0
|
1 |
// Copyright (c) 2008-2009 Nokia Corporation and/or its subsidiary(-ies).
|
|
2 |
// All rights reserved.
|
|
3 |
// This component and the accompanying materials are made available
|
|
4 |
// under the terms of the License "Eclipse Public License v1.0"
|
|
5 |
// which accompanies this distribution, and is available
|
|
6 |
// at the URL "http://www.eclipse.org/legal/epl-v10.html".
|
|
7 |
//
|
|
8 |
// Initial Contributors:
|
|
9 |
// Nokia Corporation - initial contribution.
|
|
10 |
//
|
|
11 |
// Contributors:
|
|
12 |
//
|
|
13 |
// Description:
|
|
14 |
// e32\debug\crashMonitor\src\scmdatasave.cpp
|
|
15 |
//
|
|
16 |
//
|
|
17 |
|
|
18 |
#define __INCLUDE_REG_OFFSETS__ // for SP_R13U in nk_plat.h
|
|
19 |
|
|
20 |
#include <omap_dbg.h>
|
|
21 |
#include "arm_mem.h"
|
|
22 |
#include "nk_plat.h"
|
|
23 |
#include <omap_assp.h>
|
|
24 |
#include <scmonitor.h>
|
|
25 |
#include <scmdatasave.h>
|
|
26 |
|
|
27 |
/**
|
|
28 |
* @file
|
|
29 |
* @internal technology
|
|
30 |
*/
|
|
31 |
|
|
32 |
/**
|
|
33 |
* SCMDataSave constructor
|
|
34 |
* @param aMonitor - the monitor which has caught the syetem crash this object is saving data for
|
|
35 |
* @param aFlash - the flash memory data will be written to, note the CrashFlash interface is
|
|
36 |
* rather limited and does not support partial block writes
|
|
37 |
* @param aFlashInfo - data describing the structure of the flash data
|
|
38 |
*/
|
|
39 |
EXPORT_C SCMDataSave::SCMDataSave(Monitor* aMonitor, CrashFlash* aFlash)
|
|
40 |
: iMonitor(aMonitor)
|
|
41 |
,iFlash(aFlash)
|
|
42 |
,iByteCount(0)
|
|
43 |
#ifdef SCM_COMM_OUTPUT
|
|
44 |
,iWriteSelect(EWriteComm) // write data to debug port
|
|
45 |
#else
|
|
46 |
,iWriteSelect(EWriteFlash) // write data to flash
|
|
47 |
#endif
|
|
48 |
,iPerformChecksum(ETrue) // checksum data
|
|
49 |
,iStartingPointForCrash(0)
|
|
50 |
{
|
|
51 |
const TInt KCacheSize = 128;
|
|
52 |
iFlashCache = HBuf8::New(KCacheSize);
|
|
53 |
CLTRACE1("(SCMDataSave) Creating writer with cache size = %d", KCacheSize);
|
|
54 |
iWriter = new TCachedByteStreamWriter(const_cast<TUint8*>(iFlashCache->Ptr()), KCacheSize);
|
|
55 |
iWriter->SetWriterImpl(this);
|
|
56 |
}
|
|
57 |
|
|
58 |
/**
|
|
59 |
* Destructor
|
|
60 |
*/
|
|
61 |
SCMDataSave::~SCMDataSave()
|
|
62 |
{
|
|
63 |
delete iFlashCache;
|
|
64 |
}
|
|
65 |
|
|
66 |
/**
|
|
67 |
* Getter for the current byte count. This is the amount of data that has currently
|
|
68 |
* been written to given media for this crash log
|
|
69 |
* @return The number of bytes written already to given media
|
|
70 |
*/
|
|
71 |
TInt SCMDataSave::GetByteCount()
|
|
72 |
{
|
|
73 |
return iByteCount;
|
|
74 |
}
|
|
75 |
|
|
76 |
/**
|
|
77 |
* Logs the user stack for a given DThread object if it is available
|
|
78 |
* @param aThread - thread whose stack we wish to log
|
|
79 |
* @param aSizeDumped Holds the size of the data dumped
|
|
80 |
* @return one of the OS codes
|
|
81 |
*/
|
|
82 |
TInt SCMDataSave::LogThreadUserStack(DThread* aThread, TBool aFullStack, TUint& aSizeDumped)
|
|
83 |
{
|
|
84 |
LOG_CONTEXT
|
|
85 |
aSizeDumped = 0;
|
|
86 |
TUint memDumped = 0;
|
|
87 |
|
|
88 |
TUint svSp, usrSp;
|
|
89 |
iMonitor->GetStackPointers(&(aThread->iNThread), svSp, usrSp );
|
|
90 |
|
|
91 |
//first we check for a user stack...
|
|
92 |
if (aThread->iUserStackRunAddress && aThread->iUserStackSize)
|
|
93 |
{
|
|
94 |
//Get data together
|
|
95 |
TThreadStack usrStack;
|
|
96 |
usrStack.iStackType = TThreadStack::EUsrStack;
|
|
97 |
usrStack.iThreadId = (TUint64)aThread->iId;
|
|
98 |
|
|
99 |
//map in the user stack
|
|
100 |
TUint8* usrStart = (TUint8*)iMonitor->MapAndLocateUserStack(aThread); //What about Demand paging??
|
|
101 |
TUint8* usrEnd = (TUint8*)(usrStart + aThread->iUserStackSize);
|
|
102 |
if(usrStart)
|
|
103 |
{
|
|
104 |
TUint8* stackPointer = (TUint8*)usrSp;
|
|
105 |
|
|
106 |
//check the stack pointer is in the range of the stack...
|
|
107 |
if (stackPointer < usrStart || stackPointer >= usrEnd)
|
|
108 |
{
|
|
109 |
stackPointer = usrStart;
|
|
110 |
}
|
|
111 |
|
|
112 |
//log the size of the stack we are dumping
|
|
113 |
usrStack.iStackSize = aFullStack || (stackPointer == usrStart) ? usrEnd - usrStart : usrEnd - stackPointer;
|
|
114 |
TUint8* dumpFrom = aFullStack ? usrStart : stackPointer;
|
|
115 |
|
|
116 |
//write the stack
|
|
117 |
aSizeDumped+= usrStack.GetSize();
|
|
118 |
usrStack.Serialize(*iWriter);
|
|
119 |
|
|
120 |
//now we dump the actual stack
|
|
121 |
//if there is a memErr when we read, there isnt much we can do - possibly a bit in the struct to say available/not available?
