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Efficient Database Generation for Decision Tree Based Power System Security Assessment

机译:基于决策树的电力系统安全评估的高效数据库生成

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Decision tree based planning tools provide operators with the most important system attributes that guide them in deciding as to what situation requires operator action. Key to this approach is the manner in which different operating conditions are sampled to form a database for training. This paper develops an efficient sampling strategy that maximizes database information content while minimizing computing requirements. The approach involves two stages: stage-I to find the high information content region in the multidimensional operating parameter state space and stage-II to bias the sampling towards that region using importance sampling. The proposed approach is applied for deriving operating rules against voltage stability issues on the Brittany region of the French EHV system. The results show that the decision trees produced by the proposed efficient sampling approach have significantly improved classification performance and offer economic benefits compared to conventional sampling strategies, all at greatly reduced computational requirements.
机译:基于决策树的计划工具为操作员提供了最重要的系统属性,可指导他们确定哪种情况需要操作员采取行动。这种方法的关键是对不同的操作条件进行采样以形成用于培训的数据库的方式。本文开发了一种有效的采样策略,该策略可以最大化数据库信息内容,同时最小化计算需求。该方法涉及两个阶段:第一阶段在多维操作参数状态空间中找到高信息内容区域;第二阶段使用重要性采样将采样偏向该区域。所提出的方法适用于在法国超高压系统的布列塔尼地区推导针对电压稳定性问题的运行规则。结果表明,与传统的采样策略相比,所提出的有效采样方法所产生的决策树具有显着改善的分类性能并提供了经济利益,而所有这些都大大降低了计算需求。

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