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A new adaptive switching median filter for impulse noise reduction with pre-detection based on evidential reasoning

机译:一种新的基于证据推理的带预检测的脉冲噪声降低自适应自适应中值滤波器

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摘要

Image denoising is a fundamental problem in image processing. The switching filtering is a popular approach to reduce the impulse noise. It faces two challenges including the impulse noise detection and filter design. The traditional detection methods based on single criterion or multiple criteria encounter uncertainty problems and produce many miss-detections and false alarms, especially when the image is severely corrupted. In this paper, the uncertainties encountered in the impulse noise detection are addressed using the theory of belief functions, and a multi-criteria detection strategy for the impulse noise based on evidential reasoning is proposed. Based on the pre-detection, an adaptive median filter is designed, which adaptively determines the size of the filtering window according to the estimated global noise density and the degree of local corruption. Experimental results and related analyses show that our proposed image denoising method for the impulse noise has superior performance compared with several state-of-the-art denoising methods.
机译:图像去噪是图像处理中的基本问题。开关滤波是一种减少脉冲噪声的流行方法。它面临两个挑战,包括脉冲噪声检测和滤波器设计。基于单个准则或多个准则的传统检测方法会遇到不确定性问题,并且会产生许多误检测和误报,尤其是在图像严重损坏时。本文利用置信函数理论解决了脉冲噪声检测中的不确定性,提出了基于证据推理的脉冲噪声多准则检测策略。基于预检测,设计了一种自适应中值滤波器,该滤波器根据估计的整体噪声密度和局部破坏程度来自适应地确定滤波窗口的大小。实验结果和相关分析表明,与几种最新的去噪方法相比,我们提出的脉冲噪声图像去噪方法具有更好的性能。

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