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Rob Pikeaaa3a622010-03-20 22:32:34 -07001// Go support for Protocol Buffers - Google's data interchange format
2//
3// Copyright 2010 Google Inc. All rights reserved.
4// http://code.google.com/p/goprotobuf/
5//
6// Redistribution and use in source and binary forms, with or without
7// modification, are permitted provided that the following conditions are
8// met:
9//
10// * Redistributions of source code must retain the above copyright
11// notice, this list of conditions and the following disclaimer.
12// * Redistributions in binary form must reproduce the above
13// copyright notice, this list of conditions and the following disclaimer
14// in the documentation and/or other materials provided with the
15// distribution.
16// * Neither the name of Google Inc. nor the names of its
17// contributors may be used to endorse or promote products derived from
18// this software without specific prior written permission.
19//
20// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
21// "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
22// LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
23// A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
24// OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
25// SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
26// LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
27// DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
28// THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
29// (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
30// OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
31
32package proto
33
34/*
35 * Routines for decoding protocol buffer data to construct in-memory representations.
36 */
37
38import (
39 "bytes"
40 "fmt"
41 "io"
42 "os"
43 "reflect"
44 "runtime"
45 "unsafe"
46)
47
48// ErrWrongType occurs when the wire encoding for the field disagrees with
49// that specified in the type being decoded. This is usually caused by attempting
50// to convert an encoded protocol buffer into a struct of the wrong type.
51var ErrWrongType = os.NewError("field/encoding mismatch: wrong type for field")
52
53// The fundamental decoders that interpret bytes on the wire.
54// Those that take integer types all return uint64 and are
55// therefore of type valueDecoder.
56
57// DecodeVarint reads a varint-encoded integer from the slice.
58// It returns the integer and the number of bytes consumed, or
59// zero if there is not enough.
60// This is the format for the
61// int32, int64, uint32, uint64, bool, and enum
62// protocol buffer types.
63func DecodeVarint(buf []byte) (x uint64, n int) {
64 // x, n already 0
65 for shift := uint(0); ; shift += 7 {
66 if n >= len(buf) {
67 return 0, 0
68 }
69 b := uint64(buf[n])
70 n++
71 x |= (b & 0x7F) << shift
72 if (b & 0x80) == 0 {
73 break
74 }
75 }
76 return x, n
77}
78
79// DecodeVarint reads a varint-encoded integer from the Buffer.
80// This is the format for the
81// int32, int64, uint32, uint64, bool, and enum
82// protocol buffer types.
83func (p *Buffer) DecodeVarint() (x uint64, err os.Error) {
84 // x, err already 0
85
86 i := p.index
87 l := len(p.buf)
88
89 for shift := uint(0); ; shift += 7 {
90 if i >= l {
91 err = io.ErrUnexpectedEOF
92 return
93 }
94 b := p.buf[i]
95 i++
96 x |= (uint64(b) & 0x7F) << shift
97 if b < 0x80 {
98 break
99 }
100 }
101 p.index = i
102 return
103}
104
105// DecodeFixed64 reads a 64-bit integer from the Buffer.
106// This is the format for the
107// fixed64, sfixed64, and double protocol buffer types.
108func (p *Buffer) DecodeFixed64() (x uint64, err os.Error) {
109 // x, err already 0
110 i := p.index + 8
111 if i > len(p.buf) {
112 err = io.ErrUnexpectedEOF
113 return
114 }
115 p.index = i
116
117 x = uint64(p.buf[i-8])
118 x |= uint64(p.buf[i-7]) << 8
119 x |= uint64(p.buf[i-6]) << 16
120 x |= uint64(p.buf[i-5]) << 24
121 x |= uint64(p.buf[i-4]) << 32
122 x |= uint64(p.buf[i-3]) << 40
123 x |= uint64(p.buf[i-2]) << 48
124 x |= uint64(p.buf[i-1]) << 56
125 return
126}
127
128// DecodeFixed32 reads a 32-bit integer from the Buffer.
129// This is the format for the
130// fixed32, sfixed32, and float protocol buffer types.
