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Papers/Learning Continuous Exposure Value Representations for Sin...

Learning Continuous Exposure Value Representations for Single-Image HDR Reconstruction

Su-Kai Chen, Hung-Lin Yen, Yu-Lun Liu, Min-Hung Chen, Hou-Ning Hu, Wen-Hsiao Peng, Yen-Yu Lin

2023-09-07ICCV 2023 1inverse tone mappingDeep LearningHDR Reconstruction
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Abstract

Deep learning is commonly used to reconstruct HDR images from LDR images. LDR stack-based methods are used for single-image HDR reconstruction, generating an HDR image from a deep learning-generated LDR stack. However, current methods generate the stack with predetermined exposure values (EVs), which may limit the quality of HDR reconstruction. To address this, we propose the continuous exposure value representation (CEVR), which uses an implicit function to generate LDR images with arbitrary EVs, including those unseen during training. Our approach generates a continuous stack with more images containing diverse EVs, significantly improving HDR reconstruction. We use a cycle training strategy to supervise the model in generating continuous EV LDR images without corresponding ground truths. Our CEVR model outperforms existing methods, as demonstrated by experimental results.

Results

TaskDatasetMetricValueModel
inverse tone mappingVDS dataset: Multi exposure stack-based inverse tone mappingHDR-VDP-259CEVR
inverse tone mappingVDS dataset: Multi exposure stack-based inverse tone mappingKim and Kautz TMO-PSNR30.04CEVR
inverse tone mappingVDS dataset: Multi exposure stack-based inverse tone mappingReinhard'TMO-PSNR34.67CEVR
Inverse-Tone-MappingVDS dataset: Multi exposure stack-based inverse tone mappingHDR-VDP-259CEVR
Inverse-Tone-MappingVDS dataset: Multi exposure stack-based inverse tone mappingKim and Kautz TMO-PSNR30.04CEVR
Inverse-Tone-MappingVDS dataset: Multi exposure stack-based inverse tone mappingReinhard'TMO-PSNR34.67CEVR

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