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Sensor Based Adaptive Metric-Topological Cell Decomposition Method for Semantic Annotation of Structured Environments

机译:基于传感器的自适应度量-拓扑单元分解方法对结构化环境的语义标注

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摘要

A fundamental ingredient for semantic labeling is a reliable method for determining and representing the relevant spatial features of an environment. We address this challenge for planar metric-topological maps based on occupancy grids. Our method detects arbitrary dominant orientations in the presence of significant clutter, fits corresponding line features with tunable resolution, and extracts topological information by polygonal cell decomposition. Real-world case studies taken from the target application domain (autonomous forklift trucks in warehouses) demonstrate the performance and robustness of our method, while results from a preliminary algorithm to extract corridors, and junctions, demonstrate its expressiveness. Contribution of this work starts with the formulation of metric-topological surveying of environment, and a generic n-direction planar representation accompanied with a general method for extracting it from occupancy map. The implementation also includes some semantic labels specific to warehouse like environments. © 2014 IEEE.
机译:语义标记的基本要素是用于确定和表示环境的相关空间特征的可靠方法。我们针对基于占用网格的平面度量拓扑图解决了这一挑战。我们的方法在存在明显杂波的情况下检测任意主导方向,以可调的分辨率拟合相应的线特征,并通过多边形单元分解提取拓扑信息。从目标应用程序领域(仓库中的自动叉车)进行的实际案例研究证明了我们方法的性能和鲁棒性,而提取走廊和路口的初步算法的结果证明了该方法的表现力。这项工作的贡献始于对环境的度量拓扑调查的制定,以及通用的n方向平面表示以及从占用图中提取它的通用方法。该实现还包括一些类似于仓库环境的语义标签。 ©2014 IEEE。

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