作者
Isaak Kavasidis, Efthimios Lallas, Vassilis C Gerogiannis, Theodosia Charitou, Anthony Karageorgos
发表日期
2023/1/1
期刊
Procedia Computer Science
卷号
220
页码范围
576-583
出版商
Elsevier
简介
Inherent complexities in pharmaceutical manufacturing lines of modern industrial facilities make precise and timely detection of malfunction occurrences necessary. In fact, unpredicted malfunctions in a production line can often provoke a cascade of adverse effects that can occur everywhere in the production chain bringing the manufacturing line to a halt for undefined time periods. Such events can have unfortunate consequences that are not always confined to the damaged part itself but propagate throughout the production line. Nevertheless, modern production lines are equipped with a multitude of data sensors that enable the real-time and fine-grained monitoring of each constituent part of the production process providing a richness of information that can be exploited by intelligent data processing methods.
In this work, we present ManuTrans, a deep learning-based model for monitoring real-time raw sensor …
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