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I'm trying to increase a number value by using an inline assembly in C++. The reason that I do it that way is to practice my "inline assembly" skills.

Well that's what I've done so far:

void main()
{
    int x;
    cout << "Please enter a number ";
    cin >> x;
    cout << "The number you entered is: " << x << "\n";
    foo(&x);
    cout << "The new number is: " << x;
    cin >> x;
}

void foo(int *x) 
{
    __asm
    {
        inc [x]
    };
}

And the value never changed.

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What compiler are you using? MSVC? –  Cameron Mar 10 '13 at 22:17
    
Microsoft Visual Studio 2012 –  Imri Persiado Mar 10 '13 at 22:18
5  
You may want to disassemble the compiled code and see if it does what you expect. I've seen this sort of thing go wrong due to too little or too much indirection. You may be incrementing x rather than *x. –  Mats Petersson Mar 10 '13 at 22:19
    
Shot in the dark, but does inc DWORD PTR [x] work? –  Cameron Mar 10 '13 at 22:23
2  
@ImriPersiado cl /Fa filename.cpp will generate filename.asm which contains the assembly language listing. –  Nik Bougalis Mar 10 '13 at 22:30

3 Answers 3

up vote 7 down vote accepted

You are incrementing the value of x, actually. X in terms of assembly language is a constant containing the address of x variable (of function foo). Which, in turn, contains the address of main's x. So, inc [x] causes an increment of the pointer. You need to increment the value stored at the address [x], like inc [[x]]. Of course you can not do it in one instruction in assembly language since you need two memory accesses: to know where the value is stored and to actually increment the value. So I'd advise a code like this:

push eax
mov eax, [x]
inc dword ptr [eax]
pop eax
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Thank you! Out of curiosity I tried a different way based on your words: mov eax,x; mov ebx,[eax]; inc [ebx] and I faild, the value stays the same. –  Imri Persiado Mar 10 '13 at 22:46
1  
This is MSVC help to you. It automagically translates mov eax, x to the move of variable value. So, technically, you can replace the second line of my code with mov eax, x. In fact, this x for MSVC is just an index in stack frame. In pure assembly language you'd have to write mov eax, [ebp + 8] since x is the first stack variable. And in case you use fastcall calling convention, you'd write inc [eax], just like that. –  Aneri Mar 10 '13 at 22:56

Maybe it's useful to know how Visual C++ increments the value of an int-pointer:

void foo(*x)
{
  (*x)++;
}

In debug mode, it is translated to

(*x)++;
mov         eax,dword ptr [x] 
mov         ecx,dword ptr [eax] 
add         ecx,1 
mov         edx,dword ptr [x] 
mov         dword ptr [edx],ecx 

In release mode as same as Aneri's answer.

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x86 can only increment a register, not a memory, so you need move a pointer to a register. I ended with this:

__asm
{
    mov eax, x
    mov ebx, [eax]
    inc ebx
    mov [eax], ebx
};
share|improve this answer
5  
Huh? Nonsense. INC can operate on register or memory operands. –  Nik Bougalis Mar 10 '13 at 22:30
    
Well it works for me. –  Imri Persiado Mar 10 '13 at 22:30
    
That "works" because it adds an extra indirection. But inc [eax] would also work. –  Mats Petersson Mar 10 '13 at 22:32
3  
That the code "works" is irrelevant. I never said it didn't; indeed, I agree that the code he showed will do what he claims. What I meant is that it's nonsense that INC doesn't work on memory operands (aka pointers). negatory.com/ref/viewpage.php?key=inc –  Nik Bougalis Mar 10 '13 at 22:32
    
I should remember that inc [register] works. My bad –  Dmitry Galchinsky Mar 10 '13 at 22:39

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