Color edge detection in presence of gaussian noise using nonlinear pre-filtering

F. Russo, A. Lazzari
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引用次数: 38

Abstract

A new technique for edge detection in color images corrupted by Gaussian noise is presented. The proposed method adopts a multipass processing approach that gradually reduces the noise in the R, G, and B components of the image. The prefiltering steps are specifically designed to operate in conjunction with the edge detection algorithm. They adopt two different models for data smoothing that aim at avoiding false edges produced by noise and at preserving the image details during noise removal. The subsequent algorithm for edge detection has been designed to further decrease the sensitivity to noise of the overall method. Thus, accurate edge maps can be achieved even in the presence of highly corrupted data. Results of computer simulations show that the proposed approach significantly improves our previous methods and performs better than other techniques in the literature.
基于非线性预滤波的高斯噪声彩色边缘检测
提出了一种新的高斯噪声彩色图像边缘检测方法。该方法采用多通道处理方法,逐步降低图像R、G、B分量中的噪声。预滤波步骤专门设计用于与边缘检测算法一起操作。他们采用了两种不同的数据平滑模型,旨在避免由噪声产生的假边缘,并在去噪过程中保留图像细节。为了进一步降低整个方法对噪声的敏感性,设计了后续的边缘检测算法。因此,即使存在高度损坏的数据,也可以实现精确的边缘映射。计算机模拟结果表明,所提出的方法显著改进了我们以前的方法,并且比文献中的其他技术性能更好。
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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