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首页> 外文期刊>IEEE transactions on biomedical circuits and systems >Improving Detection Accuracy of Memristor-Based Bio-Signal Sensing Platform
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Improving Detection Accuracy of Memristor-Based Bio-Signal Sensing Platform

机译:基于忆阻器的生物信号传感平台的检测精度的提高

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Recently a novel neuronal activity sensor exploiting the intrinsic thresholded integrator capabilities of memristor devices has been proposed. Extracellular potentials captured by a standard bio-signal acquisition platform are fed into a memristive device which reacts to the input by changing its resistive state (RS) only when the signal ampitude exceeds a threshold. Thus, significant peaks in the neural signal can be stored as non-volatile changes in memristor resistive state whilst noise is effectively suppressed. However, as a memristor is subjected to increasing numbers of supra-threshold stimuli during practical operation, it accumulates (RS) changes and eventually saturates. This leads to severely reduced neural activity detection capabilities. In this work we explore different signal processing and memristor operating procedure strategies in order to improve the detection rate of significant neuronal activity events. We analyse the data obtained from a single-memristive device biased with a reference neural recording and observe that performance can be improved markedly by a) increasing the frequency at which the memristor is reset to an initial resistive state where it is known to be highly responsive, b) appropriately preconditioning the input waveform through application of gain and offset in order to optimally exploit the intrinsic device behaviour. All results are validated by benchmarking obtained spike detection performance against a state-of-the-art template matching system utilising computationally-heavy, multi-dimensional, principal component analysis.
机译:最近,已经提出了利用忆阻器装置的固有阈值积分器能力的新型神经元活动传感器。由标准生物信号采集平台捕获的细胞外电位被馈入忆阻设备,该忆阻设备仅在信号振幅超过阈值时才通过更改其电阻状态(RS)对输入做出反应。因此,神经信号中的显着峰值可以存储为忆阻器电阻状态的非易失性变化,同时可以有效地抑制噪声。但是,由于忆阻器在实际操作中受到越来越多的超阈值刺激,它会累积(RS)变化并最终饱和。这导致神经活动检测能力大大降低。在这项工作中,我们探索了不同的信号处理和忆阻器操作程序策略,以提高重要神经元活动事件的检测率。我们分析了从带有参考神经记录的单忆阻器获得的数据,并观察到性能可以通过以下方式显着提高:a)增加忆阻器复位到初始电阻状态的频率,该频率已知是高响应性的,b)通过应用增益和偏移量适当地预处理输入波形,以最佳地利用固有的器件性能。通过使用大量计算,多维,主成分分析的最新模板匹配系统对获得的尖峰检测性能进行基准测试,可以验证所有结果。

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