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  1. Language.Franklin Edgerton & Leonard Bloomfield - 1933 - Journal of the American Oriental Society 53 (3):295.
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  • Phonology, reading acquisition, and dyslexia: Insights from connectionist models.Michael W. Harm & Mark S. Seidenberg - 1999 - Psychological Review 106 (3):491-528.
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  • A solution to Plato's problem: The latent semantic analysis theory of acquisition, induction, and representation of knowledge.Thomas K. Landauer & Susan T. Dumais - 1997 - Psychological Review 104 (2):211-240.
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  • A distributed, developmental model of word recognition and naming.Mark S. Seidenberg & James L. McClelland - 1989 - Psychological Review 96 (4):523-568.
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  • A Diffusion Model Account of the Lexical Decision Task.Roger Ratcliff, Pablo Gomez & Gail McKoon - 2004 - Psychological Review 111 (1):159-182.
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  • Linguistic Self‐Correction in the Absence of Feedback: A New Approach to the Logical Problem of Language Acquisition.Michael Ramscar & Daniel Yarlett - 2007 - Cognitive Science 31 (6):927-960.
    In a series of studies children show increasing mastery of irregular plural forms (such as mice) simply by producing erroneous over‐regularized versions of them (such as mouses). We explain this phenomenon in terms of successive approximation in imitation: Children over‐regularize early in acquisition because the representations of frequent, regular plural forms develop more quickly, such that at the earliest stages of production they interfere with children's attempts to imitatively reproduce irregular forms they have heard in the input. As the strength (...)
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  • The myth of language universals: Language diversity and its importance for cognitive science.Nicholas Evans & Stephen C. Levinson - 2009 - Behavioral and Brain Sciences 32 (5):429-448.
    Talk of linguistic universals has given cognitive scientists the impression that languages are all built to a common pattern. In fact, there are vanishingly few universals of language in the direct sense that all languages exhibit them. Instead, diversity can be found at almost every level of linguistic organization. This fundamentally changes the object of enquiry from a cognitive science perspective. This target article summarizes decades of cross-linguistic work by typologists and descriptive linguists, showing just how few and unprofound the (...)
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  • A Mathematical Theory of Communication.Claude Elwood Shannon - 1948 - Bell System Technical Journal 27 (April 1924):379–423.
    The mathematical theory of communication.
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  • Probabilistic models of cognition: Conceptual foundations.Nick Chater & Alan Yuille - 2006 - Trends in Cognitive Sciences 10 (7):287-291.
    Remarkable progress in the mathematics and computer science of probability has led to a revolution in the scope of probabilistic models. In particular, ‘sophisticated’ probabilistic methods apply to structured relational systems such as graphs and grammars, of immediate relevance to the cognitive sciences. This Special Issue outlines progress in this rapidly developing field, which provides a potentially unifying perspective across a wide range of domains and levels of explanation. Here, we introduce the historical and conceptual foundations of the approach, explore (...)
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  • The Effects of Feature-Label-Order and Their Implications for Symbolic Learning.Michael Ramscar, Daniel Yarlett, Melody Dye, Katie Denny & Kirsten Thorpe - 2010 - Cognitive Science 34 (6):909-957.
    Symbols enable people to organize and communicate about the world. However, the ways in which symbolic knowledge is learned and then represented in the mind are poorly understood. We present a formal analysis of symbolic learning—in particular, word learning—in terms of prediction and cue competition, and we consider two possible ways in which symbols might be learned: by learning to predict a label from the features of objects and events in the world, and by learning to predict features from a (...)
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  • Speech and Language Processing: An Introduction to Natural Language Processing, Computational Linguistics, and Speech Recognition.Dan Jurafsky & James H. Martin - 2000 - Prentice-Hall.
    The first of its kind to thoroughly cover language technology at all levels and with all modern technologies this book takes an empirical approach to the ...
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  • The Bayesian reader: Explaining word recognition as an optimal Bayesian decision process.Dennis Norris - 2006 - Psychological Review 113 (2):327-357.
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  • Orthographic processing in visual word recognition: A multiple read-out model.Jonathan Grainger & Arthur M. Jacobs - 1996 - Psychological Review 103 (3):518-565.
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  • Morphology and meaning in the English mental lexicon.William Marslen-Wilson, Lorraine K. Tyler, Rachelle Waksler & Lianne Older - 1994 - Psychological Review 101 (1):3-33.
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  • A retrieval theory of priming in memory.Roger Ratcliff & Gail McKoon - 1988 - Psychological Review 95 (3):385-408.
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  • Computing the Meanings of Words in Reading: Cooperative Division of Labor Between Visual and Phonological Processes.Michael W. Harm & Mark S. Seidenberg - 2004 - Psychological Review 111 (3):662-720.
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  • Cognitive determinants of subtractive word formation: A corpus-based perspective.Stefan Th Gries - 2006 - Cognitive Linguistics 17 (4).
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  • Lexeme-Morpheme Base Morphology: A General Theory of Inflection and Word Formation.Robert Beard - 1995 - State University of New York Press.
    This is the first complete theory of the morphology of language, a compendium of information on morphological categories and operations.
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  • The probabilistic analysis of language acquisition: Theoretical, computational, and experimental analysis.Anne S. Hsu, Nick Chater & Paul M. B. Vitányi - 2011 - Cognition 120 (3):380-390.
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  • Putting the bits together: an information theoretical perspective on morphological processing.Fermı́n Moscoso del Prado Martı́n, Aleksandar Kostić & R. Harald Baayen - 2004 - Cognition 94 (1):1-18.
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  • Morphological units in the Arabic mental lexicon.Sami Boudelaa & William D. Marslen-Wilson - 2001 - Cognition 81 (1):65-92.
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  • Relationships Between Language Structure and Language Learning: The Suffixing Preference and Grammatical Categorization.Michelle C. St Clair, Padraic Monaghan & Michael Ramscar - 2009 - Cognitive Science 33 (7):1317-1329.
    It is a reasonable assumption that universal properties of natural languages are not accidental. They occur either because they are underwritten by genetic code, because they assist in language processing or language learning, or due to some combination of the two. In this paper we investigate one such language universal: the suffixing preference across the world’s languages, whereby inflections tend to be added to the end of words. A corpus analysis of child‐directed speech in English found that suffixes were more (...)
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  • Equilibria of the Rescorla-Wagner Model.David Danks - unknown
    The Rescorla–Wagner model has been a leading theory of animal causal induction for nearly 30 years, and human causal induction for the past 15 years. Recent theories 367) have provided alternative explanations of how people draw causal conclusions from covariational data. However, theoretical attempts to compare the Rescorla–Wagner model with more recent models have been hampered by the fact that the Rescorla–Wagner model is an algorithmic theory, while the more recent theories are all computational. This paper provides a detailed derivation (...)
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