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A Multimodal Learning Analytics Approach to Support Evidence-based Teaching and Learning Practices

机译:支持基于证据的教与学实践的多模式学习分析方法

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Multimodal Learning Analytics (MMLA) aims to support evidence-based educational practices by collecting, processing, analyzing and sense-making of multimodal evidence of learning. MMLA is not widespread yet and there are few tailored MMLA solutions to meet the requirements of a specific learning scenario. This PhD project investigates the main challenges behind the limited development of MMLA solutions and proposes an MMLA infrastructure as the main contribution. The proposed infrastructure includes three components - a data value chain, a data model and a software architecture. The overall project follows the design-based research methodology where multiple iterations are involved to refine the contributions.
机译:多模式学习分析(MMLA)旨在通过收集,处理,分析和理解多模式学习证据来支持基于证据的教育实践。 MMLA尚未广泛普及,为满足特定学习场景的需求,量身定制的MMLA解决方案很少。该博士项目研究了MMLA解决方案的有限开发背后的主要挑战,并提出了MMLA基础设施作为主要贡献。提议的基础架构包括三个组件-数据价值链,数据模型和软件体系结构。整个项目遵循基于设计的研究方法,其中涉及多次迭代以完善贡献。

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