{"id":{"repo_id":"soton","oai_identifier":"oai:eprints.soton.ac.uk:191083"},"canonical_url":"https://search.dev.ndltd.org/etd/soton/oai:eprints.soton.ac.uk:191083","repository":{"repo_id":"soton","name":"University of Southampton","base_url":"https://eprints.soton.ac.uk/cgi/oai2"},"display":{"title":"Factors affecting speech recognition in noise and hearing loss in adults with a wide variety of auditory capabilities","abstract":"Studies concerning speech recognition in noise constitute a very broad spectrum of work<br/>including aspects like the cocktail party effect or observing performance of individuals in<br/>different types of speech-signal or noise as well as benefit and improvement with hearing aids.<br/>Another important area that has received much attention is investigating the inter-relations<br/>among various auditory and non-auditory capabilities affecting speech intelligibility. Those<br/>studies have focussed on the relationship between auditory threshold (hearing sensitivity) and a<br/>number of suprathreshold abilities like speech recognition in quiet and noise, frequency<br/>resolution, temporal resolution and the non-auditory ability of cognition.<br/>There is considerable discrepancy regarding the relationship between speech recognition in<br/>noise and hearing threshold level. Some studies conclude that speech recognition performance<br/>in noise can be predicted solely from an individual’s hearing threshold level while others<br/>conclude that other supra-threshold factors such as frequency and/or temporal resolution must<br/>also play a role. Hearing loss involves more than deficits in recognising speech in noise, raising<br/>the question whether hearing impairment is a uni- or multi-dimensional construct. Moreover,<br/>different extents of hearing loss may display different relationships among measures of hearing<br/>ability, or different dimensionality.<br/>The present thesis attempts to address these three issues, by examining a wide range of hearing<br/>abilities in large samples of participants having a range of hearing ability from normal to<br/>moderate-severe impairment. The research extends previous work by including larger samples<br/>of participants, a wider range of measures of hearing ability and by differentiating among levels<br/>of hearing impairment.<br/>Method: Two large multi-centre studies were conducted, involving 103 and 128 participants<br/>respectively. A large battery of tests was devised and refined prior to the main studies and<br/>implemented on a common PC-based platform. The test domains included measurement of<br/>hearing sensitivity, speech recognition in quiet and noise, loudness perception, frequency<br/>resolution, temporal resolution, binaural hearing and localization, cognition and subjective<br/>measures like listening effort and self-report of hearing disability. Performance tests involved<br/>presentation of sounds via circum-aural earphones to one or both ears, as required, at intensities<br/>matched to individual hearing impairments to ensure audibility. Most tests involved<br/>measurements centred on a low frequency (500 Hz), high frequency (3000 Hz) and broadband.<br/>The second study included some refinements based on analysis of the first study. Analyses<br/>included multiple regression for prediction of speech recognition in stationary or fluctuating<br/>noise and factor analysis to explore the dimensionality of the data. Speech recognition<br/>performance was also compared with that predicted using the Speech Intelligibility Index (SII).<br/>iii<br/>Findings: Findings from regression analysis pooled across the two studies showed that speech<br/>recognition in noise can be predicted from a combination of hearing threshold at higher<br/>frequencies (3000/4000 Hz) and frequency resolution at low frequency (500 Hz). This supports<br/>previous studies that conclude that resolution is important in addition to hearing sensitivity. This<br/>was also confirmed by the fact that SII (representing sensitivity rather than resolution) underpredicted<br/>difficulties observed in hearing-impaired ears for speech recognition in noise. Speech<br/>recognition in stationary noise was predicted mainly by auditory threshold while speech<br/>recognition in fluctuating noise was predicted by a combination having a larger contribution<br/>from frequency resolution. In mild hearing losses (below 40 dB), speech recognition in noise<br/>was predicted mainly by hearing threshold, in moderate hearing losses (above 40 dB) it was<br/>predicted mainly by frequency resolution when combined for two studies. Thus it can be<br/>observed that the importance of auditory resolution (in this case frequency resolution) increases<br/>and the importance of the audiogram decreases as the degree of hearing loss increases, provided<br/>speech is presented at audible levels. However, for all degrees of hearing impairment included<br/>in the study, prediction based solely on hearing thresholds was not much worse than prediction<br/>based on a combination of thresholds and frequency resolution. Lastly, hearing impairment was<br/>shown to be multi-dimensional; main factors included hearing threshold, speech recognition in<br/>stationary and fluctuating noise, frequency and temporal resolution, binaural processing,<br/>loudness perception, cognition and self-reported hearing difficulties. A clinical test protocol for<br/>defining an individual auditory profile is suggested based on these findings.