普适环境中协作者的灵活双峰识别

Jesus Salvador Martinez-Delgado, S. Mendoza, Kimberly García
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引用次数: 1

摘要

我们提出了一种基于语音和面部两种生物识别相结合的门禁方法。特别是,我们的人脸识别算法旨在确定一个人的身份,当他/她的脸在肩膀到肩膀的轨迹上旋转时,这是一种常见的行为,对于具有隐身或内向态度的人来说。另一种生物识别技术,声音识别器,可以让我们确认人脸识别器的预测。我们的方法可以集成到多个系统中,因为它是作为Web应用程序开发的,不需要任何特殊的硬件,因此具有高度的灵活性和多平台性。实验表明,我们提出的方法表现非常好,准确率达到89%,而传统的人脸识别算法无法识别头部明显倾斜的人。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Flexible Bimodal Recognition of Collaborators in Pervasive Environments
We propose an access control method based on the combination of two biometric recognitions: voice and face. In particular, our face recognition algorithm aims at determining a person's identity when he/she is involved in situations in which his/her face is rotated in a shoulder to shoulder trajectory, which is a common behavior on people with a stealth or intromission attitude. The other biometrics, the voice recognizer, allows us to confirm the prediction made by the face recognizer. Our method can be integrated into several systems, as it has been developed as a Web application and it does not require any special hardware, so it is highly flexible and multi-platform at the same time. Experiments reveal that our proposed method performs really well, as it gives 89% of accuracy, unlike traditional face recognition algorithms, which could not identify anyone, whose head presents a pronounced inclination.
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