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Convert a number range to another range, maintaining ratio

So I have a function that returns values within 0 and 255 and I need to convert these values to something between -255 and 255 So 200 would be roughly 145, 150 would be roughly 45 and so on.. I have looked at Convert a number range to another range, maintaining ratio but the formulas there won't work. Any other formula I could use?

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Why won't the formulas there work for you? –  jball Nov 19 '10 at 21:46
4  
The link supplied is really the simplest way of doing this. Can you give an example of why it is not working? –  linuxuser27 Nov 19 '10 at 21:46
    
var oldRange = high - low; var newRange = newHigh - newLow; var newNumber = oldNumber * (oldRange/newRange); Is this right? If so, your math about 200 -> 145 and 150 -> 45 is off :) –  Holystream Nov 19 '10 at 21:48
    
0 - 255 is already in the range of -255 - 255...I don't see the problem. :-P –  Justin Niessner Nov 19 '10 at 21:48
1  
@user425291: You're reading the formula incorrectly in the other question's answer. It says to divide by (OldMax - OldMin), and THEN add NewMin. –  mokus Nov 19 '10 at 22:25
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marked as duplicate by jball, Joren, Lawrence Johnston, John Hartsock, Graviton Nov 24 '10 at 0:53

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

5 Answers

up vote 4 down vote accepted

Try this:

int Adjust( int num )
{
    return num * 2 - 255;
}
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Typo in your edit, should be return num * 2 - 255; ? –  jball Nov 19 '10 at 22:08
    
@jball: Thanks. That's how I had it in the first pass. Kudos on catching the fat-finger mistake! –  Jim Fell Nov 19 '10 at 22:17
    
i'll go with this cuz its the simplest. I'm still wondering why I couldn't get the example i linked to. Must have been looking at the same thing for too long! thanks! –  Spre3 Nov 19 '10 at 22:22
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public static int ConvertRange(
    int originalStart, int originalEnd, // original range
    int newStart, int newEnd, // desired range
    int value) // value to convert
{
    double scale = (double)(newEnd - newStart) / (originalEnd - originalStart);
    return (int)(newStart + ((value - originalStart) * scale));
}
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This is the best answer to this question as written. Note that this is simply a C# implementation of the (correct) formulas that are in the question the OP linked to –  jball Nov 19 '10 at 21:58
    
This is a good answer. If the value to convert is above and below the original range then how to do I clip it at min or max value of desired range. for example 'int val = ConvertRange(20, 110, 0, 100, 10);' then val is 0 'int val = ConvertRange(20, 110, 0, 100, 111); then the val is 100' –  katta Jun 6 '13 at 16:18
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General solution for arbitrary range...

var val1 = 200;
var min1 = 0;
var max1 = 255;
var range1 = max1 - min1;

var min2 = -255;
var max2 = 255;
var range2 = max2 - min2;

var val2 = val1*range2/range1 + min2;
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Adjusted = original / 255 * 510 - 255

145 = 200 / 255 * 510 - 255
 45 = 145 / 255 * 510 - 255
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I fail to see how this will fix the signing issue. –  Jim Fell Nov 19 '10 at 21:50
    
@Jim Fell, what signing issue? –  jball Nov 19 '10 at 21:53
1  
What's the signing issue? Plug in an original value of 1 and get -253, plug in 200 and get 145. Seems to work. –  Sir Robert Nov 19 '10 at 21:53
    
@Sir Robert: It looks like the OP is wanting to rescale a given number between (0 and 255) to (-255 and 255). Your solution does not appear to address converting numbers less than 128 into the negative range. –  Jim Fell Nov 19 '10 at 21:57
    
@Jim Fell - order of operations says the final -255 happens after all other operations, correctly adjusting originally (0 to 127) values into the new negative (-255 to -1) values –  jball Nov 19 '10 at 22:02
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public int ConvertRange(
           int originalStart, int originalEnd,
           int newStart, int newEnd,
           int value)
{

  int originalDiff = originalEnd - originalStart;
  int newDiff = newEnd - newStart;
  int ratio = newDiff / originalDiff;
  int newProduct = value * ratio;
  int finalValue = newProduct + newStart;
  return finalValue; 

}
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