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I am using OpenCV 2.2 on MS Visual C++ 2010 on Windows 7. 32 bit application.

I am trying to make the following matrix. [-1 0 1].

I try

cv::Mat Kernel = cv::Mat::zeros(1, 3, CV_8S );

Kernel.data[0] = -1;

Kernel.data[2] = 1;

I get [255 0 1].

I get the same result regardless of what I replace CV_8S with.

Can anyone see what I am doing wrong?

Thanks, Peter

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Are you sure it isn't just being displayed as an unsigned byte? –  tbridge Jan 12 '12 at 21:32
    
According to the MSVS watch window, it is giving me a data type of unsigned char * so -1 ->255. I don't know why CV_8S gives me unsigned. Thank you for your reply. –  OtagoHarbour Jan 12 '12 at 21:55
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1 Answer 1

up vote 2 down vote accepted

the data member of cv::Mat is in fact uchar* and not char* regardless of the actual matrix type (i.e. CV_8U), I guess you print the values by iterating over kernel.data without casting data from uchar* to char* (or checking them with watch without doing the same) and that why you cant see negative number.

Additionally, you have a nicer syntax to achieve the same

cv::Mat kernel = (cv::Mat_<char>(1,3) << -1, 0, -1);
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the best way to work in such situations is to create a separate pointer var, same type as the matrix, and use it. char* dataPtr = (char*)kernel.data Then, printing/modifying is straitforward/ –  sammy Jan 13 '12 at 8:18
    
what if I need dynamic rows and columns? –  Shohreh Apr 29 at 7:53
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