An edge detection method for oil well casing damage images based on grey relational analysis and zernike moment
A grey relational analysis, image edge technology, applied in the field of image processing, can solve problems such as failure to achieve good recognition results, low edge accuracy, noise interference, etc.
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Embodiment 1
[0032] The image processing in this example can be divided into two parts. The first part uses the gray correlation analysis algorithm to detect the pixel-level edge of the casing damage image of the oil well pipe to realize the pixel-level edge location. The second part uses the Zernike moment operator to perform secondary subpixel-level edge positioning on the image in the previous step. Take the original image of M×N pixel size as an example to illustrate the implementation steps of this example:
[0033] (1) Use the gray correlation analysis algorithm to detect the edge of the preprocessed oil well casing damage image, and complete the rough positioning of the target edge;
[0034] 1. Determine the reference sequence and comparison sequence
[0035] For the convenience of calculation, for an image of M×N size, a 3×3 template with a value of 1 is used as a reference sequence, namely: x 0 =(1,1,1,1,1,1,1,1,1), the comparison sequence is composed of each pixel in the image ...
Embodiment 2
[0076] Take the video screenshot of the underground TV software system in a certain well depth as an example to illustrate the implementation steps of this example:
[0077] (1) Use the gray correlation analysis algorithm to detect the edge of the preprocessed oil well casing damage image, and complete the rough positioning of the target edge;
[0078] 1. Determine the reference sequence and comparison sequence
[0079] For the convenience of calculation, the 3×3 template with the value of 1 is used as the reference sequence, namely: x 0 =(1,1,1,1,1,1,1,1,1), the comparison sequence is composed of each pixel in the image and the surrounding 8 neighboring pixels, that is:
[0080] x ij =(x i-1,j-1 ,x i-1,j ,x i-1,j+1 ,x i,j-1 ,x i,j ,x i,j+1 ,x i+1,j-1 ,x i+1,j ,x i+1,j+1 )
[0081] Where i=1,2,...,M; j=1,2,...,N, when i,j=1 or i=M, j=N, repeat the corresponding pixel on the adjacent row or column value as the value of the point. For convenience of description, us...
Embodiment 3
[0122] Take the video screenshot of the underground TV software system in a certain well depth as an example to illustrate the implementation steps of this example:
[0123] (1) Use the gray correlation analysis algorithm to detect the edge of the preprocessed oil well casing damage image, and complete the rough positioning of the target edge;
[0124] 1. Determine the reference sequence and comparison sequence
[0125] For the convenience of calculation, the 3×3 template with the value of 1 is used as the reference sequence, namely: x 0 =(1,1,1,1,1,1,1,1,1), the comparison sequence is composed of each pixel in the image and the surrounding 8 neighboring pixels, that is:
[0126] x ij =(x i-1,j-1 ,x i-1,j ,x i-1,j+1 ,x i,j-1 ,x i,j ,x i,j+1 ,x i+1,j-1 ,x i+1,j ,x i+1,j+1 )
[0127] Where i=1,2,...,M; j=1,2,...,N, when i,j=1 or i=M, j=N, repeat the corresponding pixel on the adjacent row or column value as the value of the point. For convenience of description, us...
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