Hearing detection method and apparatus, electronic device, and storage medium
By using equal loudness curves to adjust the volume during hearing tests, the problems of multiple testing steps and low efficiency in existing technologies are solved, and a faster hearing test process is achieved.
Patent Information
- Application Number
- CN202210951404.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-08-09
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2042-08-09
AI Technical Summary
Existing hearing testing methods are inefficient, involve many steps, and are time-consuming.
Using a volume adjustment relationship based on equal loudness curves, the test audio at the target frequency is output at the initial volume, and the playback volume is adjusted in response to user operations to ultimately determine the hearing threshold.
It improves the speed and efficiency of hearing testing, is more in line with the user's hearing characteristics, and shortens the testing time.
Smart Images

Figure CN115474927B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of audio processing technology, and more specifically, to a hearing detection method, device, electronic device and storage medium. Background Art
[0002] Hearing tests involve delivering a sound source to the ear being tested and observing the response to the sound stimulus to understand the user's hearing function. Currently, hearing tests can be performed by playing the test audio to the user through an audio playback device, and the hearing test results are obtained based on the user's feedback on the test audio. However, these hearing test methods suffer from low detection efficiency. Summary of the Invention
[0003] This application proposes a hearing detection method, device, electronic device and storage medium, which can improve the efficiency of hearing detection.
[0004] In a first aspect, an embodiment of the present application provides a hearing detection method, which is applied to an electronic device, and the method includes: outputting a test audio of a target frequency at an initial volume; in response to a user operation, adjusting the playback volume of the test audio based on a volume adjustment relationship corresponding to the target frequency, wherein the volume adjustment relationship is determined based on an equal loudness curve; in response to a first confirmation instruction, determining the current playback volume of the test audio, and using the current playback volume as the hearing threshold corresponding to the target frequency.
[0005] In a second aspect, an embodiment of the present application provides a hearing detection device, which is applied to an electronic device, and the device includes: an audio output module, a volume adjustment module, and a hearing threshold acquisition module, wherein the audio output module is used to output the test audio of the target frequency at an initial volume; the volume adjustment module is used to adjust the playback volume of the test audio based on the volume adjustment relationship corresponding to the target frequency in response to user operation, wherein the volume adjustment relationship is determined based on the equal loudness curve; the hearing threshold acquisition module is used to determine the current playback volume of the test audio in response to a first confirmation instruction, and use the current playback volume as the hearing threshold corresponding to the target frequency.
[0006] In a third aspect, an embodiment of the present application provides an electronic device comprising: one or more processors; a memory; and one or more applications, wherein the one or more applications are stored in the memory and configured to be executed by the one or more processors, and the one or more applications are configured to execute the hearing detection method provided in the first aspect above.
[0007] In a fourth aspect, an embodiment of the present application provides a computer-readable storage medium, in which a program code is stored. The program code can be called by a processor to execute the hearing detection method provided in the first aspect above.
[0008] In a fifth aspect, an embodiment of the present application provides a computer program product, including a computer program, which, when executed by a processor, implements the hearing detection method provided in the first aspect above.
[0009] The solution provided by this application outputs test audio at a target frequency at an initial volume. In response to user input, the playback volume of the test audio is adjusted based on a volume adjustment relationship corresponding to the target frequency, and this volume adjustment relationship is determined based on an equal loudness curve. In response to a first confirmation instruction, the current playback volume of the test audio is determined and used as the hearing threshold corresponding to the target frequency. Because the volume adjustment relationship for adjusting the volume when playing the test audio is based on an equal loudness curve, it better conforms to the user's auditory characteristics, thereby speeding up the hearing test. BRIEF DESCRIPTION OF THE DRAWINGS
[0010] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For those skilled in the art, other drawings can be obtained based on these drawings without creative work.
[0011] Figure 1 A schematic diagram showing an application scenario provided by an embodiment of the present application is shown.
[0012] Figure 2 Another schematic diagram of an application scenario provided by an embodiment of the present application is shown.
[0013] Figure 3 Another schematic diagram of an application scenario provided by an embodiment of the present application is shown.
[0014] Figure 4 A flow chart of a hearing detection method according to an embodiment of the present application is shown.
[0015] Figure 5 A schematic diagram of equal loudness curves provided in an embodiment of the present application is shown.
[0016] Figure 6 A flow chart of a hearing detection method according to another embodiment of the present application is shown.
[0017] Figure 7 A schematic diagram of an interface provided in an embodiment of the present application is shown.
[0018] Figure 8 A flow chart of a hearing detection method according to yet another embodiment of the present application is shown.
[0019] Figure 9 A flow chart of a hearing detection method according to another embodiment of the present application is shown.
[0020] Figure 10 Another interface schematic diagram provided in an embodiment of the present application is shown.
[0021] Figure 11 A flow chart of a hearing detection method according to yet another embodiment of the present application is shown.
[0022] Figure 12 A schematic diagram showing the principle of hearing compensation provided by an embodiment of the present application is shown.
[0023] Figure 13 The figure shows the spectrum response diagram of the hearing compensation provided by the embodiment of the present application.
[0024] Figure 14 A block diagram of a hearing detection device according to an embodiment of the present application is shown.
[0025] Figure 15 4 is a block diagram of an electronic device for executing the hearing detection method according to an embodiment of the present application.
[0026] Figure 16 It is a storage unit in an embodiment of the present application for storing or carrying program codes for implementing the hearing detection method in accordance with an embodiment of the present application. DETAILED DESCRIPTION
[0027] In order to enable those skilled in the art to better understand the solution of the present application, the technical solution in the embodiments of the present application will be clearly and completely described below in conjunction with the drawings in the embodiments of the present application.
[0028] At present, the proportion of people with different hearing impairments is increasing. Therefore, hearing compensation is also widely used, for example, using hearing aids and True Wireless Stereo (TWS) headphones for hearing compensation. Its main function is to enhance and amplify the external environmental sound signals for the frequency band of personal hearing impairment, and does not compensate for music signals or call signals. Generally speaking, the principle of hearing detection and compensation is to detect the user's hearing threshold (such as the hearing threshold) to obtain the user's hearing impairment and then determine the sound compensation signal, so that the user can clearly hear the sound details and the sounds that were originally inaudible due to hearing impairment.
[0029] Hearing compensation needs to test the hearing condition of the user, and the main solution in the market is to store the pure tone signal of the hearing test at a fixed reference volume in the Bluetooth earphone, connect the Bluetooth earphone and the mobile device through Bluetooth, install an application program that can control the hearing detection interaction protocol in the mobile device, perform hearing test and interaction through the Bluetooth private protocol, then calculate the hearing compensation filter according to the hearing detection result through the hearing compensation algorithm, and finally send the hearing compensation filter to the earphone end through the Bluetooth private protocol and apply it to the music path hearing compensation.
[0030] In the related art, when performing hearing detection, the left ear and the right ear are usually tested respectively, that is, the hearing state of one side is tested first and then the hearing state of the other side is tested, and the same reference volume is used to test the initial volume of each frequency point of the hearing detection. However, the test steps in the process of hearing detection are too many and the efficiency is low.
[0031] To solve the above problems, the inventors propose the hearing detection method, device, electronic device and storage medium provided in the embodiments of the present application. In the process of hearing detection, the volume adjustment relationship for adjusting the volume when playing the test audio is determined based on the equal loudness curve (also referred to as the equal response curve), so it is more in line with the hearing characteristics of the user, thereby improving the speed of hearing detection. The specific hearing detection method is described in detail in subsequent embodiments.
[0032] First, the scenario related to the embodiments of the present application is introduced.
[0033] As shown in Figure 1 The scenario shown in Figure 1 includes an electronic device 100 and a wireless earphone 200, wherein the electronic device 100 is connected with the wireless earphone 200, and the wireless earphone 200 is in the wearing state shown in the figure. The wireless earphone 200 can include a first wireless earphone and a second wireless earphone, and the first wireless earphone and the second wireless earphone can be connected with the electronic device, so that when performing hearing detection, the electronic device can output test audio to the first wireless earphone and the second wireless earphone to detect the hearing of the left ear and the right ear of the user.
[0034] As an implementation manner, please refer to Figure 2, the electronic device 100 is connected to the first wireless headset 210, and the first wireless headset 210 is connected to the second wireless headset 220. Optionally, the first wireless headset 210 is a relay headset for the second wireless headset 220 and the electronic device 100. The first wireless headset 210 can serve as a master headset, and the second wireless headset 220 can serve as a slave headset. In this embodiment, when data is transmitted between the second wireless headset 220 and the electronic device 100, the first wireless headset 210 is used as a relay headset for data transmission, that is, the data transmitted between the two is transmitted through the first wireless headset 210; optionally, the second wireless headset 220 can also obtain data transmitted from the electronic device 100 to the second wireless headset 220 by monitoring the communication between the electronic device 100 and the first wireless headset 210.
[0035] As another implementation, see Figure 3 The electronic device 100 can be connected to the first wireless headset 210 and the second wireless headset 220 at the same time, and both the first wireless headset 210 and the second wireless headset 220 can directly transmit data with the electronic device 100, for example, using the LE (Low Energy) Audio low-power audio Bluetooth communication protocol.
[0036] The hearing detection method provided in the embodiments of the present application is described in detail below with reference to the accompanying drawings.
