6d0f9319df
- `ParamEnv::empty()` -- does not reveal all, good for typeck - `ParamEnv::reveal_all()` -- does, good for trans - `param_env.with_reveal_all()` -- converts an existing parameter environment
659 lines
27 KiB
Rust
659 lines
27 KiB
Rust
// Copyright 2013 The Rust Project Developers. See the COPYRIGHT
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// file at the top-level directory of this distribution and at
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// http://rust-lang.org/COPYRIGHT.
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//
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// Licensed under the Apache License, Version 2.0 <LICENSE-APACHE or
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// http://www.apache.org/licenses/LICENSE-2.0> or the MIT license
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// <LICENSE-MIT or http://opensource.org/licenses/MIT>, at your
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// option. This file may not be copied, modified, or distributed
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// except according to those terms.
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use common;
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use llvm;
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use llvm::{ContextRef, ModuleRef, ValueRef};
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use rustc::dep_graph::DepGraphSafe;
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use rustc::hir;
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use rustc::hir::def_id::DefId;
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use debuginfo;
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use callee;
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use base;
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use declare;
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use monomorphize::Instance;
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use monomorphize::partitioning::CodegenUnit;
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use type_::Type;
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use type_of::PointeeInfo;
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use rustc_data_structures::base_n;
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use rustc::mir::mono::Stats;
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use rustc::session::config::{self, NoDebugInfo};
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use rustc::session::Session;
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use rustc::ty::layout::{LayoutError, LayoutOf, Size, TyLayout};
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use rustc::ty::{self, Ty, TyCtxt};
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use rustc::util::nodemap::FxHashMap;
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use std::ffi::{CStr, CString};
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use std::cell::{Cell, RefCell};
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use std::ptr;
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use std::iter;
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use std::str;
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use std::sync::Arc;
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use syntax::symbol::InternedString;
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use abi::Abi;
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/// There is one `CodegenCx` per compilation unit. Each one has its own LLVM
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/// `ContextRef` so that several compilation units may be optimized in parallel.
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/// All other LLVM data structures in the `CodegenCx` are tied to that `ContextRef`.
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pub struct CodegenCx<'a, 'tcx: 'a> {
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pub tcx: TyCtxt<'a, 'tcx, 'tcx>,
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pub check_overflow: bool,
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pub use_dll_storage_attrs: bool,
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pub tls_model: llvm::ThreadLocalMode,
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pub llmod: ModuleRef,
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pub llcx: ContextRef,
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pub stats: RefCell<Stats>,
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pub codegen_unit: Arc<CodegenUnit<'tcx>>,
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/// Cache instances of monomorphic and polymorphic items
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pub instances: RefCell<FxHashMap<Instance<'tcx>, ValueRef>>,
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/// Cache generated vtables
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pub vtables: RefCell<FxHashMap<(Ty<'tcx>,
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Option<ty::PolyExistentialTraitRef<'tcx>>), ValueRef>>,
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/// Cache of constant strings,
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pub const_cstr_cache: RefCell<FxHashMap<InternedString, ValueRef>>,
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/// Reverse-direction for const ptrs cast from globals.
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/// Key is a ValueRef holding a *T,
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/// Val is a ValueRef holding a *[T].
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///
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/// Needed because LLVM loses pointer->pointee association
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/// when we ptrcast, and we have to ptrcast during translation
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/// of a [T] const because we form a slice, a (*T,usize) pair, not
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/// a pointer to an LLVM array type. Similar for trait objects.
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pub const_unsized: RefCell<FxHashMap<ValueRef, ValueRef>>,
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/// Cache of emitted const globals (value -> global)
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pub const_globals: RefCell<FxHashMap<ValueRef, ValueRef>>,
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/// Mapping from static definitions to their DefId's.
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pub statics: RefCell<FxHashMap<ValueRef, DefId>>,
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/// List of globals for static variables which need to be passed to the
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/// LLVM function ReplaceAllUsesWith (RAUW) when translation is complete.
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/// (We have to make sure we don't invalidate any ValueRefs referring
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/// to constants.)
