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Heuristic Constraint Management Methods in Multidimensional Adaptive Testing

机译:多维自适应测试中的启发式约束管理方法

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Although multidimensional adaptive testing (MAT) has been proven to be highly advantageous with regard to measurement efficiency when several highly correlated dimensions are measured, there are few operational assessments that use MAT. This may be due to issues of constraint management, which is more complex in MAT than it is in unidimensional adaptive testing. Very few studies have examined the performance of existing constraint management methods (CMMs) in MAT. The present article focuses on the effectiveness of two promising heuristic CMMs in MAT for varying levels of imposed constraints and for various correlations between the measured dimensions. Through a simulation study, the multidimensional maximum priority index (MMPI) and multidimensional weighted penalty model (MWPM), as an extension of the weighted penalty model, are examined with regard to measurement precision and constraint violations. The results show that both CMMs are capable of addressing complex constraints in MAT. However, measurement precision losses were found to differ between the MMPI and MWPM. While the MMPI appears to be more suitable for use in assessment situations involving few to a moderate number of constraints, the MWPM should be used when numerous constraints are involved.
机译:尽管在测量若干高度相关尺寸时,已经被证明多维自适应测试(MAT)对测量效率非常有利,但在几个高度相关的尺寸时,少量使用垫片的操作评估。这可能是由于约束管理的问题,它在垫子中更复杂,而不是在一个天际的自适应测试中。很少有研究已经检查了垫中现有约束管理方法(CMMS)的性能。本文侧重于两个有希望的启发式CMMS在垫中的有效性,用于不同的施加约束和测量尺寸之间的各种相关性。通过模拟研究,考虑到测量精度和约束违规,研究了多维最大优先级指数(MMPI)和多维加权惩罚模型(MWPM)作为加权罚款模型的延伸。结果表明,两种CMM都能够解决垫中的复杂约束。然而,发现测量精度损耗在MMPI和MWPM之间有所不同。虽然MMPI似乎更适合于涉及少数约束的评估情况,但应在涉及许多限制时使用MWPM。

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