基于改进布谷鸟搜索和形态学的生物医学图像增强

Mousomi Roy, Shouvik Chakraborty, Kalyani Mali, Sankhadeep Chatterjee, Soumen Banerjee, Agniva Chakraborty, Rahul Biswas, Jyotirmoy Karmakar, Kyamelia Roy
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引用次数: 27

摘要

本文描述了一种基于形态学运算的改进布谷鸟搜索算法的生物医学图像增强方法。近年来,各种数字图像处理技术得到了发展。计算机视觉、机器接口、制造业、数据压缩存储、车辆跟踪等都是数字图像处理应用的一些领域。在大多数情况下,数字生物医学图像包含各种类型的噪声、伪影等,对直接应用没有用处。在任何过程中使用它之前,输入图像都必须经过一些预处理阶段;这种预处理通常被称为图像增强。本文提出了一种利用改进的布谷鸟搜索算法和形态学运算对生物医学图像进行增强的新方法。噪声和其他不需要的物体的存在会在图像中产生失真,并且会影响处理的最终结果。对于生物医学图像,结果的准确性是非常重要的。它还可能降低图像内许多特征的可辨别性。它会影响分类的准确性。本工作针对这一问题,通过将彩色图像转换为灰度图像后获得更好的对比度值进行改进。布谷鸟搜索算法的基本性质是其分量的幅度能够客观地描述灰度级对图像信息形成的贡献,以获得数字图像的最佳对比度值。该方法对传统的布谷鸟搜索方法进行了改进,采用McCulloch方法进行了levy飞行生成。计算出最佳对比度值后,进行形态学运算。在基于形态学操作的阶段,对强度参数进行调整以提高质量。实验结果表明了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biomedical image enhancement based on modified Cuckoo Search and morphology
This work describes an method for biomedical image enhancement using modified Cuckoo Search Algorithm with some Morphological Operation. In recent years, various digital image processing techniques are developed. Computer Vision, machine interfaces, manufacturing industry, data compression for storage, vehicle tracking and many more are some of the domains of digital image processing application. In most of the cases, digital biomedical images contains various types of noise, artifacts etc. and are not useful for direct applications. Before using it in any process, the input image has to be gone through some preprocessing stages; such preprocessing is generally called as image enhancement. In this work, a new technique has been proposed to enhance biomedical images using modified cuckoo search algorithm and morphological operation. Presence of noise and other unwanted objects generates distortion in an image and it will affect the ultimate result of the process. In case of biomedical images, accuracy of the results is very important. It may also decrease the discernibility of many features inside the images. It can affect the classification accuracy. In this work, this issue has been targeted and improved by obtaining better contrast value after converting the color image into grayscale image. The basic property of the cuckoo search algorithm is that the amplitudes of its components are capable to objectively describe the contribution of the gray levels to the formation of image information for the best contrast value of a digital image. The proposed method modified the conventional cuckoo search method by employing the McCulloch's method for levy flight generation. After computing the best contrast value, morphological operation has been applied. In morphological operation based phase, the intensity parameters are tuned for quality enhancement. Experimental results illustrate the effectiveness of this work.
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