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    Road network fusion for incremental map updates

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    Date
    2018
    Author
    Stanojevic, Rade
    Abbar, Sofiane
    Thirumuruganathan, Saravanan
    De Francisci Morales, Gianmarco
    Chawla, Sanjay
    Filali, Fethi
    Aleimat, Ahid
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    Abstract
    In the recent years a number of novel, automatic map-inference techniques have been proposed, which derive road-network from a cohort of GPS traces collected by a fleet of vehicles. In spite of considerable attention, these maps are imperfect in many ways: they create an abundance of spurious connections, have poor coverage, and are visually confusing. Hence, commercial and crowd-sourced mapping services heavily use human annotation to minimize the mapping errors. Consequently, their response to changes in the road network is inevitably slow. In this paper we describe MapFuse, a system which fuses a human-annotated map (e.g., OpenStreetMap) with any automatically inferred map, thus effectively enabling quick map updates. In addition to new road creation, we study in depth road closure, which have not been examined in the past. By leveraging solid, human-annotated maps with minor corrections, we derive maps which minimize the trajectory matching errors due to both road network change and imperfect map inference of fully-automatic approaches.
    DOI/handle
    http://dx.doi.org/10.1007/978-3-319-71470-7_5
    http://hdl.handle.net/10576/60430
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    • QMIC Research [‎278‎ items ]

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