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The Eq trait has a special hidden function. MIR `InstrumentCoverage` would add this function to the coverage map, but it is never called, so the `Eq` trait would always appear uncovered. Fixes: #83601 The fix required creating a new function attribute `no_coverage` to mark functions that should be ignored by `InstrumentCoverage` and the coverage `mapgen` (during codegen). While testing, I also noticed two other issues: * spanview debug file output ICEd on a function with no body. The workaround for this is included in this PR. * `assert_*!()` macro coverage can appear covered if followed by another `assert_*!()` macro. Normally they appear uncovered. I submitted a new Issue #84561, and added a coverage test to demonstrate this issue.
362 lines
16 KiB
Rust
362 lines
16 KiB
Rust
use crate::common::CodegenCx;
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use crate::coverageinfo;
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use crate::llvm;
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use llvm::coverageinfo::CounterMappingRegion;
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use rustc_codegen_ssa::coverageinfo::map::{Counter, CounterExpression};
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use rustc_codegen_ssa::traits::{ConstMethods, CoverageInfoMethods};
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use rustc_data_structures::fx::{FxHashMap, FxHashSet, FxIndexSet};
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use rustc_hir::def_id::{DefId, DefIdSet, LOCAL_CRATE};
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use rustc_llvm::RustString;
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use rustc_middle::middle::codegen_fn_attrs::CodegenFnAttrFlags;
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use rustc_middle::mir::coverage::CodeRegion;
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use rustc_span::Symbol;
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use std::ffi::CString;
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use tracing::debug;
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/// Generates and exports the Coverage Map.
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///
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/// This Coverage Map complies with Coverage Mapping Format version 4 (zero-based encoded as 3),
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/// as defined at [LLVM Code Coverage Mapping Format](https://github.com/rust-lang/llvm-project/blob/rustc/11.0-2020-10-12/llvm/docs/CoverageMappingFormat.rst#llvm-code-coverage-mapping-format)
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/// and published in Rust's November 2020 fork of LLVM. This version is supported by the LLVM
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/// coverage tools (`llvm-profdata` and `llvm-cov`) bundled with Rust's fork of LLVM.
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///
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/// Consequently, Rust's bundled version of Clang also generates Coverage Maps compliant with
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/// the same version. Clang's implementation of Coverage Map generation was referenced when
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/// implementing this Rust version, and though the format documentation is very explicit and
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/// detailed, some undocumented details in Clang's implementation (that may or may not be important)
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/// were also replicated for Rust's Coverage Map.
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pub fn finalize<'ll, 'tcx>(cx: &CodegenCx<'ll, 'tcx>) {
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let tcx = cx.tcx;
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// Ensure LLVM supports Coverage Map Version 4 (encoded as a zero-based value: 3).
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// If not, the LLVM Version must be less than 11.
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let version = coverageinfo::mapping_version();
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if version != 3 {
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tcx.sess.fatal("rustc option `-Z instrument-coverage` requires LLVM 11 or higher.");
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}
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debug!("Generating coverage map for CodegenUnit: `{}`", cx.codegen_unit.name());
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// In order to show that unused functions have coverage counts of zero (0), LLVM requires the
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// functions exist. Generate synthetic functions with a (required) single counter, and add the
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// MIR `Coverage` code regions to the `function_coverage_map`, before calling
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// `ctx.take_function_coverage_map()`.
