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A hierarchical granger causality analysis framework based on information of redundancy for root cause diagnosis of process disturbances
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A hierarchical granger causality analysis framework based on information of redundancy for root cause diagnosis of process disturbances

Jian-Guo Wang, Rui Chen, Xiang-Yun Ye, Zhong-Tao Xie, Yuan YaoLi-Lan Liu
Computers and Chemical Engineering, 卷.182, 108589
03/2024

摘要

Granger causality Process disturbances Redundancy Root cause diagnosis Chemical Engineering (all) Computer Science Applications
The Granger causality (GC) test is a widely utilized method for diagnosing process disturbances’ root cause. However, its effectiveness is limited due to the challenge of handling variable redundancy, leading to potentially inaccurate results. To tackle this problem, this paper introduces a new redundancy detection technique incorporated into the GC test framework. The method introduces a sum-of-redundancy index, enabling the development of a variable-layering approach to identify the sequential impact of process variables during disturbances. Furthermore, a hierarchical analysis framework is established, within which GC tests are applied both within and between layers, effectively revealing the propagation paths of process disturbances. Case studies conducted on a benchmark simulation process demonstrate the enhanced accuracy and feasibility of the proposed framework.

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