variables.go 37.2 KB
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package proc
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import (
	"bytes"
	"encoding/binary"
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	"errors"
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	"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"

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	"golang.org/x/debug/dwarf"

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

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

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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 = reflect.Ptr
		if _, isvoid := t.Type.(*dwarf.VoidType); isvoid {
			v.Kind = reflect.UnsafePointer
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		}
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	case *dwarf.ChanType:
		v.Kind = reflect.Chan
	case *dwarf.MapType:
		v.Kind = reflect.Map
	case *dwarf.StringType:
		v.Kind = reflect.String
		v.stride = 1
		v.fieldType = &dwarf.UintType{BasicType: dwarf.BasicType{CommonType: dwarf.CommonType{ByteSize: 1, Name: "byte"}, BitSize: 8, BitOffset: 0}}
		if v.Addr != 0 {
			v.Base, v.Len, v.Unreadable = readStringInfo(v.mem, v.dbp.arch, v.Addr)
		}
	case *dwarf.SliceType:
		v.Kind = reflect.Slice
		if v.Addr != 0 {
			v.loadSliceInfo(t)
		}
	case *dwarf.InterfaceType:
		v.Kind = reflect.Interface
	case *dwarf.StructType:
		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.thread == nil) && (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 (gvar *Variable) parseG() (*G, error) {
	mem := gvar.mem
	dbp := gvar.dbp
	gaddr := uint64(gvar.Addr)
	_, deref := gvar.RealType.(*dwarf.PtrType)

	initialInstructions := make([]byte, dbp.arch.PtrSize()+1)
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	initialInstructions[0] = op.DW_OP_addr
	binary.LittleEndian.PutUint64(initialInstructions[1:], gaddr)
	if deref {
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		gaddrbytes, err := mem.readMemory(uintptr(gaddr), dbp.arch.PtrSize())
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		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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			id := 0
			if thread, ok := mem.(*Thread); ok {
				id = thread.ID
			}
			return nil, NoGError{tid: id}
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		}
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	}
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	if gaddr == 0 {
		return nil, NoGError{}
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	}
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	gvar.loadValue()
	if gvar.Unreadable != nil {
		return nil, gvar.Unreadable
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	}
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	schedVar := gvar.toFieldNamed("sched")
	pc, _ := constant.Int64Val(schedVar.toFieldNamed("pc").Value)
	sp, _ := constant.Int64Val(schedVar.toFieldNamed("sp").Value)
	id, _ := constant.Int64Val(gvar.toFieldNamed("goid").Value)
	gopc, _ := constant.Int64Val(gvar.toFieldNamed("gopc").Value)
	waitReason := constant.StringVal(gvar.toFieldNamed("waitreason").Value)
	d := gvar.toFieldNamed("_defer")
	deferPC := int64(0)
	fnvar := d.toFieldNamed("fn")
	if fnvar != nil {
		fnvalvar := fnvar.toFieldNamed("fn")
		deferPC, _ = constant.Int64Val(fnvalvar.Value)
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	}
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	status, _ := constant.Int64Val(gvar.toFieldNamed("atomicstatus").Value)
	f, l, fn := gvar.dbp.goSymTable.PCToLine(uint64(pc))
	g := &G{
		ID:         int(id),
		GoPC:       uint64(gopc),
		PC:         uint64(pc),
		SP:         uint64(sp),
		WaitReason: waitReason,
		DeferPC:    uint64(deferPC),
		Status:     uint64(status),
		CurrentLoc: Location{PC: uint64(pc), File: f, Line: l, Fn: fn},
		dbp:        gvar.dbp,
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	}
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	return g, nil
}
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func (v *Variable) toFieldNamed(name string) *Variable {
	v, err := v.structMember(name)
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	if err != nil {
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		return nil
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	}
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	v.loadValue()
	if v.Unreadable != nil {
		return nil
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	}
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	return v
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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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	var utypoff dwarf.Offset
	utypentry, err := reader.SeekToTypeNamed("<unspecified>")
	if err == nil {
		utypoff = utypentry.Offset
	}

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

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		if typoff, ok := entry.Val(dwarf.AttrType).(dwarf.Offset); !ok || typoff == utypoff {
			continue
		}

