use super::link::{self, remove};
use super::linker::LinkerInfo;
use super::lto::{self, SerializedModule};
use super::symbol_export::symbol_name_for_instance_in_crate;
use crate::{
CachedModuleCodegen, CodegenResults, CompiledModule, CrateInfo, ModuleCodegen, ModuleKind,
};
use crate::traits::*;
use jobserver::{Acquired, Client};
use rustc_data_structures::fx::FxHashMap;
use rustc_data_structures::profiling::SelfProfilerRef;
use rustc_data_structures::profiling::TimingGuard;
use rustc_data_structures::profiling::VerboseTimingGuard;
use rustc_data_structures::sync::Lrc;
use rustc_errors::emitter::Emitter;
use rustc_errors::{DiagnosticId, FatalError, Handler, Level};
use rustc_fs_util::link_or_copy;
use rustc_hir::def_id::{CrateNum, LOCAL_CRATE};
use rustc_incremental::{
copy_cgu_workproduct_to_incr_comp_cache_dir, in_incr_comp_dir, in_incr_comp_dir_sess,
};
use rustc_middle::dep_graph::{WorkProduct, WorkProductId};
use rustc_middle::middle::cstore::EncodedMetadata;
use rustc_middle::middle::exported_symbols::SymbolExportLevel;
use rustc_middle::ty::TyCtxt;
use rustc_session::cgu_reuse_tracker::CguReuseTracker;
use rustc_session::config::{self, CrateType, Lto, OutputFilenames, OutputType};
use rustc_session::config::{Passes, SanitizerSet, SwitchWithOptPath};
use rustc_session::Session;
use rustc_span::source_map::SourceMap;
use rustc_span::symbol::{sym, Symbol};
use rustc_span::{BytePos, FileName, InnerSpan, Pos, Span};
use rustc_target::spec::{MergeFunctions, PanicStrategy};
use std::any::Any;
use std::fs;
use std::io;
use std::mem;
use std::path::{Path, PathBuf};
use std::str;
use std::sync::mpsc::{channel, Receiver, Sender};
use std::sync::Arc;
use std::thread;
const PRE_LTO_BC_EXT: &str = "pre-lto.bc";
#[derive(Clone, Copy, PartialEq)]
pub enum EmitObj {
None,
Bitcode,
ObjectCode(BitcodeSection),
}
#[derive(Clone, Copy, PartialEq)]
pub enum BitcodeSection {
None,
Full,
}
pub struct ModuleConfig {
pub passes: Vec<String>,
pub opt_level: Option<config::OptLevel>,
pub opt_size: Option<config::OptLevel>,
pub pgo_gen: SwitchWithOptPath,
pub pgo_use: Option<PathBuf>,
pub sanitizer: SanitizerSet,
pub sanitizer_recover: SanitizerSet,
pub sanitizer_memory_track_origins: usize,
pub emit_pre_lto_bc: bool,
pub emit_no_opt_bc: bool,
pub emit_bc: bool,
pub emit_ir: bool,
pub emit_asm: bool,
pub emit_obj: EmitObj,
pub bc_cmdline: String,
pub verify_llvm_ir: bool,
pub no_prepopulate_passes: bool,
pub no_builtins: bool,
pub time_module: bool,
pub vectorize_loop: bool,
pub vectorize_slp: bool,
pub merge_functions: bool,
pub inline_threshold: Option<usize>,
pub new_llvm_pass_manager: bool,
pub emit_lifetime_markers: bool,
}
impl ModuleConfig {
fn new(
kind: ModuleKind,
sess: &Session,
no_builtins: bool,
is_compiler_builtins: bool,
) -> ModuleConfig {
macro_rules! if_regular {
($regular: expr, $other: expr) => {
if let ModuleKind::Regular = kind { $regular } else { $other }
};
}
let opt_level_and_size = if_regular!(Some(sess.opts.optimize), None);
let save_temps = sess.opts.cg.save_temps;
let should_emit_obj = sess.opts.output_types.contains_key(&OutputType::Exe)
|| match kind {
ModuleKind::Regular => sess.opts.output_types.contains_key(&OutputType::Object),
ModuleKind::Allocator => false,
ModuleKind::Metadata => sess.opts.output_types.contains_key(&OutputType::Metadata),
};
let emit_obj = if !should_emit_obj {
EmitObj::None
} else if sess.target.obj_is_bitcode
|| (sess.opts.cg.linker_plugin_lto.enabled() && !no_builtins)
{
EmitObj::Bitcode
} else if need_bitcode_in_object(sess) {
EmitObj::ObjectCode(BitcodeSection::Full)
} else {
EmitObj::ObjectCode(BitcodeSection::None)
};
ModuleConfig {
passes: if_regular!(
{
let mut passes = sess.opts.cg.passes.clone();
if sess.opts.debugging_opts.profile && !is_compiler_builtins {
passes.push("insert-gcov-profiling".to_owned());
}
if sess.opts.debugging_opts.instrument_coverage {
passes.push("instrprof".to_owned());
}
passes
},
vec![]
),
opt_level: opt_level_and_size,
opt_size: opt_level_and_size,
pgo_gen: if_regular!(
sess.opts.cg.profile_generate.clone(),
SwitchWithOptPath::Disabled
),
pgo_use: if_regular!(sess.opts.cg.profile_use.clone(), None),
sanitizer: if_regular!(sess.opts.debugging_opts.sanitizer, SanitizerSet::empty()),
sanitizer_recover: if_regular!(
sess.opts.debugging_opts.sanitizer_recover,
SanitizerSet::empty()
),
sanitizer_memory_track_origins: if_regular!(
sess.opts.debugging_opts.sanitizer_memory_track_origins,
0
),
emit_pre_lto_bc: if_regular!(
save_temps || need_pre_lto_bitcode_for_incr_comp(sess),
false
),
emit_no_opt_bc: if_regular!(save_temps, false),
emit_bc: if_regular!(
save_temps || sess.opts.output_types.contains_key(&OutputType::Bitcode),
save_temps
),
emit_ir: if_regular!(
sess.opts.output_types.contains_key(&OutputType::LlvmAssembly),
false
),
emit_asm: if_regular!(
sess.opts.output_types.contains_key(&OutputType::Assembly),
false
),
emit_obj,
bc_cmdline: sess.target.bitcode_llvm_cmdline.clone(),
verify_llvm_ir: sess.verify_llvm_ir(),