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pub statics_to_rauw: RefCell<Vec<(ValueRef, ValueRef)>>,
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/// Statics that will be placed in the llvm.used variable
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/// See http://llvm.org/docs/LangRef.html#the-llvm-used-global-variable for details
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pub used_statics: RefCell<Vec<ValueRef>>,
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pub lltypes: RefCell<FxHashMap<(Ty<'tcx>, Option<usize>), Type>>,
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pub scalar_lltypes: RefCell<FxHashMap<Ty<'tcx>, Type>>,
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pub pointee_infos: RefCell<FxHashMap<(Ty<'tcx>, Size), Option<PointeeInfo>>>,
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pub isize_ty: Type,
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pub dbg_cx: Option<debuginfo::CrateDebugContext<'tcx>>,
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eh_personality: Cell<Option<ValueRef>>,
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eh_unwind_resume: Cell<Option<ValueRef>>,
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pub rust_try_fn: Cell<Option<ValueRef>>,
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intrinsics: RefCell<FxHashMap<&'static str, ValueRef>>,
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/// A counter that is used for generating local symbol names
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local_gen_sym_counter: Cell<usize>,
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}
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impl<'a, 'tcx> DepGraphSafe for CodegenCx<'a, 'tcx> {
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}
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pub fn get_reloc_model(sess: &Session) -> llvm::RelocMode {
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let reloc_model_arg = match sess.opts.cg.relocation_model {
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Some(ref s) => &s[..],
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None => &sess.target.target.options.relocation_model[..],
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};
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match ::back::write::RELOC_MODEL_ARGS.iter().find(
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|&&arg| arg.0 == reloc_model_arg) {
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Some(x) => x.1,
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_ => {
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sess.err(&format!("{:?} is not a valid relocation mode",
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reloc_model_arg));
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sess.abort_if_errors();
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bug!();
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}
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}
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}
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fn get_tls_model(sess: &Session) -> llvm::ThreadLocalMode {
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let tls_model_arg = match sess.opts.debugging_opts.tls_model {
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Some(ref s) => &s[..],
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None => &sess.target.target.options.tls_model[..],
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};
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match ::back::write::TLS_MODEL_ARGS.iter().find(
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|&&arg| arg.0 == tls_model_arg) {
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Some(x) => x.1,
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_ => {
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sess.err(&format!("{:?} is not a valid TLS model",
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tls_model_arg));
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sess.abort_if_errors();
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bug!();
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}
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}
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}
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fn is_any_library(sess: &Session) -> bool {
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sess.crate_types.borrow().iter().any(|ty| {
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*ty != config::CrateTypeExecutable
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})
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}
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pub fn is_pie_binary(sess: &Session) -> bool {
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!is_any_library(sess) && get_reloc_model(sess) == llvm::RelocMode::PIC
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}
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pub unsafe fn create_context_and_module(sess: &Session, mod_name: &str) -> (ContextRef, ModuleRef) {
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let llcx = llvm::LLVMRustContextCreate(sess.fewer_names());
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let mod_name = CString::new(mod_name).unwrap();
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let llmod = llvm::LLVMModuleCreateWithNameInContext(mod_name.as_ptr(), llcx);
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// Ensure the data-layout values hardcoded remain the defaults.
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if sess.target.target.options.is_builtin {
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let tm = ::back::write::create_target_machine(sess);
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llvm::LLVMRustSetDataLayoutFromTargetMachine(llmod, tm);
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llvm::LLVMRustDisposeTargetMachine(tm);
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let data_layout = llvm::LLVMGetDataLayout(llmod);
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let data_layout = str::from_utf8(CStr::from_ptr(data_layout).to_bytes())
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.ok().expect("got a non-UTF8 data-layout from LLVM");
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// Unfortunately LLVM target specs change over time, and right now we
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// don't have proper support to work with any more than one
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// `data_layout` than the one that is in the rust-lang/rust repo. If
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// this compiler is configured against a custom LLVM, we may have a
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// differing data layout, even though we should update our own to use
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// that one.
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//
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// As an interim hack, if CFG_LLVM_ROOT is not an empty string then we
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// disable this check entirely as we may be configured with something
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// that has a different target layout.
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//
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// Unsure if this will actually cause breakage when rustc is configured
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// as such.