|
|
122 |
//-1 because we dont want to write the byte at usrEnd
|
|
123 |
MTRAPD(memErr, LogMemory(dumpFrom, usrStack.iStackSize, aThread, memDumped));
|
|
124 |
if(KErrNone != memErr)
|
|
125 |
{
|
|
126 |
CLTRACE("Failed to log usr stack");
|
|
127 |
}
|
|
128 |
|
|
129 |
aSizeDumped+= memDumped;
|
|
130 |
}
|
|
131 |
else
|
|
132 |
{
|
|
133 |
//write the struct
|
|
134 |
aSizeDumped+=usrStack.GetSize();
|
|
135 |
usrStack.Serialize(*iWriter);
|
|
136 |
}
|
|
137 |
}
|
|
138 |
return KErrNone;
|
|
139 |
}
|
|
140 |
|
|
141 |
/**
|
|
142 |
* Logs the supervisor stack for a given DThread object
|
|
143 |
* @param aThread - thread whose stack we wish to log
|
|
144 |
* @param aSizeDumped Holds the size of the data dumped
|
|
145 |
* @return one of the system wide codes
|
|
146 |
*/
|
|
147 |
TInt SCMDataSave::LogThreadSupervisorStack(DThread* aThread, TBool aFullStack, TUint& aSizeDumped)
|
|
148 |
{
|
|
149 |
LOG_CONTEXT
|
|
150 |
aSizeDumped = 0;
|
|
151 |
TUint memDumped;
|
|
152 |
|
|
153 |
TUint svSp, usrSp;
|
|
154 |
iMonitor->GetStackPointers(&(aThread->iNThread), svSp, usrSp );
|
|
155 |
|
|
156 |
//now we dump the supervisor stack
|
|
157 |
TThreadStack svrStack;
|
|
158 |
svrStack.iStackType = TThreadStack::ESvrStack;
|
|
159 |
svrStack.iThreadId = (TUint64)aThread->iId;
|
|
160 |
|
|
161 |
if (aThread->iSupervisorStack && aThread->iSupervisorStackSize)
|
|
162 |
{
|
|
163 |
TUint8* svrStart = (TUint8*)aThread->iSupervisorStack;
|
|
164 |
TUint8* svrEnd = (TUint8*)(svrStart + aThread->iSupervisorStackSize);
|
|
165 |
TUint8* svrStackPointer = (TUint8*)svSp;
|
|
166 |
|
|
167 |
//size of stack we are to dump
|
|
168 |
svrStack.iStackSize = aFullStack || (svrStackPointer == svrStart) ? svrEnd - svrStart : svrEnd - svrStackPointer;
|
|
169 |
|
|
170 |
if(svrStart)
|
|
171 |
{
|
|
172 |
//check the stack pointer is in the range of the stack...
|
|
173 |
if (svrStackPointer < svrStart || svrStackPointer >= svrEnd)
|
|
174 |
{
|
|
175 |
svrStackPointer = svrStart;
|
|
176 |
}
|
|
177 |
|
|
178 |
//write struct to flash
|
|
179 |
aSizeDumped+=svrStack.GetSize();
|
|
180 |
svrStack.Serialize(*iWriter);
|
|
181 |
|
|
182 |
//now we dump the actual stack
|
|
183 |
//if there is a memErr when we read, there isnt much we can do - possibly a bit in the struct to say available/not available?
|
|
184 |
MTRAPD(memErr, LogMemory(svrStart, svrStack.iStackSize, aThread, memDumped));
|
|
185 |
aSizeDumped+=memDumped;
|
|
186 |
|
|
187 |
if(KErrNone != memErr)
|
|
188 |
{
|
|
189 |
CLTRACE("Failed to log supervisor stack");
|
|
190 |
}
|
|
191 |
}
|
|
192 |
else
|
|
193 |
{
|
|
194 |
//write the struct
|
|
195 |
aSizeDumped+=svrStack.GetSize();
|
|
196 |
svrStack.Serialize(*iWriter);
|
|
197 |
}
|
|
198 |
}
|
|
199 |
|
|
200 |
return KErrNone;
|
|
201 |
}
|
|
202 |
|
|
203 |
/**
|
|
204 |
* Takes a DProcess kernel object and logs its corrosponding code segments
|
|
205 |
* @param aProcess
|
|
206 |
* @param aSizeDumped Holds the size of the data dumped
|
|
207 |
* @return one of the OS wide error codes
|
|
208 |
*/
|
|
209 |
TInt SCMDataSave::LogCodeSegments(DProcess* aProc, TUint& aSizeDumped)
|
|
210 |
{
|
|
211 |
LOG_CONTEXT
|
|
212 |
aSizeDumped = 0;
|
|
213 |
|
|
214 |
//the code segment set for this process
|
|
215 |
TCodeSegmentSet segSet;
|
|
216 |
segSet.iPid = (TUint64)aProc->iId;
|
|
217 |
|
|
218 |
//make sure list mutex is ok
|
|
219 |
if(Kern::CodeSegLock()->iHoldCount)
|
|
220 |
{
|
|
221 |
return KErrCorrupt;
|
|
222 |
}
|
|
223 |
|
|
224 |
//get code seg list
|
|
225 |
SDblQue queue;
|
|
226 |
aProc->TraverseCodeSegs(&queue, NULL, DCodeSeg::EMarkDebug, DProcess::ETraverseFlagAdd);
|
|
227 |
|
|
228 |
//iterate through the list
|
|
229 |
TInt codeSegCnt = 0;
|
|
230 |
for(SDblQueLink* codeSegPtr= queue.First(); codeSegPtr!=(SDblQueLink*) (&queue); codeSegPtr=codeSegPtr->iNext)
|
|
231 |
{
|
|
232 |
//get the code seg
|
|
233 |
DEpocCodeSeg* codeSeg = (DEpocCodeSeg*)_LOFF(codeSegPtr,DCodeSeg, iTempLink);
|
|
234 |
|
|
235 |
if(codeSeg)
|
|
236 |
{
|
|
237 |
codeSegCnt++;
|
|
238 |
}
|
|
239 |
}
|
|
240 |
|
|
241 |
if(codeSegCnt == 0)
|
|
242 |
{
|
|
243 |
return KErrNone;
|
|
244 |
}
|
|
245 |
|
|
246 |
segSet.iNumSegs = codeSegCnt;
|
|
247 |
segSet.Serialize(*iWriter);
|
|
248 |
aSizeDumped+=segSet.GetSize();
|
|
249 |
|
|
250 |
TModuleMemoryInfo memoryInfo;
|
|
251 |
|
|
252 |
//now we write each code segment
|
|
253 |
for(SDblQueLink* codeSegPtr= queue.First(); codeSegPtr!=(SDblQueLink*) (&queue); codeSegPtr=codeSegPtr->iNext)
|
|
254 |
{
|
|
255 |
//get the code seg
|
|
256 |
DEpocCodeSeg* codeSeg = (DEpocCodeSeg*)_LOFF(codeSegPtr,DCodeSeg, iTempLink);
|
|
257 |
|
|
258 |
if(codeSeg)
|
|
259 |
{
|
|
260 |
TCodeSegment seg;
|
|
261 |
seg.iXip = (codeSeg->iXIP) ? ETrue : EFalse;
|
|
262 |
|
|
263 |
//Get the code seg type
|
|
264 |
if(codeSeg->IsExe())
|
|
265 |
{
|
|
266 |
seg.iCodeSegType = EExeCodeSegType;
|
|
267 |
}
|
|
268 |
else if(codeSeg->IsDll())
|
|
269 |
{
|
|
270 |
seg.iCodeSegType = EDllCodeSegType;
|
|
271 |
}
|
|
272 |
|
|
273 |
TInt err = codeSeg->GetMemoryInfo(memoryInfo, NULL);
|
|
274 |
if(KErrNone == err)
|
|
275 |
{
|
|
276 |
seg.iCodeSegMemInfo = memoryInfo;
|
|
277 |
}
|
|
278 |
else
|
|
279 |
{
|
|
280 |
seg.iCodeSegMemInfo.iCodeSize = 0;
