Multispectral Image Compression Algorithm Based on Silced Convolutional LSTM

COMMUNICATIONS, SIGNAL PROCESSING, AND SYSTEMS, VOL. 1(2022)

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摘要
The multispectral imaging which are used for remote sensing imaging has a large amount of data, so this paper proposed a deep learningmethod which is based on sliced convolutional LSTM for multispectral image compression. Compared with other algorithms, the proposed algorithm further compresses the multispectral images by considering the similarity between the spectra and removing the inter-spectral redundancy. The proposed algorithm is based on end to end framework which is consist of encoder, decoder, entropy coding and quantizer. In experiments, the PSNR of proposed model is compared with that of JPEG2000 to evaluate the performance of our algorithm at several different bit rates.
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关键词
Sliced convolutional LSTM, Multispectral image, Spectral features
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