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A novel genetic algorithm for constructing uniform test forms of cognitive diagnostic models

机译:构建认知诊断模型统一测试形式的新型遗传算法

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Cognitive diagnostic models (CDMs) are a new class of test models developed for educational assessment. They have gained growing attention in recent years for their distinctive ability to provide detailed feedback about examinees' ability. Automatic test assembly (ATA), as in other test models, has been one of the most critical issues in the development and applications of CDMs. However, developing ATA methods for CDMs is especially challenging because no close-form expressions can measure the quality of a test form based on the items used. Although some heuristic methods have been proposed for building a single test form of CDMs, few ATA methods can construct uniform test forms of CDMs, in which each test form contains a different set of items but meets equivalent demand of test quality. In order to fill the gap, this paper proposes a novel genetic algorithm (GA) for constructing uniform test forms of CDMs. The effectiveness and efficiency of the proposed method is validated on a synthetic item pool under different conditions.
机译:认知诊断模型(CDM)是为教育评估而开发的新型测试模型。近年来,由于其独特的能力提供有关应试者能力的详细反馈,它们已受到越来越多的关注。与其他测试模型一样,自动测试组装(ATA)一直是CDM开发和应用中最关键的问题之一。但是,开发CDM的ATA方法尤其具有挑战性,因为没有封闭形式的表达式可以根据使用的项目来衡量测试形式的质量。尽管已经提出了一些启发式方法来构建CDM的单个测试形式,但很少有ATA方法可以构建统一的CDM测试形式,其中每个测试形式包含一组不同的项目,但可以满足测试质量的等效要求。为了填补这一空白,本文提出了一种新颖的遗传算法(GA),用于构造CDM的统一测试形式。该方法的有效性和效率在不同条件下的综合项目库中得到了验证。

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