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How do I round an integer to the nearest whole in assembly? The use of branching is not allowed here.

For example, 195 * .85 = 165.75. Normally, I'd multiply 195 by a scale factor (100) and then multiply, then divide down the scale factor. This would give me 165. How do I get 166?

I'm sorry if this is a terrible question - I'm new to assembly! Thank you.

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166 = 165 + 1 ? –  BlackBear Oct 10 '12 at 20:55
    
blackbear -you wouldn't know to add 1 without first testing the decimal for being round-up or round-down. –  corsiKa Oct 10 '12 at 20:57
    
@finaljon What type of rounding are you trying to do - schoolboy rounding? 45.4 = 45, 45.5 = 46? –  corsiKa Oct 10 '12 at 20:57
    
Multiply by the scale factor 100.0 then add 0.5 when number is positive (otherwise add -0.5), multiply by 0.85 , divide by 100.0. –  halex Oct 10 '12 at 20:58
    
@halex your use of when implies a branch which isn't allowed. –  corsiKa Oct 10 '12 at 20:59

4 Answers 4

up vote 4 down vote accepted

For example, 195 * .85 = 165.75. Normally, I'd multiply 195 by a scale factor (100) and then multiply, then divide down the scale factor. This would give me 165. How do I get 166?

Classically you'd use a power of two scale factor and shift rather than multiply and divide; I guess now that divides and multiplies cost the same as shifts on many architectures you may be more concerned with keeping a certain precision.

Anyway, as almost suggested by halex, you'd add 0.5 before dividing. The net effect will be that if the decimal part is already 0.5 or greater you'll get carry into the integer part. If not then there'll be no carry.

So:

195 * 100 = 19500
19500 * 0.85 = 16575
16575 + 50 (ie, 0.5) = 16625
16625 / 100 = 166

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I really like this. I'm partial to mine because it's clever (which isn't always a good thing!!), but I actually like this more because it's elegant and much more intuitive. –  corsiKa Oct 10 '12 at 21:12
    
My only pitfall I would say is that this has a lower space than my answer :-) You will overflow 50 elements sooner with this method than with mine. But for its simplicity of concept, that's a pretty decent tradeoff. –  corsiKa Oct 10 '12 at 21:13
    
I like it but it only gives the right answer for positive ints :). It would be interesting to find a method without branching that can handle the rounding of both positive and negative. –  halex Oct 10 '12 at 21:22
    
@halex assuming two's comp and a desire for away-from-zero rounding, I guess you'd do a sign extension of the top bit (which, hopefully your CPU architecture can do in a single signed shift right), XOR 0011 0010 (ie, decimal 50) onto that, add a single instance of the sign bit (so, effectively, add 0 if positive, add 1 if negative) and then add all that to the original prior to your divide, since that'll give +50 for positive integers and -50 for negative integers. If you can do a signed shift into carry then you can get the 1-or-0 add via an add-with-carry of 0. Simpler solutions may exist... –  Tommy Oct 10 '12 at 21:45

In x86 assembly, there's the FRNDINT instruction.

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Assuming you were given only integers, and just told that one of the integers needs to be treated like a decimal using a scale factor... then you can do this by going using a scale factor that is twice as large as you need. So instead of 100, you use 200. This will cause the last bit of the result to be 1 or 0 depending on whether or not you will round up.

So in c style it looks like this

result = (195 * 85) / (100 / 2);
add = result & 1;
result = result / 2 + add;

If you weren't supposed to round up (i.e. round down) then the 'add bit' will be 0. Otherwise the 'add bit' will be 1 if you're supposed to round up.

I think that should give you the pseudocode you need to translate this into assembly properly.

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An integer doesn't have decimal places, therefore it is already a whole number.

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that's part of the problem... how do round without ever having those decimal places. –  corsiKa Oct 10 '12 at 21:04
    
It is not my fault his question was very poorly worded –  Alan Oct 11 '12 at 1:48

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