mirror of
https://github.com/golang/go
synced 2024-11-08 18:46:16 -07:00
28b5118415
m.gcing has become overloaded to mean "don't preempt this g" in general. Once the garbage collector is preemptible, the one thing it *won't* mean is that we're in the garbage collector. So, rename gcing to "preemptoff" and make it a string giving a reason that preemption is disabled. gcing was never set to anything but 0 or 1, so we don't have to worry about there being a stack of reasons. Change-Id: I4337c29e8e942e7aa4f106fc29597e1b5de4ef46 Reviewed-on: https://go-review.googlesource.com/3660 Reviewed-by: Russ Cox <rsc@golang.org>
658 lines
17 KiB
Go
658 lines
17 KiB
Go
// 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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// Malloc profiling.
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// Patterned after tcmalloc's algorithms; shorter code.
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package runtime
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import (
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"unsafe"
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)
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// NOTE(rsc): Everything here could use cas if contention became an issue.
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var proflock mutex
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// All memory allocations are local and do not escape outside of the profiler.
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// The profiler is forbidden from referring to garbage-collected memory.
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const (
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// profile types
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memProfile bucketType = 1 + iota
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blockProfile
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// size of bucket hash table
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buckHashSize = 179999
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// max depth of stack to record in bucket
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maxStack = 32
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)
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type bucketType int
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// A bucket holds per-call-stack profiling information.
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// The representation is a bit sleazy, inherited from C.
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// This struct defines the bucket header. It is followed in
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// memory by the stack words and then the actual record
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// data, either a memRecord or a blockRecord.
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//
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// Per-call-stack profiling information.
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// Lookup by hashing call stack into a linked-list hash table.
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type bucket struct {
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next *bucket
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allnext *bucket
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typ bucketType // memBucket or blockBucket
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hash uintptr
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size uintptr
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nstk uintptr
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}
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// A memRecord is the bucket data for a bucket of type memProfile,
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// part of the memory profile.
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type memRecord struct {
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// The following complex 3-stage scheme of stats accumulation
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// is required to obtain a consistent picture of mallocs and frees
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// for some point in time.
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// The problem is that mallocs come in real time, while frees
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// come only after a GC during concurrent sweeping. So if we would
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// naively count them, we would get a skew toward mallocs.
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//
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// Mallocs are accounted in recent stats.
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// Explicit frees are accounted in recent stats.
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// GC frees are accounted in prev stats.
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// After GC prev stats are added to final stats and
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// recent stats are moved into prev stats.
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allocs uintptr
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frees uintptr
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alloc_bytes uintptr
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free_bytes uintptr
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// changes between next-to-last GC and last GC
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prev_allocs uintptr
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prev_frees uintptr
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prev_alloc_bytes uintptr
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prev_free_bytes uintptr
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// changes since last GC
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recent_allocs uintptr
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recent_frees uintptr
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recent_alloc_bytes uintptr
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recent_free_bytes uintptr
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}
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// A blockRecord is the bucket data for a bucket of type blockProfile,
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// part of the blocking profile.
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type blockRecord struct {
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count int64
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cycles int64
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}
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var (
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mbuckets *bucket // memory profile buckets
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bbuckets *bucket // blocking profile buckets
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buckhash *[179999]*bucket
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bucketmem uintptr
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)
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// newBucket allocates a bucket with the given type and number of stack entries.
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func newBucket(typ bucketType, nstk int) *bucket {
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size := unsafe.Sizeof(bucket{}) + uintptr(nstk)*unsafe.Sizeof(uintptr(0))
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switch typ {
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default:
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throw("invalid profile bucket type")
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case memProfile:
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size += unsafe.Sizeof(memRecord{})
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case blockProfile:
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size += unsafe.Sizeof(blockRecord{})
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}
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b := (*bucket)(persistentalloc(size, 0, &memstats.buckhash_sys))
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bucketmem += size
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b.typ = typ
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b.nstk = uintptr(nstk)
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return b
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}
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// stk returns the slice in b holding the stack.
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func (b *bucket) stk() []uintptr {
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stk := (*[maxStack]uintptr)(add(unsafe.Pointer(b), unsafe.Sizeof(*b)))
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return stk[:b.nstk:b.nstk]
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}
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// mp returns the memRecord associated with the memProfile bucket b.
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func (b *bucket) mp() *memRecord {
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if b.typ != memProfile {
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throw("bad use of bucket.mp")
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}
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data := add(unsafe.Pointer(b), unsafe.Sizeof(*b)+b.nstk*unsafe.Sizeof(uintptr(0)))
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return (*memRecord)(data)
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}
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// bp returns the blockRecord associated with the blockProfile bucket b.
