{"id":{"repo_id":"soton","oai_identifier":"oai:eprints.soton.ac.uk:158723"},"canonical_url":"https://search.dev.ndltd.org/etd/soton/oai:eprints.soton.ac.uk:158723","repository":{"repo_id":"soton","name":"University of Southampton","base_url":"https://eprints.soton.ac.uk/cgi/oai2"},"display":{"title":"Development and application of an echolocation model inspired by bats","abstract":"This study explores the principles of echolocation in bats which can be potentially<br/>adopted for bio-inspired sonar systems. Using a biological signal processing technique<br/>which was developed based on bat’s hearing system, the effect of auditory processing<br/>on the object discrimination is investigated for both CF (constant frequency) and FM<br/>(frequency modulated) signals respectively. These signals are considered as two representative<br/>types of echolocating calls. This study has simulated returning echoes from<br/>target discs using different types of calls by applying measured impulse responses of<br/>the objects. The simulated echoes were then processed through auditory models. The<br/>results have shown that the auditory processing contributes not only to increase the<br/>gain but also to enhance the ability to discriminate the sizes of discs. The peak and<br/>notch characteristics appearing in the auditory spectrum also confirms the flexibility of<br/>designing auditory models to manipulate spectral and temporal characteristics of the<br/>echo signals. Secondly, the effect of the bat’s head on the received signals at the two<br/>ears for varying distances was investigated by measuring the head-related transfer function<br/>(HRTF) of a bat-head cast. It has been reported that a bat changes bandwidth<br/>and duration of its echolocating call as it approaches a target. Adaptive change in the<br/>echolocating calls has been well explained in previous studies in terms of characteristics<br/>of signal structure. However, the range-dependent adaptive change in emitted signals<br/>also implies that the reflected signals reaching the two ears (i.e. binaural hearing)<br/>change in gain and frequency as the distance between the bat and the target varies.<br/>The result of measured HRTF has provided insights to range-dependent binaural information<br/>regarding the adaptive change of the echolocating calls. The results of measured data show that relatively higher gain at low frequencies (below 10 kHz1) is observed<br/>than that at high frequencies (above 10 kHz) as the bat-head cast approaches the sound<br/>source. It is also noted that interaural level differences (ILDs) at a fixed distance have<br/>less sensitive changes at low frequencies than at high frequencies as the angle of the<br/>source direction changes in the frontal axis. However, the sensitivity of the ILDs at low<br/>frequencies increase more than at high frequencies as the range reduces. It is concluded<br/>that the low frequency implies a more significant role during the target approaching<br/>stage in echolocation including distance perception. Also, the systematic change in sensitivity<br/>of the ILDs in various ranges suggests that the bat might be able to calibrate<br/>the angular resolution by broadening the bandwidth at low frequencies. Furthermore,<br/>the HRTF results calculated from a computational sphere model confirms the potential<br/>function of low frequency to calibrate the ILDs sensitivity for varying distances.<br/>Overall, this study has shown that customised auditory processing of the echolocating<br/>signal improves the quality of sonar representation and the results of investigations using<br/>the HRTFs of the bat-head cast guide the future design of effective adaptive signals<br/>based on the range-dependent HRTFs, to potentially enhance the performance of sonar<br/>systems.<br/>1This study has defined the range of the low and the high frequencies based on the acoustical<br/>diffraction and reflection of the sound around the bat-head. The diffraction effect appeared to be<br/>prominent below 10 kHz.","abstract_html":"This study explores the principles of echolocation in bats which can be potentially&lt;br/&gt;adopted for bio-inspired sonar systems. Using a biological signal processing technique&lt;br/&gt;which was developed based on bat’s hearing system, the effect of auditory processing&lt;br/&gt;on the object discrimination is investigated for both CF (constant frequency) and FM&lt;br/&gt;(frequency modulated) signals respectively. These signals are considered as two representative&lt;br/&gt;types of echolocating calls. This study has simulated returning echoes from&lt;br/&gt;target discs using different types of calls by applying measured impulse responses of&lt;br/&gt;the objects. The simulated echoes were then processed through auditory models. The&lt;br/&gt;results have shown that the auditory processing contributes not only to increase the&lt;br/&gt;gain but also to enhance the ability to discriminate the sizes of discs. The peak and&lt;br/&gt;notch characteristics appearing in the auditory spectrum also confirms the flexibility of&lt;br/&gt;designing auditory models to manipulate spectral and temporal characteristics of the&lt;br/&gt;echo signals. Secondly, the effect of the bat’s head on the received signals at the two&lt;br/&gt;ears for varying distances was investigated by measuring the head-related transfer function&lt;br/&gt;(HRTF) of a bat-head cast. It has been reported that a bat changes bandwidth&lt;br/&gt;and duration of its echolocating call as it approaches a target. Adaptive change in the&lt;br/&gt;echolocating calls has been well explained in previous studies in terms of characteristics&lt;br/&gt;of signal structure. However, the range-dependent adaptive change in emitted signals&lt;br/&gt;also implies that the reflected signals reaching the two ears (i.e. binaural hearing)&lt;br/&gt;change in gain and frequency as the distance between the bat and the target varies.