EP2988531B1 - Système d'assistance auditive avec détection de sa propre voix - Google Patents

Système d'assistance auditive avec détection de sa propre voix Download PDF

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Publication number
EP2988531B1
EP2988531B1 EP15181620.4A EP15181620A EP2988531B1 EP 2988531 B1 EP2988531 B1 EP 2988531B1 EP 15181620 A EP15181620 A EP 15181620A EP 2988531 B1 EP2988531 B1 EP 2988531B1
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EP
European Patent Office
Prior art keywords
voice
wearer
hearing assistance
microphone
assistance device
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Revoked
Application number
EP15181620.4A
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German (de)
English (en)
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EP2988531A1 (fr
Inventor
Ivo Merks
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Starkey Laboratories Inc
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Starkey Laboratories Inc
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Family has litigation
First worldwide family litigation filed litigation Critical https://patents.darts-ip.com/?family=53879441&utm_source=google_patent&utm_medium=platform_link&utm_campaign=public_patent_search&patent=EP2988531(B1) "Global patent litigation dataset” by Darts-ip is licensed under a Creative Commons Attribution 4.0 International License.
Priority claimed from US14/464,149 external-priority patent/US9219964B2/en
Application filed by Starkey Laboratories Inc filed Critical Starkey Laboratories Inc
Priority to EP18195310.0A priority Critical patent/EP3461148B1/fr
Publication of EP2988531A1 publication Critical patent/EP2988531A1/fr
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; DEAF-AID SETS; PUBLIC ADDRESS SYSTEMS
    • H04R25/00Deaf-aid sets, i.e. electro-acoustic or electro-mechanical hearing aids; Electric tinnitus maskers providing an auditory perception
    • H04R25/55Deaf-aid sets, i.e. electro-acoustic or electro-mechanical hearing aids; Electric tinnitus maskers providing an auditory perception using an external connection, either wireless or wired
    • H04R25/552Binaural
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; DEAF-AID SETS; PUBLIC ADDRESS SYSTEMS
    • H04R25/00Deaf-aid sets, i.e. electro-acoustic or electro-mechanical hearing aids; Electric tinnitus maskers providing an auditory perception
    • H04R25/40Arrangements for obtaining a desired directivity characteristic
    • H04R25/407Circuits for combining signals of a plurality of transducers
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; DEAF-AID SETS; PUBLIC ADDRESS SYSTEMS
    • H04R25/00Deaf-aid sets, i.e. electro-acoustic or electro-mechanical hearing aids; Electric tinnitus maskers providing an auditory perception
    • H04R25/40Arrangements for obtaining a desired directivity characteristic
    • H04R25/405Arrangements for obtaining a desired directivity characteristic by combining a plurality of transducers

Definitions

  • This application relates to hearing assistance systems, and more particularly, to hearing assistance systems with own voice detection.
  • Hearing assistance devices are electronic devices that amplify sounds above the audibility threshold to is hearing impaired user. Undesired sounds such as noise, feedback and the user's own voice may also be amplified, which can result in decreased sound quality and benefit for the user. It is undesirable for the user to hear his or her own voice amplified. Further, if the user is using an ear mold with little or no venting, he or she will experience an occlusion effect where his or her own voice sounds hollow ("talking in a barrel"). Thirdly, if the hearing aid has a noise reduction/environment classification algorithm, the user's own voice can be wrongly detected as desired speech.
  • a digital sound processing system 308 processes the acoustic signals received by the first and second microphones, and provides a signal to the receiver 306 to produce an audible signal to the wearer of the device 305.
  • the illustrated digital sound processing system 308 includes an interface 307, a sound processor 308, and a voice detector 309.
  • the illustrated interface 307 converts the analog signals from the first and second microphones into digital signals for processing by the sound processor 308 and the voice detector 309.
  • the interface may include analog-to-digital converters, and appropriate registers to hold the digital signals for processing by the sound processor and voice detector.
