1 /*
2 * Copyright (C) 2018 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17 #include <android/binder_parcel.h>
18 #include <android/binder_parcel_platform.h>
19 #include "parcel_internal.h"
20
21 #include "ibinder_internal.h"
22 #include "status_internal.h"
23
24 #include <limits>
25
26 #include <android-base/logging.h>
27 #include <android-base/unique_fd.h>
28 #include <binder/Parcel.h>
29 #include <binder/ParcelFileDescriptor.h>
30 #include <utils/Unicode.h>
31
32 using ::android::IBinder;
33 using ::android::Parcel;
34 using ::android::sp;
35 using ::android::status_t;
36 using ::android::base::unique_fd;
37 using ::android::os::ParcelFileDescriptor;
38
39 template <typename T>
40 using ContiguousArrayAllocator = bool (*)(void* arrayData, int32_t length, T** outBuffer);
41
42 template <typename T>
43 using ArrayAllocator = bool (*)(void* arrayData, int32_t length);
44 template <typename T>
45 using ArrayGetter = T (*)(const void* arrayData, size_t index);
46 template <typename T>
47 using ArraySetter = void (*)(void* arrayData, size_t index, T value);
48
WriteAndValidateArraySize(AParcel * parcel,bool isNullArray,int32_t length)49 binder_status_t WriteAndValidateArraySize(AParcel* parcel, bool isNullArray, int32_t length) {
50 // only -1 can be used to represent a null array
51 if (length < -1) return STATUS_BAD_VALUE;
52
53 if (!isNullArray && length < 0) {
54 LOG(ERROR) << __func__ << ": non-null array but length is " << length;
55 return STATUS_BAD_VALUE;
56 }
57 if (isNullArray && length > 0) {
58 LOG(ERROR) << __func__ << ": null buffer cannot be for size " << length << " array.";
59 return STATUS_BAD_VALUE;
60 }
61
62 Parcel* rawParcel = parcel->get();
63
64 status_t status = rawParcel->writeInt32(static_cast<int32_t>(length));
65 if (status != STATUS_OK) return PruneStatusT(status);
66
67 return STATUS_OK;
68 }
69
70 template <typename T>
WriteArray(AParcel * parcel,const T * array,int32_t length)71 binder_status_t WriteArray(AParcel* parcel, const T* array, int32_t length) {
72 binder_status_t status = WriteAndValidateArraySize(parcel, array == nullptr, length);
73 if (status != STATUS_OK) return status;
74 if (length <= 0) return STATUS_OK;
75
76 int32_t size = 0;
77 if (__builtin_smul_overflow(sizeof(T), length, &size)) return STATUS_NO_MEMORY;
78
79 void* const data = parcel->get()->writeInplace(size);
80 if (data == nullptr) return STATUS_NO_MEMORY;
81
82 memcpy(data, array, size);
83
84 return STATUS_OK;
85 }
86
87 // Each element in a char16_t array is converted to an int32_t (not packed).
