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Does ADD EAX, EBX put to zero the 32 high-order bits of EAX if I just operate on the 32 low bits?

And what about ADD RAX, EBX? Is it possible? And if it is, are the 32 high-order bits of RAX preserved?

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ADD EAX, EBX zeros the high 32 bits of RAX. ADD RAX, EBX is not a valid instruction.

It sounds like you want to add a 32-bit value in EBX to a 64-bit value in RAX. To do this, first you either zero-extend (MOV EBX, EBX) or sign-extend (MOVSX RBX, EBX), then add RBX to RAX. (Use zero-extension if you are interpreting the value in EBX as unsigned, sign-extension if it is signed).

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Yes, 32 bit ADD zeroes high order bits. ADD RAX, EBX is not possible. You can zero out the top 32 bits (for example by MOV EBX, EBX) and then use ADD RAX, RBX (note this possibly changes the top 32 bits of RAX)

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