variables.go 38.2 KB
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package proc
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import (
	"bytes"
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	"debug/dwarf"
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	"encoding/binary"
	"fmt"
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	"go/constant"
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	"go/parser"
	"go/token"
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	"reflect"
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	"strings"
	"unsafe"

	"github.com/derekparker/delve/dwarf/op"
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	"github.com/derekparker/delve/dwarf/reader"
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)

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const (
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	maxVariableRecurse = 1  // How far to recurse when evaluating nested types.
	maxArrayValues     = 64 // Max value for reading large arrays.
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	maxErrCount        = 3  // Max number of read errors to accept while evaluating slices, arrays and structs
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	maxArrayStridePrefetch = 1024 // Maximum size of array stride for which we will prefetch the array contents
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	chanRecv = "chan receive"
	chanSend = "chan send"
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	hashTophashEmpty = 0 // used by map reading code, indicates an empty bucket
	hashMinTopHash   = 4 // used by map reading code, indicates minimum value of tophash that isn't empty or evacuated
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)

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// Variable represents a variable. It contains the address, name,
// type and other information parsed from both the Dwarf information
// and the memory of the debugged process.
// If OnlyAddr is true, the variables value has not been loaded.
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type Variable struct {
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	Addr      uintptr
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	OnlyAddr  bool
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	Name      string
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	DwarfType dwarf.Type
	RealType  dwarf.Type
	Kind      reflect.Kind
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	mem       memoryReadWriter
	dbp       *Process
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	Value constant.Value
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	Len int64
	Cap int64

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	// Base address of arrays, Base address of the backing array for slices (0 for nil slices)
	// Base address of the backing byte array for strings
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	// address of the struct backing chan and map variables
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	// address of the function entry point for function variables (0 for nil function pointers)
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	Base      uintptr
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	stride    int64
	fieldType dwarf.Type
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	// number of elements to skip when loading a map
	mapSkip int

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	Children []Variable

	loaded     bool
	Unreadable error
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}

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// M represents a runtime M (OS thread) structure.
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type M struct {
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	procid   int     // Thread ID or port.
	spinning uint8   // Busy looping.
	blocked  uint8   // Waiting on futex / semaphore.
	curg     uintptr // Current G running on this thread.
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}

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// G status, from: src/runtime/runtime2.go
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const (
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	Gidle           uint64 = iota // 0
	Grunnable                     // 1 runnable and on a run queue
	Grunning                      // 2
	Gsyscall                      // 3
	Gwaiting                      // 4
	GmoribundUnused               // 5 currently unused, but hardcoded in gdb scripts
	Gdead                         // 6
	Genqueue                      // 7 Only the Gscanenqueue is used.
	Gcopystack                    // 8 in this state when newstack is moving the stack
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)

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// G represents a runtime G (goroutine) structure (at least the
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// fields that Delve is interested in).
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type G struct {
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	ID         int    // Goroutine ID
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	PC         uint64 // PC of goroutine when it was parked.
	SP         uint64 // SP of goroutine when it was parked.
	GoPC       uint64 // PC of 'go' statement that created this goroutine.
	WaitReason string // Reason for goroutine being parked.
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	Status     uint64
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	// Information on goroutine location
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	CurrentLoc Location
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	// PC of entry to top-most deferred function.
	DeferPC uint64
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	// Thread that this goroutine is currently allocated to
	thread *Thread
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	dbp *Process
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}

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// EvalScope is the scope for variable evaluation. Contains the thread,
// current location (PC), and canonical frame address.
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type EvalScope struct {
	Thread *Thread
	PC     uint64
	CFA    int64
}

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// IsNilErr is returned when a variable is nil.
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type IsNilErr struct {
	name string
}

func (err *IsNilErr) Error() string {
	return fmt.Sprintf("%s is nil", err.name)
}

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func ptrTypeKind(t *dwarf.PtrType) reflect.Kind {
	structtyp, isstruct := t.Type.(*dwarf.StructType)
	_, isvoid := t.Type.(*dwarf.VoidType)
	if isstruct && strings.HasPrefix(structtyp.StructName, "hchan<") {
		return reflect.Chan
	} else if isstruct && strings.HasPrefix(structtyp.StructName, "hash<") {
		return reflect.Map
	} else if isvoid {
		return reflect.UnsafePointer
	}
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	return reflect.Ptr
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}

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func (scope *EvalScope) newVariable(name string, addr uintptr, dwarfType dwarf.Type) *Variable {
	return newVariable(name, addr, dwarfType, scope.Thread.dbp, scope.Thread)
}

func (v *Variable) newVariable(name string, addr uintptr, dwarfType dwarf.Type) *Variable {
	return newVariable(name, addr, dwarfType, v.dbp, v.mem)
}

func newVariable(name string, addr uintptr, dwarfType dwarf.Type, dbp *Process, mem memoryReadWriter) *Variable {
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	v := &Variable{
		Name:      name,
		Addr:      addr,
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		DwarfType: dwarfType,
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		mem:       mem,
		dbp:       dbp,
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	}

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	v.RealType = resolveTypedef(v.DwarfType)
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	switch t := v.RealType.(type) {
	case *dwarf.PtrType:
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		v.Kind = ptrTypeKind(t)
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	case *dwarf.StructType:
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		switch {
		case t.StructName == "string":
			v.Kind = reflect.String
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			v.stride = 1
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			v.fieldType = &dwarf.UintType{BasicType: dwarf.BasicType{CommonType: dwarf.CommonType{ByteSize: 1, Name: "byte"}, BitSize: 8, BitOffset: 0}}
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			if v.Addr != 0 {
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				v.Base, v.Len, v.Unreadable = readStringInfo(v.mem, v.dbp.arch, v.Addr)
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			}
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		case t.StructName == "runtime.iface" || t.StructName == "runtime.eface":
			v.Kind = reflect.Interface
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		case strings.HasPrefix(t.StructName, "[]"):
			v.Kind = reflect.Slice
			if v.Addr != 0 {
				v.loadSliceInfo(t)
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			}
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		default:
			v.Kind = reflect.Struct
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		}
	case *dwarf.ArrayType:
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		v.Kind = reflect.Array
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		v.Base = v.Addr
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		v.Len = t.Count
		v.Cap = -1
		v.fieldType = t.Type
		v.stride = 0

		if t.Count > 0 {
			v.stride = t.ByteSize / t.Count
		}
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	case *dwarf.ComplexType:
		switch t.ByteSize {
		case 8:
			v.Kind = reflect.Complex64
		case 16:
			v.Kind = reflect.Complex128
		}
	case *dwarf.IntType:
		v.Kind = reflect.Int
	case *dwarf.UintType:
		v.Kind = reflect.Uint
	case *dwarf.FloatType:
		switch t.ByteSize {
		case 4:
			v.Kind = reflect.Float32
		case 8:
			v.Kind = reflect.Float64
		}
	case *dwarf.BoolType:
		v.Kind = reflect.Bool
	case *dwarf.FuncType:
		v.Kind = reflect.Func
	case *dwarf.VoidType:
		v.Kind = reflect.Invalid
	case *dwarf.UnspecifiedType:
		v.Kind = reflect.Invalid
	default:
		v.Unreadable = fmt.Errorf("Unknown type: %T", t)
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	}

