首页> 外国专利> LEARNING METHOD, LEARNING DEVICE FOR DETECTING OBJECTNESS BY DETECTING BOTTOM LINES AND TOP LINES OF NEAREST OBSTACLES AND TESTING METHOD, TESTING DEVICE USING THE SAME

LEARNING METHOD, LEARNING DEVICE FOR DETECTING OBJECTNESS BY DETECTING BOTTOM LINES AND TOP LINES OF NEAREST OBSTACLES AND TESTING METHOD, TESTING DEVICE USING THE SAME

机译:学习方法,通过检测最接近障碍物的底线和顶线来检测对象的学习设备和测试方法,使用相同方法测试设备

摘要

A method for learning parameters of CNNs capable of identifying objectnesses by detecting bottom lines and top lines of nearest obstacles in an input image is provided. The method indues steps of: a learning device, (a) instructing a first CNN to generate first encoded feature maps and first decoded feature maps, and instructing a second CNN to generate second encoded feature maps and second decoded feature maps; (b) generating first and second obstacle segmentation results respectively representing where the bottom lines and the top lines are estimated as being located per each column, by referring to the first and the second decoded feature maps respectively; (c) estimating the objectnesses by referring to the first and the second obstacle segmentation results; (d) generating losses by referring to the objectnesses and their corresponding GTs; and (f) backpropagating the losses, to thereby learn the parameters of the CNNs.
机译:提供了一种用于学习CNN的参数的方法,该方法能够通过检测输入图像中最近的障碍物的底线和顶线来识别物体。该方法包括以下步骤:学习设备,(a)指示第一CNN生成第一编码特征图和第一解码特征图,并指示第二CNN生成第二编码特征图和第二解码特征图; (b)通过分别参考第一和第二解码特征图,生成分别表示估计每行底线和顶线的位置的第一和第二障碍物分割结果; (c)通过参考第一和第二障碍物分割结果来估计客观性; (d)参照客观性及其相应的GT产生损失; (f)反向传播损失,从而了解CNN的参数。

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