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2019-03-29Add a new wasm32-unknown-wasi targetAlex Crichton-0/+3
This commit adds a new wasm32-based target distributed through rustup, supported in the standard library, and implemented in the compiler. The `wasm32-unknown-wasi` target is intended to be a WebAssembly target which matches the [WASI proposal recently announced.][LINK]. In summary the WASI target is an effort to define a standard set of syscalls for WebAssembly modules, allowing WebAssembly modules to not only be portable across architectures but also be portable across environments implementing this standard set of system calls. The wasi target in libstd is still somewhat bare bones. This PR does not fill out the filesystem, networking, threads, etc. Instead it only provides the most basic of integration with the wasi syscalls, enabling features like: * `Instant::now` and `SystemTime::now` work * `env::args` is hooked up * `env::vars` will look up environment variables * `println!` will print to standard out * `process::{exit, abort}` should be hooked up appropriately None of these APIs can work natively on the `wasm32-unknown-unknown` target, but with the assumption of the WASI set of syscalls we're able to provide implementations of these syscalls that engines can implement. Currently the primary engine implementing wasi is [wasmtime], but more will surely emerge! In terms of future development of libstd, I think this is something we'll probably want to discuss. The purpose of the WASI target is to provide a standardized set of syscalls, but it's *also* to provide a standard C sysroot for compiling C/C++ programs. This means it's intended that functions like `read` and `write` are implemented for this target with a relatively standard definition and implementation. It's unclear, therefore, how we want to expose file descriptors and how we'll want to implement system primitives. For example should `std::fs::File` have a libc-based file descriptor underneath it? The raw wasi file descriptor? We'll see! Currently these details are all intentionally hidden and things we can change over time. A `WasiFd` sample struct was added to the standard library as part of this commit, but it's not currently used. It shows how all the wasi syscalls could be ergonomically bound in Rust, and they offer a possible implementation of primitives like `std::fs::File` if we bind wasi file descriptors exactly. Apart from the standard library, there's also the matter of how this target is integrated with respect to its C standard library. The reference sysroot, for example, provides managment of standard unix file descriptors and also standard APIs like `open` (as opposed to the relative `openat` inspiration for the wasi ssycalls). Currently the standard library relies on the C sysroot symbols for operations such as environment management, process exit, and `read`/`write` of stdio fds. We want these operations in Rust to be interoperable with C if they're used in the same process. Put another way, if Rust and C are linked into the same WebAssembly binary they should work together, but that requires that the same C standard library is used. We also, however, want the `wasm32-unknown-wasi` target to be usable-by-default with the Rust compiler without requiring a separate toolchain to get downloaded and configured. With that in mind, there's two modes of operation for the `wasm32-unknown-wasi` target: 1. By default the C standard library is statically provided inside of `liblibc.rlib` distributed as part of the sysroot. This means that you can `rustc foo.wasm --target wasm32-unknown-unknown` and you're good to go, a fully workable wasi binary pops out. This is incompatible with linking in C code, however, which may be compiled against a different sysroot than the Rust code was previously compiled against. In this mode the default of `rust-lld` is used to link binaries. 2. For linking with C code, the `-C target-feature=-crt-static` flag needs to be passed. This takes inspiration from the musl target for this flag, but the idea is that you're no longer using the provided static C runtime, but rather one will be provided externally. This flag is intended to also get coupled with an external `clang` compiler configured with its own sysroot. Therefore you'll typically use this flag with `-C linker=/path/to/clang-script-wrapper`. Using this mode the Rust code will continue to reference standard C symbols, but the definition will be pulled in by the linker configured. Alright so that's all the current state of this PR. I suspect we'll definitely want to discuss this before landing of course! This PR is coupled with libc changes as well which I'll be posting shortly. [LINK]: [wasmtime]:
2019-02-28libstd => 2018Taiki Endo-1/+1
2019-02-10libs: doc commentsAlexander Regueiro-1/+1
2019-02-02Update visibility of intermediate use items.David Wood-0/+2
Currently, the target of a use statement will be updated with the visibility of the use statement itself (if the use statement was visible). This commit ensures that if the path to the target item is via another use statement then that intermediate use statement will also have the visibility updated like the target. This silences incorrect `unreachable_pub` lints with inactionable suggestions.
2018-12-31Bound sgx target_env with fortanix as target_vendorYu Ding-3/+7
Signed-off-by: Yu Ding <dingelish@gmail.com>
2018-12-25Remove licensesMark Rousskov-10/+0
2018-12-19SGX target: fix docs buildJethro Beekman-2/+2
2018-12-07Add x86_64-fortanix-unknown-sgx target to libstd and dependenciesJethro Beekman-0/+3
The files src/libstd/sys/sgx/*.rs are mostly copied/adapted from the wasm target. This also updates the dlmalloc submodule to the very latest version.
