Partitioned environments for visual localization
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Institute of Electrical and Electronics Engineers Inc.
Erişim Hakkı
info:eu-repo/semantics/embargoedAccess
Özet
In this paper, we present a novel sequential visual localization algorithm in partitioned route. The algorithm utilizes Monte-Carlo for accurate visual localization. Partitioning the route into several regions produces higher accuracy along with lower computational cost. Each of the regions is represented using independent maps. We use bag-of-words for visual mapping of the environment. In addition, it shows smooth transition when the robot moves from one region to another. Experiments are carried out using data collected from crowded roads. Results show that this method is superior to previous attempts that looked into localization in crowded outdoor environments.
Açıklama
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Multiple bag of words, Visual localization
Kaynak
26th IEEE Signal Processing and Communications Applications Conference, SIU 2018
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Künye
Abdulhafez, A., & 2018 26th Signal Processing and Communications Applications Conference (SIU). (May 01, 2018). Partitioned environments for visual localization. 1-4.










