Alternate Support Vector Machine Decision Trees for Power Systems Rule Extractions

IEEE Transactions on Power Systems(2023)

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摘要
Increasing renewable energy penetrations bring complex feasibility and stability problems. Data-driven methods are applied in extracting and embedding these feasibility and stability rules in power system operations and planning. This paper presents a method of alternate support vector machine decision trees for rule extraction problems. The method significantly improves the classical decision-tree-based algorithms' efficiency, stability, and versatility. Finally, we apply the method to several power and energy system scenarios to show its effectiveness.
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关键词
Rule extraction,support vector machine,decision tree,stability,feasibility
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