搜索结果: 1-15 共查到“reinforcement learning”相关记录23条 . 查询时间(0.203 秒)
Academy of Mathematics and Systems Science, CAS Colloquia & Seminars:Markov decision process and reinforcement learning for intelligent
智能 马尔可夫 决策过程 强化学习
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2023/4/28
Academy of Mathematics and Systems Science, CAS Colloquia & Seminars:Markov decision process and reinforcement learning for intelligent operation and maintenance
智能 马尔可夫 决策过程 强化学习
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2023/4/28
Academy of Mathematics and Systems Science, CAS Colloquia & Seminars:Fusion of Supervised Learning and Reinforcement Learning for Dynamic Treatment Recommendation
监督学习 强化学习 融合 动态治疗推荐
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2023/5/5
Academy of Mathematics and Systems Science, CAS Colloquia & Seminars: Fusion of Supervised Learning and Reinforcement Learning for Dynamic Treatment Recommendation
监督学习 强化学习 融合 动态治疗推荐 电子健康记录
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2023/5/6
Academy of Mathematics and Systems Science, CAS Colloquia & Seminars:Reinforcement Learning-Based Event-Driven Adaptive Cooperative Control of Heterogeneous Multiagent Systems
强化学习 异构多智能体系统 事件驱动 自适应 协同控制
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2023/5/17
第1期“互联”学术沙龙——“Ten Key for Reinforcement Learning and Optimal Control”顺利举行(图)
互联 学术沙龙 强大学习 机器学习
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2022/12/29
VISIBLE ROUTES IN 3D DENSE CITY USING REINFORCEMENT LEARNING
3D GIS Visibility Routes Reinforcement learning
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2018/11/9
In the last few years, the 3D GIS domain has developed rapidly, and has become increasingly accessible to different disciplines. 3D Spatial analysis of Built-up areas seems to be one of the most chall...
2017第一次强化学习转移研讨会(1st Workshop on Transfer in Reinforcement Learning)
2017 第一次 强化学习转移 研讨会
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2017/4/25
Reinforcement Learning (RL) has achieved many successes over the years in training autonomous agents to perform simple tasks. However, it takes a long time to learn a solution and this solution can us...
Kernel-Based Reinforcement Learning in Average-Cost Problems
Average–cost problem dynamic programming kernel smoothing local averaging Markov decision process (MDP)
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2015/7/8
Reinforcement learning (RL) is concerned with the identification of optimal controls in Markov decision processes (MDPs) where no explicit model of the transition probabilities is available. Many exis...
ADAPTIVE STEP-SIZES FOR REINFORCEMENT LEARNING
reinforcement learning machine learning step-size learning rate evaluation adaptive
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2014/12/18
The central theme motivating this dissertation is the desire to develop reinforcement learning algorithms that “just work” regardless of the domain in which they are applied. The largest impediment to...
Reinforcement Learning for Mapping Instructions to Actions
Actions Mapping Instructions
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2014/11/26
Reinforcement Learning for Mapping Instructions to Actions。
Electric Power Market Modeling with Multi-Agent Reinforcement Learning
Electric Power Market Modeling Multi-Agent Reinforcement Learning
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2014/10/22
Agent-based modeling (ABM) is a relatively new tool for use in electric power market research. At heart are software agents representing real-world stakeholders in the industry: utilities, power produ...
Reinforcement Learning for the Soccer Dribbling Task
Reinforcement Learning Soccer Dribbling Task
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2013/6/17
We propose a reinforcement learning solution to the \emph{soccer dribbling task}, a scenario in which a soccer agent has to go from the beginning to the end of a region keeping possession of the ball,...
Cover Tree Bayesian Reinforcement Learning
Cover Tree Bayesian Learning
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2013/6/14
This paper proposes an online tree-based Bayesian approach for reinforcement learning. For inference, we employ a generalised context tree model. This defines a distribution on multivariate Gaussian p...
Regret Bounds for Reinforcement Learning with Policy Advice
Regret Bounds Reinforcement LearningPolicy Advice
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2013/6/13
In some reinforcement learning problems an agent may be provided with a set of input policies, perhaps learned from prior experience or provided by advisors. We present a reinforcement learning with p...