gdb-jit.cc 60.2 KB
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// Copyright 2010 the V8 project authors. All rights reserved.
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// Use of this source code is governed by a BSD-style license that can be
// found in the LICENSE file.
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#ifdef ENABLE_GDB_JIT_INTERFACE
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#include "v8.h"
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#include "gdb-jit.h"

#include "bootstrapper.h"
#include "compiler.h"
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#include "frames.h"
#include "frames-inl.h"
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#include "global-handles.h"
#include "messages.h"
#include "natives.h"
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#include "platform.h"
#include "scopes.h"
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namespace v8 {
namespace internal {

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#ifdef __APPLE__
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#define __MACH_O
class MachO;
class MachOSection;
typedef MachO DebugObject;
typedef MachOSection DebugSection;
#else
#define __ELF
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class ELF;
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class ELFSection;
typedef ELF DebugObject;
typedef ELFSection DebugSection;
#endif
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class Writer BASE_EMBEDDED {
 public:
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  explicit Writer(DebugObject* debug_object)
      : debug_object_(debug_object),
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        position_(0),
        capacity_(1024),
        buffer_(reinterpret_cast<byte*>(malloc(capacity_))) {
  }

  ~Writer() {
    free(buffer_);
  }

  uintptr_t position() const {
    return position_;
  }

  template<typename T>
  class Slot {
   public:
    Slot(Writer* w, uintptr_t offset) : w_(w), offset_(offset) { }

    T* operator-> () {
      return w_->RawSlotAt<T>(offset_);
    }

    void set(const T& value) {
      *w_->RawSlotAt<T>(offset_) = value;
    }

    Slot<T> at(int i) {
      return Slot<T>(w_, offset_ + sizeof(T) * i);
    }

   private:
    Writer* w_;
    uintptr_t offset_;
  };

  template<typename T>
  void Write(const T& val) {
    Ensure(position_ + sizeof(T));
    *RawSlotAt<T>(position_) = val;
    position_ += sizeof(T);
  }

  template<typename T>
  Slot<T> SlotAt(uintptr_t offset) {
    Ensure(offset + sizeof(T));
    return Slot<T>(this, offset);
  }

  template<typename T>
  Slot<T> CreateSlotHere() {
    return CreateSlotsHere<T>(1);
  }

  template<typename T>
  Slot<T> CreateSlotsHere(uint32_t count) {
    uintptr_t slot_position = position_;
    position_ += sizeof(T) * count;
    Ensure(position_);
    return SlotAt<T>(slot_position);
  }

  void Ensure(uintptr_t pos) {
    if (capacity_ < pos) {
      while (capacity_ < pos) capacity_ *= 2;
      buffer_ = reinterpret_cast<byte*>(realloc(buffer_, capacity_));
    }
  }

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  DebugObject* debug_object() { return debug_object_; }
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  byte* buffer() { return buffer_; }

  void Align(uintptr_t align) {
    uintptr_t delta = position_ % align;
    if (delta == 0) return;
    uintptr_t padding = align - delta;
    Ensure(position_ += padding);
    ASSERT((position_ % align) == 0);
  }

  void WriteULEB128(uintptr_t value) {
    do {
      uint8_t byte = value & 0x7F;
      value >>= 7;
      if (value != 0) byte |= 0x80;
      Write<uint8_t>(byte);
    } while (value != 0);
  }

  void WriteSLEB128(intptr_t value) {
    bool more = true;
    while (more) {
      int8_t byte = value & 0x7F;
      bool byte_sign = byte & 0x40;
      value >>= 7;

      if ((value == 0 && !byte_sign) || (value == -1 && byte_sign)) {
        more = false;
      } else {
        byte |= 0x80;
      }

      Write<int8_t>(byte);
    }
  }

  void WriteString(const char* str) {
    do {
      Write<char>(*str);
    } while (*str++);
  }

 private:
  template<typename T> friend class Slot;

  template<typename T>
  T* RawSlotAt(uintptr_t offset) {
    ASSERT(offset < capacity_ && offset + sizeof(T) <= capacity_);
    return reinterpret_cast<T*>(&buffer_[offset]);
  }

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  DebugObject* debug_object_;
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  uintptr_t position_;
  uintptr_t capacity_;
  byte* buffer_;
};

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class ELFStringTable;
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template<typename THeader>
class DebugSectionBase : public ZoneObject {
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 public:
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  virtual ~DebugSectionBase() { }

  virtual void WriteBody(Writer::Slot<THeader> header, Writer* writer) {
    uintptr_t start = writer->position();
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    if (WriteBodyInternal(writer)) {
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      uintptr_t end = writer->position();
      header->offset = start;
#if defined(__MACH_O)
      header->addr = 0;
#endif
      header->size = end - start;
    }
  }

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  virtual bool WriteBodyInternal(Writer* writer) {
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    return false;
  }

  typedef THeader Header;
};


struct MachOSectionHeader {
  char sectname[16];
  char segname[16];
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#if V8_TARGET_ARCH_IA32
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  uint32_t addr;
  uint32_t size;
#else
  uint64_t addr;
  uint64_t size;
#endif
  uint32_t offset;
  uint32_t align;
  uint32_t reloff;
  uint32_t nreloc;
  uint32_t flags;
  uint32_t reserved1;
  uint32_t reserved2;
};


class MachOSection : public DebugSectionBase<MachOSectionHeader> {
 public:
  enum Type {
    S_REGULAR = 0x0u,
    S_ATTR_COALESCED = 0xbu,
    S_ATTR_SOME_INSTRUCTIONS = 0x400u,
    S_ATTR_DEBUG = 0x02000000u,
    S_ATTR_PURE_INSTRUCTIONS = 0x80000000u
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  };

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  MachOSection(const char* name,
               const char* segment,
               uintptr_t align,
               uint32_t flags)
    : name_(name),
      segment_(segment),
      align_(align),
      flags_(flags) {
    if (align_ != 0) {
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      ASSERT(IsPowerOf2(align));
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      align_ = WhichPowerOf2(align_);
    }
  }

  virtual ~MachOSection() { }

  virtual void PopulateHeader(Writer::Slot<Header> header) {
    header->addr = 0;
    header->size = 0;
    header->offset = 0;
    header->align = align_;
    header->reloff = 0;
    header->nreloc = 0;
    header->flags = flags_;
    header->reserved1 = 0;
    header->reserved2 = 0;
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    memset(header->sectname, 0, sizeof(header->sectname));
    memset(header->segname, 0, sizeof(header->segname));
    ASSERT(strlen(name_) < sizeof(header->sectname));
    ASSERT(strlen(segment_) < sizeof(header->segname));
    strncpy(header->sectname, name_, sizeof(header->sectname));
    strncpy(header->segname, segment_, sizeof(header->segname));
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  }

 private:
  const char* name_;
  const char* segment_;
  uintptr_t align_;
  uint32_t flags_;
};


struct ELFSectionHeader {
  uint32_t name;
  uint32_t type;
  uintptr_t flags;
  uintptr_t address;
  uintptr_t offset;
  uintptr_t size;
  uint32_t link;
  uint32_t info;
  uintptr_t alignment;
  uintptr_t entry_size;
};
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#if defined(__ELF)
class ELFSection : public DebugSectionBase<ELFSectionHeader> {
 public:
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  enum Type {
    TYPE_NULL = 0,
    TYPE_PROGBITS = 1,
    TYPE_SYMTAB = 2,
    TYPE_STRTAB = 3,
    TYPE_RELA = 4,
    TYPE_HASH = 5,
    TYPE_DYNAMIC = 6,
    TYPE_NOTE = 7,
    TYPE_NOBITS = 8,
    TYPE_REL = 9,
    TYPE_SHLIB = 10,
    TYPE_DYNSYM = 11,
    TYPE_LOPROC = 0x70000000,
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    TYPE_X86_64_UNWIND = 0x70000001,
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    TYPE_HIPROC = 0x7fffffff,
    TYPE_LOUSER = 0x80000000,
    TYPE_HIUSER = 0xffffffff
  };

  enum Flags {
    FLAG_WRITE = 1,
    FLAG_ALLOC = 2,
    FLAG_EXEC = 4
  };

  enum SpecialIndexes {
    INDEX_ABSOLUTE = 0xfff1
  };

  ELFSection(const char* name, Type type, uintptr_t align)
      : name_(name), type_(type), align_(align) { }

  virtual ~ELFSection() { }

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  void PopulateHeader(Writer::Slot<Header> header, ELFStringTable* strtab);
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  virtual void WriteBody(Writer::Slot<Header> header, Writer* w) {
    uintptr_t start = w->position();
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    if (WriteBodyInternal(w)) {
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      uintptr_t end = w->position();
      header->offset = start;
      header->size = end - start;
    }
  }

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  virtual bool WriteBodyInternal(Writer* w) {
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    return false;
  }

  uint16_t index() const { return index_; }
  void set_index(uint16_t index) { index_ = index; }

 protected:
  virtual void PopulateHeader(Writer::Slot<Header> header) {
    header->flags = 0;
    header->address = 0;
    header->offset = 0;
    header->size = 0;
    header->link = 0;
    header->info = 0;
    header->entry_size = 0;
  }

 private:
  const char* name_;
  Type type_;
  uintptr_t align_;
  uint16_t index_;
};
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#endif  // defined(__ELF)
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#if defined(__MACH_O)
class MachOTextSection : public MachOSection {
 public:
  MachOTextSection(uintptr_t align,
                   uintptr_t addr,
                   uintptr_t size)
      : MachOSection("__text",
                     "__TEXT",
                     align,
                     MachOSection::S_REGULAR |
                         MachOSection::S_ATTR_SOME_INSTRUCTIONS |
                         MachOSection::S_ATTR_PURE_INSTRUCTIONS),
        addr_(addr),
        size_(size) { }

 protected:
  virtual void PopulateHeader(Writer::Slot<Header> header) {
    MachOSection::PopulateHeader(header);
    header->addr = addr_;
    header->size = size_;
  }

 private:
  uintptr_t addr_;
  uintptr_t size_;
};
#endif  // defined(__MACH_O)


