1//! Reading of the rustc metadata for rlibs and dylibs
23use std::borrow::Cow;
4use std::fs::File;
5use std::io::Write;
6use std::path::Path;
78use itertools::Itertools;
9use object::write::{self, StandardSegment, Symbol, SymbolSection};
10use object::{
11Architecture, BinaryFormat, Endianness, FileFlags, Object, ObjectSection, ObjectSymbol,
12SectionFlags, SectionKind, SymbolFlags, SymbolKind, SymbolScope, elf, pe, xcoff,
13};
14use rustc_abi::Endian;
15use rustc_data_structures::memmap::Mmap;
16use rustc_data_structures::owned_slice::{OwnedSlice, try_slice_owned};
17use rustc_metadata::EncodedMetadata;
18use rustc_metadata::creader::MetadataLoader;
19use rustc_metadata::fs::METADATA_FILENAME;
20use rustc_middle::bug;
21use rustc_session::Session;
22use rustc_span::sym;
23use rustc_target::spec::{CfgAbi, LlvmAbi, Os, RelocModel, Target, ef_avr_arch};
24use tracing::debug;
2526use super::apple;
2728/// The default metadata loader. This is used by cg_llvm and cg_clif.
29///
30/// # Metadata location
31///
32/// <dl>
33/// <dt>rlib</dt>
34/// <dd>The metadata can be found in the `lib.rmeta` file inside of the ar archive.</dd>
35/// <dt>dylib</dt>
36/// <dd>The metadata can be found in the `.rustc` section of the shared library.</dd>
37/// </dl>
38#[derive(#[automatically_derived]
impl ::core::fmt::Debug for DefaultMetadataLoader {
#[inline]
fn fmt(&self, f: &mut ::core::fmt::Formatter) -> ::core::fmt::Result {
::core::fmt::Formatter::write_str(f, "DefaultMetadataLoader")
}
}Debug)]
39pub(crate) struct DefaultMetadataLoader;
4041static AIX_METADATA_SYMBOL_NAME: &'static str = "__aix_rust_metadata";
4243fn load_metadata_with(
44 path: &Path,
45 f: impl for<'a> FnOnce(&'a [u8]) -> Result<&'a [u8], String>,
46) -> Result<OwnedSlice, String> {
47let file =
48File::open(path).map_err(|e| ::alloc::__export::must_use({
::alloc::fmt::format(format_args!("failed to open file \'{0}\': {1}",
path.display(), e))
})format!("failed to open file '{}': {}", path.display(), e))?;
4950unsafe { Mmap::map(file) }
51 .map_err(|e| ::alloc::__export::must_use({
::alloc::fmt::format(format_args!("failed to mmap file \'{0}\': {1}",
path.display(), e))
})format!("failed to mmap file '{}': {}", path.display(), e))
52 .and_then(|mmap| try_slice_owned(mmap, |mmap| f(mmap)))
53}
5455impl MetadataLoaderfor DefaultMetadataLoader {
56fn get_rlib_metadata(&self, target: &Target, path: &Path) -> Result<OwnedSlice, String> {
57{
use ::tracing::__macro_support::Callsite as _;
static __CALLSITE: ::tracing::callsite::DefaultCallsite =
{
static META: ::tracing::Metadata<'static> =
{
::tracing_core::metadata::Metadata::new("event compiler/rustc_codegen_ssa/src/back/metadata.rs:57",
"rustc_codegen_ssa::back::metadata",
::tracing::Level::DEBUG,
::tracing_core::__macro_support::Option::Some("compiler/rustc_codegen_ssa/src/back/metadata.rs"),
::tracing_core::__macro_support::Option::Some(57u32),
::tracing_core::__macro_support::Option::Some("rustc_codegen_ssa::back::metadata"),
::tracing_core::field::FieldSet::new(&["message"],
::tracing_core::callsite::Identifier(&__CALLSITE)),
::tracing::metadata::Kind::EVENT)
};
::tracing::callsite::DefaultCallsite::new(&META)
};
let enabled =
::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
&&
::tracing::Level::DEBUG <=
::tracing::level_filters::LevelFilter::current() &&
{
let interest = __CALLSITE.interest();
!interest.is_never() &&
::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
interest)
};
if enabled {
(|value_set: ::tracing::field::ValueSet|
{
let meta = __CALLSITE.metadata();
::tracing::Event::dispatch(meta, &value_set);
;
})({
#[allow(unused_imports)]
use ::tracing::field::{debug, display, Value};
let mut iter = __CALLSITE.metadata().fields().iter();
__CALLSITE.metadata().fields().value_set(&[(&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
::tracing::__macro_support::Option::Some(&format_args!("getting rlib metadata for {0}",
path.display()) as &dyn Value))])
});
} else { ; }
};debug!("getting rlib metadata for {}", path.display());
58load_metadata_with(path, |data| {
59let archive = object::read::archive::ArchiveFile::parse(&*data)
60 .map_err(|e| ::alloc::__export::must_use({
::alloc::fmt::format(format_args!("failed to parse rlib \'{0}\': {1}",
path.display(), e))
})format!("failed to parse rlib '{}': {}", path.display(), e))?;
6162for entry_result in archive.members() {
63let entry = entry_result