|
|
281 |
|
|
282 |
// Still need to indicate it wasnt available somehow
|
|
283 |
}
|
|
284 |
|
|
285 |
//Get filename
|
|
286 |
seg.iNameLength = codeSeg->iFileName->Length();
|
|
287 |
seg.iName = *(codeSeg->iFileName);
|
|
288 |
|
|
289 |
aSizeDumped+=seg.GetSize();
|
|
290 |
seg.Serialize(*iWriter);
|
|
291 |
}
|
|
292 |
}
|
|
293 |
|
|
294 |
//Empty this queue and clear marks
|
|
295 |
DCodeSeg::EmptyQueue(queue, DCodeSeg::EMarkDebug);
|
|
296 |
|
|
297 |
return KErrNone;
|
|
298 |
}
|
|
299 |
|
|
300 |
/**
|
|
301 |
* This logs the rom version and header information to the crash media
|
|
302 |
* @param aSizeDumped amount of data occupied
|
|
303 |
* @return one of the OS wide codes
|
|
304 |
*/
|
|
305 |
TInt SCMDataSave::LogRomInfo(TUint& aSizeDumped)
|
|
306 |
{
|
|
307 |
aSizeDumped = 0;
|
|
308 |
|
|
309 |
TRomHeaderData romData;
|
|
310 |
|
|
311 |
TRomHeader rHdr = Epoc::RomHeader();
|
|
312 |
|
|
313 |
romData.iMajorVersion = rHdr.iVersion.iMajor;
|
|
314 |
romData.iMinorVersion = rHdr.iVersion.iMinor;
|
|
315 |
romData.iBuildNumber = rHdr.iVersion.iBuild;
|
|
316 |
romData.iTime = rHdr.iTime;
|
|
317 |
|
|
318 |
TInt err = romData.Serialize(*iWriter);
|
|
319 |
if(KErrNone != err)
|
|
320 |
{
|
|
321 |
return err;
|
|
322 |
}
|
|
323 |
|
|
324 |
aSizeDumped += romData.GetSize();
|
|
325 |
|
|
326 |
return KErrNone;
|
|
327 |
}
|
|
328 |
|
|
329 |
/**
|
|
330 |
* Takes a DProcess kernel object and logs to flash
|
|
331 |
* @param aProc
|
|
332 |
* @param aSizeDumped Holds the size of the data dumped
|
|
333 |
* @return one of the OS wide error codes
|
|
334 |
*/
|
|
335 |
TInt SCMDataSave::LogProcessData(DProcess* aProc, TUint& aSizeDumped)
|
|
336 |
{
|
|
337 |
LOG_CONTEXT
|
|
338 |
aSizeDumped = 0;
|
|
339 |
|
|
340 |
TProcessData procData;
|
|
341 |
DCodeSeg* codeSeg = aProc->iCodeSeg;
|
|
342 |
|
|
343 |
procData.iPriority = aProc->iPriority;
|
|
344 |
procData.iPid = (TUint64)aProc->iId;
|
|
345 |
|
|
346 |
//the code segment is not always available
|
|
347 |
if(codeSeg)
|
|
348 |
{
|
|
349 |
procData.iNamesize = codeSeg->iFileName->Length();
|
|
350 |
procData.iName = *(codeSeg->iFileName);
|
|
351 |
}
|
|
352 |
|
|
353 |
aSizeDumped += procData.GetSize();
|
|
354 |
procData.Serialize(*iWriter);
|
|
355 |
|
|
356 |
return KErrNone;
|
|
357 |
}
|
|
358 |
|
|
359 |
/**
|
|
360 |
* Creates meta data about the crash such as time of crash, exit reason etc. to be logged
|
|
361 |
* later on when we have log size.
|
|
362 |
* @param aCategory - crash category
|
|
363 |
* @param aReason - crash reason
|
|
364 |
* @param aSizeDumped Holds the size of the data dumped
|
|
365 |
* @return one of the OS wide codes
|
|
366 |
*/
|
|
367 |
TInt SCMDataSave::LogCrashHeader(const TDesC8& aCategory, TInt aReason, TInt aCrashId, TUint& aSizeDumped)
|
|
368 |
{
|
|
369 |
LOG_CONTEXT
|
|
370 |
aSizeDumped = 0;
|
|
371 |
|
|
372 |
//the thread that crashed is the context in which we are running
|
|
373 |
DThread* crashedThread = &Kern::CurrentThread();
|
|
374 |
|
|
375 |
iCrashInf.iPid = crashedThread->iOwningProcess->iId;
|
|
376 |
iCrashInf.iTid = crashedThread->iId;
|
|
377 |
iCrashInf.iCrashTime = CrashTime();
|
|
378 |
iCrashInf.iExitType = 0; // Not yet done: Exception or Fault - should be in category
|
|
379 |
iCrashInf.iExitReason = aReason;
|
|
380 |
iCrashInf.iFlashAlign = KFlashAlignment; //record the flash alignment (word aligned for now)
|
|
381 |
iCrashInf.iCachedWriterSize = iWriter->GetCacheSize();
|
|
382 |
|
|
383 |
iCrashInf.iCategorySize = aCategory.Length();
|
|
384 |
iCrashInf.iCategory = aCategory;
|
|
385 |
iCrashInf.iCrashId = aCrashId;
|
|
386 |
|
|
387 |
iCrashInf.iFlashBlockSize = KCrashLogBlockSize;;
|
|
388 |
iCrashInf.iFlashPartitionSize = KCrashLogSize;;
|
|
389 |
|
|
390 |
TSuperPage& sp=Kern::SuperPage();
|
|
391 |
iCrashInf.iExcCode = sp.iKernelExcId;
|
|
392 |
|
|
393 |
//These will be updated with more info at end of crash
|
|
394 |
aSizeDumped+=iCrashInf.GetSize();
|
|
395 |
iCrashInf.Serialize(*iWriter);
|
|
396 |
|
|
397 |
aSizeDumped+=iHdr.GetSize();
|
|
398 |
iHdr.Serialize(*iWriter);
|
|
399 |
|
|
400 |
CLTRACE1("(SCMDataSave::LogCrashHeader) finished bytes written= %d", iWriter->GetBytesWritten());
|
|
401 |
return KErrNone;
|
|
402 |
}
|
|
403 |
|
|
404 |
/**
|
|
405 |
* Logs meta data about a given DThread object
|
|
406 |
* @param aThread Thread to dump
|
|
407 |
* @param aSizeDumped Holds the size of the data dumped
|
|
408 |
* @return
|
|
409 |
*/
|
|
410 |
TInt SCMDataSave::LogThreadData(DThread* aThread, TUint& aSizeDumped)
|
|
411 |
{
|
|
412 |
LOG_CONTEXT
|
|
413 |
aSizeDumped = 0;
|
|
414 |
|
|
415 |
//struct to hold data that gets written to flash
|
|
416 |
TThreadData threadData;
|
|
417 |
|
|
418 |
threadData.iTid = (TUint64)aThread->iId;
|
|
419 |
threadData.iOwnerId = (TUint64)aThread->iOwningProcess->iId;
|
|
420 |
threadData.iPriority = aThread->iThreadPriority;
|
|
421 |
|
|
422 |
//Get the stack pointers
|
|
423 |
TUint svSp, usrSp;
|
|
424 |
iMonitor->GetStackPointers(&(aThread->iNThread), svSp, usrSp );
|
|
425 |
threadData.iUsrSP = usrSp;
|
|
426 |
threadData.iSvcSP = svSp;
|
|
427 |
|
|
428 |
//supervisor and user stack details
|
|
429 |
threadData.iSvcStack = (TInt32)aThread->iSupervisorStack;
