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TEX-CUP: The University of Texas Challenge for Urban Positioning

机译:TEX-CUP:德克萨斯大学城市定位挑战

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A public benchmark dataset collected in the dense urban center of the city of Austin, TX is introduced for evaluation of multi-sensor GNSS-based urban positioning. Existing public datasets on localization and/or odometry evaluation are based on sensors such as Iidar, cameras, and radar. The role of GNSS in these datasets is typically limited to the generation of a reference trajectory in conjunction with a high-end inertial navigation system (INS). In contrast, the dataset introduced in this paper provides raw ADC output of wideband intermediate frequency (IF) GNSS data along with tightly synchronized raw measurements from inertial measurement units (IMUs) and a stereoscopic camera unit. This dataset will enable optimization of the full GNSS stack from signal tracking to state estimation, as well as sensor fusion with other automotive sensors. The dataset is available at http://radionavlab.ae.utexas.edu under Public Datasets. Efforts to collect and share similar datasets from a number of dense urban centers around the world are under way.
机译:引入了在德克萨斯州奥斯丁市人口稠密的城市中心收集的公共基准数据集,用于评估基于多传感器GNSS的城市定位。现有的有关定位和/或里程计评估的公共数据集基于Iidar​​,相机和雷达等传感器。 GNSS在这些数据集中的作用通常仅限于结合高端惯性导航系统(INS)生成参考轨迹。相反,本文介绍的数据集提供了宽带中频(IF)GNSS数据的原始ADC输出,以及来自惯性测量单元(IMU)和立体摄像头单元的紧密同步的原始测量结果。该数据集将优化从信号跟踪到状态估计的整个GNSS堆栈,以及与其他汽车传感器的传感器融合。该数据集可在http://radionavlab.ae.utexas.edu的“公共数据集”下找到。正在努力从世界上许多人口稠密的城市中心收集和共享相似的数据集。

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