The present application deals with hearing devices, e.g. hearing aids or headsets or speakerphones or the like, in particular with hearing devices configured to receive a multitude of (possibly) noisy audio data streams, e.g. via input transducers or by wireless or wired receivers.
When mixing two or more noisy audio data streams, it is desired that the target components and/or the noise components of the mixture fulfil certain properties. The target components should preferably be well balanced, i.e. the target from one source should preferably not be significantly louder or less loud than target components from another source. The noise components should also preferably be well balanced and preferably not be affected by the mixing, in the sense that it is perceived as annoying. The term ‘balanced’ or ‘well balanced’ is in the present context taken to mean ‘equalized’, e.g. in the sense that the balanced components are forced to be substantially equal, e.g. forced to be within a certain distance of each other, e.g. in that their numerical difference relative to the numerically smallest of the two components is smaller than 10%. The noise components that are ‘balanced’ or ‘well balanced’ or ‘equalized’ may e.g. be the noise variances of the respective audio data streams prior to mixing.
As an example, imagine fading between two microphone signals consisting of a target signal+internal (audible) microphone noise. If the two microphones are of different types, the microphone noise level may be different. When fading from one microphone signal to the other microphone signal (i.e. gradually attenuate level of a (current) signal and increase level of the other signal), it may be desirable to maintain the level of the target sound. If the microphones have different SNR, the noise level will change if the target level is kept constant during fading. Hereby the fading becomes audible. Even if the SNR at the two microphones is identical, fading is audible, as the correlated target sound (e.g. speech) and the uncorrelated noise (e.g. microphone noise, and/or wind noise) adds up in a different way, when fading.
The mixing of data streams may be the result of a shift from one program to another. A hearing device, such as a hearing aid, is typically equipped with a number of (user selectable or automatically controlled) dedicated combinations of processing parameters (‘settings’) that are optimized to different acoustic situations, e.g. a telephone program, a music program, a listening program, a conversation program, etc. Such individual dedicated combinations of processing parameters are typically termed ‘programs’. The concepts of the present disclosure regarding the mixing of data streams are intended to apply also to the shift from one program to another (e.g. from a music listening program to a telephone program), where fading from one sound input to another may be relevant.
A Hearing Device:
In an aspect of the present application, a hearing device, e.g. a hearing aid, adapted for being located at or in an ear, or to be fully or partially implanted in the head, of a user, is provided by the present disclosure. The hearing device comprises
The processor may be configured to process said noise component of said at least two input audio data streams, or processed versions thereof in order to reduce or avoid artefacts in said processed input signal due to said mixing. This may be achieved by balancing said noise components of the at least two input audio data streams in the processed input signal.
The processor may be configured to estimate a noise variance of the at least two input audio data streams prior to mixing. The noise variance may e.g. be measured as the background noise floor variance. The processor may be configured to process the noise components in dependence of the noise variances of the at least two input audio data streams.
Thereby an improved hearing device may be provided.
The mixing may be automatically initiated, e.g. based on sensor input(s) or detector input(s), e.g. based on analysis of the respective input signals. The mixing may be determined and/or initiated by the user, e.g. via a user interface (e.g. implemented as an APP of a smartphone). The mixing may comprise or consist of a fading from one signal to another over a certain time period. The fading may be defined by (e.g. time-dependent) fading parameters or by a fading curve that (e.g. gradually) decreases gain (or weight) of one input audio stream (or a processed version thereof) while increasing gain (or weight) of the other input audio stream (or a processed version thereof). Fading may be considered as a form of temporary mixing. In an embodiment, fading from one audio stream to another comprises that one audio stream is ‘selected’ (presented to the user) before fading is initiated, and the other audio stream is ‘selected’ (presented to the user) when the fading is concluded (i.e. end-weights shift from α1=1 and α2=0 to α1=0 and α2=1, respectively, or vice versa). In an embodiment, the respective weights before and after fading are not 0 and 1, but a relatively large (close to 1, e.g. ≥0.9) weight is applied to the respective dominant audio stream (before and after fading) and a relatively small (non-zero, e.g. ≤0.1) weight is applied to the non-dominant audio stream (before and after fading).
The processor may be configured to identify, or otherwise have access to, (some or all of) the noise components of at least some of the multitude of input audio streams, or processed versions thereof. Noise components (e.g. microphone noise) may be known or determined in advance of operation of the hearing device and made available to the hearing device, e.g. stored in a memory, or otherwise made available to the processor. Microphone noise may be extracted from a specification of the microphone or measured in advance of its use. The hearing device may e.g. be configured to (adaptively) determine noise components (e.g. environment noise) by estimating noise in the environment during speech pauses.
The term ‘noise source’ may include one or more of microphone noise (inherent noise in the microphone), ambient acoustic or mechanical noise, and electromagnetically induced noise. The term ‘noise source’ may include one or more competing (non-target) speech sources that (currently) are considered noise by the user.
The noise from the one or more noise sources of at least two of the input audio data streams may be un-correlated (e.g. microphone noise or wind noise). The noise from the one or more noise sources of at least two of the input audio data streams may be correlated (e.g. acoustic noise from non-target speech, or noise from a fan, or other machine).
The target sound sources of at least two of the multitude of audio data streams may be different (i.e. the at least two input audio data streams originate from two different target sound sources). The input unit may comprise an input transducer (e.g. a microphone) for converting a local sound from the environment of the user wearing the hearing device to an electric input signal (e.g. a first audio data stream) representing said local sound. The input unit may comprise (antenna and) receiver circuitry for receiving (e.g. wirelessly receiving) a second electric input signal (e.g. a second audio data stream) from a (possibly remote) transmitter representing sound different from the local sound from the environment of the user wearing the hearing device. The at least two audio data streams may comprise said first and second audio data streams from said input transducer and from said (antenna and) receiver circuitry, respectively.
The term ‘originate from’ is in the present context taken to mean ‘come from’ or ‘is provided by’, or similar terminology indicating that ‘A is the source of B’ (here a target sound source is the source of an audio data stream).
In the present context, the term ‘the target sound sources of at least two of the multitude of audio data streams are different’ is taken to mean that the at least two audio data streams originate from two different target sound sources, e.g. two different talkers, or a wirelessly received target signal from a remote communication partner, and an electric input signal representative of a target speaker in the environment of the user. In other words, the term is not intended to cover two audio streams that are just displaced in time.
The target sound source of at least two of the multitude of audio data streams may be identical (i.e. the at least two input audio data streams originate from the same target sound source). The input unit may comprise at least two (e.g. first and second) input transducers (e.g. microphones), each for converting a local sound from the environment of the user wearing the hearing device to respective electric input signals (e.g. to first and second electric input signals, such as first and second audio data streams), each representing said local sound (possibly at different sound pressure levels, comprising different amounts or types of noise, etc.). The at least two input transducers may be located in different parts of the hearing device, one being e.g. located in a BTE-part adapted for being located behind an ear (pinna) of the user, and one being e.g. located in an ITE-part adapted for being located in or at an ear canal of the user, respectively. In an embodiment, the input unit comprises an input transducer (e.g. a microphone) for converting a local sound from the environment of the user wearing the hearing device to an electric input signal (e.g. a first audio data stream) representing said local sound. The input unit may further comprise (antenna and) receiver circuitry for receiving (e.g. wirelessly receiving) a second electric input signal (e.g. a second audio data stream) from a transmitter representing sound from a local sound from the environment of the user wearing the hearing device (e.g. from a speaker in the environment of the user (wearing a microphone comprising an audio transmitter). The at least two audio data streams may comprise said first and second audio data streams from said input transducer and from said (antenna and) receiver circuitry, respectively. The antenna and receiver circuitry may comprise a coil (e.g. telecoil, or other inductor) for receiving audio signals from an inductive transmitter. The antenna and receiver circuitry may comprise an RF-antenna for receiving electromagnetic signals in the GHz range, e.g. Bluetooth or equivalent.