<br/>Conclusions: Speech recognition in noise depends on a combination of audibility of the speech<br/>components (hearing threshold) and frequency resolution. Models such as SII that do not<br/>include resolution tend to over-predict somewhat speech recognition performance in noise,<br/>especially for more severe hearing impairments. However, the over-prediction is not great. It<br/>follows that for clinical purposes there is not much to be gained from more complex<br/>psychoacoustic characterisation of sensorineural hearing impairment, when the purpose is to<br/>predict or explain difficulty understanding speech in noise. A conventional audiogram and<br/>possibly measurement of frequency resolution at 500 Hz is sufficient. However, if the purpose<br/>is to acquire a detailed individual auditory profile, the multidimensional nature of hearing loss<br/>should not be ignored. Findings from the present study show that, along with loss of sensitivity<br/>and reduced frequency resolution ability, binaural processing, loudness perception, cognition<br/>and self-report measures help to characterize this multi-dimensionality. Detailed studies should<br/>hence focus on these multiple dimensions of hearing loss and incorporate measuring a wide<br/>variety of different auditory capabilities, rather than inclusion of just a few, in order gain a<br/>complete picture of auditory functioning.<br/>Frequency resolution at low frequency (500 Hz) as a predictive factor for speech recognition in<br/>noise is a new finding. Few previous studies have included low-frequency measures of hearing,<br/>which may explain why it has not emerged previously. Yet this finding appears to be robust, as<br/>it was consistent across both of the present studies. It may relate to differentiation of vowel<br/>components of speech. The present work was unable to confirm the suggestion from previous<br/>studies that measures of temporal resolution help to predict speech recognition in fluctuating<br/>noise, possibly because few participants had extremely poor temporal resolution ability.","abstract_html":"Studies concerning speech recognition in noise constitute a very broad spectrum of work&lt;br/&gt;including aspects like the cocktail party effect or observing performance of individuals in&lt;br/&gt;different types of speech-signal or noise as well as benefit and improvement with hearing aids.&lt;br/&gt;Another important area that has received much attention is investigating the inter-relations&lt;br/&gt;among various auditory and non-auditory capabilities affecting speech intelligibility. Those&lt;br/&gt;studies have focussed on the relationship between auditory threshold (hearing sensitivity) and a&lt;br/&gt;number of suprathreshold abilities like speech recognition in quiet and noise, frequency&lt;br/&gt;resolution, temporal resolution and the non-auditory ability of cognition.&lt;br/&gt;There is considerable discrepancy regarding the relationship between speech recognition in&lt;br/&gt;noise and hearing threshold level. Some studies conclude that speech recognition performance&lt;br/&gt;in noise can be predicted solely from an individual’s hearing threshold level while others&lt;br/&gt;conclude that other supra-threshold factors such as frequency and/or temporal resolution must&lt;br/&gt;also play a role. Hearing loss involves more than deficits in recognising speech in noise, raising&lt;br/&gt;the question whether hearing impairment is a uni- or multi-dimensional construct. Moreover,&lt;br/&gt;different extents of hearing loss may display different relationships among measures of hearing&lt;br/&gt;ability, or different dimensionality.&lt;br/&gt;The present thesis attempts to address these three issues, by examining a wide range of hearing&lt;br/&gt;abilities in large samples of participants having a range of hearing ability from normal to&lt;br/&gt;moderate-severe impairment. The research extends previous work by including larger samples&lt;br/&gt;of participants, a wider range of measures of hearing ability and by differentiating among levels&lt;br/&gt;of hearing impairment.&lt;br/&gt;Method: Two large multi-centre studies were conducted, involving 103 and 128 participants&lt;br/&gt;respectively. A large battery of tests was devised and refined prior to the main studies and&lt;br/&gt;implemented on a common PC-based platform. The test domains included measurement of&lt;br/&gt;hearing sensitivity, speech recognition in quiet and noise, loudness perception, frequency&lt;br/&gt;resolution, temporal resolution, binaural hearing and localization, cognition and subjective&lt;br/&gt;measures like listening effort and self-report of hearing disability. Performance tests involved&lt;br/&gt;presentation of sounds via circum-aural earphones to one or both ears, as required, at intensities&lt;br/&gt;matched to individual hearing impairments to ensure audibility. Most tests involved&lt;br/&gt;measurements centred on a low frequency (500 Hz), high frequency (3000 Hz) and broadband.