#if defined(__ELF)
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class FullHeaderELFSection : public ELFSection {
 public:
  FullHeaderELFSection(const char* name,
                       Type type,
                       uintptr_t align,
                       uintptr_t addr,
                       uintptr_t offset,
                       uintptr_t size,
                       uintptr_t flags)
      : ELFSection(name, type, align),
        addr_(addr),
        offset_(offset),
        size_(size),
        flags_(flags) { }

 protected:
  virtual void PopulateHeader(Writer::Slot<Header> header) {
    ELFSection::PopulateHeader(header);
    header->address = addr_;
    header->offset = offset_;
    header->size = size_;
    header->flags = flags_;
  }

 private:
  uintptr_t addr_;
  uintptr_t offset_;
  uintptr_t size_;
  uintptr_t flags_;
};


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class ELFStringTable : public ELFSection {
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 public:
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  explicit ELFStringTable(const char* name)
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      : ELFSection(name, TYPE_STRTAB, 1), writer_(NULL), offset_(0), size_(0) {
  }

  uintptr_t Add(const char* str) {
    if (*str == '\0') return 0;

    uintptr_t offset = size_;
    WriteString(str);
    return offset;
  }

  void AttachWriter(Writer* w) {
    writer_ = w;
    offset_ = writer_->position();

    // First entry in the string table should be an empty string.
    WriteString("");
  }

  void DetachWriter() {
    writer_ = NULL;
  }

  virtual void WriteBody(Writer::Slot<Header> header, Writer* w) {
    ASSERT(writer_ == NULL);
    header->offset = offset_;
    header->size = size_;
  }

 private:
  void WriteString(const char* str) {
    uintptr_t written = 0;
    do {
      writer_->Write(*str);
      written++;
    } while (*str++);
    size_ += written;
  }

  Writer* writer_;

  uintptr_t offset_;
  uintptr_t size_;
};


void ELFSection::PopulateHeader(Writer::Slot<ELFSection::Header> header,
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                                ELFStringTable* strtab) {
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  header->name = strtab->Add(name_);
  header->type = type_;
  header->alignment = align_;
  PopulateHeader(header);
}
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#endif  // defined(__ELF)


#if defined(__MACH_O)
class MachO BASE_EMBEDDED {
 public:
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  explicit MachO(Zone* zone) : zone_(zone), sections_(6, zone) { }
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  uint32_t AddSection(MachOSection* section) {
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    sections_.Add(section, zone_);
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    return sections_.length() - 1;
  }

  void Write(Writer* w, uintptr_t code_start, uintptr_t code_size) {
    Writer::Slot<MachOHeader> header = WriteHeader(w);
    uintptr_t load_command_start = w->position();
    Writer::Slot<MachOSegmentCommand> cmd = WriteSegmentCommand(w,
                                                                code_start,
                                                                code_size);
    WriteSections(w, cmd, header, load_command_start);
  }

 private:
  struct MachOHeader {
    uint32_t magic;
    uint32_t cputype;
    uint32_t cpusubtype;
    uint32_t filetype;
    uint32_t ncmds;
    uint32_t sizeofcmds;
    uint32_t flags;
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#if V8_TARGET_ARCH_X64
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    uint32_t reserved;
#endif
  };

  struct MachOSegmentCommand {
    uint32_t cmd;
    uint32_t cmdsize;
    char segname[16];
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#if V8_TARGET_ARCH_IA32
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    uint32_t vmaddr;
    uint32_t vmsize;
    uint32_t fileoff;
    uint32_t filesize;
#else
    uint64_t vmaddr;
    uint64_t vmsize;
    uint64_t fileoff;
    uint64_t filesize;
#endif
    uint32_t maxprot;
    uint32_t initprot;
    uint32_t nsects;
    uint32_t flags;
  };

  enum MachOLoadCommandCmd {
    LC_SEGMENT_32 = 0x00000001u,
    LC_SEGMENT_64 = 0x00000019u
  };


  Writer::Slot<MachOHeader> WriteHeader(Writer* w) {
    ASSERT(w->position() == 0);
    Writer::Slot<MachOHeader> header = w->CreateSlotHere<MachOHeader>();
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#if V8_TARGET_ARCH_IA32
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    header->magic = 0xFEEDFACEu;
    header->cputype = 7;  // i386
    header->cpusubtype = 3;  // CPU_SUBTYPE_I386_ALL
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#elif V8_TARGET_ARCH_X64
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    header->magic = 0xFEEDFACFu;
    header->cputype = 7 | 0x01000000;  // i386 | 64-bit ABI
    header->cpusubtype = 3;  // CPU_SUBTYPE_I386_ALL
    header->reserved = 0;
#else
#error Unsupported target architecture.
#endif
    header->filetype = 0x1;  // MH_OBJECT
    header->ncmds = 1;
    header->sizeofcmds = 0;
    header->flags = 0;
    return header;
  }
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  Writer::Slot<MachOSegmentCommand> WriteSegmentCommand(Writer* w,
                                                        uintptr_t code_start,
                                                        uintptr_t code_size) {
    Writer::Slot<MachOSegmentCommand> cmd =
        w->CreateSlotHere<MachOSegmentCommand>();
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#if V8_TARGET_ARCH_IA32
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    cmd->cmd = LC_SEGMENT_32;
#else
    cmd->cmd = LC_SEGMENT_64;
#endif
    cmd->vmaddr = code_start;
    cmd->vmsize = code_size;
    cmd->fileoff = 0;
    cmd->filesize = 0;
    cmd->maxprot = 7;
    cmd->initprot = 7;
    cmd->flags = 0;
    cmd->nsects = sections_.length();
    memset(cmd->segname, 0, 16);
    cmd->cmdsize = sizeof(MachOSegmentCommand) + sizeof(MachOSection::Header) *
        cmd->nsects;
    return cmd;
  }


  void WriteSections(Writer* w,
                     Writer::Slot<MachOSegmentCommand> cmd,
                     Writer::Slot<MachOHeader> header,
                     uintptr_t load_command_start) {
    Writer::Slot<MachOSection::Header> headers =
        w->CreateSlotsHere<MachOSection::Header>(sections_.length());
    cmd->fileoff = w->position();
    header->sizeofcmds = w->position() - load_command_start;
    for (int section = 0; section < sections_.length(); ++section) {
      sections_[section]->PopulateHeader(headers.at(section));
      sections_[section]->WriteBody(headers.at(section), w);
    }
    cmd->filesize = w->position() - (uintptr_t)cmd->fileoff;
  }

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  Zone* zone_;
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  ZoneList<MachOSection*> sections_;
};
#endif  // defined(__MACH_O)


#if defined(__ELF)
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class ELF BASE_EMBEDDED {
 public:
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  explicit ELF(Zone* zone) : zone_(zone), sections_(6, zone) {
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    sections_.Add(new(zone) ELFSection("", ELFSection::TYPE_NULL, 0), zone);
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    sections_.Add(new(zone) ELFStringTable(".shstrtab"), zone);
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  }

  void Write(Writer* w) {
    WriteHeader(w);
    WriteSectionTable(w);
    WriteSections(w);
  }

  ELFSection* SectionAt(uint32_t index) {
    return sections_[index];
  }

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  uint32_t AddSection(ELFSection* section) {
    sections_.Add(section, zone_);
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    section->set_index(sections_.length() - 1);
    return sections_.length() - 1;
  }

 private:
  struct ELFHeader {
    uint8_t ident[16];
    uint16_t type;
    uint16_t machine;
    uint32_t version;
    uintptr_t entry;
    uintptr_t pht_offset;
    uintptr_t sht_offset;
    uint32_t flags;
    uint16_t header_size;
    uint16_t pht_entry_size;
    uint16_t pht_entry_num;
    uint16_t sht_entry_size;
    uint16_t sht_entry_num;
    uint16_t sht_strtab_index;
  };


  void WriteHeader(Writer* w) {
    ASSERT(w->position() == 0);
    Writer::Slot<ELFHeader> header = w->CreateSlotHere<ELFHeader>();
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#if V8_TARGET_ARCH_IA32 || V8_TARGET_ARCH_ARM
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    const uint8_t ident[16] =
        { 0x7f, 'E', 'L', 'F', 1, 1, 1, 0, 0, 0, 0, 0, 0, 0, 0, 0};
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#elif V8_TARGET_ARCH_X64
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    const uint8_t ident[16] =
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        { 0x7f, 'E', 'L', 'F', 2, 1, 1, 0, 0, 0, 0, 0, 0, 0, 0, 0};
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#else
#error Unsupported target architecture.
#endif
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    OS::MemCopy(header->ident, ident, 16);
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    header->type = 1;
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#if V8_TARGET_ARCH_IA32
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    header->machine = 3;
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#elif V8_TARGET_ARCH_X64
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    // Processor identification value for x64 is 62 as defined in
    //    System V ABI, AMD64 Supplement
    //    http://www.x86-64.org/documentation/abi.pdf
    header->machine = 62;
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#elif V8_TARGET_ARCH_ARM
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    // Set to EM_ARM, defined as 40, in "ARM ELF File Format" at
    // infocenter.arm.com/help/topic/com.arm.doc.dui0101a/DUI0101A_Elf.pdf
    header->machine = 40;
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#else
#error Unsupported target architecture.
#endif
    header->version = 1;
    header->entry = 0;
    header->pht_offset = 0;
    header->sht_offset = sizeof(ELFHeader);  // Section table follows header.
    header->flags = 0;
    header->header_size = sizeof(ELFHeader);
    header->pht_entry_size = 0;
    header->pht_entry_num = 0;
    header->sht_entry_size = sizeof(ELFSection::Header);
    header->sht_entry_num = sections_.length();
    header->sht_strtab_index = 1;
  }

  void WriteSectionTable(Writer* w) {
    // Section headers table immediately follows file header.
    ASSERT(w->position() == sizeof(ELFHeader));

    Writer::Slot<ELFSection::Header> headers =
        w->CreateSlotsHere<ELFSection::Header>(sections_.length());

