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Qinjin Jia; Jialin Cui; Ruijie Xi; Chengyuan Liu; Parvez Rashid; Ruochi Li; Edward Gehringer – International Educational Data Mining Society, 2024
Feedback on student assignments plays a crucial role in steering students toward academic success. To provide feedback more promptly and efficiently, researchers are actively exploring the use of large language models (LLMs) to automatically generate feedback on student artifacts. Although the generated feedback is highly fluent, coherent, and…
Descriptors: Feedback (Response), Assignments, Artificial Intelligence, Accuracy
Branch, Fallon; Lewis, Allison JoAnna; Santana, Isabella Noel; Hegdé, Jay – Cognitive Research: Principles and Implications, 2021
Camouflage-breaking is a special case of visual search where an object of interest, or target, can be hard to distinguish from the background even when in plain view. We have previously shown that naive, non-professional subjects can be trained using a deep learning paradigm to accurately perform a camouflage-breaking task in which they report…
Descriptors: Visual Perception, Accuracy, Identification, Expertise
de Jong, Valentijn M. T.; Campbell, Harlan; Maxwell, Lauren; Jaenisch, Thomas; Gustafson, Paul; Debray, Thomas P. A. – Research Synthesis Methods, 2023
A common problem in the analysis of multiple data sources, including individual participant data meta-analysis (IPD-MA), is the misclassification of binary variables. Misclassification may lead to biased estimators of model parameters, even when the misclassification is entirely random. We aimed to develop statistical methods that facilitate…
Descriptors: Classification, Meta Analysis, Bayesian Statistics, Evaluation Methods
Thompson, W. Jake; Nash, Brooke; Clark, Amy K.; Hoover, Jeffrey C. – Journal of Educational Measurement, 2023
As diagnostic classification models become more widely used in large-scale operational assessments, we must give consideration to the methods for estimating and reporting reliability. Researchers must explore alternatives to traditional reliability methods that are consistent with the design, scoring, and reporting levels of diagnostic assessment…
Descriptors: Diagnostic Tests, Simulation, Test Reliability, Accuracy
Witherby, Amber E.; Carpenter, Shana K.; Smith, Andrew M. – Metacognition and Learning, 2023
Prior knowledge is often strongly related to students' learning. In the present research, we explored the relationship between prior knowledge and the accuracy of students' predictive monitoring judgments (judgments of learning; JOLs) and postdictive monitoring judgments (confidence judgments). In four experiments, students completed prior…
Descriptors: Metacognition, Prior Learning, Accuracy, Prediction
Kreiner, Hamutal; Gamliel, Eyal – Journal of Experimental Psychology: Learning, Memory, and Cognition, 2023
"Attribute-framing bias" reflects people's tendency to evaluate objects framed positively more favorably than the same objects framed negatively. Although biased by the framing valence, evaluations are nevertheless calibrated to the magnitude of the target attribute. In three experiments that manipulated magnitudes in different ways, we…
Descriptors: Responses, Bias, Evaluation, Cognitive Processes
Ranger, Jochen; Schmidt, Nico; Wolgast, Anett – Educational and Psychological Measurement, 2023
Recent approaches to the detection of cheaters in tests employ detectors from the field of machine learning. Detectors based on supervised learning algorithms achieve high accuracy but require labeled data sets with identified cheaters for training. Labeled data sets are usually not available at an early stage of the assessment period. In this…
Descriptors: Identification, Cheating, Information Retrieval, Tests
Carpenter, Katie L.; Williams, David M. – Autism: The International Journal of Research and Practice, 2023
Metacognition refers to cognitions about our own cognitions. In recent years, there has been a concerted effort to examine metacognition among autistic people. The results from these studies have produced a mixed picture, with some concluding that autistic people are just as accurate as typically developing people in judging their own cognitions…
Descriptors: Meta Analysis, Criticism, Metacognition, Accuracy
Currie, Nicola K.; Cain, Kate – Discourse Processes: A Multidisciplinary Journal, 2023
We examined knowledge-based inference in 6-, 8- and 10-year-olds. Participants listened to texts where the number of clues for an inference was manipulated and then judged whether single-word probes (target inference, competing inference, literal word from the text and an unrelated concept) were related to the story. Accuracy and response times…
Descriptors: Inferences, Children, Story Reading, Accuracy
Meziane, Rabia Sabah; MacLeod, Andrea A. N. – Journal of Child Language, 2023
This study aims to describe the relationships between child-internal and child-external factors and the consonant accuracy of bilingual children. More specifically, the study looks at internal factors: expressive and receptive vocabulary, and external factors: language exposure and language status, of a group of 4-year-old bilingual Arabic-French…
Descriptors: Phonemes, Arabic, French, Preschool Children
Sturner, Raymond; Bergmann, Paul; Howard, Barbara; Bet, Kerry; Stewart-Artz, Lydia; Attar, Shana – Journal of Autism and Developmental Disorders, 2023
Prior studies suggest autism-specific and general developmental screens are complementary for identifying both autism and developmental delay (DD). Parents completed autism and developmental screens before 18-month visits. Children with failed screens for autism (n = 167) and age, gender, and practice-matched children passing screens (n = 241)…
Descriptors: Autism Spectrum Disorders, Screening Tests, Developmental Delays, Clinical Diagnosis
Hall, Michelle; Lees, Melinda; Serich, Cameron; Hunt, Richard – National Centre for Vocational Education Research (NCVER), 2023
This paper summarises exploratory analysis undertaken to evaluate the effectiveness of using machine learning approaches to calculate projected completion rates for vocational education and training (VET) programs, and compares this with the current approach used at the National Centre for Vocational Education Research (NCVER) -- Markov chains…
Descriptors: Vocational Education, Graduation Rate, Artificial Intelligence, Prediction
Alexandra C. Salem; Robert C. Gale; Mikala Fleegle; Gerasimos Fergadiotis; Steven Bedrick – Journal of Speech, Language, and Hearing Research, 2023
Purpose: To date, there are no automated tools for the identification and fine-grained classification of paraphasias within discourse, the production of which is the hallmark characteristic of most people with aphasia (PWA). In this work, we fine-tune a large language model (LLM) to automatically predict paraphasia targets in Cinderella story…
Descriptors: Aphasia, Prediction, Story Telling, Oral Language
Yanxuan Qu; Sandip Sinharay – ETS Research Report Series, 2023
Though a substantial amount of research exists on imputing missing scores in educational assessments, there is little research on cases where responses or scores to an item are missing for all test takers. In this paper, we tackled the problem of imputing missing scores for tests for which the responses to an item are missing for all test takers.…
Descriptors: Scores, Test Items, Accuracy, Psychometrics
Katherine Williams; Chenmu Xing; Kolbi Bradley; Hilary Barth; Andrea L. Patalano – Journal of Numerical Cognition, 2023
Recent work reveals a left digit effect in number line estimation such that adults' and children's estimates for three-digit numbers with different hundreds-place digits but nearly identical magnitudes are systematically different (e.g., 398 is placed too far to the left of 401 on a 0-1000 line, despite their almost indistinguishable magnitudes;…
Descriptors: Computation, Visual Aids, Feedback (Response), Undergraduate Students

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