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Rethinking Exposure Correction for Spatially Non-uniform Degradation

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Real-world exposure correction is fundamentally challenged by spatially non-uniform degradations, where diverse exposure errors frequently coexist within a single image. However, existing exposure correction methods are still largely developed under a predominantly uniform assumption. Architecturally, they typically rely on globally aggregated modulation signals that capture only the overall exposure trend. From the optimization perspective, conventional reconstruction losses are usually derived under a shared global scale, thus overlooking the spatially varying correction demands across regions. To address these limitations, we propose a new exposure correction paradigm explicitly designed for spatial non-uniformity. Specifically, we introduce a Spatial Signal Encoder to predict spatially adaptive modulation weights, which are used to guide multiple look-up tables for image transformation, together with an HSL-based compensation module for improved color fidelity. Beyond the architectural design, we propose an uncertainty-inspired non-uniform loss that dynamically allocates the optimization focus based on local restoration uncertainties, better matching the heterogeneous nature of real-world exposure errors. Extensive experiments demonstrate that our method achieves superior qualitative and quantitative performance compared with state-of-the-art methods. Code is available at https://github.com/FALALAS/rethinkingEC.

Ao Li, Jiawei Sun, Le Dong, Zhenyu Wang, Weisheng Dong• 2026

Related benchmarks

TaskDatasetResultRank
Exposure CorrectionMSEC Average
PSNR23.72
15
Exposure CorrectionSICE (Average)
PSNR22.67
15
Exposure CorrectionMSEC (Under)
PSNR23.64
14
Exposure CorrectionMSEC (Over)
PSNR23.83
14
Exposure CorrectionSICE Under
PSNR23.49
14
Exposure CorrectionSICE (Over)
PSNR21.85
14
Exposure CorrectionREED Under
PSNR26.91
9
Exposure CorrectionREED Over
PSNR24.53
9
Exposure CorrectionREED Average
PSNR25.68
9
Exposure CorrectionLCDP
PSNR24.41
8
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