认知机器人的进展、成就和挑战

Dusko Katie
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引用次数: 3

摘要

当代机器人技术的应用范围正在从工厂扩展到家庭和公共用途的更通用的应用,例如老年人的伴侣,康复,搜索和救援等。如果机器人技术要在如此复杂、非结构化、充满高度不确定性的动态环境中取得成功,它将需要达到新的鲁棒性、身体灵活性和认知能力水平。这个演讲讨论了一个叫做认知机器人的新兴领域。为了应对复杂技术系统中出现的不精确、不完整和不一致的信息,构建认知机器人的一个解决方案是计算智能,它使用受生物学启发的软计算技术,如人工神经网络、进化方法和群体智能。将介绍认知机器人的研究课题、特点和挑战。构建这些机器人的主要挑战包括不确定性的系统处理、环境状态的建模、动态环境中协作机器人团队的协调、与人类的互动、发展和学习。值得注意的是,为了实现认知机器人,需要许多交叉学科,如机器人、人工智能、认知科学、神经科学、生物学、心理学和控制论。重点分析了该领域的一些重要研究课题:高级感知(视觉、触觉感知、触觉感知、多传感器融合)、高级运动与操作、SLAM、学习(模仿学习、强化学习、监督学习)、人机交互、推理与决策、智能规划与导航、群体智能等。将介绍一个应用于人形和服务型移动机器人的认知方法的案例研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advances in cognitive robotics, achievements and challenge
The contemporary robotics technology is broadening its applications from factory to more general-purpose applications in domestic and public use, e.g., partner to the elderly, rehabilitations, search and rescue, etc. If robotics technology is to be successful in such complex, unstructured, dynamic environments with high level of uncertainties, it will need to meet new levels of robustness, physical dexterity and cognitive capability. This presentation discusses an emerging field called cognitive robotics. The one solution for building cognitive robots in order to cope with imprecise, incomplete, and inconsistent information that arises in complex technical systems, is computational intelligence that uses biologically inspired soft-computing techniques, like artificial neural networks, evolutionary approaches, and swarm intelligence. Research topics, features and challenges of cognitive robotics will be introduced. Key challenges in constructing these robots include the systematic treatment of uncertainties, the modeling of the environmental state, the coordination of teams of cooperating robots in dynamic environments, the interaction with humans, development, and learning. It is important to notice that in order to realize cognitive robots many overlapping disciplines are needed, e.g. robotics, artificial intelligence, cognitive science, neuroscience, biology, psychology, and cybernetics. Some important research topics from this area will be specially analyzed: Advanced perception (vision, tactile sensing, haptic sensing, multi-sensor fusion), Advanced locomotion and manipulation, SLAM, Learning including imitation learning, reinforcement learning, supervised learning, Human-robot interaction, Reasoning and Making Decisions, Intelligent planning and navigation, Swarm intelligence, etc. A case study of cognitive methods applied for humanoid and service mobile robots will be introduced.
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