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	return v
}

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func resolveTypedef(typ dwarf.Type) dwarf.Type {
	for {
		if tt, ok := typ.(*dwarf.TypedefType); ok {
			typ = tt.Type
		} else {
			return typ
		}
	}
}

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func newConstant(val constant.Value, mem memoryReadWriter) *Variable {
	v := &Variable{Value: val, mem: mem, loaded: true}
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	switch val.Kind() {
	case constant.Int:
		v.Kind = reflect.Int
	case constant.Float:
		v.Kind = reflect.Float64
	case constant.Bool:
		v.Kind = reflect.Bool
	case constant.Complex:
		v.Kind = reflect.Complex128
	case constant.String:
		v.Kind = reflect.String
		v.Len = int64(len(constant.StringVal(val)))
	}
	return v
}

var nilVariable = &Variable{
	Addr:     0,
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	Base:     0,
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	Kind:     reflect.Ptr,
	Children: []Variable{{Addr: 0, OnlyAddr: true}},
}

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func (v *Variable) clone() *Variable {
	r := *v
	return &r
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}

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// TypeString returns the string representation
// of the type of this variable.
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func (v *Variable) TypeString() string {
	if v == nilVariable {
		return "nil"
	}
	if v.DwarfType != nil {
		return v.DwarfType.String()
	}
	return v.Kind.String()
}

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func (v *Variable) toField(field *dwarf.StructField) (*Variable, error) {
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	if v.Unreadable != nil {
		return v.clone(), nil
	}
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	if v.Addr == 0 {
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		return nil, &IsNilErr{v.Name}
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	}

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	name := ""
	if v.Name != "" {
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		parts := strings.Split(field.Name, ".")
		if len(parts) > 1 {
			name = fmt.Sprintf("%s.%s", v.Name, parts[1])
		} else {
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			name = fmt.Sprintf("%s.%s", v.Name, field.Name)
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		}
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	}
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	return v.newVariable(name, uintptr(int64(v.Addr)+field.ByteOffset), field.Type), nil
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}

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// DwarfReader returns the DwarfReader containing the
// Dwarf information for the target process.
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func (scope *EvalScope) DwarfReader() *reader.Reader {
	return scope.Thread.dbp.DwarfReader()
}

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// Type returns the Dwarf type entry at `offset`.
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func (scope *EvalScope) Type(offset dwarf.Offset) (dwarf.Type, error) {
	return scope.Thread.dbp.dwarf.Type(offset)
}

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// PtrSize returns the size of a pointer.
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func (scope *EvalScope) PtrSize() int {
	return scope.Thread.dbp.arch.PtrSize()
}

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// ChanRecvBlocked returns whether the goroutine is blocked on
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// a channel read operation.
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func (g *G) ChanRecvBlocked() bool {
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	return g.WaitReason == chanRecv
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}

// chanRecvReturnAddr returns the address of the return from a channel read.
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func (g *G) chanRecvReturnAddr(dbp *Process) (uint64, error) {
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	locs, err := dbp.GoroutineStacktrace(g, 4)
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	if err != nil {
		return 0, err
	}
	topLoc := locs[len(locs)-1]
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	return topLoc.Current.PC, nil
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}

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// NoGError returned when a G could not be found
// for a specific thread.
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type NoGError struct {
	tid int
}

func (ng NoGError) Error() string {
	return fmt.Sprintf("no G executing on thread %d", ng.tid)
}

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func parseG(thread *Thread, gaddr uint64, deref bool) (*G, error) {
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	initialInstructions := make([]byte, thread.dbp.arch.PtrSize()+1)
	initialInstructions[0] = op.DW_OP_addr
	binary.LittleEndian.PutUint64(initialInstructions[1:], gaddr)
	if deref {
		gaddrbytes, err := thread.readMemory(uintptr(gaddr), thread.dbp.arch.PtrSize())
		if err != nil {
			return nil, fmt.Errorf("error derefing *G %s", err)
		}
		initialInstructions = append([]byte{op.DW_OP_addr}, gaddrbytes...)
		gaddr = binary.LittleEndian.Uint64(gaddrbytes)
		if gaddr == 0 {
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			return nil, NoGError{tid: thread.ID}
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		}
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	}
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	rdr := thread.dbp.DwarfReader()
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	rdr.Seek(0)
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	entry, err := rdr.SeekToTypeNamed("runtime.g")
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	if err != nil {
		return nil, err
	}
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	var mem memoryReadWriter = thread
	if gtype, err := thread.dbp.dwarf.Type(entry.Offset); err == nil {
		mem = cacheMemory(thread, uintptr(gaddr), int(gtype.Size()))
	}

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	// Parse defer
	deferAddr, err := rdr.AddrForMember("_defer", initialInstructions)
	if err != nil {
		return nil, err
	}
	var deferPC uint64
	// Dereference *defer pointer
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	deferAddrBytes, err := mem.readMemory(uintptr(deferAddr), thread.dbp.arch.PtrSize())
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	if err != nil {
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		return nil, fmt.Errorf("error derefing defer %s", err)
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	}
	if binary.LittleEndian.Uint64(deferAddrBytes) != 0 {
		initialDeferInstructions := append([]byte{op.DW_OP_addr}, deferAddrBytes...)
		_, err = rdr.SeekToTypeNamed("runtime._defer")
		if err != nil {
			return nil, err
		}
		deferPCAddr, err := rdr.AddrForMember("fn", initialDeferInstructions)
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		deferPC, err = readUintRaw(mem, uintptr(deferPCAddr), 8)
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		if err != nil {
			return nil, err
		}
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		deferPC, err = readUintRaw(mem, uintptr(deferPC), 8)
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		if err != nil {
			return nil, err
		}
	}
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	// Let's parse all of the members we care about in order so that
	// we don't have to spend any extra time seeking.

