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Balance between object and background: Object-enhanced features for scene image classification

机译:对象和背景之间的平衡:用于场景图像分类的对象增强功能

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摘要

An unsupervised object-enhanced feature generation mechanism is proposed, which balances the different effects of object regions and background regions for scene image classification. The proposed method strengthens the characteristics of the whole image with object regions in a biased way and accords with the perception mechanism of humans. Furthermore, it can be easily embedded in the extraction process of existing prominent histogram-based feature representations, such as BOW (bag-of-visual-words) and HOG (histogram of orientations gradients). The paper takes BOW feature as the primary example, and presents a feature named OE-BOW. The overall results of the proposed method show an increase in the classification accuracy of about 1.0-2.5% compared to the original feature on some popular scene datasets. And the performance of the proposed method is also shown to be comparable to the recently reported results.
机译:提出了一种无监督的对象增强特征生成机制,该机制平衡了对象区域和背景区域对场景图像分类的不同影响。所提出的方法以偏向的方式增强了带有目标区域的整个图像的特征,并符合人的感知机制。此外,它可以轻松地嵌入到现有的基于直方图的突出特征表示中,例如BOW(视觉词袋)和HOG(方向梯度直方图)的提取过程中。本文以BOW功能为主要示例,并介绍了一个名为OE-BOW的功能。与某些流行场景数据集上的原始特征相比,该方法的总体结果表明分类精度提高了约1.0-2.5%。并且所提出的方法的性能也被证明与最近报道的结果相当。

著录项

  • 来源
    《Neurocomputing》 |2013年第23期|15-23|共9页
  • 作者单位

    School of Electronic Information Engineering, Tianjin University, PR China;

    School of Electronic Information Engineering, Tianjin University, PR China;

    School of Electronic Information Engineering, Tianjin University, PR China;

    School of Electronic Information Engineering, Tianjin University, PR China;

    Vocational and Technical College, Hebei Normal University, Shijiazhuang, PR China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Scene image classification; Bag-of-visual-words; Object region; Patch description;

    机译:场景图像分类;视觉词袋;对象区域;补丁说明;

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