                line: line1(li, range.start()),
1986                detail: format!("`{name}` assigned a hardcoded string literal"),
1987            });
1988        }
1989    }
1990}
1991
1992const WEAK_CIPHERS: &[&str] = &[
1993    "DES",
1994    "DES3",
1995    "TripleDES",
1996    "ARC2",
1997    "RC2",
1998    "ARC4",
1999    "RC4",
2000    "Blowfish",
2001    "IDEA",
2002    "CAST",
2003    "XOR",
2004];
2005
2006fn kwarg_bool(c: &ruff_python_ast::ExprCall, name: &str, want: bool) -> bool {
2007    c.arguments
2008        .find_keyword(name)
2009        .map(|kw| matches!(&kw.value, Expr::BooleanLiteral(b) if b.value == want))
2010        .unwrap_or(false)
2011}
2012
2013fn has_kwarg(c: &ruff_python_ast::ExprCall, name: &str) -> bool {
2014    c.arguments.find_keyword(name).is_some()
2015}
2016
2017fn first_positional_is_string(c: &ruff_python_ast::ExprCall) -> bool {
2018    matches!(c.arguments.args.first(), Some(Expr::StringLiteral(_)))
2019}
2020
2021fn is_dynamic_string(arg: &Expr) -> bool {
2022    match arg {
2023        Expr::FString(_) => true,
2024        Expr::BinOp(_) => true,
2025        Expr::Call(c) => expr_path(&c.func)
2026            .map(|p| p.ends_with(".format"))
2027            .unwrap_or(false),
2028        _ => false,
2029    }
2030}
2031
2032/// Does any argument reference `.MODE_ECB`?
2033fn args_reference_ecb(c: &ruff_python_ast::ExprCall) -> bool {
2034    let refs = |e: &Expr| {
2035        expr_path(e)
2036            .map(|p| p.contains("MODE_ECB"))
2037            .unwrap_or(false)
2038    };
2039    c.arguments.args.iter().any(refs) || c.arguments.keywords.iter().any(|k| refs(&k.value))
2040}
2041
2042fn security_call(c: &ruff_python_ast::ExprCall, f: &str, line: u32, m: &mut ParsedModule) {
2043    let last = f.rsplit('.').next().unwrap_or(f);
2044    let mut hit = |rule: &'static str, detail: String| {
2045        m.security_hits.push(SecurityHit { rule, line, detail });
2046    };
2047
2048    // Only the *builtins* eval/exec/compile — bare names, or explicitly via
2049    // `builtins.`. Matching any trailing `.exec`/`.eval` segment falsely flagged
2050    // ORM/driver methods like SQLModel's `session.exec(select(...))` (CWE-95 FP).
2051    if matches!(
2052        f,
2053        "eval" | "exec" | "compile" | "builtins.eval" | "builtins.exec" | "builtins.compile"
2054    ) && !first_positional_is_string(c)
2055    {
2056        hit(
2057            "dangerous-eval",
2058            format!("`{f}` on a non-literal expression executes dynamic code"),
2059        );
2060    }
2061    if f == "yaml.load" && !has_kwarg(c, "Loader") {
2062        hit(
2063            "unsafe-yaml-load",
2064            "yaml.load without an explicit Loader= is unsafe; use yaml.safe_load".into(),
2065        );
2066    }
2067    if matches!(
2068        f,
2069        "pickle.load"
2070            | "pickle.loads"
2071            | "cPickle.load"
2072            | "cPickle.loads"
2073            | "marshal.load"
2074            | "marshal.loads"
2075            | "dill.load"
2076            | "dill.loads"
2077            | "shelve.open"
2078            | "jsonpickle.decode"
2079    ) {
2080        hit(
2081            "unsafe-deserialization",
2082            format!("`{f}` can execute arbitrary code on untrusted input"),
2083        );
2084    }
2085    if matches!(
2086        last,
2087        "call" | "run" | "Popen" | "check_output" | "check_call"
2088    ) && kwarg_bool(c, "shell", true)
2089    {
2090        hit(
2091            "subprocess-shell-true",
2092            "subprocess call with shell=True risks shell injection".into(),
2093        );
2094    }
2095    if matches!(f, "os.system" | "os.popen" | "os.popen2" | "os.popen3") {
2096        hit(
2097            "subprocess-shell-true",
2098            format!("`{f}` runs a command through the shell; prefer subprocess with an argv list"),
2099        );
2100    }
2101    if kwarg_bool(c, "verify", false) {
2102        hit(
2103            "tls-verify-disabled",
2104            "TLS certificate verification disabled (verify=False)".into(),
2105        );
2106    }
2107    if f == "ssl._create_unverified_context" {
2108        hit(
2109            "tls-verify-disabled",
2110            "ssl._create_unverified_context disables certificate validation".into(),
2111        );
2112    }
