cpp

Coverage Report

Created: 2025-04-28 01:25

/home/uke/oil/mycpp/gc_alloc.h
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Count
Source (jump to first uncovered line)
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// gc_alloc.h: Functions that wrap gHeap.Allocate()
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#ifndef MYCPP_GC_ALLOC_H
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#define MYCPP_GC_ALLOC_H
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#include <string.h>  // strlen
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#include <new>      // placement new
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#include <utility>  // std::forward
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#include "mycpp/gc_obj.h"   // for RawObject, ObjHeader
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#include "mycpp/gc_slab.h"  // for NewSlab()
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#include "mycpp/gc_str.h"   // for NewStr()
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#if defined(BUMP_LEAK)
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  #include "mycpp/bump_leak_heap.h"
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extern BumpLeakHeap gHeap;
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#elif defined(MARK_SWEEP)
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  #include "mycpp/mark_sweep_heap.h"
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extern MarkSweepHeap gHeap;
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#endif
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#define VALIDATE_ROOTS 0
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#if VALIDATE_ROOTS
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static void ValidateRoot(const RawObject* obj) {
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  if (obj == nullptr) {
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    return;
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  }
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  ObjHeader* header = ObjHeader::FromObject(obj);
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  // log("obj %p header %p", obj, header);
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  switch (header->heap_tag) {
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  case HeapTag::Global:
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  case HeapTag::Opaque:
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  case HeapTag::Scanned:
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  case HeapTag::FixedSize:
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    break;
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  default:
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    log("root %p heap %d type %d mask %d len %d", obj, header->heap_tag,
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        header->type_tag, header->u_mask_npointers);
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    FAIL(kShouldNotGetHere);
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    break;
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  }
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}
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#endif
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// mycpp generates code that keeps track of the root set
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class StackRoot {
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 public:
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2
  StackRoot(void* root) {
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2
    RawObject** obj = reinterpret_cast<RawObject**>(root);
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#if VALIDATE_ROOTS
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    ValidateRoot(*obj);
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#endif
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2
    gHeap.PushRoot(obj);
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2
  }
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2
  ~StackRoot() {
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2
    gHeap.PopRoot();
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2
  }
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};
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// sugar for tests
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class StackRoots {
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 public:
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  // Note: void** seems logical, because these are pointers to pointers, but
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  // the C++ compiler doesn't like it.
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0
  StackRoots(std::initializer_list<void*> roots) {
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0
    n_ = roots.size();
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0
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0
#if VALIDATE_ROOTS
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0
    int i = 0;
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0
#endif
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0
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0
    for (auto root : roots) {  // can't use roots[i]
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0
      RawObject** obj = reinterpret_cast<RawObject**>(root);
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0
#if VALIDATE_ROOTS
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0
      ValidateRoot(*obj);
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0
      i++;
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0
#endif
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0
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0
      gHeap.PushRoot(obj);
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0
    }
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0
  }
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0
  ~StackRoots() {
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0
    for (int i = 0; i < n_; ++i) {
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0
      gHeap.PopRoot();
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0
    }
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0
  }
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 private:
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  int n_;
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};
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// Note:
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// - This function causes code bloat due to template expansion on hundreds of
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//   types.  Could switch to a GC_NEW() macro
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// - GCC generates slightly larger code if you factor out void* place and new
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//   (place) T()
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//
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// Variadic templates:
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// https://eli.thegreenplace.net/2014/variadic-templates-in-c/
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template <typename T, typename... Args>
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196
T* Alloc(Args&&... args) {
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  // Alloc() allocates space for both a header and object and guarantees that
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  // they're adjacent in memory (so that they're at known offsets from one
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  // another). However, this means that the address that the object is
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  // constructed at is offset from the address returned by the memory allocator
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  // (by the size of the header), and therefore may not be sufficiently aligned.
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  // Here we assert that the object will be sufficiently aligned by making the
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  // equivalent assertion that zero padding would be required to align it.
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  // Note: the required padding is given by the following (according to
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  // https://en.wikipedia.org/wiki/Data_structure_alignment):
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  // `padding = -offset & (align - 1)`.
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  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
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                "Expected no padding");
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  DCHECK(gHeap.is_initialized_);
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0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
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#if MARK_SWEEP
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  int obj_id;
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  int pool_id;
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  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
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#else
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  void* place = gHeap.Allocate(num_bytes);
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#endif
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  ObjHeader* header = new (place) ObjHeader(T::obj_header());
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#if MARK_SWEEP
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  header->obj_id = obj_id;
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  #ifndef NO_POOL_ALLOC
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  header->pool_id = pool_id;
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  #endif
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#endif
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  void* obj = header->ObjectAddress();
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  // Now that mycpp generates code to initialize every field, we should
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  // get rid of this.
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  // TODO: fix uftrace failure, maybe by upgrading, or working around
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  memset(obj, 0, sizeof(T));
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  return new (obj) T(std::forward<Args>(args)...);
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}
_Z5AllocIN4pyos9ReadErrorEJiEEPT_DpOT0_
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Count
Source
108
1
T* Alloc(Args&&... args) {
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  // Alloc() allocates space for both a header and object and guarantees that
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  // they're adjacent in memory (so that they're at known offsets from one
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  // another). However, this means that the address that the object is
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  // constructed at is offset from the address returned by the memory allocator
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  // (by the size of the header), and therefore may not be sufficiently aligned.
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  // Here we assert that the object will be sufficiently aligned by making the
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  // equivalent assertion that zero padding would be required to align it.
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  // Note: the required padding is given by the following (according to
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  // https://en.wikipedia.org/wiki/Data_structure_alignment):
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  // `padding = -offset & (align - 1)`.
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1
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
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1
                "Expected no padding");
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1
  DCHECK(gHeap.is_initialized_);
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0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
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1
#if MARK_SWEEP
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1
  int obj_id;
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1
  int pool_id;
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1
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
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#else
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  void* place = gHeap.Allocate(num_bytes);
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#endif
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1
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
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1
#if MARK_SWEEP
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1
  header->obj_id = obj_id;
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1
  #ifndef NO_POOL_ALLOC
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1
  header->pool_id = pool_id;
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1
  #endif
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1
#endif
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1
  void* obj = header->ObjectAddress();
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  // Now that mycpp generates code to initialize every field, we should
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  // get rid of this.
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  // TODO: fix uftrace failure, maybe by upgrading, or working around
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1
  memset(obj, 0, sizeof(T));
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1
  return new (obj) T(std::forward<Args>(args)...);
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1
}
_Z5AllocI4ListIP6BigStrEJEEPT_DpOT0_
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Count
Source
108
17
T* Alloc(Args&&... args) {
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  // Alloc() allocates space for both a header and object and guarantees that
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  // they're adjacent in memory (so that they're at known offsets from one
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  // another). However, this means that the address that the object is
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  // constructed at is offset from the address returned by the memory allocator
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  // (by the size of the header), and therefore may not be sufficiently aligned.
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  // Here we assert that the object will be sufficiently aligned by making the
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  // equivalent assertion that zero padding would be required to align it.
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  // Note: the required padding is given by the following (according to
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  // https://en.wikipedia.org/wiki/Data_structure_alignment):
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  // `padding = -offset & (align - 1)`.
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  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
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                "Expected no padding");
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  DCHECK(gHeap.is_initialized_);
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0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
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17
#if MARK_SWEEP
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  int obj_id;
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  int pool_id;
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  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
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#else
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  void* place = gHeap.Allocate(num_bytes);
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#endif
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  ObjHeader* header = new (place) ObjHeader(T::obj_header());
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17
#if MARK_SWEEP
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  header->obj_id = obj_id;
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  #ifndef NO_POOL_ALLOC
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  header->pool_id = pool_id;
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17
  #endif
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17
#endif
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  void* obj = header->ObjectAddress();
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  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
17
  memset(obj, 0, sizeof(T));
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17
  return new (obj) T(std::forward<Args>(args)...);
145
17
}
_Z5AllocI7OSErrorJRiEEPT_DpOT0_
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Count
Source
108
4
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
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  // https://en.wikipedia.org/wiki/Data_structure_alignment):
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  // `padding = -offset & (align - 1)`.
