CN204721589U - Bone conduction sound propagation device - Google Patents

Bone conduction sound propagation device Download PDF

Info

Publication number
CN204721589U
CN204721589U CN201520365176.7U CN201520365176U CN204721589U CN 204721589 U CN204721589 U CN 204721589U CN 201520365176 U CN201520365176 U CN 201520365176U CN 204721589 U CN204721589 U CN 204721589U
Authority
CN
China
Prior art keywords
signal
frequency
amplitude
vibration signal
vibration
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN201520365176.7U
Other languages
Chinese (zh)
Inventor
任俊媛
白静璐
吕学文
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
BOE Technology Group Co Ltd
Original Assignee
BOE Technology Group Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by BOE Technology Group Co Ltd filed Critical BOE Technology Group Co Ltd
Priority to CN201520365176.7U priority Critical patent/CN204721589U/en
Application granted granted Critical
Publication of CN204721589U publication Critical patent/CN204721589U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Abstract

The utility model discloses a kind of bone conduction sound propagation device.Described bone conduction sound propagation device comprises: signal output module, for providing digital audio and video signals; Signal switching emission module, for converting described digital audio and video signals to vibration signal and launching described vibration signal; Signal detection module, for detecting the vibration signal of at least one location point from described signal switching emission module to the propagation path of receiving terminal; Signal feedback module, for calculate the vibration signal of each described location point attenuation coefficient, according to described attenuation coefficient determination compensating signal described compensating signal compensated the vibration signal to described signal switching emission CMOS macro cell.The utility model has carried out accurate compensation to the decay of voice signal in osteoacusis process, improves the amplitude-frequency response characteristic of voice signal, and improve the distortion of voice signal in osteoacusis process, the sound timbre that user is heard is better.

