Using Kolb's Experiential Learning Theory to Improve Student Learning in Theory Course

M. K. K. Devi, M. S. Thendral
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引用次数: 1

Abstract

Abstract : Data structures and Algorithms (DSA) is a mandatory course for all discipline students to get placement in IT companies and to participate in competitive examinations including GATE and TANCET for their higher studies in a computer science discipline. DSA course focuses on how to organize, manage and store data in an efficient manner, which facilitates to access data easily and at a faster rate. Different types of data structures, its functionality and its applicability are discussed in this course. At the end of the course, students will have the capability to identify the suitable data structure for a problem. Due to its importance and complexity, pressure will be created on faculty members, who are handling this course. From the perspective of the student, some students understand the concept but lack knowledge of how to apply it. The majority of students struggle to comprehend the data structure and are perplexed by it. Recent work focuses on how faculty members play a major role in active learning like developing models to explain the concept, conducting activities like role play, think-pair share, flipped classrooms and so on. In this work, a study was conducted in the course DSA which focused on reflective practice led by David Kolb's experiential learning theory. An experiment was conducted during Academic Year 2021-22 (Odd) in the course 18CS340 – Data Structures and Algorithms for a set of 54 students. It is inferred that the student gained a higher or deeper knowledge level in this course and is confident to identify appropriate data structures for real world problems. By engaging in reflective practice, faculty members can think around and reflect on their experiences, learn from them, make changes, and enhance their learning and instructional skills. Keywords : Activity-based learning, Data Structures and Algorithms, Kolb's experiential learning, Reflective practice, Self-Learning.
运用科尔布的体验式学习理论促进学生理论课学习
摘要:数据结构与算法(Data structures and Algorithms, DSA)是所有计算机专业学生进入IT公司工作和参加GATE、TANCET等竞争性考试的必修课程。DSA课程的重点是如何以有效的方式组织、管理和存储数据,从而方便、快速地访问数据。本课程将讨论不同类型的数据结构、其功能和适用性。在课程结束时,学生将有能力为问题识别合适的数据结构。由于这门课程的重要性和复杂性,会给教授这门课程的教师带来压力。从学生的角度来看,一些学生理解这个概念,但缺乏如何应用它的知识。大多数学生很难理解数据结构,并被它所困扰。最近的工作集中在教师如何在主动学习中发挥主要作用,比如开发模型来解释概念,开展角色扮演、思维结对分享、翻转课堂等活动。在这项工作中,在DSA课程中进行了一项研究,该课程以David Kolb的体验学习理论为主导,侧重于反思性实践。在2021-22学年(Odd) 18CS340 -数据结构与算法课程中,对54名学生进行了实验。可以推断,学生在本课程中获得了更高或更深的知识水平,并且有信心为现实世界的问题识别合适的数据结构。通过参与反思性实践,教师可以思考和反思他们的经验,从中学习,做出改变,提高他们的学习和教学技能。关键词:活动学习,数据结构与算法,Kolb体验式学习,反思性实践,自主学习
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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来源期刊
CiteScore
1.20
自引率
0.00%
发文量
122
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