64 .map_err(|e| ::alloc::__export::must_use({
::alloc::fmt::format(format_args!("failed to parse rlib \'{0}\': {1}",
path.display(), e))
})format!("failed to parse rlib '{}': {}", path.display(), e))?;
65if entry.name() == METADATA_FILENAME.as_bytes() {
66let data = entry
67 .data(data)
68 .map_err(|e| ::alloc::__export::must_use({
::alloc::fmt::format(format_args!("failed to parse rlib \'{0}\': {1}",
path.display(), e))
})format!("failed to parse rlib '{}': {}", path.display(), e))?;
69if target.is_like_aix {
70return get_metadata_xcoff(path, data);
71 } else {
72return search_for_section(path, data, ".rmeta");
73 }
74 }
75 }
7677Err(::alloc::__export::must_use({
::alloc::fmt::format(format_args!("metadata not found in rlib \'{0}\'",
path.display()))
})format!("metadata not found in rlib '{}'", path.display()))
78 })
79 }
8081fn get_dylib_metadata(&self, target: &Target, path: &Path) -> Result<OwnedSlice, String> {
82{
use ::tracing::__macro_support::Callsite as _;
static __CALLSITE: ::tracing::callsite::DefaultCallsite =
{
static META: ::tracing::Metadata<'static> =
{
::tracing_core::metadata::Metadata::new("event compiler/rustc_codegen_ssa/src/back/metadata.rs:82",
"rustc_codegen_ssa::back::metadata",
::tracing::Level::DEBUG,
::tracing_core::__macro_support::Option::Some("compiler/rustc_codegen_ssa/src/back/metadata.rs"),
::tracing_core::__macro_support::Option::Some(82u32),
::tracing_core::__macro_support::Option::Some("rustc_codegen_ssa::back::metadata"),
::tracing_core::field::FieldSet::new(&["message"],
::tracing_core::callsite::Identifier(&__CALLSITE)),
::tracing::metadata::Kind::EVENT)
};
::tracing::callsite::DefaultCallsite::new(&META)
};
let enabled =
::tracing::Level::DEBUG <= ::tracing::level_filters::STATIC_MAX_LEVEL
&&
::tracing::Level::DEBUG <=
::tracing::level_filters::LevelFilter::current() &&
{
let interest = __CALLSITE.interest();
!interest.is_never() &&
::tracing::__macro_support::__is_enabled(__CALLSITE.metadata(),
interest)
};
if enabled {
(|value_set: ::tracing::field::ValueSet|
{
let meta = __CALLSITE.metadata();
::tracing::Event::dispatch(meta, &value_set);
;
})({
#[allow(unused_imports)]
use ::tracing::field::{debug, display, Value};
let mut iter = __CALLSITE.metadata().fields().iter();
__CALLSITE.metadata().fields().value_set(&[(&::tracing::__macro_support::Iterator::next(&mut iter).expect("FieldSet corrupted (this is a bug)"),
::tracing::__macro_support::Option::Some(&format_args!("getting dylib metadata for {0}",
path.display()) as &dyn Value))])
});
} else { ; }
};debug!("getting dylib metadata for {}", path.display());
83if target.is_like_aix {
84load_metadata_with(path, |data| {
85let archive = object::read::archive::ArchiveFile::parse(&*data).map_err(|e| {
86::alloc::__export::must_use({
::alloc::fmt::format(format_args!("failed to parse aix dylib \'{0}\': {1}",
path.display(), e))
})format!("failed to parse aix dylib '{}': {}", path.display(), e)87 })?;
8889match archive.members().exactly_one() {
90Ok(lib) => {
91let lib = lib.map_err(|e| {
92::alloc::__export::must_use({
::alloc::fmt::format(format_args!("failed to parse aix dylib \'{0}\': {1}",
path.display(), e))
})format!("failed to parse aix dylib '{}': {}", path.display(), e)93 })?;
94let data = lib.data(data).map_err(|e| {
95::alloc::__export::must_use({
::alloc::fmt::format(format_args!("failed to parse aix dylib \'{0}\': {1}",
path.display(), e))
})format!("failed to parse aix dylib '{}': {}", path.display(), e)96 })?;
97get_metadata_xcoff(path, data)
98 }
99Err(e) => Err(::alloc::__export::must_use({
::alloc::fmt::format(format_args!("failed to parse aix dylib \'{0}\': {1}",
path.display(), e))
})format!("failed to parse aix dylib '{}': {}", path.display(), e)),
100 }
101 })
102 } else {
103load_metadata_with(path, |data| search_for_section(path, data, ".rustc"))
104 }
105 }
106}
107108pub(super) fn search_for_section<'a>(
109 path: &Path,
110 bytes: &'a [u8],
111 section: &str,
112) -> Result<&'a [u8], String> {
113let Ok(file) = object::File::parse(bytes) else {
114// The parse above could fail for odd reasons like corruption, but for
115 // now we just interpret it as this target doesn't support metadata
116 // emission in object files so the entire byte slice itself is probably
117 // a metadata file. Ideally though if necessary we could at least check
118 // the prefix of bytes to see if it's an actual metadata object and if
119 // not forward the error along here.