2113    if matches!(f, "hashlib.md5" | "hashlib.sha1" | "md5.new") {
2114        hit(
2115            "weak-hash",
2116            format!("`{f}` is a weak hash; use sha256+ (or pass usedforsecurity=False)"),
2117        );
2118    }
2119    if WEAK_CIPHERS.contains(&last) {
2120        hit(
2121            "weak-cipher",
2122            format!("`{f}` is a broken/weak cipher; use AES-GCM or ChaCha20-Poly1305"),
2123        );
2124    }
2125    if args_reference_ecb(c) {
2126        hit(
2127            "weak-cipher",
2128            "ECB mode leaks plaintext structure; use an authenticated mode (GCM)".into(),
2129        );
2130    }
2131    if matches!(
2132        f,
2133        "random.random"
2134            | "random.randint"
2135            | "random.randrange"
2136            | "random.choice"
2137            | "random.getrandbits"
2138    ) {
2139        hit(
2140            "insecure-random",
2141            format!("`{f}` is not cryptographically secure; use the `secrets` module for tokens"),
2142        );
2143    }
2144    if matches!(
2145        last,
2146        "execute" | "executemany" | "executescript" | "raw" | "extra"
2147    ) {
2148        if let Some(arg) = c.arguments.args.first() {
2149            if is_dynamic_string(arg) {
2150                hit(
2151                    "sql-injection",
2152                    format!(
2153                        "`{last}(...)` builds SQL from a dynamic string; use parameterized queries"
2154                    ),
2155                );
2156            }
2157        }
2158    }
2159    if matches!(
2160        f,
2161        "requests.get"
2162            | "requests.post"
2163            | "requests.put"
2164            | "requests.delete"
2165            | "requests.patch"
2166            | "requests.head"
2167            | "requests.request"
2168    ) && !has_kwarg(c, "timeout")
2169    {
2170        hit(
2171            "request-without-timeout",
2172            format!("`{f}` without a timeout= can block indefinitely"),
2173        );
2174    }
2175    // Flask/Bottle debug server (B201): `app.run(debug=True)` ships the
2176    // interactive debugger (RCE) in production.
2177    if last == "run" && kwarg_bool(c, "debug", true) {
2178        hit(
2179            "flask-debug-true",
2180            "running a web app with debug=True exposes the interactive debugger".into(),
2181        );
2182    }
2183    // Jinja2 without autoescaping (B701): `Environment(autoescape=False)` (or the
2184    // implicit default) risks XSS.
2185    if last == "Environment" && kwarg_bool(c, "autoescape", false) {
2186        hit(
2187            "jinja2-autoescape-false",
2188            "Jinja2 Environment with autoescape=False risks XSS; enable autoescaping".into(),
2189        );
2190    }
2191}
2192
2193fn security_imports(m: &mut ParsedModule) {
2194    let mut hits: Vec<SecurityHit> = Vec::new();
2195    for imp in m.imports.iter().chain(m.nested_imports.iter()) {
2196        let from_crypto = imp.module.contains("Crypto") || imp.module.contains("cryptography");
2197        if !from_crypto {
2198            continue;
2199        }
2200        for name in &imp.names {
2201            if WEAK_CIPHERS.contains(&name.as_str()) {
2202                hits.push(SecurityHit {
2203                    rule: "weak-cipher",
2204                    line: imp.line,
2205                    detail: format!(
2206                        "`{name}` (imported from `{}`) is a broken/weak cipher; use AES-GCM or ChaCha20-Poly1305",
2207                        imp.module
2208                    ),
2209                });
2210            }
2211        }
2212        if imp.names.is_empty() {
2213            if let Some(seg) = imp.module.rsplit('.').next() {
2214                if WEAK_CIPHERS.contains(&seg) {
2215                    hits.push(SecurityHit {
2216                        rule: "weak-cipher",
2217                        line: imp.line,
2218                        detail: format!(
2219                            "`{}` is a broken/weak cipher; use AES-GCM or ChaCha20-Poly1305",
2220                            imp.module
2221                        ),
2222                    });
2223                }
2224            }
2225        }
2226    }
2227    m.security_hits.extend(hits);
2228}
2229
2230/// Parse a `# mollify: ignore[rule1,rule2]` comment into suppressed rule ids.