no_prepopulate_passes: sess.opts.cg.no_prepopulate_passes,
no_builtins: no_builtins || sess.target.no_builtins,
time_module: if_regular!(true, false),
vectorize_loop: !sess.opts.cg.no_vectorize_loops
&& (sess.opts.optimize == config::OptLevel::Default
|| sess.opts.optimize == config::OptLevel::Aggressive),
vectorize_slp: !sess.opts.cg.no_vectorize_slp
&& sess.opts.optimize == config::OptLevel::Aggressive,
merge_functions: match sess
.opts
.debugging_opts
.merge_functions
.unwrap_or(sess.target.merge_functions)
{
MergeFunctions::Disabled => false,
MergeFunctions::Trampolines | MergeFunctions::Aliases => {
sess.opts.optimize == config::OptLevel::Default
|| sess.opts.optimize == config::OptLevel::Aggressive
}
},
inline_threshold: sess.opts.cg.inline_threshold,
new_llvm_pass_manager: sess.opts.debugging_opts.new_llvm_pass_manager,
emit_lifetime_markers: sess.emit_lifetime_markers(),
}
}
pub fn bitcode_needed(&self) -> bool {
self.emit_bc
|| self.emit_obj == EmitObj::Bitcode
|| self.emit_obj == EmitObj::ObjectCode(BitcodeSection::Full)
}
}
pub struct TargetMachineFactory<B: WriteBackendMethods>(
pub Arc<dyn Fn() -> Result<B::TargetMachine, String> + Send + Sync>,
);
impl<B: WriteBackendMethods> Clone for TargetMachineFactory<B> {
fn clone(&self) -> Self {
TargetMachineFactory(self.0.clone())
}
}
pub type ExportedSymbols = FxHashMap<CrateNum, Arc<Vec<(String, SymbolExportLevel)>>>;
#[derive(Clone)]
pub struct CodegenContext<B: WriteBackendMethods> {
pub backend: B,
pub prof: SelfProfilerRef,
pub lto: Lto,
pub no_landing_pads: bool,
pub save_temps: bool,
pub fewer_names: bool,
pub exported_symbols: Option<Arc<ExportedSymbols>>,
pub opts: Arc<config::Options>,
pub crate_types: Vec<CrateType>,
pub each_linked_rlib_for_lto: Vec<(CrateNum, PathBuf)>,
pub output_filenames: Arc<OutputFilenames>,
pub regular_module_config: Arc<ModuleConfig>,
pub metadata_module_config: Arc<ModuleConfig>,
pub allocator_module_config: Arc<ModuleConfig>,
pub tm_factory: TargetMachineFactory<B>,
pub msvc_imps_needed: bool,
pub is_pe_coff: bool,
pub target_pointer_width: u32,
pub target_arch: String,
pub debuginfo: config::DebugInfo,
pub total_cgus: usize,
pub diag_emitter: SharedEmitter,
pub remark: Passes,
pub worker: usize,
pub incr_comp_session_dir: Option<PathBuf>,
pub cgu_reuse_tracker: CguReuseTracker,
pub coordinator_send: Sender<Box<dyn Any + Send>>,
}
impl<B: WriteBackendMethods> CodegenContext<B> {
pub fn create_diag_handler(&self) -> Handler {
Handler::with_emitter(true, None, Box::new(self.diag_emitter.clone()))
}
pub fn config(&self, kind: ModuleKind) -> &ModuleConfig {
match kind {
ModuleKind::Regular => &self.regular_module_config,
ModuleKind::Metadata => &self.metadata_module_config,
ModuleKind::Allocator => &self.allocator_module_config,
}
}
}
fn generate_lto_work<B: ExtraBackendMethods>(
cgcx: &CodegenContext<B>,
needs_fat_lto: Vec<FatLTOInput<B>>,
needs_thin_lto: Vec<(String, B::ThinBuffer)>,
import_only_modules: Vec<(SerializedModule<B::ModuleBuffer>, WorkProduct)>,
) -> Vec<(WorkItem<B>, u64)> {
let _prof_timer = cgcx.prof.generic_activity("codegen_generate_lto_work");
let (lto_modules, copy_jobs) = if !needs_fat_lto.is_empty() {
assert!(needs_thin_lto.is_empty());
let lto_module =
B::run_fat_lto(cgcx, needs_fat_lto, import_only_modules).unwrap_or_else(|e| e.raise());
(vec![lto_module], vec![])
} else {
assert!(needs_fat_lto.is_empty());
B::run_thin_lto(cgcx, needs_thin_lto, import_only_modules).unwrap_or_else(|e| e.raise())
};
lto_modules
.into_iter()
.map(|module| {
let cost = module.cost();
(WorkItem::LTO(module), cost)
})
.chain(copy_jobs.into_iter().map(|wp| {
(
WorkItem::CopyPostLtoArtifacts(CachedModuleCodegen {
name: wp.cgu_name.clone(),
source: wp,
}),
0,
)
}))
.collect()
}
pub struct CompiledModules {
pub modules: Vec<CompiledModule>,
pub metadata_module: Option<CompiledModule>,
pub allocator_module: Option<CompiledModule>,
}
fn need_bitcode_in_object(sess: &Session) -> bool {
let requested_for_rlib = sess.opts.cg.embed_bitcode
&& sess.crate_types().contains(&CrateType::Rlib)
&& sess.opts.output_types.contains_key(&OutputType::Exe);
let forced_by_target = sess.target.forces_embed_bitcode;
requested_for_rlib || forced_by_target
}
fn need_pre_lto_bitcode_for_incr_comp(sess: &Session) -> bool {
if sess.opts.incremental.is_none() {
return false;
}
match sess.lto() {
Lto::No => false,
Lto::Fat | Lto::Thin | Lto::ThinLocal => true,
}
}
pub fn start_async_codegen<B: ExtraBackendMethods>(
backend: B,
tcx: TyCtxt<'_>,
metadata: EncodedMetadata,
total_cgus: usize,
) -> OngoingCodegen<B> {
let (coordinator_send, coordinator_receive) = channel();
let sess = tcx.sess;
let crate_name = tcx.crate_name(LOCAL_CRATE);
let no_builtins = tcx.sess.contains_name(&tcx.hir().krate().item.attrs, sym::no_builtins);
let is_compiler_builtins =
tcx.sess.contains_name(&tcx.hir().krate().item.attrs, sym::compiler_builtins);
let subsystem = tcx
.sess
.first_attr_value_str_by_name(&tcx.hir().krate().item.attrs, sym::windows_subsystem);
