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Biomimetic and flexible piezoelectric mobile acoustic sensors with multiresonant ultrathin structures for machine learning biometrics

机译:用于机器学习生物识别性的多阵容超薄结构的仿生和柔性压电移动声学传感器

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Flexible resonant acoustic sensors have attracted substantial attention as an essential component for intuitive human-machine interaction (HMI) in the future voice user interface (VUI). Several researches have been reported by mimicking the basilar membrane but still have dimensional drawback due to limitation of controlling a multifrequency band and broadening resonant spectrum for full-cover phonetic frequencies. Here, highly sensitive piezoelectric mobile acoustic sensor (PMAS) is demonstrated by exploiting an ultrathin membrane for biomimetic frequency band control. Simulation results prove that resonant bandwidth of a piezoelectric film can be broadened by adopting a lead-zirconate-titanate (PZT) membrane on the ultrathin polymer to cover the entire voice spectrum. Machine learning–based biometric authentication is demonstrated by the integrated acoustic sensor module with an algorithm processor and customized Android app. Last, exceptional error rate reduction in speaker identification is achieved by a PMAS module with a small amount of training data, compared to a conventional microelectromechanical system microphone.
机译:柔性谐振声学传感器吸引了未来语音用户界面(VUI)中直观的人机交互(HMI)的重要组成部分。通过模仿基底膜来报告几种研究,但由于控制多频带和展大用于全覆盖语音频率的宽度谐振谱而仍然具有尺寸缺点。这里,通过利用用于仿生频带控制的超薄膜来证明高敏感的压电移动声学传感器(PMA)。仿真结果证明,通过在超薄聚合物上采用铅锆酸钛(PZT)膜来覆盖整个语音光谱,可以扩大压电膜的共振带宽。基于机器学习的生物识别认证由集成的声学传感器模块和算法处理器和自定义Android应用程序演示。最后,与传统的微机电系统麦克风相比,通过具有少量训练数据的PMA模块实现了扬声器识别的特殊错误率降低。

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