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The Model-based Approach to Autonomous Behavior: A Personal View

机译:基于模型的自主行为方法:个人观点

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摘要

The selection of the action to do next is one of the central problems faced by autonomous agents. In AI, three approaches have been used to address this problem: the programming-based approach, where the agent controller is given by the programmer, the learning-based approach, where the controller is induced from experience via a learning algorithm, and the model-based approach, where the controller is derived from a model of the problem. Planning in AI is best conceived as the model-based approach to action selection. The models represent the initial situation, actions, sensors, and goals. The main challenge in planning is computational, as all the models, whether accommodating feedback and uncertainty or not, are intractable in the worst case. In this article, I review some of the models considered in current planning research, the progress achieved in solving these models, and some of the open problems.
机译:选择下一步要采取的行动是自治代理面临的核心问题之一。在AI中,已使用三种方法来解决此问题:基于编程的方法(由程序员提供代理控制器),基于学习的方法(通过学习算法从经验中得出控制器)和模型一种基于方法的方法,其中控制器是从问题模型中派生出来的。人工智能中的计划最好被认为是基于模型的行动选择方法。这些模型表示初始情况,动作,传感器和目标。计划中的主要挑战是计算性,因为所有模型(无论是否适应反馈和不确定性)在最坏的情况下都难以解决。在本文中,我回顾了当前规划研究中考虑的一些模型,解决这些模型所取得的进展以及一些未解决的问题。

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