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//
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// FIXME(#34960)
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let cfg_llvm_root = option_env!("CFG_LLVM_ROOT").unwrap_or("");
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let custom_llvm_used = cfg_llvm_root.trim() != "";
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if !custom_llvm_used && sess.target.target.data_layout != data_layout {
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bug!("data-layout for builtin `{}` target, `{}`, \
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differs from LLVM default, `{}`",
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sess.target.target.llvm_target,
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sess.target.target.data_layout,
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data_layout);
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}
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}
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let data_layout = CString::new(&sess.target.target.data_layout[..]).unwrap();
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llvm::LLVMSetDataLayout(llmod, data_layout.as_ptr());
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let llvm_target = sess.target.target.llvm_target.as_bytes();
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let llvm_target = CString::new(llvm_target).unwrap();
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llvm::LLVMRustSetNormalizedTarget(llmod, llvm_target.as_ptr());
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if is_pie_binary(sess) {
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llvm::LLVMRustSetModulePIELevel(llmod);
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}
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(llcx, llmod)
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}
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impl<'a, 'tcx> CodegenCx<'a, 'tcx> {
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pub fn new(tcx: TyCtxt<'a, 'tcx, 'tcx>,
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codegen_unit: Arc<CodegenUnit<'tcx>>,
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llmod_id: &str)
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-> CodegenCx<'a, 'tcx> {
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// An interesting part of Windows which MSVC forces our hand on (and
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// apparently MinGW didn't) is the usage of `dllimport` and `dllexport`
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// attributes in LLVM IR as well as native dependencies (in C these
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// correspond to `__declspec(dllimport)`).
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//
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// Whenever a dynamic library is built by MSVC it must have its public
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// interface specified by functions tagged with `dllexport` or otherwise
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// they're not available to be linked against. This poses a few problems
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// for the compiler, some of which are somewhat fundamental, but we use
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// the `use_dll_storage_attrs` variable below to attach the `dllexport`
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// attribute to all LLVM functions that are exported e.g. they're
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// already tagged with external linkage). This is suboptimal for a few
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// reasons:
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//
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// * If an object file will never be included in a dynamic library,
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// there's no need to attach the dllexport attribute. Most object
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// files in Rust are not destined to become part of a dll as binaries
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// are statically linked by default.
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// * If the compiler is emitting both an rlib and a dylib, the same
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// source object file is currently used but with MSVC this may be less
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// feasible. The compiler may be able to get around this, but it may
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// involve some invasive changes to deal with this.
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//
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// The flipside of this situation is that whenever you link to a dll and
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// you import a function from it, the import should be tagged with
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// `dllimport`. At this time, however, the compiler does not emit
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// `dllimport` for any declarations other than constants (where it is
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// required), which is again suboptimal for even more reasons!
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//
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// * Calling a function imported from another dll without using
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// `dllimport` causes the linker/compiler to have extra overhead (one
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// `jmp` instruction on x86) when calling the function.
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// * The same object file may be used in different circumstances, so a
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// function may be imported from a dll if the object is linked into a
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// dll, but it may be just linked against if linked into an rlib.
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// * The compiler has no knowledge about whether native functions should
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// be tagged dllimport or not.
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//
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// For now the compiler takes the perf hit (I do not have any numbers to
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// this effect) by marking very little as `dllimport` and praying the
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// linker will take care of everything. Fixing this problem will likely
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// require adding a few attributes to Rust itself (feature gated at the
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// start) and then strongly recommending static linkage on MSVC!
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let use_dll_storage_attrs = tcx.sess.target.target.options.is_like_msvc;
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let check_overflow = tcx.sess.overflow_checks();
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let tls_model = get_tls_model(&tcx.sess);
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unsafe {
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let (llcx, llmod) = create_context_and_module(&tcx.sess,
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&llmod_id[..]);
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let dbg_cx = if tcx.sess.opts.debuginfo != NoDebugInfo {
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let dctx = debuginfo::CrateDebugContext::new(llmod);
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debuginfo::metadata::compile_unit_metadata(tcx,
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codegen_unit.name(),
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&dctx);
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Some(dctx)
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} else {
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None
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};
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let mut cx = CodegenCx {
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tcx,
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check_overflow,
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use_dll_storage_attrs,
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tls_model,
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llmod,
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llcx,
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stats: RefCell::new(Stats::default()),
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codegen_unit,
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instances: RefCell::new(FxHashMap()),
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vtables: RefCell::new(FxHashMap()),
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const_cstr_cache: RefCell::new(FxHashMap()),
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const_unsized: RefCell::new(FxHashMap()),
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const_globals: RefCell::new(FxHashMap()),
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statics: RefCell::new(FxHashMap()),
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statics_to_rauw: RefCell::new(Vec::new()),
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used_statics: RefCell::new(Vec::new()),
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lltypes: RefCell::new(FxHashMap()),
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scalar_lltypes: RefCell::new(FxHashMap()),
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pointee_infos: RefCell::new(FxHashMap()),
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isize_ty: Type::from_ref(ptr::null_mut()),
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dbg_cx,
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eh_personality: Cell::new(None),
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eh_unwind_resume: Cell::new(None),
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rust_try_fn: Cell::new(None),
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intrinsics: RefCell::new(FxHashMap()),
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local_gen_sym_counter: Cell::new(0),
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};
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cx.isize_ty = Type::isize(&cx);
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cx
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}
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}
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pub fn into_stats(self) -> Stats {
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self.stats.into_inner()
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}
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}
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impl<'b, 'tcx> CodegenCx<'b, 'tcx> {
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pub fn sess<'a>(&'a self) -> &'a Session {
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&self.tcx.sess
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}
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pub fn get_intrinsic(&self, key: &str) -> ValueRef {
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if let Some(v) = self.intrinsics.borrow().get(key).cloned() {
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return v;
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}
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match declare_intrinsic(self, key) {
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Some(v) => return v,
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None => bug!("unknown intrinsic '{}'", key)
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}
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}
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/// Generate a new symbol name with the given prefix. This symbol name must
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/// only be used for definitions with `internal` or `private` linkage.
