2008-12-18 15:42:28 -08:00
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// Copyright 2009 The Go Authors. All rights reserved.
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// Use of this source code is governed by a BSD-style
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// license that can be found in the LICENSE file.
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// See malloc.h for overview.
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//
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// TODO(rsc): double-check stats.
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#include "runtime.h"
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2011-12-16 15:33:58 -05:00
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#include "arch_GOARCH.h"
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2008-12-18 15:42:28 -08:00
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#include "malloc.h"
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2010-02-03 16:31:34 -08:00
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#include "type.h"
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2012-06-06 17:20:02 -04:00
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#include "typekind.h"
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2012-10-07 22:05:32 +04:00
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#include "race.h"
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2013-07-17 12:52:37 -04:00
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#include "stack.h"
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2013-08-12 13:47:18 -07:00
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#include "../../cmd/ld/textflag.h"
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2008-12-18 15:42:28 -08:00
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2013-07-19 17:47:40 +04:00
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// Mark mheap as 'no pointers', it does not contain interesting pointers but occupies ~45K.
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2013-08-29 12:36:59 -07:00
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#pragma dataflag NOPTR
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2013-05-28 22:14:47 +04:00
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MHeap runtime·mheap;
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2014-05-31 19:21:17 -04:00
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#pragma dataflag NOPTR
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2014-07-30 09:01:52 -07:00
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MStats runtime·memstats;
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2012-02-21 22:08:42 -05:00
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2014-09-03 08:49:43 -07:00
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Type* runtime·conservative;
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2014-08-19 15:59:42 +04:00
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2014-07-30 17:08:33 -07:00
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void runtime·cmallocgc(uintptr size, Type *typ, uint32 flag, void **ret);
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2014-08-19 15:59:42 +04:00
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void runtime·gc_notype_ptr(Eface*);
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2008-12-18 15:42:28 -08:00
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void*
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2014-07-29 11:01:02 +04:00
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runtime·mallocgc(uintptr size, Type *typ, uint32 flag)
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2008-12-18 15:42:28 -08:00
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{
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2014-07-30 09:01:52 -07:00
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void *ret;
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2014-02-12 22:36:45 +04:00
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2014-07-30 09:01:52 -07:00
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// Call into the Go version of mallocgc.
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// TODO: maybe someday we can get rid of this. It is
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// probably the only location where we run Go code on the M stack.
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2014-08-19 15:59:42 +04:00
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if((flag&FlagNoScan) == 0 && typ == nil)
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2014-09-03 08:49:43 -07:00
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typ = runtime·conservative;
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2014-07-30 09:01:52 -07:00
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runtime·cmallocgc(size, typ, flag, &ret);
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return ret;
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2014-02-12 22:36:45 +04:00
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}
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2009-01-26 17:37:05 -08:00
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int32
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2011-02-02 23:03:47 -05:00
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runtime·mlookup(void *v, byte **base, uintptr *size, MSpan **sp)
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2008-12-19 03:13:39 -08:00
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{
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2011-02-02 23:03:47 -05:00
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uintptr n, i;
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2009-02-11 17:54:03 -08:00
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byte *p;
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2008-12-19 03:13:39 -08:00
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MSpan *s;
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all: remove 'extern register M *m' from runtime
The runtime has historically held two dedicated values g (current goroutine)
and m (current thread) in 'extern register' slots (TLS on x86, real registers
backed by TLS on ARM).
This CL removes the extern register m; code now uses g->m.
On ARM, this frees up the register that formerly held m (R9).
This is important for NaCl, because NaCl ARM code cannot use R9 at all.
The Go 1 macrobenchmarks (those with per-op times >= 10 µs) are unaffected:
BenchmarkBinaryTree17 5491374955 5471024381 -0.37%
BenchmarkFannkuch11 4357101311 4275174828 -1.88%
BenchmarkGobDecode 11029957 11364184 +3.03%
BenchmarkGobEncode 6852205 6784822 -0.98%
BenchmarkGzip 650795967 650152275 -0.10%
BenchmarkGunzip 140962363 141041670 +0.06%
BenchmarkHTTPClientServer 71581 73081 +2.10%
BenchmarkJSONEncode 31928079 31913356 -0.05%
BenchmarkJSONDecode 117470065 113689916 -3.22%
BenchmarkMandelbrot200 6008923 5998712 -0.17%
BenchmarkGoParse 6310917 6327487 +0.26%
BenchmarkRegexpMatchMedium_1K 114568 114763 +0.17%
BenchmarkRegexpMatchHard_1K 168977 169244 +0.16%
BenchmarkRevcomp 935294971 914060918 -2.27%
BenchmarkTemplate 145917123 148186096 +1.55%
Minux previous reported larger variations, but these were caused by
run-to-run noise, not repeatable slowdowns.
Actual code changes by Minux.
I only did the docs and the benchmarking.