131func (p *Buffer) DecodeFixed32() (x uint64, err os.Error) {
132 // x, err already 0
133 i := p.index + 4
134 if i > len(p.buf) {
135 err = io.ErrUnexpectedEOF
136 return
137 }
138 p.index = i
139
140 x = uint64(p.buf[i-4])
141 x |= uint64(p.buf[i-3]) << 8
142 x |= uint64(p.buf[i-2]) << 16
143 x |= uint64(p.buf[i-1]) << 24
144 return
145}
146
147// DecodeZigzag64 reads a zigzag-encoded 64-bit integer
148// from the Buffer.
149// This is the format used for the sint64 protocol buffer type.
150func (p *Buffer) DecodeZigzag64() (x uint64, err os.Error) {
151 x, err = p.DecodeVarint()
152 if err != nil {
153 return
154 }
155 x = (x >> 1) ^ uint64((int64(x&1)<<63)>>63)
156 return
157}
158
159// DecodeZigzag32 reads a zigzag-encoded 32-bit integer
160// from the Buffer.
161// This is the format used for the sint32 protocol buffer type.
162func (p *Buffer) DecodeZigzag32() (x uint64, err os.Error) {
163 x, err = p.DecodeVarint()
164 if err != nil {
165 return
166 }
167 x = uint64((uint32(x) >> 1) ^ uint32((int32(x&1)<<31)>>31))
168 return
169}
170
171// These are not ValueDecoders: they produce an array of bytes or a string.
172// bytes, embedded messages
173
174// DecodeRawBytes reads a count-delimited byte buffer from the Buffer.
175// This is the format used for the bytes protocol buffer
176// type and for embedded messages.
177func (p *Buffer) DecodeRawBytes(alloc bool) (buf []byte, err os.Error) {
178 n, err := p.DecodeVarint()
179 if err != nil {
180 return
181 }
182
183 nb := int(n)
184 if p.index+nb > len(p.buf) {
185 err = io.ErrUnexpectedEOF
186 return
187 }
188
189 if !alloc {
190 // todo: check if can get more uses of alloc=false
191 buf = p.buf[p.index : p.index+nb]
192 p.index += nb
193 return
194 }
195
196 buf = make([]byte, nb)
197 copy(buf, p.buf[p.index:])
198 p.index += nb
199 return
200}
201
202// DecodeStringBytes reads an encoded string from the Buffer.
203// This is the format used for the proto2 string type.
204func (p *Buffer) DecodeStringBytes() (s string, err os.Error) {
205 buf, err := p.DecodeRawBytes(false)
206 if err != nil {
207 return
208 }
209 return string(buf), nil
210}
211
212// Skip the next item in the buffer. Its wire type is decoded and presented as an argument.
213// If the protocol buffer has extensions, and the field matches, add it as an extension.
214// Otherwise, if the XXX_unrecognized field exists, append the skipped data there.
215func (o *Buffer) skipAndSave(t *reflect.StructType, tag, wire int, base uintptr) os.Error {
216
217 oi := o.index
218
219 err := o.skip(t, tag, wire)
220 if err != nil {
221 return err
222 }
223
224 x := fieldIndex(t, "XXX_unrecognized")
225 if x == nil {
226 return nil
227 }
228
229 p := propByIndex(t, x)
230 ptr := (*[]byte)(unsafe.Pointer(base + p.offset))
231
232 if *ptr == nil {
233 // This is the first skipped element,
234 // allocate a new buffer.
235 *ptr = o.bufalloc()
236 }
237
238 // Add the skipped field to struct field
239 obuf := o.buf
240
241 o.buf = *ptr
242 o.EncodeVarint(uint64(tag<<3 | wire))
243 *ptr = bytes.Add(o.buf, obuf[oi:o.index])
244
245 o.buf = obuf
246
247 return nil
248}
249
250// Skip the next item in the buffer. Its wire type is decoded and presented as an argument.
