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From the disassembly code below can I assume that the location 43E010 is a location of the variable that holds the string (as in the comment in the assembly code):

Disassembly:

...
push    offset loc_43E010
...
push    offset aAllYourBaseAre ; "all your base are belong to us"
...
.rdata:00446074 aAllYourBaseAre db 'all your base are belong to us',0

This is a disassembly code from a Win32 application that looks like this:

class Foo {
public: 
    string mystring;    
    __declspec(dllexport) void foo();
};

void Foo::foo(){

    printf("foo called");

}

int _tmain(int argc, _TCHAR* argv[])
{
    Foo foo;
    foo.mystring =  "all your base are belong to us";

    return 0;
}

Does this instruction: push offset loc_43E010 shows that address 43E010 is a offset from the base image of the win32 executable and that its a variable location?

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2  
What is the question? –  Igor Skochinsky Jun 22 '12 at 12:16
    
Does this instruction: "push offset loc_43E010" mean that 43E010 is a variable offset? –  xybrek Jun 22 '12 at 15:42
2  
It is the offset of something. There is not enough information to know exactly what it is the offset of. –  Raymond Chen Jun 22 '12 at 18:05

1 Answer 1

up vote 1 down vote accepted

I'll invoke my psychic powers (hi Raymond!) and will make a wild guess that you're seeing something like this:

push    ebp
mov     ebp, esp
push    0FFFFFFFFh
push    offset loc_43E010
mov     eax, large fs:0
push    eax
...
mov     large fs:0, eax

This is a typical prolog of a function that uses exception handling. In your case, even though there are no try/catch statements, there is a local variable with a non-trivial destructor, which needs to be called in case there is an exception being propagated. The loc_43E010 is a label for the exception handler for the function.

So, the answer is: no, it's not a "variable location".

To learn more about exceptions in Win32 (SEH and C++), check my OpenRCE article.

share|improve this answer
    
I see, if this is the case, what is the pattern for a variable assignment, to say a DWORD or std::string variable? BTW, since I think you're an expert on this kind of subject you may want to help me with this also: stackoverflow.com/questions/11194837/function-address Cheers. –  xybrek Jun 25 '12 at 18:51
    
Briefly, an integer assignment will be a mov while a std::string assignment will be a call of std::strings::operator=(). I suggest you to read this book, it has a long appendix on recovering compiled code. –  Igor Skochinsky Jun 25 '12 at 19:23

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