LGTM=dvyukov, iant, minux
R=minux, josharian, iant, dave, bradfitz, dvyukov
CC=golang-codereviews
https://golang.org/cl/109050043
2014-06-26 11:54:39 -04:00
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g->m->mcache->local_nlookup++;
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if (sizeof(void*) == 4 && g->m->mcache->local_nlookup >= (1<<30)) {
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2012-06-08 17:35:14 -04:00
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// purge cache stats to prevent overflow
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2014-08-07 09:00:02 -04:00
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runtime·lock(&runtime·mheap.lock);
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all: remove 'extern register M *m' from runtime
The runtime has historically held two dedicated values g (current goroutine)
and m (current thread) in 'extern register' slots (TLS on x86, real registers
backed by TLS on ARM).
This CL removes the extern register m; code now uses g->m.
On ARM, this frees up the register that formerly held m (R9).
This is important for NaCl, because NaCl ARM code cannot use R9 at all.
The Go 1 macrobenchmarks (those with per-op times >= 10 µs) are unaffected:
BenchmarkBinaryTree17 5491374955 5471024381 -0.37%
BenchmarkFannkuch11 4357101311 4275174828 -1.88%
BenchmarkGobDecode 11029957 11364184 +3.03%
BenchmarkGobEncode 6852205 6784822 -0.98%
BenchmarkGzip 650795967 650152275 -0.10%
BenchmarkGunzip 140962363 141041670 +0.06%
BenchmarkHTTPClientServer 71581 73081 +2.10%
BenchmarkJSONEncode 31928079 31913356 -0.05%
BenchmarkJSONDecode 117470065 113689916 -3.22%
BenchmarkMandelbrot200 6008923 5998712 -0.17%
BenchmarkGoParse 6310917 6327487 +0.26%
BenchmarkRegexpMatchMedium_1K 114568 114763 +0.17%
BenchmarkRegexpMatchHard_1K 168977 169244 +0.16%
BenchmarkRevcomp 935294971 914060918 -2.27%
BenchmarkTemplate 145917123 148186096 +1.55%
Minux previous reported larger variations, but these were caused by
run-to-run noise, not repeatable slowdowns.
Actual code changes by Minux.
I only did the docs and the benchmarking.
LGTM=dvyukov, iant, minux
R=minux, josharian, iant, dave, bradfitz, dvyukov
CC=golang-codereviews
https://golang.org/cl/109050043
2014-06-26 11:54:39 -04:00
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runtime·purgecachedstats(g->m->mcache);
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2014-08-07 09:00:02 -04:00
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runtime·unlock(&runtime·mheap.lock);
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2012-06-08 17:35:14 -04:00
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}
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2013-05-28 22:14:47 +04:00
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s = runtime·MHeap_LookupMaybe(&runtime·mheap, v);
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2010-02-10 21:23:08 -08:00
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if(sp)
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*sp = s;
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2008-12-19 03:13:39 -08:00
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if(s == nil) {
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2009-01-26 17:37:05 -08:00
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if(base)
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*base = nil;
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if(size)
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*size = 0;
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return 0;
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2008-12-19 03:13:39 -08:00
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}
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p = (byte*)((uintptr)s->start<<PageShift);
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if(s->sizeclass == 0) {
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// Large object.
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2009-01-26 17:37:05 -08:00
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if(base)
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*base = p;
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if(size)
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*size = s->npages<<PageShift;
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return 1;
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2008-12-19 03:13:39 -08:00
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}
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2012-09-24 20:08:05 -04:00
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n = s->elemsize;
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2011-07-18 14:52:57 -04:00
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if(base) {
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i = ((byte*)v - p)/n;
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2009-01-26 17:37:05 -08:00
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*base = p + i*n;
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2011-07-18 14:52:57 -04:00
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}
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2009-01-26 17:37:05 -08:00
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if(size)
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*size = n;
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2010-02-10 00:00:12 -08:00
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2009-01-26 17:37:05 -08:00
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return 1;
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2008-12-19 03:13:39 -08:00
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}
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2014-09-04 21:12:31 -04:00
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#pragma textflag NOSPLIT
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2012-07-01 13:10:01 +04:00
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void
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runtime·purgecachedstats(MCache *c)
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{
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2013-06-06 14:56:50 +04:00
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MHeap *h;
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2013-05-22 22:22:57 +04:00
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int32 i;
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2011-07-18 14:52:57 -04:00
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// Protected by either heap or GC lock.