    // String table for section table is the first section.
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    ELFStringTable* strtab = static_cast<ELFStringTable*>(SectionAt(1));
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    strtab->AttachWriter(w);
    for (int i = 0, length = sections_.length();
         i < length;
         i++) {
      sections_[i]->PopulateHeader(headers.at(i), strtab);
    }
    strtab->DetachWriter();
  }

  int SectionHeaderPosition(uint32_t section_index) {
    return sizeof(ELFHeader) + sizeof(ELFSection::Header) * section_index;
  }

  void WriteSections(Writer* w) {
    Writer::Slot<ELFSection::Header> headers =
        w->SlotAt<ELFSection::Header>(sizeof(ELFHeader));

    for (int i = 0, length = sections_.length();
         i < length;
         i++) {
      sections_[i]->WriteBody(headers.at(i), w);
    }
  }

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  Zone* zone_;
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  ZoneList<ELFSection*> sections_;
};


class ELFSymbol BASE_EMBEDDED {
 public:
  enum Type {
    TYPE_NOTYPE = 0,
    TYPE_OBJECT = 1,
    TYPE_FUNC = 2,
    TYPE_SECTION = 3,
    TYPE_FILE = 4,
    TYPE_LOPROC = 13,
    TYPE_HIPROC = 15
  };

  enum Binding {
    BIND_LOCAL = 0,
    BIND_GLOBAL = 1,
    BIND_WEAK = 2,
    BIND_LOPROC = 13,
    BIND_HIPROC = 15
  };

  ELFSymbol(const char* name,
            uintptr_t value,
            uintptr_t size,
            Binding binding,
            Type type,
            uint16_t section)
      : name(name),
        value(value),
        size(size),
        info((binding << 4) | type),
        other(0),
        section(section) {
  }

  Binding binding() const {
    return static_cast<Binding>(info >> 4);
  }
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#if V8_TARGET_ARCH_IA32 || V8_TARGET_ARCH_ARM
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  struct SerializedLayout {
    SerializedLayout(uint32_t name,
                     uintptr_t value,
                     uintptr_t size,
                     Binding binding,
                     Type type,
                     uint16_t section)
        : name(name),
          value(value),
          size(size),
          info((binding << 4) | type),
          other(0),
          section(section) {
    }

    uint32_t name;
    uintptr_t value;
    uintptr_t size;
    uint8_t info;
    uint8_t other;
    uint16_t section;
  };
788
#elif V8_TARGET_ARCH_X64
789 790 791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809 810 811 812
  struct SerializedLayout {
    SerializedLayout(uint32_t name,
                     uintptr_t value,
                     uintptr_t size,
                     Binding binding,
                     Type type,
                     uint16_t section)
        : name(name),
          info((binding << 4) | type),
          other(0),
          section(section),
          value(value),
          size(size) {
    }

    uint32_t name;
    uint8_t info;
    uint8_t other;
    uint16_t section;
    uintptr_t value;
    uintptr_t size;
  };
#endif

813
  void Write(Writer::Slot<SerializedLayout> s, ELFStringTable* t) {
814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834
    // Convert symbol names from strings to indexes in the string table.
    s->name = t->Add(name);
    s->value = value;
    s->size = size;
    s->info = info;
    s->other = other;
    s->section = section;
  }

 private:
  const char* name;
  uintptr_t value;
  uintptr_t size;
  uint8_t info;
  uint8_t other;
  uint16_t section;
};


class ELFSymbolTable : public ELFSection {
 public:
835
  ELFSymbolTable(const char* name, Zone* zone)
836
      : ELFSection(name, TYPE_SYMTAB, sizeof(uintptr_t)),
837 838
        locals_(1, zone),
        globals_(1, zone) {
839 840 841 842 843 844 845 846 847 848 849 850 851
  }

  virtual void WriteBody(Writer::Slot<Header> header, Writer* w) {
    w->Align(header->alignment);
    int total_symbols = locals_.length() + globals_.length() + 1;
    header->offset = w->position();

    Writer::Slot<ELFSymbol::SerializedLayout> symbols =
        w->CreateSlotsHere<ELFSymbol::SerializedLayout>(total_symbols);

    header->size = w->position() - header->offset;

    // String table for this symbol table should follow it in the section table.
852 853
    ELFStringTable* strtab =
        static_cast<ELFStringTable*>(w->debug_object()->SectionAt(index() + 1));
854 855 856 857 858 859 860 861 862 863 864 865
    strtab->AttachWriter(w);
    symbols.at(0).set(ELFSymbol::SerializedLayout(0,
                                                  0,
                                                  0,
                                                  ELFSymbol::BIND_LOCAL,
                                                  ELFSymbol::TYPE_NOTYPE,
                                                  0));
    WriteSymbolsList(&locals_, symbols.at(1), strtab);
    WriteSymbolsList(&globals_, symbols.at(locals_.length() + 1), strtab);
    strtab->DetachWriter();
  }

866
  void Add(const ELFSymbol& symbol, Zone* zone) {
867
    if (symbol.binding() == ELFSymbol::BIND_LOCAL) {
868
      locals_.Add(symbol, zone);
869
    } else {
870
      globals_.Add(symbol, zone);
871 872 873 874 875 876 877 878 879 880 881 882 883 884 885
    }
  }

 protected:
  virtual void PopulateHeader(Writer::Slot<Header> header) {
    ELFSection::PopulateHeader(header);
    // We are assuming that string table will follow symbol table.
    header->link = index() + 1;
    header->info = locals_.length() + 1;
    header->entry_size = sizeof(ELFSymbol::SerializedLayout);
  }

 private:
  void WriteSymbolsList(const ZoneList<ELFSymbol>* src,
                        Writer::Slot<ELFSymbol::SerializedLayout> dst,
886
                        ELFStringTable* strtab) {
887 888 889 890 891 892 893 894 895 896
    for (int i = 0, len = src->length();
         i < len;
         i++) {
      src->at(i).Write(dst.at(i), strtab);
    }
  }

  ZoneList<ELFSymbol> locals_;
  ZoneList<ELFSymbol> globals_;
};
897
#endif  // defined(__ELF)
898 899 900 901


class CodeDescription BASE_EMBEDDED {
 public:
902
#if V8_TARGET_ARCH_X64
903 904 905 906 907 908 909 910
  enum StackState {
    POST_RBP_PUSH,
    POST_RBP_SET,
    POST_RBP_POP,
    STACK_STATE_MAX
  };
#endif

911 912 913
  CodeDescription(const char* name,
                  Code* code,
                  Handle<Script> script,
914
                  GDBJITLineInfo* lineinfo,
915 916
                  GDBJITInterface::CodeTag tag,
                  CompilationInfo* info)
917 918 919 920
      : name_(name),
        code_(code),
        script_(script),
        lineinfo_(lineinfo),
921 922
        tag_(tag),
        info_(info) {
923
  }
924

925
  const char* name() const {
926 927 928
    return name_;
  }

929 930 931 932 933 934 935 936
  GDBJITLineInfo* lineinfo() const {
    return lineinfo_;
  }

  GDBJITInterface::CodeTag tag() const {
    return tag_;
  }

937 938 939 940 941 942 943 944
  CompilationInfo* info() const {
    return info_;
  }

  bool IsInfoAvailable() const {
    return info_ != NULL;
  }

945 946
  uintptr_t CodeStart() const {
    return reinterpret_cast<uintptr_t>(code_->instruction_start());
947 948
  }

949 950
  uintptr_t CodeEnd() const {
    return reinterpret_cast<uintptr_t>(code_->instruction_end());
951 952
  }

953 954 955 956 957
  uintptr_t CodeSize() const {
    return CodeEnd() - CodeStart();
  }

  bool IsLineInfoAvailable() {
958 959 960 961 962 963 964
    return !script_.is_null() &&
        script_->source()->IsString() &&
        script_->HasValidSource() &&
        script_->name()->IsString() &&
        lineinfo_ != NULL;
  }

965
#if V8_TARGET_ARCH_X64
966 967 968 969
  uintptr_t GetStackStateStartAddress(StackState state) const {
    ASSERT(state < STACK_STATE_MAX);
    return stack_state_start_addresses_[state];
  }
970

971 972 973 974 975 976
  void SetStackStateStartAddress(StackState state, uintptr_t addr) {
    ASSERT(state < STACK_STATE_MAX);
    stack_state_start_addresses_[state] = addr;
  }
#endif

977
  SmartArrayPointer<char> GetFilename() {
978 979 980 981
    return String::cast(script_->name())->ToCString();
  }

  int GetScriptLineNumber(int pos) {
982
    return script_->GetLineNumber(pos) + 1;
983 984
  }

985

986 987 988 989 990
 private:
  const char* name_;
  Code* code_;
  Handle<Script> script_;
  GDBJITLineInfo* lineinfo_;
991
  GDBJITInterface::CodeTag tag_;
992
  CompilationInfo* info_;
993
#if V8_TARGET_ARCH_X64
994 995
  uintptr_t stack_state_start_addresses_[STACK_STATE_MAX];
#endif
996 997
};

998
#if defined(__ELF)
999
static void CreateSymbolsTable(CodeDescription* desc,
1000
                               Zone* zone,
1001 1002
                               ELF* elf,
                               int text_section_index) {
1003
  ELFSymbolTable* symtab = new(zone) ELFSymbolTable(".symtab", zone);
1004
  ELFStringTable* strtab = new(zone) ELFStringTable(".strtab");
1005 1006

  // Symbol table should be followed by the linked string table.
1007 1008
  elf->AddSection(symtab);
  elf->AddSection(strtab);
1009 1010 1011 1012 1013 1014

  symtab->Add(ELFSymbol("V8 Code",
                        0,
                        0,
                        ELFSymbol::BIND_LOCAL,
                        ELFSymbol::TYPE_FILE,
1015 1016
                        ELFSection::INDEX_ABSOLUTE),
              zone);
1017

1018
  symtab->Add(ELFSymbol(desc->name(),
1019
                        0,
1020
                        desc->CodeSize(),
1021 1022
                        ELFSymbol::BIND_GLOBAL,
                        ELFSymbol::TYPE_FUNC,
1023 1024
                        text_section_index),
              zone);
1025
}
1026
#endif  // defined(__ELF)
1027 1028