2231/// Trailing text after the closing bracket (e.g. `-- reason`) is allowed.
2232/// Map a flake8 `# noqa` comment to the mollify rules it suppresses. These are
2233/// author-deliberate exceptions that predate mollify, so honoring them kills a
2234/// whole class of false positives (`from hello import app  # noqa: F401`).
2235/// Scope is intentionally narrow — only the unused-binding rules that flake8's
2236/// F401/F841 correspond to; a blanket `# noqa` suppresses both. Other codes are
2237/// other tools' semantics and are not interpreted.
2238fn parse_noqa_comment(text: &str) -> Option<Vec<String>> {
2239    let t = text.trim_start_matches('#').trim();
2240    if t.len() < 4 || !t.is_char_boundary(4) || !t[..4].eq_ignore_ascii_case("noqa") {
2241        return None;
2242    }
2243    let rest = t[4..].trim_start();
2244    if rest.is_empty() || rest.starts_with('#') {
2245        return Some(vec!["unused-import".into(), "unused-variable".into()]);
2246    }
2247    let codes = rest.strip_prefix(':')?;
2248    let mut rules = Vec::new();
2249    for code in codes.split([',', ' ', '#']).map(str::trim) {
2250        match code.to_ascii_uppercase().as_str() {
2251            "F401" => rules.push("unused-import".to_string()),
2252            "F841" => rules.push("unused-variable".to_string()),
2253            _ => {}
2254        }
2255    }
2256    if rules.is_empty() {
2257        None
2258    } else {
2259        Some(rules)
2260    }
2261}
2262
2263fn parse_ignore_comment(text: &str) -> Option<Vec<String>> {
2264    let t = text.trim_start_matches('#').trim();
2265    let rest = t.strip_prefix("mollify:")?.trim();
2266    let rest = rest.strip_prefix("ignore")?.trim();
2267    if let Some(inner) = rest
2268        .strip_prefix('[')
2269        .and_then(|r| r.find(']').map(|i| &r[..i]))
2270    {
2271        let rules: Vec<String> = inner
2272            .split(',')
2273            .map(|s| s.trim().to_string())
2274            .filter(|s| !s.is_empty())
2275            .collect();
2276        if rules.is_empty() {
2277            Some(vec!["*".into()])
2278        } else {
2279            Some(rules)
2280        }
2281    } else if rest.is_empty() {
2282        Some(vec!["*".into()])
2283    } else {
2284        None
2285    }
2286}
2287
2288#[cfg(test)]
2289mod tests {
2290    use super::*;
2291
2292    fn parse(src: &str) -> ParsedModule {
2293        let mut p = PyParser::new().unwrap();
2294        p.parse(Utf8Path::new("m.py"), src).unwrap()
2295    }
2296
2297    #[test]
2298    fn extracts_functions_and_classes() {
2299        let m = parse("def foo():\n    pass\n\nclass Bar:\n    pass\n");
2300        let names: Vec<_> = m.definitions.iter().map(|d| d.name.as_str()).collect();
2301        assert!(names.contains(&"foo"));
2302        assert!(names.contains(&"Bar"));
2303    }
2304
2305    #[test]
2306    fn private_convention_detected() {
2307        let m = parse("def _helper():\n    pass\n");
2308        assert!(m.definitions[0].private_by_convention);
2309    }
2310
2311    #[test]
2312    fn detects_expanded_security_rules() {
2313        let m = parse(
2314            "app.run(debug=True)\nenv = Environment(autoescape=False)\ntry:\n    risky()\nexcept Exception:\n    pass\n",
2315        );
2316        let rules: Vec<_> = m.security_hits.iter().map(|h| h.rule).collect();
2317        assert!(rules.contains(&"flask-debug-true"), "got {rules:?}");
2318        assert!(rules.contains(&"jinja2-autoescape-false"), "got {rules:?}");
2319        assert!(rules.contains(&"try-except-pass"), "got {rules:?}");
2320        // A narrow `except ValueError: pass` must NOT be flagged.
