github.com/lovishpuri/go-40569/src@v0.0.0-20230519171745-f8623e7c56cf/runtime/mcentral.go (about)

     1  // Copyright 2009 The Go Authors. All rights reserved.
     2  // Use of this source code is governed by a BSD-style
     3  // license that can be found in the LICENSE file.
     4  
     5  // Central free lists.
     6  //
     7  // See malloc.go for an overview.
     8  //
     9  // The mcentral doesn't actually contain the list of free objects; the mspan does.
    10  // Each mcentral is two lists of mspans: those with free objects (c->nonempty)
    11  // and those that are completely allocated (c->empty).
    12  
    13  package runtime
    14  
    15  import (
    16  	"runtime/internal/atomic"
    17  	"runtime/internal/sys"
    18  )
    19  
    20  // Central list of free objects of a given size.
    21  type mcentral struct {
    22  	_         sys.NotInHeap
    23  	spanclass spanClass
    24  
    25  	// partial and full contain two mspan sets: one of swept in-use
    26  	// spans, and one of unswept in-use spans. These two trade
    27  	// roles on each GC cycle. The unswept set is drained either by
    28  	// allocation or by the background sweeper in every GC cycle,
    29  	// so only two roles are necessary.
    30  	//
    31  	// sweepgen is increased by 2 on each GC cycle, so the swept
    32  	// spans are in partial[sweepgen/2%2] and the unswept spans are in
    33  	// partial[1-sweepgen/2%2]. Sweeping pops spans from the
    34  	// unswept set and pushes spans that are still in-use on the
    35  	// swept set. Likewise, allocating an in-use span pushes it
    36  	// on the swept set.
    37  	//
    38  	// Some parts of the sweeper can sweep arbitrary spans, and hence
    39  	// can't remove them from the unswept set, but will add the span
    40  	// to the appropriate swept list. As a result, the parts of the
    41  	// sweeper and mcentral that do consume from the unswept list may
    42  	// encounter swept spans, and these should be ignored.
    43  	partial [2]spanSet // list of spans with a free object
    44  	full    [2]spanSet // list of spans with no free objects
    45  }
    46  
    47  // Initialize a single central free list.
    48  func (c *mcentral) init(spc spanClass) {
    49  	c.spanclass = spc
    50  	lockInit(&c.partial[0].spineLock, lockRankSpanSetSpine)
    51  	lockInit(&c.partial[1].spineLock, lockRankSpanSetSpine)
    52  	lockInit(&c.full[0].spineLock, lockRankSpanSetSpine)
    53  	lockInit(&c.full[1].spineLock, lockRankSpanSetSpine)
    54  }
    55  
    56  // partialUnswept returns the spanSet which holds partially-filled
    57  // unswept spans for this sweepgen.
    58  func (c *mcentral) partialUnswept(sweepgen uint32) *spanSet {
    59  	return &c.partial[1-sweepgen/2%2]
    60  }
    61  
    62  // partialSwept returns the spanSet which holds partially-filled
    63  // swept spans for this sweepgen.
    64  func (c *mcentral) partialSwept(sweepgen uint32) *spanSet {
    65  	return &c.partial[sweepgen/2%2]
    66  }
    67  
    68  // fullUnswept returns the spanSet which holds unswept spans without any
    69  // free slots for this sweepgen.
    70  func (c *mcentral) fullUnswept(sweepgen uint32) *spanSet {
    71  	return &c.full[1-sweepgen/2%2]
    72  }
    73  
    74  // fullSwept returns the spanSet which holds swept spans without any
    75  // free slots for this sweepgen.
    76  func (c *mcentral) fullSwept(sweepgen uint32) *spanSet {
    77  	return &c.full[sweepgen/2%2]
    78  }
    79  
    80  // Allocate a span to use in an mcache.
    81  func (c *mcentral) cacheSpan() *mspan {
    82  	// Deduct credit for this span allocation and sweep if necessary.
    83  	spanBytes := uintptr(class_to_allocnpages[c.spanclass.sizeclass()]) * _PageSize
    84  	deductSweepCredit(spanBytes, 0)
    85  
    86  	traceDone := false
    87  	if traceEnabled() {
    88  		traceGCSweepStart()
    89  	}
    90  
    91  	// If we sweep spanBudget spans without finding any free
    92  	// space, just allocate a fresh span. This limits the amount
    93  	// of time we can spend trying to find free space and
    94  	// amortizes the cost of small object sweeping over the
    95  	// benefit of having a full free span to allocate from. By
    96  	// setting this to 100, we limit the space overhead to 1%.
    97  	//
    98  	// TODO(austin,mknyszek): This still has bad worst-case
    99  	// throughput. For example, this could find just one free slot
   100  	// on the 100th swept span. That limits allocation latency, but
   101  	// still has very poor throughput. We could instead keep a
   102  	// running free-to-used budget and switch to fresh span
   103  	// allocation if the budget runs low.
   104  	spanBudget := 100
   105  
   106  	var s *mspan
   107  	var sl sweepLocker
   108  
   109  	// Try partial swept spans first.
   110  	sg := mheap_.sweepgen
   111  	if s = c.partialSwept(sg).pop(); s != nil {
   112  		goto havespan
   113  	}
   114  
   115  	sl = sweep.active.begin()
   116  	if sl.valid {
   117  		// Now try partial unswept spans.