Description

Bone conduction sound propagation device
Technical field
The utility model relates to bone conduction technology field, particularly relates to a kind of bone conduction sound propagation device.
Background technology
Osteoacusis is a kind of sound conduction mode, namely by sound being converted into the mechanical oscillation of different frequency, transmits sound wave by the skull of people, osseous labyrinth, inner ear lymph liquid, spiral organ, auditory nerve, auditory center.Produce the classical sound conduction mode of sound wave with respect to eardrum, osteoacusis eliminates the step that many sound waves transmit, and can not only realize sound-reducing clearly in a noisy environment, and sound wave also can not have influence on other people because of spreading in atmosphere.
Although existed at present and utilized the soniferous device of bone conduction passage, but the sound transmitted due to traditional bone conductor device first will through the decay of the media such as human body skin, soft tissue, bone, there is larger distortion between the sound causing user to hear and the tonequality of sound heard by air transmitted, audibility is a greater impact.
Utility model content
The purpose of this utility model is to provide a kind of bone conduction sound propagation device, to solve the voice signal technical problem that distortion is larger in osteoacusis process in prior art.
For solving the problems of the technologies described above, the utility model provides a kind of bone conduction sound propagation device, comprising:
Signal output module, for providing digital audio and video signals;
Signal switching emission module, for converting described digital audio and video signals to vibration signal and launching described vibration signal;
Signal detection module, for detecting the vibration signal of at least one location point from described signal switching emission module to the propagation path of receiving terminal;
Signal feedback module, for calculate the vibration signal of each described location point attenuation coefficient, according to described attenuation coefficient determination compensating signal described compensating signal compensated the vibration signal to described signal switching emission CMOS macro cell.
Preferably, described signal switching emission module involving vibrations generation part, described vibration generation part is for launching described vibration signal, and described compensating signal is applied on described vibration generation part by described signal feedback module.
Preferably, described signal detection module comprises signal amplitude detecting unit, described compensating signal comprises Amplitude Compensation signal, described signal amplitude detecting unit is for detecting the amplitude of the vibration signal of at least one location point from described signal switching emission module to the propagation path of described receiving terminal, described signal feedback module for calculating the amplitude attenuation factor of the vibration signal of each described location point, and determines described Amplitude Compensation signal according to described amplitude attenuation factor.
Preferably, described signal amplitude detecting unit comprises at least one signal amplitude detection part, and described signal amplitude detection part is corresponding with described location point to be detected to be arranged, for detecting amplitude when described vibration signal propagates into corresponding described location point.
Preferably, described signal feedback module calculates the amplitude attenuation factor of the vibration signal of each described location point according to formula (1):
α i=(U 0-U i)/U 0(1)
Wherein, α ithe amplitude attenuation factor of described vibration signal when propagating into i-th described location point; Wherein, i is positive integer, and the maximum of i is the number of described location point;
U 0that described vibration signal is from initial amplitude during described signal switching emission module transmitting;
U ithe amplitude of described vibration signal when propagating into i-th described location point;
Described signal feedback module also determines the Amplitude Compensation signal of each described location point according to formula (2):
B i=f(α i) (2)
Wherein, B ithe Amplitude Compensation signal of i-th described location point, f (α i) be piecewise function, to make B ifor with α ibecome the pulse signal of multiplication factor relation.
Preferably, the number of described location point is N number of, and each described location point place is provided with one for detecting the signal amplitude detection part of amplitude when described vibration signal propagates into this location point.
Preferably, in N number of described location point, the distance between a jth location point and described signal switching emission module is greater than the distance between jth-1 location point and described signal switching emission module, and wherein, j is positive integer, and 1<j≤N;
Described signal feedback module calculates the amplitude attenuation factor at each described location point place according to formula (3):
α j=(U j-1-U j)/U j-1(3)
Wherein, α jthe amplitude attenuation factor of described vibration signal when propagating into jth described location point;
As j=1, U 0that described vibration signal is from initial amplitude during described signal switching emission module transmitting;
As j > 1, U jthe amplitude of described vibration signal when propagating into jth described location point;
Described signal feedback module also determines the Amplitude Compensation signal of each described location point according to formula (4):
B j=f(α j) (4)
Wherein, B jthe Amplitude Compensation signal of a jth described location point, f (α j) be piecewise function, to make B jfor with α jbecome the pulse signal of multiplication factor relation.
Preferably, described signal switching emission module also comprises:
First frequency unit, for carrying out frequency division to described digital audio and video signals, is divided into the frequency division audio signal of M frequency range by described digital audio and video signals, wherein the centre frequency of the described frequency division audio signal of each frequency range is f k, wherein, M is positive integer, and k is the positive integer being selected from 1 to M;
Multiple-frequency signal switching emission unit, for being f by centre frequency respectively kthe described frequency division audio signal of M frequency range be converted to M set of division and launch vibration signal;
Mixed cell, synthesizes a complete vibration signal for described for M group frequency division being launched vibration signal.
Preferably, described signal switching emission module also comprises:
First filter unit, for carrying out filtering to described digital audio and video signals; Described first frequency unit is used for carrying out frequency division to filtered described digital audio and video signals.
Preferably, described signal feedback module also comprises:
Second frequency unit, vibration signal for detecting described signal detection module carries out frequency division, be divided into by described vibration signal the frequency division of M the frequency range consistent with described digital audio and video signals frequency range to detect vibration signal, and the centre frequency that the described frequency division of each frequency range detects vibration signal is also f k, wherein, M is positive integer, and k is the positive integer being selected from 1 to M;
