Discriminant deep belief network for high-resolution SAR image classification
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文摘
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A DisDBN is proposed to characterize SAR image patches in an unsupervised manner.

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Both the CPL and IPL are investigated to produce prototypes of SAR image patches.

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Some weak decision spaces are constructed based on the learned prototypes.

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A high-level feature is learned for the SAR image patch in a hierarchy manner.

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We show that our method can achieve a better classification performance.

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