let windows_subsystem = subsystem.map(|subsystem| {
if subsystem != sym::windows && subsystem != sym::console {
tcx.sess.fatal(&format!(
"invalid windows subsystem `{}`, only \
`windows` and `console` are allowed",
subsystem
));
}
subsystem.to_string()
});
let linker_info = LinkerInfo::new(tcx);
let crate_info = CrateInfo::new(tcx);
let regular_config =
ModuleConfig::new(ModuleKind::Regular, sess, no_builtins, is_compiler_builtins);
let metadata_config =
ModuleConfig::new(ModuleKind::Metadata, sess, no_builtins, is_compiler_builtins);
let allocator_config =
ModuleConfig::new(ModuleKind::Allocator, sess, no_builtins, is_compiler_builtins);
let (shared_emitter, shared_emitter_main) = SharedEmitter::new();
let (codegen_worker_send, codegen_worker_receive) = channel();
let coordinator_thread = start_executing_work(
backend.clone(),
tcx,
&crate_info,
shared_emitter,
codegen_worker_send,
coordinator_receive,
total_cgus,
sess.jobserver.clone(),
Arc::new(regular_config),
Arc::new(metadata_config),
Arc::new(allocator_config),
coordinator_send.clone(),
);
OngoingCodegen {
backend,
crate_name,
metadata,
windows_subsystem,
linker_info,
crate_info,
coordinator_send,
codegen_worker_receive,
shared_emitter_main,
future: coordinator_thread,
output_filenames: tcx.output_filenames(LOCAL_CRATE),
}
}
fn copy_all_cgu_workproducts_to_incr_comp_cache_dir(
sess: &Session,
compiled_modules: &CompiledModules,
) -> FxHashMap<WorkProductId, WorkProduct> {
let mut work_products = FxHashMap::default();
if sess.opts.incremental.is_none() {
return work_products;
}
let _timer = sess.timer("copy_all_cgu_workproducts_to_incr_comp_cache_dir");
for module in compiled_modules.modules.iter().filter(|m| m.kind == ModuleKind::Regular) {
let path = module.object.as_ref().cloned();
if let Some((id, product)) =
copy_cgu_workproduct_to_incr_comp_cache_dir(sess, &module.name, &path)
{
work_products.insert(id, product);
}
}
work_products
}
fn produce_final_output_artifacts(
sess: &Session,
compiled_modules: &CompiledModules,
crate_output: &OutputFilenames,
) {
let mut user_wants_bitcode = false;
let mut user_wants_objects = false;
let copy_gracefully = |from: &Path, to: &Path| {
if let Err(e) = fs::copy(from, to) {
sess.err(&format!("could not copy {:?} to {:?}: {}", from, to, e));
}
};
let copy_if_one_unit = |output_type: OutputType, keep_numbered: bool| {
if compiled_modules.modules.len() == 1 {
let module_name = Some(&compiled_modules.modules[0].name[..]);
let path = crate_output.temp_path(output_type, module_name);
copy_gracefully(&path, &crate_output.path(output_type));
if !sess.opts.cg.save_temps && !keep_numbered {
remove(sess, &path);
}
} else {
let ext = crate_output
.temp_path(output_type, None)
.extension()
.unwrap()
.to_str()
.unwrap()
.to_owned();
if crate_output.outputs.contains_key(&output_type) {
sess.warn(&format!(
"ignoring emit path because multiple .{} files \
were produced",
ext
));
} else if crate_output.single_output_file.is_some() {
sess.warn(&format!(
"ignoring -o because multiple .{} files \
were produced",
ext
));
} else {
}
}
};
for output_type in crate_output.outputs.keys() {
match *output_type {
OutputType::Bitcode => {
user_wants_bitcode = true;
copy_if_one_unit(OutputType::Bitcode, true);
}
OutputType::LlvmAssembly => {
copy_if_one_unit(OutputType::LlvmAssembly, false);
}
OutputType::Assembly => {
copy_if_one_unit(OutputType::Assembly, false);
}
OutputType::Object => {
user_wants_objects = true;
copy_if_one_unit(OutputType::Object, true);
}
OutputType::Mir | OutputType::Metadata | OutputType::Exe | OutputType::DepInfo => {}
}
}
if !sess.opts.cg.save_temps {
let needs_crate_object = crate_output.outputs.contains_key(&OutputType::Exe);
let keep_numbered_bitcode = user_wants_bitcode && sess.codegen_units() > 1;
let keep_numbered_objects =
needs_crate_object || (user_wants_objects && sess.codegen_units() > 1);
for module in compiled_modules.modules.iter() {
if let Some(ref path) = module.object {
if !keep_numbered_objects {
remove(sess, path);
}
}
if let Some(ref path) = module.bytecode {
if !keep_numbered_bitcode {
remove(sess, path);
}
}
}
if !user_wants_bitcode {
if let Some(ref metadata_module) = compiled_modules.metadata_module {
if let Some(ref path) = metadata_module.bytecode {
remove(sess, &path);
}
}
if let Some(ref allocator_module) = compiled_modules.allocator_module {
if let Some(ref path) = allocator_module.bytecode {
remove(sess, path);
}
}
}
}
}
pub enum WorkItem<B: WriteBackendMethods> {
Optimize(ModuleCodegen<B::Module>),
CopyPostLtoArtifacts(CachedModuleCodegen),
LTO(lto::LtoModuleCodegen<B>),
}
impl<B: WriteBackendMethods> WorkItem<B> {
pub fn module_kind(&self) -> ModuleKind {
match *self {
WorkItem::Optimize(ref m) => m.kind,
WorkItem::CopyPostLtoArtifacts(_) | WorkItem::LTO(_) => ModuleKind::Regular,
}
}
fn start_profiling<'a>(&self, cgcx: &'a CodegenContext<B>) -> TimingGuard<'a> {
match *self {
WorkItem::Optimize(ref m) => {
cgcx.prof.generic_activity_with_arg("codegen_module_optimize", &m.name[..])
