基于经验小波变换的医学图像融合增强方法

1 Pub Date : 2023-04-01 DOI:10.46632/eae/2/1/10
Reddy Nelaturi Nagendra, Jayalakshmi Bitra, Rao Goli Srinivasa
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引用次数: 0

摘要

制作图像乳剂的过程是从众多图像中选择关键细节,并将它们组合成更小的图像,通常是一根骨头。在卫星成像、遥视、目标阴影、医学成像等许多领域,图像乳剂都是非常有用的。本设计试图说明经验小波变换与简单平均乳化规则一起使用时如何乳化多焦点图像。建议的方法已经使用通用数据集进行了测试,用于合并具有不同焦点的图像。经验小波变换主要是一种使用自适应方法对信号进行多分辨率分析的方法。所建议的方法的有效性是用多种方法来计算的。视觉感知和常见质量指标的评估,如均方根误差、熵和峰值信噪比,被用来比较所提出的系统的性能。实验结果表明,本文提出的基于经验小波变换(EWT)的方法优于现有的方法。根据所建议的准则,融合后的图像的熵值应高于分量图像,因为随着熵值的增加,乳剂的效率会降低。这项技术考虑了核磁共振成像和CT扫描。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Empirical Wavelet Transform Method for Enhancement of Medical Image Fusion
The process of creating an image's emulsion is selecting the crucial details from numerous images and combining them into smaller images, often one bone. In the areas of satellite imaging, remote seeing, target shadowing, medical imaging, and many other areas, image emulsion is quite useful. This design tries to illustrate how Empirical Wavelet transfigures work when used with the Simple Average Emulsion Rule to emulsify multi-focus images. The suggested approach has been tested using common datasets for merging images with various focal points. Empirical Wavelet Transform is primarily a method that uses an adaptive approach to produce a Multi-Resolution Analysis of the signal. The effectiveness of the suggested approach is calculated in a variety of ways. Visual perception and the evaluation of common quality metrics, such as Root Mean Squared Error, Entropy, and Peak Signal to Noise ratio, are used to compare the performance of the proposed system. The proposed fashion based on the Empirical Wavelet Transform (EWT) outperforms the existing methods, according to the study of the experimental results. According to the suggested criteria, the fused image's entropy should be higher than the component images' because the emulsion's efficiency decreases as entropy increases. This technique takes MRI and CT scans into account.
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