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Maybe I have missed something about functions or something else? I use VS 2010. Here is my code:

#include <iostream>

void swap (int& a, int& b)
{
     __asm push a
     __asm push b
     __asm pop a
     __asm pop b
     std::cout << "Inline function check: a=" << a << " b=" << b << "\n\n";
}

void main()
{
    int arg1=1, arg2=9000;
    std::cout << "Before swap we have: a=" << arg1 << " b=" << arg2 << "\n\n";
    swap(arg1, arg2);
    std::cout << "After swap we have: a=" << arg1 << " b=" << arg2;
    std::cin.get();
}
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closed as not a real question by casperOne Feb 24 '12 at 17:26

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

2  
Can you show the output? –  Hunter McMillen Feb 23 '12 at 17:23
    
Before swap we have: a=1 b=9000 Inline function check: a=9000 b=1 After swap we have: a=1 b=9000 –  m9_psy Feb 23 '12 at 17:26
1  
I think as you passed by reference ( a pointer in reality) the assembler is using a as the pointer thus within swap you are swapping round the pointers (references), not the values. –  Dampsquid Feb 23 '12 at 17:28
    
So pointer is adress and i think that i swapped adreeses of my values. And in functions body we can see that swap is successful, but in main some fail. Oh im sorry, my english bad today. –  m9_psy Feb 23 '12 at 17:31
    
it appears to work in the function because the pointers are swapped so a now points to b and visa versa, so the debug u have in c++ now appears to show the corrent answer. –  Dampsquid Feb 23 '12 at 17:35
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2 Answers

up vote 3 down vote accepted

When you pass by reference with Visual Studio, the compiler passes the address of the referenced variable. Your swap is actually swapping the addresses that were passed to the swap function; it's not actually swapping the contents.

In order to swap the contents, you would need to dereference the pointers. Unfortunately, the compiler won't allow you to do this directly, so you'll have to use registers.

Here is a short example. This is just a demonstration; swapping the two variables can be done with far fewer instructions if you access the stack directly, instead of using a and b. It's important to note that memory can only be modified by using a register.

void swap(int& a, int& b) {
__asm {
    // Preserve our registers
    push eax 
    push ebx 
    push ecx 
    push edx 
    // Store the address of a in eax and b in ebx
    mov eax, a
    mov ebx, b
    // Store the value of a in ecx and b in edx
    mov ecx, [eax]
    mov edx, [ebx]
    // Swap the values pointed to by a and b
    mov [eax], edx
    mov [ebx], ecx
    // Restore the registers
    pop edx
    pop ecx
    pop ebx
    pop eax
}
}
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So i've used registers. But it still doesnt work. Values swap in function but inside no any effect. I have a sense, that i have big hole in understanding how c++ is working. –  m9_psy Feb 23 '12 at 17:51
    
Inline assembler should be avoided. The compiler doesn't have to meet any sort of standards, so it can do whatever it wants with your instructions. I've added an example. –  dauphic Feb 23 '12 at 18:02
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The inline assembly doesn't know about references, so you are swapping the parameters but not their values.

References are generally implemented as pointers, in which case you swap the pointers, not the values.

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Now i am fully confused. I've rewrite my function, but it dont work: void swap (int* a, int* b) { int c=*a, d=*b; __asm push c __asm push d __asm pop c __asm pop d a=&c; b=&d; std::cout << "Inline function check: a=" << *a << " b=" << *b << "\n\n"; } –  m9_psy Feb 23 '12 at 17:45
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