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What is the fastest way to set a single memory cell to zero in x86? Typically the way I do it is this:

C745D800000000  MOV [ebp-28], 0

As you can see this has a pretty chunky encoding since it is using all 4 bytes for the constant. With a plain register I can use MVZE which is more compact, but MVZE does not work with memory.

I was thinking maybe clear a register, then MOV the register value to the memory. Then, it would be two instructions, but only 5 bytes total instead of the one 7-byte instruction above. Following the rule "if its shorter, its usually faster", this might be preferable.

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You can XOR it with itself, but I don't think that would be faster: xor [ebp-28], [ebp-28]. – Linuxios Mar 15 '13 at 22:24
1  
You can't XOR a memory cell with itself, since an instruction cannot have two memory operands. – Daniel Kamil Kozar Mar 15 '13 at 22:24
    
Some x86 instructions have two memory operands.... – Carl Norum Mar 15 '13 at 22:28
    
@CarlNorum : would you care to give an example? – Daniel Kamil Kozar Mar 15 '13 at 23:21
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Sure, but they're not explicitly stated as the operands to this instruction and encoded directly with it. – Daniel Kamil Kozar Mar 16 '13 at 0:25
up vote 2 down vote accepted

Unfortunately, what you have written here is the only way to "directly" zero out a memory cell. Of course, XORing out a register and then moving it to some memory location would also work, but I don't know if that would be any faster.

If you happen to have a register whose value is zero and you're sure of it, then by all means use it. Otherwise, just stick with the mov [ebp-28], 0. Keep in mind that mem, imm operands are known to be one of the slowest : if you profile your code and find out that this is a bottleneck, try initializing a register to zero at the beginning of your function (or whatever) and then using it throughout the code, as a sort of a predefined constant.

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Do you know if this is also the shortest way? On x86 64 mov [r14], 0 is a 7 byte instruction. – Björn Lindqvist Mar 5 '15 at 13:01

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