[0037] See also Figure 4 , Figure 4 FIG1 shows a flow chart of a hearing detection method provided by an embodiment of the present application. In a specific embodiment, the hearing detection method is applied to Figure 14 The hearing detection device 400 and the electronic device 100 equipped with the hearing detection device 400 are shown. Figure 15 ). The following will take electronic devices as an example to illustrate the specific process of this embodiment. Of course, it can be understood that the electronic devices used in this embodiment can be smart phones, tablet computers, smart watches, e-books, etc., which are not limited here. Figure 4 The process shown in FIG. 1 is described in detail. The hearing detection method may specifically include the following steps:
[0038] Step S110: Output the test audio at the target frequency at an initial volume.
[0039] The target frequency is any one of the multiple frequencies to be tested for hearing, which may be pre-set frequencies. It is understood that the human ear has different sensitivities at different frequencies, and therefore, the user's hearing can be tested at corresponding frequencies. Therefore, the user's hearing can be tested at the target frequency by playing test audio at the target frequency.
[0040] In some embodiments, the electronic device can play test audio at an initial volume and an initial target frequency to the wireless headset, thereby playing the test audio through the wireless headset, and then determining the hearing test result based on the user's feedback on the played test audio. For example, if the hearing test is currently being performed on the left ear of the person, the test audio can be played through the wireless headset corresponding to the left ear; if the hearing test is currently being performed on the right ear of the person, the test audio can be played through the wireless headset corresponding to the right ear. Of course, the wireless headsets corresponding to the left and right ears can also play the test audio at the same time to perform a hearing test on both ears.
[0041] In some embodiments, the electronic device may pre-store test audio at various frequencies to be tested. The test audio may be pure tone audio at each frequency. When testing a user's hearing at a target frequency, the test audio at the target frequency may be obtained from the pre-stored test audio at various frequencies and output as the initial audio.
[0042] Optionally, the multiple frequency points to be tested can be distributed in various frequency bands, that is, the multiple frequency bands can be distributed in a low frequency band, a mid-low frequency band, a mid-high frequency band, and a high frequency band. For example, the multiple frequency points can be distinguished as 500 Hz (Hertz), 1000 Hz, 2000 Hz, 4000 Hz, 6000 Hz, and 8000 Hz. The frequency points to be tested can cover the frequency range audible to the human ear. Of course, the above frequency points are only examples, and the specific values of the frequency points to be tested are not limited.
[0043] In some embodiments, the above initial volume may be a preset volume, such as 20 dB HL (decibels), 30 dB HL, etc. Optionally, the initial volume may be set based on the hearing threshold of the target frequency point obtained from historical hearing tests of the user currently undergoing the hearing test. For example, the initial volume may be the average of the hearing thresholds of the target frequency point obtained from historical tests, or the initial volume may be the hearing threshold of the target frequency point obtained from the most recent hearing test. Thus, because the initial volume is determined based on the hearing thresholds from historical tests, the user can easily detect the hearing threshold after a small amount of volume adjustment operations, thereby quickly completing the hearing test.
[0044] Optionally, the electronic device can determine the initial volume according to a historical volume for audio playback using the wireless earphone. In this case, the electronic device can obtain a volume at which audio at the target frequency point is historically output, and determine the initial volume according to the obtained volume. For example, an average of the volume at which audio at the target frequency point is historically output can be obtained, and the average is adjusted downward by a target volume value (such as 10 dB HL, 20 dB HL, etc.) to obtain the initial volume. Understandably, when a user plays audio through a wireless earphone in daily life, the volume that the user habitually uses is often related to the user's hearing, and therefore, when the initial volume is determined based on the volume at which audio at the target frequency point is historically output, and the test audio is played at the initial volume, the user can determine the hearing test result through a small amount of volume adjustment operation, thereby improving the speed of hearing test.
[0045] Step S120: In response to a user operation, adjusting the playback volume of the test audio based on a volume adjustment relationship corresponding to the target frequency point, wherein the volume adjustment relationship is determined based on an equal loudness curve.
[0046] After the test audio at the initial volume is output at the target frequency point, the input user operation can be detected, and when the input user operation is detected, the playback volume of the test audio is adjusted based on the volume adjustment relationship corresponding to the target frequency point, and then the hearing test result is determined according to the user's feedback. The user operation can be an operation on a control for adjusting the volume in the display interface, or other touch operations in the display interface, or an operation input through a physical button (such as a physical volume adjustment button) of the electronic device, and the specific user operation is not limited.
[0047] In some embodiments of the present application, the volume adjustment relationship is used to determine the adjusted playback volume, that is, the adjustment range of the current playback volume, and the volume adjustment relationship is not a linear adjustment relationship, that is, the difference between adjacent volume values in the volume adjustment relationship is not fixed, and the volume adjustment relationship is determined based on an equal loudness curve. The determined volume adjustment relationship is a non-linear adjustment relationship, that is, the difference between adjacent volume values in the volume adjustment relationship is not uniform. Understandably, since the sensitivity of human hearing ability to different frequencies and different sound pressures at the same frequency point is different, the volume adjustment relationship determined based on the equal loudness curve can be more consistent with the hearing characteristics of the human ear, so that the playback volume adjusted through the adjustment operation is also more consistent with the hearing characteristics, and thus the hearing threshold can be determined more quickly.
[0048] An example of an equal loudness curve refers to a cluster of curves obtained by subjective determination of the subjective loudness of sound (loudness level) being equal. When the loudness of a certain sound is equal to the loudness of a standard sound, the sound intensity level of the standard sound is the loudness level of the sound. An example of an equal loudness curve has a horizontal coordinate of frequency / Hz (or wavelength) and a vertical coordinate of sound pressure level / dB (or sound intensity level). The two equal loudness curves formed by the hearing threshold and the pain threshold are the upper and lower limits of the equal loudness curve. The sound intensity levels (or sound pressure levels) of different wavelengths (or frequencies) corresponding to each curve are different, but the loudness perceived by the human ear is the same. An example of an equal loudness curve in the present application can refer to a standard equal loudness curve, for example, as shown in Figure 5 Figure 5 The GB_T 4963-2007 acoustic standard equal loudness level curve is shown. It can also be obtained based on subjective tests of a large number of people with normal hearing. Of course, it can also be adjusted based on the standard equal loudness curve, and this is not limited.
[0049] In some embodiments, the volume adjustment relationship can include a plurality of adjustable volume values, which are determined based on the equal loudness curve. When the playing volume of the test audio is adjusted in response to the adjustment operation, the volume value to be adjusted to can be determined based on the volume adjustment relationship on the basis of the current playing volume.
[0050] In some possible embodiments, the target frequency point is any of a plurality of preset frequency points (such as preset frequencies) to be tested. Each frequency point has a corresponding volume adjustment relationship. Of course, in some embodiments, the volume adjustment relationship can also include the volume adjustment relationships corresponding to the plurality of preset frequency points to be tested. Each preset frequency point has a plurality of volume values. For example, each preset frequency point corresponds to a plurality of volume levels, and the volume value corresponding to each volume level can be determined based on the equal loudness curve. The volume values corresponding to the same volume level of the plurality of preset frequency points in the volume adjustment relationship can be determined based on the equal loudness curve. For example, the volume values corresponding to the same volume level of the plurality of preset frequency points are different. For example, the loudness of the same volume level of different frequency points can be set to be the same, and the volume value of the level is determined based on the equal loudness curve. That is, the volume value of the same level at different frequencies can be different. For example, the volume value (sound pressure level) corresponding to the same volume level of each preset frequency point is selected from the equal loudness curve, or the volume value (sound pressure level) corresponding to different positions in the sliding bar of each preset frequency point is selected from the equal loudness curve. Further, the different positions can correspond to the different volume levels described above. For example, the volume level (or adjustable volume value) of each frequency point can be determined based on the volume size that can be heard by a person with normal hearing. The more volume levels are set, the more accurate the measured hearing threshold will be.
[0051] It can be understood that the difference between the volume values corresponding to the adjacent volume levels in the volume adjustment relationship of the same preset frequency point is also determined according to the equal loudness curve, and due to the characteristics of the equal loudness curve, the difference between the volume values corresponding to the adjacent volume levels (i.e., the step of the volume value) is not fixed.
[0052] In a possible implementation, the plurality of adjustable volume values determined based on the equal loudness curve can be the sound pressure levels corresponding to the respective loudness levels in the equal loudness curve, that is, the dB SPL corresponding to the respective loudness levels. dB SPL is a physical unit of sound intensity, that is, the real intensity level of sound. In addition, because the sound pressure levels corresponding to the same loudness level at different frequencies in the equal loudness curve are different, the volume adjustment relationship corresponding to each frequency point can be determined based on the equal loudness curve. When detecting the hearing of the user at the target frequency point, the playback volume of the test audio can be adjusted according to the volume adjustment relationship corresponding to the target frequency point.
[0053] In a possible implementation, the electronic device can display, in the display interface, a plurality of selection controls corresponding to the volume levels, the plurality of selection controls corresponding to the volume levels are arranged in order from small to large or from large to small, the volume value corresponding to each volume level is included in the above volume adjustment relationship, and the plurality of volume values corresponding to the volume levels are determined based on the equal loudness curve and change non-linearly. In this manner, the electronic device can respond to the selection operation on the above selection controls, and determine the target volume value corresponding to the selected selection control based on the correspondence between the volume level and the volume value corresponding to the selection control in the volume adjustment relationship, and adjust the playback volume of the test audio to the target volume value.
[0054] Optionally, the electronic device can further display first prompt information in the display interface, the first prompt information being used to prompt the user to select the volume levels in order according to the arrangement order of the volume levels on the basis of the volume level corresponding to the current playback volume, until the user can hear the test audio or just cannot hear the test audio, or until the user cannot hear the test audio or just can hear the test audio. In this way, the user can select the plurality of volume levels in order, and increase or decrease the volume, so as to determine the hearing threshold.