2321        let narrow = parse("try:\n    x()\nexcept ValueError:\n    pass\n");
2322        assert!(!narrow
2323            .security_hits
2324            .iter()
2325            .any(|h| h.rule == "try-except-pass"));
2326    }
2327
2328    #[test]
2329    fn extracts_imports() {
2330        let m = parse("import os\nfrom a.b import c, d\nfrom . import e\nfrom x import *\n");
2331        assert!(m.imports.iter().any(|i| i.module == "os"));
2332        let frm = m.imports.iter().find(|i| i.module == "a.b").unwrap();
2333        assert_eq!(frm.names, vec!["c", "d"]);
2334        assert!(m.imports.iter().any(|i| i.relative_dots == 1));
2335        assert!(m.imports.iter().any(|i| i.is_star));
2336    }
2337
2338    #[test]
2339    fn extracts_dunder_all() {
2340        let m = parse("__all__ = ['foo', 'bar']\n");
2341        assert_eq!(m.dunder_all, Some(vec!["foo".into(), "bar".into()]));
2342    }
2343
2344    #[test]
2345    fn detects_security_candidates() {
2346        let m = parse("import subprocess\npassword = \"hunter2xyz\"\nsubprocess.run(cmd, shell=True)\neval(user_input)\n");
2347        let rules: Vec<_> = m.security_hits.iter().map(|h| h.rule).collect();
2348        assert!(rules.contains(&"hardcoded-secret"), "got {rules:?}");
2349        assert!(rules.contains(&"subprocess-shell-true"), "got {rules:?}");
2350        assert!(rules.contains(&"dangerous-eval"), "got {rules:?}");
2351        let ok = parse("eval(\"1+1\")\n");
2352        assert!(!ok.security_hits.iter().any(|h| h.rule == "dangerous-eval"));
2353    }
2354
2355    #[test]
2356    fn dangerous_eval_only_matches_builtins_not_methods() {
2357        // Methods named exec/eval on ORMs/drivers (SQLModel session.exec, etc.)
2358        // must NOT be flagged — that was the v0.1.2 CWE-95 false positive.
2359        for src in [
2360            "session.exec(select(Item))\n",
2361            "conn.exec(query)\n",
2362            "obj.eval(expr)\n",
2363            "db.compile(stmt)\n",
2364        ] {
2365            let m = parse(src);
2366            assert!(
2367                !m.security_hits.iter().any(|h| h.rule == "dangerous-eval"),
2368                "method call wrongly flagged: {src}"
2369            );
2370        }
2371        // Bare builtins on a non-literal are still flagged.
2372        for src in [
2373            "exec(code)\n",
2374            "eval(user_input)\n",
2375            "compile(src, '<s>', 'exec')\n",
2376        ] {
2377            let m = parse(src);
2378            assert!(
2379                m.security_hits.iter().any(|h| h.rule == "dangerous-eval"),
2380                "builtin not flagged: {src}"
2381            );
2382        }
2383    }
2384
2385    #[test]
2386    fn detects_weak_cipher_imports() {
2387        let m = parse(
2388            "from Crypto.Cipher import DES as pycrypto_des\n\
2389             from Cryptodome.Cipher import ARC4 as ax\n\
2390             cipher = pycrypto_des.new(key, pycrypto_des.MODE_CTR)\n\
2391             c2 = ax.new(key)\n",
2392        );
2393        let cipher_hits: Vec<_> = m
2394            .security_hits
2395            .iter()
2396            .filter(|h| h.rule == "weak-cipher")
2397            .collect();
2398        assert_eq!(
2399            cipher_hits.len(),
2400            2,
2401            "expected DES + ARC4 imports flagged, got {:?}",
2402            m.security_hits
2403        );
2404        let lines: Vec<u32> = cipher_hits.iter().map(|h| h.line).collect();
2405        assert!(lines.contains(&1) && lines.contains(&2), "lines {lines:?}");
2406    }
2407
2408    #[test]
2409    fn detects_weak_cipher_direct_constructor_and_ecb() {
2410        let m = parse(
2411            "from cryptography.hazmat.primitives.ciphers import algorithms, modes, Cipher\n\
2412             c = Cipher(algorithms.ARC4(key), mode=None)\n",
2413        );
2414        assert!(
2415            m.security_hits.iter().any(|h| h.rule == "weak-cipher"),
2416            "expected ARC4 constructor flagged, got {:?}",