The processor may be configured to apply at least one signal processing algorithm to the processed input signal and for providing a processed output signal. The processor may be connected to the input unit. The processor may be connected to the output unit. The processed output signal may be fed to the output unit. The at least one signal processing algorithm may e.g. comprise a noise reduction algorithm. The processor may e.g. comprise a post filter for filtering the processed input signal to attenuate noise components in the processed input signal. The processor may e.g. comprise a compressive amplification algorithm for applying a frequency and level dependent amplification or attenuation to the processed input signal (e.g. to compensate for a hearing impairment of the user).
The hearing device may comprise a filter bank allowing processing of signals in the (time-)frequency domain. The input unit may comprise respective analysis filter banks for providing said multitude of input audio data streams in a frequency sub-band representation. The input unit may comprise respective analogue to digital converters to provide each of the electric input signals as a digital audio data stream.
The output unit may comprise a synthesis filter bank for converting a frequency sub-band signal to an audio data stream in the time domain for use in the generation of said output stimuli. The output unit may comprise a loudspeaker providing output stimuli as acoustic signals (vibrations in air, e.g. directed towards an ear drum of the user). The output unit may comprise a vibrator for providing output stimuli as mechanical vibrations in scull bone of the user. The output unit may comprise an electrode array for providing output stimuli as electric stimuli of a cochlear nerve of the user. Each electrode of the electrode array may be configured to receive stimuli aimed at a different sub-frequency range of the human auditory system (e.g. below 20 kHz, such as below 12 kHz, or below 10 kHz, or below 8 kHz). In the latter case, the synthesis filter bank may (in some designs) be omitted.
The processor may be configured to estimate a level of said target components of said multitude of input audio data streams. The level may e.g. be estimated as a sound pressure level, e.g. indicated in dB SPL. The processor may be configured to estimate a signal-to-noise ratio of the multitude of input audio data streams.
Mixing may comprise fading. The processor may be configured to fade from one input audio data stream to another input audio data stream. Sometimes, it is desirable to fade from one microphone signal to the other microphone signal, e.g. if one microphone has more feedback compared to the other microphone, or if the target signal-to-noise-ratio of one microphone signal is (significantly) better than the other. The processor may be configured to maintain the level of the target signal components when fading from one input audio data stream to another. ‘Fading’ between first and second signals comprising audio is in the present context taken to mean to move from a situation where the first signal is presented to the user (and the second signal is attenuated or disabled) to a situation where the second signal is presented to the user (and the first signal is attenuated or disabled). The hearing device may be configured to fade from an audio stream from a microphone to an audio stream from a beamformer, or vice versa.
The fading from a first input audio data stream to a second input audio data stream over a certain fading time period may comprise that the mixing processor is configured to provide the first data stream as the processed signal at a first point in time t1 and to provide the second data stream as the processed signal at a second point in time t2, where the second time t2 is larger than the first time t1. A fading process starts by presenting one signal (‘a first audio data stream’) to the user and ends by presenting another signal (‘a second audio data stream’) to the user. The fading time Δtfad=t2−t1 may e.g. be smaller than a predefined time range, e.g. Δtfad<20 s, or <10 s, such as <5 s.
The fading from a first input audio data stream to a second input audio data stream over a certain fading time period may comprise determining respective fading parameters or a fading curve that gradually decreases a weight of the first input audio data stream, or a processed version thereof, while increasing a weight of the second input audio data stream, or a processed version thereof, and wherein the (perceived) noise level of the processed input signal is substantially unaltered during the fading.
The hearing device may be configured to initiate fading based on a detected feedback of one of said input audio data streams. The hearing device may comprise a feedback detector. The feedback detector may be configured to provide a measure of a level of feedback currently experienced from an output transducer to an input transducer (e.g. to two or more input transducers) of the hearing device.
The hearing device may comprise a voice activity detector configured to provide a VAD-control signal indicative of whether or not or with what probability a given input audio stream comprises a human voice. The voice activity detector may be configured to identify speech. The voice activity detector may be configured to indicate whether or not or with what probability a given frequency sub-band of an input audio stream comprises a human voice, e.g. speech.
The input unit may comprise at least two input transducers, each providing an electric input signal representing sound, and a beamformer filtering unit for spatially filtering said electric input signals and for providing at least one spatially filtered signal based thereon, the spatially filtered signal constituting or forming part of at least one of said multitude of input audio data streams. The input unit may e.g. comprise two or three or more input transducers.
The beamformer filtering unit may comprise at least two beamformers, configured to provide at least two spatially filtered signals, which may constitute or form part of the multitude of input audio data streams. The direction from the user to the target sound source defined by the at least two beamformers may represent two different target directions (two different target sound sources). The number of beamformers may be smaller than the number of input transducers. The number of beamformers may be larger than or equal to the number of input transducers.
Fading between respective input audio streams from said at least two beamformers may be controlled in dependence on a detected or selected target direction. A direction to a target sound source (the target direction) of current interest to the user may be automatically determined. The target direction may also be selected by the user, e.g. via a user interface, e.g. implemented on a smartphone or other portable device, e.g. comprising a graphical user interface.
The hearing device may be configured to provide that a fading time, Δt, is increased. When fading between spatially filtered (beamformed) signals (representing sound from two different target sound sources), the duration of the fading (fading time Δt) may preferably be increased compared to when fading between two microphone signals representing sound from the same target sound source (but picked up at (slightly) different locations). Thereby a switch from one target signal to another (different) target signal, possibly with quite different signal-to-noise ratios and levels may be more soft, which might otherwise be sensed by the user as abrupt or annoying.
The hearing device may be configured to fade between said at least two input audio data streams, or processed versions thereof, while ensuring that the noise components in the processed input signal are equalized to the level of the noise signal components in the input audio data stream exhibiting the largest noise level.
The hearing device may be configured to fade between said at least two input audio data streams, or processed versions thereof, while ensuring that level of the target signal components in the processed input signal is equalized. The hearing device may e.g. be configured to maintain the level of the target signal components in the processed input signal during fading from one input audio stream to another.
The hearing device may be configured to fade between said at least two input audio data streams, or processed versions thereof, the hearing device comprising a single channel post filter for attenuating noise in the processed input signal, wherein the postfilter is configured to increase attenuation of noise components of the processed input signal.
The hearing device may be constituted by or comprise a hearing aid, a headset, an earphone, an ear protection device or a combination thereof. The hearing device may include a speaker phone (e.g. adapted to be located on a table)
The hearing device may be adapted to provide a frequency dependent gain and/or a level dependent compression and/or a transposition (with or without frequency compression) of one or more frequency ranges to one or more other frequency ranges, e.g. to compensate for a hearing impairment of a user. In an embodiment, the processor is configured to enhance the input signals and provide a processed output signal.
