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1

International Workshop on Transport at the Air Sea Interface (2006 University of Heidelberg). Transport at the air-sea interface: Measurements, models and parametrizations. Berlin: Springer, 2007.

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2

Geological Survey (U.S.), ed. MacHÓ: A computer interface to calculate the thermodynamic and transport properties of pure water. [Menlo Park, CA]: U.S. Dept. of the Interior, U.S. Geological Survey, 1991.

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3

Geological Survey (U.S.), ed. MacHO□: A computer interface to calculate the thermodynamic and transport properties of pure water. [Menlo Park, CA]: U.S. Dept. of the Interior, U.S. Geological Survey, 1991.

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4

Geological Survey (U.S.), ed. MacHb2sO: A computer interface to calculate the thermodynamic and transport properties of pure water. [Menlo Park, CA]: U.S. Dept. of the Interior, U.S. Geological Survey, 1991.

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5

Kuhn, Gerhard. Description and user manual for a web-based interface to a transit-loss accounting program for Monument and Fountain Creeks, El Paso and Pueblo counties, Colorado. Reston, Va: U.S. Geological Survey, 2007.

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6

Peters, Ellis Scott. A Comparison of thermography, interface pressure and transcutaneous oxygen measurements in assessing pressure sore risk in wheelchair users. Poole: Bournemouth University, 1999.

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7

1944-, Ohshima Hiroyuki, and Furusawa Kunio 1937-, eds. Electrical phenomena at interfaces: Fundamentals, measurements, and applications. 2nd ed. New York: M. Dekker, 1998.

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8

Abe, Masahiko, ed. Measurement Techniques and Practices of Colloid and Interface Phenomena. Singapore: Springer Singapore, 2019. http://dx.doi.org/10.1007/978-981-13-5931-6.

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9

Couch, Gregory Geddes. Computer image measurement of axisymmetric fluid/liquid interfaces. Ottawa: National Library of Canada = Bibliothèque nationale du Canada, 1993.

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10

G, McDonough Walter, and National Institute of Standards and Technology (U.S.), eds. Workshop on Micro-Mechanics Measurement Technologies for Fiber-Polymer Interfaces. Gaithersburg, MD: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1997.

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11

G, McDonough Walter, and National Institute of Standards and Technology (U.S.), eds. Workshop on Micro-Mechanics Measurement Technologies for Fiber-Polymer Interfaces. Gaithersburg, MD: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1997.

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12

G, McDonough Walter, and National Institute of Standards and Technology (U.S.), eds. Workshop on Micro-Mechanics Measurement Technologies for Fiber-Polymer Interfaces. Gaithersburg, MD: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1997.

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13

S, Bookout Paul, and United States. National Aeronautics and Space Administration., eds. Measurement of residual flexibility for substructures having prominent flexible interfaces. [Washington, DC: National Aeronautics and Space Administration, 1994.

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14

G, McDonough Walter, and National Institute of Standards and Technology (U.S.), eds. Workshop on Micro-Mechanics Measurement Technologies for Fiber-Polymer Interfaces. Gaithersburg, MD: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1997.

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15

G, McDonough Walter, and National Institute of Standards and Technology (U.S.), eds. Workshop on Micro-Mechanics Measurement Technologies for Fiber-Polymer Interfaces. Gaithersburg, MD: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1997.

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16

S, Bookout Paul, and United States. National Aeronautics and Space Administration., eds. Measurement of residual flexibility for substructures having prominent flexible interfaces. [Washington, DC: National Aeronautics and Space Administration, 1994.

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17

G, McDonough Walter, and National Institute of Standards and Technology (U.S.), eds. Workshop on Micro-Mechanics Measurement Technologies for Fiber-Polymer Interfaces. Gaithersburg, MD: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1997.

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18

G, McDonough Walter, and National Institute of Standards and Technology (U.S.), eds. Workshop on Micro-Mechanics Measurement Technologies for Fiber-Polymer Interfaces. Gaithersburg, MD: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1997.

