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I was looking in to some compiler generated assembly code(x86_64) and found few instructions which have a zero displacement as following..

     movzbl 0x0(%rbp),%eax

What could be the reason behind such 0x0 displacement? (I am new to assembly, please point me to the links if its already a discussed issue.) From my understanding, the above instruction copies the zero extended rbp+(0x0) to eax.


EDIT: I found a link which explains it for leal though what-does-0x0-indicate-in-the-instruction

Thank you..!

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1 Answer 1

up vote 4 down vote accepted

It means movzx eax, byte [rbp + 0].

There's no encoding for memory operands at address contained in (e|r)bp, but there is for (e|r)bp + constant. So, you have 0 for that constant to extract a byte from the address in rbp.

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Thank you for the quick reply, but I couldn't get what you mean by encoding! Are you talking about the registers being addressable as rax(eax(ah, al))) ? (Whereas that is not possible with rbp/rsp) –  msumaithri Sep 23 '12 at 13:20
1  
Every instruction is encoded as a sequence of bytes. Some bits of those bytes determine the instruction's "opcode" (movzx), others determine the operands (eax and byte [rbp + 0], respectively). There is no bit combination to represent the operand [rbp]. But there is one for [rbp + some integer constant]. It's just how the designers chose to do it. –  Alexey Frunze Sep 23 '12 at 19:10
    
Thanks a lot for the detailed and clear explanation!! It makes sense to me now :) –  msumaithri Sep 24 '12 at 1:07

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