  • the voice detector 309 receives signals representative of sound received by the first microphone and sound received by the second microphone.
  • the voice detector 309 detects the user's own voice, and provides an indication 311 to the sound processor 308 regarding whether the user's own voice is detected. Once the user's own voice is detected any number of possible other actions can take place.
  • the sound processor 308 can perform one or more of the following, including but not limited to reduction of the amplification of the user's voice, control of an anti-occlusion process, and/or control of an environment classification process. Those skilled in the art will understand that other processes may take place without departing from the scope of the present subject matter.
  • the illustrated power analyzer 413 compares the power of the error signal 420 to the power of the signal representative of sound received from the first microphone. According to various embodiments, a voice will not be detected unless the power of the signal representative of sound received from the first microphone is much greater than the power of the error signal. For example, the power analyzer 413 compares the difference to a threshold, and will not detect voice if the difference is less than the threshold.
  • the illustrated coefficient analyzer 414 analyzes the filter coefficients from the adaptive filter process 415. According to various embodiments, a voice will not be detected unless a peak value for the coefficients is significantly high. For example, some embodiments will not detect voice unless the largest normalized coefficient is greater than a predetermined value (e.g. 0.5).
  • a predetermined value e.g. 0.5
  • FIGS. 5-7 illustrate various processes for detecting voice that can be used in various embodiments of the present subject matter.
  • the power of the error signal from the adaptive filter is compared to the power of a signal representative of sound received by the first microphone.
  • the threshold is selected to be sufficiently high to ensure that the power of the first microphone is much greater than the power of the error signal.
  • voice is detected at 523 if the power of the first microphone is greater than the power of the error signal by a predetermined threshold, and voice is not detected at 524 if the power of the first microphone is greater than the power of the error signal by a predetermined threshold.
  • coefficients of the adaptive filter are analyzed.
  • voice is detected at 623 if the largest normalized coefficient is greater than a predetermined value, and voice is not detected at 624 if the largest normalized coefficient is not greater than a predetermined value.
  • the power of the error signal from the adaptive filter is compared to the power of a signal representative of sound received by the first microphone.
  • voice is not detected at 724 if the power of the first microphone is not greater than the power of the error signal by a predetermined threshold. If the power of the error signal is too large, then the adaptive filter has not converged.
  • the coefficients are not analyzed until the adaptive filter converges.
  • coefficients of the adaptive filter are analyzed if the power of the first microphone is greater than the power of the error signal by a predetermined threshold.
  • FIG. 8 illustrates one embodiment of the present subject matter with an "own voice detector" to control active noise canceller for occlusion reduction.
  • the active noise canceller filters microphone M2 with filter h and sends the filtered signal to the receiver.
  • the microphone M2 and the error microphone M3 (in the ear canal) are used to calculate the filter update for filter h.
  • the own voice detector which uses microphone M1 and M2, is used to steer the stepsize in the filter update.
  • FIG. 9 illustrates one embodiment of the present subject matter offering a multichannel expansion, compression and output control limiting algorithm (MECO) which uses the signal of microphone M2 to calculate the desired gain and subsequently applies that gain to microphone signal M2 and then sends the amplified signal to the receiver. Additionally, the gain calculation can take into account the outcome of the own voice detector (which uses M1 and M2) to calculate the desired gain. If the wearer's own voice is detected, the gain in the lower channels (typically below 1 KHz) will be lowered to avoid occlusion. Note: the MECO algorithm can use microphone signal M1 or M2 or a combination of both.
  • MECO multichannel expansion, compression and output control limiting algorithm
  • FIG. 10 illustrates one embodiment of the present subject matter which uses an "own voice detector" in an environment classification scheme. From the microphone signal M2, several features are calculated. These features together with the result of the own voice detector, which uses M1 and M2, are used in a classifier to determine the acoustic environment. This acoustic environment classification is used to set the gain in the hearing aid.
  • the hearing aid may use M2 or M1 or M1 and M2 for the feature calculation.