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		// Ignore errors trying to extract values
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		val, err := scope.extractVariableFromEntry(entry)
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		if err != nil {
			continue
		}
		vars = append(vars, val)
	}

	return vars, nil
}

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// EvalPackageVariable will evaluate the package level variable
// specified by 'name'.
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func (dbp *Process) EvalPackageVariable(name string) (*Variable, error) {
	scope := &EvalScope{Thread: dbp.CurrentThread, PC: 0, CFA: 0}
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	v, err := scope.packageVarAddr(name)
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	if err != nil {
		return nil, err
	}
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	v.loadValue()
	return v, nil
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}

func (scope *EvalScope) packageVarAddr(name string) (*Variable, error) {
	reader := scope.DwarfReader()
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	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 {
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			return scope.extractVarInfoFromEntry(entry, reader)
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		}
	}
	return nil, fmt.Errorf("could not find symbol value for %s", name)
}

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func (v *Variable) structMember(memberName string) (*Variable, error) {
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	if v.Unreadable != nil {
		return v.clone(), nil
	}
	structVar := v.maybeDereference()
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	structVar.Name = v.Name
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	if structVar.Unreadable != nil {
		return structVar, nil
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	}
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	switch t := structVar.RealType.(type) {
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	case *dwarf.StructType:
		for _, field := range t.Field {
			if field.Name != memberName {
				continue
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			}
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			return structVar.toField(field)
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		}
		// 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)) ||
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					(len(field.Name) > 1 &&
						field.Name[0] == '*' &&
						field.Type.String()[1:] == ("struct "+field.Name[1:]))
629 630 631 632 633 634
			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
635
				embeddedVar, err := structVar.toField(field)
636 637 638 639 640 641
				if err != nil {
					return nil, err
				}
				return embeddedVar, nil
			}
			// Recursively check for promoted fields on the embedded field
L
Luke Hoban 已提交
642
			embeddedVar, err := structVar.toField(field)
643 644 645 646 647 648 649
			if err != nil {
				return nil, err
			}
			embeddedVar.Name = structVar.Name
			embeddedField, err := embeddedVar.structMember(memberName)
			if embeddedField != nil {
				return embeddedField, nil
650 651
			}
		}
652 653
		return nil, fmt.Errorf("%s has no member %s", v.Name, memberName)
	default:
654 655 656
		if v.Name == "" {
			return nil, fmt.Errorf("type %s is not a struct", structVar.TypeString())
		}
D
Derek Parker 已提交
657
		return nil, fmt.Errorf("%s (type %s) is not a struct", v.Name, structVar.TypeString())
658
	}
659 660
}

661 662 663
// 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
664
	if entry == nil {
D
Derek Parker 已提交
665
		return nil, fmt.Errorf("invalid entry")
E
epipho 已提交
666 667 668 669 670 671 672 673
	}

	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
674
		return nil, fmt.Errorf("type assertion failed")
E
epipho 已提交
675 676 677 678
	}

	offset, ok := entry.Val(dwarf.AttrType).(dwarf.Offset)
	if !ok {
D
Derek Parker 已提交
679
		return nil, fmt.Errorf("type assertion failed")
E
epipho 已提交
680 681
	}

682
	t, err := scope.Type(offset)
E
epipho 已提交
683 684 685 686 687 688
	if err != nil {
		return nil, err
	}

	instructions, ok := entry.Val(dwarf.AttrLocation).([]byte)
	if !ok {
D
Derek Parker 已提交
689
		return nil, fmt.Errorf("type assertion failed")
E
epipho 已提交
690 691
	}

692
	addr, err := op.ExecuteStackProgram(scope.CFA, instructions)
E
epipho 已提交
693 694 695 696
	if err != nil {
		return nil, err
	}

697
	return scope.newVariable(n, uintptr(addr), t), nil
E
epipho 已提交
698 699
}

700
// If v is a pointer a new variable is returned containing the value pointed by v.
701 702 703 704
func (v *Variable) maybeDereference() *Variable {
	if v.Unreadable != nil {
		return v
	}
705

706
	switch t := v.RealType.(type) {
707
	case *dwarf.PtrType:
708 709
		ptrval, err := readUintRaw(v.mem, uintptr(v.Addr), t.ByteSize)
		r := v.newVariable("", uintptr(ptrval), t.Type)
710
		if err != nil {
711
			r.Unreadable = err
712 713
		}

714
		return r
715
	default:
716
		return v
717 718
	}
}
719

720
// Extracts the value of the variable at the given address.
721 722
func (v *Variable) loadValue() {
	v.loadValueInternal(0)
723 724
}

