[SOLVED] TheDyl BSOD

TheDyl

Member
Joined
Feb 19, 2014
Posts
10
Hey Guys,
BSOD With the clock interrupt Error Message
generally happens whilst playing ALT tabbing between a game and a video (most of the time twitch.tv)
Clock interrupt happens crazy frequently whilst playing CS:GO for some reason
Help would be appreciated
I believe I BSOD aswell for other reasons, So I would suggest looking for other potential problems aswell :/

OS- Windows 7 64BIT, Original installation
Purchased Windows
~2 years old system, same as OS age
i7 3820

GTX 560
Asus P9x79 Motherboard
Desktop custom made myself
16 GB DDR 3 RAM if that's relevant


Running them USB stick thingo's to connect to internet
Netgear WG111V3 Wireless G USB ADAPTER

Heres the Files needed:

View attachment 7100


Thanks,

TheDyl
 
Hi,

We have many CLOCK_WATCHDOG_TIMEOUT (101) bug checks.

This indicates that an expected clock interrupt on a secondary processor, in a multi-processor system, was not received within the allocated interval.

Unfortunately, we'll need a kernel-dump to be able to analyze this bug check as not information is saved at the time of the crash within a minidump.

Creating a Kernel-Mode Dump File (Windows Debuggers)

After a kernel-dump is generated, you'll have to upload it to a 3rd party host such as Mediafire, Onedrive, Google Drive, etc. Whatever works best for you.

Regards,

Patrick
 
Still have no idea how to create kernel dump file... sorry
it's 'enabled' but how do i get the file..
 
Did you just enable it, or was it already? If it was already set to generate kernel-dumps, navigate to C:\Windows and it'll be located there and named MEMORY.DMP. Then, you'll have to upload it to a 3rd party host such as Mediafire, Onedrive, Google Drive, etc. Whatever works best for you.

If you just set it to generate a kernel-dump, you'll need to wait for the system to crash and then navigate to C:\Windows to locate it.

Regards,

Patrick
 
It was 'Enabled' Yet when I went to C:\Windows, there was no dump file
even though in the 'Enable Kernel' settings says the file should be located there
(would it maybe be in 'minidumps' folder located similarily in windows?)
 
No, the minidumps folder is strictly for Small Memory Dumps (i.e the ones you currently have attached to your original post).

Is your file path for kernels set to > %SystemRoot%\MEMORY.DMP? If so, let's just wait for another crash with all of the proper kernel-dump settings in place, and then check C:\Windows for it.

Regards,

Patrick
 
So my computer finally crashed, same bsod, says crash dump 100% OK coool
Log back into comp, the MEMORY.DMP ISNT THERE...
 
I sorted it out, Running a SSD as my C Drive meant that I had <25 GB of free space left on it, due to this, crash dumps aren't saved despite you having settings to save one,
you can change this through the registry :)
So now i have a memory dump

it's gunna take a while to upload the decently sized file to googledrive so bear with me...
 
No worries!

Right, so as we saw earlier, the attached DMP file is of the CLOCK_WATCHDOG_TIMEOUT (101) bugcheck.

This indicates that an expected clock interrupt on a secondary processor, in a multi-processor system, was not received within the allocated interval.

BugCheck 101, {19, 0, fffff880009b2180, 4}

19 clock ticks in regards to the timeout.

fffff880009b2180 is the PRCB address of the hung processor, let's keep this address in mind.

Code:
0: kd> !prcb 4
PRCB for Processor 4 at [COLOR=#ff0000][I][B]fffff880009b2180[/B][/I][/COLOR]:
Current IRQL -- 0
Threads--  Current fffffa800d851060 Next fffffa800caa6680 Idle fffff880009bd0c0
Processor Index 4 Number (0, 4) GroupSetMember 10
Interrupt Count -- 001bd6a1
Times -- Dpc    00000018 Interrupt 00000048 
         Kernel 0000f52d User      00003d36

For reference, I did not do !prcb 0 through 4. That would have been very tedious. Instead, you can run the !running -it command. The "i" argument causes it to display idle procs too, and "t" displays the stack trace for the thread running on each proc. Running that specific command shows you're on an 8 core box.

Hint: At times, the 4th parameter of the bug check will show you the responsible processor. For example, in your *101 here, it was correct as the 4th parameter was 4.

Hint #2: You can also generally tell the amount of cores on the box by checking the bugcheck_string - BUGCHECK_STR: CLOCK_WATCHDOG_TIMEOUT_8_PROC

As this matches the 3rd parameter of the bugcheck, processor #4 is the responsible processor. Now with the information we have here thus far, we know that processor #4 reached 19 clock ticks without responding, therefore the system crashed. Before we go further, what is a clock tick? A clock interrupt is a form of interrupt which involves counting the the cycles of the processor core, which is running a clock on the processors to keep them all in sync. A clock interrupt is handed out to all processors and then they must report in, and when one doesn't report in, you then crash.



Let's now look at the stacks of the different processors to see what the threads were involved in:

We can use knL and go through a grueling method of obtaining the trap frame, but we don't like having to put in more work, so let's use kv instead on Proc 0:

