EP2190218A2 - Filter bank system with specific stop-band attenuation for a hearing device - Google Patents

Filter bank system with specific stop-band attenuation for a hearing device Download PDF

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Publication number
EP2190218A2
EP2190218A2 EP09175081A EP09175081A EP2190218A2 EP 2190218 A2 EP2190218 A2 EP 2190218A2 EP 09175081 A EP09175081 A EP 09175081A EP 09175081 A EP09175081 A EP 09175081A EP 2190218 A2 EP2190218 A2 EP 2190218A2
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EP
European Patent Office
Prior art keywords
filter bank
attenuation
frequency
synthesis
dependent
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EP09175081A
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German (de)
French (fr)
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EP2190218B1 (en
EP2190218A3 (en
Inventor
Daniel Alfsmann
Heinz Goeckler
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Sivantos Pte Ltd
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Siemens Medical Instruments Pte Ltd
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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
    • H04R25/50Customised settings for obtaining desired overall acoustical characteristics
    • H04R25/505Customised settings for obtaining desired overall acoustical characteristics using digital signal processing
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04RLOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; DEAF-AID SETS; PUBLIC ADDRESS SYSTEMS
    • H04R2430/00Signal processing covered by H04R, not provided for in its groups
    • H04R2430/03Synergistic effects of band splitting and sub-band processing

