1 /*
2  * Copyright (C) 2005 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 #define LOG_TAG "hw-Parcel"
18 //#define LOG_NDEBUG 0
19 
20 #include <errno.h>
21 #include <fcntl.h>
22 #include <inttypes.h>
23 #include <pthread.h>
24 #include <stdint.h>
25 #include <stdio.h>
26 #include <stdlib.h>
27 #include <sys/mman.h>
28 #include <sys/stat.h>
29 #include <sys/types.h>
30 #include <sys/resource.h>
31 #include <unistd.h>
32 
33 #include <hwbinder/Binder.h>
34 #include <hwbinder/BpHwBinder.h>
35 #include <hwbinder/IPCThreadState.h>
36 #include <hwbinder/Parcel.h>
37 #include <hwbinder/ProcessState.h>
38 
39 #include <cutils/ashmem.h>
40 #include <utils/Debug.h>
41 #include <utils/Log.h>
42 #include <utils/misc.h>
43 #include <utils/String8.h>
44 #include <utils/String16.h>
45 
46 #include "binder_kernel.h"
47 #include <hwbinder/Static.h>
48 #include "TextOutput.h"
49 
50 #include <atomic>
51 
52 #define LOG_REFS(...)
53 //#define LOG_REFS(...) ALOG(LOG_DEBUG, LOG_TAG, __VA_ARGS__)
54 #define LOG_ALLOC(...)
55 //#define LOG_ALLOC(...) ALOG(LOG_DEBUG, LOG_TAG, __VA_ARGS__)
56 #define LOG_BUFFER(...)
57 // #define LOG_BUFFER(...) ALOG(LOG_DEBUG, LOG_TAG, __VA_ARGS__)
58 
59 // ---------------------------------------------------------------------------
60 
61 // This macro should never be used at runtime, as a too large value
62 // of s could cause an integer overflow. Instead, you should always
63 // use the wrapper function pad_size()
64 #define PAD_SIZE_UNSAFE(s) (((s)+3)&~3)
65 
pad_size(size_t s)66 static size_t pad_size(size_t s) {
67     if (s > (std::numeric_limits<size_t>::max() - 3)) {
68         LOG_ALWAYS_FATAL("pad size too big %zu", s);
69     }
70     return PAD_SIZE_UNSAFE(s);
71 }
72 
73 // Note: must be kept in sync with android/os/StrictMode.java's PENALTY_GATHER
74 #define STRICT_MODE_PENALTY_GATHER (0x40 << 16)
75 
76 namespace android {
77 namespace hardware {
78 
79 static std::atomic<size_t> gParcelGlobalAllocCount;
80 static std::atomic<size_t> gParcelGlobalAllocSize;
81 
82 static size_t gMaxFds = 0;
83 
acquire_binder_object(const sp<ProcessState> & proc,const flat_binder_object & obj,const void * who)84 void acquire_binder_object(const sp<ProcessState>& proc,
85     const flat_binder_object& obj, const void* who)
86 {
87     switch (obj.hdr.type) {
88         case BINDER_TYPE_BINDER:
89             if (obj.binder) {
90                 LOG_REFS("Parcel %p acquiring reference on local %p", who, obj.cookie);
91                 reinterpret_cast<IBinder*>(obj.cookie)->incStrong(who);
92             }
93             return;
94         case BINDER_TYPE_WEAK_BINDER:
95             if (obj.binder)
96                 reinterpret_cast<RefBase::weakref_type*>(obj.binder)->incWeak(who);
97             return;
98         case BINDER_TYPE_HANDLE: {
99             const sp<IBinder> b = proc->getStrongProxyForHandle(obj.handle);
100             if (b != nullptr) {
101                 LOG_REFS("Parcel %p acquiring reference on remote %p", who, b.get());
102                 b->incStrong(who);
103             }
104             return;
105         }
106         case BINDER_TYPE_WEAK_HANDLE: {
107             const wp<IBinder> b = proc->getWeakProxyForHandle(obj.handle);
108             if (b != nullptr) b.get_refs()->incWeak(who);
109             return;
110         }
111     }
112 
113     ALOGD("Invalid object type 0x%08x", obj.hdr.type);
114 }
115 
acquire_object(const sp<ProcessState> & proc,const binder_object_header & obj,const void * who)116 void acquire_object(const sp<ProcessState>& proc, const binder_object_header& obj,
117         const void *who) {
118     switch (obj.type) {
119         case BINDER_TYPE_BINDER:
120         case BINDER_TYPE_WEAK_BINDER:
121         case BINDER_TYPE_HANDLE:
122         case BINDER_TYPE_WEAK_HANDLE: {
123             const flat_binder_object& fbo = reinterpret_cast<const flat_binder_object&>(obj);
124             acquire_binder_object(proc, fbo, who);
125             break;
126         }
127     }
128 }
129 
release_object(const sp<ProcessState> & proc,const flat_binder_object & obj,const void * who)130 void release_object(const sp<ProcessState>& proc,
131     const flat_binder_object& obj, const void* who)
132 {
133     switch (obj.hdr.type) {
134         case BINDER_TYPE_BINDER:
135             if (obj.binder) {
136                 LOG_REFS("Parcel %p releasing reference on local %p", who, obj.cookie);
137                 reinterpret_cast<IBinder*>(obj.cookie)->decStrong(who);
138             }
139             return;
140         case BINDER_TYPE_WEAK_BINDER:
141             if (obj.binder)
142                 reinterpret_cast<RefBase::weakref_type*>(obj.binder)->decWeak(who);
143             return;
144         case BINDER_TYPE_HANDLE: {
145             const sp<IBinder> b = proc->getStrongProxyForHandle(obj.handle);
146             if (b != nullptr) {
147                 LOG_REFS("Parcel %p releasing reference on remote %p", who, b.get());
148                 b->decStrong(who);
149             }
150             return;
151         }
152         case BINDER_TYPE_WEAK_HANDLE: {
153             const wp<IBinder> b = proc->getWeakProxyForHandle(obj.handle);
154             if (b != nullptr) b.get_refs()->decWeak(who);
155             return;
156         }
157         case BINDER_TYPE_FD: {
158             if (obj.cookie != 0) { // owned
159                 close(obj.handle);
160             }
161             return;
162         }
163         case BINDER_TYPE_PTR: {
164             // The relevant buffer is part of the transaction buffer and will be freed that way
165             return;
166         }
167         case BINDER_TYPE_FDA: {
168             // The enclosed file descriptors are closed in the kernel
169             return;
170         }
171     }
172 
173     ALOGE("Invalid object type 0x%08x", obj.hdr.type);
174 }
175 
finish_flatten_binder(const sp<IBinder> &,const flat_binder_object & flat,Parcel * out)176 inline static status_t finish_flatten_binder(
177     const sp<IBinder>& /*binder*/, const flat_binder_object& flat, Parcel* out)
178 {
179     return out->writeObject(flat);
180 }
181 
flatten_binder(const sp<ProcessState> &,const sp<IBinder> & binder,Parcel * out)182 status_t flatten_binder(const sp<ProcessState>& /*proc*/,
183     const sp<IBinder>& binder, Parcel* out)
184 {
185     flat_binder_object obj = {};
186 
187     if (binder != nullptr) {
188         BHwBinder *local = binder->localBinder();
189         if (!local) {
190             BpHwBinder *proxy = binder->remoteBinder();
191             if (proxy == nullptr) {
192                 ALOGE("null proxy");
193             }
194             const int32_t handle = proxy ? proxy->handle() : 0;
195             obj.hdr.type = BINDER_TYPE_HANDLE;
196             obj.flags = FLAT_BINDER_FLAG_ACCEPTS_FDS;
197             obj.binder = 0; /* Don't pass uninitialized stack data to a remote process */
198             obj.handle = handle;
199             obj.cookie = 0;
200         } else {
201             // Get policy and convert it
202             int policy = local->getMinSchedulingPolicy();
203             int priority = local->getMinSchedulingPriority();
204 
205             obj.flags = priority & FLAT_BINDER_FLAG_PRIORITY_MASK;
206             obj.flags |= FLAT_BINDER_FLAG_ACCEPTS_FDS | FLAT_BINDER_FLAG_INHERIT_RT;
207             obj.flags |= (policy & 3) << FLAT_BINDER_FLAG_SCHED_POLICY_SHIFT;
208             if (local->isRequestingSid()) {
209                 obj.flags |= FLAT_BINDER_FLAG_TXN_SECURITY_CTX;
210             }
211             obj.hdr.type = BINDER_TYPE_BINDER;
212             obj.binder = reinterpret_cast<uintptr_t>(local->getWeakRefs());
213             obj.cookie = reinterpret_cast<uintptr_t>(local);
214         }
215     } else {
216         obj.hdr.type = BINDER_TYPE_BINDER;
217         obj.binder = 0;
218         obj.cookie = 0;
219     }
220 
221     return finish_flatten_binder(binder, obj, out);
222 }
223 
finish_unflatten_binder(BpHwBinder *,const flat_binder_object &,const Parcel &)224 inline static status_t finish_unflatten_binder(
225     BpHwBinder* /*proxy*/, const flat_binder_object& /*flat*/,
226     const Parcel& /*in*/)
227 {
228     return NO_ERROR;
229 }
230 
unflatten_binder(const sp<ProcessState> & proc,const Parcel & in,sp<IBinder> * out)231 status_t unflatten_binder(const sp<ProcessState>& proc,
232     const Parcel& in, sp<IBinder>* out)
233 {
234     const flat_binder_object* flat = in.readObject<flat_binder_object>();
235 
236     if (flat) {
237         switch (flat->hdr.type) {
238             case BINDER_TYPE_BINDER:
239                 *out = reinterpret_cast<IBinder*>(flat->cookie);
240                 return finish_unflatten_binder(nullptr, *flat, in);
241             case BINDER_TYPE_HANDLE:
242                 *out = proc->getStrongProxyForHandle(flat->handle);
243                 return finish_unflatten_binder(
244                     static_cast<BpHwBinder*>(out->get()), *flat, in);
245         }
246     }
247     return BAD_TYPE;
248 }
249 
250 // ---------------------------------------------------------------------------
251 
Parcel()252 Parcel::Parcel()
253 {
254     LOG_ALLOC("Parcel %p: constructing", this);
255     initState();
256 }
257 
~Parcel()258 Parcel::~Parcel()
259 {
260     freeDataNoInit();
261     LOG_ALLOC("Parcel %p: destroyed", this);
262 }
263 
getGlobalAllocSize()264 size_t Parcel::getGlobalAllocSize() {
265     return gParcelGlobalAllocSize.load();
266 }
267 
getGlobalAllocCount()268 size_t Parcel::getGlobalAllocCount() {
269     return gParcelGlobalAllocCount.load();
270 }
271 
data() const272 const uint8_t* Parcel::data() const
273 {
274     return mData;
275 }
276 
dataSize() const277 size_t Parcel::dataSize() const
278 {
279     return (mDataSize > mDataPos ? mDataSize : mDataPos);
280 }
281 
dataAvail() const282 size_t Parcel::dataAvail() const
283 {
284     size_t result = dataSize() - dataPosition();
285     if (result > INT32_MAX) {
286         LOG_ALWAYS_FATAL("result too big: %zu", result);
287     }
288     return result;
289 }
290 
dataPosition() const291 size_t Parcel::dataPosition() const
292 {
293     return mDataPos;
294 }
295 
dataCapacity() const296 size_t Parcel::dataCapacity() const
297 {
298     return mDataCapacity;
299 }
300 
setDataSize(size_t size)301 status_t Parcel::setDataSize(size_t size)
302 {
303     if (size > INT32_MAX) {
304         // don't accept size_t values which may have come from an
305         // inadvertent conversion from a negative int.
