Sound signal processing device, acoustic system, and sound signal processing method

The sound signal processing device addresses clipping issues by using filters and amplitude limiting to synthesize high-frequency and low-frequency signals, ensuring clear and powerful sound output from both speakers in vehicles.

JP7722206B2Active Publication Date: 2025-08-13YAMAHA CORP
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Patent Information

Application Number
JP2022010046
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-01-26
Publication Date
2025-08-13
Estimated Expiration
2042-01-26

AI Technical Summary

Technical Problem

When an acoustic system with a single amplifier output supplied to both a high-frequency and low-frequency speaker is installed in a vehicle, the power supply voltage limitations can cause clipping of the sound signal, leading to high-frequency components that result in noise from the high-frequency speaker.

Method used

A sound signal processing device that includes a high-pass filter, amplitude limiting unit, and low-pass filter to generate and synthesize high-frequency and low-frequency sound signals, ensuring the amplifier output does not exceed clipping voltage, thereby reducing noise in the high-frequency speaker.

Benefits of technology

The solution effectively reduces noise in the high-frequency speaker output by preventing clipping and harmonics, allowing both speakers to produce clear and powerful sound without interference.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a technique capable of reducing a noise component included in output sound from a high-frequency speaker, in a situation in which a sound signal output from an amplification device is supplied to both the high-frequency speaker and a low-frequency speaker.SOLUTION: A sound signal processing device supplies an output sound signal to an amplification device configured to supply a first sound signal to a high-frequency speaker and a low-frequency speaker. The sound signal processing device includes: a high-pass filter configured to remove a low-frequency component from an input sound signal to generate a high-frequency sound signal; an amplitude limitation circuit configured to limit an amplitude of the input sound signal at or below a reference value to generate a second sound signal, the reference value corresponding to a clipping voltage for clipping the first sound signal output from the amplification device; a low-pass filter configured to remove a high-frequency component from the second sound signal generated by the amplitude limitation circuit to generate a low-frequency sound signal; and a synthesis circuit configured to synthesize the high-frequency sound signal generated by the high-pass filter and the low-frequency sound signal generated by the low-pass filter to generate the output sound signal.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The present disclosure relates to a sound signal processing device, an acoustic system, and a sound signal processing method. [Background technology]

[0002] Patent Document 1 discloses an acoustic system in which one sound signal output from one amplifier is supplied to both a high-frequency speaker (tweeter) and a low-frequency speaker (woofer). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2012-74780 Summary of the Invention [Problem to be solved by the invention]

[0004] When the acoustic system described in Patent Document 1 is installed in a vehicle or the like, it may not be possible to increase the power supply voltage of the amplifier. For this reason, when a large-amplitude sound signal is supplied to the amplifier, the amplifier is likely to output a sound signal having a waveform clipped by the power supply voltage (clip voltage). The clipped waveform contains high-frequency components caused by the clipping.

[0005] When high frequency components caused by clipping are supplied from the amplifier to the high frequency speaker, the high frequency speaker outputs noise caused by the high frequency components.

[0006] One aspect of the present disclosure aims to provide a technology that can reduce noise components contained in the output sound from a high-frequency speaker when the sound signal output from an amplifier device is supplied to both a high-frequency speaker and a low-frequency speaker. [Means for solving the problem]

[0007] A sound signal processing device according to one embodiment of the present disclosure is a sound signal processing device that supplies an output sound signal to an amplifier device that supplies a first sound signal to a high-frequency speaker and a low-frequency speaker, and includes: a high-pass filter that generates a high-frequency sound signal by removing low-frequency components from an input sound signal; an amplitude limiting unit that generates a second sound signal by limiting the amplitude of the input sound signal so that the first sound signal output from the amplifier device does not exceed a reference value corresponding to a clipping voltage at which the first sound signal is clipped; a low-pass filter that generates a low-frequency sound signal by removing high-frequency components from the second sound signal generated by the amplitude limiting unit; and a synthesis unit that generates the output sound signal by synthesizing the high-frequency sound signal generated by the high-pass filter and the low-frequency sound signal generated by the low-pass filter.

[0008] A sound signal processing device according to another aspect of the present disclosure is a sound signal processing device that supplies an output sound signal to an amplifier device that supplies a first sound signal to a high-frequency speaker and a low-frequency speaker, and includes: a high-pass filter that generates a high-frequency sound signal by removing low-frequency components from an input sound signal; a first low-pass filter that generates a filter output signal by removing high-frequency components from the input sound signal; an amplitude limiting unit that generates a second sound signal by limiting the amplitude of the filter output signal so that the first sound signal output from the amplifier device does not exceed a reference value corresponding to a clipping voltage at which the first sound signal is clipped; a second low-pass filter that generates a low-frequency sound signal by removing high-frequency components from the second sound signal generated by the amplitude limiting unit; and a synthesis unit that generates the output sound signal by synthesizing the high-frequency sound signal generated by the high-pass filter and the low-frequency sound signal generated by the second low-pass filter.

[0009] An acoustic system according to yet another aspect of the present disclosure includes the above-described sound signal processing device, the high-frequency speaker, the low-frequency speaker, and the amplifier device.

[0010] A sound signal processing method according to yet another aspect of the present disclosure is a sound signal processing method implemented by a computer that supplies an output sound signal to an amplifier device that supplies a first sound signal to a high-frequency speaker and a low-frequency speaker, the method generating a high-frequency sound signal by removing low-frequency components from an input sound signal, generating a second sound signal by limiting the amplitude of the input sound signal so that it does not exceed a reference value corresponding to a clipping voltage at which the first sound signal output from the amplifier device is clipped, generating a low-frequency sound signal by removing high-frequency components from the generated second sound signal, and generating the output sound signal by combining the generated high-frequency sound signal and the generated low-frequency sound signal.

