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1

M, Burkin I., and Shepeljavyi A. I, eds. Frequency methods in oscillation theory. Dordrecht: Kluwer Academic, 1996.

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2

Leonov, G. A., I. M. Burkin, and A. I. Shepeljavyi. Frequency Methods in Oscillation Theory. Dordrecht: Springer Netherlands, 1996. http://dx.doi.org/10.1007/978-94-009-0193-3.

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3

Leonov, Gennadiĭ Alekseevich. Frequency methods in oscillation theory. Dordrecht: Kluwer Academic Publishers, 1996.

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4

K. B. M. Q. Zaman. A natural low frequency oscillation in the wake of an airfoil near stalling conditions. [Washington, DC]: National Aeronautics and Space Administration, 1988.

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5

Bumueller, Achim. Integrated high frequency oscillator. Leicester: De Montfort University, 1997.

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6

Samoĭlenko, A. M. Elements of the mathematical theory of multi-frequency oscillations. Dordrecht: Kluwer Academic Publishers, 1991.

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7

Tang, Johan van der. High-frequency oscillator design for integrated transceivers. Boston: Kluwer Academic, 2003.

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8

Tang, Johan van der. High-frequency oscillator design for integrated transceivers. Boston, MA: Kluwer Academic, 2004.

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9

Samoilenko, A. M. Elements of the Mathematical Theory of Multi-Frequency Oscillations. Dordrecht: Springer Netherlands, 1991. http://dx.doi.org/10.1007/978-94-011-3520-7.

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10

Kelly, Brendan. Radio frequency oscillator design using coaxial ceramic resonators. [s.l: The Author], 1992.

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11

Group, Chronos. Frequency measurement and control. Dordrecht: Springer, 1994.

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12

Wang, Haifeng, and Wenjuan Du. Analysis and Damping Control of Power System Low-frequency Oscillations. Boston, MA: Springer US, 2016. http://dx.doi.org/10.1007/978-1-4899-7696-3.

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13

Tripp, John S. Rapid estimation of frequency response functions by close-range photogrammetry. [Washington, DC]: National Aeronautics and Space Administration, Scientific and Technical Information Branch, 1985.

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14

Nguyen, Khue Hoanh. Damping power system low frequency oscillations via controlled quadrature-phase voltage injection. Ottawa: National Library of Canada = Bibliothèque nationale du Canada, 1992.

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15

Fernandes, David Neil. The detection and characterization of high frequency and high wavenumber solar oscillations. Springfield, Va: Available from the National Technical Information Service, 1992.

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16

Grebennikov, Andrei. RF and microwave transistor oscillator design. Chichester, UK: John Wiley & Sons, Ltd, 2007.

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17

Kamas, George. Time and frequency users manual. Gaithersburg, MD: U.S. Dept. of Commerce, National Institute of Standards and Technology, 1990.

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18

Kamas, George. Time and frequency users manual. Gaithersburg, MD: U.S. Dept. of Commerce, National Institute of Standards and Technology, 1990.

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19

European Frequency and Time Forum. (10th 1996 Brighton, England). 10th European Frequency and Time Forum: 5-7 March 1996. Brighton, UK: IEE, 1996.

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20

Frequency stability: Introduction and applications. Hoboken, N.J: Wiley, 2012.

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21

Anne-Catherine, Favre, and Musy A, eds. Predictive hydrology: A frequency analysis approach. Boca Raton, FL: CRC Press, 2012.

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22

Marchi, Andrea. Frequency Standards and Metrology: Proceedings of the Fourth Symposium, Ancona, Italy, September 5-9, 1988. Berlin, Heidelberg: Springer Berlin Heidelberg, 1989.

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23

Oscillator design and computer simulation. 2nd ed. New York: McGraw-Hill, 1997.

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24

Rhea, Randall W. Oscillator design and computer simulation. 2nd ed. Atlanta, Ga: Noble Pub. Corp., 2000.

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25

Oscillator design and computer simulation. Englewood Cliffs, N.J: Prentice Hall, 1990.

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26

service), SpringerLink (Online, ed. Discontinuous control systems: Frequency-domain analysis and design. Boston, Mass: Birkhäuser, 2009.

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27

FRAM, the frequency resonance analysis method: Modelling complex socio-technical systems. Farnham, Surrey, UK England: Ashgate, 2012.

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28

Maligeorgos, James P. A 3.8-6.4GHz local oscillator system using an injection-locked frequency doubling and phase tuning technique. Ottawa: National Library of Canada, 2001.

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29

Joachim, Deutscher, ed. Design of observer-based compensators: From the time to the frequency domain. Dordrecht: Springer, 2009.

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30

K, Brodzik Andrzej, and Tolimieri Richard 1940-, eds. Ideal sequence design in time-frequency space: Applications to radar, sonar, and communication systems. Boston, Mass: Birkhäuser, 2009.

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31

Zink, L. R. NOb2s heterodyne frequency measurements with a tunable diode laser, a CO laser transfer oscillator, and COb2s laser standards. Gaithersburg, MD: U.S. Dept. of Commerce, National Bureau of Standards, 1987.

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32

Zink, L. R. NO?□heterodyne frequency measurements with a tunable diode laser, a CO laser transfer oscillator, and CO?□laser standards. Gaithersburg, MD: U.S. Dept. of Commerce, National Bureau of Standards, 1987.

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33

Leonov, G. A. Frequency Methods in Oscillation Theory. Springer, 2011.

