An Obstacle Detection Method Based on Longitudinal Active Vision
Shuyue Shi,
Juan Ni,
Xiangcun Kong
et al.
Abstract:The types of obstacles encountered in the road environment are complex and diverse, and accurate and reliable detection of obstacles is the key to improving traffic safety. Traditional obstacle detection methods are limited by the type of samples and therefore cannot detect others comprehensively. Therefore, this paper proposes an obstacle detection method based on longitudinal active vision. The obstacles are recognized according to the height difference characteristics between the obstacle imaging points and… Show more
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