强化学习
计算机科学
光子学
计算机体系结构
功能(生物学)
任务(项目管理)
人工智能
系统工程
物理
进化生物学
生物
光学
工程类
作者
Xuan-Kun Li,Jian-Xu Ma,Xiangyu Li,Junjie Hu,Chuan-Yang Ding,Feng-Kai Han,Xiaomin Guo,X. Gary Tan,Xian‐Min Jin
标识
DOI:10.1038/s41467-024-45305-z
摘要
Reinforcement learning (RL) stands as one of the three fundamental paradigms within machine learning and has made a substantial leap to build general-purpose learning systems. However, using traditional electrical computers to simulate agent-environment interactions in RL models consumes tremendous computing resources, posing a significant challenge to the efficiency of RL. Here, we propose a universal framework that utilizes a photonic integrated circuit (PIC) to simulate the interactions in RL for improving the algorithm efficiency. High parallelism and precision on-chip optical interaction calculations are implemented with the assistance of link calibration in the hybrid architecture PIC. By introducing similarity information into the reward function of the RL model, PIC-RL successfully accomplishes perovskite materials synthesis task within a 3472-dimensional state space, resulting in a notable 56% improvement in efficiency. Our results validate the effectiveness of simulating RL algorithm interactions on the PIC platform, highlighting its potential to boost computing power in large-scale and sophisticated RL tasks.
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