[0055] In another possible implementation, after the electronic device outputs the test audio at the initial volume, the electronic device can adjust the playback volume of the test audio in response to the feedback operation input by the user. In this implementation, the above volume adjustment relationship can include a plurality of volume values arranged in order from large to small or from small to large, the plurality of volume values are determined based on the equal loudness curve and change non-linearly.
[0056] Optionally, the electronic device can, based on the current playback volume and according to the first feedback operation input by the user, increase the playback volume from the current playback volume to a volume value adjacent to the current playback volume in the arrangement order of multiple volume values in the above volume adjustment relationship, wherein the first feedback operation is used to characterize that the user cannot hear the test audio. For example, the multiple volume values in a target frequency point to be detected include: 120dB HL, 116dB HL, 112dB HL, 110dB HL, 108dB HL, 106dB HL, 104dB HL, 102dB HL, 100dB HL, 99dB HL, 98dB HL, 96dB HL, 94dB HL, 91dB HL, 88dB HL, 84dB HL, 80dB HL, 75dB HL, 70dB HL, 64dB HL, 58dB HL, 40dB HL and 0dB HL. If the current playback volume is 80dB HL, the playback volume of the test audio is increased from 80dB HL to 84dB HL. If the current playback volume is 40dB HL, the playback volume of the test audio is increased from 40dB HL to 0dB HL. HL increases to 58dB HL.
[0057] Optionally, the electronic device can decrease the playback volume of the test audio from the current playback volume to a volume value adjacent to the current playback volume in the arrangement order of the plurality of volume values in the volume adjustment relationship according to a second feedback operation input by the user on the basis of the current playback volume, where the second feedback operation is used to represent that the user can hear the test audio. For example, the plurality of volume values in a certain target frequency point to be detected include 120 dB HL, 116 dB HL, 112 dB HL, 110 dB HL, 108 dB HL, 106 dB HL, 104 dB HL, 102 dB HL, 100 dB HL, 99 dB HL, 98 dB HL, 96 dB HL, 94 dB HL, 91 dB HL, 88 dB HL, 84 dB HL, 80 dB HL, 75 dB HL, 70 dB HL, 64 dB HL, 58 dB HL, 40 dB HL, and 0 dB HL. If the current playback volume is 102 dB HL, the playback volume of the test audio is decreased from 102 dB HL to 100 dB HL. If the current playback volume is 64 dB HL, the playback volume of the test audio is decreased from 64 dB HL to 58 dB HL. In yet another possible implementation, the volume adjustment relationship includes a plurality of volume levels arranged in ascending order or descending order, the volume values corresponding to the plurality of volume levels are determined on the basis of the equal loudness curve and change in a non-linear manner. In this implementation, the electronic device can increase the playback volume of the test audio from a volume value corresponding to a current volume level to a volume value corresponding to a volume level adjacent to the current volume level in response to a volume increase operation. The electronic device can also decrease the playback volume of the test audio from a volume value corresponding to a current volume level to a volume value corresponding to a volume level adjacent to the current volume level in response to a volume decrease operation. The volume increase operation can be a touch operation on a control for increasing the volume in the display interface or a touch operation on a physical button for increasing the volume. The volume decrease operation can be a touch operation on a control for decreasing the volume in the display interface or a touch operation on a physical button for decreasing the volume.
[0058] For example, the plurality of volume levels arranged in ascending order include volume level 1, volume level 2, volume level 3, volume level 4, volume level 5, volume level 6, volume level 7, and volume level 8. The current playback volume is a volume value corresponding to volume level 5. If a volume increase operation is detected, the playback volume of the test audio can be increased to a volume value corresponding to volume level 6. If a volume decrease operation is detected, the playback volume of the test audio can be decreased to a volume value corresponding to volume level 4.
[0059] Optionally, the electronic device can also display second prompt information in the display interface, the second prompt information being used to prompt the user to perform a volume decreasing operation on the playing volume of the test audio based on the current playing volume until the user can just hear the test audio or until the user can just not hear the test audio, or to perform a volume increasing operation on the playing volume of the test audio until the user can just not hear the test audio or until the user can just hear the test audio. In this way, the user can adjust the playing volume, and the playing volume of the test audio can be increased or decreased, so as to determine the hearing threshold.
[0060] That is, in some embodiments, the user operation can be an operation of triggering the volume adjustment, and can be various operation forms such as a volume size selection operation, a feedback operation, a sliding operation, and the like.
[0061] Step S130: In response to the first confirmation instruction, determining the current playing volume of the test audio, and taking the current playing volume as the hearing threshold corresponding to the target frequency point.
[0062] In the embodiments of the present application, after the playing volume of the test audio is adjusted according to the input volume adjustment operation, the electronic device can determine the hearing threshold corresponding to the target frequency point, i.e., the hearing threshold of the user at the target frequency point, when detecting the input first confirmation instruction. Specifically, the current playing volume of the test audio can be determined, and the current playing volume can be taken as the hearing threshold corresponding to the target frequency point. For example, the first confirmation instruction is an instruction fed back by the user based on the perception of the played test audio, and the first confirmation instruction is used to indicate that the user is in a state of being able to hear the test audio or in a state of just not being able to hear the test audio, or in a state of not being able to hear the test audio or in a state of just being able to hear the test audio.
[0063] In some embodiments, the first confirmation instruction can be input by the user in the display interface or by the physical button, or can be input by voice, and the specific input manner of the first confirmation instruction can not be limited.
[0064] In a possible implementation, the electronic device displays a first confirmation control of the hearing threshold in the display interface, and if the electronic device detects a confirmation operation on the first confirmation control, it can be determined that the first confirmation instruction is detected, and the current playing volume is taken as the hearing threshold corresponding to the target frequency point. In this way, the user can perform a touch operation on the first confirmation control when the user is in a state of being able to hear the test audio or in a state of just not being able to hear the test audio, or in a state of not being able to hear the test audio or in a state of just being able to hear the test audio. Thus, the electronic device can determine that the current playing volume of the test audio when the touch operation is detected is the hearing threshold corresponding to the target frequency point.
[0065] In another possible implementation, if the volume adjustment operation for playing the test audio is a continuous operation, and the playing volume of the test audio is continuously adjusted, the electronic device can determine that the first confirmation instruction is detected when the volume adjustment operation ends, and take the current playing volume as the hearing threshold value corresponding to the target frequency point. For example, in a subsequent embodiment, the playing volume is adjusted according to a sliding operation on a sliding bar, and the sliding operation is continuous sliding. When an operation of releasing the sliding bar is detected (i.e., a lifting event is detected in the process of the sliding operation), it can be determined that the first confirmation instruction is detected, and the current playing volume is taken as the hearing threshold value corresponding to the target frequency point. For another example, the volume adjustment operation is a continuous pressing operation on a volume adjustment control (a control for increasing or decreasing the playing volume). In this case, the playing volume of the test audio can be continuously adjusted according to the pressing operation (for example, the playing volume is increased or decreased once every 1 second when the pressing operation lasts for 1 second). When the pressing operation ends (i.e., a lifting event is detected in the process of the pressing operation), it can be determined that the first confirmation instruction is detected, and the current playing volume is taken as the hearing threshold value corresponding to the target frequency point. Thus, in this implementation, if the user changes from a state of being able to hear the test audio to a state of just not being able to hear the test audio, or from a state of not being able to hear the test audio to a state of just being able to hear the test audio, the volume adjustment operation can end, so that the electronic device can determine the volume threshold value of the target frequency point.
[0066] Optionally, in this implementation, the electronic device can also display a second confirmation control in the display interface. After detecting that the continuous volume adjustment operation ends, the electronic device can determine that the first confirmation instruction is detected and take the current playing volume as the hearing threshold value corresponding to the target frequency point in response to a touch operation on the second confirmation control. Taking the sliding bar as an example, the user releases the operation on the sliding bar, and the user manipulates the second confirmation control, for example, clicks the next step control. The volume value corresponding to the position on the sliding bar at the time when the user releases the operation is taken as the hearing threshold value of the user at the frequency point. Thus, in this implementation, the touch operation on the second confirmation control is used as the trigger to input the first confirmation instruction after the continuous volume adjustment operation ends, so that the situation of user misoperation (for example, the user mistakenly ends the volume adjustment operation, and the current playing volume is incorrectly taken as the volume threshold value of the target frequency point) can be avoided, and the volume threshold value can be more accurately determined.
[0067] The hearing detection method provided in the embodiments of the present application outputs test audio of a target frequency point at an initial volume, adjusts the playing volume of the test audio based on a volume adjustment relationship corresponding to the target frequency point in response to a user operation, and the volume adjustment relationship is determined based on an equal loudness curve. In response to a first confirmation instruction, the current playing volume of the test audio is determined and taken as the hearing threshold corresponding to the target frequency point. Since the volume adjustment relationship for adjusting the volume when playing the test audio is determined based on the equal loudness curve, it is more in line with the hearing characteristics of the user, thereby improving the speed of hearing detection.
[0068] Referring to Figure 6 , Figure 6 A flowchart of a hearing detection method provided in another embodiment of the present application is shown. The hearing detection method is applied to the electronic device described above, and will be described in detail below with reference to the flowchart shown in Figure 6 The hearing detection method can specifically include the following steps:
[0069] Step S210: output test audio of a target frequency point at an initial volume.