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4
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
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4
                "Expected no padding");
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4
  DCHECK(gHeap.is_initialized_);
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0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
4
#if MARK_SWEEP
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4
  int obj_id;
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4
  int pool_id;
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4
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
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#else
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  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
4
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
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4
#if MARK_SWEEP
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4
  header->obj_id = obj_id;
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4
  #ifndef NO_POOL_ALLOC
136
4
  header->pool_id = pool_id;
137
4
  #endif
138
4
#endif
139
4
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
4
  memset(obj, 0, sizeof(T));
144
4
  return new (obj) T(std::forward<Args>(args)...);
145
4
}
_Z5AllocI4ListIiEJEEPT_DpOT0_
Line
Count
Source
108
8
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
8
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
8
                "Expected no padding");
121
122
8
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
8
#if MARK_SWEEP
126
8
  int obj_id;
127
8
  int pool_id;
128
8
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
8
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
8
#if MARK_SWEEP
134
8
  header->obj_id = obj_id;
135
8
  #ifndef NO_POOL_ALLOC
136
8
  header->pool_id = pool_id;
137
8
  #endif
138
8
#endif
139
8
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
8
  memset(obj, 0, sizeof(T));
144
8
  return new (obj) T(std::forward<Args>(args)...);
145
8
}
Unexecuted instantiation: _Z5AllocIN5mylib5CFileEJRP8_IO_FILEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10hnode_asdl18hnode__AlreadySeenEJiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10hnode_asdl11hnode__LeafEJRP6BigStrNS0_7color_eEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN10hnode_asdl7hnode_tEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10hnode_asdl12hnode__ArrayEJP4ListIPNS0_7hnode_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN10hnode_asdl5FieldEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10hnode_asdl13hnode__RecordEJRP6BigStrS4_S4_P4ListIPNS0_5FieldEEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10hnode_asdl5FieldEJRP6BigStrDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10hnode_asdl11hnode__LeafEJP6BigStrNS0_7color_eEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl18parse_result__NodeEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl14source__UnusedEJRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl13source__StdinEJRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl16source__MainFileEJRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17source__OtherFileEJRP6BigStrDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl15source__DynamicEJRP6BigStrDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl14source__VarRefEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl16source__VariableEJRP6BigStrDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl13source__AliasEJRP6BigStrDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl16source__ReparsedEJRP6BigStrDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17source__SyntheticEJRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl13loc__WordPartEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl9loc__WordEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl10loc__ArithEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl12loc__CommandEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17loc__TokenTooLongEJDniiiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl21debug_frame__MainFileEJRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl19debug_frame__SourceEJDnRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl21debug_frame__ProcLikeEJDnDnRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl26debug_frame__BeforeErrTrapEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl22bracket_op__WholeArrayEJiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl22bracket_op__ArrayIndexEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl16suffix_op__UnaryEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17suffix_op__StaticEJDnRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17suffix_op__PatSubEJDnDniDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl16suffix_op__SliceEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl26InitializerWord__ArrayWordEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl17InitializerWord_tEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl29word_part__InitializerLiteralEJDnP4ListIPNS0_17InitializerWord_tEEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl25word_part__EscapedLiteralEJDnRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl20word_part__ZshVarSubEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl19word_part__TildeSubEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl19word_part__ArithSubEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl12CompoundWordEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl22word_part__BracedTupleEJP4ListIPNS0_12CompoundWordEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl22word_part__BracedRangeEJDniRP6BigStrS4_iEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl27word_part__BracedRangeDigitEJRP6BigStrDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl18word_part__ExtGlobEJDnP4ListIPNS0_12CompoundWordEEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl25word_part__BashRegexGroupEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17word_part__SpliceEJDnRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl18word_part__ExprSubEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl11word_part_tEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl16word__BracedTreeEJP4ListIPNS0_11word_part_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl12word__StringEJiRP6BigStrDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl12sh_lhs__NameEJDnRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl19sh_lhs__IndexedNameEJDnRP6BigStrDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl21sh_lhs__UnparsedIndexEJDnRP6BigStrS4_EEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl23arith_expr__UnaryAssignEJiDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl24arith_expr__BinaryAssignEJiDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17arith_expr__UnaryEJiDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl18arith_expr__BinaryEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl21arith_expr__TernaryOpEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl19bool_expr__WordTestEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17bool_expr__BinaryEJiDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl16bool_expr__UnaryEJiDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl21bool_expr__LogicalNotEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl21bool_expr__LogicalAndEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl20bool_expr__LogicalOrEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl13redir_loc__FdEJiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl18redir_loc__VarNameEJRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl21redir_param__HereWordEJDnbEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl20redir_param__HereDocEJDnDnP4ListIPNS0_11word_part_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl18condition__YshExprEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl14case_arg__WordEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17case_arg__YshExprEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl6word_tEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl10pat__WordsEJP4ListIPNS0_6word_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl6expr_tEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl13pat__YshExprsEJP4ListIPNS0_6expr_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl15for_iter__WordsEJP4ListIPNS0_6word_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17for_iter__YshExprEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl16proc_sig__ClosedEJDnDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl5RedirEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17command__RedirectEJDnP4ListIPNS0_5RedirEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl7EnvPairEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl15command__SimpleEJDnP4ListIPNS0_7EnvPairEEPS2_IPNS0_6word_tEEDnDnbEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl22command__ExpandedAliasEJDnP4ListIPNS0_7EnvPairEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17command__SentenceEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl10AssignPairEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl21command__ShAssignmentEJDnP4ListIPNS0_10AssignPairEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl20command__ControlFlowEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl9command_tEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl5TokenEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17command__PipelineEJDnP4ListIPNS0_9command_tEEPS2_IPNS0_5TokenEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl14command__AndOrEJP4ListIPNS0_9command_tEEPS2_IPNS0_5TokenEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl16command__DoGroupEJDnP4ListIPNS0_9command_tEEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17command__SubshellEJDnDnDnbEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl15command__DParenEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17command__DBracketEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl16command__ForEachEJDnP4ListIP6BigStrEDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl16command__ForExprEJDnDnDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl19command__WhileUntilEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl5IfArmEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl11command__IfEJDnP4ListIPNS0_5IfArmEEDnPS2_IPNS0_9command_tEEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl7CaseArmEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl13command__CaseEJDnDnDnP4ListIPNS0_7CaseArmEEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl19command__ShFunctionEJDnDnRP6BigStrDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl18command__TimeBlockEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl20command__CommandListEJP4ListIPNS0_9command_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl17command__BareDeclEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl15command__RetvalEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl18glob_part__LiteralEJiRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl19glob_part__OperatorEJiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl20glob_part__CharClassEJbP4ListIP6BigStrEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl20printf_part__PercentEJP4ListIPNS0_5TokenEEDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl19place_op__SubscriptEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl19place_op__AttributeEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl9expr__VarEJDnRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl11expr__ConstEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl10place_op_tEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl11expr__PlaceEJDnRP6BigStrP4ListIPNS0_10place_op_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl13expr__LiteralEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl8NameTypeEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl12expr__LambdaEJP4ListIPNS0_8NameTypeEEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl11expr__UnaryEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl12expr__BinaryEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl13expr__CompareEJDnP4ListIPNS0_5TokenEEPS2_IPNS0_6expr_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl14expr__FuncCallEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl11expr__IfExpEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl11expr__TupleEJDnP4ListIPNS0_6expr_tEENS0_14expr_context_eEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl10expr__ListEJDnP4ListIPNS0_6expr_tEENS0_14expr_context_eEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl10expr__DictEJDnP4ListIPNS0_6expr_tEES6_EEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl13ComprehensionEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl14expr__ListCompEJDnDnP4ListIPNS0_13ComprehensionEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl14expr__DictCompEJDnDnDnP4ListIPNS0_13ComprehensionEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl18expr__GeneratorExpEJDnP4ListIPNS0_13ComprehensionEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl11expr__RangeEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl11expr__SliceEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl12expr__SpreadEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl26class_literal_term__SpliceEJDnRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl16re_repeat__RangeEJDnRP6BigStrS4_DnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl13re__PrimitiveEJDniEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl20class_literal_term_tEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl20re__CharClassLiteralEJbP4ListIPNS0_20class_literal_term_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl17char_class_term_tEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl13re__CharClassEJbP4ListIPNS0_17char_class_term_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl10re__SpliceEJDnRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl10re__RepeatEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl4re_tEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl7re__SeqEJP4ListIPNS0_4re_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl7re__AltEJP4ListIPNS0_4re_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl9re__GroupEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl11re__CaptureEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl16re__BacktrackingEJbDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl16re__LiteralCharsEJDnRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl12BoolParamBoxEJbEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl11IntParamBoxEJiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl10SourceLineEJiRP6BigStrDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl5TokenEJiiiDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl12CompoundWordEJP4ListIPNS0_11word_part_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl12BracedVarSubEJDnDnRP6BigStrDnDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl12DoubleQuotedEJDnP4ListIPNS0_11word_part_tEEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl12SingleQuotedEJDnRP6BigStrDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl12SimpleVarSubEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl10CommandSubEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl15YshArrayLiteralEJDnP4ListIPNS0_6word_tEEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl8NamedArgEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl7ArgListEJDnP4ListIPNS0_6expr_tEEDnPS2_IPNS0_8NamedArgEEDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl9AssocPairEJDnDnbEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl5RedirEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl10AssignPairEJDnDnNS0_11assign_op_eEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl7EnvPairEJDnRP6BigStrDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl7CaseArmEJDnDnDnP4ListIPNS0_9command_tEEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl9EggexFlagEJbDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl9EggexFlagEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl5EggexEJDnDnP4ListIPNS0_9EggexFlagEEDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl5IfArmEJDnDnDnP4ListIPNS0_9command_tEEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl10BraceGroupEJDnDnP4ListIPNS0_9command_tEEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl5ParamEJDnRP6BigStrDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl9RestParamEJDnRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl5ParamEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl10ParamGroupEJP4ListIPNS0_5ParamEEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl4ProcEJDnDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl4FuncEJDnDnDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl16ParsedAssignmentEJDnDniDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl7VarDeclEJDnP4ListIPNS0_8NameTypeEEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl7y_lhs_tEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl8MutationEJDnP4ListIPNS0_7y_lhs_tEEDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl11ExprCommandEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl8TypeExprEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl8TypeExprEJDnRP6BigStrP4ListIPS1_EEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl8NameTypeEJDnRP6BigStrDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl13ComprehensionEJP4ListIPNS0_8NameTypeEEDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl8NamedArgEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl9SubscriptEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl9AttributeEJDnDnDnRP6BigStrNS0_14expr_context_eEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl10PosixClassEJDnRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl9PerlClassEJDnRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl8CharCodeEJDnibEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl9CharRangeEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl15List_of_commandEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11syntax_asdl15List_of_commandEJRP4ListIPNS0_9command_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4DictIibEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10hnode_asdl18hnode__AlreadySeenEJRiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10hnode_asdl5FieldEJP6BigStrRPNS0_7hnode_tEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10hnode_asdl5FieldEJP6BigStrRPNS0_12hnode__ArrayEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10hnode_asdl13hnode__RecordEJRP6BigStrS3_S3_P4ListIPNS0_5FieldEERPS5_IPNS0_7hnode_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10hnode_asdl5FieldEJP6BigStrRPNS0_13hnode__RecordEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl15cmd_value__ArgvEJP4ListIP6BigStrEPS2_IPN11syntax_asdl12CompoundWordEEbDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN12runtime_asdl9AssignArgEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl17cmd_value__AssignEJiP4ListIP6BigStrEPS2_IPN11syntax_asdl12CompoundWordEEPS2_IPNS0_9AssignArgEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl17part_value__ArrayEJP4ListIP6BigStrEbEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN12runtime_asdl12part_value_tEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl19part_value__ExtGlobEJP4ListIPNS0_12part_value_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl12a_index__StrEJRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl12a_index__IntEJiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl18redirect_arg__PathEJRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl20redirect_arg__CopyFdEJiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl20redirect_arg__MoveFdEJiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl21redirect_arg__HereDocEJRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl17wait_status__ProcEJNS0_11job_state_eEiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl21wait_status__PipelineEJNS0_11job_state_eEP4ListIiEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl22wait_status__CancelledEJiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl15trace__ExternalEJP4ListIP6BigStrEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl9AssignArgEJRP6BigStrDnbDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl8ProcArgsEJDnDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl5PieceEJRP6BigStrbbEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl11VarSubStateEJbDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl4CellEJbbbDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl10VTestPlaceEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl10RedirValueEJiDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl11StatusArrayEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl13CommandStatusEJbbbDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN12runtime_asdl7HayNodeEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl10doc__BreakEJRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl9doc__TextEJRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11doc__IndentEJiDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl9doc__FlatEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11doc__IfFlatEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11MeasuredDocEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl7MeasureEJiiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11DocFragmentEJDnibDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl13List_MeasuredEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl13List_MeasuredEJRP4ListIPNS0_11MeasuredDocEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl19y_lvalue__ContainerEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl18sh_lvalue__IndexedEJRP6BigStriDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl16sh_lvalue__KeyedEJRP6BigStrS4_DnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN10value_asdl7value_tEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl14eggex_ops__YesEJP4ListIPNS0_7value_tEEPS2_IPN11syntax_asdl5TokenEEPS2_IP6BigStrEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl14cmd_frag__ExprEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl12value__SliceEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN10value_asdl16InitializerValueEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl22value__InitializerListEJP4ListIPNS0_16InitializerValueEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl26value__InternalStringArrayEJP4ListIP6BigStrEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl16value__BashArrayEJDniEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl16value__BashAssocEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl11value__BoolEJbEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl10value__IntEJiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl12value__FloatEJdEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl11value__ListEJP4ListIPNS0_7value_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl11value__DictEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl12value__RangeEJiiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl12value__EggexEJDnRP6BigStrP4ListIPNS0_7value_tEEPS5_IPN11syntax_asdl5TokenEEDnPS5_IS3_EEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl12value__PlaceEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl12value__FrameEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl17value__DebugFrameEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl16value__BoundFuncEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl18value__BuiltinFuncEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl11value__FuncEJRP6BigStrDnP4ListIPNS0_7value_tEEDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl18value__BuiltinProcEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl11value__ProcEJRP6BigStrDnDnDnDnbDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl11value__ExprEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl18value__CommandFragEJDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl14value__CommandEJDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl6IntBoxEJiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl16InitializerValueEJDnRP6BigStrbEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl12ProcDefaultsEJDnDnDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl8LeftNameEJRP6BigStrDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl10RegexMatchEJRP6BigStrP4ListIiEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl10SourceLineEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl12LiteralBlockEJDnP4ListIPN11syntax_asdl10SourceLineEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl3ObjEJDnDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI17KeyboardInterruptJEEPT_DpOT0_
_Z5AllocI4DictIP6BigStrS2_EJEEPT_DpOT0_
Line
Count
Source
108
1
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
1
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
1
                "Expected no padding");
121
122
1
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
1
#if MARK_SWEEP
126
1
  int obj_id;
127
1
  int pool_id;
128
1
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
1
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
1
#if MARK_SWEEP
134
1
  header->obj_id = obj_id;
135
1
  #ifndef NO_POOL_ALLOC
136
1
  header->pool_id = pool_id;
137
1
  #endif
138
1
#endif
139
1
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
1
  memset(obj, 0, sizeof(T));
144
1
  return new (obj) T(std::forward<Args>(args)...);
145
1
}
_Z5AllocI4ListIPN4pyos11PasswdEntryEEJEEPT_DpOT0_
Line
Count
Source
108
1
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
1
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
1
                "Expected no padding");
121
122
1
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
1
#if MARK_SWEEP
126
1
  int obj_id;
127
1
  int pool_id;
128
1
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
1
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
1
#if MARK_SWEEP
134
1
  header->obj_id = obj_id;
135
1
  #ifndef NO_POOL_ALLOC
136
1
  header->pool_id = pool_id;
137
1
  #endif
138
1
#endif
139
1
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
1
  memset(obj, 0, sizeof(T));
144
1
  return new (obj) T(std::forward<Args>(args)...);
145
1
}
_Z5AllocIN4pyos11PasswdEntryEJRP6passwdEEPT_DpOT0_
Line
Count
Source
108
20
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
20
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
20
                "Expected no padding");
121
122
20
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
20
#if MARK_SWEEP
126
20
  int obj_id;
127
20
  int pool_id;
128
20
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
20
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
20
#if MARK_SWEEP
134
20
  header->obj_id = obj_id;
135
20
  #ifndef NO_POOL_ALLOC
136
20
  header->pool_id = pool_id;
137
20
  #endif
138
20
#endif
139
20
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
20
  memset(obj, 0, sizeof(T));
144
20
  return new (obj) T(std::forward<Args>(args)...);
145
20
}
_Z5AllocI7IOErrorJRiEEPT_DpOT0_
Line
Count
Source
108
1
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
1
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
1
                "Expected no padding");
121
122
1
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
1
#if MARK_SWEEP
126
1
  int obj_id;
127
1
  int pool_id;
128
1
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
1
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
1
#if MARK_SWEEP
134
1
  header->obj_id = obj_id;
135
1
  #ifndef NO_POOL_ALLOC
136
1
  header->pool_id = pool_id;
137
1
  #endif
138
1
#endif
139
1
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
1
  memset(obj, 0, sizeof(T));
144
1
  return new (obj) T(std::forward<Args>(args)...);
145
1
}
Unexecuted instantiation: _Z5AllocI10IndexErrorJEEPT_DpOT0_
_Z5AllocI6Tuple2IP6BigStriEJRS2_RlEEPT_DpOT0_
Line
Count
Source
108
1
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
1
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
1
                "Expected no padding");
121
122
1
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
1
#if MARK_SWEEP
126
1
  int obj_id;
127
1
  int pool_id;
128
1
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
1
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
1
#if MARK_SWEEP
134
1
  header->obj_id = obj_id;
135
1
  #ifndef NO_POOL_ALLOC
136
1
  header->pool_id = pool_id;
137
1
  #endif
138
1
#endif
139
1
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
1
  memset(obj, 0, sizeof(T));
144
1
  return new (obj) T(std::forward<Args>(args)...);
145
1
}
_Z5AllocI7IOErrorJiEEPT_DpOT0_
Line
Count
Source
108
1
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
1
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
1
                "Expected no padding");
121
122
1
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
1
#if MARK_SWEEP
126
1
  int obj_id;
127
1
  int pool_id;
128
1
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
1
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
1
#if MARK_SWEEP
134
1
  header->obj_id = obj_id;
135
1
  #ifndef NO_POOL_ALLOC
136
1
  header->pool_id = pool_id;
137
1
  #endif
138
1
#endif
139
1
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
1
  memset(obj, 0, sizeof(T));
144
1
  return new (obj) T(std::forward<Args>(args)...);
145
1
}
_Z5AllocIN6pyutil15_ResourceLoaderEJEEPT_DpOT0_
Line
Count
Source
108
1
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
1
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
1
                "Expected no padding");
121
122
1
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
1
#if MARK_SWEEP
126
1
  int obj_id;
127
1
  int pool_id;
128
1
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
1
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
1
#if MARK_SWEEP
134
1
  header->obj_id = obj_id;
135
1
  #ifndef NO_POOL_ALLOC
136
1
  header->pool_id = pool_id;
137
1
  #endif
138
1
#endif
139
1
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
1
  memset(obj, 0, sizeof(T));
144
1
  return new (obj) T(std::forward<Args>(args)...);
145
1
}
Unexecuted instantiation: _Z5AllocIN7grammar7GrammarEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI7OSErrorJiEEPT_DpOT0_
_Z5AllocI10ValueErrorJEEPT_DpOT0_
Line
Count
Source
108
1
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
1
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
1
                "Expected no padding");
121
122
1
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
1
#if MARK_SWEEP
126
1
  int obj_id;
127
1
  int pool_id;
128
1
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
1
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
1
#if MARK_SWEEP
134
1
  header->obj_id = obj_id;
135
1
  #ifndef NO_POOL_ALLOC
136
1
  header->pool_id = pool_id;
137
1
  #endif
138
1
#endif
139
1
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
1
  memset(obj, 0, sizeof(T));
144
1
  return new (obj) T(std::forward<Args>(args)...);
145
1
}
Unexecuted instantiation: _Z5AllocIN5iolib10SignalSafeEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4DictIP6BigStriEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4DictIiP6BigStrEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4DictIiP6Tuple2IP4ListIPS2_IPS1_IiiEEEPS0_IiiEEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4DictIiiEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPS0_IP6Tuple2IiiEEEJEEPT_DpOT0_
