Results for 'multisensory statistical learning'

994 found
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  1.  8
    Convergent and Distinct Effects of Multisensory Combination on Statistical Learning Using a Computer Glove.Christopher R. Madan & Anthony Singhal - 2021 - Frontiers in Psychology 11.
    Learning to play a musical instrument involves mapping visual + auditory cues to motor movements and anticipating transitions. Inspired by the serial reaction time task and artificial grammar learning, we investigated explicit and implicit knowledge of statistical learning in a sensorimotor task. Using a between-subjects design with four groups, one group of participants were provided with visual cues and followed along by tapping the corresponding fingertip to their thumb, while using a computer glove. Another group additionally (...)
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  2.  30
    Multimodal integration in statistical learning: evidence from the McGurk illusion.Aaron D. Mitchel, Morten H. Christiansen & Daniel J. Weiss - 2014 - Frontiers in Psychology 5:85721.
    Recent advances in the field of statistical learning have established that learners are able to track regularities of multimodal stimuli, yet it is unknown whether the statistical computations are performed on integrated representations or on separate, unimodal representations. In the present study, we investigated the ability of adults to integrate audio and visual input during statistical learning. We presented learners with a speech stream synchronized with a video of a speaker’s face. In the critical condition, (...)
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  3.  60
    Statistical learning of social signals and its implications for the social brain hypothesis.Hjalmar K. Turesson & Asif A. Ghazanfar - 2011 - Interaction Studies 12 (3):397-417.
    The social brain hypothesis implies that humans and other primates evolved “modules“ for representing social knowledge. Alternatively, no such cognitive specializations are needed because social knowledge is already present in the world — we can simply monitor the dynamics of social interactions. Given the latter idea, what mechanism could account for coalition formation? We propose that statistical learning can provide a mechanism for fast and implicit learning of social signals. Using human participants, we compared learning of (...)
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  4.  13
    Statistical learning of social signals and its implications for the social brain hypothesis.Hjalmar K. Turesson & Asif A. Ghazanfar - 2011 - Interaction Studies. Social Behaviour and Communication in Biological and Artificial Systemsinteraction Studies / Social Behaviour and Communication in Biological and Artificial Systemsinteraction Studies 12 (3):397-417.
    The social brain hypothesis implies that humans and other primates evolved “modules” for representing social knowledge. Alternatively, no such cognitive specializations are needed because social knowledge is already present in the world — we can simply monitor the dynamics of social interactions. Given the latter idea, what mechanism could account for coalition formation? We propose that statistical learning can provide a mechanism for fast and implicit learning of social signals. Using human participants, we compared learning of (...)
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  5.  38
    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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  6.  72
    Statistical Learning Is Related to Reading Ability in Children and Adults.Joanne Arciuli & Ian C. Simpson - 2012 - Cognitive Science 36 (2):286-304.
    There is little empirical evidence showing a direct link between a capacity for statistical learning (SL) and proficiency with natural language. Moreover, discussion of the role of SL in language acquisition has seldom focused on literacy development. Our study addressed these issues by investigating the relationship between SL and reading ability in typically developing children and healthy adults. We tested SL using visually presented stimuli within a triplet learning paradigm and examined reading ability by administering the Wide (...)
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  7.  26
    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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  8.  20
    Multisensory integration, learning, and the predictive coding hypothesis.Nicholas Altieri - 2014 - Frontiers in Psychology 5.
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  9.  32
    Visual statistical learning in the newborn infant.Hermann Bulf, Scott P. Johnson & Eloisa Valenza - 2011 - Cognition 121 (1):127-132.
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  10.  25
    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 (...)
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  11.  62
    Implicit statistical learning in language processing: Word predictability is the key☆.Christopher M. Conway, Althea Bauernschmidt, Sean S. Huang & David B. Pisoni - 2010 - Cognition 114 (3):356-371.
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  12.  26
    Statistical Learning of Unfamiliar Sounds as Trajectories Through a Perceptual Similarity Space.Felix Hao Wang, Elizabeth A. Hutton & Jason D. Zevin - 2019 - Cognitive Science 43 (8):e12740.
