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I want to turn an object clockwise or counter-clockwise. A couple of integers (from 0 -> 7) represent the direction that object is looking to (eg. left, leftup, up, upright, right, ...). Adding +1 to the current direction of the object turns it clockwise, substracting -1 turns it counter-clockwise.

If I want the object to turn to a certain direction (= integer), how do I determine the minimum amount of turns necessary?

Currently I'm using this way of thinking :

int minimumRequiredTurns = min(abs(currentDirection.intvalue - goalDirection.intvalue),
                       8 - abs(currentDirection.intvalue - goalDirection.intvalue));

Is it possible to do it without a min statement?

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what do the 8 directions stand for? (left,up,right,...) - this implies only four directions. please clarify –  WeaselFox Mar 20 '12 at 14:43
    
should not it be int minimumRequiredTurns = min(abs(currentDirection.intvalue - goalDirection.intvalue), 8 - abs(currentDirection.intvalue - goalDirection.intvalue)); –  tafa Mar 20 '12 at 14:50
    
you are right, tafa. WeaselFox, it's actually left, leftup, up, upright, right, ...). –  Fatso Mar 20 '12 at 14:54
2  
why? Why not use the min statement if that is the clearest way to express it? –  AShelly Mar 20 '12 at 15:05
    
How does knowing the minimum required turns help you decide which direction to turn? If you want to avoid repeating the calculation, you should return both number of turns and direction. –  Caleb Mar 20 '12 at 15:22

6 Answers 6

up vote 2 down vote accepted

I think

(1-(abs(abs(currentDirection.intvalue - goalDirection.intvalue)/(n/2)-1)))*(n/2)

should do the trick, where n is the number of possible directions.

In order to have integer only calculations transform this to

(n/2)-abs(abs(currentDirection.intvalue - goalDirection.intvalue)-(n/2))

Explanation: Using the hat function to generate the map:

0 -> 0
1 -> 1
2 -> 2
3 -> 3
4 -> 4
5 -> 3
6 -> 2
7 -> 1
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Edited it so that it conforms with the notation of OP –  Azrael3000 Mar 20 '12 at 15:18
    
+1 Much improved. –  Caleb Mar 20 '12 at 15:19
1  
I didn't want to be slow if anybody had the same idea :) Thx –  Azrael3000 Mar 20 '12 at 15:20
    
Azrael, it doesn't seem to be working for me if I only have 4 directions instead of 8. Any thoughts? –  Fatso Mar 20 '12 at 17:09
    
Did you replace the 4s by 2s? Edit: I updated the answer to take an arbitrary number of directions into account. –  Azrael3000 Mar 20 '12 at 17:14

If you really don't like the "min", you could use a lookup table.

int minRequiredTurns[8][8] = {
    0, 1, 2, 3, 4, 3, 2, 1,
    1, 0, 1, 2, 3, 4, 3, 2,
    2, 1, 0, 1, 2, 3, 4, 3,
    /* and so on... */
};
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The problem with this is that, if I add subdirection, the table will be useless. –  Fatso Mar 20 '12 at 14:55
    
@Korion: To be honest, the current solution is jst fine too. –  hugomg Mar 20 '12 at 16:19

Almost certainly, a much better design would be to use vectors to represent directions; treat the "direction" as a pair of numbers (x,y) so that x represents the horizontal direction, y represents the vertical.

So (1,0) would represent facing right; (0,1) would represent facing up; (-1, 0) would be facing left; (1,1) would be facing up-right; etc.


Then you can just use the normal vector-based solution to your problem: Take the direction you're facing, and the direction you want to face, and take the cross-product of the two.

result = x1y2 - x2y1

If the result is positive, rotate counter-clockwise; if the result is negative, rotate clockwise (this works because of the right-hand rule that defines cross-products).

Note that this approach generalizes trivially to allow arbitrary directions, not just horizontal/vertical/diagonal.

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First, force a positive difference, then force to be between 0 and N/2 (0 and 4):

N=8
diff = (new-old+N)%N;
turns = diff - (diff>N/2 ? N/2 : 0)
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2  
It's enough to make OP run screaming into the arms of 'min' :-) –  High Performance Mark Mar 20 '12 at 14:53
    
This works great, thanks! –  Fatso Mar 20 '12 at 17:08
int N = 8, turns = abs(current-goal);
if (turns > N/2) turns = N-turns;

But I don't understand why you don't want the min-statement...

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Maybe it's a little contrived, but you could imagine having to implement this on some really limited device that didn't support branching and you could only use arithmetic, or where you really needed to avoid branching for performance reasons. –  gcbenison Mar 21 '12 at 4:45
    
Sure this works, smarinov, but it's not exactly what I'm after. I wanted something along the lines of Azrael's answer or gcbenison's answer. Just arithmetic, as short as possible. –  Fatso Mar 21 '12 at 7:38
1  
@Korion My bad, I have somehow completely passed by the relevant part of your question. –  smarinov Mar 21 '12 at 12:28
    
Hey it's certainly not your fault. I have a history of asking non-clear questions :D. –  Fatso Mar 21 '12 at 17:12

No min, no abs, one expression, no division:

turns = ((((goalDirection + 8 - currentDirection) % 8) + 4) % 8) - 4

How it works: the innermost expression (goalDirection + 8 - currentDirection) is the same as given by AShelley; number of required turns in the clockwise direction. The outermost expression shifts this to its equivalent in [-4..+3]

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Amazing! Only problem is that the result can be negative, so you need abs anyways. At the moment I'm pretty sure it works... Thanks again! When I'm sure it works you'll be rewarded best answer. –  Fatso Mar 21 '12 at 7:21

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