一种用于癌症知识发现的统一多语言多媒体数据挖掘方法

Chung-Hong Lee, Chih-Hong Wu, Hsiang-Hang Chung, Hsin-Chang Yang
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引用次数: 3

摘要

从病历中自动识别癌症疾病与外部因素之间的关系,以支持癌症诊断的功能将是公共卫生领域的宝贵贡献。不幸的是,到目前为止,很少有人关注为这一问题领域提供有效的解决方案。在这项工作中,我们提出了一个框架,可以从临床记录和医学文献中自动提取癌症疾病与潜在因素之间的关系。我们描述了一个集成癌症微阵列的平台框架,并开发了多媒体和多语言数据挖掘技术,涵盖多媒体聚类和多语言分类器来进行系统开发。在实现中,我们通过聚类微阵列数据提取癌症的相关基因,然后利用得到的基因簇对癌症相关文档进行分类。实验结果表明,该平台能够提取潜在模式,以增强更有效的癌症疾病解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Unified Multilingual and Multimedia Data Mining Approach for Cancer Knowledge Discovery
The functions of automatically identify relationships between cancer diseases and external factors from medical records for supporting cancer diagnosis would be a valuable contribution in public health fields. Unfortunately, so far little attention has been paid on providing effective solutions to such a problem domain. In this work, we propose a framework to automating the extraction of relationships between cancer diseases and potential factors from clinical records and medical literature. We describe a platform framework integrating cancer microarray and developed data mining techniques of multimedia and multilingual, covering clustering of multimedia as well as multilingual classifiers to carry out the system development. In the implementation, we extracted the associated genes of cancers by clustering microarray data, and then exploited the resulting gene clusters to classify cancer related documents. The experimental results show that the platform is capable of extracting the potential patterns to enhancing more effective solutions for cancer diseases.
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