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主动脉输入阻抗的自回归分析:与傅里叶变换的比较。

Autoregressive analysis of aortic input impedance: comparison with Fourier transform.

作者信息

Kubota T, Itaya R, Alexander J, Todaka K, Sugimachi M, Sunagawa K

机构信息

Research Institute of Angiocardiology, Kyushu University Medical School, Fukuoka, Japan.

出版信息

Am J Physiol. 1991 Mar;260(3 Pt 2):H998-1002. doi: 10.1152/ajpheart.1991.260.3.H998.

Abstract

We evaluated the advantages of the autoregressive (AR) model over the conventional Fourier transform in estimating aortic input impedance. In 10 anesthetized open-chest dogs, we digitized aortic pressure and flow at 200 Hz for 51.20 s under random ventricular pacing and subdivided them into five segments. We obtained aortic input impedance over the frequency range of 0.1-20 Hz both by AR model and by Fourier transform for various lengths of data, i.e., from one to four consecutive segments. For any given data length, the impedance spectrum estimated by the AR model was smoother than that obtained by the Fourier transform. To evaluate the accuracy of the estimated impedance, we predicted instantaneous aortic pressure of the fifth segment by convolving corresponding aortic flow with the impulse response of aortic input impedance. The prediction error was less with the AR model than that resulting from Fourier transform as long as the number of the segments was less than four. We conclude that the AR model provides a more accurate estimate of aortic input impedance than does the Fourier transform when data length is limited.

摘要

我们评估了自回归(AR)模型在估计主动脉输入阻抗方面相对于传统傅里叶变换的优势。在10只麻醉开胸犬中,我们在随机心室起搏下以200Hz对主动脉压力和流量进行数字化记录,时长51.20秒,并将其细分为五个片段。我们通过AR模型和傅里叶变换,针对不同长度的数据(即从一到四个连续片段),获取了0.1 - 20Hz频率范围内的主动脉输入阻抗。对于任何给定的数据长度,AR模型估计的阻抗谱比傅里叶变换得到的阻抗谱更平滑。为了评估估计阻抗的准确性,我们通过将相应的主动脉流量与主动脉输入阻抗的脉冲响应进行卷积,来预测第五个片段的瞬时主动脉压力。只要片段数量少于四个,AR模型的预测误差就比傅里叶变换产生的误差小。我们得出结论,当数据长度有限时,AR模型比傅里叶变换能更准确地估计主动脉输入阻抗。

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