	err = rdr.SeekToEntry(entry)
	if err != nil {
		return nil, err
	}

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	// Parse sched
	schedAddr, err := rdr.AddrForMember("sched", initialInstructions)
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	if err != nil {
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		return nil, err
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	}
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	// From sched, let's parse PC and SP.
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	sp, err := readUintRaw(mem, uintptr(schedAddr), 8)
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	if err != nil {
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		return nil, err
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	}
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	pc, err := readUintRaw(mem, uintptr(schedAddr+uint64(thread.dbp.arch.PtrSize())), 8)
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	if err != nil {
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		return nil, err
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	}
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	// Parse atomicstatus
	atomicStatusAddr, err := rdr.AddrForMember("atomicstatus", initialInstructions)
	if err != nil {
		return nil, err
	}
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	atomicStatus, err := readUintRaw(mem, uintptr(atomicStatusAddr), 4)
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	// Parse goid
	goidAddr, err := rdr.AddrForMember("goid", initialInstructions)
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	if err != nil {
		return nil, err
	}
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	goid, err := readIntRaw(mem, uintptr(goidAddr), 8)
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	if err != nil {
		return nil, err
	}
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	// Parse waitreason
	waitReasonAddr, err := rdr.AddrForMember("waitreason", initialInstructions)
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	if err != nil {
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		return nil, err
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	}
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	waitreason, _, err := readString(mem, thread.dbp.arch, uintptr(waitReasonAddr))
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	if err != nil {
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		return nil, err
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	}
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	// Parse gopc
	gopcAddr, err := rdr.AddrForMember("gopc", initialInstructions)
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	if err != nil {
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		return nil, err
	}
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	gopc, err := readUintRaw(mem, uintptr(gopcAddr), 8)
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	if err != nil {
		return nil, err
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	}
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	f, l, fn := thread.dbp.goSymTable.PCToLine(pc)
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	g := &G{
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		ID:         int(goid),
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		GoPC:       gopc,
		PC:         pc,
		SP:         sp,
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		CurrentLoc: Location{PC: pc, File: f, Line: l, Fn: fn},
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		WaitReason: waitreason,
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		DeferPC:    deferPC,
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		Status:     atomicStatus,
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		dbp:        thread.dbp,
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	}
	return g, nil
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}

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// From $GOROOT/src/runtime/traceback.go:597
// isExportedRuntime reports whether name is an exported runtime function.
// It is only for runtime functions, so ASCII A-Z is fine.
func isExportedRuntime(name string) bool {
	const n = len("runtime.")
	return len(name) > n && name[:n] == "runtime." && 'A' <= name[n] && name[n] <= 'Z'
}

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// UserCurrent returns the location the users code is at,
// or was at before entering a runtime function.
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func (g *G) UserCurrent() Location {
	pc, sp := g.PC, g.SP
	if g.thread != nil {
		regs, err := g.thread.Registers()
		if err != nil {
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			return g.CurrentLoc
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		}
		pc, sp = regs.PC(), regs.SP()
	}
	it := newStackIterator(g.dbp, pc, sp)
	for it.Next() {
		frame := it.Frame()
		name := frame.Call.Fn.Name
		if (strings.Index(name, ".") >= 0) && (!strings.HasPrefix(name, "runtime.") || isExportedRuntime(name)) {
			return frame.Call
		}
	}
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	return g.CurrentLoc
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}

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// Go returns the location of the 'go' statement
// that spawned this goroutine.
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func (g *G) Go() Location {
	f, l, fn := g.dbp.goSymTable.PCToLine(g.GoPC)
	return Location{PC: g.GoPC, File: f, Line: l, Fn: fn}
}

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// EvalVariable returns the value of the given expression (backwards compatibility).
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func (scope *EvalScope) EvalVariable(name string) (*Variable, error) {
	return scope.EvalExpression(name)
}
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// SetVariable sets the value of the named variable
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func (scope *EvalScope) SetVariable(name, value string) error {
	t, err := parser.ParseExpr(name)
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	if err != nil {
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		return err
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	}

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	xv, err := scope.evalAST(t)
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	if err != nil {
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		return err
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	}
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	if xv.Addr == 0 {
		return fmt.Errorf("Can not assign to \"%s\"", name)
	}

	if xv.Unreadable != nil {
		return fmt.Errorf("Expression \"%s\" is unreadable: %v", name, xv.Unreadable)
	}

	t, err = parser.ParseExpr(value)
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	if err != nil {
		return err
	}
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	yv, err := scope.evalAST(t)
	if err != nil {
		return err
	}

	yv.loadValue()

	if err := yv.isType(xv.RealType, xv.Kind); err != nil {
		return err
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	}
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	if yv.Unreadable != nil {
		return fmt.Errorf("Expression \"%s\" is unreadable: %v", value, yv.Unreadable)
	}

	return xv.setValue(yv)
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}

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func (scope *EvalScope) extractVariableFromEntry(entry *dwarf.Entry) (*Variable, error) {
	rdr := scope.DwarfReader()
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	v, err := scope.extractVarInfoFromEntry(entry, rdr)
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	if err != nil {
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		return nil, err
	}
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	v.loadValue()
	return v, nil
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}
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func (scope *EvalScope) extractVarInfo(varName string) (*Variable, error) {
	reader := scope.DwarfReader()

	_, err := reader.SeekToFunction(scope.PC)
	if err != nil {
		return nil, err
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	}

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	for entry, err := reader.NextScopeVariable(); entry != nil; entry, err = reader.NextScopeVariable() {
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		if err != nil {
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			return nil, err
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		}

		n, ok := entry.Val(dwarf.AttrName).(string)
		if !ok {
			continue
		}

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		if n == varName {
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			return scope.extractVarInfoFromEntry(entry, reader)
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		}
	}
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	return nil, fmt.Errorf("could not find symbol value for %s", varName)
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}
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// LocalVariables returns all local variables from the current function scope.
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func (scope *EvalScope) LocalVariables() ([]*Variable, error) {
	return scope.variablesByTag(dwarf.TagVariable)
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}

// FunctionArguments returns the name, value, and type of all current function arguments.
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func (scope *EvalScope) FunctionArguments() ([]*Variable, error) {
	return scope.variablesByTag(dwarf.TagFormalParameter)
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}

// PackageVariables returns the name, value, and type of all package variables in the application.
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func (scope *EvalScope) PackageVariables() ([]*Variable, error) {
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	var vars []*Variable
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	reader := scope.DwarfReader()
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	for entry, err := reader.NextPackageVariable(); entry != nil; entry, err = reader.NextPackageVariable() {
		if err != nil {
			return nil, err
		}

		// Ignore errors trying to extract values
609
		val, err := scope.extractVariableFromEntry(entry)
610 611 612 613 614 615 616 617 618
		if err != nil {
			continue
		}
		vars = append(vars, val)
	}

	return vars, nil
}

D
Derek Parker 已提交
619 620
// EvalPackageVariable will evaluate the package level variable
// specified by 'name'.
621 622
func (dbp *Process) EvalPackageVariable(name string) (*Variable, error) {
	scope := &EvalScope{Thread: dbp.CurrentThread, PC: 0, CFA: 0}
623