&lt;br/&gt;The second study included some refinements based on analysis of the first study. Analyses&lt;br/&gt;included multiple regression for prediction of speech recognition in stationary or fluctuating&lt;br/&gt;noise and factor analysis to explore the dimensionality of the data. Speech recognition&lt;br/&gt;performance was also compared with that predicted using the Speech Intelligibility Index (SII).&lt;br/&gt;iii&lt;br/&gt;Findings: Findings from regression analysis pooled across the two studies showed that speech&lt;br/&gt;recognition in noise can be predicted from a combination of hearing threshold at higher&lt;br/&gt;frequencies (3000/4000 Hz) and frequency resolution at low frequency (500 Hz). This supports&lt;br/&gt;previous studies that conclude that resolution is important in addition to hearing sensitivity. This&lt;br/&gt;was also confirmed by the fact that SII (representing sensitivity rather than resolution) underpredicted&lt;br/&gt;difficulties observed in hearing-impaired ears for speech recognition in noise. Speech&lt;br/&gt;recognition in stationary noise was predicted mainly by auditory threshold while speech&lt;br/&gt;recognition in fluctuating noise was predicted by a combination having a larger contribution&lt;br/&gt;from frequency resolution. In mild hearing losses (below 40 dB), speech recognition in noise&lt;br/&gt;was predicted mainly by hearing threshold, in moderate hearing losses (above 40 dB) it was&lt;br/&gt;predicted mainly by frequency resolution when combined for two studies. Thus it can be&lt;br/&gt;observed that the importance of auditory resolution (in this case frequency resolution) increases&lt;br/&gt;and the importance of the audiogram decreases as the degree of hearing loss increases, provided&lt;br/&gt;speech is presented at audible levels. However, for all degrees of hearing impairment included&lt;br/&gt;in the study, prediction based solely on hearing thresholds was not much worse than prediction&lt;br/&gt;based on a combination of thresholds and frequency resolution. Lastly, hearing impairment was&lt;br/&gt;shown to be multi-dimensional; main factors included hearing threshold, speech recognition in&lt;br/&gt;stationary and fluctuating noise, frequency and temporal resolution, binaural processing,&lt;br/&gt;loudness perception, cognition and self-reported hearing difficulties. A clinical test protocol for&lt;br/&gt;defining an individual auditory profile is suggested based on these findings.&lt;br/&gt;Conclusions: Speech recognition in noise depends on a combination of audibility of the speech&lt;br/&gt;components (hearing threshold) and frequency resolution. Models such as SII that do not&lt;br/&gt;include resolution tend to over-predict somewhat speech recognition performance in noise,&lt;br/&gt;especially for more severe hearing impairments. However, the over-prediction is not great. It&lt;br/&gt;follows that for clinical purposes there is not much to be gained from more complex&lt;br/&gt;psychoacoustic characterisation of sensorineural hearing impairment, when the purpose is to&lt;br/&gt;predict or explain difficulty understanding speech in noise. A conventional audiogram and&lt;br/&gt;possibly measurement of frequency resolution at 500 Hz is sufficient. However, if the purpose&lt;br/&gt;is to acquire a detailed individual auditory profile, the multidimensional nature of hearing loss&lt;br/&gt;should not be ignored. Findings from the present study show that, along with loss of sensitivity&lt;br/&gt;and reduced frequency resolution ability, binaural processing, loudness perception, cognition&lt;br/&gt;and self-report measures help to characterize this multi-dimensionality. Detailed studies should&lt;br/&gt;hence focus on these multiple dimensions of hearing loss and incorporate measuring a wide&lt;br/&gt;variety of different auditory capabilities, rather than inclusion of just a few, in order gain a&lt;br/&gt;complete picture of auditory functioning.&lt;br/&gt;Frequency resolution at low frequency (500 Hz) as a predictive factor for speech recognition in&lt;br/&gt;noise is a new finding. Few previous studies have included low-frequency measures of hearing,&lt;br/&gt;which may explain why it has not emerged previously. Yet this finding appears to be robust, as&lt;br/&gt;it was consistent across both of the present studies. It may relate to differentiation of vowel&lt;br/&gt;components of speech. The present work was unable to confirm the suggestion from previous&lt;br/&gt;studies that measures of temporal resolution help to predict speech recognition in fluctuating&lt;br/&gt;noise, possibly because few participants had extremely poor temporal resolution ability.","abstract_has_math":false,"creators":["Athalye, S.A."],"institution":"University of Southampton","degree_name":"Ph.D.","degree_level":"doctoral","degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":["Lutman, M.E."],"committee_chairs":[],"committee_members":[],"year":2010,"date_issued":"2010-10","date_published":"2010-10","updated_at":"2026-07-24T04:36:25Z","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":["Lutman, M.E."]