}
WorkItem::CopyPostLtoArtifacts(ref m) => cgcx
.prof
.generic_activity_with_arg("codegen_copy_artifacts_from_incr_cache", &m.name[..]),
WorkItem::LTO(ref m) => {
cgcx.prof.generic_activity_with_arg("codegen_module_perform_lto", m.name())
}
}
}
}
enum WorkItemResult<B: WriteBackendMethods> {
Compiled(CompiledModule),
NeedsLink(ModuleCodegen<B::Module>),
NeedsFatLTO(FatLTOInput<B>),
NeedsThinLTO(String, B::ThinBuffer),
}
pub enum FatLTOInput<B: WriteBackendMethods> {
Serialized { name: String, buffer: B::ModuleBuffer },
InMemory(ModuleCodegen<B::Module>),
}
fn execute_work_item<B: ExtraBackendMethods>(
cgcx: &CodegenContext<B>,
work_item: WorkItem<B>,
) -> Result<WorkItemResult<B>, FatalError> {
let module_config = cgcx.config(work_item.module_kind());
match work_item {
WorkItem::Optimize(module) => execute_optimize_work_item(cgcx, module, module_config),
WorkItem::CopyPostLtoArtifacts(module) => {
execute_copy_from_cache_work_item(cgcx, module, module_config)
}
WorkItem::LTO(module) => execute_lto_work_item(cgcx, module, module_config),
}
}
pub enum ComputedLtoType {
No,
Thin,
Fat,
}
pub fn compute_per_cgu_lto_type(
sess_lto: &Lto,
opts: &config::Options,
sess_crate_types: &[CrateType],
module_kind: ModuleKind,
) -> ComputedLtoType {
if module_kind == ModuleKind::Metadata {
return ComputedLtoType::No;
}
let linker_does_lto = opts.cg.linker_plugin_lto.enabled();
let is_allocator = module_kind == ModuleKind::Allocator;
let is_rlib = sess_crate_types.len() == 1 && sess_crate_types[0] == CrateType::Rlib;
match sess_lto {
Lto::ThinLocal if !linker_does_lto && !is_allocator => ComputedLtoType::Thin,
Lto::Thin if !linker_does_lto && !is_rlib => ComputedLtoType::Thin,
Lto::Fat if !is_rlib => ComputedLtoType::Fat,
_ => ComputedLtoType::No,
}
}
fn execute_optimize_work_item<B: ExtraBackendMethods>(
cgcx: &CodegenContext<B>,
module: ModuleCodegen<B::Module>,
module_config: &ModuleConfig,
) -> Result<WorkItemResult<B>, FatalError> {
let diag_handler = cgcx.create_diag_handler();
unsafe {
B::optimize(cgcx, &diag_handler, &module, module_config)?;
}
let lto_type = compute_per_cgu_lto_type(&cgcx.lto, &cgcx.opts, &cgcx.crate_types, module.kind);
let bitcode = if cgcx.config(module.kind).emit_pre_lto_bc {
let filename = pre_lto_bitcode_filename(&module.name);
cgcx.incr_comp_session_dir.as_ref().map(|path| path.join(&filename))
} else {
None
};
match lto_type {
ComputedLtoType::No => finish_intra_module_work(cgcx, module, module_config),
ComputedLtoType::Thin => {
let (name, thin_buffer) = B::prepare_thin(module);
if let Some(path) = bitcode {
fs::write(&path, thin_buffer.data()).unwrap_or_else(|e| {
panic!("Error writing pre-lto-bitcode file `{}`: {}", path.display(), e);
});
}
Ok(WorkItemResult::NeedsThinLTO(name, thin_buffer))
}
ComputedLtoType::Fat => match bitcode {
Some(path) => {
let (name, buffer) = B::serialize_module(module);
fs::write(&path, buffer.data()).unwrap_or_else(|e| {
panic!("Error writing pre-lto-bitcode file `{}`: {}", path.display(), e);
});
Ok(WorkItemResult::NeedsFatLTO(FatLTOInput::Serialized { name, buffer }))
}
None => Ok(WorkItemResult::NeedsFatLTO(FatLTOInput::InMemory(module))),
},
}
}
fn execute_copy_from_cache_work_item<B: ExtraBackendMethods>(
cgcx: &CodegenContext<B>,
module: CachedModuleCodegen,
module_config: &ModuleConfig,
) -> Result<WorkItemResult<B>, FatalError> {
let incr_comp_session_dir = cgcx.incr_comp_session_dir.as_ref().unwrap();
let mut object = None;
if let Some(saved_file) = module.source.saved_file {
let obj_out = cgcx.output_filenames.temp_path(OutputType::Object, Some(&module.name));
object = Some(obj_out.clone());
let source_file = in_incr_comp_dir(&incr_comp_session_dir, &saved_file);
debug!(
"copying pre-existing module `{}` from {:?} to {}",
module.name,
source_file,
obj_out.display()
);
if let Err(err) = link_or_copy(&source_file, &obj_out) {
let diag_handler = cgcx.create_diag_handler();
diag_handler.err(&format!(
"unable to copy {} to {}: {}",
source_file.display(),
obj_out.display(),
err
));
}
}
assert_eq!(object.is_some(), module_config.emit_obj != EmitObj::None);
Ok(WorkItemResult::Compiled(CompiledModule {
name: module.name,
kind: ModuleKind::Regular,
object,
bytecode: None,
}))
}
fn execute_lto_work_item<B: ExtraBackendMethods>(
cgcx: &CodegenContext<B>,
mut module: lto::LtoModuleCodegen<B>,
module_config: &ModuleConfig,
) -> Result<WorkItemResult<B>, FatalError> {
let module = unsafe { module.optimize(cgcx)? };
finish_intra_module_work(cgcx, module, module_config)
}
fn finish_intra_module_work<B: ExtraBackendMethods>(
cgcx: &CodegenContext<B>,
module: ModuleCodegen<B::Module>,
module_config: &ModuleConfig,
) -> Result<WorkItemResult<B>, FatalError> {
let diag_handler = cgcx.create_diag_handler();
if !cgcx.opts.debugging_opts.combine_cgu
|| module.kind == ModuleKind::Metadata
|| module.kind == ModuleKind::Allocator
{
let module = unsafe { B::codegen(cgcx, &diag_handler, module, module_config)? };
Ok(WorkItemResult::Compiled(module))
} else {
Ok(WorkItemResult::NeedsLink(module))
}
}
pub enum Message<B: WriteBackendMethods> {
Token(io::Result<Acquired>),
NeedsFatLTO {
result: FatLTOInput<B>,
worker_id: usize,
},