|
|
430 |
threadData.iSvcStacksize = aThread->iSupervisorStackSize;
|
|
431 |
threadData.iUsrStack = aThread->iUserStackRunAddress;
|
|
432 |
threadData.iUsrStacksize = aThread->iUserStackSize;
|
|
433 |
|
|
434 |
//currently we can only get the kernels heap
|
|
435 |
if(aThread == &Kern::CurrentThread())
|
|
436 |
{
|
|
437 |
TInt32 heapLoc = 0;
|
|
438 |
TInt32 heapSz = 0;
|
|
439 |
TInt err = FindKernelHeap(heapLoc,heapSz);
|
|
440 |
if(KErrNone == err)
|
|
441 |
{
|
|
442 |
threadData.iSvcHeap = heapLoc;
|
|
443 |
threadData.iSvcHeapSize = heapSz;
|
|
444 |
}
|
|
445 |
else
|
|
446 |
{
|
|
447 |
CLTRACE("\tError: Unable to get kernel heap");
|
|
448 |
}
|
|
449 |
}
|
|
450 |
|
|
451 |
//get filename
|
|
452 |
TFileName filename;
|
|
453 |
aThread->TraceAppendFullName(filename, EFalse);
|
|
454 |
|
|
455 |
threadData.iName.Copy(filename);
|
|
456 |
threadData.iNamesize = threadData.iName.Length();
|
|
457 |
|
|
458 |
|
|
459 |
#ifdef __INCLUDE_NTHREADBASE_DEFINES__
|
|
460 |
threadData.iLastCpu = aThread->iNThread.iLastCpu;
|
|
461 |
#else
|
|
462 |
threadData.iLastCpu = aThread->iNThread.iSpare3;
|
|
463 |
#endif
|
|
464 |
|
|
465 |
threadData.Serialize(*iWriter);
|
|
466 |
aSizeDumped+=threadData.GetSize();
|
|
467 |
|
|
468 |
return KErrNone;
|
|
469 |
}
|
|
470 |
|
|
471 |
/**
|
|
472 |
* Logs the arm exception stacks
|
|
473 |
* @param aSizeDumped Holds the size of the data dumped
|
|
474 |
* @return one of the OS wide codes
|
|
475 |
*/
|
|
476 |
TInt SCMDataSave::LogExceptionStacks(TUint& aSizeDumped)
|
|
477 |
{
|
|
478 |
LOG_CONTEXT
|
|
479 |
aSizeDumped = 0;
|
|
480 |
TUint memDumped = 0;
|
|
481 |
|
|
482 |
#if defined(__EPOC32__) && !defined(__CPU_X86)
|
|
483 |
|
|
484 |
TStackInfo& stackInfo = Kern::SuperPage().iStackInfo;
|
|
485 |
|
|
486 |
TThreadStack irqStack;
|
|
487 |
irqStack.iStackType = TThreadStack::EIRQStack;
|
|
488 |
irqStack.iStackSize = stackInfo.iIrqStackSize;
|
|
489 |
|
|
490 |
aSizeDumped+=irqStack.GetSize();
|
|
491 |
irqStack.Serialize(*iWriter);
|
|
492 |
|
|
493 |
//now dump the IRQ memory - not much we can do in the event of an error
|
|
494 |
MTRAPD(irqErr, LogMemory((TUint8*)stackInfo.iIrqStackBase, stackInfo.iIrqStackSize, &Kern::CurrentThread(), memDumped));
|
|
495 |
|
|
496 |
if(KErrNone != irqErr)
|
|
497 |
{
|
|
498 |
CLTRACE("*****Failed to log IRQ stack");
|
|
499 |
}
|
|
500 |
aSizeDumped+=memDumped;
|
|
501 |
|
|
502 |
//Next, we do the FIQ stack
|
|
503 |
TThreadStack fiqStack;
|
|
504 |
fiqStack.iStackType = TThreadStack::EFIQStack;
|
|
505 |
fiqStack.iStackSize = stackInfo.iFiqStackSize;
|
|
506 |
|
|
507 |
aSizeDumped+=fiqStack.GetSize();
|
|
508 |
fiqStack.Serialize(*iWriter);
|
|
509 |
|
|
510 |
//Now dump the stack itself
|
|
511 |
MTRAPD(fiqErr, LogMemory((TUint8*)stackInfo.iFiqStackBase, stackInfo.iFiqStackSize, &Kern::CurrentThread(), memDumped));
|
|
512 |
|
|
513 |
if(KErrNone != fiqErr )
|
|
514 |
{
|
|
515 |
CLTRACE("*****Failed to log FIQ stack");
|
|
516 |
}
|
|
517 |
aSizeDumped+=memDumped;
|
|
518 |
|
|
519 |
#endif
|
|
520 |
|
|
521 |
return KErrNone;
|
|
522 |
}
|
|
523 |
|
|
524 |
/**
|
|
525 |
* Logs the CPU Registers at the time of crash
|
|
526 |
* @param aSizeDumped Holds the size of the data dumped
|
|
527 |
* @return system wide OS code
|
|
528 |
*/
|
|
529 |
TInt SCMDataSave::LogCPURegisters(TUint& aSizeDumped)
|
|
530 |
{
|
|
531 |
LOG_CONTEXT
|
|
532 |
aSizeDumped = 0;
|
|
533 |
|
|
534 |
TInt32 fullSet = 37;
|
|
535 |
|
|
536 |
//meta data about the thread set
|
|
537 |
TRegisterSet threadSet;
|
|
538 |
threadSet.iNumRegisters = fullSet;
|
|
539 |
|
|
540 |
aSizeDumped+=threadSet.GetSize();
|
|
541 |
threadSet.Serialize(*iWriter);
|
|
542 |
|
|
543 |
SFullArmRegSet regSet;
|
|
544 |
ReadCPURegisters(regSet);
|
|
545 |
TArmReg* regs = (TArmReg*)®Set;
|
|
546 |
|
|
547 |
TInt32 cnt = 0;
|
|
548 |
for(cnt = 0; cnt < fullSet; cnt++)
|
|
549 |
{
|
|
550 |
//this is the struct to store the register value in
|
|
551 |
TRegisterValue regVal;
|
|
552 |
regVal.iType = cnt * 0x100;
|
|
553 |
regVal.iValue32 = regs[cnt];
|
|
554 |
regVal.iOwnId = Kern::CurrentThread().iId;
|
|
555 |
|
|
556 |
aSizeDumped+=regVal.GetSize();
|
|
557 |
regVal.Serialize(*iWriter);
|
|
558 |
}
|
|
559 |
|
|
560 |
return KErrNone;
|
|
561 |
}
|
|
562 |
|
|
563 |
/**
|
|
564 |
* This logs the registers for a given thread to the flash memory
|
|
565 |
* @param aThread - thread whose registers we want
|
|
566 |
* @param aRegType - type of register set required such as user, supervisor etc
|
|
567 |
* @param aSizeDumped Holds the size of the data dumped
|
|
568 |
* @return one of the OS return codes
|
|
569 |
*/
|
|
570 |
TInt SCMDataSave::LogRegisters(DThread* aThread, const TRegisterSetType& aRegType, TUint& aSizeDumped)
|
|
571 |
{
|
|
572 |
LOG_CONTEXT
|
|
573 |
aSizeDumped = 0;
|
|
574 |
|
|
575 |
TArmRegSet regs;
|
|
576 |
TUint32 availableRegs;
|
|
577 |
TInt err;
|
|
578 |
|
|
579 |
//for the current thread we do things differently
|
|
580 |
if(aThread == &Kern::CurrentThread() && aRegType == EFullCPURegisters)
|
|
581 |
{
|
|
582 |
err = LogCPURegisters(aSizeDumped);
|
|
583 |
return err;
|
|
584 |
}
|
|
585 |
else if(aThread == &Kern::CurrentThread())
|
|
586 |
{
|
|
587 |