   118  		for ; spanBudget >= 0; spanBudget-- {
   119  			s = c.partialUnswept(sg).pop()
   120  			if s == nil {
   121  				break
   122  			}
   123  			if s, ok := sl.tryAcquire(s); ok {
   124  				// We got ownership of the span, so let's sweep it and use it.
   125  				s.sweep(true)
   126  				sweep.active.end(sl)
   127  				goto havespan
   128  			}
   129  			// We failed to get ownership of the span, which means it's being or
   130  			// has been swept by an asynchronous sweeper that just couldn't remove it
   131  			// from the unswept list. That sweeper took ownership of the span and
   132  			// responsibility for either freeing it to the heap or putting it on the
   133  			// right swept list. Either way, we should just ignore it (and it's unsafe
   134  			// for us to do anything else).
   135  		}
   136  		// Now try full unswept spans, sweeping them and putting them into the
   137  		// right list if we fail to get a span.
   138  		for ; spanBudget >= 0; spanBudget-- {
   139  			s = c.fullUnswept(sg).pop()
   140  			if s == nil {
   141  				break
   142  			}
   143  			if s, ok := sl.tryAcquire(s); ok {
   144  				// We got ownership of the span, so let's sweep it.
   145  				s.sweep(true)
   146  				// Check if there's any free space.
   147  				freeIndex := s.nextFreeIndex()
   148  				if freeIndex != s.nelems {
   149  					s.freeindex = freeIndex
   150  					sweep.active.end(sl)
   151  					goto havespan
   152  				}
   153  				// Add it to the swept list, because sweeping didn't give us any free space.
   154  				c.fullSwept(sg).push(s.mspan)
   155  			}
   156  			// See comment for partial unswept spans.
   157  		}
   158  		sweep.active.end(sl)
   159  	}
   160  	if traceEnabled() {
   161  		traceGCSweepDone()
   162  		traceDone = true
   163  	}
   164  
   165  	// We failed to get a span from the mcentral so get one from mheap.
   166  	s = c.grow()
   167  	if s == nil {
   168  		return nil
   169  	}
   170  
   171  	// At this point s is a span that should have free slots.
   172  havespan:
   173  	if traceEnabled() && !traceDone {
   174  		traceGCSweepDone()
   175  	}
   176  	n := int(s.nelems) - int(s.allocCount)
   177  	if n == 0 || s.freeindex == s.nelems || uintptr(s.allocCount) == s.nelems {
   178  		throw("span has no free objects")
   179  	}
   180  	freeByteBase := s.freeindex &^ (64 - 1)
   181  	whichByte := freeByteBase / 8
   182  	// Init alloc bits cache.
   183  	s.refillAllocCache(whichByte)
   184  
   185  	// Adjust the allocCache so that s.freeindex corresponds to the low bit in
   186  	// s.allocCache.
   187  	s.allocCache >>= s.freeindex % 64
   188  
   189  	return s
   190  }
   191  
   192  // Return span from an mcache.
   193  //
   194  // s must have a span class corresponding to this
   195  // mcentral and it must not be empty.
   196  func (c *mcentral) uncacheSpan(s *mspan) {
   197  	if s.allocCount == 0 {
   198  		throw("uncaching span but s.allocCount == 0")
   199  	}
   200  
   201  	sg := mheap_.sweepgen
   202  	stale := s.sweepgen == sg+1
   203  
   204  	// Fix up sweepgen.
   205  	if stale {
   206  		// Span was cached before sweep began. It's our
   207  		// responsibility to sweep it.
   208  		//
   209  		// Set sweepgen to indicate it's not cached but needs
   210  		// sweeping and can't be allocated from. sweep will
   211  		// set s.sweepgen to indicate s is swept.
   212  		atomic.Store(&s.sweepgen, sg-1)
   213  	} else {
   214  		// Indicate that s is no longer cached.
   215  		atomic.Store(&s.sweepgen, sg)
   216  	}
   217  
   218  	// Put the span in the appropriate place.
   219  	if stale {
   220  		// It's stale, so just sweep it. Sweeping will put it on
   221  		// the right list.
   222  		//
   223  		// We don't use a sweepLocker here. Stale cached spans
   224  		// aren't in the global sweep lists, so mark termination
   225  		// itself holds up sweep completion until all mcaches
   226  		// have been swept.
   227  		ss := sweepLocked{s}
   228  		ss.sweep(false)
   229  	} else {
   230  		if int(s.nelems)-int(s.allocCount) > 0 {
   231  			// Put it back on the partial swept list.
   232  			c.partialSwept(sg).push(s)
   233  		} else {
   234  			// There's no free space and it's not stale, so put it on the
   235  			// full swept list.
   236  			c.fullSwept(sg).push(s)
   237  		}
   238  	}
   239  }
   240  
   241  // grow allocates a new empty span from the heap and initializes it for c's size class.
   242  func (c *mcentral) grow() *mspan {
   243  	npages := uintptr(class_to_allocnpages[c.spanclass.sizeclass()])
   244  	size := uintptr(class_to_size[c.spanclass.sizeclass()])
   245  
   246  	s := mheap_.alloc(npages, c.spanclass)
   247  	if s == nil {
   248  		return nil
   249  	}
   250  
   251  	// Use division by multiplication and shifts to quickly compute:
   252  	// n := (npages << _PageShift) / size
   253  	n := s.divideByElemSize(npages << _PageShift)
   254  	s.limit = s.base() + size*n
   255  	s.initHeapBits(false)
   256  	return s
   257  }