},{"key":"dc:creator","label":"Author","values":["Athalye, S.A."]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date","label":"Dc Date","values":["2010-10"]},{"key":"dc:date.issued","label":"Date","values":["2010-10"]},{"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/191083/"]},{"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/191083/1/P2782.pdf"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["Studies concerning speech recognition in noise constitute a very broad spectrum of work<br/>including aspects like the cocktail party effect or observing performance of individuals in<br/>different types of speech-signal or noise as well as benefit and improvement with hearing aids.<br/>Another important area that has received much attention is investigating the inter-relations<br/>among various auditory and non-auditory capabilities affecting speech intelligibility. Those<br/>studies have focussed on the relationship between auditory threshold (hearing sensitivity) and a<br/>number of suprathreshold abilities like speech recognition in quiet and noise, frequency<br/>resolution, temporal resolution and the non-auditory ability of cognition.<br/>There is considerable discrepancy regarding the relationship between speech recognition in<br/>noise and hearing threshold level. Some studies conclude that speech recognition performance<br/>in noise can be predicted solely from an individual’s hearing threshold level while others<br/>conclude that other supra-threshold factors such as frequency and/or temporal resolution must<br/>also play a role. Hearing loss involves more than deficits in recognising speech in noise, raising<br/>the question whether hearing impairment is a uni- or multi-dimensional construct. Moreover,<br/>different extents of hearing loss may display different relationships among measures of hearing<br/>ability, or different dimensionality.<br/>The present thesis attempts to address these three issues, by examining a wide range of hearing<br/>abilities in large samples of participants having a range of hearing ability from normal to<br/>moderate-severe impairment. The research extends previous work by including larger samples<br/>of participants, a wider range of measures of hearing ability and by differentiating among levels<br/>of hearing impairment.<br/>Method: Two large multi-centre studies were conducted, involving 103 and 128 participants<br/>respectively. A large battery of tests was devised and refined prior to the main studies and<br/>implemented on a common PC-based platform. The test domains included measurement of<br/>hearing sensitivity, speech recognition in quiet and noise, loudness perception, frequency<br/>resolution, temporal resolution, binaural hearing and localization, cognition and subjective<br/>measures like listening effort and self-report of hearing disability. Performance tests involved<br/>presentation of sounds via circum-aural earphones to one or both ears, as required, at intensities<br/>matched to individual hearing impairments to ensure audibility. Most tests involved<br/>measurements centred on a low frequency (500 Hz), high frequency (3000 Hz) and broadband.<br/>The second study included some refinements based on analysis of the first study. Analyses<br/>included multiple regression for prediction of speech recognition in stationary or fluctuating<br/>noise and factor analysis to explore the dimensionality of the data. Speech recognition<br/>performance was also compared with that predicted using the Speech Intelligibility Index (SII).<br/>iii<br/>Findings: Findings from regression analysis pooled across the two studies showed that speech<br/>recognition in noise can be predicted from a combination of hearing threshold at higher<br/>frequencies (3000/4000 Hz) and frequency resolution at low frequency (500 Hz). This supports<br/>previous studies that conclude that resolution is important in addition to hearing sensitivity. This<br/>was also confirmed by the fact that SII (representing sensitivity rather than resolution) underpredicted<br/>difficulties observed in hearing-impaired ears for speech recognition in noise. Speech<br/>recognition in stationary noise was predicted mainly by auditory threshold while speech<br/>recognition in fluctuating noise was predicted by a combination having a larger contribution<br/>from frequency resolution. In mild hearing losses (below 40 dB), speech recognition in noise<br/>was predicted mainly by hearing threshold, in moderate hearing losses (above 40 dB) it was<br/>predicted mainly by frequency resolution when combined for two studies. Thus it can be<br/>observed that the importance of auditory resolution (in this case frequency resolution) increases<br/>and the importance of the audiogram decreases as the degree of hearing loss increases, provided<br/>speech is presented at audible levels. However, for all degrees of hearing impairment included<br/>in the study, prediction based solely on hearing thresholds was not much worse than prediction<br/>based on a combination of thresholds and frequency resolution. Lastly, hearing impairment was<br/>shown to be multi-dimensional; main factors included hearing threshold, speech recognition in<br/>stationary and fluctuating noise, frequency and temporal resolution, binaural processing,<br/>loudness perception, cognition and self-reported hearing difficulties. A clinical test protocol for<br/>defining an individual auditory profile is suggested based on these findings.