2015-06-25 10:07:01 -07:00
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// Copyright 2015 The Rust Project Developers. See the COPYRIGHT
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// file at the top-level directory of this distribution and at
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// http://rust-lang.org/COPYRIGHT.
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//
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// Licensed under the Apache License, Version 2.0 <LICENSE-APACHE or
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// http://www.apache.org/licenses/LICENSE-2.0> or the MIT license
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// <LICENSE-MIT or http://opensource.org/licenses/MIT>, at your
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// option. This file may not be copied, modified, or distributed
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// except according to those terms.
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#![crate_name = "alloc_system"]
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#![crate_type = "rlib"]
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#![no_std]
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2016-12-29 09:47:34 -08:00
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#![deny(warnings)]
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2015-06-25 10:07:01 -07:00
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#![unstable(feature = "alloc_system",
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reason = "this library is unlikely to be stabilized in its current \
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2015-08-13 13:06:25 -07:00
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form or name",
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issue = "27783")]
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2017-06-03 14:54:08 -07:00
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#![cfg_attr(stage0, allocator)]
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#![cfg_attr(stage0, feature(allocator))]
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#![cfg_attr(stage0, feature(core_intrinsics))]
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#![cfg_attr(not(stage0), feature(global_allocator))]
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#![cfg_attr(not(stage0), feature(allocator_api))]
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#![cfg_attr(not(stage0), feature(alloc))]
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#![cfg_attr(not(stage0), feature(core_intrinsics))]
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2015-06-25 10:07:01 -07:00
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#![feature(staged_api)]
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2016-12-20 18:09:19 -07:00
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#![cfg_attr(any(unix, target_os = "redox"), feature(libc))]
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2015-06-25 10:07:01 -07:00
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// The minimum alignment guaranteed by the architecture. This value is used to
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// add fast paths for low alignment values. In practice, the alignment is a
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// constant at the call site and the branch will be optimized out.
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2015-12-02 21:03:21 -05:00
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#[cfg(all(any(target_arch = "x86",
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target_arch = "arm",
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2015-06-25 10:07:01 -07:00
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target_arch = "mips",
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2015-12-28 21:09:06 +00:00
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target_arch = "powerpc",
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2015-11-26 19:05:10 +00:00
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target_arch = "powerpc64",
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2016-09-06 00:41:50 +00:00
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target_arch = "asmjs",
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target_arch = "wasm32")))]
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2015-06-25 10:07:01 -07:00
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const MIN_ALIGN: usize = 8;
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2015-12-02 21:03:21 -05:00
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#[cfg(all(any(target_arch = "x86_64",
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2016-08-27 01:39:29 -05:00
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target_arch = "aarch64",
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2016-09-09 23:00:23 +02:00
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target_arch = "mips64",
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2016-12-06 15:55:11 -06:00
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target_arch = "s390x",
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target_arch = "sparc64")))]
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2015-06-25 10:07:01 -07:00
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const MIN_ALIGN: usize = 16;
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2017-06-03 14:54:08 -07:00
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#[cfg(stage0)]
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pub use old::*;
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#[cfg(stage0)]
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mod old;
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2015-06-25 10:07:01 -07:00
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#[cfg(not(stage0))]
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pub use new::System;
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#[cfg(not(stage0))]
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mod new {
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pub extern crate alloc;
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2017-03-09 17:53:01 -08:00
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use self::alloc::heap::{Alloc, AllocErr, Layout, Excess, CannotReallocInPlace};
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2015-06-25 10:07:01 -07:00
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2017-06-03 14:54:08 -07:00
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#[unstable(feature = "allocator_api", issue = "32838")]
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pub struct System;
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2015-06-25 10:07:01 -07:00
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#[unstable(feature = "allocator_api", issue = "32838")]
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unsafe impl Alloc for System {
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#[inline]
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unsafe fn alloc(&mut self, layout: Layout) -> Result<*mut u8, AllocErr> {
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(&*self).alloc(layout)
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}
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#[inline]
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unsafe fn alloc_zeroed(&mut self, layout: Layout)
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-> Result<*mut u8, AllocErr>
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{
