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[rustc.git] / src / librustc_trans / back / link.rs
1 // Copyright 2012-2014 The Rust Project Developers. See the COPYRIGHT
2 // file at the top-level directory of this distribution and at
3 // http://rust-lang.org/COPYRIGHT.
4 //
5 // Licensed under the Apache License, Version 2.0 <LICENSE-APACHE or
6 // http://www.apache.org/licenses/LICENSE-2.0> or the MIT license
7 // <LICENSE-MIT or http://opensource.org/licenses/MIT>, at your
8 // option. This file may not be copied, modified, or distributed
9 // except according to those terms.
10
11 use super::archive::{ArchiveBuilder, ArchiveConfig};
12 use super::linker::{Linker, GnuLinker, MsvcLinker};
13 use super::rpath::RPathConfig;
14 use super::rpath;
15 use super::msvc;
16 use session::config;
17 use session::config::NoDebugInfo;
18 use session::config::{OutputFilenames, Input, OutputType};
19 use session::filesearch;
20 use session::search_paths::PathKind;
21 use session::Session;
22 use middle::cstore::{self, CrateStore, LinkMeta};
23 use middle::cstore::{LinkagePreference, NativeLibraryKind};
24 use middle::dependency_format::Linkage;
25 use CrateTranslation;
26 use util::common::time;
27 use util::fs::fix_windows_verbatim_for_gcc;
28 use rustc::ty::TyCtxt;
29 use rustc_back::tempdir::TempDir;
30
31 use rustc_incremental::SvhCalculate;
32 use std::ascii;
33 use std::char;
34 use std::env;
35 use std::ffi::OsString;
36 use std::fs;
37 use std::io::{self, Read, Write};
38 use std::mem;
39 use std::path::{Path, PathBuf};
40 use std::process::Command;
41 use std::str;
42 use flate;
43 use syntax::ast;
44 use syntax::codemap::Span;
45 use syntax::attr::AttrMetaMethods;
46
47 // RLIB LLVM-BYTECODE OBJECT LAYOUT
48 // Version 1
49 // Bytes Data
50 // 0..10 "RUST_OBJECT" encoded in ASCII
51 // 11..14 format version as little-endian u32
52 // 15..22 size in bytes of deflate compressed LLVM bitcode as
53 // little-endian u64
54 // 23.. compressed LLVM bitcode
55
56 // This is the "magic number" expected at the beginning of a LLVM bytecode
57 // object in an rlib.
58 pub const RLIB_BYTECODE_OBJECT_MAGIC: &'static [u8] = b"RUST_OBJECT";
59
60 // The version number this compiler will write to bytecode objects in rlibs
61 pub const RLIB_BYTECODE_OBJECT_VERSION: u32 = 1;
62
63 // The offset in bytes the bytecode object format version number can be found at
64 pub const RLIB_BYTECODE_OBJECT_VERSION_OFFSET: usize = 11;
65
66 // The offset in bytes the size of the compressed bytecode can be found at in
67 // format version 1
68 pub const RLIB_BYTECODE_OBJECT_V1_DATASIZE_OFFSET: usize =
69 RLIB_BYTECODE_OBJECT_VERSION_OFFSET + 4;
70
71 // The offset in bytes the compressed LLVM bytecode can be found at in format
72 // version 1
73 pub const RLIB_BYTECODE_OBJECT_V1_DATA_OFFSET: usize =
74 RLIB_BYTECODE_OBJECT_V1_DATASIZE_OFFSET + 8;
75
76
77 pub fn find_crate_name(sess: Option<&Session>,
78 attrs: &[ast::Attribute],
79 input: &Input) -> String {
80 let validate = |s: String, span: Option<Span>| {
81 cstore::validate_crate_name(sess, &s[..], span);
82 s
83 };
84
85 // Look in attributes 100% of the time to make sure the attribute is marked
86 // as used. After doing this, however, we still prioritize a crate name from
87 // the command line over one found in the #[crate_name] attribute. If we
88 // find both we ensure that they're the same later on as well.
89 let attr_crate_name = attrs.iter().find(|at| at.check_name("crate_name"))
90 .and_then(|at| at.value_str().map(|s| (at, s)));
91
92 if let Some(sess) = sess {
93 if let Some(ref s) = sess.opts.crate_name {
94 if let Some((attr, ref name)) = attr_crate_name {
95 if *s != &name[..] {
96 let msg = format!("--crate-name and #[crate_name] are \
97 required to match, but `{}` != `{}`",
98 s, name);
99 sess.span_err(attr.span, &msg[..]);
100 }
101 }
102 return validate(s.clone(), None);
103 }
104 }
105
106 if let Some((attr, s)) = attr_crate_name {
107 return validate(s.to_string(), Some(attr.span));
108 }
109 if let Input::File(ref path) = *input {
110 if let Some(s) = path.file_stem().and_then(|s| s.to_str()) {
111 if s.starts_with("-") {
112 let msg = format!("crate names cannot start with a `-`, but \
113 `{}` has a leading hyphen", s);
114 if let Some(sess) = sess {
115 sess.err(&msg);
116 }
117 } else {
118 return validate(s.replace("-", "_"), None);
119 }
120 }
121 }
122
123 "rust_out".to_string()
124
125 }
126
127 pub fn build_link_meta(tcx: &TyCtxt,
128 name: &str)
129 -> LinkMeta {
130 let r = LinkMeta {
131 crate_name: name.to_owned(),
132 crate_hash: tcx.calculate_krate_hash(),
133 };
134 info!("{:?}", r);
135 return r;
136 }
137
138 pub fn get_linker(sess: &Session) -> (String, Command) {
139 if let Some(ref linker) = sess.opts.cg.linker {
140 (linker.clone(), Command::new(linker))
141 } else if sess.target.target.options.is_like_msvc {
142 ("link.exe".to_string(), msvc::link_exe_cmd(sess))
143 } else {
144 (sess.target.target.options.linker.clone(),
145 Command::new(&sess.target.target.options.linker))
146 }
147 }
148
149 pub fn get_ar_prog(sess: &Session) -> String {
150 sess.opts.cg.ar.clone().unwrap_or_else(|| {
151 sess.target.target.options.ar.clone()
152 })
153 }
154
155 fn command_path(sess: &Session) -> OsString {
156 // The compiler's sysroot often has some bundled tools, so add it to the
157 // PATH for the child.