1029
class DebugInfoSection : public DebugSection {
1030 1031
 public:
  explicit DebugInfoSection(CodeDescription* desc)
1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058
#if defined(__ELF)
      : ELFSection(".debug_info", TYPE_PROGBITS, 1),
#else
      : MachOSection("__debug_info",
                     "__DWARF",
                     1,
                     MachOSection::S_REGULAR | MachOSection::S_ATTR_DEBUG),
#endif
        desc_(desc) { }

  // DWARF2 standard
  enum DWARF2LocationOp {
    DW_OP_reg0 = 0x50,
    DW_OP_reg1 = 0x51,
    DW_OP_reg2 = 0x52,
    DW_OP_reg3 = 0x53,
    DW_OP_reg4 = 0x54,
    DW_OP_reg5 = 0x55,
    DW_OP_reg6 = 0x56,
    DW_OP_reg7 = 0x57,
    DW_OP_fbreg = 0x91  // 1 param: SLEB128 offset
  };

  enum DWARF2Encoding {
    DW_ATE_ADDRESS = 0x1,
    DW_ATE_SIGNED = 0x5
  };
1059

1060
  bool WriteBodyInternal(Writer* w) {
1061
    uintptr_t cu_start = w->position();
1062 1063 1064 1065 1066 1067 1068
    Writer::Slot<uint32_t> size = w->CreateSlotHere<uint32_t>();
    uintptr_t start = w->position();
    w->Write<uint16_t>(2);  // DWARF version.
    w->Write<uint32_t>(0);  // Abbreviation table offset.
    w->Write<uint8_t>(sizeof(intptr_t));

    w->WriteULEB128(1);  // Abbreviation code.
1069
    w->WriteString(desc_->GetFilename().get());
1070 1071
    w->Write<intptr_t>(desc_->CodeStart());
    w->Write<intptr_t>(desc_->CodeStart() + desc_->CodeSize());
1072
    w->Write<uint32_t>(0);
1073 1074 1075 1076 1077 1078 1079

    uint32_t ty_offset = static_cast<uint32_t>(w->position() - cu_start);
    w->WriteULEB128(3);
    w->Write<uint8_t>(kPointerSize);
    w->WriteString("v8value");

    if (desc_->IsInfoAvailable()) {
1080
      Scope* scope = desc_->info()->scope();
1081 1082 1083 1084 1085 1086
      w->WriteULEB128(2);
      w->WriteString(desc_->name());
      w->Write<intptr_t>(desc_->CodeStart());
      w->Write<intptr_t>(desc_->CodeStart() + desc_->CodeSize());
      Writer::Slot<uint32_t> fb_block_size = w->CreateSlotHere<uint32_t>();
      uintptr_t fb_block_start = w->position();
1087
#if V8_TARGET_ARCH_IA32
1088
      w->Write<uint8_t>(DW_OP_reg5);  // The frame pointer's here on ia32
1089
#elif V8_TARGET_ARCH_X64
1090
      w->Write<uint8_t>(DW_OP_reg6);  // and here on x64.
1091
#elif V8_TARGET_ARCH_ARM
1092
      UNIMPLEMENTED();
1093
#elif V8_TARGET_ARCH_MIPS
1094
      UNIMPLEMENTED();
1095 1096 1097 1098 1099
#else
#error Unsupported target architecture.
#endif
      fb_block_size.set(static_cast<uint32_t>(w->position() - fb_block_start));

1100 1101 1102
      int params = scope->num_parameters();
      int slots = scope->num_stack_slots();
      int context_slots = scope->ContextLocalCount();
1103 1104
      // The real slot ID is internal_slots + context_slot_id.
      int internal_slots = Context::MIN_CONTEXT_SLOTS;
1105
      int locals = scope->StackLocalCount();
1106 1107 1108 1109 1110
      int current_abbreviation = 4;

      for (int param = 0; param < params; ++param) {
        w->WriteULEB128(current_abbreviation++);
        w->WriteString(
1111
            scope->parameter(param)->name()->ToCString(DISALLOW_NULLS).get());
1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136
        w->Write<uint32_t>(ty_offset);
        Writer::Slot<uint32_t> block_size = w->CreateSlotHere<uint32_t>();
        uintptr_t block_start = w->position();
        w->Write<uint8_t>(DW_OP_fbreg);
        w->WriteSLEB128(
          JavaScriptFrameConstants::kLastParameterOffset +
              kPointerSize * (params - param - 1));
        block_size.set(static_cast<uint32_t>(w->position() - block_start));
      }

      EmbeddedVector<char, 256> buffer;
      StringBuilder builder(buffer.start(), buffer.length());

      for (int slot = 0; slot < slots; ++slot) {
        w->WriteULEB128(current_abbreviation++);
        builder.Reset();
        builder.AddFormatted("slot%d", slot);
        w->WriteString(builder.Finalize());
      }

      // See contexts.h for more information.
      ASSERT(Context::MIN_CONTEXT_SLOTS == 4);
      ASSERT(Context::CLOSURE_INDEX == 0);
      ASSERT(Context::PREVIOUS_INDEX == 1);
      ASSERT(Context::EXTENSION_INDEX == 2);
1137
      ASSERT(Context::GLOBAL_OBJECT_INDEX == 3);
1138 1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155
      w->WriteULEB128(current_abbreviation++);
      w->WriteString(".closure");
      w->WriteULEB128(current_abbreviation++);
      w->WriteString(".previous");
      w->WriteULEB128(current_abbreviation++);
      w->WriteString(".extension");
      w->WriteULEB128(current_abbreviation++);
      w->WriteString(".global");

      for (int context_slot = 0;
           context_slot < context_slots;
           ++context_slot) {
        w->WriteULEB128(current_abbreviation++);
        builder.Reset();
        builder.AddFormatted("context_slot%d", context_slot + internal_slots);
        w->WriteString(builder.Finalize());
      }

1156 1157 1158
      ZoneList<Variable*> stack_locals(locals, scope->zone());
      ZoneList<Variable*> context_locals(context_slots, scope->zone());
      scope->CollectStackAndContextLocals(&stack_locals, &context_locals);
1159 1160 1161
      for (int local = 0; local < locals; ++local) {
        w->WriteULEB128(current_abbreviation++);
        w->WriteString(
1162
            stack_locals[local]->name()->ToCString(DISALLOW_NULLS).get());
1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193
        w->Write<uint32_t>(ty_offset);
        Writer::Slot<uint32_t> block_size = w->CreateSlotHere<uint32_t>();
        uintptr_t block_start = w->position();
        w->Write<uint8_t>(DW_OP_fbreg);
        w->WriteSLEB128(
          JavaScriptFrameConstants::kLocal0Offset -
              kPointerSize * local);
        block_size.set(static_cast<uint32_t>(w->position() - block_start));
      }

      {
        w->WriteULEB128(current_abbreviation++);
        w->WriteString("__function");
        w->Write<uint32_t>(ty_offset);
        Writer::Slot<uint32_t> block_size = w->CreateSlotHere<uint32_t>();
        uintptr_t block_start = w->position();
        w->Write<uint8_t>(DW_OP_fbreg);
        w->WriteSLEB128(JavaScriptFrameConstants::kFunctionOffset);
        block_size.set(static_cast<uint32_t>(w->position() - block_start));
      }

      {
        w->WriteULEB128(current_abbreviation++);
        w->WriteString("__context");
        w->Write<uint32_t>(ty_offset);
        Writer::Slot<uint32_t> block_size = w->CreateSlotHere<uint32_t>();
        uintptr_t block_start = w->position();
        w->Write<uint8_t>(DW_OP_fbreg);
        w->WriteSLEB128(StandardFrameConstants::kContextOffset);
        block_size.set(static_cast<uint32_t>(w->position() - block_start));
      }
1194 1195

      w->WriteULEB128(0);  // Terminate the sub program.
1196 1197
    }

1198
    w->WriteULEB128(0);  // Terminate the compile unit.
1199 1200 1201 1202 1203 1204 1205 1206 1207
    size.set(static_cast<uint32_t>(w->position() - start));
    return true;
  }

 private:
  CodeDescription* desc_;
};


1208
class DebugAbbrevSection : public DebugSection {
1209
 public:
1210 1211 1212 1213 1214 1215 1216 1217 1218 1219
  explicit DebugAbbrevSection(CodeDescription* desc)
#ifdef __ELF
      : ELFSection(".debug_abbrev", TYPE_PROGBITS, 1),
#else
      : MachOSection("__debug_abbrev",
                     "__DWARF",
                     1,
                     MachOSection::S_REGULAR | MachOSection::S_ATTR_DEBUG),
#endif
        desc_(desc) { }
1220 1221 1222

  // DWARF2 standard, figure 14.
  enum DWARF2Tags {
1223 1224 1225 1226 1227 1228 1229
    DW_TAG_FORMAL_PARAMETER = 0x05,
    DW_TAG_POINTER_TYPE = 0xf,
    DW_TAG_COMPILE_UNIT = 0x11,
    DW_TAG_STRUCTURE_TYPE = 0x13,
    DW_TAG_BASE_TYPE = 0x24,
    DW_TAG_SUBPROGRAM = 0x2e,
    DW_TAG_VARIABLE = 0x34
1230 1231 1232 1233 1234 1235 1236 1237 1238 1239
  };

  // DWARF2 standard, figure 16.
  enum DWARF2ChildrenDetermination {
    DW_CHILDREN_NO = 0,
    DW_CHILDREN_YES = 1
  };

  // DWARF standard, figure 17.
  enum DWARF2Attribute {
1240
    DW_AT_LOCATION = 0x2,
1241
    DW_AT_NAME = 0x3,
1242
    DW_AT_BYTE_SIZE = 0xb,
1243 1244
    DW_AT_STMT_LIST = 0x10,
    DW_AT_LOW_PC = 0x11,
1245 1246 1247 1248
    DW_AT_HIGH_PC = 0x12,
    DW_AT_ENCODING = 0x3e,
    DW_AT_FRAME_BASE = 0x40,
    DW_AT_TYPE = 0x49
1249 1250 1251 1252 1253
  };

