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Supporting the initial work of evidence-based improvement cycles through a data-intensive partnership

机译:支持以证据为基础的初始工作通过一个数据密集型改进周期伙伴关系

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Purpose - Currently, in the education data use literature, there is a lack of research and examples that consider the early steps of filtering, organizing and visualizing data to inform decision-making. The purpose of this study is to describe how school leaders and researchers visualized and jointly made sense of data from a common learning management system (LMS) used by students across multiple schools and grades in a charter management organization operating in the USA. To make sense of LMS data, researchers and practitioners formed a partnership to organize complex data sets, create data visualizations and engage in joint sensemaking around data visualizations to begin to launch continuous improvement cycles. Design/methodology/approach - The authors analyzed LMS data for n = 476 students in Algebra I using hierarchical cluster analysis heatmaps. The authors also engaged in a qualitative case study that examined the ways in which school leaders made sense of the data visualization to inform improvement efforts. Findings - The outcome of this study is a framework for informing evidence-based improvement cycles using large, complex data sets. Central to moving through the various steps in the proposed framework are collaborations between researchers and practitioners who each bring expertise that is necessary for organizing, filtering and visualizing data from digital learning environments and administrative data systems. Originality/value - The authors propose an integrated cycle of data use in schools that builds on collaborations between researchers and school leaders to inform evidence-based improvement cycles.
机译:目的——目前,教育数据使用文学,缺乏研究示例,考虑的早期步骤过滤、组织和可视化数据通知决策。是描述学校领导和研究人员如何可视化和共同的数据常见的学习管理系统(LMS)使用学生在一个跨多个学校和成绩特许管理组织的操作美国。从业者形成合作组织复杂的数据集,创建数据可视化和参与联合意会在数据可视化开始连续发射改进周期。作者分析了LMS n = 476的数据学生在代数我使用分层集群分析的热图。定性研究方法的案例研究学校领导有意义的数据可视化通知改进工作。结果——这项研究的结果通知以证据为基础的框架改善循环使用大型的、复杂的数据集。在拟议的框架合作研究者和实践者之间把专业知识是必要的组织,从数字过滤和可视化数据学习环境和管理数据系统。一个完整的周期的数据在学校使用基于研究人员之间的协作学校领导通知以证据为基础的改进周期。

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