Selection of Control Tasks for Students Using Neural Networks and Multi-Criteria Optimization

T. Koncova, E. Dogadina, M. Bocharov
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Abstract

One of the most important parameters of a student’s progress is the correct selection of control tasks when conducting an intermediate cut of knowledge. This paper proposes the optimal compilation of test tasks, taking into account their complexity, duration of execution, the number of questions in the task, the number of topics covered and the actions required to complete the task. Since each student is individual, the question arises of the correctness of providing the same control task to students with different mental and psycho-emotional characteristics. Therefore, the optimal compilation of tasks for a particular student is quite relevant. This study will improve the student’s progress and success in general, and will also remove a number of responsibilities from the teacher related to the generation of topics and tasks when compiling the test. The paper proposes to develop a hybrid system of multi-criteria optimization with two fully connected neural networks, which allows determining the most suitable model for compiling a task of control work based on a number of features of a particular student.
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利用神经网络和多准则优化选择学生控制任务
学生进步的最重要参数之一是在进行中间知识切割时正确选择控制任务。本文从测试任务的复杂程度、执行时间、任务的题目数量、涉及的主题数量以及完成任务所需的动作等方面,提出了测试任务的最优编写方法。既然每个学生都是独立的,那么对具有不同心理和心理情绪特征的学生提供相同的控制任务是否正确的问题就产生了。因此,针对特定学生的任务的最佳编译是非常相关的。这项研究将在总体上提高学生的进步和成功,也将消除教师在编写测试时与生成主题和任务相关的一些责任。本文提出了一种具有两个完全连接的神经网络的多准则优化混合系统,该系统可以根据特定学生的许多特征确定最适合的模型来编制控制工作任务。
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