Prosocial learning: Model-based or model-free?

Author:

Navidi ParisaORCID,Saeedpour Sepehr,Ershadmanesh Sara,Hossein Mostafa Miandari,Bahrami Bahador

Abstract

Prosocial learning involves the acquisition of knowledge and skills necessary for making decisions that benefit others. We asked if, in the context of value-based decision-making, there is any difference between learning strategies for oneself vs. for others. We implemented a 2-step reinforcement learning paradigm in which participants learned, in separate blocks, to make decisions for themselves or for a present other confederate who evaluated their performance. We replicated the canonical features of the model-based and model-free reinforcement learning in our results. The behaviour of the majority of participants was best explained by a mixture of the model-based and model-free control, while most participants relied more heavily on MB control, and this strategy enhanced their learning success. Regarding our key self-other hypothesis, we did not find any significant difference between the behavioural performances nor in the model-based parameters of learning when comparing self and other conditions.

Funder

HORIZON EUROPE European Research Council

Templeton Religion Trust

Publisher

Public Library of Science (PLoS)

Subject

Multidisciplinary

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