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1

Dey, Nilanjan, Amira S. Ashour, Waleed S. Mohamed, and Nhu Gia Nguyen. Acoustic Sensors for Biomedical Applications. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-319-92225-6.

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2

Piezoelectric sensorics: Force, strain, pressure, acceleration and acoustic emission sensors, materials and amplifiers. Berlin: Springer, 2002.

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3

Deng, Zhiping. Acoustic wave sensors for aroma components using conducting polymer films. Ottawa: National Library of Canada = Bibliothèque nationale du Canada, 1997.

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4

C, Stone David, ed. Surface-launched acoustic wave sensors: Chemical sensing and thin-film characterization. New York: Wiley, 1997.

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5

Glennie, Derek John. Fiber optic sensors for the detection of surface acoustic waves on metals. [Downsview, Ont.]: University of Toronto, [Institute for Aerospace Studies], 1993.

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6

Parrott, Tony L. Pressure probe and hot-film probe response to acoustic excitation in mean flow. Hampton, Va: Langley Research Center, 1986.

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7

Ferguson, Suzanne Marie. The detection of damage induced acoustic emission in advanced composite materials using embedded optical fibre sensors. Ottawa: National Library of Canada, 1990.

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8

Chiu, Foun Ling. Network analysis method applied to the studies of protein absorption on the thickness-shear wave mode acoustic wave sensors. Ottawa: National Library of Canada, 1993.

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9

Xiao, Yang. Underwater acoustic sensor networks. Boca Raton: Auerbach Publications, 2010.

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10

Busch-Vishniac, Ilene J. Electromechanical Sensors and Actuators. New York, NY: Springer New York, 1999.

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11

Dong, Yangze. Wang luo hua shui sheng dui kang ji shu. Beijing: Dian zi gong ye chu ban she, 2012.

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12

Vernede, L. Multiple acoustic sensor detection system. Manchester: UMIST, 1993.

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13

Optical, acoustic, magnetic, and mechanical sensor technologies. Boca Raton: Taylor & Francis, 2012.

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14

Iniewski, Krzysztof. Optical, acoustic, magnetic, and mechanical sensor technologies. Boca Raton: Taylor & Francis, 2012.

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15

Martini, Marinna A. Benthic acoustic stress sensor (BASS): Electronics check-out procedures. [Reston, Va.]: U.S. Dept. of the Interior, Geological Survey, 1994.

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16

Martini, Marinna A. Benthic acoustic stress sensor (BASS): Electronics check-out procedures. [Reston, Va.]: U.S. Dept. of the Interior, Geological Survey, 1994.

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17

Glennie, Derek John. Fiber optic sensors for the detection of surface acoustics waves on metals. Ottawa: National Library of Canada, 1993.

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18

Hoyt, Joshua K. The flying fish: An untethered oceanographic sensor platform with acoustic homing capability. Woods Hole, Mass: Woods Hole Oceanographic Institution, 1986.

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19

SIGMOBILE, ACM, and International Conference on Mobile Computing and Networking (2006 : Los Angeles, Calif.), eds. WUWNet 2006: Proceedings of the First ACM International Workshop on Underwater Networks (part of MobiCom 2006) : September 25, 2006, Los Angeles, California, USA. New York: Association for Computing Machinery, 2006.

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20

Ultrasonic transducers: Materials and design for sensors, actuators and medical applications. Cambridge [u.a.]: Woodhead Pub., 2012.

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21

service), SpringerLink (Online, ed. Sensors, Instrumentation and Special Topics, Volume 6: Proceedings of the 29th IMAC, A Conference on Structural Dynamics, 2011. New York, NY: The Society for Experimental Mechanics, Inc., 2011.

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22

Morrison, Archie Todd. Development of the BASS Rake Acoustic Current Sensor: Measuring velocity in the continental shelf wave bottom boundary layer. Woods Hole, Mass: Woods Hole Oceanographic Institution, 1997.

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23

A, Altschuler Richard, Bobbin Richard P, and Hoffman Douglas W, eds. Neurobiology of hearing: The cochlea. New York: Raven Press, 1986.

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24

International Sensory Aid Conference (1996 Sint-Michielsgestel, The Netherlands). International Sensory Aid Conference: On the development and evaluation of tactile, acoustic and electric prostheses for people with minimal auditory capacities. Oslo, Norway: Scandinavian University Press, 1997.

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25

Montgomery, Ellyn T. Report on sediment transport events on shelf and slope (STRESS) field season 1: Winter 1988-1989 benthic acoustic stress sensor (BASS) component. Woods Hole, Mass: Woods Hole Oceanographic Institution, 1989.

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26

Senses of vibration: A history of the pleasure and pain of sound. New York: Continuum, 2012.

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27

Acoustic Wave Sensors. Elsevier, 1997. http://dx.doi.org/10.1016/b978-0-12-077460-9.x5000-x.

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28

Dey, Nilanjan. Acoustic Sensors for Biomedical Applications. Springer, 2018.

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29

Editor), Moises Levy (Series, and Richard Stern (Series Editor), eds. Acoustic Wave Sensors: Theory, Design, & Physico-Chemical Applications (Applications of Modern Acoustics). Academic Press, 1996.

