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The getMinFilter method takes (int,int,cvSize), how is OpenCv expecting me to pass a 2D image in an int?

srcType – Input image type. Only CV_8UC1 and CV_8UC4 are supported.

dstType – Output image type. It supports only the same type as the source type.

gpu::getMinFilter_GPU(int srcType, int dstType, const Size& ksize, Point anchor=Point(-1,-1))

Thanks

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What makes you think you need to pass an image to that function? –  PlasmaHH Oct 11 '11 at 11:16
    
the kernel is 2D so I guess the input and output must be 2D, either an image or a Mat. However the method only accepts int for both input and output. –  Sharpie Oct 11 '11 at 11:18
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I have not the slightest idea of opencv, but from a quick look at the documentation where it says creates minimum filter I would say that it creates a filter, and does not do the filtering. This seems to be consistent with the return type of Ptr<BaseFilter_GPU> –  PlasmaHH Oct 11 '11 at 11:22

1 Answer 1

up vote 1 down vote accepted

Actually getMinFilter_GPU function does not do any any filtering. It just returns a special "processor" object which is able to do filtering.

Convenient way to use gpu filtering functions in OpenCV is:

  • Create a filter object (returned by getMinFilter_GPU and many other functions);
  • Create an engine object (for example with createFilter2D_GPU);
  • Store obtained pointer in your image processing context (you will kill all the performance if recreate the engine/filters object for each frame);
  • For each input frame call apply method of the engine object to make a filtering.

I.e:

 GpuMat src, dst;
 Ptr<FilterEngine_GPU> filter = createFilter2D_GPU(
     getMinFilter_GPU(CV_8UC1, CV_8UC1, Size(3,3)), CV_8UC1, CV_8UC1);
 filter->apply(src, dst);
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