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Defect Data Association Analysis of the Secondary System Based on AFWA-H-Mine
2021
Energies
The fault data of the secondary system of smart substations hide some information that the association analysis algorithm can mine. The convergence speed of the Apriori algorithm and FP-growth algorithm is slow, and there is a lack of indicators to evaluate the correlation of association rules and the method to determine the parameter threshold. In this paper, the H-mine algorithm is used to realize the fast mining of fault data. The algorithm can traverse data faster by using the data
doi:10.3390/en14144228
fatcat:cixvvdzs25bidp2qz6zbd4xbrm