运用多变量匹配识别外语差异项目功能的生态来源

T. Jalili, Hossein Barati, A. M. Zadeh
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引用次数: 2

摘要

上下文是一个模糊的概念,有许多构建块,使得语言测试分数的推断相当复杂。本研究利用了一个项目反应模型,力求将差异项目功能(DIF)研究的语境基础结构理论化,并帮助明确DIF的来源。本研究采取了两个步骤:首先,通过逻辑回归模型按性别分组确定DIF,编制了一份被引用最多的DIF来源清单,并在此基础上附加了一份人口统计学项目清单,仅供伊朗中级本科生使用;其次,使用多变量匹配回归(Wu & Ercikan, 2006),遵循一个内置序列,让每个潜在的DIF源被视为协变量,超出条件变量,并指定特定的生态变量是否可以降低DIF值/状态。然后,对所有显著变量进行综合分析,得出最终的DIF预测因子。同样的程序,即个体/集体分析,在测试纯化后被采用。结果表明,在净化前后,影响DIF的生态因素有三个:收入、给药方便性和社会经济地位。最终预测因子帮助创建了项目响应生态模型的EFL配置。对有效性论证的含义也进行了讨论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Using Multiple-Variable Matching to Identify EFL Ecological Sources of Differential Item Functioning
Context is a vague notion with numerous building blocks making language test scores inferences quite convoluted. This study has made use of a model of item responding that has striven to theorize the contextual infrastructure of differential item functioning (DIF) research and help specify the sources of DIF. Two steps were taken in this research: first, to identify DIF by gender grouping via logistic regression modeling, an inventory of mostly cited DIF sources was prepared, based on which a list of demographic items was appended to the TOEFL reading paper only to be administered to the intermediate Iranian undergraduates; second, using multiple-variable matching regression (Wu & Ercikan, 2006), a built-in sequence was followed to let every potential DIF source be considered as a covariate, over and above the conditioning variable, and specify whether a particular ecological variable could reduce DIF value/status. Then, all significant variables were analyzed together to show the final DIF predictors. The same procedures, i.e., individual/collective analyses, were employed after the purification of the test. The results indicated three ecological predictors affecting DIF before and after purification: income, administration convenience, and SES. The ultimate predictors helped create an EFL configuration of the ecological model of item responding. The implications for validity arguments are also discussed.
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