Determination of cochlear hydrops based on recorded auditory electrophysiological responses

The system addresses the limitations of current cochlear hydrops diagnosis by using click and chirp acoustic stimuli to analyze auditory brainstem responses, offering a quicker, easier, and more accurate method for diagnosing cochlear hydrops.

JP7807033B2Active Publication Date: 2026-01-27INTERACOUSTICS
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Patent Information

Application Number
JP2021099553
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-06-16
Filing Date
2021-06-15
Publication Date
2026-01-27
Estimated Expiration
2041-06-15

AI Technical Summary

Technical Problem

Current methods for diagnosing cochlear hydrops, particularly in early-stage Meniere's disease, suffer from low sensitivity and specificity, are laborious, and uncomfortable for patients, making a simple and rapid objective test desirable.

Method used

A system using an acoustic stimulus generation unit to provide click and chirp acoustic stimuli, combined with a recording and diagnostic unit to analyze auditory brainstem responses, allowing for a quicker and more accurate diagnosis of cochlear hydrops by comparing response characteristics.

Benefits of technology

The system provides a faster, easier, and more comfortable diagnosis of cochlear hydrops by requiring only two measurement conditions, reducing averaging time, and improving diagnostic accuracy through the use of chirp stimuli tailored to normal and edematous cochleae.

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Abstract

To provide a system for diagnosing cochlear hydrops of a person or an animal.SOLUTION: The system comprises an acoustic stimulus generating unit comprising a stimulus generator and an output transducer, where the acoustic stimulus generating unit is configured to provide an audio stimulus by the stimulus generator to at least one of ears of a person or animal via the output transducer, wherein the acoustic stimulus generating unit is configured to provide a plurality of audio stimuli comprising at least a first click audio stimulus and at least a first chirp audio stimulus, or at least a first and a second chirp audio stimuli, a recording unit configured to record one or more auditory electrophysiological response of the person or animal in response to one or more audio stimuli being provided by the acoustic stimulus generating unit to at least one of the ears of the person or animal, and a diagnostic unit configured to process a recorded ABR.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present application relates to a system for diagnosing cochlear hydrops in humans or animals.

[0002] The present application further relates to a method for recording auditory electrophysiological responses in a human or animal. [Background technology]

[0003] System for diagnosing cochlear hydrops Meniere's disease is currently typically diagnosed by observing the symptoms of sudden vertigo, tinnitus, fluctuating hearing loss, and a feeling of fullness or pressure in the ears. Furthermore, the diagnosis may be combined with a CT or MR scan to rule out any other causes of the symptoms.

[0004] Not all patients exhibit all of the above symptoms, and some may only exhibit some symptoms, especially in the early stages of Meniere's disease.

[0005] The cause of Meniere's disease is still not fully understood, but the proposed etiology of Meniere's disease is endolymphatic (or cochlear) hydrops, a condition that causes a sensation of fullness of the endolymphatic system.[1]

[0006] - Vestibular evoked myogenic potential testing, - electrocochleography, - Cochlear Hydrops Analysis Masking Procedure (CHAMP) Several methods have been proposed to identify symptoms resulting from Meniere's disease, such as:[2]

[0007] However, each of these methods is associated with different challenges. For example, although CHAMP has been reported to achieve high sensitivity and specificity for patients with early-stage Meniere's disease, it has low sensitivity and specificity for patients with early-stage Meniere's disease, resulting in an uncertain diagnosis. Furthermore, CHAMP is a laborious procedure.

[0008] Furthermore, the process of identifying symptoms as arising from Meniere's disease can be long and unpleasant for the patient. Summary of the Invention [Problem to be solved by the invention]

[0009] Therefore, a simple, rapid, objective test that identifies symptoms as resulting from Meniere's disease is highly desirable. [Means for solving the problem]

[0010] In one aspect of the present application, a system for diagnosing cochlear hydrops in a human or animal is provided.

[0011] The system may include an acoustic stimulus generation unit including a stimulus generator and an output transducer.

[0012] The system may include a loudspeaker, which may include an output transducer, for example, so that sound from the acoustic stimulus generating unit can be output in the human or animal's environment.

[0013] The system may include a headset, for example the headset may include an output transducer so that sound from the acoustic stimulus generating unit can be output from the headset at one or both ears of a person or animal.

[0014] The system may include an ear contact portion. For example, the ear contact portion may be an earpiece suitable for insertion into the ear canal of a human or animal. The earpiece may include a flexible material configured to conform to the shape of the wall of the ear canal of the human or animal, such as a dome or mold. The earpiece may include a mold having a shape that substantially fits the shape of the wall of the ear canal of the human or animal. For example, an output transducer may be positioned in the ear contact portion such that the output transducer is positioned within the ear canal in a stable manner and can correctly output acoustic stimuli toward the inner ear of the human or animal.

[0015] The stimulus generator may be connected to the output transducer (and, for example, to the ear contact, loudspeaker, or headset, if any) in a wired or wireless manner.

