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Parsing Natural Language into Content for Storage and Retrieval in a Content-Addressable Memory

机译:将自然语言解析为内容,以便在可寻址内容的内存中进行存储和检索

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This paper explores the possibility of applying Database Semantic (DBS) to textual databases and the WWW. The DBS model of natural language communication is designed as an artificial cognitive agent with a hearer mode, a think mode, and a speaker mode. For the application at hand, the hearer mode is used for (i) parsing language data into sets of proplets, defined as non-recursive feature structures, which are stored in a content-addressable memory called Word Bank, and (ii) for parsing the user query into a DBS schema employed for retrieval. The think mode is used to expand the primary data activated by the query schema to a wider range of relevant secondary and tertiary data. The speaker mode is used to realize the data retrieved in the natural language of the query.
机译:本文探讨了将数据库语义(DBS)应用于文本数据库和WWW的可能性。自然语言交流的DBS模型被设计为具有听者模式,思考模式和说话者模式的人工认知代理。对于手头的应用程序,侦听器模式用于(i)将语言数据解析为属性集(定义为非递归特征结构),这些属性存储在称为Word Bank的可寻址内容的内存中,以及(ii)进行解析用户查询到用于检索的DBS模式。思维模式用于将查询模式激活的主要数据扩展为更大范围的相关辅助和第三数据。说话者模式用于实现以查询的自然语言检索的数据。

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