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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Topic modelling for routine discovery from egocentric photo-streams
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Topic modelling for routine discovery from egocentric photo-streams

机译:从Egentric照片流中常规发现的主题建模

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摘要

Developing tools to understand and visualize lifestyle is of high interest when addressing the improvement of habits and well-being of people. Routine, defined as the usual things that a person does daily, helps describe the individuals' lifestyle. With this paper, we are the first ones to address the development of novel tools for automatic discovery of routine days of an individual from his/her egocentric images. In the proposed model, sequences of images are firstly characterized by semantic labels detected by pre-trained CNNs. Then, these features are organized in temporal-semantic documents to later be embedded into a topic models space. Finally, Dynamic-Time-Warping and Spectral-Clustering methods are used for final day routine/non-routine discrimination. Moreover, we introduce a new EgoRoutine-dataset, a collection of 104 egocentric days with more than 100.000 images recorded by 7 users. Results show that routine can be discovered and behavioural patterns can be observed. (C) 2020 The Author(s). Published by Elsevier Ltd.
机译:在解决改善人们的习惯和福祉时,开发理解和可视化生活方式的工具很高。例程,定义为一个人每天做的通常的东西,有助于描述个人的生活方式。通过本文,我们是第一个解决从他/她的Egentric图像自动发现个人日常生子的新颖工具的开发。在所提出的模型中,首先是通过预先训练的CNN检测的语义标记来表征图像的序列。然后,这些功能在时间 - 语义文档中组织到以后嵌入到主题模型空间中。最后,动态翘曲和光谱聚类方法用于最终日常例程/非常规辨别。此外,我们介绍了一个新的Egoroutine-DataSet,一个104个Enocentric日期的集合,超过了7个用户录制的100多个图像。结果表明,可以发现常规,并且可以观察到行为模式。 (c)2020提交人。 elsevier有限公司出版

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