[0011] A sound signal processing method according to yet another aspect of the present disclosure is a sound signal processing method implemented by a computer that supplies an output sound signal to an amplifier device that supplies a first sound signal to a high-frequency speaker and a low-frequency speaker, the method generating a high-frequency sound signal by removing low-frequency components from an input sound signal, generating a filter output signal by removing high-frequency components from the input sound signal, generating a second sound signal by amplitude-limiting the filter output signal so that it does not exceed a reference value corresponding to a clipping voltage at which the first sound signal output from the amplifier device is clipped, generating a low-frequency sound signal by removing high-frequency components from the generated second sound signal, and generating the output sound signal by combining the generated high-frequency sound signal and the generated low-frequency sound signal. [Brief explanation of the drawings]

[0012] [Figure 1] 1 is a diagram showing an example of an acoustic system 1 according to a first embodiment. [Figure 2] FIG. 2 is a diagram showing an example of a first sound signal c1. [Figure 3] FIG. 1 is a diagram illustrating an example of a sound signal processing device 40. [Figure 4] 10 is a diagram illustrating an example of amplitude limitation performed by an amplitude limiting unit 103. FIG. [Figure 5] 10A to 10C are diagrams illustrating an example of the operation of the sound system 1. [Figure 6] FIG. 10 is a diagram showing a first modified example. [Figure 7] FIG. 10 is a diagram showing an example of the operation of the sound system 1 of the first modified example. DETAILED DESCRIPTION OF THE INVENTION

[0013] A: First embodiment A1: Sound System 1 FIG. 1 is a diagram showing an example of an acoustic system 1 according to a first embodiment. The acoustic system 1 is a system in which a first sound signal c1 is supplied to both a tweeter 10 and a woofer 20. The first sound signal c1 is a signal that represents sound by a waveform. The acoustic system 1 is mounted on a vehicle 100 such as an automobile.

[0014] The vehicle 100 is driven by a passenger in the vehicle 100. The vehicle 100 may perform autonomous driving without being driven by a passenger in the vehicle 100. The vehicle 100 includes an acoustic system 1, wheels 2a to 2d, an operation unit 3, and a sound source 4.

[0015] Each of the wheels 2a and 2b is a front wheel of the vehicle 100. Each of the wheels 2c and 2d is a rear wheel of the vehicle 100. The vehicle 100 may have additional wheels in addition to the wheels 2a to 2d.

[0016] The operation unit 3 is a touch panel. The operation unit 3 is not limited to a touch panel, and may be an operation panel having various operation buttons. The operation unit 3 receives operations performed by a passenger of the vehicle 100. Hereinafter, the "passenger of the vehicle 100" will be referred to as a "user."

[0017] The sound source 4 generates a sound signal a1. The sound signal a1 is a signal that represents a sound. The greater the amplitude of the sound signal a1, the louder the volume of the sound represented by the sound signal a1.

[0018] The sound system 1 includes a tweeter 10, a woofer 20, a storage device 30, a sound signal processing device 40, and an amplification device 50. The storage device 30 may be an external element of the sound system 1.

[0019] The tweeter 10 is an example of a high-frequency speaker. The high frequency means a high-pitched range. The woofer 20 is an example of a low-pitched speaker. The low frequency means a low-pitched range. The tweeter 10 and the woofer 20 are located in the passenger compartment of the vehicle 100. The crossover frequency between the tweeter 10 and the woofer 20 is 3 kHz. The crossover frequency between the tweeter 10 and the woofer 20 is not limited to 3 kHz, and may be, for example, higher or lower than 3 kHz.

[0020] The storage device 30 is a computer-readable recording medium (e.g., a non-transitive recording medium readable by a computer). The storage device 30 includes a non-volatile memory and a volatile memory. Examples of the non-volatile memory include a ROM (Read Only Memory), an EPROM (Erasable Programmable Read Only Memory), and an EEPROM (Electrically Erasable Programmable Read Only Memory). Examples of the volatile memory include a RAM (Random Access Memory).

[0021] The storage device 30 stores a program p1. The program p1 determines the operation of the sound signal processing device 40. The storage device 30 may store the program p1 read from a storage device in a server (not shown). In this case, the storage device in the server is an example of a computer-readable recording medium.

[0022] The sound signal processing device 40 includes one or more central processing units (CPUs). The one or more CPUs are an example of one or more processors. Each of the sound signal processing device, the processor, and the CPU is an example of a computer.

[0023] The sound signal processing device 40 reads the program p1 from the storage device 30. The sound signal processing device 40 executes the program p1 to realize various functions.

[0024] The sound signal processing device 40 generates an output sound signal b1 from the sound signal a1. The output sound signal b1 is a signal that represents sound by its waveform. The output sound signal b1 is a signal that is supplied to the amplifier device 50.

[0025] The amplifier 50 generates a first sound signal c1 by amplifying the output sound signal b1. The amplifier 50 supplies the first sound signal c1 to the tweeter 10 and the woofer 20.

[0026] The amplifier device 50 has a fixed gain (amplification factor). When an amplified signal h1 obtained by amplifying the output sound signal b1 with the gain of the amplifier device 50 exceeds a clipping voltage of the amplifier device 50, the amplifier device 50 generates a signal obtained by clipping the amplified signal h1 at the clipping voltage as a first sound signal c1.

[0027] 2 is a diagram showing an example of a clipped first sound signal c1. The voltages +VF and −VF are clip voltages. The amplified signal h1 exceeds the clip voltage when the amplified signal h1 is greater than the voltage +VF and when the amplified signal h1 is less than the voltage −VF.

[0028] The clipped first sound signal c1 contains harmonics of the first sound signal c1. The harmonics of the first sound signal c1 constitute high frequency components. When the harmonics of the first sound signal c1 are supplied to the tweeter 10, the tweeter 10 emits noise caused by the harmonics of the first sound signal c1.

[0029] The clipping voltage, which affects the generation of noise, depends on the power supply voltage of the amplifier device 50. The power supply voltage of the amplifier device 50 is supplied from the vehicle 100. Therefore, if the vehicle 100 cannot supply a high power supply voltage to the amplifier device 50, clipping, which is a cause of noise, is likely to occur in the amplifier device 50.

[0030] The sound signal processing device 40 generates a sound signal that does not cause clipping in the amplifier device 50 as an output sound signal b1.

[0031] A2: Sound signal processing device 40 3 is a diagram illustrating an example of a sound signal processing device 40. By executing a program p1, the sound signal processing device 40 functions as an adjustment unit 101, an HPF (High Pass Filter) 102, an amplitude limiting unit 103, an LPF (Low Pass Filter) 104, and a synthesis unit 105. At least one of the adjustment unit 101, the HPF 102, the amplitude limiting unit 103, the LPF 104, and the synthesis unit 105 may be configured by circuits such as a DSP (Digital Signal Processor) and an ASIC (Application Specific Integrated Circuit). The adjustment unit 101 may be an external element of the sound signal processing device 40. The adjustment unit 101 may be omitted.

