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An effective photoplethysmography signal processing system based on EEMD method

机译:基于EEMD方法的有效光电容积描记信号处理系统。

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This study proposed an effective signal processing system based on Ensemble Empirical Mode Decomposition (EEMD) method for the analysis of Photoplethysmography (PPG). The whole system was implemented on an ARM-based SoC development platform to attain the on-line non-stationary signal processing. A non-invasive near-infrared light sensing device was used to record the continuous PPG as the input signal. According to the non-stationary characteristics of PPG, EEMD is useful to achieve accurate analysis for PPG. The signal was decomposed into several Intrinsic Mode Functions (IMFs) by EEMD. The results showed that the proposed EEMD processor can effectively solve the mode mixing problem of Empirical Mode Decomposition (EMD). This study examined its possibility based on specific architecture with an on-board Xilinx FPGA. It was helpful for non-stationary biomedical signal processing and cardiovascular diseases research.
机译:本研究提出了一种基于整体经验模态分解(EEMD)方法的有效信号处理系统,用于光电容积描记术(PPG)的分析。整个系统在基于ARM的SoC开发平台上实现,以实现在线非平稳信号处理。使用非侵入式近红外光感测设备来记录连续的PPG作为输入信号。根据PPG的非平稳特性,EEMD对于实现PPG的准确分析很有用。 EEMD将信号分解为几个固有模式功能(IMF)。结果表明,所提出的EEMD处理器可以有效解决经验模态分解(EMD)的模态混合问题。这项研究使用板载Xilinx FPGA检验了基于特定体系结构的可能性。它对非平稳生物医学信号处理和心血管疾病的研究很有帮助。

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