Summarization of Wearable Videos Based on User Activity Analysis

R. Katpelly, Tiecheng Liu, Chin-Tser Huang
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Abstract

This paper presents a model for automatic summarization of videos recorded by wearable cameras. The proposed model detects various user activities by computing the transform of matching image features among video frames. Four basic types of user activities are proposed, including "moving closer /farther", "panning", "making a turn", and "rotation". Different summarization techniques are provided for different activity types, and a wearable video sequence can be summarized as a compact set of panoramic images. The user activity analysis is solely based on the analysis of images, without resorting to the information of other sensors. Experimental results on a 19- minute video sequence demonstrate the effectiveness of our proposed model.
基于用户活动分析的可穿戴视频总结
提出了一种可穿戴式摄像机视频自动汇总模型。该模型通过计算视频帧之间匹配图像特征的变换来检测各种用户活动。提出了四种基本类型的用户活动,包括“靠近/更远”、“平移”、“转弯”和“旋转”。针对不同的活动类型提供了不同的汇总技术,可穿戴视频序列可以汇总为一组紧凑的全景图像。用户活动分析完全基于对图像的分析,不需要借助其他传感器的信息。在一个19分钟的视频序列上的实验结果证明了该模型的有效性。
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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