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arxiv: 1808.08021 · v3 · pith:ZMLZEQJZnew · submitted 2018-08-24 · 📡 eess.IV

Deep demosaicking for multispectral filter arrays

classification 📡 eess.IV
keywords multispectraldemosaickingmethodnetworkarraysconvolutionaldeepfilter
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We propose a novel demosaicking method for multispectral filter arrays based on a deep convolutional neural network. The proposed method first interpolates mosaicked multispectral images utilizing a bilinear approach, then applies a residual network to initial demosaicked images. The residual network consists of various three-dimensional convolutional layers and a rectified linear unit for describing the features of a multispectral data cube. Experimental results reveal that the proposed method outperforms conventional demosaicking methods.

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