Multiple-frequency signal feedback unit is f for computer center's frequency respectively kthe described frequency division of M frequency range detect vibration signal attenuation coefficient, determine M group compensating signal according to M described attenuation coefficient and described for M group compensating signal compensated the M group described frequency division transmitting vibration signal generated to described multiple-frequency signal switching emission unit.
Preferably, described signal feedback module also comprises:
Second filter unit, carries out filtering for the vibration signal detected described signal detection module; Described second frequency unit is used for carrying out frequency division to filtered described vibration signal.
Preferably, described signal output module comprises environment audio frequency receiving element, and described environment audio frequency receiving element is used for reception environment audio signal, and described environmental audio signal is converted to described digital audio and video signals.
The utility model has carried out accurate compensation to the decay of voice signal in osteoacusis process, improves the amplitude-frequency response characteristic of voice signal, and improve the distortion of voice signal in osteoacusis process, the sound timbre that user is heard is better.
Accompanying drawing explanation
Accompanying drawing is used to provide further understanding of the present utility model, and forms a part for specification, is used from explanation the utility model, but does not form restriction of the present utility model with embodiment one below.
Fig. 1 is the schematic diagram of the bone conduction sound propagation device that the utility model embodiment provides;
Fig. 2 is one of schematic diagram of signal detection module in the utility model embodiment;
Fig. 3 is the schematic diagram two of signal detection module in the utility model embodiment;
Fig. 4 is the schematic diagram that the amplitude of vibration signal decayed with the propagation time;
Fig. 5 is the amplitude schematic diagram over time of vibration signal before compensating;
Fig. 6 is the schematic diagram of the compensating signal exported;
Fig. 7 is the amplitude schematic diagram over time compensating after vibration signal;
Fig. 8 is the schematic diagram of signal switching emission module in the utility model embodiment;
Fig. 9 is signal frequency split schematic diagram;
Figure 10 is the schematic diagram of signal feedback module in the utility model embodiment;
Figure 11 is the schematic diagram of signal output module in the utility model embodiment.
In the accompanying drawings, 1-signal output module; 11-environment audio frequency receiving element; 2-signal switching emission module; 21-first filter unit; 22-first frequency unit; 23-multiple-frequency signal switching emission unit; 24-mixed cell; 3-signal detection module; 31-signal amplitude detecting unit; 311-first signal amplitude detection part; 312-secondary signal amplitude detection part; 313-the 3rd signal amplitude detection part; 4-signal feedback module; 41-second filter unit; 42-second frequency unit; 43-multiple-frequency signal feedback unit; 5-receiving terminal.
Embodiment
Below in conjunction with accompanying drawing, embodiment of the present utility model is described in detail.Should be understood that, embodiment described herein, only for instruction and explanation of the utility model, is not limited to the utility model.
First the utility model provides a kind of bone conduction sound propagation device, and with reference to figure 1, described bone conduction sound propagation device comprises:
Signal output module 1, for providing digital audio and video signals;
Signal switching emission module 2, for converting described digital audio and video signals to vibration signal and launching described vibration signal;
Signal detection module 3, for detecting the vibration signal of at least one location point from the propagation path of signal switching emission module 2 to receiving terminal 5;
Signal feedback module 4, for calculate the vibration signal of each described location point attenuation coefficient, according to described attenuation coefficient determination compensating signal described compensating signal compensated the vibration signal to described signal switching emission CMOS macro cell.
When bone conduction sound propagation device 2 provided by the utility model works, signal switching emission module 2 is connected with signal output module 1, after receiving the digital audio and video signals that signal output apparatus 1 sends, can convert this digital audio and video signals to vibration signal.
For bone conduction earphone, if signal switching emission module 2 is earplug, receiving terminal 5 is user, and described propagation path can be the bones such as the skull of transmission vibration signal, and described location point can be any location point served as on the bone of propagation path.
Certainly, the implementation of bone conduction sound propagation device is not limited to this, can also be other structure, repeat no more here.
The utility model is by calculating the attenuation coefficient of the vibration signal of each location point, accurate compensation has been carried out to the decay of voice signal in osteoacusis process, improve the distortion of voice signal in osteoacusis process, the sound timbre that the user of receiving terminal 5 is heard is better.
Usually, involving vibrations generation part in signal switching emission module 2, described vibration generation part is for launching described vibration signal, and described compensating signal is applied on described vibration generation part by signal feedback module 4, to compensate described vibration signal.The utility model does not limit for the concrete form of vibration generation part, and such as, described vibration generation part can be the parts of eardrum function of the vibrating diaphragm had in similar earphone, people's ear.
Be understandable that, described compensating signal can directly compensate with the form of vibration signal, or, described compensating signal can also be the converted signal of telecommunication of the vibration signal that collected by each location point, by wire, the compensating signal of signal of telecommunication pattern is sent to signal switching emission module 2, signal switching emission module 2 readjusts the amplitude of the vibration signal that it is launched according to the compensating signal of signal of telecommunication pattern, thus improves the distortion of vibration signal in communication process.
Further, as shown in Figure 2, signal detection module 3 comprises signal amplitude detecting unit 31, described compensating signal comprises Amplitude Compensation signal, signal amplitude detecting unit 31 is for detecting the amplitude of the vibration signal of at least one location point from the propagation path of signal switching emission module 2 to receiving terminal 5, signal feedback module 4 for calculating the amplitude attenuation factor of the vibration signal of each described location point, and determines described Amplitude Compensation signal according to described amplitude attenuation factor.
The utility model, by compensating the amplitude of described vibration signal, effectively can improve the amplitude-frequency response characteristic of described vibration signal, thus makes the better voice signal of user's uppick acoustical quality of receiving terminal 5.
Further, as shown in Figure 3, signal amplitude detecting unit 31 comprises at least one signal amplitude detection part, and described signal amplitude detection part is corresponding with described location point to be detected to be arranged, for detecting amplitude when described vibration signal propagates into corresponding described location point.
