JOURNAL ARTICLE

HiTPR: Hierarchical Transformer for Place Recognition in Point Cloud

Zhixing HouYan YanChengzhong XuHui Kong

Year: 2022 Journal:   2022 International Conference on Robotics and Automation (ICRA) Pages: 2612-2618

Abstract

Place recognition or loop closure detection is one of the core components in a full SLAM system. In this paper, aiming at strengthening the relevancy of local neighboring points and the contextual dependency among global points simultaneously, we investigate the exploitation of transformer-based network for feature extraction, and propose a Hierarchical Transformer for Place Recognition (HiTPR). The HiTPR consists of four major parts: point cell generation, short-range transformer (SRT), long-range transformer (LRT) and global descriptor aggregation. Specifically, the point cloud is initially divided into a sequence of small cells by down-sampling and nearest neighbors searching. In the SRT, we extract the local feature for each point cell. While in the LRT, we build the global dependency among all of the point cells in the whole point cloud. Experiments on several standard benchmarks demonstrate the superiority of the HiTPR in terms of average recall rate, achieving 93.71 % at top 1 % and 86.63 % at top 1 on the Oxford RobotCar dataset for example.

Keywords:
Point cloud Transformer Computer science Feature extraction Artificial intelligence Pattern recognition (psychology) Data mining Voltage Engineering

Metrics

25
Cited By
8.10
FWCI (Field Weighted Citation Impact)
47
Refs
0.99
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Robotics and Sensor-Based Localization
Physical Sciences →  Engineering →  Aerospace Engineering
3D Shape Modeling and Analysis
Physical Sciences →  Engineering →  Computational Mechanics
3D Surveying and Cultural Heritage
Physical Sciences →  Earth and Planetary Sciences →  Geology

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