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pub fn generate_local_symbol_name(&self, prefix: &str) -> String {
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let idx = self.local_gen_sym_counter.get();
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self.local_gen_sym_counter.set(idx + 1);
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// Include a '.' character, so there can be no accidental conflicts with
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// user defined names
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let mut name = String::with_capacity(prefix.len() + 6);
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name.push_str(prefix);
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name.push_str(".");
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base_n::push_str(idx as u128, base_n::ALPHANUMERIC_ONLY, &mut name);
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name
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}
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pub fn eh_personality(&self) -> ValueRef {
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// The exception handling personality function.
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//
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// If our compilation unit has the `eh_personality` lang item somewhere
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// within it, then we just need to translate that. Otherwise, we're
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// building an rlib which will depend on some upstream implementation of
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// this function, so we just codegen a generic reference to it. We don't
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// specify any of the types for the function, we just make it a symbol
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// that LLVM can later use.
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//
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// Note that MSVC is a little special here in that we don't use the
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// `eh_personality` lang item at all. Currently LLVM has support for
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// both Dwarf and SEH unwind mechanisms for MSVC targets and uses the
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// *name of the personality function* to decide what kind of unwind side
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// tables/landing pads to emit. It looks like Dwarf is used by default,
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// injecting a dependency on the `_Unwind_Resume` symbol for resuming
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// an "exception", but for MSVC we want to force SEH. This means that we
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// can't actually have the personality function be our standard
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// `rust_eh_personality` function, but rather we wired it up to the
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// CRT's custom personality function, which forces LLVM to consider
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// landing pads as "landing pads for SEH".
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if let Some(llpersonality) = self.eh_personality.get() {
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return llpersonality
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}
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let tcx = self.tcx;
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let llfn = match tcx.lang_items().eh_personality() {
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Some(def_id) if !base::wants_msvc_seh(self.sess()) => {
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callee::resolve_and_get_fn(self, def_id, tcx.intern_substs(&[]))
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}
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_ => {
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let name = if base::wants_msvc_seh(self.sess()) {
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"__CxxFrameHandler3"
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} else {
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"rust_eh_personality"
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};
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let fty = Type::variadic_func(&[], &Type::i32(self));
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declare::declare_cfn(self, name, fty)
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}
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};
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self.eh_personality.set(Some(llfn));
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llfn
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}
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// Returns a ValueRef of the "eh_unwind_resume" lang item if one is defined,
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// otherwise declares it as an external function.