88 template <>
WriteArray(AParcel * parcel,const char16_t * array,int32_t length)89 binder_status_t WriteArray<char16_t>(AParcel* parcel, const char16_t* array, int32_t length) {
90 binder_status_t status = WriteAndValidateArraySize(parcel, array == nullptr, length);
91 if (status != STATUS_OK) return status;
92 if (length <= 0) return STATUS_OK;
93
94 int32_t size = 0;
95 if (__builtin_smul_overflow(sizeof(char16_t), length, &size)) return STATUS_NO_MEMORY;
96
97 Parcel* rawParcel = parcel->get();
98
99 for (int32_t i = 0; i < length; i++) {
100 status = rawParcel->writeChar(array[i]);
101
102 if (status != STATUS_OK) return PruneStatusT(status);
103 }
104
105 return STATUS_OK;
106 }
107
108 template <typename T>
ReadArray(const AParcel * parcel,void * arrayData,ContiguousArrayAllocator<T> allocator)109 binder_status_t ReadArray(const AParcel* parcel, void* arrayData,
110 ContiguousArrayAllocator<T> allocator) {
111 const Parcel* rawParcel = parcel->get();
112
113 int32_t length;
114 status_t status = rawParcel->readInt32(&length);
115
116 if (status != STATUS_OK) return PruneStatusT(status);
117 if (length < -1) return STATUS_BAD_VALUE;
118
119 T* array;
120 if (!allocator(arrayData, length, &array)) return STATUS_NO_MEMORY;
121
122 if (length <= 0) return STATUS_OK;
123 if (array == nullptr) return STATUS_NO_MEMORY;
124
125 int32_t size = 0;
126 if (__builtin_smul_overflow(sizeof(T), length, &size)) return STATUS_NO_MEMORY;
127
128 const void* data = rawParcel->readInplace(size);
129 if (data == nullptr) return STATUS_NO_MEMORY;
130
131 memcpy(array, data, size);
132
133 return STATUS_OK;
134 }
135
136 // Each element in a char16_t array is converted to an int32_t (not packed)
137 template <>
ReadArray(const AParcel * parcel,void * arrayData,ContiguousArrayAllocator<char16_t> allocator)138 binder_status_t ReadArray<char16_t>(const AParcel* parcel, void* arrayData,
139 ContiguousArrayAllocator<char16_t> allocator) {
140 const Parcel* rawParcel = parcel->get();
141
142 int32_t length;
143 status_t status = rawParcel->readInt32(&length);
144
145 if (status != STATUS_OK) return PruneStatusT(status);
146 if (length < -1) return STATUS_BAD_VALUE;
147
148 char16_t* array;
149 if (!allocator(arrayData, length, &array)) return STATUS_NO_MEMORY;
150
151 if (length <= 0) return STATUS_OK;
152 if (array == nullptr) return STATUS_NO_MEMORY;
153
154 int32_t size = 0;
155 if (__builtin_smul_overflow(sizeof(char16_t), length, &size)) return STATUS_NO_MEMORY;
156
157 for (int32_t i = 0; i < length; i++) {
158 status = rawParcel->readChar(array + i);
159
160 if (status != STATUS_OK) return PruneStatusT(status);
161 }
162
163 return STATUS_OK;
164 }
165
166 template <typename T>
WriteArray(AParcel * parcel,const void * arrayData,int32_t length,ArrayGetter<T> getter,status_t (Parcel::* write)(T))167 binder_status_t WriteArray(AParcel* parcel, const void* arrayData, int32_t length,
168 ArrayGetter<T> getter, status_t (Parcel::*write)(T)) {
169 // we have no clue if arrayData represents a null object or not, we can only infer from length
170 bool arrayIsNull = length < 0;
171 binder_status_t status = WriteAndValidateArraySize(parcel, arrayIsNull, length);
172 if (status != STATUS_OK) return status;
173 if (length <= 0) return STATUS_OK;
174
175 Parcel* rawParcel = parcel->get();
176
177 for (int32_t i = 0; i < length; i++) {
178 status = (rawParcel->*write)(getter(arrayData, i));
179
180 if (status != STATUS_OK) return PruneStatusT(status);
181 }
182
183 return STATUS_OK;
184 }
185
186 template <typename T>