2417            m.security_hits
2418        );
2419        let ecb = parse("from Crypto.Cipher import AES\nc = AES.new(key, AES.MODE_ECB)\n");
2420        assert!(
2421            ecb.security_hits.iter().any(|h| h.rule == "weak-cipher"),
2422            "expected ECB mode flagged, got {:?}",
2423            ecb.security_hits
2424        );
2425    }
2426
2427    #[test]
2428    fn strong_cipher_and_modes_not_flagged() {
2429        let m = parse(
2430            "from cryptography.hazmat.primitives.ciphers import algorithms, modes, Cipher\n\
2431             c = Cipher(algorithms.AES(key), modes.GCM(iv))\n",
2432        );
2433        assert!(
2434            !m.security_hits.iter().any(|h| h.rule == "weak-cipher"),
2435            "AES-GCM should not be flagged, got {:?}",
2436            m.security_hits
2437        );
2438        let unrelated = parse("from myapp.utils import DES\nDES.do_thing()\n");
2439        assert!(
2440            !unrelated
2441                .security_hits
2442                .iter()
2443                .any(|h| h.rule == "weak-cipher"),
2444            "non-crypto `DES` import should not be flagged, got {:?}",
2445            unrelated.security_hits
2446        );
2447    }
2448
2449    #[test]
2450    fn counts_type_annotations() {
2451        let m = parse("def f(a: int, b) -> int:\n    return a\n\nclass C:\n    def m(self, x: int):\n        return x\n");
2452        let f = m.functions.iter().find(|f| f.name == "f").unwrap();
2453        assert_eq!(f.params_total, 2);
2454        assert_eq!(f.params_annotated, 1);
2455        assert!(f.return_annotated);
2456        let mm = m.functions.iter().find(|f| f.name == "m").unwrap();
2457        assert_eq!(mm.params_total, 1, "self should be excluded");
2458        assert_eq!(mm.params_annotated, 1);
2459        assert!(!mm.return_annotated);
2460    }
2461
2462    #[test]
2463    fn computes_complexity() {
2464        let m = parse("def f(x):\n    if x:\n        for i in range(x):\n            if i and x:\n                return i\n    return 0\n");
2465        let f = m.functions.iter().find(|f| f.name == "f").unwrap();
2466        assert!(f.cyclomatic >= 4, "cyclo {:?}", f.cyclomatic);
2467        assert!(f.cognitive >= 3, "cog {:?}", f.cognitive);
2468    }
2469
2470    #[test]
2471    fn captures_decorators() {
2472        let m = parse("import app\n@app.route('/x')\ndef view():\n    return 1\n");
2473        let d = m.definitions.iter().find(|d| d.name == "view").unwrap();
2474        assert!(
2475            d.decorators.iter().any(|x| x == "app.route"),
2476            "got {:?}",
2477            d.decorators
2478        );
2479    }
2480
2481    #[test]
2482    fn detects_dynamic_sink() {
2483        let m = parse("x = getattr(obj, 'attr')\n");
2484        assert!(m.has_dynamic_sink);
2485        let m2 = parse("y = 1 + 2\n");
2486        assert!(!m2.has_dynamic_sink);
2487    }
2488
2489    #[test]
2490    fn conditional_import_seen() {
2491        let m = parse("try:\n    import fast\nexcept ImportError:\n    import slow as fast\n");
2492        assert!(m.imports.iter().any(|i| i.module == "fast"));
2493    }
2494
2495    #[test]
2496    fn scope_resolution_excludes_shadows_and_attributes() {
2497        // `helper` is defined at module scope but never *loaded* there: the only
2498        // references are a function-local binding (a shadow) and an attribute
2499        // access (`obj.helper`). Token counting would call it "used"; scope
2500        // resolution correctly does not.
2501        let m = parse(
2502            "def helper():\n    pass\n\ndef f():\n    helper = 1\n    return helper\n\nobj.helper()\n",
2503        );
2504        assert!(
2505            !m.module_used.iter().any(|s| s == "helper"),
2506            "module_used should exclude shadowed/attribute `helper`: {:?}",
2507            m.module_used
2508        );
2509        // A genuine free load that resolves to module scope IS captured.
