NOISE CONTROL SYSTEM, A NOISE CONTROL DEVICE AND A METHOD THEREOF
20220328028 · 2022-10-13
Assignee
Inventors
Cpc classification
G10K11/17881
PHYSICS
G10K2210/509
PHYSICS
G10K2210/1081
PHYSICS
G10K11/16
PHYSICS
International classification
Abstract
A noise control system comprises a feedforward module, a feedback module, an error pre-processing module, and a signal integrating module. The feedforward module is configured to receive a reference signal and output a feedforward anti-noise signal by performing feedforward processing to the reference signal. The feedback module is configured to receive an error signal and output a feedback anti-noise signal by performing feedback processing to the error signal. The error pre-processing module is configured to receive the error signal and output a first pre-processing signal to the feedforward module and a second pre-processing signal to the feedback module. The signal integrating module is configured to output an integrated anti-noise signal integrated from the feedforward anti-noise signal and the feedback anti-noise signal. Wherein the first pre-processing signal corresponds to the first part of the error signal which belongs to the first frequency region; the second pre-processing signal corresponds to the second part of the error signal which belongs to the second frequency region.
Claims
1. A noise control system, comprising: a feedforward module configured to receive a reference signal and output a feedforward anti-noise signal by performing feedforward processing to the reference signal; a feedback module configured to receive an error signal and output a feedback anti-noise signal by performing feedback processing to the error signal; an error pre-processing module configured to receive the error signal and output a first pre-processing signal to the feedforward module and output a second pre-processing signal to the feedback module; and a signal integrating module configured to integrate the feedforward anti-noise signal and the feedback anti-noise signal to output an integrated anti-noise signal; wherein the first pre-processing signal corresponds to the first part of the error signal which belongs to the first frequency region; the second pre-processing signal corresponds to the second part of the error signal which belongs to the second frequency region.
2. The noise control system of claim 1, wherein the error pre-processing module comprises: a noise bandwidth detecting component configured to receive the error signal; a first pre-filtering component coupled to the noise bandwidth detecting component and configured to output the first pre-processing signal; and a second pre-filtering component coupled to the noise bandwidth detecting component and configured to output the second pre-processing signal.
3. The noise control system of claim 2, wherein the first pre-filtering component is a low-pass filter, and the second pre-filtering component is a band-pass filter.
4. The noise control system of claim 2, wherein the first pre-filtering component and the second pre-filtering component are infinite impulse response filters.
5. The noise control system of claim 2, wherein the error signal has a periodically-occurring signal section, and the noise bandwidth detecting component adjusts the second frequency region based on the periodically-occurring signal section.
6. The noise control system of claim 2, wherein the noise bandwidth detecting component computes the frequency distribution of the error signal and adjusts the filtering region of the first pre-filtering component and the second pre-filtering component based on the frequency distribution.
7. The noise control system of claim 1, wherein the first frequency region is at least partially lower than the second frequency region.
8. The noise control system of claim 1, wherein the feedforward module adjusts at least a parameter of the feedforward processing according to the first pre-processing signal; the feedback module adjusts at least a parameter of the feedback processing according to the second pre-processing signal.
9. A noise controlling device, comprising: a noise control system, comprising: a feedforward module configured to receive a reference signal and output a feedforward anti-noise signal by performing feedforward processing to the reference signal; a feedback module configured to receive an error signal and output a feedback anti-noise signal by performing feedback processing to the error signal; an error pre-processing module configured to receive the error signal and output a first pre-processing signal to the feedforward module and a second pre-processing signal to the feedback module; and a signal integrating module configured to integrate the feedforward anti-noise signal and the feedback anti-noise signal to output an integrated anti-noise signal; and a first vibration sensor configured to sample a target sound and output the reference signal; a sound producer configured to receive the integrated anti-noise signal and produce an offset sound; and a second vibration sensor configured to sample a noise-reduced sound and output the error signal; wherein the first pre-processing signal corresponds to the first part of the error signal which belongs to the first frequency region, and the second pre-processing signal corresponds to the second part of the error signal which belongs to the second frequency region; wherein the noise-reduced sound is the sum of the target sound and the offset sound.
10. A noise control method, comprising: receiving an error signal and outputting a first pre-processing signal and a second pre-processing signal; wherein the first pre-processing signal corresponds to the first part of the error signal which belongs to the first frequency region, and the second pre-processing signal corresponds to the second part of the error signal which belongs to the second frequency region; receiving a reference signal and outputting a feedforward anti-noise signal after performing feedforward processing to the reference signal; outputting a feedback anti-noise signal after performing feedback processing to the error signal; and integrating the feedforward anti-noise signal and the feedback anti-noise signal and outputting an integrated anti-noise signal.
11. The noise control method of claim 10, wherein the error signal has a periodically-occurring signal section, and the noise bandwidth detecting component adjusts the second frequency region based on the periodically-occurring signal section
12. The noise control method of claim 10, wherein the first frequency region is at least partially lower than the second frequency region.
13. The noise control method of claim 10, when receiving the error signal and outputting the first pre-processing signal and the second pre-processing signal, computing the frequency distribution of the error signal, and adjusting the filtering region of the first pre-filtering component and the second pre-filtering component based on the frequency distribution.
14. The noise control method of claim 10, wherein the feedforward module adjusts at least a parameter of the feedforward processing according to the first pre-processing signal; the feedback module adjusts at least a parameter of the feedback processing according to the second pre-processing signal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0015] The connecting elements according to the present invention will be described in detail below through embodiments and with reference to the accompanying drawings. A person having ordinary skill in the art may understand the advantages and effects of the present disclosure through the contents disclosed in the present specification.
