mirror of
https://github.com/rust-lang/rust-clippy
synced 2024-11-24 21:53:23 +00:00
273 lines
9 KiB
Rust
273 lines
9 KiB
Rust
use syntax::ptr::P;
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use syntax::ast;
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use syntax::ast::*;
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use syntax::ast_util::{is_comparison_binop, binop_to_string};
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use syntax::visit::{FnKind};
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use rustc::lint::{Context, LintPass, LintArray, Lint, Level};
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use rustc::middle::ty;
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use syntax::codemap::{Span, Spanned};
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use utils::{match_path, snippet, span_lint, span_help_and_lint, walk_ptrs_ty};
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/// Handles uncategorized lints
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/// Currently handles linting of if-let-able matches
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#[allow(missing_copy_implementations)]
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pub struct MiscPass;
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declare_lint!(pub SINGLE_MATCH, Warn,
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"Warn on usage of matches with a single nontrivial arm");
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impl LintPass for MiscPass {
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fn get_lints(&self) -> LintArray {
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lint_array!(SINGLE_MATCH)
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}
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fn check_expr(&mut self, cx: &Context, expr: &Expr) {
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if let ExprMatch(ref ex, ref arms, ast::MatchSource::Normal) = expr.node {
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if arms.len() == 2 {
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if arms[0].guard.is_none() && arms[1].pats.len() == 1 {
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match arms[1].body.node {
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ExprTup(ref v) if v.is_empty() && arms[1].guard.is_none() => (),
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ExprBlock(ref b) if b.stmts.is_empty() && arms[1].guard.is_none() => (),
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_ => return
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}
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// In some cases, an exhaustive match is preferred to catch situations when
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// an enum is extended. So we only consider cases where a `_` wildcard is used
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if arms[1].pats[0].node == PatWild(PatWildSingle) &&
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arms[0].pats.len() == 1 {
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let body_code = snippet(cx, arms[0].body.span, "..");
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let suggestion = if let ExprBlock(_) = arms[0].body.node {
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body_code.into_owned()
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} else {
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format!("{{ {} }}", body_code)
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};
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span_help_and_lint(cx, SINGLE_MATCH, expr.span,
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"you seem to be trying to use match for \
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destructuring a single pattern. Did you mean to \
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use `if let`?",
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&*format!("try\nif let {} = {} {}",
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snippet(cx, arms[0].pats[0].span, ".."),
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snippet(cx, ex.span, ".."),
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suggestion)
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);
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}
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}
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}
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}
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}
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}
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declare_lint!(pub TOPLEVEL_REF_ARG, Warn, "Warn about pattern matches with top-level `ref` bindings");
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#[allow(missing_copy_implementations)]
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pub struct TopLevelRefPass;
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impl LintPass for TopLevelRefPass {
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fn get_lints(&self) -> LintArray {
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lint_array!(TOPLEVEL_REF_ARG)
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}
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fn check_fn(&mut self, cx: &Context, _: FnKind, decl: &FnDecl, _: &Block, _: Span, _: NodeId) {
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for ref arg in decl.inputs.iter() {
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if let PatIdent(BindByRef(_), _, _) = arg.pat.node {
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span_lint(cx,
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TOPLEVEL_REF_ARG,
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arg.pat.span,
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"`ref` directly on a function argument is ignored. Consider using a reference type instead."
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);
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}
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}
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}
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}
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declare_lint!(pub CMP_NAN, Deny, "Deny comparisons to std::f32::NAN or std::f64::NAN");
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#[derive(Copy,Clone)]
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pub struct CmpNan;
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impl LintPass for CmpNan {
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fn get_lints(&self) -> LintArray {
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lint_array!(CMP_NAN)
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}
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fn check_expr(&mut self, cx: &Context, expr: &Expr) {
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if let ExprBinary(ref cmp, ref left, ref right) = expr.node {
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if is_comparison_binop(cmp.node) {
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if let &ExprPath(_, ref path) = &left.node {
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check_nan(cx, path, expr.span);
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}
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if let &ExprPath(_, ref path) = &right.node {
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check_nan(cx, path, expr.span);
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}
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}
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}
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}
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}
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fn check_nan(cx: &Context, path: &Path, span: Span) {
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path.segments.last().map(|seg| if seg.identifier.name == "NAN" {
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span_lint(cx, CMP_NAN, span,
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"doomed comparison with NAN, use `std::{f32,f64}::is_nan()` instead");
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});
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}
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declare_lint!(pub FLOAT_CMP, Warn,
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"Warn on ==/!= comparison of floaty values");
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#[derive(Copy,Clone)]
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pub struct FloatCmp;
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impl LintPass for FloatCmp {
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fn get_lints(&self) -> LintArray {
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lint_array!(FLOAT_CMP)
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}
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fn check_expr(&mut self, cx: &Context, expr: &Expr) {
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if let ExprBinary(ref cmp, ref left, ref right) = expr.node {
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let op = cmp.node;
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if (op == BiEq || op == BiNe) && (is_float(cx, left) || is_float(cx, right)) {
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span_lint(cx, FLOAT_CMP, expr.span, &format!(
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"{}-comparison of f32 or f64 detected. Consider changing this to \
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`abs({} - {}) < epsilon` for some suitable value of epsilon",
