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Linking Mobile Robot Performances With the Environment Using System Maps

Jason M. Held, Alexandre Lampe, Raja Chatila

发表年份
2006
引用次数
8

摘要

Determining the performance of a robot is a challenge because success or failure depends not only on the capabilities of the robot but on the difficulties of the environment as well. This paper presents a method of understanding the performance of a robot with respect to its environment through the interaction of a set of metrics. Metric interactions are learned in a dynamic Bayesian network and placed in a probabilistic systems model called a system map, which is used to understand how the metrics relate both to each other and to a partially known environment. Initial results presented here demonstrate how this model identifies environmental dependencies and how performance can be predicted even in an uncertain environment

关键词

Mobile robotComputer scienceRobotMetric (unit)Set (abstract data type)Probabilistic logicBayesian networkDistributed computingArtificial intelligenceHuman–computer interaction

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