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I have a number ("double") from int/int (such as 10/3).

What's the best way to Approximation by Excess and convert it to int on C#?

  • What is 'Approximation by Excess' ? – An Old Fortran Hacker Feb 15 '12 at 15:23
  • Uhm...maybe I don't know how to call it in english? :) Well, if you have 0.2->1; 0.8->1...and so on..."round" to the next int? – markzzz Feb 15 '12 at 15:29
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    Do you mean (int)Math.Ceiling(x)? – CodesInChaos Feb 15 '12 at 15:38
  • Oh...it's Round Up! Sorry, thanks :) – markzzz Feb 15 '12 at 15:43
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    Should -1.5 round to -1 or -2? – Jodrell Feb 15 '12 at 15:47
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Are you asking about System.Math.Ceiling?

Math.Ceiling(0.2) == 1
Math.Ceiling(0.8) == 1
Math.Ceiling(2.6) == 3
Math.Ceiling(-1.4) == -1
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    Math.Ceiling(-1.4)==-2 -- what language is that ? Tell me it's name so that I can shun it like the plague. – High Performance Mark Feb 15 '12 at 15:42
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    Oops, I screwed that up. I looked it up, but I misread the example. – Doug McClean Feb 15 '12 at 15:44
  • @HighPerformanceMark - well, in C# expression "Math.Ceiling(-1.4)==-2" is correct and basically returns false ;-) – Zegar May 27 at 13:29
  • Seeing how Math.Ceiling returns a decimal and not an int, then no, but OP has accepted this as the answer anyway for some reason. – ataraxia May 28 at 11:43
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int scaled = (int)Math.Ceiling( (double) 10 / 3 ) ;
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    I think you need to cast it for this to work.. i.e. int scaled = (int)Math.Ceiling( (double 10 / 3 ); – Mark Rhodes Mar 4 '14 at 9:58
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By "Approximation by Excess", I assume you're trying to "round up" the number of type double. So, @Doug McClean's "ceiling" method works just fine.

Here is a note: If you start with double x = 0.8; and you do the type conversion by (int)x; you get 0. Or, if you do (int)Math.Round(x); you get 1. If you start with double y = 0.4; and you do the type conversion by (int)y; you get 0. Or, if you do (int)Math.Round(y); you get 0.

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Consider 2.42 , you can say it's 242/100 btw you can simplify it to 121/50 .

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