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(&*self).alloc_zeroed(layout)
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}
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#[inline]
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unsafe fn dealloc(&mut self, ptr: *mut u8, layout: Layout) {
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(&*self).dealloc(ptr, layout)
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}
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#[inline]
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unsafe fn realloc(&mut self,
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ptr: *mut u8,
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old_layout: Layout,
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new_layout: Layout) -> Result<*mut u8, AllocErr> {
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(&*self).realloc(ptr, old_layout, new_layout)
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}
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2015-06-25 10:07:01 -07:00
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2017-06-03 14:54:08 -07:00
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fn oom(&mut self, err: AllocErr) -> ! {
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(&*self).oom(err)
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}
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#[inline]
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fn usable_size(&self, layout: &Layout) -> (usize, usize) {
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(&self).usable_size(layout)
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}
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#[inline]
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unsafe fn alloc_excess(&mut self, layout: Layout) -> Result<Excess, AllocErr> {
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(&*self).alloc_excess(layout)
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}
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#[inline]
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unsafe fn realloc_excess(&mut self,
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ptr: *mut u8,
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layout: Layout,
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new_layout: Layout) -> Result<Excess, AllocErr> {
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(&*self).realloc_excess(ptr, layout, new_layout)
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}
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#[inline]
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unsafe fn grow_in_place(&mut self,
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ptr: *mut u8,
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layout: Layout,
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new_layout: Layout) -> Result<(), CannotReallocInPlace> {
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(&*self).grow_in_place(ptr, layout, new_layout)
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}
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#[inline]
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unsafe fn shrink_in_place(&mut self,
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ptr: *mut u8,
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layout: Layout,
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new_layout: Layout) -> Result<(), CannotReallocInPlace> {
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(&*self).shrink_in_place(ptr, layout, new_layout)
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}
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}
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2015-06-25 10:07:01 -07:00
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}
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2017-06-03 14:54:08 -07:00
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#[cfg(all(not(stage0), any(unix, target_os = "redox")))]
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mod platform {
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rustc: Implement custom panic runtimes
This commit is an implementation of [RFC 1513] which allows applications to
alter the behavior of panics at compile time. A new compiler flag, `-C panic`,
is added and accepts the values `unwind` or `panic`, with the default being
`unwind`. This model affects how code is generated for the local crate, skipping
generation of landing pads with `-C panic=abort`.
[RFC 1513]: https://github.com/rust-lang/rfcs/blob/master/text/1513-less-unwinding.md
Panic implementations are then provided by crates tagged with
`#![panic_runtime]` and lazily required by crates with
`#![needs_panic_runtime]`. The panic strategy (`-C panic` value) of the panic
runtime must match the final product, and if the panic strategy is not `abort`
then the entire DAG must have the same panic strategy.
With the `-C panic=abort` strategy, users can expect a stable method to disable
generation of landing pads, improving optimization in niche scenarios,
decreasing compile time, and decreasing output binary size. With the `-C
panic=unwind` strategy users can expect the existing ability to isolate failure
in Rust code from the outside world.
Organizationally, this commit dismantles the `sys_common::unwind` module in
favor of some bits moving part of it to `libpanic_unwind` and the rest into the
`panicking` module in libstd. The custom panic runtime support is pretty similar
to the custom allocator support with the only major difference being how the
panic runtime is injected (takes the `-C panic` flag into account).
2016-04-08 16:18:40 -07:00
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extern crate libc;
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2015-06-25 10:07:01 -07:00
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use core::cmp;
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use core::ptr;
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2017-06-03 14:54:08 -07:00
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2015-06-25 10:07:01 -07:00
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use MIN_ALIGN;
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2017-06-03 14:54:08 -07:00
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use new::System;
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use new::alloc::heap::{Alloc, AllocErr, Layout};
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#[unstable(feature = "allocator_api", issue = "32838")]
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unsafe impl<'a> Alloc for &'a System {
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#[inline]
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unsafe fn alloc(&mut self, layout: Layout) -> Result<*mut u8, AllocErr> {
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let ptr = if layout.align() <= MIN_ALIGN {
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libc::malloc(layout.size()) as *mut u8
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} else {
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aligned_malloc(&layout)
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};
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if !ptr.is_null() {
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Ok(ptr)
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} else {
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Err(AllocErr::Exhausted { request: layout })
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}
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}
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2015-06-25 10:07:01 -07:00
