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610 lines
18 KiB
Rust
610 lines
18 KiB
Rust
// Copyright 2012-2014 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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//
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//! The arena, a fast but limited type of allocator.
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//!
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//! Arenas are a type of allocator that destroy the objects within, all at
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//! once, once the arena itself is destroyed. They do not support deallocation
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//! of individual objects while the arena itself is still alive. The benefit
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//! of an arena is very fast allocation; just a pointer bump.
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//!
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//! This crate has two arenas implemented: TypedArena, which is a simpler
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//! arena but can only hold objects of a single type, and Arena, which is a
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//! more complex, slower Arena which can hold objects of any type.
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#![crate_id = "arena#0.11.0"]
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#![experimental]
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#![crate_type = "rlib"]
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#![crate_type = "dylib"]
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#![license = "MIT/ASL2"]
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#![doc(html_logo_url = "http://www.rust-lang.org/logos/rust-logo-128x128-blk-v2.png",
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html_favicon_url = "http://www.rust-lang.org/favicon.ico",
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html_root_url = "http://doc.rust-lang.org/0.11.0/")]
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#![feature(unsafe_destructor)]
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#![allow(missing_doc)]
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use std::cell::{Cell, RefCell};
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use std::cmp;
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use std::intrinsics::{TyDesc, get_tydesc};
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use std::intrinsics;
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use std::mem;
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use std::num;
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use std::ptr;
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use std::rc::Rc;
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use std::rt::heap::allocate;
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// The way arena uses arrays is really deeply awful. The arrays are
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// allocated, and have capacities reserved, but the fill for the array
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// will always stay at 0.
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#[deriving(Clone, PartialEq)]
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struct Chunk {
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data: Rc<RefCell<Vec<u8> >>,
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fill: Cell<uint>,
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is_copy: Cell<bool>,
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}
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impl Chunk {
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fn capacity(&self) -> uint {
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self.data.borrow().capacity()
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}
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unsafe fn as_ptr(&self) -> *u8 {
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self.data.borrow().as_ptr()
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}
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}
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/// A slower reflection-based arena that can allocate objects of any type.
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///
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/// This arena uses Vec<u8> as a backing store to allocate objects from. For
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/// each allocated object, the arena stores a pointer to the type descriptor
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/// followed by the object. (Potentially with alignment padding after each
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/// element.) When the arena is destroyed, it iterates through all of its
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/// chunks, and uses the tydesc information to trace through the objects,
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/// calling the destructors on them. One subtle point that needs to be
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/// addressed is how to handle failures while running the user provided
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/// initializer function. It is important to not run the destructor on
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/// uninitialized objects, but how to detect them is somewhat subtle. Since
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/// alloc() can be invoked recursively, it is not sufficient to simply exclude
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/// the most recent object. To solve this without requiring extra space, we
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/// use the low order bit of the tydesc pointer to encode whether the object
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/// it describes has been fully initialized.
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///
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/// As an optimization, objects with destructors are stored in
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/// different chunks than objects without destructors. This reduces
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/// overhead when initializing plain-old-data and means we don't need
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/// to waste time running the destructors of POD.
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pub struct Arena {
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// The head is separated out from the list as a unbenchmarked
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// microoptimization, to avoid needing to case on the list to access the
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// head.
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head: RefCell<Chunk>,
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copy_head: RefCell<Chunk>,
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chunks: RefCell<Vec<Chunk>>,
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}
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impl Arena {
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/// Allocate a new Arena with 32 bytes preallocated.
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pub fn new() -> Arena {
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Arena::new_with_size(32u)
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}
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/// Allocate a new Arena with `initial_size` bytes preallocated.