  • FIG. 11 illustrates a pair of hearing assistance devices according to one embodiment of the present subject matter.
  • the pair of hearing assistance devices includes a left hearing assistance device 1105L and a right hearing assistance device 1105R, such as a left hearing aid and a right hearing aid.
  • the left hearing assistance device 1105L is configured to be worn in or about the left ear of a wearer for delivering sound to the left ear canal of the wearer.
  • the right hearing assistance device 1105R is configured to be worn in or about the right ear of the wearer for delivering sound to the right ear canal of the wearer.
  • the left and right hearing assistance devices 1105L and 1105R each represent an embodiment of the device 305 as discussed above with capability of performing wireless communication between each other and uses voice detection capability of both devices to determine whether voice of the wearer is present.
  • the illustrated left hearing assistance device 1105L includes a first microphone MIC 1L, a second microphone MIC 2L, an interface 1107L, a sound processor 1108L, a receiver 1106L, a voice detector 1109L, and a communication circuit 1130L.
  • the first microphone MIC 1L produces a first left microphone signal.
  • the second microphone MIC 2L produces a second left microphone signal.
  • the first microphone MIC 1L is positioned about the left ear or the wearer
  • the second microphone MIC 2L is positioned about the left ear canal of wearer, at a different location than the first microphone MIC 1L, on an air side of the left ear canal to detect signals outside the left ear canal.
  • Interface 1107L converts the analog versions of the first and second left microphone signals into digital signals for processing by the sound processor 1108L and the voice detector 1109L.
  • the interface 1107L may include analog-to-digital converters, and appropriate registers to hold the digital signals for processing by the sound processor 1108L and the voice detector 1109L.
  • the left voice detector 1109L detects a voice of the wearer using the first left microphone signal and the second left microphone signal. In one embodiment, in response to the voice of the wearer being detected based on the first left microphone signal and the second left microphone signal, the left voice detector 1109L produces a left detection signal indicative of detection of the voice of the wearer. In one embodiment, the left voice detector 1109L includes a left adaptive filter configured to output left information and identifies the voice of the wearer from the output left information. In various embodiments, the output left information includes coefficients of the left adaptive filter and/or a left error signal. In various embodiments, the left voice detector 1109L includes the voice detector 309 or the voice detector 409 as discussed above.
  • the left communication circuit 1130L receives information from, and transmits information to, the right hearing assistance device 1105R via a wireless communication link 1132.
  • the information transmitted via wireless communication link 1132 includes information associated with the detection of the voice of the wearer as performed by each of the left and right hearing assistance devices 1105L and 1105R.
  • the illustrated right hearing assistance device 1105R includes a first microphone MIC 1R, a second microphone MIC 2R, an interface 1107R, a sound processor 1108R, a receiver 1106R, a voice detector 1109R, and a communication circuit 1130R.
  • the first microphone MIC 1R produces a first right microphone signal.
  • the second microphone MIC 2R produces a second right microphone signal.
  • the first microphone MIC 1R is positioned about the right ear or the wearer
  • the second microphone MIC 2R is positioned about the right ear canal of wearer, at a different location than the first microphone MIC 1R, on an air side of the right ear canal to detect signals outside the right ear canal.
  • Interface 1107R converts the analog versions of the first and second right microphone signals into digital signals for processing by the sound processor 1108R and the voice detector 1109R.
  • the interface 1107R may include analog-to-digital converters, and appropriate registers to hold the digital signals for processing by the sound processor 1108R and the voice detector 1109R.
  • the sound processor 1108R produces a processed right sound signal 1110R.
  • the right receiver 1106R produces a right audible signal based on the processed right sound signal 1110R and transmits the right audible signal to the right ear canal of the wearer.
  • the sound processor 1108R produces the processed right sound signal 1110R based on the first right microphone signal.
  • the sound processor 1108R produces the processed right sound signal 1110R based on the first right microphone signal and the second right microphone signal.