Definitions

  • the present invention relates to a filter bank system for a hearing apparatus having an analysis filter bank for decomposing an input signal into subband signals, processing means for manipulating at least one of the subband signals and a synthesis filter bank for composing the manipulated subband signal with at least one other of the subband signals.
  • the present invention relates to a hearing aid with such a filter bank system.
  • hearing device is understood to mean here any sound-emitting device that can be worn in or on the ear or on the head, in particular a hearing device, a headset, headphones and the like.
  • Hearing aids are portable hearing aids that are used to care for the hearing impaired.
  • different types of hearing aids such as behind-the-ear hearing aids (BTE), hearing aid with external receiver (RIC: receiver in the canal) and in-the-ear hearing aids (IDO), e.g. Concha hearing aids or canal hearing aids (ITE, CIC).
  • BTE behind-the-ear hearing aids
  • RIC hearing aid with external receiver
  • IDO in-the-ear hearing aids
  • ITE canal hearing aids
  • the hearing aids listed by way of example are worn on the outer ear or in the ear canal.
  • bone conduction hearing aids, implantable or vibrotactile hearing aids are also available on the market. The stimulation of the damaged hearing takes place either mechanically or electrically.
  • Hearing aids have in principle as essential components an input transducer, an amplifier and an output transducer.
  • the input transducer is usually a sound receiver, z. As a microphone, and / or an electromagnetic receiver, for. B. an induction coil.
  • the output transducer is usually used as an electroacoustic transducer, z. As miniature speaker, or as an electromechanical transducer, z. B. bone conduction, realized.
  • the amplifier is usually integrated in a signal processing unit. This basic structure is in FIG. 1 shown using the example of a behind-the-ear hearing aid. In a hearing aid housing 1 for carrying behind the ear, one or more microphones 2 for receiving the sound from the environment are installed.
  • a signal processing unit 3 which is also integrated in the hearing aid housing 1, processes the microphone signals and amplifies them.
  • the output signal of the signal processing unit 3 is transmitted to a loudspeaker or earpiece 4, which outputs an acoustic signal.
  • the sound is optionally transmitted via a sound tube, which is fixed with an earmold in the ear canal, to the eardrum of the device carrier.
  • the power supply of the hearing device and in particular the signal processing unit 3 is effected by a likewise integrated into the hearing aid housing 1 battery. 5
  • Sound signals which are recorded by one or more microphones of a hearing device or another hearing device are usually decomposed into subband signals for further processing.
  • an analysis-synthesis filter bank system This has one or more frequency-selective digital analysis filter banks (AFB), with which the sound signal is decomposed into K> 1 subband signals.
  • AFB frequency-selective digital analysis filter banks
  • Subband-specific signal manipulation then takes place, in particular amplification or attenuation of the subband signals.
  • a re-synthesis of the manipulated subband signals is performed by means of one or more digital synthesis filter banks (SFB).
  • the filter bank system is usually oversampling and has an oversampling factor U ⁇ 1.
  • High-quality filter banks in hearing aids are subject to certain requirements. For example, in the bottommost bands, a channel width of at least about 250 Hz is needed. Otherwise, the band gap should be based on the Bark scale. A finer resolution, for example in the broader bands according to the Bark scale, is the application but not contrary. Furthermore, a channel number of at least 22 is desirable. Disturbance due to aliasing and imaging should be below about 40-60 dB, depending on the application (hearing impairment of the patient). Due to the intensive subband processing (especially the high gain required to compensate for hearing loss) in hearing aids, conventional methods for erasing aliasing and imaging are not effective. The filter banks are therefore fundamentally "non-critical" to scan.
  • the group delay (in each case for AFB and SFB) should be well below 5 ms and the group delay distortions should not exceed a certain range. Especially for high frequencies, the group delay is to be kept as low as possible, which represents a significant limiting factor for the filter bank.
  • the AFB and the SFB should be designed such that the signal / interference distance at the output of the filter bank system with arbitrary manipulation (amplification / attenuation) of the subband signals changed only within predeterminable limits. This also includes the case of the complete independence of the signal / interference distance at the output of the filter bank system from the manipulation of the subband signals.
  • the AFB and the SFB should be designed so that for a at the output of the filter bank system in response to the manipulation of the subband signals permissible variation of the signal / interference distance of the circuit complexity (corresponds to the filter orders) and / or the group delay (total delay ) of the filter bank system is reduced over the prior art.
  • filter banks AFB and SFB have been designed the same (in particular, equal magnitude specification of minimum phase AFB and maximum phase SFB).
  • the oversampling factor was not considered in detail.
  • the signal manipulation considered in the system specification of the filter bank system. This resulted in large fluctuations in the signal quality (signal / interference distance) as a function of the respective manipulation (amplification) of the subband signals.
  • the object of the present invention is thus to propose a filter bank system with reduced computational effort, with which nevertheless a high signal quality, in particular a specific signal / interference distance, can be achieved.
  • this object is achieved by a filter bank system for a hearing device with an analysis filter bank (AFB) for decomposing an input signal into subband signals, a processing device for manipulating at least one of the subband signals and a synthesis filter bank (SFB) for assembling the manipulated subband signal with at least one further of the subband signals.
  • AFB analysis filter bank
  • SFB synthesis filter bank
  • stopband attenuation of at least one of the transfer functions of the analysis filter bank is composed of a separately configurable, frequency independent analysis baseline damping portion and a separately configurable, frequency dependent analysis attenuation portion, and / or the stopband attenuation of at least one of the synthesis filter bank (SFB) transfer functions a separately configurable, frequency-dependent synthesis baseline attenuation component, a separately configurable, frequency dependent and manipulative dependent, ers th synthesis-damping part and a separately configurable, frequency-dependent, second synthesis damping component.
  • FAB analysis filter bank
  • all the attenuation components are configured on the basis of the signal / interference distance at the output of the filter bank system.
  • the expert is given a simple criterion in the design of the filter bank systems at hand.
  • the analysis baseline attenuation fraction depends on the downsampling factor of the analysis filter bank.
  • the basic attenuation can be set to a minimum value.
  • a masking effect of a human ear can be taken into account in the frequency-dependent analysis-attenuation component and / or synthesis-attenuation component. This makes use of the fact that, in the case of sound perception, two parts located close to one another in a spectrally obscure manner may be completely or partially obscured. Noise components which are obscured by other components would thus no longer have to be fully attenuated.
  • the frequency-dependent analysis-attenuation component may be periodically modified, the periodicity being determined by the oversampling factor of the analysis filter bank (AFB) and the maximum attenuation reduction by the passbands (transmission behavior) of the AFB and SFB.
  • the frequency-dependent synthesis damping component can be periodically modified, the periodicity also being determined by the upward-scaling factor or integration factor of the synthesis filter bank and the maximum attenuation reduction by the oversampling factor.
  • the periodicity of the attenuation components takes into account the fact that the artefacts also occur periodically through aliasing and imaging.
  • baseline synthesis fraction of synthesis may depend on the synthesis filter bank up-down factor.
  • the frequency-dependent first synthesis damping component depends on a gain of the processing device.
  • the attenuation of the interference components can just be chosen so that only then strongly attenuated if they are also high due to high amplification of the useful signal. This, too, can generally or temporarily reduce the filter effort.
  • the periodicity is determined by the oversampling factor of the synthesis filter bank (SFB) and the maximum attenuation reduction by the transmission range (transmission behavior) of the SFB.
  • FIG. 2 a filter bank system is shown schematically, as it is used for example in a device.
  • An input signal e eg, speech signal
  • AFB analysis filter bank
  • M1, M2, M3,..., M32 of the individual signals is followed by a subband-specific manipulation M1, M2, M3,..., M32 of the individual signals.
  • the individual subband signals are synthesized in an adjusted with respect to the amount of frequency response to the analysis filter bank AFB synthesis filter bank SFB again to an output signal a.
  • the individual filter functions are implemented by so-called prototype filters, from which the individual filters are derived, for example, by a complex-modulating transformation kernel in the filter bank.
  • prototype filters have, for example, low-pass characteristics. In the following, only the blocking area of the prototype filter is considered.
  • the notch attenuation specification of the transfer functions of the AFB is composed of a frequency-independent basic attenuation a AFB and frequency-dependent attenuation components.
  • the blocking attenuation specification of the transfer functions of the SFB is composed of a frequency-independent basic attenuation a SFB and first and second frequency-dependent attenuation components, wherein the first frequency-dependent attenuation component additionally depends on the signal manipulation between the two filter banks.
  • U oversampling factor
  • mutual masking effects of frequency closely adjacent signal components are to be used in order to reduce the circuit complexity or the filter order and / or the total group delay of the filter bank system.
  • the deterioration of the signal / interference distance at the output of the filter bank system should be approximately the same for any manipulation (amplification / attenuation of the subband signals by aliasing contributions of the AFB or by imaging contributions of the SFB.
  • the configuration of a concrete filter bank system will now be described on the basis of FIG. 3 and 4 explained in more detail.
  • the signal / interference distance SNR is generally used at the output of the filter bank system.
  • a frequency independent attenuation a basic AFB is first determined by the desired SNR AFB.
  • This signal / interference distance SNR AFB results from aliasing in the AFB.
  • the basic attenuation in the stopband is now supplemented by a frequency-dependent additional stop attenuation.
  • a first part 10 of the frequency-dependent attenuation component of the AFB specification results from the fact that masking effects of the human ear are utilized. This reduces the stopband attenuation near the filter passband. In the example of FIG. 3 this second part 10 is reduced by 10 dB in the vicinity of the passband and then ramps up from the eighth subband to its final value.
  • a second part 11 of the frequency-dependent damping component of the AFB specification results from the fact that the interference components generated in the AFB by aliasing are evaluated differently in the SFB.
  • the second part 11 is periodic so that the total stopband attenuation over the frequency is periodically modified.
  • the number of periods depends on the oversampling factor U, and the depth of the allowable attenuation reduction is determined by the product of the passbands of the prototype filters in the AFB and SFB.
  • the total stop attenuation 12 results from the sum of all attenuation components including the fundamental attenuation, based on a logarithmic measure (decibel).
  • a logarithmic measure decibel
  • FIG. 3 the entire frequency-dependent stopband attenuation 12 is shown. Their absolute level results from the basic attenuation a AFB (in FIG. 3 not shown), which is added in the logarithmic measure to the frequency-dependent stopband attenuation.
  • the frequency-dependent stop attenuation thus increases over the 32 subbands selected here according to the ramp of the first part 10.
  • the basic attenuation a SFB of the synthesis filter bank is likewise defined by the desired signal / interference distance SNRS FB . It results from imaging in the SFB. Again, the fundamental attenuation a SFB is dependent on the interpolation factor M of the SFB, which is equal to the decimation factor M of the AFB.
  • This gain-dependent component is important because the imaging components in the SFB are also enhanced.
  • a first part 14 of the second frequency-dependent damping component of the SFB specification results, as in the AFB, in exploiting masking effects of the human ear.
  • the specification of the stop band attenuation of the transfer function of the SFB filters in the vicinity of the filter pass band is reduced exactly as in the AFB. This reduction can also contribute to a reduction of the filter order.
  • a second part 15 of the second frequency-dependent damping component of the SFB specification results from the fact that U • (M-1) spectral components (images of the SFB) of different strengths come to lie in each channel.
  • M-1 main components central region of a spectral distribution of signal and alias power
  • KM-1 differentially attenuated secondary components outer regions of the spectral distribution of signal and alias power.
  • the specification of the stopband attenuation is thus modified periodically over the frequency, the number of the periods is dependent on the oversampling factor U and the depth of the permissible attenuation reduction is determined by the passband of the prototype filter (in the SFB).
  • the total stop attenuation 16 of the prototype filter for the SFB again results from the sum of all attenuation components.
  • the fundamental attenuation a SFB determines the absolute position of the stopband attenuation by adding it for the specification of the prototype filter to the frequency-dependent attenuation parts in the logarithmic sense.
  • the frequency-dependent reduction of the stopband attenuation 12 and 16 in the optimized specifications is now used to reduce, for example, the circuit complexity and the filter order.
  • the frequency-dependent reduction of the stopband attenuation can also be used to reduce the group delay.
  • the frequency-independent basic attenuation of the filter banks can be increased if the stopband attenuation can be reduced in a frequency-dependent manner.

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  • Health & Medical Sciences (AREA)
  • General Health & Medical Sciences (AREA)
  • Neurosurgery (AREA)
  • Otolaryngology (AREA)
  • Physics & Mathematics (AREA)
  • Engineering & Computer Science (AREA)
  • Acoustics & Sound (AREA)
  • Signal Processing (AREA)
  • Circuit For Audible Band Transducer (AREA)
  • Networks Using Active Elements (AREA)
  • Filters That Use Time-Delay Elements (AREA)

Abstract

The filter bank system has an analysis filter bank for analyzing the input signals in partial band signal. A stop-band attenuation (12) assembles one of a transmission function of analysis filter bank from a separately configured, frequency dependent analysis-base attenuation fraction and separately configured, frequency dependent analysis attenuation fractions (10,11). A synthesis filter bank is provided for assembling a manipulated partial band signal with another partial band signal.