120return Ok(bytes);
121 };
122file.section_by_name(section)
123 .ok_or_else(|| ::alloc::__export::must_use({
::alloc::fmt::format(format_args!("no `{0}` section in \'{1}\'",
section, path.display()))
})format!("no `{}` section in '{}'", section, path.display()))?
124.data()
125 .map_err(|e| ::alloc::__export::must_use({
::alloc::fmt::format(format_args!("failed to read {0} section in \'{1}\': {2}",
section, path.display(), e))
})format!("failed to read {} section in '{}': {}", section, path.display(), e))
126}
127128fn add_gnu_property_note(
129 file: &mut write::Object<'static>,
130 architecture: Architecture,
131 binary_format: BinaryFormat,
132 endianness: Endianness,
133) {
134// check bti protection
135if binary_format != BinaryFormat::Elf136 || !#[allow(non_exhaustive_omitted_patterns)] match architecture {
Architecture::X86_64 | Architecture::Aarch64 => true,
_ => false,
}matches!(architecture, Architecture::X86_64 | Architecture::Aarch64)137 {
138return;
139 }
140141let section = file.add_section(
142file.segment_name(StandardSegment::Data).to_vec(),
143b".note.gnu.property".to_vec(),
144 SectionKind::Note,
145 );
146let mut data: Vec<u8> = Vec::new();
147let n_namsz: u32 = 4; // Size of the n_name field
148let n_descsz: u32 = 16; // Size of the n_desc field
149let n_type: u32 = object::elf::NT_GNU_PROPERTY_TYPE_0; // Type of note descriptor
150let header_values = [n_namsz, n_descsz, n_type];
151header_values.iter().for_each(|v| {
152data.extend_from_slice(&match endianness {
153 Endianness::Little => v.to_le_bytes(),
154 Endianness::Big => v.to_be_bytes(),
155 })
156 });
157data.extend_from_slice(b"GNU\0"); // Owner of the program property note
158let pr_type: u32 = match architecture {
159 Architecture::X86_64 => object::elf::GNU_PROPERTY_X86_FEATURE_1_AND,
160 Architecture::Aarch64 => object::elf::GNU_PROPERTY_AARCH64_FEATURE_1_AND,
161_ => ::core::panicking::panic("internal error: entered unreachable code")unreachable!(),
162 };
163let pr_datasz: u32 = 4; //size of the pr_data field
164let pr_data: u32 = 3; //program property descriptor
165let pr_padding: u32 = 0;
166let property_values = [pr_type, pr_datasz, pr_data, pr_padding];
167property_values.iter().for_each(|v| {
168data.extend_from_slice(&match endianness {
169 Endianness::Little => v.to_le_bytes(),
170 Endianness::Big => v.to_be_bytes(),
171 })
172 });
173file.append_section_data(section, &data, 8);
174}
175176pub(super) fn get_metadata_xcoff<'a>(path: &Path, data: &'a [u8]) -> Result<&'a [u8], String> {
177let Ok(file) = object::File::parse(data) else {
178return Ok(data);
179 };
180let info_data = search_for_section(path, data, ".info")?;
181if let Some(metadata_symbol) =
182file.symbols().find(|sym| sym.name() == Ok(AIX_METADATA_SYMBOL_NAME))
183 {
184let offset = metadata_symbol.address() as usize;
185// The offset specifies the location of rustc metadata in the .info section of XCOFF.
186 // Each string stored in .info section of XCOFF is preceded by a 4-byte length field.
187if offset < 4 {
188return Err(::alloc::__export::must_use({
::alloc::fmt::format(format_args!("Invalid metadata symbol offset: {0}",
offset))
})format!("Invalid metadata symbol offset: {offset}"));
189 }
190// XCOFF format uses big-endian byte order.
191let len = u32::from_be_bytes(info_data[(offset - 4)..offset].try_into().unwrap()) as usize;
192if offset + len > (info_data.len() as usize) {
193return Err(::alloc::__export::must_use({
::alloc::fmt::format(format_args!("Metadata at offset {0} with size {1} is beyond .info section",
offset, len))
})format!(
194"Metadata at offset {offset} with size {len} is beyond .info section"
195));
196 }
197Ok(&info_data[offset..(offset + len)])
198 } else {
199Err(::alloc::__export::must_use({
::alloc::fmt::format(format_args!("Unable to find symbol {0}",
AIX_METADATA_SYMBOL_NAME))
})format!("Unable to find symbol {AIX_METADATA_SYMBOL_NAME}"))
200 }
201}
202203pub(crate) fn create_object_file(sess: &Session) -> Option<write::Object<'static>> {
204let endianness = match sess.target.options.endian {
205 Endian::Little => Endianness::Little,
206 Endian::Big => Endianness::Big,
207 };
208let Some((architecture, sub_architecture)) =
209sess.target.object_architecture(&sess.unstable_target_features)
210else {
211return None;
212 };
213let binary_format = sess.target.binary_format.to_object();
214215let mut file = write::Object::new(binary_format, architecture, endianness);
216file.set_sub_architecture(sub_architecture);
217if sess.target.is_like_darwin {
218if macho_is_arm64e(&sess.target) {
219file.set_macho_cpu_subtype(
220 object::macho::CPU_SUBTYPE_ARM64E | object::macho::CPU_SUBTYPE_PTRAUTH_ABI,
221 );
222 }
223224file.set_macho_build_version(macho_object_build_version_for_target(sess))
225 }
226if binary_format == BinaryFormat::Coff {
227// Disable the default mangler to avoid mangling the special "@feat.00" symbol name.