158 let mut new_path = sess.host_filesearch(PathKind::All)
159 .get_tools_search_paths();
160 if let Some(path) = env::var_os("PATH") {
161 new_path.extend(env::split_paths(&path));
162 }
163 if sess.target.target.options.is_like_msvc {
164 new_path.extend(msvc::host_dll_path());
165 }
166 env::join_paths(new_path).unwrap()
167 }
168
169 pub fn remove(sess: &Session, path: &Path) {
170 match fs::remove_file(path) {
171 Ok(..) => {}
172 Err(e) => {
173 sess.err(&format!("failed to remove {}: {}",
174 path.display(),
175 e));
176 }
177 }
178 }
179
180 /// Perform the linkage portion of the compilation phase. This will generate all
181 /// of the requested outputs for this compilation session.
182 pub fn link_binary(sess: &Session,
183 trans: &CrateTranslation,
184 outputs: &OutputFilenames,
185 crate_name: &str) -> Vec<PathBuf> {
186 let mut out_filenames = Vec::new();
187 for &crate_type in sess.crate_types.borrow().iter() {
188 if invalid_output_for_target(sess, crate_type) {
189 bug!("invalid output type `{:?}` for target os `{}`",
190 crate_type, sess.opts.target_triple);
191 }
192 let out_file = link_binary_output(sess, trans, crate_type, outputs,
193 crate_name);
194 out_filenames.push(out_file);
195 }
196
197 // Remove the temporary object file and metadata if we aren't saving temps
198 if !sess.opts.cg.save_temps {
199 for obj in object_filenames(sess, outputs) {
200 remove(sess, &obj);
201 }
202 remove(sess, &outputs.with_extension("metadata.o"));
203 }
204
205 out_filenames
206 }
207
208
209 /// Returns default crate type for target
210 ///
211 /// Default crate type is used when crate type isn't provided neither
212 /// through cmd line arguments nor through crate attributes
213 ///
214 /// It is CrateTypeExecutable for all platforms but iOS as there is no
215 /// way to run iOS binaries anyway without jailbreaking and
216 /// interaction with Rust code through static library is the only
217 /// option for now
218 pub fn default_output_for_target(sess: &Session) -> config::CrateType {
219 if !sess.target.target.options.executables {
220 config::CrateTypeStaticlib
221 } else {
222 config::CrateTypeExecutable
223 }
224 }
225
226 /// Checks if target supports crate_type as output
227 pub fn invalid_output_for_target(sess: &Session,
228 crate_type: config::CrateType) -> bool {
229 match (sess.target.target.options.dynamic_linking,
230 sess.target.target.options.executables, crate_type) {
231 (false, _, config::CrateTypeDylib) => true,
232 (_, false, config::CrateTypeExecutable) => true,
233 _ => false
234 }
235 }
236
237 fn is_writeable(p: &Path) -> bool {
238 match p.metadata() {
239 Err(..) => true,
240 Ok(m) => !m.permissions().readonly()
241 }
242 }
243
244 pub fn filename_for_input(sess: &Session,
245 crate_type: config::CrateType,
246 crate_name: &str,
247 outputs: &OutputFilenames) -> PathBuf {
248 let libname = format!("{}{}", crate_name, sess.opts.cg.extra_filename);
249 match crate_type {
250 config::CrateTypeRlib => {
251 outputs.out_directory.join(&format!("lib{}.rlib", libname))
252 }
253 config::CrateTypeDylib => {
254 let (prefix, suffix) = (&sess.target.target.options.dll_prefix,
255 &sess.target.target.options.dll_suffix);
256 outputs.out_directory.join(&format!("{}{}{}", prefix, libname,
257 suffix))
258 }
259 config::CrateTypeStaticlib => {
260 let (prefix, suffix) = (&sess.target.target.options.staticlib_prefix,
261 &sess.target.target.options.staticlib_suffix);
262 outputs.out_directory.join(&format!("{}{}{}", prefix, libname,
263 suffix))
264 }
265 config::CrateTypeExecutable => {
266 let suffix = &sess.target.target.options.exe_suffix;
267 let out_filename = outputs.path(OutputType::Exe);
268 if suffix.is_empty() {
269 out_filename.to_path_buf()
270 } else {
271 out_filename.with_extension(&suffix[1..])
