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.

Basically, I am making a view that has two images. Image one is shown in a right triangle that takes up the top left of the view, and image two takes the up the right triangle that takes up the bottom right.

Imagine a square cut diagonally, a different image exists in each resulting half.

I've been reading a lot about masks, but I don't want to use another image to mask these images.

I'm looking for a way to give it 3 points, which form that triangle, and then have it clip the image that way.

I feel like this is probably easy to do in Coregraphics, I'm just missing the calls I think.

Any help is greatly appreciated!

share|improve this question

1 Answer 1

up vote 2 down vote accepted

Here's one way, using clipping paths on an image context. The example is for an image size of 256 x 256, but you should easily be able to adapt it to your needs.

UIGraphicsBeginImageContext(CGSizeMake(256, 256));
CGContextRef context = UIGraphicsGetCurrentContext();
CGAffineTransform flipVertical = CGAffineTransformMake(1, 0, 0, -1, 0, 256); 
CGContextConcatCTM(context, flipVertical);
CGContextBeginPath(context);
CGContextMoveToPoint(context, 0, 0);
CGContextAddLineToPoint(context, 0, 256);
CGContextAddLineToPoint(context, 256, 256);
CGContextClosePath(context);
CGContextSaveGState(context);
CGContextClip(context);
CGContextDrawImage(context, CGRectMake(0, 0, 256, 256), [image1 CGImage]);
CGContextRestoreGState(context);
CGContextBeginPath(context);
CGContextMoveToPoint(context, 0, 0);
CGContextAddLineToPoint(context, 256, 0);
CGContextAddLineToPoint(context, 256, 256);
CGContextClosePath(context);
CGContextSaveGState(context);
CGContextClip(context);
CGContextDrawImage(context, CGRectMake(0, 0, 256, 256), [image2 CGImage]);
CGContextRestoreGState(context);
UIImage *image = UIGraphicsGetImageFromCurrentImageContext(); // image contains the result
UIGraphicsEndImageContext();
share|improve this answer

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.