The output unit may be configured to provide stimuli perceived by the user as an acoustic signal based on a processed electric signal. The output unit may comprise a number of electrodes of a cochlear implant (for a CI type hearing device). The output unit may comprise an output transducer. The output transducer comprises a receiver (loudspeaker) for providing the stimulus as an acoustic signal to the user (e.g. in an acoustic (air conduction based) hearing device). The output transducer may comprise a vibrator for providing the stimulus as mechanical vibration of a skull bone to the user (e.g. in a bone-attached or bone-anchored hearing device).
The hearing device may comprise an input unit for providing an electric input signal representing sound. The input unit may comprise an input transducer, e.g. a microphone, for converting an input sound to an electric input signal. The input unit may comprise a wireless receiver for receiving a wireless signal comprising or representing sound and for providing an electric input signal representing said sound. The wireless receiver may e.g. be configured to receive an electromagnetic signal in the radio frequency range (3 kHz to 300 GHz). The wireless receiver may e.g. be configured to receive an electromagnetic signal in a frequency range of light (e.g. infrared light 300 GHz to 430 THz, or visible light, e.g. 430 THz to 770 THz).
The hearing device may comprise a directional microphone system adapted to spatially filter sounds from the environment, and thereby enhance a target acoustic source among a multitude of acoustic sources in the local environment of the user wearing the hearing device. The directional system may be adapted to detect (such as adaptively detect) from which direction a particular part of the microphone signal originates. This can be achieved in various different ways as e.g. described in the prior art. In hearing devices, a microphone array beamformer is often used for spatially attenuating background noise sources. Many beamformer variants can be found in literature. The minimum variance distortionless response (MVDR) beamformer is widely used in microphone array signal processing. Ideally the MVDR beamformer keeps the signals from the target direction (also referred to as the look direction) unchanged, while attenuating sound signals from other directions maximally. The generalized sidelobe canceller (GSC) structure is an equivalent representation of the MVDR beamformer offering computational and numerical advantages over a direct implementation in its original form.
The hearing device may comprise antenna and transceiver circuitry (e.g. a wireless receiver) for wirelessly receiving a direct electric input signal from another device, e.g. from an entertainment device (e.g. a TV-set), a communication device, a wireless microphone, or another hearing device. The direct electric input signal may represent or comprise an audio signal and/or a control signal and/or an information signal. The hearing device may comprise demodulation circuitry for demodulating the received direct electric input to provide the direct electric input signal representing an audio signal and/or a control signal e.g. for setting an operational parameter (e.g. volume) and/or a processing parameter of the hearing device. In general, a wireless link established by antenna and transceiver circuitry of the hearing device can be of any type. The wireless link may be established between two devices, e.g. between an entertainment device (e.g. a TV) and the hearing device, or between two hearing devices, e.g. via a third, intermediate device (e.g. a processing device, such as a remote control device, a smartphone, etc.). The wireless link may be used under power constraints, e.g. in that the hearing device is or comprises a portable (typically battery driven) device. The wireless link may be a link based on near-field communication, e.g. an inductive link based on an inductive coupling between antenna coils of transmitter and receiver parts. The wireless link may be based on far-field, electromagnetic radiation. In an embodiment, the communication via the wireless link is arranged according to a specific modulation scheme, e.g. an analogue modulation scheme, such as FM (frequency modulation) or AM (amplitude modulation) or PM (phase modulation), or a digital modulation scheme, such as ASK (amplitude shift keying), e.g. On-Off keying, FSK (frequency shift keying), PSK (phase shift keying), e.g. MSK (minimum shift keying), or QAM (quadrature amplitude modulation), etc.
The communication between the hearing device and the other device may be in the base band (audio frequency range, e.g. in a range between 0 and 20 kHz). Preferably, communication between the hearing device and the other device is based on some sort of modulation at frequencies above 100 kHz. Preferably, frequencies used to establish a communication link between the hearing device and the other device is below 70 GHz, e.g. located in a range from 50 MHz to 70 GHz, e.g. above 300 MHz, e.g. in an ISM range above 300 MHz, e.g. in the 900 MHz range or in the 2.4 GHz range or in the 5.8 GHz range or in the 60 GHz range (ISM=Industrial, Scientific and Medical, such standardized ranges being e.g. defined by the International Telecommunication Union, ITU). The wireless link may be based on a standardized or proprietary technology. The wireless link may be based on Bluetooth technology (e.g. Bluetooth Low-Energy technology).
The hearing device may be or form part of a portable (i.e. configured to be wearable) device, e.g. a device comprising a local energy source, e.g. a battery, e.g. a rechargeable battery. The hearing device may e.g. be a low weight, easily wearable, device, e.g. having a total weight less than 100 g.
The hearing device may comprise a forward or signal path between an input unit (e.g. an input transducer, such as a microphone or a microphone system and/or direct electric input (e.g. a wireless receiver)) and an output unit, e.g. an output transducer. The signal processor may be located in the forward path. The signal processor may be adapted to provide a frequency dependent gain according to a user's particular needs. The hearing device may comprise an analysis path comprising functional components for analyzing the input signal (e.g. determining a level, a modulation, a type of signal, an acoustic feedback estimate, etc.). Some or all signal processing of the analysis path and/or the signal path may be conducted in the frequency domain. Some or all signal processing of the analysis path and/or the signal path may be conducted in the time domain.
An analogue electric signal representing an acoustic signal may be converted to a digital audio signal in an analogue-to-digital (AD) conversion process, where the analogue signal is sampled with a predefined sampling frequency or rate fs, fs being e.g. in the range from 8 kHz to 48 kHz (adapted to the particular needs of the application) to provide digital samples xn (or x[n]) at discrete points in time t (or n), each audio sample representing the value of the acoustic signal at t by a predefined number Nb of bits, Nb being e.g. in the range from 1 to 48 bits, e.g. 24 bits. Each audio sample is hence quantized using Nb bits (resulting in 2Nb different possible values of the audio sample). A digital sample x has a length in time of 1/fs, e.g. 50 μs, for fs=20 kHz. In an embodiment, a number of audio samples are arranged in a time frame. A time frame may comprise 64 or 128 audio data samples. Other frame lengths may be used depending on the practical application.
The hearing device may comprise an analogue-to-digital (AD) converter to digitize an analogue input (e.g. from an input transducer, such as a microphone) with a predefined sampling rate, e.g. 20 kHz. The hearing devices may comprise a digital-to-analogue (DA) converter to convert a digital signal to an analogue output signal, e.g. for being presented to a user via an output transducer.
The hearing device, e.g. the input unit, and or the antenna and transceiver circuitry may comprise a TF-conversion unit for providing a time-frequency representation of an input signal. The time-frequency representation may comprise an array or map of corresponding complex or real values of the signal in question in a particular time and frequency range. The TF conversion unit may comprise a filter bank for filtering a (time varying) input signal and providing a number of (time varying) output signals each comprising a distinct frequency range of the input signal. The TF conversion unit comprise a Fourier transformation unit for converting a time variant input signal to a (time variant) signal in the (time-)frequency domain. In the frequency range considered by the hearing device from a minimum frequency fmin to a maximum frequency fmax may comprise a part of the typical human audible frequency range from 20 Hz to 20 kHz, e.g. a part of the range from 20 Hz to 12 kHz. Typically, a sample rate fs is larger than or equal to twice the maximum frequency fmax, fs≥2fmax. A signal of the forward and/or analysis path of the hearing device may be split into a number NI of frequency bands (e.g. of uniform width), where NI is e.g. larger than 5, such as larger than 10, such as larger than 50, such as larger than 100, such as larger than 500, at least some of which are processed individually. The hearing device may be adapted to process a signal of the forward and/or analysis path in a number NP of different frequency channels (NP≤NI). The frequency channels may be uniform or non-uniform in width (e.g. increasing in width with frequency), overlapping or non-overlapping.