272 }
273 }
274 }
275 }
276
277 pub fn each_linked_rlib(sess: &Session,
278 f: &mut FnMut(ast::CrateNum, &Path)) {
279 let crates = sess.cstore.used_crates(LinkagePreference::RequireStatic).into_iter();
280 let fmts = sess.dependency_formats.borrow();
281 let fmts = fmts.get(&config::CrateTypeExecutable).or_else(|| {
282 fmts.get(&config::CrateTypeStaticlib)
283 }).unwrap_or_else(|| {
284 bug!("could not find formats for rlibs")
285 });
286 for (cnum, path) in crates {
287 match fmts[cnum as usize - 1] {
288 Linkage::NotLinked | Linkage::IncludedFromDylib => continue,
289 _ => {}
290 }
291 let name = sess.cstore.crate_name(cnum).clone();
292 let path = match path {
293 Some(p) => p,
294 None => {
295 sess.fatal(&format!("could not find rlib for: `{}`", name));
296 }
297 };
298 f(cnum, &path);
299 }
300 }
301
302 fn link_binary_output(sess: &Session,
303 trans: &CrateTranslation,
304 crate_type: config::CrateType,
305 outputs: &OutputFilenames,
306 crate_name: &str) -> PathBuf {
307 let objects = object_filenames(sess, outputs);
308 let default_filename = filename_for_input(sess, crate_type, crate_name,
309 outputs);
310 let out_filename = outputs.outputs.get(&OutputType::Exe)
311 .and_then(|s| s.to_owned())
312 .or_else(|| outputs.single_output_file.clone())
313 .unwrap_or(default_filename);
314
315 // Make sure files are writeable. Mac, FreeBSD, and Windows system linkers
316 // check this already -- however, the Linux linker will happily overwrite a
317 // read-only file. We should be consistent.
318 for file in objects.iter().chain(Some(&out_filename)) {
319 if !is_writeable(file) {
320 sess.fatal(&format!("output file {} is not writeable -- check its \
321 permissions", file.display()));
322 }
323 }
324
325 let tmpdir = match TempDir::new("rustc") {
326 Ok(tmpdir) => tmpdir,
327 Err(err) => sess.fatal(&format!("couldn't create a temp dir: {}", err)),
328 };
329
330 match crate_type {
331 config::CrateTypeRlib => {
332 link_rlib(sess, Some(trans), &objects, &out_filename,
333 tmpdir.path()).build();
334 }
335 config::CrateTypeStaticlib => {
336 link_staticlib(sess, &objects, &out_filename, tmpdir.path());
337 }
338 config::CrateTypeExecutable => {
339 link_natively(sess, false, &objects, &out_filename, trans, outputs,
340 tmpdir.path());
341 }
342 config::CrateTypeDylib => {
343 link_natively(sess, true, &objects, &out_filename, trans, outputs,
344 tmpdir.path());
345 }
346 }
347
348 out_filename
349 }
350
351 fn object_filenames(sess: &Session, outputs: &OutputFilenames) -> Vec<PathBuf> {
352 (0..sess.opts.cg.codegen_units).map(|i| {
353 let ext = format!("{}.o", i);
354 outputs.temp_path(OutputType::Object).with_extension(&ext)
355 }).collect()
356 }
357
358 fn archive_search_paths(sess: &Session) -> Vec<PathBuf> {
359 let mut search = Vec::new();
360 sess.target_filesearch(PathKind::Native).for_each_lib_search_path(|path, _| {
361 search.push(path.to_path_buf());
362 });
363 return search;
364 }
365
366 fn archive_config<'a>(sess: &'a Session,
367 output: &Path,
368 input: Option<&Path>) -> ArchiveConfig<'a> {
369 ArchiveConfig {
370 sess: sess,
371 dst: output.to_path_buf(),
372 src: input.map(|p| p.to_path_buf()),
373 lib_search_paths: archive_search_paths(sess),
374 ar_prog: get_ar_prog(sess),
375 command_path: command_path(sess),
376 }
377 }
378
379 // Create an 'rlib'
380 //
381 // An rlib in its current incarnation is essentially a renamed .a file. The
382 // rlib primarily contains the object file of the crate, but it also contains
383 // all of the object files from native libraries. This is done by unzipping
384 // native libraries and inserting all of the contents into this archive.
385 fn link_rlib<'a>(sess: &'a Session,
386 trans: Option<&CrateTranslation>, // None == no metadata/bytecode
387 objects: &[PathBuf],
388 out_filename: &Path,
389 tmpdir: &Path) -> ArchiveBuilder<'a> {
390 info!("preparing rlib from {:?} to {:?}", objects, out_filename);
391 let mut ab = ArchiveBuilder::new(archive_config(sess, out_filename, None));
392 for obj in objects {
393 ab.add_file(obj);
394 }
395
396 for (l, kind) in sess.cstore.used_libraries() {
397 match kind {
398 NativeLibraryKind::NativeStatic => ab.add_native_library(&l),
399 NativeLibraryKind::NativeFramework |
400 NativeLibraryKind::NativeUnknown => {}
401 }
402 }
403
404 // After adding all files to the archive, we need to update the
405 // symbol table of the archive.
406 ab.update_symbols();
407
408 // For OSX/iOS, we must be careful to update symbols only when adding
409 // object files. We're about to start adding non-object files, so run
410 // `ar` now to process the object files.
411 if sess.target.target.options.is_like_osx && !ab.using_llvm() {
412 ab.build();
413 }
414
415 // Note that it is important that we add all of our non-object "magical
416 // files" *after* all of the object files in the archive. The reason for
417 // this is as follows:
418 //
419 // * When performing LTO, this archive will be modified to remove
420 // objects from above. The reason for this is described below.