306         return BAD_VALUE;
307     }
308 
309     status_t err;
310     err = continueWrite(size);
311     if (err == NO_ERROR) {
312         mDataSize = size;
313         ALOGV("setDataSize Setting data size of %p to %zu", this, mDataSize);
314     }
315     return err;
316 }
317 
setDataPosition(size_t pos) const318 void Parcel::setDataPosition(size_t pos) const
319 {
320     if (pos > INT32_MAX) {
321         // don't accept size_t values which may have come from an
322         // inadvertent conversion from a negative int.
323         LOG_ALWAYS_FATAL("pos too big: %zu", pos);
324     }
325 
326     mDataPos = pos;
327     mNextObjectHint = 0;
328 }
329 
setDataCapacity(size_t size)330 status_t Parcel::setDataCapacity(size_t size)
331 {
332     if (size > INT32_MAX) {
333         // don't accept size_t values which may have come from an
334         // inadvertent conversion from a negative int.
335         return BAD_VALUE;
336     }
337 
338     if (size > mDataCapacity) return continueWrite(size);
339     return NO_ERROR;
340 }
341 
setData(const uint8_t * buffer,size_t len)342 status_t Parcel::setData(const uint8_t* buffer, size_t len)
343 {
344     if (len > INT32_MAX) {
345         // don't accept size_t values which may have come from an
346         // inadvertent conversion from a negative int.
347         return BAD_VALUE;
348     }
349 
350     status_t err = restartWrite(len);
351     if (err == NO_ERROR) {
352         memcpy(const_cast<uint8_t*>(data()), buffer, len);
353         mDataSize = len;
354         mFdsKnown = false;
355     }
356     return err;
357 }
358 
359 // Write RPC headers.  (previously just the interface token)
writeInterfaceToken(const char * interface)360 status_t Parcel::writeInterfaceToken(const char* interface)
361 {
362     // currently the interface identification token is just its name as a string
363     return writeCString(interface);
364 }
365 
enforceInterface(const char * interface) const366 bool Parcel::enforceInterface(const char* interface) const
367 {
368     const char* str = readCString();
369     if (str != nullptr && strcmp(str, interface) == 0) {
370         return true;
371     } else {
372         ALOGW("**** enforceInterface() expected '%s' but read '%s'",
373                 interface, (str ? str : "<empty string>"));
374         return false;
375     }
376 }
377 
objects() const378 const binder_size_t* Parcel::objects() const
379 {
380     return mObjects;
381 }
382 
objectsCount() const383 size_t Parcel::objectsCount() const
384 {
385     return mObjectsSize;
386 }
387 
errorCheck() const388 status_t Parcel::errorCheck() const
389 {
390     return mError;
391 }
392 
setError(status_t err)393 void Parcel::setError(status_t err)
394 {
395     mError = err;
396 }
397 
finishWrite(size_t len)398 status_t Parcel::finishWrite(size_t len)
399 {
400     if (len > INT32_MAX) {
401         // don't accept size_t values which may have come from an
402         // inadvertent conversion from a negative int.
403         return BAD_VALUE;
404     }
405 
406     //printf("Finish write of %d\n", len);
407     mDataPos += len;
408     ALOGV("finishWrite Setting data pos of %p to %zu", this, mDataPos);
409     if (mDataPos > mDataSize) {
410         mDataSize = mDataPos;
411         ALOGV("finishWrite Setting data size of %p to %zu", this, mDataSize);
412     }
413     //printf("New pos=%d, size=%d\n", mDataPos, mDataSize);
414     return NO_ERROR;
415 }
416 
writeUnpadded(const void * data,size_t len)417 status_t Parcel::writeUnpadded(const void* data, size_t len)
418 {
419     if (len > INT32_MAX) {
420         // don't accept size_t values which may have come from an
421         // inadvertent conversion from a negative int.
422         return BAD_VALUE;
423     }
424 
425     size_t end = mDataPos + len;
426     if (end < mDataPos) {
427         // integer overflow
428         return BAD_VALUE;
429     }
430 
431     if (end <= mDataCapacity) {
432 restart_write:
433         memcpy(mData+mDataPos, data, len);
434         return finishWrite(len);
435     }
436 
437     status_t err = growData(len);
438     if (err == NO_ERROR) goto restart_write;
439     return err;
440 }
441 
write(const void * data,size_t len)442 status_t Parcel::write(const void* data, size_t len)
443 {
444     if (len > INT32_MAX) {
445         // don't accept size_t values which may have come from an
446         // inadvertent conversion from a negative int.
447         return BAD_VALUE;
448     }
449 
450     void* const d = writeInplace(len);
451     if (d) {
452         memcpy(d, data, len);
453         return NO_ERROR;
454     }
455     return mError;
456 }
457 
writeInplace(size_t len)458 void* Parcel::writeInplace(size_t len)
459 {
460     if (len > INT32_MAX) {
461         // don't accept size_t values which may have come from an
462         // inadvertent conversion from a negative int.
463         return nullptr;
464     }
465 
466     const size_t padded = pad_size(len);
467 
468     // validate for integer overflow
469     if (mDataPos+padded < mDataPos) {
470         return nullptr;
471     }
472 
473     if ((mDataPos+padded) <= mDataCapacity) {
474 restart_write:
475         //printf("Writing %ld bytes, padded to %ld\n", len, padded);
476         uint8_t* const data = mData+mDataPos;
477 
478         // Need to pad at end?
