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On the convergence of nanotechnology and Big Data analysis for computer-aided diagnosis

机译:纳米技术与大数据分析在计算机辅助诊断中的融合

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An overview is provided of the challenges involved in building computer-aided diagnosis systems capable of precise medical diagnostics based on integration and interpretation of data from different sources and formats. The availability of massive amounts of data and computational methods associated with the Big Data paradigm has brought hope that such systems may soon be available in routine clinical practices, which is not the case today. We focus on visual and machine learning analysis of medical data acquired with varied nanotech-based techniques and on methods for Big Data infrastructure. Because diagnosis is essentially a classification task, we address the machine learning techniques with supervised and unsupervised classification, making a critical assessment of the progress already made in the medical field and the prospects for the near future. We also advocate that successful computer-aided diagnosis requires a merge of methods and concepts from nanotechnology and Big Data analysis.
机译:本文概述了构建基于辅助数据源和格式的数据的集成和解释的,能够进行精确医学诊断的计算机辅助诊断系统所面临的挑战。与大数据范式相关的大量数据和计算方法的可用性带来了希望,这种系统可能很快就可以在常规临床实践中使用,而如今情况并非如此。我们专注于通过各种基于纳米技术的技术获取的医学数据的可视化和机器学习分析,以及大数据基础架构的方法。由于诊断本质上是一项分类任务,因此我们通过监督和无监督的分类来解决机器学习技术,从而对医学领域已经取得的进展以及近期的前景做出重要评估。我们还主张,成功的计算机辅助诊断需要融合纳米技术和大数据分析的方法和概念。

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