421 //
422 // * When the system linker looks at an archive, it will attempt to
423 // determine the architecture of the archive in order to see whether its
424 // linkable.
425 //
426 // The algorithm for this detection is: iterate over the files in the
427 // archive. Skip magical SYMDEF names. Interpret the first file as an
428 // object file. Read architecture from the object file.
429 //
430 // * As one can probably see, if "metadata" and "foo.bc" were placed
431 // before all of the objects, then the architecture of this archive would
432 // not be correctly inferred once 'foo.o' is removed.
433 //
434 // Basically, all this means is that this code should not move above the
435 // code above.
436 match trans {
437 Some(trans) => {
438 // Instead of putting the metadata in an object file section, rlibs
439 // contain the metadata in a separate file. We use a temp directory
440 // here so concurrent builds in the same directory don't try to use
441 // the same filename for metadata (stomping over one another)
442 let metadata = tmpdir.join(sess.cstore.metadata_filename());
443 match fs::File::create(&metadata).and_then(|mut f| {
444 f.write_all(&trans.metadata)
445 }) {
446 Ok(..) => {}
447 Err(e) => {
448 sess.fatal(&format!("failed to write {}: {}",
449 metadata.display(), e));
450 }
451 }
452 ab.add_file(&metadata);
453
454 // For LTO purposes, the bytecode of this library is also inserted
455 // into the archive. If codegen_units > 1, we insert each of the
456 // bitcode files.
457 for obj in objects {
458 // Note that we make sure that the bytecode filename in the
459 // archive is never exactly 16 bytes long by adding a 16 byte
460 // extension to it. This is to work around a bug in LLDB that
461 // would cause it to crash if the name of a file in an archive
462 // was exactly 16 bytes.
463 let bc_filename = obj.with_extension("bc");
464 let bc_deflated_filename = tmpdir.join({
465 obj.with_extension("bytecode.deflate").file_name().unwrap()
466 });
467
468 let mut bc_data = Vec::new();
469 match fs::File::open(&bc_filename).and_then(|mut f| {
470 f.read_to_end(&mut bc_data)
471 }) {
472 Ok(..) => {}
473 Err(e) => sess.fatal(&format!("failed to read bytecode: {}",
474 e))
475 }
476
477 let bc_data_deflated = flate::deflate_bytes(&bc_data[..]);
478
479 let mut bc_file_deflated = match fs::File::create(&bc_deflated_filename) {
480 Ok(file) => file,
481 Err(e) => {
482 sess.fatal(&format!("failed to create compressed \
483 bytecode file: {}", e))
484 }
485 };
486
487 match write_rlib_bytecode_object_v1(&mut bc_file_deflated,
488 &bc_data_deflated) {
489 Ok(()) => {}
490 Err(e) => {
491 sess.fatal(&format!("failed to write compressed \
492 bytecode: {}", e));
493 }
494 };
495
496 ab.add_file(&bc_deflated_filename);
497
498 // See the bottom of back::write::run_passes for an explanation
499 // of when we do and don't keep .0.bc files around.
500 let user_wants_numbered_bitcode =
501 sess.opts.output_types.contains_key(&OutputType::Bitcode) &&
502 sess.opts.cg.codegen_units > 1;
503 if !sess.opts.cg.save_temps && !user_wants_numbered_bitcode {
504 remove(sess, &bc_filename);
505 }
506 }
507
508 // After adding all files to the archive, we need to update the
509 // symbol table of the archive. This currently dies on OSX (see
510 // #11162), and isn't necessary there anyway
511 if !sess.target.target.options.is_like_osx || ab.using_llvm() {
512 ab.update_symbols();
513 }
514 }
515
516 None => {}
517 }
518
519 ab
520 }
521
522 fn write_rlib_bytecode_object_v1(writer: &mut Write,
523 bc_data_deflated: &[u8]) -> io::Result<()> {
524 let bc_data_deflated_size: u64 = bc_data_deflated.len() as u64;
525
526 writer.write_all(RLIB_BYTECODE_OBJECT_MAGIC)?;
527 writer.write_all(&[1, 0, 0, 0])?;
528 writer.write_all(&[
529 (bc_data_deflated_size >> 0) as u8,
530 (bc_data_deflated_size >> 8) as u8,
531 (bc_data_deflated_size >> 16) as u8,
532 (bc_data_deflated_size >> 24) as u8,
533 (bc_data_deflated_size >> 32) as u8,
534 (bc_data_deflated_size >> 40) as u8,
535 (bc_data_deflated_size >> 48) as u8,
536 (bc_data_deflated_size >> 56) as u8,
537 ])?;
538 writer.write_all(&bc_data_deflated)?;
539
540 let number_of_bytes_written_so_far =
541 RLIB_BYTECODE_OBJECT_MAGIC.len() + // magic id
542 mem::size_of_val(&RLIB_BYTECODE_OBJECT_VERSION) + // version
543 mem::size_of_val(&bc_data_deflated_size) + // data size field
544 bc_data_deflated_size as usize; // actual data
545
546 // If the number of bytes written to the object so far is odd, add a
547 // padding byte to make it even. This works around a crash bug in LLDB
548 // (see issue #15950)
549 if number_of_bytes_written_so_far % 2 == 1 {
550 writer.write_all(&[0])?;
551 }
552
553 return Ok(());
554 }
555
556 // Create a static archive
557 //
558 // This is essentially the same thing as an rlib, but it also involves adding
559 // all of the upstream crates' objects into the archive. This will slurp in
560 // all of the native libraries of upstream dependencies as well.
