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Joint Human Detection and Head Pose Estimation via Multistream Networks for RGB-D Videos

机译:通过多流网络对RGB-D视频进行联合人体检测和头部姿势估计

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摘要

We propose a multistream multitask deep network for joint human detection and head pose estimation in RGB-D videos. To achieve high accuracy, we jointly utilize appearance, shape, and motion information as inputs. Based on the depth information, we generate scale invariant proposals, which are then fed into a novel contextual region of interest pooling (CRP) layer in our deep network. This CRP has two branches to deal with contextual information for each subject. The proposed method outperforms state-of-the-art approaches on three public datasets.
机译:我们提出了一种多流多任务深度网络,用于联合人体检测和RGB-D视频中的头部姿态估计。为了实现高精度,我们共同使用外观,形状和运动信息作为输入。根据深度信息,我们生成尺度不变的建议,然后将其馈入我们的深层网络中一个新颖的上下文兴趣池(CRP)层。该CRP有两个分支机构来处理每个主题的上下文信息。所提出的方法在三个公共数据集上的表现优于最新方法。

著录项

  • 来源
    《IEEE signal processing letters》 |2017年第11期|1666-1670|共5页
  • 作者单位

    University of Maryland, School of Computer Science, Shanghai Key Laboratory of Intelligent Information Processing, Fudan University, College Park, Shanghai, MD, USAChina;

    Nanyang Technological University, Singapore;

    School of Computer Science, Shanghai Key Laboratory of Intelligent Information Processing, Fudan University, Shanghai, China;

    School of Computer Science, Shanghai Key Laboratory of Intelligent Information Processing, Fudan University, Shanghai, China;

    Center for Automation Research, University of Maryland, College Park, MD, USA;

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

    Head; Proposals; Pose estimation; Shape; Videos; Machine learning; Clothing;

    机译:负责人;提案;姿势估计;形状;视频;机器学习;服装;

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