Papers › Emergence of Linguistic Communication from Referential Games with Symbolic and Pixel Input

Emergence of Linguistic Communication from Referential Games with Symbolic and Pixel Input

11 Apr 2018ICLR 2018 1arXiv:1804.03984archive 2025-07-28

Angeliki Lazaridou, Karl Moritz Hermann, Karl Tuyls, Stephen Clark

The ability of algorithms to evolve or learn (compositional) communication protocols has traditionally been studied in the language evolution literature through the use of emergent communication tasks. Here we scale up this research by using contemporary deep learning methods and by training reinforcement-learning neural network agents on referential communication games. We extend previous work, in which agents were trained in symbolic environments, by developing agents which are able to learn from raw pixel data, a more challenging and realistic input representation. We find that the degree of structure found in the input data affects the nature of the emerged protocols, and thereby corroborate the hypothesis that structured compositional language is most likely to emerge when agents perceive the world as being structured.

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action_distribution nickleomartin/emergent_comm_rl/evaluation.py community (archive-listed) unverified MIT (permissive) · 5ac8a5b08cde956e · report
levenshtein_message_distance nickleomartin/emergent_comm_rl/evaluation.py community (archive-listed) unverified MIT (permissive) · 94b8d60180371c7b · report
task_accuracy_metrics nickleomartin/emergent_comm_rl/evaluation.py community (archive-listed) unverified MIT (permissive) · 70f01f07aa8bb12b · report

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Reinforcement LearningReinforcement Learning (RL)reinforcement-learning

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