Cite

Jenkner F. L. Clinical rheoencephalography: a non-invasive method for automatic evaluation of cerebral hemodynamics, Vienna: Ertldruck; 1986.JenknerF. LClinical rheoencephalography: a non-invasive method for automatic evaluation of cerebral hemodynamicsViennaErtldruck1986Search in Google Scholar

Jenkner, F. L.: Rheoencephalography, a method for the continuous registration of cerebrovascular changes. Springfield, IL: Charles C Thomas; 1962.JenknerF. L.Rheoencephalography, a method for the continuous registration of cerebrovascular changesSpringfield, ILCharles C Thomas1962Search in Google Scholar

Perez-Borja C, Meyer JS. A critical evaluation of rheoencephalography in control subjects and in proven cases of cerebrovascular disease. J Neurol Neurosurg Psychiatry. 1964;27:66-72. https://doi.org/10.1136/jnnp.27.1.66Perez-BorjaCMeyerJSA critical evaluation of rheoencephalography in control subjects and in proven cases of cerebrovascular diseaseJ Neurol Neurosurg Psychiatry1964276672doi.org/10.1136/jnnp.27.1.66Open DOISearch in Google Scholar

Brady K M, Mytar J O, Kibler K K, et al. 2010 Monitoring cerebrovascular pressure reactivity with rheoencephalography. J. Phys. Conf. Ser. 224 012089. https://doi.org/10.1088/1742-6596/224/1/012089BradyK MMytarJ OKiblerK K2010Monitoring cerebrovascular pressure reactivity with rheoencephalographyJ. Phys. Conf. Ser224012089doi.org/10.1088/1742-6596/224/1/01208910.1088/1742-6596/224/1/012089Search in Google Scholar

Totaro R, Barattelli G, Quaresima V, Carolei A, Ferrari M. Evaluation of potential factors affecting the measurement of cerebrovascular reactivity by near-infrared spectroscopy. Clin Sci (London). 1998;95(4):497-504. https://doi.org/10.1042/cs0950497TotaroRBarattelliGQuaresimaVCaroleiAFerrariMEvaluation of potential factors affecting the measurement of cerebrovascular reactivity by near-infrared spectroscopyClin Sci (London)1998954497504doi.org/10.1042/cs095049710.1042/CS19980122Search in Google Scholar

Rostrup E, Law I, Pott F, Ide K, Knudsen GM. Cerebral hemodynamics measured with simultaneous PET and nearinfrared spectroscopy in humans. Brain Res. 2002; 8;954(2):183-93.RostrupELawIPottFIdeKKnudsenGMCerebral hemodynamics measured with simultaneous PET and nearinfrared spectroscopy in humansBrain Res2002895421839310.1016/S0006-8993(02)03246-8Search in Google Scholar

Harel F, Denault A, Ngo Q, Khairy P, Dupuis J. Near-infrared spectroscopy as monitor of peripheral blood flow perfusion. Anesth Analg 2007;104,SCA1-123.HarelFDenaultANgoQKhairyPDupuisJNear-infrared spectroscopy as monitor of peripheral blood flow perfusionAnesth Analg2007104SCA112310.1007/s10877-007-9105-918040873Search in Google Scholar

Smielewski P, Czosnyka M, Kirkpatrick P, McEroy H, Rutkowska H, Pickard JD. Assessment of cerebral autoregulation using carotid artery compression. Stroke. 1996; 27(12):2197-203. https://doi.org/10.1161/01.STR.27.12.2197SmielewskiPCzosnykaMKirkpatrickPMcEroyHRutkowskaHPickardJDAssessment of cerebral autoregulation using carotid artery compressionStroke199627122197203doi.org/10.1161/01.STR.27.12.2197Open DOISearch in Google Scholar

Anonymous. Operating instructions - QL software. Compumedics Germany GmbH, Singen, Germany.AnonymousOperating instructions - QL softwareCompumedics Germany GmbHSingen, GermanySearch in Google Scholar