624
	v, err := scope.packageVarAddr(name)
625 626 627
	if err != nil {
		return nil, err
	}
628 629
	v.loadValue()
	return v, nil
630 631 632 633
}

func (scope *EvalScope) packageVarAddr(name string) (*Variable, error) {
	reader := scope.DwarfReader()
634 635 636 637 638 639 640 641 642 643 644
	for entry, err := reader.NextPackageVariable(); entry != nil; entry, err = reader.NextPackageVariable() {
		if err != nil {
			return nil, err
		}

		n, ok := entry.Val(dwarf.AttrName).(string)
		if !ok {
			continue
		}

		if n == name {
645
			return scope.extractVarInfoFromEntry(entry, reader)
646 647 648 649 650
		}
	}
	return nil, fmt.Errorf("could not find symbol value for %s", name)
}

651
func (v *Variable) structMember(memberName string) (*Variable, error) {
652 653 654 655
	if v.Unreadable != nil {
		return v.clone(), nil
	}
	structVar := v.maybeDereference()
656
	structVar.Name = v.Name
657 658
	if structVar.Unreadable != nil {
		return structVar, nil
659
	}
660 661

	switch t := structVar.RealType.(type) {
662 663 664 665
	case *dwarf.StructType:
		for _, field := range t.Field {
			if field.Name != memberName {
				continue
666
			}
L
Luke Hoban 已提交
667
			return structVar.toField(field)
668 669 670 671 672 673
		}
		// Check for embedded field only if field was
		// not a regular struct member
		for _, field := range t.Field {
			isEmbeddedStructMember :=
				(field.Type.String() == ("struct " + field.Name)) ||
D
Derek Parker 已提交
674 675 676
					(len(field.Name) > 1 &&
						field.Name[0] == '*' &&
						field.Type.String()[1:] == ("struct "+field.Name[1:]))
677 678 679 680 681 682
			if !isEmbeddedStructMember {
				continue
			}
			// Check for embedded field referenced by type name
			parts := strings.Split(field.Name, ".")
			if len(parts) > 1 && parts[1] == memberName {
L
Luke Hoban 已提交
683
				embeddedVar, err := structVar.toField(field)
684 685 686 687 688 689
				if err != nil {
					return nil, err
				}
				return embeddedVar, nil
			}
			// Recursively check for promoted fields on the embedded field
L
Luke Hoban 已提交
690
			embeddedVar, err := structVar.toField(field)
691 692 693 694 695 696 697
			if err != nil {
				return nil, err
			}
			embeddedVar.Name = structVar.Name
			embeddedField, err := embeddedVar.structMember(memberName)
			if embeddedField != nil {
				return embeddedField, nil
698 699
			}
		}
700 701
		return nil, fmt.Errorf("%s has no member %s", v.Name, memberName)
	default:
702 703 704
		if v.Name == "" {
			return nil, fmt.Errorf("type %s is not a struct", structVar.TypeString())
		}
D
Derek Parker 已提交
705
		return nil, fmt.Errorf("%s (type %s) is not a struct", v.Name, structVar.TypeString())
706
	}
707 708
}

709 710 711
// Extracts the name and type of a variable from a dwarf entry
// then executes the instructions given in the  DW_AT_location attribute to grab the variable's address
func (scope *EvalScope) extractVarInfoFromEntry(entry *dwarf.Entry, rdr *reader.Reader) (*Variable, error) {
E
epipho 已提交
712
	if entry == nil {
D
Derek Parker 已提交
713
		return nil, fmt.Errorf("invalid entry")
E
epipho 已提交
714 715 716 717 718 719 720 721
	}

	if entry.Tag != dwarf.TagFormalParameter && entry.Tag != dwarf.TagVariable {
		return nil, fmt.Errorf("invalid entry tag, only supports FormalParameter and Variable, got %s", entry.Tag.String())
	}

	n, ok := entry.Val(dwarf.AttrName).(string)
	if !ok {
D
Derek Parker 已提交
722
		return nil, fmt.Errorf("type assertion failed")
E
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723 724 725 726
	}

	offset, ok := entry.Val(dwarf.AttrType).(dwarf.Offset)
	if !ok {
D
Derek Parker 已提交
727
		return nil, fmt.Errorf("type assertion failed")
E
epipho 已提交
728 729
	}

730
	t, err := scope.Type(offset)
E
epipho 已提交
731 732 733 734 735 736
	if err != nil {
		return nil, err
	}

	instructions, ok := entry.Val(dwarf.AttrLocation).([]byte)
	if !ok {
D
Derek Parker 已提交
737
		return nil, fmt.Errorf("type assertion failed")
E
epipho 已提交
738 739
	}

740
	addr, err := op.ExecuteStackProgram(scope.CFA, instructions)
E
epipho 已提交
741 742 743 744
	if err != nil {
		return nil, err
	}

745
	return scope.newVariable(n, uintptr(addr), t), nil
E
epipho 已提交
746 747
}

748
// If v is a pointer a new variable is returned containing the value pointed by v.
749 750 751 752
func (v *Variable) maybeDereference() *Variable {
	if v.Unreadable != nil {
		return v
	}
753

754
	switch t := v.RealType.(type) {
755
	case *dwarf.PtrType:
756 757
		ptrval, err := readUintRaw(v.mem, uintptr(v.Addr), t.ByteSize)
		r := v.newVariable("", uintptr(ptrval), t.Type)
758
		if err != nil {
759
			r.Unreadable = err
760 761
		}

762
		return r
763
	default:
764
		return v
765 766
	}
}
767

768
// Extracts the value of the variable at the given address.
769 770
func (v *Variable) loadValue() {
	v.loadValueInternal(0)
771 772
}

773
func (v *Variable) loadValueInternal(recurseLevel int) {
774
	if v.Unreadable != nil || v.loaded || (v.Addr == 0 && v.Base == 0) {
775 776
		return
	}
777

778 779
	v.loaded = true
	switch v.Kind {
A
aarzilli 已提交
780
	case reflect.Ptr, reflect.UnsafePointer:
781 782
		v.Len = 1
		v.Children = []Variable{*v.maybeDereference()}
783
		// Don't increase the recursion level when dereferencing pointers
784 785
		v.Children[0].loadValueInternal(recurseLevel)

A
aarzilli 已提交
786 787 788 789 790
	case reflect.Chan:
		sv := v.maybeDereference()
		sv.loadValueInternal(recurseLevel)
		v.Children = sv.Children
		v.Len = sv.Len
791
		v.Base = sv.Addr
A
aarzilli 已提交
792

