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1

Carrie, Andrew L. S. Wave refraction modelling and longshore sediment transport. Norwich: University of East Anglia, 1986.

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2

Rhee, Joon P. Wave refraction at Redondo Beach, California: Comparison of field measurements with models. Vicksburg, Miss: U.S. Army Corps of Engineers Waterways Experiment Station, 1998.

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3

Khalid, Mohammad Asmatullah. Comparison of measured and transformed directional wave spectra using linear refraction model. Monterey, Calif: Naval Postgraduate School, 1989.

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4

Byman, Michael William. An application of ocean wave-current refraction to the Gulf Stream using SEASAT SAR data. Springfield, Va: Available from the National Technical Information Service, 1989.

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5

Batueva, E. V. Refrakt︠s︡ionnye svoĭstva troposfery Dalʹnevostochnykh raĭonov Rossii. Novosibirsk: Izd-vo Sibirskogo otd-nii︠a︡ Rossiĭskoĭ akademii nauk, 1999.

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6

Metamaterials: Critique and alternatives. Hoboken, N.J: Wiley, 2008.

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7

Yeoh, Lean-Weng. Low altitude optical signal propagatation [i.e. propagation] over the ocean. Monterey, Calif: Naval Postgraduate School, 1997.

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8

Workshop on Interpretation of Seismic Wave Propagation in Laterally Heterogeneous Terranes (1985 Susono-shi, Japan). Interpretations of the SJ-6 seismic reflection/refraction profile, south central California, USA: Proceedings of the 1985 Workshop on Interpretation of Seismic Wave Propagation in Laterally Heterogeneous Terranes, Susono, Shizouka, Japan, August 15-18, 1985. Edited by Walter A. W and International Association of Seismology and Physics of the Earth's Interior. Commission on Controlled Source Seismology. Menlo Park, CA: U.S. Geological Survey, 1987.

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9

Refraction seismics: The lateral resolution of structure and seismic velocity. London: Geophysical Press, 1986.

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10

T͡S, T͡Sydypov Ch, and Chimitdorzhiev N. B, eds. Refrakt͡sionnye svoĭstva atmosfery kontinentalʹnykh raĭonov. Novosibirsk: Izd-vo "Nauka," Sibirskoe otd-nie, 1985.

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11

Krivoshlykov, Sergej G. Quantum-theoretical formalism for inhomogeneous graded-index waveguides. Berlin: Akademie Verlag, 1994.

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12

Collins, C. D. N. Seismic velocities in the crust and upper mantle of Australia. Canberra: Australian Govt. Pub. Service, 1988.

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13

Adamovsky, Grigory. Optical techniques for shock visualization and detection. [Washington, D.C.]: National Aeronautics and Space Administration, 1995.

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14

Wave Refraction Over Complex Nearshore Bathymetry. Storming Media, 2004.

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15

(Editor), Richard Strom, Peng Bo (Editor), Mark Walker (Editor), and Nan Rendong (Editor), eds. Sources and Scintillations: Refraction and Scattering in Radio. Springer, 2001.

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16

Coppola, Michael. Index of refraction and ion distribution of thin films on glass substrates. 1987.

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17

Attenuation and Refraction of an Electromagnetic Wave in an Electron Beam Generated Plasma. Storming Media, 2001.

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18

Huygens, Christiaan. Abhandlung über das Licht. Harri Deutsch, Ffm., 1996.

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19

An extension of the Lighthill theory of jet noise to encompass refraction and shielding. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1995.

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20

Munk, Benedikt A. Metamaterials: Critique and Alternatives. Wiley & Sons, Incorporated, John, 2009.

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21

Complete Oceanographic and Atmospheric Master Library Documentation of the Shallow-Water Wave Refraction and Diffraction Model. Storming Media, 1997.

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22

T. Wave Phenomena. Courier Dover Publications, 2014.

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23

Huygens, Christiaan. Treatise on Light. IndyPublish.com, 2005.

