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Faster Multiscale Capsule Network With Octave Convolution for Hyperspectral Image Classification

机译:具有八度音谱图像分类的倍频卷尺的多尺度胶囊网络

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摘要

Recently proposed capsule networks have revealed powerfulness in various visual tasks. However, the traditional CNNs adopted in the capsule layer of the capsule network have the problem of high parameter redundancy. In this letter, we propose a faster multiscale capsule network with octave convolution (MSOctCaps) for hyperspectral image classification. In the proposed MSOctCaps, we design multiple kernels of different sizes with parallel convolution to extract deep multiscale features. To feasibly reduce the redundancy of parameters and achieve high accuracy, the octave convolution is explored in the capsule layer, instead of the traditional convolution, which improves the accuracy of the capsule layer above predicted by the capsule layer below. The comparison experiments with six state-of-the-arts on two challenging contest data sets demonstrate the proposed MSOctCaps is able to produce competitive advantages in terms of both classification accuracy and computational time.
机译:最近提出的胶囊网络在各种视觉任务中揭示了强大的功能。然而,在胶囊网络的胶囊层采用的传统CNN具有高参数冗余的问题。在这封信中,我们提出了一种更快的多尺度胶囊网络,具有八度音乐卷积(MSOCTCAPS)进行高光谱图像分类。在提议的MSOCTCAPS中,我们设计了具有并行卷积的不同大小的多个内核,以提取深度多尺度特征。为了可行地减少参数的冗余并实现高精度,延长卷积卷积在胶囊层中,而不是传统的卷积,这提高了上方胶囊层预测的胶囊层的准确性。在两个具有挑战性的竞赛数据集上具有六种最先进的比较实验证明了所提出的MSOCTCAPS能够在分类准确性和计算时间方面产生竞争优势。

著录项

  • 来源
    《IEEE Geoscience and Remote Sensing Letters》 |2021年第2期|361-365|共5页
  • 作者

    Qin Xu; Dongyue Wang; Bin Luo;

  • 作者单位

    Key Laboratory of Intelligent Computing and Signal Processing of Ministry of Education School of Computer Science and Technology Anhui University Hefei China;

    Key Laboratory of Intelligent Computing and Signal Processing of Ministry of Education School of Computer Science and Technology Anhui University Hefei China;

    Key Laboratory of Intelligent Computing and Signal Processing of Ministry of Education School of Computer Science and Technology Anhui University Hefei China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Convolution; Redundancy; Feature extraction; Hyperspectral imaging; Kernel; Encoding;

    机译:卷积;冗余;特征提取;高光谱成像;内核;编码;

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