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pub fn new_with_size(initial_size: uint) -> Arena {
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Arena {
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head: RefCell::new(chunk(initial_size, false)),
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copy_head: RefCell::new(chunk(initial_size, true)),
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chunks: RefCell::new(Vec::new()),
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}
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}
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}
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fn chunk(size: uint, is_copy: bool) -> Chunk {
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Chunk {
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data: Rc::new(RefCell::new(Vec::with_capacity(size))),
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fill: Cell::new(0u),
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is_copy: Cell::new(is_copy),
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}
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}
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#[unsafe_destructor]
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impl Drop for Arena {
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fn drop(&mut self) {
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unsafe {
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destroy_chunk(&*self.head.borrow());
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for chunk in self.chunks.borrow().iter() {
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if !chunk.is_copy.get() {
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destroy_chunk(chunk);
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}
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}
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}
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}
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}
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#[inline]
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fn round_up(base: uint, align: uint) -> uint {
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(base.checked_add(&(align - 1))).unwrap() & !(&(align - 1))
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}
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// Walk down a chunk, running the destructors for any objects stored
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// in it.
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unsafe fn destroy_chunk(chunk: &Chunk) {
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let mut idx = 0;
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let buf = chunk.as_ptr();
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let fill = chunk.fill.get();
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while idx < fill {
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let tydesc_data: *uint = mem::transmute(buf.offset(idx as int));
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let (tydesc, is_done) = un_bitpack_tydesc_ptr(*tydesc_data);
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let (size, align) = ((*tydesc).size, (*tydesc).align);
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let after_tydesc = idx + mem::size_of::<*TyDesc>();
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let start = round_up(after_tydesc, align);
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//debug!("freeing object: idx = {}, size = {}, align = {}, done = {}",
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// start, size, align, is_done);
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if is_done {
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((*tydesc).drop_glue)(buf.offset(start as int) as *i8);
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}
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// Find where the next tydesc lives
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idx = round_up(start + size, mem::align_of::<*TyDesc>());
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}
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}
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// We encode whether the object a tydesc describes has been
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// initialized in the arena in the low bit of the tydesc pointer. This
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// is necessary in order to properly do cleanup if a failure occurs
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// during an initializer.
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#[inline]
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fn bitpack_tydesc_ptr(p: *TyDesc, is_done: bool) -> uint {
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p as uint | (is_done as uint)
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}
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#[inline]
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fn un_bitpack_tydesc_ptr(p: uint) -> (*TyDesc, bool) {
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((p & !1) as *TyDesc, p & 1 == 1)
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}
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impl Arena {
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fn chunk_size(&self) -> uint {
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self.copy_head.borrow().capacity()
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}
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// Functions for the POD part of the arena
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fn alloc_copy_grow(&self, n_bytes: uint, align: uint) -> *u8 {
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// Allocate a new chunk.
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let new_min_chunk_size = cmp::max(n_bytes, self.chunk_size());
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self.chunks.borrow_mut().push(self.copy_head.borrow().clone());
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*self.copy_head.borrow_mut() =
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chunk(num::next_power_of_two(new_min_chunk_size + 1u), true);
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return self.alloc_copy_inner(n_bytes, align);
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}
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#[inline]
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fn alloc_copy_inner(&self, n_bytes: uint, align: uint) -> *u8 {
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let start = round_up(self.copy_head.borrow().fill.get(), align);
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let end = start + n_bytes;
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if end > self.chunk_size() {
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return self.alloc_copy_grow(n_bytes, align);
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}
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let copy_head = self.copy_head.borrow();
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copy_head.fill.set(end);
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unsafe {
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copy_head.as_ptr().offset(start as int)
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}
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}
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#[inline]
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fn alloc_copy<'a, T>(&'a self, op: || -> T) -> &'a T {
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unsafe {
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let ptr = self.alloc_copy_inner(mem::size_of::<T>(),
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mem::min_align_of::<T>());
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let ptr = ptr as *mut T;
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ptr::write(&mut (*ptr), op());
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return &*ptr;
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}
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}
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// Functions for the non-POD part of the arena
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fn alloc_noncopy_grow(&self, n_bytes: uint, align: uint) -> (*u8, *u8) {
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// Allocate a new chunk.
