Abstract
We propose a weighted least-squares (WLS) algorithm for optimal pose estimation of mobile robots using geometrical maps as environment models. Pose estimation is achieved from feature correspondences in a nonlinear framework without linearization. The proposed WLS approach yields optimal estimates in the least-squares sense, is applicable to heterogeneous geometrical features decomposed in points and lines, and has an O(N) computation time.
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Borges, G. A., & Aldon, M. J. (2002). Optimal mobile robot pose estimation using geometrical maps. IEEE Transactions on Robotics and Automation, 18(1), 87–94. https://doi.org/10.1109/70.988978
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