Identification algorithm for systemic arterial parameters with application to total artificial heart control
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Xin Feng | Timothy L. Ruchti | Ronald H. Brown | Dean C. Jeutter | T. Ruchti | Ronald H. Brown | D. Jeutter | X. Feng
[1] K Atsumi,et al. Predictive control by physical activity rate of a total artificial heart during exercise. , 1988, ASAIO transactions.
[2] K Atsumi,et al. Research and development on the total artificial heart--from the engineering aspects. , 1986, Artificial organs.
[3] C. P. Neuman,et al. Digital Transfer Functions forMicrocomputer Control , 1979 .
[4] Graham C. Goodwin,et al. Adaptive filtering prediction and control , 1984 .
[5] Hajime Akashi,et al. Adaptive Control Technique for Artificial Hearts , 1986, IEEE Transactions on Biomedical Engineering.
[6] A C Guyton,et al. The relationship of cardiac output and arterial pressure control. , 1981, Circulation.
[7] G Rosenberg,et al. Development and current status of a total artificial heart. , 1986, Artificial organs.
[8] B. McInnis,et al. Adaptive control of left ventricular bypass assist devices , 1985 .
[9] D. C. Jeutter,et al. A CMOS microcontroller based PCM encoder for use with a total artificial heart , 1989, Images of the Twenty-First Century. Proceedings of the Annual International Engineering in Medicine and Biology Society,.
[10] A. Guyton,et al. Textbook of Medical Physiology , 1961 .
[11] T. R. Fortescue,et al. Implementation of self-tuning regulators with variable forgetting factors , 1981, Autom..
[12] H Harasaki,et al. Experimental results for chronic left ventricular assist and total artificial heart development. , 1983, Artificial organs.
[13] R. Burattini,et al. Computer identification of models for the arterial tree input impedance: Comparison between two new simple models and first experimental results , 1982, Medical and Biological Engineering and Computing.
[14] B. Deswysen,et al. Parameter Estimation of a Simple Model of the Left Ventricle and of the Systemic Vascular Bed, with Particular Attention to the Physical Meaning of the Left Ventricular Parameters , 1977, IEEE Transactions on Biomedical Engineering.
[15] R Kiraly,et al. Optimum control mode for a total artificial heart. , 1982, Transactions - American Society for Artificial Internal Organs.
[16] William J. Ohley,et al. Validity of an Arterial System Model: A Quantitative Evaluation , 1980, IEEE Transactions on Biomedical Engineering.
[17] Abraham Noordergraaf,et al. Reduced Models of Arterial Systems , 1985, IEEE Transactions on Biomedical Engineering.
[18] E S Bücherl,et al. The relationship of cardiac output and venous pressure in long surviving calves with total artificial heart. , 1978, Transactions - American Society for Artificial Internal Organs.
[19] V. C. Rideout,et al. Parameter estimation in the canine cardiovascular system , 1974 .
[20] John C. Yunger. A Closed-Loop Fault-Tolerant Microprocessor-Based Step Motor Control , 1990 .
[21] E. S. Bücherl,et al. Evaluation of Hemodynamic Parameters for Adaptive Control of the Artificial Heart by Simulation of the Vascular System , 1984 .
[22] T. L. Ruchti,et al. Recursive estimation of systemic arterial parameters for control of an electrically actuated total artificial heart , 1989, Proceedings of the 28th IEEE Conference on Decision and Control,.
[23] Xin Feng,et al. Estimation of system arterial parameters for control of an electrically actuated total artificial heart , 1989, Proceedings of the 32nd Midwest Symposium on Circuits and Systems,.
[24] Luebbe As. Recipients of homologous donor hearts or artificial blood pumps lack nerve impulses that are normally generated in the natural heart. , 1989 .
[25] A. Charlier,et al. Quantitative evaluation of the systemic arterial bed by parameter estimation of a simple model , 1980, Medical and Biological Engineering and Computing.
[26] P. Kumar,et al. Theory and practice of recursive identification , 1985, IEEE Transactions on Automatic Control.
[27] N. Westerhof,et al. Influence of central and peripheral changes on the hydraulic input impedance of the systemic arterial tree , 1973, Medical and biological engineering.
[28] Xin Feng,et al. Parameter estimation of the systemic arterial bed for control of a total artificial heart , 1989, Images of the Twenty-First Century. Proceedings of the Annual International Engineering in Medicine and Biology Society,.
[29] D.C. Jeutter,et al. A DC/DC resonant power converter for an electric artificial heart , 1989, Images of the Twenty-First Century. Proceedings of the Annual International Engineering in Medicine and Biology Society,.
[30] Lennart Ljung,et al. Theory and Practice of Recursive Identification , 1983 .
[31] Klaus Affeld,et al. A Control and Estimation Technique of the Portable Total Artificial Heart Driver , 1984 .
[32] K D Murray,et al. Evaluation of treadmill exercise on total artificial heart recipients. , 1984, Transactions - American Society for Artificial Internal Organs.
[33] J. C. Wang,et al. A microcomputer-based control system for the total artificial heart , 1987, Autom..
[34] H. Akashi,et al. A technique for real-time estimation of hemodynamic state and parameters in driving the piston-bellows type artificial heart , 1984 .
[35] K Sagawa,et al. Impedance loading servo pump system for excised canine ventricle. , 1982, The American journal of physiology.
[36] P. Barbini,et al. Electrical analogs for monitoring vascular properties in artificial heart studies , 1989, IEEE Transactions on Biomedical Engineering.
[37] John W. Clark,et al. A Two-Stage Identification Scheme for the Determination of the Parameters of a Model of Left Heart and Systemic Circulation , 1980, IEEE Transactions on Biomedical Engineering.