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Conception et génération dynamique de tableaux de bord d’apprentissage contextuels

Abstract : This work is part of a broader issue of Learning Analytics (LA). It is particularly carried out within the context of the HUBBLE project, a national observatory for the design and sharing of data analysis processes. We are interested in communicating data analysis results to users by providing LA dashboards (LAD). Our main issue is the identification of generic LAD structures in order to generate dynamically tailored LAD. These structures must be generic to ensure their reuse, and adaptable to users’ needs. Existing works proposed LAD which remains too general or developed in an adhoc way. According to the HUBBLE project, we want to use identified decisions of end-users to generate dynamically our LAD. We were interested in the business intelligence area because of the place of dashboards in the decision-making process. Decision-making requires an explicit understanding of user needs. That's why we have adopted a user-centered design (UCD) approach to generate adapted LAD. We propose a new process for capturing end-users’ needs, in order to elaborate some models (Indicator, visualization means, user, pattern, …). These models are used by a generation process implemented in a LAD dynamic generator prototype. We conducted an iterative evaluation phase. The objective is to refine our models and validate the efficiency of our generation process. The second iteration demonstrates the impact of the decision on the LAD generation. Thus, we can confirm that the decision is considered as a central element for the generation of LADs.
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Submitted on : Friday, January 17, 2020 - 2:43:07 PM
Last modification on : Tuesday, March 31, 2020 - 3:21:49 PM


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  • HAL Id : tel-02443909, version 1



Ines Dabbebi. Conception et génération dynamique de tableaux de bord d’apprentissage contextuels. Environnements Informatiques pour l'Apprentissage Humain. Université du Maine, 2019. Français. ⟨NNT : 2019LEMA1040⟩. ⟨tel-02443909⟩



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