Диссертация (1025404), страница 24
Текст из файла (страница 24)
95. I. 6.Article number 68001. P. 1–19.69.Kublanov V. S., Borisov V. I. Features of the radiophysical complex MRTHRsignals in research of functional processes in the brain tissues // ConferenceProceedings International Conference on Biomedical Engineering and ComputationalTechnologies (SIBIRCON). Novosibirsk. 2015. Р. 93–98.70.Kublanov V. S. Microwave radiation as interface to the brain functional state //BIODEVICES-Proceedings of the International Conference on Biomedical Electronicsand Devices. Barcelona, Spain, 2013. P.
318–322.71.Kublanov V. S., Borisov V. I., Dolganov A. Yu. Summary Processing ofRadiophysical Complex MRTHR Signals // Proceedings of the 9-th International JointConference on Biomedical Engineering Systems and Technologies BIOSIGNALS.Rome, Italy. 2016. Vol. 4. Р. 143–149.72.Kublanov V. S., Borisov V. I., Dolganov A. Yu.
The interface between the brainmicrowave radiation and autonomic nervous system // 7-th Annual International IEEEEMBS Conference on Neural Engineering, Montpellier, France. 2015. P. 922–925.73.Land D. V. An efficient, accurate and robust radiometer configuration formicrowave temperature measurement for industrial and medical applications // Journalof Microwave Power and Electromagnetic Energy. 2001.
Vol. 36 (3). P. 139–153.74.Leroy Y., Bocquet B., Mamouni A. Non-invasive microwave radiometrythermometry // Physiological Measurement. 1998. Vol. 19. I. 2. Р. 127–148.15575.Ludeke K. M., Koehler J., Kanzenbach J. A new radiation balance microwavethermograph for simultaneous and independent temperature and emissivitymeasurements // Journal Microwave Power. 1979. I. 14. Р. 117–121.76.MacDonald A. G., Land D. V., Sturrock R.
D. Microwave thermography as anon-invasive assessment of disease activity in inflammatory arthritis // ClinicalRheumatology. 1994. Vol. 13 (4). P. 589–592.77.Mäkikallio T. H., Hoiber S., Kober L. Fractal analysis of heart rate dynamics asa predictor of mortality in patients with depressed left ventricular function after acutemyocardial infarction // Am. J. Cardiol. 1999. Vol. 83. P. 836–839.78.Makowiec D. Multifractal estimates of monofractality in RR-heart series inpower spectrum ranges // Physica A: Statistical Mechanics and its Applications. 2009.Vol. 388. I. 17. P.
3486–3502.79.Mandelbrot B. B. Fractals: Form, Chance, and Dimension. San Francisco: W. H.Freeman and Company, 1977. 352 p.80.Mandelbrot B. B., Van Ness J. W. Fractional Brownian motions: Fractionalnoises and applications // SIAM Rev. 1968. Vol. 4 (10). P. 422–437.81.Mandelbrot B. B. Intermittent turbulence in self-similar cascades: divergence ofhigh moments and dimension of the carrier // J. Fluid Mech.
1974. I. 62. P. 331–358.82.Mandelbrot B. B. Multifractals and 1 / f Noise: Wild Self Affinity in Physics(1963–1976). New York: Springer-Verlag, 1999. 442 p.83.Maruyama K. Feasibility of noninvasive measurement of deep brain temperaturein newborn infants by multifrequency microwave radiometry // IEEE Transactions onMicrowave Theory and Techniques. 2000. Vol. 48. I. 11. P. 2141–2147.84.Massey F. The Kolmogorov-Smirnov Test for Goodness of Fit // Journal of theAmerican Statistical Association. 1951. Vol.
46. P. 68–78.15685.Mizushina S. Retrieval of Temperature-Depth Profiles in Biological Objectsfrom Multi-Frequency Microwave Radiometric Data // Journal Electromagnetic Wavesand Applications. 1993. Vol. 7 (11). P. 1515–1547.86.Modelling and Analysis of Bow-Tie Antenna Properties for the BrainMicrowave Radiometry / V. I. Borisov [et al.] // Proceedings of the 2-nd InternationalConference on Industrial Engineering. Chelyabinsk, 2016. P. 1–4.87.Monitoring of deep brain temperature in infants using multi-frequencymicrowave radiometry and thermal modeling / J.
W. Hand [et al.] // Physics inMedicine and Biology. 2001. Vol. 46. P. 1885–1903.88.Morozov A. N., Skripkin A. V. Spherical particle Brownian motion in viscousmedium as non-Markovian random process // Physics Letters A. 2011. Vol. 375.P. 4113–4115.89.Muzy J.
F., Bacry E., Arneodo A. Wavelets and multifractal formalism forsingular signals: application to turbulence data // Phys. Rev. Lett. –1991. Vol. 67. I. 25.P. 15–35.90.Myers P. C., Barret A. H., Sadowsky N. L. Microwave Thermography of normaland cancerous breast tissue // Annals of the New York Academy of Science. 1980. Vol.335. Р. 433–455.91.Myers P. C., Sadowsky N.
