1

I have an image with dimension 612x408 (widthxheight).

When I open it using opencv cv2.imread(/path/to/img) it shows me (408,612,3).

This is not the problem

When I cv2.imshow() it shows the image correctly with width larger than height like a normal horizontal rectangle

I added mouseCallback to get the pixel position so when I put my mouse nearer to the right edge of image I get error IndexError: index 560 is out of bounds for axis 0 with size 408 although I have clicked on the image.

I searched on SO but could not find similar question

import cv2
def capture_pos(event,x,y,flags,param):
    if event == cv2.EVENT_LBUTTONDOWN:
        mouseX = x
        mouseY = y
        print('mouse clicked at x={},y={}'.format(mouseX,mouseY))
        h,s,v = img[mouseX,mouseY]
        print('h:{} s:{} v:{}'.format(h,s,v))
img = cv2.imread('./messi color.png')
img = cv2.cvtColor(img,cv2.COLOR_BGR2HSV)
cv2.namedWindow('get pixel color by clicking on image')
cv2.setMouseCallback('get pixel color by clicking on image',capture_pos)
cv2.imshow('get pixel color by clicking on image',img)
cv2.waitKey(0)
cv2.destroyAllWindows()
3
  • It's (rows, columns, channels)... nothing wrong with that. Same order should be used when indexing -- rows first, columns second. You got it switched around in img[mouseX,mouseY]. – Dan Mašek Apr 11 '19 at 18:03
  • 1
    Oh thanks! @Dan the correct code is img[mouseY,mouseX] – Yusuf Apr 11 '19 at 18:17
  • Can you post it as answer so that I can mark it since it helped me – Yusuf Apr 11 '19 at 18:21
4

The dimensions you're getting seems correct. You can check the dimensions of the image with

print(img.shape)

You will get the image as (height, width) but this may be a bit confusing since we usually specify images in terms of width x height. This is because images are stored as a Numpy array in OpenCV. Therefore, to index the image, you can simply use img[Y:X] as height is the first entry in the shape and the width is the second.

Since it is Numpy array we get (rows,cols) which is equivalent to (height,width).

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.