725
func (v *Variable) loadValueInternal(recurseLevel int) {
726
	if v.Unreadable != nil || v.loaded || (v.Addr == 0 && v.Base == 0) {
727 728
		return
	}
729

730 731
	v.loaded = true
	switch v.Kind {
A
aarzilli 已提交
732
	case reflect.Ptr, reflect.UnsafePointer:
733 734
		v.Len = 1
		v.Children = []Variable{*v.maybeDereference()}
735
		// Don't increase the recursion level when dereferencing pointers
736 737
		v.Children[0].loadValueInternal(recurseLevel)

A
aarzilli 已提交
738
	case reflect.Chan:
739 740 741
		sv := v.clone()
		sv.RealType = resolveTypedef(&(sv.RealType.(*dwarf.ChanType).TypedefType))
		sv = sv.maybeDereference()
A
aarzilli 已提交
742 743 744
		sv.loadValueInternal(recurseLevel)
		v.Children = sv.Children
		v.Len = sv.Len
745
		v.Base = sv.Addr
A
aarzilli 已提交
746

A
aarzilli 已提交
747
	case reflect.Map:
A
aarzilli 已提交
748 749 750
		if recurseLevel <= maxVariableRecurse {
			v.loadMap(recurseLevel)
		}
A
aarzilli 已提交
751

752
	case reflect.String:
753
		var val string
754
		val, v.Unreadable = readStringValue(v.mem, v.Base, v.Len)
755
		v.Value = constant.MakeString(val)
756 757 758 759 760

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

	case reflect.Struct:
761
		v.mem = cacheMemory(v.mem, v.Addr, int(v.RealType.Size()))
762 763 764 765 766 767 768 769 770 771 772 773
		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)
			}
774 775
		}

776 777 778
	case reflect.Interface:
		v.loadInterface(recurseLevel, true)

779 780 781
	case reflect.Complex64, reflect.Complex128:
		v.readComplex(v.RealType.(*dwarf.ComplexType).ByteSize)
	case reflect.Int, reflect.Int8, reflect.Int16, reflect.Int32, reflect.Int64:
782
		var val int64
783
		val, v.Unreadable = readIntRaw(v.mem, v.Addr, v.RealType.(*dwarf.IntType).ByteSize)
784
		v.Value = constant.MakeInt64(val)
785
	case reflect.Uint, reflect.Uint8, reflect.Uint16, reflect.Uint32, reflect.Uint64, reflect.Uintptr:
786
		var val uint64
787
		val, v.Unreadable = readUintRaw(v.mem, v.Addr, v.RealType.(*dwarf.UintType).ByteSize)
788 789
		v.Value = constant.MakeUint64(val)

790
	case reflect.Bool:
791
		val, err := v.mem.readMemory(v.Addr, 1)
792 793
		v.Unreadable = err
		if err == nil {
794
			v.Value = constant.MakeBool(val[0] != 0)
795
		}
796
	case reflect.Float32, reflect.Float64:
797 798 799
		var val float64
		val, v.Unreadable = v.readFloatRaw(v.RealType.(*dwarf.FloatType).ByteSize)
		v.Value = constant.MakeFloat64(val)
800 801
	case reflect.Func:
		v.readFunctionPtr()
802
	default:
803
		v.Unreadable = fmt.Errorf("unknown or unsupported kind: \"%s\"", v.Kind.String())
804 805 806
	}
}

A
aarzilli 已提交
807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824
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())
825
	default:
A
aarzilli 已提交
826
		fmt.Printf("default\n")
827 828
		if t, isptr := v.RealType.(*dwarf.PtrType); isptr {
			err = v.writeUint(uint64(y.Children[0].Addr), int64(t.ByteSize))
A
aarzilli 已提交
829 830 831
		} else {
			return fmt.Errorf("can not set variables of type %s (not implemented)", v.Kind.String())
		}
832
	}
A
aarzilli 已提交
833 834

	return err
835 836
}

837
func readStringInfo(mem memoryReadWriter, arch Arch, addr uintptr) (uintptr, int64, error) {
838 839 840
	// string data structure is always two ptrs in size. Addr, followed by len
	// http://research.swtch.com/godata

841 842
	mem = cacheMemory(mem, addr, arch.PtrSize()*2)

