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Medical Image Compression Based on Combining Region Growing and Wavelet Transform

机译:基于区域增长与小波变换相结合的医学图像压缩

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Medical data grows very fast and hence medical institutions need to store high volume of data about their patients. Medical images are one of the most important data types about patients. As a result, hospitals have a high volume of images that require a huge storage space and transmission bandwidth to store these images. Most of the time transmission bandwidth is not sufficient to storing and transmit all the image data with the required efficiency. Image compression is the process of encoding information using fewer bits than an un-encoded representation using specific encoding schemes. Compression is useful because it helps to reduce the consumption of expensive resources, such as storage space or transmission bandwidth (computing). In this paper, a medical image compression technique based on combining region growing and wavelets algorithms was introduced. A region growing algorithm is used to simply partitioning the image into two parts foreground and background depending on the intensity values. Then, wavelets methods applied on foreground regions including important regions. These regions are compressed lossless to keep the appearance of the image as intact while making the simplifications and the other region is lossy compressed to reduce the file size, leading to that the overall compression ratio gets better and the reconstructed image seems like the original one. To prove the capability of the proposed algorithm, different four image structures from X-Ray, Computed tomography CT and Magnetic resonance imaging MRI types are tested.
机译:医疗数据增长非常快,因此医疗机构需要存储有关其患者的大量数据。医学图像是有关患者的最重要的数据类型之一。结果,医院具有大量图像,需要巨大的存储空间和传输带宽来存储这些图像。大多数时候,传输带宽不足以以所需的效率存储和传输所有图像数据。与使用特定编码方案的未编码表示相比,图像压缩是使用更少的位对信息进行编码的过程。压缩很有用,因为它有助于减少昂贵资源的消耗,例如存储空间或传输带宽(计算)。本文介绍了一种基于区域增长和小波算法相结合的医学图像压缩技术。区域增长算法用于根据强度值将图像简单分为前景和背景两部分。然后,将小波方法应用于包括重要区域在内的前景区域。对这些区域进行无损压缩,以保持图像的完整性,同时简化操作;对其他区域进行有损压缩,以减小文件大小,从而使整体压缩率变好,并且重建的图像看起来像原始图像。为了证明该算法的功能,测试了X射线,计算机断层扫描CT和磁共振成像MRI类型的四种不同的图像结构。

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