融合机器学习的算法课程教学案例研究

Lisha Hu, Chunyu Hu
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引用次数: 0

摘要

《算法设计与分析》是计算机专业本科生的一门专业必修课程。扎实掌握课程内容对学生毕业后从事算法工程师等相关岗位或继续学习具有重要意义。如今,大量的应用问题需要通过机器学习算法来解决。实际上,很多机器学习算法的底层实现细节也是来源于这些基本算法。然而,在目前的算法课程中,很少有与机器学习算法相关的描述。在基础算法的教学过程中,如果能够实现与机器学习算法的自动关联,知识就会扎根于学生的核心知识库中,从而实现知识的不断延伸。在此基础上,本文将分而治之和贪心算法与机器学习代表——决策树算法有效地联系起来,提高学生对相关内容和知识的类比能力,并从一个实例中进行推论。
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Fusion of Machine Learning for Teaching Case Research on Algorithm Course
“Algorithm Design and Analysis” is a professional compulsory course for computer undergraduates. A solid grasp of the content of the course is of great importance for students to engage in relevant positions after graduation such as algorithm engineers or to further study. Nowadays, a large number of application problems need to be solved by machine learning algorithms. In fact, the underlying implementation details of many machine learning algorithms are also derived from these basic algorithms. However, there are few descriptions related to machine learning algorithms in current algorithm courses. In the process of teaching basic algorithms, if automatic association with machine learning algorithms can be realized, knowledge will root in the core knowledge base of students, thereby realizing continuous extension of knowledge. Based on this, this paper effectively associates divide and conquer and greedy algorithms with the machine learning representative --- decision tree algorithm, so as to improve the students' analogy of relevant contents and knowledge and draw inferences from one instance.
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