Code:
0: kd> kv
Child-SP          RetAddr           : Args to Child                                                           : Call Site
fffff880`009a9728 fffff800`0322c443 : 00000000`00000101 00000000`00000019 00000000`00000000 fffff880`009b2180 : nt!KeBugCheckEx
fffff880`009a9730 fffff800`032885f7 : 00000000`00000000 fffff800`00000004 00000000`00002711 00000000`00000000 : nt! ?? ::FNODOBFM::`string'+0x4e3e
fffff880`009a97c0 fffff800`037f5895 : fffff800`0381a460 fffff880`009a9970 fffff800`0381a460 00000000`00000000 : nt!KeUpdateSystemTime+0x377
fffff880`009a98c0 fffff800`0327c3f3 : 00000000`8e403992 fffff800`033f8e80 fffff880`03088180 fffffa80`101ca060 : hal!HalpHpetClockInterrupt+0x8d
fffff880`009a98f0 fffff800`032b55a3 : 00000000`00000000 00000000`00000001 00000000`00000000 00000000`00000000 : nt!KiInterruptDispatchNoLock+0x163 ([COLOR=#ff0000][I][B]TrapFrame @ fffff880`009a98f0[/B][/I][/COLOR])
fffff880`009a9a80 fffff800`0328de2c : 00000000`00000000 fffff6fc`40004308 00000000`00000000 00000000`00000000 : nt!KxFlushEntireTb+0x93
fffff880`009a9ac0 fffff800`032c76b9 : fffff6fc`40004308 00000000`00000008 fffff800`033f8e80 00000000`00000080 : nt!KeFlushMultipleRangeTb+0x28c
fffff880`009a9b90 fffff800`032c728f : ffffffff`ffffffff 00000000`0000007f 00000000`00000000 00000000`00000000 : nt!MiZeroPageChain+0x14e
fffff880`009a9bd0 fffff800`03523166 : fffffa80`0ca90460 00000000`00000080 fffffa80`0ca909e0 fffff800`0325e479 : nt!MmZeroPageThread+0x7da
fffff880`009a9d00 fffff800`0325e486 : fffff800`033f8e80 fffffa80`0ca90460 fffff800`03406c40 15ff0000`0160248c : nt!PspSystemThreadStartup+0x5a
fffff880`009a9d40 00000000`00000000 : fffff880`009aa000 fffff880`009a4000 fffff880`009a9970 00000000`00000000 : nt!KiStartSystemThread+0x16

There it is! Let's move forward:


Code:
0: kd> .trap [COLOR=#ff0000][I][B]fffff880`009a98f0[/B][/I][/COLOR]
NOTE: The trap frame does not contain all registers.
Some register values may be zeroed or incorrect.
rax=0000000000000001 rbx=0000000000000000 rcx=00000000000406f8
rdx=00000000000008e1 rsi=0000000000000000 rdi=0000000000000000
rip=fffff800032b55a3 rsp=fffff880009a9a80 rbp=fffff880009a9bb8
 r8=0000000000000000  r9=ffffffffffffff7f r10=0000000000000008
r11=fffff880009a9a20 r12=0000000000000000 r13=0000000000000000
r14=0000000000000000 r15=0000000000000000
iopl=0         nv up ei ng nz na pe nc
nt!KxFlushEntireTb+0x93:
fffff800`032b55a3 ebe4            jmp     nt!KxFlushEntireTb+0x79 (fffff800`032b5589)

Code:
0: kd> knL
  *** Stack trace for last set context - .thread/.cxr resets it
 # Child-SP          RetAddr           Call Site
00 fffff880`009a9a80 fffff800`0328de2c nt!KxFlushEntireTb+0x93
01 fffff880`009a9ac0 fffff800`032c76b9 nt!KeFlushMultipleRangeTb+0x28c
02 fffff880`009a9b90 fffff800`032c728f nt!MiZeroPageChain+0x14e
03 fffff880`009a9bd0 fffff800`03523166 nt!MmZeroPageThread+0x7da
04 fffff880`009a9d00 fffff800`0325e486 nt!PspSystemThreadStartup+0x5a
05 fffff880`009a9d40 00000000`00000000 nt!KiStartSystemThread+0x16

^^ Here we can find the stored registers and the stack at the time of the interrupt.

This is where we're going to do some instruction disassembling:

Code:
0: kd> u @rip
nt!KxFlushEntireTb+0x93:
fffff800`032b55a3 ebe4            [COLOR=#ff0000][I][B]jmp[/B][/I][/COLOR]     [COLOR=#ff0000][I][B]nt!KxFlushEntireTb+0x79[/B][/I][/COLOR] ([COLOR=#008000][I][B]fffff800`032b5589[/B][/I][/COLOR])
[COLOR=#008000][I][B]fffff800`032b55a5[/B][/I][/COLOR] f08305d3c5140001 lock add dword ptr [nt!KiTbFlushTimeStamp (fffff800`03401b80)],1
fffff800`032b55ad 400fb6c6        movzx   eax,sil
fffff800`032b55b1 440f22c0        mov     cr8,rax
fffff800`032b55b5 488b5c2440      mov     rbx,qword ptr [rsp+40h]
fffff800`032b55ba 488b742448      mov     rsi,qword ptr [rsp+48h]
fffff800`032b55bf 4883c430        add     rsp,30h
fffff800`032b55c3 5f              pop     rdi

Code:
0: kd> u fffff800`032b5589 fffff800`032b55a5
nt!KxFlushEntireTb+0x79:
fffff800`032b5589 8b8780200000    mov     eax,dword ptr [rdi+2080h]
fffff800`032b558f 85c0            test    eax,eax [COLOR=#008000][I][B]<-- Checking if value is non-zero.[/B][/I][/COLOR]
fffff800`032b5591 7412            je      nt!KxFlushEntireTb+0x95 (fffff800`032b55a5) [COLOR=#008000][I][B]<-- It looks like it takes the jmp here to stay in the loop.[/B][/I][/COLOR]
fffff800`032b5593 ffc3            inc     ebx
fffff800`032b5595 851d310d2000    test    dword ptr [nt!HvlLongSpinCountMask (fffff800`034b62cc)],ebx
fffff800`032b559b 0f84a11e0200    je      nt! ?? ::FNODOBFM::`string'+0x7467 (fffff800`032d7442)
fffff800`032b55a1 f390            [COLOR=#ff0000][I][B]pause[/B][/I][/COLOR]
fffff800`032b55a3 ebe4            [COLOR=#ff0000][I][B]jmp[/B][/I][/COLOR]     [COLOR=#ff0000][I][B]nt!KxFlushEntireTb+0x79[/B][/I][/COLOR] (fffff800`032b5589)
fffff800`032b55a5 f08305d3c5140001 lock add dword ptr [nt!KiTbFlushTimeStamp (fffff800`03401b80)],1

Dissassembling the first few instructions reveals a jump (jmp) that is back up in the nt!KxFlushEntireTb function. It appears at the time of the bug check, the thread was executing a pause (a CPU delay), and doing this in a loop waiting for a release.

