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A Moving Target Detection and Localization Strategy Based on Optical Flow and Pin-hole Imaging Methods Using Monocular Vision

机译:基于光学流动和引脚孔成像方法的移动目标检测与定位策略

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This paper proposes a new strategy for moving target detection and localization based on monocular vision. Firstly, to detect a moving target with large displacement and high speed accurately, two consecutive video images captured by a monocular camera are preprocessed using the enhancement and denoising methods. Then, the optical flow representing motion information is calculated iteratively by the modified Lucas-Kanade optical flow method. Secondly, a new interest region extraction method is developed to overcome the negative impacts caused by the noises in the background. Specifically, this proposed method combines a two-level image segmentation strategy from coarse to fine, including median filtering, two-direction dynamic threshold segmentation, the Otsu method, and morphological processing. Thirdly, a low computational cost target localization algorithm is proposed based on pin-hole imaging theory. Besides, it only uses two-dimensional image and camera parameters to obtain the moving target's position in the three-dimensional space. Finally, experimental results show that the proposed strategy can effectively eliminate noise interferences and realize moving target detection, extraction, and localization.
机译:本文提出了一种基于单眼视觉移动目标检测和定位的新策略。首先,为了准确地检测具有大的位移和高速的移动目标,使用各种相机捕获的两个连续的视频图像使用增强和去噪方法预处理。然后,由修改的Lucas-Kanade光学流量方法迭代地计算表示运动信息的光学流程。其次,开发了一种新的兴趣区提取方法以克服背景中噪声引起的负面影响。具体地,该提出的方法将双级图像分割策略与粗略精细组合,包括中值滤波,两个方向动态阈值分割,OTSU方法和形态处理。第三,基于引脚孔成像理论提出了低计算成本目标定位算法。此外,它仅使用二维图像和相机参数来获得三维空间中的移动目标的位置。最后,实验结果表明,所提出的策略可以有效地消除噪声干扰,实现移动目标检测,提取和定位。

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