ReadArray(const AParcel * parcel,void * arrayData,ArrayAllocator<T> allocator,ArraySetter<T> setter,status_t (Parcel::* read)(T *)const)187 binder_status_t ReadArray(const AParcel* parcel, void* arrayData, ArrayAllocator<T> allocator,
188 ArraySetter<T> setter, status_t (Parcel::*read)(T*) const) {
189 const Parcel* rawParcel = parcel->get();
190
191 int32_t length;
192 status_t status = rawParcel->readInt32(&length);
193
194 if (status != STATUS_OK) return PruneStatusT(status);
195 if (length < -1) return STATUS_BAD_VALUE;
196
197 if (!allocator(arrayData, length)) return STATUS_NO_MEMORY;
198
199 if (length <= 0) return STATUS_OK;
200
201 for (int32_t i = 0; i < length; i++) {
202 T readTarget;
203 status = (rawParcel->*read)(&readTarget);
204 if (status != STATUS_OK) return PruneStatusT(status);
205
206 setter(arrayData, i, readTarget);
207 }
208
209 return STATUS_OK;
210 }
211
AParcel_delete(AParcel * parcel)212 void AParcel_delete(AParcel* parcel) {
213 delete parcel;
214 }
215
AParcel_setDataPosition(const AParcel * parcel,int32_t position)216 binder_status_t AParcel_setDataPosition(const AParcel* parcel, int32_t position) {
217 if (position < 0) {
218 return STATUS_BAD_VALUE;
219 }
220
221 parcel->get()->setDataPosition(position);
222 return STATUS_OK;
223 }
224
AParcel_getDataPosition(const AParcel * parcel)225 int32_t AParcel_getDataPosition(const AParcel* parcel) {
226 return parcel->get()->dataPosition();
227 }
228
AParcel_markSensitive(const AParcel * parcel)229 void AParcel_markSensitive(const AParcel* parcel) {
230 return parcel->get()->markSensitive();
231 }
232
AParcel_writeStrongBinder(AParcel * parcel,AIBinder * binder)233 binder_status_t AParcel_writeStrongBinder(AParcel* parcel, AIBinder* binder) {
234 sp<IBinder> writeBinder = binder != nullptr ? binder->getBinder() : nullptr;
235 return parcel->get()->writeStrongBinder(writeBinder);
236 }
AParcel_readStrongBinder(const AParcel * parcel,AIBinder ** binder)237 binder_status_t AParcel_readStrongBinder(const AParcel* parcel, AIBinder** binder) {
238 sp<IBinder> readBinder = nullptr;
239 status_t status = parcel->get()->readNullableStrongBinder(&readBinder);
240 if (status != STATUS_OK) {
241 return PruneStatusT(status);
242 }
243 sp<AIBinder> ret = ABpBinder::lookupOrCreateFromBinder(readBinder);
244 AIBinder_incStrong(ret.get());
245 *binder = ret.get();
246 return PruneStatusT(status);
247 }
248
AParcel_writeParcelFileDescriptor(AParcel * parcel,int fd)249 binder_status_t AParcel_writeParcelFileDescriptor(AParcel* parcel, int fd) {
250 if (fd < 0) {
251 if (fd != -1) {
252 return STATUS_UNKNOWN_ERROR;
253 }
254 return PruneStatusT(parcel->get()->writeInt32(0)); // null
255 }
256 status_t status = parcel->get()->writeInt32(1); // not-null
257 if (status != STATUS_OK) return PruneStatusT(status);
258
259 status = parcel->get()->writeDupParcelFileDescriptor(fd);
260 return PruneStatusT(status);
261 }
262
AParcel_readParcelFileDescriptor(const AParcel * parcel,int * fd)263 binder_status_t AParcel_readParcelFileDescriptor(const AParcel* parcel, int* fd) {
264 std::optional<ParcelFileDescriptor> parcelFd;
265
266 status_t status = parcel->get()->readParcelable(&parcelFd);
267 if (status != STATUS_OK) return PruneStatusT(status);
268
269 if (parcelFd) {
270 *fd = parcelFd->release().release();
271 } else {
272 *fd = -1;
273 }
274
275 return STATUS_OK;
276 }
277
AParcel_writeStatusHeader(AParcel * parcel,const AStatus * status)278 binder_status_t AParcel_writeStatusHeader(AParcel* parcel, const AStatus* status) {
279 return PruneStatusT(status->get().writeToParcel(parcel->get()));
280 }
AParcel_readStatusHeader(const AParcel * parcel,AStatus ** status)281 binder_status_t AParcel_readStatusHeader(const AParcel* parcel, AStatus** status) {
