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An automated system for semantic object labeling with soft object recognition and dynamic programming segmentation

机译:具有软件对象识别和动态程序分段功能的语义对象标签自动系统

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This paper presents an automated system for generating a semantic map of inventory in a retail environment. Developing this map involves assigning a department label to each discrete section of shelving. We use a priori information to boost data from laser and camera sensors for object recognition and semantic labeling. We introduce a soft object map and a dynamic programming algorithm for point cloud segmentation. The primary contribution of this work is the integration of multiple systems including an automated path planning and navigation subsystem and a semantic mapping object recognition system. This work also represents an important contribution to robots working reliably in human environments. To our knowledge this is the first actual implementation of a fully automated robot inventory labeling system for a retail environment. The framework presented in this paper is easily scalable to other retail environments and is also relevant in any indoor environment with organized shelves, such as business storage facilities and hospital pharmacies.
机译:本文提出了一种用于在零售环境中生成库存语义图的自动化系统。绘制此地图需要将部门标签分配给货架的每个不连续部分。我们使用先验信息来增强来自激光和相机传感器的数据,以进行对象识别和语义标记。我们介绍了用于点云分割的软对象图和动态编程算法。这项工作的主要贡献是多个系统的集成,包括自动路径规划和导航子系统以及语义映射对象识别系统。这项工作也为机器人在人类环境中可靠工作做出了重要贡献。据我们所知,这是针对零售环境的全自动机器人库存标签系统的第一个实际实现。本文介绍的框架可轻松扩展到其他零售环境,并且还与具有组织货架的任何室内环境(例如企业存储设施和医院药房)相关。

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