Description

Die vorliegende Erfindung betrifft ein Filterbanksystem für eine Hörvorrichtung mit einer Analysefilterbank zum Zerlegen eines Eingangssignals in Teilbandsignale, einer Verarbeitungseinrichtung zum Manipulieren mindestens eines der Teilbandsignale und einer Synthesefilterbank zum Zusammensetzen des manipulierten Teilbandsignals mit mindestens einem weiteren der Teilbandsignale. Darüber hinaus betrifft die vorliegende Erfindung ein Hörgerät mit einem derartigen Filterbank-system. Unter dem Begriff "Hörvorrichtung" wird hier jedes im oder am Ohr bzw. am Kopf tragbare schallausgebende Gerät verstanden, insbesondere ein Hörgerät, ein Headset, Kopfhörer und dergleichen.The present invention relates to a filter bank system for a hearing apparatus having an analysis filter bank for decomposing an input signal into subband signals, processing means for manipulating at least one of the subband signals and a synthesis filter bank for composing the manipulated subband signal with at least one other of the subband signals. Moreover, the present invention relates to a hearing aid with such a filter bank system. The term "hearing device" is understood to mean here any sound-emitting device that can be worn in or on the ear or on the head, in particular a hearing device, a headset, headphones and the like.

Hörgeräte sind tragbare Hörvorrichtungen, die zur Versorgung von Schwerhörenden dienen. Um den zahlreichen individuellen Bedürfnissen entgegenzukommen, werden unterschiedliche Bauformen von Hörgeräten wie Hinter-dem-Ohr-Hörgeräte (HdO), Hörgerät mit externem Hörer (RIC: receiver in the canal) und In-dem-Ohr-Hörgeräte (IdO), z.B. auch Concha-Hörgeräte oder Kanal-Hörgeräte (ITE, CIC), bereitgestellt. Die beispielhaft aufgeführten Hörgeräte werden am Außenohr oder im Gehörgang getragen. Darüber hinaus stehen auf dem Markt aber auch Knochenleitungshörhilfen, implantierbare oder vibrotaktile Hörhilfen zur Verfügung. Dabei erfolgt die Stimulation des geschädigten Gehörs entweder mechanisch oder elektrisch.Hearing aids are portable hearing aids that are used to care for the hearing impaired. In order to meet the numerous individual needs, different types of hearing aids such as behind-the-ear hearing aids (BTE), hearing aid with external receiver (RIC: receiver in the canal) and in-the-ear hearing aids (IDO), e.g. Concha hearing aids or canal hearing aids (ITE, CIC). The hearing aids listed by way of example are worn on the outer ear or in the ear canal. In addition, bone conduction hearing aids, implantable or vibrotactile hearing aids are also available on the market. The stimulation of the damaged hearing takes place either mechanically or electrically.

Hörgeräte besitzen prinzipiell als wesentliche Komponenten einen Eingangswandler, einen Verstärker und einen Ausgangswandler. Der Eingangswandler ist in der Regel ein Schallempfänger, z. B. ein Mikrofon, und/oder ein elektromagnetischer Empfänger, z. B. eine Induktionsspule. Der Ausgangswandler ist meist als elektroakustischer Wandler, z. B. Miniaturlautsprecher, oder als elektromechanischer Wandler, z. B. Knochenleitungshörer, realisiert. Der Verstärker ist üblicherweise in eine Signalverarbeitungseinheit integriert. Dieser prinzipielle Aufbau ist in FIG 1 am Beispiel eines Hinter-dem-Ohr-Hörgeräts dargestellt. In ein Hörgerätegehäuse 1 zum Tragen hinter dem Ohr sind ein oder mehrere Mikrofone 2 zur Aufnahme des Schalls aus der Umgebung eingebaut. Eine Signalverarbeitungseinheit 3, die ebenfalls in das Hörgerätegehäuse 1 integriert ist, verarbeitet die Mikrofonsignale und verstärkt sie. Das Ausgangssignal der Signalverarbeitungseinheit 3 wird an einen Lautsprecher bzw. Hörer 4 übertragen, der ein akustisches Signal ausgibt. Der Schall wird gegebenenfalls über einen Schallschlauch, der mit einer Otoplastik im Gehörgang fixiert ist, zum Trommelfell des Geräteträgers übertragen. Die Energieversorgung des Hörgeräts und insbesondere die der Signalverarbeitungseinheit 3 erfolgt durch eine ebenfalls ins Hörgerätegehäuse 1 integrierte Batterie 5.Hearing aids have in principle as essential components an input transducer, an amplifier and an output transducer. The input transducer is usually a sound receiver, z. As a microphone, and / or an electromagnetic receiver, for. B. an induction coil. The output transducer is usually used as an electroacoustic transducer, z. As miniature speaker, or as an electromechanical transducer, z. B. bone conduction, realized. The amplifier is usually integrated in a signal processing unit. This basic structure is in FIG. 1 shown using the example of a behind-the-ear hearing aid. In a hearing aid housing 1 for carrying behind the ear, one or more microphones 2 for receiving the sound from the environment are installed. A signal processing unit 3, which is also integrated in the hearing aid housing 1, processes the microphone signals and amplifies them. The output signal of the signal processing unit 3 is transmitted to a loudspeaker or earpiece 4, which outputs an acoustic signal. The sound is optionally transmitted via a sound tube, which is fixed with an earmold in the ear canal, to the eardrum of the device carrier. The power supply of the hearing device and in particular the signal processing unit 3 is effected by a likewise integrated into the hearing aid housing 1 battery. 5

Schallsignale, die von einem oder mehreren Mikrofonen eines Hörgeräts bzw. einer anderen Hörvorrichtung aufgenommen werden, werden üblicherweise zur weiteren Verarbeitung in Teilbandsignale zerlegt. Hierzu bedient man sich üblicherweise eines Analyse-Synthese-Filterbanksystems. Dieses besitzt eine oder mehrere frequenzselektive digitale Analyse-Filterbänke (AFB), mit denen das Schallsignal in K > 1 Teilbandsignale zerlegt wird. Anschließend erfolgt eine teilbandspezifische Signalmanipulation, insbesondere eine Verstärkung bzw. Abschwächung der Teilbandsignale. Anschließend wird eine Re-Synthese der manipulierten Teilbandsignale mittels einer oder mehrerer digitaler Synthese-Filterbänke (SFB) durchgeführt. Das Filterbank-System ist in der Regel überabtastend und besitzt einen Überabtastfaktor U ≥ 1.Sound signals which are recorded by one or more microphones of a hearing device or another hearing device are usually decomposed into subband signals for further processing. For this one usually uses an analysis-synthesis filter bank system. This has one or more frequency-selective digital analysis filter banks (AFB), with which the sound signal is decomposed into K> 1 subband signals. Subband-specific signal manipulation then takes place, in particular amplification or attenuation of the subband signals. Subsequently, a re-synthesis of the manipulated subband signals is performed by means of one or more digital synthesis filter banks (SFB). The filter bank system is usually oversampling and has an oversampling factor U ≥ 1.

