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  1. All Together Now: Concurrent Learning of Multiple Structures in an Artificial Language.Alexa R. Romberg & Jenny R. Saffran - 2013 - Cognitive Science 37 (7):1290-1320.
    Natural languages contain many layers of sequential structure, from the distribution of phonemes within words to the distribution of phrases within utterances. However, most research modeling language acquisition using artificial languages has focused on only one type of distributional structure at a time. In two experiments, we investigated adult learning of an artificial language that contains dependencies between both adjacent and non-adjacent words. We found that learners rapidly acquired both types of regularities and that the strength of the adjacent statistics (...)
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  • Experience with morphosyntactic paradigms allows toddlers to tacitly anticipate overregularized verb forms months before they produce them.Megan Figueroa & LouAnn Gerken - 2019 - Cognition 191 (C):103977.
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  • Integrating constraints for learning word–referent mappings.Padraic Monaghan & Karen Mattock - 2012 - Cognition 123 (1):133-143.
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  • Modeling the Influence of Language Input Statistics on Children's Speech Production.Ingeborg Roete, Stefan L. Frank, Paula Fikkert & Marisa Casillas - 2020 - Cognitive Science 44 (12):e12924.
    We trained a computational model (the Chunk-Based Learner; CBL) on a longitudinal corpus of child–caregiver interactions in English to test whether one proposed statistical learning mechanism—backward transitional probability—is able to predict children's speech productions with stable accuracy throughout the first few years of development. We predicted that the model less accurately reconstructs children's speech productions as they grow older because children gradually begin to generate speech using abstracted forms rather than specific “chunks” from their speech environment. To test this idea, (...)
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  • Skilled readers’ sensitivity to meaningful regularities in English writing.Anastasia Ulicheva, Hannah Harvey, Mark Aronoff & Kathleen Rastle - 2020 - Cognition 195 (C):103810.
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  • A universal cue for grammatical categories in the input to children: Frequent frames.Steven Moran, Damián E. Blasi, Robert Schikowski, Aylin C. Küntay, Barbara Pfeiler, Shanley Allen & Sabine Stoll - 2018 - Cognition 175 (C):131-140.
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  • Non‐Arbitrariness in Mapping Word Form to Meaning: Cross‐Linguistic Formal Markers of Word Concreteness.Jamie Reilly, Jinyi Hung & Chris Westbury - 2017 - Cognitive Science 41 (4):1071-1089.
    Arbitrary symbolism is a linguistic doctrine that predicts an orthogonal relationship between word forms and their corresponding meanings. Recent corpora analyses have demonstrated violations of arbitrary symbolism with respect to concreteness, a variable characterizing the sensorimotor salience of a word. In addition to qualitative semantic differences, abstract and concrete words are also marked by distinct morphophonological structures such as length and morphological complexity. Native English speakers show sensitivity to these markers in tasks such as auditory word recognition and naming. One (...)
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  • Adding Sentence Types to a Model of Syntactic Category Acquisition.Stella Frank, Sharon Goldwater & Frank Keller - 2013 - Topics in Cognitive Science 5 (3):495-521.
    The acquisition of syntactic categories is a crucial step in the process of acquiring syntax. At this stage, before a full grammar is available, only surface cues are available to the learner. Previous computational models have demonstrated that local contexts are informative for syntactic categorization. However, local contexts are affected by sentence-level structure. In this paper, we add sentence type as an observed feature to a model of syntactic category acquisition, based on experimental evidence showing that pre-syntactic children are able (...)
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  • Distributional structure in language: Contributions to noun–verb difficulty differences in infant word recognition.Jon A. Willits, Mark S. Seidenberg & Jenny R. Saffran - 2014 - Cognition 132 (3):429-436.
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  • Adjacent and Non‐Adjacent Word Contexts Both Predict Age of Acquisition of English Words: A Distributional Corpus Analysis of Child‐Directed Speech.Lucas M. Chang & Gedeon O. Deák - 2020 - Cognitive Science 44 (11):e12899.
    Children show a remarkable degree of consistency in learning some words earlier than others. What patterns of word usage predict variations among words in age of acquisition? We use distributional analysis of a naturalistic corpus of child‐directed speech to create quantitative features representing natural variability in word contexts. We evaluate two sets of features: One set is generated from the distribution of words into frames defined by the two adjacent words. These features primarily encode syntactic aspects of word usage. The (...)
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  • Simultaneous segmentation and generalisation of non-adjacent dependencies from continuous speech.Rebecca L. A. Frost & Padraic Monaghan - 2016 - Cognition 147 (C):70-74.
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