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let new_min_chunk_size = cmp::max(n_bytes, self.chunk_size());
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self.chunks.borrow_mut().push(self.head.borrow().clone());
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*self.head.borrow_mut() =
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chunk(num::next_power_of_two(new_min_chunk_size + 1u), false);
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return self.alloc_noncopy_inner(n_bytes, align);
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}
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#[inline]
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fn alloc_noncopy_inner(&self, n_bytes: uint, align: uint) -> (*u8, *u8) {
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// Be careful to not maintain any `head` borrows active, because
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// `alloc_noncopy_grow` borrows it mutably.
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let (start, end, tydesc_start, head_capacity) = {
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let head = self.head.borrow();
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let fill = head.fill.get();
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let tydesc_start = fill;
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let after_tydesc = fill + mem::size_of::<*TyDesc>();
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let start = round_up(after_tydesc, align);
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let end = start + n_bytes;
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(start, end, tydesc_start, head.capacity())
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};
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if end > head_capacity {
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return self.alloc_noncopy_grow(n_bytes, align);
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}
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let head = self.head.borrow();
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head.fill.set(round_up(end, mem::align_of::<*TyDesc>()));
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unsafe {
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let buf = head.as_ptr();
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return (buf.offset(tydesc_start as int), buf.offset(start as int));
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}
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}
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#[inline]
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fn alloc_noncopy<'a, T>(&'a self, op: || -> T) -> &'a T {
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unsafe {
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let tydesc = get_tydesc::<T>();
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let (ty_ptr, ptr) =
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self.alloc_noncopy_inner(mem::size_of::<T>(),
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mem::min_align_of::<T>());
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let ty_ptr = ty_ptr as *mut uint;
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let ptr = ptr as *mut T;
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// Write in our tydesc along with a bit indicating that it
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// has *not* been initialized yet.
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*ty_ptr = mem::transmute(tydesc);
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// Actually initialize it
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ptr::write(&mut(*ptr), op());
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// Now that we are done, update the tydesc to indicate that
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// the object is there.
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*ty_ptr = bitpack_tydesc_ptr(tydesc, true);
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return &*ptr;
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}
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}
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/// Allocate a new item in the arena, using `op` to initialize the value
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/// and returning a reference to it.
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#[inline]
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pub fn alloc<'a, T>(&'a self, op: || -> T) -> &'a T {
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unsafe {
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if intrinsics::needs_drop::<T>() {
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self.alloc_noncopy(op)
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} else {
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self.alloc_copy(op)
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}
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}
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}
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}
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#[test]
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fn test_arena_destructors() {
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let arena = Arena::new();
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for i in range(0u, 10) {
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// Arena allocate something with drop glue to make sure it
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// doesn't leak.
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arena.alloc(|| Rc::new(i));
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// Allocate something with funny size and alignment, to keep
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// things interesting.
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arena.alloc(|| [0u8, 1u8, 2u8]);
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}
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}
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#[test]
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fn test_arena_alloc_nested() {
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struct Inner { value: uint }
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struct Outer<'a> { inner: &'a Inner }
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let arena = Arena::new();
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let result = arena.alloc(|| Outer {
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inner: arena.alloc(|| Inner { value: 10 })
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});
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assert_eq!(result.inner.value, 10);
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}
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#[test]
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#[should_fail]
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fn test_arena_destructors_fail() {
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let arena = Arena::new();
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// Put some stuff in the arena.
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for i in range(0u, 10) {
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// Arena allocate something with drop glue to make sure it
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// doesn't leak.
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arena.alloc(|| { Rc::new(i) });
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// Allocate something with funny size and alignment, to keep
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// things interesting.
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arena.alloc(|| { [0u8, 1u8, 2u8] });
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}
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// Now, fail while allocating
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arena.alloc::<Rc<int>>(|| {
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// Now fail.
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fail!();
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});
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}
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/// A faster arena that can hold objects of only one type.
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///
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/// Safety note: Modifying objects in the arena that have already had their
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/// `drop` destructors run can cause leaks, because the destructor will not
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/// run again for these objects.
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pub struct TypedArena<T> {
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/// A pointer to the next object to be allocated.
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ptr: Cell<*T>,
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/// A pointer to the end of the allocated area. When this pointer is
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/// reached, a new chunk is allocated.