843
	// read len
844
	val, err := mem.readMemory(addr+uintptr(arch.PtrSize()), arch.PtrSize())
845
	if err != nil {
A
aarzilli 已提交
846
		return 0, 0, fmt.Errorf("could not read string len %s", err)
847
	}
848
	strlen := int64(binary.LittleEndian.Uint64(val))
849
	if strlen < 0 {
A
aarzilli 已提交
850
		return 0, 0, fmt.Errorf("invalid length: %d", strlen)
851
	}
852 853

	// read addr
854
	val, err = mem.readMemory(addr, arch.PtrSize())
855
	if err != nil {
A
aarzilli 已提交
856
		return 0, 0, fmt.Errorf("could not read string pointer %s", err)
857 858
	}
	addr = uintptr(binary.LittleEndian.Uint64(val))
D
Derek Parker 已提交
859
	if addr == 0 {
A
aarzilli 已提交
860
		return 0, 0, nil
D
Derek Parker 已提交
861
	}
D
Derek Parker 已提交
862

A
aarzilli 已提交
863 864 865
	return addr, strlen, nil
}

866
func readStringValue(mem memoryReadWriter, addr uintptr, strlen int64) (string, error) {
A
aarzilli 已提交
867 868 869 870 871
	count := strlen
	if count > maxArrayValues {
		count = maxArrayValues
	}

872
	val, err := mem.readMemory(addr, int(count))
873
	if err != nil {
A
aarzilli 已提交
874
		return "", fmt.Errorf("could not read string at %#v due to %s", addr, err)
875 876
	}

877 878
	retstr := *(*string)(unsafe.Pointer(&val))

A
aarzilli 已提交
879 880 881
	return retstr, nil
}

882 883
func readString(mem memoryReadWriter, arch Arch, addr uintptr) (string, int64, error) {
	addr, strlen, err := readStringInfo(mem, arch, addr)
A
aarzilli 已提交
884 885 886 887
	if err != nil {
		return "", 0, err
	}

888
	retstr, err := readStringValue(mem, addr, strlen)
A
aarzilli 已提交
889
	return retstr, strlen, err
890 891
}

892
func (v *Variable) loadSliceInfo(t *dwarf.SliceType) {
893 894
	v.mem = cacheMemory(v.mem, v.Addr, int(t.Size()))

895
	var err error
E
epipho 已提交
896 897 898
	for _, f := range t.Field {
		switch f.Name {
		case "array":
899
			var base uint64
900
			base, err = readUintRaw(v.mem, uintptr(int64(v.Addr)+f.ByteOffset), f.Type.Size())
901
			if err == nil {
902
				v.Base = uintptr(base)
903 904 905
				// Dereference array type to get value type
				ptrType, ok := f.Type.(*dwarf.PtrType)
				if !ok {
906 907
					v.Unreadable = fmt.Errorf("Invalid type %s in slice array", f.Type)
					return
908 909
				}
				v.fieldType = ptrType.Type
E
epipho 已提交
910 911
			}
		case "len":
912 913 914
			lstrAddr, _ := v.toField(f)
			lstrAddr.loadValue()
			err = lstrAddr.Unreadable
915
			if err == nil {
916
				v.Len, _ = constant.Int64Val(lstrAddr.Value)
E
epipho 已提交
917 918
			}
		case "cap":
919 920 921
			cstrAddr, _ := v.toField(f)
			cstrAddr.loadValue()
			err = cstrAddr.Unreadable
922
			if err == nil {
923
				v.Cap, _ = constant.Int64Val(cstrAddr.Value)
E
epipho 已提交
924 925
			}
		}
926 927 928 929
		if err != nil {
			v.Unreadable = err
			return
		}
930 931
	}

932
	v.stride = v.fieldType.Size()
933 934
	if t, ok := v.fieldType.(*dwarf.PtrType); ok {
		v.stride = t.ByteSize
935
	}
936

937
	return
938 939
}

940 941 942 943
func (v *Variable) loadArrayValues(recurseLevel int) {
	if v.Unreadable != nil {
		return
	}
944 945 946 947
	if v.Len < 0 {
		v.Unreadable = errors.New("Negative array length")
		return
	}
948

949 950 951 952 953
	count := v.Len
	// Cap number of elements
	if count > maxArrayValues {
		count = maxArrayValues
	}
954

955
	if v.stride < maxArrayStridePrefetch {
956
		v.mem = cacheMemory(v.mem, v.Base, int(v.stride*count))
957
	}
958

