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author:

谢海闻 (谢海闻.) [1] | 叶东毅 (叶东毅.) [2] (Scholars:叶东毅) | 陈昭炯 (陈昭炯.) [3] (Scholars:陈昭炯)

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CQVIP

Abstract:

CapsNet是一种新的目标识别模型,通过动态路由和capsule识别已知目标的新形态.针对CapsNet的解码器输入层规模随类别数增加而增加,可延展性较弱的问题,本文提出多分支自编码器模型.该模型将各个类别的编码分别传递给解码器,使解码器规模独立于类别数,增强了模型的可延展性.针对单类别图像训练多类别图像识别任务,本文增加新的优化目标降低非标签类别的编码向量对解码器的激励,强化了模型的表征能力.MNIST数据集的实验结果表明,多分支自编码器具有良好的识别能力且重构能力明显优于CapsNet,因而具有更全面的表征能力.

Keyword:

CapsNet MNIST 目标识别 目标重构 表征提取

Community:

  • [ 1 ] [谢海闻]福州大学
  • [ 2 ] [叶东毅]福州大学
  • [ 3 ] [陈昭炯]福州大学

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Source :

计算机系统应用

ISSN: 1003-3254

CN: 11-2854/TP

Year: 2019

Issue: 3

Volume: 28

Page: 111-117

Cited Count:

WoS CC Cited Count:

SCOPUS Cited Count:

ESI Highly Cited Papers on the List: 0 Unfold All

WanFang Cited Count: -1

Chinese Cited Count:

30 Days PV: 0

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