<br/>Conclusions: Speech recognition in noise depends on a combination of audibility of the speech<br/>components (hearing threshold) and frequency resolution. Models such as SII that do not<br/>include resolution tend to over-predict somewhat speech recognition performance in noise,<br/>especially for more severe hearing impairments. However, the over-prediction is not great. It<br/>follows that for clinical purposes there is not much to be gained from more complex<br/>psychoacoustic characterisation of sensorineural hearing impairment, when the purpose is to<br/>predict or explain difficulty understanding speech in noise. A conventional audiogram and<br/>possibly measurement of frequency resolution at 500 Hz is sufficient. However, if the purpose<br/>is to acquire a detailed individual auditory profile, the multidimensional nature of hearing loss<br/>should not be ignored. Findings from the present study show that, along with loss of sensitivity<br/>and reduced frequency resolution ability, binaural processing, loudness perception, cognition<br/>and self-report measures help to characterize this multi-dimensionality. Detailed studies should<br/>hence focus on these multiple dimensions of hearing loss and incorporate measuring a wide<br/>variety of different auditory capabilities, rather than inclusion of just a few, in order gain a<br/>complete picture of auditory functioning.<br/>Frequency resolution at low frequency (500 Hz) as a predictive factor for speech recognition in<br/>noise is a new finding. Few previous studies have included low-frequency measures of hearing,<br/>which may explain why it has not emerged previously. Yet this finding appears to be robust, as<br/>it was consistent across both of the present studies. It may relate to differentiation of vowel<br/>components of speech. The present work was unable to confirm the suggestion from previous<br/>studies that measures of temporal resolution help to predict speech recognition in fluctuating<br/>noise, possibly because few participants had extremely poor temporal resolution ability."]},{"key":"dc:format","label":"Dc Format","values":["text"]},{"key":"dc:title","label":"Title","values":["Factors affecting speech recognition in noise and hearing loss in adults with a wide variety of auditory capabilities"]}]}],"canonical_facts":{"dc:contributor.advisor":["Lutman, M.E."],"dc:creator":["Athalye, S.A."],"dc:date":["2010-10"],"dc:date.issued":["2010-10"],"dc:description.abstract":["Studies concerning speech recognition in noise constitute a very broad spectrum of work<br/>including aspects like the cocktail party effect or observing performance of individuals in<br/>different types of speech-signal or noise as well as benefit and improvement with hearing aids.<br/>Another important area that has received much attention is investigating the inter-relations<br/>among various auditory and non-auditory capabilities affecting speech intelligibility. Those<br/>studies have focussed on the relationship between auditory threshold (hearing sensitivity) and a<br/>number of suprathreshold abilities like speech recognition in quiet and noise, frequency<br/>resolution, temporal resolution and the non-auditory ability of cognition.<br/>There is considerable discrepancy regarding the relationship between speech recognition in<br/>noise and hearing threshold level. Some studies conclude that speech recognition performance<br/>in noise can be predicted solely from an individual’s hearing threshold level while others<br/>conclude that other supra-threshold factors such as frequency and/or temporal resolution must<br/>also play a role. Hearing loss involves more than deficits in recognising speech in noise, raising<br/>the question whether hearing impairment is a uni- or multi-dimensional construct. Moreover,<br/>different extents of hearing loss may display different relationships among measures of hearing<br/>ability, or different dimensionality.<br/>The present thesis attempts to address these three issues, by examining a wide range of hearing<br/>abilities in large samples of participants having a range of hearing ability from normal to<br/>moderate-severe impairment. The research extends previous work by including larger samples<br/>of participants, a wider range of measures of hearing ability and by differentiating among levels<br/>of hearing impairment.<br/>Method: Two large multi-centre studies were conducted, involving 103 and 128 participants<br/>respectively. A large battery of tests was devised and refined prior to the main studies and<br/>implemented on a common PC-based platform. The test domains included measurement of<br/>hearing sensitivity, speech recognition in quiet and noise, loudness perception, frequency<br/>resolution, temporal resolution, binaural hearing and localization, cognition and subjective<br/>measures like listening effort and self-report of hearing disability. Performance tests involved<br/>presentation of sounds via circum-aural earphones to one or both ears, as required, at intensities<br/>matched to individual hearing impairments to ensure audibility. Most tests involved<br/>measurements centred on a low frequency (500 Hz), high frequency (3000 Hz) and broadband.