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2013-06-06 14:56:50 +04:00
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h = &runtime·mheap;
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2011-07-18 14:52:57 -04:00
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mstats.heap_alloc += c->local_cachealloc;
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c->local_cachealloc = 0;
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mstats.nlookup += c->local_nlookup;
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c->local_nlookup = 0;
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2013-06-06 14:56:50 +04:00
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h->largefree += c->local_largefree;
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c->local_largefree = 0;
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h->nlargefree += c->local_nlargefree;
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c->local_nlargefree = 0;
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for(i=0; i<nelem(c->local_nsmallfree); i++) {
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h->nsmallfree[i] += c->local_nsmallfree[i];
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c->local_nsmallfree[i] = 0;
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2013-05-22 22:22:57 +04:00
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}
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2011-07-18 14:52:57 -04:00
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}
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2014-01-30 13:28:19 +04:00
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// Size of the trailing by_size array differs between Go and C,
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// NumSizeClasses was changed, but we can not change Go struct because of backward compatibility.
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// sizeof_C_MStats is what C thinks about size of Go struct.
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uintptr runtime·sizeof_C_MStats = sizeof(MStats) - (NumSizeClasses - 61) * sizeof(mstats.by_size[0]);
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2010-12-13 16:22:19 -05:00
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2011-02-02 23:03:47 -05:00
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#define MaxArena32 (2U<<30)
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2014-07-30 09:01:52 -07:00
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// For use by Go. It can't be a constant in Go, unfortunately,
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// because it depends on the OS.
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uintptr runtime·maxMem = MaxMem;
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2008-12-18 15:42:28 -08:00
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void
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runtime: ,s/[a-zA-Z0-9_]+/runtime·&/g, almost
Prefix all external symbols in runtime by runtime·,
to avoid conflicts with possible symbols of the same
name in linked-in C libraries. The obvious conflicts
are printf, malloc, and free, but hide everything to
avoid future pain.
The symbols left alone are:
** known to cgo **
_cgo_free
_cgo_malloc
libcgo_thread_start
initcgo
ncgocall
** known to linker **
_rt0_$GOARCH
_rt0_$GOARCH_$GOOS
text
etext
data
end
pclntab
epclntab
symtab
esymtab
** known to C compiler **
_divv
_modv
_div64by32
etc (arch specific)
Tested on darwin/386, darwin/amd64, linux/386, linux/amd64.
Built (but not tested) for freebsd/386, freebsd/amd64, linux/arm, windows/386.
R=r, PeterGo
CC=golang-dev
https://golang.org/cl/2899041
2010-11-04 14:00:19 -04:00
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runtime·mallocinit(void)
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2008-12-18 15:42:28 -08:00
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{
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2014-03-06 18:34:29 -05:00
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byte *p, *p1;
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uintptr arena_size, bitmap_size, spans_size, p_size;
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2014-08-27 20:15:05 -04:00
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extern byte runtime·end[];
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2012-02-24 15:28:51 -05:00
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uintptr limit;
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2013-06-12 18:47:16 +04:00
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uint64 i;
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2014-03-25 13:22:19 -07:00
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bool reserved;
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2014-08-19 15:59:42 +04:00
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Eface notype_eface;
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2011-01-28 15:03:26 -05:00
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2012-02-09 09:25:10 +11:00
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p = nil;
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2014-03-06 18:34:29 -05:00
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p_size = 0;
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2012-02-09 16:48:52 +11:00
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arena_size = 0;
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bitmap_size = 0;
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2013-05-28 22:04:34 +04:00
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spans_size = 0;
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2014-03-25 13:22:19 -07:00
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reserved = false;
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2013-05-28 22:04:34 +04:00
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2012-02-09 16:48:52 +11:00
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// for 64-bit build
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USED(p);
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2014-03-06 18:34:29 -05:00
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USED(p_size);
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2012-02-09 16:48:52 +11:00
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USED(arena_size);
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USED(bitmap_size);
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2013-05-28 22:04:34 +04:00
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USED(spans_size);
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2012-02-09 09:25:10 +11:00
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runtime: ,s/[a-zA-Z0-9_]+/runtime·&/g, almost
Prefix all external symbols in runtime by runtime·,
to avoid conflicts with possible symbols of the same
name in linked-in C libraries. The obvious conflicts
are printf, malloc, and free, but hide everything to
avoid future pain.
The symbols left alone are:
** known to cgo **
_cgo_free
_cgo_malloc
libcgo_thread_start
initcgo
ncgocall
** known to linker **
_rt0_$GOARCH
_rt0_$GOARCH_$GOOS
text
etext
data
end
pclntab
epclntab
symtab
esymtab
** known to C compiler **
_divv
_modv
_div64by32
etc (arch specific)
Tested on darwin/386, darwin/amd64, linux/386, linux/amd64.
Built (but not tested) for freebsd/386, freebsd/amd64, linux/arm, windows/386.
R=r, PeterGo
CC=golang-dev
https://golang.org/cl/2899041
2010-11-04 14:00:19 -04:00
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runtime·InitSizes();
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2011-01-28 15:03:26 -05:00
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2014-01-24 22:35:11 +04:00
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if(runtime·class_to_size[TinySizeClass] != TinySize)
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runtime·throw("bad TinySizeClass");
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2013-03-26 14:01:12 -07:00
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// limit = runtime·memlimit();
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// See https://code.google.com/p/go/issues/detail?id=5049
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// TODO(rsc): Fix after 1.1.
