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Trends in Hearing|September 23, 2020
Estimating Hearing Thresholds From Stimulus-Frequency Otoacoustic EmissionsQin Gong, Yin Liu, Zewen PengTrends in Hearing|November 24, 2021
Objective Assessment System for Hearing Prediction Based on Stimulus-Frequency Otoacoustic EmissionsQin Gong, Yin Liu, Runyi Xu, et al.Ear and Hearing|November 22, 2023
Deep Learning Models for Predicting Hearing Thresholds Based on Swept-Tone Stimulus-Frequency Otoacoustic EmissionsYin Liu, Qin GongAnnual International Conference of the IEEE Engineering in Medicine and Biology Society. IEEE Engineering in Medicine and Biology Society. Annual International Conference|October 6, 2020
Analyzing Stimulus-frequency Otoacoustic Emission Fine Structure Using an Additive Model<sup>.</sup>Yin Liu, Fei Ji, Qin GongInternational Journal of Audiology|September 22, 2020
Maximising the ability of stimulus-frequency otoacoustic emissions to predict hearing status and thresholds using machine-learning modelsYin Liu, Runyi Xu, Qin GongJournal of Speech, Language, and Hearing Research : JSLHR|November 5, 2020
Human Auditory-Frequency Tuning Is Sensitive to Tonal Language ExperienceYin Liu, Runyi Xu, Qin GongFrontiers in Neuroscience|March 16, 2019
Frequency-Following Responses to Complex Tones at Different Frequencies Reflect Different Source ConfigurationsXiaochen Zhang, Qin GongHearing Research|December 14, 2016
Correlation between the frequency difference limen and an index based on principal component analysis of the frequency-following response of normal hearing listenersXiaochen Zhang, Qin GongNeuroreport|May 25, 2017
Frequency specificity and left-ear advantage of medial olivocochlear efferent modulation: a study based on stimulus frequency otoacoustic emissionDongjia Xing, Qin GongBiomedical Engineering Online|August 11, 2014
Frequency difference beyond behavioral limen reflected by frequency following response of human auditory BrainstemQin Xu, Qin GongPageof 188