A
aarzilli 已提交
793 794 795
	case reflect.Map:
		v.loadMap(recurseLevel)

796
	case reflect.String:
797
		var val string
798
		val, v.Unreadable = readStringValue(v.mem, v.Base, v.Len)
799
		v.Value = constant.MakeString(val)
800 801 802 803 804

	case reflect.Slice, reflect.Array:
		v.loadArrayValues(recurseLevel)

	case reflect.Struct:
805
		v.mem = cacheMemory(v.mem, v.Addr, int(v.RealType.Size()))
806 807 808 809 810 811 812 813 814 815 816 817
		t := v.RealType.(*dwarf.StructType)
		v.Len = int64(len(t.Field))
		// Recursively call extractValue to grab
		// the value of all the members of the struct.
		if recurseLevel <= maxVariableRecurse {
			v.Children = make([]Variable, 0, len(t.Field))
			for i, field := range t.Field {
				f, _ := v.toField(field)
				v.Children = append(v.Children, *f)
				v.Children[i].Name = field.Name
				v.Children[i].loadValueInternal(recurseLevel + 1)
			}
818 819
		}

820 821 822
	case reflect.Interface:
		v.loadInterface(recurseLevel, true)

823 824 825
	case reflect.Complex64, reflect.Complex128:
		v.readComplex(v.RealType.(*dwarf.ComplexType).ByteSize)
	case reflect.Int, reflect.Int8, reflect.Int16, reflect.Int32, reflect.Int64:
826
		var val int64
827
		val, v.Unreadable = readIntRaw(v.mem, v.Addr, v.RealType.(*dwarf.IntType).ByteSize)
828
		v.Value = constant.MakeInt64(val)
829
	case reflect.Uint, reflect.Uint8, reflect.Uint16, reflect.Uint32, reflect.Uint64, reflect.Uintptr:
830
		var val uint64
831
		val, v.Unreadable = readUintRaw(v.mem, v.Addr, v.RealType.(*dwarf.UintType).ByteSize)
832 833
		v.Value = constant.MakeUint64(val)

834
	case reflect.Bool:
835
		val, err := v.mem.readMemory(v.Addr, 1)
836 837
		v.Unreadable = err
		if err == nil {
838
			v.Value = constant.MakeBool(val[0] != 0)
839
		}
840
	case reflect.Float32, reflect.Float64:
841 842 843
		var val float64
		val, v.Unreadable = v.readFloatRaw(v.RealType.(*dwarf.FloatType).ByteSize)
		v.Value = constant.MakeFloat64(val)
844 845
	case reflect.Func:
		v.readFunctionPtr()
846
	default:
847
		v.Unreadable = fmt.Errorf("unknown or unsupported kind: \"%s\"", v.Kind.String())
848 849 850
	}
}

A
aarzilli 已提交
851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868
func (v *Variable) setValue(y *Variable) error {
	var err error
	switch v.Kind {
	case reflect.Float32, reflect.Float64:
		f, _ := constant.Float64Val(y.Value)
		err = v.writeFloatRaw(f, v.RealType.Size())
	case reflect.Int, reflect.Int8, reflect.Int16, reflect.Int32, reflect.Int64:
		n, _ := constant.Int64Val(y.Value)
		err = v.writeUint(uint64(n), v.RealType.Size())
	case reflect.Uint, reflect.Uint8, reflect.Uint16, reflect.Uint32, reflect.Uint64:
		n, _ := constant.Uint64Val(y.Value)
		err = v.writeUint(n, v.RealType.Size())
	case reflect.Bool:
		err = v.writeBool(constant.BoolVal(y.Value))
	case reflect.Complex64, reflect.Complex128:
		real, _ := constant.Float64Val(constant.Real(y.Value))
		imag, _ := constant.Float64Val(constant.Imag(y.Value))
		err = v.writeComplex(real, imag, v.RealType.Size())
869
	default:
A
aarzilli 已提交
870
		fmt.Printf("default\n")
871 872
		if t, isptr := v.RealType.(*dwarf.PtrType); isptr {
			err = v.writeUint(uint64(y.Children[0].Addr), int64(t.ByteSize))
A
aarzilli 已提交
873 874 875
		} else {
			return fmt.Errorf("can not set variables of type %s (not implemented)", v.Kind.String())
		}
876
	}
A
aarzilli 已提交
877 878

	return err
879 880
}

881
func readStringInfo(mem memoryReadWriter, arch Arch, addr uintptr) (uintptr, int64, error) {
882 883 884
	// string data structure is always two ptrs in size. Addr, followed by len
	// http://research.swtch.com/godata

885 886
	mem = cacheMemory(mem, addr, arch.PtrSize()*2)

887
	// read len
888
	val, err := mem.readMemory(addr+uintptr(arch.PtrSize()), arch.PtrSize())
889
	if err != nil {
A
aarzilli 已提交
890
		return 0, 0, fmt.Errorf("could not read string len %s", err)
891
	}
892
	strlen := int64(binary.LittleEndian.Uint64(val))
893
	if strlen < 0 {
A
aarzilli 已提交
894
		return 0, 0, fmt.Errorf("invalid length: %d", strlen)
895
	}
896 897

	// read addr
898
	val, err = mem.readMemory(addr, arch.PtrSize())
899
	if err != nil {
A
aarzilli 已提交
900
		return 0, 0, fmt.Errorf("could not read string pointer %s", err)
901 902
	}
	addr = uintptr(binary.LittleEndian.Uint64(val))
D
Derek Parker 已提交
903
	if addr == 0 {
A
aarzilli 已提交
904
		return 0, 0, nil
D
Derek Parker 已提交
905
	}
D
Derek Parker 已提交
906

A
aarzilli 已提交
907 908 909
	return addr, strlen, nil
}

910
func readStringValue(mem memoryReadWriter, addr uintptr, strlen int64) (string, error) {
A
aarzilli 已提交
911 912 913 914 915
	count := strlen
	if count > maxArrayValues {
		count = maxArrayValues
	}

916
	val, err := mem.readMemory(addr, int(count))
917
	if err != nil {
A
aarzilli 已提交
918
		return "", fmt.Errorf("could not read string at %#v due to %s", addr, err)
919 920
	}

921 922
	retstr := *(*string)(unsafe.Pointer(&val))

A
aarzilli 已提交
923 924 925
	return retstr, nil
}

926 927
func readString(mem memoryReadWriter, arch Arch, addr uintptr) (string, int64, error) {
	addr, strlen, err := readStringInfo(mem, arch, addr)
A
aarzilli 已提交
928 929 930 931
	if err != nil {
		return "", 0, err
	}

