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Social Learning through Interactions with Other Agents: A Survey Speaker (s):  HILLIER Dylan Alexander Slavin PhD Student School of Computing and Information Systems Singapore Management University
| Date: Time: Venue: | | 26 July 2024, Friday 1:30pm – 1:45pm Seminar Room 2-2, Level 2 School of Economics/ School of Computing and Information Systems 2 (SOE/SCIS2), Singapore Management University, 90 Stamford Road, Singapore 178903 We look forward to seeing you at this research seminar. Please register by 25 July 2024. 
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About the Talk Social learning plays an important role in the development of human intelligence. As children, we imitate our parents' speech patterns until we are able to produce sounds; we learn from them praising us and scolding us; and as adults, we learn by working with others. In this work, we survey the degree to which this paradigm -- social learning -- has been mirrored in machine learning. In particular, since learning socially requires interacting with others, we are interested in how embodied agents can and have utilised these techniques. This is especially in light of the degree to which recent advances in natural language processing (NLP) enable us to perform new forms of social learning. We look at how behavioural cloning and next-token prediction mirror human imitation, how learning from human feedback mirrors human education, and how we can go further to enable fully communicative agents that learn from each other. We find that while individual social learning techniques have been used successfully, there has been little unifying work showing how to bring them together into socially embodied agents.
This is a Pre-Conference talk for The 33rd International Joint Conference on Artificial Intelligence (IJCAI 2024). About the Speaker Dylan HILLIER is a first year PhD student currently researching Embodied Social Learning. His PhD Supervisor is Pradeep VARAKANTHAM, although this work was done under JIANG Jing. Additionally, he is a SINGA scholar supervised by Cheston Tan at A*Star. His research interests include Social Learning, Agent Architectures, Embodiment, and Cognitively Inspired AI.
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