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In the following program for loading and displaying image in openCV

#include <opencv2/core/core.hpp>   
#include <opencv2/highgui/highgui.hpp>  
#include <iostream>

using namespace cv;  
using namespace std;

int main( int argc, char** argv )  
    if( argc != 2)   
     cout <<" Usage: display_image ImageToLoadAndDisplay" << endl;
     return -1;

    Mat image;
    image = imread(argv[1], CV_LOAD_IMAGE_COLOR);   // Read the file

    if(! )                              // Check for invalid input
        cout <<  "Could not open or find the image" << std::endl ;
        return -1;

    namedWindow( "Display window", CV_WINDOW_AUTOSIZE );// Create a window for display.
    imshow( "Display window", image );                   // Show our image inside it.

    waitKey(0);                                          // Wait for a keystroke in the window
    return 0;

I am not able to understand how the programmer is specifying the input image. This is because argv[1] is just an array element and I think has no relation to the image to be specified, and it hasn't been defined anywhere in the program. Can anybody clear my doubts?

One more thing: What is being checked in the "if" statement that checks if(argc !=2)?

share|improve this question
See – B... Sep 5 '13 at 0:49

3 Answers 3

up vote 5 down vote accepted
main( int argc, char** argv )
           |            |
           |            |
           |            +----pointer to supplied arguments
           +--no. of arguments given at command line (including executable name)

Example :

display_image image1.jpg


argc will be 2
argv[0] points to display_image
argv[1] points to image1

if(argc !=2 )
   ^^ Checks whether no. of supplied argument is not exactly two
share|improve this answer
Thanks for your reply...but when do i have to write "display_image iamge1.jpg", i mean are we going to write it in the program?? – venus Sep 4 '13 at 17:34
@venus When you compile & link your program , it'll generate an executable with same name as that of your .cpp file. Use ./display_image image1.jpg at the terminal (on linux) or display_image.exe image1.jpg at command prompt (on windows). For more details google "how to use command line arguments in c++" – P0W Sep 4 '13 at 17:39
@POW Thanks for your works...thank you once again – venus Sep 4 '13 at 17:53

When a user runs the program from a command line interface, they can specify a path to the file after typing the program name: imdisplay image.jpg

argc contains the number of total arguments, including the name of the program. Thus if the user didn't type an image name, then argc is 1. argv is an array of char*s of size argc. so argv[0] is the name of the program as typed by the user, and argc[1] is the first argument.

if (argc != 2) will happen if the user is using the program incorrectly.

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Thanks for your reply...but what do you mean by program name, is it the name of .cpp file inside a project(ie in Eclipse). Where do I have to write imdisplay image.jpg??? – venus Sep 4 '13 at 17:38

The program is meant to be called from the command line with one argument which specifies the filename:

$ display_image filename.jpg

In this case the argv[1] will be a pointer to the string "filename.jpg".

share|improve this answer
Thanks for your reply...but what does the filename it image name? I am using Eclipse, so, can I use command line interface?..pardon me for bothering you if my question sound silly. – venus Sep 4 '13 at 17:44
Yes, it's a command line program, and you run it by typing the name of the program followed by the name of the file you want to process. I don't know anything about Eclipse I'm afraid but I expect it has a way to specify command line arguments for the target program. – Paul R Sep 4 '13 at 17:53
Thank you for your positive response...i got it...thank you – venus Sep 4 '13 at 17:55

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