  • the right voice detector 1109R detects the voice of the wearer using the first right microphone signal and the second right microphone signal. In one embodiment, in response to the voice of the wearer being detected based on the first right microphone signal and the second right microphone signal, the right voice detector 1109R produces a right detection signal indicative of detection of the voice of the wearer. In one embodiment, the right voice detector 1109R includes a right adaptive filter configured to output right information and identifies the voice of the wearer from the output right information. In various embodiments, the output right information includes coefficients of the right adaptive filter and/or a right error signal. In various embodiments, the right voice detector 1109R includes the voice detector 309 or the voice detector 409 as discussed above.
  • the right communication circuit 1130R receives information from, and transmits information to, the right hearing assistance device 1105R via a wireless communication link 1132.
  • At least one of the left voice detector 1109L and the right voice detector 1109R is configured to detect the voice of wearer using the first left microphone signal, the second left microphone signal, the first right microphone signal, and the second right microphone signal.
  • signals produced by all of the microphones MIC 1L, MIC 2L, MIC 1R, and MIC 2R are used for determining whether the voice of the wearer is present.
  • the left voice detector 1109L and/or the right voice detector 1109R declares a detection of the voice of the wearer in response to at least one of the left detection signal and the right detection signal being present.
  • the left voice detector 1109L and/or the right voice detector 1109R declares a detection of the voice of the wearer in response to the left detection signal and the right detection signal both being present. In one embodiment, the left voice detector 1109L and/or the right voice detector 1109R determines whether to declare a detection of the voice of the wearer using the output left information and output right information.
  • the output left information and output right information are each indicative of one or more detection strength parameters each being a measure of likeliness of actual existence of the voice of wearer. Examples of the one or more detection strength parameters include the difference between the power of the error signal and the power of the first microphone signal and the largest normalized coefficient of the adaptive filter.
  • the left voice detector 1109L and/or the right voice detector 1109R determines whether to declare a detection of the voice of the wearer using a weighted combination of the output left information and the output eight information.
  • the weighted combination of the output left information and the output right information can include a weighted sum of the detection strength parameters.
  • the one or more detection strength parameters produced by each of the left and right voice detectors can be multiplied by one or more corresponding weighting factors before being added to produce the weighted sum.
  • the weighting factors may be determined using a priori information such as estimates of the background noise and/or position(s) of other sound sources in a room.
  • the detection of the voice of the wearer is performed using both the left and the right voice detectors such as detectors 1109L and 1109R.
  • whether to declare a detection of the voice of the wearer may be determined by each of the left voice detector 1109L and the right voice detector 1109R, determined by the left voice detector 1109L and communicated to the right voice detector 1109R via wireless link 1132, or determined by the right voice detector 1109R and communicated to the left voice detector 1109L via wireless link 1132.
  • the left voice detector 1109L transmits an indication 1111L to the sound processor 1108L
  • the right voice detector 1109R transmits an indication 1111R to the sound processor 1108R.
  • the sound processors 1108L and 1108R produce the processed sound signals 1110L and 1110R, respectively, using the indication that the voice of the wearer is detected.
  • FIG. 12 illustrates a process for detecting voice using a pair of hearing assistance devices including a left hearing assistance device and a right hearing assistance device, such as the left and right hearing assistance devices 1105L and 1105R.
  • voice of a wearer is detected using the left hearing assistance device.
  • voice of a wearer is detected using the right hearing assistance device.
  • steps 1241 and 1242 are performed concurrently or simultaneously. Examples for each of steps 1241 and 1242 include the processes illustrated in each of FIGS. 5-7 .
  • whether to declare a detection of the voice of the wearer is determining using an outcome of both of the detections at 1241 and 1242.
  • the left and right hearing assistance devices each include first and second microphones. Electrical signals produced by the first and second microphones of the left hearing assistance device are used as inputs to a voice detector of the left hearing assistance device at 1241.
