一类图像处理中去噪算法的比较研究

C. Cocianu, L. State, P. Vlamos
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引用次数: 11

摘要

恢复技术的有效性主要取决于图像建模的准确性。最流行的退化模型之一是基于这样的假设,即图像模糊可以建模为与脉冲响应H的叠加,脉冲响应H可能是空间变的,其输出受加性噪声的影响。我们的研究旨在使用统计概念和工具来开发一类新的图像恢复算法。介绍了基于散点矩阵的启发式算法(HSBA)的几种变体、利用Bhattacharyya系数进行图像恢复的HBA算法、基于启发式回归的图像恢复算法以及基于创新算法的图像恢复新方法。提出了LMS类型的AMVR算法。对所提出的噪声去除算法的质量和效率进行了比较研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On a certain class of algorithms for noise removal in image processing: a comparative study
The effectiveness of restoration techniques mainly depends on the accuracy of the image modeling. One of the most popular degradation models is based on the assumption that the image blur can be modeled as a superposition with an impulse response H that may be space variant and its output is subject to an additive noise. Our research aimed at the use of statistical concepts and tools for developing a new class of image restoration algorithms. Several variants of a heuristic scatter matrix based algorithm (HSBA), the algorithm HBA that uses the Bhattacharyya coefficient for image restoration, the heuristic regression based algorithm for image restoration and new approaches of image restoration based on the innovation algorithm are reported. The LMS type algorithm AMVR is presented. A comparative study is performed and reported on the quality and efficiency of the presented noise removal algorithms.
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