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binop_to_string(op), snippet(cx, left.span, ".."),
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snippet(cx, right.span, "..")));
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}
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}
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}
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}
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fn is_float(cx: &Context, expr: &Expr) -> bool {
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if let ty::TyFloat(_) = walk_ptrs_ty(cx.tcx.expr_ty(expr)).sty {
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true
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} else {
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false
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}
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}
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declare_lint!(pub PRECEDENCE, Warn,
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"Warn on mixing bit ops with integer arithmetic without parentheses");
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#[derive(Copy,Clone)]
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pub struct Precedence;
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impl LintPass for Precedence {
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fn get_lints(&self) -> LintArray {
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lint_array!(PRECEDENCE)
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}
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fn check_expr(&mut self, cx: &Context, expr: &Expr) {
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if let ExprBinary(Spanned { node: op, ..}, ref left, ref right) = expr.node {
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if is_bit_op(op) && (is_arith_expr(left) || is_arith_expr(right)) {
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span_lint(cx, PRECEDENCE, expr.span,
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"operator precedence can trip the unwary. Consider adding parentheses \
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to the subexpression");
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}
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}
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}
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}
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fn is_arith_expr(expr : &Expr) -> bool {
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match expr.node {
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ExprBinary(Spanned { node: op, ..}, _, _) => is_arith_op(op),
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_ => false
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}
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}
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fn is_bit_op(op : BinOp_) -> bool {
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match op {
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BiBitXor | BiBitAnd | BiBitOr | BiShl | BiShr => true,
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_ => false
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}
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}
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fn is_arith_op(op : BinOp_) -> bool {
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match op {
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BiAdd | BiSub | BiMul | BiDiv | BiRem => true,
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_ => false
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}
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}
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declare_lint!(pub CMP_OWNED, Warn,
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"Warn on creating an owned string just for comparison");
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#[derive(Copy,Clone)]
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pub struct CmpOwned;
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impl LintPass for CmpOwned {
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fn get_lints(&self) -> LintArray {
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lint_array!(CMP_OWNED)
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}
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fn check_expr(&mut self, cx: &Context, expr: &Expr) {
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if let ExprBinary(ref cmp, ref left, ref right) = expr.node {
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if is_comparison_binop(cmp.node) {
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check_to_owned(cx, left, right.span);
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check_to_owned(cx, right, left.span)
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}
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}
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}
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}
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fn check_to_owned(cx: &Context, expr: &Expr, other_span: Span) {
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match &expr.node {
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&ExprMethodCall(Spanned{node: ref ident, ..}, _, ref args) => {
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let name = ident.name;
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if name == "to_string" ||
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name == "to_owned" && is_str_arg(cx, args) {
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span_lint(cx, CMP_OWNED, expr.span, &format!(
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"this creates an owned instance just for comparison. \
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Consider using `{}.as_slice()` to compare without allocation",
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snippet(cx, other_span, "..")))
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}
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},
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&ExprCall(ref path, _) => {
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if let &ExprPath(None, ref path) = &path.node {
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if match_path(path, &["String", "from_str"]) ||
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match_path(path, &["String", "from"]) {
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span_lint(cx, CMP_OWNED, expr.span, &format!(
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"this creates an owned instance just for comparison. \
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Consider using `{}.as_slice()` to compare without allocation",
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snippet(cx, other_span, "..")))
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}
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}
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},
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_ => ()
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}
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}
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fn is_str_arg(cx: &Context, args: &[P<Expr>]) -> bool {
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args.len() == 1 && if let ty::TyStr =
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walk_ptrs_ty(cx.tcx.expr_ty(&*args[0])).sty { true } else { false }
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}
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declare_lint!(pub MODULO_ONE, Warn, "Warn on expressions that include % 1, which is always 0");
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#[derive(Copy,Clone)]
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pub struct ModuloOne;
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impl LintPass for ModuloOne {
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fn get_lints(&self) -> LintArray {
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lint_array!(MODULO_ONE)
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}
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fn check_expr(&mut self, cx: &Context, expr: &Expr) {
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if let ExprBinary(ref cmp, _, ref right) = expr.node {
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if let &Spanned {node: BinOp_::BiRem, ..} = cmp {
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if is_lit_one(right) {
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cx.span_lint(MODULO_ONE, expr.span, "any number modulo 1 will be 0");
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}
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}
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}
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}
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}
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fn is_lit_one(expr: &Expr) -> bool {
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if let ExprLit(ref spanned) = expr.node {
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if let LitInt(1, _) = spanned.node {
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return true;
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}
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}
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false
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}
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