//only do full cpu reg for the current thread
|
|
588 |
return KErrNotSupported;
|
|
589 |
}
|
|
590 |
|
|
591 |
//Read the appropriate registers
|
|
592 |
switch(aRegType)
|
|
593 |
{
|
|
594 |
case EUserRegisters :
|
|
595 |
{
|
|
596 |
err = ReadUserRegisters(aThread, regs, availableRegs);
|
|
597 |
break;
|
|
598 |
}
|
|
599 |
case ESupervisorRegisters :
|
|
600 |
{
|
|
601 |
err = ReadSystemRegisters(aThread, regs, availableRegs);
|
|
602 |
break;
|
|
603 |
}
|
|
604 |
default : return KErrNotSupported;
|
|
605 |
}
|
|
606 |
|
|
607 |
if(err != KErrNone)
|
|
608 |
{
|
|
609 |
return err;
|
|
610 |
}
|
|
611 |
|
|
612 |
//meta data about the thread set
|
|
613 |
TRegisterSet threadSet;
|
|
614 |
|
|
615 |
//to get the number of registers in advance, we need to count the number of times 1 is set in the bit field of availableRegs
|
|
616 |
TUint numR = 0;
|
|
617 |
for(TInt cnt =0; cnt< 8*sizeof(availableRegs); cnt++) //cycle through 1 bit at a time
|
|
618 |
{
|
|
619 |
if(0x1 & (availableRegs>>cnt))
|
|
620 |
numR++;
|
|
621 |
}
|
|
622 |
|
|
623 |
threadSet.iNumRegisters = numR;
|
|
624 |
|
|
625 |
if(numR == 0)
|
|
626 |
return KErrNone;
|
|
627 |
|
|
628 |
threadSet.Serialize(*iWriter);
|
|
629 |
aSizeDumped += threadSet.GetSize();
|
|
630 |
|
|
631 |
TInt32 currentRegister = 1;
|
|
632 |
TArmReg* reg = (TArmReg*)(®s);
|
|
633 |
|
|
634 |
for(TInt32 cnt = 0; cnt < KArmRegisterCount; cnt++)
|
|
635 |
{
|
|
636 |
//look at the unavailable bitmask to see current register is available
|
|
637 |
//only write the registers we have values for
|
|
638 |
if(currentRegister & availableRegs)
|
|
639 |
{
|
|
640 |
//this is the struct to store the register value in
|
|
641 |
TRegisterValue regVal;
|
|
642 |
|
|
643 |
//get register type as per symbian elf docs
|
|
644 |
TUint32 registerType;
|
|
645 |
err = GetRegisterType(aRegType, cnt, registerType);
|
|
646 |
if(err != KErrNone)
|
|
647 |
{
|
|
648 |
continue;
|
|
649 |
}
|
|
650 |
regVal.iType = registerType;
|
|
651 |
regVal.iOwnId = aThread->iId;
|
|
652 |
|
|
653 |
//set value
|
|
654 |
regVal.iValue32 = reg[cnt];
|
|
655 |
|
|
656 |
aSizeDumped+=regVal.GetSize();
|
|
657 |
regVal.Serialize(*iWriter);
|
|
658 |
}
|
|
659 |
|
|
660 |
currentRegister<<=1;
|
|
661 |
}
|
|
662 |
|
|
663 |
return KErrNone;
|
|
664 |
}
|
|
665 |
|
|
666 |
/**
|
|
667 |
* This logs memory in the specified area
|
|
668 |
* @param aStartAddress - address to start from
|
|
669 |
* @param aEndAddress - address to finish
|
|
670 |
* @param aThread - process whose memory this is in
|
|
671 |
* @param aSizeDumped Holds the size of the data dumped
|
|
672 |
* @return one of the system wide codes
|
|
673 |
*/
|
|
674 |
TInt SCMDataSave::LogMemory(const TUint8* aStartAddress, TInt aLength, const DThread* aThread, TUint& aSizeDumped)
|
|
675 |
{
|
|
676 |
LOG_CONTEXT
|
|
677 |
aSizeDumped = 0;
|
|
678 |
|
|
679 |
if(aThread->iOwningProcess != &Kern::CurrentProcess())
|
|
680 |
{
|
|
681 |
TInt err = iMonitor->SwitchAddressSpace(aThread->iOwningProcess, ETrue);
|
|
682 |
if(KErrNone != err)
|
|
683 |
{
|
|
684 |
return err;
|
|
685 |
}
|
|
686 |
}
|
|
687 |
|
|
688 |
TMemoryDump memDump;
|
|
689 |
memDump.iStartAddress = (TUint32)aStartAddress;
|
|
690 |
memDump.iLength = aLength;
|
|
691 |
memDump.iPid = aThread->iOwningProcess->iId;
|
|
692 |
|
|
693 |
aSizeDumped+=memDump.GetSize();
|
|
694 |
memDump.Serialize(*iWriter);
|
|
695 |
|
|
696 |
if(!aStartAddress)
|
|
697 |
{
|
|
698 |
return KErrArgument;
|
|
699 |
}
|
|
700 |
|
|
701 |
TRawData theMemory;
|
|
702 |
theMemory.iData.Set(const_cast<TUint8*>(aStartAddress), aLength, aLength);
|
|
703 |
|
|
704 |
theMemory.Serialize(*iWriter);
|
|
705 |
aSizeDumped+=theMemory.GetSize();
|
|
706 |
|
|
707 |
return KErrNone;
|
|
708 |
}
|
|
709 |
|
|
710 |
/**
|
|
711 |
* This logs the locks held by system at time of crash
|
|
712 |
* @param aSizeDumped Holds the size of the data dumped
|
|
713 |
* @return one of the system wide codes
|
|
714 |
*/
|
|
715 |
TInt SCMDataSave::LogLocks(TUint& aSizeDumped)
|
|
716 |
{
|
|
717 |
LOG_CONTEXT
|
|
718 |
aSizeDumped = 0;
|
|
719 |
|
|
720 |
// get the mutex logs & waits & log via a TLockData object
|
|
721 |
TSCMLockData lockData;
|
|
722 |
|
|
723 |
const TInt KMaxLockCheck = 20; // so no possibility of infinite loop
|
|
724 |
|
|
725 |
TInt lockCount = 0;
|
|
726 |
// check for kernel locks -
|
|
727 |
for(TInt i=0;i<KMaxLockCheck;i++)
|
|
728 |
{
|
|
729 |
TBool locked = NKern::KernelLocked(i);
|
|
730 |
if(!locked)
|
|
731 |
{
|
|
732 |
lockData.SetLockCount(lockCount);
|
|
733 |
break;
|
|
734 |
}
|
|
735 |
// found a valid lock for value i increment the clock counter
|
|
736 |
lockCount++;
|
|
737 |
}
|
|
738 |
|
|
739 |
// now mutexes
|
|
740 |
DMutex* mutex = Kern::CodeSegLock();
|
|
741 |
if(mutex)
|
|
742 |
{
|
|
743 |
lockData.SetMutexHoldCount(mutex->iHoldCount);
|
|
744 |
lockData.SetMutexThreadWaitCount(mutex->iWaitCount);
|
|
745 |
}
|
|
746 |
else
|
|
747 |
{
|
|
748 |
// no mutex held set to -1
|
|
749 |
lockData.SetMutexHoldCount(0);
|
|
750 |
lockData.SetMutexThreadWaitCount(0);
|
|
751 |
}
|
|
752 |
|
|
753 |
aSizeDumped+=lockData.GetSize();
|
|
754 |
TInt err = lockData.Serialize(*iWriter);
|
|
755 |
|
|
756 |
return err;
|
|
757 |
}
|
|
758 |
|
|
759 |
/**
|