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limit = 0;
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2012-02-24 15:28:51 -05:00
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2011-02-02 23:03:47 -05:00
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// Set up the allocation arena, a contiguous area of memory where
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// allocated data will be found. The arena begins with a bitmap large
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// enough to hold 4 bits per allocated word.
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2012-02-24 15:28:51 -05:00
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if(sizeof(void*) == 8 && (limit == 0 || limit > (1<<30))) {
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2011-01-28 15:03:26 -05:00
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// On a 64-bit machine, allocate from a single contiguous reservation.
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2012-11-13 12:45:08 -05:00
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// 128 GB (MaxMem) should be big enough for now.
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2011-01-28 15:03:26 -05:00
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//
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// The code will work with the reservation at any address, but ask
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2013-06-12 18:47:16 +04:00
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// SysReserve to use 0x0000XXc000000000 if possible (XX=00...7f).
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2012-11-13 12:45:08 -05:00
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// Allocating a 128 GB region takes away 37 bits, and the amd64
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2011-01-28 15:03:26 -05:00
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// doesn't let us choose the top 17 bits, so that leaves the 11 bits
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2012-11-13 12:45:08 -05:00
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// in the middle of 0x00c0 for us to choose. Choosing 0x00c0 means
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2013-06-12 18:47:16 +04:00
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// that the valid memory addresses will begin 0x00c0, 0x00c1, ..., 0x00df.
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2012-11-13 12:45:08 -05:00
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// In little-endian, that's c0 00, c1 00, ..., df 00. None of those are valid
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// UTF-8 sequences, and they are otherwise as far away from
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2013-06-12 18:47:16 +04:00
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// ff (likely a common byte) as possible. If that fails, we try other 0xXXc0
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// addresses. An earlier attempt to use 0x11f8 caused out of memory errors
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// on OS X during thread allocations. 0x00c0 causes conflicts with
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// AddressSanitizer which reserves all memory up to 0x0100.
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2011-01-28 15:03:26 -05:00
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// These choices are both for debuggability and to reduce the
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// odds of the conservative garbage collector not collecting memory
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// because some non-pointer block of memory had a bit pattern
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// that matched a memory address.
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2011-02-02 23:03:47 -05:00
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//
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2012-11-13 12:45:08 -05:00
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// Actually we reserve 136 GB (because the bitmap ends up being 8 GB)
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// but it hardly matters: e0 00 is not valid UTF-8 either.
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2012-02-08 14:39:16 -05:00
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//
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// If this fails we fall back to the 32 bit memory mechanism
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2012-11-13 12:45:08 -05:00
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arena_size = MaxMem;
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2011-02-02 23:03:47 -05:00
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bitmap_size = arena_size / (sizeof(void*)*8/4);
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2013-05-30 17:09:58 +04:00
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spans_size = arena_size / PageSize * sizeof(runtime·mheap.spans[0]);
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2013-06-13 16:02:50 +04:00
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spans_size = ROUND(spans_size, PageSize);
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2013-06-12 18:47:16 +04:00
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for(i = 0; i <= 0x7f; i++) {
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p = (void*)(i<<40 | 0x00c0ULL<<32);
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2014-03-06 18:34:29 -05:00
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p_size = bitmap_size + spans_size + arena_size + PageSize;
|
2014-03-25 13:22:19 -07:00
|
|
|
p = runtime·SysReserve(p, p_size, &reserved);
|
2013-06-12 18:47:16 +04:00
|
|
|
if(p != nil)
|
|
|
|
|
break;
|
|
|
|
|
}
|
2012-02-08 14:39:16 -05:00
|
|
|
}
|
|
|
|
|
if (p == nil) {
|
2011-02-02 23:03:47 -05:00
|
|
|
// On a 32-bit machine, we can't typically get away
|
|
|
|
|
// with a giant virtual address space reservation.
|
|
|
|
|
// Instead we map the memory information bitmap
|
|
|
|
|
// immediately after the data segment, large enough
|
|
|
|
|
// to handle another 2GB of mappings (256 MB),
|
|
|
|
|
// along with a reservation for another 512 MB of memory.
|
|
|
|
|
// When that gets used up, we'll start asking the kernel
|
|
|
|
|
// for any memory anywhere and hope it's in the 2GB
|
|
|
|
|
// following the bitmap (presumably the executable begins
|
|
|
|
|
// near the bottom of memory, so we'll have to use up
|
|
|
|
|
// most of memory before the kernel resorts to giving out
|
|
|
|
|
// memory before the beginning of the text segment).
|
|
|
|
|
//
|
|
|
|
|
// Alternatively we could reserve 512 MB bitmap, enough
|
|
|
|
|
// for 4GB of mappings, and then accept any memory the
|
|
|
|
|
// kernel threw at us, but normally that's a waste of 512 MB
|
|
|
|
|
// of address space, which is probably too much in a 32-bit world.