[0032] The adjustment unit 101 generates the input sound signal d1 by adjusting the amplitude of the sound signal a1. For example, the adjustment unit 101 generates the input sound signal d1 by adjusting the amplitude of the sound signal a1 in accordance with a volume operation by the user.

[0033] When the operation unit 3 receives an operation to increase the volume from the user, the adjustment unit 101 increases the amplitude of the sound signal a1. For example, if the operation to increase the volume is an operation to amplify only the bass components of the sound signal a1, the adjustment unit 101 generates the input sound signal d1 by increasing the amplitude of the bass components of the sound signal a1 while maintaining the amplitude of the treble components of the sound signal a1.

[0034] When the operation unit 3 receives an operation to decrease the volume from the user, the adjustment unit 101 decreases the amplitude of the sound signal a1. For example, if the operation to decrease the volume is an operation to decrease only the bass component of the sound signal a1, the adjustment unit 101 generates the input sound signal d1 by decreasing the amplitude of the bass component of the sound signal a1 while maintaining the amplitude of the treble component of the sound signal a1.

[0035] The adjustment unit 101 may generate the input sound signal d1 by adjusting the amplitude of the sound signal a1 according to the state of the vehicle 100. The state of the vehicle 100 is, for example, the speed state of the vehicle 100 or the acceleration state of the vehicle 100. For example, the greater the acceleration of the vehicle 100, the greater the amplitude of the sound signal a1 the adjustment unit 101 may make. The greater the speed of the vehicle 100, the greater the amplitude of the sound signal a1 the adjustment unit 101 may make. If the amplitude of the sound signal a1 is not adjusted, the adjustment unit 101 outputs the sound signal a1 as the input sound signal d1.

[0036] The input sound signal d1 includes low frequency components and high frequency components. The low frequency components are components having frequencies below the cutoff frequency of the HPF 102. The high frequency components are components having frequencies equal to or higher than the cutoff frequency of the LPF 104. The amplitude of a signal made up of low frequency components is greater than the amplitude of a signal made up of high frequency components.

[0037] The HPF 102 is a second-order IIR filter (Infinite Impulse Response Filter). The HPF 102 is not limited to a second-order IIR filter, and may be, for example, a first-order IIR filter or a third-order IIR filter. The HPF 102 may be a digital filter other than an IIR filter, such as an FIR filter (Finite Impulse Response Filter).

[0038] The cutoff frequency of the HPF 102 is the same as the crossover frequency between the tweeter 10 and the woofer 20. The cutoff frequency of the HPF 102 may be different from the crossover frequency between the tweeter 10 and the woofer 20. For example, the cutoff frequency of the HPF 102 may be a frequency within a range of plus or minus E% of the crossover frequency between the tweeter 10 and the woofer 20. E% is, for example, 20%. E% is not limited to 20% and may be, for example, a value smaller than 20% or a value larger than 20%.

[0039] The HPF 102 generates a high-frequency sound signal d2 by removing low-frequency components from the input sound signal d1.

[0040] The amplitude limiting unit 103 generates a second sound signal d3 by limiting the amplitude of the input sound signal d1 so that the first sound signal c1 output from the amplifier 50 does not exceed a reference value corresponding to a clipping voltage at which the first sound signal c1 is clipped.

[0041] 4 is a diagram showing an example of amplitude limitation performed by the amplitude limiting section 103. Each of the signal amplitude +R and the signal amplitude −R is a reference value.

[0042] 3 , the amplitude limiting unit 103 limits the amplitude of the input sound signal d1 so that it does not exceed a reference value, thereby preventing the first sound signal c1 from being clipped in the amplifier device 50. In other words, by limiting the amplitude of the input sound signal d1 so that it does not exceed the reference value, the amplitude limiting unit 103 limits the voltage level of the output sound signal b1 to a voltage level that generates the first sound signal c1 that is not clipped in the amplifier device 50.

[0043] The voltage level at which the first sound signal c1 is not clipped in the amplifier device 50 is a voltage level that does not exceed the clipping voltage of the amplifier device 50. The voltage level at which the first sound signal c1 is not clipped in the amplifier device 50 can also be expressed as a voltage level that is different from the voltage level at which the first sound signal c1 is clipped in the amplifier device 50.

[0044] The reference value is determined in advance so that the first sound signal c1 is not clipped in the amplifier device 50. As the reference value increases, the amplitude of the output sound signal b1 increases. As the reference value decreases, the amplitude of the output sound signal b1 decreases.

[0045] The reference value is, for example, a value that is determined in advance based on the clipping voltage and gain of the amplifying device 50. The maximum amplitude of a signal that is input to the amplifying device 50 but does not cause the first sound signal c1 to be clipped in the amplifying device 50 is determined based on the clipping voltage and gain of the amplifying device 50. For example, the maximum amplitude of a signal that is input to the amplifying device 50 but does not cause the first sound signal c1 to be clipped in the amplifying device 50 is determined by dividing the clipping voltage of the amplifying device 50 by the gain of the amplifying device 50. Hereinafter, the maximum amplitude of a signal that is input to the amplifying device 50 but does not cause the first sound signal c1 to be clipped in the amplifying device 50 is referred to as the "first maximum amplitude."

[0046] The reference value is, for example, a value that limits the maximum amplitude of the output sound signal b1 to less than the "first maximum amplitude." As an example, the reference value is a value that limits the maximum amplitude of the output sound signal b1 to an amplitude of F% of the "first maximum amplitude." F% is, for example, 80%. F% is not limited to 80%, and may be a value smaller than 80% (for example, 70%) or a value larger than 80% (for example, 85%). For example, the larger the value obtained by dividing the estimated value of the amplitude of the high frequency components in the input sound signal d1 by the estimated value of the amplitude of the low frequency components in the input sound signal d1, the smaller F% may be. Note that the estimated value of the amplitude of the high frequency components in the input sound signal d1 and the estimated value of the amplitude of the low frequency components in the input sound signal d1 are determined in advance based on samples of the input sound signal d1.

[0047] As will be described later, the output sound signal b1 is generated by synthesizing the high-frequency sound signal d2 generated by the HPF 102 and the low-frequency sound signal d4 generated by the LPF 104 in the synthesis unit 105. The low-frequency sound signal d4 is generated by removing high frequency components from the second sound signal d3 generated by the amplitude limiting unit 103.