  // DWARF2 standard, figure 19.
  enum DWARF2AttributeForm {
    DW_FORM_ADDR = 0x1,
1254
    DW_FORM_BLOCK4 = 0x4,
1255
    DW_FORM_STRING = 0x8,
1256 1257 1258 1259 1260
    DW_FORM_DATA4 = 0x6,
    DW_FORM_BLOCK = 0x9,
    DW_FORM_DATA1 = 0xb,
    DW_FORM_FLAG = 0xc,
    DW_FORM_REF4 = 0x13
1261 1262
  };

1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281
  void WriteVariableAbbreviation(Writer* w,
                                 int abbreviation_code,
                                 bool has_value,
                                 bool is_parameter) {
    w->WriteULEB128(abbreviation_code);
    w->WriteULEB128(is_parameter ? DW_TAG_FORMAL_PARAMETER : DW_TAG_VARIABLE);
    w->Write<uint8_t>(DW_CHILDREN_NO);
    w->WriteULEB128(DW_AT_NAME);
    w->WriteULEB128(DW_FORM_STRING);
    if (has_value) {
      w->WriteULEB128(DW_AT_TYPE);
      w->WriteULEB128(DW_FORM_REF4);
      w->WriteULEB128(DW_AT_LOCATION);
      w->WriteULEB128(DW_FORM_BLOCK4);
    }
    w->WriteULEB128(0);
    w->WriteULEB128(0);
  }

1282
  bool WriteBodyInternal(Writer* w) {
1283 1284 1285 1286
    int current_abbreviation = 1;
    bool extra_info = desc_->IsInfoAvailable();
    ASSERT(desc_->IsLineInfoAvailable());
    w->WriteULEB128(current_abbreviation++);
1287
    w->WriteULEB128(DW_TAG_COMPILE_UNIT);
1288
    w->Write<uint8_t>(extra_info ? DW_CHILDREN_YES : DW_CHILDREN_NO);
1289 1290 1291 1292 1293 1294 1295 1296 1297 1298
    w->WriteULEB128(DW_AT_NAME);
    w->WriteULEB128(DW_FORM_STRING);
    w->WriteULEB128(DW_AT_LOW_PC);
    w->WriteULEB128(DW_FORM_ADDR);
    w->WriteULEB128(DW_AT_HIGH_PC);
    w->WriteULEB128(DW_FORM_ADDR);
    w->WriteULEB128(DW_AT_STMT_LIST);
    w->WriteULEB128(DW_FORM_DATA4);
    w->WriteULEB128(0);
    w->WriteULEB128(0);
1299 1300

    if (extra_info) {
1301 1302 1303 1304
      Scope* scope = desc_->info()->scope();
      int params = scope->num_parameters();
      int slots = scope->num_stack_slots();
      int context_slots = scope->ContextLocalCount();
1305 1306
      // The real slot ID is internal_slots + context_slot_id.
      int internal_slots = Context::MIN_CONTEXT_SLOTS;
1307
      int locals = scope->StackLocalCount();
1308 1309
      // Total children is params + slots + context_slots + internal_slots +
      // locals + 2 (__function and __context).
1310 1311 1312 1313 1314

      // The extra duplication below seems to be necessary to keep
      // gdb from getting upset on OSX.
      w->WriteULEB128(current_abbreviation++);  // Abbreviation code.
      w->WriteULEB128(DW_TAG_SUBPROGRAM);
1315
      w->Write<uint8_t>(DW_CHILDREN_YES);
1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338 1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366
      w->WriteULEB128(DW_AT_NAME);
      w->WriteULEB128(DW_FORM_STRING);
      w->WriteULEB128(DW_AT_LOW_PC);
      w->WriteULEB128(DW_FORM_ADDR);
      w->WriteULEB128(DW_AT_HIGH_PC);
      w->WriteULEB128(DW_FORM_ADDR);
      w->WriteULEB128(DW_AT_FRAME_BASE);
      w->WriteULEB128(DW_FORM_BLOCK4);
      w->WriteULEB128(0);
      w->WriteULEB128(0);

      w->WriteULEB128(current_abbreviation++);
      w->WriteULEB128(DW_TAG_STRUCTURE_TYPE);
      w->Write<uint8_t>(DW_CHILDREN_NO);
      w->WriteULEB128(DW_AT_BYTE_SIZE);
      w->WriteULEB128(DW_FORM_DATA1);
      w->WriteULEB128(DW_AT_NAME);
      w->WriteULEB128(DW_FORM_STRING);
      w->WriteULEB128(0);
      w->WriteULEB128(0);

      for (int param = 0; param < params; ++param) {
        WriteVariableAbbreviation(w, current_abbreviation++, true, true);
      }

      for (int slot = 0; slot < slots; ++slot) {
        WriteVariableAbbreviation(w, current_abbreviation++, false, false);
      }

      for (int internal_slot = 0;
           internal_slot < internal_slots;
           ++internal_slot) {
        WriteVariableAbbreviation(w, current_abbreviation++, false, false);
      }

      for (int context_slot = 0;
           context_slot < context_slots;
           ++context_slot) {
        WriteVariableAbbreviation(w, current_abbreviation++, false, false);
      }

      for (int local = 0; local < locals; ++local) {
        WriteVariableAbbreviation(w, current_abbreviation++, true, false);
      }

      // The function.
      WriteVariableAbbreviation(w, current_abbreviation++, true, false);

      // The context.
      WriteVariableAbbreviation(w, current_abbreviation++, true, false);

1367
      w->WriteULEB128(0);  // Terminate the sibling list.
1368 1369 1370
    }

    w->WriteULEB128(0);  // Terminate the table.
1371 1372
    return true;
  }
1373 1374 1375

 private:
  CodeDescription* desc_;
1376 1377 1378
};


1379
class DebugLineSection : public DebugSection {
1380 1381
 public:
  explicit DebugLineSection(CodeDescription* desc)
1382
#ifdef __ELF
1383
      : ELFSection(".debug_line", TYPE_PROGBITS, 1),
1384 1385 1386 1387 1388 1389
#else
      : MachOSection("__debug_line",
                     "__DWARF",
                     1,
                     MachOSection::S_REGULAR | MachOSection::S_ATTR_DEBUG),
#endif
1390 1391 1392 1393 1394 1395 1396 1397 1398 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408
        desc_(desc) { }

  // DWARF2 standard, figure 34.
  enum DWARF2Opcodes {
    DW_LNS_COPY = 1,
    DW_LNS_ADVANCE_PC = 2,
    DW_LNS_ADVANCE_LINE = 3,
    DW_LNS_SET_FILE = 4,
    DW_LNS_SET_COLUMN = 5,
    DW_LNS_NEGATE_STMT = 6
  };

  // DWARF2 standard, figure 35.
  enum DWARF2ExtendedOpcode {
    DW_LNE_END_SEQUENCE = 1,
    DW_LNE_SET_ADDRESS = 2,
    DW_LNE_DEFINE_FILE = 3
  };

1409
  bool WriteBodyInternal(Writer* w) {
1410 1411 1412 1413
    // Write prologue.
    Writer::Slot<uint32_t> total_length = w->CreateSlotHere<uint32_t>();
    uintptr_t start = w->position();

1414 1415 1416 1417 1418 1419
    // Used for special opcodes
    const int8_t line_base = 1;
    const uint8_t line_range = 7;
    const int8_t max_line_incr = (line_base + line_range - 1);
    const uint8_t opcode_base = DW_LNS_NEGATE_STMT + 1;

1420 1421 1422 1423 1424
    w->Write<uint16_t>(2);  // Field version.
    Writer::Slot<uint32_t> prologue_length = w->CreateSlotHere<uint32_t>();
    uintptr_t prologue_start = w->position();
    w->Write<uint8_t>(1);  // Field minimum_instruction_length.
    w->Write<uint8_t>(1);  // Field default_is_stmt.
1425 1426 1427
    w->Write<int8_t>(line_base);  // Field line_base.
    w->Write<uint8_t>(line_range);  // Field line_range.
    w->Write<uint8_t>(opcode_base);  // Field opcode_base.
1428 1429 1430 1431 1432 1433 1434
    w->Write<uint8_t>(0);  // DW_LNS_COPY operands count.
    w->Write<uint8_t>(1);  // DW_LNS_ADVANCE_PC operands count.
    w->Write<uint8_t>(1);  // DW_LNS_ADVANCE_LINE operands count.
    w->Write<uint8_t>(1);  // DW_LNS_SET_FILE operands count.
    w->Write<uint8_t>(1);  // DW_LNS_SET_COLUMN operands count.
    w->Write<uint8_t>(0);  // DW_LNS_NEGATE_STMT operands count.
    w->Write<uint8_t>(0);  // Empty include_directories sequence.
1435
    w->WriteString(desc_->GetFilename().get());  // File name.
1436 1437 1438 1439 1440 1441 1442
    w->WriteULEB128(0);  // Current directory.
    w->WriteULEB128(0);  // Unknown modification time.
    w->WriteULEB128(0);  // Unknown file size.
    w->Write<uint8_t>(0);
    prologue_length.set(static_cast<uint32_t>(w->position() - prologue_start));

    WriteExtendedOpcode(w, DW_LNE_SET_ADDRESS, sizeof(intptr_t));
1443
    w->Write<intptr_t>(desc_->CodeStart());
1444
    w->Write<uint8_t>(DW_LNS_COPY);
1445 1446 1447 1448 1449 1450 1451

    intptr_t pc = 0;
    intptr_t line = 1;
    bool is_statement = true;

    List<GDBJITLineInfo::PCInfo>* pc_info = desc_->lineinfo()->pc_info();
    pc_info->Sort(&ComparePCInfo);
1452 1453 1454

    int pc_info_length = pc_info->length();
    for (int i = 0; i < pc_info_length; i++) {
1455 1456
      GDBJITLineInfo::PCInfo* info = &pc_info->at(i);
      ASSERT(info->pc_ >= pc);
1457 1458 1459 1460 1461 1462

