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On Hierarchical Models for Visual Recognition and Learning of Objects, Scenes, and Activities

机译:关于视觉识别和学习对象,场景和活动的分层模型

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摘要

In many computer vision applications, objects have to be learned and recognized in images or image sequences. This book presents new probabilistic hierarchical models that allow an efficient representation of multiple objects of different categories, scales, rotations, and views. The idea is to exploit similarities between objects and object parts in order to share calculations and avoid redundant information. Furthermore inference approaches for fast and robust detection are presented. These new approaches combine the idea of compositional and similarity hierarchies and overcome limitations of previous methods. Besides classical object recognition the book shows the use for detection of human poses in a project for gait analysis. The use of activity detection is presented for the design of environments for ageing, to identify activities and behavior patterns in smart homes. In a presented project for parking spot detection using an intelligent vehicle, the proposed approaches are used to hierarchically model the environment of the vehicle for an efficient and robust interpretation of the scene in real-time.
机译:在许多计算机视觉应用中,必须在图像或图像序列中学习和识别对象。本书呈现出新的概率分层模型,允许有效表示不同类别,尺度,旋转和视图的多个对象。该想法是利用对象和对象部件之间的相似性,以便共享计算并避免冗余信息。此外,提出了快速且鲁棒检测的推理方法。这些新方法结合了构图和相似性等级的思想,并克服了先前方法的限制。除了经典对象识别之外,该书显示了用于检测人类姿势的用于步态分析的用途。展示了活动检测的使用,用于设计衰老的环境,以识别智能房屋中的活动和行为模式。在使用智能车辆的停车位检测的呈现项目中,所提出的方法用于层次模拟车辆的环境,以实时对现场的有效和稳健的解释。

著录项

  • 作者

    Jens Spehr;

  • 作者单位
  • 年度 2015
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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