[0048] Therefore, for example, when the gain of the LPF 104 and the gain of the synthesis unit 105 are each "1x," the reference value may be a value that limits the maximum amplitude of the output sound signal b1 to an amplitude obtained by subtracting the estimated value of the amplitude of the high-frequency sound signal d2 from the "first maximum amplitude." The estimated value of the amplitude of the high-frequency sound signal d2 is determined in advance based on samples of the high-frequency sound signal d2.

[0049] The reference value is set in advance in the program p1. The amplitude limiting unit 103 generates the second sound signal d3 by limiting the amplitude of the input sound signal d1 so that it does not exceed the preset reference value. When the amplitude limiting unit 103 limits the amplitude of the input sound signal d1, the first sound signal c1 in the amplifier device 50 is not clipped at the clipping voltage.

[0050] When the amplitude limiting unit 103 generates the second sound signal d3 by limiting the amplitude of the input sound signal d1, the second sound signal d3 contains harmonics resulting from the amplitude limiting. The harmonics resulting from the amplitude limiting in the amplitude limiting unit 103 are harmonics of the second sound signal d3. When the harmonics resulting from the amplitude limiting in the amplitude limiting unit 103 are supplied to the tweeter 10 via the amplifier device 50, the tweeter 10 outputs noise.

[0051] The LPF 104 generates a low-frequency sound signal d4 by removing high-frequency components from the second sound signal d3 generated by the amplitude limiting unit 103. That is, the LPF 104 removes harmonics resulting from the amplitude limiting performed by the amplitude limiting unit 103 from the second sound signal d3.

[0052] The LPF 104 is a second-order IIR filter. The LPF 104 is not limited to a second-order IIR filter, and may be, for example, a first-order IIR filter or a third-order IIR filter. The LPF 104 may be a digital filter other than an IIR filter, such as an FIR filter.

[0053] The cutoff frequency of LPF 104 is the same as the cutoff frequency of HPF 102. The cutoff frequency of LPF 104 is the same as the crossover frequency between the tweeter 10 and the woofer 20. The cutoff frequency of LPF 104 may be different from the crossover frequency between the tweeter 10 and the woofer 20. For example, the cutoff frequency of LPF 104 may be a frequency within a range of plus or minus E% (e.g., 20%) of the crossover frequency between the tweeter 10 and the woofer 20.

[0054] The LPF 104 removes from the second sound signal d3 not only the harmonics caused by the amplitude limiting in the amplitude limiting unit 103, but also the high-frequency sound signal d2 contained in the input sound signal d1. As a result, the low-frequency sound signal d4 does not have both the harmonics caused by the amplitude limiting in the amplitude limiting unit 103 and the high-frequency sound signal d2 contained in the input sound signal d1.

[0055] The synthesis unit 105 generates an output sound signal b1 by synthesizing the high-frequency sound signal d2 generated by the HPF 102 and the low-frequency sound signal d4 generated by the LPF 104. That is, the synthesis unit 105 generates the output sound signal b1 by adding the high-frequency sound signal d2, which is not included in the low-frequency sound signal d4, to the low-frequency sound signal d4. Therefore, the output sound signal b1 includes the high-frequency sound signal d2 removed by the LPF 104. Furthermore, the output sound signal b1 is a signal having a voltage level that generates a first sound signal c1 that is not clipped in the amplification device 50. The synthesis unit 105 supplies the output sound signal b1 to the amplification device 50.

[0056] The amplifier device 50 generates a first sound signal c1 by amplifying the output sound signal b1. When the amplifier device 50 amplifies the output sound signal b1, clipping does not occur in the amplifier device 50. Therefore, harmonics associated with clipping do not occur in the amplifier device 50. Therefore, the first sound signal c1 does not include harmonics associated with clipping. The amplifier device 50 supplies the first sound signal c1 to both the tweeter 10 and the woofer 20.

[0057] The tweeter 10 emits a sound corresponding to the high-frequency components of the first sound signal c1. Because the first sound signal c1 does not include harmonics associated with clipping, the tweeter 10 does not emit noise caused by harmonics associated with clipping. This reduces the noise components contained in the sound output from the tweeter 10. The woofer 20 emits a sound corresponding to the low-frequency components of the first sound signal c1.

[0058] A3: Explanation of operation FIG. 5 is a diagram showing an example of the operation of the sound system 1. As shown in FIG.

[0059] In step S101, the adjustment unit 101 adjusts the amplitude of the sound signal a1 in response to a user operation to generate an input sound signal d1.

[0060] Next, in step S102, the HPF 102 generates a high-frequency sound signal d2 by removing low-frequency components from the input sound signal d1. Note that step S102 may be executed between step S103 (to be described later) and step S105 (to be described later).

[0061] Next, in step S103, the amplitude limiting unit 103 generates a second sound signal d3 by limiting the amplitude of the input sound signal d1 so that it does not exceed a reference value. The second sound signal d3 generated by the amplitude limiting unit 103 includes harmonics resulting from the amplitude limiting by the amplitude limiting unit 103.

[0062] Next, in step S104, the LPF 104 removes high frequency components from the second sound signal d3 to generate a low frequency sound signal d4. The low frequency sound signal d4 does not include both harmonics resulting from amplitude limitation by the amplitude limiting unit 103 and the high frequency sound signal d2 that was included in the input sound signal d1.

[0063] Next, in step S105, the synthesis unit 105 generates an output sound signal b1 by synthesizing the high-frequency sound signal d2 generated by the HPF 102 and the low-frequency sound signal d4 generated by the LPF 104. Therefore, the output sound signal b1 includes the high-frequency sound signal d2 removed by the LPF 104. In addition, the output sound signal b1 has a voltage level at which clipping does not occur in the amplification device 50.

[0064] Subsequently, in step S106, the synthesis unit 105 supplies the output sound signal b1 to the amplifier device 50.

[0065] Next, in step S107, the amplifier device 50 generates a first sound signal c1 by amplifying the output sound signal b1. The first sound signal c1 is not clipped in the amplifier device 50. Therefore, the first sound signal c1 does not include harmonics that accompany clipping.

[0066] Subsequently, in step S108, the amplifying device 50 supplies the first sound signal c1 to both the tweeter 10 and the woofer 20.

[0067] Next, in step S109, the tweeter 10 and the woofer 20 emit sound based on the first sound signal c1. The first sound signal c1 does not include harmonics associated with clipping. Therefore, noise caused by harmonics associated with clipping is not emitted from the tweeter 10. Therefore, the noise components included in the output sound from the tweeter 10 are reduced.