[0016] The acoustic stimulus generating unit may be configured to provide one or more sound stimuli from the stimulus generator to at least one ear of the human or animal via the output transducer. For example, the acoustic stimulus generating unit may be configured to automatically provide the sound stimuli from the stimulus generator, thereby providing simple sound stimulus generation.

[0017] The acoustic stimulus generating unit may be configured to provide multiple acoustic stimuli. For example, the acoustic stimulus generating unit may be configured to provide two or more different types of acoustic stimuli so that the responses of the person or animal to the different acoustic stimuli can be monitored and compared to obtain more data for evaluating the person or animal. The multiple acoustic stimuli may include providing at least a first click acoustic stimulus and at least a first chirp acoustic stimulus. The multiple acoustic stimuli may include providing at least a first chirp acoustic stimulus and at least a second chirp acoustic stimulus. For example, the chirp acoustic stimulus may include a CE-chirp [4].

[0018] The system may include a recording unit configured to record one or more auditory electrophysiological responses of the human or animal. The one or more auditory electrophysiological responses may be recorded in response to sound stimuli being provided by the acoustic stimulus generating unit to at least one ear of the human or animal. For example, the acoustic stimulus generating unit may provide multiple sound stimuli to the human or animal's inner ear via an output transducer, and one or more resulting auditory electrophysiological responses of the human or animal may be recorded for each provided sound stimulus. For example, the system may be configured to (e.g., automatically) record the human or animal's auditory electrophysiological responses in response to one or more sound stimuli being provided by the acoustic stimulus generating unit, thereby providing a simple recording of the auditory electrophysiological responses. For example, the one or more auditory electrophysiological responses may be measured by electrodes placed on the human or animal's skin. For example, the one or more auditory electrophysiological responses may be measured by electrodes placed on an ear-contacting portion of the acoustic stimulus generating unit.

[0019] The system may include a diagnostic unit. The diagnostic unit may be configured to process the recorded auditory electrophysiological response. For example, processing the recorded auditory electrophysiological response may include sorting the recorded auditory electrophysiological response according to, for example, the type and size of the plurality of sound stimuli. For example, processing the recorded auditory electrophysiological response may include analyzing the recorded auditory electrophysiological response, for example, determining a parameter (e.g., size) of the auditory electrophysiological response, such as determining the amplitude of the recorded auditory electrophysiological response. The diagnostic unit may be configured to provide a diagnosis of cochlear hydrops in a human or animal based on one or more sound stimuli. For example, providing a diagnosis of cochlear hydrops may include determining whether the human or animal has cochlear hydrops. Providing a diagnosis may be based on an analysis of auditory electrophysiological responses recorded in response to at least a first click stimulus and at least a first chirp stimulus, or in response to at least a first and a second chirp stimulus.

[0020] Thus, cochlear hydrops can be diagnosed based on providing at least a first click stimulus and at least a first chirp stimulus, or providing at least one first and second chirp stimulus, and recording and processing the resulting auditory electrophysiological response, which is faster, easier, and more comfortable for the person or animal compared to existing techniques.

[0021] The recorded auditory electrophysiological response may be an auditory brainstem response (ABR). The system may include a recording unit configured to record one or more ABRs of the person or animal.

[0022] The diagnostic unit configured to process the one or more recorded auditory electrophysiological responses may include that the diagnostic unit may be configured to compare response characteristics (e.g., in the time or frequency domain) of the one or more recorded auditory electrophysiological responses based on the at least a first click stimulus and the at least a first chirp stimulus, respectively, or based on the at least a first and a second chirp stimulus, respectively. The diagnostic unit configured to process the one or more recorded auditory electrophysiological responses and provide a diagnosis of cochlear hydrops may include that the diagnostic unit may be configured to compare response characteristics (e.g., in the time or frequency domain) of the one or more recorded auditory electrophysiological responses based on the at least a first click stimulus and the at least a first chirp stimulus, or based on the at least a first and a second chirp stimulus.

[0023] In the CHAMP technique described above, suprathreshold click stimuli are generated, and the resulting auditory electrophysiological responses are then measured with different amounts of masking to investigate the effect on wave V latency.

[0024] Thus, the CHAMP technique involves recording auditory electrophysiological responses to moderate-level clicks and simultaneous cochlear high-pass masking noise. Responses to click stimuli presented alone and with high-pass filtered masking noise at 8, 4, 2, 1, and 0.5 kHz are recorded.

[0025] In typical normal-hearing subjects without cochlear hydrops, a very clear masking effect is observed. Here, the latency of wave V in the auditory electrophysiological response is observed to increase as the cutoff frequency of the high-pass masking noise decreases. Typically, the highest unmasked frequency range dominates the latency of wave V. Thus, as the cochlea is successively masked from 8 kHz to 0.5 kHz, the peak latency of wave V increases.

[0026] With each decrease in the high-pass masking noise cutoff frequency, we would expect to observe increased wave V latency because the response to the click stimulus is dominated by the lower frequency region. Thus, due to factors related to cochlear traveling wave delay, the wave V latency of the measured auditory electrophysiological response increases as the unmasked cochlear region is restricted to successively lower frequencies.

[0027] In contrast, CHAMP measurements in people or animals with Meniere's disease show essentially no effect of masking on wave V latency, in the sense that high-pass masking noise does not increase wave V latency [2].

