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  1. Emotional stimuli boost incidental learning through predictive processing.Meital Friedman-Oskar, Tomer Sahar, Tal Makovski & Hadas Okon-Singer - forthcoming - Cognition and Emotion.
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  • Zipfian frequency distributions facilitate word segmentation in context.Chigusa Kurumada, Stephan C. Meylan & Michael C. Frank - 2013 - Cognition 127 (3):439-453.
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  • Neurocognitive mechanisms of statistical-sequential learning: what do event-related potentials tell us?Jerome Daltrozzo & Christopher M. Conway - 2014 - Frontiers in Human Neuroscience 8.
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  • Effects of statistical learning on the acquisition of grammatical categories through Qur’anic memorization: A natural experiment.Fathima Manaar Zuhurudeen & Yi Ting Huang - 2016 - Cognition 148 (C):79-84.
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  • Language experience changes subsequent learning.Luca Onnis & Erik Thiessen - 2013 - Cognition 126 (2):268-284.
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  • Individual differences in artificial and natural language statistical learning.Erin S. Isbilen, Stewart M. McCauley & Morten H. Christiansen - 2022 - Cognition 225 (C):105123.
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  • Statistically Induced Chunking Recall: A Memory‐Based Approach to Statistical Learning.Erin S. Isbilen, Stewart M. McCauley, Evan Kidd & Morten H. Christiansen - 2020 - Cognitive Science 44 (7):e12848.
    The computations involved in statistical learning have long been debated. Here, we build on work suggesting that a basic memory process, chunking, may account for the processing of statistical regularities into larger units. Drawing on methods from the memory literature, we developed a novel paradigm to test statistical learning by leveraging a robust phenomenon observed in serial recall tasks: that short‐term memory is fundamentally shaped by long‐term distributional learning. In the statistically induced chunking recall (SICR) task, participants are exposed to (...)
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  • Musicians’ Online Performance during Auditory and Visual Statistical Learning Tasks.Pragati R. Mandikal Vasuki, Mridula Sharma, Ronny K. Ibrahim & Joanne Arciuli - 2017 - Frontiers in Human Neuroscience 11.
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  • Concurrent Learning of Adjacent and Nonadjacent Dependencies in Visuo-Spatial and Visuo-Verbal Sequences.Joanne A. Deocampo, Tricia Z. King & Christopher M. Conway - 2019 - Frontiers in Psychology 10.
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  • Chunk‐Based Memory Constraints on the Cultural Evolution of Language.Erin S. Isbilen & Morten H. Christiansen - 2018 - Topics in Cognitive Science 12 (2):713-726.
    How linguistic structures evolve so as to become easier to process is addressed by Isbilen and Christiansen for the Now‐or‐Never bottleneck. The authors suggest that this fundamental challenge in language processing is coped with by rapid compression of the transient linguistic input into chunks then to be passed on. As linguistic structures that can be chunked more easily tend to stabilize and proliferate, language evolves to fit learners’ cognitive capabilities.
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  • Implicit Statistical Learning: A Tale of Two Literatures.Morten H. Christiansen - 2019 - Topics in Cognitive Science 11 (3):468-481.
    In this review article, Christiansen provides a historical perspective on the two research traditions, implicit learning and statistical learning, thus nicely setting the scene for this special issue of Topics in Cognitive Science. In this “tale of two literatures”, he first traces the history of both literatures before sketching a framework that provides a basis for understanding implicit learning and statistical learning as a unified phenomenon.
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  • The Relationship Between Artificial and Second Language Learning.Marc Ettlinger, Kara Morgan-Short, Mandy Faretta-Stutenberg & Patrick C. M. Wong - 2016 - Cognitive Science 40 (4):822-847.
    Artificial language learning experiments have become an important tool in exploring principles of language and language learning. A persistent question in all of this work, however, is whether ALL engages the linguistic system and whether ALL studies are ecologically valid assessments of natural language ability. In the present study, we considered these questions by examining the relationship between performance in an ALL task and second language learning ability. Participants enrolled in a Spanish language class were evaluated using a number of (...)
