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Look-ahead content balancing method in variable-length computerized classification testing

机译:可变长度计算机化分类测试中的前瞻性内容平衡方法

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摘要

Content balancing is one of the most important issues in computerized classification testing. To adapt to variable-length forms, special treatments are needed to successfully control content constraints without knowledge of test length during the test. To this end, we propose the notions of 'look-ahead' and 'step size' to adaptively control content constraints in each item selection step. The step size gives a prediction of the number of items to be selected at the current stage, that is, how far we will look ahead. Two look-ahead content balancing (LA-CB) methods, one with a constant step size and another with an adaptive step size, are proposed as feasible solutions to balancing content areas in variable-length computerized classification testing. The proposed LA-CB methods are compared with conventional item selection methods in variable-length tests and are examined with different classification methods. Simulation results show that, integrated with heuristic item selection methods, the proposed LA-CB methods result in fewer constraint violations and can maintain higher classification accuracy. In addition, the LA-CB method with an adaptive step size outperforms that with a constant step size in content management. Furthermore, the LA-CB methods generate higher test efficiency while using the sequential probability ratio test classification method.
机译:内容平衡是计算机分类测试中最重要的问题之一。为了适应可变长度的形式,需要特殊处理来成功控制内容约束,而在测试期间没有了解测试长度。为此,我们提出了“展望”和“步长”的概念来自适应地控制每个项目选择步骤中的内容约束。步骤大小给出了在当前阶段选择的项目数量的预测,即我们将要展望多远。两个远程内容平衡(LA-CB)方法,一个具有恒定步长的方法和具有自适应步长的另一个具有自适应步长的另一种方法,可以作为平衡可变长度计算机化分类测试中的内容区域的可行解决方案。将所提出的La-CB方法与可变长度试验中的常规项目选择方法进行比较,并用不同的分类方法检查。仿真结果表明,与启发式物品选择方法集成,所提出的LA-CB方法导致约束违规较少,可以保持更高的分类精度。另外,具有自适应步长的LA-CB方法优于内容管理中具有恒定步长的效果。此外,LA-CB方法在使用顺序概率比测试分类方法的同时产生更高的测试效率。

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