228let original_mangling = file.mangling();
229file.set_mangling(object::write::Mangling::None);
230231let mut feature = 0;
232233if file.architecture() == object::Architecture::I386 {
234// When linking with /SAFESEH on x86, lld requires that all linker inputs be marked as
235 // safe exception handling compatible. Metadata files masquerade as regular COFF
236 // objects and are treated as linker inputs, despite containing no actual code. Thus,
237 // they still need to be marked as safe exception handling compatible. See #96498.
238 // Reference: https://docs.microsoft.com/en-us/windows/win32/debug/pe-format
239feature |= 1;
240 }
241242file.add_symbol(object::write::Symbol {
243 name: "@feat.00".into(),
244 value: feature,
245 size: 0,
246 kind: object::SymbolKind::Data,
247 scope: object::SymbolScope::Compilation,
248 weak: false,
249 section: object::write::SymbolSection::Absolute,
250 flags: object::SymbolFlags::None,
251 });
252253file.set_mangling(original_mangling);
254 }
255let e_flags = elf_e_flags(architecture, sess);
256// adapted from LLVM's `MCELFObjectTargetWriter::getOSABI`
257let os_abi = elf_os_abi(sess);
258let abi_version = 0;
259add_gnu_property_note(&mut file, architecture, binary_format, endianness);
260file.flags = FileFlags::Elf { os_abi, abi_version, e_flags };
261Some(file)
262}
263264pub(super) fn elf_os_abi(sess: &Session) -> u8 {
265match sess.target.options.os {
266 Os::Hermit => elf::ELFOSABI_STANDALONE,
267 Os::FreeBsd => elf::ELFOSABI_FREEBSD,
268 Os::Solaris => elf::ELFOSABI_SOLARIS,
269_ => elf::ELFOSABI_NONE,
270 }
271}
272273pub(super) fn elf_e_flags(architecture: Architecture, sess: &Session) -> u32 {
274match architecture {
275 Architecture::Mips | Architecture::Mips64 | Architecture::Mips64_N32 => {
276// "N32" indicates an "ILP32" data model on a 64-bit MIPS CPU
277 // like SPARC's "v8+", x86_64's "x32", or the watchOS "arm64_32".
278let is_32bit = architecture == Architecture::Mips;
279let mut e_flags = match sess.target.options.cpu.as_ref() {
280"mips1" if is_32bit => elf::EF_MIPS_ARCH_1,
281"mips2" if is_32bit => elf::EF_MIPS_ARCH_2,
282"mips3" => elf::EF_MIPS_ARCH_3,
283"mips4" => elf::EF_MIPS_ARCH_4,
284"mips5" => elf::EF_MIPS_ARCH_5,
285"mips32r2" if is_32bit => elf::EF_MIPS_ARCH_32R2,
286"mips32r6" if is_32bit => elf::EF_MIPS_ARCH_32R6,
287"mips64r2" if !is_32bit => elf::EF_MIPS_ARCH_64R2,
288"mips64r6" if !is_32bit => elf::EF_MIPS_ARCH_64R6,
289 s if s.starts_with("mips32") && !is_32bit => {
290sess.dcx().fatal(::alloc::__export::must_use({
::alloc::fmt::format(format_args!("invalid CPU `{0}` for 64-bit MIPS target",
s))
})format!("invalid CPU `{}` for 64-bit MIPS target", s))
291 }
292 s if s.starts_with("mips64") && is_32bit => {
293sess.dcx().fatal(::alloc::__export::must_use({
::alloc::fmt::format(format_args!("invalid CPU `{0}` for 32-bit MIPS target",
s))
})format!("invalid CPU `{}` for 32-bit MIPS target", s))
294 }
295_ if is_32bit => elf::EF_MIPS_ARCH_32R2,
296_ => elf::EF_MIPS_ARCH_64R2,
297 };
298299// Use the explicitly given ABI.
300match &sess.target.options.llvm_abiname {
301 LlvmAbi::O32if is_32bit => e_flags |= elf::EF_MIPS_ABI_O32,
302 LlvmAbi::N32if !is_32bit => e_flags |= elf::EF_MIPS_ABI2,
303 LlvmAbi::N64if !is_32bit => {}
304// The rest is invalid (which is already ensured by the target spec check).
