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深入研究深度学习变速箱在光学相干断层扫描图像分割中的应用,以实现可解释的人工智能。

Unraveling the deep learning gearbox in optical coherence tomography image segmentation towards explainable artificial intelligence.

机构信息

Institute of Molecular and Clinical Ophthalmology Basel (IOB), Basel, Switzerland.

OCTlab, Department of Ophthalmology, University Hospital Basel, Basel, Switzerland.

出版信息

Commun Biol. 2021 Feb 5;4(1):170. doi: 10.1038/s42003-021-01697-y.

Abstract

Machine learning has greatly facilitated the analysis of medical data, while the internal operations usually remain intransparent. To better comprehend these opaque procedures, a convolutional neural network for optical coherence tomography image segmentation was enhanced with a Traceable Relevance Explainability (T-REX) technique. The proposed application was based on three components: ground truth generation by multiple graders, calculation of Hamming distances among graders and the machine learning algorithm, as well as a smart data visualization ('neural recording'). An overall average variability of 1.75% between the human graders and the algorithm was found, slightly minor to 2.02% among human graders. The ambiguity in ground truth had noteworthy impact on machine learning results, which could be visualized. The convolutional neural network balanced between graders and allowed for modifiable predictions dependent on the compartment. Using the proposed T-REX setup, machine learning processes could be rendered more transparent and understandable, possibly leading to optimized applications.

摘要

机器学习极大地方便了医学数据的分析,而其内部操作通常是不透明的。为了更好地理解这些不透明的过程,我们使用可追踪相关性可解释性 (Traceable Relevance Explainability,T-REX) 技术增强了用于光学相干断层扫描图像分割的卷积神经网络。所提出的应用基于三个组件:由多个分级器生成的真实值、分级器和机器学习算法之间汉明距离的计算,以及智能数据可视化(“神经记录”)。在人类分级器和算法之间发现了 1.75%的总体平均可变性,略低于人类分级器之间的 2.02%。真实值中的歧义对机器学习结果有显著影响,这些结果可以可视化。卷积神经网络在分级器之间取得平衡,并允许根据隔室进行可修改的预测。使用所提出的 T-REX 设置,可以使机器学习过程更加透明和易于理解,从而可能实现优化的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e73b/7864998/20a157fe4018/42003_2021_1697_Fig1_HTML.jpg

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