[0070] In the embodiments of the present application, step S210 can refer to the content of other embodiments, which will not be described here again.
[0071] Step S220: in response to a touch operation on the target control in the display interface, adjust the playing volume of the test audio based on a volume adjustment relationship corresponding to the target frequency point, wherein the volume adjustment relationship is determined based on an equal loudness curve.
[0072] In the embodiments of the present application, when detecting the hearing of the user, the target control for adjusting the playing volume of the test audio can be displayed in the display interface. When detecting the touch operation on the sliding control, the playing volume of the test audio can be adjusted based on the volume adjustment relationship corresponding to the target frequency point in response to the touch operation.
[0073] In some embodiments, the target prompt information for prompting the user to perform the touch operation on the target control to adjust the playing volume of the test audio is also displayed in the display interface, until the user can hear the test audio to just cannot hear the test audio, or performs the volume increasing operation on the playing volume of the test audio until the user cannot hear the test audio to just can hear the test audio. In this way, the user can perform the touch operation on the target control to increase or decrease the playing volume of the test audio, thereby determining the hearing threshold.
[0074] In some embodiments, the target control can be a sliding bar, and the electronic device can adjust the playing volume of the test audio based on the above volume adjustment relationship in response to a control operation on the sliding bar. Optionally, the volume adjustment relationship includes a first correspondence relationship between a plurality of volume levels and a plurality of positions arranged in sequence on the sliding bar, and a second correspondence relationship between each of the plurality of volume levels and a volume value, the volume values corresponding to the plurality of volume levels being determined based on an equal loudness curve and increasing or decreasing in sequence in a non-linear manner. Optionally, the volume adjustment relationship can also include a third correspondence relationship between the plurality of positions arranged in sequence on the sliding bar and the volume values, the volume values corresponding to the plurality of positions increasing or decreasing in sequence in a non-linear manner. The shape of the sliding bar can not be limited, for example, it can be rectangular or arc-shaped. For example, the electronic device can also prompt the user to "drag the volume bar to a position where the prompt sound is just inaudible".
[0075] In a possible implementation, the electronic device can determine, in response to a first selection operation on a first target position on the sliding bar, a first volume level corresponding to the first target position based on the first correspondence relationship, and adjust the playing volume of the test audio to a volume value corresponding to the first volume level based on the second correspondence relationship, when detecting the first selection operation on the first target position on the sliding bar.
[0076] In a possible implementation, the electronic device can determine, in response to a first selection operation on a first target position on the sliding bar, a volume value corresponding to the first target position based on the third correspondence relationship, when detecting the first selection operation on the first target position on the sliding bar.
[0077] In this implementation, the plurality of positions on the sliding bar can be uniformly distributed (i.e., the distance between adjacent positions is the same) or non-uniformly distributed. The volume values corresponding to the volume levels corresponding to the plurality of positions on the sliding bar are determined based on an equal loudness curve and increase or decrease in sequence in a non-linear manner.
[0078] Optionally, the above first selection operation can be a touch operation on the target position on the sliding bar, such as a click operation, a press operation with a press condition satisfying a preset press condition, etc. Through this implementation, the user can adjust the playing volume of the test audio by performing the above first selection operation on different positions on the sliding bar, and the volume values corresponding to the plurality of volume levels are determined based on an equal loudness curve, so that the playing volume corresponding to the hearing threshold can be quickly adjusted, and thus the hearing threshold can be quickly determined.
[0079] Optionally, the first selection operation can be a sliding operation on a sliding block on the sliding bar, and different positions on the sliding bar are selected by responding to the sliding operation.
[0080] In this embodiment, the interval distance between each two adjacent positions of the plurality of positions on the sliding bar can be the same. According to the above sliding operation, the playing volume of the test audio can be controlled to increase or decrease on the basis of the current playing volume, and according to the sliding distance of the sliding block in the sliding bar, the volume adjustment of different adjustment amplitudes can be performed. Since the second correspondence in the above volume adjustment relationship is determined based on the equal loudness curve, and the volume values corresponding to the plurality of volume levels increase or decrease nonlinearly, and the interval distance between each two adjacent positions of the plurality of positions on the sliding bar is the same (i.e., uniformly distributed), therefore, when the same sliding distance is performed on the sliding block, the change amplitude of the adjusted volume is not fixed, which can better meet the hearing habits of the user, and thus in this way of adjusting the volume based on the sliding bar, the user can quickly adjust the sliding operation of the sliding block in the sliding bar to the playing volume corresponding to the hearing threshold, so as to quickly determine the hearing threshold.
[0081] In other embodiments, the above target control can also be an indication block, and when the sliding operation on the indication block is detected, the playing volume of the test audio can be adjusted according to the sliding direction and sliding distance of the sliding operation on the indication block, and the volume adjustment relationship. Among them, the sliding direction corresponds to increasing the playing volume or decreasing the playing volume, for example, if the sliding direction is a first direction, the playing volume of the test audio is increased, and if the sliding direction is a second direction, the playing volume of the test audio is decreased. The first direction is opposite to the second direction; the volume adjustment relationship can include a plurality of volume levels that can be adjusted from small to large, each volume level corresponds to a playing volume, and the volume adjustment relationship can also include a correspondence between the sliding distance and the adjustment number of the volume level. The adjustment number of the volume level and the sliding distance are positively correlated, and the volume values corresponding to the plurality of volume levels are determined based on the equal loudness curve. Based on this, the adjustment number of the volume level on the basis of the current volume level can be determined according to the sliding distance, for example, the volume level includes volume level 1, volume level 2, volume level 3, …, volume level 11 and volume level 12, if the current volume level is volume level 5, the adjustment number of the volume level corresponding to the sliding distance is 3, and the playing volume of the test audio is increased based on the sliding direction. The volume level can be increased to volume level 8, that is, the playing volume of the test audio is increased to the playing volume corresponding to the volume level 8.
[0082] In some embodiments, the above target control can be a wheel control for volume adjustment, and upon detecting an operation on the wheel control, the playing volume of the test audio can be adjusted based on the operation on the wheel control. The operation on the wheel control can include one or more of a click operation, a press operation, a sliding operation, a rotating operation, etc. For example, as shown in Figure 7 Figure 7 A schematic diagram of a wheel control A2 displayed in a display interface A1 is shown, Figure 7 The wheel control A2 can be used to adjust the playing volume of the test audio, and the current playing volume can be displayed in the wheel control A2.
[0083] In one possible implementation, the wheel control can include a wheel area and a pointer. The electronic device can display the wheel control in the display interface, display a plurality of scale values around the wheel area, and display the pointer at a specified position, each of the plurality of scale values corresponding to one of the playing volume values that can be adjusted, and the pointer being used to indicate the currently selected volume value. The plurality of scale values are arranged in ascending or descending order, and the plurality of adjustable volume values are determined based on an equal loudness curve.
[0084] In this implementation, the wheel control can include a pointer for selecting a volume value, and the pointer is used to indicate the currently selected volume value. In addition, the scale values for indicating the volume values can be displayed outside the wheel area of the wheel control and distributed around the wheel area, each scale value corresponding to a volume value, so that the user can rotate the wheel area or rotate the pointer to different positions to select different volume values. As one way, to ensure aesthetics, the plurality of scale values can be evenly distributed outside the wheel area in ascending or descending order and along the circumference corresponding to the wheel area. As another way, the plurality of scale values can also be randomly distributed outside the wheel area and along the circumference corresponding to the wheel area.
[0085] In the above embodiments, the volume values corresponding to the plurality of volume levels match the hearing range of the user. Specifically, the volume values corresponding to the plurality of volume levels can cover the audible range of a human being.
[0086] Optionally, the volume values corresponding to the plurality of volume levels and the volume values corresponding to the plurality of positions include at least part of the volume values of at least one of the following groups of volume values:
[0087] First set of volume values: 125 dB HL, 120 dB HL, 114.5 dB HL, 112.5 dB HL, 110.5 dB HL, 108.5 dB HL, 104.5 dB HL, 103.5 dB HL, 102.5 dB HL, 100 dB HL, 95.5 dB HL, 93 dB HL, 84.5 dB HL, 78.5 dB HL, 77 dB HL, 69.5 dB HL, 63 dB HL, 45 dB HL, and 0 dB HL;
[0088] Second set of volume values: 120 dB HL, 116 dB HL, 110 dB HL, 108 dB HL, 106 dB HL, 104 dB HL, 100 dB HL, 99 dB HL, 98 dB HL, 96 dB HL, 91 dB HL, 88 dB HL, 80 dB HL, 75 dB HL, 70 dB HL, 65 dB HL, 58 dB HL, 40 dB HL, and 0 dB HL;
[0089] Third set of volume values: 122 dB HL, 118 dB HL, 112 dB HL, 110 dB HL, 108 dB HL, 106 dB HL, 102 dB HL, 101 dB HL, 100 dB HL, 98 dB HL, 93 dB HL, 90 dB HL, 82 dB HL, 77 dB HL, 72 dB HL, 67 dB HL, 60 dB HL, 42 dB HL, and 0 dB HL;
[0090] Fourth set of volume values: 122.5 dB HL, 118.5 dB HL, 112.5 dB HL, 110.5 dB HL, 108.5 dB HL, 106.5 dB HL, 102.5 dB HL, 101.5 dB HL, 100.5 dB HL, 98.5 dB HL, 93.5 dB HL, 90.5 dB HL, 81.5 dB HL, 77.5 dB HL, 72.5 dB HL, 67.5 dB HL, 60.5 dB HL, 42.5 dB HL, and 0 dB HL;
[0091] The fifth group of volume values: 128 dB HL, 124 dB HL, 119 dB HL, 116 dB HL, 114.5 dB HL, 112 dB HL, 109 dB HL, 107.5 dB HL, 106 dB HL, 104.5 dB HL, 99.5 dB HL, 96.5 dB HL, 87.5 dB HL, 83.5 dB HL, 78.5 dB HL, 73.5 dB HL, 66.5 dB HL, 48.5 dB HL, and 0 dB HL;
[0092] The sixth group of volume values: 126 dB HL, 122 dB HL, 116 dB HL, 114 dB HL, 112 dB HL, 110 dB HL, 106 dB HL, 105 dB HL, 104 dB HL, 102 dB HL, 97 dB HL, 94 dB HL, 86 dB HL, 81 dB HL, 74 dB HL, 71 dB HL, 64 dB HL, 46 dB HL, and 0 dB HL.