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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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  • Why are auditory novels distracting? Contrasting the roles of novelty, violation of expectation and stimulus change.Fabrice B. R. Parmentier, Jane V. Elsley, Pilar Andrés & Francisco Barceló - 2011 - Cognition 119 (3):374-380.
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  • Influences of Cognitive Control on Numerical Cognition—Adaptation by Binding for Implicit Learning.Korbinian Moeller, Elise Klein & Hans-Christoph Nuerk - 2013 - Topics in Cognitive Science 5 (2):335-353.
    Recently, an associative learning account of cognitive control has been suggested (Verguts & Notebaert, 2009). In this so-called adaptation by binding theory, Hebbian learning of stimulus–stimulus and stimulus–response associations is assumed to drive the adaptation of human behavior. In this study, we evaluated the validity of the adaptation-by-binding account for the case of implicit learning of regularities within a stimulus set (i.e., the frequency of specific unit digit combinations in a two-digit number magnitude comparison task) and their association with a (...)
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  • Developmental insights into mature cognition.Frank C. Keil - 2015 - Cognition 135:10-13.
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  • 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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  • Changes in the Sensitivity to Language-Specific Orthographic Patterns With Age.Jon Andoni Duñabeitia, María Borragán, Angela de Bruin & Aina Casaponsa - 2020 - Frontiers in Psychology 11.
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  • Statistical Learning, Implicit Learning, and First Language Acquisition: A Critical Evaluation of Two Developmental Predictions.Inbal Arnon - 2019 - Topics in Cognitive Science 11 (3):504-519.
    In this article, Arnon explores the link between implicit learning, statistical learning and language development. She focuses on two central themes, namely the issue of age invariance and the question of variation in learning outcomes. Arnon suggests that the two literatures are studying a fundamentally similar phenomenon and argues in favor of a closer alignment. However, she also raises important methodological concerns.
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  • Statistical Learning Is Not Age‐Invariant During Childhood: Performance Improves With Age Across Modality.Amir Shufaniya & Inbal Arnon - 2018 - Cognitive Science 42 (8):3100-3115.
    Humans are capable of extracting recurring patterns from their environment via statistical learning (SL), an ability thought to play an important role in language learning and learning more generally. While much work has examined statistical learning in infants and adults, less work has looked at the developmental trajectory of SL during childhood to see whether it is fully developed in infancy or improves with age, like many other cognitive abilities. A recent study showed modality‐based differences in the effect of age (...)
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  • Cross-Domain Statistical–Sequential Dependencies Are Difficult to Learn.Anne M. Walk & Christopher M. Conway - 2016 - Frontiers in Psychology 7.
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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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  • Learning and Memory Processes Following Cochlear Implantation: The Missing Piece of the Puzzle.David B. Pisoni, William G. Kronenberger, Suyog H. Chandramouli & Christopher M. Conway - 2016 - Frontiers in Psychology 7.
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  • Questioning short-term memory and its measurement: Why digit span measures long-term associative learning.Gary Jones & Bill Macken - 2015 - Cognition 144 (C):1-13.
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  • Sequential Expectations: The Role of Prediction‐Based Learning in Language.Jennifer B. Misyak, Morten H. Christiansen & J. Bruce Tomblin - 2010 - Topics in Cognitive Science 2 (1):138-153.
    Prediction‐based processes appear to play an important role in language. Few studies, however, have sought to test the relationship within individuals between prediction learning and natural language processing. This paper builds upon existing statistical learning work using a novel paradigm for studying the on‐line learning of predictive dependencies. Within this paradigm, a new “prediction task” is introduced that provides a sensitive index of individual differences for developing probabilistic sequential expectations. Across three interrelated experiments, the prediction task and results thereof are (...)
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  • Exploring and Exploiting Uncertainty: Statistical Learning Ability Affects How We Learn to Process Language Along Multiple Dimensions of Experience.Dagmar Divjak & Petar Milin - 2020 - Cognitive Science 44 (5):e12835.
