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Comparative Analysis and Fusion of Spatiotemporal Information for Footstep Recognition

机译:时空信息的脚步识别比较分析与融合

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Footstep recognition is a relatively new biometric which aims to discriminate people using walking characteristics extracted from floor-based sensors. This paper reports for the first time a comparative assessment of the spatiotemporal information contained in the footstep signals for person recognition. Experiments are carried out on the largest footstep database collected to date, with almost 20,000 valid footstep signals and more than 120 people. Results show very similar performance for both spatial and temporal approaches (5 to 15 percent EER depending on the experimental setup), and a significant improvement is achieved for their fusion (2.5 to 10 percent EER). The assessment protocol is focused on the influence of the quantity of data used in the reference models, which serves to simulate conditions of different potential applications such as smart homes or security access scenarios.
机译:足迹识别是一种相对较新的生物识别技术,旨在利用从基于地面的传感器提取的步行特征来区分人。本文首次报告了对脚步信号中包含的时空信息进行人性识别的比较评估。实验是在迄今收集的最大足迹数据库上进行的,有近20,000个有效足迹信号和120多人。结果显示,对于空间和时间方法,其性能非常相似(取决于实验设置,EER为5%到15%),并且融合效果显着提高(EER为2.5%到10%)。评估协议的重点是参考模型中使用的数据量的影响,该模型可用于模拟不同潜在应用(例如智能家居或安全访问场景)的条件。

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