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Distributed consensus-based cooperative passive positioning with multi-source information fusion

  • Northwestern Polytechnical University Xian

Research output: Contribution to journalArticlepeer-review

Abstract

To address the issue of difference estimates from multi-source sensors in distributed cooperative passive localization and tracking,this paper proposes a distributed consensus algorithm based on fast covariance intersection. First,a multi-sensor temporal alignment model is constructed using Taylor formula and adaptive density clustering theory to resolve temporal asynchrony caused by multi-source asynchronous sampling. Subsequently,each sensor performs local estimation by integrating information contributions from neighboring sensors. Next,a theoretical relationship between the iteration number and the consensus error is derived based on a given steady-state consensus error,ensuring that the information group converges to consensus within a finite number of iterations. On this basis, each sensor only needs to perform one global fast covariance intersection to complete information fusion,significantly improving the efficiency and accuracy of fusion. Finally,the algorithm is applied to a multi-source distributed collaborative passive positioning system. Simulation results demonstrate that the proposed method can effectively achieve consensus fusion positioning within a finite number of iterations while simultaneously completing temporal alignment.

Translated title of the contribution多 源 信 息 融 合 的 分 布 式 一 致 性 协 同 被 动 定 位
Original languageEnglish
Article number332859
JournalHangkong Xuebao/Acta Aeronautica et Astronautica Sinica
Volume47
Issue number12
DOIs
StatePublished - 25 Jun 2026

Keywords

  • cooperative passive localization
  • distributed consensus state estimation
  • fast covariance intersection
  • multi-source information fusion
  • temporal alignment
  • 分 布 式 一 致 性 状 态 估 计
  • 协 同 被 动 定 位
  • 多 源 信 息 融 合
  • 快 速 协 方 差 交 互
  • 时 间 配 准

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