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Elpus, Kenneth – Journal of Research in Music Education, 2022
This study explored the transition from secondary to postsecondary education among a national sample of students who had or had not studied music in high school. Using evidence from the High School Longitudinal Study of 2009, a nationally representative longitudinal study of 21,440 American high school students who were ninth graders in the…
Descriptors: Music Education, Student Adjustment, High School Students, Longitudinal Studies
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Bartsch, Lea M.; Shepherdson, Peter – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2022
Previous research indicates that long-term memory (LTM) may contribute to performance in working memory (WM) tasks. Across 3 experiments, we investigated the extent to which active maintenance in WM can be replaced by relying on information stored in episodic LTM, thereby freeing capacity for additional information in WM. First, participants…
Descriptors: Short Term Memory, Task Analysis, Recall (Psychology), German
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Hall, Garret J.; Kaplan, David; Albers, Craig A. – Learning Disabilities Research & Practice, 2022
Bayesian latent change score modeling (LCSM) was used to compare models of triannual (fall, winter, spring) change on elementary math computation and concepts/applications curriculum-based measures. Data were collected from elementary students in Grades 2-5, approximately 700 to 850 students in each grade (47%-54% female; 78%-79% White, 10%-11%…
Descriptors: Learning Disabilities, Students with Disabilities, Elementary School Students, Mathematics Skills
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Amaliah, Dewi; Cook, Dianne; Tanaka, Emi; Hyde, Kate; Tierney, Nicholas – Journal of Statistics and Data Science Education, 2022
Textbook data is essential for teaching statistics and data science methods because it is clean, allowing the instructor to focus on methodology. Ideally textbook datasets are refreshed regularly, especially when they are subsets taken from an ongoing data collection. It is also important to use contemporary data for teaching, to imbue the sense…
Descriptors: Statistics Education, Data Science, Textbooks, Data Analysis
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Adinolfi, M. Leah; Johnson, David R.; Braxton, John M. – College and University, 2022
Theories explaining why students drop out of college have evolved to emphasize interactions between students and their college environments. While the interactionist model underscores the influence of social integration on student retention, few have examined the role of students' social networks in the decision-making process. Drawing on a survey…
Descriptors: Social Networks, Dropouts, College Students, Decision Making
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Lee, Victor R.; Pimentel, Daniel R.; Bhargava, Rahul; D'Ignazio, Catherine – British Journal of Educational Technology, 2022
As the field of K-12 data science education continues to take form, humanistic approaches to teaching and learning about data are needed. Data feminism is an approach that draws on feminist scholarship and action to humanize data and contend with the relationships between data and power. In this review paper, we draw on principles from data…
Descriptors: Data, Feminism, Scholarship, Humanization
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Lewis, Armanda; Stoyanovich, Julia – International Journal of Artificial Intelligence in Education, 2022
Although an increasing number of ethical data science and AI courses is available, with many focusing specifically on technology and computer ethics, pedagogical approaches employed in these courses rely exclusively on texts rather than on algorithmic development or data analysis. In this paper we recount a recent experience in developing and…
Descriptors: Statistics Education, Ethics, Artificial Intelligence, Compliance (Legal)
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Salas-Rueda, Ricardo-Adan – Turkish Online Journal of Distance Education, 2022
Educational institutions seek to transform the teaching-learning conditions through the use of new pedagogical and technological models. The aim of this quantitative research is to analyze the use of flipped classroom in the teaching-learning process on descriptive statistics through data science. The participants are 49 students who took the…
Descriptors: Flipped Classroom, Teaching Methods, Learning Processes, Statistics Education
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Mangiero, George A.; Qayyum, Arif; Cante, Charles J. – Journal of Education for Business, 2022
In this paper the authors present a unique approach to teaching introductory statistics at both the undergraduate and graduate levels. The approach uses a feature in Excel called "spinners" to dynamically adjust key variables, such as sample size, confidence levels, and probabilities, among others, to enable an expanded discussion of…
Descriptors: Statistics Education, Teaching Methods, Introductory Courses, Online Courses
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Sarsa, Sami; Leinonen, Juho; Hellas, Arto – Journal of Educational Data Mining, 2022
New knowledge tracing models are continuously being proposed, even at a pace where state-of-the-art models cannot be compared with each other at the time of publication. This leads to a situation where ranking models is hard, and the underlying reasons of the models' performance -- be it architectural choices, hyperparameter tuning, performance…
Descriptors: Learning Processes, Artificial Intelligence, Intelligent Tutoring Systems, Memory
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Coffland, David; Huff, Theresa – TechTrends: Linking Research and Practice to Improve Learning, 2022
Anxiety surrounding the taking of online statistics courses in higher education is a common issue. Many studies have been conducted on the cause of math anxiety as well as anxiety in computer-based learning. The purpose of this study was to examine whether using gamification and Mayer's Multimedia principles in an asynchronous, online statistics…
Descriptors: Instructional Design, Multimedia Instruction, Gamification, Statistics Education
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Fleischer, Yannik; Biehler, Rolf; Schulte, Carsten – Statistics Education Research Journal, 2022
This study examines modelling with machine learning. In the context of a yearlong data science course, the study explores how upper secondary students apply machine learning with Jupyter Notebooks and document the modelling process as a computational essay incorporating the different steps of the CRISP-DM cycle. The students' work is based on a…
Descriptors: Statistics Education, Educational Research, Electronic Learning, Secondary School Students
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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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