Literature DB >> 28973111

Learning predictive statistics from temporal sequences: Dynamics and strategies.

Rui Wang1,2, Yuan Shen3,4, Peter Tino4, Andrew E Welchman2, Zoe Kourtzi2.   

Abstract

Human behavior is guided by our expectations about the future. Often, we make predictions by monitoring how event sequences unfold, even though such sequences may appear incomprehensible. Event structures in the natural environment typically vary in complexity, from simple repetition to complex probabilistic combinations. How do we learn these structures? Here we investigate the dynamics of structure learning by tracking human responses to temporal sequences that change in structure unbeknownst to the participants. Participants were asked to predict the upcoming item following a probabilistic sequence of symbols. Using a Markov process, we created a family of sequences, from simple frequency statistics (e.g., some symbols are more probable than others) to context-based statistics (e.g., symbol probability is contingent on preceding symbols). We demonstrate the dynamics with which individuals adapt to changes in the environment's statistics-that is, they extract the behaviorally relevant structures to make predictions about upcoming events. Further, we show that this structure learning relates to individual decision strategy; faster learning of complex structures relates to selection of the most probable outcome in a given context (maximizing) rather than matching of the exact sequence statistics. Our findings provide evidence for alternate routes to learning of behaviorally relevant statistics that facilitate our ability to predict future events in variable environments.

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Year:  2017        PMID: 28973111      PMCID: PMC5627678          DOI: 10.1167/17.12.1

Source DB:  PubMed          Journal:  J Vis        ISSN: 1534-7362            Impact factor:   2.240


  55 in total

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Authors:  Jiajuan Liu; Zhong-Lin Lu; Barbara A Dosher
Journal:  J Vis       Date:  2010-08-27       Impact factor: 2.240

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3.  Perceptual learning without feedback in non-stationary contexts: data and model.

Authors:  Alexander A Petrov; Barbara Anne Dosher; Zhong-Lin Lu
Journal:  Vision Res       Date:  2006-05-12       Impact factor: 1.886

4.  Location, location, location: development of spatiotemporal sequence learning in infancy.

Authors:  Natasha Z Kirkham; Jonathan A Slemmer; Daniel C Richardson; Scott P Johnson
Journal:  Child Dev       Date:  2007 Sep-Oct

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Authors:  Esther van den Bos; Fenna H Poletiek
Journal:  Mem Cognit       Date:  2008-09

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Authors:  D H Brainard
Journal:  Spat Vis       Date:  1997

7.  Learning across senses: cross-modal effects in multisensory statistical learning.

Authors:  Aaron D Mitchel; Daniel J Weiss
Journal:  J Exp Psychol Learn Mem Cogn       Date:  2011-09       Impact factor: 3.051

8.  Visual statistical learning in the newborn infant.

Authors:  Hermann Bulf; Scott P Johnson; Eloisa Valenza
Journal:  Cognition       Date:  2011-07-13

9.  Generalized lessons about sequence learning from the study of the serial reaction time task.

Authors:  Hillary Schwarb; Eric H Schumacher
Journal:  Adv Cogn Psychol       Date:  2012-05-21

10.  Task-specific response strategy selection on the basis of recent training experience.

Authors:  Jacqueline M Fulvio; C Shawn Green; Paul R Schrater
Journal:  PLoS Comput Biol       Date:  2014-01-02       Impact factor: 4.475

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  5 in total

1.  Retrieving the structure of probabilistic sequences of auditory stimuli from EEG data.

Authors:  Noslen Hernández; Aline Duarte; Guilherme Ost; Ricardo Fraiman; Antonio Galves; Claudia D Vargas
Journal:  Sci Rep       Date:  2021-02-10       Impact factor: 4.379

2.  Multimodal imaging of brain connectivity reveals predictors of individual decision strategy in statistical learning.

Authors:  Vasilis M Karlaftis; Joseph Giorgio; Petra E Vértes; Rui Wang; Yuan Shen; Peter Tino; Andrew E Welchman; Zoe Kourtzi
Journal:  Nat Hum Behav       Date:  2019-03-01

3.  Interaction of prior category knowledge and novel statistical patterns during visual search for real-world objects.

Authors:  Austin Moon; Jiaying Zhao; Megan A K Peters; Rachel Wu
Journal:  Cogn Res Princ Implic       Date:  2022-03-04

4.  White-Matter Pathways for Statistical Learning of Temporal Structures.

Authors:  Vasilis M Karlaftis; Rui Wang; Yuan Shen; Peter Tino; Guy Williams; Andrew E Welchman; Zoe Kourtzi
Journal:  eNeuro       Date:  2018-07-17

5.  Functional brain networks for learning predictive statistics.

Authors:  Joseph Giorgio; Vasilis M Karlaftis; Rui Wang; Yuan Shen; Peter Tino; Andrew Welchman; Zoe Kourtzi
Journal:  Cortex       Date:  2017-08-18       Impact factor: 4.027

  5 in total

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