Dawson SL, Panerai RB, Potter JF. Critical closing pressure explains cerebral hemodynamics during the Valsalva maneuver. J Appl Physiol. 1999;86(2):675-80.DawsonSLPaneraiRBPotterJFCritical closing pressure explains cerebral hemodynamics during the Valsalva maneuverJ Appl Physiol19998626758010.1152/jappl.1999.86.2.6759931207Search in Google Scholar

Ringelstein E B, Van Eyck S, Mertens I. Evaluation of cerebral vasomotor reactivity by various vasodilating stimuli: comparison of CO2 to acetazolamide. J Cereb Blood Flow Metab. 1992;12: 162-8. https://doi.org/10.1038/jcbfm.1992.20RingelsteinE BVanEyck SMertensIEvaluation of cerebral vasomotor reactivity by various vasodilating stimuli: comparison of CO2 to acetazolamideJ Cereb Blood Flow Metab1992121628doi.org/10.1038/jcbfm.1992.20Open DOISearch in Google Scholar

Yezhuvath US, Lewis-Amezcua K, Varghese R, Xiao G, Lu H. On the assessment of cerebrovascular reactivity using hypercapnia BOLD MRI. NMR Biomed. 2009;22(7):779-86. https://doi.org/10.1002/nbm.1392YezhuvathUSLewis-AmezcuaKVargheseRXiaoGLuHOn the assessment of cerebrovascular reactivity using hypercapnia BOLD MRINMR Biomed200922777986doi.org/10.1002/nbm.1392Open DOISearch in Google Scholar

McHenry LC. Rheoencephalography: a clinical appraisal. Neurology. 1965;15:507-17. https://doi.org/10.1212/WNL.15.6.507McHenryLC.Rheoencephalography: a clinical appraisalNeurology19651550717doi.org/10.1212/WNL.15.6.507Open DOISearch in Google Scholar

Hadjiev D. Impedance methods for investigation of cerebral circulation. Prog Brain Res. 1972;35:25-85. https://doi.org/10.1016/S0079-6123(08)60088-6HadjievDImpedance methods for investigation of cerebral circulationProg Brain Res1972352585doi.org/10.1016/S0079-6123(08)60088-610.1016/S0079-6123(08)60088-6Search in Google Scholar

Yarullin H H. Clinical rheoencephalography. Leningrad: Medicina; 1965.YarullinH HClinical rheoencephalographyLeningradMedicina1965Search in Google Scholar

Czosnyka M, Smielewski P, Kirkpatrick P, Laing RJ, Menon D, Pickard JD. Continuous assessment of the cerebral vasomotor reactivity in head injury. Neurosurgery. 1997;41:11-7. https://doi.org/10.1097/00006123-199707000-00005CzosnykaMSmielewskiPKirkpatrickPLaingRJMenonDPickardJDContinuous assessment of the cerebral vasomotor reactivity in head injuryNeurosurgery199741117doi.org/10.1097/00006123-199707000-0000510.1097/00006123-199707000-000059218290Search in Google Scholar

Anonymous. ICM+ program: Software for Brain Monitoring in Neurological Intensive Care: www.neurosurg.cam.ac.uk/pages/ICM/about.phpAnonymousICM+ program: Software for Brain Monitoring in Neurological Intensive Carewww.neurosurg.cam.ac.uk/pages/ICM/about.phpSearch in Google Scholar

Castro PM, Santos R, Freitas J, Panerai RB, Azevedo E. Autonomic dysfunction affects dynamic cerebral autoregulation during Valsalva maneuver: comparison between healthy and autonomic dysfunction subjects. J Appl Physiol. 2014;117(3):205-13. https://doi.org/10.1152/japplphysiol.00893.2013CastroPMSantosRFreitasJPaneraiRBAzevedoEAutonomic dysfunction affects dynamic cerebral autoregulation during Valsalva maneuver: comparison between healthy and autonomic dysfunction subjectsJ Appl Physiol2014117320513doi.org/10.1152/japplphysiol.00893.2013Open DOISearch in Google Scholar

