An Evaluation of the Validity of Growth on Two Computer Adaptive Tests to Predict Performance on End-of-Year Achievement Tests using Quantile Regression

IF 1.2 Q2 EDUCATION & EDUCATIONAL RESEARCH
Ethan R. Van Norman, Emily R. Forcht
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引用次数: 1

Abstract

This study explored the validity of growth on two computer adaptive tests, Star Reading and Star Math, in explaining performance on an end-of-year achievement test for a sample of students in Grades 3 through 6. Results from quantile regression analyses indicate that growth on Star Reading explained a statistically significant amount of variance in performance on end-of-year tests after controlling for baseline performance in all grades. In Grades 3 through 5, the relationship between growth on Star Reading and the end-of-year test was stronger among students who scored higher on the end-of-year test. In math, Star Math explained a statistically significant amount of variance in end-of-year scores after statistically controlling for baseline performance in all grades. The strength of the relationship did not differ among students who scored lower or higher on the end-of-year test across grades.
使用分位数回归评估两项计算机自适应测试的增长有效性,以预测年终成就测试的表现
本研究以三至六年级学生为样本,探讨了成长在两项计算机适应性测试(Star Reading和Star Math)中的有效性,以解释学生在年终成就测试中的表现。分位数回归分析的结果表明,在控制了所有年级的基线成绩后,Star Reading的增长解释了年终考试成绩在统计上的显著差异。在三年级到五年级,在年终测试中得分较高的学生中,明星阅读和年终测试之间的关系更强。在数学方面,明星数学解释了在统计上控制了所有年级的基线表现后,年终成绩在统计上的显著差异。这种关系的强度在不同年级的年终测试中得分较高或较低的学生之间没有差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ASSESSMENT FOR EFFECTIVE INTERVENTION
ASSESSMENT FOR EFFECTIVE INTERVENTION EDUCATION & EDUCATIONAL RESEARCH-
CiteScore
3.10
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0.00%
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16
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