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pub fn eh_unwind_resume(&self) -> ValueRef {
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use attributes;
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let unwresume = &self.eh_unwind_resume;
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if let Some(llfn) = unwresume.get() {
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return llfn;
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}
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let tcx = self.tcx;
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assert!(self.sess().target.target.options.custom_unwind_resume);
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if let Some(def_id) = tcx.lang_items().eh_unwind_resume() {
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let llfn = callee::resolve_and_get_fn(self, def_id, tcx.intern_substs(&[]));
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unwresume.set(Some(llfn));
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return llfn;
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}
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let ty = tcx.mk_fn_ptr(ty::Binder(tcx.mk_fn_sig(
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iter::once(tcx.mk_mut_ptr(tcx.types.u8)),
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tcx.types.never,
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false,
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hir::Unsafety::Unsafe,
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Abi::C
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)));
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let llfn = declare::declare_fn(self, "rust_eh_unwind_resume", ty);
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attributes::unwind(llfn, true);
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unwresume.set(Some(llfn));
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llfn
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}
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pub fn type_needs_drop(&self, ty: Ty<'tcx>) -> bool {
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common::type_needs_drop(self.tcx, ty)
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}
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pub fn type_is_sized(&self, ty: Ty<'tcx>) -> bool {
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common::type_is_sized(self.tcx, ty)
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}
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pub fn type_is_freeze(&self, ty: Ty<'tcx>) -> bool {
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common::type_is_freeze(self.tcx, ty)
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}
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pub fn type_has_metadata(&self, ty: Ty<'tcx>) -> bool {
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use syntax_pos::DUMMY_SP;
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if ty.is_sized(self.tcx.at(DUMMY_SP), ty::ParamEnv::reveal_all()) {
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return false;
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}