      // Reduce bloating in the debug line table by removing duplicate line
      // entries (per DWARF2 standard).
      intptr_t  new_line = desc_->GetScriptLineNumber(info->pos_);
      if (new_line == line) {
        continue;
1463
      }
1464 1465 1466 1467 1468 1469 1470 1471 1472 1473

      // Mark statement boundaries.  For a better debugging experience, mark
      // the last pc address in the function as a statement (e.g. "}"), so that
      // a user can see the result of the last line executed in the function,
      // should control reach the end.
      if ((i+1) == pc_info_length) {
        if (!is_statement) {
          w->Write<uint8_t>(DW_LNS_NEGATE_STMT);
        }
      } else if (is_statement != info->is_statement_) {
1474 1475 1476
        w->Write<uint8_t>(DW_LNS_NEGATE_STMT);
        is_statement = !is_statement;
      }
1477 1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500

      // Generate special opcodes, if possible.  This results in more compact
      // debug line tables.  See the DWARF 2.0 standard to learn more about
      // special opcodes.
      uintptr_t pc_diff = info->pc_ - pc;
      intptr_t line_diff = new_line - line;

      // Compute special opcode (see DWARF 2.0 standard)
      intptr_t special_opcode = (line_diff - line_base) +
                                (line_range * pc_diff) + opcode_base;

      // If special_opcode is less than or equal to 255, it can be used as a
      // special opcode.  If line_diff is larger than the max line increment
      // allowed for a special opcode, or if line_diff is less than the minimum
      // line that can be added to the line register (i.e. line_base), then
      // special_opcode can't be used.
      if ((special_opcode >= opcode_base) && (special_opcode <= 255) &&
          (line_diff <= max_line_incr) && (line_diff >= line_base)) {
        w->Write<uint8_t>(special_opcode);
      } else {
        w->Write<uint8_t>(DW_LNS_ADVANCE_PC);
        w->WriteSLEB128(pc_diff);
        w->Write<uint8_t>(DW_LNS_ADVANCE_LINE);
        w->WriteSLEB128(line_diff);
1501 1502
        w->Write<uint8_t>(DW_LNS_COPY);
      }
1503 1504 1505 1506

      // Increment the pc and line operands.
      pc += pc_diff;
      line += line_diff;
1507
    }
1508 1509 1510 1511
    // Advance the pc to the end of the routine, since the end sequence opcode
    // requires this.
    w->Write<uint8_t>(DW_LNS_ADVANCE_PC);
    w->WriteSLEB128(desc_->CodeSize() - pc);
1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529 1530 1531 1532 1533 1534 1535 1536 1537 1538 1539 1540 1541 1542 1543
    WriteExtendedOpcode(w, DW_LNE_END_SEQUENCE, 0);
    total_length.set(static_cast<uint32_t>(w->position() - start));
    return true;
  }

 private:
  void WriteExtendedOpcode(Writer* w,
                           DWARF2ExtendedOpcode op,
                           size_t operands_size) {
    w->Write<uint8_t>(0);
    w->WriteULEB128(operands_size + 1);
    w->Write<uint8_t>(op);
  }

  static int ComparePCInfo(const GDBJITLineInfo::PCInfo* a,
                           const GDBJITLineInfo::PCInfo* b) {
    if (a->pc_ == b->pc_) {
      if (a->is_statement_ != b->is_statement_) {
        return b->is_statement_ ? +1 : -1;
      }
      return 0;
    } else if (a->pc_ > b->pc_) {
      return +1;
    } else {
      return -1;
    }
  }

  CodeDescription* desc_;
};


1544
#if V8_TARGET_ARCH_X64
1545

1546
class UnwindInfoSection : public DebugSection {
1547
 public:
1548
  explicit UnwindInfoSection(CodeDescription* desc);
1549
  virtual bool WriteBodyInternal(Writer* w);
1550

1551 1552
  int WriteCIE(Writer* w);
  void WriteFDE(Writer* w, int);
1553

1554 1555 1556 1557
  void WriteFDEStateOnEntry(Writer* w);
  void WriteFDEStateAfterRBPPush(Writer* w);
  void WriteFDEStateAfterRBPSet(Writer* w);
  void WriteFDEStateAfterRBPPop(Writer* w);
1558

1559
  void WriteLength(Writer* w,
1560 1561 1562 1563
                   Writer::Slot<uint32_t>* length_slot,
                   int initial_position);

 private:
1564
  CodeDescription* desc_;
1565 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579 1580 1581 1582 1583 1584 1585 1586 1587 1588 1589 1590 1591 1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602 1603 1604 1605 1606 1607 1608 1609 1610 1611 1612 1613 1614

  // DWARF3 Specification, Table 7.23
  enum CFIInstructions {
    DW_CFA_ADVANCE_LOC = 0x40,
    DW_CFA_OFFSET = 0x80,
    DW_CFA_RESTORE = 0xC0,
    DW_CFA_NOP = 0x00,
    DW_CFA_SET_LOC = 0x01,
    DW_CFA_ADVANCE_LOC1 = 0x02,
    DW_CFA_ADVANCE_LOC2 = 0x03,
    DW_CFA_ADVANCE_LOC4 = 0x04,
    DW_CFA_OFFSET_EXTENDED = 0x05,
    DW_CFA_RESTORE_EXTENDED = 0x06,
    DW_CFA_UNDEFINED = 0x07,
    DW_CFA_SAME_VALUE = 0x08,
    DW_CFA_REGISTER = 0x09,
    DW_CFA_REMEMBER_STATE = 0x0A,
    DW_CFA_RESTORE_STATE = 0x0B,
    DW_CFA_DEF_CFA = 0x0C,
    DW_CFA_DEF_CFA_REGISTER = 0x0D,
    DW_CFA_DEF_CFA_OFFSET = 0x0E,

    DW_CFA_DEF_CFA_EXPRESSION = 0x0F,
    DW_CFA_EXPRESSION = 0x10,
    DW_CFA_OFFSET_EXTENDED_SF = 0x11,
    DW_CFA_DEF_CFA_SF = 0x12,
    DW_CFA_DEF_CFA_OFFSET_SF = 0x13,
    DW_CFA_VAL_OFFSET = 0x14,
    DW_CFA_VAL_OFFSET_SF = 0x15,
    DW_CFA_VAL_EXPRESSION = 0x16
  };

  // System V ABI, AMD64 Supplement, Version 0.99.5, Figure 3.36
  enum RegisterMapping {
    // Only the relevant ones have been added to reduce clutter.
    AMD64_RBP = 6,
    AMD64_RSP = 7,
    AMD64_RA = 16
  };

  enum CFIConstants {
    CIE_ID = 0,
    CIE_VERSION = 1,
    CODE_ALIGN_FACTOR = 1,
    DATA_ALIGN_FACTOR = 1,
    RETURN_ADDRESS_REGISTER = AMD64_RA
  };
};


1615
void UnwindInfoSection::WriteLength(Writer* w,
1616 1617 1618 1619 1620 1621 1622 1623 1624 1625 1626 1627 1628 1629 1630
                                    Writer::Slot<uint32_t>* length_slot,
                                    int initial_position) {
  uint32_t align = (w->position() - initial_position) % kPointerSize;

  if (align != 0) {
    for (uint32_t i = 0; i < (kPointerSize - align); i++) {
      w->Write<uint8_t>(DW_CFA_NOP);
    }
  }

  ASSERT((w->position() - initial_position) % kPointerSize == 0);
  length_slot->set(w->position() - initial_position);
}


1631
UnwindInfoSection::UnwindInfoSection(CodeDescription* desc)
1632 1633 1634 1635 1636 1637 1638
#ifdef __ELF
    : ELFSection(".eh_frame", TYPE_X86_64_UNWIND, 1),
#else
    : MachOSection("__eh_frame", "__TEXT", sizeof(uintptr_t),
                   MachOSection::S_REGULAR),
#endif
      desc_(desc) { }
1639

1640
int UnwindInfoSection::WriteCIE(Writer* w) {
1641 1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653 1654 1655 1656 1657 1658 1659
  Writer::Slot<uint32_t> cie_length_slot = w->CreateSlotHere<uint32_t>();
  uint32_t cie_position = w->position();

  // Write out the CIE header. Currently no 'common instructions' are
  // emitted onto the CIE; every FDE has its own set of instructions.

  w->Write<uint32_t>(CIE_ID);
  w->Write<uint8_t>(CIE_VERSION);
  w->Write<uint8_t>(0);  // Null augmentation string.
  w->WriteSLEB128(CODE_ALIGN_FACTOR);
  w->WriteSLEB128(DATA_ALIGN_FACTOR);
  w->Write<uint8_t>(RETURN_ADDRESS_REGISTER);

  WriteLength(w, &cie_length_slot, cie_position);

  return cie_position;
}


1660
void UnwindInfoSection::WriteFDE(Writer* w, int cie_position) {
1661 1662 1663 1664 1665 1666 1667 1668 1669 1670 1671 1672 1673 1674 1675 1676 1677
  // The only FDE for this function. The CFA is the current RBP.
  Writer::Slot<uint32_t> fde_length_slot = w->CreateSlotHere<uint32_t>();
  int fde_position = w->position();
  w->Write<int32_t>(fde_position - cie_position + 4);

  w->Write<uintptr_t>(desc_->CodeStart());
  w->Write<uintptr_t>(desc_->CodeSize());

  WriteFDEStateOnEntry(w);
  WriteFDEStateAfterRBPPush(w);
  WriteFDEStateAfterRBPSet(w);
  WriteFDEStateAfterRBPPop(w);

  WriteLength(w, &fde_length_slot, fde_position);
}


1678
void UnwindInfoSection::WriteFDEStateOnEntry(Writer* w) {
1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690 1691 1692 1693 1694 1695 1696 1697 1698 1699 1700 1701 1702 1703 1704
  // The first state, just after the control has been transferred to the the
  // function.

