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Extraction of key attributes from natural language requirements specification text

机译:从自然语言需求规范文本中提取关键属性

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The automation of extracting the information from natural language text has become an area of growing interest in the current years. The requirements can be analyzed through extraction process from natural language text which has its own limitations. Software Requirements Specification (SRS) gathers all the requirements that are required for the user. This proposed concept presents an idea to identify the schema for the tables and relationship corresponding to all the tables extracted from the natural language requirements specification. The work starts with identifying the table schema and their properties. Then the Primary Key (PK) attribute is identified based on adjectives, prioritizing the preference of the attributes, hand crafted rules and machine learning system which is trained from statistical data. Next the relationship is identified between the tables using the extracted list of attributes with PK to identify the Foreign Key (FK). The FK attributes of a table is identified by the highly referenced PK attribute and also based on the implicit relationship among the tables. Furthermore, the results presented exhibit the relationship among the tables and the proposed approach is validated using real time data.
机译:从自然语言文本中提取信息的自动化已成为近年来越来越感兴趣的领域。可以通过从自然语言文本中提取内容来分析需求,这有其自身的局限性。软件需求规范(SRS)收集用户所需的所有需求。这个提出的概念提出了一种想法,用于识别表的模式以及与从自然语言需求规范中提取的所有表相对应的关系。工作从识别表模式及其属性开始。然后,根据形容词来识别主键(PK)属性,并根据统计数据对属性的偏好,手工制作的规则和机器学习系统进行优先级排序。接下来,使用提取的带有PK的属性列表来识别外键(FK),从而在表之间识别关系。表的FK属性由高度引用的PK属性标识,并且还基于表之间的隐式关系。此外,给出的结果显示了表之间的关系,并且使用实时数据验证了所提出的方法。

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