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2017-06-03 14:54:08 -07:00
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#[inline]
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unsafe fn alloc_zeroed(&mut self, layout: Layout)
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-> Result<*mut u8, AllocErr>
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{
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if layout.align() <= MIN_ALIGN {
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let ptr = libc::calloc(layout.size(), 1) as *mut u8;
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if !ptr.is_null() {
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Ok(ptr)
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} else {
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Err(AllocErr::Exhausted { request: layout })
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}
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} else {
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let ret = self.alloc(layout.clone());
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if let Ok(ptr) = ret {
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ptr::write_bytes(ptr, 0, layout.size());
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}
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ret
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}
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}
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#[inline]
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unsafe fn dealloc(&mut self, ptr: *mut u8, _layout: Layout) {
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libc::free(ptr as *mut libc::c_void)
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}
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#[inline]
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unsafe fn realloc(&mut self,
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ptr: *mut u8,
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old_layout: Layout,
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new_layout: Layout) -> Result<*mut u8, AllocErr> {
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if old_layout.align() != new_layout.align() {
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return Err(AllocErr::Unsupported {
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details: "cannot change alignment on `realloc`",
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})
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}
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if new_layout.align() <= MIN_ALIGN {
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let ptr = libc::realloc(ptr as *mut libc::c_void, new_layout.size());
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if !ptr.is_null() {
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Ok(ptr as *mut u8)
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} else {
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Err(AllocErr::Exhausted { request: new_layout })
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}
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} else {
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let res = self.alloc(new_layout.clone());
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if let Ok(new_ptr) = res {
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let size = cmp::min(old_layout.size(), new_layout.size());
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ptr::copy_nonoverlapping(ptr, new_ptr, size);
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self.dealloc(ptr, old_layout);
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}
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res
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}
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}
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fn oom(&mut self, err: AllocErr) -> ! {
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use core::fmt::{self, Write};
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// Print a message to stderr before aborting to assist with
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// debugging. It is critical that this code does not allocate any
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// memory since we are in an OOM situation. Any errors are ignored
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// while printing since there's nothing we can do about them and we
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// are about to exit anyways.
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drop(writeln!(Stderr, "fatal runtime error: {}", err));
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unsafe {
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::core::intrinsics::abort();
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}
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struct Stderr;
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impl Write for Stderr {
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fn write_str(&mut self, s: &str) -> fmt::Result {
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unsafe {
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libc::write(libc::STDERR_FILENO,
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s.as_ptr() as *const libc::c_void,
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s.len());
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}
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Ok(())
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}
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}
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2016-05-23 22:29:17 -07:00
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}
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}
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2016-12-20 18:09:19 -07:00
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#[cfg(any(target_os = "android", target_os = "redox"))]
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2017-06-03 14:54:08 -07:00
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#[inline]
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unsafe fn aligned_malloc(layout: &Layout) -> *mut u8 {
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2016-05-23 22:29:17 -07:00
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// On android we currently target API level 9 which unfortunately
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// doesn't have the `posix_memalign` API used below. Instead we use
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// `memalign`, but this unfortunately has the property on some systems
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// where the memory returned cannot be deallocated by `free`!
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//
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// Upon closer inspection, however, this appears to work just fine with
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// Android, so for this platform we should be fine to call `memalign`
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// (which is present in API level 9). Some helpful references could
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// possibly be chromium using memalign [1], attempts at documenting that
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// memalign + free is ok [2] [3], or the current source of chromium
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// which still uses memalign on android [4].