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if !tcx.sess.instrument_coverage_except_unused_functions() {
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add_unused_functions(cx);
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}
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let function_coverage_map = match cx.coverage_context() {
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Some(ctx) => ctx.take_function_coverage_map(),
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None => return,
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};
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if function_coverage_map.is_empty() {
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// This module has no functions with coverage instrumentation
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return;
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}
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let mut mapgen = CoverageMapGenerator::new();
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// Encode coverage mappings and generate function records
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let mut function_data = Vec::new();
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for (instance, function_coverage) in function_coverage_map {
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debug!("Generate function coverage for {}, {:?}", cx.codegen_unit.name(), instance);
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let mangled_function_name = tcx.symbol_name(instance).to_string();
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let source_hash = function_coverage.source_hash();
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let is_used = function_coverage.is_used();
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let (expressions, counter_regions) =
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function_coverage.get_expressions_and_counter_regions();
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let coverage_mapping_buffer = llvm::build_byte_buffer(|coverage_mapping_buffer| {
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mapgen.write_coverage_mapping(expressions, counter_regions, coverage_mapping_buffer);
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});
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debug_assert!(
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coverage_mapping_buffer.len() > 0,
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"Every `FunctionCoverage` should have at least one counter"
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);
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function_data.push((mangled_function_name, source_hash, is_used, coverage_mapping_buffer));
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}
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// Encode all filenames referenced by counters/expressions in this module
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let filenames_buffer = llvm::build_byte_buffer(|filenames_buffer| {
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coverageinfo::write_filenames_section_to_buffer(&mapgen.filenames, filenames_buffer);
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});
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let filenames_size = filenames_buffer.len();
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let filenames_val = cx.const_bytes(&filenames_buffer[..]);
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let filenames_ref = coverageinfo::hash_bytes(filenames_buffer);
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// Generate the LLVM IR representation of the coverage map and store it in a well-known global
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let cov_data_val = mapgen.generate_coverage_map(cx, version, filenames_size, filenames_val);
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for (mangled_function_name, source_hash, is_used, coverage_mapping_buffer) in function_data {
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save_function_record(
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cx,
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mangled_function_name,
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source_hash,
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filenames_ref,
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coverage_mapping_buffer,
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is_used,
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);
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}
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// Save the coverage data value to LLVM IR
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coverageinfo::save_cov_data_to_mod(cx, cov_data_val);
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}
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struct CoverageMapGenerator {
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filenames: FxIndexSet<CString>,
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}
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impl CoverageMapGenerator {
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fn new() -> Self {
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Self { filenames: FxIndexSet::default() }
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}
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/// Using the `expressions` and `counter_regions` collected for the current function, generate
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/// the `mapping_regions` and `virtual_file_mapping`, and capture any new filenames. Then use
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/// LLVM APIs to encode the `virtual_file_mapping`, `expressions`, and `mapping_regions` into
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/// the given `coverage_mapping` byte buffer, compliant with the LLVM Coverage Mapping format.
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fn write_coverage_mapping(
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&mut self,
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expressions: Vec<CounterExpression>,
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counter_regions: impl Iterator<Item = (Counter, &'a CodeRegion)>,
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coverage_mapping_buffer: &RustString,
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) {
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let mut counter_regions = counter_regions.collect::<Vec<_>>();
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if counter_regions.is_empty() {
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return;
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}
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let mut virtual_file_mapping = Vec::new();
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let mut mapping_regions = Vec::new();
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let mut current_file_name = None;
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let mut current_file_id = 0;
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// Convert the list of (Counter, CodeRegion) pairs to an array of `CounterMappingRegion`, sorted
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// by filename and position. Capture any new files to compute the `CounterMappingRegion`s
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// `file_id` (indexing files referenced by the current function), and construct the
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// function-specific `virtual_file_mapping` from `file_id` to its index in the module's
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// `filenames` array.
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counter_regions.sort_unstable_by_key(|(_counter, region)| *region);
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for (counter, region) in counter_regions {
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let CodeRegion { file_name, start_line, start_col, end_line, end_col } = *region;
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let same_file = current_file_name.as_ref().map_or(false, |p| *p == file_name);
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if !same_file {
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if current_file_name.is_some() {
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current_file_id += 1;
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}
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current_file_name = Some(file_name);
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let c_filename = CString::new(file_name.to_string())
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.expect("null error converting filename to C string");
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debug!(" file_id: {} = '{:?}'", current_file_id, c_filename);
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let (filenames_index, _) = self.filenames.insert_full(c_filename);
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virtual_file_mapping.push(filenames_index as u32);
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}
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debug!("Adding counter {:?} to map for {:?}", counter, region);
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mapping_regions.push(CounterMappingRegion::code_region(
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counter,
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current_file_id,
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start_line,
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start_col,
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end_line,
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end_col,
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));
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}
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// Encode and append the current function's coverage mapping data
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coverageinfo::write_mapping_to_buffer(
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virtual_file_mapping,
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expressions,
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mapping_regions,
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coverage_mapping_buffer,
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);
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}
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/// Construct coverage map header and the array of function records, and combine them into the
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/// coverage map. Save the coverage map data into the LLVM IR as a static global using a
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/// specific, well-known section and name.