_Z5AllocI6Tuple2IiiEJiiEEPT_DpOT0_
Line
Count
Source
108
3
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
3
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
3
                "Expected no padding");
121
122
3
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
3
#if MARK_SWEEP
126
3
  int obj_id;
127
3
  int pool_id;
128
3
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
3
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
3
#if MARK_SWEEP
134
3
  header->obj_id = obj_id;
135
3
  #ifndef NO_POOL_ALLOC
136
3
  header->pool_id = pool_id;
137
3
  #endif
138
3
#endif
139
3
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
3
  memset(obj, 0, sizeof(T));
144
3
  return new (obj) T(std::forward<Args>(args)...);
145
3
}
Unexecuted instantiation: _Z5AllocI4ListIP6Tuple2IiiEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI6Tuple2IP4ListIPS1_IPS0_IiiEEEP4DictIiiEEJRS7_RSA_EEPT_DpOT0_
_Z5AllocIN5mylib9BufWriterEJEEPT_DpOT0_
Line
Count
Source
108
46
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
46
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
46
                "Expected no padding");
121
122
46
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
46
#if MARK_SWEEP
126
46
  int obj_id;
127
46
  int pool_id;
128
46
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
46
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
46
#if MARK_SWEEP
134
46
  header->obj_id = obj_id;
135
46
  #ifndef NO_POOL_ALLOC
136
46
  header->pool_id = pool_id;
137
46
  #endif
138
46
#endif
139
46
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
46
  memset(obj, 0, sizeof(T));
144
46
  return new (obj) T(std::forward<Args>(args)...);
145
46
}
_Z5AllocIN10value_asdl10value__StrEJRP6BigStrEEPT_DpOT0_
Line
Count
Source
108
2
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
2
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
2
                "Expected no padding");
121
122
2
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
2
#if MARK_SWEEP
126
2
  int obj_id;
127
2
  int pool_id;
128
2
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
2
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
2
#if MARK_SWEEP
134
2
  header->obj_id = obj_id;
135
2
  #ifndef NO_POOL_ALLOC
136
2
  header->pool_id = pool_id;
137
2
  #endif
138
2
#endif
139
2
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
2
  memset(obj, 0, sizeof(T));
144
2
  return new (obj) T(std::forward<Args>(args)...);
145
2
}
_Z5AllocIN9flag_spec16_FlagSpecAndMoreEJEEPT_DpOT0_
Line
Count
Source
108
2
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
2
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
2
                "Expected no padding");
121
122
2
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
2
#if MARK_SWEEP
126
2
  int obj_id;
127
2
  int pool_id;
128
2
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
2
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
2
#if MARK_SWEEP
134
2
  header->obj_id = obj_id;
135
2
  #ifndef NO_POOL_ALLOC
136
2
  header->pool_id = pool_id;
137
2
  #endif
138
2
#endif
139
2
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
2
  memset(obj, 0, sizeof(T));
144
2
  return new (obj) T(std::forward<Args>(args)...);
145
2
}
_Z5AllocIN9flag_spec9_FlagSpecEJEEPT_DpOT0_
Line
Count
Source
108
3
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
3
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
3
                "Expected no padding");
121
122
3
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
3
#if MARK_SWEEP
126
3
  int obj_id;
127
3
  int pool_id;
128
3
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
3
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
3
#if MARK_SWEEP
134
3
  header->obj_id = obj_id;
135
3
  #ifndef NO_POOL_ALLOC
136
3
  header->pool_id = pool_id;
137
3
  #endif
138
3
#endif
139
3
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
3
  memset(obj, 0, sizeof(T));
144
3
  return new (obj) T(std::forward<Args>(args)...);
145
3
}
Unexecuted instantiation: _Z5AllocIN10hnode_asdl13hnode__RecordEJRP6BigStrS4_S4_P4ListIPNS0_5FieldEEDnEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11syntax_asdl12CompoundWordEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl11value__BoolEJbEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl10doc__BreakEJRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl9doc__TextEJRP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl7MeasureEJiiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl13List_MeasuredEJEEPT_DpOT0_
_Z5AllocIN10value_asdl11value__BoolEJRbEEPT_DpOT0_
Line
Count
Source
108
23
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
23
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
23
                "Expected no padding");
121
122
23
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
23
#if MARK_SWEEP
126
23
  int obj_id;
127
23
  int pool_id;
128
23
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
23
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
23
#if MARK_SWEEP
134
23
  header->obj_id = obj_id;
135
23
  #ifndef NO_POOL_ALLOC
136
23
  header->pool_id = pool_id;
137
23
  #endif
138
23
#endif
139
23
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
23
  memset(obj, 0, sizeof(T));
144
23
  return new (obj) T(std::forward<Args>(args)...);
145
23
}
_Z5AllocIN10value_asdl10value__IntEJRiEEPT_DpOT0_
Line
Count
Source
108
1
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
1
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
1
                "Expected no padding");
121
122
1
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
1
#if MARK_SWEEP
126
1
  int obj_id;
127
1
  int pool_id;
128
1
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
1
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
1
#if MARK_SWEEP
134
1
  header->obj_id = obj_id;
135
1
  #ifndef NO_POOL_ALLOC
136
1
  header->pool_id = pool_id;
137
1
  #endif
138
1
#endif
139
1
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
1
  memset(obj, 0, sizeof(T));
144
1
  return new (obj) T(std::forward<Args>(args)...);
145
1
}
Unexecuted instantiation: _Z5AllocIN10value_asdl12value__FloatEJRfEEPT_DpOT0_
_Z5AllocIN10value_asdl10value__StrEJP6BigStrEEPT_DpOT0_
Line
Count
Source
108
3
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
3
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
3
                "Expected no padding");
121
122
3
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
3
#if MARK_SWEEP
126
3
  int obj_id;
127
3
  int pool_id;
128
3
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
3
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
3
#if MARK_SWEEP
134
3
  header->obj_id = obj_id;
135
3
  #ifndef NO_POOL_ALLOC
136
3
  header->pool_id = pool_id;
137
3
  #endif
138
3
#endif
139
3
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
3
  memset(obj, 0, sizeof(T));
144
3
  return new (obj) T(std::forward<Args>(args)...);
145
3
}
_Z5AllocIN4args11SetToStringEJP6BigStrbRP4ListIS3_EEEPT_DpOT0_
Line
Count
Source
108
7
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
7
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
7
                "Expected no padding");
121
122
7
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
7
#if MARK_SWEEP
126
7
  int obj_id;
127
7
  int pool_id;
128
7
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
7
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
7
#if MARK_SWEEP
134
7
  header->obj_id = obj_id;
135
7
  #ifndef NO_POOL_ALLOC
136
7
  header->pool_id = pool_id;
137
7
  #endif
138
7
#endif
139
7
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
7
  memset(obj, 0, sizeof(T));
144
7
  return new (obj) T(std::forward<Args>(args)...);
145
7
}
_Z5AllocIN4args11SetToStringEJP6BigStrbDnEEPT_DpOT0_
Line
Count
Source
108
1
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
1
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
1
                "Expected no padding");
121
122
1
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
1
#if MARK_SWEEP
126
1
  int obj_id;
127
1
  int pool_id;
128
1
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
1
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
1
#if MARK_SWEEP
134
1
  header->obj_id = obj_id;
135
1
  #ifndef NO_POOL_ALLOC
136
1
  header->pool_id = pool_id;
137
1
  #endif
138
1
#endif
139
1
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
1
  memset(obj, 0, sizeof(T));
144
1
  return new (obj) T(std::forward<Args>(args)...);
145
1
}
_Z5AllocIN4args8SetToIntEJP6BigStrEEPT_DpOT0_
Line
Count
Source
108
1
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
1
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
1
                "Expected no padding");
121
122
1
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
1
#if MARK_SWEEP
126
1
  int obj_id;
127
1
  int pool_id;
128
1
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
1
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
1
#if MARK_SWEEP
134
1
  header->obj_id = obj_id;
135
1
  #ifndef NO_POOL_ALLOC
136
1
  header->pool_id = pool_id;
137
1
  #endif
138
1
#endif
139
1
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
1
  memset(obj, 0, sizeof(T));
144
1
  return new (obj) T(std::forward<Args>(args)...);
145
1
}
Unexecuted instantiation: _Z5AllocIN4args10SetToFloatEJP6BigStrEEPT_DpOT0_
_Z5AllocIN4args9SetToTrueEJP6BigStrEEPT_DpOT0_
Line
Count
Source
108
11
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
11
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
11
                "Expected no padding");
121
122
11
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
11
#if MARK_SWEEP
126
11
  int obj_id;
127
11
  int pool_id;
128
11
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
11
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
11
#if MARK_SWEEP
134
11
  header->obj_id = obj_id;
135
11
  #ifndef NO_POOL_ALLOC
136
11
  header->pool_id = pool_id;
137
11
  #endif
138
11
#endif
139
11
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
11
  memset(obj, 0, sizeof(T));
144
11
  return new (obj) T(std::forward<Args>(args)...);
145
11
}
Unexecuted instantiation: _Z5AllocIN4args15SetAttachedBoolEJP6BigStrEEPT_DpOT0_
_Z5AllocIN4args9SetOptionEJP6BigStrEEPT_DpOT0_
Line
Count
Source
108
9
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
9
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
9
                "Expected no padding");
121
122
9
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
9
#if MARK_SWEEP
126
9
  int obj_id;
127
9
  int pool_id;
128
9
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
9