[0093] The above plurality of groups of volume values correspond to different target frequencies, for example, the first group of volume values corresponds to a plurality of volume values of 500 Hz, the second group of volume values corresponds to a plurality of volume values of 1000 Hz, the third group of volume values corresponds to a plurality of volume values of 2000 Hz, the fourth group of volume values corresponds to a plurality of volume values of 4000 Hz, the fifth group of volume values corresponds to a plurality of volume values of 6000 Hz, and the sixth group of volume values corresponds to a plurality of volume values of 8000 Hz. In addition, it should be noted that each volume value in each group of volume values has an adjustable range of -6 dB HL to 6 dB HL, that is, the adjustable range of each volume value is ± 6 dB HL, that is, each volume value can be increased by a maximum of 6 dB HL and decreased by a maximum of 6 dB HL.
[0094] Therefore, the volume values corresponding to the plurality of volume levels and the volume values corresponding to the plurality of positions can cover the hearing range of most people, so as to accurately detect the hearing threshold of the user.
[0095] Of course, the specific form of the target control in the embodiment of the present application can not be limited, for example, it can also be the selection control of the volume level in the previous embodiment, the control for inputting the first feedback operation or the second feedback operation, the control for inputting the volume increase operation or the volume decrease operation, etc.
[0096] In some embodiments, the playing volume of the test audio can also be adjusted in response to the sliding operation of the specified region in the display interface. The specified region can be a blank region in the display interface, and the specific specified region is not limited. Similarly, the playing volume of the test audio can be increased or decreased according to the sliding direction of the sliding operation, and the playing volume to which the test audio is increased or decreased can be determined according to the sliding distance of the sliding operation.
[0097] Step S230: In response to the first confirmation instruction, determining the current playing volume of the test audio, and taking the current playing volume as the hearing threshold corresponding to the target frequency point.
[0098] In the embodiments of the present application, step S230 can refer to the content of other embodiments, which will not be described here.
[0099] The hearing detection method provided in the embodiments of the present application can quickly adjust the playing volume of the test audio to the hearing threshold corresponding to the playing volume based on the equal loudness curve, so that the user can quickly determine the hearing threshold by using the touch operation of the target control.
[0100] Please refer to Figure 8 , Figure 8 The flowchart of the hearing detection method provided in another embodiment of the present application is shown. The hearing detection method is applied to the above-mentioned electronic device, and the following will be described in detail with respect to the flowchart shown in Figure 8 The hearing detection method can specifically include the following steps:
[0101] Step S310: Obtaining the initial volume corresponding to the target frequency point, and outputting the test audio of the target frequency point at the initial volume, wherein the initial volume is determined based on the target boost level corresponding to the minimum hearing level of the target frequency point tested in advance.
[0102] In the embodiments of the present application, when the test audio of the target frequency point is started to be played, the initial volume corresponding to the target frequency point can be obtained, so that the test audio of the target frequency point can be played at the initial volume, and the initial volume is determined based on the target boost level corresponding to the minimum hearing level of the target frequency point tested in advance. Therefore, when the playing volume of the test audio is adjusted on the basis of the initial volume, a small amount of volume adjustment operation can be performed to detect the hearing threshold corresponding to the target frequency point.
[0103] The target boost level corresponding to the above minimum hearing level, i.e., the dB SPL corresponding to 0 dB HL, is a sound intensity unit widely used in the field of audiology. The minimum sound pressure level heard by healthy users aged 18-25 years old in each frequency is set as 0 dB HL, and the conversion between dB HL and dB SPL can be performed. In addition, because the sensitivity of the human ear to sound of different frequencies is different, the dB SPL corresponding to 0 dB HL at different frequencies is different. For example, the conversion relationship between dB HL and dB SPL is shown in the following table:
[0104] Frequency 500Hz 1000Hz 2000Hz 4000Hz 6000Hz 8000Hz dB SPL 11.50 7.00 9.00 9.50 15.50 13.00 dB HL 0 0 0 0 0 0
[0105] In some embodiments, the above initial volume can be the sum of the above target sound pressure level corresponding to the target frequency and a preset volume, that is, the preset volume is increased on the basis of the above target sound pressure level corresponding to the target frequency, so as to obtain the above output volume. Optionally, the preset volume can be 15-25 dB HL, and the specific value of the preset volume can not be limited.
[0106] In a possible implementation, the above preset volume can be a volume obtained by testing a plurality of normal hearing test persons in advance, and the sum of the target sound pressure level corresponding to the above minimum sound pressure level and the preset volume can be an initial volume that can be heard by the test persons. Thus, the preset volume is increased on the basis of the above target sound pressure level, which can meet the hearing level of most users, so that the user can adjust the playback volume of the test audio to the volume corresponding to the hearing threshold through a small amount of volume adjustment operation.
[0107] In a possible implementation, the above preset volume that needs to be increased can be determined according to the historical volume of audio playback using the wireless earphone. For example, the electronic device can obtain the historical volume when the audio of the above target frequency is output, and determine the above preset volume that needs to be increased according to the obtained volume. For example, the above historical volume can be used to determine whether the historical volume is greater than a volume threshold. If it is greater than the volume threshold, it means that the user is used to a larger volume when listening to the audio of the target frequency using the wireless earphone, and thus the first volume can be used as the above preset volume. If it is not greater than the volume threshold, it means that the user is used to a smaller volume when listening to the audio of the target frequency using the wireless earphone, and thus the second volume can be used as the above preset volume, wherein the second volume is smaller than the above first volume. Thus, the test audio is played at the determined above initial volume, which can more quickly detect the hearing threshold of the user.
[0108] In another possible implementation, preset volumes set by different users may be pre-stored. The electronic device can determine the preset volume set by the target user based on the identity information of the target user currently undergoing the hearing test, and determine the initial volume based on the preset volume and the above minimum audible sound intensity level. This approach allows the user to set the preset volume based on their estimated hearing level, so that the determined initial volume can more quickly detect the user's hearing threshold.
[0109] Step S320: In response to a user operation, adjusting the playback volume of the test audio based on a volume adjustment relationship corresponding to the target frequency point, wherein the volume adjustment relationship is determined based on an equal loudness curve.
[0110] Step S330: In response to the first confirmation instruction, determine the current playback volume of the test audio, and use the current playback volume as the hearing threshold corresponding to the target frequency.
[0111] In the embodiment of the present application, step S330 can refer to the contents of other embodiments and will not be repeated here.
[0112] The hearing test method provided in an embodiment of the present application plays a test audio at an initial volume determined based on a target sound pressure level corresponding to the minimum sound pressure level at the target frequency during the hearing test. This allows the user to quickly determine their hearing threshold based on this initial volume. Furthermore, because the volume adjustment relationship for adjusting the test audio during playback is determined based on equal loudness curves, it better conforms to the user's auditory characteristics, thereby speeding up the hearing test.
[0113] See also Figure 9 , Figure 9 A flowchart of a hearing detection method provided by another embodiment of the present application is shown. The hearing detection method is applied to the above electronic device. Figure 9 The process shown in FIG. 1 is described in detail. The hearing detection method may specifically include the following steps:
[0114] Step S410: Output the test audio at the target frequency at an initial volume.
[0115] Step S420: In response to a user operation, adjusting the playback volume of the test audio based on a volume adjustment relationship corresponding to the target frequency point, wherein the volume adjustment relationship is determined based on an equal loudness curve.
[0116] Step S430: In response to the first confirmation instruction, determine the current playback volume of the test audio, and use the current playback volume as the hearing threshold corresponding to the target frequency.
[0117] In the embodiment of the present application, the contents of step S410 to step S430 can refer to the contents of the aforementioned embodiment and will not be repeated here.
[0118] Step S440: determining whether a hearing threshold corresponding to each of the plurality of preset frequency points is obtained.
[0119] In the embodiment of the present application, the target frequency is any one of the multiple preset frequencies to be tested. In other words, the preset frequency is the frequency at which hearing is to be tested. It is understandable that the human ear has different sensitivities at different frequencies, and therefore, the user's hearing can be tested at the corresponding frequency. After obtaining the user's hearing threshold at the target frequency through steps S410 to S430, it is possible to determine whether hearing testing has been completed for all preset frequencies. Therefore, it is possible to determine whether the hearing threshold corresponding to each of the multiple preset frequencies has been obtained, and then determine whether to return to step S410 based on the determination result.
[0120] If not, execute step S450: adjust the target frequency, and return to step S410. If yes, end the process.
