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Digital Stochastic Measurement of a Nonstationary Signal With an Example of EEG Signal Measurement

机译:非平稳信号的数字随机测量,以脑电信号测量为例

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This paper presents a method of digital stochastic measurement (DSM) of nonstationary signals. The method is based on stochastic analog-to-digital (A/D) conversion and accumulation, with a hardware structure based on a field-programmable gate array and a low-resolution A/D converter. The characteristic of previous implementations of DSM was the measurement of stationary signal harmonics. This paper shows how DSM can be extended and also used when it is necessary to measure the time series of nonstationary signals. An electroencephalography signal is selected as an example of a real nonstationary signal, and its DSM is tested by simulations and experiments. Tests are done without adding noise and with adding a noise-varying signal-to-noise ratio (SNR) from 10 to $-$10 dB. The results of simulations and experiments are compared versus theory calculations, and the comparison confirms the theory. The presented method provides control of the measurement uncertainty even at low SNR values, by controlling the sample rate of the used A/D converter. This enables designers of measurement systems to choose fast A/D converters with low resolution to achieve higher measurement accuracy.
机译:本文提出了一种非平稳信号的数字随机测量(DSM)方法。该方法基于随机模数(A / D)转换和累加,并具有基于现场可编程门阵列和低分辨率A / D转换器的硬件结构。 DSM先前实施的特征是测量固定信号谐波。本文展示了如何扩展DSM,以及在必须测量非平稳信号的时间序列时如何使用DSM。选择脑电信号作为真实的非平稳信号的示例,并通过模拟和实验测试其DSM。在不增加噪声的情况下进行测试,并且将噪声变化的信噪比(SNR)从10增加到 $-$ 10 dB。将模拟和实验的结果与理论计算进行比较,该比较证实了理论。通过控制所使用的A / D转换器的采样率,即使在低SNR值时,所提出的方法也可以控制测量不确定度。这使测量系统的设计人员可以选择低分辨率的快速A / D转换器,以实现更高的测量精度。

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