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func (b *bucket) bp() *blockRecord {
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if b.typ != blockProfile {
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throw("bad use of bucket.bp")
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}
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data := add(unsafe.Pointer(b), unsafe.Sizeof(*b)+b.nstk*unsafe.Sizeof(uintptr(0)))
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return (*blockRecord)(data)
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}
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// Return the bucket for stk[0:nstk], allocating new bucket if needed.
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func stkbucket(typ bucketType, size uintptr, stk []uintptr, alloc bool) *bucket {
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if buckhash == nil {
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buckhash = (*[buckHashSize]*bucket)(sysAlloc(unsafe.Sizeof(*buckhash), &memstats.buckhash_sys))
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if buckhash == nil {
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throw("runtime: cannot allocate memory")
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}
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}
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// Hash stack.
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var h uintptr
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for _, pc := range stk {
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h += pc
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h += h << 10
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h ^= h >> 6
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}
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// hash in size
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h += size
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h += h << 10
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h ^= h >> 6
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// finalize
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h += h << 3
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h ^= h >> 11
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i := int(h % buckHashSize)
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for b := buckhash[i]; b != nil; b = b.next {
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if b.typ == typ && b.hash == h && b.size == size && eqslice(b.stk(), stk) {
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return b
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}
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}
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if !alloc {
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return nil
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}
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// Create new bucket.
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b := newBucket(typ, len(stk))
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copy(b.stk(), stk)
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b.hash = h
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b.size = size
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b.next = buckhash[i]
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buckhash[i] = b
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if typ == memProfile {
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b.allnext = mbuckets
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mbuckets = b
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} else {
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b.allnext = bbuckets
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bbuckets = b
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}
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return b
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}
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func eqslice(x, y []uintptr) bool {
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if len(x) != len(y) {
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return false
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}
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for i, xi := range x {
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if xi != y[i] {
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return false
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}
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}
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return true
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}
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func mprof_GC() {
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for b := mbuckets; b != nil; b = b.allnext {
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mp := b.mp()
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mp.allocs += mp.prev_allocs
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mp.frees += mp.prev_frees
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mp.alloc_bytes += mp.prev_alloc_bytes
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mp.free_bytes += mp.prev_free_bytes
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mp.prev_allocs = mp.recent_allocs
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mp.prev_frees = mp.recent_frees
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mp.prev_alloc_bytes = mp.recent_alloc_bytes
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mp.prev_free_bytes = mp.recent_free_bytes
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mp.recent_allocs = 0
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mp.recent_frees = 0
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mp.recent_alloc_bytes = 0
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mp.recent_free_bytes = 0
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}
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}
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// Record that a gc just happened: all the 'recent' statistics are now real.
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func mProf_GC() {
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lock(&proflock)
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mprof_GC()
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unlock(&proflock)
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}
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// Called by malloc to record a profiled block.
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func mProf_Malloc(p unsafe.Pointer, size uintptr) {
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var stk [maxStack]uintptr
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nstk := callers(4, &stk[0], len(stk))
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lock(&proflock)
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b := stkbucket(memProfile, size, stk[:nstk], true)
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mp := b.mp()
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mp.recent_allocs++
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mp.recent_alloc_bytes += size
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unlock(&proflock)
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// Setprofilebucket locks a bunch of other mutexes, so we call it outside of proflock.
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// This reduces potential contention and chances of deadlocks.
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// Since the object must be alive during call to mProf_Malloc,
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// it's fine to do this non-atomically.
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systemstack(func() {
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setprofilebucket(p, b)
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})
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}
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// Called when freeing a profiled block.
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func mProf_Free(b *bucket, size uintptr, freed bool) {
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lock(&proflock)
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mp := b.mp()
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if freed {
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mp.recent_frees++
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mp.recent_free_bytes += size
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} else {
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mp.prev_frees++
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mp.prev_free_bytes += size
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}
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unlock(&proflock)
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}
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var blockprofilerate uint64 // in CPU ticks
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// SetBlockProfileRate controls the fraction of goroutine blocking events
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// that are reported in the blocking profile. The profiler aims to sample
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// an average of one blocking event per rate nanoseconds spent blocked.
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//
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// To include every blocking event in the profile, pass rate = 1.
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// To turn off profiling entirely, pass rate <= 0.