L., Barret A. H. Microwave thermography:Principles, methods and clinical applications // Journal of Microwave Power. –1979.Vol. 14 (2). Р. 105–115.92.New 434 MHz interstitial hyperthermia system monitored by microwaveradiometry: theoretical and experimental results / J. C.
Camart [et al.] // InternationalJournal of Hyperthermia. 2000. Vol. 16. I. 2. P. 95–111.15793.Nguyen D. D., Chive M., Leroy Y. Combination of local heating and radiometryby microwaves // IEEE Transactions on Instrumentation and Measurement. 1980.Vol. 29. P. 143–144.94.Nguyen D.
D., Mamouni M., Leroy Y. Simultaneous microwave local heatingand microwave thermography. Possible clinical applications // The Journal ofMicrowave Power. 1979. Vol. 14. P. 135–137.95.Non-linear complexity measures of heart rate variability in acute schizophrenia/ K. J. Bär [et al.] // Clin. Neurophysiol. 2007.
I. 118. P. 2009–2015.96.Norris P. R., Anderson S. M., Jenkins J. M. Heart rate multiscale entropy at threehours predicts hospital mortality in trauma patients // Shock. 2008. I. 30. P. 17–22.97.Novak V., Novak P., de Champlain J. Influence of respiration on heart rate andblood pressure fluctuations // J. Appl. Physiol. 1993.
I. 74. P. 617–626.98.Ohba H., Kinomura M., Ito M. Multi-frequency microwave radiometry fornoninvasive thermometry using a new temperature profile model function // IEICETRANSACTIONS on Electronics. 1995. I. 78. P. 1071–1081.99.Peng C. K., Havlin S., Stanley H. E. Quantification of scaling exponents andcrossover phenomena in nonstationary heartbeat time series // Chaos. 1995. I. 5.P. 82–87.100. Pincus S. M Approximate entropy as a measure of system complexity // Proc.Natl Acad. Sci. USA. 1991. I. 88. P. 2297–2302.101. Podobnik B., Stanley H. E. Detrended Cross-Correlation Analysis: A NewMethod for Analyzing Two Nonstationary Time Series // Phys.
Rev. Lett. 2008. Vol.100. Article number 084102. P. 1–4.102. Power spectrum analysis of heart rate variability in human cardiac transplantrecipients / K. E. F. Sands [et al.] // Circulation. 1989. Vol. 79. I. 1. P.76–82.158103. Richman J. S., Moorman J. R. Physiological time-series analysis usingapproximate entropy and sample entropy // American Journal of Physiology, Heart andCirculatory Physiology. 2000. Vol. 278. P. 2039–2049.104. Robert J., Edrich J., Mamouni A. Microwave thermometry in intracranialpathology // Biomedical Thermology. 1982. P.
501–508.105. Schumacher A. Linear and nonlinear approaches to the analysis of R–R intervalvariability // Biol. Res. Nurs. 2004. I. 5. P. 211–222.106. Sensing depth of microwave radiation for internal body temperaturemeasurement / R. Scheeler [et al.] // IEEE Trans. Antennas Propag. 2014. Vol. 62. I. 3.P. 1293–1303.107. Shaeffer J., El-Mahdi A. M., Carr K. L. Cancer detection studies using a 4.7Gigahertz radiometer // Cancer Detect and Prevention. 1981. Vol.
4 (1–4). P. 571–578.108. Singular system analysis of the inversion of microwave radiometric data:applications to biological temperature retrieval / P. Bardati [et al.] // Inverce Problems.1987. Vol. 3. Р. 347–370.109. Sorioes E. Microwave Radiometry: Potential for Non-invasive Detection ofCarotid Artery Disease // Practical neurology. 2012. P.
27–28.110. Stauffer P. R., Jacobsen S., Neuman D. Microwave array applicator forradiometry-controlled superficial hyperthermia // IEEE Transactions on BiomedicalEngineering. 2001. Vol. 47. I. 11. Р 1500–1509.111. Stec B., Dobrowolski A., Susek W. Multifrequency microwave thermograph forbiomedical applications // Journal of telecommunications and information technology.2004. I. 1. Р.
117–122.112. Takens F. Detecting strange attractors in turbulence // Dynamical systems andturbulence. 1981. Vol. 898. P. 366–381.159113. Tognolatti P., Giusto R., Bardati F. A new multi-frequency microwaveradiometer for medical operation // Sensors and Actuators A: Physical 1992. Vol. 32.I. 1 (3). P. 291–296.114. Tsonis A. Chaos: from Theory to Applications. New York: Premium Press,1992.
274 p.115. Voss R. F. Random fractal forgeries // NATO ASI Series, Series F: Computerand Systems Sciences. 1985. Vol. 17. Р. 805–835.116. Zhou W. X. Multifractal detrended cross-correlation analysis for two nonstationary signal // Phys. Rev.E. 2008. Vol. 77. Article number 066211. P. 1–4.117. Анализ вариабельности сердечного ритма при использовании различныхэлектрокардиографическихсистем(методическиерекомендации)/Р.