251func (o *Buffer) skip(t *reflect.StructType, tag, wire int) os.Error {
252
253 var u uint64
254 var err os.Error
255
256 switch wire {
257 case WireVarint:
258 _, err = o.DecodeVarint()
259 case WireFixed64:
260 _, err = o.DecodeFixed64()
261 case WireBytes:
262 _, err = o.DecodeRawBytes(false)
263 case WireFixed32:
264 _, err = o.DecodeFixed32()
265 case WireStartGroup:
266 for {
267 u, err = o.DecodeVarint()
268 if err != nil {
269 break
270 }
271 fwire := int(u & 0x7)
272 if fwire == WireEndGroup {
273 break
274 }
275 ftag := int(u >> 3)
276 err = o.skip(t, ftag, fwire)
277 if err != nil {
278 break
279 }
280 }
281 default:
282 fmt.Fprintf(os.Stderr, "proto: can't skip wire type %d for %s\n", wire, t)
283 }
284 return err
285}
286
287// Unmarshaler is the interface representing objects that can unmarshal themselves.
288type Unmarshaler interface {
289 Unmarshal([]byte) os.Error
290}
291
292// Unmarshal parses the protocol buffer representation in buf and places the
293// decoded result in pb. If the struct underlying pb does not match
294// the data in buf, the results can be unpredictable.
295func Unmarshal(buf []byte, pb interface{}) os.Error {
296 // If the object can unmarshal itself, let it.
297 if u, ok := pb.(Unmarshaler); ok {
298 return u.Unmarshal(buf)
299 }
300
301 return NewBuffer(buf).Unmarshal(pb)
302}
303
304// Unmarshal parses the protocol buffer representation in the
305// Buffer and places the decoded result in pb. If the struct
306// underlying pb does not match the data in the buffer, the results can be
307// unpredictable.
308func (p *Buffer) Unmarshal(pb interface{}) os.Error {
309 // If the object can unmarshal itself, let it.
310 if u, ok := pb.(Unmarshaler); ok {
311 err := u.Unmarshal(p.buf[p.index:])
312 p.index = len(p.buf)
313 return err
314 }
315
316 mstat := runtime.MemStats.Mallocs
317
318 typ, base, err := getbase(pb)
319 if err != nil {
320 return err
321 }
322
323 err = p.unmarshalType(typ, false, base)
324
325 mstat = runtime.MemStats.Mallocs - mstat
326 stats.Dmalloc += mstat
327 stats.Decode++
328
329 return err
330}
331
332// unmarshalType does the work of unmarshaling a structure.
333func (o *Buffer) unmarshalType(t *reflect.PtrType, is_group bool, base uintptr) os.Error {
334 st := t.Elem().(*reflect.StructType)
335 prop := GetProperties(st)
Rob Pikec6d8e4a2010-07-28 15:34:32 -0700336 required, reqFields := prop.reqCount, uint64(0)
Rob Pikeaaa3a622010-03-20 22:32:34 -0700337 sbase := getsbase(prop) // scratch area for data items
338
339 var err os.Error
340 for err == nil && o.index < len(o.buf) {
341 oi := o.index
342 var u uint64
343 u, err = o.DecodeVarint()
344 if err != nil {
345 break
346 }
347 wire := int(u & 0x7)
348 if wire == WireEndGroup {
349 if is_group {
350 return nil // input is satisfied
351 }
352 return ErrWrongType
353 }
354 tag := int(u >> 3)
355 fieldnum, ok := prop.tags[tag]
356 if !ok {
357 // Maybe it's an extension?
358 o.ptr = base
359 iv := unsafe.Unreflect(t, unsafe.Pointer(&o.ptr))
360 if e, ok := iv.(extendableProto); ok && isExtensionField(e, int32(tag)) {
361 if err = o.skip(st, tag, wire); err == nil {
362 e.ExtensionMap()[int32(tag)] = bytes.Add(nil, o.buf[oi:o.index])
363 }
364 continue
365 }
366 err = o.skipAndSave(st, tag, wire, base)
367 continue
368 }
369 p := prop.Prop[fieldnum]
370
Rob Pikec6d8e4a2010-07-28 15:34:32 -0700371 if p.dec == nil {
372 fmt.Fprintf(os.Stderr, "no protobuf decoder for %s.%s\n", t, st.Field(fieldnum).Name)
Rob Pikeaaa3a622010-03-20 22:32:34 -0700373 continue
374 }
Rob Pikec6d8e4a2010-07-28 15:34:32 -0700375 if wire != WireStartGroup && wire != p.WireType {
376 err = ErrWrongType
377 continue
378 }
379 err = p.dec(o, p, base, sbase)
380 if err == nil && p.Required {
381 // Successfully decoded a required field.