[0121] In this embodiment of the present application, if the hearing threshold corresponding to each of the above preset frequencies is not obtained, that is, the hearing test for all preset frequencies is not completed, the target frequency can be adjusted to the preset frequency for which the hearing test is not completed, and the process returns to step S410 to test the hearing threshold at the adjusted target frequency. This process is repeated. If it is determined that the hearing threshold corresponding to each of the above preset frequencies has been obtained, the process can be terminated, at which point the hearing threshold test for all preset frequencies has been completed.
[0122] For example, Figure 10 As shown, when testing the user's left ear hearing, a slider A3 can be displayed on display interface A1. This slider A3 is used to adjust the playback volume of the test audio. Display interface A1 also displays a prompt message, which prompts the user to adjust the volume to a level where the sound is just inaudible. Therefore, the user can operate slider A3 based on the prompt message to adjust the playback volume of the test audio, thereby completing the hearing test at the target frequency. After completing the hearing test at the target frequency and obtaining the hearing threshold of the user's left ear at the target frequency, if the hearing threshold corresponding to each preset frequency is not obtained and a touch operation of the "Next" control A4 is detected, the target frequency can be adjusted to another preset frequency to detect the user's left ear hearing threshold at the other preset frequency. In addition, display interface A1 can display preset frequency indication information A5, which can distinguish between preset frequencies for which hearing thresholds have been obtained and preset frequencies for which hearing thresholds have not been obtained using different color states.
[0123] The hearing detection method provided in the embodiment of the present application, during the process of testing the user's hearing at different frequency points, is more in line with the user's auditory characteristics because the volume adjustment relationship for adjusting the volume when playing the test audio is determined based on the equal loudness curve, thereby improving the speed of the hearing detection.
[0124] See also Figure 11 , Figure 11 A flowchart of a hearing detection method provided by another embodiment of the present application is shown. The hearing detection method is applied to the above electronic device. Figure 11 The process shown in FIG. 1 is described in detail. The hearing detection method may specifically include the following steps:
[0125] Step S510: Outputting a test audio at a target frequency at an initial volume through the wireless earphone corresponding to the ear to be tested.
[0126] In some embodiments, the wireless headset includes a first wireless headset corresponding to the left ear and a second wireless headset corresponding to the right ear. If the hearing test is performed on the left ear, the first wireless headset can output a test audio at a target frequency at an initial volume, and then adjust the volume to determine the hearing threshold of the left ear at the target frequency. If the hearing test is performed on the right ear, the second wireless headset can output a test audio at the target frequency at an initial volume, and then adjust the volume to determine the hearing threshold of the right ear at the target frequency. Of course, the hearing test can also be performed on both ears simultaneously.
[0127] Step S520: In response to a user operation, adjusting the playback volume of the test audio based on a volume adjustment relationship corresponding to the target frequency point, wherein the volume adjustment relationship is determined based on an equal loudness curve.
[0128] Step S530: In response to the first confirmation instruction, determine the current playback volume of the test audio, and use the current playback volume as the hearing threshold corresponding to the target frequency.
[0129] In the embodiment of the present application, the contents of step S510 to step S530 can refer to the contents of the aforementioned embodiment and will not be repeated here.
[0130] In some embodiments, steps S510 to S530 may be used to test the hearing threshold of one of the user's ears at the target frequency. The hearing threshold obtained is the first hearing threshold of the one of the two ears at the target frequency. After the first hearing threshold of the one of the two ears at the target frequency is tested, the initial volume may be updated to the obtained hearing threshold, and the process returns to the step of outputting the test audio at the target frequency at the initial volume. Steps S510 to S530 are repeated to obtain the second hearing threshold of the other ear at the target frequency. For example, when performing a hearing threshold test on the left ear at a target frequency, the test audio of the target frequency is played at an initial volume through the first wireless headset above, and the volume of the test audio played by the first wireless headset is adjusted in response to the user operation. After the first confirmation instruction is detected, the current playback volume is used as the hearing threshold of the left ear at the target frequency; when performing a hearing threshold test on a young child at a target frequency, the test audio of the target frequency is played at an initial volume through the second wireless headset above, and the volume of the test audio played by the second wireless headset is adjusted in response to the user operation. After the first confirmation instruction is detected, the current playback volume is used as the hearing threshold of the right ear at the target frequency.
[0131] It can be understood that this embodiment can also be combined with the method of detecting the hearing thresholds of multiple preset frequencies in the aforementioned embodiment. That is, the above steps S510 to S530 can be used to complete the detection of the hearing threshold of one ear at each preset frequency, and the hearing threshold of the ear at each preset frequency is used as the initial volume of the test audio output when detecting the other ear at each preset frequency, thereby alternately detecting the hearing thresholds of both ears and improving the efficiency of hearing detection.
[0132] Optionally, the target frequency can be set to a first preset frequency, and steps S510 to S530 are used to detect the hearing threshold of the left ear at the first preset frequency. After obtaining the hearing threshold of the left ear at the first preset frequency, the hearing threshold is used as the initial volume and steps S510 to S530 are repeated to complete the detection of the hearing threshold of the right ear at the first preset frequency. Then, the target frequency is adjusted to a second preset frequency, and steps S510 to S530 are used to obtain the hearing threshold of the right ear at the second preset frequency. The obtained hearing threshold is used as the initial volume and steps S510 to S530 are repeated to complete the detection of the hearing threshold of the left ear at the second preset frequency. This process is repeated to alternately detect the hearing thresholds of the left and right ears at each preset frequency.
[0133] Optionally, after the hearing threshold of the left ear at each preset frequency point is obtained by completing the detection of the hearing threshold of the left ear at each preset frequency point, the hearing threshold of the right ear at each preset frequency point is detected, and when the detection of the hearing threshold of the right ear at each preset frequency point is performed, the hearing threshold of the left ear at each preset frequency point is used as an initial volume, and steps S510 to S530 are performed to obtain the hearing threshold of the right ear at each preset frequency point.
[0134] Step S540: performing audio compensation on the audio at the target frequency point in the to-be-played audio based on the hearing threshold.
[0135] In the embodiments of the present application, after the above hearing threshold is obtained, the to-be-played audio can be compensated based on the detected hearing threshold when the audio is played, so that the user can clearly hear the sound details and the sound that cannot be heard due to hearing impairment.
[0136] In some embodiments, when the to-be-played audio is compensated, it can be implemented based on a plurality of infinite impulse response (IIR) digital filters. Specifically, a plurality of IIR digital filters can be determined according to the obtained hearing threshold of each preset frequency point, and the to-be-played audio is compensated based on the obtained IIR digital filters. Optionally, the digital filter can be a 2-order IIR digital filter. The plurality of IIR digital filters can correspond to audio content of different frequency bands respectively, each IIR digital filter is used to compensate the audio content of the corresponding frequency band, and the above hearing threshold can be mapped to the digital filter corresponding to the frequency band to which the target frequency point belongs.
[0137] In a possible implementation, the plurality of IIR digital filters can include a first IIR digital filter, a second IIR digital filter, a third IIR digital filter, a fourth IIR digital filter, and a fifth IIR digital filter, the first IIR digital filter being configured to compensate for audio in a low frequency band, the second IIR digital filter, the third IIR digital filter, and the fourth IIR digital filter being configured to compensate for audio in different sub-bands in a middle frequency band, and the fifth IIR digital filter being configured to compensate for audio in a high frequency band. The filter coefficients of each IIR filter can be determined according to preset frequency points corresponding to the frequency band that needs to be compensated for, for example, the preset frequency points include 800 Hz, and the second IIR digital filter is configured to compensate for audio content in a frequency range of 500 Hz to 1000 Hz, and the filter coefficients of the second IIR digital filter can be determined according to the hearing threshold corresponding to 800 Hz. It can be understood that the number of the plurality of IIR digital filters is not limited, for example, there can be more than five IIR digital filters to more accurately compensate for audio in different frequency bands.
[0138] Optionally, as shown in Figure 12 The plurality of IIR digital filters in cascade are further connected to a limiter, and the limiter is configured to limit the amplitude of the audio after passing through the plurality of IIR digital filters to prevent overflow of the digital signal and protect the loudspeaker.
[0139] In a possible implementation, after detecting the hearing thresholds of the left ear and the right ear at each preset frequency, the electronic device can determine, for the hearing threshold of the left ear at each preset frequency and the hearing threshold of the right ear at each preset frequency, the IIR digital filter corresponding to the left ear and the IIR digital filter corresponding to the right ear, respectively, and send the IIR digital filter corresponding to the left ear to the first wireless earphone in the wireless earphone and send the IIR digital filter corresponding to the right ear to the second wireless earphone in the wireless earphone, so that the first wireless earphone can compensate for the audio corresponding to the left ear, and the second wireless earphone can compensate for the audio corresponding to the right ear.
[0140] For example, based on the above implementation, for a user with severe high-frequency hearing loss, the frequency response diagram of hearing compensation is as shown in Figure 13 It can be seen that, by using the above method for hearing compensation, the audio in the high frequency part can be compensated for to enable the user to clearly hear the sound that cannot be heard due to hearing impairment.
[0141] The hearing detection method provided in the embodiments of the present application is more in line with the hearing characteristics of a user, and thus the speed of hearing detection can be improved, because the volume adjustment relationship for adjusting the volume when playing the test audio is determined based on the equal loudness curve. In addition, the audio to be played can be compensated based on the acquired hearing threshold, so that the user can clearly hear the sound details and the sound that cannot be heard due to hearing impairment.