The hearing device may be configured to operate in different modes, e.g. a normal mode and one or more specific modes, e.g. selectable by a user, or automatically selectable. A mode of operation may be optimized to a specific acoustic situation or environment. A mode of operation may include a low-power mode, where functionality of the hearing device is reduced (e.g. to save power), e.g. to disable wireless communication, and/or to disable specific features of the hearing device.
The hearing device may comprise a number of detectors configured to provide status signals relating to a current physical environment of the hearing device (e.g. the current acoustic environment), and/or to a current state of the user wearing the hearing device, and/or to a current state or mode of operation of the hearing device. Alternatively or additionally, one or more detectors may form part of an external device in communication (e.g. wirelessly) with the hearing device. An external device may e.g. comprise another hearing device, a remote control, and audio delivery device, a telephone (e.g. a smartphone), an external sensor, etc.
One or more of the number of detectors may operate on the full band signal (time domain). One or more of the number of detectors may operate on band split signals ((time-) frequency domain), e.g. in a limited number of frequency bands.
The number of detectors may comprise a level detector for estimating a current level of a signal of the forward path. The detector may be configured to decide whether the current level of a signal of the forward path is above or below a given (L-)threshold value. The level detector may operate on the full band signal (time domain). The level detector may operate on band split signals ((time-) frequency domain).
The hearing device may comprise a voice activity detector (VAD) for estimating whether or not (or with what probability) an input signal comprises a voice signal (at a given point in time). A voice signal is in the present context taken to include a speech signal from a human being. It may also include other forms of utterances generated by the human speech system (e.g. singing). The voice activity detector may be adapted to classify a current acoustic environment of the user as a VOICE or NO-VOICE environment. This has the advantage that time segments of the electric microphone signal comprising human utterances (e.g. speech) in the user's environment can be identified, and thus separated from time segments only (or mainly) comprising other sound sources (e.g. artificially generated noise). The voice activity detector may be adapted to detect as a VOICE also the user's own voice. Alternatively, the voice detector may be adapted to exclude a user's own voice from the detection of a VOICE.
The hearing device may comprise an own voice detector for estimating whether or not (or with what probability) a given input sound (e.g. a voice, e.g. speech) originates from the voice of the user of the system. The hearing device (e.g. the own vice detector) may be adapted to be able to differentiate between a user's own voice and another person's voice and possibly from NON-voice sounds. This may e.g. be an advantage in connection with the implementation of a voice control interface in the hearing device.
The number of detectors may comprise a movement detector, e.g. an acceleration sensor. The movement detector may be configured to detect movement of the user's facial muscles and/or bones, e.g. due to speech or chewing (e.g. jaw movement) and to provide a detector signal indicative thereof.
The hearing device may comprise a classification unit configured to classify the current situation based on input signals from (at least some of) the detectors, and possibly other inputs as well. In the present context ‘a current situation’ is taken to be defined by one or more of
a) the physical environment (e.g. including the current electromagnetic environment, e.g. the occurrence of electromagnetic signals (e.g. comprising audio and/or control signals) intended or not intended for reception by the hearing device, or other properties of the current environment than acoustic);
b) the current acoustic situation (input level, feedback, etc.), and
c) the current mode or state of the user (movement, temperature, cognitive load, etc.);
d) the current mode or state of the hearing device (program selected, time elapsed since last user interaction, etc.) and/or of another device in communication with the hearing device.
The classification unit may be based on or comprise a neural network, e.g. a rained neural network.
The hearing device may comprise an acoustic (and/or mechanical) feedback control or echo-cancelling system. Acoustic feedback occurs because the output loudspeaker signal from an audio system providing amplification of a signal picked up by a microphone is partly returned to the microphone via an acoustic coupling through the air or other media. The part of the loudspeaker signal returned to the microphone is then re-amplified by the system before it is re-presented at the loudspeaker, and again returned to the microphone. As this cycle continues, the effect of acoustic feedback becomes audible as artifacts or even worse, howling, when the system becomes unstable. The problem appears typically when the microphone and the loudspeaker are placed closely together, as e.g. in hearing aids or other audio systems. Some other classic situations with feedback problems are telephony, public address systems, headsets, audio conference systems, etc. Adaptive feedback cancellation has the ability to track feedback path changes over time. It is based on a linear time invariant filter to estimate the feedback path but its filter weights are updated over time. The filter update may be calculated using stochastic gradient algorithms, including some form of the Least Mean Square (LMS) or the Normalized LMS (NLMS) algorithms. They both have the property to minimize the error signal in the mean square sense with the NLMS additionally normalizing the filter update with respect to the squared Euclidean norm of some reference signal. The feedback cancellation system may contain a feedback detection/estimation unit. The hearing device may be configured to switch (e.g. fade) between microphone signals (as described in the present disclosure) based on the amount of estimated feedback.
The hearing device may further comprise other relevant functionality for the application in question, e.g. compression, noise reduction, etc.
The hearing device may comprise a listening device, e.g. a hearing aid, e.g. a hearing instrument, e.g. a hearing instrument adapted for being located at the ear or fully or partially in the ear canal of a user, e.g. a headset, an earphone, an ear protection device or a combination thereof. The hearing assistance system may comprise a speakerphone (comprising a number of input transducers and a number of output transducers, e.g. for use in an audio conference situation), e.g. comprising a beamformer filtering unit, e.g. providing multiple beamforming capabilities.
Use:
In an aspect, use of a hearing device as described above, in the ‘detailed description of embodiments’ and in the claims, is moreover provided. Use may be provided in a system comprising audio distribution, e.g. a system comprising a microphone and a loudspeaker in sufficiently close proximity of each other to cause feedback from the loudspeaker to the microphone during use by a user. Use may be provided in a system comprising one or more hearing aids (e.g. hearing instruments), headsets, ear phones, active ear protection systems, etc., e.g. in handsfree telephone systems, teleconferencing systems (e.g. including a speakerphone), public address systems, karaoke systems, classroom amplification systems, etc.
A Method:
In an aspect, a method of operating a hearing device, e.g. a hearing aid, adapted for being located at or in an ear, or to be fully or partially implanted in the head, of a user, is furthermore provided by the present application. The method comprises
The method further comprises
The method may further comprise
It is intended that some or all of the structural features of the device described above, in the ‘detailed description of embodiments’ or in the claims can be combined with embodiments of the method, when appropriately substituted by a corresponding process and vice versa. Embodiments of the method have the same advantages as the corresponding devices.
A Computer Readable Medium:
In an aspect, a tangible computer-readable medium storing a computer program comprising program code means for causing a data processing system to perform at least some (such as a majority or all) of the steps of the method described above, in the ‘detailed description of embodiments’ and in the claims, when said computer program is executed on the data processing system is furthermore provided by the present application.
