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A Novel Approach on Discrete Cosion Transform Based Image Compression Technique For Lung Cancer

机译:一种新的肺癌图像压缩技术的离散智慧变换方法

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摘要

In medical field the volume of medical image data produced every-day is ever growing, particularly in grouping with the improved scanning resolutions and the importance of volumetric medical image data sets. In this work, five image compression methods are simulated. They are Karhunen-Loeve Transform (KLT), Walsh-Hadamard Transform (WHT), Fast Fourier Transform (FFT), proposed Sparse Fast Fourier Transform (SFFT) and Discrete Cosine Transform (DCT). The results of simulation are shown and compared different quality parameters of it are by applying on various lung cancer CT Scan medical images. The DCT method algorithm was given better results like Compression Ratio (CR), Structural Content (SC), Mean Square Error (MSE) and Peak Signal to Noise Ratio (PSNR) compare to other Transform methods. The DCT technique given improved result compared with other methods in all evaluation measures.
机译:在医疗领域,每天产生的医学图像数据的体积是越来越多的,特别是通过改进的扫描分辨率和体积医学图像数据集的重要性分组。 在这项工作中,模拟了五种图像压缩方法。 它们是Karhunen-Loeve变换(KLT),Walsh-Hadamard变换(WHT),快速傅里叶变换(FFT),提出了稀疏快速傅里叶变换(SFFT)和离散余弦变换(DCT)。 通过施加各种肺癌CT扫描医学图像,显示了模拟结果并比较了不同的质量参数。 DCT方法算法具有更好的结果,如压缩比(CR),结构内容(SC),均方误差(MSE)和峰值信号与噪声比(PSNR)与其他变换方法相比。 与所有评估措施中的其他方法相比,DCT技术得到了改进的结果。

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