    While the effects of pattern learning on language processing are well known, the way in which pattern learning shapes exploratory behavior has long gone unnoticed. We report on the way in which individual differences in statistical pattern learning affect performance in the domain of language along multiple dimensions. Analyzing data from healthy monolingual adults' performance on a serial reaction time task and a self‐paced reading task, we show how individual differences in statistical pattern learning are reflected in readers' knowledge of (...)
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  • Exploring Variation Between Artificial Grammar Learning Experiments: Outlining a Meta‐Analysis Approach.Antony S. Trotter, Padraic Monaghan, Gabriël J. L. Beckers & Morten H. Christiansen - 2020 - Topics in Cognitive Science 12 (3):875-893.
    Studies of AGL have frequently used training and test stimuli that might provide multiple cues for learning, raising the question what subjects have actually learned. Using a selected subset of studies on humans and non‐human animals, Trotter et al. demonstrate how a meta‐analysis can be used to identify relevant experimental variables, providing a first step in asssessing the relative contribution of design features of grammars as well as of species‐specific effects on AGL.
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  • Redefining “Learning” in Statistical Learning: What Does an Online Measure Reveal About the Assimilation of Visual Regularities?Noam Siegelman, Louisa Bogaerts, Ofer Kronenfeld & Ram Frost - 2018 - Cognitive Science 42 (S3):692-727.
    From a theoretical perspective, most discussions of statistical learning have focused on the possible “statistical” properties that are the object of learning. Much less attention has been given to defining what “learning” is in the context of “statistical learning.” One major difficulty is that SL research has been monitoring participants’ performance in laboratory settings with a strikingly narrow set of tasks, where learning is typically assessed offline, through a set of two-alternative-forced-choice questions, which follow a brief visual or auditory familiarization (...)
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  • Second Language Experience Facilitates Statistical Learning of Novel Linguistic Materials.Christine E. Potter, Tianlin Wang & Jenny R. Saffran - 2017 - Cognitive Science 41 (S4):913-927.
    Recent research has begun to explore individual differences in statistical learning, and how those differences may be related to other cognitive abilities, particularly their effects on language learning. In this research, we explored a different type of relationship between language learning and statistical learning: the possibility that learning a new language may also influence statistical learning by changing the regularities to which learners are sensitive. We tested two groups of participants, Mandarin Learners and Naïve Controls, at two time points, 6 (...)
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  • Implicit Statistical Learning Across Modalities and Its Relationship With Reading in Childhood.Elpis V. Pavlidou & Louisa Bogaerts - 2019 - Frontiers in Psychology 10.
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  • Prediction plays a key role in language development as well as processing.Matt A. Johnson, Nicholas B. Turk-Browne & Adele E. Goldberg - 2013 - Behavioral and Brain Sciences 36 (4):360-361.
    Although the target article emphasizes the important role of prediction in language use, prediction may well also play a key role in the initial formation of linguistic representations, that is, in language development. We outline the role of prediction in three relevant language-learning domains: transitional probabilities, statistical preemption, and construction learning.
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  • Statistical Learning of Language: A Meta‐Analysis Into 25 Years of Research.Erin S. Isbilen & Morten H. Christiansen - 2022 - Cognitive Science 46 (9):e13198.
    Cognitive Science, Volume 46, Issue 9, September 2022.
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  • Toddlers’ Ability to Leverage Statistical Information to Support Word Learning.Erica M. Ellis, Arielle Borovsky, Jeffrey L. Elman & Julia L. Evans - 2021 - Frontiers in Psychology 12.
    PurposeThis study investigated whether the ability to utilize statistical regularities from fluent speech and map potential words to meaning at 18-months predicts vocabulary at 18- and again at 24-months.MethodEighteen-month-olds were exposed to an artificial language with statistical regularities within the speech stream, then participated in an object-label learning task. Learning was measured using a modified looking-while-listening eye-tracking design. Parents completed vocabulary questionnaires when their child was 18-and 24-months old.ResultsAbility to learn the object-label pairing for words after exposure to the artificial (...)
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