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公开(公告)号:US20230325974A1
公开(公告)日:2023-10-12
申请号:US18069089
申请日:2022-12-20
Applicant: MILESTONE SYSTEMS A/S
Inventor: Kamal NASROLLAHI , Thomas B MOESLUND , Andreas AAKERBERG
IPC: G06T3/40
CPC classification number: G06T3/4046 , G06T3/4053
Abstract: An image processing method including acquiring a first image whose spatial resolution and lightness are to be enhanced; generating a residual image from the first image using a multi-scale hierarchical neural network for joint learning of low-light enhancement and super-resolution, the network comprising an encoder stage and a decoder stage forming a plurality of symmetrical encoder-decoder levels, each encoder and decoder in each level comprising a vision transformer block; generating a reconstructed image based on the first and residual images.
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2.
公开(公告)号:US20240303783A1
公开(公告)日:2024-09-12
申请号:US18595002
申请日:2024-03-04
Applicant: MILESTONE SYSTEMS A/S
Inventor: Andreas AAKERBERG , Kamal NASROLLAHI , Thomas B. MOESLUND
IPC: G06T5/70 , G06N3/0464
CPC classification number: G06T5/70 , G06N3/0464 , G06T2207/20081
Abstract: Training a neural network to extract a degradation map from a degraded image comprises generating training data comprising pairs of images, each pair of images comprising a clean source image and a degraded source image by, for each clean source image, generating a corresponding noisy image by adding spatially invariant noise to the clean source image, and blending the noisy image with the clean source image according to varying intensity levels defined by a spatially variant mask to obtain the degraded image. The training data is used to train the neural network by inputting each degraded source image to the neural network and extracting a degradation map from the degraded source image such that when the degradation map is applied to its corresponding clean source image the loss between the degraded source image and its corresponding clean source image after the degradation map is applied is minimised.
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