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What will the instruction move #>$3,var mean in 68k assembly ?

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I would say a syntax error. The usage of > requires an assembler operand on the left side of it (to compare with the $3 on the right side - a hexadecimal, $, value of 3 which, of course, is just 3) but that is missing. –  FrankH. Jun 27 '12 at 14:40
    
i'm not sure about this but ">" character might be representing the "high byte" or "high word" here. in "$3" case ">$3" equals to zero. but this ">" sign should be evaluated as a compiler level operator, not instruction level. "<" also means low byte/word in many assemblers. since i'm not sure about my answer, i write this as a supportive comment. –  Emir Akaydın Jun 27 '12 at 14:58
    
I was wondering about the advanced memory indirect addressing modes the 68020 (or 30?) have. But I am not familiar with those, even less when using AT&T syntax. –  hirschhornsalz Jun 27 '12 at 16:10
    
@Bleamer, unless this is intended as a kind of puzzle, can you tell us where you saw such a syntax? –  Clafou Jun 28 '12 at 14:43
    
It was part of legacy code implementation for a 68K based DSP. –  Bleamer Jul 5 '12 at 10:31

1 Answer 1

up vote 1 down vote accepted

I figured it out. The syntax #> is an operator to force long (immediate) addressing mode in 68K and hence my instruction move #>$3,var would mean - move the value $3 (0x03) to variable var forcing the long addressing mode in 68K assembly. I am not certain about the processors supporting this operation.

@drhirsch almost nailed it.

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