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30

Ballantine, Jr D. S., Robert M. White, S. J. Martin, Antonio J. Ricco, E. T. Zellers, G. C. Frye, and H. Wohltjen. Acoustic Wave Sensors: Theory, Design, & Physico-Chemical Applications (Applications of Modern Acoustics). Academic Press, 1996.

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31

Acoustic particle velocity sensors: Design, performance, and applications : Mystic, CT, September 1995. Woodbury, N.Y: AIP Press, 1996.

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32

Wich, Serge A., and Lian Pin Koh. Sensors. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198787617.003.0003.

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The number of sensors that can be fitted and/or have been specifically designed to be fitted to drones is expanding rapidly. This chapter provides an overview of the various types of sensors used on drones for conservation research and monitoring, including RGB cameras, multispectral and hyperspectral cameras, and thermal imaging cameras. Increasing miniaturization means LiDAR and synthetic aperture radar (SAR) sensors can now also be fitted to drones, and they are also discussed briefly, as are a number of other types (e.g. acoustic and gas sensors) now being developed. Because most conservation researchers will start with a specific question and then explore which sensor or set of sensors will be suitable for their data collection, we approach the sensor issue from the application end. Some technical information on the sensors is provided as well as an overview of the various studies that they have been used for.
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33

Kaniusas, Eugenijus. Biomedical Signals and Sensors II: Linking Acoustic and Optic Biosignals and Biomedical Sensors. Springer London, Limited, 2015.

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34

Kaniusas, Eugenijus. Biomedical Signals and Sensors II: Linking Acoustic and Optic Biosignals and Biomedical Sensors. Springer, 2016.

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35

Kaniusas, Eugenijus. Biomedical Signals and Sensors II: Linking Acoustic and Optic Biosignals and Biomedical Sensors. Springer, 2015.

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36

Stephen, Ballantine David, ed. Acoustic wave sensors: Theory, design, and physico-chemical applications. San Diego: Academic Press, 1997.

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37

Acoustic wave sensors : theory, design, and physico-chemical applications. 1997.

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38

Gautschi, Gustav. Piezoelectric Sensorics: Force Strain Pressure Acceleration And Acoustic Emission Sensors Materials And Amplifiers. Springer, 2011.

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39

Gautschi, Gustav. Piezoelectric Sensorics: Force Strain Pressure Acceleration and Acoustic Emission Sensors Materials and Amplifiers. Springer London, Limited, 2013.

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40

Bell, M. C. Determination of ethylene oxide and nitrobenzene using surface acoustic wave sensors. Manchester, 1996.

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41

Detection of in-plane displacements of acoustic wave fields using extrinsic Fizeau fiber interferometric sensors. [Washington, DC: National Aeronautics and Space Administration, 1991.

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42

Detection of in-plane displacements of acoustic wave fields using extrinsic Fizeau fiber interferometric sensors. [Washington, DC: National Aeronautics and Space Administration, 1991.

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43

United States. National Aeronautics and Space Administration., ed. Detection of in-plane displacements of acoustic wave fields using extrinsic Fizeau fiber interferometric sensors. [Washington, DC: National Aeronautics and Space Administration, 1991.

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44

Quinn, Rory. Acoustic Remote Sensing in Maritime Archaeology. Edited by Ben Ford, Donny L. Hamilton, and Alexis Catsambis. Oxford University Press, 2012. http://dx.doi.org/10.1093/oxfordhb/9780199336005.013.0003.

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This article offers an introduction to acoustic remote sensing. In shipwreck studies, acoustic remote sensing has traditionally been used for reconnaissance surveys and for site relocation. With the advent of higher-resolution sonar systems, the focus in shipwreck studies has shifted toward site reconstruction and studies of site formation. Acoustic systems provide baseline data at rates higher than those of experienced dive teams. This article describes how acoustic data is generated. It describes the profiling methods such as single-beam echo-sounders and sub-bottom profilers, and swath methods such as side-scan sonar and multibeam echo-sounders. The last few years have seen developments of multielement sonar platforms, which allow for the acquisition of true concurrent sonar data sets from one platform. Every phase of development in sonar technology brings an increase in sensors' resolving capability and therefore the ability to image smaller and smaller artifacts in greater detail.
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45

Tassew, Nardos Gobena. Characterization of the HIV-1 TAR RNA-Tat peptide and drug interactions by on-line acoustic wave sensors. 2003, 2003.

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46

(Editor), Marilyn G. Berliner, and Jan F. Lindberg (Editor), eds. Acoustic Velocity Sensor Focused Workshop (AIP Conference Proceedings). American Institute of Physics, 1998.

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47

Underwater Acoustic Sensor Networks. AUERBACH, 2008.

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48

Yang, Xiao. Underwater Acoustic Sensor Networks. Taylor & Francis Group, 2019.

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49

Xiao, Yang, ed. Underwater Acoustic Sensor Networks. Auerbach Publications, 2010. http://dx.doi.org/10.1201/9781420067125.

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50

Yang, Xiao. Underwater Acoustic Sensor Networks. Auerbach Publishers, Incorporated, 2010.

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