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Person Detection,Tracking and Following Using Stereo Camera

机译:人员检测,跟踪和使用立体声相机

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Person detection, tracking and following is a key enabling technology for mobile robots in many human-robot interaction applications. In this article, we present a system which is composed of visual human detection, video tracking and following. The detection is based on YOLO(You only look once), which applies a single convolution neural network(CNN) to the full image, thus can predict bounding boxes and class probabilities directly in one evaluation. Then the bounding box provides initial person position in image to initialize and train the KCF(Kernelized Correlation Filter), which is a video tracker based on discriminative classifier. At last, by using a stereo 3D sparse reconstruction algorithm, not only the position of the person in the scene is determined, but also it can elegantly solve the problem of scale ambiguity in the video tracker. Extensive experiments are conducted to demonstrate the effectiveness and robustness of our human detection and tracking system.
机译:人员检测,跟踪和以下是许多人机交互应用中的移动机器人的关键能够实现技术。在本文中,我们提出了一个由可视人体检测,视频跟踪和遵循组成的系统。该检测基于YOLO(您只有一次),这将单个卷积神经网络(CNN)应用于完整图像,因此可以直接在一个评估中预测边界框和类概率。然后,边界框提供图像中的初始人称位置,以初始化和培训KCF(内景相关滤波器),这是基于判别分类器的视频跟踪器。最后,通过使用立体声3D稀疏重建算法,不仅确定了场景中的人的位置,而且它也可以典雅地解决视频跟踪器中规模模糊的问题。进行了广泛的实验,以证明我们人类检测和跟踪系统的有效性和稳健性。

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