[0068] A4: Summary of the first embodiment The amplitude limiting unit 103 generates a second sound signal d3 by limiting the amplitude of the input sound signal d1 so that it does not exceed a reference value. The LPF 104 removes, from the second sound signal d3 generated by the amplitude limiting unit 103, harmonics resulting from the amplitude limiting in the amplitude limiting unit 103 and the high-frequency sound signal d2 included in the input sound signal d1. The synthesis unit 105 generates an output sound signal b1 by synthesizing the high-frequency sound signal d2 generated by the HPF 102 and the low-frequency sound signal d4 generated by the LPF 104. The amplification device 50 generates a first sound signal c1 by amplifying the output sound signal b1. The amplification device 50 supplies the first sound signal c1 to both the tweeter 10 and the woofer 20.

[0069] Therefore, the woofer 20 can output a powerful sound, while reducing noise contained in the sound output from the tweeter 10.

[0070] The reference value used by the amplitude limiting section 103 is a value that is determined in advance based on the clipping voltage of the amplifier device 50 and the gain of the amplifier device 50 .

[0071] Therefore, according to the amplification characteristics of the amplifier 50, namely, the clipping voltage of the amplifier 50 and the gain of the amplifier 50, the woofer 20 can output a powerful sound while limiting the generation of noise (noise caused by clipping) contained in the output sound from the tweeter 10.

[0072] The cutoff frequency of the HPF 102 is equal to the cutoff frequency of the LPF 104. Therefore, compared to a configuration in which the cutoff frequency of the HPF 102 is different from the cutoff frequency of the LPF 104, the frequency components of the input sound signal d1 can be reflected in the frequency components of the output sound signal b1.

[0073] The cutoff frequency of the HPF 102 and the cutoff frequency of the LPF 104 are not limited to 3 kHz, but may be, for example, higher or lower than 3 kHz.

[0074] The cutoff frequency of the HPF 102 may be different from the cutoff frequency of the LPF 104. In this case as well, noise (noise caused by clipping) included in the output sound from the tweeter 10 can be reduced.

[0075] The order of the HPF 102 is equal to the order of the LPF 104. Therefore, the phase characteristics of the high-frequency sound signal d2 input to the synthesis unit 105 are aligned with the phase characteristics of the low-frequency sound signal d4 input to the synthesis unit 105. Therefore, compared to a configuration in which the order of the HPF 102 does not match the order of the LPF 104, the quality of the sound represented by the output sound signal b1 is improved.

[0076] The orders of the HPF 102 and the LPF 104 are not limited to the second order, but may be higher or lower than the second order, for example.

[0077] The order of the HPF 102 may be different from the order of the LPF 104. In this case as well, noise (noise caused by clipping) included in the output sound from the tweeter 10 can be reduced.

[0078] The adjustment unit 101 generates the input sound signal d1 by adjusting the amplitude of the sound signal a1 in response to the volume control by the user. Therefore, the volume control by the user is reflected in the amplitude of the input sound signal d1, not in the gain of the amplification device 50. Therefore, even if the amplitude of the input sound signal d1 increases in response to the volume control by the user, the occurrence of clipping in the amplification device 50 can be suppressed. Therefore, the noise (noise caused by clipping) included in the output sound from the tweeter 10 can be reduced.

[0079] B: Modified example Modifications of the first embodiment are shown below. Two or more aspects arbitrarily selected from the following aspects may be combined as appropriate within the scope of not contradicting each other.

[0080] B1: First modified example 6 is a diagram showing a first modified example. The first modified example will be described below, focusing mainly on the differences from the first embodiment. The first modified example differs from the first embodiment in that it has an LPF 106 and an HPF 107, for example.

[0081] In the first modification, the storage device 30 stores a program p2 instead of the program p1. The sound signal processing device 40 reads the program p2 from the storage device 30. By executing the program p2, the sound signal processing device 40 functions as an adjustment unit 101, an amplitude limiting unit 103, an LPF 104, a synthesis unit 105, an LPF 106, and an HPF 108. The HPF 108 includes an HPF 102 and an HPF 107. At least one of the adjustment unit 101, the amplitude limiting unit 103, the LPF 104, the synthesis unit 105, the LPF 106, and the HPF 108 may be configured by a circuit such as a DSP or an ASIC.

[0082] The LPF 106 is an example of a first low-pass filter. The LPF 106 is a second-order IIR filter. The LPF 106 is not limited to a second-order IIR filter, and may be, for example, a first-order IIR filter or a third-order IIR filter. The LPF 106 may be a digital filter other than an IIR filter, such as an FIR filter.

[0083] The cutoff frequency of the LPF 106 is the same as the cutoff frequency of the HPF 102 and the cutoff frequency of the LPF 104. The cutoff frequency of the LPF 106 is the same as the crossover frequency between the tweeter 10 and the woofer 20. The cutoff frequency of the LPF 106 may be different from the crossover frequency between the tweeter 10 and the woofer 20. For example, the cutoff frequency of the LPF 106 may be a frequency within a range of plus or minus E% (e.g., 20%) of the crossover frequency between the tweeter 10 and the woofer 20.

[0084] The LPF 106 generates a filter output signal g1 by removing high frequency components from the input sound signal d1.

[0085] The amplitude limiting unit 103 of the first modified example generates a second sound signal g2 by limiting the amplitude of the filter output signal g1 so that the first sound signal c1 output from the amplifier device 50 does not exceed a reference value corresponding to a clipping voltage at which the first sound signal c1 is clipped. The second sound signal g2 includes harmonics resulting from the amplitude limiting by the amplitude limiting unit 103. These harmonics are harmonics of the second sound signal g2.

[0086] The LPF 104 of the first modified example is an example of a second low-pass filter. The LPF 104 of the first modified example generates a low-frequency sound signal g3 by removing high-frequency components from the second sound signal g2. The low-frequency sound signal g3 is a signal obtained by removing harmonics resulting from amplitude limitation by the amplitude limiting unit 103 from the second sound signal g2. Furthermore, because the LPF 106 removes high-frequency components from the input sound signal d1, the low-frequency sound signal g3 does not include the high-frequency sound signal d2 included in the input sound signal d1.

