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IMAGINATION-BASED AGENT NEURAL NETWORKS

机译:基于想象力的代理神经网络

摘要

A neural network system is proposed. The neural network can be trained by model-based reinforcement learning to select actions to be performed by an agent interacting with an environment, to perform a task in an attempt to achieve a specified result. The system may comprise at least one imagination core which receives a current observation characterizing a current state of the environment, and optionally historical observations, and which includes a model of the environment. The imagination core may be configured to output trajectory data in response to the current observation, and/or historical observations. The trajectory data comprising a sequence of future features of the environment imagined by the imagination core. The system may also include a rollout encoder to encode the features, and an output stage to receive data derived from the rollout embedding and to output action policy data for identifying an action based on the current observation.
机译:提出了一种神经网络系统。可以通过基于模型的强化学习来训练神经网络,以选择要由与环境交互的代理执行的动作,以执行任务以尝试达到指定的结果。该系统可以包括至少一个想象力核心,该想象力核心接收表征环境的当前状态的当前观察以及可选地历史观察,并且包括环境模型。想象力核心可以被配置为响应于当前观察和/或历史观察而输出轨迹数据。轨迹数据包括想象核心所想象的环境的一系列未来特征。该系统还可以包括:推出编码器,用于对特征进行编码;以及输出级,其接收从推出嵌入获得的数据,并输出用于基于当前观察来识别动作的动作策略数据。

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