932
	retstr, err := readStringValue(mem, addr, strlen)
A
aarzilli 已提交
933
	return retstr, strlen, err
934 935
}

936
func (v *Variable) loadSliceInfo(t *dwarf.StructType) {
937 938
	v.mem = cacheMemory(v.mem, v.Addr, int(t.Size()))

939
	var err error
E
epipho 已提交
940 941 942
	for _, f := range t.Field {
		switch f.Name {
		case "array":
943
			var base uint64
944
			base, err = readUintRaw(v.mem, uintptr(int64(v.Addr)+f.ByteOffset), f.Type.Size())
945
			if err == nil {
946
				v.Base = uintptr(base)
947 948 949
				// Dereference array type to get value type
				ptrType, ok := f.Type.(*dwarf.PtrType)
				if !ok {
950 951
					v.Unreadable = fmt.Errorf("Invalid type %s in slice array", f.Type)
					return
952 953
				}
				v.fieldType = ptrType.Type
E
epipho 已提交
954 955
			}
		case "len":
956 957 958
			lstrAddr, _ := v.toField(f)
			lstrAddr.loadValue()
			err = lstrAddr.Unreadable
959
			if err == nil {
960
				v.Len, _ = constant.Int64Val(lstrAddr.Value)
E
epipho 已提交
961 962
			}
		case "cap":
963 964 965
			cstrAddr, _ := v.toField(f)
			cstrAddr.loadValue()
			err = cstrAddr.Unreadable
966
			if err == nil {
967
				v.Cap, _ = constant.Int64Val(cstrAddr.Value)
E
epipho 已提交
968 969
			}
		}
970 971 972 973
		if err != nil {
			v.Unreadable = err
			return
		}
974 975
	}

976
	v.stride = v.fieldType.Size()
977 978
	if t, ok := v.fieldType.(*dwarf.PtrType); ok {
		v.stride = t.ByteSize
979
	}
980

981
	return
982 983
}

984 985 986 987 988
func (v *Variable) loadArrayValues(recurseLevel int) {
	if v.Unreadable != nil {
		return
	}

989 990 991 992 993
	count := v.Len
	// Cap number of elements
	if count > maxArrayValues {
		count = maxArrayValues
	}
994

995
	if v.stride < maxArrayStridePrefetch {
996
		v.mem = cacheMemory(v.mem, v.Base, int(v.stride*count))
997
	}
998

999 1000 1001
	errcount := 0

	for i := int64(0); i < count; i++ {
1002
		fieldvar := v.newVariable("", uintptr(int64(v.Base)+(i*v.stride)), v.fieldType)
1003 1004 1005
		fieldvar.loadValueInternal(recurseLevel + 1)

		if fieldvar.Unreadable != nil {
1006
			errcount++
E
epipho 已提交
1007
		}
1008

1009
		v.Children = append(v.Children, *fieldvar)
1010 1011 1012
		if errcount > maxErrCount {
			break
		}
1013 1014 1015
	}
}

1016
func (v *Variable) readComplex(size int64) {
1017 1018 1019 1020 1021 1022 1023
	var fs int64
	switch size {
	case 8:
		fs = 4
	case 16:
		fs = 8
	default:
1024 1025
		v.Unreadable = fmt.Errorf("invalid size (%d) for complex type", size)
		return
1026
	}
1027 1028 1029

	ftyp := &dwarf.FloatType{BasicType: dwarf.BasicType{CommonType: dwarf.CommonType{ByteSize: fs, Name: fmt.Sprintf("float%d", fs)}, BitSize: fs * 8, BitOffset: 0}}

1030 1031
	realvar := v.newVariable("real", v.Addr, ftyp)
	imagvar := v.newVariable("imaginary", v.Addr+uintptr(fs), ftyp)
1032 1033
	realvar.loadValue()
	imagvar.loadValue()
A
aarzilli 已提交
1034
	v.Value = constant.BinaryOp(realvar.Value, token.ADD, constant.MakeImag(imagvar.Value))
1035 1036
}

A
aarzilli 已提交
1037 1038
func (v *Variable) writeComplex(real, imag float64, size int64) error {
	err := v.writeFloatRaw(real, int64(size/2))
1039 1040 1041 1042 1043 1044 1045 1046
	if err != nil {
		return err
	}
	imagaddr := *v
	imagaddr.Addr += uintptr(size / 2)
	return imagaddr.writeFloatRaw(imag, int64(size/2))
}

1047
func readIntRaw(mem memoryReadWriter, addr uintptr, size int64) (int64, error) {
E
epipho 已提交
1048
	var n int64
1049

1050
	val, err := mem.readMemory(addr, int(size))
1051
	if err != nil {
D
Derek Parker 已提交
1052
		return 0, err
1053 1054
	}

1055 1056
	switch size {
	case 1:
E
epipho 已提交
1057
		n = int64(val[0])
1058
	case 2:
E
epipho 已提交
1059
		n = int64(binary.LittleEndian.Uint16(val))
1060
	case 4:
E
epipho 已提交
1061
		n = int64(binary.LittleEndian.Uint32(val))
1062
	case 8:
E
epipho 已提交
1063
		n = int64(binary.LittleEndian.Uint64(val))
1064
	}
1065

D
Derek Parker 已提交
1066
	return n, nil
E
epipho 已提交
1067 1068
}

A
aarzilli 已提交
1069
func (v *Variable) writeUint(value uint64, size int64) error {
1070 1071 1072 1073
	val := make([]byte, size)

	switch size {
	case 1:
A
aarzilli 已提交
1074
		val[0] = byte(value)
1075
	case 2:
A
aarzilli 已提交
1076
		binary.LittleEndian.PutUint16(val, uint16(value))
1077
	case 4:
A
aarzilli 已提交
1078
		binary.LittleEndian.PutUint32(val, uint32(value))
1079
	case 8:
A
aarzilli 已提交
1080
		binary.LittleEndian.PutUint64(val, uint64(value))
1081 1082
	}

1083
	_, err := v.mem.writeMemory(v.Addr, val)
1084 1085 1086
	return err
}

1087
func readUintRaw(mem memoryReadWriter, addr uintptr, size int64) (uint64, error) {
E
epipho 已提交
1088 1089
	var n uint64

1090
	val, err := mem.readMemory(addr, int(size))
E
epipho 已提交
1091
	if err != nil {
D
Derek Parker 已提交
1092
		return 0, err
E
epipho 已提交
1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105
	}

	switch size {
	case 1:
		n = uint64(val[0])
	case 2:
		n = uint64(binary.LittleEndian.Uint16(val))
	case 4:
		n = uint64(binary.LittleEndian.Uint32(val))
	case 8:
		n = uint64(binary.LittleEndian.Uint64(val))
	}