    In typical statistical learning studies, researchers define sequences in terms of the probability of the next item in the sequence given the current item (or items), and they show that high probability sequences are treated as more familiar than low probability sequences. Existing accounts of these phenomena all assume that participants represent statistical regularities more or less as they are defined by the experimenters—as sequential probabilities of symbols in a string. Here we offer an alternative, or possibly (...)
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  13.  20
    Implicit Statistical Learning in Language Processing: Word Predictability is the Key.David B. Pisoni Christopher M. Conway, Althea Baurnschmidt, Sean Huang - 2010 - Cognition 114 (3):356.
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  14.  13
    Visual Statistical Learning With Stimuli Presented Sequentially Across Space and Time in Deaf and Hearing Adults.Beatrice Giustolisi & Karen Emmorey - 2018 - Cognitive Science 42 (8):3177-3190.
    This study investigated visual statistical learning (VSL) in 24 deaf signers and 24 hearing non‐signers. Previous research with hearing individuals suggests that SL mechanisms support literacy. Our first goal was to assess whether VSL was associated with reading ability in deaf individuals, and whether this relation was sustained by a link between VSL and sign language skill. Our second goal was to test the Auditory Scaffolding Hypothesis, which makes the prediction that deaf people should be impaired in sequential (...)
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  15.  89
    Statistical learning of tone sequences by human infants and adults.Jenny R. Saffran, Elizabeth K. Johnson, Richard N. Aslin & Elissa L. Newport - 1999 - Cognition 70 (1):27-52.
  16.  16
    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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  17.  27
    Statistical learning under incidental versus intentional conditions.Joanne Arciuli, Janne von Koss Torkildsen, David J. Stevens & Ian C. Simpson - 2014 - Frontiers in Psychology 5.
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  18. Statistical learning of tonal sequences by human infants and adults. Saffran Jr, E. K. Johnson, R. N. Aslin & E. L. Newport - 1999 - Cognition 70:27-52.
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  19.  56
    Visual statistical learning in infancy: evidence for a domain general learning mechanism.Natasha Z. Kirkham, Jonathan A. Slemmer & Scott P. Johnson - 2002 - Cognition 83 (2):B35-B42.
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  20.  34
    Visual statistical learning in children and young adults: how implicit?Julie Bertels, Emeline Boursain, Arnaud Destrebecqz & Vinciane Gaillard - 2014 - Frontiers in Psychology 5.
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  21.  33
    Is statistical learning a mechanism?Riana J. Betzler - 2016 - Philosophical Psychology 29 (6):826-843.
    Philosophers of science have offered several definitions of mechanism, most of which have biological or neuroscientific roots. In this paper, I consider whether these definitions apply equally well to cognitive science. I examine this question by looking at the case of statistical learning, which has been called a domain-general learning mechanism in the cognitive scientific literature. I argue that statistical learning does not constitute a mechanism in the philosophical sense of the term. This conclusion points (...)
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  22. A statistical learning approach to a problem of induction.Kino Zhao - manuscript
    At its strongest, Hume's problem of induction denies the existence of any well justified assumptionless inductive inference rule. At the weakest, it challenges our ability to articulate and apply good inductive inference rules. This paper examines an analysis that is closer to the latter camp. It reviews one answer to this problem drawn from the VC theorem in statistical learning theory and argues for its inadequacy. In particular, I show that it cannot be computed, in general, whether we (...)
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  23.  36
    Can statistical learning bootstrap the integers?Lance J. Rips, Jennifer Asmuth & Amber Bloomfield - 2013 - Cognition 128 (3):320-330.
  24.  7
    How Statistical Learning Can Play Well with Universal Grammar.Lisa S. Pearl - 2021 - In Nicholas Allott, Terje Lohndal & Georges Rey (eds.), A Companion to Chomsky. Wiley. pp. 267–286.
    A key motivation for Universal Grammar (UG) is developmental: UG can help children acquire the linguistic knowledge that they do as quickly as they do from the data that's available to them. Some of the most fruitful recent work in language acquisition has combined ideas about different hypothesis space building blocks with domain‐general statistical learning. Statistical learning can then provide a way to help navigate the hypothesis space in order to converge on the correct hypothesis. Reinforcement (...)