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|
|
let tail = self.tcx.struct_tail(ty);
|
|
match tail.sty {
|
|
ty::TyForeign(..) => false,
|
|
ty::TyStr | ty::TySlice(..) | ty::TyDynamic(..) => true,
|
|
_ => bug!("unexpected unsized tail: {:?}", tail.sty),
|
|
}
|
|
}
|
|
}
|
|
|
|
impl<'a, 'tcx> ty::layout::HasDataLayout for &'a CodegenCx<'a, 'tcx> {
|
|
fn data_layout(&self) -> &ty::layout::TargetDataLayout {
|
|
&self.tcx.data_layout
|
|
}
|
|
}
|
|
|
|
impl<'a, 'tcx> ty::layout::HasTyCtxt<'tcx> for &'a CodegenCx<'a, 'tcx> {
|
|
fn tcx<'b>(&'b self) -> TyCtxt<'b, 'tcx, 'tcx> {
|
|
self.tcx
|
|
}
|
|
}
|
|
|
|
impl<'a, 'tcx> LayoutOf<Ty<'tcx>> for &'a CodegenCx<'a, 'tcx> {
|
|
type TyLayout = TyLayout<'tcx>;
|
|
|
|
fn layout_of(self, ty: Ty<'tcx>) -> Self::TyLayout {
|
|
self.tcx.layout_of(ty::ParamEnv::reveal_all().and(ty))
|
|
.unwrap_or_else(|e| match e {
|
|
LayoutError::SizeOverflow(_) => self.sess().fatal(&e.to_string()),
|
|
_ => bug!("failed to get layout for `{}`: {}", ty, e)
|
|
})
|
|
}
|
|
}
|
|
|
|
/// Declare any llvm intrinsics that you might need
|
|
fn declare_intrinsic(cx: &CodegenCx, key: &str) -> Option<ValueRef> {
|
|
macro_rules! ifn {
|
|
($name:expr, fn() -> $ret:expr) => (
|
|
if key == $name {
|
|
let f = declare::declare_cfn(cx, $name, Type::func(&[], &$ret));
|
|
llvm::SetUnnamedAddr(f, false);
|
|
cx.intrinsics.borrow_mut().insert($name, f.clone());
|
|
return Some(f);
|
|
}
|
|
);
|
|
($name:expr, fn(...) -> $ret:expr) => (
|
|
if key == $name {
|
|
let f = declare::declare_cfn(cx, $name, Type::variadic_func(&[], &$ret));
|
|
llvm::SetUnnamedAddr(f, false);
|
|
cx.intrinsics.borrow_mut().insert($name, f.clone());
|
|
return Some(f);
|
|
}
|
|
);
|
|
($name:expr, fn($($arg:expr),*) -> $ret:expr) => (
|
|
if key == $name {
|
|
let f = declare::declare_cfn(cx, $name, Type::func(&[$($arg),*], &$ret));
|
|
llvm::SetUnnamedAddr(f, false);
|
|
cx.intrinsics.borrow_mut().insert($name, f.clone());
|
|
return Some(f);
|
|
}
|
|
);
|
|
}
|
|
macro_rules! mk_struct {
|
|
($($field_ty:expr),*) => (Type::struct_(cx, &[$($field_ty),*], false))
|
|
}
|
|
|
|
let i8p = Type::i8p(cx);
|
|
let void = Type::void(cx);
|
|
let i1 = Type::i1(cx);
|
|
let t_i8 = Type::i8(cx);
|
|
let t_i16 = Type::i16(cx);
|
|
let t_i32 = Type::i32(cx);
|
|
let t_i64 = Type::i64(cx);
|
|
let t_i128 = Type::i128(cx);
|
|
let t_f32 = Type::f32(cx);
|
|
let t_f64 = Type::f64(cx);
|
|
|
|
ifn!("llvm.memcpy.p0i8.p0i8.i16", fn(i8p, i8p, t_i16, t_i32, i1) -> void);
|
|
ifn!("llvm.memcpy.p0i8.p0i8.i32", fn(i8p, i8p, t_i32, t_i32, i1) -> void);
|
|
ifn!("llvm.memcpy.p0i8.p0i8.i64", fn(i8p, i8p, t_i64, t_i32, i1) -> void);
|
|
ifn!("llvm.memmove.p0i8.p0i8.i16", fn(i8p, i8p, t_i16, t_i32, i1) -> void);
|
|
ifn!("llvm.memmove.p0i8.p0i8.i32", fn(i8p, i8p, t_i32, t_i32, i1) -> void);
|
|
ifn!("llvm.memmove.p0i8.p0i8.i64", fn(i8p, i8p, t_i64, t_i32, i1) -> void);
|
|
ifn!("llvm.memset.p0i8.i16", fn(i8p, t_i8, t_i16, t_i32, i1) -> void);
|
|
ifn!("llvm.memset.p0i8.i32", fn(i8p, t_i8, t_i32, t_i32, i1) -> void);
|
|
ifn!("llvm.memset.p0i8.i64", fn(i8p, t_i8, t_i64, t_i32, i1) -> void);
|
|
|
|
ifn!("llvm.trap", fn() -> void);
|
|
ifn!("llvm.debugtrap", fn() -> void);
|
|
