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Robust RGB-D tracking via compact CNN features

机译:通过Compact CNN功能进行强大的RGB-D跟踪

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摘要

Feature representation is at the core of visual tracking. This paper presents a robust tracking method in RGB-D videos. Firstly, the RGB and depth images are separately encoded using a hierarchical convolutional neural network (CNN) features. Secondly, in order to reduce computation cost, we exploit random projection to compress the CNN features. The high dimensional CNN features are randomly projected into a low dimensional feature space. The correlation filter tracking framework is then independently carried out in RGB and depth images. And backward tracking scheme is adopted to evaluate the tracking results in these two images. The final position is determined according to the tracked location in the two image channels. In addition, model updating is implemented adaptively. Our tracker is evaluated on two RGB-D benchmark datasets and achieves comparable results to the other state-of-the-art RGB-D tracking methods.
机译:特征表示位于视觉跟踪的核心。本文介绍了RGB-D视频中的鲁棒跟踪方法。首先,使用分层卷积神经网络(CNN)特征单独编码RGB和深度图像。其次,为了降低计算成本,我们利用随机投影来压缩CNN功能。高维CNN特征随机投影到低维特征空间中。然后在RGB和深度图像中独立地执行相关滤波器跟踪框架。采用向后跟踪方案来评估这两个图像中的跟踪结果。根据两个图像通道中的跟踪位置确定最终位置。此外,模型更新是自适应实现的。我们的跟踪器在两个RGB-D基准数据集中进行评估,并实现了与其他最先进的RGB-D跟踪方法的可比结果。

著录项

  • 来源
    《Engineering Applications of Artificial Intelligence》 |2020年第11期|103974.1-103974.9|共9页
  • 作者单位

    School of Aeronautics and Astronautics Sun Yat-Sen University Guangzhou China;

    Fujian Institute of Research on the Structure of Matter Chinese Academy of Sciences Fu Zhou China;

    School of Aeronautics and Astronautics Shanghai Jiao Tong University Shanghai China;

    School of Electrical and Computer Science University of Ottawa Ottawa Canada;

    School of Physical Science and Technology Southwest Jiaotong University Chengdu China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    RGB-D tracking; Random projection; CNN;

    机译:RGB-D跟踪;随机投影;CNN.;

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