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# Python code to find the co-ordinates of |
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# the contours detected in an image. |
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import numpy as np |
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import cv2 |
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# Reading image |
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font = cv2.FONT_HERSHEY_COMPLEX |
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img2 = cv2.imread('card.jpg', cv2.IMREAD_COLOR) |
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# Reading same image in another |
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# variable and converting to gray scale. |
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img = cv2.imread('card.jpg', cv2.IMREAD_GRAYSCALE) |
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# Converting image to a binary image |
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# ( black and white only image). |
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_, threshold = cv2.threshold(img, 110, 255, cv2.THRESH_BINARY) |
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# Detecting contours in image. |
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contours, _= cv2.findContours(threshold, cv2.RETR_TREE, |
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cv2.CHAIN_APPROX_SIMPLE) |
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# Going through every contours found in the image. |
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for cnt in contours : |
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approx = cv2.approxPolyDP(cnt, 0.009 * cv2.arcLength(cnt, True), True) |
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# draws boundary of contours. |
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cv2.drawContours(img2, [approx], 0, (0, 0, 255), 5) |
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# Used to flatted the array containing |
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# the co-ordinates of the vertices. |
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n = approx.ravel() |
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i = 0 |
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for j in n : |
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if(i % 2 == 0): |
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x = n[i] |
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y = n[i + 1] |
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# String containing the co-ordinates. |
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string = str(x) + " " + str(y) |
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if(i == 0): |
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# text on topmost co-ordinate. |
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cv2.putText(img2, "Arrow tip", (x, y), |
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font, 0.5, (255, 0, 0)) |
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else: |
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# text on remaining co-ordinates. |
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cv2.putText(img2, string, (x, y), |
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font, 0.5, (0, 255, 0)) |
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i = i + 1 |
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# Showing the final image. |
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cv2.imshow('image2', img2) |
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# Exiting the window if 'q' is pressed on the keyboard. |
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if cv2.waitKey(0) & 0xFF == ord('q'): |
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cv2.destroyAllWindows() |