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In the Fortran95 code below the variable NMOM is an integer and always equal to 3.

What would the value of P0 evaluate to, 1 or -1? The divide by 2 then multiply by 2 bit has me confused, I'm not sure why you would do this, but this was written by a non-programmer scientist back in the 90s who is no longer around to ask.

P0=1
IF(NMOM-NMOM/2*2.EQ.1)P0=-1

The code is compiled with lf95 on a Linux machine.

Thanks in advance for any suggestions or insight.

share|improve this question
    
IMO, if the program works (meaning it does what it's supposed to do and gives correct results) then the scientist is a programmer. He/she may not be a good programmer (who can optimize or comment well), but they would most certainly be a programmer. – Kyle Kanos Mar 10 '14 at 20:51
    
If it's Fortran 95, it's definitely not ancient code. That's practically modern in Fortran terms. ๐Ÿ˜‰ – eriktous Mar 10 '14 at 21:39
up vote 4 down vote accepted

I don't know Fortran, but my guess is that it is testing if NMOM is odd or even. First, rewrite with parens to simulate operator precedence:

IF(NMOM-((NMOM/2)*2).EQ.1)P0=-1

And if we are using integer math then (NMOM/2)*2 == NMOM if it's even else it will equal NMOM-1 if it's odd.

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The integer arithmetic is what's interesting here, in that the divide by 2 will give only the integer part of the result, it all makes sense now, thanks for your help! – James Adams Mar 12 '14 at 14:21

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