An Ear Canal Transmission Model Applied to an Ear Simulator and Compared to Finite Element Modelling

被引:0
作者
Sinev, Daniil [1 ]
Fontbonne, Martin [2 ]
Mick, Kurt [1 ]
Foudhaili, Hatem [1 ]
Peissig, Juergen [3 ]
机构
[1] Sennheiser Elect GmbH & Co KG, Wedemark, Germany
[2] Le Mans Univ, Le Mans, France
[3] Leibniz Univ Hannover, Inst Kommunikationstech, Hannover, Germany
来源
2021 IMMERSIVE AND 3D AUDIO: FROM ARCHITECTURE TO AUTOMOTIVE (I3DA) | 2021年
关键词
virtual reality; binaural rendering; electroacoustics; finite element methods; ear canal; HUMAN MIDDLE-EAR; SOUND-PRESSURE; BASIC PROPERTIES; PREDICTION; EARDRUM; LEVEL; DRUM;
D O I
10.1109/I3DA48870.2021.9610930
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Virtual reality audio primarily relies on binaural rendering, which in turn is based on providing specifically processed audio signals to the listener. However, most of the time, these precisely calculated signals are played over headphones under the assumption that the transmission through the ear canal would not significantly modify them. While this is true for low frequencies, it most certainly is not for higher ones, especially when using closed in-ear earphones. Although it is impractical to include the ear canal transmission in a binaural model or measured HRTFs, as it depends on the model and fit of the headphones among other things, modelling it at the time of rendering is possible. The model would have to be specific to the individual as well as the headphones/earphones used, and its parameters would have to be determined using data that can be realistically obtained just before or during a listening session, without invasive and/or complicated procedures. A method to build such a model is proposed, using measurements from sensors that could be built into an earphone. The method is tested on an ear simulator in laboratory conditions using a custom setup. Model results are validated by acoustic measurements and compared to finite element method simulations in COMSOL.
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页数:9
相关论文
共 25 条
  • [11] Methods for estimating the sound pressure at the eardrum
    Hudde, H
    Engel, A
    Lodwig, A
    [J]. JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1999, 106 (04) : 1977 - 1992
  • [12] ACOUSTICAL WAVE-PROPAGATION IN CYLINDRICAL DUCTS - TRANSMISSION-LINE PARAMETER APPROXIMATIONS FOR ISOTHERMAL AND NON-ISOTHERMAL BOUNDARY-CONDITIONS
    KEEFE, DH
    [J]. JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1984, 75 (01) : 58 - 62
  • [13] Modeling of the human middle ear using the finite-element method
    Koike, T
    Wada, H
    Kobayashi, T
    [J]. JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2002, 111 (03) : 1306 - 1317
  • [14] Finite-Element Modelling of the Acoustic Input Admittance of the Newborn Ear Canal and Middle Ear
    Motallebzadeh, Hamid
    Maftoon, Nima
    Pitaro, Jacob
    Funnell, W. Robert J.
    Daniel, Sam J.
    [J]. JARO-JOURNAL OF THE ASSOCIATION FOR RESEARCH IN OTOLARYNGOLOGY, 2017, 18 (01): : 25 - 48
  • [15] Mueller H G, 2001, Trends Amplif, V5, P35, DOI 10.1177/108471380100500202
  • [16] Comparison between intensity and pressure as measures of sound level in the ear canal
    Neely, ST
    Gorga, MP
    [J]. JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1998, 104 (05) : 2925 - 2934
  • [17] Oksanen S., 2012, AUD ENG SOC C 47 INT
  • [18] The role of individualized headphone calibration for the generation of high fidelity virtual auditory space
    Pralong, D
    Carlile, S
    [J]. JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1996, 100 (06) : 3785 - 3793
  • [19] Sankowsky-Rothe T., 2012, ACOUSTICS 2012
  • [20] Prediction of the Sound Pressure at the Ear Drum in Occluded Human Ears
    Sankowsky-Rothe, Tobias
    Blau, Matthias
    Rasumow, Eugen
    Mojallal, Hamidreza
    Teschner, Magnus
    Thiele, Cornelia
    [J]. ACTA ACUSTICA UNITED WITH ACUSTICA, 2011, 97 (04) : 656 - 668