conference-paper

Learning Causal Graphs in Manufacturing Domains using Structural Equation Models

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Many production processes are characterized by numerous and complex cause-and-effect relationships. Since they are only partially known they pose a challenge to effective process control. In this work we present how Structural Equation Models can be used for deriving cause-and-effect relationships from the combination of prior knowledge and process data in the manufacturing domain. Compared to existing applications, we do not assume linear relationships leading to more informative results.

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DOI
10.1109/ai4i54798.2022.00010
OpenAlex
W4376624747
Document type
conference-paper
Language
EN
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