2022
DOI: 10.48550/arxiv.2205.05250
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Spatial-temporal associations representation and application for process monitoring using graph convolution neural network

Abstract: Industrial process data reflects the dynamic changes of operation conditions, which mainly refer to the irregular changes in the dynamic associations between different variables in different time. And this related associations knowledge for process monitoring is often implicit in these dynamic monitoring data which always have richer operation condition information and have not been paid enough attention in current research. To this end, a new process monitoring method based on spatial-based graph convolution … Show more

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