  • the voice detector of the left hearing assistance device includes a left adaptive filter. Electrical signals produced by the first and second microphones of the right hearing assistance device are used as inputs to a voice detector of the right hearing assistance device at 1242.
  • the voice detector of the right hearing assistance device includes a right adaptive filter.
  • the voice of the wearer is detected using information output from the left adaptive filter and information output from the right adaptive filter at 1243. In one embodiment, the voice of the wearer is detected using left coefficients of the left adaptive filter and right coefficients of the right adaptive filter.
  • the voice of the wearer is detected using a left error signal produced by the left adaptive filter and a right error signal produced by the right adaptive filter.
  • the voice of the wearer is detected using a left detection strength parameter of the information output from the left adaptive filter and a right detection strength parameter of the information output from the right adaptive filter.
  • the left and right detection strength parameters are each a measure of likeliness of actual existence of the voice of wearer. Examples of the left detection strength parameter include the difference between the power of a left error signal produced by the left adaptive filter and the power of the electrical signal produced by the first microphone of the left hearing assistance device and the largest normalized coefficient of the left adaptive filter.
  • Examples of the right detection strength parameter include the difference between the power of a right error signal produced by the right adaptive filter and the power of the electrical signal produced by the first microphone of the right hearing assistance device and the largest normalized coefficient of the right adaptive filter.
  • the voice of the wearer is detected using a weighted combination of the information output from the left adaptive filter and the information output from the right adaptive filter.
  • the voice of the wearer is detected using the left hearing assistance device based on the electrical signals produced by the first and second microphones of the left hearing assistance device, and a left detection signal indicative of whether the voice of the wearer is detected by the left hearing assistance device is produced, at 1241.
  • the voice of the wearer is detected using the right hearing assistance device based on the electrical signals produced by the first and second microphones of the right hearing assistance device, and a right detection signal indicative of whether the voice of the wearer is detected by the right hearing assistance device is produced, at 1242. Whether to declare the detection of the voice of the wearer is determined using the left detection signal and the right detection signal at 1243.
  • the detection of the voice of the wearer is declared in response to both of the left detection signal and the right detection signal being present. In another embodiment, the detection of the voice of the wearer is declared in response to at least one of the left detection signal and the right detection signal being present. In one embodiment, whether to declare the detection of the voice of the wearer is determined using the left detection signal, the right detection signal, and weighting factors applied to the left and right detection signals.
  • each device of a pair of hearing assistance devices can be applied to each device of a pair of hearing assistance devices, with the declaration of the detection of the voice of the wearer being a result of detection using both devices of the pair of hearing assistance devices, as discussed with reference to FIGS. 11 and 12 .
  • Such binaural voice detection will likely improve the acoustic perception of the wearer because both hearing assistance devices worn by the wearer are acting similarly when the wearer speaks.
  • whether to declare a detection of the voice of the wearer may be determined based on the detection performed by either one device of the pair of hearing assistance devices or based on the detection performed by both devices of the pair of hearing assistance devices.
  • An example of the pair of hearing assistance devices includes a pair of hearing aids.
  • the present subject matter includes hearing assistance devices, and was demonstrated with respect to BTE, OTE, and RIC type devices, but it is understood that it may also be employed in cochlear implant type hearing devices. It is understood that other hearing assistance devices not expressly stated herein may fall within the scope of the present subject matter.

