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An ultra-short baseline underwater positioning system with kalman filtering

  • School of Information Science and Engineering, Harbin Institute of Technology Weihai
  • Shandong Institute of Shipbuilding Technology
  • New Beiyang Information Technology Co., Ltd.
  • China National Deep Sea Center
  • Cranfield University

Research output: Contribution to journalArticlepeer-review

Abstract

The ultra-short baseline underwater positioning is one of the most widely applied methods in underwater positioning and navigation due to its simplicity, efficiency, low cost, and accuracy. However, there exists environmental noise, which has negative impacts on the positioning accuracy during the ultra-short baseline (USBL) positioning process, which results in a large positioning error. The positioning result may lead to wrong decision-making in the latter processing. So, it is necessary to consider the error sources, and take effective measurements to minimize the negative impact of the noise. In our work, we propose a USBL positioning system with Kalman filtering to improve the positioning accuracy. In this system, we first explore a new kind of element array to accurately capture the acoustic signals from the object. We then organically combine the Kalman filters with the array elements to filter the acoustic signals, using the minimum mean-square error rule to obtain accurate acoustic signals. We got the high-precision phase difference information based on the non-equidistant quaternary original array and the phase difference acquisition mechanism. Finally, on account of the obtained accurate phase difference information and position calculation, we de-termined the coordinates of the underwater target. Comprehensive evaluation results demonstrate that our proposed USBL positioning method based on the Kalman filter algorithm can effectively enhance the positioning accuracy.

Original languageEnglish
Article number143
Pages (from-to)1-19
Number of pages19
JournalSensors
Volume21
Issue number1
DOIs
StatePublished - 1 Jan 2021
Externally publishedYes

Keywords

  • Acoustic signal detection
  • Adaptive filters
  • Kalman filters
  • Signal denoising

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