282 ::android::binder::Status bstatus;
283 binder_status_t ret = PruneStatusT(bstatus.readFromParcel(*parcel->get()));
284 if (ret == STATUS_OK) {
285 *status = new AStatus(std::move(bstatus));
286 }
287 return PruneStatusT(ret);
288 }
289
AParcel_writeString(AParcel * parcel,const char * string,int32_t length)290 binder_status_t AParcel_writeString(AParcel* parcel, const char* string, int32_t length) {
291 if (string == nullptr) {
292 if (length != -1) {
293 LOG(WARNING) << __func__ << ": null string must be used with length == -1.";
294 return STATUS_BAD_VALUE;
295 }
296
297 status_t err = parcel->get()->writeInt32(-1);
298 return PruneStatusT(err);
299 }
300
301 if (length < 0) {
302 LOG(WARNING) << __func__ << ": Negative string length: " << length;
303 return STATUS_BAD_VALUE;
304 }
305
306 const uint8_t* str8 = (uint8_t*)string;
307 const ssize_t len16 = utf8_to_utf16_length(str8, length);
308
309 if (len16 < 0 || len16 >= std::numeric_limits<int32_t>::max()) {
310 LOG(WARNING) << __func__ << ": Invalid string length: " << len16;
311 return STATUS_BAD_VALUE;
312 }
313
314 status_t err = parcel->get()->writeInt32(len16);
315 if (err) {
316 return PruneStatusT(err);
317 }
318
319 void* str16 = parcel->get()->writeInplace((len16 + 1) * sizeof(char16_t));
320 if (str16 == nullptr) {
321 return STATUS_NO_MEMORY;
322 }
323
324 utf8_to_utf16(str8, length, (char16_t*)str16, (size_t)len16 + 1);
325
326 return STATUS_OK;
327 }
328
AParcel_readString(const AParcel * parcel,void * stringData,AParcel_stringAllocator allocator)329 binder_status_t AParcel_readString(const AParcel* parcel, void* stringData,
330 AParcel_stringAllocator allocator) {
331 size_t len16;
332 const char16_t* str16 = parcel->get()->readString16Inplace(&len16);
333
334 if (str16 == nullptr) {
335 if (allocator(stringData, -1, nullptr)) {
336 return STATUS_OK;
337 }
338
339 return STATUS_UNEXPECTED_NULL;
340 }
341
342 ssize_t len8;
343
344 if (len16 == 0) {
345 len8 = 1;
346 } else {
347 len8 = utf16_to_utf8_length(str16, len16) + 1;
348 }
349
350 if (len8 <= 0 || len8 > std::numeric_limits<int32_t>::max()) {
351 LOG(WARNING) << __func__ << ": Invalid string length: " << len8;
352 return STATUS_BAD_VALUE;
353 }
354
355 char* str8;
356 bool success = allocator(stringData, len8, &str8);
357
358 if (!success || str8 == nullptr) {
359 LOG(WARNING) << __func__ << ": AParcel_stringAllocator failed to allocate.";
360 return STATUS_NO_MEMORY;
361 }
362
363 utf16_to_utf8(str16, len16, str8, len8);
364
365 return STATUS_OK;
366 }
367
AParcel_writeStringArray(AParcel * parcel,const void * arrayData,int32_t length,AParcel_stringArrayElementGetter getter)368 binder_status_t AParcel_writeStringArray(AParcel* parcel, const void* arrayData, int32_t length,
369 AParcel_stringArrayElementGetter getter) {
370 // we have no clue if arrayData represents a null object or not, we can only infer from length
371 bool arrayIsNull = length < 0;
372 binder_status_t status = WriteAndValidateArraySize(parcel, arrayIsNull, length);
373 if (status != STATUS_OK) return status;
374 if (length <= 0) return STATUS_OK;
375
376 for (int32_t i = 0; i < length; i++) {
377 int32_t elementLength = 0;
378 const char* str = getter(arrayData, i, &elementLength);
379 if (str == nullptr && elementLength != -1) return STATUS_BAD_VALUE;
380
381 binder_status_t status = AParcel_writeString(parcel, str, elementLength);
382 if (status != STATUS_OK) return status;
383 }
384
385 return STATUS_OK;
386 }
387
388 // This implements AParcel_stringAllocator for a string using an array, index, and element
389 // allocator.