NeedsThinLTO {
name: String,
thin_buffer: B::ThinBuffer,
worker_id: usize,
},
NeedsLink {
module: ModuleCodegen<B::Module>,
worker_id: usize,
},
Done {
result: Result<CompiledModule, Option<WorkerFatalError>>,
worker_id: usize,
},
CodegenDone {
llvm_work_item: WorkItem<B>,
cost: u64,
},
AddImportOnlyModule {
module_data: SerializedModule<B::ModuleBuffer>,
work_product: WorkProduct,
},
CodegenComplete,
CodegenItem,
CodegenAborted,
}
struct Diagnostic {
msg: String,
code: Option<DiagnosticId>,
lvl: Level,
}
#[derive(PartialEq, Clone, Copy, Debug)]
enum MainThreadWorkerState {
Idle,
Codegenning,
LLVMing,
}
fn start_executing_work<B: ExtraBackendMethods>(
backend: B,
tcx: TyCtxt<'_>,
crate_info: &CrateInfo,
shared_emitter: SharedEmitter,
codegen_worker_send: Sender<Message<B>>,
coordinator_receive: Receiver<Box<dyn Any + Send>>,
total_cgus: usize,
jobserver: Client,
regular_config: Arc<ModuleConfig>,
metadata_config: Arc<ModuleConfig>,
allocator_config: Arc<ModuleConfig>,
tx_to_llvm_workers: Sender<Box<dyn Any + Send>>,
) -> thread::JoinHandle<Result<CompiledModules, ()>> {
let coordinator_send = tx_to_llvm_workers;
let sess = tcx.sess;
let exported_symbols = {
let mut exported_symbols = FxHashMap::default();
let copy_symbols = |cnum| {
let symbols = tcx
.exported_symbols(cnum)
.iter()
.map(|&(s, lvl)| (symbol_name_for_instance_in_crate(tcx, s, cnum), lvl))
.collect();
Arc::new(symbols)
};
match sess.lto() {
Lto::No => None,
Lto::ThinLocal => {
exported_symbols.insert(LOCAL_CRATE, copy_symbols(LOCAL_CRATE));
Some(Arc::new(exported_symbols))
}
Lto::Fat | Lto::Thin => {
exported_symbols.insert(LOCAL_CRATE, copy_symbols(LOCAL_CRATE));
for &cnum in tcx.crates().iter() {
exported_symbols.insert(cnum, copy_symbols(cnum));
}
Some(Arc::new(exported_symbols))
}
}
};
let coordinator_send2 = coordinator_send.clone();
let helper = jobserver
.into_helper_thread(move |token| {
drop(coordinator_send2.send(Box::new(Message::Token::<B>(token))));
})
.expect("failed to spawn helper thread");
let mut each_linked_rlib_for_lto = Vec::new();
drop(link::each_linked_rlib(crate_info, &mut |cnum, path| {
if link::ignored_for_lto(sess, crate_info, cnum) {
return;
}
each_linked_rlib_for_lto.push((cnum, path.to_path_buf()));
}));
let ol = if tcx.sess.opts.debugging_opts.no_codegen
|| !tcx.sess.opts.output_types.should_codegen()
{
config::OptLevel::No
} else {
tcx.backend_optimization_level(LOCAL_CRATE)
};
let cgcx = CodegenContext::<B> {
backend: backend.clone(),
crate_types: sess.crate_types().to_vec(),
each_linked_rlib_for_lto,
lto: sess.lto(),
no_landing_pads: sess.panic_strategy() == PanicStrategy::Abort,
fewer_names: sess.fewer_names(),
save_temps: sess.opts.cg.save_temps,
opts: Arc::new(sess.opts.clone()),
prof: sess.prof.clone(),
exported_symbols,
remark: sess.opts.cg.remark.clone(),
worker: 0,
incr_comp_session_dir: sess.incr_comp_session_dir_opt().map(|r| r.clone()),
cgu_reuse_tracker: sess.cgu_reuse_tracker.clone(),
coordinator_send,
diag_emitter: shared_emitter.clone(),
output_filenames: tcx.output_filenames(LOCAL_CRATE),
regular_module_config: regular_config,
metadata_module_config: metadata_config,
allocator_module_config: allocator_config,
tm_factory: TargetMachineFactory(backend.target_machine_factory(tcx.sess, ol)),
total_cgus,
msvc_imps_needed: msvc_imps_needed(tcx),
is_pe_coff: tcx.sess.target.is_like_windows,
target_pointer_width: tcx.sess.target.pointer_width,
target_arch: tcx.sess.target.arch.clone(),
debuginfo: tcx.sess.opts.debuginfo,
};
return thread::spawn(move || {
let max_workers = num_cpus::get();
let mut worker_id_counter = 0;
let mut free_worker_ids = Vec::new();
let mut get_worker_id = |free_worker_ids: &mut Vec<usize>| {
if let Some(id) = free_worker_ids.pop() {
id
} else {
let id = worker_id_counter;
worker_id_counter += 1;
id
}
};
let mut compiled_modules = vec![];
let mut compiled_metadata_module = None;
let mut compiled_allocator_module = None;
let mut needs_link = Vec::new();
let mut needs_fat_lto = Vec::new();
let mut needs_thin_lto = Vec::new();
let mut lto_import_only_modules = Vec::new();
let mut started_lto = false;
let mut codegen_aborted = false;
let mut codegen_done = false;
let mut work_items = Vec::<(WorkItem<B>, u64)>::new();
let mut tokens = Vec::new();
let mut main_thread_worker_state = MainThreadWorkerState::Idle;
let mut running = 0;
let prof = &cgcx.prof;
let mut llvm_start_time: Option<VerboseTimingGuard<'_>> = None;
while !codegen_done
|| running > 0
|| (!codegen_aborted
&& !(work_items.is_empty()
&& needs_fat_lto.is_empty()
&& needs_thin_lto.is_empty()
&& lto_import_only_modules.is_empty()
&& main_thread_worker_state == MainThreadWorkerState::Idle))
{
if !codegen_done {
if main_thread_worker_state == MainThreadWorkerState::Idle {
if !queue_full_enough(work_items.len(), running, max_workers) {
if codegen_worker_send.send(Message::CodegenItem).is_err() {
panic!("Could not send Message::CodegenItem to main thread")
}
main_thread_worker_state = MainThreadWorkerState::Codegenning;
} else {
let (item, _) =
work_items.pop().expect("queue empty - queue_full_enough() broken?");
let cgcx = CodegenContext {
worker: get_worker_id(&mut free_worker_ids),
..cgcx.clone()