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//
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// [1]: https://codereview.chromium.org/10796020/
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// [2]: https://code.google.com/p/android/issues/detail?id=35391
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// [3]: https://bugs.chromium.org/p/chromium/issues/detail?id=138579
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// [4]: https://chromium.googlesource.com/chromium/src/base/+/master/
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// /memory/aligned_memory.cc
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2017-06-03 14:54:08 -07:00
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libc::memalign(layout.align(), layout.size()) as *mut u8
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2016-05-23 22:29:17 -07:00
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}
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2016-12-20 18:09:19 -07:00
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#[cfg(not(any(target_os = "android", target_os = "redox")))]
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2017-06-03 14:54:08 -07:00
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#[inline]
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unsafe fn aligned_malloc(layout: &Layout) -> *mut u8 {
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2016-05-23 22:29:17 -07:00
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let mut out = ptr::null_mut();
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2017-06-03 14:54:08 -07:00
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let ret = libc::posix_memalign(&mut out, layout.align(), layout.size());
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2016-05-23 22:29:17 -07:00
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if ret != 0 {
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ptr::null_mut()
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} else {
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out as *mut u8
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2015-06-25 10:07:01 -07:00
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}
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}
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}
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2017-06-03 14:54:08 -07:00
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#[cfg(all(windows, not(stage0)))]
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2015-11-02 16:23:22 -08:00
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#[allow(bad_style)]
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2017-06-03 14:54:08 -07:00
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mod platform {
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use core::cmp;
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use core::ptr;
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2015-06-25 10:07:01 -07:00
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use MIN_ALIGN;
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2017-06-03 14:54:08 -07:00
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use new::System;
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use new::alloc::heap::{Alloc, AllocErr, Layout, CannotReallocInPlace};
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2015-06-25 10:07:01 -07:00
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2015-11-02 16:23:22 -08:00
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type LPVOID = *mut u8;
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type HANDLE = LPVOID;
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type SIZE_T = usize;
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type DWORD = u32;
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type BOOL = i32;
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2017-06-03 14:54:08 -07:00
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type LPDWORD = *mut DWORD;
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type LPOVERLAPPED = *mut u8;
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const STD_ERROR_HANDLE: DWORD = -12i32 as DWORD;
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2015-11-02 16:23:22 -08:00
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2015-06-25 10:07:01 -07:00
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extern "system" {
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fn GetProcessHeap() -> HANDLE;
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fn HeapAlloc(hHeap: HANDLE, dwFlags: DWORD, dwBytes: SIZE_T) -> LPVOID;
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2015-10-11 23:35:08 -07:00
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fn HeapReAlloc(hHeap: HANDLE, dwFlags: DWORD, lpMem: LPVOID, dwBytes: SIZE_T) -> LPVOID;
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2015-06-25 10:07:01 -07:00
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fn HeapFree(hHeap: HANDLE, dwFlags: DWORD, lpMem: LPVOID) -> BOOL;
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2016-10-25 10:00:16 -04:00
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fn GetLastError() -> DWORD;
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2017-06-03 14:54:08 -07:00
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fn WriteFile(hFile: HANDLE,
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lpBuffer: LPVOID,
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nNumberOfBytesToWrite: DWORD,
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lpNumberOfBytesWritten: LPDWORD,
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lpOverlapped: LPOVERLAPPED)
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-> BOOL;
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fn GetStdHandle(which: DWORD) -> HANDLE;
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2015-06-25 10:07:01 -07:00
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}
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#[repr(C)]
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struct Header(*mut u8);
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2017-03-09 17:53:01 -08:00
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const HEAP_ZERO_MEMORY: DWORD = 0x00000008;
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2015-06-25 10:07:01 -07:00
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const HEAP_REALLOC_IN_PLACE_ONLY: DWORD = 0x00000010;
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unsafe fn get_header<'a>(ptr: *mut u8) -> &'a mut Header {
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&mut *(ptr as *mut Header).offset(-1)
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}
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unsafe fn align_ptr(ptr: *mut u8, align: usize) -> *mut u8 {
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let aligned = ptr.offset((align - (ptr as usize & (align - 1))) as isize);
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*get_header(aligned) = Header(ptr);
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aligned
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}
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2017-03-09 17:53:01 -08:00
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#[inline]
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2017-06-03 14:54:08 -07:00
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unsafe fn allocate_with_flags(layout: Layout, flags: DWORD)
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-> Result<*mut u8, AllocErr>
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{
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let ptr = if layout.align() <= MIN_ALIGN {
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HeapAlloc(GetProcessHeap(), flags, layout.size())
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2015-06-25 10:07:01 -07:00
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} else {
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2017-06-03 14:54:08 -07:00
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let size = layout.size() + layout.align();
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let ptr = HeapAlloc(GetProcessHeap(), flags, size);
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2015-10-11 23:35:08 -07:00
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if ptr.is_null() {
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2017-06-03 14:54:08 -07:00
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ptr
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} else {
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align_ptr(ptr, layout.align())
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2015-10-11 23:35:08 -07:00
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}
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2017-06-03 14:54:08 -07:00
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};
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if ptr.is_null() {
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Err(AllocErr::Exhausted { request: layout })
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} else {
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Ok(ptr as *mut u8)
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2015-06-25 10:07:01 -07:00
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}
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}
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2017-06-03 14:54:08 -07:00
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#[unstable(feature = "allocator_api", issue = "32838")]
