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  • title: Modality-Agnostic Topology Aware Localization
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            Modality-Agnostic Topology Aware Localization
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            Modality-Agnostic Topology Aware Localization

            Dec 6, 2021

            Speakers

            FGZ

            Farhad G. Zanjani

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            IK

            Ilia Karmanov

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            HA

            Hanno Ackermann

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            About

            This work presents a data-driven approach for the localization of an observer on a 2D topological map of the environment. State-of-the-art techniques may yield accurate estimates only when they are tailor-made for a specific data modality that prevents their applicability to broader domains. Here, we establish a model-agnostic framework and formulate the localization problem in the context of parametric manifold learning while leveraging optimal transportation. Our algorithm allows jointly learn…

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            NeurIPS 2021

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