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首页> 外文期刊>IEEE Transactions on Biometrics, Behavior, and Identity Science >You Are Not Acting Like Yourself: A Study on Soft Biometric Classification, Person Identification, and Mobile Device Use
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You Are Not Acting Like Yourself: A Study on Soft Biometric Classification, Person Identification, and Mobile Device Use

机译:您的行为不像您自己:关于软生物特征识别,人员识别和移动设备使用的研究

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摘要

In this paper, we explore the soft biometric classification of 13 demographic and behavioral attributes using phone data collected from 46 subjects. We utilize the results of this analysis to further evaluate reduced search spaces for the primary identification task by implementing a ranking formula which quantifies the performance of each attribute considering the predictability of some attributes compared to others. Results show that soft biometric classification is feasible with up to 90% accuracy; however, because people exhibit high intra-class variance, templates and queries are significantly affected in terms of how well they match, even with reduced search spaces. We analyze these findings using a combination of approaches, including an evaluation of the biometric menagerie, visualizing the distribution of the data, and observing how subjects vary in their soft biometric class across different times of the day.
机译:在本文中,我们使用从46个受试者中收集的电话数据探索了13种人口和行为属性的软生物识别分类。我们利用这种分析的结果,通过实施一个排名公式,考虑到某些属性相对于其他属性的可预测性,对每个属性的性能进行量化,从而进一步评估减少的搜索空间以用于主要识别任务。结果表明,软生物识别分类是可行的,准确度高达90%;但是,由于人们展示出较高的类内差异,因此即使减少了搜索空间,模板和查询的匹配程度也会受到很大影响。我们使用多种方法对这些发现进行分析,包括评估生物特征识别,可视化数据分布以及观察对象在一天中不同时间的软生物特征分类中如何变化。

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