Literature DB >> 33261382

Measurements of ear-canal cross-sectional areas from live human ears with implications for wideband acoustic immittance measurements.

Susan E Voss1, Nicholas J Horton2, Katherine E Fairbank1, Lu Xia1, Lauren R K Tinglin1, Kathryn D Girardin3.   

Abstract

Wideband acoustic immittance (WAI) measures are noninvasive diagnostic measurements that require an estimate of the ear canal's area at the measurement location. Yet, physical measurements of the area at WAI probe locations are lacking. Methods to measure ear-canal areas from silicone molds were developed and applied to 169 subjects, ages 18-75 years. The average areas at the canal's first bend and at 12 mm insertion depth, which are likely WAI probe locations, were 63.4 ± 13.5 and 61.6 ± 13.5 mm2, respectively. These areas are substantially larger than those assumed by current FDA-approved WAI measurement devices as well as areas estimated with acoustical methods or measured on cadaver ears. Left and right ears from the same subject had similar areas. Sex, height, and weight were not significant factors in predicting area. Age cohort was a significant predictor of area, with area increasing with decade of life. A subset of areas from the youngest female subjects did not show an effect of race on area (White or Chinese). Areas were also measured as a function of insertion depth of 4.8-13.2 mm from the canal entrance; area was largest closest to the canal entrance and systematically decreased with insertion depth.

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Year:  2020        PMID: 33261382      PMCID: PMC7791892          DOI: 10.1121/10.0002358

Source DB:  PubMed          Journal:  J Acoust Soc Am        ISSN: 0001-4966            Impact factor:   1.840


  13 in total

1.  Sources of variability in reflectance measurements on normal cadaver ears.

Authors:  Susan E Voss; Nicholas J Horton; Rebecca R Woodbury; Kathryn N Sheffield
Journal:  Ear Hear       Date:  2008-08       Impact factor: 3.570

2.  Consensus statement: Eriksholm workshop on wideband absorbance measures of the middle ear.

Authors:  M Patrick Feeney; Lisa L Hunter; Joseph Kei; David J Lilly; Robert H Margolis; Hideko Heidi Nakajima; Stephen T Neely; Beth A Prieve; John J Rosowski; Chris A Sanford; Kim S Schairer; Navid Shahnaz; Stefan Stenfelt; Susan E Voss
Journal:  Ear Hear       Date:  2013-07       Impact factor: 3.570

3.  Comparison of nine methods to estimate ear-canal stimulus levels.

Authors:  Natalie N Souza; Sumitrajit Dhar; Stephen T Neely; Jonathan H Siegel
Journal:  J Acoust Soc Am       Date:  2014-10       Impact factor: 1.840

4.  Intrasubject variability in power reflectance.

Authors:  Defne Abur; Nicholas J Horton; Susan E Voss
Journal:  J Am Acad Audiol       Date:  2014-05       Impact factor: 1.664

5.  Specification of the geometry of the human ear canal for the prediction of sound-pressure level distribution.

Authors:  M R Stinson; B W Lawton
Journal:  J Acoust Soc Am       Date:  1989-06       Impact factor: 1.840

6.  Longitudinal data analysis for discrete and continuous outcomes.

Authors:  S L Zeger; K Y Liang
Journal:  Biometrics       Date:  1986-03       Impact factor: 2.571

7.  Compensating for evanescent modes and estimating characteristic impedance in waveguide acoustic impedance measurements.

Authors:  Kren Rahbek Nørgaard; Efren Fernandez-Grande; Søren Laugesen
Journal:  J Acoust Soc Am       Date:  2017-12       Impact factor: 1.840

8.  Resource Review.

Authors:  Susan E Voss
Journal:  Ear Hear       Date:  2019 Nov/Dec       Impact factor: 3.570

9.  Procedures for ambient-pressure and tympanometric tests of aural acoustic reflectance and admittance in human infants and adults.

Authors:  Douglas H Keefe; Lisa L Hunter; M Patrick Feeney; Denis F Fitzpatrick
Journal:  J Acoust Soc Am       Date:  2015-12       Impact factor: 1.840

10.  Ear-canal impedance and reflection coefficient in human infants and adults.

Authors:  D H Keefe; J C Bulen; K H Arehart; E M Burns
Journal:  J Acoust Soc Am       Date:  1993-11       Impact factor: 1.840

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