Using Mathematical Models to Improve the Utility of Quantitative ICU Data
暂无分享,去创建一个
[1] R. Hovorka. Continuous glucose monitoring and closed‐loop systems , 2006, Diabetic medicine : a journal of the British Diabetic Association.
[2] T. Evans,et al. Tissue oxygenation and perfusion in patients with systemic sepsis , 2001, Critical care medicine.
[3] M. Weil,et al. Decreases in organ blood flows associated with increases in sublingual PCO2 during hemorrhagic shock. , 1998, Journal of applied physiology.
[4] T. Scalea,et al. Diagnostic utility of sublingual PCO2 for detecting hemorrhage in penetrating trauma patients. , 2004, The Journal of trauma.
[5] Andrea Gentilini,et al. Closed-loop Control of Mean Arterial Blood Pressure during Surgery with Alfentanil: Clinical Evaluation of a Novel Model-based Predictive Controller , 2006, Anesthesiology.
[6] Brahm Goldstein,et al. Heart rate variability in critical illness and critical care , 2002, Current opinion in critical care.
[7] Nina Y. Belova,et al. Wavelet transform: A better approach for the evaluation of instantaneous changes in heart rate variability , 2007, Autonomic Neuroscience.
[8] Massimo Girardis,et al. Muscle perfusion and oxygen consumption by near-infrared spectroscopy in septic-shock and non-septic-shock patients , 2003, Intensive Care Medicine.
[9] H. Yeung,et al. In vivo evaluation of transcutaneous CO2 partial pressure monitoring. , 1981, Journal of applied physiology: respiratory, environmental and exercise physiology.
[10] W. Sibbald,et al. Critical Care Standards, Audit and Ethics , 1996 .
[11] C. Cocanour,et al. Tissue hemoglobin O2 saturation during resuscitation of traumatic shock monitored using near infrared spectrometry. , 2000, The Journal of trauma.
[12] G. Clermont,et al. Determinants of the irreversibility of hemorrhagic shock: an exploratory simulation study , 2005 .
[13] J. Puyana,et al. Non-invasive real-time quantification of cardiovascular reserve in human circulatory shock , 2006 .
[14] Vic Hasselblad,et al. Impact of the pulmonary artery catheter in critically ill patients: meta-analysis of randomized clinical trials. , 2005, JAMA.
[15] M. Pinsky. Assessment of indices of preload and volume responsiveness , 2005, Current opinion in critical care.
[16] M. Weil,et al. Decreases in mesenteric blood flow associated with increases in sublingual PCO2 during hemorrhagic shock. , 2001, Shock.
[17] Dean E. Myers,et al. Noninvasive method for measuring local hemoglobin oxygen saturation in tissue using wide gap second derivative near-infrared spectroscopy. , 2005, Journal of biomedical optics.
[18] M. Podbregar,et al. Changes in muscle tissue oxygenation during stagnant ischemia in septic patients , 2005, Intensive Care Medicine.
[19] Gilles Clermont,et al. Towards a model-based medicine: integration of probabilistic inference with mechanistic knowledge , 2006 .
[20] J. Teboul,et al. Using heart-lung interactions to assess fluid responsiveness during mechanical ventilation , 2000, Critical care.
[21] G. Clermont,et al. In silico design of clinical trials: A method coming of age , 2004, Critical care medicine.
[22] Didier Payen,et al. Noninvasive techniques for measurements of cardiac output , 2005, Current opinion in critical care.
[23] M. Pinsky,et al. Passive leg raising predicts fluid responsiveness in the critically ill* , 2006, Critical care medicine.
[24] P. Marik. Sublingual capnometry: a non-invasive measure of microcirculatory dysfunction and tissue hypoxia , 2006, Physiological measurement.
[25] K. Proctor,et al. Noninvasive muscle oxygenation to guide fluid resuscitation after traumatic shock. , 2004, Surgery.
[26] Didier Payen,et al. Functional hemodynamic monitoring. , 2002, Intensive care medicine.
[27] Dean E. Myers,et al. Use of near-infrared spectroscopy in early determination of irreversible hemorrhagic shock. , 2005, The Journal of trauma.
[28] C. Schulman,et al. Can near-infrared spectroscopy identify the severity of shock in trauma patients? , 2005, The Journal of trauma.
[29] Sergio Cerutti,et al. Time-frequency and time-varying analysis for assessing the dynamic responses of cardiovascular control. , 2002, Critical reviews in biomedical engineering.
[30] M. Pinsky,et al. Functional hemodynamic monitoring , 2005, Critical care.
[31] Wanchun Tang,et al. Sublingual capnometry for diagnosis and quantitation of circulatory shock. , 1998, American journal of respiratory and critical care medicine.
[32] Wanchun Tang,et al. Buccal capnometry to guide management of massive blood loss. , 2006, Journal of applied physiology.
[33] F. Lombardi. Clinical implications of present physiological understanding of HRV components. , 2002, Cardiac electrophysiology review.
[34] B. Chance,et al. Time-dependent blood flow and oxygenation in human skeletal muscles measured with noninvasive near-infrared diffuse optical spectroscopies. , 2005, Journal of biomedical optics.
[35] G. Clermont,et al. Thresholded area over the curve of spectrometric tissue oxygen saturation as an indicator of volume resuscitability in porcine hemorrhagic shock. , 2007, The Journal of trauma.
[36] M. Singer,et al. Assessment of the clinical effectiveness of pulmonary artery catheters in management of patients in intensive care ( PAC-Man ) : a randomised controlled trial , 2022 .
[37] Wanchun Tang,et al. Increases in both buccal and sublingual partial pressure of carbon dioxide reflect decreases of tissue blood flows in a porcine model during hemorrhagic shock. , 2005, The Journal of trauma.
[38] M. Ursino,et al. Role of short-term cardiovascular regulation in heart period variability: a modeling study. , 2003, American journal of physiology. Heart and circulatory physiology.
[39] N. T. Smith,et al. Supervisory adaptive control of arterial pressure during cardiac surgery , 1992, IEEE Transactions on Biomedical Engineering.
[40] Daniel A. Reuter,et al. Stroke volume variations for assessment of cardiac responsiveness to volume loading in mechanically ventilated patients after cardiac surgery , 2002, Intensive Care Medicine.