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Advanced Signal Processing for Enabling Next Generation MEMS/NEMS Sensors

机译:用于启用下一代MEMS / NEMS传感器的高级信号处理

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The development of advanced signal processing algorithms specifically for Micro/Nano Electro Mechanical Systems (MEMS/NEMS) based sensors has been largely unexplored and can be regarded as the single most important area for improving the performance of these devices. In this paper we present three classes of algorithms that were created to extract weak signals from devices operating in different sensing modalities. The first, stochastic resonance approach, named Active Signal Processing, depends on improving signal-to-noise ratio (SNR) by injecting noise into the measurement. ViaLogy invented and successfully demonstrated the Quantum Resonance Interferometry (QRI) algorithm, a quantum stochastic resonance (QSR)-based technique for improving SNR. QRI processing involves the QSR-based generation of a Quantum Expressor Function (QEF) for the sensor, encoding within it the noise environment, minimum level of detection, and the precision of measurement. Signal detection is achieved by the destruction of the resonance condition responsible for generating the system QEF. The next algorithm, also known as the "swept window" Maximum Aposteriori Probability algorithm, was developed for the case of signals with discrete statistics such as low analyte ion fluxes in mass spectrometers. Finally, a novel, ViaLogy-developed "Multi Scale Estimator" algorithm showed significant improvement over the Allan Deviation behavior of a state-of-the-art MEMS microgyroscope.
机译:专门用于微/纳米电力机械系统(MEMS / NEMS)的传感器的高级信号处理算法的开发已经大大未探索,并且可以被视为用于提高这些设备性能的单一重要领域。在本文中,我们介绍了三类算法,该算法创建以从不同传感方式运行的设备中提取弱信号。第一,随机共振方法命名为有源信号处理,取决于通过将噪声注入测量来改善信噪比(SNR)。 Vialogy发明并成功地证明了量子共振干涉测量(QRI)算法,用于改进SNR的量子随机谐振(QSR)技术。 QRI处理涉及基于QSR的生成传感器的Quantum Express函数(QEF),在其内编码噪声环境,最小检测水平和测量精度。通过破坏负责产生系统QEF的谐振条件来实现信号检测。下一个算法,也称为“扫描窗”最大升值概率算法,用于具有离散统计的信号的情况,例如质量光谱仪中的低分析物离子通量。最后,新颖的vialogy开发的“多尺度估计器”算法显示出对最先进的MEMS微仪器的艾伦偏差行为的显着改善。

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