By way of example, and not limitation, such computer-readable media can comprise RAM, ROM, EEPROM, CD-ROM or other optical disk storage, magnetic disk storage or other magnetic storage devices, or any other medium that can be used to carry or store desired program code in the form of instructions or data structures and that can be accessed by a computer. Disk and disc, as used herein, includes compact disc (CD), laser disc, optical disc, digital versatile disc (DVD), floppy disk and Blu-ray disc where disks usually reproduce data magnetically, while discs reproduce data optically with lasers. Other storage media include storage in DNA (e.g. in synthesized DNA strands). Combinations of the above should also be included within the scope of computer-readable media. In addition to being stored on a tangible medium, the computer program can also be transmitted via a transmission medium such as a wired or wireless link or a network, e.g. the Internet, and loaded into a data processing system for being executed at a location different from that of the tangible medium.
A Computer Program:
A computer program (product) comprising instructions which, when the program is executed by a computer, cause the computer to carry out (steps of) the method described above, in the ‘detailed description of embodiments’ and in the claims is furthermore provided by the present application.
A Data Processing System:
In an aspect, a data processing system comprising a processor and program code means for causing the processor to perform at least some (such as a majority or all) of the steps of the method described above, in the ‘detailed description of embodiments’ and in the claims is furthermore provided by the present application.
A Hearing System:
In a further aspect, a hearing system comprising a hearing device as described above, in the ‘detailed description of embodiments’, and in the claims, AND an auxiliary device is moreover provided.
The hearing system may be adapted to establish a communication link between the hearing device and the auxiliary device to provide that information (e.g. control and status signals, possibly audio signals) can be exchanged or forwarded from one to the other.
The auxiliary device may comprise a remote control, a smartphone, or other portable or wearable electronic device, such as a smartwatch or the like.
The auxiliary device may be or comprise a remote control for controlling functionality and operation of the hearing device(s). The function of a remote control may be implemented in a smartphone, the smartphone possibly running an APP allowing to control the functionality of the audio processing device via the smartphone (the hearing device(s) comprising an appropriate wireless interface to the smartphone, e.g. based on Bluetooth or some other standardized or proprietary scheme).
The auxiliary device may be or comprise an audio gateway device adapted for receiving a multitude of audio signals (e.g. from an entertainment device, e.g. a TV or a music player, a telephone apparatus, e.g. a mobile telephone or a computer, e.g. a PC) and adapted for selecting and/or combining an appropriate one of the received audio signals (or combination of signals) for transmission to the hearing device.
The auxiliary device may be or comprise a wireless microphone, e.g. a table microphone or a clip-on microphone.
The auxiliary device may be or comprises another hearing device. The hearing system may comprise two hearing devices adapted to implement a binaural hearing system, e.g. a binaural hearing aid system.
In a further aspect, a hearing system comprising first and second hearing devices as described above, in the ‘detailed description of embodiments’, and in the claims, is moreover provided. The first and second hearing devices may be adapted for being located at or in respective left and right ears, or to be fully or partially implanted in the head at respective left and right ears, of a user, the first and second hearing devices being configured to exchange information between them.
A Speakerphone:
In an aspect, a speakerphone is furthermore provided by the present application. The speakerphone comprises a multitude of microphones configured to pick up sound from an environment of the speakerphone and a mixing processor as described above, in the detailed description of embodiments and in the claims. The mixing processor is adapted to provide a processed input signal, which is transmitted to another device or system for further processing and/or presentation to one or more remote users. The speakerphone is further configured to play sound received from a remote source for perception in the environment of the speakerphone.
The speakerphone may comprise
Thereby a speakerphone comprising an adaptive mixing scheme according to the present disclosure can be implemented.
It is intended that some or all of the structural features of the hearing device described above, in the ‘detailed description of embodiments’ or in the claims can be combined with embodiments of the speakerphone, when appropriately adapted. Embodiments of the speakerphone have the same advantages as the corresponding hearing devices.
The input unit of the speakerphone may comprise a multitude of microphones, such as two or more, such as three or more, each providing an input data stream representative of sound in the environment. Based on two microphones, different beamformers, which are listening towards different directions, can be created. The input unit of the speakerphone may comprise a beamformer filtering unit receiving said multitude of input data streams and configured to provide at least two spatially filtered (beamformed) signals directed towards at least two target sound sources in the environment of the speakerphone. The multitude of microphones may be divided into sub-sets of microphones. Each sub-set may comprise at least two microphones. A given sub-set may comprise at least one microphone that does not form of another sub-set of microphones. A reference microphone may be defined among the multitude of microphones. All sub-sets of microphones may comprise a reference microphone (designated among the microphones of the subset). All sub-sets of microphones may comprise the same reference microphone. The speakerphone may be configured to fade between the at least two spatially filtered signals and to transmit the (resulting) processed input signal (or a further processed version, e.g. a postfiltered version, thereof) to the (an)other device or system. The mixing unit may be configured to fade between two spatially filtered signals without altering the background noise level of the environment of the speakerphone in the processed input signal (or a further processed version thereof), which is transmitted to the (other device or system (e.g. a far end receiving listener of a communication device).
An APP:
In a further aspect, a non-transitory application, termed an APP, is furthermore provided by the present disclosure. The APP comprises executable instructions configured to be executed on an auxiliary device to implement a user interface for a hearing device or a hearing system described above in the ‘detailed description of embodiments’, and in the claims. In an embodiment, the APP is configured to run on cellular phone, e.g. a smartphone, or on another portable device allowing communication with said hearing device or said hearing system.
In the present context, a ‘hearing device’ refers to a device, such as a hearing aid, e.g. a hearing instrument, or an active ear-protection device, or other audio processing device, which is adapted to improve, augment and/or protect the hearing capability of a user by receiving acoustic signals from the user's surroundings, generating corresponding audio signals, possibly modifying the audio signals and providing the possibly modified audio signals as audible signals to at least one of the user's ears. A ‘hearing device’ further refers to a device such as an earphone or a headset adapted to receive audio signals electronically, possibly modifying the audio signals and providing the possibly modified audio signals as audible signals to at least one of the user's ears. Such audible signals may e.g. be provided in the form of acoustic signals radiated into the user's outer ears, acoustic signals transferred as mechanical vibrations to the user's inner ears through the bone structure of the user's head and/or through parts of the middle ear as well as electric signals transferred directly or indirectly to the cochlear nerve of the user.
The hearing device may be configured to be worn in any known way, e.g. as a unit arranged behind the ear with a tube leading radiated acoustic signals into the ear canal or with an output transducer, e.g. a loudspeaker, arranged close to or in the ear canal, as a unit entirely or partly arranged in the pinna and/or in the ear canal, as a unit, e.g. a vibrator, attached to a fixture implanted into the skull bone, as an attachable, or entirely or partly implanted, unit, etc. The hearing device may comprise a single unit or several units communicating electronically with each other. The loudspeaker may be arranged in a housing together with other components of the hearing device, or may be an external unit in itself (possibly in combination with a flexible guiding element, e.g. a dome-like element).
