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基于SnownLp和FP-Tree的操作票考核系统任务筛选研究 被引量:1

Research on Exercise Test System Appraisal Based on SnownLp and FP-Tree
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摘要 火力发电是我国主要的电力生产方式,火电厂的安全运行需要员工对各项操作熟练掌握。电厂"两票"作为操作准确的重要保证,要求员工熟练使用。针对电厂当前"两票"练习系统只能检索特定任务的问题,提出基于中文分词和关联规则挖掘的方法。使用Snown Lp工具对票任务文本内容进行中文分词处理并提取关键词,建立对应的票任务关键词库,基于关键词库使用FP-Tree算法进行关联规则挖掘。试验结果表明,本方法可以有效地筛选出与给定的票任务类似票,有效提高练习的针对性,增强练习效果。 Thermal power generation is the primary electrical power source in China.The safe operation of thermal power plants requires employees to master all operations.The "two votes" of the power plant is an important guarantee for ensuring the accuracy of operations,and employees are required to use it skillfully.For the current "two votes" exercise system of the power plant,only the task can be retrieved,and a method based on Chinese word segmentation and association rule mining is proposed.Firstly,the SnownLp tool is used to process the word segmentation of the ticket task and extract the keywords.Then the keyword library is built.Finally,the association rules mining is performed using the FP-Tree algorithm based on the keyword library.The test results show that this method can effectively filter out tickets similar to the given ticket task.
作者 白国梁 董泽 王小坡 姚民康 BAI Guoliang;DONG Ze;WANG Xiaopo;YAO Minkang(Hebei Engineering Research Center of Simulation & Optimized Control for Power Generation(North China Electric Power University),Baoding 071003,China)
出处 《山东电力技术》 2018年第8期56-59,共4页 Shandong Electric Power
基金 中央高校基本科研基金(2018QN096) 河北省自然科学基金(E2018502111)
关键词 火力发电 SnownLp FP-TREE 关联规则 thermal power generation SnownLp FP-Tree association rules
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