机器人学习
人工智能
机器人
机器人学
工业机器人
计算机科学
生产力
过程(计算)
工程类
人机交互
制造工程
移动机器人
宏观经济学
操作系统
经济
作者
Zhihao Liu,Quan Liu,Wenjun Xu,Lihui Wang,Zude Zhou
标识
DOI:10.1016/j.rcim.2022.102360
摘要
Robotic equipment has been playing a central role since the proposal of smart manufacturing. Since the beginning of the first integration of industrial robots into production lines, industrial robots have enhanced productivity and relieved humans from heavy workloads significantly. Towards the next generation of manufacturing, this review first introduces the comprehensive background of smart robotic manufacturing within robotics, machine learning, and robot learning. Definitions and categories of robot learning are summarised. Concretely, imitation learning, policy gradient learning, value function learning, actor-critic learning, and model-based learning as the leading technologies in robot learning are reviewed. Training tools, benchmarks, and comparisons amongst different robot learning methods are delivered. Typical industrial applications in robotic grasping, assembly, process control, and industrial human-robot collaboration are listed and discussed. Finally, open problems and future research directions are summarised.
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