};
maybe_start_llvm_timer(
prof,
cgcx.config(item.module_kind()),
&mut llvm_start_time,
);
main_thread_worker_state = MainThreadWorkerState::LLVMing;
spawn_work(cgcx, item);
}
}
} else if codegen_aborted {
} else {
if work_items.is_empty()
&& running == 0
&& main_thread_worker_state == MainThreadWorkerState::Idle
{
assert!(!started_lto);
started_lto = true;
let needs_fat_lto = mem::take(&mut needs_fat_lto);
let needs_thin_lto = mem::take(&mut needs_thin_lto);
let import_only_modules = mem::take(&mut lto_import_only_modules);
for (work, cost) in
generate_lto_work(&cgcx, needs_fat_lto, needs_thin_lto, import_only_modules)
{
let insertion_index = work_items
.binary_search_by_key(&cost, |&(_, cost)| cost)
.unwrap_or_else(|e| e);
work_items.insert(insertion_index, (work, cost));
if !cgcx.opts.debugging_opts.no_parallel_llvm {
helper.request_token();
}
}
}
match main_thread_worker_state {
MainThreadWorkerState::Idle => {
if let Some((item, _)) = work_items.pop() {
let cgcx = CodegenContext {
worker: get_worker_id(&mut free_worker_ids),
..cgcx.clone()
};
maybe_start_llvm_timer(
prof,
cgcx.config(item.module_kind()),
&mut llvm_start_time,
);
main_thread_worker_state = MainThreadWorkerState::LLVMing;
spawn_work(cgcx, item);
} else {
debug_assert!(running > 0);
running -= 1;
main_thread_worker_state = MainThreadWorkerState::LLVMing;
}
}
MainThreadWorkerState::Codegenning => bug!(
"codegen worker should not be codegenning after \
codegen was already completed"
),
MainThreadWorkerState::LLVMing => {
}
}
}
while !codegen_aborted && !work_items.is_empty() && running < tokens.len() {
let (item, _) = work_items.pop().unwrap();
maybe_start_llvm_timer(prof, cgcx.config(item.module_kind()), &mut llvm_start_time);
let cgcx =
CodegenContext { worker: get_worker_id(&mut free_worker_ids), ..cgcx.clone() };
spawn_work(cgcx, item);
running += 1;
}
tokens.truncate(running);
let mut free_worker = |worker_id| {
if main_thread_worker_state == MainThreadWorkerState::LLVMing {
main_thread_worker_state = MainThreadWorkerState::Idle;
} else {
running -= 1;
}
free_worker_ids.push(worker_id);
};
let msg = coordinator_receive.recv().unwrap();
match *msg.downcast::<Message<B>>().ok().unwrap() {
Message::Token(token) => {
match token {
Ok(token) => {
tokens.push(token);
if main_thread_worker_state == MainThreadWorkerState::LLVMing {
main_thread_worker_state = MainThreadWorkerState::Idle;
running += 1;
}
}
Err(e) => {
let msg = &format!("failed to acquire jobserver token: {}", e);
shared_emitter.fatal(msg);
panic!("{}", msg)
}
}
}
Message::CodegenDone { llvm_work_item, cost } => {
let insertion_index = work_items.binary_search_by_key(&cost, |&(_, cost)| cost);
let insertion_index = match insertion_index {
Ok(idx) | Err(idx) => idx,
};
work_items.insert(insertion_index, (llvm_work_item, cost));
if !cgcx.opts.debugging_opts.no_parallel_llvm {
helper.request_token();
}
assert!(!codegen_aborted);
assert_eq!(main_thread_worker_state, MainThreadWorkerState::Codegenning);
main_thread_worker_state = MainThreadWorkerState::Idle;
}
Message::CodegenComplete => {
codegen_done = true;
assert!(!codegen_aborted);
assert_eq!(main_thread_worker_state, MainThreadWorkerState::Codegenning);
main_thread_worker_state = MainThreadWorkerState::Idle;
}
Message::CodegenAborted => {
assert!(!codegen_aborted);
codegen_done = true;
codegen_aborted = true;
assert_eq!(main_thread_worker_state, MainThreadWorkerState::Codegenning);
}
Message::Done { result: Ok(compiled_module), worker_id } => {
free_worker(worker_id);
match compiled_module.kind {
ModuleKind::Regular => {
compiled_modules.push(compiled_module);
}
ModuleKind::Metadata => {
assert!(compiled_metadata_module.is_none());
compiled_metadata_module = Some(compiled_module);
}
ModuleKind::Allocator => {
assert!(compiled_allocator_module.is_none());
compiled_allocator_module = Some(compiled_module);
}
}
}
Message::NeedsLink { module, worker_id } => {
free_worker(worker_id);
needs_link.push(module);
}
Message::NeedsFatLTO { result, worker_id } => {
assert!(!started_lto);
free_worker(worker_id);
needs_fat_lto.push(result);
}
Message::NeedsThinLTO { name, thin_buffer, worker_id } => {
assert!(!started_lto);
free_worker(worker_id);
needs_thin_lto.push((name, thin_buffer));
}
Message::AddImportOnlyModule { module_data, work_product } => {
assert!(!started_lto);
assert!(!codegen_done);
assert_eq!(main_thread_worker_state, MainThreadWorkerState::Codegenning);
lto_import_only_modules.push((module_data, work_product));
main_thread_worker_state = MainThreadWorkerState::Idle;
}
Message::Done { result: Err(None), worker_id: _ } => {
bug!("worker thread panicked");
}
Message::Done { result: Err(Some(WorkerFatalError)), worker_id: _ } => {
return Err(());
}
Message::CodegenItem => bug!("the coordinator should not receive codegen requests"),
}
}
let needs_link = mem::take(&mut needs_link);
if !needs_link.is_empty() {
assert!(compiled_modules.is_empty());
let diag_handler = cgcx.create_diag_handler();
let module = B::run_link(&cgcx, &diag_handler, needs_link).map_err(|_| ())?;
let module = unsafe {
B::codegen(&cgcx, &diag_handler, module, cgcx.config(ModuleKind::Regular))
.map_err(|_| ())?