For Fig. 3, signal amplitude detecting unit 31 comprise be arranged on primary importance point the first signal amplitude detection part 311, be arranged on the secondary signal amplitude detection part 312 of second place point and be arranged on the 3rd signal amplitude detection part 313 of the 3rd location point.Wherein, the first signal amplitude detection part 311, secondary signal amplitude detection part 312 and the 3rd signal amplitude detection part 313 are respectively used to detect amplitude when described vibration signal propagates into described primary importance point, described second place point and described 3rd location point.
First signal amplitude detection part 311, secondary signal amplitude detection part 312 are all connected with signal feedback module 4 with the 3rd signal amplitude detection part 313, and amplitude when the described primary importance point, described second place point and described 3rd location point that detect is transmitted to signal feedback module 4.According to the amplitude of the vibration signal of each location point received, signal feedback module 4 determines that described vibration signal propagates into the amplitude attenuation factor at some place, relevant position, and generate corresponding Amplitude Compensation signal according to described amplitude attenuation factor.
As the first execution mode of the present utility model, signal feedback module 4 calculates the amplitude attenuation factor of the vibration signal of each described location point according to formula (1):
α i=(U 0-U i)/U 0(1)
Wherein, α ithe amplitude attenuation factor of described vibration signal when propagating into i-th described location point; Wherein, i is positive integer, and the maximum of i is the number of described location point;
U 0the initial amplitude of described vibration signal when launching from signal switching emission module 2;
U ithe amplitude of described vibration signal when propagating into i-th described location point;
Signal feedback module 4 also determines the Amplitude Compensation signal of each described location point according to formula (2):
B i=f(α i) (2)
Wherein, B ithe Amplitude Compensation signal of i-th described location point, f (α i) be piecewise function, to make B ifor with α ibecome the pulse signal of multiplication factor relation.
In a first embodiment, the amplitude U of each described location point can be adopted iall with the initial amplitude U of described vibration signal 0the mode of comparing, to draw the amplitude attenuation factor α of each described location point i, and the Amplitude Compensation signal B of each described location point i.
As the second execution mode of the present utility model, the number of described location point is N number of, and each described location point place is provided with one for detecting the signal amplitude detection part of amplitude when described vibration signal propagates into this location point.That is, signal amplitude detecting unit 31 comprises N number of described signal amplitude detection part.
In N number of described location point, the distance between a jth location point and signal switching emission module 2 is greater than the distance between jth-1 location point and signal switching emission module 2, and wherein, j is positive integer, and 1<j≤N.
In the second execution mode, signal feedback module 4 calculates the amplitude attenuation factor at each described location point place according to formula (3):
α j=(U j-1-U j)/U j-1(3)
Wherein, α jthe amplitude attenuation factor of described vibration signal when propagating into jth described location point;
As j=1, U 0the initial amplitude of described vibration signal when launching from signal switching emission module 2;
As j > 1, U jthe amplitude of described vibration signal when propagating into jth described location point;
Signal feedback module 4 also determines the Amplitude Compensation signal of each described location point according to formula (4):
B j=f(α j) (4)
Wherein, B jthe Amplitude Compensation signal of a jth described location point, f (α j) be piecewise function, to make B jfor with α jbecome the pulse signal of multiplication factor relation.
In the second execution mode, the amplitude U of each described location point jall with the amplitude U of previous location point j-1compare, due to thinner to the segmentation of propagation path, and the distance in each section of path is shorter, and therefore this account form has better compensation effect.
For Fig. 3, suppose to need the vibration signal of detection three location points (the more precision of usual location point are higher), these three location points are distributed on the skull of human body, primary importance point is provided with the first signal amplitude detection part 311, second place point is provided with on secondary signal amplitude detection part the 312, three location point and is provided with the 3rd signal amplitude detection part 313.First signal amplitude detection part 311, secondary signal amplitude detection part 312 and the 3rd signal amplitude detection part 313 are respectively L to the distance of signal switching emission module 2 1, L 2, L 3.
With reference to figure 4, described vibration signal is T from the time that signal switching emission module 2 sends 0, the time being transmitted to the first signal amplitude detection part 311, secondary signal amplitude detection part 312 and the 3rd signal amplitude detection part 313 is respectively T 1, T 2, T 3.Here set described vibration signal to send until the whole propagation path that people's ear is heard is one-period T, so T from signal switching emission module 2 1, T 2, T 3include at T 0in the cycle of-T.
Initial amplitude when described vibration signal sends from signal switching emission module 2 is U 0, the amplitude of the vibration signal of primary importance point, second place point and the 3rd location point that the first signal amplitude detection part 311, secondary signal amplitude detection part 312 and the 3rd signal amplitude detection part 313 detect respectively is respectively U 1, U 2, U 3.Before compensation, U 0, U 1, U 2, U 3over time as shown in Figure 5.
Signal feedback module 4 calculates the 3rd amplitude attenuation factor when the second amplitude attenuation factor when described vibration signal propagates into described second place point from the first amplitude attenuation factor when propagating into described primary importance point after signal switching emission module 2 is launched, described vibration signal from described primary importance point and described vibration signal propagate into described 3rd location point from described second place point respectively according to formula (5), formula (6), formula (7):
α 1=(U 0-U 1)/U 0(5)
α 2=(U 1-U 2)/U 1(6)
α 3=(U 2-U 3)/U 2(7)
Wherein, α 1described first amplitude attenuation factor, α 2described second amplitude attenuation factor, α 3described 3rd amplitude attenuation factor,
U 0the initial amplitude of described vibration signal when launching from signal switching emission module 2, U 1the amplitude of described vibration signal when propagating into described primary importance point, U 2the amplitude of described vibration signal when propagating into described second place point; U 3the amplitude of described vibration signal when propagating into described 3rd location point.