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unsafe impl<'a> Alloc for &'a System {
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#[inline]
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unsafe fn alloc(&mut self, layout: Layout) -> Result<*mut u8, AllocErr> {
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allocate_with_flags(layout, 0)
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}
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2017-03-09 17:53:01 -08:00
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2017-06-03 14:54:08 -07:00
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#[inline]
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unsafe fn alloc_zeroed(&mut self, layout: Layout)
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-> Result<*mut u8, AllocErr>
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{
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allocate_with_flags(layout, HEAP_ZERO_MEMORY)
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}
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2017-03-09 17:53:01 -08:00
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2017-06-03 14:54:08 -07:00
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#[inline]
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unsafe fn dealloc(&mut self, ptr: *mut u8, layout: Layout) {
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if layout.align() <= MIN_ALIGN {
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let err = HeapFree(GetProcessHeap(), 0, ptr as LPVOID);
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debug_assert!(err != 0, "Failed to free heap memory: {}",
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GetLastError());
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} else {
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let header = get_header(ptr);
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let err = HeapFree(GetProcessHeap(), 0, header.0 as LPVOID);
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debug_assert!(err != 0, "Failed to free heap memory: {}",
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GetLastError());
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2015-10-11 23:35:08 -07:00
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}
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2015-06-25 10:07:01 -07:00
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}
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2017-06-03 14:54:08 -07:00
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#[inline]
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unsafe fn realloc(&mut self,
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ptr: *mut u8,
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old_layout: Layout,
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new_layout: Layout) -> Result<*mut u8, AllocErr> {
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if old_layout.align() != new_layout.align() {
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return Err(AllocErr::Unsupported {
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details: "cannot change alignment on `realloc`",
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})
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}
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2015-06-25 10:07:01 -07:00
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2017-06-03 14:54:08 -07:00
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if new_layout.align() <= MIN_ALIGN {
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let ptr = HeapReAlloc(GetProcessHeap(),
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0,
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ptr as LPVOID,
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new_layout.size());
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if !ptr.is_null() {
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Ok(ptr as *mut u8)
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} else {
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Err(AllocErr::Exhausted { request: new_layout })
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}
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} else {
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let res = self.alloc(new_layout.clone());
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if let Ok(new_ptr) = res {
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let size = cmp::min(old_layout.size(), new_layout.size());
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ptr::copy_nonoverlapping(ptr, new_ptr, size);
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self.dealloc(ptr, old_layout);
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}
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res
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}
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2015-06-25 10:07:01 -07:00
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}
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2017-06-03 14:54:08 -07:00
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#[inline]
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unsafe fn grow_in_place(&mut self,
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ptr: *mut u8,
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layout: Layout,
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new_layout: Layout) -> Result<(), CannotReallocInPlace> {
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self.shrink_in_place(ptr, layout, new_layout)
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}
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#[inline]
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unsafe fn shrink_in_place(&mut self,
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ptr: *mut u8,
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old_layout: Layout,
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new_layout: Layout) -> Result<(), CannotReallocInPlace> {
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if old_layout.align() != new_layout.align() {
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return Err(CannotReallocInPlace)
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}
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let new = if new_layout.align() <= MIN_ALIGN {
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HeapReAlloc(GetProcessHeap(),
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HEAP_REALLOC_IN_PLACE_ONLY,
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ptr as LPVOID,
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new_layout.size())
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} else {
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let header = get_header(ptr);
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HeapReAlloc(GetProcessHeap(),
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HEAP_REALLOC_IN_PLACE_ONLY,
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header.0 as LPVOID,
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new_layout.size() + new_layout.align())
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};
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if new.is_null() {
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Err(CannotReallocInPlace)
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} else {
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Ok(())
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}
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}
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fn oom(&mut self, err: AllocErr) -> ! {
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use core::fmt::{self, Write};
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// Same as with unix we ignore all errors here
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drop(writeln!(Stderr, "fatal runtime error: {}", err));
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unsafe {
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::core::intrinsics::abort();
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}
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struct Stderr;
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impl Write for Stderr {
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fn write_str(&mut self, s: &str) -> fmt::Result {
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unsafe {
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// WriteFile silently fails if it is passed an invalid
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// handle, so there is no need to check the result of
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// GetStdHandle.
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WriteFile(GetStdHandle(STD_ERROR_HANDLE),
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s.as_ptr() as LPVOID,
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s.len() as DWORD,
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ptr::null_mut(),
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ptr::null_mut());
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}
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Ok(())
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}
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}
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}
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2015-06-25 10:07:01 -07:00
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}
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}
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