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
9
#if MARK_SWEEP
134
9
  header->obj_id = obj_id;
135
9
  #ifndef NO_POOL_ALLOC
136
9
  header->pool_id = pool_id;
137
9
  #endif
138
9
#endif
139
9
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
9
  memset(obj, 0, sizeof(T));
144
9
  return new (obj) T(std::forward<Args>(args)...);
145
9
}
_Z5AllocIN4args14SetNamedOptionEJbEEPT_DpOT0_
Line
Count
Source
108
2
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
2
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
2
                "Expected no padding");
121
122
2
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
2
#if MARK_SWEEP
126
2
  int obj_id;
127
2
  int pool_id;
128
2
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
2
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
2
#if MARK_SWEEP
134
2
  header->obj_id = obj_id;
135
2
  #ifndef NO_POOL_ALLOC
136
2
  header->pool_id = pool_id;
137
2
  #endif
138
2
#endif
139
2
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
2
  memset(obj, 0, sizeof(T));
144
2
  return new (obj) T(std::forward<Args>(args)...);
145
2
}
Unexecuted instantiation: _Z5AllocIN4args9SetActionEJP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN4args14SetNamedActionEJEEPT_DpOT0_
_Z5AllocIN4args14AppendEvalFlagEJP6BigStrEEPT_DpOT0_
Line
Count
Source
108
2
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
2
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
2
                "Expected no padding");
121
122
2
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
2
#if MARK_SWEEP
126
2
  int obj_id;
127
2
  int pool_id;
128
2
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
2
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
2
#if MARK_SWEEP
134
2
  header->obj_id = obj_id;
135
2
  #ifndef NO_POOL_ALLOC
136
2
  header->pool_id = pool_id;
137
2
  #endif
138
2
#endif
139
2
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
2
  memset(obj, 0, sizeof(T));
144
2
  return new (obj) T(std::forward<Args>(args)...);
145
2
}
_Z5AllocI4DictIP6BigStrPN4args7_ActionEEJEEPT_DpOT0_
Line
Count
Source
108
6
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
6
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
6
                "Expected no padding");
121
122
6
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
6
#if MARK_SWEEP
126
6
  int obj_id;
127
6
  int pool_id;
128
6
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
6
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
6
#if MARK_SWEEP
134
6
  header->obj_id = obj_id;
135
6
  #ifndef NO_POOL_ALLOC
136
6
  header->pool_id = pool_id;
137
6
  #endif
138
6
#endif
139
6
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
6
  memset(obj, 0, sizeof(T));
144
6
  return new (obj) T(std::forward<Args>(args)...);
145
6
}
_Z5AllocI4DictIP6BigStrPN10value_asdl7value_tEEJEEPT_DpOT0_
Line
Count
Source
108
3
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
3
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
3
                "Expected no padding");
121
122
3
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
3
#if MARK_SWEEP
126
3
  int obj_id;
127
3
  int pool_id;
128
3
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
3
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
3
#if MARK_SWEEP
134
3
  header->obj_id = obj_id;
135
3
  #ifndef NO_POOL_ALLOC
136
3
  header->pool_id = pool_id;
137
3
  #endif
138
3
#endif
139
3
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
3
  memset(obj, 0, sizeof(T));
144
3
  return new (obj) T(std::forward<Args>(args)...);
145
3
}
Unexecuted instantiation: _Z5AllocI8KeyErrorJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10hnode_asdl11hnode__LeafEJRP6BigStrRNS0_7color_eEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN8pp_hnode12HNodeEncoderEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN6pretty13PrettyPrinterEJRiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl7MeasureEJRiiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl7MeasureEJiRiEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11MeasuredDocEJPNS0_9doc__TextEPNS0_7MeasureEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11MeasuredDocEJPNS0_10doc__BreakEPNS0_7MeasureEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11doc__IndentEJRiRPNS0_11MeasuredDocEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11MeasuredDocEJPNS0_11doc__IndentERPNS0_7MeasureEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11MeasuredDocEJRPNS0_13List_MeasuredERPNS0_7MeasureEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11MeasuredDocEJRPS1_RPNS0_7MeasureEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11doc__IfFlatEJRPNS0_11MeasuredDocES4_EEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl7MeasureEJRiS2_EEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11MeasuredDocEJPNS0_11doc__IfFlatEPNS0_7MeasureEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl9doc__FlatEJRPNS0_11MeasuredDocEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11MeasuredDocEJPNS0_9doc__FlatEPNS0_7MeasureEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11DocFragmentEJPNS0_11MeasuredDocEibPNS0_7MeasureEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11pretty_asdl11DocFragmentEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11DocFragmentEJRPNS0_11MeasuredDocEiRbRPNS0_7MeasureEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11DocFragmentEJRPNS0_11MeasuredDocERiRbRPNS0_7MeasureEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11DocFragmentEJRPNS0_11MeasuredDocERibRPNS0_7MeasureEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN11pretty_asdl11MeasuredDocEJPNS0_9doc__TextERPNS0_7MeasureEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIPN11pretty_asdl11MeasuredDocEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl11value__DictEJRP4DictIP6BigStrPNS0_7value_tEEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN5error5UsageEJRP6BigStrRPN11syntax_asdl5loc_tEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN5error6StrictEJRP6BigStrRPN11syntax_asdl5loc_tEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN5error5ParseEJRP6BigStrRPN11syntax_asdl5loc_tEEEPT_DpOT0_
_Z5AllocIN5error12FatalRuntimeEJiRP6BigStrRPN11syntax_asdl5loc_tEEEPT_DpOT0_
Line
Count
Source
108
1
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
1
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
1
                "Expected no padding");
121
122
1
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
1
#if MARK_SWEEP
126
1
  int obj_id;
127
1
  int pool_id;
128
1
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
1
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
1
#if MARK_SWEEP
134
1
  header->obj_id = obj_id;
135
1
  #ifndef NO_POOL_ALLOC
136
1
  header->pool_id = pool_id;
137
1
  #endif
138
1
#endif
139
1
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
1
  memset(obj, 0, sizeof(T));
144
1
  return new (obj) T(std::forward<Args>(args)...);
145
1
}
Unexecuted instantiation: _Z5AllocIN5error12FatalRuntimeEJRiRP6BigStrRPN11syntax_asdl5loc_tEEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl10value__IntEJlEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI4ListIP6Tuple2IP6BigStrbEEJEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI6Tuple2IP6BigStrbEJRS2_RbEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl10value__IntEJRlEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN10value_asdl12value__FloatEJRdEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocIN4args11_AttributesEJRP4DictIP6BigStrPN10value_asdl7value_tEEEEPT_DpOT0_
_Z5AllocI4ListIP6Tuple2IiP6BigStrEEJEEPT_DpOT0_
Line
Count
Source
108
3
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
3
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
3
                "Expected no padding");
121
122
3
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
3
#if MARK_SWEEP
126
3
  int obj_id;
127
3
  int pool_id;
128
3
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
3
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
3
#if MARK_SWEEP
134
3
  header->obj_id = obj_id;
135
3
  #ifndef NO_POOL_ALLOC
136
3
  header->pool_id = pool_id;
137
3
  #endif
138
3
#endif
139
3
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
3
  memset(obj, 0, sizeof(T));
144
3
  return new (obj) T(std::forward<Args>(args)...);
145
3
}
_Z5AllocI6Tuple2IiP6BigStrEJiS2_EEPT_DpOT0_
Line
Count
Source
108
5
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
5
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
5
                "Expected no padding");
121
122
5
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
5
#if MARK_SWEEP
126
5
  int obj_id;
127
5
  int pool_id;
128
5
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
5
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
5
#if MARK_SWEEP
134
5
  header->obj_id = obj_id;
135
5
  #ifndef NO_POOL_ALLOC
136
5
  header->pool_id = pool_id;
137
5
  #endif
138
5
#endif
139
5
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
5
  memset(obj, 0, sizeof(T));
144
5
  return new (obj) T(std::forward<Args>(args)...);
145
5
}
_Z5AllocIN5match11SimpleLexerEJPFvPKhiiPiS4_ERP6BigStrEEPT_DpOT0_
Line
Count
Source
108
4
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
4
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
4
                "Expected no padding");
121
122
4
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
4
#if MARK_SWEEP
126
4
  int obj_id;
127
4
  int pool_id;
128
4
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
4
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
4
#if MARK_SWEEP
134
4
  header->obj_id = obj_id;
135
4
  #ifndef NO_POOL_ALLOC
136
4
  header->pool_id = pool_id;
137
4
  #endif
138
4
#endif
139
4
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
4
  memset(obj, 0, sizeof(T));
144
4
  return new (obj) T(std::forward<Args>(args)...);
145
4
}
Unexecuted instantiation: _Z5AllocI12RuntimeErrorJP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI10ValueErrorJP6BigStrEEPT_DpOT0_
Unexecuted instantiation: _Z5AllocI12UnicodeErrorJP6BigStrEEPT_DpOT0_
_Z5AllocIN11syntax_asdl9loc__WordEJRPNS0_6word_tEEEPT_DpOT0_
Line
Count
Source
108
1
T* Alloc(Args&&... args) {
109
  // Alloc() allocates space for both a header and object and guarantees that
110
  // they're adjacent in memory (so that they're at known offsets from one
111
  // another). However, this means that the address that the object is
112
  // constructed at is offset from the address returned by the memory allocator
113
  // (by the size of the header), and therefore may not be sufficiently aligned.
