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基于Hopfield神经网络的遥感图像超分辨率识别算法 被引量:5

Remote Sensing Image Super Resolution Recognition Algorithm Based on Hopfield Neural Networks
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摘要 提出基于Hop fie ld神经网络的遥感图像超分辨率目标识别算法,它是利用模糊分类技术进行模糊分类,然后用分类结果约束Hop fie ld神经网络的方法.通过实验,可知Hop fie ld神经网络在学习样本少时,也能够输出分辨率相对较高的地物目标信息.因此,基于Hop fie ld神经网络的遥感图像处理方法,能够提高遥感图像的目标分辨率,使其目标特征信息更清晰. A remote sensing image super resolution object recognition algorithm based on Hopfield Neural Networks is proposed. Fuzzy classification technology is used for classification. Then the result is used to restrict Hopfield Neural Networks. When there are only few learning samples, Hopfield Nerve Net can also output object information with higher resolution. Therefore, this remote sensing image processing approach can enhance the object resolution of remote sensing image and make the object character characteristic more in focus.
作者 刘传文
出处 《武汉理工大学学报(交通科学与工程版)》 2005年第6期970-973,共4页 Journal of Wuhan University of Technology(Transportation Science & Engineering)
基金 湖北省自然科学基金项目资助(批准号:2003AB042)
关键词 HOPFIELD神经网络 遥感图像 超分辨率 目标识别 hopfield neural networks remote sensing image super resolution object recognition
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参考文献5

  • 1Zhou Y T.Image restoration using a neural network.IEEE trans on ASSP,1988,36:47.
  • 2Hopfield J,Tank D W.Neural computation of decisions in optimization problems.Biol.Cybern,1985,52:141~152.
  • 3Cte S,Tatnall A R L.The hopfield neural network as a tool for feature tracking and recognition from satellite sensor images.Int.J.Remote Sensing,1997,18:871~885.
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  • 5陶洪久,饶俊飞,周祖德.单幅图像的超分辨率重建方法[J].武汉理工大学学报(交通科学与工程版),2004,28(6):943-946. 被引量:9

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