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Consider the instruction MVI A,32H to load 32H in the register A (Intel 8085 Microprocessor).

My book says that it is a two byte instruction where the first byte is the opcode and the second is the operand. The first byte being 0011 1110 (3E in hexadecimal) and the second byte being 0011 0010 (32 in hexadecimal).

I am confused as to how exactly the opcode part is converted into machine code. I mean... what part of the "0011 1110" stand for "MVI" and what part of it tells that register A is to be loaded? How does "3E" tell the microprocessor both the information? That is it has to load data as well as the target register. Or is it that this entire opcode is predefined and you can't separate the "MVI" and "target register" in the opcode?

I hope my question makes sense lol.

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Encoding the target register inside the instruction bits is very common. MVI is 0x00xxx110 where xxx encodes one of 8 possible registers. – Hans Passant Jan 10 '13 at 1:16
    
Thank you Hans! I got it. :) – finitenessofinfinity Jan 10 '13 at 1:20
up vote 2 down vote accepted

http://www.pastraiser.com/cpu/i8085/i8085_opcodes.html

The whole thing 0x3E means MVI A.

From the table in the link above (assuming it can be trusted)

0x0E MVI C  00001110
0x1E MVI E  00011110
0x2E MVI L  00101110
0x3E MVI A  00111110

0x06 MVI B  00000110
0x16 MVI D  00010110
0x26 MVI H  00100110
0x36 MVI M  00110110

The color coding on that chart gives a strong indication of the opcode decoder if the 2 msbits are 00 then if the lower 2 bits are 10 then if bit 2 is a 1 then it is an MVI and bits 3-6 determine which register. basically 0b00rrr110 is an MVI.

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you should have just assembled mvi a,32h, mvi b,32h, etc and then compared the machine code to see which bits were changing. – dwelch Jan 10 '13 at 1:09
    
Thank you Dwelch! I got it. I was in my foolishness, was desperately trying to separate the opcode into two parts sequentially! – finitenessofinfinity Jan 10 '13 at 1:21
    
likewise if you tried mvi a,31, mvi a,30, etc you would see the second byte changing/matching the constant completely so that part isnt the opcode but the immediate. So the opcode if it can be broken down (sometimes they dont break down into smaller parts, depends on the instruction set) would have to be in that first byte. – dwelch Jan 10 '13 at 2:06

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