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  • Engineering & Computer Science (AREA)
  • Health & Medical Sciences (AREA)
  • General Health & Medical Sciences (AREA)
  • Neurosurgery (AREA)
  • Otolaryngology (AREA)
  • Physics & Mathematics (AREA)
  • Acoustics & Sound (AREA)
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  • Computer Networks & Wireless Communication (AREA)
  • Circuit For Audible Band Transducer (AREA)

Claims (14)

  1. Appareil conçu pour être porté par un porteur ayant une oreille gauche pourvue d'un conduit auditif gauche et une oreille droite pourvue d'un conduit auditif droit, ledit appareil comprenant :
    un dispositif d'aide auditive gauche (1105L) conçu pour être porté dans l'oreille gauche, ou autour de celle-ci, et un dispositif d'aide auditive droit (1105R) conçu pour être porté dans l'oreille droite, ou autour de celle-ci, les dispositifs d'aide auditive gauche et droit étant conçus pour être couplés en communication entre eux par une liaison de communication sans fil (1132) et comprenant chacun :
    un premier microphone (MIC 1L, MIC 1R) conçu pour produire un premier signal microphonique ;
    un deuxième microphone (MIC 2L, MIC 2R) conçu pour produire un second signal microphonique ; et
    un détecteur de voix (1109L, 1109R) conçu pour détecter une voix du porteur en utilisant les premier et deuxième signaux microphonique et produire un signal de détection indiquant la détection de la voix du porteur,
    au moins un détecteur de voix des détecteurs de voix des dispositifs d'aide auditive gauche et droit étant conçu pour déterminer si la voix du porteur est présente en utilisant le signal de détection produit par le dispositif d'aide auditive gauche et le signal de détection produit par le dispositif d'aide auditive droit.
  2. Appareil selon la revendication 1, dans lequel le détecteur de voix de chacun des dispositifs d'aide auditive gauche et droit comprend un filtre adaptatif (415) conçu pour délivrer des informations et l'au moins un des détecteurs de voix des dispositifs d'aide auditive gauche et droit est conçu pour détecter la voix du porteur en utilisant les informations de sortie de chacun des dispositifs d'aide auditive gauche et droit.
  3. Appareil selon la revendication 2, dans lequel l'au moins un détecteur de voix est conçu pour détecter la voix du porteur en utilisant des coefficients du filtre adaptatif de chacun des dispositifs d'aide auditive gauche et droit.
  4. Appareil selon l'une quelconque des revendications 2 et 3, dans lequel l'au moins un détecteur de voix est conçu pour détecter la voix du porteur en utilisant un signal d'erreur produit par le filtre adaptatif de chacun des dispositifs d'aide auditive gauche et droit.
  5. Appareil selon l'une quelconque des revendications 2 à 4, dans lequel l'au moins un détecteur de voix est conçu pour détecter la voix du porteur en utilisant un paramètre d'intensité de détection des informations de sortie de chacun des dispositifs d'aide auditive gauche et droit, le paramètre d'intensité de détection étant une mesure de probabilité de l'existence réelle de la voix du porteur.
  6. Appareil selon l'une quelconque des revendications 2 à 5, dans lequel l'au moins un détecteur de voix est conçu pour détecter la voix du porteur en utilisant une combinaison pondérée des informations de sortie du dispositif d'aide auditive gauche et des informations de sortie du dispositif d'aide auditive droit.
  7. Appareil selon l'une quelconque des revendications précédentes, dans lequel les dispositifs d'aide auditive gauche et droit comprennent chacun une prothèse auditive conçue de telle sorte que lorsqu'elle est portée par le porteur, le premier microphone est positionné autour de l'une des oreilles gauche et droite et le deuxième microphone est positionné autour de l'un des conduits auditifs gauche et droit, à un emplacement différent du premier microphone, sur un côté air de l'un des conduits auditifs gauche et gauche pour détecter des signaux à l'extérieur de l'un des conduits auditifs gauche et droit.
  8. Appareil selon la revendication 7, dans lequel la prothèse auditive comprend :
    un processeur sonore conçu pour produire un signal sonore traité en se basant sur au moins le premier signal microphonique et sur la détection ou non de la voix du porteur ; et
    un récepteur conçu pour produire un signal audible sur la base du signal sonore traité et pour transmettre le signal audible à l'un des conduits auditifs gauche et droit.
