2022
DOI: 10.11591/eei.v11i1.3332
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Performance analysis of peak signal-to-noise ratio and multipath source routing using different denoising method

Abstract: The problem of denoising iris pictures for iris identification systems will be discussed, as well as a novel solution based on wavelet and median filters. Different salt and pepper extraction algorithms, as well as Gaussian and speckle noises, were used. Because diverse sounds decrease picture quality during image collection, noise reduction is even more important. To reduce sounds like salt and pepper, Gaussian, and speckle, filtering (median, wiener, bilateral, and Gaussian) and wavelet transform are utilise… Show more

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Cited by 17 publications
(9 citation statements)
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“…Those approaches depend upon issue change, but also, these approaches hanging around algorithmic change are those two categories of inter categorization approaches. This same primary principle behind issue transforming techniques was essential to break any interclassifying challenge down several separate classifiers [14]. Then-current singular category strategies may be employed effectively to solve this challenge.…”
Section: Proposed Methodsmentioning
confidence: 99%
“…Those approaches depend upon issue change, but also, these approaches hanging around algorithmic change are those two categories of inter categorization approaches. This same primary principle behind issue transforming techniques was essential to break any interclassifying challenge down several separate classifiers [14]. Then-current singular category strategies may be employed effectively to solve this challenge.…”
Section: Proposed Methodsmentioning
confidence: 99%
“…When utilizing a median filter, each output pixel is set to the average of the neighborhood pixels of the associated input, which is similar to how an averaging filter works. The value of each output pixel, however, is instead decided by the median of the nearby pixels when using median filtering [19]. The median is significantly less vulnerable to outliers (extreme values) than the mean is.…”
Section: The Median Filtermentioning
confidence: 99%
“…The peak signal-to-noise ratio ( PSNR ) can objectively quantify the denoising effect. NMISE represents the normalized mean squared error of integration between the denoised and noise-free data [ 53 ]. …”
Section: Experimental Analysismentioning
confidence: 99%