&lt;br/&gt;The result of measured HRTF has provided insights to range-dependent binaural information&lt;br/&gt;regarding the adaptive change of the echolocating calls. The results of measured data show that relatively higher gain at low frequencies (below 10 kHz1) is observed&lt;br/&gt;than that at high frequencies (above 10 kHz) as the bat-head cast approaches the sound&lt;br/&gt;source. It is also noted that interaural level differences (ILDs) at a fixed distance have&lt;br/&gt;less sensitive changes at low frequencies than at high frequencies as the angle of the&lt;br/&gt;source direction changes in the frontal axis. However, the sensitivity of the ILDs at low&lt;br/&gt;frequencies increase more than at high frequencies as the range reduces. It is concluded&lt;br/&gt;that the low frequency implies a more significant role during the target approaching&lt;br/&gt;stage in echolocation including distance perception. Also, the systematic change in sensitivity&lt;br/&gt;of the ILDs in various ranges suggests that the bat might be able to calibrate&lt;br/&gt;the angular resolution by broadening the bandwidth at low frequencies. Furthermore,&lt;br/&gt;the HRTF results calculated from a computational sphere model confirms the potential&lt;br/&gt;function of low frequency to calibrate the ILDs sensitivity for varying distances.&lt;br/&gt;Overall, this study has shown that customised auditory processing of the echolocating&lt;br/&gt;signal improves the quality of sonar representation and the results of investigations using&lt;br/&gt;the HRTFs of the bat-head cast guide the future design of effective adaptive signals&lt;br/&gt;based on the range-dependent HRTFs, to potentially enhance the performance of sonar&lt;br/&gt;systems.&lt;br/&gt;1This study has defined the range of the low and the high frequencies based on the acoustical&lt;br/&gt;diffraction and reflection of the sound around the bat-head. The diffraction effect appeared to be&lt;br/&gt;prominent below 10 kHz.","abstract_has_math":false,"creators":["Kim, Suyeon"],"institution":"University of Southampton","degree_name":"Ph.D.","degree_level":"doctoral","degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":["Allen, R.","Rowan, D."],"committee_chairs":[],"committee_members":[],"year":2010,"date_issued":"2010","date_published":"2010","updated_at":"2026-07-24T04:36:14Z","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":["Allen, R.","Rowan, D."]},{"key":"dc:creator","label":"Author","values":["Kim, Suyeon"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date","label":"Dc Date","values":["2010"]},{"key":"dc:date.issued","label":"Date","values":["2010"]},{"key":"dc:publisher.department","label":"Dc Publisher Department","values":["Signal Processing & Control Group (pre 2011 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/158723/"]},{"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/158723/1/P2632.pdf"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["This study explores the principles of echolocation in bats which can be potentially<br/>adopted for bio-inspired sonar systems. Using a biological signal processing technique<br/>which was developed based on bat’s hearing system, the effect of auditory processing<br/>on the object discrimination is investigated for both CF (constant frequency) and FM<br/>(frequency modulated) signals respectively. These signals are considered as two representative<br/>types of echolocating calls. This study has simulated returning echoes from<br/>target discs using different types of calls by applying measured impulse responses of<br/>the objects. The simulated echoes were then processed through auditory models. The<br/>results have shown that the auditory processing contributes not only to increase the<br/>gain but also to enhance the ability to discriminate the sizes of discs. The peak and<br/>notch characteristics appearing in the auditory spectrum also confirms the flexibility of<br/>designing auditory models to manipulate spectral and temporal characteristics of the<br/>echo signals. Secondly, the effect of the bat’s head on the received signals at the two<br/>ears for varying distances was investigated by measuring the head-related transfer function<br/>(HRTF) of a bat-head cast. It has been reported that a bat changes bandwidth<br/>and duration of its echolocating call as it approaches a target. Adaptive change in the<br/>echolocating calls has been well explained in previous studies in terms of characteristics<br/>of signal structure. However, the range-dependent adaptive change in emitted signals<br/>also implies that the reflected signals reaching the two ears (i.e. binaural hearing)<br/>change in gain and frequency as the distance between the bat and the target varies.<br/>The result of measured HRTF has provided insights to range-dependent binaural information<br/>regarding the adaptive change of the echolocating calls. The results of measured data show that relatively higher gain at low frequencies (below 10 kHz1) is observed<br/>than that at high frequencies (above 10 kHz) as the bat-head cast approaches the sound<br/>source. It is also noted that interaural level differences (ILDs) at a fixed distance have<br/>less sensitive changes at low frequencies than at high frequencies as the angle of the<br/>source direction changes in the frontal axis. However, the sensitivity of the ILDs at low<br/>frequencies increase more than at high frequencies as the range reduces. It is concluded<br/>that the low frequency implies a more significant role during the target approaching<br/>stage in echolocation including distance perception. Also, the systematic change in sensitivity<br/>of the ILDs in various ranges suggests that the bat might be able to calibrate<br/>the angular resolution by broadening the bandwidth at low frequencies. Furthermore,<br/>the HRTF results calculated from a computational sphere model confirms the potential<br/>function of low frequency to calibrate the ILDs sensitivity for varying distances.