• DocumentCode
    778150
  • Title

    A dual-input nonlinear system analysis of autonomic modulation of heart rate

  • Author

    Chon, Ki H. ; Mullen, Thomas J. ; Cohen, Richard J.

  • Author_Institution
    Harvard-MIT Div. of Health Sci. & Technol., Cambridge, MA, USA
  • Volume
    43
  • Issue
    5
  • fYear
    1996
  • fDate
    5/1/1996 12:00:00 AM
  • Firstpage
    530
  • Lastpage
    544
  • Abstract
    Linear analyses of fluctuations in heart rate and other hemodynamic variables have been used to elucidate cardiovascular regulatory mechanisms. The role of nonlinear contributions to fluctuations in hemodynamic variables has not been fully explored. This paper presents a nonlinear system analysis of the effect of fluctuations in instantaneous lung volume (ILV) and arterial blood pressure (ABP) on heart rate (HR) fluctuations. To successfully employ a nonlinear analysis based on the Laguerre expansion technique (LET), we introduce an efficient procedure for broadening the spectral content of the ILV and ABP inputs to the model by adding white noise. Results from computer simulations demonstrate the effectiveness of broadening the spectral band of input signals to obtain consistent and stable kernel estimates with the use of the LET. Without broadening the band of the ILV and ABP inputs, the LET did not provide stable kernel estimates. Moreover, we extend the LET to the case of multiple inputs in order to accommodate the analysis of the combined effect of ILV and ABP effect on heart rate. Analyses of data based on the second-order Volterra-Wiener model reveal an important contribution of the second-order kernels to the description of the effect of lung volume and arterial blood pressure on heart rate. Furthermore, physiological effects of the autonomic blocking agents propranolol and atropine on changes in the first- and second-order kernels are also discussed.
  • Keywords
    Volterra equations; biocontrol; cardiology; haemodynamics; lung; medical signal processing; neurophysiology; nonlinear control systems; physiological models; white noise; Laguerre expansion technique; arterial blood pressure; atropine; autonomic blocking agents; autonomic modulation; autonomic nervous system; cardiovascular regulatory mechanisms; dual-input nonlinear system analysis; feedback control loop; first-order kernels; fluctuations; heart rate; hemodynamic variables; instantaneous lung volume; kernel estimates; linear analyses; nonlinear contributions; physiological effects; propranolol; second-order Volterra-Wiener model; second-order kernels; spectral content broadening; white noise; Arterial blood pressure; Cardiology; Computer simulation; Fluctuations; Heart rate; Hemodynamics; Kernel; Lungs; Nonlinear systems; White noise; Adult; Algorithms; Autonomic Nervous System; Blood Pressure; Electrocardiography; Heart Rate; Humans; Lung Volume Measurements; Male; Models, Cardiovascular; Models, Neurological; Nonlinear Dynamics;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/10.488800
  • Filename
    488800