2018-08-31use cfg(rustdoc) instead of cfg(dox) in std and friendsQuietMisdreavus-2/+2
2018-06-25Add missing \[allow(missing_docs)\]Guillaume Gomez-0/+1
2018-06-20Fix doc build on unknown windows targetGuillaume Gomez-0/+2
2018-01-11Make the documentation build work on CloudABI.Ed Schouten-5/+7
Just like with wasm, we can't just import unix::ext and windows::ext. Our shims are not complete enough for that.
2018-01-11Implement libstd for CloudABI.Ed Schouten-0/+3
Though CloudABI is strongly inspired by POSIX, its absence of features that don't work well with capability-based sandboxing makes it different enough that adding bits to sys/unix will make things a mess. This change therefore adds CloudABI specific platform code under sys/cloudabi and borrows parts from sys/unix that can be used without changes. One of the goals of this implementation is to build as much as possible directly on top of CloudABI's system call layer, as opposed to using the C library. This is preferred, as the system call layer is supposed to be stable, whereas the C library ABI technically is not. An advantage of this approach is that it allows us to implement certain interfaces, such as mutexes and condition variables more optimally. They can be lighter than the ones provided by pthreads. This change disables some modules that cannot realistically be implemented right now. For example, libstd's pathname abstraction is not designed with POSIX *at() (e.g., openat()) in mind. The *at() functions are the only set of file system APIs available on CloudABI. There is no global file system namespace, nor a process working directory. Discussions on how to port these modules over are outside the scope of this change. Apart from this change, there are still some other minor fixups that need to be made to platform independent code to make things build. These will be sent out separately, so they can be reviewed more thoroughly.
2017-11-25rustbuild: Enable WebAssembly backend by defaultAlex Crichton-46/+63
This commit alters how we compile LLVM by default enabling the WebAssembly backend. This then also adds the wasm32-unknown-unknown target to get compiled on the `cross` builder and distributed through rustup. Tests are not yet enabled for this target but that should hopefully be coming soon!
2017-11-19std: Add a new wasm32-unknown-unknown targetAlex Crichton-0/+3
This commit adds a new target to the compiler: wasm32-unknown-unknown. This target is a reimagining of what it looks like to generate WebAssembly code from Rust. Instead of using Emscripten which can bring with it a weighty runtime this instead is a target which uses only the LLVM backend for WebAssembly and a "custom linker" for now which will hopefully one day be direct calls to lld. Notable features of this target include: * There is zero runtime footprint. The target assumes nothing exists other than the wasm32 instruction set. * There is zero toolchain footprint beyond adding the target. No custom linker is needed, rustc contains everything. * Very small wasm modules can be generated directly from Rust code using this target. * Most of the standard library is stubbed out to return an error, but anything related to allocation works (aka `HashMap`, `Vec`, etc). * Naturally, any `#[no_std]` crate should be 100% compatible with this new target. This target is currently somewhat janky due to how linking works. The "linking" is currently unconditional whole program LTO (aka LLVM is being used as a linker). Naturally that means compiling programs is pretty slow! Eventually though this target should have a linker. This target is also intended to be quite experimental. I'm hoping that this can act as a catalyst for further experimentation in Rust with WebAssembly. Breaking changes are very likely to land to this target, so it's not recommended to rely on it in any critical capacity yet. We'll let you know when it's "production ready". --- Currently testing-wise this target is looking pretty good but isn't complete. I've got almost the entire `run-pass` test suite working with this target (lots of tests ignored, but many passing as well). The `core` test suite is still getting LLVM bugs fixed to get that working and will take some time. Relatively simple programs all seem to work though! --- It's worth nothing that you may not immediately see the "smallest possible wasm module" for the input you feed to rustc. For various reasons it's very difficult to get rid of the final "bloat" in vanilla rustc (again, a real linker should fix all this). For now what you'll have to do is: cargo install --git https://github.com/alexcrichton/wasm-gc wasm-gc foo.wasm bar.wasm And then `bar.wasm` should be the smallest we can get it! --- In any case for now I'd love feedback on this, particularly on the various integration points if you've got better ideas of how to approach them!
2017-08-10Exposed all platform-specific documentation.kennytm-0/+30
2017-02-15sys/mod doc update and mod import order adjustking6cong-6/+6
2016-12-20Fix compile errors and suchAlex Crichton-0/+2
2016-11-10Merge branch 'master' into redoxJeremy Soller-1/+1
2016-11-10Use target_os = redox for cfgJeremy Soller-1/+1
2016-11-10doc: fix typosTshepang Lekhonkhobe-1/+1
2016-11-03Merge branch 'master' into redoxJeremy Soller-0/+45
2016-11-01Document sys_common and sysBrian Anderson-0/+22
2016-11-01std: Move platform-specific code out of libstd/lib.rsBrian Anderson-0/+19