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1

Pappas, Deno M. Evaluation of a punch shear test device. Phg [Pittsburgh], PA: U.S. Dept. of the Interior, Bureau of Mines, 1990.

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2

Mulroy, William J. Evaluation of a standard device for calibrating calorimeter test rooms. Gaithersburg, MD: U.S. Dept. of Commerce, National Bureau of Standards, 1986.

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3

Mulroy, William J. Evaluation of a standard device for calibrating calorimeter test rooms. Gaithersburg, MD: U.S. Dept. of Commerce, National Bureau of Standards, 1986.

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4

Transport and Works Act 1992: The Breath Test Device Approval 1993. London: HMSO, 1993.

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5

Hebner, R. E. Report of tests on Joseph Newman's device. Gaithersburg, MD: U.S. Dept. of Commerce, National Bureau of Standards, 1986.

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6

Kelly, David. Parallel test pattern generation for programmable logic devices. Dublin: University College Dublin, 1995.

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7

Adams, R. Dean. High performance memory testing: Design principles, fault modeling, and self-test. Boston: Kluwer Academic, 2003.

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8

International, Test Conference (34th 2003 Charlotte N. C. ). Proceedings: Board and system test track. Washington, D.C: International Test Conference, 2003.

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9

Wen, Xiaoqing, Nicola Nicolici, and Girard Patrick. Power-aware testing and test strategies for low power devices. New York: Springer, 2010.

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10

Covelli, Javier M. Ferroelectric memory devices and a proposed standardized test system design. Monterey, Calif: Naval Postgraduate School, 1992.

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11

Girard, Patrick, Nicola Nicolici, and Xiaoqing Wen, eds. Power-Aware Testing and Test Strategies for Low Power Devices. Boston, MA: Springer US, 2010. http://dx.doi.org/10.1007/978-1-4419-0928-2.

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12

Bryden, James E. Crash tests of work zone traffic control devices. Albany, N.Y: Engineering Research and Development Bureau, New York State Dept. of Transportation, 1990.

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13

24 nonfiction passages for test practice. New York: Scholastic Professional Books, 2002.

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14

Melʹnikov, A. A. Optimalʹnoe proektirovanie ėlektronno-opticheskikh ustroĭstv: Tekst lekt͡s︡iĭ. Moskva: Moskovskiĭ in-t radiotekhniki, ėlektroniki i avtomatiki, 1988.

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15

Middleton, David B. Flight test of takeoff performance monitoring system. Hampton: National Aeronautics and Space Administration, Langley Research Center, 1994.

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16

Middleton, David B. Flight test of takeoff performance monitoring system. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1994.

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17

Hamdioui, Said. Testing static random access memories: Defects, fault models, and test patterns. Boston: Kluwer Academic, 2004.

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18

Engine emissions measurement handbook: HORIBA automotive test systems. Warrendale, Pennsylvania, USA: SAE International, 2014.

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19

Rajagopal, Arudi. A comparison of optical gradation analysis devices to current test methods: Final report. Cincinnati, OH: Infrastructure Management and Engineering, 2012.

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20

Skinner, A. J. Long-term results of accelerated life-tests on optocoupler devices. Leatherhead, Surrey, England: ERA Technology, 1992.

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21

Safety evaluation of medical devices. New York: Marcel Dekker, 1997.

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22

Safety evaluation of medical devices. 2nd ed. New York: M. Dekker, 2002.

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23

Bryant, Richard W. Fiber-optic test equipment: A worldwide analysis. Norwalk, CT: Business Communications Co., 1993.

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24

Agency, Illinois Environmental Protection. A new era of clean air is dawning--: The Illinois Vehicle Emissions Test Program : enhanced inspection and maintenance. Springfield, Ill: Illinois Environmental Protection Agency, 1997.

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25

Andrei, Pavlov. CMOS SRAM circuit design and parametric test in nano-scaled technologies: Process-aware SRAM design and test. [Dordrecht]: Springer, 2008.

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26

Rectifier, International. HEXFET databook: Power MOSFET application notes, product specifications, military/hi-rel devices, test capabilities, other products. El Segundo, Cal: International Rectifier, 1985.

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27

Polites, Michael E. Reconfiguring the RUM experiment to test circular scanning with rotating unbalanced-mass devices on gimbaled payloads. [Washington, DC]: National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Program, 1992.

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28

Office, Home. The Breath Test Device Approval. Stationery Office Books, 1997.

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29

Office, Home. The Breath Test Device Approval. Stationery Office Books, 1997.

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30

The Breath Test Device Approval 1993. Stationery Office Books, 1993.

