{"id":{"repo_id":"soton","oai_identifier":"oai:eprints.soton.ac.uk:175357"},"canonical_url":"https://search.dev.ndltd.org/etd/soton/oai:eprints.soton.ac.uk:175357","repository":{"repo_id":"soton","name":"University of Southampton","base_url":"https://eprints.soton.ac.uk/cgi/oai2"},"display":{"title":"Modelling the cochlear origins of distortion product otoacoustic emissions","abstract":"Distortion product otoacoustic emissions (DPOAEs) arise within the cochlea in response to two<br/>stimulus tones (f1 and f2) at frequencies such as 2f1 ? f2 and 2f2 ? f1. Each DPOAE derives from two<br/>contributing mechanisms within the cochlea: a distributed distortion source and a reflection source.<br/>They are used for hearing screening, but a better understanding of their cochlear origin and<br/>transmission could potentially extend their clinical application to facilitate objective hearing loss<br/>assessment, differential diagnosis of sensorineural hearing losses and improved auditory<br/>rehabilitation using hearing aids.<br/><br/>In this thesis a numerical model of the human cochlea is developed to study the generation<br/>of DPOAEs. It is based on a pre-existing active nonlinear model, the micromechanics of which are<br/>carefully re-tuned to simulate the response of the human cochlea to single- and two- tone<br/>stimulation. Particular attention is paid to the form and position of the nonlinearity within the<br/>model to best match experimental results. The model is also reformulated to verify its stability and<br/>ensure computational convergence of the iterative frequency domain solution method. Its<br/>predictions are validated against estimated time domain simulations and documented experimental<br/>DPOAE measurements. Additionally a novel method is developed for decomposing each<br/>frequency component of the cochlear response into forward and backward travelling waves, which<br/>is applied to investigate the multiple sources of both the 2f1 ? f2 and 2f2 ? f1 DPOAEs.<br/><br/>The model is used to explain and predict a variety of phenomena observed in experimental<br/>DPOAE studies. It also confirms for the 2f1 ? f2 emission, that the two source mechanisms are<br/>spatially separated and that the only significant reflection contribution is associated with the 2f1 ? f2<br/>travelling wave. In contrast, it predicts that the two source mechanisms will overlap in the case of<br/>the 2f2 ? f1 DPOAE, which can be influenced by reflection of both the primary and 2f2 ? f1<br/>travelling waves.","abstract_html":"Distortion product otoacoustic emissions (DPOAEs) arise within the cochlea in response to two&lt;br/&gt;stimulus tones (f1 and f2) at frequencies such as 2f1 ? f2 and 2f2 ? f1. Each DPOAE derives from two&lt;br/&gt;contributing mechanisms within the cochlea: a distributed distortion source and a reflection source.&lt;br/&gt;They are used for hearing screening, but a better understanding of their cochlear origin and&lt;br/&gt;transmission could potentially extend their clinical application to facilitate objective hearing loss&lt;br/&gt;assessment, differential diagnosis of sensorineural hearing losses and improved auditory&lt;br/&gt;rehabilitation using hearing aids.&lt;br/&gt;&lt;br/&gt;In this thesis a numerical model of the human cochlea is developed to study the generation&lt;br/&gt;of DPOAEs. It is based on a pre-existing active nonlinear model, the micromechanics of which are&lt;br/&gt;carefully re-tuned to simulate the response of the human cochlea to single- and two- tone&lt;br/&gt;stimulation. Particular attention is paid to the form and position of the nonlinearity within the&lt;br/&gt;model to best match experimental results. The model is also reformulated to verify its stability and&lt;br/&gt;ensure computational convergence of the iterative frequency domain solution method. Its&lt;br/&gt;predictions are validated against estimated time domain simulations and documented experimental&lt;br/&gt;DPOAE measurements. Additionally a novel method is developed for decomposing each&lt;br/&gt;frequency component of the cochlear response into forward and backward travelling waves, which&lt;br/&gt;is applied to investigate the multiple sources of both the 2f1 ? f2 and 2f2 ? f1 DPOAEs.&lt;br/&gt;&lt;br/&gt;The model is used to explain and predict a variety of phenomena observed in experimental&lt;br/&gt;DPOAE studies. It also confirms for the 2f1 ? f2 emission, that the two source mechanisms are&lt;br/&gt;spatially separated and that the only significant reflection contribution is associated with the 2f1 ? f2&lt;br/&gt;travelling wave. In contrast, it predicts that the two source mechanisms will overlap in the case of&lt;br/&gt;the 2f2 ? f1 DPOAE, which can be influenced by reflection of both the primary and 2f2 ? f1&lt;br/&gt;travelling waves.","abstract_has_math":false,"creators":["Young, Jacqueline Ann"],"institution":"University of Southampton","degree_name":"Ph.D.","degree_level":"doctoral","degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":["Elliott, S.J."],"committee_chairs":[],"committee_members":[],"year":2011,"date_issued":"2011","date_published":"2011","updated_at":"2026-07-24T04:36:21Z","subjects":[],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":null,"outbound_label":null,"outbound_source":null},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor.advisor","label":"Advisor","values":["Elliott, S.J."]