<br/>The second study included some refinements based on analysis of the first study. Analyses<br/>included multiple regression for prediction of speech recognition in stationary or fluctuating<br/>noise and factor analysis to explore the dimensionality of the data. Speech recognition<br/>performance was also compared with that predicted using the Speech Intelligibility Index (SII).<br/>iii<br/>Findings: Findings from regression analysis pooled across the two studies showed that speech<br/>recognition in noise can be predicted from a combination of hearing threshold at higher<br/>frequencies (3000/4000 Hz) and frequency resolution at low frequency (500 Hz). This supports<br/>previous studies that conclude that resolution is important in addition to hearing sensitivity. This<br/>was also confirmed by the fact that SII (representing sensitivity rather than resolution) underpredicted<br/>difficulties observed in hearing-impaired ears for speech recognition in noise. Speech<br/>recognition in stationary noise was predicted mainly by auditory threshold while speech<br/>recognition in fluctuating noise was predicted by a combination having a larger contribution<br/>from frequency resolution. In mild hearing losses (below 40 dB), speech recognition in noise<br/>was predicted mainly by hearing threshold, in moderate hearing losses (above 40 dB) it was<br/>predicted mainly by frequency resolution when combined for two studies. Thus it can be<br/>observed that the importance of auditory resolution (in this case frequency resolution) increases<br/>and the importance of the audiogram decreases as the degree of hearing loss increases, provided<br/>speech is presented at audible levels. However, for all degrees of hearing impairment included<br/>in the study, prediction based solely on hearing thresholds was not much worse than prediction<br/>based on a combination of thresholds and frequency resolution. Lastly, hearing impairment was<br/>shown to be multi-dimensional; main factors included hearing threshold, speech recognition in<br/>stationary and fluctuating noise, frequency and temporal resolution, binaural processing,<br/>loudness perception, cognition and self-reported hearing difficulties. A clinical test protocol for<br/>defining an individual auditory profile is suggested based on these findings.<br/>Conclusions: Speech recognition in noise depends on a combination of audibility of the speech<br/>components (hearing threshold) and frequency resolution. Models such as SII that do not<br/>include resolution tend to over-predict somewhat speech recognition performance in noise,<br/>especially for more severe hearing impairments. However, the over-prediction is not great. It<br/>follows that for clinical purposes there is not much to be gained from more complex<br/>psychoacoustic characterisation of sensorineural hearing impairment, when the purpose is to<br/>predict or explain difficulty understanding speech in noise. A conventional audiogram and<br/>possibly measurement of frequency resolution at 500 Hz is sufficient. However, if the purpose<br/>is to acquire a detailed individual auditory profile, the multidimensional nature of hearing loss<br/>should not be ignored. Findings from the present study show that, along with loss of sensitivity<br/>and reduced frequency resolution ability, binaural processing, loudness perception, cognition<br/>and self-report measures help to characterize this multi-dimensionality. Detailed studies should<br/>hence focus on these multiple dimensions of hearing loss and incorporate measuring a wide<br/>variety of different auditory capabilities, rather than inclusion of just a few, in order gain a<br/>complete picture of auditory functioning.<br/>Frequency resolution at low frequency (500 Hz) as a predictive factor for speech recognition in<br/>noise is a new finding. Few previous studies have included low-frequency measures of hearing,<br/>which may explain why it has not emerged previously. Yet this finding appears to be robust, as<br/>it was consistent across both of the present studies. It may relate to differentiation of vowel<br/>components of speech. The present work was unable to confirm the suggestion from previous<br/>studies that measures of temporal resolution help to predict speech recognition in fluctuating<br/>noise, possibly because few participants had extremely poor temporal resolution ability."],"dc:format":["text"],"dc:identifier.uri":["https://eprints.soton.ac.uk/191083/1/P2782.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/191083/"],"dc:title":["Factors affecting speech recognition in noise and hearing loss in adults with a wide variety of auditory capabilities"],"dc:type":["Thesis"],"dc:type.qualificationlevel":["doctoral"],"dc:type.qualificationname":["Ph.D."]},"updated_at":"2026-07-24T04:36:25Z"}