};
compiled_modules.push(module);
}
drop(llvm_start_time);
compiled_modules.sort_by(|a, b| a.name.cmp(&b.name));
Ok(CompiledModules {
modules: compiled_modules,
metadata_module: compiled_metadata_module,
allocator_module: compiled_allocator_module,
})
});
fn queue_full_enough(
items_in_queue: usize,
workers_running: usize,
max_workers: usize,
) -> bool {
items_in_queue > 0 && items_in_queue >= max_workers.saturating_sub(workers_running / 2)
}
fn maybe_start_llvm_timer<'a>(
prof: &'a SelfProfilerRef,
config: &ModuleConfig,
llvm_start_time: &mut Option<VerboseTimingGuard<'a>>,
) {
if config.time_module && llvm_start_time.is_none() {
*llvm_start_time = Some(prof.extra_verbose_generic_activity("LLVM_passes", "crate"));
}
}
}
#[must_use]
pub struct WorkerFatalError;
fn spawn_work<B: ExtraBackendMethods>(cgcx: CodegenContext<B>, work: WorkItem<B>) {
thread::spawn(move || {
struct Bomb<B: ExtraBackendMethods> {
coordinator_send: Sender<Box<dyn Any + Send>>,
result: Option<Result<WorkItemResult<B>, FatalError>>,
worker_id: usize,
}
impl<B: ExtraBackendMethods> Drop for Bomb<B> {
fn drop(&mut self) {
let worker_id = self.worker_id;
let msg = match self.result.take() {
Some(Ok(WorkItemResult::Compiled(m))) => {
Message::Done::<B> { result: Ok(m), worker_id }
}
Some(Ok(WorkItemResult::NeedsLink(m))) => {
Message::NeedsLink::<B> { module: m, worker_id }
}
Some(Ok(WorkItemResult::NeedsFatLTO(m))) => {
Message::NeedsFatLTO::<B> { result: m, worker_id }
}
Some(Ok(WorkItemResult::NeedsThinLTO(name, thin_buffer))) => {
Message::NeedsThinLTO::<B> { name, thin_buffer, worker_id }
}
Some(Err(FatalError)) => {
Message::Done::<B> { result: Err(Some(WorkerFatalError)), worker_id }
}
None => Message::Done::<B> { result: Err(None), worker_id },
};
drop(self.coordinator_send.send(Box::new(msg)));
}
}
let mut bomb = Bomb::<B> {
coordinator_send: cgcx.coordinator_send.clone(),
result: None,
worker_id: cgcx.worker,
};
bomb.result = {
let _prof_timer = work.start_profiling(&cgcx);
Some(execute_work_item(&cgcx, work))
};
});
}
enum SharedEmitterMessage {
Diagnostic(Diagnostic),
InlineAsmError(u32, String, Level, Option<(String, Vec<InnerSpan>)>),
AbortIfErrors,
Fatal(String),
}
#[derive(Clone)]
pub struct SharedEmitter {
sender: Sender<SharedEmitterMessage>,
}
pub struct SharedEmitterMain {
receiver: Receiver<SharedEmitterMessage>,
}
impl SharedEmitter {
pub fn new() -> (SharedEmitter, SharedEmitterMain) {
let (sender, receiver) = channel();
(SharedEmitter { sender }, SharedEmitterMain { receiver })
}
pub fn inline_asm_error(
&self,
cookie: u32,
msg: String,
level: Level,
source: Option<(String, Vec<InnerSpan>)>,
) {
drop(self.sender.send(SharedEmitterMessage::InlineAsmError(cookie, msg, level, source)));
}
pub fn fatal(&self, msg: &str) {
drop(self.sender.send(SharedEmitterMessage::Fatal(msg.to_string())));
}
}
impl Emitter for SharedEmitter {
fn emit_diagnostic(&mut self, diag: &rustc_errors::Diagnostic) {
drop(self.sender.send(SharedEmitterMessage::Diagnostic(Diagnostic {
msg: diag.message(),
code: diag.code.clone(),
lvl: diag.level,
})));
for child in &diag.children {
drop(self.sender.send(SharedEmitterMessage::Diagnostic(Diagnostic {
msg: child.message(),
code: None,
lvl: child.level,
})));
}
drop(self.sender.send(SharedEmitterMessage::AbortIfErrors));
}
fn source_map(&self) -> Option<&Lrc<SourceMap>> {
None
}
}
impl SharedEmitterMain {
pub fn check(&self, sess: &Session, blocking: bool) {
loop {
let message = if blocking {
match self.receiver.recv() {
Ok(message) => Ok(message),
Err(_) => Err(()),
}
} else {
match self.receiver.try_recv() {
Ok(message) => Ok(message),
Err(_) => Err(()),
}
};
match message {
Ok(SharedEmitterMessage::Diagnostic(diag)) => {
let handler = sess.diagnostic();
let mut d = rustc_errors::Diagnostic::new(diag.lvl, &diag.msg);
if let Some(code) = diag.code {
d.code(code);
}
handler.emit_diagnostic(&d);
}
Ok(SharedEmitterMessage::InlineAsmError(cookie, msg, level, source)) => {
let msg = msg.strip_prefix("error: ").unwrap_or(&msg);
let mut err = match level {
Level::Error => sess.struct_err(&msg),
Level::Warning => sess.struct_warn(&msg),
Level::Note => sess.struct_note_without_error(&msg),
_ => bug!("Invalid inline asm diagnostic level"),
};
if cookie != 0 {
let pos = BytePos::from_u32(cookie);
let span = Span::with_root_ctxt(pos, pos);
err.set_span(span);
};
if let Some((buffer, spans)) = source {
let source = sess
.source_map()
.new_source_file(FileName::inline_asm_source_code(&buffer), buffer);
let source_span = Span::with_root_ctxt(source.start_pos, source.end_pos);
let spans: Vec<_> =
spans.iter().map(|sp| source_span.from_inner(*sp)).collect();