An hochwertige Filterbänke in Hörgeräten werden gewisse Anforderungen gestellt. So wird beispielsweise in den untersten Bändern eine Kanalbreite von mindestens etwa 250 Hz benötigt. Ansonsten sollte sich der Bandabstand in etwa nach der Bark-Skala richten. Eine feinere Auflösung, beispielsweise in den breiteren Bändern nach der Bark-Skala, steht der Anwendung jedoch nicht entgegen. Ferner ist eine Kanalzahl von mindestens 22 wünschenswert. Störanteile durch Aliasing und Imaging sollten je nach Anwendungsfall (Hörschaden des Patienten) unterhalb von etwa 40-60 dB liegen. Aufgrund der intensiven Teilbandverarbeitung (insbesondere die hohe erforderliche Verstärkung zur Kompensation des Hörschadens) bei Hörgeräten sind herkömmliche Verfahren zur Auslöschung von Aliasing und Imaging nicht wirksam. Die Filterbänke sind daher grundsätzlich "nicht kritisch" abzutasten. Des Weiteren sollte die Gruppenlaufzeit (jeweils für AFB und SFB) deutlich unter 5 ms liegen und die Gruppenlaufzeitverzerrungen einen gewissen Rahmen nicht überschreiten. Insbesondere für hohe Frequenzen ist dabei die Gruppenlaufzeit so gering wie möglich zu halten, was einen wesentlichen limitierenden Faktor für die Filterbank darstellt.High-quality filter banks in hearing aids are subject to certain requirements. For example, in the bottommost bands, a channel width of at least about 250 Hz is needed. Otherwise, the band gap should be based on the Bark scale. A finer resolution, for example in the broader bands according to the Bark scale, is the application but not contrary. Furthermore, a channel number of at least 22 is desirable. Disturbance due to aliasing and imaging should be below about 40-60 dB, depending on the application (hearing impairment of the patient). Due to the intensive subband processing (especially the high gain required to compensate for hearing loss) in hearing aids, conventional methods for erasing aliasing and imaging are not effective. The filter banks are therefore fundamentally "non-critical" to scan. Furthermore, the group delay (in each case for AFB and SFB) should be well below 5 ms and the group delay distortions should not exceed a certain range. Especially for high frequencies, the group delay is to be kept as low as possible, which represents a significant limiting factor for the filter bank.

Speziell sollten die AFB und die SFB derart ausgebildet sein, dass sich der Signal/Stör-Abstand am Ausgang des Filterbank-Systems bei beliebiger Manipulation (Verstärkung/Abschwächung) der Teilbandsignale nur innerhalb vorgebbarer Grenzen verändert. Darin eingeschlossen ist auch der Fall der gänzlichen Unabhängigkeit des Signal/Stör-Abstands am Ausgang des Filterbanksystems von der Manipulation der Teilbandsignale.Specifically, the AFB and the SFB should be designed such that the signal / interference distance at the output of the filter bank system with arbitrary manipulation (amplification / attenuation) of the subband signals changed only within predeterminable limits. This also includes the case of the complete independence of the signal / interference distance at the output of the filter bank system from the manipulation of the subband signals.

Darüber hinaus sollten die AFB und die SFB derart ausgelegt sein, dass für eine am Ausgang des Filterbank-Systems in Abhängigkeit von der Manipulation der Teilbandsignale zulässige Schwankung des Signal/Stör-Abstands der Schaltungsaufwand (entspricht den Filterordnungen) und/oder die Gruppenlaufzeit (Gesamtverzögerung) des Filterbanksystems gegenüber dem Stand der Technik vermindert ist.In addition, the AFB and the SFB should be designed so that for a at the output of the filter bank system in response to the manipulation of the subband signals permissible variation of the signal / interference distance of the circuit complexity (corresponds to the filter orders) and / or the group delay (total delay ) of the filter bank system is reduced over the prior art.

Bei bisherigen Ansätzen zur Lösung dieser Problematiken wurden die Filterbänke AFB und SFB beispielsweise gleich entworfen (insbesondere gleiche Betragsspezifikation von minimalphasiger AFB und maximalphasiger SFB). Bei der frequenzunabhängigen Sperrdämpfung wurde der Überabtastfaktor nicht im Detail berücksichtigt. Ebenso wenig wurde die Signalmanipulation bei der Systemspezifikation des Filterbanksystems berücksichtigt. Damit ergaben sich große Schwankungen der Signalqualität (Signal/Stör-Abstand) in Abhängigkeit von der jeweiligen Manipulation (Verstärkung) der Teilbandsignale.For example, in previous approaches to solving these problems, filter banks AFB and SFB have been designed the same (in particular, equal magnitude specification of minimum phase AFB and maximum phase SFB). In the case of the frequency-independent stop attenuation, the oversampling factor was not considered in detail. Nor was the signal manipulation considered in the system specification of the filter bank system. This resulted in large fluctuations in the signal quality (signal / interference distance) as a function of the respective manipulation (amplification) of the subband signals.

Die Aufgabe der vorliegenden Erfindung besteht somit darin, ein Filterbanksystem mit vermindertem Rechenaufwand vorzuschlagen, mit dem dennoch eine hohe Signalqualität, insbesondere ein bestimmter Signal/Stör-Abstand, erreicht werden kann.The object of the present invention is thus to propose a filter bank system with reduced computational effort, with which nevertheless a high signal quality, in particular a specific signal / interference distance, can be achieved.

Erfindungsgemäß wird diese Aufgabe gelöst durch ein Filterbanksystem für eine Hörvorrichtung mit einer Analysefilterbank (AFB) zum Zerlegen eines Eingangssignals in Teilbandsignale, einer Verarbeitungseinrichtung zum Manipulieren mindestens eines der Teilbandsignale und einer Synthesefilterbank (SFB) zum Zusammensetzen des manipulierten Teilbandsignals mit mindestens einem weiteren der Teilbandsignale, wobei die Sperrdämpfung mindestens einer der Übertragungsfunktionen der Analysefilterbank (AFB) sich zusammensetzt aus einem separat konfigurierbaren, frequenzunabhängigen Analyse-Grunddämpfungsanteil und einem separat konfigurierbaren, frequenzabhängigen Analyse-Dämpfungsanteil, und/oder die Sperrdämpfung mindestens einer der Übertragungsfunktionen der Synthesefilterbank (SFB) sich zusammensetzt aus einem separat konfigurierbaren, frequenzabhängigen Synthese-Grunddämpfungsanteil, einem separat konfigurierbaren, frequenzabhängigen und von dem Manipulieren abhängigen, ersten Synthese-Dämpfungsteil und einem separat konfigurierbaren, frequenzabhängigen, zweiten Synthese-Dämpfungsanteil.According to the invention, this object is achieved by a filter bank system for a hearing device with an analysis filter bank (AFB) for decomposing an input signal into subband signals, a processing device for manipulating at least one of the subband signals and a synthesis filter bank (SFB) for assembling the manipulated subband signal with at least one further of the subband signals. wherein the stopband attenuation of at least one of the transfer functions of the analysis filter bank (AFB) is composed of a separately configurable, frequency independent analysis baseline damping portion and a separately configurable, frequency dependent analysis attenuation portion, and / or the stopband attenuation of at least one of the synthesis filter bank (SFB) transfer functions a separately configurable, frequency-dependent synthesis baseline attenuation component, a separately configurable, frequency dependent and manipulative dependent, ers th synthesis-damping part and a separately configurable, frequency-dependent, second synthesis damping component.