305 s => ::rustc_middle::util::bug::bug_fmt(format_args!("invalid LLVM ABI `{0}` for MIPS target",
s))bug!("invalid LLVM ABI `{}` for MIPS target", s),
306 };
307308if sess.target.options.relocation_model != RelocModel::Static {
309// PIC means position-independent code. CPIC means "calls PIC".
310 // CPIC was mutually exclusive with PIC according to
311 // the SVR4 MIPS ABI https://refspecs.linuxfoundation.org/elf/mipsabi.pdf
312 // and should have only appeared on static objects with dynamically calls.
313 // At some point someone (GCC?) decided to set CPIC even for PIC.
314 // Nowadays various things expect both set on the same object file
315 // and may even error if you mix CPIC and non-CPIC object files,
316 // despite that being the entire point of the CPIC ABI extension!
317 // As we are in Rome, we do as the Romans do.
318e_flags |= elf::EF_MIPS_PIC | elf::EF_MIPS_CPIC;
319 }
320if sess.target.options.cpu.contains("r6") {
321e_flags |= elf::EF_MIPS_NAN2008;
322 }
323e_flags324 }
325 Architecture::Riscv32 | Architecture::Riscv64 => {
326// Source: https://github.com/riscv-non-isa/riscv-elf-psabi-doc/blob/079772828bd10933d34121117a222b4cc0ee2200/riscv-elf.adoc
327let mut e_flags: u32 = 0x0;
328329// Check if compression is enabled
330if sess.target_features.contains(&sym::zca) {
331e_flags |= elf::EF_RISCV_RVC;
332 }
333334// Check if RVTSO is enabled
335if sess.target_features.contains(&sym::ztso) {
336e_flags |= elf::EF_RISCV_TSO;
337 }
338339// Set the appropriate flag based on ABI
340 // This needs to match LLVM `RISCVELFStreamer.cpp`
341match &sess.target.llvm_abiname {
342 LlvmAbi::Ilp32 | LlvmAbi::Lp64 => (),
343 LlvmAbi::Ilp32f | LlvmAbi::Lp64f => e_flags |= elf::EF_RISCV_FLOAT_ABI_SINGLE,
344 LlvmAbi::Ilp32d | LlvmAbi::Lp64d => e_flags |= elf::EF_RISCV_FLOAT_ABI_DOUBLE,
345// Note that the `lp64e` is still unstable as it's not (yet) part of the ELF psABI.
346LlvmAbi::Ilp32e | LlvmAbi::Lp64e => e_flags |= elf::EF_RISCV_RVE,
347_ => ::rustc_middle::util::bug::bug_fmt(format_args!("unknown RISC-V ABI name"))bug!("unknown RISC-V ABI name"),
348 }
349350e_flags351 }
352 Architecture::LoongArch32 | Architecture::LoongArch64 => {
353// Source: https://github.com/loongson/la-abi-specs/blob/release/laelf.adoc#e_flags-identifies-abi-type-and-version
354let mut e_flags: u32 = elf::EF_LARCH_OBJABI_V1;
355356// Set the appropriate flag based on ABI
357 // This needs to match LLVM `LoongArchELFStreamer.cpp`
358match &sess.target.llvm_abiname {
359 LlvmAbi::Ilp32s | LlvmAbi::Lp64s => e_flags |= elf::EF_LARCH_ABI_SOFT_FLOAT,
360 LlvmAbi::Ilp32f | LlvmAbi::Lp64f => e_flags |= elf::EF_LARCH_ABI_SINGLE_FLOAT,
361 LlvmAbi::Ilp32d | LlvmAbi::Lp64d => e_flags |= elf::EF_LARCH_ABI_DOUBLE_FLOAT,
362_ => ::rustc_middle::util::bug::bug_fmt(format_args!("unknown LoongArch ABI name"))bug!("unknown LoongArch ABI name"),
363 }
364365e_flags366 }
367 Architecture::Avr => {
368// Resolve the ISA revision and set
369 // the appropriate EF_AVR_ARCH flag.
370if let Some(ref cpu) = sess.opts.cg.target_cpu {
371ef_avr_arch(cpu)
372 } else {
373::rustc_middle::util::bug::bug_fmt(format_args!("AVR CPU not explicitly specified"))bug!("AVR CPU not explicitly specified")374 }
375 }
376 Architecture::Csky => {
377if #[allow(non_exhaustive_omitted_patterns)] match sess.target.options.cfg_abi {
CfgAbi::AbiV2 => true,
_ => false,
}matches!(sess.target.options.cfg_abi, CfgAbi::AbiV2) {
378 elf::EF_CSKY_ABIV2379 } else {
380 elf::EF_CSKY_ABIV1381 }
382 }
383 Architecture::PowerPc64 => {
384const EF_PPC64_ABI_UNKNOWN: u32 = 0;
385const EF_PPC64_ABI_ELF_V1: u32 = 1;
386const EF_PPC64_ABI_ELF_V2: u32 = 2;
387388match sess.target.options.llvm_abiname {
389// If the flags do not correctly indicate the ABI,
390 // linkers such as ld.lld assume that the ppc64 object files are always ELFv2
391 // which leads to broken binaries if ELFv1 is used for the object files.