[0028] The diagnostic unit configured to compare may include the diagnostic unit being configured to determine a ratio between respective response characteristics of one or more auditory electrophysiological responses recorded based on at least a first click sound stimulus and at least a first chirp sound stimulus. The diagnostic unit configured to compare may include the diagnostic unit being configured to determine a ratio between respective response characteristics of one or more auditory electrophysiological responses recorded based on at least a first and a second chirp sound stimuli. For example, the diagnostic unit may be configured to receive recorded auditory electrophysiological responses in response to at least a first click sound stimulus being provided to the ear of the human or animal and determine corresponding response characteristics. Further, the diagnostic unit may be configured to receive recorded auditory electrophysiological responses in response to at least a first chirp sound stimulus being provided to the ear of the human or animal and determine corresponding response characteristics. Further, the diagnostic unit may be configured to receive recorded auditory electrophysiological responses in response to at least a second chirp sound stimulus being provided to the ear of the human or animal and determine corresponding response characteristics. The diagnostic unit may be configured to determine a ratio between the determined response characteristics of the click and chirp stimuli, respectively.

[0029] It has been shown that higher wave V amplitudes can be obtained in normal cochleae when conventional click stimuli are replaced with chirp stimuli, such as CE-Chirp.[3][4] This increase in amplitude arises from the mean travel time of the traveling wave in the normal cochlea, to which the variance of the chirp stimuli is aligned to generate an optimally synchronous stimulus, resulting in higher wave V amplitudes compared to click stimuli.

[0030] CHAMP measurements suggest that the transit time of a normal cochlea is significantly shortened in the ears of people or animals with cochlear hydrops. In people with normal hearing, it typically takes about 10 ms for a sound stimulus to travel through the cochlea. Furthermore, there is a transit time difference of, for example, 10 ms between low and high frequencies in the cochlea (depending on the exact frequency). This suggests that the benefit in wave V amplitude of chirp stimuli compared to click stimuli observed in the ears of people or animals with normal hearing is replaced by a disadvantage in the ears of people or animals with cochlear hydrops.

[0031] The at least one first chirp sound stimulus may be different from the at least one second chirp sound stimulus. For example, the first chirp sound stimulus may have a longer or shorter duration than the second chirp sound stimulus. For example, the first chirp sound stimulus may have a larger or smaller sound pressure level than the second chirp sound stimulus. For example, by designing the first chirp sound stimulus according to the average delay profile of a cochlea affected by edema and the second chirp sound stimulus according to the average delay profile of a healthy cochlea, improved discrimination ability can be obtained compared to the above click-and-chirp-based method. The first chirp sound stimulus may have a delay profile (duration) according to the average delay profile of a cochlea affected by edema. The second chirp sound stimulus may have a delay profile (duration) according to the average delay profile of a healthy cochlea. It is contemplated that the delay profiles of the first and second chirp sound stimuli may be reversed. By measuring in a sequential, alternating manner across different sound pressure levels, a richer data source for comparison can be achieved, potentially leading to a more accurate diagnosis. It should be understood that at each sound pressure level, comparisons can be made between click and chirp responses, or between responses to a first chirp and a second chirp.

[0032] This effect can then be used as a simpler diagnosis of cochlear hydrops.

[0033] Simplicity comes from two things: For example, only two measurement conditions may be required compared to the six conditions specified in the full-scale CHAMP.

[0034] The two measurements required for the proposed technique are both unmasked, which promises a shorter averaging time required compared to the masked condition of, for example, CHAMP.

[0035] The diagnostic unit may be configured to compare the determined ratio with a predetermined ratio. For example, the diagnostic unit may be configured to determine whether the response characteristic based on the chirp stimulus is higher than the response characteristic based on the click stimulus. In such a case, the person or animal is diagnosed with normal hearing. For example, the diagnostic unit may be configured to determine whether the response characteristic based on the click stimulus is higher than the response characteristic based on the chirp stimulus. In such a case, the person or animal is diagnosed with cochlear hydrops.

[0036] The acoustic stimulus generating unit may be configured to provide at least the first click stimulus and the at least first chirp stimulus at a fixed suprathreshold level. The acoustic stimulus generating unit may be configured to provide at least the first chirp stimulus and the at least second chirp stimulus at a fixed suprathreshold level. For example, the click stimulus and the chirp stimulus may be provided at 60 dB.

[0037] The click stimulus may be frequency shaped. The click stimulus may be frequency shaped based on the hearing threshold level (HTL) of the person or animal. The chirp stimulus (first and / or second) may be frequency shaped. The chirp stimulus may be frequency shaped based on the HTL of the person or animal. The HTL may be determined based on an audiogram measured on the person or animal at an initial stage. For example, the initial stage may be just before using the system on the person or animal, or may be at an even earlier stage.

[0038] The click and / or chirp stimuli (first and / or second) may be provided at a fixed sensation level (SL). The click and / or chirp stimuli (first and / or second) may be provided at a fixed SL above the human or animal's HTL across the stimulation frequency range. For example, the click and / or chirp stimuli (first and / or second) may be provided at a SL 20 dB above the human or animal's HTL across the stimulation frequency range.