|
|
|
|
|
bitmap_size = MaxArena32 / (sizeof(void*)*8/4);
|
|
|
|
|
arena_size = 512<<20;
|
2013-05-30 17:09:58 +04:00
|
|
|
spans_size = MaxArena32 / PageSize * sizeof(runtime·mheap.spans[0]);
|
2013-05-28 22:04:34 +04:00
|
|
|
if(limit > 0 && arena_size+bitmap_size+spans_size > limit) {
|
2012-02-24 15:28:51 -05:00
|
|
|
bitmap_size = (limit / 9) & ~((1<<PageShift) - 1);
|
|
|
|
|
arena_size = bitmap_size * 8;
|
2013-05-30 17:09:58 +04:00
|
|
|
spans_size = arena_size / PageSize * sizeof(runtime·mheap.spans[0]);
|
2012-02-24 15:28:51 -05:00
|
|
|
}
|
2013-06-13 16:02:50 +04:00
|
|
|
spans_size = ROUND(spans_size, PageSize);
|
2013-05-28 22:04:34 +04:00
|
|
|
|
2011-02-09 15:08:30 -05:00
|
|
|
// SysReserve treats the address we ask for, end, as a hint,
|
|
|
|
|
// not as an absolute requirement. If we ask for the end
|
|
|
|
|
// of the data segment but the operating system requires
|
|
|
|
|
// a little more space before we can start allocating, it will
|
2011-08-31 07:02:46 -04:00
|
|
|
// give out a slightly higher pointer. Except QEMU, which
|
|
|
|
|
// is buggy, as usual: it won't adjust the pointer upward.
|
|
|
|
|
// So adjust it upward a little bit ourselves: 1/4 MB to get
|
|
|
|
|
// away from the running binary image and then round up
|
|
|
|
|
// to a MB boundary.
|
2014-08-27 20:15:05 -04:00
|
|
|
p = (byte*)ROUND((uintptr)runtime·end + (1<<18), 1<<20);
|
2014-03-06 18:34:29 -05:00
|
|
|
p_size = bitmap_size + spans_size + arena_size + PageSize;
|
2014-03-25 13:22:19 -07:00
|
|
|
p = runtime·SysReserve(p, p_size, &reserved);
|
2011-02-09 15:08:30 -05:00
|
|
|
if(p == nil)
|
|
|
|
|
runtime·throw("runtime: cannot reserve arena virtual address space");
|
2011-01-28 15:03:26 -05:00
|
|
|
}
|
2014-01-29 18:18:46 +04:00
|
|
|
|
|
|
|
|
// PageSize can be larger than OS definition of page size,
|
|
|
|
|
// so SysReserve can give us a PageSize-unaligned pointer.
|
|
|
|
|
// To overcome this we ask for PageSize more and round up the pointer.
|
2014-03-06 18:34:29 -05:00
|
|
|
p1 = (byte*)ROUND((uintptr)p, PageSize);
|
2011-02-11 14:32:34 -05:00
|
|
|
|
2014-03-06 18:34:29 -05:00
|
|
|
runtime·mheap.spans = (MSpan**)p1;
|
|
|
|
|
runtime·mheap.bitmap = p1 + spans_size;
|
|
|
|
|
runtime·mheap.arena_start = p1 + spans_size + bitmap_size;
|
2013-05-28 22:14:47 +04:00
|
|
|
runtime·mheap.arena_used = runtime·mheap.arena_start;
|
2014-03-06 18:34:29 -05:00
|
|
|
runtime·mheap.arena_end = p + p_size;
|
2014-03-25 13:22:19 -07:00
|
|
|
runtime·mheap.arena_reserved = reserved;
|
2014-03-06 18:34:29 -05:00
|
|
|
|
|
|
|
|
if(((uintptr)runtime·mheap.arena_start & (PageSize-1)) != 0)
|
|
|
|
|
runtime·throw("misrounded allocation in mallocinit");
|
2011-01-28 15:03:26 -05:00
|
|
|
|
|
|
|
|
// Initialize the rest of the allocator.
|
2013-06-10 09:20:27 +04:00
|
|
|
runtime·MHeap_Init(&runtime·mheap);
|
all: remove 'extern register M *m' from runtime
The runtime has historically held two dedicated values g (current goroutine)
and m (current thread) in 'extern register' slots (TLS on x86, real registers
backed by TLS on ARM).
This CL removes the extern register m; code now uses g->m.
On ARM, this frees up the register that formerly held m (R9).
This is important for NaCl, because NaCl ARM code cannot use R9 at all.
