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Evaluating robustness in a two layer simulated robot architecture

机译:在两层仿真机器人体系结构中评估鲁棒性

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Many two layer robot architectures have been proposed and implemented. While justification for the design can be well argued, how does one know it is really a good idea? In this paper, one describes a two layer architecture (reinforcement learning in the bottom layer and POMDP planning at the top) for a simulated robot and summarize a set of three experiments in which one evaluated the design. To address the many difficulties of evaluating robot architectures, one advocates an experimental approach in which design criteria are elucidated and then form the basis for the evaluation experiments. In our case, one tests the implementation for its reliability and generalization (our design criteria) by comparing our architecture to one in which a key component is substituted, in these experiments, one demonstrates significant performance gains on the design criteria for our architecture.
机译:已经提出并实现了许多两层机器人体系结构。尽管可以很好地证明设计的合理性,但人们如何知道它确实是一个好主意?在本文中,我们描述了一种模拟机器人的两层体系结构(底层的强化学习和顶层的POMDP规划),并总结了三个实验的集合,其中一个对设计进行了评估。为了解决评估机器人体系结构的许多困难,人们提倡一种实验方法,其中阐明设计标准,然后构成评估实验的基础。在我们的案例中,通过将我们的体系结构与替换了关键组件的体系结构进行比较,测试了其实现的可靠性和通用性(我们的设计标准),在这些实验中,一个实验证明了在我们的体系结构的设计标准上可观的性能提升。

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