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Books on the topic 'Acoustics - Modelling'

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1

Etter, Paul C. Underwater Acoustic Modelling and Simulation. Taylor & Francis Group Plc, 2004.

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2

Ainslie, Michael A. Principles of sonar performance modelling. Springer, 2010.

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3

Noureddine, Atalla, ed. Propagation of sound in porous media: Modelling sound absorbing materials. 2nd ed. Wiley, 2009.

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4

Xiang, Ning. A mobile universal measuring system for the binaural-acoustic modelling-technique. Bundesanstalt für Arbeitsschutz, 1991.

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5

Hashimoto, Ken-ya. Surface Acoustic Wave Devices in Telecommunications: Modelling and Simulation. Springer Berlin Heidelberg, 2000.

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6

A, Mammoli A., and Brebbia C. A, eds. Moving boundaries VII: Computational modelling of free and moving boundary problems. WIT, 2004.

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7

Wong, Lawdy Siu Shan. Auditorium acoustic modelling based on chaotic realisation. Oxford Brookes University, 1999.

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8

Simms, Michael. Transmission -Line MAtrix Modelling of Acoustic Devices. University College Dublin, 1997.

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9

Round, Carl Graham. Mathematical modelling of acoustic cavitation and sonoluminescence. University of Birmingham, 1997.

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10

Willison, Peter A. Transmission line matrix modelling of underwater acoustic propagation. University of East Anglia, 1992.

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11

Hellström, Björn. Noise design: Architectural modelling and the aesthetics of urban acoustic space. Bo Ejeby Förlag., 2003.

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12

Owen, Raymond Harvey. Modelling of high frequency acoustic scattering from a moving rough surface. University of Birmingham, 1995.

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13

Meglio, Alberto Di. Finite element-boundary elements modelling of acoustic scattering from viscoelastic anechoic structures. University of Birmingham, 2000.

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14

Lynch, Kieran. Transmission line matrix modelling of acoustic waves, with application to dynamic boundary problems. University College Dublin, 1996.

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15

Allard, J. F. Propagation of sound in porous media: Modelling sound absorbing materials. 2nd ed. Wiley, 2009.

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16

Allard, J. F. Propagation of sound in porous media: Modelling sound absorbing materials. 2nd ed. Wiley, 2009.

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17

Ahmad, Javaid. Modelling, development and calibration of a wideband depth-capable source for ocean acoustic tomography. University of Birmingham, 1995.

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18

Propagation of sound in porous media: Modelling sound absorbing materials. Elsevier Applied Science, 1993.

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19

P. O. A. L. Davies. Predictive acoustic modelling applied to the control of intake/exhaust noise of internal combustion engines. University of Southampton, Institute of Sound and Vibration Research, 1996.

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20

Haase, W. DESider – A European Effort on Hybrid RANS-LES Modelling: Results of the European-Union Funded Project, 2004–2007. Springer Berlin Heidelberg, 2009.

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21

Essers, J. A. Development and implementation of a pressure propagation code applicable in spherical geometry to Euler/isentropic/acoustic modelling: Comparative treatment of shock-up and refection on simplified rigid or elastic obstacles. Commission of the European Communities, 1987.

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22

Vorländer, Michael. Auralization: Fundamentals of Acoustics, Modelling, Simulation, Algorithms and Acoustic Virtual Reality. Springer London, Limited, 2007.

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23

Auralization Fundamentals Of Acoustics Modelling Simulation Algorithms And Acoustic Virtual Reality. Springer, 2011.

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24

Vorländer, Michael. Auralization: Fundamentals of Acoustics, Modelling, Simulation, Algorithms and Acoustic Virtual Reality. Springer International Publishing AG, 2021.

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25

Vorländer, Michael. Auralization: Fundamentals of Acoustics, Modelling, Simulation, Algorithms and Acoustic Virtual Reality. Springer, 2020.

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26

Computational Modelling and Electrical Engineering in Acoustics. Taylor & Francis Ltd, 2008.