561 //
562 // Additionally, there's no way for us to link dynamic libraries, so we warn
563 // about all dynamic library dependencies that they're not linked in.
564 //
565 // There's no need to include metadata in a static archive, so ensure to not
566 // link in the metadata object file (and also don't prepare the archive with a
567 // metadata file).
568 fn link_staticlib(sess: &Session, objects: &[PathBuf], out_filename: &Path,
569 tempdir: &Path) {
570 let mut ab = link_rlib(sess, None, objects, out_filename, tempdir);
571 if sess.target.target.options.is_like_osx && !ab.using_llvm() {
572 ab.build();
573 }
574 if !sess.target.target.options.no_compiler_rt {
575 ab.add_native_library("compiler-rt");
576 }
577
578 let mut all_native_libs = vec![];
579
580 each_linked_rlib(sess, &mut |cnum, path| {
581 let name = sess.cstore.crate_name(cnum);
582 ab.add_rlib(path, &name, sess.lto()).unwrap();
583
584 let native_libs = sess.cstore.native_libraries(cnum);
585 all_native_libs.extend(native_libs);
586 });
587
588 ab.update_symbols();
589 ab.build();
590
591 if !all_native_libs.is_empty() {
592 sess.note_without_error("link against the following native artifacts when linking against \
593 this static library");
594 sess.note_without_error("the order and any duplication can be significant on some \
595 platforms, and so may need to be preserved");
596 }
597
598 for &(kind, ref lib) in &all_native_libs {
599 let name = match kind {
600 NativeLibraryKind::NativeStatic => "static library",
601 NativeLibraryKind::NativeUnknown => "library",
602 NativeLibraryKind::NativeFramework => "framework",
603 };
604 sess.note_without_error(&format!("{}: {}", name, *lib));
605 }
606 }
607
608 // Create a dynamic library or executable
609 //
610 // This will invoke the system linker/cc to create the resulting file. This
611 // links to all upstream files as well.
612 fn link_natively(sess: &Session, dylib: bool,
613 objects: &[PathBuf], out_filename: &Path,
614 trans: &CrateTranslation,
615 outputs: &OutputFilenames,
616 tmpdir: &Path) {
617 info!("preparing dylib? ({}) from {:?} to {:?}", dylib, objects,
618 out_filename);
619
620 // The invocations of cc share some flags across platforms
621 let (pname, mut cmd) = get_linker(sess);
622 cmd.env("PATH", command_path(sess));
623
624 let root = sess.target_filesearch(PathKind::Native).get_lib_path();
625 cmd.args(&sess.target.target.options.pre_link_args);
626
627 let pre_link_objects = if dylib {
628 &sess.target.target.options.pre_link_objects_dll
629 } else {
630 &sess.target.target.options.pre_link_objects_exe
631 };
632 for obj in pre_link_objects {
633 cmd.arg(root.join(obj));
634 }
635
636 {
637 let mut linker = if sess.target.target.options.is_like_msvc {
638 Box::new(MsvcLinker { cmd: &mut cmd, sess: &sess }) as Box<Linker>
639 } else {
640 Box::new(GnuLinker { cmd: &mut cmd, sess: &sess }) as Box<Linker>
641 };
642 link_args(&mut *linker, sess, dylib, tmpdir,
643 objects, out_filename, trans, outputs);
644 if !sess.target.target.options.no_compiler_rt {
645 linker.link_staticlib("compiler-rt");
646 }
647 }
648 cmd.args(&sess.target.target.options.late_link_args);
649 for obj in &sess.target.target.options.post_link_objects {
650 cmd.arg(root.join(obj));
651 }
652 cmd.args(&sess.target.target.options.post_link_args);
653
654 if sess.opts.debugging_opts.print_link_args {
655 println!("{:?}", &cmd);
656 }
657
658 // May have not found libraries in the right formats.
659 sess.abort_if_errors();
660
661 // Invoke the system linker
662 info!("{:?}", &cmd);
663 let prog = time(sess.time_passes(), "running linker", || cmd.output());
664 match prog {
665 Ok(prog) => {
666 fn escape_string(s: &[u8]) -> String {
667 str::from_utf8(s).map(|s| s.to_owned())
668 .unwrap_or_else(|_| {
669 let mut x = "Non-UTF-8 output: ".to_string();
670 x.extend(s.iter()
671 .flat_map(|&b| ascii::escape_default(b))
672 .map(|b| char::from_u32(b as u32).unwrap()));
673 x
674 })
675 }
676 if !prog.status.success() {
677 let mut output = prog.stderr.clone();
678 output.extend_from_slice(&prog.stdout);
679 sess.struct_err(&format!("linking with `{}` failed: {}",
680 pname,
681 prog.status))
682 .note(&format!("{:?}", &cmd))
683 .note(&escape_string(&output[..]))
684 .emit();
685 sess.abort_if_errors();
686 }
687 info!("linker stderr:\n{}", escape_string(&prog.stderr[..]));
688 info!("linker stdout:\n{}", escape_string(&prog.stdout[..]));
689 },
690 Err(e) => {
691 sess.fatal(&format!("could not exec the linker `{}`: {}", pname, e));
692 }
693 }
694
695
696 // On OSX, debuggers need this utility to get run to do some munging of
697 // the symbols
698 if sess.target.target.options.is_like_osx && sess.opts.debuginfo != NoDebugInfo {
699 match Command::new("dsymutil").arg(out_filename).output() {
700 Ok(..) => {}
701 Err(e) => sess.fatal(&format!("failed to run dsymutil: {}", e)),
702 }
703 }
704 }
705
706 fn link_args(cmd: &mut Linker,
707 sess: &Session,
708 dylib: bool,
709 tmpdir: &Path,
710 objects: &[PathBuf],
711 out_filename: &Path,
712 trans: &CrateTranslation,
713 outputs: &OutputFilenames) {
714
715 // The default library location, we need this to find the runtime.