  9. Procédé de détection de la voix d'un porteur d'une paire de dispositifs d'aide auditive gauche et droit (1105L, 1105R) comprenant chacun un premier microphone (MIC 1L, MIC 1R) et un deuxième microphone (MIC 2L, MIC 2R) et couplés de manière communicative entre eux par une liaison de communication sans fil (1132), le porteur ayant une oreille gauche pourvue d'un conduit auditif gauche et une oreille droite pourvue d'un conduit auditif droit, le procédé comprenant les étapes suivantes :
    produire des signaux électriques à l'aide du premier microphone et du deuxième microphone du dispositif d'aide auditive gauche positionné autour de l'oreille gauche pour détecter chacun le son à l'extérieur du conduit auditif gauche, le dispositif d'aide auditive gauche étant porté dans l'oreille gauche ou autour de celle-ci ;
    détecter la voix du porteur à l'aide du dispositif d'aide auditive gauche sur la base des signaux électriques produits par les premier et deuxième microphones du dispositif d'aide auditive gauche ;
    produire un signal de détection gauche indiquant si la voix du porteur est détectée par le dispositif d'aide auditive gauche ;
    produire des signaux électriques à l'aide du premier microphone et du deuxième microphone du dispositif d'aide auditive droit positionné autour de l'oreille droite pour détecter chacun le son à l'extérieur du conduit auditif droit, le dispositif d'aide auditive droit étant porté dans l'oreille droite ou autour de celle-ci ;
    détecter la voix du porteur à l'aide du dispositif d'aide auditive gauche sur la base des signaux électriques produits par les premier et deuxième microphones du dispositif d'aide auditive gauche ;
    produire un signal de détection gauche indiquant si la voix du porteur est détectée par le dispositif d'aide auditive gauche ;
    et
    déterminer s'il convient de déclarer une détection de la voix du porteur à l'aide d'au moins un des dispositifs d'aide auditive gauche et droit sur la base du signal de détection gauche et du signal de détection droit.
  10. Procédé selon la revendication 9, dans lequel la détection de la voix du porteur comprend les étapes suivantes :
    utiliser des signaux électriques produits par les premier et deuxième microphones du dispositif d'aide auditive gauche comme entrées d'un détecteur de voix du dispositif d'aide auditive gauche comprenant un filtre adaptatif gauche ;
    utiliser des signaux électriques produits par les premier et deuxième microphones du dispositif d'aide auditive droit comme entrées d'un détecteur de voix du dispositif d'aide auditive droit comprenant un filtre adaptatif droit ; et
    détecter la voix du porteur à l'aide des informations délivrées en sortie du filtre adaptatif gauche et des informations délivrées en sortie du filtre adaptatif droit.
  11. Procédé selon la revendication 10, dans lequel la détection de la voix du porteur comprend la détection de la voix du porteur à l'aide des coefficients gauches du filtre adaptatif gauche (415) et des coefficients droits du filtre adaptatif droit (415).
  12. Procédé selon l'une quelconque des revendications 10 et 11, dans lequel la détection de la voix du porteur comprend la détection de la voix du porteur à l'aide d'un signal d'erreur gauche produit par le filtre adaptatif gauche et d'un signal d'erreur droit produit par le filtre adaptatif droit.
  13. Procédé selon l'une quelconque des revendications 10 à 12, dans lequel la détection de la voix du porteur comprend la détection de la voix du porteur à l'aide un paramètre d'intensité de détection gauche des informations délivrées en sortie du filtre adaptatif gauche et d'un paramètre d'intensité de détection droit des informations délivrées en sortie du filtre adaptatif droit, les paramètres d'intensité de détection gauche et droit étant chacun une mesure de probabilité de l'existence réelle de la voix du porteur.
  14. Procédé selon l'une quelconque des revendications 10 à 13, dans lequel la détection de la voix du porteur comprend la détection de la voix du porteur à l'aide d'une combinaison pondérée des informations délivrées en sortie du filtre adaptatif gauche et des informations délivrées en sortie du filtre adaptatif droit.
