LAMP: A Framework for Large-Scale Addressing of Muddy Points

Rwitajit Majumdar, Sridhar V. Iyer
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引用次数: 2

Abstract

Muddy Points (MP) is a strategy to elicit and address individual students' doubts. While this can be effectively implemented in small classes, it is a challenge to do so in a large class. In this paper we propose LAMP, a framework for Large-scale Addressing of Muddy Points, as a mechanism for instructors to ensure that every individual student's doubts are addressed even in large classes. LAMP has three phases: Collection, Addressal, and Closure. In the collection phase, MPs are systematically collected through four different modes. In the addressal phase, MPs are categorized into six categories and addressed accordingly. In the closure phase, the discussions on MPs are summarized. We investigated the effectiveness of LAMP in an introductory computer science course having 450 students. We found that 68% of students confirmed they were able to pose their questions and 57% of students confirmed that there was closure to their questions.
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LAMP:一个大规模寻址浑点的框架
浑点(MP)是一种策略,以引出和解决个别学生的疑虑。虽然这可以在小班中有效地实现,但在大班中这样做是一个挑战。在本文中,我们提出了LAMP,这是一个大规模解决泥泞点的框架,作为一种机制,教师可以确保即使在大班中也能解决每个学生的疑问。LAMP有三个阶段:收集、寻址和关闭。在收集阶段,通过四种不同的模式系统地收集MPs。在处理阶段,MPs被分为六类,并相应地处理。在结束阶段,总结了关于MPs的讨论。我们调查了LAMP在一门有450名学生的计算机科学入门课程中的有效性。我们发现68%的学生确认他们能够提出自己的问题,57%的学生确认他们的问题已经结束。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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