390 struct StringArrayElementAllocationAdapter {
391 void* arrayData; // stringData from the NDK
392 int32_t index; // index into the string array
393 AParcel_stringArrayElementAllocator elementAllocator;
394
AllocatorStringArrayElementAllocationAdapter395 static bool Allocator(void* stringData, int32_t length, char** buffer) {
396 StringArrayElementAllocationAdapter* adapter =
397 static_cast<StringArrayElementAllocationAdapter*>(stringData);
398 return adapter->elementAllocator(adapter->arrayData, adapter->index, length, buffer);
399 }
400 };
401
AParcel_readStringArray(const AParcel * parcel,void * arrayData,AParcel_stringArrayAllocator allocator,AParcel_stringArrayElementAllocator elementAllocator)402 binder_status_t AParcel_readStringArray(const AParcel* parcel, void* arrayData,
403 AParcel_stringArrayAllocator allocator,
404 AParcel_stringArrayElementAllocator elementAllocator) {
405 const Parcel* rawParcel = parcel->get();
406
407 int32_t length;
408 status_t status = rawParcel->readInt32(&length);
409
410 if (status != STATUS_OK) return PruneStatusT(status);
411 if (length < -1) return STATUS_BAD_VALUE;
412
413 if (!allocator(arrayData, length)) return STATUS_NO_MEMORY;
414
415 if (length == -1) return STATUS_OK; // null string array
416
417 StringArrayElementAllocationAdapter adapter{
418 .arrayData = arrayData,
419 .index = 0,
420 .elementAllocator = elementAllocator,
421 };
422
423 for (; adapter.index < length; adapter.index++) {
424 binder_status_t status = AParcel_readString(parcel, static_cast<void*>(&adapter),
425 StringArrayElementAllocationAdapter::Allocator);
426
427 if (status != STATUS_OK) return status;
428 }
429
430 return STATUS_OK;
431 }
432
AParcel_writeParcelableArray(AParcel * parcel,const void * arrayData,int32_t length,AParcel_writeParcelableElement elementWriter)433 binder_status_t AParcel_writeParcelableArray(AParcel* parcel, const void* arrayData, int32_t length,
434 AParcel_writeParcelableElement elementWriter) {
435 // we have no clue if arrayData represents a null object or not, we can only infer from length
436 bool arrayIsNull = length < 0;
437 binder_status_t status = WriteAndValidateArraySize(parcel, arrayIsNull, length);
438 if (status != STATUS_OK) return status;
439 if (length <= 0) return STATUS_OK;
440
441 for (int32_t i = 0; i < length; i++) {
442 binder_status_t status = elementWriter(parcel, arrayData, i);
443 if (status != STATUS_OK) return status;
444 }
445
446 return STATUS_OK;
447 }
448
AParcel_readParcelableArray(const AParcel * parcel,void * arrayData,AParcel_parcelableArrayAllocator allocator,AParcel_readParcelableElement elementReader)449 binder_status_t AParcel_readParcelableArray(const AParcel* parcel, void* arrayData,
450 AParcel_parcelableArrayAllocator allocator,
451 AParcel_readParcelableElement elementReader) {
452 const Parcel* rawParcel = parcel->get();
453
454 int32_t length;
455 status_t status = rawParcel->readInt32(&length);
456
457 if (status != STATUS_OK) return PruneStatusT(status);
458 if (length < -1) return STATUS_BAD_VALUE;
459
460 if (!allocator(arrayData, length)) return STATUS_NO_MEMORY;
461
462 if (length == -1) return STATUS_OK; // null array
463
464 for (int32_t i = 0; i < length; i++) {
465 binder_status_t status = elementReader(parcel, arrayData, i);
466 if (status != STATUS_OK) return status;
467 }
468
469 return STATUS_OK;
470 }
471
472 // See gen_parcel_helper.py. These auto-generated read/write methods use the same types for
473 // libbinder and this library.