479         if (padded != len) {
480 #if BYTE_ORDER == BIG_ENDIAN
481             static const uint32_t mask[4] = {
482                 0x00000000, 0xffffff00, 0xffff0000, 0xff000000
483             };
484 #endif
485 #if BYTE_ORDER == LITTLE_ENDIAN
486             static const uint32_t mask[4] = {
487                 0x00000000, 0x00ffffff, 0x0000ffff, 0x000000ff
488             };
489 #endif
490             //printf("Applying pad mask: %p to %p\n", (void*)mask[padded-len],
491             //    *reinterpret_cast<void**>(data+padded-4));
492             *reinterpret_cast<uint32_t*>(data+padded-4) &= mask[padded-len];
493         }
494 
495         finishWrite(padded);
496         return data;
497     }
498 
499     status_t err = growData(padded);
500     if (err == NO_ERROR) goto restart_write;
501     return nullptr;
502 }
503 
writeInt8(int8_t val)504 status_t Parcel::writeInt8(int8_t val)
505 {
506     return write(&val, sizeof(val));
507 }
508 
writeUint8(uint8_t val)509 status_t Parcel::writeUint8(uint8_t val)
510 {
511     return write(&val, sizeof(val));
512 }
513 
writeInt16(int16_t val)514 status_t Parcel::writeInt16(int16_t val)
515 {
516     return write(&val, sizeof(val));
517 }
518 
writeUint16(uint16_t val)519 status_t Parcel::writeUint16(uint16_t val)
520 {
521     return write(&val, sizeof(val));
522 }
523 
writeInt32(int32_t val)524 status_t Parcel::writeInt32(int32_t val)
525 {
526     return writeAligned(val);
527 }
528 
writeUint32(uint32_t val)529 status_t Parcel::writeUint32(uint32_t val)
530 {
531     return writeAligned(val);
532 }
533 
writeBool(bool val)534 status_t Parcel::writeBool(bool val)
535 {
536     return writeInt8(int8_t(val));
537 }
writeInt64(int64_t val)538 status_t Parcel::writeInt64(int64_t val)
539 {
540     return writeAligned(val);
541 }
542 
writeUint64(uint64_t val)543 status_t Parcel::writeUint64(uint64_t val)
544 {
545     return writeAligned(val);
546 }
547 
writePointer(uintptr_t val)548 status_t Parcel::writePointer(uintptr_t val)
549 {
550     return writeAligned<binder_uintptr_t>(val);
551 }
552 
writeFloat(float val)553 status_t Parcel::writeFloat(float val)
554 {
555     return writeAligned(val);
556 }
557 
558 #if defined(__mips__) && defined(__mips_hard_float)
559 
writeDouble(double val)560 status_t Parcel::writeDouble(double val)
561 {
562     union {
563         double d;
564         unsigned long long ll;
565     } u;
566     u.d = val;
567     return writeAligned(u.ll);
568 }
569 
570 #else
571 
writeDouble(double val)572 status_t Parcel::writeDouble(double val)
573 {
574     return writeAligned(val);
575 }
576 
577 #endif
578 
writeCString(const char * str)579 status_t Parcel::writeCString(const char* str)
580 {
581     return write(str, strlen(str)+1);
582 }
writeString16(const std::unique_ptr<String16> & str)583 status_t Parcel::writeString16(const std::unique_ptr<String16>& str)
584 {
585     if (!str) {
586         return writeInt32(-1);
587     }
588 
589     return writeString16(*str);
590 }
591 
writeString16(const String16 & str)592 status_t Parcel::writeString16(const String16& str)
593 {
594     return writeString16(str.string(), str.size());
595 }
596 
writeString16(const char16_t * str,size_t len)597 status_t Parcel::writeString16(const char16_t* str, size_t len)
598 {
599     if (str == nullptr) return writeInt32(-1);
600 
601     status_t err = writeInt32(len);
602     if (err == NO_ERROR) {
603         len *= sizeof(char16_t);
604         uint8_t* data = (uint8_t*)writeInplace(len+sizeof(char16_t));
605         if (data) {
606             memcpy(data, str, len);
607             *reinterpret_cast<char16_t*>(data+len) = 0;
608             return NO_ERROR;
609         }
610         err = mError;
611     }
612     return err;
613 }
writeStrongBinder(const sp<IBinder> & val)614 status_t Parcel::writeStrongBinder(const sp<IBinder>& val)
615 {
616     return flatten_binder(ProcessState::self(), val, this);
617 }
618 
619 template <typename T>
writeObject(const T & val)620 status_t Parcel::writeObject(const T& val)
621 {
622     const bool enoughData = (mDataPos+sizeof(val)) <= mDataCapacity;
623     const bool enoughObjects = mObjectsSize < mObjectsCapacity;
624     if (enoughData && enoughObjects) {
625 restart_write:
626         *reinterpret_cast<T*>(mData+mDataPos) = val;
627 
628         const binder_object_header* hdr = reinterpret_cast<binder_object_header*>(mData+mDataPos);
629         switch (hdr->type) {
630             case BINDER_TYPE_BINDER:
631             case BINDER_TYPE_WEAK_BINDER:
632             case BINDER_TYPE_HANDLE:
633             case BINDER_TYPE_WEAK_HANDLE: {
634                 const flat_binder_object *fbo = reinterpret_cast<const flat_binder_object*>(hdr);
635                 if (fbo->binder != 0) {
636                     mObjects[mObjectsSize++] = mDataPos;
637                     acquire_binder_object(ProcessState::self(), *fbo, this);
638                 }
639                 break;
640             }
641             case BINDER_TYPE_FD: {
642                 // remember if it's a file descriptor
643                 if (!mAllowFds) {
644                     // fail before modifying our object index
645                     return FDS_NOT_ALLOWED;
646                 }
647                 mHasFds = mFdsKnown = true;
648                 mObjects[mObjectsSize++] = mDataPos;
649                 break;
650             }
651             case BINDER_TYPE_FDA:
652                 mObjects[mObjectsSize++] = mDataPos;
653                 break;
654             case BINDER_TYPE_PTR: {
655                 const binder_buffer_object *buffer_obj = reinterpret_cast<
656                     const binder_buffer_object*>(hdr);
657                 if ((void *)buffer_obj->buffer != nullptr) {
658                     mObjects[mObjectsSize++] = mDataPos;
659                 }
660                 break;
661             }
662             default: {
663                 ALOGE("writeObject: unknown type %d", hdr->type);
664                 break;
665             }
666         }
667         return finishWrite(sizeof(val));
668     }
669 
670     if (!enoughData) {
671         const status_t err = growData(sizeof(val));
672         if (err != NO_ERROR) return err;
673     }
674     if (!enoughObjects) {
675         if (mObjectsSize > SIZE_MAX - 2) return NO_MEMORY; // overflow
676         if (mObjectsSize + 2 > SIZE_MAX / 3) return NO_MEMORY; // overflow
677         size_t newSize = ((mObjectsSize+2)*3)/2;
678         if (newSize > SIZE_MAX / sizeof(binder_size_t)) return NO_MEMORY; // overflow
679         binder_size_t* objects = (binder_size_t*)realloc(mObjects, newSize*sizeof(binder_size_t));
680         if (objects == nullptr) return NO_MEMORY;
681         mObjects = objects;
682         mObjectsCapacity = newSize;
683     }
684 
685     goto restart_write;
686 }
687 
688 template status_t Parcel::writeObject<flat_binder_object>(const flat_binder_object& val);
689 template status_t Parcel::writeObject<binder_fd_object>(const binder_fd_object& val);
690 template status_t Parcel::writeObject<binder_buffer_object>(const binder_buffer_object& val);
691 template status_t Parcel::writeObject<binder_fd_array_object>(const binder_fd_array_object& val);
692 
validateBufferChild(size_t child_buffer_handle,size_t child_offset) const693 bool Parcel::validateBufferChild(size_t child_buffer_handle,
694                                  size_t child_offset) const {
695     if (child_buffer_handle >= mObjectsSize)
696         return false;
697     binder_buffer_object *child = reinterpret_cast<binder_buffer_object*>
698             (mData + mObjects[child_buffer_handle]);
699     if (child->hdr.type != BINDER_TYPE_PTR || child_offset > child->length) {
700         // Parent object not a buffer, or not large enough
701         LOG_BUFFER("writeEmbeddedReference found weird child. "
702                    "child_offset = %zu, child->length = %zu",
703                    child_offset, (size_t)child->length);
704         return false;
705     }
706     return true;
707 }
708 
validateBufferParent(size_t parent_buffer_handle,size_t parent_offset) const709 bool Parcel::validateBufferParent(size_t parent_buffer_handle,
710                                   size_t parent_offset) const {
711     if (parent_buffer_handle >= mObjectsSize)
712         return false;
713     binder_buffer_object *parent = reinterpret_cast<binder_buffer_object*>
714             (mData + mObjects[parent_buffer_handle]);
715     if (parent->hdr.type != BINDER_TYPE_PTR ||
716             sizeof(binder_uintptr_t) > parent->length ||
717             parent_offset > parent->length - sizeof(binder_uintptr_t)) {
718         // Parent object not a buffer, or not large enough
719         return false;
720     }
721     return true;
722 }
writeEmbeddedBuffer(const void * buffer,size_t length,size_t * handle,size_t parent_buffer_handle,size_t parent_offset)723 status_t Parcel::writeEmbeddedBuffer(
724         const void *buffer, size_t length, size_t *handle,
725         size_t parent_buffer_handle, size_t parent_offset) {
726     LOG_BUFFER("writeEmbeddedBuffer(%p, %zu, parent = (%zu, %zu)) -> %zu",
727         buffer, length, parent_buffer_handle,
728          parent_offset, mObjectsSize);
729     if(!validateBufferParent(parent_buffer_handle, parent_offset))
730         return BAD_VALUE;
731     binder_buffer_object obj = {
732         .hdr = { .type = BINDER_TYPE_PTR },
733         .flags = BINDER_BUFFER_FLAG_HAS_PARENT,
734         .buffer = reinterpret_cast<binder_uintptr_t>(buffer),
735         .length = length,
736         .parent = parent_buffer_handle,
737         .parent_offset = parent_offset,
738     };
739     if (handle != nullptr) {
740         // We use an index into mObjects as a handle
741         *handle = mObjectsSize;
742     }
743     return writeObject(obj);
744 }
745 
writeBuffer(const void * buffer,size_t length,size_t * handle)746 status_t Parcel::writeBuffer(const void *buffer, size_t length, size_t *handle)
747 {
748     LOG_BUFFER("writeBuffer(%p, %zu) -> %zu",
749         buffer, length, mObjectsSize);
750     binder_buffer_object obj {
751         .hdr = { .type = BINDER_TYPE_PTR },
752         .flags = 0,
753         .buffer = reinterpret_cast<binder_uintptr_t>(buffer),
754         .length = length,
755     };
756     if (handle != nullptr) {
757         // We use an index into mObjects as a handle
758         *handle = mObjectsSize;
759     }
760     return writeObject(obj);
761 }
762 
clearCache() const763 void Parcel::clearCache() const {
764     LOG_BUFFER("clearing cache.");
765     mBufCachePos = 0;
766     mBufCache.clear();
767 }
768 
updateCache() const769 void Parcel::updateCache() const {
770     if(mBufCachePos == mObjectsSize)
771         return;
772     LOG_BUFFER("updating cache from %zu to %zu", mBufCachePos, mObjectsSize);
773     for(size_t i = mBufCachePos; i < mObjectsSize; i++) {
774         binder_size_t dataPos = mObjects[i];
775         binder_buffer_object *obj =
776             reinterpret_cast<binder_buffer_object*>(mData+dataPos);
777         if(obj->hdr.type != BINDER_TYPE_PTR)
778             continue;
779         BufferInfo ifo;
780         ifo.index = i;
781         ifo.buffer = obj->buffer;
782         ifo.bufend = obj->buffer + obj->length;
783         mBufCache.push_back(ifo);
784     }
785     mBufCachePos = mObjectsSize;
786 }
787 
788 /* O(n) (n=#buffers) to find a buffer that contains the given addr */
findBuffer(const void * ptr,size_t length,bool * found,size_t * handle,size_t * offset) const789 status_t Parcel::findBuffer(const void *ptr, size_t length, bool *found,
790                         size_t *handle, size_t *offset) const {
791     if(found == nullptr)
792         return UNKNOWN_ERROR;
793     updateCache();
794     binder_uintptr_t ptrVal = reinterpret_cast<binder_uintptr_t>(ptr);
795     // true if the pointer is in some buffer, but the length is too big
796     // so that ptr + length doesn't fit into the buffer.