[0039] The acoustic stimulus generating unit may be configured to provide a plurality of click stimuli and chirp stimuli. The acoustic stimulus generating unit may be configured to provide a plurality of chirp stimuli. The acoustic stimulus generating unit may be configured to provide a plurality of click stimuli. The acoustic stimulus generating unit may be configured to provide a plurality of click stimuli and / or chirp stimuli to at least one ear of the human or animal in an alternating manner. The acoustic stimulus generating unit may be configured to provide alternating click stimuli and / or chirp stimuli to at least one ear of the human or animal. The acoustic stimulus generating unit may be configured to provide a plurality of click stimuli and / or chirp stimuli to both ears of the human or animal in an alternating manner. The acoustic stimulus generating unit may be configured to provide alternating click stimuli and / or chirp stimuli to both ears of the human or animal. For example, a plurality of sound stimuli can be provided simultaneously to both ears of the human or animal in an alternating manner. For example, the acoustic stimulus generating unit may be configured to provide alternating first click stimuli and first chirp stimuli. For example, the acoustic stimulus generating unit may be configured to provide alternating first and second chirp stimuli, thereby allowing measurements to be performed simultaneously and under similar conditions on both ears of a person or animal, thereby allowing for an even more accurate diagnosis of the person or animal.

[0040] The acoustic stimulus generating unit may be configured to provide multiple click stimuli at multiple sound pressure levels to at least one ear of the human or animal. The acoustic stimulus generating unit may be configured to provide multiple chirp stimuli at multiple sound pressure levels to at least one ear of the human or animal. For example, multiple click and / or chirp stimuli may be provided simultaneously to both ears of the human or animal at similar sound pressure levels to allow ear-specific information to be retrieved. This may simplify the provision of the sound stimuli and the subsequent recording of the auditory electrophysiological response. For example, the recording of the auditory electrophysiological response may be performed sequentially in response to the provided multiple click and / or chirp stimuli to facilitate subsequent analysis of the recordings. For example, the recording of the auditory electrophysiological response may be performed alternately.

[0041] The diagnostic unit may be configured to provide respective averages of response characteristics of one or more auditory electrophysiological responses recorded based on at least a first click stimulus and at least a first chirp stimulus, respectively, or based on at least a first and a second chirp stimulus, respectively. The diagnostic unit may be configured to provide an average of response characteristics of the auditory electrophysiological responses recorded based on the first click stimulus. The diagnostic unit may be configured to provide an average of response characteristics of the auditory electrophysiological responses recorded based on the first chirp stimulus or the second chirp stimulus. The diagnostic unit may be configured to process the recorded auditory electrophysiological responses, including providing respective average response characteristics, and may be further configured to provide a diagnosis of cochlear hydrops in a human or animal based on the respective average first click stimulus and average chirp stimulus, or based on the respective average first chirp stimulus and average second chirp stimulus.

[0042] The system may be configured to make a diagnosis based on simultaneous measurements at both ears of a person or animal, allowing ear-specific information to be retrieved. For example, the acoustic stimulus generating unit of the system may include a loudspeaker including an output transducer. For example, the acoustic stimulus generating unit of the system may include a headset and two output transducers. For example, the acoustic stimulus generating unit of the system may include two ear contact portions and two output transducers. One ear contact portion may fit the left ear of the person or animal, and the other ear contact portion may fit the right ear. One output transducer may fit one ear contact portion, and the other output transducer may fit the other ear contact portion. The acoustic stimulus generating unit may thereby be configured to provide one or more sound stimuli from the stimulus generator to both ears of the person or animal simultaneously or alternately via one or more output transducers.

[0043] If there is only one output transducer, measurements may be taken first at one ear and then at the second ear.

[0044] The response characteristics may include wave V amplitude of one or more recorded auditory electrophysiological responses.

[0045] The one or more auditory electrophysiological responses may be one or more auditory brainstem responses (ABRs).

[0046] The system may be part of or form part of a portable device, for example a device that includes a local energy source, for example a battery, for example a rechargeable battery.

[0047] use: In one aspect, uses of the system in the detailed description above and in the claims are further provided.

[0048] method: Further provided by the present application, in one aspect, is a method for recording an auditory electrophysiological response in a human or animal.

[0049] The method may include providing sound stimuli. The sound stimuli may include at least a first click sound stimulus. The sound stimuli may include at least a first chirp sound stimulus. The sound stimuli may include at least a second chirp sound stimulus. The at least first click sound stimulus and / or the at least first chirp sound stimulus may be provided by a stimulus generator of the acoustic stimulus generating unit. The at least first chirp sound stimulus and / or the at least second chirp sound stimulus may be provided by a stimulus generator of the acoustic stimulus generating unit. The at least first click sound stimulus and / or the at least first chirp sound stimulus may be provided to at least one ear of the human or animal via an output transducer of the acoustic stimulus generating unit. The at least first chirp sound stimulus and / or the at least second chirp sound stimulus may be provided to at least one ear of the human or animal via an output transducer of the acoustic stimulus generating unit.