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end: Cell<*T>,
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/// A pointer to the first arena segment.
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first: RefCell<TypedArenaChunkRef<T>>,
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}
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type TypedArenaChunkRef<T> = Option<Box<TypedArenaChunk<T>>>;
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struct TypedArenaChunk<T> {
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/// Pointer to the next arena segment.
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next: TypedArenaChunkRef<T>,
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/// The number of elements that this chunk can hold.
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capacity: uint,
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// Objects follow here, suitably aligned.
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}
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impl<T> TypedArenaChunk<T> {
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#[inline]
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fn new(next: Option<Box<TypedArenaChunk<T>>>, capacity: uint)
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-> Box<TypedArenaChunk<T>> {
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let mut size = mem::size_of::<TypedArenaChunk<T>>();
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size = round_up(size, mem::min_align_of::<T>());
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let elem_size = mem::size_of::<T>();
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let elems_size = elem_size.checked_mul(&capacity).unwrap();
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size = size.checked_add(&elems_size).unwrap();
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let mut chunk = unsafe {
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let chunk = allocate(size, mem::min_align_of::<TypedArenaChunk<T>>());
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let mut chunk: Box<TypedArenaChunk<T>> = mem::transmute(chunk);
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ptr::write(&mut chunk.next, next);
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chunk
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};
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chunk.capacity = capacity;
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chunk
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}
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/// Destroys this arena chunk. If the type descriptor is supplied, the
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/// drop glue is called; otherwise, drop glue is not called.
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#[inline]
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unsafe fn destroy(&mut self, len: uint) {
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// Destroy all the allocated objects.
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if intrinsics::needs_drop::<T>() {
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let mut start = self.start();
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for _ in range(0, len) {
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ptr::read(start as *T); // run the destructor on the pointer
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start = start.offset(mem::size_of::<T>() as int)
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}
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}
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// Destroy the next chunk.
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let next_opt = mem::replace(&mut self.next, None);
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match next_opt {
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None => {}
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Some(mut next) => {
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// We assume that the next chunk is completely filled.
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let capacity = next.capacity;
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next.destroy(capacity)
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}
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}
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}
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// Returns a pointer to the first allocated object.
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#[inline]
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fn start(&self) -> *u8 {
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let this: *TypedArenaChunk<T> = self;
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unsafe {
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mem::transmute(round_up(this.offset(1) as uint,
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mem::min_align_of::<T>()))
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}
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}
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// Returns a pointer to the end of the allocated space.
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#[inline]
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fn end(&self) -> *u8 {
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unsafe {
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let size = mem::size_of::<T>().checked_mul(&self.capacity).unwrap();
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self.start().offset(size as int)
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}
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}
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}
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impl<T> TypedArena<T> {
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/// Creates a new TypedArena with preallocated space for 8 objects.
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#[inline]
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pub fn new() -> TypedArena<T> {
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TypedArena::with_capacity(8)
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}
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/// Creates a new TypedArena with preallocated space for the given number of
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/// objects.
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#[inline]
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pub fn with_capacity(capacity: uint) -> TypedArena<T> {
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let chunk = TypedArenaChunk::<T>::new(None, capacity);
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TypedArena {
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ptr: Cell::new(chunk.start() as *T),
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end: Cell::new(chunk.end() as *T),
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first: RefCell::new(Some(chunk)),
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}
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}
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/// Allocates an object in the TypedArena, returning a reference to it.
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#[inline]
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pub fn alloc<'a>(&'a self, object: T) -> &'a T {
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if self.ptr == self.end {
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self.grow()
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}
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let ptr: &'a T = unsafe {
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let ptr: &'a mut T = mem::transmute(self.ptr);
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ptr::write(ptr, object);
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self.ptr.set(self.ptr.get().offset(1));
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ptr
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};
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ptr
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}
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/// Grows the arena.