797     bool suspectRejectBadPointer = false;
798     LOG_BUFFER("findBuffer examining %zu objects.", mObjectsSize);
799     for(auto entry = mBufCache.rbegin(); entry != mBufCache.rend(); ++entry ) {
800         if(entry->buffer <= ptrVal && ptrVal < entry->bufend) {
801             // might have found it.
802             if(ptrVal + length <= entry->bufend) {
803                 *found = true;
804                 if(handle != nullptr) *handle = entry->index;
805                 if(offset != nullptr) *offset = ptrVal - entry->buffer;
806                 LOG_BUFFER("    findBuffer has a match at %zu!", entry->index);
807                 return OK;
808             } else {
809                 suspectRejectBadPointer = true;
810             }
811         }
812     }
813     LOG_BUFFER("findBuffer did not find for ptr = %p.", ptr);
814     *found = false;
815     return suspectRejectBadPointer ? BAD_VALUE : OK;
816 }
817 
818 /* findBuffer with the assumption that ptr = .buffer (so it points to top
819  * of the buffer, aka offset 0).
820  *  */
quickFindBuffer(const void * ptr,size_t * handle) const821 status_t Parcel::quickFindBuffer(const void *ptr, size_t *handle) const {
822     updateCache();
823     binder_uintptr_t ptrVal = reinterpret_cast<binder_uintptr_t>(ptr);
824     LOG_BUFFER("quickFindBuffer examining %zu objects.", mObjectsSize);
825     for(auto entry = mBufCache.rbegin(); entry != mBufCache.rend(); ++entry ) {
826         if(entry->buffer == ptrVal) {
827             if(handle != nullptr) *handle = entry->index;
828             return OK;
829         }
830     }
831     LOG_BUFFER("quickFindBuffer did not find for ptr = %p.", ptr);
832     return NO_INIT;
833 }
834 
writeNativeHandleNoDup(const native_handle_t * handle,bool embedded,size_t parent_buffer_handle,size_t parent_offset)835 status_t Parcel::writeNativeHandleNoDup(const native_handle_t *handle,
836                                         bool embedded,
837                                         size_t parent_buffer_handle,
838                                         size_t parent_offset)
839 {
840     size_t buffer_handle;
841     status_t status = OK;
842 
843     if (handle == nullptr) {
844         status = writeUint64(0);
845         return status;
846     }
847 
848     size_t native_handle_size = sizeof(native_handle_t)
849                 + handle->numFds * sizeof(int) + handle->numInts * sizeof(int);
850     writeUint64(native_handle_size);
851 
852     if (embedded) {
853         status = writeEmbeddedBuffer((void*) handle,
854                 native_handle_size, &buffer_handle,
855                 parent_buffer_handle, parent_offset);
856     } else {
857         status = writeBuffer((void*) handle, native_handle_size, &buffer_handle);
858     }
859 
860     if (status != OK) {
861         return status;
862     }
863 
864     struct binder_fd_array_object fd_array {
865         .hdr = { .type = BINDER_TYPE_FDA },
866         .num_fds = static_cast<binder_size_t>(handle->numFds),
867         .parent = buffer_handle,
868         .parent_offset = offsetof(native_handle_t, data),
869     };
870 
871     return writeObject(fd_array);
872 }
873 
writeNativeHandleNoDup(const native_handle_t * handle)874 status_t Parcel::writeNativeHandleNoDup(const native_handle_t *handle)
875 {
876     return writeNativeHandleNoDup(handle, false /* embedded */);
877 }
878 
writeEmbeddedNativeHandle(const native_handle_t * handle,size_t parent_buffer_handle,size_t parent_offset)879 status_t Parcel::writeEmbeddedNativeHandle(const native_handle_t *handle,
880                                            size_t parent_buffer_handle,
881                                            size_t parent_offset)
882 {
883     return writeNativeHandleNoDup(handle, true /* embedded */,
884                                   parent_buffer_handle, parent_offset);
885 }
886 
read(void * outData,size_t len) const887 status_t Parcel::read(void* outData, size_t len) const
888 {
889     if (len > INT32_MAX) {
890         // don't accept size_t values which may have come from an
891         // inadvertent conversion from a negative int.
892         return BAD_VALUE;
893     }
894 
895     if ((mDataPos+pad_size(len)) >= mDataPos && (mDataPos+pad_size(len)) <= mDataSize
896             && len <= pad_size(len)) {
897         memcpy(outData, mData+mDataPos, len);
898         mDataPos += pad_size(len);
899         ALOGV("read Setting data pos of %p to %zu", this, mDataPos);
900         return NO_ERROR;
901     }
902     return NOT_ENOUGH_DATA;
903 }
904 
readInplace(size_t len) const905 const void* Parcel::readInplace(size_t len) const
906 {
907     if (len > INT32_MAX) {
908         // don't accept size_t values which may have come from an
909         // inadvertent conversion from a negative int.
910         return nullptr;
911     }
912 
913     if ((mDataPos+pad_size(len)) >= mDataPos && (mDataPos+pad_size(len)) <= mDataSize
914             && len <= pad_size(len)) {
915         const void* data = mData+mDataPos;
916         mDataPos += pad_size(len);
917         ALOGV("readInplace Setting data pos of %p to %zu", this, mDataPos);
918         return data;
919     }
920     return nullptr;
921 }
922 
923 template<class T>
readAligned(T * pArg) const924 status_t Parcel::readAligned(T *pArg) const {
925     COMPILE_TIME_ASSERT_FUNCTION_SCOPE(PAD_SIZE_UNSAFE(sizeof(T)) == sizeof(T));
926 
927     if ((mDataPos+sizeof(T)) <= mDataSize) {
928         const void* data = mData+mDataPos;
929         mDataPos += sizeof(T);
930         *pArg =  *reinterpret_cast<const T*>(data);
931         return NO_ERROR;
932     } else {
933         return NOT_ENOUGH_DATA;
934     }
935 }
936 
937 template<class T>
readAligned() const938 T Parcel::readAligned() const {
939     T result;
940     if (readAligned(&result) != NO_ERROR) {
941         result = 0;
942     }
943 
944     return result;
945 }
946 
947 template<class T>
writeAligned(T val)948 status_t Parcel::writeAligned(T val) {
949     COMPILE_TIME_ASSERT_FUNCTION_SCOPE(PAD_SIZE_UNSAFE(sizeof(T)) == sizeof(T));
950 
951     if ((mDataPos+sizeof(val)) <= mDataCapacity) {
952 restart_write:
953         *reinterpret_cast<T*>(mData+mDataPos) = val;
954         return finishWrite(sizeof(val));
955     }
956 
957     status_t err = growData(sizeof(val));
958     if (err == NO_ERROR) goto restart_write;
959     return err;
960 }
961 
readInt8(int8_t * pArg) const962 status_t Parcel::readInt8(int8_t *pArg) const
963 {
964     return read(pArg, sizeof(*pArg));
965 }
966 
readUint8(uint8_t * pArg) const967 status_t Parcel::readUint8(uint8_t *pArg) const
968 {
969     return read(pArg, sizeof(*pArg));
970 }
971 
readInt16(int16_t * pArg) const972 status_t Parcel::readInt16(int16_t *pArg) const
973 {
974     return read(pArg, sizeof(*pArg));
975 }
976 
readUint16(uint16_t * pArg) const977 status_t Parcel::readUint16(uint16_t *pArg) const
978 {
979     return read(pArg, sizeof(*pArg));
980 }
981 
readInt32(int32_t * pArg) const982 status_t Parcel::readInt32(int32_t *pArg) const
983 {
984     return readAligned(pArg);
985 }
986 
readInt32() const987 int32_t Parcel::readInt32() const
988 {
989     return readAligned<int32_t>();
990 }
991 
readUint32(uint32_t * pArg) const992 status_t Parcel::readUint32(uint32_t *pArg) const
993 {
994     return readAligned(pArg);
995 }
996 
readUint32() const997 uint32_t Parcel::readUint32() const
998 {
999     return readAligned<uint32_t>();
1000 }
1001 
readInt64(int64_t * pArg) const1002 status_t Parcel::readInt64(int64_t *pArg) const
1003 {
1004     return readAligned(pArg);
1005 }
1006 
readInt64() const1007 int64_t Parcel::readInt64() const
1008 {
1009     return readAligned<int64_t>();
1010 }
1011 
readUint64(uint64_t * pArg) const1012 status_t Parcel::readUint64(uint64_t *pArg) const
1013 {
1014     return readAligned(pArg);
1015 }
1016 
readUint64() const1017 uint64_t Parcel::readUint64() const
1018 {
1019     return readAligned<uint64_t>();
1020 }
1021 
readPointer(uintptr_t * pArg) const1022 status_t Parcel::readPointer(uintptr_t *pArg) const
1023 {
1024     status_t ret;
1025     binder_uintptr_t ptr;
1026     ret = readAligned(&ptr);
1027     if (!ret)
1028         *pArg = ptr;
1029     return ret;
1030 }
1031 
readPointer() const1032 uintptr_t Parcel::readPointer() const
1033 {
1034     return readAligned<binder_uintptr_t>();
1035 }
1036 
1037 
readFloat(float * pArg) const1038 status_t Parcel::readFloat(float *pArg) const
