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A FRAMEWORK FOR NUCLEAR IMAGE ENHANCEMENT BASED ON THE ANSCOMB TRANSFORM AND THE BAYESIAN THRESHOLDING

机译:基于anscomb变换和贝叶斯阈值的核图像增强框架

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Scintigraphic imagery is an important data source since it provides morphological and functional clinical informations. However, scintigraphic images present very bad quality because of several degradation factors. In fact, the recorded data are embedded in noise modelled as the realisation of Poisson process. The aim of this paper is to provide a framework able to enhance nuclear images quality by Poisson intensity estimation. This framework consists, in a first step, of performing variance-stabizing step for the poisson process thanks to the Anscombe transformation. So the obtained data can be considered as contaminated by a white Gaussian noise. In a second step, it uses a bayesian technique inspired of Pizurica approach, known in the literature for exhibiting good results as for white Gaussian noise. In fact, the complex wavelet packets were exploited regarding to Pizurica algorithm.
机译:Scintigraphic Imagery是一个重要的数据源,因为它提供了形态学和功能临床信息。然而,由于几种劣化因素,闪烁图像显示出质量非常差。实际上,记录的数据嵌入到噪声模型中,作为泊松过程的实现。本文的目的是提供一种能够通过泊松强度估计来增强核图像质量的框架。这框架在第一步中,由于ANSCOMBE转换,在第一步中为泊松过程执行方差稳定步骤。因此,所获得的数据可以被认为是由白色高斯噪声污染的。在第二步中,它使用贝叶斯技术的启发,灵感在文献中已知的,以表现出良好的效果,如白色高斯噪音。实际上,复杂的小波包被关于Pizurica算法的利用。

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