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34

Cuartero, Mireia, and Niall D. Ferguson. High-frequency ventilation and oscillation. Oxford University Press, 2016. http://dx.doi.org/10.1093/med/9780199600830.003.0098.

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High-frequency oscillatory ventilation (HFOV) is a key member of the family of modes called high-frequency ventilation and achieves adequate alveolar ventilation despite using very low tidal volumes, often below the dead space volume, at frequencies significantly above normal physiological values. It has been proposed as a potential protective ventilatory strategy, delivering minimal alveolar tidal stretch, while also providing continuous lung recruitment. HFOV has been successfully used in neonatal and paediatric intensive care units over the last 25 years. Since the late 1990s adults with acute respiratory distress syndrome have been treated using HFOV. In adults, several observational studies have shown improved oxygenation in patients with refractory hypoxaemia when HFOV was used as rescue therapy. Several small older trials had also suggested a mortality benefit with HFOV, but two recent randomized control trials in adults with ARDS have shed new light on this area. These trials not show benefit, and in one of them a suggestion of harm was seen with increased mortality for HFOV compared with protective conventional mechanical ventilation strategies (tidal volume target 6 mL/kg with higher positive end-expiratory pressure). While these findings do not necessarily apply to patients with severe hypoxaemia failing conventional ventilation, they increase uncertainty about the role of HFOV even in these patients.
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35

G, Potapczuk Mark, and United States. National Aeronautics and Space Administration., eds. The low frequency oscillation in the flow over a NACA0012 airfoil with an "iced" leading edge. [Washington, DC]: National Aeronautics and Space Administration, 1989.

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36

United States. National Aeronautics and Space Administration., ed. Unified theory for aircraft handling qualities and adverse aircraft--pilot coupling. Reston, VA: American Institute of Aeronautics and Astronautics, 1997.

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37

United States. National Aeronautics and Space Administration., ed. Unified theory for aircraft handling qualities and adverse aircraft--pilot coupling. Reston, VA: American Institute of Aeronautics and Astronautics, 1997.

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38

Lorincz, Erika N., and Max R. Dürsteler. The Freezing Rotation Illusion. Oxford University Press, 2017. http://dx.doi.org/10.1093/acprof:oso/9780199794607.003.0070.

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A continuously rotating central texture (center) is presented together with a patterned surround oscillating back and forth. Generally, rotation of the surround induces misperceptions of the center’s angular velocity, which are known as induced rotational motion: a physically rotating center is perceived as turning faster when counterrotating with its surround and turning slower when co-rotating. However, during co-rotation, additional velocity misperceptions are observed: (a) a percept of motionless center (freezing rotation illusion) arises when the average angular velocity of the surround is fixed to a much higher value than that of the center and the appropriate oscillation frequency is set, and (b) a percept of the center sticking to its surround (rotational motion capture) arises when the average angular velocity of the surround is lower than the center velocity but higher than a given fraction of it.
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39

Rhea, Randy. High-Frequency Oscillator Design. Noble Publishing, 2003.

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40

Low frequency oscillations in total ozone measurements. Ames, Iowa: Dept. of Physics, Iowa State University, 1989.

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41

Gitterman, Moshe. Noisy Oscillator: Random Mass, Frequency, Damping. World Scientific Publishing Co Pte Ltd, 2012.

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42

Tang, J. van der, Arthur H.M. van Roermund, and Dieter Kasperkovitz. High-Frequency Oscillator Design for Integrated Transceivers. Springer, 2010.

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43

High-Frequency Oscillator Design for Integrated Transceivers. Boston: Kluwer Academic Publishers, 2005. http://dx.doi.org/10.1007/b106010.

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44

Tang, J. van der, Arthur H. M. van Roermund, and Dieter Kasperkovitz. High-Frequency Oscillator Design for Integrated Transceivers. Springer London, Limited, 2006.

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45

Michał, Odyniec, ed. RF and microwave oscillator design. Boston: Artech House, 2002.

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46

United States. National Aeronautics and Space Administration., ed. The detection and characterization of high frequency and high wavenumber solar oscillations. [Washington, DC: National Aeronautics and Space Administration, 1992.

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47

Samoilenko, Anatolii M. Elements of the Mathematical Theory of Multi-Frequency Oscillations. Springer, 2012.

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48

Group, Chronos, Observatoire de Paris-Meudon, and Centre national de la recherche scientifique (France), eds. Frequency measurement and control. London: Chapman & Hall, 1994.

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49

Gotman, Jean, and Nathan E. Crone. High-Frequency EEG Activity. Edited by Donald L. Schomer and Fernando H. Lopes da Silva. Oxford University Press, 2017. http://dx.doi.org/10.1093/med/9780190228484.003.0033.

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Activities with frequencies between 60 and 80 Hz and approximately 500 Hz are labeled here as high-frequency activities. They were largely ignored until the beginning of the millennium, but their importance is now well recognized. They can be divided into activities occurring in the healthy brain in relation to sensory, motor, and cognitive or memory activity and activities occurring in the epileptic brain in the form of brief events (high-frequency oscillations), which appear to be an important marker of the brain regions that are able to generate seizures of focal origin. In humans, most of the work related to these activities has been done in intracerebral electrodes, where they are relatively frequent and easy to identify. They have been recorded in scalp electroencephalograms in some circumstances, however. This chapter reviews the recording methods, the circumstances in which they occur, their mechanism of generation, and their clinical significance.
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50

Chechurin, Leonid, and Sergej Chechurin. Physical Fundamentals of Oscillations: Frequency Analysis of Periodic Motion Stability. Springer, 2018.

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