rust/src/types.rs

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use rustc::lint::*;
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use syntax::ast;
use syntax::ast::*;
use syntax::ast_util::{is_comparison_binop, binop_to_string};
use rustc::middle::ty;
use syntax::codemap::ExpnInfo;
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use utils::{in_macro, match_type, snippet, span_lint, span_help_and_lint, in_external_macro};
use utils::{LL_PATH, VEC_PATH};
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/// Handles all the linting of funky types
#[allow(missing_copy_implementations)]
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pub struct TypePass;
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declare_lint!(pub BOX_VEC, Warn,
"usage of `Box<Vec<T>>`, vector elements are already on the heap");
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declare_lint!(pub LINKEDLIST, Warn,
"usage of LinkedList, usually a vector is faster, or a more specialized data \
structure like a RingBuf");
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impl LintPass for TypePass {
fn get_lints(&self) -> LintArray {
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lint_array!(BOX_VEC, LINKEDLIST)
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}
fn check_ty(&mut self, cx: &Context, ast_ty: &ast::Ty) {
if let Some(ty) = cx.tcx.ast_ty_to_ty_cache.borrow().get(&ast_ty.id) {
if let ty::TyBox(ref inner) = ty.sty {
if match_type(cx, inner, &VEC_PATH) {
span_help_and_lint(
cx, BOX_VEC, ast_ty.span,
"you seem to be trying to use `Box<Vec<T>>`. Did you mean to use `Vec<T>`?",
"`Vec<T>` is already on the heap, `Box<Vec<T>>` makes an extra allocation");
}
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}
else if match_type(cx, ty, &LL_PATH) {
span_help_and_lint(
cx, LINKEDLIST, ast_ty.span,
"I see you're using a LinkedList! Perhaps you meant some other data structure?",
"a RingBuf might work");
}
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}
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}
}
#[allow(missing_copy_implementations)]
pub struct LetPass;
declare_lint!(pub LET_UNIT_VALUE, Warn,
"creating a let binding to a value of unit type, which usually can't be used afterwards");
fn check_let_unit(cx: &Context, decl: &Decl, info: Option<&ExpnInfo>) {
if in_macro(cx, info) { return; }
if let DeclLocal(ref local) = decl.node {
let bindtype = &cx.tcx.pat_ty(&*local.pat).sty;
if *bindtype == ty::TyTuple(vec![]) {
span_lint(cx, LET_UNIT_VALUE, decl.span, &format!(
"this let-binding has unit value. Consider omitting `let {} =`",
snippet(cx, local.pat.span, "..")));
}
}
}
impl LintPass for LetPass {
fn get_lints(&self) -> LintArray {
lint_array!(LET_UNIT_VALUE)
}
fn check_decl(&mut self, cx: &Context, decl: &Decl) {
cx.sess().codemap().with_expn_info(
decl.span.expn_id,
|info| check_let_unit(cx, decl, info));
}
}
declare_lint!(pub UNIT_CMP, Warn,
"comparing unit values (which is always `true` or `false`, respectively)");
#[allow(missing_copy_implementations)]
pub struct UnitCmp;
impl LintPass for UnitCmp {
fn get_lints(&self) -> LintArray {
lint_array!(UNIT_CMP)
}
fn check_expr(&mut self, cx: &Context, expr: &Expr) {
if let ExprBinary(ref cmp, ref left, _) = expr.node {
let op = cmp.node;
let sty = &cx.tcx.expr_ty(left).sty;
if *sty == ty::TyTuple(vec![]) && is_comparison_binop(op) {
let result = match op {
BiEq | BiLe | BiGe => "true",
_ => "false"
};
span_lint(cx, UNIT_CMP, expr.span, &format!(
"{}-comparison of unit values detected. This will always be {}",
binop_to_string(op), result));
}
}
}
}
pub struct CastPass;
declare_lint!(pub CAST_PRECISION_LOSS, Allow,
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"casts that cause loss of precision, e.g `x as f32` where `x: u64`");
declare_lint!(pub CAST_SIGN_LOSS, Allow,
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"casts from signed types to unsigned types, e.g `x as u32` where `x: i32`");
declare_lint!(pub CAST_POSSIBLE_TRUNCATION, Allow,
"casts that may cause truncation of the value, e.g `x as u8` where `x: u32`, or `x as i32` where `x: f32`");
/// Returns the size in bits of an integral type.
/// Will return 0 if the type is not an int or uint variant
fn int_ty_to_nbits(typ: &ty::TyS) -> usize {
let n = match &typ.sty {
&ty::TyInt(i) => 4 << (i as usize),
&ty::TyUint(u) => 4 << (u as usize),
_ => 0
};
// n == 4 is the usize/isize case
if n == 4 { ::std::usize::BITS } else { n }
}
impl LintPass for CastPass {
fn get_lints(&self) -> LintArray {
lint_array!(CAST_PRECISION_LOSS,
CAST_SIGN_LOSS,
CAST_POSSIBLE_TRUNCATION)
}
fn check_expr(&mut self, cx: &Context, expr: &Expr) {
if let ExprCast(ref ex, _) = expr.node {
let (cast_from, cast_to) = (cx.tcx.expr_ty(&*ex), cx.tcx.expr_ty(expr));
if cast_from.is_numeric() && cast_to.is_numeric() && !in_external_macro(cx, expr.span) {
match (cast_from.is_integral(), cast_to.is_integral()) {
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(true, false) => {
let from_nbits = int_ty_to_nbits(cast_from);
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let to_nbits : usize = match &cast_to.sty {
&ty::TyFloat(ast::TyF32) => 32,
&ty::TyFloat(ast::TyF64) => 64,
_ => 0
};
if from_nbits != 0 {
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if from_nbits >= to_nbits {
span_lint(cx, CAST_PRECISION_LOSS, expr.span,
&format!("converting from {0} to {1}, which causes a loss of precision \
({0} is {2} bits wide, but {1}'s mantissa is only {3} bits wide)",
cast_from, cast_to, from_nbits, if to_nbits == 64 {52} else {23} ));
}
}
},
(false, true) => {
span_lint(cx, CAST_POSSIBLE_TRUNCATION, expr.span,
&format!("casting {} to {} may cause truncation of the value", cast_from, cast_to));
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if !cast_to.is_signed() {
span_lint(cx, CAST_SIGN_LOSS, expr.span,
&format!("casting from {} to {} loses the sign of the value", cast_from, cast_to));
}
},
(true, true) => {
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if cast_from.is_signed() && !cast_to.is_signed() {
span_lint(cx, CAST_SIGN_LOSS, expr.span,
&format!("casting from {} to {} loses the sign of the value", cast_from, cast_to));
}
let from_nbits = int_ty_to_nbits(cast_from);
let to_nbits = int_ty_to_nbits(cast_to);
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if to_nbits < from_nbits ||
(!cast_from.is_signed() && cast_to.is_signed() && to_nbits <= from_nbits) {
span_lint(cx, CAST_POSSIBLE_TRUNCATION, expr.span,
&format!("casting {} to {} may cause truncation of the value", cast_from, cast_to));
}
}
(false, false) => {
if let (&ty::TyFloat(ast::TyF64),
&ty::TyFloat(ast::TyF32)) = (&cast_from.sty, &cast_to.sty) {
span_lint(cx, CAST_POSSIBLE_TRUNCATION, expr.span, "casting f64 to f32 may cause truncation of the value");
}
}
}
}
}
}
}