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Integrating Different Levels of Automation: Lessons From Winning the Amazon Robotics Challenge 2016

机译:集成不同级别的自动化:赢得2016年亚马逊机器人挑战赛的经验教训

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This paper describes Team Delft's robot winning the Amazon Robotics Challenge 2016. The competition involves automating pick and place operations in semistructured environments, specifically the shelves in an Amazon warehouse. Team Delft's entry demonstrated that the current robot technology can already address most of the challenges in product handling: object recognition, grasping, motion, or task planning; under broad yet bounded conditions. The system combines an industrial robot arm, 3-D cameras and a custom gripper. The robot's software is based on the robot operating system to implement solutions based on deep learning and other state-of-the-art artificial intelligence techniques, and to integrate them with off-the-shelf components. From the experience developing the robotic system, it was concluded that: 1) the specific task conditions should guide the selection of the solution for each capability required; 2) understanding the characteristics of the individual solutions and the assumptions they embed is critical to integrate a performing system from them; and 3) this characterization can be based on “levels of robot automation.” This paper proposes automation levels based on the usage of information at design or runtime to drive the robot's behavior, and uses them to discuss Team Delft's design solution and the lessons learned from this robot development experience.
机译:本文介绍了代尔夫特队的机器人赢得了2016年亚马逊机器人挑战赛。该竞赛涉及在半结构化环境(尤其是亚马逊仓库中的货架)上自动化取放操作。代尔夫特团队的参赛作品表明,当前的机器人技术已经可以应对产品处理中的大多数挑战:对象识别,抓握,运动或任务计划;在宽广而有限的条件下。该系统结合了工业机器人手臂,3-D摄像头和定制抓爪。机器人的软件基于机器人操作系统,以实现基于深度学习和其他最新人工智能技术的解决方案,并将其与现有组件集成。根据开发机器人系统的经验得出的结论是:1)特定的任务条件应指导每种所需能力的解决方案的选择; 2)了解各个解决方案的特征以及它们所嵌入的假设对于从它们集成绩效系统至关重要;和3)此特征可以基于“机器人自动化水平”。本文基于在设计或运行时信息的使用来提出自动化级别,以驱动​​机器人的行为,并使用它们来讨论Team Delft的设计解决方案以及从该机器人开发经验中学到的经验教训。

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