  // RBP for this function will be the value of RSP after pushing the RBP
  // for the previous function. The previous RBP has not been pushed yet.
  w->Write<uint8_t>(DW_CFA_DEF_CFA_SF);
  w->WriteULEB128(AMD64_RSP);
  w->WriteSLEB128(-kPointerSize);

  // The RA is stored at location CFA + kCallerPCOffset. This is an invariant,
  // and hence omitted from the next states.
  w->Write<uint8_t>(DW_CFA_OFFSET_EXTENDED);
  w->WriteULEB128(AMD64_RA);
  w->WriteSLEB128(StandardFrameConstants::kCallerPCOffset);

  // The RBP of the previous function is still in RBP.
  w->Write<uint8_t>(DW_CFA_SAME_VALUE);
  w->WriteULEB128(AMD64_RBP);

  // Last location described by this entry.
  w->Write<uint8_t>(DW_CFA_SET_LOC);
  w->Write<uint64_t>(
      desc_->GetStackStateStartAddress(CodeDescription::POST_RBP_PUSH));
}


1705
void UnwindInfoSection::WriteFDEStateAfterRBPPush(Writer* w) {
1706 1707 1708 1709 1710 1711 1712 1713 1714 1715 1716 1717 1718 1719 1720 1721 1722 1723 1724 1725
  // The second state, just after RBP has been pushed.

  // RBP / CFA for this function is now the current RSP, so just set the
  // offset from the previous rule (from -8) to 0.
  w->Write<uint8_t>(DW_CFA_DEF_CFA_OFFSET);
  w->WriteULEB128(0);

  // The previous RBP is stored at CFA + kCallerFPOffset. This is an invariant
  // in this and the next state, and hence omitted in the next state.
  w->Write<uint8_t>(DW_CFA_OFFSET_EXTENDED);
  w->WriteULEB128(AMD64_RBP);
  w->WriteSLEB128(StandardFrameConstants::kCallerFPOffset);

  // Last location described by this entry.
  w->Write<uint8_t>(DW_CFA_SET_LOC);
  w->Write<uint64_t>(
      desc_->GetStackStateStartAddress(CodeDescription::POST_RBP_SET));
}


1726
void UnwindInfoSection::WriteFDEStateAfterRBPSet(Writer* w) {
1727 1728 1729 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740
  // The third state, after the RBP has been set.

  // The CFA can now directly be set to RBP.
  w->Write<uint8_t>(DW_CFA_DEF_CFA);
  w->WriteULEB128(AMD64_RBP);
  w->WriteULEB128(0);

  // Last location described by this entry.
  w->Write<uint8_t>(DW_CFA_SET_LOC);
  w->Write<uint64_t>(
      desc_->GetStackStateStartAddress(CodeDescription::POST_RBP_POP));
}


1741
void UnwindInfoSection::WriteFDEStateAfterRBPPop(Writer* w) {
1742 1743 1744 1745 1746 1747 1748 1749 1750 1751 1752 1753 1754 1755 1756 1757 1758 1759 1760
  // The fourth (final) state. The RBP has been popped (just before issuing a
  // return).

  // The CFA can is now calculated in the same way as in the first state.
  w->Write<uint8_t>(DW_CFA_DEF_CFA_SF);
  w->WriteULEB128(AMD64_RSP);
  w->WriteSLEB128(-kPointerSize);

  // The RBP
  w->Write<uint8_t>(DW_CFA_OFFSET_EXTENDED);
  w->WriteULEB128(AMD64_RBP);
  w->WriteSLEB128(StandardFrameConstants::kCallerFPOffset);

  // Last location described by this entry.
  w->Write<uint8_t>(DW_CFA_SET_LOC);
  w->Write<uint64_t>(desc_->CodeEnd());
}


1761
bool UnwindInfoSection::WriteBodyInternal(Writer* w) {
1762 1763 1764 1765 1766 1767 1768 1769
  uint32_t cie_position = WriteCIE(w);
  WriteFDE(w, cie_position);
  return true;
}


#endif  // V8_TARGET_ARCH_X64

1770 1771 1772
static void CreateDWARFSections(CodeDescription* desc,
                                Zone* zone,
                                DebugObject* obj) {
1773
  if (desc->IsLineInfoAvailable()) {
1774 1775 1776
    obj->AddSection(new(zone) DebugInfoSection(desc));
    obj->AddSection(new(zone) DebugAbbrevSection(desc));
    obj->AddSection(new(zone) DebugLineSection(desc));
1777
  }
1778
#if V8_TARGET_ARCH_X64
1779
  obj->AddSection(new(zone) UnwindInfoSection(desc));
1780
#endif
1781 1782 1783 1784 1785 1786 1787 1788 1789 1790 1791 1792 1793 1794 1795 1796 1797 1798 1799 1800 1801 1802 1803
}


// -------------------------------------------------------------------
// Binary GDB JIT Interface as described in
//   http://sourceware.org/gdb/onlinedocs/gdb/Declarations.html
extern "C" {
  typedef enum {
    JIT_NOACTION = 0,
    JIT_REGISTER_FN,
    JIT_UNREGISTER_FN
  } JITAction;

  struct JITCodeEntry {
    JITCodeEntry* next_;
    JITCodeEntry* prev_;
    Address symfile_addr_;
    uint64_t symfile_size_;
  };

  struct JITDescriptor {
    uint32_t version_;
    uint32_t action_flag_;
1804 1805
    JITCodeEntry* relevant_entry_;
    JITCodeEntry* first_entry_;
1806 1807 1808 1809 1810 1811
  };

  // GDB will place breakpoint into this function.
  // To prevent GCC from inlining or removing it we place noinline attribute
  // and inline assembler statement inside.
  void __attribute__((noinline)) __jit_debug_register_code() {
1812
    __asm__("");
1813 1814 1815 1816 1817 1818
  }

  // GDB will inspect contents of this descriptor.
  // Static initialization is necessary to prevent GDB from seeing
  // uninitialized descriptor.
  JITDescriptor __jit_debug_descriptor = { 1, 0, 0, 0 };
1819 1820

#ifdef OBJECT_PRINT
1821
  void __gdb_print_v8_object(Object* object) {
1822
    object->Print();
1823
    PrintF(stdout, "\n");
1824 1825
  }
#endif
1826 1827 1828 1829 1830 1831 1832 1833 1834 1835
}


static JITCodeEntry* CreateCodeEntry(Address symfile_addr,
                                     uintptr_t symfile_size) {
  JITCodeEntry* entry = static_cast<JITCodeEntry*>(
      malloc(sizeof(JITCodeEntry) + symfile_size));

  entry->symfile_addr_ = reinterpret_cast<Address>(entry + 1);
  entry->symfile_size_ = symfile_size;
1836
  OS::MemCopy(entry->symfile_addr_, symfile_addr, symfile_size);
1837 1838 1839 1840 1841 1842 1843 1844 1845 1846 1847 1848

  entry->prev_ = entry->next_ = NULL;

  return entry;
}


static void DestroyCodeEntry(JITCodeEntry* entry) {
  free(entry);
}


1849 1850 1851
static void RegisterCodeEntry(JITCodeEntry* entry,
                              bool dump_if_enabled,
                              const char* name_hint) {
1852
#if defined(DEBUG) && !V8_OS_WIN
1853
  static int file_num = 0;
1854
  if (FLAG_gdbjit_dump && dump_if_enabled) {
1855 1856 1857 1858 1859
    static const int kMaxFileNameSize = 64;
    static const char* kElfFilePrefix = "/tmp/elfdump";
    static const char* kObjFileExt = ".o";
    char file_name[64];

1860 1861 1862 1863 1864 1865
    OS::SNPrintF(Vector<char>(file_name, kMaxFileNameSize),
                 "%s%s%d%s",
                 kElfFilePrefix,
                 (name_hint != NULL) ? name_hint : "",
                 file_num++,
                 kObjFileExt);
1866 1867 1868 1869
    WriteBytes(file_name, entry->symfile_addr_, entry->symfile_size_);
  }
#endif

1870 1871 1872 1873 1874 1875 1876 1877 1878 1879 1880 1881 1882 1883 1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894 1895 1896
  entry->next_ = __jit_debug_descriptor.first_entry_;
  if (entry->next_ != NULL) entry->next_->prev_ = entry;
  __jit_debug_descriptor.first_entry_ =
      __jit_debug_descriptor.relevant_entry_ = entry;

  __jit_debug_descriptor.action_flag_ = JIT_REGISTER_FN;
  __jit_debug_register_code();
}


static void UnregisterCodeEntry(JITCodeEntry* entry) {
  if (entry->prev_ != NULL) {
    entry->prev_->next_ = entry->next_;
  } else {
    __jit_debug_descriptor.first_entry_ = entry->next_;
  }

  if (entry->next_ != NULL) {
    entry->next_->prev_ = entry->prev_;
  }

  __jit_debug_descriptor.relevant_entry_ = entry;
  __jit_debug_descriptor.action_flag_ = JIT_UNREGISTER_FN;
  __jit_debug_register_code();
}


1897
static JITCodeEntry* CreateELFObject(CodeDescription* desc, Isolate* isolate) {
1898
#ifdef __MACH_O
1899 1900
  Zone zone(isolate);
  MachO mach_o(&zone);
1901 1902
  Writer w(&mach_o);

1903 1904 1905
  mach_o.AddSection(new(&zone) MachOTextSection(kCodeAlignment,
                                                desc->CodeStart(),
                                                desc->CodeSize()));
1906

1907
  CreateDWARFSections(desc, &zone, &mach_o);
1908

1909 1910
  mach_o.Write(&w, desc->CodeStart(), desc->CodeSize());
#else
1911 1912
  Zone zone(isolate);
  ELF elf(&zone);
1913 1914 1915
  Writer w(&elf);

  int text_section_index = elf.AddSection(
1916
      new(&zone) FullHeaderELFSection(
1917 1918 1919 1920 1921 1922
          ".text",
          ELFSection::TYPE_NOBITS,
          kCodeAlignment,
          desc->CodeStart(),
          0,
          desc->CodeSize(),
1923
          ELFSection::FLAG_ALLOC | ELFSection::FLAG_EXEC));
1924