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func SetBlockProfileRate(rate int) {
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var r int64
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if rate <= 0 {
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r = 0 // disable profiling
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} else if rate == 1 {
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r = 1 // profile everything
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} else {
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// convert ns to cycles, use float64 to prevent overflow during multiplication
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r = int64(float64(rate) * float64(tickspersecond()) / (1000 * 1000 * 1000))
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if r == 0 {
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r = 1
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}
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}
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atomicstore64(&blockprofilerate, uint64(r))
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}
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func blockevent(cycles int64, skip int) {
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if cycles <= 0 {
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cycles = 1
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}
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rate := int64(atomicload64(&blockprofilerate))
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if rate <= 0 || (rate > cycles && int64(fastrand1())%rate > cycles) {
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return
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}
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gp := getg()
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var nstk int
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var stk [maxStack]uintptr
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if gp.m.curg == nil || gp.m.curg == gp {
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nstk = callers(skip, &stk[0], len(stk))
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} else {
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nstk = gcallers(gp.m.curg, skip, &stk[0], len(stk))
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}
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lock(&proflock)
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b := stkbucket(blockProfile, 0, stk[:nstk], true)
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b.bp().count++
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b.bp().cycles += cycles
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unlock(&proflock)
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}
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// Go interface to profile data.
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// A StackRecord describes a single execution stack.
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type StackRecord struct {
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Stack0 [32]uintptr // stack trace for this record; ends at first 0 entry
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}
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// Stack returns the stack trace associated with the record,
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// a prefix of r.Stack0.
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func (r *StackRecord) Stack() []uintptr {
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for i, v := range r.Stack0 {
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if v == 0 {
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return r.Stack0[0:i]
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}
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}
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return r.Stack0[0:]
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}
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// MemProfileRate controls the fraction of memory allocations
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// that are recorded and reported in the memory profile.
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// The profiler aims to sample an average of
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// one allocation per MemProfileRate bytes allocated.
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//
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// To include every allocated block in the profile, set MemProfileRate to 1.
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// To turn off profiling entirely, set MemProfileRate to 0.
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//
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// The tools that process the memory profiles assume that the
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// profile rate is constant across the lifetime of the program
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// and equal to the current value. Programs that change the
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// memory profiling rate should do so just once, as early as
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// possible in the execution of the program (for example,
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// at the beginning of main).
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var MemProfileRate int = 512 * 1024
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// A MemProfileRecord describes the live objects allocated
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// by a particular call sequence (stack trace).
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type MemProfileRecord struct {
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AllocBytes, FreeBytes int64 // number of bytes allocated, freed
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AllocObjects, FreeObjects int64 // number of objects allocated, freed
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Stack0 [32]uintptr // stack trace for this record; ends at first 0 entry
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}
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// InUseBytes returns the number of bytes in use (AllocBytes - FreeBytes).
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func (r *MemProfileRecord) InUseBytes() int64 { return r.AllocBytes - r.FreeBytes }
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// InUseObjects returns the number of objects in use (AllocObjects - FreeObjects).
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func (r *MemProfileRecord) InUseObjects() int64 {
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return r.AllocObjects - r.FreeObjects
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}
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// Stack returns the stack trace associated with the record,
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// a prefix of r.Stack0.
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func (r *MemProfileRecord) Stack() []uintptr {
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for i, v := range r.Stack0 {
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if v == 0 {
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return r.Stack0[0:i]
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}
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}
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return r.Stack0[0:]
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}
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// MemProfile returns n, the number of records in the current memory profile.
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// If len(p) >= n, MemProfile copies the profile into p and returns n, true.
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// If len(p) < n, MemProfile does not change p and returns n, false.
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//
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// If inuseZero is true, the profile includes allocation records
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// where r.AllocBytes > 0 but r.AllocBytes == r.FreeBytes.
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// These are sites where memory was allocated, but it has all
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// been released back to the runtime.
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//
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// Most clients should use the runtime/pprof package or
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// the testing package's -test.memprofile flag instead
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// of calling MemProfile directly.
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func MemProfile(p []MemProfileRecord, inuseZero bool) (n int, ok bool) {
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lock(&proflock)
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clear := true
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for b := mbuckets; b != nil; b = b.allnext {
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mp := b.mp()
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if inuseZero || mp.alloc_bytes != mp.free_bytes {
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n++
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}
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if mp.allocs != 0 || mp.frees != 0 {
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clear = false
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}
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}
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if clear {
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// Absolutely no data, suggesting that a garbage collection
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// has not yet happened. In order to allow profiling when
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// garbage collection is disabled from the beginning of execution,
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// accumulate stats as if a GC just happened, and recount buckets.
