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I METADATI DI QUESTO DOI SONO STATI AGGIORNATI IL: 2025-09-22 16:12

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10.3280/ria1-2025oa19121

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Elenco citazioni del 10.3280/ria1-2025oa19121

Citazione non strutturata

N.A. Lesica, Why Do Hearing Aids Fail to Restore Normal Auditory Perception?, Trends in Neurosciences 41 (2018) 174–185.

https://doi.org/10.1016/j.tins.2018.01.008.


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V. Hohmann, R. Paluch, M. Krueger, M. Meis, G. Grimm, The Virtual Reality Lab: Realization and Application of Vir-tual Sound Environments, Ear & Hearing 41 (2020) 31S-38S.

https://doi.org/10.1097/AUD.0000000000000945.


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Y.-H. Wu, E. Stangl, O. Chipara, S.S. Hasan, S. DeVries, J. Oleson, Efficacy and Effectiveness of Advanced Hearing Aid Directional and Noise Reduction Technologies for Older Adults With Mild to Moderate Hearing Loss, Ear & Hearing 40 (2019) 805–822.

https://doi.org/10.1097/AUD.0000000000000672.


Citazione non strutturata

R.A. Bentler, Effectiveness of Directional Microphones and Noise Reduction Schemes in Hearing Aids: A System-atic Review of the Evidence, J Am Acad Audiol 16 (2005) 473–484.

https://doi.org/10.3766/jaaa.16.7.7.


Citazione non strutturata

M.T. Cord, R.K. Surr, B.E. Walden, O. Dyrlund, Relation-ship between Laboratory Measures of Directional Ad-vantage and Everyday Success with Directional Micro-phone Hearing Aids, J Am Acad Audiol 15 (2004) 353–364.

https://doi.org/10.3766/jaaa.15.5.3.


Citazione non strutturata

G. Llorach Tó, G. Grimm, M. Hendrikse, V. Hohmann, To-wards Realistic Immersive Audiovisual Simulations for Hearing Research: Capture, Virtual Scenes and Reproduc-tion, 2018.

https://doi.org/10.1145/3264869.3264874.


Citazione non strutturata

G. Grimm, J. Luberadzka, V. Hohmann, A Toolbox for Ren-dering Virtual Acoustic Environments in the Context of Audiology, Acta Acustica United with Acustica 105 (2019) 566–578.

https://doi.org/10.3813/AAA.919337.


Citazione non strutturata

T. Huisman, A. Ahrens, E. MacDonald, Ambisonics Sound Source Localization With Varying Amount of Visual Infor-mation in Virtual Reality, Frontiers in Virtual Reality 2 (2021). https://www.frontiersin.org/journals/virtual-reality/articles/

https://doi.org/10.3389/frvir.2021.722321.


Citazione non strutturata

A. Guastamacchia, R.G. Rosso, G.E. Puglisi, F. Riente, L. Shtrepi, A. Astolfi, Real and Virtual Lecture Rooms: Valida-tion of a Virtual Reality System for the Perceptual As-sessment of Room Acoustical Quality, Acoustics 6 (2024) 933–965.

https://doi.org/10.3390/acoustics6040052.


Citazione non strutturata

F. Pausch, G. Behler, J. Fels, SCaLAr – A surrounding spherical cap loudspeaker array for flexible generation and evaluation of virtual acoustic environments, Acta Acust. 4 (2020) 19.

https://doi.org/10.1051/aacus/2020014.


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G.D. Romigh, D.S. Brungart, B.D. Simpson, Free-Field Lo-calization Performance With a Head-Tracked Virtual Audi-tory Display, IEEE J. Sel. Top. Signal Process. 9 (2015) 943–954.

https://doi.org/10.1109/JSTSP.2015.2421874.


Citazione non strutturata

F. Zotter, M. Frank, Ambisonic Amplitude Panning and Decoding in Higher Orders, in: F. Zotter, M. Frank (Eds.), Ambisonics: A Practical 3D Audio Theory for Recording, Studio Production, Sound Reinforcement, and Virtual Re-ality, Springer International Publishing, Cham, 2019: pp. 53–98.

https://doi.org/10.1007/978-3-030-17207-7_4.


