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  4. Computational modeling of epiphany learning
 
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Computational modeling of epiphany learning

Journal
Proceedings of the National Academy of Sciences of the United States of America
Journal Volume
114
Journal Issue
18
Pages
4637-4642
Date Issued
2017
Author(s)
WEI JAMES CHEN  
Krajbich, I.
DOI
10.1073/pnas.1618161114
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85018732498&doi=10.1073%2fpnas.1618161114&partnerID=40&md5=cc5e9eae27e83220ef5fbb980f53766c
https://scholars.lib.ntu.edu.tw/handle/123456789/556350
Abstract
Models of reinforcement learning (RL) are prevalent in the decision-making literature, but not all behavior seems to conform to the gradual convergence that is a central feature of RL. In some cases learning seems to happen all at once. Limited prior research on these "epiphanies" has shown evidence of sudden changes in behavior, but it remains unclear how such epiphanies occur. We propose a sequential-sampling model of epiphany learning (EL) and test it using an eye-tracking experiment. In the experiment, subjects repeatedly play a strategic game that has an optimal strategy. Subjects can learn over time from feedback but are also allowed to commit to a strategy at any time, eliminating all other options and opportunities to learn. We find that the EL model is consistent with the choices, eye movements, and pupillary responses of subjects who commit to the optimal strategy (correct epiphany) but not always of those who commit to a suboptimal strategy or who do not commit at all. Our findings suggest that EL is driven by a latent evidence accumulation process that can be revealed with eye-tracking data.
Subjects
Beauty contest; Decision making; Epiphany learning; Eye tracking; Pupil dilation
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