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医疗信息系统中多模态数据挖掘的语义模型。

A semantic model for multimodal data mining in healthcare information systems.

作者信息

Iakovidis Dimitris, Smailis Christos

机构信息

Department of Informatics and Computer Technology, Institute of Lamia, Lamia, Greece.

出版信息

Stud Health Technol Inform. 2012;180:574-8.

Abstract

Electronic health records (EHRs) are representative examples of multimodal/multisource data collections; including measurements, images and free texts. The diversity of such information sources and the increasing amounts of medical data produced by healthcare institutes annually, pose significant challenges in data mining. In this paper we present a novel semantic model that describes knowledge extracted from the lowest-level of a data mining process, where information is represented by multiple features i.e. measurements or numerical descriptors extracted from measurements, images, texts or other medical data, forming multidimensional feature spaces. Knowledge collected by manual annotation or extracted by unsupervised data mining from one or more feature spaces is modeled through generalized qualitative spatial semantics. This model enables a unified representation of knowledge across multimodal data repositories. It contributes to bridging the semantic gap, by enabling direct links between low-level features and higher-level concepts e.g. describing body parts, anatomies and pathological findings. The proposed model has been developed in web ontology language based on description logics (OWL-DL) and can be applied to a variety of data mining tasks in medical informatics. It utility is demonstrated for automatic annotation of medical data.

摘要

电子健康记录(EHRs)是多模态/多源数据收集的典型示例;包括测量数据、图像和自由文本。此类信息源的多样性以及医疗机构每年产生的大量医疗数据,给数据挖掘带来了重大挑战。在本文中,我们提出了一种新颖的语义模型,该模型描述了从数据挖掘过程的最低级别提取的知识,其中信息由多个特征表示,即从测量数据、图像、文本或其他医疗数据中提取的测量值或数值描述符,形成多维特征空间。通过广义定性空间语义对通过手动注释收集或通过无监督数据挖掘从一个或多个特征空间提取的知识进行建模。该模型能够在多模态数据存储库中统一表示知识。它通过在低级特征和高级概念(例如描述身体部位、解剖结构和病理发现)之间建立直接链接,有助于弥合语义鸿沟。所提出的模型是基于描述逻辑(OWL-DL)用网络本体语言开发的,可应用于医学信息学中的各种数据挖掘任务。它的实用性在医疗数据的自动注释中得到了证明。

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