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mprof_GC()
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mprof_GC()
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n = 0
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for b := mbuckets; b != nil; b = b.allnext {
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mp := b.mp()
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if inuseZero || mp.alloc_bytes != mp.free_bytes {
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n++
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}
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}
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}
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if n <= len(p) {
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ok = true
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idx := 0
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for b := mbuckets; b != nil; b = b.allnext {
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mp := b.mp()
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if inuseZero || mp.alloc_bytes != mp.free_bytes {
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record(&p[idx], b)
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idx++
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}
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}
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}
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unlock(&proflock)
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return
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}
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// Write b's data to r.
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func record(r *MemProfileRecord, b *bucket) {
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mp := b.mp()
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r.AllocBytes = int64(mp.alloc_bytes)
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r.FreeBytes = int64(mp.free_bytes)
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r.AllocObjects = int64(mp.allocs)
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r.FreeObjects = int64(mp.frees)
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copy(r.Stack0[:], b.stk())
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for i := int(b.nstk); i < len(r.Stack0); i++ {
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r.Stack0[i] = 0
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}
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}
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func iterate_memprof(fn func(*bucket, uintptr, *uintptr, uintptr, uintptr, uintptr)) {
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lock(&proflock)
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for b := mbuckets; b != nil; b = b.allnext {
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mp := b.mp()
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fn(b, uintptr(b.nstk), &b.stk()[0], b.size, mp.allocs, mp.frees)
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}
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unlock(&proflock)
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}
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// BlockProfileRecord describes blocking events originated
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// at a particular call sequence (stack trace).
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type BlockProfileRecord struct {
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Count int64
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Cycles int64
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StackRecord
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}
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// BlockProfile returns n, the number of records in the current blocking profile.
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// If len(p) >= n, BlockProfile copies the profile into p and returns n, true.
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// If len(p) < n, BlockProfile does not change p and returns n, false.
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//
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// Most clients should use the runtime/pprof package or
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// the testing package's -test.blockprofile flag instead
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// of calling BlockProfile directly.
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func BlockProfile(p []BlockProfileRecord) (n int, ok bool) {
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lock(&proflock)
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for b := bbuckets; b != nil; b = b.allnext {
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n++
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}
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if n <= len(p) {
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ok = true
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for b := bbuckets; b != nil; b = b.allnext {
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bp := b.bp()
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r := &p[0]
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r.Count = int64(bp.count)
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r.Cycles = int64(bp.cycles)
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i := copy(r.Stack0[:], b.stk())
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for ; i < len(r.Stack0); i++ {
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r.Stack0[i] = 0
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}
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p = p[1:]
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}
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}
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unlock(&proflock)
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return
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}
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// ThreadCreateProfile returns n, the number of records in the thread creation profile.
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// If len(p) >= n, ThreadCreateProfile copies the profile into p and returns n, true.
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// If len(p) < n, ThreadCreateProfile does not change p and returns n, false.
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//
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// Most clients should use the runtime/pprof package instead
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// of calling ThreadCreateProfile directly.
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func ThreadCreateProfile(p []StackRecord) (n int, ok bool) {
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first := (*m)(atomicloadp(unsafe.Pointer(&allm)))
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for mp := first; mp != nil; mp = mp.alllink {
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n++
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}
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if n <= len(p) {
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ok = true
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i := 0
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for mp := first; mp != nil; mp = mp.alllink {
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for s := range mp.createstack {
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p[i].Stack0[s] = uintptr(mp.createstack[s])
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}
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i++
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}
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}
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return
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}
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// GoroutineProfile returns n, the number of records in the active goroutine stack profile.
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// If len(p) >= n, GoroutineProfile copies the profile into p and returns n, true.
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// If len(p) < n, GoroutineProfile does not change p and returns n, false.
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//
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// Most clients should use the runtime/pprof package instead
|
|
// of calling GoroutineProfile directly.
