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Could someone help explain this code to me?

.text:00401270 ; int __cdecl main(int argc,const char **argv,const char *envp)
.text:00401270 Dst = byte ptr −80h

...More Code...

.text:00401270 push ebp
.text:00401271 mov ebp, esp
.text:00401273 sub esp, 80h
.text:00401293 push 80h
.text:00401298 push 0
.text:0040129A lea eax, [ebp+Dst]
.text:0040129D push eax
.text:0040129E call _memset

I get that a buffer of size 0x80 is created and filled with the value 0 when _memset is called. However I do not understand the usage of the pointer [ebp+Dst]. Why is the base pointer (ebp) involved at all? Additionally, why is Dst set to a negative value?

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1 Answer 1

up vote 2 down vote accepted

it's ebp, not edp; it is being used to access the stack where esp pointed before the 80-byte buffer is placed on it. then Dst, -80, is added, which points to the start (low byte) of the buffer. there is no need to do it this way in assembly, these constructs are the compiler's rendition of the C code.

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Oops, meant to type ebp. Yeah, I kinda forgot the stack is built downward so the negative val makes sense and I should have just looked at sub esp, 80 and would have seen the buffer being allocated just below ebp. Thanks for making that clear. –  user1210446 Feb 15 '12 at 8:50

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