Surfacelet domain BKF model Bayes video denoising method
A Bayesian and video technology, applied in the Surfacelet domain BKF model Bayesian video denoising, video image additive noise removal field, can solve the problem of insufficient use of coefficient relationship, the denoising effect needs to be improved, etc., to overcome The effect of underutilization, denoising hold, improving denoising effect
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[0052] Attached below figure 1 The present invention is further described.
[0053] Step 1, input a video to be denoised, the video size is 192×192×192 pixels, and the added noise is Gaussian white noise.
[0054] Step 2, obtain the Surfacelet domain coefficients of the video to be denoised.
[0055] Call the Surfacelet toolkit to perform Surfacelet transformation on the video to be denoised, and obtain the high-frequency subband coefficients in the Surfacelet domain of the video to be denoised.
[0056] Step 3, use the noise estimation formula to estimate the noise standard deviation of the video to be denoised.
[0057]In the high-frequency detail subband of the Surfacelet domain of the noisy video, its energy is mainly provided by the noise. The noise in the Surfacelet domain is independent and identically distributed Gaussian white noise, and the noise variance is constant, so Donoho proposes to use the robust median to Estimate the noise standard deviation.
[0058] T...
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