In vorteilhafter Weise ist es somit möglich, bei der Sperrdämpfung bestimmte Effekte auszunutzen und die Dämpfung nur dort hochzuhalten, wo es notwendig ist. Dadurch kann die Filterordnung unter Umständen deutlich reduziert werden.Advantageously, it is thus possible to exploit certain effects in the stopband attenuation and to keep the damping high only where it is necessary. As a result, the filter order can be significantly reduced under certain circumstances.

Vorzugsweise sind sämtliche Dämpfungsanteile anhand des Signal/Stör-Abstands am Ausgang des Filterbanksystems konfiguriert. Damit ist dem Fachmann ein einfaches Kriterium beim Entwurf der Filterbanksysteme an die Hand gegeben.Preferably, all the attenuation components are configured on the basis of the signal / interference distance at the output of the filter bank system. Thus, the expert is given a simple criterion in the design of the filter bank systems at hand.

In einer speziellen Ausführungsform hängt der Analyse-Grunddämpfungsanteil von dem Abwärtstastfaktor der Analysefilterbank ab. Somit lässt sich die Grunddämpfung auf einen minimalen Wert festlegen.In a specific embodiment, the analysis baseline attenuation fraction depends on the downsampling factor of the analysis filter bank. Thus, the basic attenuation can be set to a minimum value.

Darüber hinaus kann in dem frequenzabhängigen Analyse-Dämpfungsanteil und/oder Synthese-Dämpfungsanteil ein Maskierungseffekt eines menschlichen Gehörs berücksichtigt werden. Damit wird die Tatsache genutzt, dass bei der Schallwahrnehmung zwei spektral nahe beieinanderliegende Anteile sich unter Umständen ganz oder teilweise verdecken. Rauschanteile, die durch andere Anteile verdeckt werden, müssten somit nicht mehr in vollem Maße gedämpft werden.In addition, a masking effect of a human ear can be taken into account in the frequency-dependent analysis-attenuation component and / or synthesis-attenuation component. This makes use of the fact that, in the case of sound perception, two parts located close to one another in a spectrally obscure manner may be completely or partially obscured. Noise components which are obscured by other components would thus no longer have to be fully attenuated.

In einer weiteren Ausführungsform kann der frequenzabhängige Analyse-Dämpfungsanteil periodisch modifiziert sein, wobei die Periodizität durch den Überabtastfaktor der Analysefilterbank (AFB) und die maximale Dämpfungsabsenkung durch die Durchlassbereiche (Übertragungsverhalten) der AFB und SFB bestimmt ist. In gleicher Weise kann der frequenzabhängige Synthese-Dämpfungsanteil periodisch modifiziert sein, wobei auch hier die Periodizität von dem Aufwärtstastfaktor bzw. Integrationsfaktor der Synthesefilterbank und die maximale Dämpfungsabsenkung durch den Überabtastfaktor bestimmt ist. Durch die Periodizität der Dämpfungsanteile wird der Tatsache Rechnung getragen, dass auch die Artefakte durch Aliasing und Imaging periodisch auftreten.In a further embodiment, the frequency-dependent analysis-attenuation component may be periodically modified, the periodicity being determined by the oversampling factor of the analysis filter bank (AFB) and the maximum attenuation reduction by the passbands (transmission behavior) of the AFB and SFB. In the same way, the frequency-dependent synthesis damping component can be periodically modified, the periodicity also being determined by the upward-scaling factor or integration factor of the synthesis filter bank and the maximum attenuation reduction by the oversampling factor. The periodicity of the attenuation components takes into account the fact that the artefacts also occur periodically through aliasing and imaging.

Ebenso kann der Synthese-Grunddämpfungsanteil von dem Aufwärtstastfaktor der Synthesefilterbank abhängen.Likewise, the baseline synthesis fraction of synthesis may depend on the synthesis filter bank up-down factor.

Des Weiteren ist von besonderem Vorteil, wenn der frequenzabhängige erste Synthese-Dämpfungsanteil von einer Verstärkung der Verarbeitungseinrichtung abhängt. Damit kann die Dämpfung der Störanteile gerade so gewählt werden, dass diese nur dann stark bedämpft werden, wenn sie durch hohe Verstärkung des Nutzsignals ebenfalls hoch sind. Auch dadurch lässt sich generell bzw. temporär der Filteraufwand reduzieren.Furthermore, it is of particular advantage if the frequency-dependent first synthesis damping component depends on a gain of the processing device. Thus, the attenuation of the interference components can just be chosen so that only then strongly attenuated if they are also high due to high amplification of the useful signal. This, too, can generally or temporarily reduce the filter effort.

Ferner ist es günstig, wenn der frequenzabhängige zweite Synthese-Dämpfungsanteil periodisch modifiziert ist, die Periodizität durch den Überabtastfaktor der Synthesefilterbank (SFB) und die maximale Dämpfungsabsenkung durch den Durchlassbereich (Übertragungsverhalten) der SFB bestimmt ist.Furthermore, it is favorable if the frequency-dependent second synthesis damping component is periodically modified, the periodicity is determined by the oversampling factor of the synthesis filter bank (SFB) and the maximum attenuation reduction by the transmission range (transmission behavior) of the SFB.

Es wurde bereits angedeutet, dass das oben beschriebene Filterbanksystem besonders vorteilhaft in einem Hörgerät genutzt werden kann.It has already been indicated that the above-described filter bank system can be used particularly advantageously in a hearing aid.

Die vorliegende Erfindung wird nun anhand der beigefügten Zeichnungen näher erläutert, in denen zeigen:

FIG 1
eine Prinzipskizze eines Hörgeräts gemäß dem Stand der Technik;
FIG 2
ein Blockschaltbild eines Filterbanksystems;
FIG 3
ein Beispiel für die Spezifikation eines AFB-Prototypfilters und
FIG 4
ein Beispiel für die Spezifikation eines SFB-Prototypfilters.
The present invention will now be explained in more detail with reference to the accompanying drawings, in which:
FIG. 1
a schematic diagram of a hearing aid according to the prior art;
FIG. 2
a block diagram of a filter bank system;
FIG. 3
an example of the specification of an AFB prototype filter and
FIG. 4
an example of the specification of a SFB prototype filter.

Die nachfolgend näher geschilderten Ausführungsbeispiele stellen bevorzugte Ausführungsformen der vorliegenden Erfindung dar.The embodiments described in more detail below represent preferred embodiments of the present invention.

