Kevyn Collins-Thompson


2024

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Finding Educationally Supportive Contexts for Vocabulary Learning with Attention-Based Models
Sungjin Nam | Kevyn Collins-Thompson | David Jurgens | Xin Tong
Proceedings of the 2024 Joint International Conference on Computational Linguistics, Language Resources and Evaluation (LREC-COLING 2024)

When learning new vocabulary, both humans and machines acquire critical information about the meaning of an unfamiliar word through contextual information in a sentence or passage. However, not all contexts are equally helpful for learning an unfamiliar ‘target’ word. Some contexts provide a rich set of semantic clues to the target word’s meaning, while others are less supportive. We explore the task of finding educationally supportive contexts with respect to a given target word for vocabulary learning scenarios, particularly for improving student literacy skills. Because of their inherent context-based nature, attention-based deep learning methods provide an ideal starting point. We evaluate attention-based approaches for predicting the amount of educational support from contexts, ranging from a simple custom model using pre-trained embeddings with an additional attention layer, to a commercial Large Language Model (LLM). Using an existing major benchmark dataset for educational context support prediction, we found that a sophisticated but generic LLM had poor performance, while a simpler model using a custom attention-based approach achieved the best-known performance to date on this dataset.

2016

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Predicting the Relative Difficulty of Single Sentences With and Without Surrounding Context
Elliot Schumacher | Maxine Eskenazi | Gwen Frishkoff | Kevyn Collins-Thompson
Proceedings of the 2016 Conference on Empirical Methods in Natural Language Processing

2009

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Statistical Estimation of Word Acquisition with Application to Readability Prediction
Paul Kidwell | Guy Lebanon | Kevyn Collins-Thompson
Proceedings of the 2009 Conference on Empirical Methods in Natural Language Processing

2008

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An Analysis of Statistical Models and Features for Reading Difficulty Prediction
Michael Heilman | Kevyn Collins-Thompson | Maxine Eskenazi
Proceedings of the Third Workshop on Innovative Use of NLP for Building Educational Applications

2007

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Combining Lexical and Grammatical Features to Improve Readability Measures for First and Second Language Texts
Michael Heilman | Kevyn Collins-Thompson | Jamie Callan | Maxine Eskenazi
Human Language Technologies 2007: The Conference of the North American Chapter of the Association for Computational Linguistics; Proceedings of the Main Conference

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Automatic and Human Scoring of Word Definition Responses
Kevyn Collins-Thompson | Jamie Callan
Human Language Technologies 2007: The Conference of the North American Chapter of the Association for Computational Linguistics; Proceedings of the Main Conference

2004

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A Language Modeling Approach to Predicting Reading Difficulty
Kevyn Collins-Thompson | James P. Callan
Proceedings of the Human Language Technology Conference of the North American Chapter of the Association for Computational Linguistics: HLT-NAACL 2004