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  1. A predictive coding model of the N400.Samer Nour Eddine, Trevor Brothers, Lin Wang, Michael Spratling & Gina R. Kuperberg - 2024 - Cognition 246 (C):105755.
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  • Similarity of referents influences the learning of phonological word forms: Evidence from concurrent word learning.Libo Zhao, Stephanie Packard, Bob McMurray & Prahlad Gupta - 2019 - Cognition 190 (C):42-60.
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  • Language modality shapes the dynamics of word and sign recognition.Saúl Villameriel, Brendan Costello, Patricia Dias, Marcel Giezen & Manuel Carreiras - 2019 - Cognition 191 (C):103979.
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  • Modeling the Structure and Dynamics of Semantic Processing.Armand S. Rotaru, Gabriella Vigliocco & Stefan L. Frank - 2018 - Cognitive Science 42 (8):2890-2917.
    The contents and structure of semantic memory have been the focus of much recent research, with major advances in the development of distributional models, which use word co‐occurrence information as a window into the semantics of language. In parallel, connectionist modeling has extended our knowledge of the processes engaged in semantic activation. However, these two lines of investigation have rarely been brought together. Here, we describe a processing model based on distributional semantics in which activation spreads throughout a semantic network, (...)
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  • Simulating the N400 ERP component as semantic network error: Insights from a feature-based connectionist attractor model of word meaning.Milena Rabovsky & Ken McRae - 2014 - Cognition 132 (1):68-89.
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  • Interference effects of phonological similarity in word production arise from competitive incremental learning.Qingqing Qu, Chen Feng & Markus F. Damian - 2021 - Cognition 212 (C):104738.
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  • When Wine and Apple Both Help the Production of Grapes: ERP Evidence for Post-lexical Semantic Facilitation in Picture Naming.Grégoire Python, Raphaël Fargier & Marina Laganaro - 2018 - Frontiers in Human Neuroscience 12.
  • The Effect of Lexical Cohort Size Is Independent of Semantic Context Effects in a Picture–Word Interference Task: A Combined ERP and sLORETA Study.Mingkun Ouyang, Xiao Cai & Qingfang Zhang - 2019 - Frontiers in Human Neuroscience 13.
  • Love thy neighbor: Facilitation and inhibition in the competition between parallel predictions.Tal Ness & Aya Meltzer-Asscher - 2021 - Cognition 207:104509.
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  • Knowing Chinese character grammar.James Myers - 2016 - Cognition 147 (C):127-132.
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  • Word Forms Are Structured for Efficient Use.Kyle Mahowald, Isabelle Dautriche, Edward Gibson & Steven T. Piantadosi - 2018 - Cognitive Science 42 (8):3116-3134.
    Zipf famously stated that, if natural language lexicons are structured for efficient communication, the words that are used the most frequently should require the least effort. This observation explains the famous finding that the most frequent words in a language tend to be short. A related prediction is that, even within words of the same length, the most frequent word forms should be the ones that are easiest to produce and understand. Using orthographics as a proxy for phonetics, we test (...)
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  • The Presence of Background Noise Extends the Competitor Space in Native and Non‐Native Spoken‐Word Recognition: Insights from Computational Modeling.Themis Karaminis, Florian Hintz & Odette Scharenborg - 2022 - Cognitive Science 46 (2):e13110.
    Oral communication often takes place in noisy environments, which challenge spoken-word recognition. Previous research has suggested that the presence of background noise extends the number of candidate words competing with the target word for recognition and that this extension affects the time course and accuracy of spoken-word recognition. In this study, we further investigated the temporal dynamics of competition processes in the presence of background noise, and how these vary in listeners with different language proficiency (i.e., native and non-native) using (...)
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  • The Presence of Background Noise Extends the Competitor Space in Native and Non‐Native Spoken‐Word Recognition: Insights from Computational Modeling.Themis Karaminis, Florian Hintz & Odette Scharenborg - 2022 - Cognitive Science 46 (2):e13110.
    Cognitive Science, Volume 46, Issue 2, February 2022.
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  • Immediate lexical integration of novel word forms.Efthymia C. Kapnoula, Stephanie Packard, Prahlad Gupta & Bob McMurray - 2015 - Cognition 134:85-99.
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  • Get rich quick: The signal to respond procedure reveals the time course of semantic richness effects during visual word recognition.Ian S. Hargreaves & Penny M. Pexman - 2014 - Cognition 131 (2):216-242.
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  • Different Loci of Semantic Interference in Picture Naming vs. Word-Picture Matching Tasks.Denise Y. Harvey & Tatiana T. Schnur - 2016 - Frontiers in Psychology 7.
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  • Semantic Interference and Facilitation: Understanding the Integration of Spatial Distance and Conceptual Similarity During Sentence Reading.Ernesto Guerra & Pia Knoeferle - 2018 - Frontiers in Psychology 9.
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  • Semantic Richness Effects in Spoken Word Recognition: A Lexical Decision and Semantic Categorization Megastudy.Winston D. Goh, Melvin J. Yap, Mabel C. Lau, Melvin M. R. Ng & Luuan-Chin Tan - 2016 - Frontiers in Psychology 7.
  • Interaction Between Phonological and Semantic Representations: Time Matters.Qi Chen & Daniel Mirman - 2015 - Cognitive Science 39 (3):538-558.
    Computational modeling and eye-tracking were used to investigate how phonological and semantic information interact to influence the time course of spoken word recognition. We extended our recent models to account for new evidence that competition among phonological neighbors influences activation of semantically related concepts during spoken word recognition . The model made a novel prediction: Semantic input modulates the effect of phonological neighbors on target word processing, producing an approximately inverted-U-shaped pattern with a high phonological density advantage at an intermediate (...)
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  • Quantifying the Interplay of Semantics and Phonology During Failures of Word Retrieval by People With Aphasia Using a Multiplex Lexical Network.Nichol Castro, Massimo Stella & Cynthia S. Q. Siew - 2020 - Cognitive Science 44 (9):e12881.
    Investigating instances where lexical selection fails can lead to deeper insights into the cognitive machinery and architecture supporting successful word retrieval and speech production. In this paper, we used a multiplex lexical network approach that combines semantic and phonological similarities among words to model the structure of the mental lexicon. Network measures at different levels of analysis (degree, network distance, and closeness centrality) were used to investigate the influence of network structure on picture naming accuracy and errors by people with (...)
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  • Learning During Processing: Word Learning Doesn't Wait for Word Recognition to Finish.S. Apfelbaum Keith & McMurray Bob - 2017 - Cognitive Science 41 (S4):706-747.
    Previous research on associative learning has uncovered detailed aspects of the process, including what types of things are learned, how they are learned, and where in the brain such learning occurs. However, perceptual processes, such as stimulus recognition and identification, take time to unfold. Previous studies of learning have not addressed when, during the course of these dynamic recognition processes, learned representations are formed and updated. If learned representations are formed and updated while recognition is ongoing, the result of learning (...)
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