Question: USING PYTHON PLEASE. image1.png image2.png Implement a two-dimensional Gaussian kernel with a variation (sigma) equal to 3, 5, and 10. Apply these three Gaussian kernels

USING PYTHON PLEASE.

image1.png

image2.png
Implement a two-dimensional Gaussian kernel with a variation (sigma) equal to 3, 5, and 10. Apply these three Gaussian kernels to imagel.png and image2.png separately, show them on the screen, discuss the differences of Gaussian operations with different sigmas (as comments on the code). Also, compare your results with question 1 and question 2: what are the differences between these three filters, what do you observe (as comments on the code)? Which filtering is the most effective in which images? Why ? (For convolution operation, you can use built-in function. Do not use built-in function for Gaussian filtering.) Implement a two-dimensional Gaussian kernel with a variation (sigma) equal to 3, 5, and 10. Apply these three Gaussian kernels to imagel.png and image2.png separately, show them on the screen, discuss the differences of Gaussian operations with different sigmas (as comments on the code). Also, compare your results with question 1 and question 2: what are the differences between these three filters, what do you observe (as comments on the code)? Which filtering is the most effective in which images? Why ? (For convolution operation, you can use built-in function. Do not use built-in function for Gaussian filtering.)
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