[0016] It should be understood that, even though the terms such as “first”, “second”, “third” may be used to describe an element, a part, a region, a layer and/or a portion in the present specification, but these elements, parts, regions, layers and/or portions are not limited by such terms. Such terms are merely used to differentiate an element, a part, a region, a layer and/or a portion from another element, part, region, layer and/or portion. Therefore, in the following discussions, a first element, portion, region, portion may be called a second element, portion, region, layer or portion, and do not depart from the teaching of the present disclosure. The terms “comprise”, “include” or “have” used in the present specification are open-ended terms and mean to “include, but not limit to.”
[0017] Unless otherwise particularly indicated, the terms, as used herein, generally have the meanings that would be commonly understood by those of ordinary skill in the art. Some terms used to describe the present disclosure are discussed below or elsewhere in this specification to provide additional guidance to those skilled in the art in connection with the description of the present disclosure.
[0018] As used herein, the term “coupled to” in the various tenses of the verb “couple” may mean that element A is directly connected to element B or that other elements may be connected between elements A and B (i.e., that element A is indirectly connected with element B). In the case of electrical components, the term “coupled to” may also be used herein to mean that a wire, trace, or other electrically conductive material is used to electrically connect elements A and B (and any components electrically connected therebetween). In some examples, the term “coupled to” indicates having an electric current flowing between the elements A and B. In some examples, the term “electrically connected” may indicate having an electric current flowing between the elements A and B.
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[0020] In an embodiment, the noise control device 10 can be arranged in an electronic device such as a headphone. As shown in
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[0022] In an embodiment, the error signal e(n) can have an aperiodic first part ent(n) and a periodic second part et(n). Preferably, the aperiodic part ent(n) often occurs in the low frequency band. The feedforward module FF mainly processes signals in low frequency band. If only the first part ent(n) of the error signal e(n) is provided to the feedforward module FF, by avoiding the influence of high-frequency noises, the convergence rate of the feedforward module FF may be improved. In another aspect, compared to the first part ent(n), the second part et(n) has higher frequencies. The feedback module FB mainly processes periodic signals. If only the second part et(n) of the error signal e(n) is provided to the feedback module FB, the convergence rate of feedback module FB can be improved by avoiding irregular noise. In a preferred embodiment, through artificial intelligence (AI) or big data or other related technologies, the error signal e(n) can be trained and inferenced to achieve better convergence ability. Besides, since the first pre-processing signal ps1 corresponds to the first part ent(n) which belongs to the first frequency region in error signal e(n), when outputting the first pre-processing signal ps1 to the feedforward module FF, the first part ent(n) of the error signal e(n) can be directly sent to the feedforward module FF, or it can be sent to the feedforward module FF after amplification or other signal processing. Similarly, since the second pre-processing signal ps2 corresponds to the second part et(n) which belongs to the second frequency region in the error signal e(n), when outputting the second pre-processing signal ps2 to the feedback module FB, the second part et(n) of the error signal e(n) can be directly sent to the feedback module FB, or it can be sent to the feedback module FB after amplification or other signal processing.
[0023] In a preferred embodiment, the feedforward module FF is configured to adjust the parameter(s) of the feedforward processing W(z) based on the first pre-processing signal ps1, and the feedback module FB is configured to adjust the parameter(s) of the feedback processing M(z) based on the second pre-processing signal ps2. More specifically, the method to calculate the parameters of the feedforward processing W(z) and the feedback processing M(z) can be but not limited to Least Mean Square (LMS) method, Least Square method or any other conventional method to minimize error. The feedforward module FF can adjust the parameter(s) of the feedforward processing W(z) based on the first pre-processing signal ps1 to improve the convergence rate of the feedforward module FF; the feedback module FB can adjust the parameter(s) of feedback processing M(z) based on the second pre-processing signal ps2 to improve the convergence rate of the feedback module FB.
[0024] Refer to
[0025] In an embodiment, the filtering region of the first pre-filtering element PF1 and the second pre-filtering element PF2 can be adjusted by the noise bandwidth detecting element NBD. In other words, the noise bandwidth detecting element NBD can compute the frequency distribution of the error signal e(n) and adjust the filtering region of the first pre-filtering element PF1 and the second pre-filtering element PF2. More specifically, since the first pre-filtering element PF1 is a low-pass filter, the filtering threshold of the first pre-filtering element PF1 can be set by the noise bandwidth detecting element NBD (for example, under 2 k Hz) to determine the frequency region of the signals passing through the first pre-filtering element PF1. Similarly, since the second pre-filtering element PF2 is a band-pass filter or high pass filter, when the error signal e(n) has signal section(s) that occur periodically, the noise bandwidth detecting element NBD will adjust the second frequency region according to the signal section(s) (for example, 2 k-5 k Hz).
[0026] In an embodiment, the noise bandwidth detecting element NBD can be improved by, for example, machine learning, deep learning or neural networks analysis to optimize the filtering region of the first pre-filtering element PF1 and the second pre-filtering element PF2. For example, before receiving noise or activating the noise control system, the noise bandwidth detecting element NBD can detect the background error signal from ambient environment to establish/train a database. When activating the noise control system 12 or receiving the target sound TS, the noise bandwidth detecting element NBD can use parameters stored in the database to improve the response rate of the noise control system 12.
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[0029] The foregoing disclosure is merely preferred embodiments of the present invention and is not intended to limit the claims of the present invention. Any equivalent technical variation of the description and drawings of the present invention of the present shall be within the scope of the claims of the present invention.