[0142] Referring to Figure 14 The hearing detection device 400 provided in the embodiments of the present application is applied to the electronic device, and the hearing detection device 400 includes an audio output module 410, a volume adjustment module 420, and a hearing threshold acquisition module 430. The audio output module 410 is configured to output test audio of a target frequency point at an initial volume. The volume adjustment module 420 is configured to adjust the playing volume of the test audio based on a volume adjustment relationship corresponding to the target frequency point in response to a user operation. The volume adjustment relationship is determined based on an equal loudness curve. The hearing threshold acquisition module 430 is configured to determine the current playing volume of the test audio in response to a first confirmation instruction, and take the current playing volume as the hearing threshold corresponding to the target frequency point.
[0143] In some embodiments, the volume adjustment relationship includes a plurality of adjustable volume values, and the plurality of adjustable volume values are determined based on the equal loudness curve. In addition, the target frequency point is any preset frequency point to be detected in a plurality of preset frequency points, the volume adjustment relationship includes a plurality of volume levels, the volume values corresponding to the same volume level in the volume adjustment relationship of the plurality of preset frequency points are determined according to the equal loudness curve, and the volume values corresponding to the same volume level in the plurality of preset frequency points are different.
[0144] In some embodiments, the volume adjustment module 420 can be specifically configured to adjust the playing volume of the test audio based on the volume adjustment relationship corresponding to the target frequency point in response to a touch operation on the target control in the display interface.
[0145] In a possible implementation, the sliding control is a sliding bar, and the volume adjustment module 420 can be specifically configured to adjust the playing volume of the test audio based on the volume adjustment relationship corresponding to the target frequency point in response to a control operation on the sliding bar in the display interface.
[0146] Optionally, the volume adjustment relationship includes a first correspondence relationship between a plurality of volume levels and a plurality of positions arranged in sequence on the sliding bar, and a second correspondence relationship between each of the plurality of volume levels and a volume value, the volume values corresponding to the plurality of volume levels being sequentially increased or sequentially decreased in a non-linear manner; or the volume adjustment relationship includes a third correspondence relationship between a plurality of positions arranged in sequence on the sliding bar and volume values, the volume values corresponding to the plurality of positions being sequentially increased or sequentially decreased in a non-linear manner.
[0147] Optionally, the volume adjustment module 420 can further be specifically configured to: in response to a first selection operation on a first target position on the sliding bar in the display interface, determine a first volume level corresponding to the first target position based on the first correspondence relationship; and adjust the playing volume of the test audio to a volume value corresponding to the first volume level based on the second correspondence relationship.
[0148] In a possible implementation, the volume values corresponding to the plurality of volume levels match the hearing range of the user; and the volume values corresponding to the plurality of positions in the third correspondence relationship match the hearing range of the user.
[0149] Optionally, the volume values corresponding to the plurality of volume levels and the volume values corresponding to the plurality of positions include at least part of the volume values of at least one of the following groups of volume values:
[0150] 125 dB HL, 120 dB HL, 114.5 dB HL, 112.5 dB HL, 110.5 dB HL, 108.5 dB HL, 104.5 dB HL, 103.5 dB HL, 102.5 dB HL, 100 dB HL, 95.5 dB HL, 93 dB HL, 84.5 dB HL, 78.5 dB HL, 77 dB HL, 69.5 dB HL, 63 dB HL, 45 dB HL, and 0 dB HL;
[0151] 120 dB HL, 116 dB HL, 110 dB HL, 108 dB HL, 106 dB HL, 104 dB HL, 100 dB HL, 99 dB HL, 98 dB HL, 96 dB HL, 91 dB HL, 88 dB HL, 80 dB HL, 75 dB HL, 70 dB HL, 65 dB HL, 58 dB HL, 40 dB HL, and 0 dB HL;
[0152] 122 dB HL, 118 dB HL, 112 dB HL, 110 dB HL, 108 dB HL, 106 dB HL, 102 dB HL, 101 dB HL, 100 dB HL, 98 dB HL, 93 dB HL, 90 dB HL, 82 dB HL, 77 dB HL, 72 dB HL, 67 dB HL, 60 dB HL, 42 dB HL, and 0 dB HL;
[0153] 122.5 dB HL, 118.5 dB HL, 112.5 dB HL, 110.5 dB HL, 108.5 dB HL, 106.5 dB HL, 102.5 dB HL, 101.5 dB HL, 100.5 dB HL, 98.5 dB HL, 93.5 dB HL, 90.5 dB HL, 81.5 dB HL, 77.5 dB HL, 72.5 dB HL, 67.5 dB HL, 60.5 dB HL, 42.5 dB HL, and 0 dB HL;
[0154] 128 dB HL, 124 dB HL, 119 dB HL, 116 dB HL, 114.5 dB HL, 112 dB HL, 109 dB HL, 107.5 dB HL, 106 dB HL, 104.5 dB HL, 99.5 dB HL, 96.5 dB HL, 87.5 dB HL, 83.5 dB HL, 78.5, 73.5 dB HL, 66.5 dB HL, 48.5 dB HL, and 0 dB HL;
[0155] 126 dB HL, 122 dB HL, 116 dB HL, 114 dB HL, 112 dB HL, 110 dB HL, 106 dB HL, 105 dB HL, 104 dB HL, 102 dB HL, 97 dB HL, 94 dB HL, 86 dB HL, 81 dB HL, 74 dB HL, 71 dB HL, 64 dB HL, 46 dB HL, and 0 dB HL;
[0156] Each of the plurality of groups of volume values corresponds to a different target frequency point, and each volume value in each group of volume values has an adjustable range of -6 dB HL to 6 dB HL.
[0157] In some embodiments, the audio output module 410 can be specifically configured to: obtain an initial volume corresponding to the target frequency point, and output test audio of the target frequency point at the initial volume, wherein the initial volume is determined based on a target sound pressure level corresponding to a minimum audible level of the target frequency point obtained through pre-testing.
[0158] In a possible implementation, the initial volume is the sum of the target sound pressure level and a preset volume.
[0159] Optionally, the preset volume is 15-25dB HL.
[0160] In some embodiments, the target frequency is any one of a plurality of preset frequencies to be tested, and the hearing detection device 400 may further include a frequency adjustment module. The frequency adjustment module is configured to, after determining the current playback volume of the test audio in response to the first confirmation instruction and using the current playback volume as the hearing threshold corresponding to the target frequency, adjust the target frequency and return to the step of outputting the test audio at the target frequency at the initial volume until a hearing threshold corresponding to each of the plurality of preset frequencies is obtained.
[0161] In some embodiments, the hearing threshold is the first hearing threshold of one of the two ears at the target frequency. The audio output module 410 can be specifically used to: output the test audio of the target frequency at the initial volume through the wireless headset corresponding to the ear to be detected in the two ears. The hearing detection device 400 can also include an initial volume update module. The initial volume update module is used to, after determining the current playback volume of the test audio in response to the first confirmation instruction and using the current playback volume as the hearing threshold corresponding to the target frequency, update the initial volume to the hearing threshold, and return to the step of outputting the test audio of the target frequency at the initial volume through the wireless headset corresponding to the ear to be detected in the two ears, to obtain the second hearing threshold of the other ear at the target frequency.
[0162] In some embodiments, the hearing detection device 400 may further include an audio compensation module. The audio compensation module is configured to, after determining the current playback volume of the test audio in response to the first confirmation instruction and using the current playback volume as the hearing threshold corresponding to the target frequency, perform audio compensation on the audio at the target frequency in the playing audio based on the hearing threshold.
[0163] Those skilled in the art will clearly understand that, for the convenience and brevity of description, the specific working processes of the above-described devices and modules can refer to the corresponding processes in the aforementioned method embodiments and will not be repeated here.
[0164] In the embodiments provided in this application, the coupling between modules can be electrical, mechanical or other forms of coupling. It should be noted that the embodiments, implementation methods and technical features in this application can be combined with each other without conflict.
[0165] In addition, each function module in each embodiment of the present application can be integrated in one processing module, or each module can exist physically independently, or two or more modules can be integrated in one module. The integrated module can be realized in the form of hardware or in the form of a software function module.
[0166] To sum up, the scheme provided in the present application adjusts the playing volume of the test audio based on the volume adjustment relationship corresponding to the target frequency point in response to the user operation by outputting the test audio of the target frequency point at the initial volume, and the volume adjustment relationship is determined based on the equal loudness curve. In response to the first confirmation instruction, the current playing volume of the test audio is determined, and the current playing volume is taken as the hearing threshold corresponding to the target frequency point. Since the volume adjustment relationship for adjusting the volume when playing the test audio is determined based on the equal loudness curve, it is more in line with the user's hearing characteristics, thereby being able to improve the speed of hearing detection.
[0167] Please refer to Figure 15 which shows a structural block diagram of an electronic device provided in an embodiment of the present application. The electronic device 100 can be a smart phone, a tablet computer, a smart watch, an electronic book, or the like, which can run an application program. The electronic device 100 in the present application can include one or more of the following components: a processor 110, a memory 120, and one or more application programs, wherein the one or more application programs can be stored in the memory 120 and configured to be executed by the one or more processors 110, and the one or more application programs are configured to execute the method as described in the foregoing method embodiment.