[0050] The method may include recording, by a recording unit, one or more auditory electrophysiological responses of the human or animal. The method may include recording, by the recording unit, one or more auditory electrophysiological responses of the human or animal in response to one or more sound stimuli being provided by an acoustic stimulus generating unit to at least one ear of the human or animal.

[0051] The method may include processing one or more recorded auditory electrophysiological responses. The method may include providing, by a diagnostic unit, a diagnosis of cochlear hydrops in the human or animal. The method may include processing, by the diagnostic unit, the recorded auditory electrophysiological responses based on at least a first click stimulus and at least a first chirp stimulus. The method may include processing, by the diagnostic unit, the recorded auditory electrophysiological responses based on at least a first click stimulus and at least a first chirp stimulus to provide a diagnosis of cochlear hydrops in the human or animal. The method may include processing, by the diagnostic unit, the recorded auditory electrophysiological responses based on at least a first chirp stimulus and at least a second chirp stimulus. The method may include processing, by the diagnostic unit, the recorded auditory electrophysiological responses based on at least a first chirp stimulus and at least a second chirp stimulus to provide a diagnosis of cochlear hydrops in the human or animal.

[0052] The method may include measuring the hearing threshold level (HTL) of at least one ear of the human or animal.

[0053] Processing the one or more recorded auditory electrophysiological responses to provide a diagnosis of cochlear hydrops in the human or animal may include comparing response characteristics (e.g., wave V amplitude, etc.) of the one or more recorded auditory electrophysiological responses based on at least the first click stimulus and the first chirp stimulus. Processing the one or more recorded auditory electrophysiological responses to provide a diagnosis of cochlear hydrops in the human or animal may include comparing response characteristics (e.g., wave V amplitude, etc.) of the one or more recorded auditory electrophysiological responses based on at least the first and second chirp stimulus.

[0054] The comparing step may include determining a ratio between respective response characteristics of the one or more auditory electrophysiological responses recorded based on at least the first click stimulus and the first chirp stimulus. The comparing step may include determining a ratio between respective response characteristics of the one or more auditory electrophysiological responses recorded based on at least the first and second chirp stimulus.

[0055] Instead of measuring the wave V amplitude of the response, other methods of assessing the characteristics of the response can be applied, for example, the responses or their differences in the frequency domain can be assessed.

[0056] The acoustic stimulus generating unit is capable of providing a plurality of click stimuli to at least one of the ears of the human or animal. The acoustic stimulus generating unit is capable of providing a plurality of chirp stimuli to at least one of the ears of the human or animal.

[0057] Although the wave V response is likely to provide the most clinically robust response component for such assessments described herein, other response components may also be used, alone or in combination, where the combination may or may not include wave V.

[0058] The acoustic stimulus generating unit is capable of providing a plurality of click and / or chirp stimuli in an alternating manner to at least one ear of the human or animal.

[0059] The sound stimulus may have a specific frequency bandwidth. The sound stimulus may have a specific presentation rate. The sound stimulus may have a specific amplitude. The sound stimulus may have a specific spectral content. The sound stimulus may have a specific frequency bandwidth, presentation rate, amplitude, and spectral content.

[0060] It is intended that some or all of the structural features of the systems in the above Detailed Description or claims can be combined with the method embodiments, and vice versa, when appropriately substituted with the corresponding steps, such that the method embodiments have the same advantages as the corresponding apparatuses.

[0061] Computer-readable medium or data carrier: In one aspect, the present application further provides a tangible computer readable medium (data carrier) storing a computer program, said computer program comprising program code means (instructions) for causing a data processing system (computer) to perform (execute) at least some (such as most or all) of (the steps of) the methods in the above-described "Detailed Description of the Invention" and in the claims, when said computer program is run on a data processing system.

[0062] By way of example, and not limitation, such computer-readable media may include 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 hold 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, include compact discs (CDs), laser discs, optical discs, digital versatile discs (DVDs), floppy disks, and Blu-ray discs, where disks typically reproduce data magnetically and discs reproduce data optically with a laser. Other storage media include storage in DNA (e.g., synthesized DNA strands, etc.). Combinations of the above should also be included within the scope of computer-readable media. In addition to being stored on tangible media, computer programs can also be transmitted via transmission media such as wired or wireless links or networks, e.g., the Internet, and loaded into a data processing system for execution at a location different from that of the tangible media.

[0063] Computer Program: Further provided by the present application is a computer program (product) comprising instructions which, when executed by a computer, cause the computer to perform (the steps of) the methods described above in the "Description of Embodiments" and in the claims.

[0064] Data Processing System: In one aspect, the present application further provides a data processing system including a processor and program code means, the program code means causing the processor to perform at least some (such as most or all) of the method steps in the above-described Detailed Description and claims.

[0065] Auxiliary equipment: The system may be adapted to establish a communications link between the system and the auxiliary device so that information (e.g., control and status signals, possibly audio signals, etc.) can be exchanged or transferred from one to the other.

[0066] The auxiliary device may include a remote control or other portable electronic device.