[0087] The HPF 107 is a second-order IIR filter. The HPF 107 is not limited to a second-order IIR filter, and may be, for example, a first-order IIR filter or a third-order IIR filter. The HPF 107 may be a digital filter other than an IIR filter, such as an FIR filter.

[0088] The cutoff frequency of HPF 107 is the same as the cutoff frequency of HPF 102, the cutoff frequency of LPF 104, and the cutoff frequency of LPF 106. The cutoff frequency of HPF 107 is the same as the crossover frequency between the tweeter 10 and the woofer 20. The cutoff frequency of HPF 107 may be different from the crossover frequency between the tweeter 10 and the woofer 20. For example, the cutoff frequency of HPF 107 may be a frequency within a range of plus or minus E% (e.g., 20%) of the crossover frequency between the tweeter 10 and the woofer 20.

[0089] The HPF 107 generates a high-frequency sound signal g4 by removing low frequency components from the high-frequency sound signal d2 generated by the HPF 102.

[0090] The HPF 108 includes an HPF 102 and an HPF 107. Therefore, the cutoff frequency of the HPF 108 is the same as the cutoff frequency of the LPF 104 and the cutoff frequency of the LPF 106. Since the HPF 102 and the HPF 107 are each a second-order IIR filter, the order of the phase in the HPF 108 is fourth order. The HPF 108 generates a high-frequency sound signal g4 by removing low-frequency components from the input sound signal d1.

[0091] The synthesis unit 105 of the first modified example generates an output sound signal b1 by synthesizing the high-frequency sound signal g4 generated by the HPF 108 and the low-frequency sound signal g3 generated by the LPF 104. Therefore, the output sound signal b1 includes the high-frequency sound signal g4 removed by the LPF 106. Furthermore, the output sound signal b1 is a signal having a voltage level that does not cause clipping in the amplification device 50. The synthesis unit 105 supplies the output sound signal b1 to the amplification device 50.

[0092] Fig. 7 is a diagram showing an example of the operation of the first modified example. In Fig. 7, the same processes as those shown in Fig. 5 are assigned the same reference numerals. Below, the processes that differ from the processes shown in Fig. 5 will be mainly explained.

[0093] In step S201 following step S101, the HPF 108 generates a high-frequency sound signal g4 by removing low-frequency components from the input sound signal d1. Note that step S201 may be executed between step S202 (to be described later) and step S205 (to be described later).

[0094] Subsequently, in step S202, the LPF 106 generates a filter output signal g1 by removing high frequency components from the input sound signal d1.

[0095] Next, in step S203, the amplitude limiting unit 103 generates a second sound signal g2 by limiting the amplitude of the filter output signal g1 so that it does not exceed a reference value. The second sound signal g2 includes harmonics resulting from the amplitude limiting by the amplitude limiting unit 103.

[0096] Next, in step S204, the LPF 104 removes high frequency components from the second sound signal g2 to generate a low frequency sound signal g3. The low frequency sound signal g3 does not include both harmonics resulting from amplitude limitation by the amplitude limiting unit 103 and the high frequency sound signal g4 included in the input sound signal d1.

[0097] Next, in step S205, the synthesis unit 105 generates an output sound signal b1 by synthesizing the high-frequency sound signal g4 generated by the HPF 108 and the low-frequency sound signal g3 generated by the LPF 104. Thereafter, steps S106 to S109 are executed.

[0098] According to the first modified example, similarly to the first embodiment, the woofer 20 can output a powerful sound while reducing noise contained in the output sound from the tweeter 10. Furthermore, since the first modified example includes the LPF 106, the quality of the output sound signal b1 is improved compared to a configuration that does not include the LPF 106.

[0099] The cutoff frequency of the HPF 108, the cutoff frequency of the LPF 104, and the cutoff frequency of the LPF 106 are all equal to one another. Therefore, compared to a configuration in which the cutoff frequencies of the HPF 108, the LPF 104, and the LPF 106 are all different from one another, the frequency components of the input sound signal d1 can be reflected in the frequency components of the output sound signal b1.

[0100] The cutoff frequencies of the HPF 108, the LPF 104, and the LPF 106 are not limited to 3 kHz, and may be, for example, higher or lower than 3 kHz.

[0101] The cutoff frequency of the HPF 108, the cutoff frequency of the LPF 104, and the cutoff frequency of the LPF 106 may be different from one another. In this case as well, noise (noise caused by clipping) included in the output sound from the tweeter 10 can be reduced.

[0102] The order of the HPF 108 is equal to the sum of the order of the LPF 104 and the order of the LPF 106. Therefore, the phase characteristics of the high-frequency sound signal g4 input to the synthesis unit 105 are aligned with the phase characteristics of the low-frequency sound signal g3 input to the synthesis unit 105. Therefore, the quality of the sound indicated by the output sound signal b1 is improved compared to a configuration in which the order of the HPF 108 does not match the sum of the order of the LPF 104 and the order of the LPF 106.

[0103] The sum of the orders of the HPF 108, LPF 104, and LPF 106 is not limited to the fourth order, but may be higher or lower than the fourth order, for example.

[0104] The order of HPF 108 and the sum of the orders of LPF 104 and LPF 106 may be different from each other. For example, HPF 102 or HPF 107 may be omitted. In this case, noise (noise caused by clipping) contained in the output sound from tweeter 10 can also be reduced. Furthermore, if HPF 102 or HPF 107 is omitted, the configuration can be simplified.

[0105] B2: Second variant In the first embodiment and the first modification, the gain of the amplifying device 50 may be variable. In this case, the reference value may be changed, for example, in response to a change in the gain of the amplifying device 50. For example, in response to a decrease in the gain of the amplifying device 50, the reference value +R shown in FIG. 4 may be increased and the reference value −R shown in FIG. 4 may be decreased.

[0106] The reference value may be determined in advance based on the clipping voltage and the maximum gain of the amplifying device 50. For example, the clipping voltage of the amplifying device 50 is first divided by the maximum gain of the amplifying device 50 to determine the maximum amplitude of a signal that is input to the amplifying device 50 but does not cause the first sound signal c1 to be clipped in the amplifying device 50. The reference value is a voltage that limits the maximum amplitude of the output sound signal b1 to an amplitude that is F% of the maximum amplitude of a signal that is input to the amplifying device 50 but does not cause the first sound signal c1 to be clipped in the amplifying device 50.