So, what's the summary so far? Processor #0 was the thread that created the bugcheck itself, and must have been interrupted by a clock interrupt in order to trigger the CLOCK_WATCHDOG_TIMEOUT bugcheck.



Let's take a look into Processor #1's call stack like we did Processor #0:


Code:
Child-SP          RetAddr           : Args to Child                                                           : Call Site
fffff880`02f1bc58 fffff800`0328da3a : 00000000`0035ce39 fffffa80`0dc25bd8 fffff880`009fb0c0 00000000`00000001 : intelppm!MWaitIdle+0x19
fffff880`02f1bc60 fffff800`032886cc : fffff880`009f0180 fffff880`00000000 00000000`00000000 fffff880`00000000 : nt!PoIdle+0x53a
fffff880`02f1bd40 00000000`00000000 : fffff880`02f1c000 fffff880`02f16000 fffff880`02f1bd00 00000000`00000000 : nt!KiIdleLoop+0x2c

Code:
1: kd> !irql
Debugger saved IRQL for processor 0x1 -- 0 (LOW_LEVEL)

^^ Either it's running at 0 or the IRQL despite saying 'saved' really didn't get saved. Windows Internals notes this is a possibility.

Code:
1: kd> u @rip
intelppm!MWaitIdle+0x19:
fffff880`06c7ac61 c3              ret
fffff880`06c7ac62 cc              int     3
fffff880`06c7ac63 cc              int     3
fffff880`06c7ac64 cc              int     3
fffff880`06c7ac65 cc              int     3
fffff880`06c7ac66 cc              int     3
fffff880`06c7ac67 cc              int     3
intelppm!SetPerfStateIO:
fffff880`06c7ac68 48895c2408      mov     qword ptr [rsp+8],rbx

So it seems that we have the intelppm!MWaitIdle function. I have done some research and I cannot find info on it, although intelppm is related to the processor and I believe its power configuration, power states, etc. Assuming idle implies what I believe it does, this may indicate that processor #1 at the time of the crash was idle waiting for something.



Let's check Processor #2:

Code:
2: kd> kv
Child-SP          RetAddr           : Args to Child                                                           : Call Site
fffff880`02f8cc58 fffff800`0328da3a : 00000000`0035ce39 fffffa80`0d163908 00000000`00000000 00000000`00000000 : intelppm!MWaitIdle+0x19
fffff880`02f8cc60 fffff800`032886cc : fffff880`02f64180 fffff880`00000000 00000000`00000000 fffff880`00000000 : nt!PoIdle+0x53a
fffff880`02f8cd40 00000000`00000000 : fffff880`02f8d000 fffff880`02f87000 fffff880`02f8cd00 00000000`00000000 : nt!KiIdleLoop+0x2c

Exact same above with processor #2.



Let's check Processor #3:

Code:
3: kd> kv
Child-SP          RetAddr           : Args to Child                                                           : Call Site
fffff880`07bb5210 fffff800`032ab0fb : 00000000`00000002 fffff880`07bb5380 fffff900`c2e82000 00000000`00000001 : nt!MiFlushTbAsNeeded+0x28a
fffff880`07bb5320 fffff800`033afceb : 00000000`00001230 00000000`00001230 00000000`00000021 00000008`00000000 : nt!MiAllocatePagedPoolPages+0x4bb
fffff880`07bb5440 fffff800`03292860 : 00000000`00001230 fffff880`049fccc0 00000000`00000021 00000000`00000000 : nt!MiAllocatePoolPages+0x8e2
fffff880`07bb5590 fffff800`033b2bfe : 00000000`00000000 00000000`02323fff fffffa80`00000020 fffff880`049fccc0 : nt!ExpAllocateBigPool+0xb0
fffff880`07bb5680 fffff960`001928ed : 00000000`00001d01 00000000`00000000 00000000`00000000 fffff960`001a40d1 : nt!ExAllocatePoolWithTag+0x82e
fffff880`07bb5770 fffff960`00193e0f : 00000000`00000001 fffff880`07bb5908 00000000`00000001 fffff960`001a4302 : win32k!AllocateObject+0xdd
fffff880`07bb57b0 fffff960`00169f2f : fffff880`00000000 00000000`00000000 00000000`00000000 00000000`00000000 : win32k!SURFMEM::bCreateDIB+0x1fb
fffff880`07bb58a0 fffff960`00180bc4 : 00000000`01010051 fffff900`c34b3a00 00000000`00000000 00000000`0000002c : win32k!GreCreateDIBitmapReal+0x533
fffff880`07bb59d0 fffff960`00182be6 : 00000000`00000000 00000000`00000000 00000000`00000000 00000000`00000000 : win32k!InternalGetIconInfo+0x174
fffff880`07bb5ac0 fffff800`0327f153 : fffffa80`0ea2d060 00000000`0272f098 fffff880`07bb5b88 00000000`00000020 : win32k!NtUserGetIconInfo+0x182
fffff880`07bb5b70 00000000`778f462a : 00000000`00000000 00000000`00000000 00000000`00000000 00000000`00000000 : nt!KiSystemServiceCopyEnd+0x13 ([COLOR=#ff0000][I][B]TrapFrame @ fffff880`07bb5be0[/B][/I][/COLOR])
00000000`0272f078 00000000`00000000 : 00000000`00000000 00000000`00000000 00000000`00000000 00000000`00000000 : 0x778f462a

Code:
3: kd> .trap fffff880`07bb5be0
NOTE: The trap frame does not contain all registers.
Some register values may be zeroed or incorrect.
rax=0000000000000000 rbx=0000000000000000 rcx=0000000000000000
rdx=0000000000000000 rsi=0000000000000000 rdi=0000000000000000
rip=00000000778f462a rsp=000000000272f078 rbp=000000000272f1e0
 r8=0000000000000000  r9=0000000000000000 r10=0000000000000000
r11=0000000000000000 r12=0000000000000000 r13=0000000000000000
r14=0000000000000000 r15=0000000000000000
iopl=0         nv up ei pl zr na po nc
0033:00000000`778f462a ??              ???