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19

Bill, Albert, ed. Measuring the user experience: Collecting, analyzing, and presenting usability metrics. Amsterdam: Elsevier/Morgan Kaufmann, 2008.

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20

Stanley, Hartland, ed. Surface and interfacial tension: Measurement, theory, and applications. New York: Marcel Dekker, 2004.

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21

Ali, Joseph S. A system for measurement of small vibrations at material interfaces induced by electrostrictive forces. Research Triangle Park, N.C: U.S. Environmental Protection Agency, Health Effects Research Laboratory, 1986.

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22

Leland, Estep, and Society of Photo-Optical Instrumentation Engineers., eds. Optics of the air-sea interface: Theory and measurement : 23-24 July 1992, San Diego, California. Bellingham, Wash., USA: The Society, 1993.

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23

Iman, Ronald L. PARTITION, a program for defining the source term/consequence analysis interface in the NUREG-1150 probabilistic risk assessments: User's guide. Washington, DC: Division of Systems Research, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commission, 1990.

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24

Rogers, Laurence. Microelectronics and physical measurement: A survey of the use of transducers and interfaces in practical science. Leicester: Univeristy of Leicester School of Education, 1985.

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25

International Clothing Conference (2nd 1992 Bradford, England). Objective measurement technologies in the textile and clothing interface: Based on the proceedings of the 2nd International Clothing Conference. Bradford: University of Bradford, 1992.

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26

G, Barber P., and United States. National Aeronautics and Space Administration., eds. Growth rates and interface shapes in germanium and lead tin telluride observed in-situ, real-time in vertical Bridgman furnaces. [Washington, DC: National Aeronautics and Space Administration, 1995.

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27

James, Kevin. PC interfacing and data acquisition: Techniques for measurement, instrumentation and control. Oxford: Newnes, 2000.

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28

H, Lawson G., ed. Studies in cash flow accounting and analysis: Aspects of the interface between managerial planning, reporting, and control and external performance measurement. New York: Garland, 1992.

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29

IEEE, International Symposium on Virtual Environments Human-Computer Interfaces and Measurement Systems (2007 Ostuni Italy). 2007 IEEE International Symposium on Virtual Environments, Human-Computer Interfaces and Measurement Systems : 25-27 June, 2007, Ostuni, Italy. Piscataway, New Jersey: IEEE, 2007.

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30

IEEE International Symposium on Virtual Environments, Human-Computer Interfaces and Measurement Systems (2004 Boston, Mass.). 2004 IEEE International Symposium on Virtual Environments, Human-Computer Interfaces and Measurement Systems: (VECIMS) : July 12-14, 2004, Boston, MA. Piscataway, N.J: IEEE, 2004.

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31

IEEE Conference on Virtual Environmnts, Hunam-Computer Interfaces and Measurement Sysyems (2005 Giardini Naxos, Italy). 2005 IEEE International Conference on Virtual Environments, Human-Computer Interfaces and Measurement System: Giardini Naxos, Italy, 18-20 July 2005 ; organized and sponsored by the IEEE Instrumentation and Measurement Society. New York City, NY: IEEE, 2005.

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32

IEEE International Symposium on Virtual Environments, Human-Computer Interfaces and Measurement Systems (2003 Lugano, Switzerland). VECIMS'03: 2003 IEEE International Symposium on Virtual Environments, Human-Computer Interfaces and Measurement Systems : Università della Svizzera Italiana, Lugano, Switzerland, 17-29 July, 2003. Piscataway, New Jersey: IEEE, 2003.

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33

(Firm), Knovel, ed. Handbook of modern sensors: Physics, designs, and applications. 3rd ed. New York: Springer, 2004.

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34

Jähne, Bernd, Christoph S. Garbe, and Robert A. Handler. Transport at the Air-Sea Interface: Measurements, Models and Parametrizations. Springer Berlin / Heidelberg, 2014.

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35

Jähne, Bernd, Christoph S. Garbe, and Robert A. Handler. Transport at the Air-Sea Interface: Measurements, Models and Parametrizations. Springer London, Limited, 2008.

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36

Wright, A. G. The optical interface to PMTs. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199565092.003.0003.