474 // @START
AParcel_writeInt32(AParcel * parcel,int32_t value)475 binder_status_t AParcel_writeInt32(AParcel* parcel, int32_t value) {
476 status_t status = parcel->get()->writeInt32(value);
477 return PruneStatusT(status);
478 }
479
AParcel_writeUint32(AParcel * parcel,uint32_t value)480 binder_status_t AParcel_writeUint32(AParcel* parcel, uint32_t value) {
481 status_t status = parcel->get()->writeUint32(value);
482 return PruneStatusT(status);
483 }
484
AParcel_writeInt64(AParcel * parcel,int64_t value)485 binder_status_t AParcel_writeInt64(AParcel* parcel, int64_t value) {
486 status_t status = parcel->get()->writeInt64(value);
487 return PruneStatusT(status);
488 }
489
AParcel_writeUint64(AParcel * parcel,uint64_t value)490 binder_status_t AParcel_writeUint64(AParcel* parcel, uint64_t value) {
491 status_t status = parcel->get()->writeUint64(value);
492 return PruneStatusT(status);
493 }
494
AParcel_writeFloat(AParcel * parcel,float value)495 binder_status_t AParcel_writeFloat(AParcel* parcel, float value) {
496 status_t status = parcel->get()->writeFloat(value);
497 return PruneStatusT(status);
498 }
499
AParcel_writeDouble(AParcel * parcel,double value)500 binder_status_t AParcel_writeDouble(AParcel* parcel, double value) {
501 status_t status = parcel->get()->writeDouble(value);
502 return PruneStatusT(status);
503 }
504
AParcel_writeBool(AParcel * parcel,bool value)505 binder_status_t AParcel_writeBool(AParcel* parcel, bool value) {
506 status_t status = parcel->get()->writeBool(value);
507 return PruneStatusT(status);
508 }
509
AParcel_writeChar(AParcel * parcel,char16_t value)510 binder_status_t AParcel_writeChar(AParcel* parcel, char16_t value) {
511 status_t status = parcel->get()->writeChar(value);
512 return PruneStatusT(status);
513 }
514
AParcel_writeByte(AParcel * parcel,int8_t value)515 binder_status_t AParcel_writeByte(AParcel* parcel, int8_t value) {
516 status_t status = parcel->get()->writeByte(value);
517 return PruneStatusT(status);
518 }
519
AParcel_readInt32(const AParcel * parcel,int32_t * value)520 binder_status_t AParcel_readInt32(const AParcel* parcel, int32_t* value) {
521 status_t status = parcel->get()->readInt32(value);
522 return PruneStatusT(status);
523 }
524
AParcel_readUint32(const AParcel * parcel,uint32_t * value)525 binder_status_t AParcel_readUint32(const AParcel* parcel, uint32_t* value) {
526 status_t status = parcel->get()->readUint32(value);
527 return PruneStatusT(status);
528 }
529
AParcel_readInt64(const AParcel * parcel,int64_t * value)530 binder_status_t AParcel_readInt64(const AParcel* parcel, int64_t* value) {
531 status_t status = parcel->get()->readInt64(value);
532 return PruneStatusT(status);
533 }
534
AParcel_readUint64(const AParcel * parcel,uint64_t * value)535 binder_status_t AParcel_readUint64(const AParcel* parcel, uint64_t* value) {
536 status_t status = parcel->get()->readUint64(value);
537 return PruneStatusT(status);
538 }
539
AParcel_readFloat(const AParcel * parcel,float * value)540 binder_status_t AParcel_readFloat(const AParcel* parcel, float* value) {
541 status_t status = parcel->get()->readFloat(value);
542 return PruneStatusT(status);
543 }
544
AParcel_readDouble(const AParcel * parcel,double * value)545 binder_status_t AParcel_readDouble(const AParcel* parcel, double* value) {
546 status_t status = parcel->get()->readDouble(value);