[0168] The processor 110 can include one or more processing cores. The processor 110 connects various parts within the entire electronic device 100 with various interfaces and lines, performs various functions of the electronic device 100 and processes data by running or executing instructions, programs, code sets or instruction sets stored in the memory 120, and calling data stored in the memory 120. Alternatively, the processor 110 can be implemented in at least one of a hardware form of a digital signal processing (DSP), a field-programmable gate array (FPGA), a programmable logic array (PLA). The processor 110 can integrate a combination of one or several of a central processing unit (CPU), a graphics processing unit (GPU), and a modem. Among them, the CPU mainly processes an operating system, a user interface, and an application program, etc.; the GPU is responsible for rendering and drawing display content; and the modem is used for processing wireless communication. It can be understood that the above-mentioned modem can also not be integrated into the processor 110, but be implemented by a separate communication chip.
[0169] The memory 120 can include a random access memory (RAM) and can also include a read-only memory (ROM). The memory 120 can be used to store instructions, programs, codes, code sets or instruction sets. The memory 120 can include a program storage area and a data storage area, wherein the program storage area can store instructions for implementing an operating system, instructions for implementing at least one function (such as a touch function, a sound playing function, an image playing function, etc.), instructions for implementing each of the method embodiments described below, etc. The data storage area can also store data created by the electronic device 100 in use (such as a phone book, audio and video data, chat record data, etc.).
[0170] Please refer to Figure 16 which shows a structural block diagram of a computer readable storage medium provided by the embodiments of the present application. The computer readable medium 800 stores program codes therein, and the program codes can be called and executed by a processor to perform the methods described in the above method embodiments.
[0171] The computer-readable storage medium 800 can be an electronic memory such as a flash memory, an EEPROM (electrically erasable programmable read-only memory), an EPROM, a hard disk or a ROM. Optionally, the computer-readable storage medium 800 comprises a non-volatile computer-readable medium. The computer-readable storage medium 800 has storage space for program code 810 to perform any of the method steps of the above-described methods. These program codes can be read from or written to one or more computer program products. The program code 810 can be compressed, for example, in a suitable form.
[0172] The embodiments of the present application further provide a computer program product comprising a computer program which, when executed by a processor, implements the hearing detection method described in the above method embodiments.
[0173] It should be noted that the embodiments, implementation manners and technical features in the present application can be combined with each other without conflict.
[0174] Finally, it should be noted that the above embodiments are only used to illustrate but not limit the technical solutions of the present application; even though the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that the technical solutions recorded in the foregoing embodiments can be modified, or some technical features can be replaced by equivalent ones; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present application.
Claims
1. A hearing detection device, characterized in that: Applied to electronic equipment, the device includes: an audio output module, a volume adjustment module and an auditory threshold acquisition module, wherein: The audio output module is used to output the test audio of the target frequency at an initial volume; The volume adjustment module is configured to adjust the playback volume of the test audio in response to a user operation based on a volume adjustment relationship corresponding to the target frequency point, wherein the volume adjustment relationship is determined based on an equal loudness curve; The hearing threshold acquisition module is configured to determine, in response to the first confirmation instruction, the current playback volume of the test audio, and use the current playback volume as the hearing threshold corresponding to the target frequency; The volume adjustment relationship includes a plurality of adjustable volume values, and the plurality of adjustable volume values are sound pressure levels corresponding to respective loudness levels in the equal loudness curve; and / or the target frequency is any one of a plurality of preset frequency points to be detected, and the volume adjustment relationship includes a plurality of volume levels, wherein a volume value corresponding to a same volume level in the volume adjustment relationships of the plurality of preset frequencies is determined according to the equal loudness curve, and the volume values corresponding to the same volume level in the plurality of preset frequencies are different.
2. The device according to claim 1, characterized in that The volume adjustment module is specifically configured to adjust the playback volume of the test audio based on the volume adjustment relationship corresponding to the target frequency point in response to a touch operation on a target control in the display interface.
3. The device according to claim 2, characterized in that The target control is a slider, and the volume adjustment module is specifically configured to adjust the playback volume of the test audio based on the volume adjustment relationship corresponding to the target frequency point in response to a control operation on the slider in the display interface.
4. The device according to claim 3, characterized in that The volume adjustment relationship includes a first correspondence between multiple volume levels and multiple positions arranged in sequence on the sliding bar, and a second correspondence between each of the multiple volume levels and a volume value, and the volume values corresponding to the multiple volume levels increase or decrease in sequence non-linearly; or, the volume adjustment relationship includes: a third correspondence between multiple positions arranged in sequence on the sliding bar and the volume value, and the volume values corresponding to the multiple positions increase or decrease in sequence non-linearly.
5. The device according to claim 4, characterized in that The volume adjustment module is specifically configured to respond to a first selection operation on a first target position on the slide bar in the display interface and determine a first volume level corresponding to the first target position based on the first correspondence; Based on the second corresponding relationship, the playback volume of the test audio is adjusted to the volume value corresponding to the first volume level.
6. The device according to claim 4, characterized in that The volume values corresponding to the multiple volume levels in the second corresponding relationship match the user's hearing range; The volume values corresponding to the multiple positions in the third corresponding relationship match the user's hearing range.
7. The device according to claim 6, characterized in that The volume values corresponding to the multiple volume levels and the volume values corresponding to the multiple positions include at least part of the volume values of at least one of the following multiple groups of volume values: 125 dB HL, 120 dB HL, 114.5 dB HL, 112.5 dB HL, 110.5 dB HL, 108.5 dB HL, 104.5 dB HL, 103.5 dB HL, 102.5 dB HL, 100 dB HL, 95.5 dB HL, 93 dB HL, 84.5 dB HL, 78.5 dB HL, 77 dB HL, 69.5 dB HL, 63 dB HL, 45 dB HL and 0 dB HL; 120 dB HL, 116 dB HL, 110 dB HL, 108 dB HL, 106 dB HL, 104 dB HL, 100 dB HL, 99 dB HL, 98 dB HL, 96 dB HL, 91 dB HL, 88 dB HL, 80 dB HL, 75 dB HL, 70 dB HL, 65 dB HL, 58 dB HL, 40 dB HL and 0 dB HL; 122 dB HL, 118 dB HL, 112 dB HL, 110 dB HL, 108 dB HL, 106 dB HL, 102 dB HL, 101 dB HL, 100 dB HL, 98 dB HL, 93 dB HL, 90 dB HL, 82 dB HL, 77 dB HL, 72 dB HL, 67 dB HL, 60 dB HL, 42 dB HL and 0 dB HL; 122.5 dB HL, 118.5 dB HL, 112.5 dB HL, 110.5 dB HL, 108.5 dB HL, 106.5 dB HL, 102.5 dB HL, 101.5 dB HL, 100.5 dB HL, 98.5 dB HL, 93.5 dB HL, 90.5 dB HL, 81.5 dB HL, 77.5 dB HL, 72.5 dB HL, 67.5 dB HL, 60.5 dB HL, 42.5 dB HL and 0 dB HL; 128 dB HL, 124 dB HL, 119 dB HL, 1I6 dB HL, 114.5 dB HL, 112 dB HL, 109 dB HL, 1I"7.5 dB HL, 106 dB HL, 104.5 dB HL, 99.5 dB HL, 96.5 dB HL, 87.5 dB HL, 83.5 dB HL, 78.5 dB HL, 73.5 dB HL, 66.5 dB HL, 48.5 dB HL and 0 dB HL; 126dBHL, 122dBHL, 116dBHL, 114dBHL, 112dBHL, 110dBHL, 106dBHL, 105dBHL, 104dBHL, 102dBHL, 97dBHL, 94dBHL, 86dBHL, 81 dB HL, 74 dB HL, 71 dB HL, 64 dB HL, 46 dB HL and 0 dB HL; Each of the plurality of groups of volume values corresponds to a different target frequency point, and each volume value in each group of volume values has an adjustable range of -6dB HL to 6dB HL.
8. The device according to claim 1, characterized in that The audio output module is specifically used to obtain an initial volume corresponding to the target frequency point, and output the test audio of the target frequency point at the initial volume, wherein the initial volume is determined based on a target sound pressure level corresponding to a minimum audible level corresponding to the target frequency point tested in advance.
9. The device according to claim 8, characterized in that The initial volume is the sum of the target sound pressure level and the preset volume.
10. The device according to claim 9, characterized in that The preset volume is 15~25dB HL.
11. The device according to any one of claims 1 to 10, characterized in that The target frequency point is any preset frequency point among a plurality of preset frequency points to be tested, and the hearing detection device further includes a frequency adjustment module. The frequency adjustment module is configured to, after determining the current playback volume of the test audio in response to the first confirmation instruction and using the current playback volume as the hearing threshold corresponding to the target frequency, adjust the target frequency and return to outputting the test audio at the target frequency at the initial volume until a hearing threshold corresponding to each of the multiple preset frequency points is obtained.
12. The device according to any one of claims 1 to 10, characterized in that The hearing detection device further includes an initial volume update module, and the audio output module is specifically configured to output the test audio of the target frequency at the initial volume through the wireless earphone corresponding to the ear to be detected among the two ears; The initial volume update module is configured to, after obtaining the current playback volume of the test audio in response to the first confirmation instruction and using the current playback volume as the hearing threshold corresponding to the target frequency, update the initial volume to the hearing threshold, and return the test audio of the target frequency at the initial volume to the wireless headset corresponding to the ear to be tested among the two ears, to obtain a second hearing threshold of the other ear at the target frequency.
13. The device according to any one of claims 1 to 10, characterized in that The hearing detection device also includes an audio compensation module, which is used to obtain the current playback volume of the test audio in response to the first confirmation instruction, and use the current playback volume as the hearing threshold corresponding to the target frequency point, and then perform audio compensation on the audio of the target frequency point in the audio to be played based on the hearing threshold.
Citation Information
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