English

Physics-based Simulation of Continuous-Wave LIDAR for Localization, Calibration and Tracking

Computer Vision and Pattern Recognition 2020-03-05 v2 Robotics

Abstract

Light Detection and Ranging (LIDAR) sensors play an important role in the perception stack of autonomous robots, supplying mapping and localization pipelines with depth measurements of the environment. While their accuracy outperforms other types of depth sensors, such as stereo or time-of-flight cameras, the accurate modeling of LIDAR sensors requires laborious manual calibration that typically does not take into account the interaction of laser light with different surface types, incidence angles and other phenomena that significantly influence measurements. In this work, we introduce a physically plausible model of a 2D continuous-wave LIDAR that accounts for the surface-light interactions and simulates the measurement process in the Hokuyo URG-04LX LIDAR. Through automatic differentiation, we employ gradient-based optimization to estimate model parameters from real sensor measurements.

Keywords

Cite

@article{arxiv.1912.01652,
  title  = {Physics-based Simulation of Continuous-Wave LIDAR for Localization, Calibration and Tracking},
  author = {Eric Heiden and Ziang Liu and Ragesh K. Ramachandran and Gaurav S. Sukhatme},
  journal= {arXiv preprint arXiv:1912.01652},
  year   = {2020}
}

Comments

Published at ICRA 2020

R2 v1 2026-06-23T12:34:53.119Z