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3D noise-resistant segmentation and tracking of unknown and occluded objects using integral imaging

机译:使用积分成像对未知和被遮挡的物体进行3D抗噪分割和跟踪

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摘要

Three dimensional (3D) object segmentation and tracking can be useful in various computer vision applications, such as: object surveillance for security uses, robot navigation, etc. We present a method for 3D multiple-object tracking using computational integral imaging, based on accurate 3D object segmentation. The method does not employ object detection by motion analysis in a video as conventionally performed (such as background subtraction or block matching). This means that the movement properties do not significantly affect the detection quality. The object detection is performed by analyzing static 3D image data obtained through computational integral imaging With regard to previous works that used integral imaging data in such a scenario, the proposed method performs the 3D tracking of objects without prior information about the objects in the scene, and it is found efficient under severe noise conditions.
机译:三维(3D)对象分割和跟踪在各种计算机视觉应用中都可以使用,例如:用于安全用途的对象监视,机器人导航等。我们基于准确度,提出了一种使用计算积分成像进行3D多对象跟踪的方法3D对象分割。该方法不像常规执行的那样通过视频中的运动分析来进行对象检测(例如背景减法或块匹配)。这意味着运动特性不会显着影响检测质量。通过分析通过计算积分成像获得的静态3D图像数据来执行对象检测。对于在这种情况下使用积分成像数据的先前工作,所提出的方法执行了对象的3D跟踪,而没有关于场景中对象的先验信息,并且发现在严重的噪声条件下它是有效的。

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