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Johns, Brendan T.; Jamieson, Randall K. – Cognitive Science, 2018
The collection of very large text sources has revolutionized the study of natural language, leading to the development of several models of language learning and distributional semantics that extract sophisticated semantic representations of words based on the statistical redundancies contained within natural language (e.g., Griffiths, Steyvers,…
Descriptors: Statistical Analysis, Written Language, Models, Language Enrichment
Nicenboim, Bruno; Vasishth, Shravan; Engelmann, Felix; Suckow, Katja – Cognitive Science, 2018
Given the replication crisis in cognitive science, it is important to consider what researchers need to do in order to report results that are reliable. We consider three changes in current practice that have the potential to deliver more realistic and robust claims. First, the planned experiment should be divided into two stages, an exploratory…
Descriptors: Sentences, Case Studies, Cognitive Science, Psycholinguistics
Virpioja, Sami; Lehtonen, Minna; Hultén, Annika; Kivikari, Henna; Salmelin, Riitta; Lagus, Krista – Cognitive Science, 2018
Determining optimal units of representing morphologically complex words in the mental lexicon is a central question in psycholinguistics. Here, we utilize advances in computational sciences to study human morphological processing using statistical models of morphology, particularly the unsupervised Morfessor model that works on the principle of…
Descriptors: Statistical Analysis, Models, Morphology (Languages), Vocabulary
Fusaroli, Riccardo; Tylén, Kristian – Cognitive Science, 2016
This study investigates interpersonal processes underlying dialog by comparing two approaches, "interactive alignment" and "interpersonal synergy", and assesses how they predict collective performance in a joint task. While the interactive alignment approach highlights imitative patterns between interlocutors, the synergy…
Descriptors: Interpersonal Communication, Language Patterns, Discourse Analysis, Task Analysis
Steyvers, Mark; Tenenbaum, Joshua B. – Cognitive Science, 2005
We present statistical analyses of the large-scale structure of 3 types of semantic networks: word associations, WordNet, and Roget's Thesaurus. We show that they have a small-world structure, characterized by sparse connectivity, short average path lengths between words, and strong local clustering. In addition, the distributions of the number of…
Descriptors: Semantics, Internet, Associative Learning, Statistical Analysis