Characterizing distortions in first-person videos

Chen Bai, A. Reibman
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引用次数: 5

Abstract

First-person videos (FPVs) captured by wearable cameras often contain heavy distortions, including motion blur, rolling shutter artifacts and rotation. Existing image and video quality estimators are inefficient for this type of video. We develop a method specifically to measure the distortions present in FPVs, without using a high quality reference video. Our local visual information (LVI) algorithm measures motion blur, and we combine homography estimation with line angle histogram to measure rolling shutter artifacts and rotation. Our experiments demonstrate that captured FPVs have dramatically different distortions compared to traditional source videos. We also show that LVI is responsive to motion blur, but insensitive to rotation and shear.
描述第一人称视频中的扭曲
可穿戴相机拍摄的第一人称视频(fps)通常存在严重失真,包括运动模糊、滚动快门伪影和旋转。现有的图像和视频质量估计器对于这种类型的视频是低效的。我们开发了一种专门测量fpv中存在的失真的方法,而不使用高质量的参考视频。我们的局部视觉信息(LVI)算法测量运动模糊,并将单应性估计与线角直方图相结合来测量滚动快门伪影和旋转。我们的实验表明,与传统源视频相比,捕获的fpv具有显着不同的失真。我们还表明LVI对运动模糊有响应,但对旋转和剪切不敏感。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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