Further, signal feedback module 4 also determines to correspond respectively to the first Amplitude Compensation signal of primary importance point, second place point and the 3rd location point, the second Amplitude Compensation signal and the 3rd Amplitude Compensation signal according to formula (8), formula (9), formula (10):
B 1=f(α 1) (8)
B 2=f(α 2) (9)
B 3=f(α 3) (10)
Wherein, B 1described first Amplitude Compensation signal, and B 1for with α 1become the pulse signal of multiplication factor relation; B 2described second Amplitude Compensation signal, and B 2for with α 2become the pulse signal of multiplication factor relation; B 3described second Amplitude Compensation signal, and B 3for with α 3become the pulse signal of multiplication factor relation.Described pulse signal can pass through conventional amplifying device, as proportional amplifier obtains.
In order to compensate accurately the signal attenuation of each location point, as shown in Figure 6, can at T 1-T 0moment exports the first Amplitude Compensation signal B 1, elapsed time interval T 2-T 1rear output second Amplitude Compensation signal B 2, elapsed time interval T 3-T 2rear output the 3rd Amplitude Compensation signal B 3.Further, signal feedback module 4 is export above-mentioned compensated pulse signal B the cycle with T 1, B 2, B 3.
After above-mentioned compensation process, U 1, U 2, U 3over time as shown in Figure 7.Can find out, the vibration signal U that after compensating, the first signal amplitude detection part 311, secondary signal amplitude detection part 312 and the 3rd signal amplitude detection part 313 detect 1, U 2, U 3amplitude all can remain on U 0, therefore, it is possible to effectively improve the distortion of voice signal in osteoacusis process.
Further, as shown in Figure 8, signal switching emission module 2 also comprises:
First frequency unit 22, for carrying out frequency division to described digital audio and video signals, is divided into the frequency division audio signal of M frequency range by described digital audio and video signals, wherein the centre frequency of the described frequency division audio signal of each frequency range is f k, wherein, M is positive integer, and k is the positive integer being selected from 1 to M;
Multiple-frequency signal switching emission unit 23, for being f by centre frequency respectively kthe described frequency division audio signal of M frequency range be converted to M set of division and launch vibration signal;
Mixed cell 24, synthesizes a complete vibration signal for described for M group frequency division being launched vibration signal.
When signal switching emission module 2 works, the first frequency unit 22 receives the digital audio and video signals sent from signal output module 1, and carries out frequency division to described digital audio and video signals, described digital audio and video signals is divided into the frequency division audio signal of M frequency range.Afterwards, the frequency division audio signal of the frequency range of the M after frequency division is sent to multiple-frequency signal switching emission unit 23 by the first frequency unit 22.
After multiple-frequency signal switching emission unit 23 receives the frequency division audio signal of M frequency range, the frequency division audio signal of this M frequency range is changed, converts audio signal to vibration signal, obtain M set of division and launch vibration signal.Afterwards, M set of division is launched vibration signal and is sent to mixed cell 24 by multiple-frequency signal switching emission unit 23, after mixed cell 24 receives M set of division transmitting vibration signal, this M set of division is launched vibration signal merge, synthesize a complete vibration signal, and this complete vibration signal is launched.
The utility model, according to the hearing characteristics of people, recycles bone sensing technology and carries out processing and propagating, can improve the acoustical quality of voice signal after digital audio and video signals is divided into some frequency ranges.Such as in fig .9, described digital audio and video signals is divided into three frequency range P 1, P 2, P 3, the centre frequency of the frequency division audio signal of three frequency ranges is respectively f 1, f 2, f 3.Usually, the frequency range divided is more, and precision is higher, and the effect of the voice signal of people's ear uppick is better.
Preferably, signal switching emission module 2 also comprises:
First filter unit 21, for carrying out filtering to described digital audio and video signals, with filtering noise; First frequency unit 22 is for carrying out frequency division to filtered described digital audio and video signals.
Here the first filter unit 21 receives the digital audio and video signals sent from signal output module 1, and filtering is carried out to described digital audio and video signals, then the first frequency unit 22, first frequency unit 22 is sent to by filtered described digital audio and video signals to carry out frequency division to filtered described digital audio and video signals again.
Further, as shown in Figure 10, signal feedback module 4 also comprises:
Second frequency unit 42, vibration signal for detecting signal detection module 3 carries out frequency division, be divided into by described vibration signal the frequency division of M the frequency range consistent with described digital audio and video signals frequency range to detect vibration signal, and the centre frequency that the described frequency division of each frequency range detects vibration signal is also f k, wherein, M is positive integer, and k is the positive integer being selected from 1 to M;
Multiple-frequency signal feedback unit 43 is f for computer center's frequency respectively kthe described frequency division of M frequency range detect vibration signal attenuation coefficient, determine M group compensating signal according to M described attenuation coefficient and described for M group compensating signal compensated the M group described frequency division transmitting vibration signal generated to multiple-frequency signal switching emission unit 23.
In the utility model, the vibration signal detected is sent to signal feedback module 4 by signal detection module 3.When signal feedback module 4 works, second frequency unit 42 receives described vibration signal, and be divided into by described vibration signal the frequency division of M the frequency range consistent with described digital audio and video signals frequency range to detect vibration signal, afterwards the frequency division of this M frequency range is detected vibration signal and send to multiple-frequency signal feedback unit 43.
After multiple-frequency signal feedback unit 43 receives the frequency division detection vibration signal of this M frequency range, calculate respectively and detect the corresponding M of a vibration signal attenuation coefficient with the frequency division of this M frequency range, and determine M group compensating signal according to M described attenuation coefficient, then this M group compensating signal being sent to the described frequency division of M group that multiple-frequency signal switching emission unit 23 generates launches in vibration signal, launch vibration signal to the described frequency division of M group to compensate, reduce distorted signals.
