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Vance, Eric A.; Glimp, David R.; Pieplow, Nathan D.; Garrity, Jane M.; Melbourne, Brett A. – Statistics Education Research Journal, 2022
Despite growing calls to develop data science students' ethical awareness and expand human-centered approaches to data science education, introductory courses in the field remain largely technical. A new interdisciplinary data science program aims to merge STEM and humanities perspectives starting at the very beginning of the data science…
Descriptors: Humanities, Humanities Instruction, Statistics Education, Interdisciplinary Approach
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Cyrenne, Philippe; Chan, Alan – Canadian Journal of Higher Education, 2022
The ability of universities and colleges to predict the success of admitted students continues to be a key concern of higher education officials. Apart from a desire to see students have successful academic careers, there is also the fiscal reality of greater tuition revenues providing needed support for university budgets. Using administrative…
Descriptors: College Students, Academic Achievement, Predictor Variables, Statistical Analysis
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Tiahrt, Thomas; Hanus, Bartlomiej; Porter, Jason C. – Decision Sciences Journal of Innovative Education, 2022
Firms desire graduates capable of executing current and future business practices, many of which revolve around data. To meet those needs, we shifted the orientation of our required information systems course from technology to data. Instead of a survey of information systems, students learn the data acquisition-preparation-mining-presentation…
Descriptors: Information Systems, Information Science Education, Computer Software, Undergraduate Students
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Liew, Chin Ying; Leong, Siow Hoo; Julaihi, Nor Hazizah; Lai, Tze Wee; Ting, Su Ung; Chen, Chee Khium; Hamdan, Anniza – Mathematics Teaching Research Journal, 2022
Studies of errors in mathematics are essential for mathematics educators to design and contextualize a whole new instruction accordingly. Nonetheless, less attention has been given to the mathematical writing errors when compared to the mathematical conceptual and procedural errors. It is mainly because the former mistakes usually do not affect…
Descriptors: Error Patterns, Written Language, Mathematics Education, Elementary School Students
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Mor, Ezgi; Kula-Kartal, Seval – International Journal of Assessment Tools in Education, 2022
The dimensionality is one of the most investigated concepts in the psychological assessment, and there are many ways to determine the dimensionality of a measured construct. The Automated Item Selection Procedure (AISP) and the DETECT are non-parametric methods aiming to determine the factorial structure of a data set. In the current study,…
Descriptors: Psychological Evaluation, Nonparametric Statistics, Test Items, Item Analysis
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Whitaker, Douglas; Barss, Joseph; Drew, Bailey – Online Submission, 2022
Challenges to measuring students' attitudes toward statistics remain despite decades of focused research. Measuring the expectancy-value theory (EVT) Cost construct has been especially challenging owing in part to the historical lack of research about it. To measure the EVT Cost construct better, this study asked university students to respond to…
Descriptors: Statistics Education, College Students, Student Attitudes, Likert Scales
Chun Wang; Ruoyi Zhu; Gongjun Xu – Grantee Submission, 2022
Differential item functioning (DIF) analysis refers to procedures that evaluate whether an item's characteristic differs for different groups of persons after controlling for overall differences in performance. DIF is routinely evaluated as a screening step to ensure items behavior the same across groups. Currently, the majority DIF studies focus…
Descriptors: Models, Item Response Theory, Item Analysis, Comparative Analysis
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Agasisti, Tommaso; Belfield, Clive – Tertiary Education and Management, 2017
This paper estimates technical efficiency scores across the community college sector in the United States. Using stochastic frontier analysis and data from the Integrated Postsecondary Education Data System for 2003-2010, we estimate efficiency scores for 950 community colleges and perform a series of sensitivity tests to check for robustness. We…
Descriptors: Community Colleges, Efficiency, Scores, Robustness (Statistics)
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Byun, K. J.; Croucher, John S. – Teaching Statistics: An International Journal for Teachers, 2018
Class examples for a standard introductory statistics course usually involve a variety of applications. In this paper, we consider the teaching of statistics using forensic science and the law, an area that holds some fascination with many audiences.
Descriptors: Teaching Methods, Statistics, Crime, Laws
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Singh, Abhishek – Teaching Statistics: An International Journal for Teachers, 2018
Statistics can help us to make predictions. An interesting example regarding the football world cup explores the rankings to suggest the group(s) of death in the ensuing world cup.
Descriptors: Prediction, Statistics, Teaching Methods, Team Sports
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López, María Virginia; Fabrizio, María del Carmen; Plencovich, María Cristina – Teaching Statistics: An International Journal for Teachers, 2018
Although our students correctly define the terms p-value, Type I and Type II errors, they sometimes misinterpret results from real data. In this work we present an assignment intended to clear up these misconceptions.
Descriptors: Statistics, Assignments, Misconceptions, Teaching Methods
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Shear, Benjamin R. – Journal of Educational Measurement, 2018
When contextual features of test-taking environments differentially affect item responding for different test takers and these features vary across test administrations, they may cause differential item functioning (DIF) that varies across test administrations. Because many common DIF detection methods ignore potential DIF variance, this article…
Descriptors: Test Bias, Regression (Statistics), Hierarchical Linear Modeling
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Bosman, Lisa B.; O'Brien, Steve; Shanta, Susheela; Strimel, Greg J. – Technology and Engineering Teacher, 2018
The purpose of this article is to provide educators with resources to help students establish a deeper understanding of the application and role of statistical analysis within the design and innovation process. Quantitative analyses are often taught and applied through design activities, especially during testing or experimenting phases of design.…
Descriptors: Design, Engineering Education, Statistical Analysis, Statistics
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Vuolo, Mike – Sociological Methods & Research, 2017
Often in sociology, researchers are confronted with nonnormal variables whose joint distribution they wish to explore. Yet, assumptions of common measures of dependence can fail or estimating such dependence is computationally intensive. This article presents the copula method for modeling the joint distribution of two random variables, including…
Descriptors: Sociology, Research Methodology, Social Science Research, Models
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Sainan Xu; Jing Lu; Jiwei Zhang; Chun Wang; Gongjun Xu – Grantee Submission, 2024
With the growing attention on large-scale educational testing and assessment, the ability to process substantial volumes of response data becomes crucial. Current estimation methods within item response theory (IRT), despite their high precision, often pose considerable computational burdens with large-scale data, leading to reduced computational…
Descriptors: Educational Assessment, Bayesian Statistics, Statistical Inference, Item Response Theory
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