[0067] The auxiliary device may be configured with or include a remote control for controlling the functionality and operation of the system, such as via a user interface.

[0068] APP: In a further aspect, the present disclosure further provides a non-transitory application, referred to as an APP, which includes executable instructions configured to run on an auxiliary device to implement a user interface for the system described in the above-mentioned Detailed Description and claims. The APP may be configured to run on a mobile phone, such as a smartphone, or another portable device that enables communication with the above-mentioned system. [Brief explanation of the drawings]

[0069] Aspects of the present disclosure can be best understood from the following detailed description taken in conjunction with the accompanying drawings. The figures are schematic and simplified for clarity, showing only details that improve understanding of the claims, and omitting other details. The same reference numerals are used throughout for identical or corresponding parts. Each individual feature of each aspect may be combined with any or all features of the other aspects. These and other aspects, features, and / or technical advantages will become apparent from and be elucidated with reference to the examples set forth below. [Figure 1] FIG. 1 illustrates an example application scenario for a system according to the present disclosure. [Figure 2]1A-1C illustrate example click and chirp sound stimuli according to the present disclosure. [Figure 3] 1 shows an illustrative flow diagram of a method for recording auditory electrophysiological responses in a human or animal. The figure is schematic and simplified for clarity, showing only details essential to an understanding of the present disclosure, with other details omitted. The same reference numbers are used throughout for identical or corresponding parts.

[0070] 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 present disclosure, are given by way of illustration only. Other embodiments may become apparent to those skilled in the art from the following detailed description. DETAILED DESCRIPTION OF THE INVENTION

[0071] The detailed description set forth below in connection with the accompanying 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. Some aspects of the systems and methods are described in terms of various blocks, functional units, modules, components, circuits, steps, processes, algorithms, etc. (collectively referred to as "elements"). Depending on the particular application, design constraints, or other reasons, these elements may be implemented using electronic hardware, computer programs, or any combination thereof.

[0072] Electronic hardware may include microelectromechanical systems (MEMS), integrated circuits (e.g., application specific, etc.), microprocessors, microcontrollers, digital signal processors (DSPs), field programmable gate arrays (FPGAs), programmable logic devices (PLDs), gate logic, discrete hardware circuits, printed circuit boards (PCBs) (e.g., flexible PCBs, etc.), and other suitable hardware configured to perform various functions described throughout this disclosure, such as sensors for sensing and / or registering physical characteristics of the environment, device, user, etc. A computer program shall be broadly construed to mean instructions, instruction sets, code, code segments, program code, programs, subprograms, software modules, applications, software applications, software packages, routines, subroutines, objects, executables, threads, etc., whether referred to as software, firmware, middleware, microcode, hardware description language, etc.

[0073] FIG. 1 illustrates an exemplary application scenario of a system according to the present disclosure.

[0074] In FIG. 1, a system 1 for diagnosing cochlear hydrops in a person 2 is shown.

[0075] The system 1 may include an acoustic stimulus generating unit that may be configured to provide acoustic stimuli to at least one ear of the person 2. In Figure 1 it is shown that acoustic stimuli may be provided to both a first ear 3 and a second ear 4 of the person 2.

[0076] The acoustic stimulus generating unit may include a stimulus generator 5. The stimulus generator 5 is capable of providing sound stimuli.

[0077] The acoustic stimulus generating unit may include an ear contacting portion 6 and an output transducer 7. Alternatively, the acoustic stimulus generating unit may include a loudspeaker or a headset. The output transducer 7 may be disposed within the ear contacting portion 6. The ear contacting portion 6 may have an outer surface having a shape configured to fit the surface of the ear canal of the person 2. The ear contacting portion 6 may include a flexible material so that the ear contacting portion 6 can fit snugly into the ear canal of the person 2.

[0078] The acoustic stimulus generating unit is capable of providing sound stimuli by means of a stimulus generator 5 to the first ear 3 and / or the second ear 4 of the person 2 via an output transducer 7 arranged in the ear contact portion 6 .

[0079] 1, the stimulus generator 5 may be connected (e.g., operatively connected) to the output transducer 7 via a wired connection, such as a first wired connection 8 and a second wired connection 9. Alternatively, the stimulus generator 5 may be connected to the output transducer 7 via a wireless connection.

[0080] The stimulus generator 5 of the acoustic stimulus generating unit may be configured to provide a plurality of sound stimuli to the first ear 3 and / or the second ear 4 of the person 2, for example in an alternating manner. The plurality of sound stimuli may include at least one click sound stimulus and at least one chirp sound stimulus. Alternatively, the plurality of sound stimuli may include at least a first chirp sound stimulus and at least a second chirp sound stimulus.

[0081] System 1 may include a recording unit 10. Recording unit 10 may be configured to record one or more auditory electrophysiological responses (e.g., ABRs, etc.) of person 2 in response to a sound stimulus or sound stimuli being provided by an acoustic stimulus generating unit to at least one ear of person 2. Recording of the auditory electrophysiological responses may be performed automatically by recording unit 10 and / or manually by a second person operating the system on person 2.