More generally, a hearing device comprises an input transducer for receiving an acoustic signal from a user's surroundings and providing a corresponding input audio signal and/or a receiver for electronically (i.e. wired or wirelessly) receiving an input audio signal, a (typically configurable) signal processing circuit (e.g. a signal processor, e.g. comprising a configurable (programmable) processor, e.g. a digital signal processor) for processing the input audio signal and an output unit for providing an audible signal to the user in dependence on the processed audio signal. The signal processor may be adapted to process the input signal in the time domain or in a number of frequency bands. In some hearing devices, an amplifier and/or compressor may constitute the signal processing circuit. The signal processing circuit typically comprises one or more (integrated or separate) memory elements for executing programs and/or for storing parameters used (or potentially used) in the processing and/or for storing information relevant for the function of the hearing device and/or for storing information (e.g. processed information, e.g. provided by the signal processing circuit), e.g. for use in connection with an interface to a user and/or an interface to a programming device. In some hearing devices, the output unit may comprise an output transducer, such as e.g. a loudspeaker for providing an air-borne acoustic signal or a vibrator for providing a structure-borne or liquid-borne acoustic signal. In some hearing devices, the output unit may comprise one or more output electrodes for providing electric signals (e.g. a multi-electrode array for electrically stimulating the cochlear nerve). The hearing device may comprise a speakerphone (comprising a number of input transducers and a number of output transducers, e.g. for use in an audio conference situation).
In some hearing devices, the vibrator may be adapted to provide a structure-borne acoustic signal transcutaneously or percutaneously to the skull bone. In some hearing devices, the vibrator may be implanted in the middle ear and/or in the inner ear. In some hearing devices, the vibrator may be adapted to provide a structure-borne acoustic signal to a middle-ear bone and/or to the cochlea. In some hearing devices, the vibrator may be adapted to provide a liquid-borne acoustic signal to the cochlear liquid, e.g. through the oval window. In some hearing devices, the output electrodes may be implanted in the cochlea or on the inside of the skull bone and may be adapted to provide the electric signals to the hair cells of the cochlea, to one or more hearing nerves, to the auditory brainstem, to the auditory midbrain, to the auditory cortex and/or to other parts of the cerebral cortex.
A hearing device, e.g. a hearing aid, may be adapted to a particular user's needs, e.g. a hearing impairment. A configurable signal processing circuit of the hearing device may be adapted to apply a frequency and level dependent compressive amplification of an input signal. A customized frequency and level dependent gain (amplification or compression) may be determined in a fitting process by a fitting system based on a user's hearing data, e.g. an audiogram, using a fitting rationale (e.g. adapted to speech). The frequency and level dependent gain may e.g. be embodied in processing parameters, e.g. uploaded to the hearing device via an interface to a programming device (fitting system), and used by a processing algorithm executed by the configurable signal processing circuit of the hearing device.
A ‘hearing system’ refers to a system comprising one or two hearing devices, and a ‘binaural hearing system’ refers to a system comprising two hearing devices and being adapted to cooperatively provide audible signals to both of the user's ears. Hearing systems or binaural hearing systems may further comprise one or more ‘auxiliary devices’, which communicate with the hearing device(s) and affect and/or benefit from the function of the hearing device(s). Auxiliary devices may be e.g. remote controls, audio gateway devices, mobile phones (e.g. smartphones), or music players. Hearing devices, hearing systems or binaural hearing systems may e.g. be used for compensating for a hearing-impaired person's loss of hearing capability, augmenting or protecting a normal-hearing person's hearing capability and/or conveying electronic audio signals to a person. Hearing devices or hearing systems may e.g. form part of or interact with public-address systems, active ear protection systems, handsfree telephone systems, car audio systems, entertainment (e.g. karaoke) systems, teleconferencing systems, classroom amplification systems, etc.
Embodiments of the disclosure may e.g. be useful in applications such as hearing aids, e.g. hearing aids configured to communicate with another device, e.g. binaural hearing aid systems.
The aspects of the disclosure may be best understood from the following detailed description taken in conjunction with the accompanying figures. The figures are schematic and simplified for clarity, and they just show details to improve the understanding of the claims, while other details are left out. Throughout, the same reference numerals are used for identical or corresponding parts. The individual features of each aspect may each be combined with any or all features of the other aspects. These and other aspects, features and/or technical effect will be apparent from and elucidated with reference to the illustrations described hereinafter in which:
The figures are schematic and simplified for clarity, and they just show details which are essential to the understanding of the disclosure, while other details are left out. Throughout, the same reference signs are used for identical or corresponding parts.
Further scope of applicability of the present disclosure will become apparent from the detailed description given hereinafter. However, it should be understood that the detailed description and specific examples, while indicating preferred embodiments of the disclosure, are given by way of illustration only. Other embodiments may become apparent to those skilled in the art from the following detailed description.
The detailed description set forth below in connection with the appended drawings is intended as a description of various configurations. The detailed description includes specific details for the purpose of providing a thorough understanding of various concepts. However, it will be apparent to those skilled in the art that these concepts may be practiced without these specific details. Several aspects of the apparatus and methods are described by various blocks, functional units, modules, components, circuits, steps, processes, algorithms, etc. (collectively referred to as “elements” or “units”). Depending upon particular application, design constraints or other reasons, these elements (or units) may be implemented using electronic hardware, computer program, or any combination thereof.
The electronic hardware may include microprocessors, microcontrollers, digital signal processors (DSPs), field programmable gate arrays (FPGAs), programmable logic devices (PLDs), gated logic, discrete hardware circuits, and other suitable hardware configured to perform the various functionality described throughout this disclosure. Computer program shall be construed broadly to mean instructions, instruction sets, code, code segments, program code, programs, subprograms, software modules, applications, software applications, software packages, routines, subroutines, objects, executables, threads of execution, procedures, functions, etc., whether referred to as software, firmware, middleware, microcode, hardware description language, or otherwise.
The present application relates to the field of hearing devices, e.g. hearing aids.
In the case where a hearing aid user wants to listen to a mixture of audio data streams, the hearing aid should facilitate the natural perception of sound without any inflicted artefacts due to time-varying source balancing and/or fading. In the following we consider the mixing of two noisy speech sound streams.
It is assumed that audio signals are provided as sub-band signals (time-frequency domain), e.g. time domain signals which have been transformed to the time-frequency domain using an analysis filter bank and transformed back to the time domain using a synthesis filter bank before being presented to the user (see e.g. units A and S, respectively, in
In the present context, a noisy speech mixture signal y(n)=ys(n)+yv(n) is a mixture of noisy speech signals x1(n)=s1(n)+v1(n), and x2(n)=s2(n)+v2(n), where s(n) and v(n) denote the speech and noise components, respectively, and n represents time. The speech and noise components are assumed to be uncorrelated.
The variance of the noise component y(n)=v1(n)+v2(n) is given by
σy
Where Re {X} denotes the real part of complex number X, and Cov(v1,v2) denotes the covariance between v1 and v2. The expression is valid for correlated as well as uncorrelated noise. The last part (2 Re{Cov(v1, v2)}) is zero, if the noise components (v1, v2) are un-correlated. In a hearing aid application, the signals are typically modified prior to mixing, e.g. for signal balancing/fading, noise reduction, etc. The mixture is given by:
y(n)=α1x1(n)+α2x2(n),
where α1 and α2 are gain factors. These gain factors may be time-varying.
The noise variance of the mixture, including gains, is given by
σy
Since the noise and speech components are (assumed) uncorrelated, similar relationships can be found for the speech components. In a practical application, noise and speech variance are typically frequency dependent and time-varying estimators, found using level estimators which are controlled by Voice Activity Detectors (VAD). In particular, it can be detected whether or not noise between the microphones is un-correlated (e.g. based on the elements of the inter-microphone covariance matrix).