959 960 961
	errcount := 0

	for i := int64(0); i < count; i++ {
962
		fieldvar := v.newVariable("", uintptr(int64(v.Base)+(i*v.stride)), v.fieldType)
963 964 965
		fieldvar.loadValueInternal(recurseLevel + 1)

		if fieldvar.Unreadable != nil {
966
			errcount++
E
epipho 已提交
967
		}
968

969
		v.Children = append(v.Children, *fieldvar)
970 971 972
		if errcount > maxErrCount {
			break
		}
973 974 975
	}
}

976
func (v *Variable) readComplex(size int64) {
977 978 979 980 981 982 983
	var fs int64
	switch size {
	case 8:
		fs = 4
	case 16:
		fs = 8
	default:
984 985
		v.Unreadable = fmt.Errorf("invalid size (%d) for complex type", size)
		return
986
	}
987 988 989

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

990 991
	realvar := v.newVariable("real", v.Addr, ftyp)
	imagvar := v.newVariable("imaginary", v.Addr+uintptr(fs), ftyp)
992 993
	realvar.loadValue()
	imagvar.loadValue()
A
aarzilli 已提交
994
	v.Value = constant.BinaryOp(realvar.Value, token.ADD, constant.MakeImag(imagvar.Value))
995 996
}

A
aarzilli 已提交
997 998
func (v *Variable) writeComplex(real, imag float64, size int64) error {
	err := v.writeFloatRaw(real, int64(size/2))
999 1000 1001 1002 1003 1004 1005 1006
	if err != nil {
		return err
	}
	imagaddr := *v
	imagaddr.Addr += uintptr(size / 2)
	return imagaddr.writeFloatRaw(imag, int64(size/2))
}

1007
func readIntRaw(mem memoryReadWriter, addr uintptr, size int64) (int64, error) {
E
epipho 已提交
1008
	var n int64
1009

1010
	val, err := mem.readMemory(addr, int(size))
1011
	if err != nil {
D
Derek Parker 已提交
1012
		return 0, err
1013 1014
	}

1015 1016
	switch size {
	case 1:
E
epipho 已提交
1017
		n = int64(val[0])
1018
	case 2:
E
epipho 已提交
1019
		n = int64(binary.LittleEndian.Uint16(val))
1020
	case 4:
E
epipho 已提交
1021
		n = int64(binary.LittleEndian.Uint32(val))
1022
	case 8:
E
epipho 已提交
1023
		n = int64(binary.LittleEndian.Uint64(val))
1024
	}
1025

D
Derek Parker 已提交
1026
	return n, nil
E
epipho 已提交
1027 1028
}

A
aarzilli 已提交
1029
func (v *Variable) writeUint(value uint64, size int64) error {
1030 1031 1032 1033
	val := make([]byte, size)

	switch size {
	case 1:
A
aarzilli 已提交
1034
		val[0] = byte(value)
1035
	case 2:
A
aarzilli 已提交
1036
		binary.LittleEndian.PutUint16(val, uint16(value))
1037
	case 4:
A
aarzilli 已提交
1038
		binary.LittleEndian.PutUint32(val, uint32(value))
1039
	case 8:
A
aarzilli 已提交
1040
		binary.LittleEndian.PutUint64(val, uint64(value))
1041 1042
	}

1043
	_, err := v.mem.writeMemory(v.Addr, val)
1044 1045 1046
	return err
}

1047
func readUintRaw(mem memoryReadWriter, addr uintptr, size int64) (uint64, error) {
E
epipho 已提交
1048 1049
	var n uint64

1050
	val, err := mem.readMemory(addr, int(size))
E
epipho 已提交
1051
	if err != nil {
D
Derek Parker 已提交
1052
		return 0, err
E
epipho 已提交
1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065
	}

	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
1066
	return n, nil
1067 1068
}

1069
func (v *Variable) readFloatRaw(size int64) (float64, error) {
1070
	val, err := v.mem.readMemory(v.Addr, int(size))
1071
	if err != nil {
1072
		return 0.0, err
1073 1074 1075
	}
	buf := bytes.NewBuffer(val)

D
Derek Parker 已提交
1076 1077 1078 1079
	switch size {
	case 4:
		n := float32(0)
		binary.Read(buf, binary.LittleEndian, &n)
1080
		return float64(n), nil
D
Derek Parker 已提交
1081 1082 1083
	case 8:
		n := float64(0)
		binary.Read(buf, binary.LittleEndian, &n)
1084
		return n, nil
D
Derek Parker 已提交
1085 1086
	}