For Fig. 9, the described vibration signal detected is divided into three the frequency range Ps identical with described digital audio and video signals 1, P 2, P 3, and the centre frequency of these three frequency ranges is also respectively f 1, f 2, f 3, the frequency range of launching vibration signal with the frequency range and described frequency division that make described frequency division detection vibration signal is consistent.Multiple-frequency signal feedback unit 43 is f to centre frequency respectively 1, f 2, f 3frequency division detect vibration signal and calculate attenuation coefficient and compensating signal, afterwards three groups of compensating signals are compensated respectively the three components generated to multiple-frequency signal switching emission unit 23 and take place frequently and penetrate vibration signal, thus ensure the accuracy that compensates.
Preferably, signal feedback module 4 also comprises:
Second filter unit 41, carries out filtering, with filtering noise for the vibration signal detected signal detection module 3; Second frequency unit 42 is for carrying out frequency division to filtered described vibration signal.
Here the vibration signal that will detect of the second filter unit 41 Received signal strength detection module 3, and filtering is carried out to described vibration signal, the second frequency unit 42, second frequency unit 42 is sent to by filtered described vibration signal to carry out frequency division to filtered described vibration signal more afterwards.
Carry out detecting vibration signal to be divided into three frequency ranges and to detect three location points below, the utility model is explained in detail.
First, frequency centered by digital audio and video signals frequency division is respectively f by the first frequency unit 22 in signal switching emission module 2 1, f 2, f 3the frequency division audio signal of three frequency ranges; The frequency division audio signal of these three frequency ranges is converted to centre frequency and is respectively f by multiple-frequency signal switching emission unit 23 1, f 2, f 3three frequency ranges frequency division launch vibration signal; The frequency division of these three frequency ranges transmitting vibration signal is mixed into a complete vibration signal by mixed cell 24.
Afterwards, signal detection module 3 detects the described vibration signal being transmitted to primary importance point, second place point and the 3rd location point.
Afterwards, the vibration signal frequency division detected is that frequency of heart is respectively f by the second frequency unit 42 in signal feedback module 4 1, f 2, f 3three frequency ranges frequency division detect vibration signal.Wherein, centre frequency is f 1frequency division detect vibration signal be T from the time that signal switching emission module 2 sends 0, the time being transmitted to the first signal amplitude detection part 311 on primary importance point is T 11, the time being transmitted to the secondary signal amplitude detection part 312 on second place point is T 12, the time being transmitted to the 3rd signal amplitude detection part 313 on the 3rd location point is T 13, described frequency division detects vibration signal and sends until the whole propagation path that people's ear is heard is one-period T from signal switching emission module 2.
Further, centre frequency is f 1frequency division detect vibration signal be U from the initial amplitude that signal switching emission module 2 sends 10, be transmitted to primary importance point, second place point, the 3rd location point amplitude be respectively U 11, U 12, U 13.
Similarly, centre frequency is f 2frequency division to detect the initial amplitude that sends of vibration signal be U 20, be transmitted to primary importance point, second place point, the 3rd location point amplitude be respectively U 21, U 22, U 23; Centre frequency is f 3frequency division to detect the initial amplitude that sends of vibration signal be U 30, be transmitted to primary importance point, second place point, the 3rd location point amplitude be respectively U 31, U 32, U 33.
Afterwards, signal feedback module 4 respectively computer center's frequency be f 1frequency division detect vibration signal and be transmitted to the amplitude attenuation factor α of primary importance point, second place point, the 3rd location point 11, α 12, α 13, wherein: α 11=(U 10-U 11)/U 10, α 12=(U 11-U 12)/U 11, α 13=(U 12-U 13)/U 12.Afterwards again according to α 11, α 12, α 13determine at T 11-T 0the Amplitude Compensation signal B that moment exports 11, at T 12-T 11the Amplitude Compensation signal B that moment exports 12, at T 13-T 12the Amplitude Compensation signal B that moment exports 13, wherein: B 11=f (α 11), B 11for with α 11become the pulse signal of multiplication factor relation; B 12=f (α 12), B 12for with α 12become the pulse signal of multiplication factor relation; B 13=f (α 13), B 13for with α 13become the pulse signal of multiplication factor relation.
In the utility model, can by conventional amplifier as proportional amplifier exports above-mentioned compensated pulse signal, make the first signal amplitude detection part 311 after compensating, amplitude that secondary signal amplitude detection part the 312, the 3rd signal amplitude detection part 313 detects be U 10.
Similarly, signal feedback module 4 calculates centre frequency is f 2frequency division detect vibration signal be transmitted to primary importance point, second place point, the 3rd location point amplitude attenuation factor be respectively α 21, α 22, α 23, corresponding Amplitude Compensation signal is respectively B 21, B 22, B 23; Centre frequency is f 3frequency division detect vibration signal be transmitted to primary importance point, second place point, the 3rd location point amplitude attenuation factor be respectively α 31, α 32, α 33, corresponding Amplitude Compensation signal is respectively B 31, B 32, B 33.
Then, signal feedback module 4 take T as the cycle, and exporting respectively simultaneously and corresponding to centre frequency is f 1the Amplitude Compensation signal B of frequency range 11, B 12, B 13, be f corresponding to centre frequency 2the Amplitude Compensation signal B of frequency range 21, B 22, B 23, and be f corresponding to centre frequency 3the Amplitude Compensation signal B of frequency range 31, B 32, B 33.The frequency division that above-mentioned Amplitude Compensation signal compensates the corresponding band that multiple-frequency signal switching emission unit 23 generates to signal switching emission module 2 respectively launches vibration signal.
Further, as shown in figure 11, signal output module 1 comprises environment audio frequency receiving element 11, and described environmental audio signal for reception environment audio signal, and is converted to described digital audio and video signals by environment audio frequency receiving element 11.In this embodiment, the described digital audio and video signals be converted to is sent to signal switching emission module 2 by environment audio frequency receiving element 11.
Therefore, bone conduction sound propagation device provided by the utility model can strengthen the reception of people's ear for ambient sound, not only may be used in ear speaker device, can also be used in hearing aid apparatus.Further, above-mentioned bone conduction sound propagation device provided by the utility model has the advantage that voice signal distortion is little, amplitude-frequency response characteristic good, acoustical quality is good.
Be understandable that, the illustrative embodiments that above execution mode is only used to principle of the present utility model is described and adopts, but the utility model is not limited thereto.For those skilled in the art, when not departing from spirit of the present utility model and essence, can make various modification and improvement, these modification and improvement are also considered as protection range of the present utility model.