In FIG 2 ist ein Filterbanksystem schematisch dargestellt, wie es beispielsweise in einem Gerät genutzt wird. Ein Eingangssignal e (z. B. Sprachsignal) wird einer Analysefilterbank AFB zugeführt. Diese zerlegt das Eingangssignal e in 32 Teilbänder. Anschließend erfolgt eine teilbandspezifische Manipulation M1, M2, M3, ..., M32 der Einzelsignale. Nach der Manipulation werden die einzelnen Teilbandsignale in einer hinsichtlich des Betragsfrequenzgangs an die Analysefilterbank AFB angepasste Synthesefilterbank SFB wieder zu einem Ausgangssignal a synthetisiert.In FIG. 2 a filter bank system is shown schematically, as it is used for example in a device. An input signal e (eg, speech signal) is supplied to an analysis filter bank AFB. This decomposes the input signal e into 32 subbands. This is followed by a subband-specific manipulation M1, M2, M3,..., M32 of the individual signals. After Manipulation, the individual subband signals are synthesized in an adjusted with respect to the amount of frequency response to the analysis filter bank AFB synthesis filter bank SFB again to an output signal a.

Sowohl in der Analysefilterbank AFB als auch der Synthesefilterbank SFB werden die einzelnen Filterfunktionen durch so genannte Prototypfilter realisiert, von dem beispielsweise durch einen komplex modulierenden Transformationskern in der Filterbank die Einzelfilter abgeleitet werden. Diese Prototypfilter besitzen beispielsweise Tiefpasscharakteristik. Nachfolgend wird lediglich der Sperrbereich der Prototypfilter betrachtet.Both in the analysis filter bank AFB and the synthesis filter bank SFB, the individual filter functions are implemented by so-called prototype filters, from which the individual filters are derived, for example, by a complex-modulating transformation kernel in the filter bank. These prototype filters have, for example, low-pass characteristics. In the following, only the blocking area of the prototype filter is considered.

Entsprechend dem erfindungsgemäßen Kerngedanken setzt sich die Sperrdämpfungsspezifikation der Übertragungsfunktionen der AFB aus einer frequenzunabhängigen Grunddämpfung aAFB und frequenzabhängigen Dämpfungsanteilen zusammen. Die Sperrdämpfungsspezifikation der Übertragungsfunktionen der SFB setzt sich aus einer frequenzunabhängigen Grunddämpfung aSFB und ersten und zweiten frequenzabhängigen Dämpfungsanteilen zusammen, wobei der erste frequenzabhängige Dämpfungsanteil zusätzlich von der Signalmanipulation zwischen den beiden Filterbänken abhängt. Insbesondere soll die AFB und die SFB derart spezifiziert sein, dass durch Nutzung der Überabtastung der Teilbandsignale um einen Faktor U > 1 (U= Überabtastfaktor) der Schaltungsaufwand, d. h. die Filterordnung und/oder die Gesamtgruppenlaufzeit (Verzögerung) des Filterbanksystems vermindert ist. Außerdem sollen als Option auch wechselseitige Maskierungseffekte frequenzmäßig eng benachbarter Signalanteile genutzt werden, um den Schaltungsaufwand bzw. die Filterordnung und/oder die Gesamtgruppenlaufzeit des Filterbanksystems zu vermindern. Ferner sollte die Verschlechterung des Signal/Stör-Abstands am Ausgang des Filterbanksystems bei beliebiger Manipulation (Verstärkung/Abschwächung der Teilbandsignale durch Aliasingbeiträge der AFB bzw. durch Imagingbeiträge der SFB etwa gleich groß sein.According to the core idea according to the invention, the notch attenuation specification of the transfer functions of the AFB is composed of a frequency-independent basic attenuation a AFB and frequency-dependent attenuation components. The blocking attenuation specification of the transfer functions of the SFB is composed of a frequency-independent basic attenuation a SFB and first and second frequency-dependent attenuation components, wherein the first frequency-dependent attenuation component additionally depends on the signal manipulation between the two filter banks. In particular, the AFB and the SFB should be specified such that by using the oversampling of the subband signals by a factor U> 1 (U = oversampling factor) the circuit complexity, ie the filter order and / or the total group delay (delay) of the filter bank system is reduced. In addition, as an option, mutual masking effects of frequency closely adjacent signal components are to be used in order to reduce the circuit complexity or the filter order and / or the total group delay of the filter bank system. Furthermore, the deterioration of the signal / interference distance at the output of the filter bank system should be approximately the same for any manipulation (amplification / attenuation of the subband signals by aliasing contributions of the AFB or by imaging contributions of the SFB.

Die Konfiguration eines konkreten Filterbanksystems wird nun anhand der FIG 3 und 4 näher erläutert. Als objektives Kriterium für die Dimensionierung der Filter wird generell der Signal/Stör-Abstand SNR am Ausgang des Filterbanksystems verwendet.The configuration of a concrete filter bank system will now be described on the basis of FIG. 3 and 4 explained in more detail. As an objective criterion for the dimensioning of the filters, the signal / interference distance SNR is generally used at the output of the filter bank system.

Bei der Konfiguration der Analysefilterbank AFB wird zunächst eine frequenzunabhängige Grunddämpfung aAFB durch den gewünschten SNRAFB festgelegt. Dieser Signal/Stör-Abstand SNRAFB ergibt sich aufgrund von Aliasing in der AFB. Dabei ist die Grunddämpfung aAFB abhängig vom Dezimationsfaktor M (= Abwärtstastfaktor) der AFB, der die Anzahl der überhaupt vorhandenen Aliasing-Anteile bestimmt. Die Grunddämpfung im Sperrbereich wird nun durch eine frequenzabhängige zusätzliche Sperrdämpfung ergänzt. Ein erster Teil 10 des frequenzabhängigen Dämpfungsanteils der AFB-Spezifikation ergibt sich dadurch, dass Maskierungseffekte des menschlichen Ohrs ausgenutzt werden. Dadurch wird die Sperrdämpfung in der Nähe des Filterdurchlassbereichs vermindert. In dem Beispiel von FIG 3 ist dieser zweite Teil 10 in der Nähe des Durchlassbereichs um 10 dB reduziert und steigt dann ab dem achten Teilband rampenförmig zu seinem Endwert an.In the configuration of the analysis filter bank AFB a frequency independent attenuation a basic AFB is first determined by the desired SNR AFB. This signal / interference distance SNR AFB results from aliasing in the AFB. The basic attenuation a AFB is dependent on the decimation factor M (= downward-biasing factor) of the AFB, which determines the number of aliasing units that are actually present. The basic attenuation in the stopband is now supplemented by a frequency-dependent additional stop attenuation. A first part 10 of the frequency-dependent attenuation component of the AFB specification results from the fact that masking effects of the human ear are utilized. This reduces the stopband attenuation near the filter passband. In the example of FIG. 3 this second part 10 is reduced by 10 dB in the vicinity of the passband and then ramps up from the eighth subband to its final value.

Ein zweiter Teil 11 des frequenzabhängigen Dämpfungsanteils der AFB-Spezifikation ergibt sich dadurch, dass die in der AFB durch Aliasing erzeugten Störanteile in der SFB unterschiedlich bewertet werden. Der zweite Teil 11 ist periodisch, so dass die gesamte Sperrdämpfung über der Frequenz periodisch modifiziert wird. Dabei hängt die Anzahl der Perioden vom Überabtastfakor U ab, und die Tiefe der zulässigen Dämpfungsabsenkung wird vom Produkt der Durchlassbereiche der Prototypfilter in der AFB und SFB bestimmt.A second part 11 of the frequency-dependent damping component of the AFB specification results from the fact that the interference components generated in the AFB by aliasing are evaluated differently in the SFB. The second part 11 is periodic so that the total stopband attenuation over the frequency is periodically modified. Here, the number of periods depends on the oversampling factor U, and the depth of the allowable attenuation reduction is determined by the product of the passbands of the prototype filters in the AFB and SFB.

