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F2HDR: Two-Stage HDR Video Reconstruction via Flow Adapter and Physical Motion Modeling

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Reconstructing High Dynamic Range (HDR) videos from sequences of alternating-exposure Low Dynamic Range (LDR) frames remains highly challenging, especially under dynamic scenes where cross-exposure inconsistencies and complex motion make inter-frame alignment difficult, leading to ghosting and detail loss. Existing methods often suffer from inaccurate alignment, suboptimal feature aggregation, and degraded reconstruction quality in motion-dominated regions. To address these challenges, we propose F2HDR, a two-stage HDR video reconstruction framework that robustly perceives inter-frame motion and restores fine details in complex dynamic scenarios. The proposed framework integrates a flow adapter that adapts generic optical flow for robust cross-exposure alignment, a physical motion modeling to identify salient motion regions, and a motion-aware refinement network that aggregates complementary information while removing ghosting and noise. Extensive experiments demonstrate that F2HDR achieves state-of-the-art performance on real-world HDR video benchmarks, producing ghost-free and high-fidelity results under large motion and exposure variations.

Huanjing Yue, Dawei Li, Shaoxiong Tu, Jingyu Yang• 2026

Related benchmarks

TaskDatasetResultRank
HDR Video ReconstructionDeepHDRVideo
Temporal PSNR43.87
12
HDR ReconstructionReal-HDRV (test)
PSNR_T41.01
6
HDR Video ReconstructionDeepHDRVideo
Inference Time (s) at 1920x10800.29
6
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