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Boundary detection with a road model for occupancy grids in the curvilinear coordinate system using a downward-looking lidar sensor

Authors
Kim, Je SeokJeong, Jin HanPark, Jahng Hyon
Issue Date
Sep-2016
Publisher
SAGE PUBLICATIONS LTD
Keywords
Road model; curvilinear coordinate system; road boundary detection; adaptive field of view; occupancy grid map; road sensor model
Citation
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART D-JOURNAL OF AUTOMOBILE ENGINEERING, v.230, no.10, pp.1351 - 1363
Indexed
SCIE
SCOPUS
Journal Title
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART D-JOURNAL OF AUTOMOBILE ENGINEERING
Volume
230
Number
10
Start Page
1351
End Page
1363
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/4362
DOI
10.1177/0954407015608051
ISSN
0954-4070
Abstract
Many studies using a laser scanner have been conducted in order to study the environment of vehicles in real time. The method to find the driving area using a two-dimensional lidar sensor is divided into a forward-looking lidar sensor and a downward-looking lidar sensor based on the installation method. A downward-looking lidar sensor looks at the ground, enabling it to recognize kerbs and ditches which are lower than the installation position of the sensor. However, a downward-looking lidar sensor requires pre-processing to find the road boundary. The existing sensor models cannot generate an occupancy grid map without support, as the driving area recognized through a downward-looking lidar sensor forms a circular sector shape from the sensor installation position to the road boundary. This paper proposes a road sensor model that is capable of modelling an occupancy grid. We also propose a method to generate an occupancy grid map more suitable for autonomous vehicles by presenting the occupancy grid map in curvilinear space. The proposed method was validated by an experiment at Hanyang University campus and the quantitative results obtained from that experiment. We also compared this method with three conventional sensor model methods. The experimental results show that our method performs better than the conventional methods do in terms of both visual qualities and metric qualities.
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COLLEGE OF ENGINEERING (DEPARTMENT OF AUTOMOTIVE ENGINEERING)
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