"DIMEPlus: Learning Video Exposure Correction Benchmark Dataset"
收藏DataCite Commons2026-01-12 更新2026-05-03 收录
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https://ieee-dataport.org/documents/learning-video-exposure-correction-benchmark-dataset
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资源简介:
"Exposure correction aims to enhance visual data degraded by improper exposures, significantly improving perceptual quality. Although substantial progress has been achieved for single-image exposure correction, its extension to videos remains underexplored. Directly applying single-frame-based methods to videos results in temporal incoherence and compromised visual quality. Through systematic investigation, we identify that the absence of a benchmark dataset has hindered progress in this domain. To address this gap, we introduce a real-world paired video dataset covering both underexposed and overexposed dynamic scenes. The dataset comprises 36K spatially aligned frame pairs, captured using a dual-camera acquisition system with a beam splitter, enabling synchronized recording of improperly exposed and reference videos."
提供机构:
IEEE DataPort
创建时间:
2026-01-12