716 // The location of crates will be determined as needed.
717 let lib_path = sess.target_filesearch(PathKind::All).get_lib_path();
718
719 // target descriptor
720 let t = &sess.target.target;
721
722 cmd.include_path(&fix_windows_verbatim_for_gcc(&lib_path));
723 for obj in objects {
724 cmd.add_object(obj);
725 }
726 cmd.output_filename(out_filename);
727
728 // If we're building a dynamic library then some platforms need to make sure
729 // that all symbols are exported correctly from the dynamic library.
730 if dylib {
731 cmd.export_symbols(sess, trans, tmpdir);
732 }
733
734 // When linking a dynamic library, we put the metadata into a section of the
735 // executable. This metadata is in a separate object file from the main
736 // object file, so we link that in here.
737 if dylib {
738 cmd.add_object(&outputs.with_extension("metadata.o"));
739 }
740
741 // Try to strip as much out of the generated object by removing unused
742 // sections if possible. See more comments in linker.rs
743 if !sess.opts.cg.link_dead_code {
744 cmd.gc_sections(dylib);
745 }
746
747 let used_link_args = sess.cstore.used_link_args();
748
749 if !dylib && t.options.position_independent_executables {
750 let empty_vec = Vec::new();
751 let empty_str = String::new();
752 let args = sess.opts.cg.link_args.as_ref().unwrap_or(&empty_vec);
753 let mut args = args.iter().chain(used_link_args.iter());
754 let relocation_model = sess.opts.cg.relocation_model.as_ref()
755 .unwrap_or(&empty_str);
756 if (t.options.relocation_model == "pic" || *relocation_model == "pic")
757 && !args.any(|x| *x == "-static") {
758 cmd.position_independent_executable();
759 }
760 }
761
762 // Pass optimization flags down to the linker.
763 cmd.optimize();
764
765 // Pass debuginfo flags down to the linker.
766 cmd.debuginfo();
767
768 // We want to prevent the compiler from accidentally leaking in any system
769 // libraries, so we explicitly ask gcc to not link to any libraries by
770 // default. Note that this does not happen for windows because windows pulls
771 // in some large number of libraries and I couldn't quite figure out which
772 // subset we wanted.
773 if t.options.no_default_libraries {
774 cmd.no_default_libraries();
775 }
776
777 // Take careful note of the ordering of the arguments we pass to the linker
778 // here. Linkers will assume that things on the left depend on things to the
779 // right. Things on the right cannot depend on things on the left. This is
780 // all formally implemented in terms of resolving symbols (libs on the right
781 // resolve unknown symbols of libs on the left, but not vice versa).
782 //
783 // For this reason, we have organized the arguments we pass to the linker as
784 // such:
785 //
786 // 1. The local object that LLVM just generated
787 // 2. Local native libraries
788 // 3. Upstream rust libraries
789 // 4. Upstream native libraries
790 //
791 // The rationale behind this ordering is that those items lower down in the
792 // list can't depend on items higher up in the list. For example nothing can
793 // depend on what we just generated (e.g. that'd be a circular dependency).
794 // Upstream rust libraries are not allowed to depend on our local native
795 // libraries as that would violate the structure of the DAG, in that
796 // scenario they are required to link to them as well in a shared fashion.
797 //
798 // Note that upstream rust libraries may contain native dependencies as
799 // well, but they also can't depend on what we just started to add to the
800 // link line. And finally upstream native libraries can't depend on anything
801 // in this DAG so far because they're only dylibs and dylibs can only depend
802 // on other dylibs (e.g. other native deps).
803 add_local_native_libraries(cmd, sess);
804 add_upstream_rust_crates(cmd, sess, dylib, tmpdir);
805 add_upstream_native_libraries(cmd, sess);
806
807 // # Telling the linker what we're doing
808
809 if dylib {
810 cmd.build_dylib(out_filename);
811 }
812
813 // FIXME (#2397): At some point we want to rpath our guesses as to
814 // where extern libraries might live, based on the
815 // addl_lib_search_paths
816 if sess.opts.cg.rpath {
817 let sysroot = sess.sysroot();
818 let target_triple = &sess.opts.target_triple;
819 let mut get_install_prefix_lib_path = || {
820 let install_prefix = option_env!("CFG_PREFIX").expect("CFG_PREFIX");
821 let tlib = filesearch::relative_target_lib_path(sysroot, target_triple);
822 let mut path = PathBuf::from(install_prefix);
823 path.push(&tlib);
824
825 path
826 };
827 let mut rpath_config = RPathConfig {
828 used_crates: sess.cstore.used_crates(LinkagePreference::RequireDynamic),
829 out_filename: out_filename.to_path_buf(),
830 has_rpath: sess.target.target.options.has_rpath,
831 is_like_osx: sess.target.target.options.is_like_osx,
832 linker_is_gnu: sess.target.target.options.linker_is_gnu,
833 get_install_prefix_lib_path: &mut get_install_prefix_lib_path,
834 };
835 cmd.args(&rpath::get_rpath_flags(&mut rpath_config));
836 }
837
838 // Finally add all the linker arguments provided on the command line along
839 // with any #[link_args] attributes found inside the crate
840 if let Some(ref args) = sess.opts.cg.link_args {
841 cmd.args(args);
842 }
843 cmd.args(&used_link_args);
844 }
845
846 // # Native library linking
847 //
848 // User-supplied library search paths (-L on the command line). These are
849 // the same paths used to find Rust crates, so some of them may have been
850 // added already by the previous crate linking code. This only allows them
851 // to be found at compile time so it is still entirely up to outside
852 // forces to make sure that library can be found at runtime.
