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Application of object prediction theory in object localization

机译:对象预测理论在对象本地化中的应用

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摘要

In this paper, an object localization method based on prediction theory is proposed. Prediction theory is employed to construct the network in the approach. Besides, the proposed work is applied to key component localization on a running gear. Its performance is compared with a scale-invariant feature transform (SIFT) based object localization. The proposed network is designed to represent the structure of objects, and the recognition of objects is to be accomplished after training the network. The experiment demonstrates that the proposed method can accurately localize objects in a big image by using a small amount of training data. (C) 2017 Optical Society of America
机译:本文提出了一种基于预测理论的对象定位方法。 预测理论用于构建网络中的网络。 此外,所提出的工作应用于运行装备的关键组件定位。 它的性能与基于尺度不变的功能变换(SIFT)的对象本地化进行了比较。 所提出的网络旨在代表物体的结构,并且在训练网络之后将实现对象的识别。 该实验表明,所提出的方法可以通过使用少量训练数据来准确地本地化大图像中的对象。 (c)2017年光学学会

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  • 来源
    《Journal of optical technology》 |2017年第6期|共6页
  • 作者单位

    Southwest Jiao Tong Univ Inst Phys &

    Sci Chengdu Sichuan Peoples R China;

    Southwest Jiao Tong Univ Inst Phys &

    Sci Chengdu Sichuan Peoples R China;

    Southwest Jiao Tong Univ Inst Phys &

    Sci Chengdu Sichuan Peoples R China;

    Southwest Jiao Tong Univ Inst Phys &

    Sci Chengdu Sichuan Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;
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