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Surface Somatosensory Evoked Potential detection By FPGA based Multi-adaptive Filter

机译:基于FPGA的多自适应滤波器表面躯体感觉诱发电位检测

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Surface somatosensory evoked potentials (SSEP) collected from conscious subjects usually presents poor signal-to-noise ratio (SNR), requiring several hundreds ensembles averaging to provide a meaningful waveform. A FPGA based adaptive filtering is proposed to perform fast and accurate SSEP extraction by fixed-point adaptive noise canceller (ANC). In 6 normal subjects and 1 neurological abnormal patient, the latency and the peak-to-peak amplitude in SSEP by FPGA based ANC technique were compared with that measured by ensemble averaging. Using 100 trials ANC processed SSEP was sufficient to extract a waveform in equivalent to that extracted by 1000 trials ensemble averaging. The use of fixed-point ANC based on FPGA proved to shorten SSEP measurement time and provide varying information underlying SSEP.
机译:从有意识的受试者收集的表面躯体感觉诱发的电位(SSEP)通常会呈现出差的信噪比(SNR),需要几百个节奏平均以提供有意义的波形。提出了一种基于FPGA的自适应滤波,通过定点自适应噪声消除器(ANC)进行快速准确的SSEP提取。在6个正常受试者和1个神经系统异常患者中,通过基于FPGA的ACC技术进行了SSEP中的潜伏期和峰 - 峰值振幅与通过集合平均测量的SSEP。使用100个试验ACC处理的SSEP足以提取相同的波形,而相当于1000试验集合平均提取的波形。基于FPGA的固定点ANC的使用证明是缩短SSEP测量时间并提供SSEP底层的不同信息。

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