382 if tag <= 64 {
383 // use bitmap for fields 1-64 to catch field reuse.
384 var mask uint64 = 1 << uint64(tag-1)
385 if reqFields&mask == 0 {
386 // new required field
387 reqFields |= mask
388 required--
389 }
390 } else {
391 // This is imprecise. It can be fooled by a required field
392 // with a tag > 64 that is encoded twice; that's very rare.
393 // A fully correct implementation would require allocating
394 // a data structure, which we would like to avoid.
395 required--
396 }
397 }
Rob Pikeaaa3a622010-03-20 22:32:34 -0700398 }
Rob Pikec6d8e4a2010-07-28 15:34:32 -0700399 if err == nil {
400 if is_group {
401 return io.ErrUnexpectedEOF
402 }
403 if required > 0 {
404 return ErrRequiredNotSet
405 }
Rob Pikeaaa3a622010-03-20 22:32:34 -0700406 }
407 return err
408}
409
410// Make *pslice have base address base, length 0, and capacity startSize.
411func initSlice(pslice unsafe.Pointer, base uintptr) {
412 sp := (*reflect.SliceHeader)(pslice)
413 sp.Data = base
414 sp.Len = 0
415 sp.Cap = startSize
416}
417
418// Individual type decoders
419// For each,
420// u is the decoded value,
421// v is a pointer to the field (pointer) in the struct
422// x is a pointer to the preallocated scratch space to hold the decoded value.
423
424// Decode a bool.
425func (o *Buffer) dec_bool(p *Properties, base uintptr, sbase uintptr) os.Error {
426 u, err := p.valDec(o)
427 if err != nil {
428 return err
429 }
430 v := (**uint8)(unsafe.Pointer(base + p.offset))
431 x := (*uint8)(unsafe.Pointer(sbase + p.scratch))
432 *x = uint8(u)
433 *v = x
434 return nil
435}
436
437// Decode an int32.
438func (o *Buffer) dec_int32(p *Properties, base uintptr, sbase uintptr) os.Error {
439 u, err := p.valDec(o)
440 if err != nil {
441 return err
442 }
443 v := (**int32)(unsafe.Pointer(base + p.offset))
444 x := (*int32)(unsafe.Pointer(sbase + p.scratch))
445 *x = int32(u)
446 *v = x
447 return nil
448}
449
450// Decode an int64.
451func (o *Buffer) dec_int64(p *Properties, base uintptr, sbase uintptr) os.Error {
452 u, err := p.valDec(o)
453 if err != nil {
454 return err
455 }
456 v := (**int64)(unsafe.Pointer(base + p.offset))
457 x := (*int64)(unsafe.Pointer(sbase + p.scratch))
458 *x = int64(u)
459 *v = x
460 return nil
461}
462
463// Decode a string.
464func (o *Buffer) dec_string(p *Properties, base uintptr, sbase uintptr) os.Error {
465 s, err := o.DecodeStringBytes()
466 if err != nil {
467 return err
468 }
469 v := (**string)(unsafe.Pointer(base + p.offset))
470 x := (*string)(unsafe.Pointer(sbase + p.scratch))
471 *x = s
472 *v = x
473 return nil
474}
475
476// Decode a slice of bytes ([]byte).