1087
	return 0.0, fmt.Errorf("could not read float")
1088 1089
}

1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101
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)
	}

1102
	_, err := v.mem.writeMemory(v.Addr, buf.Bytes())
1103 1104 1105
	return err
}

A
aarzilli 已提交
1106
func (v *Variable) writeBool(value bool) error {
1107
	val := []byte{0}
A
aarzilli 已提交
1108
	val[0] = *(*byte)(unsafe.Pointer(&value))
1109
	_, err := v.mem.writeMemory(v.Addr, val)
1110 1111 1112
	return err
}

1113
func (v *Variable) readFunctionPtr() {
1114
	val, err := v.mem.readMemory(v.Addr, v.dbp.arch.PtrSize())
1115
	if err != nil {
1116 1117
		v.Unreadable = err
		return
1118 1119 1120
	}

	// dereference pointer to find function pc
1121 1122
	fnaddr := uintptr(binary.LittleEndian.Uint64(val))
	if fnaddr == 0 {
1123
		v.Base = 0
A
aarzilli 已提交
1124
		v.Value = constant.MakeString("")
1125
		return
1126
	}
1127

1128
	val, err = v.mem.readMemory(fnaddr, v.dbp.arch.PtrSize())
1129
	if err != nil {
1130 1131
		v.Unreadable = err
		return
1132 1133
	}

1134 1135
	v.Base = uintptr(binary.LittleEndian.Uint64(val))
	fn := v.dbp.goSymTable.PCToFunc(uint64(v.Base))
1136
	if fn == nil {
1137
		v.Unreadable = fmt.Errorf("could not find function for %#v", v.Base)
1138
		return
1139 1140
	}

1141
	v.Value = constant.MakeString(fn.Name)
1142 1143
}

A
aarzilli 已提交
1144 1145 1146 1147 1148 1149 1150 1151
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 {
1152
			v.Unreadable = fmt.Errorf("map index out of bounds")
A
aarzilli 已提交
1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164
			return
		}
	}

	count := 0
	errcount := 0
	for it.next() {
		if count >= maxArrayValues {
			break
		}
		key := it.key()
		val := it.value()
A
aarzilli 已提交
1165 1166
		key.loadValueInternal(recurseLevel + 1)
		val.loadValueInternal(recurseLevel + 1)
A
aarzilli 已提交
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 1194 1195 1196 1197
		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 {
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	sv := v.clone()
	sv.RealType = resolveTypedef(&(sv.RealType.(*dwarf.MapType).TypedefType))
	sv = sv.maybeDereference()
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	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
	}

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

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	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
}

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

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

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	ityp := resolveTypedef(&v.RealType.(*dwarf.InterfaceType).TypedefType).(*dwarf.StructType)

	for _, f := range ityp.Field {
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		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}
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		if loadData {
			v.Children[0].loadValueInternal(recurseLevel)
		}
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		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
	}

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	typ, err := v.dbp.findTypeExpr(t)
1466
	if err != nil {
1467
		v.Unreadable = fmt.Errorf("interface type \"%s\" not found for 0x%x: %v", constant.StringVal(typestring.Value), data.Addr, err)
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		return
	}

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	realtyp := resolveTypedef(typ)
	if _, isptr := realtyp.(*dwarf.PtrType); !isptr {
		// interface to non-pointer types are pointers even if the type says otherwise
1474
		typ = v.dbp.pointerTo(typ)
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	}

1477
	data = data.newVariable("data", data.Addr, typ)
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	v.Children = []Variable{*data}
	if loadData {
1481
		v.Children[0].loadValueInternal(recurseLevel)
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	}
	return
}

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// Fetches all variables of a specific type in the current function scope
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func (scope *EvalScope) variablesByTag(tag dwarf.Tag) ([]*Variable, error) {
	reader := scope.DwarfReader()
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1490
	_, err := reader.SeekToFunction(scope.PC)
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	if err != nil {
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		return nil, err
	}

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	var vars []*Variable
1496
	for entry, err := reader.NextScopeVariable(); entry != nil; entry, err = reader.NextScopeVariable() {
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		if err != nil {
			return nil, err
		}

		if entry.Tag == tag {
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			val, err := scope.extractVariableFromEntry(entry)
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			if err != nil {
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				// skip variables that we can't parse yet
				continue
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			}

			vars = append(vars, val)
		}
	}

	return vars, nil
}