Laser & Optoelectronics Progress, Volume. 56, Issue 6, 061101(2019)

Quality Assessment of Remote Sensing Images Based on Deep Learning and Human Visual System

Di Liu and Yingchun Li*
Author Affiliations
  • Department of Electronic and Optical Engineering, Space Engineering University, Beijing 101416, China
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    References(17)

    [2] Xia Y T, Chen Z Z. Quality assessment for remote sensing images: Approaches and applications. [C]∥IEEE International Conference on Systems, Man, and Cybernetics, October, 9-12, 2015, Kowloon, China. New York: IEEE, 1029-1034(2015).

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    [7] Shao Y, Sun F C, Li H B. No-reference remote sensing image quality assessment method using visual properties[J]. Journal of Tsinghua University (Science and Technology), 53, 550-555(2013).

    [9] Bare B, Li K, Yan B et al. An accurate deep convolutional neural networks model for no-reference image quality assessment. [C]∥IEEE International Conference on Multimedia and Expo, July 10-14, 2017, Hong Kong, China. New York: IEEE, 1356-1361(2017).

    [11] Deng J, Dong W, Socher R et al. ImageNet: A large-scale hierarchical image database. [C]∥ IEEE Conference on Computer Vision and Pattern Recognition, June 20-25, 2009, Miami, FL, USA. New York: IEEE, 248-255(2009).

    [13] Simonyan K. -04-13)[2018-08-06]. https:∥arxiv., org/abs/1409, 1556(2015).

    [14] Yosinski J, Clune J, Bengio Y et al. Montreal, Canada,[2018-08-06]. 2014: 3320-3328. https:∥arxiv., org/abs/1411, 1792(2014).

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    Di Liu, Yingchun Li. Quality Assessment of Remote Sensing Images Based on Deep Learning and Human Visual System[J]. Laser & Optoelectronics Progress, 2019, 56(6): 061101

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    Paper Information

    Category: Imaging Systems

    Received: Sep. 18, 2018

    Accepted: Sep. 30, 2018

    Published Online: Jul. 30, 2019

    The Author Email: Li Yingchun (13910953181@139.com)

    DOI:10.3788/LOP56.061101

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