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Learning to diagnose failures of assembly tasks

机译:学习诊断组装任务失败

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摘要

An architecture for execution supervision of Robotic Assembly Tasks is presented. This architecture provides, at different levels of abstraction, functions for dispatching actions, monitoring their execution, and diagnosing and recovering from failures. Modeling execution failures through taxonomies and causal networks plays a central role in diagnosis and recovery. A discussion on the knowledge-acquisition process. Through the use of machine learning techniques, is made. Preliminary results in this area are presented and planned extensions discussed.
机译:提出了一种用于机器人组装任务执行监督的架构。该体系结构在不同的抽象级别上提供了用于调度动作,监视其执行以及从故障中进行诊断和恢复的功能。通过分类法和因果网络对执行失败进行建模在诊断和恢复中起着核心作用。关于知识获取过程的讨论。通过使用机器学习技术,可以制成。介绍了该领域的初步结果并讨论了计划的扩展。

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