1039 {
1040     return readAligned(pArg);
1041 }
1042 
1043 
readFloat() const1044 float Parcel::readFloat() const
1045 {
1046     return readAligned<float>();
1047 }
1048 
1049 #if defined(__mips__) && defined(__mips_hard_float)
1050 
readDouble(double * pArg) const1051 status_t Parcel::readDouble(double *pArg) const
1052 {
1053     union {
1054       double d;
1055       unsigned long long ll;
1056     } u;
1057     u.d = 0;
1058     status_t status;
1059     status = readAligned(&u.ll);
1060     *pArg = u.d;
1061     return status;
1062 }
1063 
readDouble() const1064 double Parcel::readDouble() const
1065 {
1066     union {
1067       double d;
1068       unsigned long long ll;
1069     } u;
1070     u.ll = readAligned<unsigned long long>();
1071     return u.d;
1072 }
1073 
1074 #else
1075 
readDouble(double * pArg) const1076 status_t Parcel::readDouble(double *pArg) const
1077 {
1078     return readAligned(pArg);
1079 }
1080 
readDouble() const1081 double Parcel::readDouble() const
1082 {
1083     return readAligned<double>();
1084 }
1085 
1086 #endif
1087 
readBool(bool * pArg) const1088 status_t Parcel::readBool(bool *pArg) const
1089 {
1090     int8_t tmp;
1091     status_t ret = readInt8(&tmp);
1092     *pArg = (tmp != 0);
1093     return ret;
1094 }
1095 
readBool() const1096 bool Parcel::readBool() const
1097 {
1098     int8_t tmp;
1099     status_t err = readInt8(&tmp);
1100 
1101     if (err != OK) {
1102         return 0;
1103     }
1104 
1105     return tmp != 0;
1106 }
1107 
readCString() const1108 const char* Parcel::readCString() const
1109 {
1110     if (mDataPos < mDataSize) {
1111         const size_t avail = mDataSize-mDataPos;
1112         const char* str = reinterpret_cast<const char*>(mData+mDataPos);
1113         // is the string's trailing NUL within the parcel's valid bounds?
1114         const char* eos = reinterpret_cast<const char*>(memchr(str, 0, avail));
1115         if (eos) {
1116             const size_t len = eos - str;
1117             mDataPos += pad_size(len+1);
1118             ALOGV("readCString Setting data pos of %p to %zu", this, mDataPos);
1119             return str;
1120         }
1121     }
1122     return nullptr;
1123 }
readString16() const1124 String16 Parcel::readString16() const
1125 {
1126     size_t len;
1127     const char16_t* str = readString16Inplace(&len);
1128     if (str) return String16(str, len);
1129     ALOGE("Reading a NULL string not supported here.");
1130     return String16();
1131 }
1132 
readString16(std::unique_ptr<String16> * pArg) const1133 status_t Parcel::readString16(std::unique_ptr<String16>* pArg) const
1134 {
1135     const int32_t start = dataPosition();
1136     int32_t size;
1137     status_t status = readInt32(&size);
1138     pArg->reset();
1139 
1140     if (status != OK || size < 0) {
1141         return status;
1142     }
1143 
1144     setDataPosition(start);
1145     pArg->reset(new (std::nothrow) String16());
1146 
1147     status = readString16(pArg->get());
1148 
1149     if (status != OK) {
1150         pArg->reset();
1151     }
1152 
1153     return status;
1154 }
1155 
readString16(String16 * pArg) const1156 status_t Parcel::readString16(String16* pArg) const
1157 {
1158     size_t len;
1159     const char16_t* str = readString16Inplace(&len);
1160     if (str) {
1161         pArg->setTo(str, len);
1162         return 0;
1163     } else {
1164         *pArg = String16();
1165         return UNEXPECTED_NULL;
1166     }
1167 }
1168 
readString16Inplace(size_t * outLen) const1169 const char16_t* Parcel::readString16Inplace(size_t* outLen) const
1170 {
1171     int32_t size = readInt32();
1172     // watch for potential int overflow from size+1
1173     if (size >= 0 && size < INT32_MAX) {
1174         *outLen = size;
1175         const char16_t* str = (const char16_t*)readInplace((size+1)*sizeof(char16_t));
1176         if (str != nullptr) {
1177             return str;
1178         }
1179     }
1180     *outLen = 0;
1181     return nullptr;
1182 }
readStrongBinder(sp<IBinder> * val) const1183 status_t Parcel::readStrongBinder(sp<IBinder>* val) const
1184 {
1185     status_t status = readNullableStrongBinder(val);
1186     if (status == OK && !val->get()) {
1187         status = UNEXPECTED_NULL;
1188     }
1189     return status;
1190 }
1191 
readNullableStrongBinder(sp<IBinder> * val) const1192 status_t Parcel::readNullableStrongBinder(sp<IBinder>* val) const
1193 {
1194     return unflatten_binder(ProcessState::self(), *this, val);
1195 }
1196 
readStrongBinder() const1197 sp<IBinder> Parcel::readStrongBinder() const
1198 {
1199     sp<IBinder> val;
1200     // Note that a lot of code in Android reads binders by hand with this
1201     // method, and that code has historically been ok with getting nullptr
1202     // back (while ignoring error codes).
1203     readNullableStrongBinder(&val);
1204     return val;
1205 }
1206 
1207 template<typename T>
readObject(size_t * objects_offset) const1208 const T* Parcel::readObject(size_t *objects_offset) const
1209 {
1210     const size_t DPOS = mDataPos;
1211     if (objects_offset != nullptr) {
1212         *objects_offset = 0;
1213     }
1214 
1215     if ((DPOS+sizeof(T)) <= mDataSize) {
1216         const T* obj = reinterpret_cast<const T*>(mData+DPOS);
1217         mDataPos = DPOS + sizeof(T);
1218         const binder_object_header *hdr = reinterpret_cast<const binder_object_header*>(obj);
1219         switch (hdr->type) {
1220             case BINDER_TYPE_BINDER:
1221             case BINDER_TYPE_WEAK_BINDER:
1222             case BINDER_TYPE_HANDLE:
1223             case BINDER_TYPE_WEAK_HANDLE: {
1224                 const flat_binder_object *flat_obj =
1225                     reinterpret_cast<const flat_binder_object*>(hdr);
1226                 if (flat_obj->cookie == 0 && flat_obj->binder == 0) {
1227                     // When transferring a NULL binder object, we don't write it into
1228                     // the object list, so we don't want to check for it when
1229                     // reading.
1230                     ALOGV("readObject Setting data pos of %p to %zu", this, mDataPos);
1231                     return obj;
1232                 }
1233                 break;
1234             }
1235             case BINDER_TYPE_FD:
1236             case BINDER_TYPE_FDA:
1237                 // fd (-arrays) must always appear in the meta-data list (eg touched by the kernel)
1238                 break;
1239             case BINDER_TYPE_PTR: {
1240                 const binder_buffer_object *buffer_obj =
1241                     reinterpret_cast<const binder_buffer_object*>(hdr);
1242                 if ((void *)buffer_obj->buffer == nullptr) {
1243                     // null pointers can be returned directly - they're not written in the
1244                     // object list. All non-null buffers must appear in the objects list.
1245                     return obj;
1246                 }
1247                 break;
1248             }
1249         }
1250         // Ensure that this object is valid...
1251         binder_size_t* const OBJS = mObjects;
1252         const size_t N = mObjectsSize;
1253         size_t opos = mNextObjectHint;
1254 
1255         if (N > 0) {
1256             ALOGV("Parcel %p looking for obj at %zu, hint=%zu",
1257                  this, DPOS, opos);
1258 
1259             // Start at the current hint position, looking for an object at
1260             // the current data position.
1261             if (opos < N) {
1262                 while (opos < (N-1) && OBJS[opos] < DPOS) {
1263                     opos++;
1264                 }
1265             } else {
1266                 opos = N-1;
1267             }
1268             if (OBJS[opos] == DPOS) {
1269                 // Found it!
1270                 ALOGV("Parcel %p found obj %zu at index %zu with forward search",
1271                      this, DPOS, opos);
1272                 mNextObjectHint = opos+1;
1273                 ALOGV("readObject Setting data pos of %p to %zu", this, mDataPos);
1274                 if (objects_offset != nullptr) {
1275                     *objects_offset = opos;
1276                 }
1277                 return obj;
1278             }
1279 
1280             // Look backwards for it...
1281             while (opos > 0 && OBJS[opos] > DPOS) {
1282                 opos--;
1283             }
1284             if (OBJS[opos] == DPOS) {
1285                 // Found it!