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fn generate_coverage_map(
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self,
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cx: &CodegenCx<'ll, 'tcx>,
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version: u32,
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filenames_size: usize,
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filenames_val: &'ll llvm::Value,
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) -> &'ll llvm::Value {
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debug!("cov map: filenames_size = {}, 0-based version = {}", filenames_size, version);
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// Create the coverage data header (Note, fields 0 and 2 are now always zero,
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// as of `llvm::coverage::CovMapVersion::Version4`.)
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let zero_was_n_records_val = cx.const_u32(0);
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let filenames_size_val = cx.const_u32(filenames_size as u32);
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let zero_was_coverage_size_val = cx.const_u32(0);
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let version_val = cx.const_u32(version);
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let cov_data_header_val = cx.const_struct(
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&[zero_was_n_records_val, filenames_size_val, zero_was_coverage_size_val, version_val],
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/*packed=*/ false,
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);
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// Create the complete LLVM coverage data value to add to the LLVM IR
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cx.const_struct(&[cov_data_header_val, filenames_val], /*packed=*/ false)
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}
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}
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/// Construct a function record and combine it with the function's coverage mapping data.
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/// Save the function record into the LLVM IR as a static global using a
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/// specific, well-known section and name.
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fn save_function_record(
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cx: &CodegenCx<'ll, 'tcx>,
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mangled_function_name: String,
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source_hash: u64,
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filenames_ref: u64,
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coverage_mapping_buffer: Vec<u8>,
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is_used: bool,
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) {
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// Concatenate the encoded coverage mappings
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let coverage_mapping_size = coverage_mapping_buffer.len();
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let coverage_mapping_val = cx.const_bytes(&coverage_mapping_buffer[..]);
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let func_name_hash = coverageinfo::hash_str(&mangled_function_name);
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let func_name_hash_val = cx.const_u64(func_name_hash);
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let coverage_mapping_size_val = cx.const_u32(coverage_mapping_size as u32);
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let source_hash_val = cx.const_u64(source_hash);
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let filenames_ref_val = cx.const_u64(filenames_ref);
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let func_record_val = cx.const_struct(
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&[
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func_name_hash_val,
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coverage_mapping_size_val,
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source_hash_val,
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filenames_ref_val,
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coverage_mapping_val,
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],
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/*packed=*/ true,
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);
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coverageinfo::save_func_record_to_mod(cx, func_name_hash, func_record_val, is_used);
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}
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/// When finalizing the coverage map, `FunctionCoverage` only has the `CodeRegion`s and counters for
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/// the functions that went through codegen; such as public functions and "used" functions
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/// (functions referenced by other "used" or public items). Any other functions considered unused,
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/// or "Unreachable", were still parsed and processed through the MIR stage, but were not
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/// codegenned. (Note that `-Clink-dead-code` can force some unused code to be codegenned, but
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/// that flag is known to cause other errors, when combined with `-Z instrument-coverage`; and
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/// `-Clink-dead-code` will not generate code for unused generic functions.)
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///
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/// We can find the unused functions (including generic functions) by the set difference of all MIR
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/// `DefId`s (`tcx` query `mir_keys`) minus the codegenned `DefId`s (`tcx` query
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/// `collect_and_partition_mono_items`).
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///
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/// *HOWEVER* the codegenned `DefId`s are partitioned across multiple `CodegenUnit`s (CGUs), and
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/// this function is processing a `function_coverage_map` for the functions (`Instance`/`DefId`)
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/// allocated to only one of those CGUs. We must NOT inject any unused functions's `CodeRegion`s
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/// more than once, so we have to pick a CGUs `function_coverage_map` into which the unused
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/// function will be inserted.
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fn add_unused_functions<'ll, 'tcx>(cx: &CodegenCx<'ll, 'tcx>) {
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let tcx = cx.tcx;
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// FIXME(#79622): Can this solution be simplified and/or improved? Are there other sources
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// of compiler state data that might help (or better sources that could be exposed, but
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// aren't yet)?
