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I've made a scaling function that takes numbers in an interval [oldMin,oldMax] and scales them linearly to the range [newMin,newMax] . It does not seem to work when using negative values.

function linearScaling(oldMin, oldMax, newMin, newMax, oldValue){
        var newValue;
        if(oldMin !== oldMax && newMin !== newMax){
            newValue = parseFloat((((oldValue - oldMin) * (newMax - newMin)) / (oldMax - oldMin))  + newMin);
            newValue = newValue.toFixed(2);
        }
        else{
            newValue = error;
        }
        return newValue;
}

This function seems to work when scaling a value from 0 -> 32761 to the range range 0 -> 10. However it does not seem to give the correct output when given a new negative range i.e. -10 -> 10

I have done my best to find an answer on this site. However the person who asked the question didn't mention what he ended up doing to fix it. That question says it could have something to do with mixed up data types, but i converted everything to a float did I miss anything?

share|improve this question
1  
I wouldn't use != on argument values. Do !==. – Šime Vidas Mar 6 '13 at 17:44
    
First remove the parseFloat. JavaScript only knows "Number"s, no "int" or "float". – Kay Mar 6 '13 at 17:45
    
range (0 -> 20) - 10 ? – the system Mar 6 '13 at 17:46
    
Your function works for me: linearScaling(0, 20, -10, 10, 5) => "-5.00" – Barmar Mar 6 '13 at 17:48
    
Maybe you should use more lines as well: v -= oldMin; v /= oldMax; v *= newMax; v += newMin;. – Kay Mar 6 '13 at 17:50
up vote 2 down vote accepted

Now that you showed how you call your function, I can reproduce your problem - namely that quoted numbers that should map to the negative domain don't.

It seems to be due to the fact that Javascript is very loose about the difference between a number and a string - and if it's not sure what to do about two numbers (because one of them appears to be a string), it assumes you want concatenation rather than addition. In other words - by passing the newMin value as '-10' rather than -10 you confused JS.

As a simple example,

document.write('1' + '-2');

produces

1-2

However,

document.write(1*'1' + 1*'-2');

results in

-1

The expression you had included a "possible concatenation" where it added oldMin:

newValue = (((oldValue - oldMin) * (newMax - newMin)) / (oldMax - oldMin))  + newMin;

With newMin set to '-10', you might get newValue to look like 6-10 instead of -4, to give an example. When you then did a parseFloat, Javascript would quietly work its way through the string up to the minus sign, and return 6 instead of evaluating the expression and coming up with -4.

To clear up the confusion, multiply each parameter by 1 to make it "a genuine number":

oldMin = 1*oldMin;
oldMax = 1*oldMax;
newMin = 1*newMin;
newMax = 1*newMax;
oldValue = 1*oldValue;

When you add these lines at the start of your function declaration, everything works smoothly - regardless of how you call the function. Or just call it with the newMin value not in quotes - it is the one causing the trouble in this particular instance.

  document.writeln('the new code called with parameter = 100:\n');
  document.writeln(linearScaling('0', '32761', '-10', '10', 100)+'<br>');
  document.writeln('the old code called with parameter = 100:\n');
  document.writeln(linearScalingOld('0.0', '32761.0', '-10.0', '10.0', '100.0')+'<br>');
  document.writeln('the old code called with unquoted parameters:\n');
  document.writeln(linearScalingOld(0.0, 32761.0, -10.0, 10.0, 100.0)+'<br>');

results in the following:

the new code called with parameter = 100: -9.94
the old code called with parameter = 100: 0.06
the old code called with unquoted parameters: -9.94

I hope this illustrates the cause of the problem, and the solution.

share|improve this answer
    
oh my god what a stupid little mistake, but thanks for helping me out and pointing out the problem so well, I totally understand now. I fixed my function by multiplying every variable with 1 so it doesn't matter if users call the function with quotes or without – Stijn De Schutter Mar 7 '13 at 8:57
    
Glad you like the answer. Do you know how to " accept " it? – Floris Mar 7 '13 at 13:12
    
no i don't :s u mean like click somewhere to confirm that my question is solved? – Stijn De Schutter Mar 8 '13 at 7:09
    
i found the accept button :p – Stijn De Schutter Mar 8 '13 at 7:58
    
Good. Welcome to SO! – Floris Mar 8 '13 at 12:46

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