1286                 ALOGV("Parcel %p found obj %zu at index %zu with backward search",
1287                      this, DPOS, opos);
1288                 mNextObjectHint = opos+1;
1289                 ALOGV("readObject Setting data pos of %p to %zu", this, mDataPos);
1290                 if (objects_offset != nullptr) {
1291                     *objects_offset = opos;
1292                 }
1293                 return obj;
1294             }
1295         }
1296         ALOGW("Attempt to read object from Parcel %p at offset %zu that is not in the object list",
1297              this, DPOS);
1298     }
1299     return nullptr;
1300 }
1301 
1302 template const flat_binder_object* Parcel::readObject<flat_binder_object>(size_t *objects_offset) const;
1303 
1304 template const binder_fd_object* Parcel::readObject<binder_fd_object>(size_t *objects_offset) const;
1305 
1306 template const binder_buffer_object* Parcel::readObject<binder_buffer_object>(size_t *objects_offset) const;
1307 
1308 template const binder_fd_array_object* Parcel::readObject<binder_fd_array_object>(size_t *objects_offset) const;
1309 
verifyBufferObject(const binder_buffer_object * buffer_obj,size_t size,uint32_t flags,size_t parent,size_t parentOffset) const1310 bool Parcel::verifyBufferObject(const binder_buffer_object *buffer_obj,
1311                                 size_t size, uint32_t flags, size_t parent,
1312                                 size_t parentOffset) const {
1313     if (buffer_obj->length != size) {
1314         ALOGE("Buffer length %" PRIu64 " does not match expected size %zu.",
1315               static_cast<uint64_t>(buffer_obj->length), size);
1316         return false;
1317     }
1318 
1319     if (buffer_obj->flags != flags) {
1320         ALOGE("Buffer flags 0x%02X do not match expected flags 0x%02X.", buffer_obj->flags, flags);
1321         return false;
1322     }
1323 
1324     if (flags & BINDER_BUFFER_FLAG_HAS_PARENT) {
1325         if (buffer_obj->parent != parent) {
1326             ALOGE("Buffer parent %" PRIu64 " does not match expected parent %zu.",
1327                   static_cast<uint64_t>(buffer_obj->parent), parent);
1328             return false;
1329         }
1330         if (buffer_obj->parent_offset != parentOffset) {
1331               ALOGE("Buffer parent offset %" PRIu64 " does not match expected offset %zu.",
1332                   static_cast<uint64_t>(buffer_obj->parent_offset), parentOffset);
1333             return false;
1334         }
1335     }
1336 
1337     return true;
1338 }
1339 
readBuffer(size_t buffer_size,size_t * buffer_handle,uint32_t flags,size_t parent,size_t parentOffset,const void ** buffer_out) const1340 status_t Parcel::readBuffer(size_t buffer_size, size_t *buffer_handle,
1341                             uint32_t flags, size_t parent, size_t parentOffset,
1342                             const void **buffer_out) const {
1343 
1344     const binder_buffer_object* buffer_obj = readObject<binder_buffer_object>(buffer_handle);
1345 
1346     if (buffer_obj == nullptr || buffer_obj->hdr.type != BINDER_TYPE_PTR) {
1347         return BAD_VALUE;
1348     }
1349 
1350     if (!verifyBufferObject(buffer_obj, buffer_size, flags, parent, parentOffset)) {
1351         return BAD_VALUE;
1352     }
1353 
1354     // in read side, always use .buffer and .length.
1355     *buffer_out = reinterpret_cast<void*>(buffer_obj->buffer);
1356 
1357     return OK;
1358 }
1359 
readNullableBuffer(size_t buffer_size,size_t * buffer_handle,const void ** buffer_out) const1360 status_t Parcel::readNullableBuffer(size_t buffer_size, size_t *buffer_handle,
1361                                     const void **buffer_out) const
1362 {
1363     return readBuffer(buffer_size, buffer_handle,
1364                       0 /* flags */, 0 /* parent */, 0 /* parentOffset */,
1365                       buffer_out);
1366 }
1367 
readBuffer(size_t buffer_size,size_t * buffer_handle,const void ** buffer_out) const1368 status_t Parcel::readBuffer(size_t buffer_size, size_t *buffer_handle,
1369                             const void **buffer_out) const
1370 {
1371     status_t status = readNullableBuffer(buffer_size, buffer_handle, buffer_out);
1372     if (status == OK && *buffer_out == nullptr) {
1373         return UNEXPECTED_NULL;
1374     }
1375     return status;
1376 }
1377 
1378 
readEmbeddedBuffer(size_t buffer_size,size_t * buffer_handle,size_t parent_buffer_handle,size_t parent_offset,const void ** buffer_out) const1379 status_t Parcel::readEmbeddedBuffer(size_t buffer_size,
1380                                     size_t *buffer_handle,
1381                                     size_t parent_buffer_handle,
1382                                     size_t parent_offset,
1383                                     const void **buffer_out) const
1384 {
1385     status_t status = readNullableEmbeddedBuffer(buffer_size, buffer_handle,
1386                                                  parent_buffer_handle,
1387                                                  parent_offset, buffer_out);
1388     if (status == OK && *buffer_out == nullptr) {
1389         return UNEXPECTED_NULL;
1390     }
1391     return status;
1392 }
1393 
readNullableEmbeddedBuffer(size_t buffer_size,size_t * buffer_handle,size_t parent_buffer_handle,size_t parent_offset,const void ** buffer_out) const1394 status_t Parcel::readNullableEmbeddedBuffer(size_t buffer_size,
1395                                             size_t *buffer_handle,
1396                                             size_t parent_buffer_handle,
1397                                             size_t parent_offset,
1398                                             const void **buffer_out) const
1399 {
1400     return readBuffer(buffer_size, buffer_handle, BINDER_BUFFER_FLAG_HAS_PARENT,
1401                       parent_buffer_handle, parent_offset, buffer_out);
1402 }
1403 
readEmbeddedNativeHandle(size_t parent_buffer_handle,size_t parent_offset,const native_handle_t ** handle) const1404 status_t Parcel::readEmbeddedNativeHandle(size_t parent_buffer_handle,
1405                                           size_t parent_offset,
1406                                           const native_handle_t **handle) const
1407 {
1408     status_t status = readNullableEmbeddedNativeHandle(parent_buffer_handle, parent_offset, handle);
1409     if (status == OK && *handle == nullptr) {
1410         return UNEXPECTED_NULL;
1411     }
1412     return status;
1413 }
1414 
readNullableNativeHandleNoDup(const native_handle_t ** handle,bool embedded,size_t parent_buffer_handle,size_t parent_offset) const1415 status_t Parcel::readNullableNativeHandleNoDup(const native_handle_t **handle,
1416                                                bool embedded,
1417                                                size_t parent_buffer_handle,
1418                                                size_t parent_offset) const
1419 {
1420     status_t status;
1421     uint64_t nativeHandleSize;
1422     size_t fdaParent;
1423 
1424     status = readUint64(&nativeHandleSize);
1425     if (status != OK || nativeHandleSize == 0) {
1426         *handle = nullptr;
1427         return status;
1428     }
1429 
1430     if (nativeHandleSize < sizeof(native_handle_t)) {
1431         ALOGE("Received a native_handle_t size that was too small.");
1432         return BAD_VALUE;
1433     }
1434 
1435     if (embedded) {
1436         status = readNullableEmbeddedBuffer(nativeHandleSize, &fdaParent,
1437                                             parent_buffer_handle, parent_offset,
1438                                             reinterpret_cast<const void**>(handle));
1439     } else {
1440         status = readNullableBuffer(nativeHandleSize, &fdaParent,
1441                                     reinterpret_cast<const void**>(handle));
1442     }
1443 
1444     if (status != OK) {
1445         return status;
1446     }
1447 
1448     int numFds = (*handle)->numFds;
1449     int numInts = (*handle)->numInts;
1450 
1451     if (numFds < 0 || numFds > NATIVE_HANDLE_MAX_FDS) {
1452         ALOGE("Received native_handle with invalid number of fds.");
1453         return BAD_VALUE;
1454     }
1455 
1456     if (numInts < 0 || numInts > NATIVE_HANDLE_MAX_INTS) {
1457         ALOGE("Received native_handle with invalid number of ints.");
1458         return BAD_VALUE;
1459     }
1460 
1461     if (nativeHandleSize != (sizeof(native_handle_t) + ((numFds + numInts) * sizeof(int)))) {
1462         ALOGE("Size of native_handle doesn't match.");
1463         return BAD_VALUE;
1464     }
1465 
1466     const binder_fd_array_object* fd_array_obj = readObject<binder_fd_array_object>();
1467 
1468     if (fd_array_obj == nullptr || fd_array_obj->hdr.type != BINDER_TYPE_FDA) {
1469         ALOGE("Can't find file-descriptor array object.");
1470         return BAD_VALUE;
1471     }
1472 
1473     if (static_cast<int>(fd_array_obj->num_fds) != numFds) {
1474         ALOGE("Number of native handles does not match.");
1475         return BAD_VALUE;
1476     }
1477 
1478     if (fd_array_obj->parent != fdaParent) {
1479         ALOGE("Parent handle of file-descriptor array not correct.");
