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Multi-nature hierarchical approach for naturah image segmentation with pattern refinement feedback

机译:具有模式细化反馈的自然图像分割的多自然分层方法

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摘要

A hierarchical learning method for segmenting natural images is proposed in this paper. This approach combines the perceptual information of three natures - colour, texture, and homogeneity - in order to segment natural colour images. These low-level features are extracted using a multiple scale neural architecture we previously proven in [1,20]. Present approach incorporates the human knowledge to a hierarchical categorisation process, where the features of the three natures are independently categorised. The final segmentation is achieved through pattern refinement cycles. The approach is compared to other two significant natural scene segmentation methods, achieving better results in a global evaluation. These comparisons are performed using the Berkeley Segmentation Dataset.
机译:提出了一种分割自然图像的分层学习方法。这种方法结合了三种性质的感知信息-颜色,纹理和同质性-以分割自然彩色图像。这些低级特征是使用我们先前在[1,20]中证明的多尺度神经体系结构提取的。本方法将人类知识纳入了一个分层的分类过程,在此过程中,三种性质的特征被独立地分类。最终的分割是通过图案细化循环实现的。该方法与其他两种重要的自然场景分割方法进行了比较,在全局评估中获得了更好的结果。这些比较是使用伯克利细分数据集进行的。

著录项

  • 来源
    《Neurocomputing》 |2013年第1期|325-338|共14页
  • 作者单位

    Department of Signal Theory, Communications and Telematics Engineering, Telecommunications Engineering School, University of Valladolid, Valladolid, Spain;

    Department of Signal Theory, Communications and Telematics Engineering, Telecommunications Engineering School, University of Valladolid, Valladolid, Spain;

    Department of Signal Theory, Communications and Telematics Engineering, Telecommunications Engineering School, University of Valladolid, Valladolid, Spain;

    Science and Technology School, University of Carabobo, Carabobo, Venezuela;

    Department of Signal Theory, Communications and Telematics Engineering, Telecommunications Engineering School, University of Valladolid, Valladolid, Spain;

  • 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

    natural image segmentation; hierarchical neural network; supervised categorisation; ARTMAP models; pattern refinement; berkeley segmentation dataset;

    机译:自然图像分割层次神经网络监督分类;ARTMAP模型;模式细化;伯克利分割数据集;

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