Die gesamte Sperrdämpfung 12 ergibt sich aus der Summe aller Dämpfungsanteile einschließlich der Grunddämpfung, ein logarithmisches Maß (Dezibel) zu Grunde legend. In FIG 3 ist die gesamte frequenzabhängige Sperrdämpfung 12 dargestellt. Ihr absolutes Niveau ergibt sich aus der Grunddämpfung aAFB (in FIG 3 nicht dargestellt), die im logarithmischen Maß zur frequenzabhängigen Sperrdämpfung addiert wird. Die frequenzabhängige Sperrdämpfung steigt damit über den hier gewählten 32 Teilbändern entsprechend der Rampe des ersten Teils 10 an.The total stop attenuation 12 results from the sum of all attenuation components including the fundamental attenuation, based on a logarithmic measure (decibel). In FIG. 3 the entire frequency-dependent stopband attenuation 12 is shown. Their absolute level results from the basic attenuation a AFB (in FIG. 3 not shown), which is added in the logarithmic measure to the frequency-dependent stopband attenuation. The frequency-dependent stop attenuation thus increases over the 32 subbands selected here according to the ramp of the first part 10.

Die Grunddämpfung aSFB der Synthesefilterbank wird ebenfalls durch den gewünschten Signal/Stör-Abstand SNRSFB festgelegt. Er ergibt sich aufgrund von Imaging in der SFB. Auch hier ist die Grunddämpfung aSFB abhängig vom Interpolationsfaktor M der SFB, der gleich dem Dezimationsfaktor M der AFB ist.The basic attenuation a SFB of the synthesis filter bank is likewise defined by the desired signal / interference distance SNRS FB . It results from imaging in the SFB. Again, the fundamental attenuation a SFB is dependent on the interpolation factor M of the SFB, which is equal to the decimation factor M of the AFB.

Ein erster frequenzabhängiger Dämpfungsanteil 13 erhöht die Grunddämpfung aSFB der Sperrdämpfungsspezifikation um die frequenzabhängige Verstärkung (Abschwächung= negative Verstärkung in dB), mit der die Teilbandsignale zwischen den Filterbänken manipuliert werden. Diese verstärkungsabhängige Komponente ist wichtig, denn die Imaging-Anteile in der SFB werden mitverstärkt.A first frequency-dependent attenuation component 13 increases the basic attenuation a SFB of the attenuation attenuation specification by the frequency-dependent amplification (attenuation = negative amplification in dB) with which the subband signals between the filter banks are manipulated. This gain-dependent component is important because the imaging components in the SFB are also enhanced.

Ein erster Teil 14 des zweiten frequenzabhängigen Dämpfungsanteils der SFB-Spezifikation (vgl. FIG 4) ergibt sich wie bei der AFB dadurch, dass Maskierungseffekte des menschlichen Ohrs ausgenützt werden. Damit wird die Spezifikation der Sperrbereichsdämpfung der Übertragungsfunktion der SFB-Filter in der Nähe des Filterdurchlassbereichs genau wie bei der AFB vermindert. Auch diese Verminderung kann zu einer Reduzierung der Filterordnung beitragen.A first part 14 of the second frequency-dependent damping component of the SFB specification (cf. FIG. 4 ) results, as in the AFB, in exploiting masking effects of the human ear. Thus, the specification of the stop band attenuation of the transfer function of the SFB filters in the vicinity of the filter pass band is reduced exactly as in the AFB. This reduction can also contribute to a reduction of the filter order.

Weiterhin ergibt sich ein zweiter Teil 15 des zweiten frequenzabhängigen Dämpfungsanteils der SFB-Spezifikation dadurch, dass U•(M-1) Spektralanteile (Images der SFB) unterschiedlicher Stärke in jedem Kanal zu liegen kommen. In einem Kanal ergeben sich M-1 Hauptanteile (Zentralbereich einer spektralen Verteilung von Signal- und Alias-Leistung) und KM-1 unterschiedlich stark abgeschwächte Nebenanteile (Außenbereiche der spektralen Verteilung von Signal- und Alias-Leistung). Die Spezifikation der Sperrdämpfung wird folglich periodisch über der Frequenz modizifiert, wobei die Anzahl der Perioden vom Überabtastfaktor U abhängt und die Tiefe der zulässigen Dämpfungsabsenkung vom Durchlassbereich des Prototypfilters (in der SFB) bestimmt ist.Furthermore, a second part 15 of the second frequency-dependent damping component of the SFB specification results from the fact that U • (M-1) spectral components (images of the SFB) of different strengths come to lie in each channel. In one channel, there are M-1 main components (central region of a spectral distribution of signal and alias power) and KM-1 differentially attenuated secondary components (outer regions of the spectral distribution of signal and alias power). The specification of the stopband attenuation is thus modified periodically over the frequency, the number of the periods is dependent on the oversampling factor U and the depth of the permissible attenuation reduction is determined by the passband of the prototype filter (in the SFB).

Die gesamte Sperrdämpfung 16 des Prototypfilters für die SFB ergibt sich wieder aus der Summe sämtlicher Dämpfungsanteile. Auch hier bestimmt die Grunddämpfung aSFB die absolute Lage der Sperrdämpfung, indem sie für die Spezifikation des Prototypfilters zu den frequenzabhängigen Dämpfungsanteilen im logarithmischen Sinne hinzuaddiert wird.The total stop attenuation 16 of the prototype filter for the SFB again results from the sum of all attenuation components. Here, too, the fundamental attenuation a SFB determines the absolute position of the stopband attenuation by adding it for the specification of the prototype filter to the frequency-dependent attenuation parts in the logarithmic sense.

Die frequenzabhängige Verkleinerung der Sperrdämpfung 12 bzw. 16 in den optimierten Spezifikationen (vgl. FIG 3 und 4) wird nun dazu genutzt, beispielsweise den Schaltungsaufwand bzw. die Filterordnung zu reduzieren. Alternativ, zusätzlich oder implizit (für den Fall eines bei einem gegebenen Filtertyp gegebenen festen Zusammenhangs zwischen Filterordung und Gruppenlaufzeit) kann die frequenzabhängige Verkleinerung der Sperrdämpfung auch dazu genutzt werden, die Gruppenlaufzeit zu reduzieren. Optional kann auch die frequenzunabhängige Grunddämpfung der Filterbänke erhöht werden, wenn sich die Sperrdämpfung frequenzabhängig verkleinern lässt. Diese Vorteile lassen sich einzeln oder in Kombination nutzen.The frequency-dependent reduction of the stopband attenuation 12 and 16 in the optimized specifications (see. FIG. 3 and 4 ) is now used to reduce, for example, the circuit complexity and the filter order. Alternatively, in addition or implicitly (in the case of a fixed relationship between filter order and group delay given a given type of filter), the frequency-dependent reduction of the stopband attenuation can also be used to reduce the group delay. Optionally, the frequency-independent basic attenuation of the filter banks can be increased if the stopband attenuation can be reduced in a frequency-dependent manner. These advantages can be used individually or in combination.

