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Meng Ni; Kara Hadley-Shakya – Strategic Enrollment Management Quarterly, 2024
This study explores how students' initial two years at college influence degree GPA and duration of completion. Results highlight the importance of the first two-year cumulative GPA and credits in forecasting degree outcomes. Early college credits and high school GPA impact success, guiding effective course planning. Implications encompass…
Descriptors: College Freshmen, Undergraduate Students, Educational Attainment, Time to Degree
T. Leon Venable – Journal of Chemical Education, 2024
As an introduction to quadrupolar effects in NMR spectroscopy, students use low field ([superscript 1]H, 60 MHz), benchtop [superscript 13]C NMR spectroscopy to contrast the spin-spin coupling behavior of [superscript 13]C to the dipolar [superscript 1]H and quadrupolar [superscript 2]D in familiar solvents C(H/D)Cl[subscript 3], C(H/D)[subscript…
Descriptors: Inorganic Chemistry, Science Laboratories, Scientific Concepts, Spectroscopy
Katherine L. Devany – ProQuest LLC, 2024
This study examined the perceptions of students related to determinants of service quality experienced within both academic and non-academic areas of their respective institutions. As competition increases among higher education institutions so does the need to implement organizational strategies comparable to that of industries outside academia.…
Descriptors: Higher Education, Student Attitudes, Undergraduate Students, Catholics
Jing Chen; Bei Fang; Hao Zhang; Xia Xue – Interactive Learning Environments, 2024
High dropout rate exists universally in massive open online courses (MOOCs) due to the separation of teachers and learners in space and time. Dropout prediction using the machine learning method is an extremely important prerequisite to identify potential at-risk learners to improve learning. It has attracted much attention and there have emerged…
Descriptors: MOOCs, Potential Dropouts, Prediction, Artificial Intelligence
Stefan Ruseti; Ionut Paraschiv; Mihai Dascalu; Danielle S. McNamara – Grantee Submission, 2024
Automated Essay Scoring (AES) is a well-studied problem in Natural Language Processing applied in education. Solutions vary from handcrafted linguistic features to large Transformer-based models, implying a significant effort in feature extraction and model implementation. We introduce a novel Automated Machine Learning (AutoML) pipeline…
Descriptors: Computer Assisted Testing, Scoring, Automation, Essays
Stefan Ruseti; Ionut Paraschiv; Mihai Dascalu; Danielle S. McNamara – International Journal of Artificial Intelligence in Education, 2024
Automated Essay Scoring (AES) is a well-studied problem in Natural Language Processing applied in education. Solutions vary from handcrafted linguistic features to large Transformer-based models, implying a significant effort in feature extraction and model implementation. We introduce a novel Automated Machine Learning (AutoML) pipeline…
Descriptors: Computer Assisted Testing, Scoring, Automation, Essays
Shabnam Ara S. J.; Tanuja Ramachandriah; Manjula S. Haladappa – Online Learning, 2025
Predicting learner performance with precision is critical within educational systems, offering a basis for tailored interventions and instruction. The advent of big data analytics presents an opportunity to employ Machine Learning (ML) techniques to this end. Real-world data availability is often hampered by privacy concerns, prompting a shift…
Descriptors: Learning Analytics, Privacy, Artificial Intelligence, Regression (Statistics)
Achmad Bisri; Supardi; Yayu Heryatun; Hunainah; Annisa Navira – Journal of Education and Learning (EduLearn), 2025
In the educational landscape, educational data mining has emerged as an indispensable tool for institutions seeking to deliver exceptional and high-quality education. However, education data revealed suboptimal academic performance among a significant portion of the student population, which consequently resulted in delayed graduation. This…
Descriptors: Data Analysis, Models, Academic Achievement, Evaluation Methods
Ersoy Öz; Okan Bulut; Zuhal Fatma Cellat; Hülya Yürekli – Education and Information Technologies, 2025
Predicting student performance in international large-scale assessments (ILSAs) is crucial for understanding educational outcomes on a global scale. ILSAs, such as the Program for International Student Assessment and the Trends in International Mathematics and Science Study, serve as vital tools for policymakers, educators, and researchers to…
Descriptors: Foreign Countries, Achievement Tests, Secondary School Students, International Assessment
Bashiru Mohammed; Yonghong Cai – Policy Reviews in Higher Education, 2025
This study empirically examines the predictive relationship between Institutional Autonomy (IA) and Academic Freedom (AF) whilst controlling for the mediating effect of corporate governance (CG) amongst selected higher education institutions in Ghana. It also looks at the difference between females and males and their perceptions of the predictive…
Descriptors: Higher Education, Academic Freedom, Institutional Autonomy, Gender Differences
Zelalem Ayalew Abate; Abiy Yigzaw; Yinager Teklesellassie – GIST Education and Learning Research Journal, 2025
The fundamental goal of education is to teach students to become self-regulated learners who actively and efficiently manage their learning processes by deploying self-regulated learning strategies. Based on this stance, the present study investigated whether these strategies predicted the writing performance of English major students. Eleven…
Descriptors: Writing Achievement, Prediction, Majors (Students), English (Second Language)
Kalsea J. Koss; Sydney Kronaizl; Rachel Brown; Jeanne Brooks-Gunn – Child Development, 2025
Childhood adversity takes a toll on lifelong health. However, investigations of unpredictability as a form of adversity are lacking. Environmental unpredictability across multiple developmental periods and ecological levels was examined using a multiethnic, longitudinal birth cohort (1998-2000) oversampled for unmarried parents. Data were from the…
Descriptors: Trauma, Well Being, Children, Adolescents
Moonika Teppo; Regina Soobard; Miia Rannikmäe – Science Education International, 2025
Non-cognitive factors, such as motivation, have shown to play a significant role in adolescences science learning. However, there is little longitudinal research investigating students' intrinsic motivation in science learning over school years. Based on self-determination theory, this study examines the change in, and associations between,…
Descriptors: Secondary School Students, Student Attitudes, Grade 6, Grade 9
Rafael Alves da Silva; Lucas N. Ferreira – International Educational Data Mining Society, 2025
Several recommender systems have been proposed to suggest courses to students based on their transcripts. In this paper, we evaluate whether these systems can be generalized to other academic activities, such as research projects and extracurricular activities. We follow previous grade-aware and content-based approaches, where course descriptions…
Descriptors: Higher Education, Undergraduate Students, Holistic Approach, Learning Activities
Ashish Gurung; Jionghao Lin; Zhongtian Huang; Conrad Borchers; Ryan S. Baker; Vincent Aleven; Kenneth R. Koedinger – International Educational Data Mining Society, 2025
Prior work has developed a range of automated measures ("detectors") of student self-regulation and engagement from student log data. These measures have been successfully used to make discoveries about student learning. Here, we extend this line of research to an underexplored aspect of self-regulation: students' decisions about when to…
Descriptors: Decision Making, Computer Software, Tutoring, Electronic Learning

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