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24

Huygens, Christiaan. Treatise on Light. IndyPublish, 2006.

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25

Huygens, Christiaan. Treatise on Light. Echo Library, 2007.

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26

Huygens, Christiaan. Treatise on Light (Large Print Edition). BiblioBazaar, 2007.

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27

Huygens, Christiaan. Treatise on Light. IndyPublish.com, 2005.

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28

Huygens, Christiaan. Treatise on Light. BiblioBazaar, 2007.

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29

(Editor), H. J. Patton, and Brian J. Mitchell (Editor), eds. Monitoring the Comprehensive Nuclear Test Ban Treaty Regional Wave Propagation and Crystal Structure. Birkhauser, 2001.

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30

1642-1727, Newton Isaac Sir, and Huygens Christiaan 1629-1695, eds. Mathematical principles of natural philosophy ; Optics. Franklin Center, Pa: Franklin Library, 1985.

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31

Guenther, B. D. Modern Optics Simplified. Oxford University Press, 2019. http://dx.doi.org/10.1093/oso/9780198842859.001.0001.

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This textbook is designed for use in a standard physics course on optics at the sophomore level. The book is an attempt to reduce the complexity of coverage found in Modem Optics to allow a student with only elementary calculus to learn the principles of optics and the modern Fourier theory of diffraction and imaging. Examples based on real optics engineering problems are contained in each chapter. Topics covered include aberrations with experimental examples, correction of chromatic aberration, explanation of coherence and the use of interference theory to design an antireflection coating, Fourier transform optics and its application to diffraction and imaging, use of gaussian wave theory, and fiber optics will make the text of interest as a textbook in Electrical and bioengineering as well as Physics. Students who take this course should have completed an introductory physics course and math courses through calculus Need for experience with differential equations is avoided and extensive use of vector theory is avoided by using a one dimensional theory of optics as often as possible. Maxwell’s equations are introduced to determine the properties of a light wave and the boundary conditions are introduced to characterize reflection and refraction. Most discussion is limited to reflection. The book provides an introduction to Fourier transforms. Many pictures, figures, diagrams are used to provide readers a good physical insight of Optics. There are some more difficult topics that could be skipped and they are indicated by boundaries in the text.
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32

1936-, Fritz R. B., and Wave Propagation Laboratory, eds. Observations of spherical-wave scintillation in strong refractive-index turbulence. Boulder, Colo: United States Department of Commerce, National Oceanic and Atmospheric Administration, Environmental Research Laboratories, Wave Propagation Laboratory, 1988.

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33

Solymar, L., D. Walsh, and R. R. A. Syms. Artificial materials or metamaterials. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198829942.003.0015.

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The difference between natural and artificial materials is explained. The equivalent plasma frequency of wire media is derived. A list of metamaterial resonators is presented. The possibility of achieving negative refraction and its significance are discussed. It is shown that under certain circumstances it is possible to produce a perfect lens that could transfer evanescent waves aswell. Themulti-layer lens is shown to have advantages over the single-layer lens. The operation of a SiC lens based on the negative dielectric constant due to optical phonons is discussed. Detectors for magnetic resonance imaging, relying on the resonance of magnetoinductive waves are shown to be a potential application.
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34

Palmer, Derecke. Refraction Seismics: The Lateral Resolution of Structure and Seismic Velocity (Handbook of Geophysical Exploration, Vol 13). Pergamon Pr, 1988.

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35

Sir Isaac Newton's Mathematical Principles of Natural Philosophy and His System of the World. Kessinger Publishing, 2003.

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36

The Principia. Amherst, N.Y: Prometheus Books, 1995.

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37

Dana, Densmore, ed. Newton's Principia: The central argument : translation, notes, and expanded proofs. Santa Fe, N.M: Green Lion Press, 1995.

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38

Newton's Principia: The Central Argument. Green Lion Press, 1996.

