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Performance evaluation of functional medical imaging compression via optimal sampling schedule designs and cluster analysis

机译:通过最佳采样计划设计和聚类分析对功能医学影像压缩进行性能评估

摘要

In previous work we have described a technique for the compression of positron emission tomography (PET) image data in the spatial and temporal domains based on optimal sampling schedule designs (OSS) and cluster analysis. It can potentially achieve a high data compression ratio greater than 80:1. However, the number of distinguishable cluster groups in dynamic PET image data is a critical issue for this algorithm that has not been experimentally analyzed on clinical data. In this paper, the problem of experimentally determining the ideal cluster number for the algorithm for PET brain data is addressed.
机译:在先前的工作中,我们已经描述了一种基于最佳采样计划设计(OSS)和聚类分析在空间和时间域上压缩正电子发射断层扫描(PET)图像数据的技术。它有可能实现大于80:1的高数据压缩率。但是,动态PET图像数据中可区分的簇组的数量是该算法的关键问题,尚未对临床数据进行实验分析。在本文中,解决了通过实验确定PET脑数据算法的理想簇数的问题。

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