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SYSTEMS AND METHODS FOR RELATION INFERENCE

机译:关系推论的系统和方法

摘要

Presented are relation inference methods and systems that use deep learning techniques for data mining documents to discover a relation between terms of interest in a given field covering a specific topic. For example, in the healthcare domain, various embodiments of the present disclosure provide for a relation inference system that mines large-scale medical documents in a free-text database to extract symptom and disease terms and generates relation information that aids in disease diagnosis. In embodiments, this is accomplished by training and using an RNN, such as an LSTM, a Gated Recurrent Unit (GRU), etc., that takes advantage of a term dictionary to examine co-occurrences of terms of interest within documents to discover correlations between the terms. The correlation may then be used to predict statistically most probable terms (e.g., a disease) related to a given search term (e.g., a symptom).
机译:提出了使用深度学习技术进行数据挖掘文档的关系推理方法和系统,以发现涵盖特定主题的给定领域中感兴趣的术语之间的关系。例如,在医疗保健领域,本公开的各种实施例提供了一种关系推理系统,该关系推理系统在自由文本数据库中挖掘大规模医学文档以提取症状和疾病术语并生成有助于疾病诊断的关系信息。在实施例中,这是通过训练和使用RNN(例如LSTM,门控循环单元(GRU)等)来实现的,该RNN利用术语词典来检查文档中感兴趣术语的共现以发现相关性在条款之间。然后可以使用相关性来预测与给定搜索词(例如症状)有关的统计学上最可能的词(例如疾病)。

著录项

  • 公开/公告号US2018012121A1

    专利类型

  • 公开/公告日2018-01-11

    原文格式PDF

  • 申请/专利权人 BAIDU USA LLC;

    申请/专利号US201615205798

  • 申请日2016-07-08

  • 分类号G06N3/04;G06N3/08;G06F17/30;

  • 国家 US

  • 入库时间 2022-08-21 13:04:11

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