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Human Detection from Omnidirectional Camera Using Feature Tracking and Motion Segmentation

机译:使用特征跟踪和运动分段从全向相机从全向相机进行人机检测

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This paper proposes a motion segmentation method on images which are captured by an omnidirectional camera. A simple unwrapping method is performed to convert an omnidirectional image into a panoramic image. Two consecutive panoramic images are used for motion analysis. Corner features are extracted from the image, and their locations are defined in local patches by dividing an image into grid cells. Then, each feature in previous frame is tracked to find its corresponding in the current frame. The affine transformation is performed using three corresponding features. The regions of moving object are detected as transformed objects which are different from the previously registered background. Morphological processing is applied for smoothing the motion region. Histogram vertical projection and boundary saliency are applied to segmenting the motion. Finally, the proposed motion segmentation method is used for human detection in omnidirectional images. The performance result shown the best detection rate is 97.25% at 0.3 false positive rate.
机译:本文提出了一种由全向相机捕获的图像上的运动分段方法。执行简单的揭示方法以将全部向图像转换为全景图像。两个连续的全景图像用于运动分析。从图像中提取拐角特征,并且通过将图像划分为网格单元来定义它们的位置。然后,跟踪先前帧中的每个特征以在当前帧中找到其对应。使用三个相应的特征来执行仿射变换。移动物体区域被检测为与先前已登记的背景不同的变换对象。形态学加工用于平滑运动区域。直方图垂直投影和边界显着性用于分割运动。最后,所提出的运动分段方法用于全向图像中的人类检测。显示最佳检测率的性能结果为0.3假阳性率为97.25%。

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