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Alignment-free HDR Deghosting with Semantics Consistent Transformer

About

High dynamic range (HDR) imaging aims to retrieve information from multiple low-dynamic range inputs to generate realistic output. The essence is to leverage the contextual information, including both dynamic and static semantics, for better image generation. Existing methods often focus on the spatial misalignment across input frames caused by the foreground and/or camera motion. However, there is no research on jointly leveraging the dynamic and static context in a simultaneous manner. To delve into this problem, we propose a novel alignment-free network with a Semantics Consistent Transformer (SCTNet) with both spatial and channel attention modules in the network. The spatial attention aims to deal with the intra-image correlation to model the dynamic motion, while the channel attention enables the inter-image intertwining to enhance the semantic consistency across frames. Aside from this, we introduce a novel realistic HDR dataset with more variations in foreground objects, environmental factors, and larger motions. Extensive comparisons on both conventional datasets and ours validate the effectiveness of our method, achieving the best trade-off on the performance and the computational cost.

Steven Tel, Zongwei Wu, Yulun Zhang, Barth\'el\'emy Heyrman, C\'edric Demonceaux, Radu Timofte, Dominique Ginhac• 2023

Related benchmarks

TaskDatasetResultRank
HDR ImagingChallenge123 (test)
PSNR-µ41.49
17
Multi-exposure FusionMEFB static 69
MUSIQ63.13
11
Multi-exposure HDR image reconstructionChallenge123 (test)
PSNR (PU21)40.83
10
High Dynamic Range ImagingSCT 1.0 (test)
PSNR (µ)42.55
9
HDR ImagingSCT (test)
PSNR (µ)34.83
8
Multi-exposure FusionRealHDRV dynamic v1
TMQI0.8715
7
Multi-exposure FusionUltraFusion Benchmark v1 (test)
MUSIQ61.84
7
HDR ReconstructionHDR reconstruction dataset 1080 x 1920 (test)
Inference Time (s)5.66
6
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