Code:
3: kd> u @rip
00000000`778f462a ??              ???
            ^ Memory access error in 'u @rip'

Cannot seem to access the rip register on processor #3. From the stack, it looks like nt!MiFlushTbAsNeeded may be in a loop.



Let's now take a look at the problematic proc (#4):

Code:
4: kd> kv
Child-SP          RetAddr           : Args to Child                                                           : Call Site
00000000`00000000 00000000`00000000 : 00000000`00000000 00000000`00000000 00000000`00000000 00000000`00000000 : 0x0

Code:
4: kd> r
rax=0000000000000000 rbx=0000000000000000 rcx=0000000000000000
rdx=0000000000000000 rsi=0000000000000000 rdi=0000000000000000
rip=0000000000000000 rsp=0000000000000000 rbp=0000000000000000
 r8=0000000000000000  r9=0000000000000000 r10=0000000000000000
r11=0000000000000000 r12=0000000000000000 r13=0000000000000000
r14=0000000000000000 r15=0000000000000000
iopl=0         nv up di pl nz na pe nc
cs=0000  ss=0000  ds=0000  es=0000  fs=0000  gs=0000             efl=00000000
00000000`00000000 ??              ???

^^ We have a zerod stack + registers, so this will be problematic. Usually this occurs on the problem processor because the IRQL is too high, OR the processor was too hung at the time of the crash to report its information, etc. We will need to get the raw stack.

Let's give this a shot:

Code:
4: kd> !pcr
KPCR for Processor 4 at fffff880009b2000:
    Major 1 Minor 1
    NtTib.ExceptionList: fffff880009bd640
        NtTib.StackBase: fffff880009b7040
       NtTib.StackLimit: 00000000000ade58
     NtTib.SubSystemTib: fffff880009b2000
          NtTib.Version: 00000000009b2180
      NtTib.UserPointer: fffff880009b27f0
          NtTib.SelfTib: 00000000fffdb000

                SelfPcr: 0000000000000000
                   Prcb: fffff880009b2180
                   Irql: 0000000000000000
                    IRR: 0000000000000000
                    IDR: 0000000000000000
          InterruptMode: 0000000000000000
                    IDT: 0000000000000000
                    GDT: 0000000000000000
                    TSS: 0000000000000000

          CurrentThread: [COLOR=#ff0000][I][B]fffffa800d851060[/B][/I][/COLOR]
             NextThread: fffffa800caa6680
             IdleThread: fffff880009bd0c0

              DpcQueue:

Code:
4: kd> !thread
THREAD [COLOR=#ff0000][I][B]fffffa800d851060  [/B][/I][/COLOR]Cid 0bb8.08c4  Teb: 00000000fffdb000 Win32Thread: fffff900c4147c30 RUNNING on processor 4
Not impersonating
DeviceMap                 fffff8a0019544e0
Owning Process            fffffa800d845b30       Image:         chrome.exe
Attached Process          N/A            Image:         N/A
Wait Start TickCount      78494          Ticks: 714 (0:00:00:11.138)
Context Switch Count      232083         IdealProcessor: 4                 LargeStack
UserTime                  00:00:44.990
KernelTime                00:00:09.032
Win32 Start Address 0x0000000000288c9e
Stack Init fffff8800b922d70 Current fffff8800b922a60
Base [COLOR=#008000][I][B]fffff8800b923000[/B][/I][/COLOR] Limit [COLOR=#800080][I][B]fffff8800b91a000[/B][/I][/COLOR] Call 0
Priority 9 BasePriority 8 UnusualBoost 0 ForegroundBoost 0 IoPriority 2 PagePriority 5
Child-SP          RetAddr           : Args to Child                                                           : Call Site
00000000`00000000 00000000`00000000 : 00000000`00000000 00000000`00000000 00000000`00000000 00000000`00000000 : 0x0

^^ We'll be using the base & limit addresses to dump the raw stack:

(For convenience purposes, I cut the stack to the important part because the entire raw stack is really large. Even after cutting it, it's still really large...)