err.span_note(spans, "instantiated into assembly here");
}
err.emit();
}
Ok(SharedEmitterMessage::AbortIfErrors) => {
sess.abort_if_errors();
}
Ok(SharedEmitterMessage::Fatal(msg)) => {
sess.fatal(&msg);
}
Err(_) => {
break;
}
}
}
}
}
pub struct OngoingCodegen<B: ExtraBackendMethods> {
pub backend: B,
pub crate_name: Symbol,
pub metadata: EncodedMetadata,
pub windows_subsystem: Option<String>,
pub linker_info: LinkerInfo,
pub crate_info: CrateInfo,
pub coordinator_send: Sender<Box<dyn Any + Send>>,
pub codegen_worker_receive: Receiver<Message<B>>,
pub shared_emitter_main: SharedEmitterMain,
pub future: thread::JoinHandle<Result<CompiledModules, ()>>,
pub output_filenames: Arc<OutputFilenames>,
}
impl<B: ExtraBackendMethods> OngoingCodegen<B> {
pub fn join(self, sess: &Session) -> (CodegenResults, FxHashMap<WorkProductId, WorkProduct>) {
let _timer = sess.timer("finish_ongoing_codegen");
self.shared_emitter_main.check(sess, true);
let future = self.future;
let compiled_modules = sess.time("join_worker_thread", || match future.join() {
Ok(Ok(compiled_modules)) => compiled_modules,
Ok(Err(())) => {
sess.abort_if_errors();
panic!("expected abort due to worker thread errors")
}
Err(_) => {
bug!("panic during codegen/LLVM phase");
}
});
sess.cgu_reuse_tracker.check_expected_reuse(sess.diagnostic());
sess.abort_if_errors();
let work_products =
copy_all_cgu_workproducts_to_incr_comp_cache_dir(sess, &compiled_modules);
produce_final_output_artifacts(sess, &compiled_modules, &self.output_filenames);
if sess.codegen_units() == 1 && sess.time_llvm_passes() {
self.backend.print_pass_timings()
}
(
CodegenResults {
crate_name: self.crate_name,
metadata: self.metadata,
windows_subsystem: self.windows_subsystem,
linker_info: self.linker_info,
crate_info: self.crate_info,
modules: compiled_modules.modules,
allocator_module: compiled_modules.allocator_module,
metadata_module: compiled_modules.metadata_module,
},
work_products,
)
}
pub fn submit_pre_codegened_module_to_llvm(
&self,
tcx: TyCtxt<'_>,
module: ModuleCodegen<B::Module>,
) {
self.wait_for_signal_to_codegen_item();
self.check_for_errors(tcx.sess);
let cost = 0;
submit_codegened_module_to_llvm(&self.backend, &self.coordinator_send, module, cost);
}
pub fn codegen_finished(&self, tcx: TyCtxt<'_>) {
self.wait_for_signal_to_codegen_item();
self.check_for_errors(tcx.sess);
drop(self.coordinator_send.send(Box::new(Message::CodegenComplete::<B>)));
}
pub fn codegen_aborted(self) {
drop(self.coordinator_send.send(Box::new(Message::CodegenAborted::<B>)));
drop(self.future.join());
}
pub fn check_for_errors(&self, sess: &Session) {
self.shared_emitter_main.check(sess, false);
}
pub fn wait_for_signal_to_codegen_item(&self) {
match self.codegen_worker_receive.recv() {
Ok(Message::CodegenItem) => {
}
Ok(_) => panic!("unexpected message"),
Err(_) => {
}
}
}
}
pub fn submit_codegened_module_to_llvm<B: ExtraBackendMethods>(
_backend: &B,
tx_to_llvm_workers: &Sender<Box<dyn Any + Send>>,
module: ModuleCodegen<B::Module>,
cost: u64,
) {
let llvm_work_item = WorkItem::Optimize(module);
drop(tx_to_llvm_workers.send(Box::new(Message::CodegenDone::<B> { llvm_work_item, cost })));
}
pub fn submit_post_lto_module_to_llvm<B: ExtraBackendMethods>(
_backend: &B,
tx_to_llvm_workers: &Sender<Box<dyn Any + Send>>,
module: CachedModuleCodegen,
) {
let llvm_work_item = WorkItem::CopyPostLtoArtifacts(module);
drop(tx_to_llvm_workers.send(Box::new(Message::CodegenDone::<B> { llvm_work_item, cost: 0 })));
}
pub fn submit_pre_lto_module_to_llvm<B: ExtraBackendMethods>(
_backend: &B,
tcx: TyCtxt<'_>,
tx_to_llvm_workers: &Sender<Box<dyn Any + Send>>,
module: CachedModuleCodegen,
) {
let filename = pre_lto_bitcode_filename(&module.name);
let bc_path = in_incr_comp_dir_sess(tcx.sess, &filename);
let file = fs::File::open(&bc_path)
.unwrap_or_else(|e| panic!("failed to open bitcode file `{}`: {}", bc_path.display(), e));
let mmap = unsafe {
memmap::Mmap::map(&file).unwrap_or_else(|e| {
panic!("failed to mmap bitcode file `{}`: {}", bc_path.display(), e)
})
};
drop(tx_to_llvm_workers.send(Box::new(Message::AddImportOnlyModule::<B> {
module_data: SerializedModule::FromUncompressedFile(mmap),
work_product: module.source,
})));
}
pub fn pre_lto_bitcode_filename(module_name: &str) -> String {
format!("{}.{}", module_name, PRE_LTO_BC_EXT)
}
fn msvc_imps_needed(tcx: TyCtxt<'_>) -> bool {
assert!(
!(tcx.sess.opts.cg.linker_plugin_lto.enabled()
&& tcx.sess.target.is_like_windows
&& tcx.sess.opts.cg.prefer_dynamic)
);
tcx.sess.target.is_like_windows &&
tcx.sess.crate_types().iter().any(|ct| *ct == CrateType::Rlib) &&
!tcx.sess.opts.cg.linker_plugin_lto.enabled()
}