114
  // Here we assert that the object will be sufficiently aligned by making the
115
  // equivalent assertion that zero padding would be required to align it.
116
  // Note: the required padding is given by the following (according to
117
  // https://en.wikipedia.org/wiki/Data_structure_alignment):
118
  // `padding = -offset & (align - 1)`.
119
1
  static_assert((-sizeof(ObjHeader) & (alignof(T) - 1)) == 0,
120
1
                "Expected no padding");
121
122
1
  DCHECK(gHeap.is_initialized_);
123
124
0
  constexpr size_t num_bytes = sizeof(ObjHeader) + sizeof(T);
125
1
#if MARK_SWEEP
126
1
  int obj_id;
127
1
  int pool_id;
128
1
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
129
#else
130
  void* place = gHeap.Allocate(num_bytes);
131
#endif
132
1
  ObjHeader* header = new (place) ObjHeader(T::obj_header());
133
1
#if MARK_SWEEP
134
1
  header->obj_id = obj_id;
135
1
  #ifndef NO_POOL_ALLOC
136
1
  header->pool_id = pool_id;
137
1
  #endif
138
1
#endif
139
1
  void* obj = header->ObjectAddress();
140
  // Now that mycpp generates code to initialize every field, we should
141
  // get rid of this.
142
  // TODO: fix uftrace failure, maybe by upgrading, or working around
143
1
  memset(obj, 0, sizeof(T));
144
1
  return new (obj) T(std::forward<Args>(args)...);
145
1
}
146
147
//
148
// String "Constructors".  We need these because of the "flexible array"
149
// pattern.  I don't think "new BigStr()" can do that, and placement new would
150
// require mycpp to generate 2 statements everywhere.
151
//
152
153
511
inline BigStr* NewStr(int len) {
154
511
  if (len == 0) {  // e.g. BufLineReader::readline() can use this optimization
155
4
    return kEmptyString;
156
4
  }
157
158
507
  int obj_len = kStrHeaderSize + len + 1;  // NUL terminator
159
507
  const size_t num_bytes = sizeof(ObjHeader) + obj_len;
160
507
#if MARK_SWEEP
161
507
  int obj_id;
162
507
  int pool_id;
163
507
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
164
#else
165
  void* place = gHeap.Allocate(num_bytes);
166
#endif
167
507
  ObjHeader* header = new (place) ObjHeader(BigStr::obj_header());
168
169
507
  auto s = new (header->ObjectAddress()) BigStr();
170
171
507
  s->data_[len] = '\0';  // NUL terminate
172
507
  s->len_ = len;
173
507
  s->hash_ = 0;
174
507
  s->is_hashed_ = 0;
175
176
507
#if MARK_SWEEP
177
507
  header->obj_id = obj_id;
178
507
  #ifndef NO_POOL_ALLOC
179
507
  header->pool_id = pool_id;
180
507
  #endif
181
507
#endif
182
507
  return s;
183
511
}
184
185
// Call OverAllocatedStr() when you don't know the length of the string up
186
// front, e.g. with snprintf().  CALLER IS RESPONSIBLE for calling
187
// s->MaybeShrink() afterward!
188
14
inline BigStr* OverAllocatedStr(int len) {
189
14
  int obj_len = kStrHeaderSize + len + 1;  // NUL terminator
190
14
  const size_t num_bytes = sizeof(ObjHeader) + obj_len;
191
14
#if MARK_SWEEP
192
14
  int obj_id;
193
14
  int pool_id;
194
14
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
195
#else
196
  void* place = gHeap.Allocate(num_bytes);
197
#endif
198
14
  ObjHeader* header = new (place) ObjHeader(BigStr::obj_header());
199
14
  auto s = new (header->ObjectAddress()) BigStr();
200
14
  s->hash_ = 0;
201
14
  s->is_hashed_ = 0;
202
203
14
#if MARK_SWEEP
204
14
  header->obj_id = obj_id;
205
14
  #ifndef NO_POOL_ALLOC
206
14
  header->pool_id = pool_id;
207
14
  #endif
208
14
#endif
209
14
  return s;
210
14
}
211
212
// Copy C string into the managed heap.
213
480
inline BigStr* StrFromC(const char* data, int len) {
214
  // Optimization that could be taken out once we have SmallStr
215
480
  if (len == 0) {
216
73
    return kEmptyString;
217
73
  }
218
407
  BigStr* s = NewStr(len);
219
407
  memcpy(s->data_, data, len);
220
407
  DCHECK(s->data_[len] == '\0');  // should be true because Heap was zeroed
221
222
0
  return s;
223
480
}
224
225
310
inline BigStr* StrFromC(const char* data) {
226
310
  return StrFromC(data, strlen(data));
227
310
}
228
229
// Create a slab with a number of entries of a certain type.
230
// Note: entries will be zero'd because we use calloc().  TODO: Consider
231
// zeroing them separately.