D
Derek Parker 已提交
1106
	return n, nil
1107 1108
}

1109
func (v *Variable) readFloatRaw(size int64) (float64, error) {
1110
	val, err := v.mem.readMemory(v.Addr, int(size))
1111
	if err != nil {
1112
		return 0.0, err
1113 1114 1115
	}
	buf := bytes.NewBuffer(val)

D
Derek Parker 已提交
1116 1117 1118 1119
	switch size {
	case 4:
		n := float32(0)
		binary.Read(buf, binary.LittleEndian, &n)
1120
		return float64(n), nil
D
Derek Parker 已提交
1121 1122 1123
	case 8:
		n := float64(0)
		binary.Read(buf, binary.LittleEndian, &n)
1124
		return n, nil
D
Derek Parker 已提交
1125 1126
	}

1127
	return 0.0, fmt.Errorf("could not read float")
1128 1129
}

1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141
func (v *Variable) writeFloatRaw(f float64, size int64) error {
	buf := bytes.NewBuffer(make([]byte, 0, size))

	switch size {
	case 4:
		n := float32(f)
		binary.Write(buf, binary.LittleEndian, n)
	case 8:
		n := float64(f)
		binary.Write(buf, binary.LittleEndian, n)
	}

1142
	_, err := v.mem.writeMemory(v.Addr, buf.Bytes())
1143 1144 1145
	return err
}

A
aarzilli 已提交
1146
func (v *Variable) writeBool(value bool) error {
1147
	val := []byte{0}
A
aarzilli 已提交
1148
	val[0] = *(*byte)(unsafe.Pointer(&value))
1149
	_, err := v.mem.writeMemory(v.Addr, val)
1150 1151 1152
	return err
}

1153
func (v *Variable) readFunctionPtr() {
1154
	val, err := v.mem.readMemory(v.Addr, v.dbp.arch.PtrSize())
1155
	if err != nil {
1156 1157
		v.Unreadable = err
		return
1158 1159 1160
	}

	// dereference pointer to find function pc
1161 1162
	fnaddr := uintptr(binary.LittleEndian.Uint64(val))
	if fnaddr == 0 {
1163
		v.Base = 0
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		v.Value = constant.MakeString("")
1165
		return
1166
	}
1167

1168
	val, err = v.mem.readMemory(fnaddr, v.dbp.arch.PtrSize())
1169
	if err != nil {
1170 1171
		v.Unreadable = err
		return
1172 1173
	}

1174 1175
	v.Base = uintptr(binary.LittleEndian.Uint64(val))
	fn := v.dbp.goSymTable.PCToFunc(uint64(v.Base))
1176
	if fn == nil {
1177
		v.Unreadable = fmt.Errorf("could not find function for %#v", v.Base)
1178
		return
1179 1180
	}

1181
	v.Value = constant.MakeString(fn.Name)
1182 1183
}

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func (v *Variable) loadMap(recurseLevel int) {
	it := v.mapIterator()
	if it == nil {
		return
	}

	for skip := 0; skip < v.mapSkip; skip++ {
		if ok := it.next(); !ok {
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			v.Unreadable = fmt.Errorf("map index out of bounds")
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			return
		}
	}

	count := 0
	errcount := 0
	for it.next() {
		if count >= maxArrayValues {
			break
		}
		key := it.key()
		val := it.value()
1205 1206 1207 1208
		if recurseLevel <= maxVariableRecurse {
			key.loadValueInternal(recurseLevel + 1)
			val.loadValueInternal(recurseLevel + 1)
		}
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		if key.Unreadable != nil || val.Unreadable != nil {
			errcount++
		}
		v.Children = append(v.Children, *key)
		v.Children = append(v.Children, *val)
		count++
		if errcount > maxErrCount {
			break
		}
	}
}

type mapIterator struct {
	v          *Variable
	numbuckets uint64
	oldmask    uint64
	buckets    *Variable
	oldbuckets *Variable
	b          *Variable
	bidx       uint64

	tophashes *Variable
	keys      *Variable
	values    *Variable
	overflow  *Variable

	idx int64
}

// Code derived from go/src/runtime/hashmap.go
func (v *Variable) mapIterator() *mapIterator {
	sv := v.maybeDereference()
1241
	v.Base = sv.Addr
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	maptype, ok := sv.RealType.(*dwarf.StructType)
	if !ok {
		v.Unreadable = fmt.Errorf("wrong real type for map")
		return nil
	}

	it := &mapIterator{v: v, bidx: 0, b: nil, idx: 0}

	if sv.Addr == 0 {
		it.numbuckets = 0
		return it
	}

1256
	v.mem = cacheMemory(v.mem, v.Base, int(v.RealType.Size()))
1257

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	for _, f := range maptype.Field {
		var err error
		field, _ := sv.toField(f)
		switch f.Name {
		case "count":
			v.Len, err = field.asInt()
		case "B":
			var b uint64
			b, err = field.asUint()
			it.numbuckets = 1 << b
			it.oldmask = (1 << (b - 1)) - 1
		case "buckets":
			it.buckets = field.maybeDereference()
		case "oldbuckets":
			it.oldbuckets = field.maybeDereference()
		}
		if err != nil {
			v.Unreadable = err
			return nil
		}
	}

	return it
}

func (it *mapIterator) nextBucket() bool {
	if it.overflow != nil && it.overflow.Addr > 0 {
		it.b = it.overflow
	} else {
		it.b = nil

		for it.bidx < it.numbuckets {
			it.b = it.buckets.clone()
			it.b.Addr += uintptr(uint64(it.buckets.DwarfType.Size()) * it.bidx)

			if it.oldbuckets.Addr <= 0 {
				break
			}

			// if oldbuckets is not nil we are iterating through a map that is in
			// the middle of a grow.
			// if the bucket we are looking at hasn't been filled in we iterate
			// instead through its corresponding "oldbucket" (i.e. the bucket the
			// elements of this bucket are coming from) but only if this is the first
			// of the two buckets being created from the same oldbucket (otherwise we
			// would print some keys twice)

			oldbidx := it.bidx & it.oldmask
			oldb := it.oldbuckets.clone()
			oldb.Addr += uintptr(uint64(it.oldbuckets.DwarfType.Size()) * oldbidx)

			if mapEvacuated(oldb) {
				break
			}

			if oldbidx == it.bidx {
				it.b = oldb
				break
			}

			// oldbucket origin for current bucket has not been evacuated but we have already
			// iterated over it so we should just skip it
			it.b = nil
			it.bidx++
		}

		if it.b == nil {
			return false
		}
		it.bidx++
	}

	if it.b.Addr <= 0 {
		return false
	}

1334 1335
	it.b.mem = cacheMemory(it.b.mem, it.b.Addr, int(it.b.RealType.Size()))