|
|
func GoroutineProfile(p []StackRecord) (n int, ok bool) {
|
|
|
|
n = NumGoroutine()
|
|
if n <= len(p) {
|
|
gp := getg()
|
|
semacquire(&worldsema, false)
|
|
gp.m.preemptoff = "profile"
|
|
systemstack(stoptheworld)
|
|
|
|
n = NumGoroutine()
|
|
if n <= len(p) {
|
|
ok = true
|
|
r := p
|
|
sp := getcallersp(unsafe.Pointer(&p))
|
|
pc := getcallerpc(unsafe.Pointer(&p))
|
|
systemstack(func() {
|
|
saveg(pc, sp, gp, &r[0])
|
|
})
|
|
r = r[1:]
|
|
for _, gp1 := range allgs {
|
|
if gp1 == gp || readgstatus(gp1) == _Gdead {
|
|
continue
|
|
}
|
|
saveg(^uintptr(0), ^uintptr(0), gp1, &r[0])
|
|
r = r[1:]
|
|
}
|
|
}
|
|
|
|
gp.m.preemptoff = ""
|
|
semrelease(&worldsema)
|
|
systemstack(starttheworld)
|
|
}
|
|
|
|
return n, ok
|
|
}
|
|
|
|
func saveg(pc, sp uintptr, gp *g, r *StackRecord) {
|
|
n := gentraceback(pc, sp, 0, gp, 0, &r.Stack0[0], len(r.Stack0), nil, nil, 0)
|
|
if n < len(r.Stack0) {
|
|
r.Stack0[n] = 0
|
|
}
|
|
}
|
|
|
|
// Stack formats a stack trace of the calling goroutine into buf
|
|
// and returns the number of bytes written to buf.
|
|
// If all is true, Stack formats stack traces of all other goroutines
|
|
// into buf after the trace for the current goroutine.
|
|
func Stack(buf []byte, all bool) int {
|
|
if all {
|
|
semacquire(&worldsema, false)
|
|
gp := getg()
|
|
gp.m.preemptoff = "stack trace"
|
|
systemstack(stoptheworld)
|
|
}
|
|
|
|
n := 0
|
|
if len(buf) > 0 {
|
|
gp := getg()
|
|
sp := getcallersp(unsafe.Pointer(&buf))
|
|
pc := getcallerpc(unsafe.Pointer(&buf))
|
|
systemstack(func() {
|
|
g0 := getg()
|
|
g0.writebuf = buf[0:0:len(buf)]
|
|
goroutineheader(gp)
|
|
traceback(pc, sp, 0, gp)
|
|
if all {
|
|
tracebackothers(gp)
|
|
}
|
|
n = len(g0.writebuf)
|
|
g0.writebuf = nil
|
|
})
|
|
}
|
|
|
|
if all {
|
|
gp := getg()
|
|
gp.m.preemptoff = ""
|
|
semrelease(&worldsema)
|
|
systemstack(starttheworld)
|
|
}
|
|
return n
|
|
}
|
|
|
|
// Tracing of alloc/free/gc.
|
|
|
|
var tracelock mutex
|
|
|
|
func tracealloc(p unsafe.Pointer, size uintptr, typ *_type) {
|
|
lock(&tracelock)
|
|
gp := getg()
|
|
gp.m.traceback = 2
|
|
if typ == nil {
|
|
print("tracealloc(", p, ", ", hex(size), ")\n")
|
|
} else {
|
|
print("tracealloc(", p, ", ", hex(size), ", ", *typ._string, ")\n")
|
|
}
|
|
if gp.m.curg == nil || gp == gp.m.curg {
|
|
goroutineheader(gp)
|
|
pc := getcallerpc(unsafe.Pointer(&p))
|
|
sp := getcallersp(unsafe.Pointer(&p))
|
|
systemstack(func() {
|
|
traceback(pc, sp, 0, gp)
|
|
})
|
|
} else {
|
|
goroutineheader(gp.m.curg)
|
|
traceback(^uintptr(0), ^uintptr(0), 0, gp.m.curg)
|
|
}
|
|
print("\n")
|
|
gp.m.traceback = 0
|
|
unlock(&tracelock)
|
|
}
|
|
|
|
func tracefree(p unsafe.Pointer, size uintptr) {
|
|
lock(&tracelock)
|
|
gp := getg()
|
|
gp.m.traceback = 2
|
|
print("tracefree(", p, ", ", hex(size), ")\n")
|
|
goroutineheader(gp)
|
|
pc := getcallerpc(unsafe.Pointer(&p))
|
|
sp := getcallersp(unsafe.Pointer(&p))
|
|
systemstack(func() {
|
|
traceback(pc, sp, 0, gp)
|
|
})
|
|
print("\n")
|
|
gp.m.traceback = 0
|
|
unlock(&tracelock)
|
|
}
|
|
|
|
func tracegc() {
|
|
lock(&tracelock)
|
|
gp := getg()
|
|
gp.m.traceback = 2
|
|
print("tracegc()\n")
|
|
// running on m->g0 stack; show all non-g0 goroutines
|
|
tracebackothers(gp)
|
|
print("end tracegc\n")
|
|
print("\n")
|
|
gp.m.traceback = 0
|
|
unlock(&tracelock)
|
|
}
|