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31

The Breath Test Device (Scotland) Approval 1997. Stationery Office Books, 1997.

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32

A, Heasley Keith, ed. Evaluation of a punch shear test device. Phg [Pittsburgh], PA: U.S. Dept. of the Interior, Bureau of Mines, 1991.

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33

The Breath Test Device (No. 2) Approval 1993. Stationery Office Books, 1993.

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34

The Breath Test Device (No. 2) Approval 1993. Stationery Office Books, 1993.

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35

Mann, Laurie L. The Incomplete Man Test as a kindergarten screening device. 1985.

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36

Britain, Great. The Breath Test Device (Scotland) (No. 2) Approval 1997. Stationery Office Books, 1997.

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37

A, Iiyoshi, ed. Design study of the large helical device. Nagoya, Japan: National Institute for Fusion Science, 1990.

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38

United States. National Highway Traffic Safety Administration, ed. Review of biomechanical impact response and injury in the automotive environment: Phase 1 task B report : advanced anthropomorphic test device development program. [Washington, D.C.?]: U.S. Dept. of Transportation, National Highway Traffic Safety Administration, 1987.

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39

Vučković, Jelena. Quantum optics and cavity QED with quantum dots in photonic crystals. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198768609.003.0008.

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Quantum dots in optical nanocavities are interesting as a test-bed for fundamental studies of light–matter interaction (cavity quantum electrodynamics, QED), as well as an integrated platform for information processing. As a result of the strong field localization inside sub-cubic-wavelength volumes, these dots enable very large emitter–field interaction strengths. In addition to their use in the study of new regimes of cavity QED, they can also be employed to build devices for quantum information processing, such as ultrafast quantum gates, non-classical light sources, and spin–photon interfaces. Beside quantum information systems, many classical information processing devices, such as lasers and modulators, benefit greatly from the enhanced light–matter interaction in such structures. This chapter gives an introduction to quantum dots, photonic crystal resonators, cavity QED, and quantum optics on this platform, as well as possible device applications.
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40

Educational Testing Services. The Ets Test Collection Catalog Vol. 2: Vocational Tests and Measurement Devices. Oryx Press, 1987.

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41

The Breath Test Devices Approval 1992. Stationery Office Books, 1993.

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42

The Breath Test Devices Approval 1992. Stationery Office Books, 1992.

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43

Goodman, Wayne K., Nigel Kennedy, Kyle Lapidus, and Brian H. Kopell. Deep Brain Stimulation for Intractable OCD. Edited by Christopher Pittenger. Oxford University Press, 2017. http://dx.doi.org/10.1093/med/9780190228163.003.0046.

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This chapter discusses the use of deep brain stimulation (DBS) for intractable OCD. In contrast to ablative procedures, DBS has the advantages of being reversible (explantable) and adjustable. In 2010, the FDA approved a Humanitarian Device Exemption (HDE) for ventral capsule/ventral striatum DBS in intractable OCD, based upon the device’s safety and its probable benefit, for up to 4,000 people a year in the US. DBS is only suitable for adult patients who remain severely ill despite multiple medication trials and adequate treatment with cognitive behavioral therapy. Further research is needed to further test the efficacy of DBS in OCD, compare targets, identify predictors of response, and optimize programming. Future DBS systems may take advantage of closed loop technology in which feedback from the brain is used to adjust stimulation automatically according to the patient’s changing needs.
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44

Great Britain. Scottish Office Home and Health Department., ed. The breath test analysis devices approval 1992. Edinburgh: HMSO, 1993.

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45

Test devices for aeronautical research and technology. Washington, D.C: National Aeronautics and Space Administration, 1985.

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46

The Breath Test Analysis Devices Approval 1992. Stationery Office Books, 1993.

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47

Service, Educational Testing. The Ets Test Collection Catalog Volume 2 : Vocational Tests and Measurement Devices (E T S Test Collection Catalog 2nd ed). 2nd ed. Oryx Pr, 1995.

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48

Educational Testing Service Test Collect. The ETS Test Collection Catalog Volume 1 : Achievement Tests and Measurement Devices (E T S Test Collection Catalog 2nd ed). 2nd ed. Oryx Pr, 1992.

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49

United States. Food and Drug Administration, ed. New devices aim at improving pap test accuracy. [Rockville, MD: Dept. of Health and Human Services, Public Health Service, Food and Drug Administration, 1997.

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50

Center, Langley Research, ed. Environmental test program for superconducting materials and devices. [Clemson, S.C.]: Dept. of Ceramic Engineering, College of Engineering, Clemson University, 1991.

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