1480         return BAD_VALUE;
1481     }
1482 
1483     if (fd_array_obj->parent_offset != offsetof(native_handle_t, data)) {
1484         ALOGE("FD array object not properly offset in parent.");
1485         return BAD_VALUE;
1486     }
1487 
1488     return OK;
1489 }
1490 
readNullableEmbeddedNativeHandle(size_t parent_buffer_handle,size_t parent_offset,const native_handle_t ** handle) const1491 status_t Parcel::readNullableEmbeddedNativeHandle(size_t parent_buffer_handle,
1492                                                   size_t parent_offset,
1493                                                   const native_handle_t **handle) const
1494 {
1495     return readNullableNativeHandleNoDup(handle, true /* embedded */, parent_buffer_handle,
1496                                          parent_offset);
1497 }
1498 
readNativeHandleNoDup(const native_handle_t ** handle) const1499 status_t Parcel::readNativeHandleNoDup(const native_handle_t **handle) const
1500 {
1501     status_t status = readNullableNativeHandleNoDup(handle);
1502     if (status == OK && *handle == nullptr) {
1503         return UNEXPECTED_NULL;
1504     }
1505     return status;
1506 }
1507 
readNullableNativeHandleNoDup(const native_handle_t ** handle) const1508 status_t Parcel::readNullableNativeHandleNoDup(const native_handle_t **handle) const
1509 {
1510     return readNullableNativeHandleNoDup(handle, false /* embedded */);
1511 }
1512 
closeFileDescriptors()1513 void Parcel::closeFileDescriptors()
1514 {
1515     size_t i = mObjectsSize;
1516     if (i > 0) {
1517         //ALOGI("Closing file descriptors for %zu objects...", i);
1518     }
1519     while (i > 0) {
1520         i--;
1521         const flat_binder_object* flat
1522             = reinterpret_cast<flat_binder_object*>(mData+mObjects[i]);
1523         if (flat->hdr.type == BINDER_TYPE_FD) {
1524             //ALOGI("Closing fd: %ld", flat->handle);
1525             close(flat->handle);
1526         }
1527     }
1528 }
1529 
ipcData() const1530 uintptr_t Parcel::ipcData() const
1531 {
1532     return reinterpret_cast<uintptr_t>(mData);
1533 }
1534 
ipcDataSize() const1535 size_t Parcel::ipcDataSize() const
1536 {
1537     return mDataSize > mDataPos ? mDataSize : mDataPos;
1538 }
1539 
ipcObjects() const1540 uintptr_t Parcel::ipcObjects() const
1541 {
1542     return reinterpret_cast<uintptr_t>(mObjects);
1543 }
1544 
ipcObjectsCount() const1545 size_t Parcel::ipcObjectsCount() const
1546 {
1547     return mObjectsSize;
1548 }
1549 
1550 #define BUFFER_ALIGNMENT_BYTES 8
ipcBufferSize() const1551 size_t Parcel::ipcBufferSize() const
1552 {
1553     size_t totalBuffersSize = 0;
1554     // Add size for BINDER_TYPE_PTR
1555     size_t i = mObjectsSize;
1556     while (i > 0) {
1557         i--;
1558         const binder_buffer_object* buffer
1559             = reinterpret_cast<binder_buffer_object*>(mData+mObjects[i]);
1560         if (buffer->hdr.type == BINDER_TYPE_PTR) {
1561             /* The binder kernel driver requires each buffer to be 8-byte
1562              * aligned */
1563             size_t alignedSize = (buffer->length + (BUFFER_ALIGNMENT_BYTES - 1))
1564                     & ~(BUFFER_ALIGNMENT_BYTES - 1);
1565             if (alignedSize > SIZE_MAX - totalBuffersSize) {
1566                 ALOGE("ipcBuffersSize(): invalid buffer sizes.");
1567                 return 0;
1568             }
1569             totalBuffersSize += alignedSize;
1570         }
1571     }
1572     return totalBuffersSize;
1573 }
1574 
ipcSetDataReference(const uint8_t * data,size_t dataSize,const binder_size_t * objects,size_t objectsCount,release_func relFunc,void * relCookie)1575 void Parcel::ipcSetDataReference(const uint8_t* data, size_t dataSize,
1576     const binder_size_t* objects, size_t objectsCount, release_func relFunc, void* relCookie)
1577 {
1578     binder_size_t minOffset = 0;
1579     freeDataNoInit();
1580     mError = NO_ERROR;
1581     mData = const_cast<uint8_t*>(data);
1582     mDataSize = mDataCapacity = dataSize;
1583     //ALOGI("setDataReference Setting data size of %p to %lu (pid=%d)", this, mDataSize, getpid());
1584     mDataPos = 0;
1585     ALOGV("setDataReference Setting data pos of %p to %zu", this, mDataPos);
1586     mObjects = const_cast<binder_size_t*>(objects);
1587     mObjectsSize = mObjectsCapacity = objectsCount;
1588     mNextObjectHint = 0;
1589     clearCache();
1590     mOwner = relFunc;
1591     mOwnerCookie = relCookie;
1592     for (size_t i = 0; i < mObjectsSize; i++) {
1593         binder_size_t offset = mObjects[i];
1594         if (offset < minOffset) {
1595             ALOGE("%s: bad object offset %" PRIu64 " < %" PRIu64 "\n",
1596                   __func__, (uint64_t)offset, (uint64_t)minOffset);
1597             mObjectsSize = 0;
1598             break;
1599         }
1600         minOffset = offset + sizeof(flat_binder_object);
1601     }
1602     scanForFds();
1603 }
1604 
print(TextOutput & to,uint32_t) const1605 void Parcel::print(TextOutput& to, uint32_t /*flags*/) const
1606 {
1607     to << "Parcel(";
1608 
1609     if (errorCheck() != NO_ERROR) {
1610         const status_t err = errorCheck();
1611         to << "Error: " << (void*)(intptr_t)err << " \"" << strerror(-err) << "\"";
1612     } else if (dataSize() > 0) {
1613         const uint8_t* DATA = data();
1614         to << indent << HexDump(DATA, dataSize()) << dedent;
1615         const binder_size_t* OBJS = objects();
1616         const size_t N = objectsCount();
1617         for (size_t i=0; i<N; i++) {
1618             const flat_binder_object* flat
1619                 = reinterpret_cast<const flat_binder_object*>(DATA+OBJS[i]);
1620             if (flat->hdr.type == BINDER_TYPE_PTR) {
1621                 const binder_buffer_object* buffer
1622                     = reinterpret_cast<const binder_buffer_object*>(DATA+OBJS[i]);
1623                 HexDump bufferDump((const uint8_t*)buffer->buffer, (size_t)buffer->length);
1624                 bufferDump.setSingleLineCutoff(0);
1625                 to << endl << "Object #" << i << " @ " << (void*)OBJS[i] << " (buffer size " << buffer->length << "):";
1626                 to << indent << bufferDump << dedent;
1627             } else {
1628                 to << endl << "Object #" << i << " @ " << (void*)OBJS[i] << ": "
1629                     << TypeCode(flat->hdr.type & 0x7f7f7f00)
1630                     << " = " << flat->binder;
1631             }
1632         }
1633     } else {
1634         to << "NULL";
1635     }
1636 
1637     to << ")";
1638 }
1639 
releaseObjects()1640 void Parcel::releaseObjects()
1641 {
1642     const sp<ProcessState> proc(ProcessState::self());
1643     size_t i = mObjectsSize;
1644     uint8_t* const data = mData;
1645     binder_size_t* const objects = mObjects;
1646     while (i > 0) {
1647         i--;
1648         const flat_binder_object* flat
1649             = reinterpret_cast<flat_binder_object*>(data+objects[i]);
1650         release_object(proc, *flat, this);
1651     }
1652 }
1653 
acquireObjects()1654 void Parcel::acquireObjects()
1655 {
1656     const sp<ProcessState> proc(ProcessState::self());
1657     size_t i = mObjectsSize;
1658     uint8_t* const data = mData;
1659     binder_size_t* const objects = mObjects;
1660     while (i > 0) {
1661         i--;
1662         const binder_object_header* flat
1663             = reinterpret_cast<binder_object_header*>(data+objects[i]);
1664         acquire_object(proc, *flat, this);
1665     }
1666 }
1667 
freeData()1668 void Parcel::freeData()
1669 {
1670     freeDataNoInit();
1671     initState();
1672 }
1673 
freeDataNoInit()1674 void Parcel::freeDataNoInit()
1675 {
1676     if (mOwner) {
1677         LOG_ALLOC("Parcel %p: freeing other owner data", this);
1678         //ALOGI("Freeing data ref of %p (pid=%d)", this, getpid());
1679         mOwner(this, mData, mDataSize, mObjects, mObjectsSize, mOwnerCookie);
1680     } else {
1681         LOG_ALLOC("Parcel %p: freeing allocated data", this);
1682         releaseObjects();
1683         if (mData) {
1684             LOG_ALLOC("Parcel %p: freeing with %zu capacity", this, mDataCapacity);
1685             gParcelGlobalAllocSize -= mDataCapacity;
1686             gParcelGlobalAllocCount--;
1687             free(mData);
1688         }
1689         if (mObjects) free(mObjects);
1690     }
1691 }
1692 
growData(size_t len)1693 status_t Parcel::growData(size_t len)
1694 {
1695     if (len > INT32_MAX) {
1696         // don't accept size_t values which may have come from an
1697         // inadvertent conversion from a negative int.
1698         return BAD_VALUE;
1699     }
1700     if (len > SIZE_MAX - mDataSize) return NO_MEMORY; // overflow
1701     if (mDataSize + len > SIZE_MAX / 3) return NO_MEMORY; // overflow
1702     size_t newSize = ((mDataSize+len)*3)/2;
1703     return continueWrite(newSize);
1704 }
1705 
restartWrite(size_t desired)1706 status_t Parcel::restartWrite(size_t desired)
1707 {
1708     if (desired > INT32_MAX) {
1709         // don't accept size_t values which may have come from an
1710         // inadvertent conversion from a negative int.