ifn!("llvm.frameaddress", fn(t_i32) -> i8p);
|
|
|
|
ifn!("llvm.powi.f32", fn(t_f32, t_i32) -> t_f32);
|
|
ifn!("llvm.powi.f64", fn(t_f64, t_i32) -> t_f64);
|
|
ifn!("llvm.pow.f32", fn(t_f32, t_f32) -> t_f32);
|
|
ifn!("llvm.pow.f64", fn(t_f64, t_f64) -> t_f64);
|
|
|
|
ifn!("llvm.sqrt.f32", fn(t_f32) -> t_f32);
|
|
ifn!("llvm.sqrt.f64", fn(t_f64) -> t_f64);
|
|
ifn!("llvm.sin.f32", fn(t_f32) -> t_f32);
|
|
ifn!("llvm.sin.f64", fn(t_f64) -> t_f64);
|
|
ifn!("llvm.cos.f32", fn(t_f32) -> t_f32);
|
|
ifn!("llvm.cos.f64", fn(t_f64) -> t_f64);
|
|
ifn!("llvm.exp.f32", fn(t_f32) -> t_f32);
|
|
ifn!("llvm.exp.f64", fn(t_f64) -> t_f64);
|
|
ifn!("llvm.exp2.f32", fn(t_f32) -> t_f32);
|
|
ifn!("llvm.exp2.f64", fn(t_f64) -> t_f64);
|
|
ifn!("llvm.log.f32", fn(t_f32) -> t_f32);
|
|
ifn!("llvm.log.f64", fn(t_f64) -> t_f64);
|
|
ifn!("llvm.log10.f32", fn(t_f32) -> t_f32);
|
|
ifn!("llvm.log10.f64", fn(t_f64) -> t_f64);
|
|
ifn!("llvm.log2.f32", fn(t_f32) -> t_f32);
|
|
ifn!("llvm.log2.f64", fn(t_f64) -> t_f64);
|
|
|
|
ifn!("llvm.fma.f32", fn(t_f32, t_f32, t_f32) -> t_f32);
|
|
ifn!("llvm.fma.f64", fn(t_f64, t_f64, t_f64) -> t_f64);
|
|
|
|
ifn!("llvm.fabs.f32", fn(t_f32) -> t_f32);
|
|
ifn!("llvm.fabs.f64", fn(t_f64) -> t_f64);
|
|
|
|
ifn!("llvm.floor.f32", fn(t_f32) -> t_f32);
|
|
ifn!("llvm.floor.f64", fn(t_f64) -> t_f64);
|
|
ifn!("llvm.ceil.f32", fn(t_f32) -> t_f32);
|
|
ifn!("llvm.ceil.f64", fn(t_f64) -> t_f64);
|
|
ifn!("llvm.trunc.f32", fn(t_f32) -> t_f32);
|
|
ifn!("llvm.trunc.f64", fn(t_f64) -> t_f64);
|
|
|
|
ifn!("llvm.copysign.f32", fn(t_f32, t_f32) -> t_f32);
|
|
ifn!("llvm.copysign.f64", fn(t_f64, t_f64) -> t_f64);
|
|
ifn!("llvm.round.f32", fn(t_f32) -> t_f32);
|
|
ifn!("llvm.round.f64", fn(t_f64) -> t_f64);
|
|
|
|
ifn!("llvm.rint.f32", fn(t_f32) -> t_f32);
|
|
ifn!("llvm.rint.f64", fn(t_f64) -> t_f64);
|
|
ifn!("llvm.nearbyint.f32", fn(t_f32) -> t_f32);
|
|
ifn!("llvm.nearbyint.f64", fn(t_f64) -> t_f64);
|
|
|
|
ifn!("llvm.ctpop.i8", fn(t_i8) -> t_i8);
|
|
ifn!("llvm.ctpop.i16", fn(t_i16) -> t_i16);
|
|
ifn!("llvm.ctpop.i32", fn(t_i32) -> t_i32);
|
|
ifn!("llvm.ctpop.i64", fn(t_i64) -> t_i64);
|
|
ifn!("llvm.ctpop.i128", fn(t_i128) -> t_i128);
|
|
|
|
ifn!("llvm.ctlz.i8", fn(t_i8 , i1) -> t_i8);
|
|
ifn!("llvm.ctlz.i16", fn(t_i16, i1) -> t_i16);
|
|
ifn!("llvm.ctlz.i32", fn(t_i32, i1) -> t_i32);
|
|
ifn!("llvm.ctlz.i64", fn(t_i64, i1) -> t_i64);
|
|
ifn!("llvm.ctlz.i128", fn(t_i128, i1) -> t_i128);
|
|
|
|
ifn!("llvm.cttz.i8", fn(t_i8 , i1) -> t_i8);
|
|
ifn!("llvm.cttz.i16", fn(t_i16, i1) -> t_i16);
|
|
ifn!("llvm.cttz.i32", fn(t_i32, i1) -> t_i32);
|
|
ifn!("llvm.cttz.i64", fn(t_i64, i1) -> t_i64);
|
|
ifn!("llvm.cttz.i128", fn(t_i128, i1) -> t_i128);
|
|
|
|
ifn!("llvm.bswap.i16", fn(t_i16) -> t_i16);
|
|
ifn!("llvm.bswap.i32", fn(t_i32) -> t_i32);
|
|
ifn!("llvm.bswap.i64", fn(t_i64) -> t_i64);
|
|
ifn!("llvm.bswap.i128", fn(t_i128) -> t_i128);
|
|
|
|
ifn!("llvm.bitreverse.i8", fn(t_i8) -> t_i8);
|
|
ifn!("llvm.bitreverse.i16", fn(t_i16) -> t_i16);
|
|
ifn!("llvm.bitreverse.i32", fn(t_i32) -> t_i32);
|
|
ifn!("llvm.bitreverse.i64", fn(t_i64) -> t_i64);
|
|
ifn!("llvm.bitreverse.i128", fn(t_i128) -> t_i128);
|
|
|
|
ifn!("llvm.sadd.with.overflow.i8", fn(t_i8, t_i8) -> mk_struct!{t_i8, i1});
