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A Large Scale Footstep Database for Biometric Studies Created using Cross-Biometrics for Labelling

机译:用于使用交叉生物识别性的生物识别研究的大规模脚步数据库,用于标记

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This paper describes a semi-automatic system to capture and label a reasonable size biometric database. In our case, the biometric to be assessed are footstep signals, but the system could be extendable to other biometrics. Extra biometric data such as the voice and video recordings of the face and the gait are used to assist the database labelling to minimise the error. Thus, audio identifier recordings are used to automatically label the database with a speaker recognition system achieving results of 0.15percent of equal error rate (EER) of person verification using Gaussian mixture models (GMM). Also, a footstep detector system has been developed to reduce the presence of invalid signals from the database having a percentage of less than 1percent of correct footsteps miss-classified using features from the ground reaction force (GRF) and using a support vector machine (SVM) classifier. To date, more than 20,000 footstep signals have been collected from more than 100 people, which is well beyond previously reported databases. The database is collected in different sessions which will allow us to study how different factors such as footwear, the person carrying a load or different walking speeds affect the recognition of persons using their footsteps.
机译:本文介绍了一个半自动系统,用于捕获和标记合理的尺寸生物识别数据库。在我们的情况下,要评估的生物识别是脚步信号,但系统可以扩展到其他生物识别性。额外的生物识别数据,如面部的语音和视频录制和步态,用于帮助数据库标记以最小化错误。因此,音频标识符记录用于自动使用高斯混合模型(GMM)实现人员验证的0.155515555555555555555555555555555555。此外,已经开发了一种脚步检测器系统,以减少来自百分比的数据库的无效信号的存在,百分比的正确脚步声或使用来自地面反作用力(GRF)的特征并使用支持向量机(SVM )分类器。迄今为止,从100多人收集了超过20,000个脚步信号,这远远超出了先前报告的数据库。数据库被收集在不同的会话中,这些会议将允许我们研究鞋类等不同因素,携带负载或不同的步行速度的人影响了使用他们的脚步的人的识别。

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