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Learner's Profile Hierarchization in an Interoperable Education System

机译:学习者在可互操作的教育系统中的配置文件分级

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In recent years, several education systems have been developed. Consequently, each learner can have different profiles which each one is related to a system. Each profile can be completed and enriched by the data coming from the other profiles in order to return results reflecting the learner's need. The profile enrichment requires the establishment of an interoperable system which (i) resolves the problem of learner's profile heterogeneity based on a matching process and (ii) integrates the data in the different profiles based on a data fusion process. The data fusion approaches mainly aim at resolving the conflicts occurring in the data values. They are based on non organized profiles which may produce inconsistent results. The profile organization is done either by using the machine learning techniques or the notion of temperature. In this paper, we propose a new data fusion approach to improve the conflict resolution by organized profiles. Each profile is organized by respectively merging a clustering algorithm and the temperature and by taking into account the data semantic relationship.
机译:近年来,已经开发了几个教育系统。因此,每个学习者可以具有不同的配置文件,每个轮廓与系统相关。通过来自其他配置文件的数据可以完成并丰富每个配置文件,以便返回反映学习者需求的结果。资料丰富需要建立一个可互操作的系统,(i)根据匹配过程解决了学习者的个人资料异质性问题,并且(ii)基于数据融合过程将数据集成在不同的配置文件中。数据融合方法主要旨在解决数据值中发生的冲突。它们基于非有组织的配置文件,这可能产生不一致的结果。通过使用机器学习技术或温度概念来完成配置文件组织。在本文中,我们提出了一种新的数据融合方法来提高有组织的简档冲突解决。通过分别合并聚类算法和温度并考虑数据语义关系来组织每个配置文件。

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