Code:
fffff880`0b920988  fffff880`0fef3a11*** ERROR: Symbol file could not be found.  Defaulted to export symbols for nvlddmkm.sys - 
 nvlddmkm+0xbda11
fffff880`0b920990  fffffa80`0fab3460
fffff880`0b920998  fffff880`06d92095 dxgmms1!VidSchiUpdateContextRunningTimeAtISR+0x45
fffff880`0b9209a0  00000000`0035ce39
fffff880`0b9209a8  fffffa80`0e47c000
fffff880`0b9209b0  00000000`00000000
fffff880`0b9209b8  00000000`00000005
fffff880`0b9209c0  fffffa80`0fab3460
fffff880`0b9209c8  00000000`0000e323
fffff880`0b9209d0  fffffa80`0e47d1a0
fffff880`0b9209d8  fffff880`06d8e66b dxgmms1!VidSchiProcessIsrCompletedPacket+0x1eb
fffff880`0b9209e0  fffffa80`0e47d1a0
fffff880`0b9209e8  fffffa80`0e44a410
fffff880`0b9209f0  fffffa80`0e47c000
fffff880`0b9209f8  fffffa80`0e47c000
fffff880`0b920a00  00000000`00000000
fffff880`0b920a08  00000000`00000000
fffff880`0b920a10  fffffa80`0e47d1a0
fffff880`0b920a18  00000000`00000000
fffff880`0b920a20  fffffa80`0fab3460
fffff880`0b920a28  00000000`00001661
fffff880`0b920a30  00000000`0000c350
fffff880`0b920a38  00000000`00400120
fffff880`0b920a40  00000000`0000e323
fffff880`0b920a48  00000000`00000001
fffff880`0b920a50  00000000`00000000
fffff880`0b920a58  00000000`00000000
fffff880`0b920a60  fffffa80`0e44a410
fffff880`0b920a68  fffff880`06d8e172 dxgmms1!VidSchDdiNotifyInterruptWorker+0x1ea
fffff880`0b920a70  fffffa80`0ebbd9c0
fffff880`0b920a78  fffff880`06d92095 dxgmms1!VidSchiUpdateContextRunningTimeAtISR+0x45
fffff880`0b920a80  00000000`0035ce39
fffff880`0b920a88  fffffa80`0e47e000
fffff880`0b920a90  00000000`00000000
fffff880`0b920a98  00000000`00000006
fffff880`0b920aa0  fffffa80`0ebbd9c0
fffff880`0b920aa8  00000000`00006ed6
fffff880`0b920ab0  fffffa80`0e47f5b0
fffff880`0b920ab8  fffff880`06d8e66b dxgmms1!VidSchiProcessIsrCompletedPacket+0x1eb
fffff880`0b920ac0  fffffa80`0e47f5b0
fffff880`0b920ac8  fffffa80`0e44a410
fffff880`0b920ad0  fffffa80`0e47e000
fffff880`0b920ad8  fffffa80`0e47e000
fffff880`0b920ae0  00000000`00000000
fffff880`0b920ae8  00000000`00000000
fffff880`0b920af0  fffffa80`0e47f5b0
fffff880`0b920af8  00000000`00000000
fffff880`0b920b00  fffffa80`0ebbd9c0
fffff880`0b920b08  00000000`0000071a
fffff880`0b920b10  00000000`000124f8
fffff880`0b920b18  00000000`00400120
fffff880`0b920b20  00000000`00006ed6
fffff880`0b920b28  00000000`00000001
fffff880`0b920b30  00000000`00000001
fffff880`0b920b38  00000000`00000000
fffff880`0b920b40  fffffa80`0e44a410
fffff880`0b920b48  fffff880`06d8e172 dxgmms1!VidSchDdiNotifyInterruptWorker+0x1ea
fffff880`0b920b50  fffffa80`0e47e000
fffff880`0b920b58  00000000`00000000
fffff880`0b920b60  fffffa80`00000001
fffff880`0b920b68  fffff880`0b920e00
fffff880`0b920b70  fffff880`0b920ba0
fffff880`0b920b78  00000000`00000005
fffff880`0b920b80  00000000`00000000
fffff880`0b920b88  00000000`00000001
fffff880`0b920b90  fffff880`0b920e00
fffff880`0b920b98  fffff880`06d8df76 dxgmms1!VidSchDdiNotifyInterrupt+0x9e
fffff880`0b920ba0  fffffa80`00006ed6
fffff880`0b920ba8  00000000`00000000
fffff880`0b920bb0  fffffa80`0e472000
fffff880`0b920bb8  fffffa80`0ebc2010
fffff880`0b920bc0  fffff880`0b920e00
fffff880`0b920bc8  fffff880`06c9513f dxgkrnl!DxgNotifyInterruptCB+0x83
fffff880`0b920bd0  00000000`00006ed6
fffff880`0b920bd8  00000000`00000000
fffff880`0b920be0  00000000`00000001
fffff880`0b920be8  00000000`00000000
fffff880`0b920bf0  fffff880`0b920c80
fffff880`0b920bf8  fffff880`0fef37c9 nvlddmkm+0xbd7c9
fffff880`0b920c00  fffff880`0b920e00
fffff880`0b920c08  fffffa80`0ebc2010
fffff880`0b920c10  fffffa80`0d906000
fffff880`0b920c18  00000000`00000000
fffff880`0b920c20  fffff880`0fef376f nvlddmkm+0xbd76f
fffff880`0b920c28  fffffa80`0d906000
fffff880`0b920c30  00000000`00000000
fffff880`0b920c38  00000000`00000000
fffff880`0b920c40  00000000`00000000
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fffff880`0b920ee0  fffffa80`0e47c000
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fffff880`0b920f00  fffff880`0b920f30
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fffff880`0b920f80  fffff880`0b921010
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fffff880`0b9210c0  fffffa80`0e24e4b8
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fffff880`0b9211b0  fffff880`0b9211e0
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fffff880`0b9211c0  fffffa80`0d367920
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fffff880`0b921220  fffff880`0b921260
fffff880`0b921228  fffff880`0ff2bcb1 nvlddmkm+0xf5cb1
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fffff880`0b921260  fffff880`0b9212e0
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fffff880`0b921270  fffffa80`0e246000
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fffff880`0b921298  fffff800`032861a2 nt!SwapContext_PatchXSave+0x9f
fffff880`0b9212a0  00000000`00000006
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fffff880`0b9212b0  fffffa80`0eed3530
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fffff880`0b9212c0  fffff880`0b9225f4
fffff880`0b9212c8  00000000`00000001