Claims (10)

1. a bone conduction sound propagation device, is characterized in that, comprises
Signal output module, for providing digital audio and video signals;
Signal switching emission module, for converting described digital audio and video signals to vibration signal and launching described vibration signal;
Signal detection module, for detecting the vibration signal of at least one location point from described signal switching emission module to the propagation path of receiving terminal;
Signal feedback module, for calculate the vibration signal of each described location point attenuation coefficient, according to described attenuation coefficient determination compensating signal described compensating signal compensated the vibration signal to described signal switching emission CMOS macro cell.
2. bone conduction sound propagation device according to claim 1, it is characterized in that, described signal switching emission module involving vibrations generation part, described vibration generation part is for launching described vibration signal, and described compensating signal is applied on described vibration generation part by described signal feedback module.
3. bone conduction sound propagation device according to claim 1, it is characterized in that, described signal detection module comprises signal amplitude detecting unit, described compensating signal comprises Amplitude Compensation signal, described signal amplitude detecting unit is for detecting the amplitude of the vibration signal of at least one location point from described signal switching emission module to the propagation path of described receiving terminal, described signal feedback module for calculating the amplitude attenuation factor of the vibration signal of each described location point, and determines described Amplitude Compensation signal according to described amplitude attenuation factor.
4. bone conduction sound propagation device according to claim 3, it is characterized in that, described signal amplitude detecting unit comprises at least one signal amplitude detection part, described signal amplitude detection part is corresponding with described location point to be detected to be arranged, for detecting amplitude when described vibration signal propagates into corresponding described location point.
5. bone conduction sound propagation device according to claim 4, is characterized in that, the number of described location point is N number of, and each described location point place is provided with one for detecting the signal amplitude detection part of amplitude when described vibration signal propagates into this location point.
6. bone conduction sound propagation device as claimed in any of claims 1 to 5, is characterized in that, described signal switching emission module also comprises:
First frequency unit, for carrying out frequency division to described digital audio and video signals, is divided into the frequency division audio signal of M frequency range by described digital audio and video signals, wherein the centre frequency of the described frequency division audio signal of each frequency range is f k, wherein, M is positive integer, and k is the positive integer being selected from 1 to M;
Multiple-frequency signal switching emission unit, for being f by centre frequency respectively kthe described frequency division audio signal of M frequency range be converted to M set of division and launch vibration signal;
Mixed cell, synthesizes a complete vibration signal for described for M group frequency division being launched vibration signal.
7. bone conduction sound propagation device according to claim 6, is characterized in that, described signal switching emission module also comprises:
First filter unit, for carrying out filtering to described digital audio and video signals; Described first frequency unit is used for carrying out frequency division to filtered described digital audio and video signals.
8. bone conduction sound propagation device according to claim 6, is characterized in that, described signal feedback module also comprises:
Second frequency unit, vibration signal for detecting described signal detection module carries out frequency division, be divided into by described vibration signal the frequency division of M the frequency range consistent with described digital audio and video signals frequency range to detect vibration signal, and the centre frequency that the described frequency division of each frequency range detects vibration signal is also f k, wherein, M is positive integer, and k is the positive integer being selected from 1 to M;
Multiple-frequency signal feedback unit is f for computer center's frequency respectively kthe described frequency division of M frequency range detect vibration signal attenuation coefficient, determine M group compensating signal according to M described attenuation coefficient and described for M group compensating signal compensated the M group described frequency division transmitting vibration signal generated to described multiple-frequency signal switching emission unit.
9. bone conduction sound propagation device according to claim 8, is characterized in that, described signal feedback module also comprises:
Second filter unit, carries out filtering for the vibration signal detected described signal detection module; Described second frequency unit is used for carrying out frequency division to filtered described vibration signal.
10. bone conduction sound propagation device as claimed in any of claims 1 to 5, it is characterized in that, described signal output module comprises environment audio frequency receiving element, described environment audio frequency receiving element is used for reception environment audio signal, and described environmental audio signal is converted to described digital audio and video signals.
CN201520365176.7U 2015-05-29 2015-05-29 Bone conduction sound propagation device Active CN204721589U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201520365176.7U CN204721589U (en) 2015-05-29 2015-05-29 Bone conduction sound propagation device