392LlvmAbi::ElfV1 => EF_PPC64_ABI_ELF_V1,
393 LlvmAbi::ElfV2 => EF_PPC64_ABI_ELF_V2,
394_ if sess.target.options.binary_format.to_object() == BinaryFormat::Elf => {
395::rustc_middle::util::bug::bug_fmt(format_args!("invalid ABI specified for this PPC64 ELF target"));bug!("invalid ABI specified for this PPC64 ELF target");
396 }
397// Fall back
398_ => EF_PPC64_ABI_UNKNOWN,
399 }
400 }
401 Architecture::Sparc32Plus => elf::EF_SPARC_32PLUS,
402_ => 0,
403 }
404}
405406/// Mach-O files contain information about:
407/// - The platform/OS they were built for (macOS/watchOS/Mac Catalyst/iOS simulator etc).
408/// - The minimum OS version / deployment target.
409/// - The version of the SDK they were targetting.
410///
411/// In the past, this was accomplished using the LC_VERSION_MIN_MACOSX, LC_VERSION_MIN_IPHONEOS,
412/// LC_VERSION_MIN_TVOS or LC_VERSION_MIN_WATCHOS load commands, which each contain information
413/// about the deployment target and SDK version, and implicitly, by their presence, which OS they
414/// target. Simulator targets were determined if the architecture was x86_64, but there was e.g. a
415/// LC_VERSION_MIN_IPHONEOS present.
416///
417/// This is of course brittle and limited, so modern tooling emit the LC_BUILD_VERSION load
418/// command (which contains all three pieces of information in one) when the deployment target is
419/// high enough, or the target is something that wouldn't be encodable with the old load commands
420/// (such as Mac Catalyst, or Aarch64 iOS simulator).
421///
422/// Since Xcode 15, Apple's LD apparently requires object files to use this load command, so this
423/// returns the `MachOBuildVersion` for the target to do so.
424fn macho_object_build_version_for_target(sess: &Session) -> object::write::MachOBuildVersion {
425/// The `object` crate demands "X.Y.Z encoded in nibbles as xxxx.yy.zz"
426 /// e.g. minOS 14.0 = 0x000E0000, or SDK 16.2 = 0x00100200
427fn pack_version(apple::OSVersion { major, minor, patch }: apple::OSVersion) -> u32 {
428let (major, minor, patch) = (majoras u32, minoras u32, patchas u32);
429 (major << 16) | (minor << 8) | patch430 }
431432let platform = apple::macho_platform(&sess.target);
433let min_os = sess.apple_deployment_target();
434435let mut build_version = object::write::MachOBuildVersion::default();
436build_version.platform = platform;
437build_version.minos = pack_version(min_os);
438// The version here does not _really_ matter, since it is only used at runtime, and we specify
439 // it when linking the final binary, so we will omit the version. This is also what LLVM does,
440 // and the tooling also allows this (and shows the SDK version as `n/a`). Finally, it is the
441 // semantically correct choice, as the SDK has not influenced the binary generated by rustc at
442 // this point in time.
443build_version.sdk = 0;
444445build_version446}
447448/// Is Apple's CPU subtype `arm64e`s
449fn macho_is_arm64e(target: &Target) -> bool {
450target.llvm_target.starts_with("arm64e")
451}
452453pub(crate) enum MetadataPosition {
454 First,
455 Last,
456}
457458/// For rlibs we "pack" rustc metadata into a dummy object file.
459///
460/// Historically it was needed because rustc linked rlibs as whole-archive in some cases.
461/// In that case linkers try to include all files located in an archive, so if metadata is stored
462/// in an archive then it needs to be of a form that the linker is able to process.
463/// Now it's not clear whether metadata still needs to be wrapped into an object file or not.
464///
465/// Note, though, that we don't actually want this metadata to show up in any
466/// final output of the compiler. Instead this is purely for rustc's own
467/// metadata tracking purposes.
468///
469/// With the above in mind, each "flavor" of object format gets special
470/// handling here depending on the target:
471///
472/// * MachO - macos-like targets will insert the metadata into a section that
473/// is sort of fake dwarf debug info. Inspecting the source of the macos
474/// linker this causes these sections to be skipped automatically because
475/// it's not in an allowlist of otherwise well known dwarf section names to
476/// go into the final artifact.
477///
478/// * WebAssembly - this uses wasm files themselves as the object file format
479/// so an empty file with no linking metadata but a single custom section is
480/// created holding our metadata.
481///
482/// * COFF - Windows-like targets create an object with a section that has
483/// the `IMAGE_SCN_LNK_REMOVE` flag set which ensures that if the linker
484/// ever sees the section it doesn't process it and it's removed.
485///
486/// * ELF - All other targets are similar to Windows in that there's a
487/// `SHF_EXCLUDE` flag we can set on sections in an object file to get
488/// automatically removed from the final output.