Claims (9)

Filterbanksystem für eine Hörvorrichtung mit - einer Analysefilterbank (AFB) zum Zerlegen eines Eingangssignals (e) in Teilbandsignale, - einer Verarbeitungseinrichtung zum Manipulieren (M1 bis M32) mindestens eines der Teilbandsignale und - einer Synthesefilterbank (SFB) zum Zusammensetzen des manipulierten Teilbandsignals mit mindestens einem weiteren der Teilbandsignale, dadurch gekennzeichnet, dass - die Sperrdämpfung (12) mindestens einer der Übertragungsfunktionen der Analysefilterbank (AFB) sich zusammensetzt aus o einem separat konfigurierbaren, frequenzunabhängigen Analyse-Grunddämpfungsanteil und o einem separat konfigurierbaren, frequenzabhängigen Analyse-Dämpfungsanteil (10, 11), und/oder - die Sperrdämpfung (16) mindestens einer der Übertragungsfunktionen der Synthesefilterbank (SFB) sich zusammensetzt aus o einem separat konfigurierbaren, frequenzabhängigen Synthese-Grunddämpfungsanteil, o einem separat konfigurierbaren, frequenzabhängigen und von dem Manipulieren abhängigen, ersten Synthese-Dämpfungsteil (13) und o einem separat konfigurierbaren, frequenzabhängigen, zweiten Synthese-Dämpfungsanteil (14, 15). Filterbank system for a hearing device with an analysis filter bank (AFB) for decomposing an input signal (e) into subband signals, a processing device for manipulating (M1 to M32) at least one of the subband signals and a synthesis filter bank (SFB) for assembling the manipulated subband signal with at least one further of the subband signals, characterized in that - The stopband attenuation (12) of at least one of the transfer functions of the analysis filter bank (AFB) is composed of o a separately configurable, frequency-independent analysis baseline damping component and o a separately configurable, frequency-dependent analysis-damping component (10, 11), and / or - The stopband attenuation (16) of at least one of the transfer functions of the synthesis filter bank (SFB) is composed of o a separately configurable, frequency-dependent synthesis baseline damping component, o a separately configurable, frequency-dependent and dependent on the manipulation, first synthesis damping part (13) and o a separately configurable, frequency-dependent, second synthesis damping component (14, 15). Filterbanksystem nach Anspruch 1, wobei sämtliche Dämpfungsanteile anhand des Signal/Stör-Abstands am Ausgang des Filterbanksystems konfiguriert sind.The filter bank system of claim 1, wherein all of the attenuation components are configured based on the signal-to-interference ratio at the output of the filter bank system. Filterbanksystem nach Anspruch 1 oder 2, wobei der Analyse-Grunddämpfungsanteil von dem Abwärtstastfaktor der Analysefilterbank (AFB) abhängt.A filter bank system according to claim 1 or 2, wherein the analysis baseline attenuation fraction depends on the downsampling factor of the analysis filter bank (AFB). Filterbanksystem nach einem der vorhergehenden Ansprüche, wobei in dem frequenzabhängigen Analyse-Dämpfungsanteil (10, 11) und/oder zweiten Synthese-Dämpfungsanteil (14, 15), ein Maskierungseffekt eines menschlichen Gehörs berücksichtigt ist.Filterbank system according to one of the preceding claims, wherein in the frequency-dependent analysis-attenuation portion (10, 11) and / or second synthesis-attenuation portion (14, 15), a masking effect of a human hearing is taken into account. Filterbanksystem nach einem der vorhergehenden Ansprüche, wobei der frequenzabhängige Analyse-Dämpfungsanteil (10, 11) periodisch modifiziert ist, die Periodizität durch den von dem Überabtastfaktor der Analysefilterbank (AFB) und die maximale Dämpfungsabsenkung durch die Durchlassbereiche der Analysefilterbank (AFB) und der Synthesefilterbank (SFB) bestimmt ist.Filterbank system according to one of the preceding claims, wherein the frequency-dependent analysis-attenuation component (10, 11) is periodically modified, the periodicity by the of the oversampling factor of the analysis filter bank (AFB) and the maximum attenuation reduction by the passbands of the analysis filter bank (AFB) and the synthesis filter bank ( SFB) is determined. Filterbanksystem nach einem der vorhergehenden Ansprüche, wobei der Synthese-Grunddämpfungsanteil von dem Abwärtstastfaktor der Synthesefilterbank (SFB) abhängt.A filter bank system according to any one of the preceding claims, wherein the basic synthesis damping fraction depends on the downsizing factor of the synthesis filter bank (SFB). Filterbanksystem nach einem der vorhergehenden Ansprüche, wobei der frequenzabhängige erste Synthese-Dämpfungsanteil (13) von einer Verstärkung der Verarbeitungseinrichtung abhängt.Filterbank system according to one of the preceding claims, wherein the frequency-dependent first synthesis damping portion (13) depends on a gain of the processing means. Filterbanksystem nach einem der vorhergehenden Ansprüche, wobei der frequenzabhängige zweite Synthese-Dämpfungsanteil (14, 15) periodisch modifiziert ist, die Periodizität durch den Überabtastfaktor der Synthesefilterbank (SFB) und die maximale Dämpfungsabsenkung durch den Durchlassbereich (Übertragungsverhalten) der SFB bestimmt ist.Filterbank system according to one of the preceding claims, wherein the frequency-dependent second synthesis damping portion (14, 15) is periodically modified, the periodicity is determined by the oversampling factor of the synthesis filter bank (SFB) and the maximum attenuation reduction by the transmission range (transmission behavior) of the SFB. Hörgerät mit einem Filterbanksystem nach einem der vorhergehenden Ansprüche.Hearing aid with a filter bank system according to one of the preceding claims.
EP09175081.0A 2008-11-21 2009-11-05 Filter bank system with specific stop-band attenuation for a hearing device Active EP2190218B1 (en)

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US7349484B2 (en) * 2004-12-22 2008-03-25 Rambus Inc. Adjustable dual-band link
US8958510B1 (en) * 2010-06-10 2015-02-17 Fredric J. Harris Selectable bandwidth filter

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US5278912A (en) * 1991-06-28 1994-01-11 Resound Corporation Multiband programmable compression system
US6236731B1 (en) * 1997-04-16 2001-05-22 Dspfactory Ltd. Filterbank structure and method for filtering and separating an information signal into different bands, particularly for audio signal in hearing aids
WO1998047313A2 (en) * 1997-04-16 1998-10-22 Dspfactory Ltd. Filterbank structure and method for filtering and separating an information signal into different bands, particularly for audio signals in hearing aids
SE0202770D0 (en) * 2002-09-18 2002-09-18 Coding Technologies Sweden Ab Method of reduction of aliasing is introduced by spectral envelope adjustment in real-valued filterbanks
AU2004317776B2 (en) * 2004-03-03 2009-01-08 Widex A/S Hearing aid comprising adaptive feedback suppression system
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US8295518B2 (en) 2012-10-23
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US20100128910A1 (en) 2010-05-27
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DE102008058496B4 (en) 2010-09-09
DK2190218T3 (en) 2014-09-15

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