547 return PruneStatusT(status);
548 }
549
AParcel_readBool(const AParcel * parcel,bool * value)550 binder_status_t AParcel_readBool(const AParcel* parcel, bool* value) {
551 status_t status = parcel->get()->readBool(value);
552 return PruneStatusT(status);
553 }
554
AParcel_readChar(const AParcel * parcel,char16_t * value)555 binder_status_t AParcel_readChar(const AParcel* parcel, char16_t* value) {
556 status_t status = parcel->get()->readChar(value);
557 return PruneStatusT(status);
558 }
559
AParcel_readByte(const AParcel * parcel,int8_t * value)560 binder_status_t AParcel_readByte(const AParcel* parcel, int8_t* value) {
561 status_t status = parcel->get()->readByte(value);
562 return PruneStatusT(status);
563 }
564
AParcel_writeInt32Array(AParcel * parcel,const int32_t * arrayData,int32_t length)565 binder_status_t AParcel_writeInt32Array(AParcel* parcel, const int32_t* arrayData, int32_t length) {
566 return WriteArray<int32_t>(parcel, arrayData, length);
567 }
568
AParcel_writeUint32Array(AParcel * parcel,const uint32_t * arrayData,int32_t length)569 binder_status_t AParcel_writeUint32Array(AParcel* parcel, const uint32_t* arrayData,
570 int32_t length) {
571 return WriteArray<uint32_t>(parcel, arrayData, length);
572 }
573
AParcel_writeInt64Array(AParcel * parcel,const int64_t * arrayData,int32_t length)574 binder_status_t AParcel_writeInt64Array(AParcel* parcel, const int64_t* arrayData, int32_t length) {
575 return WriteArray<int64_t>(parcel, arrayData, length);
576 }
577
AParcel_writeUint64Array(AParcel * parcel,const uint64_t * arrayData,int32_t length)578 binder_status_t AParcel_writeUint64Array(AParcel* parcel, const uint64_t* arrayData,
579 int32_t length) {
580 return WriteArray<uint64_t>(parcel, arrayData, length);
581 }
582
AParcel_writeFloatArray(AParcel * parcel,const float * arrayData,int32_t length)583 binder_status_t AParcel_writeFloatArray(AParcel* parcel, const float* arrayData, int32_t length) {
584 return WriteArray<float>(parcel, arrayData, length);
585 }
586
AParcel_writeDoubleArray(AParcel * parcel,const double * arrayData,int32_t length)587 binder_status_t AParcel_writeDoubleArray(AParcel* parcel, const double* arrayData, int32_t length) {
588 return WriteArray<double>(parcel, arrayData, length);
589 }
590
AParcel_writeBoolArray(AParcel * parcel,const void * arrayData,int32_t length,AParcel_boolArrayGetter getter)591 binder_status_t AParcel_writeBoolArray(AParcel* parcel, const void* arrayData, int32_t length,
592 AParcel_boolArrayGetter getter) {
593 return WriteArray<bool>(parcel, arrayData, length, getter, &Parcel::writeBool);
594 }
595
AParcel_writeCharArray(AParcel * parcel,const char16_t * arrayData,int32_t length)596 binder_status_t AParcel_writeCharArray(AParcel* parcel, const char16_t* arrayData, int32_t length) {
597 return WriteArray<char16_t>(parcel, arrayData, length);
598 }
599
AParcel_writeByteArray(AParcel * parcel,const int8_t * arrayData,int32_t length)600 binder_status_t AParcel_writeByteArray(AParcel* parcel, const int8_t* arrayData, int32_t length) {
601 return WriteArray<int8_t>(parcel, arrayData, length);
602 }
603
AParcel_readInt32Array(const AParcel * parcel,void * arrayData,AParcel_int32ArrayAllocator allocator)604 binder_status_t AParcel_readInt32Array(const AParcel* parcel, void* arrayData,
605 AParcel_int32ArrayAllocator allocator) {