[0082] The system 1 may include a diagnostic unit 11. The diagnostic unit 11 may be configured to process the recorded auditory electrophysiological response. The diagnostic unit 11 may be configured to provide a diagnosis of cochlear hydrops in the person 2 based on at least one click stimulus and at least one chirp stimulus, or based on at least a first chirp stimulus and at least a second chirp stimulus, provided by a stimulus generator 5 to the first ear 3 and / or the second ear 4 of the person 2.

[0083] 1 shows that the stimulus generator 5, recording unit 10, and diagnostic unit 11 may be located within the same device 12, thereby generating sound stimuli, measuring the resulting auditory electrophysiological responses, and diagnosing cochlear hydrops may be performed using one device 12. This may provide a quicker and easier diagnosis of cochlear hydrops.

[0084] FIG. 2 shows illustrative click and chirp stimuli according to the present disclosure.

[0085] In Figure 2, the top graph shows a chirp stimulus waveform, e.g., a CE-chirp stimulus. The amplitude of the chirp stimulus is shown as a function of time in milliseconds.

[0086] In Figure 2, the bottom graph shows the click stimulus waveform. The amplitude of the click stimulus is shown as a function of time in milliseconds.

[0087] FIG. 3 shows an illustrative flow diagram of a method for recording one or more auditory electrophysiological responses of a person or animal.

[0088] In FIG. 3, a method for recording an auditory electrophysiological response of a person or animal can be recorded in response to providing at least one sound stimulus to at least one ear of the person or animal.

[0089] The method may include a step S1 of providing a sound stimulus.

[0090] The sound stimuli may include at least one click sound stimulus and at least one chirp sound stimulus, or may include at least a first chirp sound stimulus and at least a second chirp sound stimulus. The sound stimuli may be provided by a stimulus generator of the acoustic stimulus generating unit. The sound stimuli may be provided to at least one (e.g., both, etc.) of the human or animal's ears via an output transducer of the acoustic stimulus generating unit.

[0091] The method may include a step S2 of recording one or more auditory electrophysiological responses of the person or animal.

[0092] The auditory electrophysiological response may be recorded by a recording unit in response to sound stimuli being provided by an acoustic stimulus generating unit to at least one ear of the human or animal.

[0093] The method may include a step S3 of processing the one or more recorded auditory electrophysiological responses. The step S3 of processing the recorded auditory electrophysiological responses may be performed by a diagnostic unit.

[0094] The method may include a step S4 of providing a diagnosis of cochlear hydrops in a human or animal.

[0095] The step S4 of providing a diagnosis of cochlear hydrops can be performed by a diagnostic unit. The diagnostic unit can provide the diagnosis based on sound stimuli. The diagnostic unit can provide the diagnosis based on recorded auditory electrophysiological responses.

[0096] It is intended that structural features of the apparatus in the above detailed description and / or claims can be combined with steps of the method when appropriately replaced by corresponding processes.

[0097] When used, the singular forms "a," "an," and "the" are intended to include the plural (i.e., have the meaning "at least one") unless otherwise stated. It is further understood that the terms "includes," "comprises," "including," and / or "comprising," when used herein, specify the presence of the stated features, integers, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups thereof. When an element is referred to as "connected" or "coupled" to another element, it will also be understood that although it may be directly connected or coupled to the other element, unless otherwise specified, intervening elements may also be present. Furthermore, the terms "connected" or "coupled," when used herein, may include wirelessly connected or coupled. The term "and / or," when used herein, includes any and all combinations of one or more associated listed items. The steps of any disclosed method are not limited to the precise order described herein unless otherwise specified.

[0098] It should be appreciated that throughout this specification, references to features included as "one embodiment" or "one embodiment" or "one aspect" or "may" mean that the particular features, structures, or characteristics described in connection with an embodiment are included in at least one embodiment of the present disclosure. Furthermore, particular features, structures, or characteristics may be combined as suitable in one or more embodiments of the present disclosure. The above description is provided to enable those 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 general principles defined herein may be applied to other aspects.

[0099] The claims are not intended to be limited to the embodiments set forth herein, but are intended to accord the full scope consistent with the language of the claims, wherein reference to an element in the singular is not intended to mean "only one," unless otherwise specified, but rather "one or more." Unless otherwise specified, the term "some" refers to one or more.

[0100] Therefore, the scope should be judged in terms of the appended claims.

[0101] References [1]Roeser, RJ, Valente, M., & Hosford-Dunn, H. (2007). Audiology: Diagnosis (Second edition). Thieme. [2]Don, M., Kwong, B., & Tanaka, C. (2005). A Diagnostic test for Meniere's disease and cochlear hydrops: Impaired high-pass noise masking of auditory brainstem responses. Otology & Neurotology, 26, 711-722. [3]Elberling, C., & Don, M. (2008). Auditory brainstem responses to a chirp stimulus designed from derived-band latencies in normal-hearing subjects. The Journal of the Acoustical Society of America, 124(5), 3022. https: / / doi.org / 10.1121 / 1.2990709 [4]Elberling, C., & Don, M. (2010). A direct approach for the design of chirp stimuli used for the recording of auditory brainstem responses. The Journal of the Acoustical Society of America, 128(5), 2955. https: / / doi.org / 10.1121 / 1.3489111