|
760 |
* Writes the SCM Configuration to the start of the media
|
|
761 |
* @param aScmConfig Configuration to write
|
|
762 |
* @return one of the system wide codes
|
|
763 |
*/
|
|
764 |
TInt SCMDataSave::LogConfig(SCMConfiguration& aScmConfig)
|
|
765 |
{
|
|
766 |
iWriter->SetPosition(0);
|
|
767 |
|
|
768 |
TInt err = aScmConfig.Serialize(*iWriter);
|
|
769 |
|
|
770 |
if( err != KErrNone)
|
|
771 |
{
|
|
772 |
CLTRACE1("SCMDataSave::LogConfig failed err = %d", err);
|
|
773 |
}
|
|
774 |
|
|
775 |
return err;
|
|
776 |
}
|
|
777 |
|
|
778 |
/**
|
|
779 |
* Reads the SCM Configuration from the media
|
|
780 |
* @param aScmConfig
|
|
781 |
* @return one of the system wide codes
|
|
782 |
*/
|
|
783 |
TInt SCMDataSave::ReadConfig(SCMConfiguration& aScmConfig)
|
|
784 |
{
|
|
785 |
const TInt KBufSize = 135; //Not yet done: Put in header, beside config defn
|
|
786 |
|
|
787 |
if( KBufSize < aScmConfig.GetSize())
|
|
788 |
{
|
|
789 |
CLTRACE2("(SCMDataSave::ReadConfig) ** ERROR Inadequate buffer actual = %d req = %d"
|
|
790 |
, KBufSize, aScmConfig.GetSize());
|
|
791 |
}
|
|
792 |
|
|
793 |
// try and read the configuration
|
|
794 |
TBuf8<KBufSize> buf;
|
|
795 |
buf.SetLength(KBufSize);
|
|
796 |
|
|
797 |
iFlash->SetReadPos(0); // config always at 0
|
|
798 |
iFlash->Read(buf);
|
|
799 |
|
|
800 |
TByteStreamReader reader(const_cast<TUint8*>(buf.Ptr()));
|
|
801 |
TInt err = aScmConfig.Deserialize(reader);
|
|
802 |
if(err == KErrNotReady)
|
|
803 |
{
|
|
804 |
CLTRACE("(SCMDataSave::ReadConfig) no config saved - use default");
|
|
805 |
}
|
|
806 |
else if(err == KErrNone)
|
|
807 |
{
|
|
808 |
CLTRACE("(SCMDataSave::ReadConfig) Config read ok");
|
|
809 |
}
|
|
810 |
else
|
|
811 |
{
|
|
812 |
CLTRACE1("(SCMDataSave::ReadConfig) error reading config err = %d", err);
|
|
813 |
}
|
|
814 |
|
|
815 |
return err;
|
|
816 |
}
|
|
817 |
|
|
818 |
/**
|
|
819 |
* This is a look up table to map the register type and number to the symbian elf definition
|
|
820 |
* of register type
|
|
821 |
* @param aSetType this is the register set type - user, supervisor etc
|
|
822 |
* @param aRegNumber this is the number of the register as per TArmRegisters in arm_types.h
|
|
823 |
* @param aSizeDumped Holds the size of the data dumped
|
|
824 |
* @return One of the OS wide codes
|
|
825 |
*/
|
|
826 |
TInt SCMDataSave::GetRegisterType(const TRegisterSetType& aSetType, TInt32& aRegNumber, TUint32& aRegisterType)
|
|
827 |
{
|
|
828 |
//validate arguments
|
|
829 |
if(aRegNumber < EArmR0 || aRegNumber > EArmFlags)
|
|
830 |
{
|
|
831 |
return KErrArgument;
|
|
832 |
}
|
|
833 |
|
|
834 |
//look at what type we are using
|
|
835 |
switch(aSetType)
|
|
836 |
{
|
|
837 |
case EUserRegisters :
|
|
838 |
{
|
|
839 |
aRegisterType = aRegNumber * 0x100; //for R0 to R16 (CPSR) it just increments in 0x100 from 0x0 to 0x1000
|
|
840 |
break;
|
|
841 |
}
|
|
842 |
case ESupervisorRegisters :
|
|
843 |
{
|
|
844 |
//same as EUserRegisters except R13 and R14 are different
|
|
845 |
if(aRegNumber == EArmSp)
|
|
846 |
{
|
|
847 |
aRegisterType = 0x1100;
|
|
848 |
break;
|
|
849 |
}
|
|
850 |
else if(aRegNumber == EArmLr)
|
|
851 |
{
|
|
852 |
aRegisterType = 0x1200;
|
|
853 |
break;
|
|
854 |
}
|
|
855 |
else
|
|
856 |
{
|
|
857 |
aRegisterType = aRegNumber * 0x100;
|
|
858 |
break;
|
|
859 |
}
|
|
860 |
}
|
|
861 |
default : return KErrNotSupported;
|
|
862 |
}
|
|
863 |
|
|
864 |
return KErrNone;
|
|
865 |
}
|
|
866 |
|
|
867 |
/**
|
|
868 |
* Writes the trace buffer to the crash log.
|
|
869 |
* @param aSizeToDump Number of bytes to dump. If this is zero we attempt to write the entire buffer
|
|
870 |
* @param aSizeDumped Holds the size of the data dumped
|
|
871 |
* @return One of the OS wide codes
|
|
872 |
*/
|
|
873 |
TInt SCMDataSave::LogTraceBuffer(TInt aSizeToDump, TUint& aSizeDumped)
|
|
874 |
{
|
|
875 |
LOG_CONTEXT
|
|
876 |
aSizeDumped = 0;
|
|
877 |
TUint memDumped = 0;
|
|
878 |
|
|
879 |
TBool dumpAll = (aSizeToDump == 0) ? ETrue : EFalse;
|
|
880 |
|
|
881 |
//Because the btrace buffer is a circular one, we need to save it in two parts
|
|
882 |
//this corrosponds to how we read it
|
|
883 |
TUint8* data;
|
|
884 |
TUint sizeOfPartRead;
|
|
885 |
TInt spaceRemaining = aSizeToDump;
|
|
886 |
|
|
887 |
//This structure will be filled after the first pass and cached so by the time we ARE writing it will
|
|
888 |
//contain the data we want
|
|
889 |
aSizeDumped+=iTrace.GetSize();
|
|
890 |
iTrace.Serialize(*iWriter);
|
|
891 |
|
|
892 |
//read first part
|
|
893 |
TInt err = BTrace::Control(BTrace::ECtrlCrashReadFirst,&data,&sizeOfPartRead);
|
|
894 |
|
|
895 |
while(KErrNone == err && sizeOfPartRead > 0)
|
|
896 |
{
|
|
897 |
TUint rawSize = 0; //how much of this read data want we to dump
|
|
898 |
|
|
899 |
if(dumpAll)
|
|
900 |
{
|
|
901 |
rawSize = sizeOfPartRead;
|
|
902 |
}
|
|
903 |
else //Otherwise see what room is left for dumpage
|
|
904 |
{
|
|
905 |
rawSize = ((sizeOfPartRead + iTrace.iSizeOfMemory) > aSizeToDump) ? spaceRemaining : sizeOfPartRead;
|
|
906 |
}
|
|
907 |
|
|
908 |
//Only relevant if restricting the dump
|
|
909 |
if(spaceRemaining <= 0 && !dumpAll)
|
|
910 |
break;
|
|
911 |
|
|
912 |
TPtrC8 ptr(data, rawSize);
|
|
913 |
err = LogRawData(ptr, memDumped);