1711         return BAD_VALUE;
1712     }
1713 
1714     if (mOwner) {
1715         freeData();
1716         return continueWrite(desired);
1717     }
1718 
1719     uint8_t* data = (uint8_t*)realloc(mData, desired);
1720     if (!data && desired > mDataCapacity) {
1721         mError = NO_MEMORY;
1722         return NO_MEMORY;
1723     }
1724 
1725     releaseObjects();
1726 
1727     if (data) {
1728         LOG_ALLOC("Parcel %p: restart from %zu to %zu capacity", this, mDataCapacity, desired);
1729         if (mDataCapacity > desired) {
1730             gParcelGlobalAllocSize -= (mDataCapacity - desired);
1731         } else {
1732             gParcelGlobalAllocSize += (desired - mDataCapacity);
1733         }
1734 
1735         if (!mData) {
1736             gParcelGlobalAllocCount++;
1737         }
1738         mData = data;
1739         mDataCapacity = desired;
1740     }
1741 
1742     mDataSize = mDataPos = 0;
1743     ALOGV("restartWrite Setting data size of %p to %zu", this, mDataSize);
1744     ALOGV("restartWrite Setting data pos of %p to %zu", this, mDataPos);
1745 
1746     free(mObjects);
1747     mObjects = nullptr;
1748     mObjectsSize = mObjectsCapacity = 0;
1749     mNextObjectHint = 0;
1750     mHasFds = false;
1751     clearCache();
1752     mFdsKnown = true;
1753     mAllowFds = true;
1754 
1755     return NO_ERROR;
1756 }
1757 
continueWrite(size_t desired)1758 status_t Parcel::continueWrite(size_t desired)
1759 {
1760     if (desired > INT32_MAX) {
1761         // don't accept size_t values which may have come from an
1762         // inadvertent conversion from a negative int.
1763         return BAD_VALUE;
1764     }
1765 
1766     // If shrinking, first adjust for any objects that appear
1767     // after the new data size.
1768     size_t objectsSize = mObjectsSize;
1769     if (desired < mDataSize) {
1770         if (desired == 0) {
1771             objectsSize = 0;
1772         } else {
1773             while (objectsSize > 0) {
1774                 if (mObjects[objectsSize-1] < desired)
1775                     break;
1776                 objectsSize--;
1777             }
1778         }
1779     }
1780 
1781     if (mOwner) {
1782         // If the size is going to zero, just release the owner's data.
1783         if (desired == 0) {
1784             freeData();
1785             return NO_ERROR;
1786         }
1787 
1788         // If there is a different owner, we need to take
1789         // posession.
1790         uint8_t* data = (uint8_t*)malloc(desired);
1791         if (!data) {
1792             mError = NO_MEMORY;
1793             return NO_MEMORY;
1794         }
1795         binder_size_t* objects = nullptr;
1796 
1797         if (objectsSize) {
1798             objects = (binder_size_t*)calloc(objectsSize, sizeof(binder_size_t));
1799             if (!objects) {
1800                 free(data);
1801 
1802                 mError = NO_MEMORY;
1803                 return NO_MEMORY;
1804             }
1805 
1806             // Little hack to only acquire references on objects
1807             // we will be keeping.
1808             size_t oldObjectsSize = mObjectsSize;
1809             mObjectsSize = objectsSize;
1810             acquireObjects();
1811             mObjectsSize = oldObjectsSize;
1812         }
1813 
1814         if (mData) {
1815             memcpy(data, mData, mDataSize < desired ? mDataSize : desired);
1816         }
1817         if (objects && mObjects) {
1818             memcpy(objects, mObjects, objectsSize*sizeof(binder_size_t));
1819         }
1820         //ALOGI("Freeing data ref of %p (pid=%d)", this, getpid());
1821         mOwner(this, mData, mDataSize, mObjects, mObjectsSize, mOwnerCookie);
1822         mOwner = nullptr;
1823 
1824         LOG_ALLOC("Parcel %p: taking ownership of %zu capacity", this, desired);
1825         gParcelGlobalAllocSize += desired;
1826         gParcelGlobalAllocCount++;
1827 
1828         mData = data;
1829         mObjects = objects;
1830         mDataSize = (mDataSize < desired) ? mDataSize : desired;
1831         ALOGV("continueWrite Setting data size of %p to %zu", this, mDataSize);
1832         mDataCapacity = desired;
1833         mObjectsSize = mObjectsCapacity = objectsSize;
1834         mNextObjectHint = 0;
1835 
1836         clearCache();
1837     } else if (mData) {
1838         if (objectsSize < mObjectsSize) {
1839             // Need to release refs on any objects we are dropping.
1840             const sp<ProcessState> proc(ProcessState::self());
1841             for (size_t i=objectsSize; i<mObjectsSize; i++) {
1842                 const flat_binder_object* flat
1843                     = reinterpret_cast<flat_binder_object*>(mData+mObjects[i]);
1844                 if (flat->hdr.type == BINDER_TYPE_FD) {
1845                     // will need to rescan because we may have lopped off the only FDs
1846                     mFdsKnown = false;
1847                 }
1848                 release_object(proc, *flat, this);
1849             }
1850             binder_size_t* objects =
1851                 (binder_size_t*)realloc(mObjects, objectsSize*sizeof(binder_size_t));
1852             if (objects) {
1853                 mObjects = objects;
1854             }
1855             mObjectsSize = objectsSize;
1856             mNextObjectHint = 0;
1857 
1858             clearCache();
1859         }
1860 
1861         // We own the data, so we can just do a realloc().
1862         if (desired > mDataCapacity) {
1863             uint8_t* data = (uint8_t*)realloc(mData, desired);
1864             if (data) {
1865                 LOG_ALLOC("Parcel %p: continue from %zu to %zu capacity", this, mDataCapacity,
1866                         desired);
1867                 gParcelGlobalAllocSize += desired;
1868                 gParcelGlobalAllocSize -= mDataCapacity;
1869                 mData = data;
1870                 mDataCapacity = desired;
1871             } else {
1872                 mError = NO_MEMORY;
1873                 return NO_MEMORY;
1874             }
1875         } else {
1876             if (mDataSize > desired) {
1877                 mDataSize = desired;
1878                 ALOGV("continueWrite Setting data size of %p to %zu", this, mDataSize);
1879             }
1880             if (mDataPos > desired) {
1881                 mDataPos = desired;
1882                 ALOGV("continueWrite Setting data pos of %p to %zu", this, mDataPos);
1883             }
1884         }
1885 
1886     } else {
1887         // This is the first data.  Easy!
1888         uint8_t* data = (uint8_t*)malloc(desired);
1889         if (!data) {
1890             mError = NO_MEMORY;
1891             return NO_MEMORY;
1892         }
1893 
1894         if(!(mDataCapacity == 0 && mObjects == nullptr
1895              && mObjectsCapacity == 0)) {
1896             ALOGE("continueWrite: %zu/%p/%zu/%zu", mDataCapacity, mObjects, mObjectsCapacity, desired);
1897         }
1898 
1899         LOG_ALLOC("Parcel %p: allocating with %zu capacity", this, desired);
1900         gParcelGlobalAllocSize += desired;
1901         gParcelGlobalAllocCount++;
1902 
1903         mData = data;
1904         mDataSize = mDataPos = 0;
1905         ALOGV("continueWrite Setting data size of %p to %zu", this, mDataSize);
1906         ALOGV("continueWrite Setting data pos of %p to %zu", this, mDataPos);
1907         mDataCapacity = desired;
1908     }
1909 
1910     return NO_ERROR;
1911 }
1912 
initState()1913 void Parcel::initState()
1914 {
1915     LOG_ALLOC("Parcel %p: initState", this);
1916     mError = NO_ERROR;
1917     mData = nullptr;
1918     mDataSize = 0;
1919     mDataCapacity = 0;
1920     mDataPos = 0;
1921     ALOGV("initState Setting data size of %p to %zu", this, mDataSize);
1922     ALOGV("initState Setting data pos of %p to %zu", this, mDataPos);
1923     mObjects = nullptr;
1924     mObjectsSize = 0;
1925     mObjectsCapacity = 0;
1926     mNextObjectHint = 0;
1927     mHasFds = false;
1928     mFdsKnown = true;
1929     mAllowFds = true;
1930     mOwner = nullptr;
1931     clearCache();
1932 
1933     // racing multiple init leads only to multiple identical write
1934     if (gMaxFds == 0) {
1935         struct rlimit result;
1936         if (!getrlimit(RLIMIT_NOFILE, &result)) {
1937             gMaxFds = (size_t)result.rlim_cur;
1938             //ALOGI("parcel fd limit set to %zu", gMaxFds);
1939         } else {
1940             ALOGW("Unable to getrlimit: %s", strerror(errno));
1941             gMaxFds = 1024;
1942         }
1943     }
1944 }
1945 
scanForFds() const1946 void Parcel::scanForFds() const
1947 {
1948     bool hasFds = false;
1949     for (size_t i=0; i<mObjectsSize; i++) {
1950         const flat_binder_object* flat
1951             = reinterpret_cast<const flat_binder_object*>(mData + mObjects[i]);
1952         if (flat->hdr.type == BINDER_TYPE_FD) {
1953             hasFds = true;
1954             break;
1955         }
1956     }
1957     mHasFds = hasFds;
1958     mFdsKnown = true;
1959 }
1960 
1961 } // namespace hardware
1962 } // namespace android
1963