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Audiometric predictions using stimulus-frequency otoacoustic emissions and middle ear measurements.
Ear Hear. 2005 Oct;26(5):487-503. doi: 10.1097/01.aud.0000179692.81851.3b.
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[Effect of inner ear hearing loss on delayed otoacoustic emissions (TEOAE) and distortion products (DPOAE)].
Laryngorhinootologie. 1996 Dec;75(12):709-18. doi: 10.1055/s-2007-997664.
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Exploring the Influence of Extended High-Frequency Hearing on Cochlear Functioning at Lower Frequencies.
J Speech Lang Hear Res. 2024 Jul 9;67(7):2473-2482. doi: 10.1044/2024_JSLHR-23-00652. Epub 2024 May 31.
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Estimating Hearing Thresholds From Stimulus-Frequency Otoacoustic Emissions.
Trends Hear. 2020 Jan-Dec;24:2331216520960053. doi: 10.1177/2331216520960053.
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Profiles of Stimulus-Frequency Otoacoustic Emissions from 0.5 to 20 kHz in Humans.
J Assoc Res Otolaryngol. 2017 Feb;18(1):89-110. doi: 10.1007/s10162-016-0588-2. Epub 2016 Sep 28.
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Deep Learning Models for Predicting Hearing Thresholds Based on Swept-Tone Stimulus-Frequency Otoacoustic Emissions.
Ear Hear. 2024;45(2):465-475. doi: 10.1097/AUD.0000000000001443. Epub 2023 Nov 22.
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Reliability and clinical test performance of cochlear reflectance.
Ear Hear. 2015 Jan;36(1):111-24. doi: 10.1097/AUD.0000000000000089.

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Detection of mild sensory hearing loss using a joint reflection-distortion otoacoustic emission profile.
J Acoust Soc Am. 2024 Oct 1;156(4):2220-2236. doi: 10.1121/10.0030399.
2
Characterizing a Joint Reflection-Distortion OAE Profile in Humans With Endolymphatic Hydrops.
Ear Hear. 2023;44(6):1437-1450. doi: 10.1097/AUD.0000000000001387. Epub 2023 Jul 14.
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Characterizing the Relationship Between Reflection and Distortion Otoacoustic Emissions in Normal-Hearing Adults.
J Assoc Res Otolaryngol. 2022 Oct;23(5):647-664. doi: 10.1007/s10162-022-00857-z. Epub 2022 Jul 8.
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Objective Assessment System for Hearing Prediction Based on Stimulus-Frequency Otoacoustic Emissions.
Trends Hear. 2021 Jan-Dec;25:23312165211059628. doi: 10.1177/23312165211059628.
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Reflection-Source Emissions Evoked with Clicks and Frequency Sweeps: Comparisons Across Levels.
J Assoc Res Otolaryngol. 2021 Dec;22(6):641-658. doi: 10.1007/s10162-021-00813-3. Epub 2021 Oct 4.
6
Estimating Hearing Thresholds From Stimulus-Frequency Otoacoustic Emissions.
Trends Hear. 2020 Jan-Dec;24:2331216520960053. doi: 10.1177/2331216520960053.
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Relationship Between Behavioral and Stimulus Frequency Otoacoustic Emissions Delay-Based Tuning Estimates.
J Speech Lang Hear Res. 2020 Jun 22;63(6):1958-1968. doi: 10.1044/2020_JSLHR-19-00386. Epub 2020 May 28.
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Swept-Tone Stimulus-Frequency Otoacoustic Emissions in Human Newborns.
Trends Hear. 2019 Jan-Dec;23:2331216519889226. doi: 10.1177/2331216519889226.
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Cochlear Reflectance and Otoacoustic Emission Predictions of Hearing Loss.
Ear Hear. 2019 Jul/Aug;40(4):951-960. doi: 10.1097/AUD.0000000000000677.

本文引用的文献

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Age effects in the human middle ear: wideband acoustical measures.
J Acoust Soc Am. 2004 Dec;116(6):3546-58. doi: 10.1121/1.1808221.
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Energy transmittance predicts conductive hearing loss in older children and adults.
J Acoust Soc Am. 2003 Dec;114(6 Pt 1):3217-38. doi: 10.1121/1.1625931.
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A normative study of tympanic membrane motion in humans using a laser Doppler vibrometer (LDV).
Hear Res. 2004 Jan;187(1-2):85-104. doi: 10.1016/s0378-5955(03)00332-0.
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Wideband energy reflectance measurements in adults with middle-ear disorders.
J Speech Lang Hear Res. 2003 Aug;46(4):901-11. doi: 10.1044/1092-4388(2003/070).
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Medial olivocochlear efferent reflex in humans: otoacoustic emission (OAE) measurement issues and the advantages of stimulus frequency OAEs.
J Assoc Res Otolaryngol. 2003 Dec;4(4):521-40. doi: 10.1007/s10162-002-3037-3. Epub 2003 Jun 13.

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