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let ignore_unused_generics = tcx.sess.instrument_coverage_except_unused_generics();
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let all_def_ids: DefIdSet = tcx
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.mir_keys(LOCAL_CRATE)
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.iter()
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.filter_map(|local_def_id| {
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let def_id = local_def_id.to_def_id();
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if ignore_unused_generics && tcx.generics_of(def_id).requires_monomorphization(tcx) {
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return None;
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}
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Some(local_def_id.to_def_id())
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})
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.collect();
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let codegenned_def_ids = tcx.codegened_and_inlined_items(LOCAL_CRATE);
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let mut unused_def_ids_by_file: FxHashMap<Symbol, Vec<DefId>> = FxHashMap::default();
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for &non_codegenned_def_id in all_def_ids.difference(codegenned_def_ids) {
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let codegen_fn_attrs = tcx.codegen_fn_attrs(non_codegenned_def_id);
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if codegen_fn_attrs.flags.contains(CodegenFnAttrFlags::NO_COVERAGE) {
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continue;
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}
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// Make sure the non-codegenned (unused) function has a file_name
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if let Some(non_codegenned_file_name) = tcx.covered_file_name(non_codegenned_def_id) {
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let def_ids =
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unused_def_ids_by_file.entry(*non_codegenned_file_name).or_insert_with(Vec::new);
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def_ids.push(non_codegenned_def_id);
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}
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}
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if unused_def_ids_by_file.is_empty() {
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// There are no unused functions with file names to add (in any CGU)
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return;
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}
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// Each `CodegenUnit` (CGU) has its own function_coverage_map, and generates a specific binary
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// with its own coverage map.
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//
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// Each covered function `Instance` can be included in only one coverage map, produced from a
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// specific function_coverage_map, from a specific CGU.
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//
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// Since unused functions did not generate code, they are not associated with any CGU yet.
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//
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// To avoid injecting the unused functions in multiple coverage maps (for multiple CGUs)
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// determine which function_coverage_map has the responsibility for publishing unreachable
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// coverage, based on file name: For each unused function, find the CGU that generates the
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// first function (based on sorted `DefId`) from the same file.
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//
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// Add a new `FunctionCoverage` to the `function_coverage_map`, with unreachable code regions
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// for each region in it's MIR.
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// Convert the `HashSet` of `codegenned_def_ids` to a sortable vector, and sort them.
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let mut sorted_codegenned_def_ids: Vec<DefId> =
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codegenned_def_ids.iter().map(|def_id| *def_id).collect();
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sorted_codegenned_def_ids.sort_unstable();
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let mut first_covered_def_id_by_file: FxHashMap<Symbol, DefId> = FxHashMap::default();
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for &def_id in sorted_codegenned_def_ids.iter() {
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if let Some(covered_file_name) = tcx.covered_file_name(def_id) {
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// Only add files known to have unused functions
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if unused_def_ids_by_file.contains_key(covered_file_name) {
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first_covered_def_id_by_file.entry(*covered_file_name).or_insert(def_id);
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}
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}
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}
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// Get the set of def_ids with coverage regions, known by *this* CoverageContext.
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let cgu_covered_def_ids: DefIdSet = match cx.coverage_context() {
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Some(ctx) => ctx
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.function_coverage_map
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.borrow()
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.keys()
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.map(|&instance| instance.def.def_id())
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.collect(),
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None => return,
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};
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let cgu_covered_files: FxHashSet<Symbol> = first_covered_def_id_by_file
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.iter()
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.filter_map(
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|(&file_name, def_id)| {
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if cgu_covered_def_ids.contains(def_id) { Some(file_name) } else { None }
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},
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)
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.collect();
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// For each file for which this CGU is responsible for adding unused function coverage,
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// get the `def_id`s for each unused function (if any), define a synthetic function with a
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// single LLVM coverage counter, and add the function's coverage `CodeRegion`s. to the
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// function_coverage_map.
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for covered_file_name in cgu_covered_files {
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for def_id in unused_def_ids_by_file.remove(&covered_file_name).into_iter().flatten() {
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cx.define_unused_fn(def_id);
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}
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}
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}
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