Video quality classification based home video segmentation

Si Wu, Yu-Fei Ma, HongJiang Zhang
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引用次数: 21

Abstract

Home videos often have some abnormal camera motions, such as camera shaking and irregular camera motions, which cause the degradation of visual quality. To remove bad quality segments and automatic stabilize shaky ones are necessary steps for home video archiving. In this paper, we proposed a novel segmentation algorithm for home video based on video quality classification. According to three important properties of motion, speed, direction, and acceleration, the effects caused by camera motion are classified into four categories: blurred, shaky, inconsistent and stable using support vector machines (SVMs). Based on the classification, a multi-scale sliding window is employed to parse video sequence into different segments along time axis, and each of these segments is labeled as one of camera motion effects. The effectiveness of the proposed approach has been validated by extensive experiments.
基于视频质量分类的家庭视频分割
家庭视频经常会出现一些不正常的摄像机运动,如摄像机晃动、摄像机运动不规则等,导致视觉质量下降。去除质量差的片段和自动稳定不稳定的片段是家庭视频存档的必要步骤。本文提出了一种基于视频质量分类的家庭视频分割算法。根据运动的速度、方向和加速度三个重要属性,利用支持向量机(svm)将摄像机运动产生的影响分为模糊、抖动、不一致和稳定四类。在此基础上,采用多尺度滑动窗口将视频序列沿时间轴分解为不同的片段,并将每个片段标记为一个摄像机运动效果。大量的实验验证了该方法的有效性。
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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