The Go 1 macrobenchmarks (those with per-op times >= 10 µs) are unaffected:
BenchmarkBinaryTree17 5491374955 5471024381 -0.37%
BenchmarkFannkuch11 4357101311 4275174828 -1.88%
BenchmarkGobDecode 11029957 11364184 +3.03%
BenchmarkGobEncode 6852205 6784822 -0.98%
BenchmarkGzip 650795967 650152275 -0.10%
BenchmarkGunzip 140962363 141041670 +0.06%
BenchmarkHTTPClientServer 71581 73081 +2.10%
BenchmarkJSONEncode 31928079 31913356 -0.05%
BenchmarkJSONDecode 117470065 113689916 -3.22%
BenchmarkMandelbrot200 6008923 5998712 -0.17%
BenchmarkGoParse 6310917 6327487 +0.26%
BenchmarkRegexpMatchMedium_1K 114568 114763 +0.17%
BenchmarkRegexpMatchHard_1K 168977 169244 +0.16%
BenchmarkRevcomp 935294971 914060918 -2.27%
BenchmarkTemplate 145917123 148186096 +1.55%
Minux previous reported larger variations, but these were caused by
run-to-run noise, not repeatable slowdowns.
Actual code changes by Minux.
I only did the docs and the benchmarking.
LGTM=dvyukov, iant, minux
R=minux, josharian, iant, dave, bradfitz, dvyukov
CC=golang-codereviews
https://golang.org/cl/109050043
2014-06-26 11:54:39 -04:00
|
|
|
g->m->mcache = runtime·allocmcache();
|
2014-08-19 15:59:42 +04:00
|
|
|
|
|
|
|
|
runtime·gc_notype_ptr(¬ype_eface);
|
2014-09-03 08:49:43 -07:00
|
|
|
runtime·conservative = notype_eface.type;
|
2008-12-18 15:42:28 -08:00
|
|
|
}
|
|
|
|
|
|
2011-01-28 15:03:26 -05:00
|
|
|
void*
|
|
|
|
|
runtime·MHeap_SysAlloc(MHeap *h, uintptr n)
|
|
|
|
|
{
|
2014-03-06 18:34:29 -05:00
|
|
|
byte *p, *p_end;
|
|
|
|
|
uintptr p_size;
|
2014-03-25 13:22:19 -07:00
|
|
|
bool reserved;
|
2011-02-02 23:03:47 -05:00
|
|
|
|
2012-03-07 14:21:45 -05:00
|
|
|
if(n > h->arena_end - h->arena_used) {
|
|
|
|
|
// We are in 32-bit mode, maybe we didn't use all possible address space yet.
|
|
|
|
|
// Reserve some more space.
|
|
|
|
|
byte *new_end;
|
|
|
|
|
|
2014-03-06 18:34:29 -05:00
|
|
|
p_size = ROUND(n + PageSize, 256<<20);
|
|
|
|
|
new_end = h->arena_end + p_size;
|
2012-03-07 14:21:45 -05:00
|
|
|
if(new_end <= h->arena_start + MaxArena32) {
|
2014-03-25 13:22:19 -07:00
|
|
|
// TODO: It would be bad if part of the arena
|
|
|
|
|
// is reserved and part is not.
|
|
|
|
|
p = runtime·SysReserve(h->arena_end, p_size, &reserved);
|
|
|
|
|
if(p == h->arena_end) {
|
2012-03-07 14:21:45 -05:00
|
|
|
h->arena_end = new_end;
|
2014-03-25 13:22:19 -07:00
|
|
|
h->arena_reserved = reserved;
|
|
|
|
|
}
|
2014-03-06 18:34:29 -05:00
|
|
|
else if(p+p_size <= h->arena_start + MaxArena32) {
|
|
|
|
|
// Keep everything page-aligned.
|
|
|
|
|
// Our pages are bigger than hardware pages.
|
|
|
|
|
h->arena_end = p+p_size;
|
|
|
|
|
h->arena_used = p + (-(uintptr)p&(PageSize-1));
|
2014-03-25 13:22:19 -07:00
|
|
|
h->arena_reserved = reserved;
|
2014-03-06 18:34:29 -05:00
|
|
|
} else {
|
|
|
|
|
uint64 stat;
|
|
|
|
|
stat = 0;
|
|
|
|
|
runtime·SysFree(p, p_size, &stat);
|
|
|
|
|
}
|
2012-03-07 14:21:45 -05:00
|
|
|
}
|
|
|
|
|
}
|
2011-02-02 23:03:47 -05:00
|
|
|
if(n <= h->arena_end - h->arena_used) {
|
2011-01-28 15:03:26 -05:00
|
|
|
// Keep taking from our reservation.
