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Semi-supervised Learning with Multilayer Perceptron for Detecting Changes of Remote Sensing Images

机译:多层感知器的半监督学习用于遥感图像变化的检测

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摘要

A context-sensitive change-detection technique based on semi-superv-ised learning with multilayer perceptron is proposed. In order to take contextual information into account, input patterns are generated considering each pixel of the difference image along with its neighbors. A heuristic technique is suggested to identify a few initial labeled patterns without using ground truth information. The network is initially trained using these labeled data. The unlabeled patterns are iteratively processed by the already trained perceptron to obtain a soft class label. Experimental results, carried out on two multispectral and multitemporal remote sensing images, confirm the effectiveness of the proposed approach.
机译:提出了一种基于半监督学习与多层感知器的上下文相关变化检测技术。为了考虑上下文信息,考虑差异图像的每个像素及其相邻像素,生成输入模式。建议使用启发式技术来识别一些初始标记的模式,而不使用地面真实信息。最初使用这些标记的数据来训练网络。未标记的图案由已经受过训练的感知器迭代处理以获得软类标记。在两个多光谱和多时间遥感图像上进行的实验结果证实了该方法的有效性。

著录项

  • 来源
  • 会议地点 Kolkata(IN);Kolkata(IN)
  • 作者单位

    Department of Computer Science and Engineering Jadavpur University, Kolkata 700032, India;

    Department of Computer Science and Engineering Jadavpur University, Kolkata 700032, India;

    Machine Intelligence Unit and Center for Soft Computing ResearchIndian Statistical Institute 203 B. T. Road, Kolkata 700108, India;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 计算机网络;
  • 关键词

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