489pub(crate) fn create_wrapper_file(
490 sess: &Session,
491 section_name: String,
492 data: &[u8],
493) -> (Vec<u8>, MetadataPosition) {
494let Some(mut file) = create_object_file(sess) else {
495if sess.target.is_like_wasm {
496return (
497create_metadata_file_for_wasm(sess, data, §ion_name),
498 MetadataPosition::First,
499 );
500 }
501502// Targets using this branch don't have support implemented here yet or
503 // they're not yet implemented in the `object` crate and will likely
504 // fill out this module over time.
505return (data.to_vec(), MetadataPosition::Last);
506 };
507let section = if file.format() == BinaryFormat::Xcoff {
508file.add_section(Vec::new(), b".info".to_vec(), SectionKind::Debug)
509 } else {
510file.add_section(
511file.segment_name(StandardSegment::Debug).to_vec(),
512section_name.into_bytes(),
513 SectionKind::Debug,
514 )
515 };
516match file.format() {
517 BinaryFormat::Coff => {
518file.section_mut(section).flags =
519 SectionFlags::Coff { characteristics: pe::IMAGE_SCN_LNK_REMOVE };
520 }
521 BinaryFormat::Elf => {
522file.section_mut(section).flags =
523 SectionFlags::Elf { sh_flags: elf::SHF_EXCLUDEas u64 };
524 }
525 BinaryFormat::Xcoff => {
526// AIX system linker may aborts if it meets a valid XCOFF file in archive with no .text, no .data and no .bss.
527file.add_section(Vec::new(), b".text".to_vec(), SectionKind::Text);
528file.section_mut(section).flags =
529 SectionFlags::Xcoff { s_flags: xcoff::STYP_INFOas u32 };
530// Encode string stored in .info section of XCOFF.
531 // FIXME: The length of data here is not guaranteed to fit in a u32.
532 // We may have to split the data into multiple pieces in order to
533 // store in .info section.
534let len: u32 = data.len().try_into().unwrap();
535let offset = file.append_section_data(section, &len.to_be_bytes(), 1);
536// Add a symbol referring to the data in .info section.
537file.add_symbol(Symbol {
538 name: AIX_METADATA_SYMBOL_NAME.into(),
539 value: offset + 4,
540 size: 0,
541 kind: SymbolKind::Unknown,
542 scope: SymbolScope::Compilation,
543 weak: false,
544 section: SymbolSection::Section(section),
545 flags: SymbolFlags::Xcoff {
546 n_sclass: xcoff::C_INFO,
547 x_smtyp: xcoff::C_HIDEXT,
548 x_smclas: xcoff::C_HIDEXT,
549 containing_csect: None,
550 },
551 });
552 }
553_ => {}
554 };
555file.append_section_data(section, data, 1);
556 (file.write().unwrap(), MetadataPosition::First)
557}
558559// Historical note:
560//
561// When using link.exe it was seen that the section name `.note.rustc`
562// was getting shortened to `.note.ru`, and according to the PE and COFF
563// specification:
564//
565// > Executable images do not use a string table and do not support
566// > section names longer than 8 characters
567//
568// https://docs.microsoft.com/en-us/windows/win32/debug/pe-format
569//
570// As a result, we choose a slightly shorter name! As to why
571// `.note.rustc` works on MinGW, see
572// https://github.com/llvm/llvm-project/blob/llvmorg-12.0.0/lld/COFF/Writer.cpp#L1190-L1197
573pub fn create_compressed_metadata_file(
574 sess: &Session,
575 metadata: &EncodedMetadata,
576 symbol_name: &str,
577) -> Vec<u8> {
578let mut packed_metadata = rustc_metadata::METADATA_HEADER.to_vec();
579packed_metadata.write_all(&(metadata.stub_or_full().len() as u64).to_le_bytes()).unwrap();
580packed_metadata.extend(metadata.stub_or_full());
581582let Some(mut file) = create_object_file(sess) else {
583if sess.target.is_like_wasm {
584return create_metadata_file_for_wasm(sess, &packed_metadata, ".rustc");
585 }
586return packed_metadata.to_vec();
587 };
588if file.format() == BinaryFormat::Xcoff {
589return create_compressed_metadata_file_for_xcoff(file, &packed_metadata, symbol_name);
590 }
591let section = file.add_section(
592file.segment_name(StandardSegment::Data).to_vec(),
593b".rustc".to_vec(),
594 SectionKind::ReadOnlyData,
595 );
596match file.format() {
597 BinaryFormat::Elf => {
598// Explicitly set no flags to avoid SHF_ALLOC default for data section.
599file.section_mut(section).flags = SectionFlags::Elf { sh_flags: 0 };
600 }
601_ => {}
602 };
603let offset = file.append_section_data(section, &packed_metadata, 1);
604605// For MachO and probably PE this is necessary to prevent the linker from throwing away the
606 // .rustc section. For ELF this isn't necessary, but it also doesn't harm.
607file.add_symbol(Symbol {
608 name: symbol_name.as_bytes().to_vec(),
609 value: offset,
610 size: packed_metadata.len() as u64,
611 kind: SymbolKind::Data,
612 scope: SymbolScope::Dynamic,
613 weak: false,
614 section: SymbolSection::Section(section),
615 flags: SymbolFlags::None,
616 });
617618file.write().unwrap()
619}
620621/// * Xcoff - On AIX, custom sections are merged into predefined sections,
622/// so custom .rustc section is not preserved during linking.
