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Quick one I think. 2d problem in Cocos2d and xcode.

I have

CGPoint currPoint;
float lineLength;
float angle;

Now, I need to find the point that is lineLength away from currPoint at angle Degrees.

Tried to search, but the answers i have found aren't quite what I was looking for. Would appreciate anyone pointing out the (I assume) pretty simple math I have overlooked.

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up vote 8 down vote accepted

From the top of my head:

CGPoint endPoint;
endPoint.x = sinf(CC_DEGREES_TO_RADIANS(angle)) * lineLength;
endPoint.y = cosf(CC_DEGREES_TO_RADIANS(angle)) * lineLength;
endPoint = ccpAdd(currPoint, endPoint);

Not sure where the vector points to, if it may be rotated by 90, 180 or 270 degrees. If so, just add/subtract that amount from angle.

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Thank you, that's just what I was after. – user1772598 Oct 25 '12 at 14:53
    
@learnCocos2D : for me it has strange effect when the angle is negative. – Pax Maximinus May 3 '14 at 16:07
    
Correction : in my case, I shouldn't make the ccpAdd. Without everything is fine. I can't figure out why. – Pax Maximinus May 3 '14 at 16:50

I lost a lot of time trying to solve this issue. Finally I solved it thanks to accepted answer and finding the proper way to calculate the angle. This is my solution:

float angle = atan2(y2 - touchSprite->getPosition().y, x2 - touchSprite->getPosition().x) * 180 / M_PI;
float radiansAngle = CC_DEGREES_TO_RADIANS(angle);

Vec2 endPoint;
endPoint.y = sinf(radiansAngle) * lineLength + touchSprite->getPosition().y;
endPoint.x = cosf(radiansAngle) * lineLength + touchSprite->getPosition().x;
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