1925
  CreateSymbolsTable(desc, &zone, &elf, text_section_index);
1926

1927
  CreateDWARFSections(desc, &zone, &elf);
1928 1929

  elf.Write(&w);
1930
#endif
1931 1932 1933 1934 1935 1936 1937 1938 1939 1940

  return CreateCodeEntry(w.buffer(), w.position());
}


static bool SameCodeObjects(void* key1, void* key2) {
  return key1 == key2;
}


1941 1942 1943 1944 1945 1946 1947
static HashMap* GetEntries() {
  static HashMap* entries = NULL;
  if (entries == NULL) {
    entries = new HashMap(&SameCodeObjects);
  }
  return entries;
}
1948 1949 1950 1951 1952 1953 1954 1955 1956 1957 1958 1959 1960 1961 1962 1963 1964 1965 1966 1967 1968 1969 1970 1971 1972 1973 1974 1975 1976


static uint32_t HashForCodeObject(Code* code) {
  static const uintptr_t kGoldenRatio = 2654435761u;
  uintptr_t hash = reinterpret_cast<uintptr_t>(code->address());
  return static_cast<uint32_t>((hash >> kCodeAlignmentBits) * kGoldenRatio);
}


static const intptr_t kLineInfoTag = 0x1;


static bool IsLineInfoTagged(void* ptr) {
  return 0 != (reinterpret_cast<intptr_t>(ptr) & kLineInfoTag);
}


static void* TagLineInfo(GDBJITLineInfo* ptr) {
  return reinterpret_cast<void*>(
      reinterpret_cast<intptr_t>(ptr) | kLineInfoTag);
}


static GDBJITLineInfo* UntagLineInfo(void* ptr) {
  return reinterpret_cast<GDBJITLineInfo*>(
      reinterpret_cast<intptr_t>(ptr) & ~kLineInfoTag);
}


1977
void GDBJITInterface::AddCode(Handle<Name> name,
1978
                              Handle<Script> script,
1979 1980
                              Handle<Code> code,
                              CompilationInfo* info) {
1981 1982
  if (!FLAG_gdbjit) return;

1983
  Script::InitLineEnds(script);
1984

1985 1986 1987
  if (!name.is_null() && name->IsString()) {
    SmartArrayPointer<char> name_cstring =
        Handle<String>::cast(name)->ToCString(DISALLOW_NULLS);
1988 1989
    AddCode(name_cstring.get(), *code, GDBJITInterface::FUNCTION, *script,
            info);
1990
  } else {
1991
    AddCode("", *code, GDBJITInterface::FUNCTION, *script, info);
1992 1993 1994
  }
}

1995

1996
static void AddUnwindInfo(CodeDescription* desc) {
1997
#if V8_TARGET_ARCH_X64
1998 1999
  if (desc->tag() == GDBJITInterface::FUNCTION) {
    // To avoid propagating unwinding information through
2000 2001
    // compilation pipeline we use an approximation.
    // For most use cases this should not affect usability.
2002 2003 2004 2005 2006 2007 2008 2009 2010 2011 2012 2013 2014 2015 2016 2017 2018 2019 2020
    static const int kFramePointerPushOffset = 1;
    static const int kFramePointerSetOffset = 4;
    static const int kFramePointerPopOffset = -3;

    uintptr_t frame_pointer_push_address =
        desc->CodeStart() + kFramePointerPushOffset;

    uintptr_t frame_pointer_set_address =
        desc->CodeStart() + kFramePointerSetOffset;

    uintptr_t frame_pointer_pop_address =
        desc->CodeEnd() + kFramePointerPopOffset;

    desc->SetStackStateStartAddress(CodeDescription::POST_RBP_PUSH,
                                    frame_pointer_push_address);
    desc->SetStackStateStartAddress(CodeDescription::POST_RBP_SET,
                                    frame_pointer_set_address);
    desc->SetStackStateStartAddress(CodeDescription::POST_RBP_POP,
                                    frame_pointer_pop_address);
2021
  } else {
2022 2023 2024 2025 2026 2027
    desc->SetStackStateStartAddress(CodeDescription::POST_RBP_PUSH,
                                    desc->CodeStart());
    desc->SetStackStateStartAddress(CodeDescription::POST_RBP_SET,
                                    desc->CodeStart());
    desc->SetStackStateStartAddress(CodeDescription::POST_RBP_POP,
                                    desc->CodeEnd());
2028
  }
2029
#endif  // V8_TARGET_ARCH_X64
2030 2031 2032
}


2033
static LazyMutex mutex = LAZY_MUTEX_INITIALIZER;
2034 2035


2036 2037
void GDBJITInterface::AddCode(const char* name,
                              Code* code,
2038
                              GDBJITInterface::CodeTag tag,
2039 2040
                              Script* script,
                              CompilationInfo* info) {
2041
  if (!FLAG_gdbjit) return;
2042

2043
  LockGuard<Mutex> lock_guard(mutex.Pointer());
2044
  DisallowHeapAllocation no_gc;
2045

2046
  HashMap::Entry* e = GetEntries()->Lookup(code, HashForCodeObject(code), true);
2047 2048 2049 2050 2051 2052 2053
  if (e->value != NULL && !IsLineInfoTagged(e->value)) return;

  GDBJITLineInfo* lineinfo = UntagLineInfo(e->value);
  CodeDescription code_desc(name,
                            code,
                            script != NULL ? Handle<Script>(script)
                                           : Handle<Script>(),
2054
                            lineinfo,
2055 2056
                            tag,
                            info);
2057

2058
  if (!FLAG_gdbjit_full && !code_desc.IsLineInfoAvailable()) {
2059
    delete lineinfo;
2060
    GetEntries()->Remove(code, HashForCodeObject(code));
2061 2062 2063
    return;
  }

2064
  AddUnwindInfo(&code_desc);
2065 2066
  Isolate* isolate = code->GetIsolate();
  JITCodeEntry* entry = CreateELFObject(&code_desc, isolate);
2067 2068 2069 2070 2071
  ASSERT(!IsLineInfoTagged(entry));

  delete lineinfo;
  e->value = entry;

2072 2073 2074 2075 2076 2077 2078 2079 2080 2081 2082 2083
  const char* name_hint = NULL;
  bool should_dump = false;
  if (FLAG_gdbjit_dump) {
    if (strlen(FLAG_gdbjit_dump_filter) == 0) {
      name_hint = name;
      should_dump = true;
    } else if (name != NULL) {
      name_hint = strstr(name, FLAG_gdbjit_dump_filter);
      should_dump = (name_hint != NULL);
    }
  }
  RegisterCodeEntry(entry, should_dump, name_hint);
2084 2085 2086 2087 2088 2089 2090 2091 2092 2093 2094 2095 2096 2097 2098 2099 2100 2101 2102
}


void GDBJITInterface::AddCode(GDBJITInterface::CodeTag tag,
                              const char* name,
                              Code* code) {
  if (!FLAG_gdbjit) return;

  EmbeddedVector<char, 256> buffer;
  StringBuilder builder(buffer.start(), buffer.length());

  builder.AddString(Tag2String(tag));
  if ((name != NULL) && (*name != '\0')) {
    builder.AddString(": ");
    builder.AddString(name);
  } else {
    builder.AddFormatted(": code object %p", static_cast<void*>(code));
  }

2103
  AddCode(builder.Finalize(), code, tag, NULL, NULL);
2104 2105 2106 2107
}


void GDBJITInterface::AddCode(GDBJITInterface::CodeTag tag,
2108
                              Name* name,
2109 2110
                              Code* code) {
  if (!FLAG_gdbjit) return;
2111
  if (name != NULL && name->IsString()) {
2112
    AddCode(tag, String::cast(name)->ToCString(DISALLOW_NULLS).get(), code);
2113 2114 2115
  } else {
    AddCode(tag, "", code);
  }
2116 2117 2118 2119 2120 2121 2122 2123 2124 2125 2126 2127 2128
}


void GDBJITInterface::AddCode(GDBJITInterface::CodeTag tag, Code* code) {
  if (!FLAG_gdbjit) return;

  AddCode(tag, "", code);
}


void GDBJITInterface::RemoveCode(Code* code) {
  if (!FLAG_gdbjit) return;

2129
  LockGuard<Mutex> lock_guard(mutex.Pointer());
2130 2131 2132
  HashMap::Entry* e = GetEntries()->Lookup(code,
                                           HashForCodeObject(code),
                                           false);
2133 2134 2135 2136 2137 2138 2139 2140 2141 2142
  if (e == NULL) return;

  if (IsLineInfoTagged(e->value)) {
    delete UntagLineInfo(e->value);
  } else {
    JITCodeEntry* entry = static_cast<JITCodeEntry*>(e->value);
    UnregisterCodeEntry(entry);
    DestroyCodeEntry(entry);
  }
  e->value = NULL;
2143
  GetEntries()->Remove(code, HashForCodeObject(code));
2144 2145 2146
}


2147 2148 2149 2150 2151 2152 2153 2154 2155 2156 2157 2158 2159 2160 2161 2162 2163 2164
void GDBJITInterface::RemoveCodeRange(Address start, Address end) {
  HashMap* entries = GetEntries();
  Zone zone(Isolate::Current());
  ZoneList<Code*> dead_codes(1, &zone);

  for (HashMap::Entry* e = entries->Start(); e != NULL; e = entries->Next(e)) {
    Code* code = reinterpret_cast<Code*>(e->key);
    if (code->address() >= start && code->address() < end) {
      dead_codes.Add(code, &zone);
    }
  }

  for (int i = 0; i < dead_codes.length(); i++) {
    RemoveCode(dead_codes.at(i));
  }
}


2165 2166
void GDBJITInterface::RegisterDetailedLineInfo(Code* code,
                                               GDBJITLineInfo* line_info) {
2167
  LockGuard<Mutex> lock_guard(mutex.Pointer());
2168
  ASSERT(!IsLineInfoTagged(line_info));
2169
  HashMap::Entry* e = GetEntries()->Lookup(code, HashForCodeObject(code), true);
2170 2171 2172 2173 2174 2175 2176
  ASSERT(e->value == NULL);
  e->value = TagLineInfo(line_info);
}


} }  // namespace v8::internal
#endif