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Extracting and recommending business processes from evidence in natural language systems

机译:从自然语言系统中的证据中提取和推荐业务流程

摘要

A natural language question and answer system analyzes a question to determine key characteristics (such as focus and lexical answer type), and matches those characteristics to business processes from business process repositories. The matching business processes are ranked and at least one is presented as a recommended answer to the user. The system can offer the user a trigger to invoke the particular business process. The analysis includes examining a user profile to determine an attribute relevant to the question, and further includes named entity searching and fuzzy string matching against the business process repositories. Each business process in a repository is designated as either idempotent, non-binding or retrieve-only. The matching can include performing a factorial LDA algorithm on both extracted named entities and latent factors of the business processes in the repositories.
机译:自然语言问答系统分析问题以确定关键特征(例如焦点和词汇答案类型),并将这些特征与业务流程存储库中的业务流程进行匹配。对匹配的业务流程进行排名,并向用户推荐至少一个作为推荐答案。系统可以向用户提供触发以调用特定业务流程。该分析包括检查用户配置文件以确定与问题相关的属性,并且进一步包括针对业务流程存储库的命名实体搜索和模糊字符串匹配。存储库中的每个业务流程都被指定为幂等,非绑定或仅检索。匹配可以包括对提取的命名实体和存储库中业务流程的潜在因素执行阶乘LDA算法。

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