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The optical interface between a light source and a detector is important. In most practical realizations the aim should be to collect the maximum light possible. Lens systems seldom do this efficiently, especially where the light source is diffuse. Underlying any attempt at concentrating or guiding light is subject to a fundamental limitation referred to as étendue (phase space cannot be squeezed). Light collection from small volume scintillators of high refractive index may approach 50 %, while collection from large-area scintillators is typically less than a few per cent. Incorporation of wavelength-shifting light guides and fibres leads to enhanced performance. Efficiency measurements by the author in terms of photoelectrons per keV are presented for selected configurations. Optical recycling derived from total internal reflection provides enhancement in effective quantum efficiency by a factor of up to 10. Concepts such as escape cones, adiabatic light guides, and trapped light are covered in detail.
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37

Müller, A., S. E. C. Dale, and M. A. Engbarth. Micromagnetic Measurements on Electrochemically Grown Mesoscopic Superconductors. Edited by A. V. Narlikar. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780198738169.013.10.

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This article examines the behavior of superconductivity in mesoscopic type-I superconductors based on micromagnetic measurements on two electrochemically grown mesoscopic superconductors, namely lead and tin. It first provides an overview of the basic properties of mesoscopic superconductivity and the interface between two different superconductors that are in close contact with one another. It then describes the electrochemical preparation of β-tin samples in a variety of shapes and sizes in the mesoscopic regime. It also presents the results of micromagnetic measurements, carried out using micro-Hall probes, including observations of the vortex states in mesoscopic tin and lead triangles and of proximity effects in lead/tin core–shell structures.
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38

(Editor), Christoph S. Garbe, Robert A. Handler (Editor), and Bernd Jähne (Editor), eds. Transport at the Air-Sea Interface: Measurements, Models and Parametrizations (Environmental Science and Engineering / Environmental Science) (Environmental ... and Engineering / Environmental Science). Springer, 2007.

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39

Hindagolla, Suraj L. A study of the oxide/solution interface by capacitance measurements of electrolyte/oxide/semiconductor structures and potentiometric titrations of colloidal oxide suspensions. 1985.

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40

Evans, Howard Lee. Measurement of Schottky barrier interface states. 1986.

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41

Electrophysiology Measurements for Studying Neural Interfaces. Elsevier, 2020. http://dx.doi.org/10.1016/c2018-0-01660-6.

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42

Aria, Mohammad M. Electrophysiology Measurements for Studying Neural Interfaces. Elsevier Science & Technology, 2020.

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43

Aria, Mohammad M. Electrophysiology Measurements for Studying Neural Interfaces. Elsevier Science & Technology Books, 2020.

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44

Albert, Bill, and Tom Tullis. Measuring the User Experience: Collecting, Analyzing, and Presenting Usability Metrics. Elsevier Science & Technology Books, 2010.

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45

Electrical Phenomena at Interfaces : Fundamentals: Measurements, and Applications. CRC Press LLC, 2018.

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46

Electrical Phenomena at Interfaces : Fundamentals: Measurements, and Applications. CRC Press LLC, 2018.

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47

Ohshima, Hiroyuki. Electrical Phenomena at Interfaces : Fundamentals: Measurements, and Applications. CRC Press LLC, 2018.

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48

Electrical Phenomena at Interfaces : Fundamentals: Measurements, and Applications. CRC Press LLC, 2018.

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49

Healey, Richard. Superposition. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198714057.003.0002.

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We observe surprising phenomena when beams of matter interfere in more or less familiar circumstances. By applying its mathematical models we can successfully use quantum theory to make sense of what we observe: overlapping of beams is modeled by adding mathematical objects we associate with each. I explain the models and show how they may be used to predict these observations: five principles summarize this modeling technique. We can use it to say not what is happening to the beams of matter but only what we should expect if we make measurements on them. To arrive at an acceptable formulation we must either say exactly what a measurement is or eliminate the term ‘measurement’ from quantum theory.
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50

Abe, Masahiko. Measurement Techniques and Practices of Colloid and Interface Phenomena. Springer, 2019.

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