Please use this identifier to cite or link to this item: http://hdl.handle.net/10174/38735

Title: EIF-SlideWindow: Enhancing Simultaneous Localization and Mapping Efficiency and Accuracy with a Fixed-Size Dynamic Information Matrix
Authors: Lamar-Leon, Javier
Gonçalves, T
Rato, L
Salgueiro, P
Editors: García López, Salvador
Keywords: SLAM; Kalman filter; extended Kalman filter (EKF); Gaussian noise
Issue Date: 17-Dec-2024
Publisher: MDPI (Big Data and Cognitive Computing)
Citation: Léon, Javier Lamar, Pedro Salgueiro, Teresa Gonçalves, and Luis Rato. 2024. "EIF-SlideWindow: Enhancing Simultaneous Localization and Mapping Efficiency and Accuracy with a Fixed-Size Dynamic Information Matrix" Big Data and Cognitive Computing 8, no. 12: 193. https://doi.org/10.3390/bdcc8120193
Abstract: This paper introduces EIF-SlideWindow, a novel enhancement of the Extended Information Filter (EIF) algorithm for Simultaneous Localization and Mapping (SLAM). Traditional EIF-SLAM, while effective in many scenarios, struggles with inaccuracies in highly non-linear systems or environments characterized by significant non-Gaussian noise. Moreover, the computational complexity of EIF/EKF-SLAM scales with the size of the environment, often resulting in performance bottlenecks. Our proposed EIF-SlideWindow approach addresses these limitations by maintaining a fixed-size information matrix and vector, ensuring constant-time processing per robot step, regardless of trajectory length. This is achieved through a sliding window mechanism centered on the robot’s pose, where older landmarks are systematically replaced by newer ones. We assess the effectiveness of EIF-SlideWindow using simulated data and demonstrate that it outperforms standard EIF/EKF-SLAM in both accuracy and efficiency. Additionally, our implementation leverages PyTorch for matrix operations, enabling efficient execution on both CPU and GPU. Additionally, the code for this approach is made available for further exploration and development.
URI: http://hdl.handle.net/10174/38735
Type: article
Appears in Collections:INF - Publicações - Artigos em Revistas Internacionais Com Arbitragem Científica

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