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Car model recognition by utilizing symmetric property to overcome severe pose variation

机译:利用对称特性克服严重姿态变化的汽车模型识别

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This paper presents a mirror morphing scheme to deal with the challenging pose variation problem in car model recognition. Conventionally, researchers adopt pose estimation techniques to overcome the pose problem, whereas it is difficult to obtain very accurate pose estimation. Moreover, slight deviation in pose estimation degrades the recognition performance dramatically. The mirror morphing technique utilizes the symmetric property of cars to normalize car images of any orientation into a typical view. Therefore, the pose error and center bias can be eliminated and satisfactory recognition performance can be obtained. To support mirror morphing, active shape model (ASM) is used to acquire car shape information. An effective pose and center estimation approach is also proposed to provide a good initialization for ASM. In experiments, our proposed car model recognition system can achieve very high recognition rate (>95%) with very low probability of false alarm even when it is dealing with the severe pose problem in the cases of cars with similar shape and color.
机译:本文提出了一种镜像变形方案,以解决汽车模型识别中具有挑战性的姿势变化问题。传统上,研究人员采用姿势估计技术来克服姿势问题,而很难获得非常准确的姿势估计。此外,姿势估计的微小偏差会大大降低识别性能。镜像变形技术利用汽车的对称特性将任何方向的汽车图像标准化为典型视图。因此,可以消除姿势误差和中心偏差,并且可以获得令人满意的识别性能。为了支持镜像变形,主动形状模型(ASM)用于获取汽车形状信息。还提出了一种有效的姿态和中心估计方法来为ASM提供良好的初始化。在实验中,我们提出的汽车模型识别系统即使在形状和颜色相似的汽车中处理严重姿势问题时,也能以极低的误报率实现很高的识别率(> 95%)。

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