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So I've searched the interwebs for weeks and cannot find the answer to my questions.

I can see that the start symbol added by gcc sets up the initial two arguments (int argc, char *argv[]) and I believe the 3rd environment argument, but I have a couple questions about this. Why does it add all of this if the main() function is defined to have no arguments? Wouldn't it save space (and technically processing time) if it would just call _main without any arguments? Second what does push $0x0 do? I have done tests and if you try to iterate through the command line arguments like what the default start symbol does then you need push $0x0 at the beginning, otherwise I have created misaligned stack errors if I do something like the following:

push $0x00
call _main
mov %eax, %edi
call _exit

also in my investigations I have found that the start symbol is added by the linker when you link to crt1.10.6.o

Any explanations or documentation would be greatly appreciated

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1 Answer 1

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The code for _start, as you have found, comes from an object file named crt1.o or similar. That object file normally comes from source code that's part of the C library. It is compiled in ignorance of how you have declared your main function, and so it has to assume you wish to make use of all three potential arguments. It does no harm to set up the arguments even if main won't use them (other than a trivial amount of space and time, as you mention).

I deduce from mov %eax,%edi that this is the x86-64 ELF ABI, which means that there are no frame pointers, so the push $0x00 is indeed just to keep the stack aligned to a 16-byte boundary, as you speculate. (In the x86-32 ELF ABI, it would also have served as the terminator for the linked list of frame pointers.)

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thank you! your deductions (not sure if thats the correct grammar) were correct. –  DanZimm Jun 17 '12 at 23:54
    
nw my next question is why does the stack need to be aligned to a 16 byte boundary? –  DanZimm Jun 17 '12 at 23:54
    
That allows the compiler to align variables within the stack frame to a 16-byte boundary, which can make things work faster. –  Zack Jun 18 '12 at 3:05
    
so if you were to push 0x0 and then subtract 16 from the stack pointer it /wouldnt/ crash? I feel like im completely misunderstanding this boundary thing EDIT: so I just googled the '16 byte boundary' and now i understand the performance half of things but I still do not understand why thats related to push $0x00 - does it force the stack to a 16 byte boundary? then how could you subtract only 8 from the stack? wouldnt you need to subtract 16 in the least? –  DanZimm Jun 18 '12 at 7:46
    
Don't forget the implicit push done by call. –  Zack Jun 18 '12 at 14:52

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