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I were asked to analyze an assembly code, which was generated from following c++ code in Visual studio IDE:

here is c++ code:

    int plus(int a,int b);

int main()
{
    cout<<plus(2,4);
    getchar();
    return 0;
}

int plus(int a,int b)
{
    static int t=2;
    return a+b+t;
}

And here is the assembly code (the reduced form):

_main   PROC                        ; COMDAT

; 8    : {

    push    ebp
    mov ebp, esp
    sub esp, 192                ; 000000c0H
    push    ebx
    push    esi
    push    edi
    lea edi, DWORD PTR [ebp-192]
    mov ecx, 48                 ; 00000030H
    mov eax, -858993460             ; ccccccccH
    rep stosd

; 9    :    cout<<plus(2,4);

    push    4
    push    2
    call    ?plus@@YAHHH@Z              ; plus
    add esp, 8
    mov esi, esp
    push    eax
    mov ecx, DWORD PTR __imp_?cout@std@@3V?$basic_ostream@DU?$char_traits@D@std@@@1@A
    call    DWORD PTR __imp_??6?$basic_ostream@DU?$char_traits@D@std@@@std@@QAEAAV01@H@Z
    cmp esi, esp
    call    __RTC_CheckEsp

; 10   :    getchar();

    mov esi, esp
    call    DWORD PTR __imp__getchar
    cmp esi, esp
    call    __RTC_CheckEsp

; 11   :    return 0;

    xor eax, eax

; 12   : }

    pop edi
    pop esi
    pop ebx
    add esp, 192                ; 000000c0H
    cmp ebp, esp
    call    __RTC_CheckEsp
    mov esp, ebp
    pop ebp
    ret 0
_main   ENDP
; Function compile flags: /Odtp /RTCsu /ZI
_TEXT   ENDS
;   COMDAT ?plus@@YAHHH@Z
_TEXT   SEGMENT
_a$ = 8                         ; size = 4
_b$ = 12                        ; size = 4
?plus@@YAHHH@Z PROC                 ; plus, COMDAT

; 15   : {

    push    ebp
    mov ebp, esp
    sub esp, 192                ; 000000c0H
    push    ebx
    push    esi
    push    edi
    lea edi, DWORD PTR [ebp-192]
    mov ecx, 48                 ; 00000030H
    mov eax, -858993460             ; ccccccccH
    rep stosd

; 16   :    static int t=2;
; 17   :    return a+b+t;

    mov eax, DWORD PTR _a$[ebp]
    add eax, DWORD PTR _b$[ebp]
    add eax, DWORD PTR ?t@?1??plus@@YAHHH@Z@4HA

; 18   : }

    pop edi
    pop esi
    pop ebx
    mov esp, ebp
    pop ebp
    ret 0
?plus@@YAHHH@Z ENDP                 ; plus
_TEXT   ENDS
END

I have to find how does the code deal with stack and how variables stored and retrieved? Regards.

share|improve this question

closed as unclear what you're asking by interjay, Flow, Jeremy Smyth, glts, Shafik Yaghmour Sep 15 '13 at 14:04

Please clarify your specific problem or add additional details to highlight exactly what you need. As it's currently written, it’s hard to tell exactly what you're asking. See the How to Ask page for help clarifying this question.If this question can be reworded to fit the rules in the help center, please edit the question.

1  
The code is self explanatory . Do you have some specific questions ? –  Madhur Ahuja Dec 4 '10 at 13:45
    
i want to know where the parameters a and b and also static int t stored. cant find them. –  persian Dev Dec 4 '10 at 14:02
2  
a and b are stored on stack. since those are parameters, you can see them being accessed here using ebp pointer: mov eax, DWORD PTR _a$[ebp] add eax, DWORD PTR _b$[ebp] t is directly specified as a constant in this instruction: add eax, DWORD PTR ?t@?1??plus@@YAHHH@Z@4H –  Madhur Ahuja Dec 4 '10 at 14:15
    
and how about static int t and how does the control returns from plus method ? –  persian Dev Dec 4 '10 at 14:23
2  
t is a constant, I have already shown in my above reply. the two consecutive add instructions are adding a+b+t and storing result in eax instruction. "ret 0" is return instruction from plus method. –  Madhur Ahuja Dec 4 '10 at 14:37
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2 Answers

up vote 1 down vote accepted

Here is the complete tutorial: http://www.codeproject.com/KB/cpp/reversedisasm.aspx

Please ask a specific question if you have ? Your original question is too broad.

share|improve this answer
    
finding the location of parameters and how does the control back from plus method are my main questions. –  persian Dev Dec 4 '10 at 14:03
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push 4

push 2

call ?plus@@YAHHH@Z

This pushes the values 4 and 2 onto the stack (reverse order to how you'd think of them in C, remember 2 is now on top of 4), then calls plus.

mov eax, DWORD PTR _a$[ebp]

add eax, DWORD PTR _b$[ebp]

add eax, DWORD PTR ?t@?1??plus@@YAHHH@Z@4HA

pop edi

pop esi

pop ebx

mov esp, ebp

pop ebp

ret 0

I've ignored some stack fiddling at the top of plus, but this moves a from the stack into eax, adds b to it (which it gets from the stack) then adds t to it (I'm not familiar with MASM at all so I'm not actually sure where it gets t from). You can see the stack offsets of a and b have been stored into _a and _b as 8 and 12 further up the code. This is performed in %eax because this is where you stick the first return value of a function. There's some stack clearing and then the usual function epilogue before returning. The main code then pushes %eax onto the stack and calls the iostream stuff, which will pop it off and output it to screen.

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