Arid
DOI10.1117/12.2049961
Road recognition in poor quality environments for forward looking buried object detection
Plodpradista, P.1; Keller, J. M.1; Popescu, M.2
通讯作者Plodpradista, P.
会议名称Conference on Detection and Sensing of Mines, Explosive Objects, and Obscured Targets XIX
会议日期MAY 05-07, 2014
会议地点Baltimore, MD
英文摘要

In this paper, we propose a reinforcement random forest algorithm as a novel approach to detect unpaved road regions at stand-off distances. A random forest classifier is used to differentiate between road and non-road pixels/patches without over fitting the training data. Utilizing a reinforcement technique, the algorithm can handle foreign objects that we encounter in real world driving. Furthermore, classifying road patches at different distances generates multiple levels of road agreement for each pixel within the image. Using different threshold values of this agreement level provides adaptability to the road finding results. The selection of low threshold values produces better detection rates but also increases false alarms. On the other hand, high threshold values lower the detection rate and decreases false detections. In our experiments, the proposed algorithm is tested on color video of unpaved road in an arid environment.


英文关键词Road recognition color imagery buried object detection random forests reinforcement decision level fusion
来源出版物DETECTION AND SENSING OF MINES, EXPLOSIVE OBJECTS, AND OBSCURED TARGETS XIX
ISSN0277-786X
EISSN1996-756X
出版年2014
卷号9072
EISBN978-1-62841-009-9
出版者SPIE-INT SOC OPTICAL ENGINEERING
类型Proceedings Paper
语种英语
国家USA
收录类别CPCI-S
WOS记录号WOS:000341920700040
WOS类目Engineering, Electrical & Electronic ; Optics
WOS研究方向Engineering ; Optics
资源类型会议论文
条目标识符http://119.78.100.177/qdio/handle/2XILL650/302984
作者单位1.Univ Missouri, Dept Elect & Comp Engn, Columbia, MO 65211 USA;
2.Univ Missouri, Hlth Management & Informat Dept, Columbia, MO USA
推荐引用方式
GB/T 7714
Plodpradista, P.,Keller, J. M.,Popescu, M.. Road recognition in poor quality environments for forward looking buried object detection[C]:SPIE-INT SOC OPTICAL ENGINEERING,2014.
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