fffff880`0b9212d0  fffff880`0b9214a0
fffff880`0b9212d8  fffff800`03285fef nt!KxDispatchInterrupt+0x12f
fffff880`0b9212e0  fffff880`030f9180
fffff880`0b9212e8  fffffa80`0fae1960
fffff880`0b9212f0  fffffa80`0eed3530
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fffff880`0b921300  fffff880`0b9225f4
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fffff880`0b921348  fffff880`0b921740
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fffff880`0b921358  fffff880`0b9213b0
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fffff880`0b921368  00000000`00000000
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fffff880`0b921378  fffff800`0328ce18 nt!KeUpdateRunTime+0xb8
fffff880`0b921380  00000000`00000000
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fffff880`0b921390  00000000`00002710
fffff880`0b921398  fffff800`032cb701 nt!KiDpcInterrupt+0x171
fffff880`0b9213a0  fffff800`0328cbac nt!KiSecondaryClockInterrupt+0x13c
fffff880`0b9213a8  00000000`00000011
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fffff880`0b9213c8  00000000`00000000
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fffff880`0b9213d8  00001f80`009200c8
fffff880`0b9213e0  fffffa80`0fb713e4
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fffff880`0b9213f8  fffff880`0b921ca0
fffff880`0b921400  fffff880`0b921740
fffff880`0b921408  fffffa80`10264e90
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fffff880`0b921418  fffff880`0b921470
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fffff880`0b921480  00000000`00002711
fffff880`0b921488  00000000`00000000
fffff880`0b921490  fffff800`0328cbac nt!KiSecondaryClockInterrupt+0x13c
fffff880`0b921498  00000000`00000011
fffff880`0b9214a0  00000000`00000001
fffff880`0b9214a8  fffff880`0b921520
fffff880`0b9214b0  fffff880`0b921b80
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fffff880`0b9214d0  fffffa80`0d906000
fffff880`0b9214d8  fffffa80`0d914bd0
fffff880`0b9214e0  fffffa80`0fb78930
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fffff880`0b921510  00000000`443d4000
fffff880`0b921518  fffff880`0ff6d1da nvlddmkm+0x1371da
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fffff880`0b921538  fffff800`032861a2 nt!SwapContext_PatchXSave+0x9f
fffff880`0b921540  fffff880`0b921680
fffff880`0b921548  fffff880`0ff6c549 nvlddmkm+0x136549
fffff880`0b921550  fffffa80`1009f490
fffff880`0b921558  fffff880`0b921b80
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fffff880`0b9215a8  00000365`00000780
fffff880`0b9215b0  fffffa80`1009f480
fffff880`0b9215b8  fffff800`033b32dd nt!ExFreePoolWithTag+0x22d
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fffff880`0b9215f8  00000001`00000000
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fffff880`0b921640  fffff880`0b9225f4
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fffff880`0b921668  fffff880`0ff0004b nvlddmkm+0xca04b
fffff880`0b921670  00000000`00000001
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fffff880`0b921688  fffff880`0ff6454b nvlddmkm+0x12e54b
fffff880`0b921690  fffff880`0b9216c0
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fffff880`0b9216a0  00000000`00000001
fffff880`0b9216a8  fffff880`0b9217e0
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fffff880`0b9216c0  fffff880`0b921aa0
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fffff880`0b9216d0  00000000`00000001
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fffff880`0b922650  00000000`00000000
fffff880`0b922658  00000000`00000000
fffff880`0b922660  00000000`00000002
fffff880`0b922668  00000000`4e564458
fffff880`0b922670  00000000`00000234
fffff880`0b922678  00000000`00000003
fffff880`0b922680  00000000`00000000
fffff880`0b922688  fffff800`03285dda nt!KiSwapContext+0x7a
fffff880`0b922690  00000000`00000001
fffff880`0b922698  fffff880`0fec88bd nvlddmkm+0x928bd
fffff880`0b9226a0  fffff880`1045e028 nvlddmkm+0x628028
fffff880`0b9226a8  00000000`00000000
fffff880`0b9226b0  fffff880`1060f2c0 nvlddmkm+0x7d92c0
fffff880`0b9226b8  00010002`4e564441
fffff880`0b9226c0  4e564458`00000234
fffff880`0b9226c8  00000000`0200000d
fffff880`0b9226d0  00000000`00000000
fffff880`0b9226d8  00000000`00000000
fffff880`0b9226e0  fffff8a0`0a0ad6b0
fffff880`0b9226e8  ffffd319`264d8422
fffff880`0b9226f0  00000000`75662450
fffff880`0b9226f8  fffffa80`0faa8010
fffff880`0b922700  00000000`75662450
fffff880`0b922708  fffffa80`0faa8010
fffff880`0b922710  00000000`00000000
fffff880`0b922718  fffff8a0`0bfcb440
fffff880`0b922720  fffff880`0b9227f0
fffff880`0b922728  fffff880`108972df nvlddmkm!nvDumpConfig+0x253737
fffff880`0b922730  00000000`00000000
fffff880`0b922738  fffffa80`0d906000
fffff880`0b922740  fffff880`0b922910
fffff880`0b922748  00000000`00000000
fffff880`0b922750  fffff880`10897238 nvlddmkm!nvDumpConfig+0x253690
fffff880`0b922758  fffffa80`0d906000
fffff880`0b922760  fffffa80`0faa8010
fffff880`0b922768  fffff800`032861a2 nt!SwapContext_PatchXSave+0x9f
fffff880`0b922770  fffffa80`00000004