|
|
|
|
|
p = h->arena_used;
|
2014-03-25 13:22:19 -07:00
|
|
|
runtime·SysMap(p, n, h->arena_reserved, &mstats.heap_sys);
|
2011-01-28 15:03:26 -05:00
|
|
|
h->arena_used += n;
|
2011-02-02 23:03:47 -05:00
|
|
|
runtime·MHeap_MapBits(h);
|
2013-05-28 22:04:34 +04:00
|
|
|
runtime·MHeap_MapSpans(h);
|
2012-11-07 12:48:58 +04:00
|
|
|
if(raceenabled)
|
|
|
|
|
runtime·racemapshadow(p, n);
|
2014-03-06 18:34:29 -05:00
|
|
|
|
|
|
|
|
if(((uintptr)p & (PageSize-1)) != 0)
|
|
|
|
|
runtime·throw("misrounded allocation in MHeap_SysAlloc");
|
2011-01-28 15:03:26 -05:00
|
|
|
return p;
|
|
|
|
|
}
|
2011-02-02 23:03:47 -05:00
|
|
|
|
2012-02-08 14:39:16 -05:00
|
|
|
// If using 64-bit, our reservation is all we have.
|
2014-03-25 13:22:19 -07:00
|
|
|
if(h->arena_end - h->arena_start >= MaxArena32)
|
2011-02-02 23:03:47 -05:00
|
|
|
return nil;
|
|
|
|
|
|
|
|
|
|
// On 32-bit, once the reservation is gone we can
|
|
|
|
|
// try to get memory at a location chosen by the OS
|
|
|
|
|
// and hope that it is in the range we allocated bitmap for.
|
2014-03-06 18:34:29 -05:00
|
|
|
p_size = ROUND(n, PageSize) + PageSize;
|
2014-08-30 00:54:40 -04:00
|
|
|
p = runtime·sysAlloc(p_size, &mstats.heap_sys);
|
2011-02-02 23:03:47 -05:00
|
|
|
if(p == nil)
|
|
|
|
|
return nil;
|
|
|
|
|
|
2014-03-06 18:34:29 -05:00
|
|
|
if(p < h->arena_start || p+p_size - h->arena_start >= MaxArena32) {
|
2012-03-07 14:21:45 -05:00
|
|
|
runtime·printf("runtime: memory allocated by OS (%p) not in usable range [%p,%p)\n",
|
|
|
|
|
p, h->arena_start, h->arena_start+MaxArena32);
|
2014-03-06 18:34:29 -05:00
|
|
|
runtime·SysFree(p, p_size, &mstats.heap_sys);
|
2011-02-02 23:03:47 -05:00
|
|
|
return nil;
|
|
|
|
|
}
|
2014-03-06 18:34:29 -05:00
|
|
|
|
|
|
|
|
p_end = p + p_size;
|
|
|
|
|
p += -(uintptr)p & (PageSize-1);
|
2011-02-02 23:03:47 -05:00
|
|
|
if(p+n > h->arena_used) {
|
|
|
|
|
h->arena_used = p+n;
|
2014-03-06 18:34:29 -05:00
|
|
|
if(p_end > h->arena_end)
|
|
|
|
|
h->arena_end = p_end;
|
2011-02-02 23:03:47 -05:00
|
|
|
runtime·MHeap_MapBits(h);
|
2013-05-28 22:04:34 +04:00
|
|
|
runtime·MHeap_MapSpans(h);
|
2012-11-07 12:48:58 +04:00
|
|
|
if(raceenabled)
|
|
|
|
|
runtime·racemapshadow(p, n);
|
2011-02-02 23:03:47 -05:00
|
|
|
}
|
|
|
|
|
|
2014-03-06 18:34:29 -05:00
|
|
|
if(((uintptr)p & (PageSize-1)) != 0)
|
|
|
|
|
runtime·throw("misrounded allocation in MHeap_SysAlloc");
|
2011-02-02 23:03:47 -05:00
|
|
|
return p;
|
2011-01-28 15:03:26 -05:00
|
|
|
}
|
|
|
|
|
|
2008-12-19 03:13:39 -08:00
|
|
|
// Runtime stubs.