[0107] According to the second modification, even if the gain of the amplifying device 50 is variable, the woofer 20 can output a powerful sound, while the noise contained in the output sound from the tweeter 10 can be reduced.

[0108] B3: Third variant In the first embodiment and the first to second modified examples, the acoustic system 1 is not limited to being mounted on the vehicle 100, but may also be mounted on a vehicle such as the vehicle 100 in which it may be difficult to supply a high power supply voltage to the amplifier device 50. Examples of vehicles in which it may be difficult to supply a high power supply voltage to the amplifier device 50 include a small airplane or a small boat.

[0109] According to the third modification, for example, in a small airplane or a small boat, the woofer 20 can output a powerful sound while reducing noise contained in the output sound from the tweeter 10.

[0110] C: Aspects understood from the above-mentioned embodiments and modifications The following aspects can be understood from at least one of the above-described embodiments and modifications.

[0111] C1: First mode A sound signal processing device according to an aspect (first aspect) of the present disclosure is a sound signal processing device that supplies an output sound signal to an amplifier that supplies a first sound signal to a high-frequency speaker and a low-frequency speaker, and includes: a high-pass filter that generates a high-frequency sound signal by removing low-frequency components from an input sound signal; an amplitude limiting unit that generates a second sound signal by limiting the amplitude of the input sound signal so that the first sound signal output from the amplifier does not exceed a reference value corresponding to a clipping voltage at which the first sound signal is clipped; a low-pass filter that generates a low-frequency sound signal by removing high-frequency components from the second sound signal generated by the amplitude limiting unit; and a synthesis unit that generates the output sound signal by synthesizing the high-frequency sound signal generated by the high-pass filter and the low-frequency sound signal generated by the low-pass filter.

[0112] According to this aspect, in a situation where the first sound signal output from the amplifier device is supplied to both the high-frequency speaker and the low-frequency speaker, it is possible to reduce noise components contained in the sound output from the high-frequency speaker.

[0113] C2: Second mode In the example of the first aspect (second aspect), the cutoff frequency of the high-pass filter is equal to the cutoff frequency of the low-pass filter. According to this aspect, the frequency components of the input sound signal can be more effectively reflected in the frequency components of the output sound signal than in a configuration in which the cutoff frequency of the high-pass filter is different from the cutoff frequency of the low-pass filter.

[0114] C3: Third mode In an example of the first or second aspect (third aspect), the order of the high-pass filter is equal to the order of the low-pass filter. According to this aspect, the phase characteristics of the high-frequency sound signal input to the synthesis unit are aligned with the phase characteristics of the low-frequency sound signal input to the synthesis unit. Therefore, the quality of the sound indicated by the output sound signal is improved compared to a configuration in which the order of the high-pass filter does not match the order of the low-pass filter.

[0115] C4: Fourth mode A sound signal processing device according to an aspect (fourth aspect) of the present disclosure is a sound signal processing device that supplies an output sound signal to an amplifier device that supplies a first sound signal to a high-frequency speaker and a low-frequency speaker, and includes: a high-pass filter that generates a high-frequency sound signal by removing low-frequency components from an input sound signal; a first low-pass filter that generates a filter output signal by removing high-frequency components from the input sound signal; an amplitude limiting unit that generates a second sound signal by clipping the filter output signal so that the first sound signal output from the amplifier device does not exceed a reference value corresponding to a clipping voltage at which the first sound signal is clipped; a second low-pass filter that generates a low-frequency sound signal by removing high-frequency components from the second sound signal generated by the amplitude limiting unit; and a synthesis unit that generates the output sound signal by synthesizing the high-frequency sound signal generated by the high-pass filter and the low-frequency sound signal generated by the second low-pass filter.

[0116] According to this aspect, in a situation where the first sound signal output from the amplifier device is supplied to both the high-frequency speaker and the low-frequency speaker, it is possible to reduce noise components contained in the sound output from the high-frequency speaker. Furthermore, since this aspect includes the first low-pass filter, the quality of the output sound signal is improved compared to a configuration that does not include the first low-pass filter. can.

[0117] C5: Fifth mode In an example of the fourth aspect (fifth aspect), the cutoff frequency of the high-pass filter, the cutoff frequency of the first low-pass filter, and the cutoff frequency of the second low-pass filter are equal to one another. According to this aspect, the frequency components of the input sound signal can be more effectively reflected in the frequency components of the output sound signal than in a configuration in which the cutoff frequencies of the high-pass filter, the first low-pass filter, and the second low-pass filter are different from one another.

[0118] C6: Sixth mode In an example of the fourth or fifth aspect (sixth aspect), the order of the high-pass filter is equal to the sum of the order of the first low-pass filter and the order of the second low-pass filter. According to this aspect, the phase characteristics of the high-frequency sound signal input to the synthesis unit are aligned with the phase characteristics of the low-frequency sound signal input to the synthesis unit. Therefore, the quality of the sound indicated by the output sound signal is improved compared to a configuration in which the order of the high-pass filter does not match the sum of the order of the first low-pass filter and the order of the second low-pass filter.

[0119] C7: Seventh mode In any one of the first to sixth aspects (seventh aspect), the reference value is a value that is determined in advance based on the clipping voltage and gain of the amplifier device. According to this aspect, it is possible to limit the generation of noise contained in the output sound from the high-frequency speaker while allowing the low-frequency speaker to output a powerful sound according to the amplification characteristics of the amplifier device, i.e., the clipping voltage and gain of the amplifier device.

[0120] C8: Eighth mode In any one of the first to seventh aspects (eighth aspect), the vehicle further includes an adjustment unit that generates the input sound signal by adjusting the amplitude of a sound signal in response to a user's volume control, and the high-frequency speaker and the low-frequency speaker are located in the vehicle. According to this aspect, the user's volume control is reflected in the amplitude of the input sound signal, not in the gain of the amplifier. Therefore, even if the amplitude of the input sound signal increases in response to the user's volume control, clipping in the amplifier can be suppressed. Therefore, noise contained in the output sound from the high-frequency speaker can be reduced in the vehicle.

[0121] C9: 9th mode An acoustic system according to a ninth aspect of the present disclosure includes the sound signal processing device according to any one of the first to eighth aspects, the high-frequency speaker, the low-frequency speaker, and the amplifier. According to this aspect, in a situation where a first sound signal output from the amplifier is supplied to both the high-frequency speaker and the low-frequency speaker, it is possible to reduce noise components contained in the output sound from the high-frequency speaker.

