Decentralized Cooperative Localization for Multi-Robot Systems with Asynchronous Sensor Fusion

Fuente: arXiv
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Hauptverfasser: Khosravi, Nivand, Khosravi, Niusha, Bozorg, Mohammad, Bahraini, Masoud S.
Format: Preprint
Veröffentlicht: 2026
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author Khosravi, Nivand
Khosravi, Niusha
Bozorg, Mohammad
Bahraini, Masoud S.
author_facet Khosravi, Nivand
Khosravi, Niusha
Bozorg, Mohammad
Bahraini, Masoud S.
contents Decentralized cooperative localization (DCL) is a promising approach for nonholonomic mobile robots operating in GPS-denied environments with limited communication infrastructure. This paper presents a DCL framework in which each robot performs localization locally using an Extended Kalman Filter, while sharing measurement information during update stages only when communication links are available and companion robots are successfully detected by LiDAR. The framework preserves cross-correlation consistency among robot state estimates while handling asynchronous sensor data with heterogeneous sampling rates and accommodating accelerations during dynamic maneuvers. Unlike methods that require pre-aligned coordinate systems, the proposed approach allows robots to initialize with arbitrary reference-frame orientations and achieves automatic alignment through transformation matrices in both the prediction and update stages. To improve robustness in feature-sparse environments, we introduce a dual-landmark evaluation framework that exploits both static environmental features and mobile robots as dynamic landmarks. The proposed framework enables reliable detection and feature extraction during sharp turns, while prediction accuracy is improved through information sharing from mutual observations. Experimental results in both Gazebo simulation and real-world basement environments show that DCL outperforms centralized cooperative localization (CCL), achieving a 34% reduction in RMSE, while the dual-landmark variant yields an improvement of 56%. These results demonstrate the applicability of DCL to challenging domains such as enclosed spaces, underwater environments, and feature-sparse terrains where conventional localization methods are ineffective.
format Preprint
id arxiv_https___arxiv_org_abs_2603_12075
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Decentralized Cooperative Localization for Multi-Robot Systems with Asynchronous Sensor Fusion
Khosravi, Nivand
Khosravi, Niusha
Bozorg, Mohammad
Bahraini, Masoud S.
Robotics
Systems and Control
Decentralized cooperative localization (DCL) is a promising approach for nonholonomic mobile robots operating in GPS-denied environments with limited communication infrastructure. This paper presents a DCL framework in which each robot performs localization locally using an Extended Kalman Filter, while sharing measurement information during update stages only when communication links are available and companion robots are successfully detected by LiDAR. The framework preserves cross-correlation consistency among robot state estimates while handling asynchronous sensor data with heterogeneous sampling rates and accommodating accelerations during dynamic maneuvers. Unlike methods that require pre-aligned coordinate systems, the proposed approach allows robots to initialize with arbitrary reference-frame orientations and achieves automatic alignment through transformation matrices in both the prediction and update stages. To improve robustness in feature-sparse environments, we introduce a dual-landmark evaluation framework that exploits both static environmental features and mobile robots as dynamic landmarks. The proposed framework enables reliable detection and feature extraction during sharp turns, while prediction accuracy is improved through information sharing from mutual observations. Experimental results in both Gazebo simulation and real-world basement environments show that DCL outperforms centralized cooperative localization (CCL), achieving a 34% reduction in RMSE, while the dual-landmark variant yields an improvement of 56%. These results demonstrate the applicability of DCL to challenging domains such as enclosed spaces, underwater environments, and feature-sparse terrains where conventional localization methods are ineffective.
title Decentralized Cooperative Localization for Multi-Robot Systems with Asynchronous Sensor Fusion
topic Robotics
Systems and Control
url https://arxiv.org/abs/2603.12075