477func (o *Buffer) dec_slice_byte(p *Properties, base uintptr, sbase uintptr) os.Error {
478 b, err := o.DecodeRawBytes(false)
479 if err != nil {
480 return err
481 }
482 lb := len(b)
483 if lb == 0 {
484 return nil
485 }
486 x := (*[]uint8)(unsafe.Pointer(base + p.offset))
487
488 y := *x
489 c := cap(y)
490 if c == 0 {
491 initSlice(unsafe.Pointer(x), sbase+p.scratch)
492 y = *x
493 c = cap(y)
494 }
495
496 l := len(y)
497 if l+lb > c {
498 // incremental growth is max(len(slice)*1.5, len(slice)+len(bytes))
499 g := l * 3 / 2
500 if l+lb > g {
501 g = l + lb
502 }
503 z := make([]uint8, l, g)
504 copy(z, y)
505 y = z
506 }
507
508 y = y[0 : l+lb]
509 copy(y[l:l+lb], b)
510
511 *x = y
512 return nil
513}
514
515// Decode a slice of bools ([]bool).
516func (o *Buffer) dec_slice_bool(p *Properties, base uintptr, sbase uintptr) os.Error {
517 u, err := p.valDec(o)
518 if err != nil {
519 return err
520 }
521 x := (*[]bool)(unsafe.Pointer(base + p.offset))
522
523 y := *x
524 c := cap(y)
525 if c == 0 {
526 initSlice(unsafe.Pointer(x), sbase+p.scratch)
527 y = *x
528 c = cap(y)
529 }
530 l := len(y)
531 if l >= c {
532 g := l * 3 / 2
533 z := make([]bool, l, g)
534 copy(z, y)
535 y = z
536 }
537 y = y[0 : l+1]
538 y[l] = u != 0
539 *x = y
540 return nil
541}
542
543// Decode a slice of int32s ([]int32).
544func (o *Buffer) dec_slice_int32(p *Properties, base uintptr, sbase uintptr) os.Error {
545 u, err := p.valDec(o)
546 if err != nil {
547 return err
548 }
549 x := (*[]int32)(unsafe.Pointer(base + p.offset))
550
551 y := *x
552 c := cap(y)
553 if c == 0 {
554 initSlice(unsafe.Pointer(x), sbase+p.scratch)
555 y = *x
556 c = cap(y)
557 }
558 l := len(y)
559 if l >= c {
560 g := l * 3 / 2
561 z := make([]int32, l, g)
562 copy(z, y)
563 y = z
564 }
565 y = y[0 : l+1]
566 y[l] = int32(u)
567 *x = y
568 return nil
569}
570
571// Decode a slice of int64s ([]int64).
572func (o *Buffer) dec_slice_int64(p *Properties, base uintptr, sbase uintptr) os.Error {
573 u, err := p.valDec(o)
574 if err != nil {
575 return err
576 }
577 x := (*[]int64)(unsafe.Pointer(base + p.offset))
578
579 y := *x
580 c := cap(y)
581 if c == 0 {
582 initSlice(unsafe.Pointer(x), sbase+p.scratch)
583 y = *x
584 c = cap(y)
585 }
586 l := len(y)
587 if l >= c {
588 g := l * 3 / 2
589 z := make([]int64, l, g)
590 copy(z, y)
591 y = z
592 }
593 y = y[0 : l+1]
594 y[l] = int64(u)
595 *x = y
596 return nil
597}
598
599// Decode a slice of strings ([]string).
600func (o *Buffer) dec_slice_string(p *Properties, base uintptr, sbase uintptr) os.Error {
601 s, err := o.DecodeStringBytes()
602 if err != nil {
603 return err
604 }
605 x := (*[]string)(unsafe.Pointer(base + p.offset))
606
607 y := *x
608 c := cap(y)
609 if c == 0 {
610 initSlice(unsafe.Pointer(x), sbase+p.scratch)
611 y = *x
612 c = cap(y)
613 }
614 l := len(y)
615 if l >= c {
616 g := l * 3 / 2
617 z := make([]string, l, g)
618 copy(z, y)
619 y = z
620 }
621 y = y[0 : l+1]
622 y[l] = s
623 *x = y
624 return nil
625}
626
627// Decode a slice of slice of bytes ([][]byte).