623/// For this reason, we store metadata in predefined .info section, and
624/// define a symbol to reference the metadata. To preserve metadata during
625/// linking on AIX, we have to
626/// 1. Create an empty .text section, a empty .data section.
627/// 2. Define an empty symbol named `symbol_name` inside .data section.
628/// 3. Define an symbol named `AIX_METADATA_SYMBOL_NAME` referencing
629/// data inside .info section.
630/// From XCOFF's view, (2) creates a csect entry in the symbol table, the
631/// symbol created by (3) is a info symbol for the preceding csect. Thus
632/// two symbols are preserved during linking and we can use the second symbol
633/// to reference the metadata.
634pub fn create_compressed_metadata_file_for_xcoff(
635mut file: write::Object<'_>,
636 data: &[u8],
637 symbol_name: &str,
638) -> Vec<u8> {
639if !(file.format() == BinaryFormat::Xcoff) {
::core::panicking::panic("assertion failed: file.format() == BinaryFormat::Xcoff")
};assert!(file.format() == BinaryFormat::Xcoff);
640// AIX system linker may aborts if it meets a valid XCOFF file in archive with no .text, no .data and no .bss.
641file.add_section(Vec::new(), b".text".to_vec(), SectionKind::Text);
642let data_section = file.add_section(Vec::new(), b".data".to_vec(), SectionKind::Data);
643let section = file.add_section(Vec::new(), b".info".to_vec(), SectionKind::Debug);
644file.add_file_symbol("lib.rmeta".into());
645file.section_mut(section).flags = SectionFlags::Xcoff { s_flags: xcoff::STYP_INFOas u32 };
646// Add a global symbol to data_section.
647file.add_symbol(Symbol {
648 name: symbol_name.as_bytes().into(),
649 value: 0,
650 size: 0,
651 kind: SymbolKind::Data,
652 scope: SymbolScope::Dynamic,
653 weak: true,
654 section: SymbolSection::Section(data_section),
655 flags: SymbolFlags::None,
656 });
657let len: u32 = data.len().try_into().unwrap();
658let offset = file.append_section_data(section, &len.to_be_bytes(), 1);
659// Add a symbol referring to the rustc metadata.
660file.add_symbol(Symbol {
661 name: AIX_METADATA_SYMBOL_NAME.into(),
662 value: offset + 4, // The metadata is preceded by a 4-byte length field.
663size: 0,
664 kind: SymbolKind::Unknown,
665 scope: SymbolScope::Dynamic,
666 weak: false,
667 section: SymbolSection::Section(section),
668 flags: SymbolFlags::Xcoff {
669 n_sclass: xcoff::C_INFO,
670 x_smtyp: xcoff::C_HIDEXT,
671 x_smclas: xcoff::C_HIDEXT,
672 containing_csect: None,
673 },
674 });
675file.append_section_data(section, data, 1);
676file.write().unwrap()
677}
678679/// Creates a simple WebAssembly object file, which is itself a wasm module,
680/// that contains a custom section of the name `section_name` with contents
681/// `data`.
682///
683/// NB: the `object` crate does not yet have support for writing the wasm
684/// object file format. In lieu of that the `wasm-encoder` crate is used to
685/// build a wasm file by hand.
686///
687/// The wasm object file format is defined at
688/// <https://github.com/WebAssembly/tool-conventions/blob/main/Linking.md>
689/// and mainly consists of a `linking` custom section. In this case the custom
690/// section there is empty except for a version marker indicating what format
691/// it's in.
692///
693/// The main purpose of this is to contain a custom section with `section_name`,
694/// which is then appended after `linking`.
695///
696/// As a further detail the object needs to have a 64-bit memory if `wasm64` is
697/// the target or otherwise it's interpreted as a 32-bit object which is
698/// incompatible with 64-bit ones.
699pub fn create_metadata_file_for_wasm(sess: &Session, data: &[u8], section_name: &str) -> Vec<u8> {
700if !sess.target.is_like_wasm {
::core::panicking::panic("assertion failed: sess.target.is_like_wasm")
};assert!(sess.target.is_like_wasm);
701let mut module = wasm_encoder::Module::new();
702let mut imports = wasm_encoder::ImportSection::new();
703704if sess.target.pointer_width == 64 {
705imports.import(
706"env",
707"__linear_memory",
708 wasm_encoder::MemoryType {
709 minimum: 0,
710 maximum: None,
711 memory64: true,
712 shared: false,
713 page_size_log2: None,
714 },
715 );
716 }
717718if imports.len() > 0 {
719module.section(&imports);
720 }
721module.section(&wasm_encoder::CustomSection {
722 name: "linking".into(),
723 data: Cow::Borrowed(&[2]),
724 });
725module.section(&wasm_encoder::CustomSection { name: section_name.into(), data: data.into() });
726module.finish()
727}