|
|
914 |
if(KErrNone != err)
|
|
915 |
{
|
|
916 |
CLTRACE1("Logging Raw data failed - [%d]", err);
|
|
917 |
err = BTrace::Control(BTrace::ECtrlCrashReadNext,&data,&sizeOfPartRead);
|
|
918 |
continue;
|
|
919 |
}
|
|
920 |
|
|
921 |
aSizeDumped+=memDumped;
|
|
922 |
|
|
923 |
iTrace.iSizeOfMemory += rawSize;
|
|
924 |
iTrace.iNumberOfParts++;
|
|
925 |
spaceRemaining -= rawSize;
|
|
926 |
|
|
927 |
err = BTrace::Control(BTrace::ECtrlCrashReadNext,&data,&sizeOfPartRead);
|
|
928 |
}
|
|
929 |
|
|
930 |
return KErrNone;
|
|
931 |
}
|
|
932 |
|
|
933 |
/**
|
|
934 |
* Logs the data in a TRawData struct
|
|
935 |
* @param aData
|
|
936 |
* @param aSizeDumped Holds the size of the data dumped
|
|
937 |
* @return One of the OS wide codes
|
|
938 |
*/
|
|
939 |
TInt SCMDataSave::LogRawData(const TDesC8& aData, TUint& aSizeDumped)
|
|
940 |
{
|
|
941 |
TRawData theData;
|
|
942 |
theData.iLength = aData.Length();
|
|
943 |
theData.iData.Set(const_cast<TUint8*>(aData.Ptr()), aData.Length(), aData.Length());
|
|
944 |
|
|
945 |
aSizeDumped+=theData.GetSize();
|
|
946 |
return theData.Serialize(*iWriter);
|
|
947 |
}
|
|
948 |
|
|
949 |
|
|
950 |
/**
|
|
951 |
* Logs the kernels heap and returns the size dumped via aSizeDumped
|
|
952 |
* @param aSizeDumped Holds the size of the data dumped
|
|
953 |
* @return
|
|
954 |
*/
|
|
955 |
TInt SCMDataSave::LogKernelHeap(TUint& aSizeDumped)
|
|
956 |
{
|
|
957 |
LOG_CONTEXT
|
|
958 |
|
|
959 |
TInt32 heapLoc = 0;
|
|
960 |
TInt32 heapSize = 0;
|
|
961 |
TInt32 err = FindKernelHeap(heapLoc, heapSize);
|
|
962 |
if(KErrNone == err)
|
|
963 |
{
|
|
964 |
return LogMemory((TUint8*)heapLoc, heapSize, &Kern::CurrentThread(), aSizeDumped);
|
|
965 |
}
|
|
966 |
|
|
967 |
CLTRACE1("\tCouldnt find the kernel heap: [%d]", err);
|
|
968 |
return err;
|
|
969 |
}
|
|
970 |
|
|
971 |
/**
|
|
972 |
* Iterates the object containers and finds the kernel heap
|
|
973 |
* @param aHeapLocation Contains the memory location of the kernel heap
|
|
974 |
* @param aHeapSize Contains the size of the Heap
|
|
975 |
* @return One of the OS wide codes
|
|
976 |
*/
|
|
977 |
TInt SCMDataSave::FindKernelHeap(TInt32& aHeapLocation, TInt32& aHeapSize)
|
|
978 |
{
|
|
979 |
LOG_CONTEXT
|
|
980 |
|
|
981 |
//Get Chunk object container
|
|
982 |
DObjectCon* objectContainer = Kern::Containers()[EChunk];
|
|
983 |
if(objectContainer == NULL)
|
|
984 |
{
|
|
985 |
CLTRACE("\tFailed to get object container for the chunks");
|
|
986 |
return KErrNotFound;
|
|
987 |
}
|
|
988 |
|
|
989 |
//Must check the mutex on this is ok otherwise the data will be in an inconsistent state
|
|
990 |
if(objectContainer->Lock()->iHoldCount)
|
|
991 |
{
|
|
992 |
CLTRACE("\tChunk Container is in an inconsistant state");
|
|
993 |
return KErrCorrupt;
|
|
994 |
}
|
|
995 |
|
|
996 |
TInt numObjects = objectContainer->Count();
|
|
997 |
|
|
998 |
for(TInt cnt = 0; cnt< numObjects; cnt ++)
|
|
999 |
{
|
|
1000 |
DChunk* candidateHeapChunk = (DChunk*)(*objectContainer)[cnt];
|
|
1001 |
|
|
1002 |
//Get the objects name
|
|
1003 |
TBuf8<KMaxKernelName> name;
|
|
1004 |
candidateHeapChunk->TraceAppendFullName(name,EFalse);
|
|
1005 |
|
|
1006 |
if(name == KKernelHeapChunkName)
|
|
1007 |
{
|
|
1008 |
#ifndef __MEMMODEL_FLEXIBLE__
|
|
1009 |
aHeapLocation = (TInt32)candidateHeapChunk->iBase;
|
|
1010 |
#else
|
|
1011 |
aHeapLocation = (TInt32)candidateHeapChunk->iFixedBase;
|
|
1012 |
#endif
|
|
1013 |
|
|
1014 |
aHeapSize = candidateHeapChunk->iSize;
|
|
1015 |
|
|
1016 |
return KErrNone;
|
|
1017 |
}
|
|
1018 |
}
|
|
1019 |
|
|
1020 |
return KErrNotFound;
|
|
1021 |
}
|
|
1022 |
|
|
1023 |
/**
|
|
1024 |
* This logs the variant specific descriptor data to the crash log
|
|
1025 |
* @param aSizeDumped records how much was dumped by this function
|
|
1026 |
* @return one of the OS wide codes
|
|
1027 |
*/
|
|
1028 |
TInt SCMDataSave::LogVariantSpecificData(TUint& aSizeDumped)
|
|
1029 |
{
|
|
1030 |
LOG_CONTEXT
|
|
1031 |
|
|
1032 |
aSizeDumped = 0;
|
|
1033 |
|
|
1034 |
//Change this descriptor as required for your needs
|
|
1035 |
_LIT(KVariantSpecificData, "This is the variant specific data. Put your own here");
|
|
1036 |
|
|
1037 |
TVariantSpecificData varData;
|
|
1038 |
varData.iSize = KVariantSpecificData().Size();
|
|
1039 |
|
|
1040 |
TInt err = varData.Serialize(*iWriter);
|
|
1041 |
if(KErrNone != err)
|
|
1042 |
{
|
|
1043 |
CLTRACE1("\tLogging variant specific data failed with code [%d]", err);
|
|
1044 |
return err;
|
|
1045 |
}
|
|
1046 |
aSizeDumped+=varData.GetSize();
|
|
1047 |
|
|
1048 |
TUint rawDataSize = 0;
|
|
1049 |
err = LogRawData(KVariantSpecificData(), rawDataSize);
|
|
1050 |
if(KErrNone != err)
|
|
1051 |
{
|
|
1052 |
CLTRACE1("\tLogging variant specific data failed with code [%d]", err);
|
|
1053 |
return err;
|
|
1054 |
}
|
|
1055 |
|
|
1056 |
aSizeDumped+=rawDataSize;
|
|
1057 |
|
|
1058 |
return KErrNone;
|
|
1059 |
}
|
|
1060 |
|
|
1061 |
|
|
1062 |
/**
|
|
1063 |
* This method is the callback used by MPhysicalWriterImpl interface
|
|
1064 |
* if the TCachedByteStreamWriter is configured to use this interface
|
|
1065 |
* the callback avoids the need for temp buffers & can interface directly with the
|
|
1066 |
* flash writer methods
|
|
1067 |
