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Suppose I have three numbers. Two of them form a range between them. The last number, I want to check to see if it falls within that range. It's a simple caveat: the numbers that define the range's start and end, may be greater than or less than the other. This is for a physics algorithm whose performance I'm working to improve, so I also want to avoid using conditional statements.

double inRange(double point, double rangeStart, double rangeEnd){
    // returns true if the 'point' lies within the range
    // the 'range' is every number between 'rangeStart' and 'rangeEnd'
    // rangeStart can be greater than or less than rangeEnd
    // conditional branches should be avoided

    return ?; // return values [0.0 - 1.0] are considered 'in range'

Is there a mathematical equation to accomplish this, without using condition logic?


The reason it returns a double instead of a bool, is because I need to know the ratio too; 0.0 is closest to one edge while 1.0 is closest to the other.

The original algorithm I have is this:

double inRange(double point, double rangeStart, double rangeEnd){
    if(rangeStart > rangeEnd){
         double temp = rangeStart;
         rangeStart = rangeEnd;
         rangeEnd = temp;
    return (point - rangeStart) / (rangeEnd - rangeStart);

My profiler shows about 16% of the time the program is running, is spent in this function, with optimizations enabled. It's called pretty frequently. Not sure if the condition statement is entirely to blame, but I would like to try a function that doesn't have one and see.

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Why does it return double? – Barry Apr 6 '13 at 21:44
Why do you think a conditional statement will slow it down? – Carl Norum Apr 6 '13 at 21:45
Why without condition logic? I assume because you think it's slow. In that case, you're conflating two issues: making the code correct, and making it correct and fast. If you don't have the first step, don't bother with the second. So which is it: do you want to know how to make this function return the correct value, or do you have an existing implementation you're going to show us that's too slow, with profiling results to back it up? – GManNickG Apr 6 '13 at 21:46
@Clairvoire - so what should inRange(3.0, 5.0, 7.0) return? – Barry Apr 6 '13 at 21:47
What is in a name? By many programmers (and managers), the importance of good identifier (function, variable) name is looked down. This is a classic example of that. The name inRange() causes the confusion because it expects a boolean outcome. If the function was named in line with what it is doing, say ratio() or distanceRatio() or percentile(), then it could be lot clearer. – Arun Apr 6 '13 at 22:11

2 Answers 2

up vote 3 down vote accepted

to answer your specification "it should return zero when close to the start and 1 when close to the end", that you don't want conditionals, and that start and end might be swapped:

return (point-std::min(rangeStart, rangeEnd))/std::abs(rangeStart - rangeEnd);

Note that although I don't know about the particular STL implementation, min does not necessarily require conditionals to be implemented. For instance, min(a,b) = (a+b-abs(b-a))/2.

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I just saw your edit : your code was very similar to this one. – WhitAngl Apr 6 '13 at 21:52
I simplified the result by reducing the number of min, max calls. You don't need to call them in the denominator. – The Quantum Physicist Apr 6 '13 at 21:57
oops yes, indeed! Thanks! – WhitAngl Apr 6 '13 at 22:01
this is not efficient, as it contains a nasty division. Also fabs is not C++, use std::abs. – Walter Apr 6 '13 at 22:38
I don't know how much is changed from implementation to implementation but the ref says it uses the < operator in conjunction with an if. Plus I agree with Walter, you gave an answer less efficient than what he had, it just uses C++ "niceties." – ChiefTwoPencils Apr 6 '13 at 22:38

If the start is larger than the end, then swap those.

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