},{"key":"dc:creator","label":"Author","values":["Young, Jacqueline Ann"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date","label":"Dc Date","values":["2011"]},{"key":"dc:date.issued","label":"Date","values":["2011"]},{"key":"dc:publisher.department","label":"Dc Publisher Department","values":["Human Sciences Group (pre 2018 reorg)","Institute of Sound and Vibration Research"]},{"key":"dc:publisher.institution","label":"Dc Publisher Institution","values":["University of Southampton"]},{"key":"dc:relation.isreferencedby","label":"Dc Relation Isreferencedby","values":["https://eprints.soton.ac.uk/175357/"]},{"key":"dc:type","label":"Dc Type","values":["Thesis"]},{"key":"dc:type.qualificationlevel","label":"Dc Type Qualificationlevel","values":["doctoral"]},{"key":"dc:type.qualificationname","label":"Dc Type Qualificationname","values":["Ph.D."]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier.uri","label":"Identifier URI","values":["https://eprints.soton.ac.uk/175357/1/P2700.pdf"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["Distortion product otoacoustic emissions (DPOAEs) arise within the cochlea in response to two<br/>stimulus tones (f1 and f2) at frequencies such as 2f1 ? f2 and 2f2 ? f1. Each DPOAE derives from two<br/>contributing mechanisms within the cochlea: a distributed distortion source and a reflection source.<br/>They are used for hearing screening, but a better understanding of their cochlear origin and<br/>transmission could potentially extend their clinical application to facilitate objective hearing loss<br/>assessment, differential diagnosis of sensorineural hearing losses and improved auditory<br/>rehabilitation using hearing aids.<br/><br/>In this thesis a numerical model of the human cochlea is developed to study the generation<br/>of DPOAEs. It is based on a pre-existing active nonlinear model, the micromechanics of which are<br/>carefully re-tuned to simulate the response of the human cochlea to single- and two- tone<br/>stimulation. Particular attention is paid to the form and position of the nonlinearity within the<br/>model to best match experimental results. The model is also reformulated to verify its stability and<br/>ensure computational convergence of the iterative frequency domain solution method. Its<br/>predictions are validated against estimated time domain simulations and documented experimental<br/>DPOAE measurements. Additionally a novel method is developed for decomposing each<br/>frequency component of the cochlear response into forward and backward travelling waves, which<br/>is applied to investigate the multiple sources of both the 2f1 ? f2 and 2f2 ? f1 DPOAEs.<br/><br/>The model is used to explain and predict a variety of phenomena observed in experimental<br/>DPOAE studies. It also confirms for the 2f1 ? f2 emission, that the two source mechanisms are<br/>spatially separated and that the only significant reflection contribution is associated with the 2f1 ? f2<br/>travelling wave. In contrast, it predicts that the two source mechanisms will overlap in the case of<br/>the 2f2 ? f1 DPOAE, which can be influenced by reflection of both the primary and 2f2 ? f1<br/>travelling waves."]},{"key":"dc:format","label":"Dc Format","values":["text"]},{"key":"dc:title","label":"Title","values":["Modelling the cochlear origins of distortion product otoacoustic emissions"]}]}],"canonical_facts":{"dc:contributor.advisor":["Elliott, S.J."],"dc:creator":["Young, Jacqueline Ann"],"dc:date":["2011"],"dc:date.issued":["2011"],"dc:description.abstract":["Distortion product otoacoustic emissions (DPOAEs) arise within the cochlea in response to two<br/>stimulus tones (f1 and f2) at frequencies such as 2f1 ? f2 and 2f2 ? f1. Each DPOAE derives from two<br/>contributing mechanisms within the cochlea: a distributed distortion source and a reflection source.<br/>They are used for hearing screening, but a better understanding of their cochlear origin and<br/>transmission could potentially extend their clinical application to facilitate objective hearing loss<br/>assessment, differential diagnosis of sensorineural hearing losses and improved auditory<br/>rehabilitation using hearing aids.<br/><br/>In this thesis a numerical model of the human cochlea is developed to study the generation<br/>of DPOAEs. It is based on a pre-existing active nonlinear model, the micromechanics of which are<br/>carefully re-tuned to simulate the response of the human cochlea to single- and two- tone<br/>stimulation. Particular attention is paid to the form and position of the nonlinearity within the<br/>model to best match experimental results. The model is also reformulated to verify its stability and<br/>ensure computational convergence of the iterative frequency domain solution method. Its<br/>predictions are validated against estimated time domain simulations and documented experimental<br/>DPOAE measurements. Additionally a novel method is developed for decomposing each<br/>frequency component of the cochlear response into forward and backward travelling waves, which<br/>is applied to investigate the multiple sources of both the 2f1 ? f2 and 2f2 ? f1 DPOAEs.<br/><br/>The model is used to explain and predict a variety of phenomena observed in experimental<br/>DPOAE studies. It also confirms for the 2f1 ? f2 emission, that the two source mechanisms are<br/>spatially separated and that the only significant reflection contribution is associated with the 2f1 ? f2<br/>travelling wave. In contrast, it predicts that the two source mechanisms will overlap in the case of<br/>the 2f2 ? f1 DPOAE, which can be influenced by reflection of both the primary and 2f2 ? f1<br/>travelling waves."],"dc:format":["text"],"dc:identifier.uri":["https://eprints.soton.ac.uk/175357/1/P2700.pdf"],"dc:publisher.department":["Human Sciences Group (pre 2018 reorg)","Institute of Sound and Vibration Research"],"dc:publisher.institution":["University of Southampton"],"dc:relation.isreferencedby":["https://eprints.soton.ac.uk/175357/"],"dc:title":["Modelling the cochlear origins of distortion product otoacoustic emissions"],"dc:type":["Thesis"],"dc:type.qualificationlevel":["doctoral"],"dc:type.qualificationname":["Ph.D."]},"updated_at":"2026-07-24T04:36:21Z"}