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Mat img=imread("image_location");

I studied that 'img' variable is like an object reference variable in java which refers the original object(an image in this case). Out of curiosity i thought to find out what the 'img' variable holds.If it refers to the actual object,it should hold an address and return the address when i use

cout<<img;

But,Shock,it is returning the actual image(pixel values) to the output. I think there is something wrong with my understanding. Plz help,I'm a noob programmer who's trying to make my brain understand these concepts.

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Yes, better improve first paragraph. –  Abid Rahman K May 13 '12 at 5:10

3 Answers 3

up vote 2 down vote accepted

cv::Mat holds the data representing the image in an array, plus other data specific to the cv::Mat instance. The data array itself depends on the image's format. You can have different numbers of channels and channel depth, and when you use imread you can pass a second parameter that gives you some control over this. So cv::Mat does not have a pointer to the original object, it has a pointer to an array containing data representing that object.

On top of that, in newer versions of OpenCV, the ostream& operator<< is overloaded for cv::Mat, and that tries to produce a nice printout of the array values in matrix format. This is what you see when you std::cout << someMat;

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so when ever 'cout' sees a cv::Mat variable(which contains the information about the actual image),it will call a method which prints the actual image(pixel values).is that right?? –  tez May 13 '12 at 14:36
    
@tez that seems to be the case, although I think it may print out all the channels for multi-channel images. –  juanchopanza May 13 '12 at 14:39
    
I think my brain is kind of clear now.Thanx buddy :) –  tez May 13 '12 at 14:46

The Mat object contains a pointer to the data, but it also contains other values. See the documentation for more information.

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It can be caused by the overloading of operator<< for the cv::Mat.

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so when ever 'cout' sees a cv::Mat variable(which refers the image),it will call a method which prints the actual image(pixel values).is that right?? –  tez May 13 '12 at 14:38
    
Yes, it will work this way. –  Alex May 13 '12 at 15:08
    
okay.got it!!! thanx :) –  tez May 14 '12 at 9:32
    
@tez you're welcome ) –  Alex May 14 '12 at 9:34

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