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Published:2025/8/22 23:02:21

暗闇でも最強画質!低照度RAW動画のノイズ除去技術って?✨

超要約:暗いトコでもスマホ動画が超キレイになる技術だよ!

🌟 ギャル的キラキラポイント✨ ● スマホ動画が夜景みたいに明るくなる!🌃 ● AIがノイズを消して、めっちゃクリアになる!✨ ● 写真編集アプリとかにも使えるかも!🤳

詳細解説いくよー!

背景 スマホカメラ📱って、暗いと画質落ちるじゃん?暗い場所で動画撮ると、ザラザラしたり、色が変になったりするよね😭 これは、センサーのノイズとかが原因なんだって!

続きは「らくらく論文」アプリで

AIM 2025 Low-light RAW Video Denoising Challenge: Dataset, Methods and Results

Alexander Yakovenko / George Chakvetadze / Ilya Khrapov / Maksim Zhelezov / Dmitry Vatolin / Radu Timofte / Youngjin Oh / Junhyeong Kwon / Junyoung Park / Nam Ik Cho / Senyan Xu / Ruixuan Jiang / Long Peng / Xueyang Fu / Zheng-Jun Zha / Xiaoping Peng / Hansen Feng / Zhanyi Tie / Ziming Xia / Lizhi Wang

This paper reviews the AIM 2025 (Advances in Image Manipulation) Low-Light RAW Video Denoising Challenge. The task is to develop methods that denoise low-light RAW video by exploiting temporal redundancy while operating under exposure-time limits imposed by frame rate and adapting to sensor-specific, signal-dependent noise. We introduce a new benchmark of 756 ten-frame sequences captured with 14 smartphone camera sensors across nine conditions (illumination: 1/5/10 lx; exposure: 1/24, 1/60, 1/120 s), with high-SNR references obtained via burst averaging. Participants process linear RAW sequences and output the denoised 10th frame while preserving the Bayer pattern. Submissions are evaluated on a private test set using full-reference PSNR and SSIM, with final ranking given by the mean of per-metric ranks. This report describes the dataset, challenge protocol, and submitted approaches.

cs / cs.CV / eess.IV