Kontos HA, Wei EP, Navari RM, Levasseur JE, Rosenblum WI, Patterson JL Jr Responses of cerebral arteries and arterioles to acute hypotension and hypertension. Am J Physiol. 1978;234(4):H371-83.KontosHAWeiEPNavariRMLevasseurJERosenblumWIPatterson JL Jr Responses of cerebral arteries and arterioles to acute hypotension and hypertensionAm J Physiol19782344H3718310.1152/ajpheart.1978.234.4.H371645875Search in Google Scholar

Anonymous 2003. Tactical Combat Casualty Care, Committee on Tactical Combat Casualty Care, Government Printing Agency, Washington, DC, Feb 2003.Anonymous2003Tactical Combat Casualty Care, Committee on Tactical Combat Casualty CareGovernment Printing AgencyWashington, DCFeb 2003Search in Google Scholar

Armonda RA et al. Wartime traumatic cerebral vasospasm: recent review of combat casualties. Neurosurgery 2006;59:1215-1225. https://doi.org/10.1227/01.NEU.0000249190.46033.94ArmondaRAWartime traumatic cerebral vasospasm: recent review of combat casualtiesNeurosurgery20065912151225doi.org/10.1227/01.NEU.0000249190.46033.94Open DOISearch in Google Scholar

Strandgaard S, Paulson OB. Cerebral autoregulation. Stroke. 1984;15:413–416. https://doi.org/10.1161/01.STR.15.3.413StrandgaardSPaulsonOBCerebral autoregulationStroke198415413416doi.org/10.1161/01.STR.15.3.413Open DOISearch in Google Scholar

Donnelly J, Aries MJ, Czosnyka M. Further understanding of cerebral autoregulation at the bedside: possible implications for future therapy. Expert Rev Neurother. 2015;15(2):169-85. https://doi.org/10.1586/14737175.2015.996552DonnellyJAriesMJCzosnykaMFurther understanding of cerebral autoregulation at the bedside: possible implications for future therapyExpert Rev Neurother201515216985doi.org/10.1586/14737175.2015.996552Open DOISearch in Google Scholar

Brady KM, Lee JK, Kibler KK, Smielewski P, Czosnyka M, Easley RB, Koehler RC, Shaffner DH. Continuous timedomain analysis of cerebrovascular autoregulation using near-infrared spectroscopy. Stroke. 2007;38(10):2818-25 https://doi.org/10.1161/STROKEAHA.107.485706BradyKMLeeJKKiblerKKSmielewskiPCzosnykaMEasleyRBKoehlerRCShaffnerDHContinuous timedomain analysis of cerebrovascular autoregulation using near-infrared spectroscopyStroke20073810281825doi.org/10.1161/STROKEAHA.107.485706Open DOISearch in Google Scholar

Bodo M. Studies in rheoencephalography (REG). J Electr Bioimp. 2010;118–40.BodoMStudies in rheoencephalography (REG)J Electr Bioimp2010118–4010.5617/jeb.109Search in Google Scholar

Anonymous, 1997. Rheoencephalograph (a) Identification Code of Federal Regulations Title 21, vol 8, Sec 882.1825, Washington DC: US Government Printing Office; Revised as of April 1, 1997.Anonymous1997Rheoencephalograph (a) Identification Code of Federal Regulations Title21, vol 8, Sec 882.1825Washington DCUS Government Printing OfficeRevised as of April 11997Search in Google Scholar

Weyer S, Weber H, Kleeberg C, Leonhardt S, Wartzek T. Development of a real-time, semi-capacitive impedance phlebography device. J Electr Bioimp, 2015;6:2–9 https://doi.org/10.5617/jeb.953WeyerSWeberHKleebergCLeonhardtSWartzekTDevelopment of a real-time, semi-capacitive impedance phlebography deviceJ Electr Bioimp2015629doi.org/10.5617/jeb.953Open DOISearch in Google Scholar