The mixing or fading of source signals can cause annoying audible artefacts when the noise background of the signals is not equal. To overcome this problem, the noise component in the secondary source can be modified in order to avoid the artefacts.
In the embodiment of
A compensation gain β(n) is applied to the secondary source x2(n), see
y(n)=α1x1(n)+βα2x2(n),
which means that the noise variance of the mixture, including gains, is given by
σy
We now normalize with the primary input noise variance σv
The modification gain β can now be found by choosing a desired output variance. For example: The desired output noise variance is chosen to be equal to the primary input noise variance, i.e. σy
This gives two solutions, of which one is negative. A negative β would imply mixing by subtraction, which we do not allow. So we only consider the solution where β is positive, i.e.
Where
The modification gain β may be applied on time-frequency units of the secondary input which have been classified as noise-only, for example by using a Voice Activity Detector (VAD) (noise-only time-frequency units being units for which the VAD has indicated an absence of voice (e.g. speech)). The modification gain f may be found iteratively (e.g. a gradient-based minimization of the second degree polynomial). Hereby the square root can be avoided.
The same principle can be applied on the speech component for target source balancing. However, it might not be desired to modify the spectral shape of the secondary input speech component to match the primary input speech component. In this case, constraints across frequency can be applied. An exemplary constraint may be to maintain a user's loudness perception during fading. The constraint may be used to determine f for given input audio streams.
In a practical hearing aid application, it is desired to avoid operations such as square, square root, and division (due to their computational complexity (power constraints)). Most of the operations can be performed in the logarithmic domain, such that multiplication and divisions can be implemented using addition and subtraction operations respectively. Any other operations can be efficiently approximated by mapping functions or look-up tables.
As an alternative, we may add uncorrelated noise to the mixture of uncorrelated noises such that the fading from one signal to another signal becomes inaudible. By adding uncorrelated noise, the same behavior of uncorrelated noise sources can be mimicked at both microphones. The cost of having a more similar behavior at both microphones is that more noise will be added to the least noisy microphone.
The noise characteristics of the beamformed signals xBF1 and xBF2 referred to above may be equalized by generating respective signals
Y1=(1−α1)xref+α1xBF1
Y2=(1−α2)xref+α2xBF2
where xref is the input data stream from a common reference microphone among the multitude of microphones. By adding a scaled reference microphone signal to each of the beamformed signals (where the beamformers point toward different target directions), similar noise characteristics at the two signals Y1 and Y2 may be obtained, hereby making a fading between the two signals less audible.
When fading between the two ‘improved beamformed signals’ Y1, Y2, the processed input signal may be expressed as
Y=λY1+(1−λ)Y2
where X is a fading parameter for fading between the two “improved beamformed signals” Y1, Y2, and where α1, and α2 are determined such that the noise level in Y1 and Y2 are comparable. More than two beamformed signals, e.g. Y1, . . . , YN, may be used. In that case α1, . . . αN are selected such that the background noise level in each beamformed signal approximately is the same. The different α-values may be adaptively determined over time and frequency.
The proposed solution is shown in
We assume a system with at least two input signals. It could e.g. be two microphones signals (as shown in
Sometimes, it is desirable to fade from one microphone signal to the other microphone signal, e.g. if one microphone has more feedback compared to the other microphone (e.g. in a microphone configuration as indicated in
In other words, in an embodiment, we aim at fading between the two microphone signals x1 and x2 with a fading factor α, such that, we obtain an output y(n) with an unaltered target signal level, i.e.
y(n)=αx1+(1−α)x2.
Similarly, we aim at maintaining a constant noise level equal to the maximum noise level of the two microphone levels by adding some additional noise, v3, i.e.
VAR[αv1]+VAR[(1−α)v2]+VAR(v3)=max(VAR[x1],VAR[x2])
In order to estimate the noise variance of the additional random variable, we isolate the additional noise in the above equation, i.e.
σv
Assuming that v1 is a Gaussian random variable with known variance σv
A consequence of the proposed method is that the noise level of the output corresponds to the microphone signal with the highest noise variance.
In the setup of
In the embodiment of a hearing device in
The substrate (SUB) further comprises a configurable signal processor (DSP, e.g. a digital signal processor), e.g. including a processor for applying a frequency and level dependent gain, e.g. providing beamforming, noise reduction, filter bank functionality, and other digital functionality of a hearing device, e.g. implementing features according to the present disclosure (as e.g. discussed in connection with
The hearing device (HD) further comprises an output unit (e.g. an output transducer) providing stimuli perceivable by the user as sound based on a processed audio signal from the processor or a signal derived therefrom. In the embodiment of a hearing device in
The electric input signals (from input transducers MBTE1, MBTE2, MITE) may be processed in the time domain or in the (time-) frequency domain (or partly in the time domain and partly in the frequency domain as considered advantageous for the application in question).
In the embodiment of
The embodiment of a hearing device (HD) exemplified in
To minimize leakage of sound (played by the hearing aid towards the ear drum of the user) from the ear canal, a good mechanical contact between the housing of the hearing aid and the Skin/tissue of the ear canal is aimed at. In an attempt to minimize such leakage, the housing of the ITE-part may be customized to the ear of a particular user.
The hearing aid (HD) comprises a number of microphones Mq, i=1, . . . , Q, here two (Q=2). The two microphones (M1, M2) are located in the housing with a predefined distance d between them, e.g. 8-10 mm, e.g. on a part of the surface of the housing that faces the environment when the hearing aid is operationally mounted in or at the ear of the user. The microphones (M1, M2) are e.g. located on the housing to have their microphone axis (an axis through the centre of the two microphones) point in a forward direction relative to the user, e.g. a look direction of the user (as e.g. defined by the nose of the user, e.g. substantially in a horizontal plane), when the hearing aid is mounted in or at the ear of the user. Thereby the two microphones are well suited to create a directional signal towards the front (and/or back) of the user. The microphones are configured to convert sound (X1,ac, X2,ac) received from a sound field S around the user at their respective locations to respective (analogue) electric signals (x1, x2) representing the sound. The microphones are coupled to respective analogue to digital converters (AD) to provide the respective (analogue) electric signals (x1, x2) as digitized signals (x1, x2). The digitized signals may further be coupled to respective filter banks to provide each of the electric input signals (time domain signals) as frequency sub-band signals (frequency domain signals). The (digitized) electric input signals (x1, x2) are fed to a digital signal processor (DSP) for processing the audio signals (x1, x2), e.g. including one or more of spatial filtering (beamforming), adaptive mixing (e.g. fading), (e.g. single channel) noise reduction, compression (frequency and level dependent amplification/attenuation according to a user's needs, e.g. hearing impairment), spatial cue preservation/restoration, etc. The digital signal processor (DSP) may e.g. comprise the appropriate filter banks (e.g. analysis as well as synthesis filter banks) to allow processing in the frequency domain (individual processing of frequency sub-band signals). The digital signal processor (DSP) is configured to provide a processed signal y comprising a representation of the sound field S (e.g. including an estimate of a target signal therein). The processed signal y is fed to an output transducer (here a loudspeaker (SPK), e.g. via a synthesis filter bank and, optionally, a digital to analogue converter (DA), for conversion of a processed (digital electric) signal y (or analogue version y) to a sound signal Sout.
