IROS 2023poster3 citations

Magnetic Navigation Using Attitude-Invariant Magnetic Field Information for Loop Closure Detection

Natalia Pavlasek, Charles Champagne Cossette, David Roy-Guay, James Richard Forbes

Abstract

Indoor magnetic fields are a combination of Earth's magnetic field and disruptions induced by ferromag-netic objects, such as steel structural components in buildings. As a result of these disruptions, pervasive in indoor spaces, mag-netic field data is often omitted from navigation algorithms in indoor environments. This paper leverages the spatially-varying disruptions to Earth's magnetic field to extract positional information for use in indoor navigation algorithms. The algorithm uses a rate gyro and an array of four magnetometers to estimate the robot's pose. Additionally, the magnetometer array is used to compute attitude-invariant measurements associated with the magnetic field and its gradient. These measurements are used to detect loop closure points. Experimental results indicate that the proposed approach can estimate the pose of a ground robot in an indoor environment within meter accuracy.

BibTeX
@inproceedings{iros2023_magneticnavigati,
  title = {Magnetic Navigation Using Attitude-Invariant Magnetic Field Information for Loop Closure Detection},
  author = {Natalia Pavlasek and Charles Champagne Cossette and David Roy-Guay and James Richard Forbes},
  booktitle = {IROS 2023},
  year = {2023}
}