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  25.  19
    Concurrent Statistical Learning of Ignored and Attended Sound Sequences: An MEG Study.Tatsuya Daikoku & Masato Yumoto - 2019 - Frontiers in Human Neuroscience 13.
  26.  12
    Statistical Learning Is Not Affected by a Prior Bout of Physical Exercise.David J. Stevens, Joanne Arciuli & David I. Anderson - 2016 - Cognitive Science 40 (4):1007-1018.
    This study examined the effect of a prior bout of exercise on implicit cognition. Specifically, we examined whether a prior bout of moderate intensity exercise affected performance on a statistical learning task in healthy adults. A total of 42 participants were allocated to one of three conditions—a control group, a group that exercised for 15 min prior to the statistical learning task, and a group that exercised for 30 min prior to the statistical learning (...)
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  27.  34
    Statistical learning in a serial reaction time task: access to separable statistical cues by individual learners.Ruskin H. Hunt & Richard N. Aslin - 2001 - Journal of Experimental Psychology: General 130 (4):658.
  28.  29
    Statistical learning and Gestalt-like principles predict melodic expectations.Emily Morgan, Allison Fogel, Anjali Nair & Aniruddh D. Patel - 2019 - Cognition 189 (C):23-34.
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  29.  6
    Visual statistical learning is facilitated in Zipfian distributions.Ori Lavi-Rotbain & Inbal Arnon - 2021 - Cognition 206 (C):104492.
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  30.  12
    Statistical learning of syllable sequences as trajectories through a perceptual similarity space.Wendy Qi & Jason D. Zevin - 2024 - Cognition 244 (C):105689.
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  31.  32
    Impaired statistical learning of non-adjacent dependencies in adolescents with specific language impairment.Hsinjen J. Hsu, J. Bruce Tomblin & Morten H. Christiansen - 2014 - Frontiers in Psychology 5.
  32.  11
    Statistical learning theory applied to an instrumental avoidance situation.Arthur L. Brody - 1957 - Journal of Experimental Psychology 54 (4):240.
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  33. Statistical learning theory as a framework for the philosophy of induction.Gilbert Harman & Sanjeev Kulkarni - manuscript
    Statistical Learning Theory (e.g., Hastie et al., 2001; Vapnik, 1998, 2000, 2006) is the basic theory behind contemporary machine learning and data-mining. We suggest that the theory provides an excellent framework for philosophical thinking about inductive inference.
     
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  34.  23
    Implicit statistical learning and pupil size: an untold love story?Alamia Andrea, Olivier Etienne & Zénon Alexandre - 2014 - Frontiers in Human Neuroscience 8.
  35.  26
    Statistical learning of a tonal language: the influence of bilingualism and previous linguistic experience.Tianlin Wang & Jenny R. Saffran - 2014 - Frontiers in Psychology 5.
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  36.  68
    Unsupervised statistical learning in vision: computational principles, biological evidence.Shimon Edelman - unknown
    Unsupervised statistical learning is the standard setting for the development of the only advanced visual system that is both highly sophisticated and versatile, and extensively studied: that of monkeys and humans. In this extended abstract, we invoke philosophical observations, computational arguments, behavioral data and neurobiological findings to explain why computer vision researchers should care about (1) unsupervised learning, (2) statistical inference, and (3) the visual brain. We then outline a neuromorphic approach to structural primitive learning (...)
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  37.  43
    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, (...)
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  38.  26
    Statistical learning theory, capacity, and complexity.Bernhard Schölkopf - 2003 - Complexity 8 (4):87-94.
  39. Statistical Learning Theory: A Tutorial.Sanjeev R. Kulkarni & Gilbert Harman - 2011 - Wiley Interdisciplinary Reviews: Computational Statistics 3 (6):543-556.
    In this article, we provide a tutorial overview of some aspects of statistical learning theory, which also goes by other names such as statistical pattern recognition, nonparametric classification and estimation, and supervised learning. We focus on the problem of two-class pattern classification for various reasons. This problem is rich enough to capture many of the interesting aspects that are present in the cases of more than two classes and in the problem of estimation, and many of (...)