853 //
854 // Also note that the native libraries linked here are only the ones located
855 // in the current crate. Upstream crates with native library dependencies
856 // may have their native library pulled in above.
857 fn add_local_native_libraries(cmd: &mut Linker, sess: &Session) {
858 sess.target_filesearch(PathKind::All).for_each_lib_search_path(|path, k| {
859 match k {
860 PathKind::Framework => { cmd.framework_path(path); }
861 _ => { cmd.include_path(&fix_windows_verbatim_for_gcc(path)); }
862 }
863 });
864
865 let libs = sess.cstore.used_libraries();
866
867 let staticlibs = libs.iter().filter_map(|&(ref l, kind)| {
868 if kind == NativeLibraryKind::NativeStatic {Some(l)} else {None}
869 });
870 let others = libs.iter().filter(|&&(_, kind)| {
871 kind != NativeLibraryKind::NativeStatic
872 });
873
874 // Some platforms take hints about whether a library is static or dynamic.
875 // For those that support this, we ensure we pass the option if the library
876 // was flagged "static" (most defaults are dynamic) to ensure that if
877 // libfoo.a and libfoo.so both exist that the right one is chosen.
878 cmd.hint_static();
879
880 let search_path = archive_search_paths(sess);
881 for l in staticlibs {
882 // Here we explicitly ask that the entire archive is included into the
883 // result artifact. For more details see #15460, but the gist is that
884 // the linker will strip away any unused objects in the archive if we
885 // don't otherwise explicitly reference them. This can occur for
886 // libraries which are just providing bindings, libraries with generic
887 // functions, etc.
888 cmd.link_whole_staticlib(l, &search_path);
889 }
890
891 cmd.hint_dynamic();
892
893 for &(ref l, kind) in others {
894 match kind {
895 NativeLibraryKind::NativeUnknown => cmd.link_dylib(l),
896 NativeLibraryKind::NativeFramework => cmd.link_framework(l),
897 NativeLibraryKind::NativeStatic => bug!(),
898 }
899 }
900 }
901
902 // # Rust Crate linking
903 //
904 // Rust crates are not considered at all when creating an rlib output. All
905 // dependencies will be linked when producing the final output (instead of
906 // the intermediate rlib version)
907 fn add_upstream_rust_crates(cmd: &mut Linker, sess: &Session,
908 dylib: bool, tmpdir: &Path) {
909 // All of the heavy lifting has previously been accomplished by the
910 // dependency_format module of the compiler. This is just crawling the
911 // output of that module, adding crates as necessary.
912 //
913 // Linking to a rlib involves just passing it to the linker (the linker
914 // will slurp up the object files inside), and linking to a dynamic library
915 // involves just passing the right -l flag.
916
917 let formats = sess.dependency_formats.borrow();
918 let data = if dylib {
919 formats.get(&config::CrateTypeDylib).unwrap()
920 } else {
921 formats.get(&config::CrateTypeExecutable).unwrap()
922 };
923
924 // Invoke get_used_crates to ensure that we get a topological sorting of
925 // crates.
926 let deps = sess.cstore.used_crates(LinkagePreference::RequireDynamic);
927
928 for &(cnum, _) in &deps {
929 // We may not pass all crates through to the linker. Some crates may
930 // appear statically in an existing dylib, meaning we'll pick up all the
931 // symbols from the dylib.
932 let src = sess.cstore.used_crate_source(cnum);
933 match data[cnum as usize - 1] {
934 Linkage::NotLinked |
935 Linkage::IncludedFromDylib => {}
936 Linkage::Static => {
937 add_static_crate(cmd, sess, tmpdir, dylib, &src.rlib.unwrap().0)
938 }
939 Linkage::Dynamic => {
940 add_dynamic_crate(cmd, sess, &src.dylib.unwrap().0)
941 }
942 }
943 }
944
945 // Converts a library file-stem into a cc -l argument
946 fn unlib<'a>(config: &config::Config, stem: &'a str) -> &'a str {
947 if stem.starts_with("lib") && !config.target.options.is_like_windows {
948 &stem[3..]
949 } else {
950 stem
951 }
952 }
953
954 // Adds the static "rlib" versions of all crates to the command line.
955 // There's a bit of magic which happens here specifically related to LTO and
956 // dynamic libraries. Specifically:
957 //
958 // * For LTO, we remove upstream object files.
959 // * For dylibs we remove metadata and bytecode from upstream rlibs
960 //
961 // When performing LTO, all of the bytecode from the upstream libraries has
962 // already been included in our object file output. As a result we need to
963 // remove the object files in the upstream libraries so the linker doesn't
964 // try to include them twice (or whine about duplicate symbols). We must
965 // continue to include the rest of the rlib, however, as it may contain
966 // static native libraries which must be linked in.
967 //
968 // When making a dynamic library, linkers by default don't include any
969 // object files in an archive if they're not necessary to resolve the link.
