A Novel Method for Despeckling of Ultrasound Images Using Cellular Automata-Based Despeckling Filter

Ankur Bhardwaj, Sanmukh Kaur, A. P. Shukla, M. Shukla
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引用次数: 5

Abstract

Ultrasound images have an inherent property termed as speckle noise that is the outcome of interference between incident and reflected ultrasound waves which reduce image resolution and contrast and could lead to improper diagnosis of any disease. In different approaches for reducing the speckle noise, there exists a class of filters that convert multiplicative noise into additive noise by using algorithmic functions. The current study proposes a cellular automata-based despeckling filter (CABDF) that implements a local spatial filtering framework for the restoration of the noisy image. In the proposed CABDF filter, a dual transition function has been designed which emphasizes the calculation of nearby weighted separation whose loads originate from the CABDF filtered image, including spatial separation, extend inconsistency, and statistical dispersion. The proposed filter found efficient both in terms of filtering and restoration of the original structure of the ultrasound images.
一种基于元胞自动机的超声图像去斑滤波方法
超声图像具有称为斑点噪声的固有特性,斑点噪声是入射和反射超声波之间干扰的结果,这会降低图像分辨率和对比度,并可能导致任何疾病的不正确诊断。在各种降低散斑噪声的方法中,存在一类利用算法函数将乘性噪声转化为加性噪声的滤波器。本研究提出了一种基于元胞自动机的去斑滤波器(CABDF),该滤波器实现了局部空间滤波框架,用于噪声图像的恢复。在本文提出的CABDF滤波器中,设计了一个双重过渡函数,着重计算CABDF滤波后图像载荷的附近加权分离,包括空间分离、扩展不一致和统计色散。所提出的滤波器在过滤和恢复超声图像的原始结构方面都是有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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