628func (o *Buffer) dec_slice_slice_byte(p *Properties, base uintptr, sbase uintptr) os.Error {
629 b, err := o.DecodeRawBytes(true)
630 if err != nil {
631 return err
632 }
633 x := (*[][]byte)(unsafe.Pointer(base + p.offset))
634
635 y := *x
636 c := cap(y)
637 if c == 0 {
638 initSlice(unsafe.Pointer(x), sbase+p.scratch)
639 y = *x
640 c = cap(y)
641 }
642 l := len(y)
643 if l >= c {
644 g := l * 3 / 2
645 z := make([][]byte, l, g)
646 copy(z, y)
647 y = z
648 }
649 y = y[0 : l+1]
650 y[l] = b
651 *x = y
652 return nil
653}
654
655// Decode a group.
656func (o *Buffer) dec_struct_group(p *Properties, base uintptr, sbase uintptr) os.Error {
657 ptr := (**struct{})(unsafe.Pointer(base + p.offset))
658 typ := p.stype.Elem().(*reflect.StructType)
659 structv := unsafe.New(typ)
660 bas := uintptr(structv)
661 *ptr = (*struct{})(structv)
662
663 err := o.unmarshalType(p.stype, true, bas)
664
665 return err
666}
667
668// Decode an embedded message.
669func (o *Buffer) dec_struct_message(p *Properties, base uintptr, sbase uintptr) (err os.Error) {
670 raw, e := o.DecodeRawBytes(false)
671 if e != nil {
672 return e
673 }
674
675 ptr := (**struct{})(unsafe.Pointer(base + p.offset))
676 typ := p.stype.Elem().(*reflect.StructType)
677 structv := unsafe.New(typ)
678 bas := uintptr(structv)
679 *ptr = (*struct{})(structv)
680
681 // If the object can unmarshal itself, let it.
682 iv := unsafe.Unreflect(p.stype, unsafe.Pointer(ptr))
683 if u, ok := iv.(Unmarshaler); ok {
684 return u.Unmarshal(raw)
685 }
686
687 obuf := o.buf
688 oi := o.index
689 o.buf = raw
690 o.index = 0
691
692 err = o.unmarshalType(p.stype, false, bas)
693 o.buf = obuf
694 o.index = oi
695
696 return err
697}
698
699// Decode a slice of embedded messages.
700func (o *Buffer) dec_slice_struct_message(p *Properties, base uintptr, sbase uintptr) os.Error {
701 return o.dec_slice_struct(p, false, base, sbase)
702}
703
704// Decode a slice of embedded groups.
705func (o *Buffer) dec_slice_struct_group(p *Properties, base uintptr, sbase uintptr) os.Error {
706 return o.dec_slice_struct(p, true, base, sbase)
707}
708
709// Decode a slice of structs ([]*struct).
710func (o *Buffer) dec_slice_struct(p *Properties, is_group bool, base uintptr, sbase uintptr) os.Error {
711
712 x := (*[]*struct{})(unsafe.Pointer(base + p.offset))
713 y := *x
714 c := cap(y)
715 if c == 0 {
716 initSlice(unsafe.Pointer(x), sbase+p.scratch)
717 y = *x
718 c = cap(y)
719 }
720
721 l := len(y)
722 if l >= c {
723 // Create a new slice with 1.5X the capacity.
724 g := l * 3 / 2
725 z := make([]*struct{}, l, g)
726 copy(z, y)
727 y = z
728 }
729 y = y[0 : l+1]
730 *x = y
731
732 typ := p.stype.Elem().(*reflect.StructType)
733 structv := unsafe.New(typ)
734 bas := uintptr(structv)
735 y[l] = (*struct{})(structv)
736
737 if is_group {
738 err := o.unmarshalType(p.stype, is_group, bas)
739 return err
740 }
741
742 raw, err := o.DecodeRawBytes(true)
743 if err != nil {
744 return err
745 }
746
747 // If the object can unmarshal itself, let it.
748 iv := unsafe.Unreflect(p.stype, unsafe.Pointer(&y[l]))
749 if u, ok := iv.(Unmarshaler); ok {
750 return u.Unmarshal(raw)
751 }
752
753 obuf := o.buf
754 oi := o.index
755 o.buf = raw
756 o.index = 0
757
758 err = o.unmarshalType(p.stype, is_group, bas)
759
760 o.buf = obuf
761 o.index = oi
762
763 return err
764}