|
|
ifn!("llvm.sadd.with.overflow.i16", fn(t_i16, t_i16) -> mk_struct!{t_i16, i1});
|
|
ifn!("llvm.sadd.with.overflow.i32", fn(t_i32, t_i32) -> mk_struct!{t_i32, i1});
|
|
ifn!("llvm.sadd.with.overflow.i64", fn(t_i64, t_i64) -> mk_struct!{t_i64, i1});
|
|
ifn!("llvm.sadd.with.overflow.i128", fn(t_i128, t_i128) -> mk_struct!{t_i128, i1});
|
|
|
|
ifn!("llvm.uadd.with.overflow.i8", fn(t_i8, t_i8) -> mk_struct!{t_i8, i1});
|
|
ifn!("llvm.uadd.with.overflow.i16", fn(t_i16, t_i16) -> mk_struct!{t_i16, i1});
|
|
ifn!("llvm.uadd.with.overflow.i32", fn(t_i32, t_i32) -> mk_struct!{t_i32, i1});
|
|
ifn!("llvm.uadd.with.overflow.i64", fn(t_i64, t_i64) -> mk_struct!{t_i64, i1});
|
|
ifn!("llvm.uadd.with.overflow.i128", fn(t_i128, t_i128) -> mk_struct!{t_i128, i1});
|
|
|
|
ifn!("llvm.ssub.with.overflow.i8", fn(t_i8, t_i8) -> mk_struct!{t_i8, i1});
|
|
ifn!("llvm.ssub.with.overflow.i16", fn(t_i16, t_i16) -> mk_struct!{t_i16, i1});
|
|
ifn!("llvm.ssub.with.overflow.i32", fn(t_i32, t_i32) -> mk_struct!{t_i32, i1});
|
|
ifn!("llvm.ssub.with.overflow.i64", fn(t_i64, t_i64) -> mk_struct!{t_i64, i1});
|
|
ifn!("llvm.ssub.with.overflow.i128", fn(t_i128, t_i128) -> mk_struct!{t_i128, i1});
|
|
|
|
ifn!("llvm.usub.with.overflow.i8", fn(t_i8, t_i8) -> mk_struct!{t_i8, i1});
|
|
ifn!("llvm.usub.with.overflow.i16", fn(t_i16, t_i16) -> mk_struct!{t_i16, i1});
|
|
ifn!("llvm.usub.with.overflow.i32", fn(t_i32, t_i32) -> mk_struct!{t_i32, i1});
|
|
ifn!("llvm.usub.with.overflow.i64", fn(t_i64, t_i64) -> mk_struct!{t_i64, i1});
|
|
ifn!("llvm.usub.with.overflow.i128", fn(t_i128, t_i128) -> mk_struct!{t_i128, i1});
|
|
|
|
ifn!("llvm.smul.with.overflow.i8", fn(t_i8, t_i8) -> mk_struct!{t_i8, i1});
|
|
ifn!("llvm.smul.with.overflow.i16", fn(t_i16, t_i16) -> mk_struct!{t_i16, i1});
|
|
ifn!("llvm.smul.with.overflow.i32", fn(t_i32, t_i32) -> mk_struct!{t_i32, i1});
|
|
ifn!("llvm.smul.with.overflow.i64", fn(t_i64, t_i64) -> mk_struct!{t_i64, i1});
|
|
ifn!("llvm.smul.with.overflow.i128", fn(t_i128, t_i128) -> mk_struct!{t_i128, i1});
|
|
|
|
ifn!("llvm.umul.with.overflow.i8", fn(t_i8, t_i8) -> mk_struct!{t_i8, i1});
|
|
ifn!("llvm.umul.with.overflow.i16", fn(t_i16, t_i16) -> mk_struct!{t_i16, i1});
|
|
ifn!("llvm.umul.with.overflow.i32", fn(t_i32, t_i32) -> mk_struct!{t_i32, i1});
|
|
ifn!("llvm.umul.with.overflow.i64", fn(t_i64, t_i64) -> mk_struct!{t_i64, i1});
|
|
ifn!("llvm.umul.with.overflow.i128", fn(t_i128, t_i128) -> mk_struct!{t_i128, i1});
|
|
|
|
ifn!("llvm.lifetime.start", fn(t_i64,i8p) -> void);
|
|
ifn!("llvm.lifetime.end", fn(t_i64, i8p) -> void);
|
|
|
|
ifn!("llvm.expect.i1", fn(i1, i1) -> i1);
|
|
ifn!("llvm.eh.typeid.for", fn(i8p) -> t_i32);
|
|
ifn!("llvm.localescape", fn(...) -> void);
|
|
ifn!("llvm.localrecover", fn(i8p, i8p, t_i32) -> i8p);
|
|
ifn!("llvm.x86.seh.recoverfp", fn(i8p, i8p) -> i8p);
|
|
|
|
ifn!("llvm.assume", fn(i1) -> void);
|
|
ifn!("llvm.prefetch", fn(i8p, t_i32, t_i32, t_i32) -> void);
|
|
|
|
if cx.sess().opts.debuginfo != NoDebugInfo {
|
|
ifn!("llvm.dbg.declare", fn(Type::metadata(cx), Type::metadata(cx)) -> void);
|
|
ifn!("llvm.dbg.value", fn(Type::metadata(cx), t_i64, Type::metadata(cx)) -> void);
|
|
}
|
|
return None;
|
|
}
|