|
|
|
|
|
|
2013-05-27 11:29:11 +04:00
|
|
|
static void*
|
2014-07-29 11:01:02 +04:00
|
|
|
cnew(Type *typ, intgo n)
|
2012-10-21 17:41:32 -04:00
|
|
|
{
|
2013-05-27 11:29:11 +04:00
|
|
|
if(n < 0 || (typ->size > 0 && n > MaxMem/typ->size))
|
|
|
|
|
runtime·panicstring("runtime: allocation size out of range");
|
2014-07-29 11:01:02 +04:00
|
|
|
return runtime·mallocgc(typ->size*n, typ, typ->kind&KindNoPointers ? FlagNoScan : 0);
|
2012-10-21 17:41:32 -04:00
|
|
|
}
|
|
|
|
|
|
2013-05-27 11:29:11 +04:00
|
|
|
// same as runtime·new, but callable from C
|
|
|
|
|
void*
|
|
|
|
|
runtime·cnew(Type *typ)
|
|
|
|
|
{
|
2014-07-29 11:01:02 +04:00
|
|
|
return cnew(typ, 1);
|
2013-05-27 11:29:11 +04:00
|
|
|
}
|
|
|
|
|
|
|
|
|
|
void*
|
|
|
|
|
runtime·cnewarray(Type *typ, intgo n)
|
|
|
|
|
{
|
2014-07-29 11:01:02 +04:00
|
|
|
return cnew(typ, n);
|
2013-05-27 11:29:11 +04:00
|
|
|
}
|
|
|
|
|
|
2014-08-28 13:23:10 -07:00
|
|
|
void
|
|
|
|
|
runtime·setFinalizer_m(void)
|
2014-07-30 09:01:52 -07:00
|
|
|
{
|
2014-08-28 13:23:10 -07:00
|
|
|
FuncVal *fn;
|
|
|
|
|
void *arg;
|
2012-09-24 14:58:34 -04:00
|
|
|
uintptr nret;
|
2013-07-29 19:43:08 +04:00
|
|
|
Type *fint;
|
|
|
|
|
PtrType *ot;
|
2010-02-10 00:00:12 -08:00
|
|
|
|
2014-08-28 13:23:10 -07:00
|
|
|
fn = g->m->ptrarg[0];
|
|
|
|
|
arg = g->m->ptrarg[1];
|
|
|
|
|
nret = g->m->scalararg[0];
|
|
|
|
|
fint = g->m->ptrarg[2];
|
|
|
|
|
ot = g->m->ptrarg[3];
|
|
|
|
|
g->m->ptrarg[0] = nil;
|
|
|
|
|
g->m->ptrarg[1] = nil;
|
|
|
|
|
g->m->ptrarg[2] = nil;
|
|
|
|
|
g->m->ptrarg[3] = nil;
|
2011-10-06 18:42:51 +03:00
|
|
|
|
2014-08-28 13:23:10 -07:00
|
|
|
g->m->scalararg[0] = runtime·addfinalizer(arg, fn, nret, fint, ot);
|
2010-02-03 16:31:34 -08:00
|
|
|
}
|
2014-07-29 11:01:02 +04:00
|
|
|
|
2014-07-30 09:01:52 -07:00
|
|
|
void
|
2014-08-28 13:23:10 -07:00
|
|
|
runtime·removeFinalizer_m(void)
|
2014-07-30 09:01:52 -07:00
|
|
|
{
|
2014-08-28 13:23:10 -07:00
|
|
|
void *p;
|
2014-07-30 09:01:52 -07:00
|
|
|
|
2014-08-28 13:23:10 -07:00
|
|
|
p = g->m->ptrarg[0];
|
2014-07-30 09:01:52 -07:00
|
|
|
g->m->ptrarg[0] = nil;
|
2014-08-28 13:23:10 -07:00
|
|
|
runtime·removefinalizer(p);
|
2014-07-30 09:01:52 -07:00
|
|
|
}
|
|
|
|
|
|
|
|
|
|
// mcallable cache refill
|
|
|
|
|
void
|
2014-08-06 14:33:57 -07:00
|
|
|
runtime·mcacheRefill_m(void)
|
2014-07-30 09:01:52 -07:00
|
|
|
{
|
|
|
|
|
runtime·MCache_Refill(g->m->mcache, (int32)g->m->scalararg[0]);
|
|
|
|
|
}
|
|
|
|
|
|
|
|
|
|
void
|
2014-08-06 14:33:57 -07:00
|
|
|
runtime·largeAlloc_m(void)
|
2014-07-30 09:01:52 -07:00
|
|
|
{
|
|
|
|
|
uintptr npages, size;
|
|
|
|
|
MSpan *s;
|
|
|
|
|
void *v;
|
|
|
|
|
int32 flag;
|
|
|
|
|
|
|
|
|
|
//runtime·printf("largeAlloc size=%D\n", g->m->scalararg[0]);
|
|
|
|
|
// Allocate directly from heap.
|
|
|
|
|
size = g->m->scalararg[0];
|
|
|
|
|
flag = (int32)g->m->scalararg[1];
|
|
|
|
|
if(size + PageSize < size)
|
|
|
|
|
runtime·throw("out of memory");
|
|
|
|
|
npages = size >> PageShift;
|
|
|
|
|
if((size & PageMask) != 0)
|
|
|
|
|
npages++;
|
|
|
|
|
s = runtime·MHeap_Alloc(&runtime·mheap, npages, 0, 1, !(flag & FlagNoZero));
|
|
|
|
|
if(s == nil)
|
|
|
|
|
runtime·throw("out of memory");
|
|
|
|
|
s->limit = (byte*)(s->start<<PageShift) + size;
|
|
|
|
|
v = (void*)(s->start << PageShift);
|
|
|
|
|
// setup for mark sweep
|
|
|
|
|
runtime·markspan(v, 0, 0, true);
|
|
|
|
|
g->m->ptrarg[0] = s;
|
2014-07-29 11:01:02 +04:00
|
|
|
}
|