The hearing aid (HD) may e.g. comprise a venting channel (Vent) configured to minimize the effect of occlusion (when the user speaks). In addition to allowing an (un-intended) acoustic propagation path from a residual volume (cf. Res. Vol in
The ventilation channel (Vent) is asymmetrically located in the hearing aid housing (Housing). Such asymmetric location may be a result of a design constraint due to components of the hearing aid, e.g. a battery. Thereby the first and second microphones (M1, M2) have different feedback paths from the loudspeaker (SPK). The first microphone (M1) is located closer to the ventilation channel than the second microphone (M2). Other things being equal, the feedback measure (FBM1) of the first microphone is larger than the feedback measure (FBM2) of the second microphone. The scheme according to the present disclosure for controlling (e.g. to switch, such as fade, between) the use of either a beamformed signal or the signal from a single one of the input transducers in the forward path of the hearing aid may be applied to the ITE-hearing aid of
The hearing aid (HD) comprises an energy source, e.g. a battery (BAT), e.g. a rechargeable battery, for energizing the components of the device.
In the screen of
When the user changes a currently preferred audio input from one e.g. Front-directed beamformer to Side-directed beamformer (e.g. in a car-situation), fading between the two inputs as proposed in the present disclosure is automatically initiated.
In embodiments of the APP, the user may be allowed to control details of a fading function between two audio input signals, e.g. the time period (Δt) of the transition and/or a possible residual weight of the audio input that was previously the preferred audio input (if relevant). In an embodiment, different configurations of fading parameters (functions, time periods, residual weight, etc.) may be defined for different pairs of audio inputs.
The hearing devices (HD1, HD2) are shown in
In an embodiment, the remote control APP is configured to interact with a single hearing device (instead of with a binaural hearing aid system).
In the embodiment of
The input unit of the speakerphone may comprise a beamformer filtering unit receiving the electric input signals from the multitude of microphones (MIC). The beamformer filtering unit is configured to provide at least two spatially filtered (beamformed) signals (here four is shown BF1, BF2, BF3, BF4) directed towards at least two target sound sources (here four is shown, S1, S2, S3, S4) in the environment of the speakerphone. The multitude of microphones may be divided into sub-sets of microphones. Each beamformer may be based on a subset of the microphones or all of the microphones. The speakerphone may be configured to fade between the at least two spatially filtered signals and to transmit the (resulting) processed input signal (or a further processed version, e.g. a postfiltered version, thereof) to the (an)other device or system. A currently active beamformer (BF2) is indicated by a bold outline. Speaker S2 is currently active. When (dominant) speech activity is detected in another one of the beamformers, a fading procedure according to the present disclosure is initiated. The initiation of the fading procedure may be determined by respective voice-activity-detectors (e.g. one for each spatially filtered signal).
The two input audio data streams (x1, x2) are multiplied in combination unit ‘x’ and low-pass filtered by low-pass filter (LP) to provide an estimate of the correlation (COR) between the two data streams (x1, x2). The cross-correlation between x1 and x2 is determined as =<x1 x2*>, where * denotes complex conjugate (cf. * on the input to multiplication unit ‘x’ from x2), and <-> indicates smoothing over time, e.g. using a low-pass filter (LP), assuming that the processing is performed in the filter bank domain (i.e. the (time-)frequency domain), cf. analysis filter banks (FBA) in
Each of the two input audio data streams (x1, x2) have separate (identical) noise variance estimation paths. Each noise estimation path comprises an ABS squared function for providing a magnitude squared representation (|x1|2, |x2|2) of the two input audio data streams (x1, x2). In each noise estimation path (m=1, 2, corresponding to M1, M2), the magnitude squared values (|x1|2, |x2|2) are low-pass filtered (LP, LPm, m=1, 2) in two different, parallel signal paths. Low-pass filter LP is configured to be continuously updated to provide an envelope (<|x1|2>, <|x2|2>) of the magnitude squared values. The level (L1, L2) of the envelope (<|x1|2>, <|x2|2>) of the magnitude squared values is estimated in respective level estimators LD, and the estimated levels (L1, L2) are fed to the controller (CTR). Low-pass filter LP1 in microphone path 1 (and correspondingly LP2 in microphone path M2) is updated in control of signal U1 (U2) from the controller (CTR). Control signal U1 (U2) is determined (at a given time) in dependence of the correlation (COR) between the two input audio data streams (x1, x2) and the estimated level (L1 (L2)) of the envelope (<|x1|2>(<|x2|2>)) of the magnitude squared values of the respective input audio data streams (x1 (x2)). When the correlation (COR) is low, the output of the low-pass filters LP1 and LP2 represent the noise variances σ12 and σ22 of the first and second input audio data streams x1 and x2, respectively.
The controller (CTR) is configured to provide control signals U1, U2, NTP according to the following criteria:
The control signal NTP can e.g. be used to discriminate between noise (including between wind noise and e.g. microphone noise) and no noise (e.g. speech) and thus implement a voice activity detector. This control signal may e.g. be used elsewhere in the hearing aid.
The estimator (NEST) of
It is intended that the structural features of the devices described above, either in the detailed description and/or in the claims, may be combined with steps of the method, when appropriately substituted by a corresponding process.
As used, the singular forms “a,” “an,” and “the” are intended to include the plural forms as well (i.e. to have the meaning “at least one”), unless expressly stated otherwise. It will be further understood that the terms “includes,” “comprises,” “including,” and/or “comprising,” when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof. It will also be understood that when an element is referred to as being “connected” or “coupled” to another element, it can be directly connected or coupled to the other element but an intervening element may also be present, unless expressly stated otherwise. Furthermore, “connected” or “coupled” as used herein may include wirelessly connected or coupled. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items. The steps of any disclosed method are not limited to the exact order stated herein, unless expressly stated otherwise.
It should be appreciated that reference throughout this specification to “one embodiment” or “an embodiment” or “an aspect” or features included as “may” means that a particular feature, structure or characteristic described in connection with the embodiment is included in at least one embodiment of the disclosure. Furthermore, the particular features, structures or characteristics may be combined as suitable in one or more embodiments of the disclosure. The previous description is provided to enable any person skilled in the art to practice the various aspects described herein. Various modifications to these aspects will be readily apparent to those skilled in the art, and the generic principles defined herein may be applied to other aspects.
The claims are not intended to be limited to the aspects shown herein but are to be accorded the full scope consistent with the language of the claims, wherein reference to an element in the singular is not intended to mean “one and only one” unless specifically so stated, but rather “one or more.” Unless specifically stated otherwise, the term “some” refers to one or more.
Accordingly, the scope should be judged in terms of the claims that follow.
Number | Date | Country | Kind |
---|---|---|---|
19198406 | Sep 2019 | EP | regional |
Number | Name | Date | Kind |
---|---|---|---|
20090016542 | Goldstein | Jan 2009 | A1 |
20140376743 | Hetherington | Dec 2014 | A1 |
20170295437 | Bertelsen | Oct 2017 | A1 |
20190019526 | Sorensen | Jan 2019 | A1 |
20200322735 | Mosgaard | Oct 2020 | A1 |
Number | Date | Country |
---|---|---|
3 236 672 | Oct 2017 | EP |
WO 2008137870 | Nov 2008 | WO |
Number | Date | Country | |
---|---|---|---|
20210092531 A1 | Mar 2021 | US |