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Rohlfing, Ingo; Schneider, Carsten Q. – Sociological Methods & Research, 2018
The combination of Qualitative Comparative Analysis (QCA) with process tracing, which we call set-theoretic multimethod research (MMR), is steadily becoming more popular in empirical research. Despite the fact that both methods have an elected affinity based on set theory, it is not obvious how a within-case method operating in a single case and a…
Descriptors: Mixed Methods Research, Qualitative Research, Comparative Analysis, Theories
Dorie, Vincent; Hill, Jennifer; Shalit, Uri; Scott, Marc; Cervone, Daniel – Grantee Submission, 2018
Statisticians have made great progress in creating methods that reduce our reliance on parametric assumptions. However this explosion in research has resulted in a breadth of inferential strategies that both create opportunities for more reliable inference as well as complicate the choices that an applied researcher has to make and defend.…
Descriptors: Statistical Inference, Simulation, Causal Models, Research Methodology
Xinran Li; Peng Ding – Grantee Submission, 2018
Frequentists' inference often delivers point estimators associated with confidence intervals or sets for parameters of interest. Constructing the confidence intervals or sets requires understanding the sampling distributions of the point estimators, which, in many but not all cases, are related to asymptotic Normal distributions ensured by central…
Descriptors: Correlation, Intervals, Sampling, Evaluation Methods
Kirikkaleli, Dervis; Ertugrul, Hasan Murat; Sari, Arif; Ozun, Alper; Kiral, Halis – Scandinavian Journal of Educational Research, 2021
The purpose of this study is to determine the direction of causality between the quality of education and technological development for the selected Northern European countries over the period 2006-2017. To this end, we employ the bootstrap panel causality test. The findings of our study indicate that the quality of education leads to changes in…
Descriptors: Educational Quality, Educational Policy, Educational Innovation, Technology Uses in Education
de Carvalho, Walisson Ferreira; Zárate, Luis Enrique – International Journal of Information and Learning Technology, 2021
Purpose: The paper aims to present a new two stage local causal learning algorithm -- HEISA. In the first stage, the algorithm discoveries the subset of features that better explains a target variable. During the second stage, computes the causal effect, using partial correlation, of each feature of the selected subset. Using this new algorithm,…
Descriptors: Causal Models, Algorithms, Learning Analytics, Correlation
Timothy Scott; Poonpilas Asavisanu – Higher Education Studies, 2023
This study synthesizes existing research to explore factors affecting student attrition in Thai higher education institutions and develop a causal model for dropout risk. The synthesis uses a mixed-method approach following PRISMA 2020 guidelines, drawing on six years of Thai contextual studies on student attrition, academic intention, commitment,…
Descriptors: Foreign Countries, Undergraduate Students, Dropout Characteristics, At Risk Students
Hasegawa, Raiden B.; Deshpande, Sameer K.; Small, Dylan S.; Rosenbaum, Paul R. – Journal of Educational and Behavioral Statistics, 2020
Causal effects are commonly defined as comparisons of the potential outcomes under treatment and control, but this definition is threatened by the possibility that either the treatment or the control condition is not well defined, existing instead in more than one version. This is often a real possibility in nonexperimental or observational…
Descriptors: Causal Models, Inferences, Randomized Controlled Trials, Experimental Groups
Cummiskey, Kevin; Adams, Bryan; Pleuss, James; Turner, Dusty; Clark, Nicholas; Watts, Krista – Journal of Statistics Education, 2020
Over the last two decades, statistics educators have made important changes to introductory courses. Current guidelines emphasize developing statistical thinking in students and exposing them to the entire investigative process in the context of interesting research questions and real data. As a result, many concepts (confounding, multivariable…
Descriptors: Statistics, Teaching Methods, Inferences, Guidelines
Dündar-Coecke, Selma; Tolmie, Andrew; Schlottmann, Anne – British Journal of Educational Psychology, 2020
Background: Causes produce effects via underlying mechanisms that must be inferred from observable and unobservable structures. Preschoolers show sensitivity to mechanisms in machine-like systems with perceptually distinct causes and effects, but little is known about how children extend causal reasoning to the natural continuous processes studied…
Descriptors: Preschool Children, Logical Thinking, Elementary School Students, Scientific Concepts
Yesilyurt, Ferahim; Solpuk Turhan, Nihan – Cypriot Journal of Educational Sciences, 2020
There are many different debates regarding the time spent on Instagram by social media addiction and life satisfaction. In consequence, in this research, it is aimed to reveal the variables that predict the time spent on Instagram by university students. The research is done in accordance with the causal and correlation model by using a…
Descriptors: Prediction, Life Satisfaction, Social Media, College Students
Carbonneau, Kira J.; Marley, Scott C.; Selig, James P.; Ward, Krystal; Korzekwa, Amy – Research in the Schools, 2019
The benefits of studying topics accompanied by adjunct displays are well established in the literature; however, less is understood about the durability of these learning benefits. Therefore, in the current study, we investigate the cognitive benefits of causal diagrams over time. Undergraduate participants (N = 194) recruited from teacher…
Descriptors: Undergraduate Students, Causal Models, Visual Aids, Educational Benefits
Naccarato, Shawn L. – ProQuest LLC, 2019
A historic period of state divestment in public higher education, exacerbated by the "Great Recession" and attendant financial repercussions, has significantly altered public higher education financing. The most significant impact has been cost shift from the state to students via increasing tuition rates. These changes threaten student…
Descriptors: Predictor Variables, Alumni, Donors, Private Financial Support
Isaac M. Opper – Annenberg Institute for School Reform at Brown University, 2021
Researchers often include covariates when they analyze the results of randomized controlled trials (RCTs), valuing the increased precision of the estimates over the potential of inducing small-sample bias when doing so. In this paper, we develop a sufficient condition which ensures that the inclusion of covariates does not cause small-sample bias…
Descriptors: Randomized Controlled Trials, Sample Size, Statistical Bias, Artificial Intelligence
Kane, Mike – Measurement: Interdisciplinary Research and Perspectives, 2017
In the article "Rethinking Traditional Methods of Survey Validation" Andrew Maul describes a minimalist validation methodology for survey instruments, which he suggests is widely used in some areas of psychology and then critiques this methodology empirically and conceptually. He provides a reduction ad absurdum argument by showing that…
Descriptors: Surveys, Validity, Psychological Characteristics, Methods
York, Richard – International Journal of Social Research Methodology, 2018
A common motivation for adding control variables to statistical models is to reduce the potential for spurious findings when analyzing non-experimental data and to thereby allow for more reliable causal inferences. However, as I show here, unless "all" potential confounding factors are included in an analysis (which is unlikely to be…
Descriptors: Inferences, Control Groups, Correlation, Experimental Groups

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