* @param aData - data to write
|
|
1068 |
* @param aLen - length of data to write
|
|
1069 |
* @param aPos - writers internal position
|
|
1070 |
*/
|
|
1071 |
void SCMDataSave::DoPhysicalWrite(TAny* aData, TInt aPos, TInt aLen)
|
|
1072 |
{
|
|
1073 |
if(iPerformChecksum)
|
|
1074 |
{
|
|
1075 |
iChecksum.ChecksumBlock((TUint8*)aData, aLen);
|
|
1076 |
}
|
|
1077 |
|
|
1078 |
if( this->iWriteSelect == EWriteComm)
|
|
1079 |
{
|
|
1080 |
WriteUart((TUint8*)aData, aLen);
|
|
1081 |
}
|
|
1082 |
else // EWriteFlash
|
|
1083 |
{
|
|
1084 |
Write(aData, aLen);
|
|
1085 |
}
|
|
1086 |
}
|
|
1087 |
|
|
1088 |
/**
|
|
1089 |
* Writes data to Flash
|
|
1090 |
* @param aSomething Pointer to the data
|
|
1091 |
* @param aSize Size of the data
|
|
1092 |
*/
|
|
1093 |
void SCMDataSave::Write(const TAny* aSomething, TInt aSize)
|
|
1094 |
{
|
|
1095 |
TPtrC8 data((const TUint8 *)aSomething, aSize);
|
|
1096 |
|
|
1097 |
TInt written = 0;
|
|
1098 |
|
|
1099 |
WriteCrashFlash(iByteCount, written, data);
|
|
1100 |
iByteCount+= written;
|
|
1101 |
}
|
|
1102 |
|
|
1103 |
/**
|
|
1104 |
* Writes a descriptor to the crash flash
|
|
1105 |
* @param aPos Position in flash to write
|
|
1106 |
* @param aSize Holds the size of the data written after the call
|
|
1107 |
* @param aBuffer Descriptor to write
|
|
1108 |
*/
|
|
1109 |
void SCMDataSave::WriteCrashFlash(TInt aPos, TInt& aSize, const TDesC8& aBuffer)
|
|
1110 |
{
|
|
1111 |
//Set write position in the flash
|
|
1112 |
iFlash->SetWritePos(aPos);
|
|
1113 |
iFlash->Write(aBuffer);
|
|
1114 |
|
|
1115 |
//get bytes written
|
|
1116 |
aSize += iFlash->BytesWritten();
|
|
1117 |
|
|
1118 |
if(aSize != aBuffer.Length())
|
|
1119 |
{
|
|
1120 |
CLTRACE2("(SCMDataSave::WriteCrashFlash) Over the limit aSize = %d aBuffer.Length() = %d",
|
|
1121 |
aSize, aBuffer.Length());
|
|
1122 |
}
|
|
1123 |
}
|
|
1124 |
|
|
1125 |
/**
|
|
1126 |
* Writes a descriptor via serial
|
|
1127 |
* @param aDes Descriptor to write
|
|
1128 |
*/
|
|
1129 |
void SCMDataSave::WriteUart(const TDesC8& aDes)
|
|
1130 |
{
|
|
1131 |
WriteUart(aDes.Ptr(), aDes.Length());
|
|
1132 |
}
|
|
1133 |
|
|
1134 |
/**
|
|
1135 |
* Writes data via serial
|
|
1136 |
* @param aData Data to write
|
|
1137 |
* @param aSize Size of data to write
|
|
1138 |
*/
|
|
1139 |
void SCMDataSave::WriteUart(const TUint8* aData, TInt aSize)
|
|
1140 |
{
|
|
1141 |
OMAP* assp = ((OMAP*)Arch::TheAsic());
|
|
1142 |
TOmapDbgPrt* dbg = assp->DebugPort();
|
|
1143 |
|
|
1144 |
if (dbg)
|
|
1145 |
{
|
|
1146 |
for(TInt i=0;i<aSize;i++)
|
|
1147 |
{
|
|
1148 |
dbg->DebugOutput(*(aData+i));
|
|
1149 |
}
|
|
1150 |
}
|
|
1151 |
else
|
|
1152 |
{
|
|
1153 |
CLTRACE("SCMDataSave::WriteUart ERROR - dbg was null");
|
|
1154 |
}
|
|
1155 |
}
|
|
1156 |
|
|
1157 |
/**
|
|
1158 |
* Setter for the current number of bytes written for this crash log
|
|
1159 |
* If aByte is not word aligned, it will be rounded up to be so
|
|
1160 |
* @param aByte Current bytes written
|
|
1161 |
*/
|
|
1162 |
void SCMDataSave::SetByteCount(TInt aByte)
|
|
1163 |
{
|
|
1164 |
//ensure aligned
|
|
1165 |
if(aByte % iWriter->GetCacheSize() == 0)
|
|
1166 |
{
|
|
1167 |
iByteCount = aByte;
|
|
1168 |
}
|
|
1169 |
else
|
|
1170 |
{
|
|
1171 |
iByteCount = aByte + (iWriter->GetCacheSize() - (aByte % iWriter->GetCacheSize()));
|
|
1172 |
}
|
|
1173 |
}
|
|
1174 |
|
|
1175 |
/**
|
|
1176 |
* Gets the output target selection
|
|
1177 |
* @return TScmWriteSelect output target selection
|
|
1178 |
* @param void
|
|
1179 |
*/
|
|
1180 |
SCMDataSave::TWriteSelect SCMDataSave::GetWriteSelect()
|
|
1181 |
{
|
|
1182 |
return iWriteSelect;
|
|
1183 |
}
|
|
1184 |
|
|
1185 |
/**
|
|
1186 |
* Sets the output target selection
|
|
1187 |
* @return void
|
|
1188 |
* @param TScmWriteSelect aWriteSelect output target selection
|
|
1189 |
*/
|
|
1190 |
void SCMDataSave::SetWriteSelect(SCMDataSave::TWriteSelect aWriteSelect)
|
|
1191 |
{
|
|
1192 |
iWriteSelect = aWriteSelect;
|
|
1193 |
}
|
|
1194 |
|
|
1195 |
/**
|
|
1196 |
* Gets the amount of space remaining for the media of choice
|
|
1197 |
* @return
|
|
1198 |
*/
|
|
1199 |
TUint SCMDataSave::SpaceRemaining()
|
|
1200 |
{
|
|
1201 |
TInt currentPosition = iWriter->GetBytesWritten() + iStartingPointForCrash;
|
|
1202 |
|
|
1203 |
return MaxLogSize() - currentPosition;
|
|
1204 |
}
|
|
1205 |
|
|
1206 |
/**
|
|
1207 |
* To find the max size of a log for a given media
|
|
1208 |
* @return the max size of a log for a given media
|
|
1209 |
*/
|
|
1210 |
TUint SCMDataSave::MaxLogSize()
|
|
1211 |
{
|
|
1212 |
//see what write media is being used
|
|
1213 |
switch(GetWriteSelect())
|
|
1214 |
{
|
|
1215 |
case EWriteFlash:
|
|
1216 |
{
|
|
1217 |
return KMaxCrashLogSize;
|
|
1218 |
}
|
|
1219 |
case EWriteComm:
|
|
1220 |
{
|
|
1221 |
return 0xFFFFFFFF;
|
|
1222 |
}
|
|
1223 |
default:
|
|
1224 |
{
|
|
1225 |
return 0;
|
|
1226 |
}
|
|
1227 |
}
|
|
1228 |
}
|
|
1229 |
|
|
1230 |
/**
|
|
1231 |
* Records the offset in the flash partition where this crash begins
|
|
1232 |
* @param aStart Offset in flash
|
|
1233 |
*/
|
|
1234 |
void SCMDataSave::SetCrashStartingPoint(TUint32 aStart)
|
|
1235 |
{
|
|
1236 |
iStartingPointForCrash = aStart;
|
|
1237 |
}
|
|
1238 |
|
|
1239 |
//eof
|
|
1240 |
|