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METHOD FOR UNDERSTANDING MACHINE-LEARNING DECISIONS BASED ON CAMERA DATA

机译:基于相机数据的机器学习决策方法

摘要

Described is a system for understanding machine-learning decisions. In an unsupervised learning phase, the system extracts, from input data, concepts represented by a machine-learning (ML) model in an unsupervised manner by clustering patterns of activity of latent variables of the concepts, where the latent variables are hidden variables of the ML model. The extracted concepts are organized into a concept network by learning functional semantics among the extracted concepts. In an operational phase, a subnetwork of the concept network is generated. Nodes of the subnetwork are displayed as a set of visual images that are annotated by weights and labels, and the ML model per the weights and labels.
机译:描述了一种用于理解机器学习决策的系统。在无监督学习阶段,系统通过聚类概念的潜在变量的活动模式,以无监督的方式从输入数据中提取由机器学习(ML)模型表示的概念。 ML模型。通过学习所提取的概念之间的功能语义,将所提取的概念组织到概念网络中。在操作阶段,将生成概念网络的子网。子网的节点显示为一组视觉图像,这些视觉图像由权重和标签以及按权重和标签的ML模型标注。

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