fffff880`0b922778  00000000`00000000
fffff880`0b922780  fffff8a0`0bfcb440
fffff880`0b922788  00000000`00000001
fffff880`0b922790  fffff880`0b922c60
fffff880`0b922798  fffff880`06cbf900 dxgkrnl!DXGADAPTER::ReleaseCoreResource+0x140
fffff880`0b9227a0  fffffa80`0d851060
fffff880`0b9227a8  fffff800`03285dda nt!KiSwapContext+0x7a
fffff880`0b9227b0  fffffa80`0e472000
fffff880`0b9227b8  00000000`00000000
fffff880`0b9227c0  00000000`00000003
fffff880`0b9227c8  fffff880`06c94333 dxgkrnl!COREACCESS::Release+0x6f
fffff880`0b9227d0  00000000`000007ff
fffff880`0b9227d8  fffff880`0b9228d8
fffff880`0b9227e0  00000000`00000000
fffff880`0b9227e8  00000000`00000000
fffff880`0b9227f0  00000000`00000000
fffff880`0b9227f8  00000000`00000000
fffff880`0b922800  00000000`00000000
fffff880`0b922808  00000000`00000000
fffff880`0b922810  00000000`00000000
fffff880`0b922818  00000000`00000000
fffff880`0b922820  00000000`00000000
fffff880`0b922828  00000000`00000000
fffff880`0b922830  00000000`00000000
fffff880`0b922838  00000000`00000000
fffff880`0b922840  00000000`00000000
fffff880`0b922848  00000000`00000000
fffff880`0b922850  00000000`00000000
fffff880`0b922858  00000000`00000000
fffff880`0b922860  00000000`00000000
fffff880`0b922868  00000000`00000000
fffff880`0b922870  00000000`00000000
fffff880`0b922878  00000000`00000000
fffff880`0b922880  00000000`00000000
fffff880`0b922888  00000000`000afd20
fffff880`0b922890  00000000`00003000
fffff880`0b922898  00000000`00000001
fffff880`0b9228a0  fffff880`0b922c60
fffff880`0b9228a8  fffff880`06cbf906 dxgkrnl!DXGADAPTER::ReleaseCoreResource+0x146
fffff880`0b9228b0  00000000`00000000
fffff880`0b9228b8  00000000`75662450
fffff880`0b9228c0  fffffa80`0e472000
fffff880`0b9228c8  00000000`00000000
fffff880`0b9228d0  00000000`00000002
fffff880`0b9228d8  fffff880`06c94333 dxgkrnl!COREACCESS::Release+0x6f
fffff880`0b9228e0  00000000`00000000
fffff880`0b9228e8  fffff880`06d8bee3 dxgmms1!DXGFASTMUTEX::Acquire+0x13
fffff880`0b9228f0  00000000`00000002
fffff880`0b9228f8  00000000`75662450
fffff880`0b922900  fffff8a0`0a0ad6b0
fffff880`0b922908  fffff880`06c9507f dxgkrnl!DXGPROCESSMUTEX::~DXGPROCESSMUTEX+0xf
fffff880`0b922910  00000000`00000000
fffff880`0b922918  fffff8a0`09a98630
fffff880`0b922920  fffffa80`0fbfccf0
fffff880`0b922928  fffff880`06da9879 dxgmms1!VIDMM_GLOBAL::UpdateFence+0x15
fffff880`0b922930  00000000`00000000
fffff880`0b922938  fffffa80`0e48d000
fffff880`0b922940  fffff8a0`0a0ad6b0
fffff880`0b922948  fffff8a0`0a0ad6b0
fffff880`0b922950  fffffa80`0e48d000
fffff880`0b922958  fffff880`06da2d2c dxgmms1!VIDMM_GLOBAL::BeginCPUAccess+0xe98
fffff880`0b922960  fffffa80`0d7e5a40
fffff880`0b922968  00000000`00000000
fffff880`0b922970  00000000`00000000
fffff880`0b922978  00000000`00003000
fffff880`0b922980  fffff8a0`09a98630
fffff880`0b922988  00000000`00000000
fffff880`0b922990  fffffa80`00000000
fffff880`0b922998  00000000`00000000
fffff880`0b9229a0  fffff8a0`0a2a3ae0
fffff880`0b9229a8  00000000`000007dd
fffff880`0b9229b0  00000000`00000001
fffff880`0b9229b8  00000000`00000000
fffff880`0b9229c0  fffffa80`0e472000
fffff880`0b9229c8  fffff800`03285d00 nt!SepAccessCheck+0x4f0
fffff880`0b9229d0  fffff8a0`0a0a6000
fffff880`0b9229d8  00000000`022b0000
fffff880`0b9229e0  00000000`02290000
fffff880`0b9229e8  fffff8a0`0a0a6000
fffff880`0b9229f0  00000000`75662450
fffff880`0b9229f8  00000000`000ae7e0
fffff880`0b922a00  00000000`000afd20
fffff880`0b922a08  fffff8a0`0a251c50
fffff880`0b922a10  00000000`00000000
fffff880`0b922a18  fffff880`0b922b28
fffff880`0b922a20  00000000`000ae7e0
fffff880`0b922a28  00000000`000afd20
fffff880`0b922a30  00000000`000ade60
fffff880`0b922a38  00000000`00000001
fffff880`0b922a40  fffff880`0b922b50
fffff880`0b922a48  00000000`00000000
fffff880`0b922a50  00000000`00000003
fffff880`0b922a58  fffff880`06d8827f dxgmms1!VidMmEndCPUAccess+0x13
fffff880`0b922a60  fffffa80`0e472000
fffff880`0b922a68  fffffa80`0d851060
fffff880`0b922a70  00000000`000ae7e0
fffff880`0b922a78  00000000`40001bc0
fffff880`0b922a80  fffff8a0`09a98630
fffff880`0b922a88  00000000`00000001
fffff880`0b922a90  fffff880`0b922c60
fffff880`0b922a98  fffff880`06cbf906 dxgkrnl!DXGADAPTER::ReleaseCoreResource+0x146
fffff880`0b922aa0  00000000`000007dc
fffff880`0b922aa8  00000000`75662450
fffff880`0b922ab0  fffffa80`0e472000
fffff880`0b922ab8  00000000`000007dc
fffff880`0b922ac0  00000000`00000000
fffff880`0b922ac8  fffff880`06c94333 dxgkrnl!COREACCESS::Release+0x6f
fffff880`0b922ad0  40004d80`00000001
fffff880`0b922ad8  fffff880`0b922b78
fffff880`0b922ae0  fffff8a0`0a212ad0
fffff880`0b922ae8  fffff880`06c9407b dxgkrnl!COREACCESS::AcquireShared+0xfb
fffff880`0b922af0  fffffa80`0d851060
fffff880`0b922af8  fffff880`06c9507f dxgkrnl!DXGPROCESSMUTEX::~DXGPROCESSMUTEX+0xf
fffff880`0b922b00  00000000`000ae7e0
fffff880`0b922b08  00000000`40001bc0
fffff880`0b922b10  fffff8a0`09a98630
fffff880`0b922b18  00000000`000007dc
fffff880`0b922b20  00000000`000007dc
fffff880`0b922b28  fffff880`06cf26ab dxgkrnl!DxgkUnlock+0x1fb

