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Real-time multi-signal frequency tracking with a bank of notch filters to estimate the respiratory rate from the ECG

机译:利用一组陷波滤波器实时进行多信号频率跟踪,以根据ECG估算呼吸频率

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摘要

Measuring the instantaneous frequency of a signal rapidly and accurately is essential in many applications. However, the instantaneous frequency by definition is a parameter difficult to determine. Fourier-based methods introduce estimation delays as computations are performed in a time-window. Instantaneous methods based on the Hilbert transform lack robustness. State-of-the-art adaptive filters yield accurate estimates, however, with an adaptation delay. In this study we propose an algorithm based on short length-3 FIR notch filters to estimate the instantaneous frequency of a signal at each sample, in a real-time manner and with very low delay. The output powers of a bank of the above-mentioned filters are used in a recursive weighting scheme to estimate the dominant frequency of the input. This scheme has been extended to process multiple inputs containing a common frequency by introducing an additional weighting scheme upon the inputs. The algorithm was tested on synthetic data and then evaluated on real biomedical data, i.e. the estimation of the respiratory rate from the electrocardiogram. It was shown that the proposed method provided more accurate estimates with less delay than those of state-of-the-art methods. By virtue of its simplicity and good performance, the proposed method is a worthy candidate to be used in biomedical applications, for example in health monitoring developments based on portable and automatic devices.
机译:在许多应用中,快速准确地测量信号的瞬时频率至关重要。然而,瞬时频率根据定义是难以确定的参数。基于傅立叶的方法会在时间窗口中执行计算时引入估计延迟。基于希尔伯特变换的瞬时方法缺乏鲁棒性。最先进的自适应滤波器可产生准确的估计值,但是具有自适应延迟。在这项研究中,我们提出了一种基于短长度3 FIR陷波滤波器的算法,以实时方式且延迟非常低地估计每个样本处信号的瞬时频率。一组上述滤波器的输出功率用于递归加权方案中,以估计输入的主导频率。通过在输入上引入其他加权方案,该方案已扩展为处理包含公共频率的多个输入。该算法在合成数据上进行了测试,然后在实际的生物医学数据上进行了评估,即根据心电图估算呼吸频率。结果表明,与最新方法相比,该方法可提供更准确的估计,且延迟更少。由于其简单性和良好的性能,所提出的方法是在生物医学应用中,例如在基于便携式和自动设备的健康监测开发中使用的有价值的候选者。

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