EP15181620.4A 2014-08-20 2015-08-19 Système d'assistance auditive avec détection de sa propre voix Revoked EP2988531B1 (fr)

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US14/464,149 US9219964B2 (en) 2009-04-01 2014-08-20 Hearing assistance system with own voice detection

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EP3672281B1 (fr) * 2018-12-20 2023-06-21 GN Hearing A/S Dispositif d'aide auditive avec détection de sa propre voix et procédé associé
CN114449427A (zh) * 2020-11-02 2022-05-06 原相科技股份有限公司 听力辅助装置及调整听力辅助装置输出声音的方法

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WO2004077090A1 (fr) 2003-02-25 2004-09-10 Oticon A/S Procede de detection de l'activite de la propre voix d'un utilisateur dans un dispositif de communication
US20070098192A1 (en) 2002-09-18 2007-05-03 Sipkema Marcus K Spectacle hearing aid
US20100002887A1 (en) 2006-07-12 2010-01-07 Phonak Ag Method for operating a binaural hearing system as well as a binaural hearing system
US20100260364A1 (en) 2009-04-01 2010-10-14 Starkey Laboratories, Inc. Hearing assistance system with own voice detection
US20120128187A1 (en) 2010-06-18 2012-05-24 Panasonic Corporation Hearing aid, signal processing method, and program
US20130148829A1 (en) 2011-12-08 2013-06-13 Siemens Medical Instruments Pte. Ltd. Hearing apparatus with speaker activity detection and method for operating a hearing apparatus
US20140029762A1 (en) 2012-07-25 2014-01-30 Nokia Corporation Head-Mounted Sound Capture Device
WO2014075195A1 (fr) 2012-11-15 2014-05-22 Phonak Ag Formation de la propre voix d'un utilisateur dans un instrument d'aide auditive

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US7027607B2 (en) * 2000-09-22 2006-04-11 Gn Resound A/S Hearing aid with adaptive microphone matching
DE102010012622B4 (de) 2010-03-24 2015-04-30 Siemens Medical Instruments Pte. Ltd. Binaurales Verfahren und binaurale Anordnung zur Sprachsteuerung von Hörgeräten
DK2563045T3 (da) * 2011-08-23 2014-10-27 Oticon As Fremgangsmåde og et binauralt lyttesystem for at maksimere en bedre øreeffekt

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US20070098192A1 (en) 2002-09-18 2007-05-03 Sipkema Marcus K Spectacle hearing aid
WO2004077090A1 (fr) 2003-02-25 2004-09-10 Oticon A/S Procede de detection de l'activite de la propre voix d'un utilisateur dans un dispositif de communication
US20100002887A1 (en) 2006-07-12 2010-01-07 Phonak Ag Method for operating a binaural hearing system as well as a binaural hearing system
US20100260364A1 (en) 2009-04-01 2010-10-14 Starkey Laboratories, Inc. Hearing assistance system with own voice detection
EP2242289A1 (fr) 2009-04-01 2010-10-20 Starkey Laboratories, Inc. Système d'assistance auditive avec détection de sa propre voix
US20140010397A1 (en) 2009-04-01 2014-01-09 Starkey Laboratories, Inc. Hearing assistance system with own voice detection
US20120128187A1 (en) 2010-06-18 2012-05-24 Panasonic Corporation Hearing aid, signal processing method, and program
US20130148829A1 (en) 2011-12-08 2013-06-13 Siemens Medical Instruments Pte. Ltd. Hearing apparatus with speaker activity detection and method for operating a hearing apparatus
US20140029762A1 (en) 2012-07-25 2014-01-30 Nokia Corporation Head-Mounted Sound Capture Device
WO2014075195A1 (fr) 2012-11-15 2014-05-22 Phonak Ag Formation de la propre voix d'un utilisateur dans un instrument d'aide auditive

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EP3461148B1 (fr) 2023-03-22
EP3461148A3 (fr) 2019-04-17
DK2988531T3 (en) 2019-01-14
EP3461148A2 (fr) 2019-03-27
EP2988531A1 (fr) 2016-02-24

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