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Fusion of gait and ECG for biometric user authentication

机译:用于生物识别用户身份验证的步态和ECG的融合

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A new multi-modal biometric authentication approach using gait and electrocardiogram (ECG) signals as biometric traits is proposed. The individual comparison scores derived from the gait and ECG are normalized using several methods (min-max, z-score, median absolute deviation, tangent hyperbolic) and then four fusion approaches (simple sum, user-weighting, maximum score and minimum core) are applied. Gait samples are obtained by using a inbuilt accelerometer sensor from a mobile device attached to the hip. ECG signals are collected by a wireless ECG sensor, which is based on a 2 led ECG signals attached on the breast. The fusion results of these two biometrics show an improved performance and a large step closer for user authentication for biometric user authentication.
机译:提出了一种新的使用步态和心电图(ECG)信号作为生物识别性状的新的多模态生物识别方法。 使用几种方法(MIN-MAX,Z评分,中位绝对偏差,切线双曲线)和四个融合方法(简单,用户加权,最大分数和最小核心)标准化,从步态和ECG归一化。 适用。 通过使用附接到臀部的移动设备的内置加速度计传感器来获得步态样本。 通过无线ECG传感器收集ECG信号,该传感器基于连接在乳房上的2个LED ECG信号。 这两个生物识别性的融合结果显示了改进的性能和用于生物识别用户认证的用户认证的大步步。

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