232
template <typename T>
233
94
inline Slab<T>* NewSlab(int len) {
234
94
  int obj_len = len * sizeof(T);
235
94
  const size_t num_bytes = sizeof(ObjHeader) + obj_len;
236
94
#if MARK_SWEEP
237
94
  int obj_id;
238
94
  int pool_id;
239
94
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
240
#else
241
  void* place = gHeap.Allocate(num_bytes);
242
#endif
243
94
  ObjHeader* header = new (place) ObjHeader(Slab<T>::obj_header(len));
244
94
  void* obj = header->ObjectAddress();
245
94
  if (std::is_pointer<T>()) {
246
66
    memset(obj, 0, obj_len);
247
66
  }
248
94
  auto slab = new (obj) Slab<T>(len);
249
94
#if MARK_SWEEP
250
94
  header->obj_id = obj_id;
251
94
  #ifndef NO_POOL_ALLOC
252
94
  header->pool_id = pool_id;
253
94
  #endif
254
94
#endif
255
94
  return slab;
256
94
}
_Z7NewSlabIiEP4SlabIT_Ei
Line
Count
Source
233
28
inline Slab<T>* NewSlab(int len) {
234
28
  int obj_len = len * sizeof(T);
235
28
  const size_t num_bytes = sizeof(ObjHeader) + obj_len;
236
28
#if MARK_SWEEP
237
28
  int obj_id;
238
28
  int pool_id;
239
28
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
240
#else
241
  void* place = gHeap.Allocate(num_bytes);
242
#endif
243
28
  ObjHeader* header = new (place) ObjHeader(Slab<T>::obj_header(len));
244
28
  void* obj = header->ObjectAddress();
245
28
  if (std::is_pointer<T>()) {
246
0
    memset(obj, 0, obj_len);
247
0
  }
248
28
  auto slab = new (obj) Slab<T>(len);
249
28
#if MARK_SWEEP
250
28
  header->obj_id = obj_id;
251
28
  #ifndef NO_POOL_ALLOC
252
28
  header->pool_id = pool_id;
253
28
  #endif
254
28
#endif
255
28
  return slab;
256
28
}
Unexecuted instantiation: _Z7NewSlabIbEP4SlabIT_Ei
Unexecuted instantiation: _Z7NewSlabIPN10hnode_asdl5FieldEEP4SlabIT_Ei
Unexecuted instantiation: _Z7NewSlabIPN10hnode_asdl7hnode_tEEP4SlabIT_Ei
_Z7NewSlabIP6BigStrEP4SlabIT_Ei
Line
Count
Source
233
46
inline Slab<T>* NewSlab(int len) {
234
46
  int obj_len = len * sizeof(T);
235
46
  const size_t num_bytes = sizeof(ObjHeader) + obj_len;
236
46
#if MARK_SWEEP
237
46
  int obj_id;
238
46
  int pool_id;
239
46
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
240
#else
241
  void* place = gHeap.Allocate(num_bytes);
242
#endif
243
46
  ObjHeader* header = new (place) ObjHeader(Slab<T>::obj_header(len));
244
46
  void* obj = header->ObjectAddress();
245
46
  if (std::is_pointer<T>()) {
246
46
    memset(obj, 0, obj_len);
247
46
  }
248
46
  auto slab = new (obj) Slab<T>(len);
249
46
#if MARK_SWEEP
250
46
  header->obj_id = obj_id;
251
46
  #ifndef NO_POOL_ALLOC
252
46
  header->pool_id = pool_id;
253
46
  #endif
254
46
#endif
255
46
  return slab;
256
46
}
_Z7NewSlabIPN4pyos11PasswdEntryEEP4SlabIT_Ei
Line
Count
Source
233
4
inline Slab<T>* NewSlab(int len) {
234
4
  int obj_len = len * sizeof(T);
235
4
  const size_t num_bytes = sizeof(ObjHeader) + obj_len;
236
4
#if MARK_SWEEP
237
4
  int obj_id;
238
4
  int pool_id;
239
4
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
240
#else
241
  void* place = gHeap.Allocate(num_bytes);
242
#endif
243
4
  ObjHeader* header = new (place) ObjHeader(Slab<T>::obj_header(len));
244
4
  void* obj = header->ObjectAddress();
245
4
  if (std::is_pointer<T>()) {
246
4
    memset(obj, 0, obj_len);
247
4
  }
248
4
  auto slab = new (obj) Slab<T>(len);
249
4
#if MARK_SWEEP
250
4
  header->obj_id = obj_id;
251
4
  #ifndef NO_POOL_ALLOC
252
4
  header->pool_id = pool_id;
253
4
  #endif
254
4
#endif
255
4
  return slab;
256
4
}
Unexecuted instantiation: _Z7NewSlabIP4ListIP6Tuple2IiiEEEP4SlabIT_Ei
Unexecuted instantiation: _Z7NewSlabIP6Tuple2IiiEEP4SlabIT_Ei
Unexecuted instantiation: _Z7NewSlabIP6Tuple2IP4ListIPS1_IPS0_IiiEEEP4DictIiiEEEP4SlabIT_Ei
_Z7NewSlabIPN10value_asdl7value_tEEP4SlabIT_Ei
Line
Count
Source
233
8
inline Slab<T>* NewSlab(int len) {
234
8
  int obj_len = len * sizeof(T);
235
8
  const size_t num_bytes = sizeof(ObjHeader) + obj_len;
236
8
#if MARK_SWEEP
237
8
  int obj_id;
238
8
  int pool_id;
239
8
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
240
#else
241
  void* place = gHeap.Allocate(num_bytes);
242
#endif
243
8
  ObjHeader* header = new (place) ObjHeader(Slab<T>::obj_header(len));
244
8
  void* obj = header->ObjectAddress();
245
8
  if (std::is_pointer<T>()) {
246
8
    memset(obj, 0, obj_len);
247
8
  }
248
8
  auto slab = new (obj) Slab<T>(len);
249
8
#if MARK_SWEEP
250
8
  header->obj_id = obj_id;
251
8
  #ifndef NO_POOL_ALLOC
252
8
  header->pool_id = pool_id;
253
8
  #endif
254
8
#endif
255
8
  return slab;
256
8
}
_Z7NewSlabIPN4args7_ActionEEP4SlabIT_Ei
Line
Count
Source
233
7
inline Slab<T>* NewSlab(int len) {
234
7
  int obj_len = len * sizeof(T);
235
7
  const size_t num_bytes = sizeof(ObjHeader) + obj_len;
236
7
#if MARK_SWEEP
237
7
  int obj_id;
238
7
  int pool_id;
239
7
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
240
#else
241
  void* place = gHeap.Allocate(num_bytes);
242
#endif
243
7
  ObjHeader* header = new (place) ObjHeader(Slab<T>::obj_header(len));
244
7
  void* obj = header->ObjectAddress();
245
7
  if (std::is_pointer<T>()) {
246
7
    memset(obj, 0, obj_len);
247
7
  }
248
7
  auto slab = new (obj) Slab<T>(len);
249
7
#if MARK_SWEEP
250
7
  header->obj_id = obj_id;
251
7
  #ifndef NO_POOL_ALLOC
252
7
  header->pool_id = pool_id;
253
7
  #endif
254
7
#endif
255
7
  return slab;
256
7
}
Unexecuted instantiation: _Z7NewSlabIPN11pretty_asdl11MeasuredDocEEP4SlabIT_Ei
Unexecuted instantiation: _Z7NewSlabIPN11pretty_asdl11DocFragmentEEP4SlabIT_Ei
Unexecuted instantiation: _Z7NewSlabIPN11syntax_asdl12CompoundWordEEP4SlabIT_Ei
Unexecuted instantiation: _Z7NewSlabIP6Tuple2IP6BigStrbEEP4SlabIT_Ei
_Z7NewSlabIP6Tuple2IiP6BigStrEEP4SlabIT_Ei
Line
Count
Source
233
1
inline Slab<T>* NewSlab(int len) {
234
1
  int obj_len = len * sizeof(T);
235
1
  const size_t num_bytes = sizeof(ObjHeader) + obj_len;
236
1
#if MARK_SWEEP
237
1
  int obj_id;
238
1
  int pool_id;
239
1
  void* place = gHeap.Allocate(num_bytes, &obj_id, &pool_id);
240
#else
241
  void* place = gHeap.Allocate(num_bytes);
242
#endif
243
1
  ObjHeader* header = new (place) ObjHeader(Slab<T>::obj_header(len));
244
1
  void* obj = header->ObjectAddress();
245
1
  if (std::is_pointer<T>()) {
246
1
    memset(obj, 0, obj_len);
247
1
  }
248
1
  auto slab = new (obj) Slab<T>(len);
249
1
#if MARK_SWEEP
250
1
  header->obj_id = obj_id;
251
1
  #ifndef NO_POOL_ALLOC
252
1
  header->pool_id = pool_id;
253
1
  #endif
254
1
#endif
255
1
  return slab;
256
1
}
257
258
#endif  // MYCPP_GC_ALLOC_H