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27

Auralization: Fundamentals of Acoustics, Modelling, Simulation, Algorithms and Acoustic Virtual Reality (RWTHedition). Springer, 2007.

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28

Underwater Acoustic Modelling and Simulation. Taylor & Francis Group, 2013.

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29

Etter, Paul C. Underwater Acoustics Modelling and Simulation: Principles, Techniques and Applications. Taylor & Francis, 2003.

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30

Loudspeaker Modelling and Design. Taylor & Francis Group, 2018.

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31

Hill, Geoff. Loudspeaker Modelling and Design. Taylor & Francis Group, 2018.

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32

Lam, Y. W. Computational Modelling & Electronic Engineering in Acoustics: Basic Principles and Applications. Taylor & Francis, 2009.

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33

Lam, Y. W., and Y. W. Lam. Computational Modelling & Electronic Engineering in Acoustics: Basic Principles and Applications. Taylor & Francis Group, 2011.

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34

Gomar, David Almorza, Spain) International Conference on Modelling and Experimental Measurements in Acoustics (3rd : 2003 : Cadiz, and Ricardo Hernandez Molina. Modelling and Experimental Measurements in Acoustics III (Computational and Experimental Methods). WIT Press (UK), 2003.

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35

Hill, Geoff. Loudspeaker Modelling and Design: A Practical Introduction. Taylor & Francis Group, 2018.

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36

Hill, Geoff. Loudspeaker Modelling and Design: A Practical Introduction. Taylor & Francis Group, 2018.

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37

Hill, Geoff. Loudspeaker Modelling and Design: A Practical Introduction. Taylor & Francis Group, 2018.

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38

Flow Modelling & Turbulence Measurements. Taylor & Francis, 1996.

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39

Mammoli, A. A., INTERNATIONAL CONFERENCE ON COMPUTATIONA, and C. A. Brebbia. Moving Boundaries VII: Computational Modelling of Free and Moving Boundary Problems (Computational and Experimental Methods). WIT Press (UK), 2003.

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40

Etter, P. C. Underwater Acoustic Modelling and Simulation. Taylor & Francis Group, 2003.

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41

Underwater Acoustic Modelling and Simulation. Taylor & Francis Group, 2003.

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42

Surface Acoustic Wave Devices in Telecommunications: Modelling and Simulation (Engineering Online Library). Springer, 2000.

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43

Neugebauer, Moritz. Constraint-based Acoustic Modelling (Sprache, Sprechen Und Computer). Peter Lang Publishing, 2007.

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44

Constraint-based Acoustic Modelling (Sprache, Sprechen Und Computer). Peter Lang Publishing, 2007.

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45

Lamel, Lori, and Jean-Luc Gauvain. Speech Recognition. Edited by Ruslan Mitkov. Oxford University Press, 2012. http://dx.doi.org/10.1093/oxfordhb/9780199276349.013.0016.

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Speech recognition is concerned with converting the speech waveform, an acoustic signal, into a sequence of words. Today's approaches are based on a statistical modellization of the speech signal. This article provides an overview of the main topics addressed in speech recognition, which are, acoustic-phonetic modelling, lexical representation, language modelling, decoding, and model adaptation. Language models are used in speech recognition to estimate the probability of word sequences. The main components of a generic speech recognition system are, main knowledge sources, feature analysis, a
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46

Modelling, Simulation and Data Analysis in Acoustical Problems. MDPI, 2020. http://dx.doi.org/10.3390/books978-3-03928-285-2.

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47

Hui, Wang. Boundary integral modelling of transient wave propagation with application to acoustic radiation from loudspeakers. 2004.

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48

Allard, J. F. Propagation of Sound in Porous Media: Modelling Sound Absorbing Materials. Springer London, Limited, 2012.

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49

Propagation of Sound in Porous Media: Modelling Sound Absorbing Materials. Chapman & Hall, 1994.

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