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201520365176.7U CN204721589U (en) 2015-05-29 2015-05-29 Bone conduction sound propagation device

Publications (1)

Publication Number Publication Date
CN204721589U true CN204721589U (en) 2015-10-21

Family

ID=54320548

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201520365176.7U Active CN204721589U (en) 2015-05-29 2015-05-29 Bone conduction sound propagation device

Country Status (1)

Country Link
CN (1) CN204721589U (en)

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104936096A (en) * 2015-05-29 2015-09-23 京东方科技集团股份有限公司 Bone-conduction sound transmission device and method
CN106344064A (en) * 2016-09-26 2017-01-25 珠海爱珂索移动医疗科技有限公司 Audio signal acquisition device and method
CN106658304A (en) * 2017-01-11 2017-05-10 广东小天才科技有限公司 Wearable device and audio output control method used for same
CN107017001A (en) * 2017-03-28 2017-08-04 广东小天才科技有限公司 A kind of output processing method and wearable device of wearable device audio signal
CN109982210A (en) * 2019-04-29 2019-07-05 努比亚技术有限公司 Wearable device audio-frequency inputting method, device, wearable device and storage medium
CN116473754A (en) * 2023-04-27 2023-07-25 广东蕾特恩科技发展有限公司 Bone conduction device for beauty instrument and control method

Cited By (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104936096B (en) * 2015-05-29 2018-07-17 京东方科技集团股份有限公司 Bone conduction sound propagation device and method
WO2016192277A1 (en) * 2015-05-29 2016-12-08 京东方科技集团股份有限公司 Bone conduction sound transmission device and method
CN104936096A (en) * 2015-05-29 2015-09-23 京东方科技集团股份有限公司 Bone-conduction sound transmission device and method
US9986334B2 (en) 2015-05-29 2018-05-29 Boe Technology Group Co., Ltd Bone-conduction sound transmission device and method
CN106344064A (en) * 2016-09-26 2017-01-25 珠海爱珂索移动医疗科技有限公司 Audio signal acquisition device and method
CN106344064B (en) * 2016-09-26 2020-08-18 珠海爱珂索移动医疗科技有限公司 Audio signal acquisition device and acquisition method
CN106658304A (en) * 2017-01-11 2017-05-10 广东小天才科技有限公司 Wearable device and audio output control method used for same
CN106658304B (en) * 2017-01-11 2020-04-24 广东小天才科技有限公司 Output control method for wearable device audio and wearable device
CN107017001B (en) * 2017-03-28 2020-05-22 广东小天才科技有限公司 Wearable device audio signal output processing method and wearable device
CN107017001A (en) * 2017-03-28 2017-08-04 广东小天才科技有限公司 A kind of output processing method and wearable device of wearable device audio signal
CN109982210A (en) * 2019-04-29 2019-07-05 努比亚技术有限公司 Wearable device audio-frequency inputting method, device, wearable device and storage medium
CN116473754A (en) * 2023-04-27 2023-07-25 广东蕾特恩科技发展有限公司 Bone conduction device for beauty instrument and control method
CN116473754B (en) * 2023-04-27 2024-03-08 广东蕾特恩科技发展有限公司 Bone conduction device for beauty instrument and control method

Similar Documents

Publication Publication Date Title
CN204721589U (en) Bone conduction sound propagation device
CN107071647B (en) A kind of sound collection method, system and device
CN104936096A (en) Bone-conduction sound transmission device and method
DE69116948D1 (en) Method and device for noise cancellation in headphones
CN107154256B (en) Sound masking system based on sound source positioning and self-adaptive adjusting method
CN104581526B (en) Sensor
CN110225430A (en) A kind of noise reduction osteoacusis headset and its noise-reduction method
CN111405450A (en) Simulated human head device for bone conduction equipment test and test method
EP2482566B1 (en) Method for generating an audio signal
US10984779B2 (en) Audio adjustment method and associated audio adjustment device for active noise cancellation
CN111866662B (en) Adjusting method for active noise reduction and related circuit
CN103813241A (en) Mobile electronic equipment and audio playing device thereof
CN219204674U (en) Wearing audio equipment with human ear characteristic detection function
US20160143563A1 (en) Measurement system
US7010135B2 (en) Method to determine a feedback threshold in a hearing device
CA2477024A1 (en) Voice matching system for audio transducers
CN217064005U (en) Hearing device
CN113676816A (en) Echo eliminating method for bone conduction earphone and bone conduction earphone
CN207518802U (en) Neck wears formula interactive voice earphone
CN111862924A (en) Audio adjusting method for active noise reduction and related audio adjusting device
JPH10294997A (en) Processing circuit for voice signal and check device
CN109729471A (en) The ANC denoising device of formula interactive voice earphone is worn for neck
CN109963230A (en) A kind of sound collection method and device
CN207518793U (en) Neck wears formula interactive voice earphone
CN102761807B (en) Active noise-cancelling device and noise-cancelling method

Legal Events

Date Code Title Description
C14 Grant of patent or utility model
GR01 Patent grant