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I have 3 angles a b c

a=315 b=20 c=45

ok so would like to know giving all three if b is in between a and c

i have the long way of doing this adding and subtracting that's seems to work. I would just like to get something smaller and maybe more efficient.

thanks

EDIT

Here is a picture what i am trying to say.

enter image description here

Ok I have angle L(currently 0) i add 45(or any angle) and subtract 45(or any angle) to get a and b (my view angle).

Now i need to know if the green dot is between a and b

(g> a || g > 0) && (g < b)

so in this picture only the top green dot will be true..

Sorry if I am not making my self clear my first language is not English

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What do you mean by "in between"? Testing whether either a > b > c or a < b < c, or something more sophisticated? –  trutheality Apr 19 '12 at 21:15
    
e.g. if you have 0, 120, and 240 degrees, which angle is between which other two and why? –  trutheality Apr 19 '12 at 21:19
    
HI in the example the statement will be true. 20 lies between 315 and 45.What i want to do is i have a angle d i want to determine what i can see if my view is 45 both ways. so if i look at 0 degrees i add 45 and i subtract 45 thats how i got a and c b is a object i want to check –  Pintac Apr 20 '12 at 6:03
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4 Answers

up vote 0 down vote accepted

Check:

(If you mean in between, exclusive of boundary)

(c - a) % 180 > 0 && b > a && b < c

(If you mean in between, inclusive of boundary)

(c - a) % 180 >=0;b >= a && b <= c

(This answer assumes a,b,c >= 0; a,b,c < 360; a <= c)

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hi read comment at top its just not high low bounds –  Pintac Apr 20 '12 at 6:06
    
See my updated answer. I believe this should work. –  Zéychin Apr 21 '12 at 9:35
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Assuming a > c, you would actually use:

( b < a ) && ( b > c )

This is the same as checking if a value is between a lower and upper bound. Them being angles makes no difference, unless you want to take into account the fact that as you go round a circle, an angle of 405 is the same as an angle of 45. In which case you can just use a % 360 to get the angle betweeen 0 and 360.

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hi yes the only problem comes if i check across 360. then is just not checking hight and low read comment at top. –  Pintac Apr 20 '12 at 6:05
    
In a circle, any angle will lie between any two other angles. Draw it out and you'll see that. –  Matt Apr 20 '12 at 7:03
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What if a=340; b=0; c=10?

b is geometric in between the two others. But not Numeric.

So what is in between?

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Hi yes i want geometric. read my comment at top... –  Pintac Apr 20 '12 at 6:04
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I had a similar problem. I got it. All the calculations are in degrees. I needed to calculate id a gps location is inside a rectangle.

Or, I needed to see if an angle x is between angle check+r and angle check-r.

check-r<x<check+r.

If you need a<x<b, find the angle check in the middle of a and b and then the distance (r) of check from a or b.

The method normalize, changes the angles from -infinity...infinity to -180...180. The method check, takes the arguments x: the angle that we need to see if it is between the angles check-r and check+r. check: the angle to check with. r: the radius around angle check.

private static double normalize(double x) {
        x = x % 360;
        if (x>=180) {
            return x-360;
        }
        if (x<-180) {
            return x+360;
        }
        return x;
}
public static boolean check(double x, double check, double r) {
        x = x - check;
        x = normalize(x);
        return x<r && x>-r;
}
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