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Real-time robust 3D object tracking and estimation for surveillance system

机译:监控系统的实时鲁棒3D对象跟踪和估计

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摘要

We present a new 3D object tracking algorithm that supports multiple planar and nonplanar objects with real-time processing speed and high accuracy. The main problem of object tracking algorithm is the limitation of the supporting type of target object, slow processing speed, and low tracking accuracy. Our algorithm provides high accuracy and real-time performance while detecting not only planar objects but also nonplanar objects. The real-time performance is accomplished by using Features from Accelerated Segment Test corner detection, region of interest, and parallel processing on a multicore processor. High accuracy is realized by using a scale-invariant feature transform descriptor, random sample consensus, region of interest, and double robust filtering. Copyright (C) 2013 John Wiley & Sons, Ltd.
机译:我们提出了一种新的3D对象跟踪算法,该算法以实时处理速度和高精度支持多个平面和非平面对象。目标跟踪算法的主要问题是目标对象的支持类型受限,处理速度慢,跟踪精度低。我们的算法可提供高精度和实时性能,同时不仅可检测平面物体,还可检测非平面物体。实时性能是通过使用“加速段测试”角点检测,关注区域和多核处理器上的并行处理功能来实现的。通过使用尺度不变特征变换描述符,随机样本共识,关注区域和双重鲁棒滤波,可以实现高精度。版权所有(C)2013 John Wiley&Sons,Ltd.

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