970 // We basically want to convert the archive (rlib) to a dylib, though, so we
971 // *do* want everything included in the output, regardless of whether the
972 // linker thinks it's needed or not. As a result we must use the
973 // --whole-archive option (or the platform equivalent). When using this
974 // option the linker will fail if there are non-objects in the archive (such
975 // as our own metadata and/or bytecode). All in all, for rlibs to be
976 // entirely included in dylibs, we need to remove all non-object files.
977 //
978 // Note, however, that if we're not doing LTO or we're not producing a dylib
979 // (aka we're making an executable), we can just pass the rlib blindly to
980 // the linker (fast) because it's fine if it's not actually included as
981 // we're at the end of the dependency chain.
982 fn add_static_crate(cmd: &mut Linker, sess: &Session, tmpdir: &Path,
983 dylib: bool, cratepath: &Path) {
984 if !sess.lto() && !dylib {
985 cmd.link_rlib(&fix_windows_verbatim_for_gcc(cratepath));
986 return
987 }
988
989 let dst = tmpdir.join(cratepath.file_name().unwrap());
990 let name = cratepath.file_name().unwrap().to_str().unwrap();
991 let name = &name[3..name.len() - 5]; // chop off lib/.rlib
992
993 time(sess.time_passes(), &format!("altering {}.rlib", name), || {
994 let cfg = archive_config(sess, &dst, Some(cratepath));
995 let mut archive = ArchiveBuilder::new(cfg);
996 archive.remove_file(sess.cstore.metadata_filename());
997 archive.update_symbols();
998
999 let mut any_objects = false;
1000 for f in archive.src_files() {
1001 if f.ends_with("bytecode.deflate") {
1002 archive.remove_file(&f);
1003 continue
1004 }
1005 let canonical = f.replace("-", "_");
1006 let canonical_name = name.replace("-", "_");
1007 if sess.lto() && canonical.starts_with(&canonical_name) &&
1008 canonical.ends_with(".o") {
1009 let num = &f[name.len()..f.len() - 2];
1010 if num.len() > 0 && num[1..].parse::<u32>().is_ok() {
1011 archive.remove_file(&f);
1012 continue
1013 }
1014 }
1015 any_objects = true;
1016 }
1017
1018 if any_objects {
1019 archive.build();
1020 if dylib {
1021 cmd.link_whole_rlib(&fix_windows_verbatim_for_gcc(&dst));
1022 } else {
1023 cmd.link_rlib(&fix_windows_verbatim_for_gcc(&dst));
1024 }
1025 }
1026 });
1027 }
1028
1029 // Same thing as above, but for dynamic crates instead of static crates.
1030 fn add_dynamic_crate(cmd: &mut Linker, sess: &Session, cratepath: &Path) {
1031 // If we're performing LTO, then it should have been previously required
1032 // that all upstream rust dependencies were available in an rlib format.
1033 assert!(!sess.lto());
1034
1035 // Just need to tell the linker about where the library lives and
1036 // what its name is
1037 let parent = cratepath.parent();
1038 if let Some(dir) = parent {
1039 cmd.include_path(&fix_windows_verbatim_for_gcc(dir));
1040 }
1041 let filestem = cratepath.file_stem().unwrap().to_str().unwrap();
1042 cmd.link_rust_dylib(&unlib(&sess.target, filestem),
1043 parent.unwrap_or(Path::new("")));
1044 }
1045 }
1046
1047 // Link in all of our upstream crates' native dependencies. Remember that
1048 // all of these upstream native dependencies are all non-static
1049 // dependencies. We've got two cases then:
1050 //
1051 // 1. The upstream crate is an rlib. In this case we *must* link in the
1052 // native dependency because the rlib is just an archive.
1053 //
1054 // 2. The upstream crate is a dylib. In order to use the dylib, we have to
1055 // have the dependency present on the system somewhere. Thus, we don't
1056 // gain a whole lot from not linking in the dynamic dependency to this
1057 // crate as well.
1058 //
1059 // The use case for this is a little subtle. In theory the native
1060 // dependencies of a crate are purely an implementation detail of the crate
1061 // itself, but the problem arises with generic and inlined functions. If a
1062 // generic function calls a native function, then the generic function must
1063 // be instantiated in the target crate, meaning that the native symbol must
1064 // also be resolved in the target crate.
1065 fn add_upstream_native_libraries(cmd: &mut Linker, sess: &Session) {
1066 // Be sure to use a topological sorting of crates because there may be
1067 // interdependencies between native libraries. When passing -nodefaultlibs,
1068 // for example, almost all native libraries depend on libc, so we have to
1069 // make sure that's all the way at the right (liblibc is near the base of
1070 // the dependency chain).
1071 //
1072 // This passes RequireStatic, but the actual requirement doesn't matter,
1073 // we're just getting an ordering of crate numbers, we're not worried about
1074 // the paths.
1075 let crates = sess.cstore.used_crates(LinkagePreference::RequireStatic);
1076 for (cnum, _) in crates {
1077 let libs = sess.cstore.native_libraries(cnum);
1078 for &(kind, ref lib) in &libs {
1079 match kind {
1080 NativeLibraryKind::NativeUnknown => cmd.link_dylib(lib),
1081 NativeLibraryKind::NativeFramework => cmd.link_framework(lib),
1082 NativeLibraryKind::NativeStatic => {
1083 bug!("statics shouldn't be propagated");
1084 }
1085 }
1086 }
1087 }
1088 }