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Wong, Billy; DeWitt, Jennifer; Chiu, Yuan-Li Tiffany – Educational Review, 2023
Marketisation has directed higher education institutions and policies to focus on student support and provisions that promote better experience and value. By contrast, expectations of university students are under-researched and understated, with less attention placed on what and how students should perform in higher education. This paper further…
Descriptors: Marketing, Higher Education, Student Characteristics, Educational Policy
Yunxiao Chen; Xiaoou Li; Jingchen Liu; Gongjun Xu; Zhiliang Ying – Grantee Submission, 2017
Large-scale assessments are supported by a large item pool. An important task in test development is to assign items into scales that measure different characteristics of individuals, and a popular approach is cluster analysis of items. Classical methods in cluster analysis, such as the hierarchical clustering, K-means method, and latent-class…
Descriptors: Item Analysis, Classification, Graphs, Test Items
Hoelscher, Michael; Schubert, Julia – Creativity Research Journal, 2015
Creativity and innovation are important inputs in the global knowledge economy. However, while the theoretical concepts and the measurement of creativity on the individual level have made considerable progress during the last decades, so-called sectoral approaches to measuring creativity and innovation on the level of aggregate units are less well…
Descriptors: Creativity, Innovation, Global Approach, Correlation
Baglin, James – Practical Assessment, Research & Evaluation, 2014
Exploratory factor analysis (EFA) methods are used extensively in the field of assessment and evaluation. Due to EFA's widespread use, common methods and practices have come under close scrutiny. A substantial body of literature has been compiled highlighting problems with many of the methods and practices used in EFA, and, in response, many…
Descriptors: Factor Analysis, Data, Likert Scales, Computer Software
Devlieger, Ines; Mayer, Axel; Rosseel, Yves – Educational and Psychological Measurement, 2016
In this article, an overview is given of four methods to perform factor score regression (FSR), namely regression FSR, Bartlett FSR, the bias avoiding method of Skrondal and Laake, and the bias correcting method of Croon. The bias correcting method is extended to include a reliable standard error. The four methods are compared with each other and…
Descriptors: Regression (Statistics), Comparative Analysis, Structural Equation Models, Monte Carlo Methods
Ritter, Nicola L. – Online Submission, 2012
Many researchers recognize that factor analysis can be conducted on both correlation matrices and variance-covariance matrices. Although most researchers extract factors from non-distribution free or parametric methods, researchers can also extract factors from distribution free or non-parametric methods. The nature of the data dictates the method…
Descriptors: Factor Analysis, Comparative Analysis, Correlation, Nonparametric Statistics
Ruscio, John; Roche, Brendan – Psychological Assessment, 2012
Exploratory factor analysis (EFA) is used routinely in the development and validation of assessment instruments. One of the most significant challenges when one is performing EFA is determining how many factors to retain. Parallel analysis (PA) is an effective stopping rule that compares the eigenvalues of randomly generated data with those for…
Descriptors: Factor Analysis, Simulation, Sampling, Correlation
Miller, Delyana I.; Davidson, Patrick S. R.; Schindler, Dwayne; Messier, Claude – Journal of Psychoeducational Assessment, 2013
New editions of the Wechsler Adult Intelligence and Memory scales are now available. Yet, given the significant changes in these new releases and the skepticism that has met them, independent evidence on their psychometric properties is much needed but currently lacking. We administered the WAIS-IV and the Older Adult version of the WMS-IV to 145…
Descriptors: Factor Analysis, Older Adults, Measures (Individuals), Memory
Canivez, Gary L.; Kush, Joseph C. – Journal of Psychoeducational Assessment, 2013
Weiss, Keith, Zhu, and Chen (2013a) and Weiss, Keith, Zhu, and Chen (2013b), this issue, report examinations of the factor structure of the Wechsler Adult Intelligence Scale-Fourth Edition (WAIS-IV) and Wechsler Intelligence Scale for Children-Fourth Edition (WISC-IV), respectively; comparing Wechsler Hierarchical Model (W-HM) and…
Descriptors: Intelligence Tests, Factor Structure, Comparative Analysis, Arithmetic
Kim, Eun Sook; Yoon, Myeongsun – Structural Equation Modeling: A Multidisciplinary Journal, 2011
This study investigated two major approaches in testing measurement invariance for ordinal measures: multiple-group categorical confirmatory factor analysis (MCCFA) and item response theory (IRT). Unlike the ordinary linear factor analysis, MCCFA can appropriately model the ordered-categorical measures with a threshold structure. A simulation…
Descriptors: Measurement, Factor Analysis, Item Response Theory, Comparative Analysis
Crawford, Aaron V.; Green, Samuel B.; Levy, Roy; Lo, Wen-Juo; Scott, Lietta; Svetina, Dubravka; Thompson, Marilyn S. – Educational and Psychological Measurement, 2010
Population and sample simulation approaches were used to compare the performance of parallel analysis using principal component analysis (PA-PCA) and parallel analysis using principal axis factoring (PA-PAF) to identify the number of underlying factors. Additionally, the accuracies of the mean eigenvalue and the 95th percentile eigenvalue criteria…
Descriptors: Factor Analysis, Statistical Analysis, Comparative Analysis
Elliott, Julian G.; Tudge, Jonathan – European Journal of Psychology of Education, 2012
In this article, we outline the need to draw upon multiple contexts to gain meaningful understanding of factors that have a significant bearing upon student achievement motivation and engagement. In calling for theoretical approaches that can accommodate the complexities involved, we suggest that Bronfenbrenner's bioecological theory offers…
Descriptors: Learner Engagement, Academic Achievement, Achievement Need, Motivation
Merkle, Edgar C. – Journal of Educational and Behavioral Statistics, 2011
Imputation methods are popular for the handling of missing data in psychology. The methods generally consist of predicting missing data based on observed data, yielding a complete data set that is amiable to standard statistical analyses. In the context of Bayesian factor analysis, this article compares imputation under an unrestricted…
Descriptors: Statistical Analysis, Factor Analysis, Bayesian Statistics, Comparative Analysis
Ma, Irene W. Y.; Zalunardo, Nadia; Pachev, George; Beran, Tanya; Brown, Melanie; Hatala, Rose; McLaughlin, Kevin – Advances in Health Sciences Education, 2012
The use of checklists is recommended for the assessment of competency in central venous catheterization (CVC) insertion. To explore the use of a global rating scale in the assessment of CVC skills, this study seeks to compare its use with two checklists, within the context of a formative examination using simulation. Video-recorded performances of…
Descriptors: Health Education, Science Education, Comparative Analysis, Simulation
Geiser, Christian; Eid, Michael; West, Stephen G.; Lischetzke, Tanja; Nussbeck, Fridtjof W. – Structural Equation Modeling: A Multidisciplinary Journal, 2012
Multimethod data analysis is a complex procedure that is often used to examine the degree to which different measures of the same construct converge in the assessment of this construct. Several authors have called for a greater understanding of the definition and meaning of method effects in different models for multimethod data. In this article,…
Descriptors: Structural Equation Models, Factor Analysis, Multitrait Multimethod Techniques, Comparative Analysis