2510        let m2 = parse("def g():\n    pass\n\ng()\n");
2511        assert!(
2512            m2.module_used.iter().any(|s| s == "g"),
2513            "{:?}",
2514            m2.module_used
2515        );
2516        // `global` forces module resolution: the RHS load of `counter` binds to
2517        // the module-level name even though it is assigned inside the function.
2518        let m3 =
2519            parse("counter = 0\n\ndef bump():\n    global counter\n    counter = counter + 1\n");
2520        assert!(
2521            m3.module_used.iter().any(|s| s == "counter"),
2522            "{:?}",
2523            m3.module_used
2524        );
2525        // Without `global`, the same assignment makes `counter` a local shadow.
2526        let m4 = parse("counter = 0\n\ndef bump():\n    counter = counter + 1\n");
2527        assert!(
2528            !m4.module_used.iter().any(|s| s == "counter"),
2529            "{:?}",
2530            m4.module_used
2531        );
2532    }
2533
2534    #[test]
2535    fn scope_resolution_sees_defaults_and_annotations() {
2536        // Defaults, parameter annotations, and return annotations evaluate in
2537        // the enclosing (module) scope — they are genuine uses.
2538        let m = parse("DEFAULT = 5\nMyType = int\ndef f(x=DEFAULT) -> MyType: ...\n");
2539        assert!(
2540            m.module_used.iter().any(|s| s == "DEFAULT"),
2541            "{:?}",
2542            m.module_used
2543        );
2544        assert!(
2545            m.module_used.iter().any(|s| s == "MyType"),
2546            "{:?}",
2547            m.module_used
2548        );
2549        let m2 = parse("MyType = int\ndef g(x: MyType): ...\n");
2550        assert!(
2551            m2.module_used.iter().any(|s| s == "MyType"),
2552            "{:?}",
2553            m2.module_used
2554        );
2555        // Lambda parameter defaults too.
2556        let m3 = parse("DEFAULT = 5\ng = lambda x=DEFAULT: x\n");
2557        assert!(
2558            m3.module_used.iter().any(|s| s == "DEFAULT"),
2559            "{:?}",
2560            m3.module_used
2561        );
2562    }
2563
2564    #[test]
2565    fn imports_inside_module_level_suites_seen() {
2566        let m = parse(
2567            "from contextlib import suppress\n\
2568             with suppress(ImportError):\n    import ujson\n\
2569             for _i in range(1):\n    import for_mod\n\
2570             while cond():\n    import while_mod\n\
2571             match val:\n    case 1:\n        import match_mod\n",
2572        );
2573        for want in ["ujson", "for_mod", "while_mod", "match_mod"] {
2574            assert!(
2575                m.imports.iter().any(|i| i.module == want),
2576                "missing {want}: {:?}",
2577                m.imports
2578            );
2579        }
2580    }
2581
2582    #[test]
2583    fn type_checking_marks_body_not_else() {
2584        let m = parse(
2585            "from typing import TYPE_CHECKING\nif TYPE_CHECKING:\n    import a\nelse:\n    import b\n",
2586        );
2587        let a = m.imports.iter().find(|i| i.module == "a").unwrap();
2588        let b = m.imports.iter().find(|i| i.module == "b").unwrap();
2589        assert!(a.type_checking_only);
2590        assert!(!b.type_checking_only, "else branch is the runtime branch");
2591        // `if not TYPE_CHECKING:` inverts the branches.
2592        let m2 = parse(
2593            "from typing import TYPE_CHECKING\nif not TYPE_CHECKING:\n    import rt\nelse:\n    import tc\n",
2594        );
2595        let rt = m2.imports.iter().find(|i| i.module == "rt").unwrap();
2596        let tc = m2.imports.iter().find(|i| i.module == "tc").unwrap();
2597        assert!(!rt.type_checking_only);
2598        assert!(tc.type_checking_only);
2599    }
2600
2601    #[test]
2602    fn type_checking_guard_is_exact() {
2603        let fp = parse("if MY_TYPE_CHECKING_OVERRIDE:\n    from x import y\n");
2604        assert!(
2605            !fp.imports
2606                .iter()
2607                .find(|i| i.module == "x")
2608                .unwrap()
2609                .type_checking_only,
2610            "substring match must not treat this as a guard"
2611        );
2612        let ok = parse("import typing\nif typing.TYPE_CHECKING:\n    from x import y\n");
2613        assert!(
2614            ok.imports
2615                .iter()
2616                .find(|i| i.module == "x")
2617                .unwrap()
2618                .type_checking_only
2619        );
2620    }
2621
2622    #[test]
2623    fn comprehension_targets_are_not_function_locals() {
2624        // Python 3 comprehensions have their own scope: `item` here does not
2625        // shadow the module-level binding for the trailing `return item`.