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39

1914-, Cohen I. Bernard, and Whitman Anne Miller 1937-1984, eds. The Principia: Mathematical principles of natural philosophy. Berkeley: University of California Press, 1999.

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40

W, Hawking S., ed. Principia. Philadelphia: Running Press, 2002.

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41

Philosophiæ naturalis principia mathematica: Tomus 1. Adamant Media Corporation, 2003.

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42

1975-, Williams Angela J., and Geological Survey (U.S.), eds. Data report for seismic refraction surveys conducted from 1980 to 1982 in the Livermore Valley and the Santa Cruz Mountains, California. [Reston, Va.?]: U.S. Dept. of the Interior, U.S. Geological Survey, 1999.

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43

Markley, Loic. A negative-refractive-index metamaterial for incident plane waves of arbitrary polarization. 2007.

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44

R, Obolent͡s︡eva I., and Obʺedinennyĭ institut geologii, geofiziki i mineralogii (Rossiĭskai͡a︡ akademii͡a︡ nauk. Sibirskoe otdelenie), eds. Uprugie volny v girotropnykh i anizotropnykh sredakh: Sbornik nauchnykh trudov. Novosibirsk: VO "Nauka", 1993.

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45

United States. National Environmental Satellite, Data, and Information Service., ed. A Spectral approach to the forward problem in GPS radio occultation remote sensing (ray tracing, assimilation, tomography). Washington, D.C: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, National Environmental Satellite, Data, and Information Service, 1996.

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46

United States. National Environmental Satellite, Data, and Information Service, ed. Analytical model of refraction in a moist polytropic atmosphere for space and ground-based GPS applications. Washington, D.C: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, National Environmental Satellite, Data, and Information Service, 1997.

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47

N, Puzyrev N., Krylov S. V, and Obʺedinennyĭ institut geologii, geofiziki i mineralogii (Rossiĭskai͡a︡ akademii͡a︡ nauk. Sibirskoe otdelenie), eds. Detalʹnye seĭsmicheskie issledovanii͡a︡ litosfery na P- i S-volnakh. Novosibirsk: Nauka, 1993.

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48

Monitoring the Comprehensive Nuclear-Test-Ban Treaty: Surface Waves. Birkhauser, 2001.

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49

1932-, Levshin Anatoli L., and Ritzwoller Michael H, eds. Monitoring the comprehensive nuclear-test-ban treaty: Surface waves. Basel: Birkhäuser Verlag, 2001.

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50

Lutsenko, V. I., I. V. Lutsenko, D. O. Popov, and I. V. Popov. Remote sensing of the environment using the radiation of existing ground and space radio systems. PH “Akademperiodyka”, 2020. http://dx.doi.org/10.15407/akademperiodyka.429.345.

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Possibilities of using existing ground (TV centers, broadcasting stations) and space (global navigation satellite systems) radio systems for solving the problem of remote sensing and monitoring of the environment and objects in it are considered. The methods of diagnostics of the troposphere, description of the refractive index with the use of semi-Markov processes and atomic functions of Kravchenko-Rvacheva are proposed. The seasonal and altitudinal dependencies of radio-meteorological parameters and radio-climatic features of Ukraine were studied. Technologies for determining the effective gradient of the refractive index by damping factor of the VHF signals of television centers on the OTH routes in the zone of the near geometric shadow, on the angles of radioa "rise" and "sets" of the AES, detection of precipitation zones by the fluctuations of the pseudoranges and changes of the coordinates estimates, parameters of the surface of the earth by the fluctuations of the GNSS signals. Reviewers: Head of the Department of Radio waves propagation in the natural environments of the O. Ya. Usikov Institute for Radiophysics and Electronics NASU, Doctor of Physical and Mathematical Sciences, Professor Kivva F.V., Professor of the Department of Designing Radioelectronic Devices of Aircraft of the National Aerospace University. M.E. Zhukovsky (KhAI), Doctor of Technical Sciences, Professor Volosyuk V.K.
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