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Study on Medical Image Processing Algorithm Based on Contourlet Transform and Correlation Theory

机译:基于Contourlet变换和相关理论的医学图像处理算法研究

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In recent years, processed medical image becomes more and more important to diagnosis. Anamorphic image may result in wrong judgment on state of an illness, even leads to fateful danger. Meanwhile, more efficient data transportation and storage are required with the development of high-resolution photography. Therefore, thousands of researchers work on the field of medical image processing. In this paper, contourlet transform, which may provide with tight bracing and multi-scale analysis, is introduced. And a new medical image processing algorithm based on contourlet transform and correlation theory is presented. This algorithm possesses some excellent performances such as multi-scale analysis, time-frequency-localization and multi-directions. Especially, this algorithm has excellent performance when describing anisotropic 2-D data. So high-quality medical image can be reconstructed even though a relative few coefficients are employed.To verify the algorithm, some medical images were processed. The experimental results show that this algorithm has better performance in compression and denoising than that of wavelet transform.
机译:近年来,处理后的医学形象对诊断变得越来越重要。变形形象可能导致对疾病状态的错误判断,甚至导致危险。同时,随着高分辨率摄影的发展,需要更高效的数据运输和存储。因此,成千上万的研究人员在医学图像处理领域工作。在本文中,引入了可以提供紧密支撑和多尺度分析的轮廓曲线变换。并提出了一种基于Contourlet变换和相关理论的新的医学图像处理算法。该算法具有一些优异的性能,例如多尺度分析,时间频率定位和多向。特别是,在描述各向异性2-D数据时,该算法具有出色的性能。因此,即使采用相对少数系数,也可以重建高质量的医学图像。验证算法,处理了一些医学图像。实验结果表明,该算法在压缩和去噪方面具有比小波变换的更好的性能。

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