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	it.tophashes = nil
	it.keys = nil
	it.values = nil
	it.overflow = nil

	for _, f := range it.b.DwarfType.(*dwarf.StructType).Field {
		field, err := it.b.toField(f)
		if err != nil {
			it.v.Unreadable = err
			return false
		}
		if field.Unreadable != nil {
			it.v.Unreadable = field.Unreadable
			return false
		}

		switch f.Name {
		case "tophash":
			it.tophashes = field
		case "keys":
			it.keys = field
		case "values":
			it.values = field
		case "overflow":
			it.overflow = field.maybeDereference()
		}
	}

	// sanity checks
	if it.tophashes == nil || it.keys == nil || it.values == nil {
		it.v.Unreadable = fmt.Errorf("malformed map type")
		return false
	}

	if it.tophashes.Kind != reflect.Array || it.keys.Kind != reflect.Array || it.values.Kind != reflect.Array {
		it.v.Unreadable = fmt.Errorf("malformed map type: keys, values or tophash of a bucket is not an array")
		return false
	}

	if it.tophashes.Len != it.keys.Len || it.tophashes.Len != it.values.Len {
		it.v.Unreadable = fmt.Errorf("malformed map type: inconsistent array length in bucket")
		return false
	}

	return true
}

func (it *mapIterator) next() bool {
	for {
		if it.b == nil || it.idx >= it.tophashes.Len {
			r := it.nextBucket()
			if !r {
				return false
			}
			it.idx = 0
		}
		tophash, _ := it.tophashes.sliceAccess(int(it.idx))
		h, err := tophash.asUint()
		if err != nil {
			it.v.Unreadable = fmt.Errorf("unreadable tophash: %v", err)
			return false
		}
		it.idx++
		if h != hashTophashEmpty {
			return true
		}
	}
}

func (it *mapIterator) key() *Variable {
	k, _ := it.keys.sliceAccess(int(it.idx - 1))
	return k
}

func (it *mapIterator) value() *Variable {
	v, _ := it.values.sliceAccess(int(it.idx - 1))
	return v
}

func mapEvacuated(b *Variable) bool {
	if b.Addr == 0 {
		return true
	}
	for _, f := range b.DwarfType.(*dwarf.StructType).Field {
		if f.Name != "tophash" {
			continue
		}
		tophashes, _ := b.toField(f)
		tophash0var, _ := tophashes.sliceAccess(0)
		tophash0, err := tophash0var.asUint()
		if err != nil {
			return true
		}
		return tophash0 > hashTophashEmpty && tophash0 < hashMinTopHash
	}
	return true
}

1434 1435 1436 1437
func (v *Variable) loadInterface(recurseLevel int, loadData bool) {
	var typestring, data *Variable
	isnil := false

1438 1439
	v.mem = cacheMemory(v.mem, v.Addr, int(v.RealType.Size()))

1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479 1480
	for _, f := range v.RealType.(*dwarf.StructType).Field {
		switch f.Name {
		case "tab": // for runtime.iface
			tab, _ := v.toField(f)
			_type, err := tab.structMember("_type")
			if err != nil {
				_, isnil = err.(*IsNilErr)
				if !isnil {
					v.Unreadable = fmt.Errorf("invalid interface type: %v", err)
					return
				}
			} else {
				typestring, err = _type.structMember("_string")
				if err != nil {
					v.Unreadable = fmt.Errorf("invalid interface type: %v", err)
					return
				}
				typestring = typestring.maybeDereference()
			}
		case "_type": // for runtime.eface
			var err error
			_type, _ := v.toField(f)
			typestring, err = _type.structMember("_string")
			if err != nil {
				_, isnil = err.(*IsNilErr)
				if !isnil {
					v.Unreadable = fmt.Errorf("invalid interface type: %v", err)
					return
				}
			} else {
				typestring = typestring.maybeDereference()
			}
		case "data":
			data, _ = v.toField(f)
		}
	}

	if isnil {
		// interface to nil
		data = data.maybeDereference()
		v.Children = []Variable{*data}
1481
		v.Children[0].loadValueInternal(recurseLevel)
1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500
		return
	}

	if typestring == nil || data == nil || typestring.Addr == 0 || typestring.Kind != reflect.String {
		v.Unreadable = fmt.Errorf("invalid interface type")
		return
	}
	typestring.loadValue()
	if typestring.Unreadable != nil {
		v.Unreadable = fmt.Errorf("invalid interface type: %v", typestring.Unreadable)
		return
	}

	t, err := parser.ParseExpr(constant.StringVal(typestring.Value))
	if err != nil {
		v.Unreadable = fmt.Errorf("invalid interface type, unparsable data type: %v", err)
		return
	}

1501
	typ, err := v.dbp.findTypeExpr(t)
1502
	if err != nil {
1503
		v.Unreadable = fmt.Errorf("interface type \"%s\" not found for 0x%x: %v", constant.StringVal(typestring.Value), data.Addr, err)
1504 1505 1506
		return
	}

1507 1508 1509
	realtyp := resolveTypedef(typ)
	if _, isptr := realtyp.(*dwarf.PtrType); !isptr {
		// interface to non-pointer types are pointers even if the type says otherwise
1510
		typ = v.dbp.pointerTo(typ)
1511 1512
	}

1513
	data = data.newVariable("data", data.Addr, typ)
1514 1515 1516

	v.Children = []Variable{*data}
	if loadData {
1517
		v.Children[0].loadValueInternal(recurseLevel)
1518 1519 1520 1521
	}
	return
}

E
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1522
// Fetches all variables of a specific type in the current function scope
1523 1524
func (scope *EvalScope) variablesByTag(tag dwarf.Tag) ([]*Variable, error) {
	reader := scope.DwarfReader()
E
epipho 已提交
1525

1526
	_, err := reader.SeekToFunction(scope.PC)
1527
	if err != nil {
E
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1528 1529 1530
		return nil, err
	}

D
Derek Parker 已提交
1531
	var vars []*Variable
1532
	for entry, err := reader.NextScopeVariable(); entry != nil; entry, err = reader.NextScopeVariable() {
E
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1533 1534 1535 1536 1537
		if err != nil {
			return nil, err
		}

		if entry.Tag == tag {
1538
			val, err := scope.extractVariableFromEntry(entry)
E
epipho 已提交
1539
			if err != nil {
E
epipho 已提交
1540 1541
				// skip variables that we can't parse yet
				continue
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1542 1543 1544 1545 1546 1547 1548 1549
			}

			vars = append(vars, val)
		}
	}

	return vars, nil
}