Reinforcement Learning and Dynamic Programming Using Function Approximators(Automation and Control Engineering)

使用函数逼近器的强化学习与动态规划

电子技术

售   价:
1096.00
发货周期:预计5-7周发货
出  版 社
出版时间
2010年04月29日
装      帧
精装
ISBN
9781439821084
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页      码
288
开      本
6-1/8x9-1/4
语      种
英文
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图书简介
While Dynamic Programming (DP) has helped solve control problems involving dynamic systems, its value was limited by algorithms that lacked practical scale-up capacity. In recent years, developments in Reinforcement Learning (RL), DP’s model-free counterpart, has changed this. Focusing on continuous-variable problems, this unparalleled work provides an introduction to classical RL and DP, followed by a presentation of current methods in RL and DP with approximation. Combining algorithm development with theoretical guarantees, it offers illustrative examples that readers will be able to adapt to their own work.  
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