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http://dx.doi.org/10.22680/kasa2020.12.4.023

Lidar Based Object Recognition and Classification  

Byeon, Yerim (한국교통대학교 전자공학과)
Park, Manbok (한국교통대학교 전자공학과)
Publication Information
Journal of Auto-vehicle Safety Association / v.12, no.4, 2020 , pp. 23-30 More about this Journal
Abstract
Recently, self-driving research has been actively studied in various institutions. Accurate recognition is important because information about surrounding objects is needed for safe autonomous driving. This study mainly deals with the signal processing of LiDAR among sensors for object recognition. LiDAR is a sensor that is widely used for high recognition accuracy. First, we clustered and tracked objects by predicting relative position and speed of objects. The characteristic points of all objects were extracted using point cloud data of each objects through proposed algorithm. The Classification between vehicle and pedestrians is estimated using number of characteristic points and distances among characteristic points. The algorithm for classifying cars and pedestrians was implemented and verified using test vehicle equipped with LiDAR sensors. The accuracy of proposed object classification algorithm was about 97%. The classification accuracy was improved by about 13.5% compared with deep learning based algorithm.
Keywords
Lidar; Clustering; Classification; Object; Feature Point;
Citations & Related Records
Times Cited By KSCI : 2  (Citation Analysis)
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