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Candid Portrait Selection From Video

机译:视频中的坦率肖像选择

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摘要

In this paper, we train a computer to select still frames from video that work well as candid portraits. Because of the subjective nature of this task, we conduct a human subjects study to collect ratings of video frames across multiple videos. Then, we compute a number of features and train a model to predict the average rating of a video frame. We evaluate our model with cross-validation, and show that it is better able to select quality still frames than previous techniques, such as simply omitting frames that contain blinking or motion blur, or selecting only smiles. We also evaluate our technique qualitatively on videos that were not part of our validation set, and were taken outdoors and under different lighting conditions.
机译:在本文中,我们训练一台计算机从视频中选择适合作为坦率肖像的静态帧。由于此任务的主观性质,我们进行了人类主题研究,以收集多个视频中视频帧的等级。然后,我们计算许多功能并训练模型以预测视频帧的平均评分。我们通过交叉验证评估了模型,并表明与以前的技术相比,它能够更好地选择高质量的静止帧,例如简单地删除包含眨眼或运动模糊的帧,或仅选择微笑。我们还对不在验证集中的视频进行了定性评估,这些视频是在室外和不同光照条件下拍摄的。

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