Okay, so from that raw stack, we can see quite a few DirectX Kernel & MMS calls, as well as nVidia driver calls as well. This is good news, as this may be our problem (it gives us a good start as far as troubleshooting goes).



Let's check Processor #5:

Code:
5: kd> kv
Child-SP          RetAddr           : Args to Child                                                           : Call Site
00000000`00000000 00000000`00000000 : 00000000`00000000 00000000`00000000 00000000`00000000 00000000`00000000 : 0x0

Code:
5: kd> u @rip
00000000`00000000 ??              ???
            ^ Memory access error in 'u @rip'

Looks like it was too hung at the time of the crash to report any information.





Let's check Processor #6:

Code:
6: kd> kv
Child-SP          RetAddr           : Args to Child                                                           : Call Site
fffff880`03121c58 fffff800`0328da3a : 00000000`0035ce39 fffffa80`0d16d378 fffff880`030f9180 00000000`00000000 : intelppm!MWaitIdle+0x19
fffff880`03121c60 fffff800`032886cc : fffff880`030f9180 fffff880`00000000 00000000`00000000 fffff880`00000000 : nt!PoIdle+0x53a
fffff880`03121d40 00000000`00000000 : fffff880`03122000 00000000`00000000 00000000`00000000 00000000`00000000 : nt!KiIdleLoop+0x2c

^^ Same as processors #1 and #2.




Finally, let's check Processor #7:

Code:
7: kd> kv
Child-SP          RetAddr           : Args to Child                                                           : Call Site
fffff880`07a19930 fffff800`032c1c4a : 00000000`00000000 00000000`2d6c0fff fffffa80`00000000 fffffa80`00000000 : nt!MiDeleteVirtualAddresses+0x7d8
fffff880`07a19af0 fffff800`0327f153 : ffffffff`ffffffff 00000000`2174e6d0 00000000`2174e6c8 00000000`00008000 : nt!NtFreeVirtualMemory+0x5ca
fffff880`07a19be0 00000000`77a3009a : 00000000`00000000 00000000`00000000 00000000`00000000 00000000`00000000 : nt!KiSystemServiceCopyEnd+0x13 (TrapFrame @ [COLOR=#ff0000][I][B]fffff880`07a19be0[/B][/I][/COLOR])
00000000`2174e698 00000000`00000000 : 00000000`00000000 00000000`00000000 00000000`00000000 00000000`00000000 : 0x77a3009a

Code:
7: kd> .trap fffff880`07a19be0
NOTE: The trap frame does not contain all registers.
Some register values may be zeroed or incorrect.
rax=0000000000000000 rbx=0000000000000000 rcx=0000000000000000
rdx=0000000000000000 rsi=0000000000000000 rdi=0000000000000000
rip=0000000077a3009a rsp=000000002174e698 rbp=0000000017a8f904
 r8=0000000000000000  r9=0000000000000000 r10=0000000000000000
r11=0000000000000000 r12=0000000000000000 r13=0000000000000000
r14=0000000000000000 r15=0000000000000000
iopl=0         nv up ei pl nz na po nc

Code:
7: kd> u @rip
00000000`77a3009a ??              ???
            ^ Memory access error in 'u @rip'

Cannot seem to go too far into processor #7, but it seemed to be doing virtual memory related things.




This looks like a harware issue, either related to your video card, RAM, or CPU itself. I'd like to say it's also possible for it to be a video driver causing corruption, we shall see.

-- Update to Service Pack 1 ASAP: Learn how to install Windows 7 Service Pack 1 (SP1)

1. Ensure you have the latest video card drivers. If you are already on the latest video card drivers, uninstall and install a version or a few versions behind the latest to ensure it's not a latest driver only issue. If you have already experimented with the latest video card driver and many previous versions, please give the beta driver for your card a try.

2. In your loaded drivers list, dtsoftbus01.sys is listed which is the Daemon Tools driver. Daemon Tools is a very popular cause of BSOD's in 7/8 based systems. Please uninstall Daemon Tools. Alternative imaging programs are: MagicISO, Power ISO, etc.

3. If the above three fail, you'll want to uninstall the video card drivers, shut down, and then physically remove the video card. At this point, you'd then either (if you have it) use integrated graphics from your motherboard, or use a temporary secondary video card, install the drivers, and monitor the system's behavior. If you still crash using integrated graphics and/or a secondary GPU + different drivers (obviously for the integrated or secondary GPU), then it's not a video card issue.

4. Run Memtest for NO LESS than ~8 passes (several hours):

Memtest86+:

Download Memtest86+ here:

Memtest86+ - Advanced Memory Diagnostic Tool

Which should I download?

You can either download the pre-compiled ISO that you would burn to a CD and then boot from the CD, or you can download the auto-installer for the USB key. What this will do is format your USB drive, make it a bootable device, and then install the necessary files. Both do the same job, it's just up to you which you choose, or which you have available (whether it's CD or USB).

How Memtest works:

Memtest86 writes a series of test patterns to most memory addresses, reads back the data written, and compares it for errors.

The default pass does 9 different tests, varying in access patterns and test data. A tenth test, bit fade, is selectable from the menu. It writes all memory with zeroes, then sleeps for 90 minutes before checking to see if bits have changed (perhaps because of refresh problems). This is repeated with all ones for a total time of 3 hours per pass.

Many chipsets can report RAM speeds and timings via SPD (Serial Presence Detect) or EPP (Enhanced Performance Profiles), and some even support changing the expected memory speed. If the expected memory speed is overclocked, Memtest86 can test that memory performance is error-free with these faster settings.

Some hardware is able to report the "PAT status" (PAT: enabled or PAT: disabled). This is a reference to Intel Performance acceleration technology; there may be BIOS settings which affect this aspect of memory timing.

This information, if available to the program, can be displayed via a menu option.

Any other questions, they can most likely be answered by reading this great guide here:

FAQ : please read before posting

5. If your memory returns with no errors, ensure your BIOS is up to date.

6. Clear your CMOS (or load optimized BIOS defaults) to ensure there's no improper BIOS setting - How To Clear CMOS (Reset BIOS)

7. If all of the above fail, the only left to do is replace your processor as it is faulty.

Regards,

Patrick
 
The kernel you've attached is a *101 bug check as we've seen above, did you upload the correct one? If so, it may not have generated a dump regarding the *9F you may have seen.

In the meantime, I'd go ahead and work through the list of recommendations I've given.

Regards,

Patrick
 

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