SmartPNT-MSF: A Multi-Sensor Fusion Dataset for Positioning and Navigation Research
Feng Zhu, Zihang Zhang, Kangcheng Teng, Abduhelil Yakup, Xiaohong Zhang

TL;DR
SmartPNT-MSF is a comprehensive multi-sensor dataset designed to improve high-precision navigation research by offering diverse sensor data across various real-world environments.
Contribution
It introduces a new multi-sensor dataset with detailed calibration and validation, addressing gaps in sensor diversity and environmental coverage for navigation research.
Findings
Validated with SLAM algorithms like VINS-Mono and LIO-SAM
Demonstrated dataset's applicability in urban, tunnel, and suburban environments
Provides a standardized framework for data collection and processing
Abstract
High-precision navigation and positioning systems are critical for applications in autonomous vehicles and mobile mapping, where robust and continuous localization is essential. To test and enhance the performance of algorithms, some research institutions and companies have successively constructed and publicly released datasets. However, existing datasets still suffer from limitations in sensor diversity and environmental coverage. To address these shortcomings and advance development in related fields, the SmartPNT Multisource Integrated Navigation, Positioning, and Attitude Dataset has been developed. This dataset integrates data from multiple sensors, including Global Navigation Satellite Systems (GNSS), Inertial Measurement Units (IMU), optical cameras, and LiDAR, to provide a rich and versatile resource for research in multi-sensor fusion and high-precision navigation. The dataset…
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Taxonomy
TopicsRobotics and Sensor-Based Localization · Indoor and Outdoor Localization Technologies · Automated Road and Building Extraction
