2018
DOI: 10.1007/s11277-017-4958-9
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Enhancement of Infrared Images Based on Efficient Histogram Processing

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Cited by 33 publications
(6 citation statements)
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“…Th he e " " à à t tr ro ou us s" " w wa av ve el le et t t tr ra an ns sf fo or rm m a al lg go or ri it th hm m It is a discrete approach of wavelet transform [16,20].The advantage of this algorithm is the shift invariance. This method was used in many applications such as signal analysis, data fusion and pattern recognition [21,22,23]. Our proposed approach uses à trous wavelet transform to decompose the image into wavelet planes.…”
Section: 2 2 Tmentioning
confidence: 99%
“…Th he e " " à à t tr ro ou us s" " w wa av ve el le et t t tr ra an ns sf fo or rm m a al lg go or ri it th hm m It is a discrete approach of wavelet transform [16,20].The advantage of this algorithm is the shift invariance. This method was used in many applications such as signal analysis, data fusion and pattern recognition [21,22,23]. Our proposed approach uses à trous wavelet transform to decompose the image into wavelet planes.…”
Section: 2 2 Tmentioning
confidence: 99%
“…where k represents the number of unique intensities present in the image. The gray levels of the input and output (processed) images are denoted by g i and c i , respectively, with i = 0, 1… [27].…”
Section: Data Augmentation and Histogram Matchingmentioning
confidence: 99%
“…The results demonstrate that the proposed method improves the quality of the final fused image in terms of the MI (mutual information) and CC parameters. Another study presented in [25] enhanced the visibility of the IR (infrared) night vision images through an efficient histogram processing method that includes histogram equalization and matching. However, it is worth noting that the FS technique from "information" is pretty vital for studying machine learning recognition activities.…”
Section: Fs Issuesmentioning
confidence: 99%