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#[inline(never)]
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fn grow(&self) {
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let chunk = self.first.borrow_mut().take_unwrap();
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let new_capacity = chunk.capacity.checked_mul(&2).unwrap();
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let chunk = TypedArenaChunk::<T>::new(Some(chunk), new_capacity);
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self.ptr.set(chunk.start() as *T);
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self.end.set(chunk.end() as *T);
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*self.first.borrow_mut() = Some(chunk)
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}
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}
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#[unsafe_destructor]
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impl<T> Drop for TypedArena<T> {
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fn drop(&mut self) {
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// Determine how much was filled.
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let start = self.first.borrow().get_ref().start() as uint;
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let end = self.ptr.get() as uint;
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let diff = (end - start) / mem::size_of::<T>();
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|
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// Pass that to the `destroy` method.
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unsafe {
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self.first.borrow_mut().get_mut_ref().destroy(diff)
|
|
}
|
|
}
|
|
}
|
|
|
|
#[cfg(test)]
|
|
mod tests {
|
|
extern crate test;
|
|
use self::test::Bencher;
|
|
use super::{Arena, TypedArena};
|
|
|
|
struct Point {
|
|
x: int,
|
|
y: int,
|
|
z: int,
|
|
}
|
|
|
|
#[test]
|
|
pub fn test_copy() {
|
|
let arena = TypedArena::new();
|
|
for _ in range(0u, 100000) {
|
|
arena.alloc(Point {
|
|
x: 1,
|
|
y: 2,
|
|
z: 3,
|
|
});
|
|
}
|
|
}
|
|
|
|
#[bench]
|
|
pub fn bench_copy(b: &mut Bencher) {
|
|
let arena = TypedArena::new();
|
|
b.iter(|| {
|
|
arena.alloc(Point {
|
|
x: 1,
|
|
y: 2,
|
|
z: 3,
|
|
})
|
|
})
|
|
}
|
|
|
|
#[bench]
|
|
pub fn bench_copy_nonarena(b: &mut Bencher) {
|
|
b.iter(|| {
|
|
box Point {
|
|
x: 1,
|
|
y: 2,
|
|
z: 3,
|
|
}
|
|
})
|
|
}
|
|
|
|
#[bench]
|
|
pub fn bench_copy_old_arena(b: &mut Bencher) {
|
|
let arena = Arena::new();
|
|
b.iter(|| {
|
|
arena.alloc(|| {
|
|
Point {
|
|
x: 1,
|
|
y: 2,
|
|
z: 3,
|
|
}
|
|
})
|
|
})
|
|
}
|
|
|
|
struct Noncopy {
|
|
string: String,
|
|
array: Vec<int> ,
|
|
}
|
|
|
|
#[test]
|
|
pub fn test_noncopy() {
|
|
let arena = TypedArena::new();
|
|
for _ in range(0u, 100000) {
|
|
arena.alloc(Noncopy {
|
|
string: "hello world".to_string(),
|
|
array: vec!( 1, 2, 3, 4, 5 ),
|
|
});
|
|
}
|
|
}
|
|
|
|
#[bench]
|
|
pub fn bench_noncopy(b: &mut Bencher) {
|
|
let arena = TypedArena::new();
|
|
b.iter(|| {
|
|
arena.alloc(Noncopy {
|
|
string: "hello world".to_string(),
|
|
array: vec!( 1, 2, 3, 4, 5 ),
|
|
})
|
|
})
|
|
}
|
|
|
|
#[bench]
|
|
pub fn bench_noncopy_nonarena(b: &mut Bencher) {
|
|
b.iter(|| {
|
|
box Noncopy {
|
|
string: "hello world".to_string(),
|
|
array: vec!( 1, 2, 3, 4, 5 ),
|
|
}
|
|
})
|
|
}
|
|
|
|
#[bench]
|
|
pub fn bench_noncopy_old_arena(b: &mut Bencher) {
|
|
let arena = Arena::new();
|
|
b.iter(|| {
|
|
arena.alloc(|| Noncopy {
|
|
string: "hello world".to_string(),
|
|
array: vec!( 1, 2, 3, 4, 5 ),
|
|
})
|
|
})
|
|
}
|
|
}
|