2626        let m =
2627            parse("item = 1\ndef f(items):\n    xs = [item for item in items]\n    return item\n");
2628        assert!(
2629            m.module_used.iter().any(|s| s == "item"),
2630            "{:?}",
2631            m.module_used
2632        );
2633    }
2634
2635    #[test]
2636    fn dunder_all_mutations() {
2637        let m = parse("__all__ = ['a']\n__all__ += ['b']\n");
2638        assert_eq!(m.dunder_all, Some(vec!["a".into(), "b".into()]));
2639        let m2 = parse("__all__ = ['a']\n__all__.extend(['b', 'c'])\n__all__.append('d')\n");
2640        assert_eq!(
2641            m2.dunder_all,
2642            Some(vec!["a".into(), "b".into(), "c".into(), "d".into()])
2643        );
2644        // Non-literal mutations make the list unknowable — None, not a wrong
2645        // partial list.
2646        let m3 = parse("__all__ = ['a']\n__all__ += make()\n");
2647        assert_eq!(m3.dunder_all, None);
2648        let m4 = parse("__all__ = ['a']\n__all__.extend(names)\n");
2649        assert_eq!(m4.dunder_all, None);
2650        let m5 = parse("__all__ = ['a']\n__all__.append(name)\n");
2651        assert_eq!(m5.dunder_all, None);
2652    }
2653
2654    #[test]
2655    fn decorated_def_line_points_at_def() {
2656        let m = parse("import app\n\n@app.route('/x')\ndef view() -> _Priv:\n    return 1\n");
2657        let d = m.definitions.iter().find(|d| d.name == "view").unwrap();
2658        assert_eq!(d.line, 4, "decorator on line 3, def on line 4");
2659        assert_eq!(d.end_line, 5, "end_line keeps the full range");
2660        let f = m.functions.iter().find(|f| f.name == "view").unwrap();
2661        assert_eq!(f.line, 4);
2662        let leak = m
2663            .type_leaks
2664            .iter()
2665            .find(|l| l.type_name == "_Priv")
2666            .unwrap();
2667        assert_eq!(leak.line, 4);
2668        let m2 = parse("@decorate\nclass C:\n    @property\n    def p(self):\n        return 1\n");
2669        let c = m2.classes.iter().find(|c| c.name == "C").unwrap();
2670        assert_eq!(c.line, 2);
2671        let p = c.members.iter().find(|mb| mb.name == "p").unwrap();
2672        assert_eq!(p.line, 4);
2673        let cd = m2.definitions.iter().find(|d| d.name == "C").unwrap();
2674        assert_eq!(cd.line, 2);
2675    }
2676
2677    #[test]
2678    fn typevar_under_guard_not_a_leak() {
2679        let m = parse(
2680            "from typing import TYPE_CHECKING, TypeVar\nif TYPE_CHECKING:\n    _T = TypeVar('_T')\ndef f(x: _T) -> _T: ...\n",
2681        );
2682        assert!(m.type_leaks.is_empty(), "{:?}", m.type_leaks);
2683        let m2 = parse(
2684            "try:\n    _P = ParamSpec('_P')\nexcept ImportError:\n    pass\ndef g(x: _P): ...\n",
2685        );
2686        assert!(m2.type_leaks.is_empty(), "{:?}", m2.type_leaks);
2687    }
2688
2689    #[test]
2690    fn comment_parsers_fuzz_no_panic() {
2691        // Deterministic xorshift64 fuzz over the hand-written comment parsers
2692        // (multi-byte chars land at arbitrary offsets — slicing must never
2693        // panic on a char boundary).