[0122] C10: 10th mode A sound signal processing method according to an aspect (tenth aspect) of the present disclosure is a sound signal processing method implemented by a computer that supplies an output sound signal to an amplifier device that supplies a first sound signal to a high-frequency speaker and a low-frequency speaker, and includes generating a high-frequency sound signal by removing low-frequency components from an input sound signal, generating a second sound signal by limiting the amplitude of the input sound signal with a reference value corresponding to a clipping voltage at which the first sound signal output from the amplifier device is clipped, generating a low-frequency sound signal by removing high-frequency components from the generated second sound signal, and generating the output sound signal by combining the generated high-frequency sound signal and the generated low-frequency sound signal.

[0123] According to this aspect, in a situation where the first sound signal output from the amplifier device is supplied to both the high-frequency speaker and the low-frequency speaker, it is possible to reduce noise components contained in the sound output from the high-frequency speaker.

[0124] C11: 11th mode A sound signal processing method according to an aspect (eleventh aspect) of the present disclosure is a sound signal processing method implemented by a computer that supplies an output sound signal to an amplifier device that supplies a first sound signal to a high-frequency speaker and a low-frequency speaker, and includes the steps of: generating a high-frequency sound signal by removing low-frequency components from an input sound signal; generating a filter output signal by removing high-frequency components from the input sound signal; generating a second sound signal by amplitude-limiting the filter output signal so that it does not exceed a reference value corresponding to a clipping voltage at which the first sound signal output from the amplifier device is clipped; generating a low-frequency sound signal by removing high-frequency components from the generated second sound signal; and generating the output sound signal by combining the generated high-frequency sound signal and the generated low-frequency sound signal.

[0125] According to this aspect, in a situation where the first sound signal output from the amplifier device is supplied to both the high-frequency speaker and the low-frequency speaker, it is possible to reduce noise components contained in the sound output from the high-frequency speaker. [Explanation of symbols]

[0126] 1...acoustic system, 3...operation unit, 4...sound source, 10...tweeter, 20...woofer, 30...storage device, 40...sound signal processing device, 50...amplification device, 100...vehicle, 101...adjustment unit, 102...HPF, 103...amplitude limiting unit, 104...LPF, 105...synthesis unit, 106...LPF, 107...HPF, 108...HPF.

Claims

1. A sound signal processing device that supplies an output sound signal to an amplifier that supplies a first sound signal to a high-frequency speaker and a low-frequency speaker, a high-pass filter that generates a high-frequency sound signal by removing low-frequency components from the input sound signal; an amplitude limiting unit that generates a second sound signal by limiting the amplitude of the input sound signal so that the first sound signal output from the amplifier does not exceed a reference value corresponding to a clipping voltage at which the first sound signal is clipped; a low-pass filter that generates a low-frequency sound signal by removing high-frequency components from the second sound signal generated by the amplitude limiting unit; a synthesis unit that generates the output sound signal by synthesizing the high-frequency sound signal generated by the high-pass filter and the low-frequency sound signal generated by the low-pass filter; 11. A sound signal processing device comprising:

2. The cutoff frequency of the high-pass filter is equal to the cutoff frequency of the low-pass filter. The sound signal processing device according to claim 1 .

3. The order of the high-pass filter is equal to the order of the low-pass filter. The sound signal processing device according to claim 1 or 2.

4. A sound signal processing device that supplies an output sound signal to an amplifier that supplies a first sound signal to a high-frequency speaker and a low-frequency speaker, a high-pass filter that generates a high-frequency sound signal by removing low-frequency components from the input sound signal; a first low-pass filter that generates a filter output signal by removing high frequency components from the input sound signal; an amplitude limiting unit that generates a second sound signal by limiting the amplitude of the filter output signal so that the first sound signal output from the amplifier does not exceed a reference value corresponding to a clipping voltage at which the first sound signal is clipped; a second low-pass filter that generates a low-frequency sound signal by removing high-frequency components from the second sound signal generated by the amplitude limiting unit; a synthesis unit that generates the output sound signal by synthesizing the high-frequency sound signal generated by the high-pass filter and the low-frequency sound signal generated by the second low-pass filter; 11. A sound signal processing device comprising:

5. the cutoff frequency of the high-pass filter, the cutoff frequency of the first low-pass filter, and the cutoff frequency of the second low-pass filter are equal to each other; The sound signal processing device according to claim 4 .

6. the order of the high-pass filter is equal to the sum of the order of the first low-pass filter and the order of the second low-pass filter; The sound signal processing device according to claim 4 or 5.

7. the reference value is a value that is predetermined based on a clipping voltage of the amplifier device and a gain of the amplifier device. The sound signal processing device according to any one of claims 1 to 6.

8. an adjustment unit that generates the input sound signal by adjusting the amplitude of the sound signal in response to a volume operation by a user; The high-frequency speaker and the low-frequency speaker are located in a vehicle. The sound signal processing device according to any one of claims 1 to 7.

9. A sound signal processing device according to any one of claims 1 to 8; the high-frequency speaker; the low-frequency speaker; the amplification device; Sound system including.

10. 1. A sound signal processing method implemented by a computer, which supplies an output sound signal to an amplifier that supplies a first sound signal to a high-frequency speaker and a low-frequency speaker, generating a high-frequency sound signal by removing low-frequency components from the input sound signal; generating a second sound signal by limiting the amplitude of the input sound signal so that the first sound signal output from the amplifier does not exceed a reference value corresponding to a clipping voltage at which the first sound signal is clipped; generating a low-frequency sound signal by removing high-frequency components from the generated second sound signal; generating the output sound signal by synthesizing the generated high-frequency sound signal and the generated low-frequency sound signal; Sound signal processing method.

11. 1. A sound signal processing method implemented by a computer, which supplies an output sound signal to an amplifier that supplies a first sound signal to a high-frequency speaker and a low-frequency speaker, generating a high-frequency sound signal by removing low-frequency components from the input sound signal; generating a filter output signal by removing high frequency components from the input sound signal; generating a second sound signal by limiting the amplitude of the filter output signal so that the first sound signal output from the amplifier does not exceed a reference value corresponding to a clipping voltage at which the first sound signal is clipped; generating a low-frequency sound signal by removing high-frequency components from the generated second sound signal; generating the output sound signal by synthesizing the generated high-frequency sound signal and the generated low-frequency sound signal; Sound signal processing method.

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