Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Note: I'm using Lua.

So, I'm trying to find out the degrees between two points on a circle. The problem is between something like 340 and 20, where the correct answer is 40 degrees, but doing something like

function FindLeastDegrees(s, f) 
    return ((f - s+ 360) % 360) 
end 

print(FindLeastDegrees(60, 260))

-- S = Start, F = Finish (In degrees)

Which works all all situations except for when trying to figure out the distance between the two. This below code is my next failed attempt.

function FindLeastDegrees(s, f) 
    local x = 0 
    if math.abs(s-f) <= 180 then 
        x = math.abs(s-f) 
    else 
        x = math.abs(f-s)  
    end 
return x
end

print(FindLeastDegrees(60, 260))

I then tried:

function FindLeastDegrees(s, f) 
    s = ((s % 360) >= 0) and (s % 360) or 360 - (s % 360); 
    f = ((f % 360) >= 0) and (f % 360) or 360 - (f % 360); 
    return math.abs(s - f) 
end 

print(FindLeastDegrees(60, 350))

--> 290 (Should be 70)

So that failed. :/

So how would you find the shortest amount of degrees between two other degrees, and then if you should go clockwise or counterclockwise (Add or subtract) to get there. I'm entirely confused.

A few examples of what I'm trying to do...

FindLeastDegrees(60, 350)
--> 70

FindLeastDegrees(-360, 10)
--> 10

Which seems so hard! I know I will have to use...

  1. Modulus
  2. Absolute Values?

I would also like it to return if I should add or subtract to get to the value 'Finish'.
Sorry for the lengthy description, I think you probably have got it.... :/

share|improve this question
    
this is the link stackoverflow.com/questions/16460311/… –  Pavan Saberjack May 9 '13 at 11:40

1 Answer 1

up vote 2 down vote accepted

If the degrees are in the 0 to 360 range, the % 360 part can be skipped:

function FindLeastDegrees(s, f) 
    diff = math.abs(f-s) % 360 ;
    return math.min( 360-diff, diff ) 
end 
share|improve this answer
    
They aren't. However, could I possibly do: function FindLeastDegrees(s, f) s = ((s % 360) >= 0) and (s % 360) or 360 - (s % 360); f = ((f % 360) >= 0) and (f % 360) or 360 - (f % 360); return math.min( 360-math.abs(f-s), math.abs(f-s) ) end print(FindLeastDegrees(60, 260)) With the extra code being the code to get the degrees? –  Stormswept Apr 19 '12 at 23:15
    
No need for such complications. See my edit. –  ypercube Apr 19 '12 at 23:22
    
Ahh. I see what you did there! Thanks! –  Stormswept Apr 19 '12 at 23:46

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.