2694        let mut state = 0x0123_4567_89AB_CDEFu64;
2695        let mut next = move || {
2696            state ^= state << 13;
2697            state ^= state >> 7;
2698            state ^= state << 17;
2699            state
2700        };
2701        let alphabet: &[&str] = &[
2702            "#", "n", "o", "q", "a", "N", "Q", "A", ":", ",", " ", "F", "4", "0", "1", "8",
2703            "mollify", "ignore", "[", "]", "ß", "é", "—", "\t",
2704        ];
2705        for _ in 0..4000u32 {
2706            let len = (next() % 40) as usize;
2707            let mut s = String::from("#");
2708            for _ in 0..len {
2709                s.push_str(alphabet[(next() as usize) % alphabet.len()]);
2710            }
2711            let _ = parse_noqa_comment(&s);
2712            let _ = parse_ignore_comment(&s);
2713        }
2714    }
2715
2716    #[test]
2717    fn noqa_comments_map_to_unused_binding_rules() {
2718        // Blanket noqa silences both unused-binding rules on that line.
2719        assert_eq!(
2720            parse_noqa_comment("# noqa"),
2721            Some(vec!["unused-import".into(), "unused-variable".into()])
2722        );
2723        assert_eq!(
2724            parse_noqa_comment("#NOQA"),
2725            Some(vec!["unused-import".into(), "unused-variable".into()])
2726        );
2727        // Coded noqa maps only the codes that correspond to our rules.
2728        assert_eq!(
2729            parse_noqa_comment("# noqa: F401"),
2730            Some(vec!["unused-import".into()])
2731        );
2732        assert_eq!(
2733            parse_noqa_comment("# noqa: E501, F841"),
2734            Some(vec!["unused-variable".into()])
2735        );
2736        // Foreign codes and noqa-ish prose are not ours to interpret.
2737        assert_eq!(parse_noqa_comment("# noqa: E501"), None);
2738        assert_eq!(parse_noqa_comment("# noqable"), None);
2739        assert_eq!(parse_noqa_comment("# see noqa docs"), None);
2740        // End-to-end: the wsgi entry-point idiom lands in `ignores`.
2741        let m = parse("from hello import app  # noqa: F401\n");
2742        assert!(
2743            m.ignores.contains(&(1, "unused-import".into())),
2744            "{:?}",
2745            m.ignores
2746        );
2747    }
2748
2749    #[test]
2750    fn redundant_alias_and_try_body_imports_are_marked() {
2751        let m = parse(
2752            "from sansio import State as State\nfrom sansio import Blueprint as Sansio\ntry:\n    import fast_json\nexcept ImportError:\n    import json as fast_json\nimport os\n",
2753        );
2754        let state = m.imports.iter().find(|i| i.bindings == ["State"]).unwrap();
2755        assert_eq!(state.redundant, vec![true]);
2756        let aliased = m.imports.iter().find(|i| i.bindings == ["Sansio"]).unwrap();
2757        assert_eq!(aliased.redundant, vec![false]);
2758        let probe = m.imports.iter().find(|i| i.module == "fast_json").unwrap();
2759        assert!(probe.in_try, "try-body import not marked: {probe:?}");
2760        let fallback = m.imports.iter().find(|i| i.module == "json").unwrap();
2761        assert!(fallback.in_try, "except-handler import not marked");
2762        let plain = m.imports.iter().find(|i| i.module == "os").unwrap();
2763        assert!(!plain.in_try);
2764        std::assert!(!plain.redundant.iter().any(|r| *r));
2765    }
2766
2767    #[test]
2768    fn ignore_comment_allows_trailing_text() {
2769        assert_eq!(
2770            parse_ignore_comment("# mollify: ignore[dead-code]  -- migrating soon"),
2771            Some(vec!["dead-code".into()])
2772        );
2773        assert_eq!(
2774            parse_ignore_comment("# mollify: ignore[a, b] reason"),
2775            Some(vec!["a".into(), "b".into()])
2776        );
2777        let m = parse("x = 1  # mollify: ignore[dead-code] -- reason\n");
2778        assert!(
2779            m.ignores.contains(&(1, "dead-code".into())),
2780            "{:?}",
2781            m.ignores
2782        );
2783    }
2784
2785    #[test]
2786    fn nested_weak_cipher_import_flagged() {
2787        let m = parse("def f():\n    from Crypto.Cipher import DES\n    return DES\n");
2788        assert!(
2789            m.security_hits.iter().any(|h| h.rule == "weak-cipher"),
2790            "nested import must be scanned: {:?}",
2791            m.security_hits
2792        );
2793    }
2794}