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I have been trying to find a way to generate similarity score ( in %) after comparing two images using SIFT in python (2.7.x) opencv (2.4.9). I was only able to find examples that draw lines between matches. How do I proceed with this.

  • to be exact i'm looking for python implementation of VL_UBCMATCH function – user93 May 12 '16 at 6:08
  • Did you find it ? – edyvedy13 Jun 26 '17 at 15:22
  • 1
    No I couldn't find it. An example code would be really helpful – user93 Jun 26 '17 at 16:18
  • Does stackoverflow.com/a/51728654/1021819 help? – jtlz2 Sep 19 at 11:51
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There is an opencv equivalent of vl_ubcmatch function in Matlab.

Here is the excerpt from opencv documentation.

# create BFMatcher object
bf = cv2.BFMatcher(cv2.NORM_HAMMING, crossCheck=True)

# Match descriptors.
matches = bf.match(des1,des2)

matches = bf. match (des1, des2) matches the two sets of descriptors and returns a list of DMatch objects. This DMatch object has four attributes: distance, trainIdx, queryIdx, imgIdx. These return values are equivalent of vl_ubcmatch function.

I hope you will find it helpful.

  • What I need is score. VL_UBCMATCH in addition to matches returns score – user93 May 15 '16 at 17:46
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    According to VLFEAT documentation, VL_UBCMATCH returns the squared Euclidean distance to the score variable. In fact, when I try SIFT Tutorial, the score variable has distance values between the two SIFT descriptors. scores(:, 1) is 21647, and sum((int64(da(:, 9)) - int64(db(:, 618))) .^2) is same value , where da(:, 9) is 9th SIFT descriptor in ImageA, db(:, 618) is 618th SIFT descriptor in ImageB. Isn't this your desired output? – satojkovic May 19 '16 at 16:06

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