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Interpretation of microbiota-based diagnostics by explaining individual classifier decisions

机译:通过解释个体分类器决策来解释基于微生物的诊断

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摘要

BackgroundThe human microbiota is associated with various disease states and holds a great promise for non-invasive diagnostics. However, microbiota data is challenging for traditional diagnostic approaches: It is high-dimensional, sparse and comprises of high inter-personal variation. State of the art machine learning tools are therefore needed to achieve this goal. While these tools have the ability to learn from complex data and interpret patterns therein that cannot be identified by humans, they often operate as black boxes, offering no insight into their decision-making process. In most cases, it is difficult to represent the learning of a classifier in a comprehensible way, which makes them prone to be mistrusted, or even misused, in a clinical environment. In this study, we aim to elucidate microbiota-based classifier decisions in a biologically meaningful context to allow their interpretation.
机译:背景技术人类微生物群与各种疾病状态相关联,并有望用于非侵入性诊断。然而,微生物群的数据对于传统的诊断方法具有挑战性:它是高维度的,稀疏的,并且包含很大的人际差异。因此,需要最先进的机器学习工具来实现此目标。尽管这些工具具有从复杂数据中学习并解释人类无法识别的模式的能力,但它们通常充当黑匣子,无法深入了解其决策过程。在大多数情况下,很难以一种可理解的方式来表示对分类器的学习,这使得它们在临床环境中容易被信任,甚至被滥用。在这项研究中,我们旨在在生物学上有意义的背景下阐明基于微生物群的分类器决策,以便对其进行解释。

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