     
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  40.  24
    What Mechanisms Underlie Implicit Statistical Learning? Transitional Probabilities Versus Chunks in Language Learning.Pierre Perruchet - 2019 - Topics in Cognitive Science 11 (3):520-535.
    In 2006, Perruchet and Pacton (2006) asked whether implicit learning and statistical learning represent two approaches to the same phenomenon. This article represents an important follow‐up to their seminal review article. As in the previous paper, the focus is on the formation of elementary cognitive units. Both approaches favor different explanations on what these units consist of and how they are formed. Perruchet weighs up the evidence for different explanations and concludes with a helpful agenda for future (...)
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  41.  25
    Statistical learning is constrained to less abstract patterns in complex sensory input.Lauren L. Emberson & Dani Y. Rubinstein - 2016 - Cognition 153 (C):63-78.
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  42.  25
    Is statistical learning constrained by lower level perceptual organization?Lauren L. Emberson, Ran Liu & Jason D. Zevin - 2013 - Cognition 128 (1):82-102.
  43.  21
    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 (...)
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  44. Extending statistical learning farther and further: Long-distance dependencies, and individual differences in statistical learning and language.Jennifer B. Misyak & Morten H. Christiansen - 2007 - In McNamara D. S. & Trafton J. G. (eds.), Proceedings of the 29th Annual Cognitive Science Society. Cognitive Science Society. pp. 1307--1312.
  45.  75
    Reliable Reasoning: Induction and Statistical Learning Theory.Gilbert Harman & Sanjeev Kulkarni - 2007 - Bradford.
    In _Reliable Reasoning_, Gilbert Harman and Sanjeev Kulkarni -- a philosopher and an engineer -- argue that philosophy and cognitive science can benefit from statistical learning theory, the theory that lies behind recent advances in machine learning. The philosophical problem of induction, for example, is in part about the reliability of inductive reasoning, where the reliability of a method is measured by its statistically expected percentage of errors -- a central topic in SLT. After discussing philosophical attempts (...)
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  46.  10
    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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  47.  88
    Falsificationism and Statistical Learning Theory: Comparing the Popper and Vapnik-Chervonenkis Dimensions.David Corfield, Bernhard Schölkopf & Vladimir Vapnik - 2009 - Journal for General Philosophy of Science / Zeitschrift für Allgemeine Wissenschaftstheorie 40 (1):51-58.
    We compare Karl Popper’s ideas concerning the falsifiability of a theory with similar notions from the part of statistical learning theory known as VC-theory . Popper’s notion of the dimension of a theory is contrasted with the apparently very similar VC-dimension. Having located some divergences, we discuss how best to view Popper’s work from the perspective of statistical learning theory, either as a precursor or as aiming to capture a different learning activity.
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  48.  11
    Statistical Learning Model of the Sense of Agency.Shiro Yano, Yoshikatsu Hayashi, Yuki Murata, Hiroshi Imamizu, Takaki Maeda & Toshiyuki Kondo - 2020 - Frontiers in Psychology 11.
    A sense of agency (SoA) is the experience of subjective awareness regarding the control of one’s actions. Humans have a natural tendency to generate prediction models of the environment and adapt their models according to changes in the environment. The SoA is associated with the degree of the adaptation of the prediction models, e.g., insufficient adaptation causes low predictability and lowers the SoA over the environment. Thus, identifying the mechanisms behind the adaptation process of a prediction model related to the (...)
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  49.  19
    Acquiring Complex Communicative Systems: Statistical Learning of Language and Emotion.Ashley L. Ruba, Seth D. Pollak & Jenny R. Saffran - 2022 - Topics in Cognitive Science 14 (3):432-450.
    In this article, we consider infants’ acquisition of foundational aspects of language and emotion through the lens of statistical learning. By taking a comparative developmental approach, we highlight ways in which the learning problems presented by input from these two rich communicative domains are both similar and different. Our goal is to encourage other scholars to consider multiple domains of human experience when developing theories in developmental cognitive science.
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  50.  16
    Statistical learning and spelling: Evidence from Brazilian prephonological spellers.Rebecca Treiman, Cláudia Cardoso-Martins, Tatiana Cury Pollo & Brett Kessler - 2019 - Cognition 182 (C):1-7.
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