通过分析可穿戴相机收集的图像序列来理解行为

Q4 Computer Science
Estefanía Talavera Martínez
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引用次数: 0

摘要

描述人们的生活方式已经成为人工智能领域的热门话题。生活日志被描述为收集描述一个人日常行为的个人活动数据的过程。如今,新技术的发展和可穿戴传感器的使用越来越多,可以自动记录我们日常生活中的数据。在本文中,我们描述了我们开发的自动工具,用于分析收集的描述人的日常行为的视觉数据。为了进行这种分析,我们依赖于可穿戴相机收集的图像序列,这被称为以自我为中心的照片流。这些图像是关于相机佩戴者行为的丰富信息来源,因为它们展示了他或她的生活方式的客观和第一人称视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Behaviour understanding through the analysis of image sequences collected by wearable cameras
Describing people's lifestyle has become a hot topic in the field of artificial intelligence. Lifelogging is described as the process of collecting personal activity data describing the daily behaviour of a person. Nowadays, the development of new technologies and the increasing use of wearable sensors allow to automatically record data from our daily living. In this paper, we describe our developed automatic tools for the analysis of collected visual data that describes the daily behaviour of a person. For this analysis, we rely on sequences of images collected by wearable cameras, which are called egocentric photo-streams. These images are a rich source of information about the behaviour of the camera wearer since they show an objective and first-person view of his or her lifestyle.
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来源期刊
Electronic Letters on Computer Vision and Image Analysis
Electronic Letters on Computer Vision and Image Analysis Computer Science-Computer Vision and Pattern Recognition
CiteScore
2.50
自引率
0.00%
发文量
19
审稿时长
12 weeks
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