Citazione non strutturata

F. Zotter, M. Frank, All-Round Ambisonic Panning and De-coding, Journal of the Audio Engineering Society 60 (2012) 807–820.


Citazione non strutturata

V. Pulkki, Spatial Sound Generation and Perception by Amplitude Panning Techniques, (2001).


Citazione non strutturata

J. Blauert, Spatial Hearing: The Psychophysics of Human Sound Localization, The MIT Press, 1996.

https://doi.org/10.7551/mitpress/6391.001.0001.


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A. Carlini, C. Bordeau, M. Ambard, Auditory localization: a comprehensive practical review, Frontiers in Psychology 15 (2024). https://www.frontiersin.org/journals/psychology/articles/

https://doi.org/10.3389/fpsyg.2024.1408073.


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J. Blauert, Sound Localization in the Median Plane, Acta Acustica United with Acustica 22 (1969).


Citazione non strutturata

A.W. Mills, On the Minimum Audible Angle, The Journal of the Acoustical Society of America 30 (1958) 237–246.

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W. Grantham, B. Hornsby, E. Erpenbeck, Auditory spatial resolution in horizontal, vertical, and diagonal planes, The Journal of the Acoustical Society of America 114 (2003) 1009–22.

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D.R. Perrott, K. Saberi, Minimum audible angle thresholds for sources varying in both elevation and azimuth, The Journal of the Acoustical Society of America 87 (1990) 1728–1731.

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Citazione non strutturata

K. Sochaczewska, P. Malecki, M. Piotrowska, Evaluation of the Minimum Audible Angle on Horizontal Plane in 3rd order Ambisonic Spherical Playback System, 2021.

https://doi.org/10.1109/I3DA48870.2021.9610858.


Citazione non strutturata

R. Meng, J. Xiang, J. Sang, C. Zheng, X. Li, S. Bleeck, J. Cai, J. Wang, Investigation of an MAA Test With Virtual Sound Synthesis, Frontiers in Psychology 12 (2021). https://www.frontiersin.org/journals/psychology/articles/

https://doi.org/10.3389/fpsyg.2021.656052.


Citazione non strutturata

J. Cooper, Immersive Audiovisual Materials Database, (2024).

https://doi.org/10.5281/ZENODO.10571315.


Citazione non strutturata

M. Wright, A. Freed, OSC, (2021). https://ccrma.stanford.edu/groups/osc/index.html (ac-cessed December 5, 2024).


Citazione non strutturata

S. Ciba, A. Wlodarski, H.-J. Maempel, WhisPER – A New Tool for Performing Listening Tests, 126th Audio Engi-neering Society Convention 2009 1 (2012).


Citazione non strutturata

H. Levitt, Transformed Up-Down Methods in Psychoacous-tics, The Journal of the Acoustical Society of America 49 (1971) Suppl 2:467+.

https://doi.org/10.1121/1.1912375.


Citazione non strutturata

B. Hagerman, Sentences for Testing Speech Intelligibility in Noise, Scandinavian Audiology 11 (1982) 79–87.

https://doi.org/10.3109/01050398209076203.


Citazione non strutturata

G.E. Puglisi, A. Warzybok, S. Hochmuth, C. Visentin, A. Astolfi, N. Prodi, B. Kollmeier, An Italian matrix sentence test for the evaluation of speech intelligibility in noise, International Journal of Audiology 54 (2015) 44–50.

https://doi.org/10.3109/14992027.2015.1061709.


Citazione non strutturata

J. Beatty, Task-evoked pupillary responses, processing load, and the structure of processing resources., Psycho-logical Bulletin 91 (1982) 276–292.

https://doi.org/10.1037/0033-2909.91.2.276. https://doi.org/10.1037//0033-2909.91.2.276


Citazione non strutturata

M.B. Winn, D. Wendt, T. Koelewijn, S.E. Kuchinsky, Best Practices and Advice for Using Pupillometry to Measure Listening Effort: An Introduction for Those Who Want to Get Started, Trends in Hearing 22 (2018) 2331216518800869.

https://doi.org/10.1177/2331216518800869.