Claims

1. 1. A system for diagnosing cochlear hydrops in a human or animal, comprising: an acoustic stimulus generating unit including a stimulus generator and an output transducer, the acoustic stimulus generating unit configured to provide sound stimuli from the stimulus generator via the output transducer to at least one ear of the human or animal, the acoustic stimulus generating unit configured to provide a plurality of sound stimuli including at least a first click sound stimulus and at least a first chirp sound stimulus, or at least a first and a second chirp sound stimuli; a recording unit configured to record one or more auditory electrophysiological responses of said person or animal in response to one or more of said sound stimuli being provided by said acoustic stimulus generating unit to at least one of said ears of said person or animal; a diagnostic unit configured to process the recorded auditory electrophysiological responses, the diagnostic unit being further configured to compare response characteristics of the recorded one or more auditory electrophysiological responses based on the at least first click stimulus and the at least first chirp stimulus or based on the at least first and second chirp stimuli, the response characteristics comprising wave V amplitudes of the recorded one or more auditory electrophysiological responses; A system including:

2. 2. The system of claim 1, wherein the diagnostic unit configured to compare comprises the diagnostic unit configured to determine a ratio between the response characteristics of each of the recorded one or more auditory electrophysiological responses based on the at least a first click stimulus and the at least a first chirp stimulus, or based on the at least a first and a second chirp stimulus.

3. 3. The system of claim 1, wherein the acoustic stimulus generating unit is configured to provide the at least first click sound stimulus and the at least first chirp sound stimulus, or the at least first and second chirp sound stimuli, at a fixed suprathreshold level.

4. 4. The system of claim 1, wherein the amplitude of the at least first click sound stimulus and / or the amplitude of the at least first chirp sound stimulus, or the amplitudes of the at least first and second chirp sound stimuli, is varied across a frequency range of the sound stimuli based on a hearing threshold level (HTL) of the person or animal.

5. 5. The system of claim 4, wherein the at least first click sound stimulus and / or the at least first chirp sound stimulus, or the at least first and second chirp sound stimuli, are provided at a fixed sensation level (SL) above the HTL of the person or animal across a frequency range of the sound stimuli.

6. 6. The system of claim 1, wherein the acoustic stimulus generating unit is configured to provide a plurality of click and / or chirp stimuli in an alternating manner to at least one ear of the human or animal.

7. 7. The system of claim 1, wherein the acoustic stimulus generating unit is configured to provide a plurality of click and / or chirp sound stimuli at a plurality of sound pressure levels to at least one ear of the human or animal.

8. 8. The system of claim 1, wherein the diagnostic unit is configured to provide respective averages of response characteristics of the recorded one or more auditory electrophysiological responses based on the at least first click stimulus and the at least first chirp stimulus, respectively, or based on the at least first and second chirp stimuli, respectively.

9. The system of claim 1 , wherein the one or more auditory electrophysiological responses are one or more auditory brainstem responses.

10. 1. A method for recording auditory electrophysiological responses in a human or animal, comprising: - a stimulus generator of the acoustic stimulus generating unit providing sound stimuli comprising at least a first click sound stimulus and at least a first chirp sound stimulus, or at least a first and a second chirp sound stimuli, to at least one ear of the person or animal via an output transducer of the acoustic stimulus generating unit; a recording unit recording one or more auditory electrophysiological responses of said person or animal in response to one or more of said sound stimuli being provided by said acoustic stimulus generating unit to at least one of said ears of said person or animal; - processing, by a processing unit, the recorded one or more auditory electrophysiological responses based on the at least first click stimulus and the at least first chirp stimulus or based on the at least first and second chirp stimulus; Including, The method, wherein processing the one or more recorded auditory electrophysiological responses comprises comparing response characteristics of the one or more recorded auditory electrophysiological responses based on the at least a first click stimulus and the at least a first chirp stimulus, or based on the at least a first and a second chirp stimulus, wherein the response characteristics include wave V amplitudes of the one or more recorded auditory electrophysiological responses.

11. A method as described in claim 10, wherein the providing step includes a step in which the acoustic stimulus generating unit varies the amplitude of the at least first click sound stimulus and / or the amplitude of the at least first chirp sound stimulus, or the amplitudes of the at least first and second chirp sound stimuli, across the frequency range of the sound stimuli based on a hearing threshold level (HTL) of at least one ear of the human or animal, wherein the hearing threshold level (HTL) is determined based on an audiogram measured in the human or animal prior to the method.

12. 11. The method of claim 10, wherein the comparing step comprises determining a ratio between the response characteristics of each of the recorded one or more auditory electrophysiological responses based on the at least a first click stimulus and the at least a first chirp stimulus, or based on the at least a first and a second chirp stimulus.

13. 13. The method of any one of claims 10 to 12, wherein the acoustic stimulus generating unit provides a plurality of click and / or chirp stimuli in an alternating manner to at least one ear of the human or animal.

14. 14. The method of claim 10, wherein the sound stimulus has a specific frequency bandwidth, presentation rate, amplitude, and spectral content.

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