606 return ReadArray<int32_t>(parcel, arrayData, allocator);
607 }
608
AParcel_readUint32Array(const AParcel * parcel,void * arrayData,AParcel_uint32ArrayAllocator allocator)609 binder_status_t AParcel_readUint32Array(const AParcel* parcel, void* arrayData,
610 AParcel_uint32ArrayAllocator allocator) {
611 return ReadArray<uint32_t>(parcel, arrayData, allocator);
612 }
613
AParcel_readInt64Array(const AParcel * parcel,void * arrayData,AParcel_int64ArrayAllocator allocator)614 binder_status_t AParcel_readInt64Array(const AParcel* parcel, void* arrayData,
615 AParcel_int64ArrayAllocator allocator) {
616 return ReadArray<int64_t>(parcel, arrayData, allocator);
617 }
618
AParcel_readUint64Array(const AParcel * parcel,void * arrayData,AParcel_uint64ArrayAllocator allocator)619 binder_status_t AParcel_readUint64Array(const AParcel* parcel, void* arrayData,
620 AParcel_uint64ArrayAllocator allocator) {
621 return ReadArray<uint64_t>(parcel, arrayData, allocator);
622 }
623
AParcel_readFloatArray(const AParcel * parcel,void * arrayData,AParcel_floatArrayAllocator allocator)624 binder_status_t AParcel_readFloatArray(const AParcel* parcel, void* arrayData,
625 AParcel_floatArrayAllocator allocator) {
626 return ReadArray<float>(parcel, arrayData, allocator);
627 }
628
AParcel_readDoubleArray(const AParcel * parcel,void * arrayData,AParcel_doubleArrayAllocator allocator)629 binder_status_t AParcel_readDoubleArray(const AParcel* parcel, void* arrayData,
630 AParcel_doubleArrayAllocator allocator) {
631 return ReadArray<double>(parcel, arrayData, allocator);
632 }
633
AParcel_readBoolArray(const AParcel * parcel,void * arrayData,AParcel_boolArrayAllocator allocator,AParcel_boolArraySetter setter)634 binder_status_t AParcel_readBoolArray(const AParcel* parcel, void* arrayData,
635 AParcel_boolArrayAllocator allocator,
636 AParcel_boolArraySetter setter) {
637 return ReadArray<bool>(parcel, arrayData, allocator, setter, &Parcel::readBool);
638 }
639
AParcel_readCharArray(const AParcel * parcel,void * arrayData,AParcel_charArrayAllocator allocator)640 binder_status_t AParcel_readCharArray(const AParcel* parcel, void* arrayData,
641 AParcel_charArrayAllocator allocator) {
642 return ReadArray<char16_t>(parcel, arrayData, allocator);
643 }
644
AParcel_readByteArray(const AParcel * parcel,void * arrayData,AParcel_byteArrayAllocator allocator)645 binder_status_t AParcel_readByteArray(const AParcel* parcel, void* arrayData,
646 AParcel_byteArrayAllocator allocator) {
647 return ReadArray<int8_t>(parcel, arrayData, allocator);
648 }
649
AParcel_getAllowFds(const AParcel * parcel)650 bool AParcel_getAllowFds(const AParcel* parcel) {
651 return parcel->get()->allowFds();
652 }
653
AParcel_reset(AParcel * parcel)654 binder_status_t AParcel_reset(AParcel* parcel) {
655 parcel->get()->freeData();
656 return STATUS_OK;
657 }
658
AParcel_getDataSize(const AParcel * parcel)659 int32_t AParcel_getDataSize(const AParcel* parcel) {
660 return parcel->get()->dataSize();
661 }
662
AParcel_appendFrom(const AParcel * from,AParcel * to,int32_t start,int32_t size)663 binder_status_t AParcel_appendFrom(const AParcel* from, AParcel* to, int32_t start, int32_t size) {
664 status_t status = to->get()->appendFrom(from->get(), start, size);
665 return PruneStatusT(status);
666 }
667
AParcel_create()668 AParcel* AParcel_create() {
669 return new AParcel(nullptr);
670 }
671
672 // @END
673