<br/>Overall, this study has shown that customised auditory processing of the echolocating<br/>signal improves the quality of sonar representation and the results of investigations using<br/>the HRTFs of the bat-head cast guide the future design of effective adaptive signals<br/>based on the range-dependent HRTFs, to potentially enhance the performance of sonar<br/>systems.<br/>1This study has defined the range of the low and the high frequencies based on the acoustical<br/>diffraction and reflection of the sound around the bat-head. The diffraction effect appeared to be<br/>prominent below 10 kHz."]},{"key":"dc:format","label":"Dc Format","values":["text"]},{"key":"dc:title","label":"Title","values":["Development and application of an echolocation model inspired by bats"]}]}],"canonical_facts":{"dc:contributor.advisor":["Allen, R.","Rowan, D."],"dc:creator":["Kim, Suyeon"],"dc:date":["2010"],"dc:date.issued":["2010"],"dc:description.abstract":["This study explores the principles of echolocation in bats which can be potentially<br/>adopted for bio-inspired sonar systems. Using a biological signal processing technique<br/>which was developed based on bat’s hearing system, the effect of auditory processing<br/>on the object discrimination is investigated for both CF (constant frequency) and FM<br/>(frequency modulated) signals respectively. These signals are considered as two representative<br/>types of echolocating calls. This study has simulated returning echoes from<br/>target discs using different types of calls by applying measured impulse responses of<br/>the objects. The simulated echoes were then processed through auditory models. The<br/>results have shown that the auditory processing contributes not only to increase the<br/>gain but also to enhance the ability to discriminate the sizes of discs. The peak and<br/>notch characteristics appearing in the auditory spectrum also confirms the flexibility of<br/>designing auditory models to manipulate spectral and temporal characteristics of the<br/>echo signals. Secondly, the effect of the bat’s head on the received signals at the two<br/>ears for varying distances was investigated by measuring the head-related transfer function<br/>(HRTF) of a bat-head cast. It has been reported that a bat changes bandwidth<br/>and duration of its echolocating call as it approaches a target. Adaptive change in the<br/>echolocating calls has been well explained in previous studies in terms of characteristics<br/>of signal structure. However, the range-dependent adaptive change in emitted signals<br/>also implies that the reflected signals reaching the two ears (i.e. binaural hearing)<br/>change in gain and frequency as the distance between the bat and the target varies.<br/>The result of measured HRTF has provided insights to range-dependent binaural information<br/>regarding the adaptive change of the echolocating calls. The results of measured data show that relatively higher gain at low frequencies (below 10 kHz1) is observed<br/>than that at high frequencies (above 10 kHz) as the bat-head cast approaches the sound<br/>source. It is also noted that interaural level differences (ILDs) at a fixed distance have<br/>less sensitive changes at low frequencies than at high frequencies as the angle of the<br/>source direction changes in the frontal axis. However, the sensitivity of the ILDs at low<br/>frequencies increase more than at high frequencies as the range reduces. It is concluded<br/>that the low frequency implies a more significant role during the target approaching<br/>stage in echolocation including distance perception. Also, the systematic change in sensitivity<br/>of the ILDs in various ranges suggests that the bat might be able to calibrate<br/>the angular resolution by broadening the bandwidth at low frequencies. Furthermore,<br/>the HRTF results calculated from a computational sphere model confirms the potential<br/>function of low frequency to calibrate the ILDs sensitivity for varying distances.<br/>Overall, this study has shown that customised auditory processing of the echolocating<br/>signal improves the quality of sonar representation and the results of investigations using<br/>the HRTFs of the bat-head cast guide the future design of effective adaptive signals<br/>based on the range-dependent HRTFs, to potentially enhance the performance of sonar<br/>systems.<br/>1This study has defined the range of the low and the high frequencies based on the acoustical<br/>diffraction and reflection of the sound around the bat-head. The diffraction effect appeared to be<br/>prominent below 10 kHz."],"dc:format":["text"],"dc:identifier.uri":["https://eprints.soton.ac.uk/158723/1/P2632.pdf"],"dc:publisher.department":["Signal Processing & Control Group (pre 2011 reorg)","Institute of Sound and Vibration Research"],"dc:publisher.institution":["University of Southampton"],"dc:relation.isreferencedby":["https://eprints.soton.ac.uk/158723/"],"dc:title":["Development and application of an echolocation model inspired by bats"],"dc:type":["Thesis"],"dc:type.qualificationlevel":["doctoral"],"dc:type.qualificationname":["Ph.D."]},"updated_at":"2026-07-24T04:36:14Z"}