The present invention relates to an acoustic processing system for electronic apparatuses such as a mobile telephone. The present invention in particular relates to an acoustic processing system and a method for an electronic apparatus and a mobile telephone terminal for enhancing a sound pressure and feeling of a sound volume in a reproduced sound as a whole. Note that the present application claims priority based on Japanese Patent Application No. 2007-073413 and incorporates the disclosure in Japanese Patent Application No. 2007-073413 by reference.
As an audio device internally installed in electronic apparatuses exemplified by mobile telephones, micro-speakers and micro-receivers with a diameter of about several centimeters and a thickness of about several millimeters are often mounted therein from a viewpoint of the mounting space and power consumption. However, in such micro-speakers with a limited size, the physical restrictions such as an acoustic radiating area, a front airtight volume, a rear airtight volume and a sound hole area are set with implementation conditions on the electric apparatuses. Therefore, micro-speakers are inferior to usual home and professional-use audio speakers in an equivalent noise level, flattening of sound pressure frequency characteristics, and a low-frequency reproducing function.
In recent years, the audio reproducing function in electronic apparatuses such as a mobile telephone becomes more important from a viewpoint of a marketability. On the other hand, it is also required for the sizes of acoustic devices to be smaller and thinner for corresponding to terminals whose size and thickness has been reduced. However, it is not easy to achieve a good balance between improvement of a reproducing function and device miniaturization. In particular, by miniaturizing an acoustic device, reproduction characteristics in low frequency is extremely deteriorated caused by the decrease of the radiating area, the front volume and the back volume. Therefore, when a low frequency signal is inputted to the acoustic device, the sound is distorted and the sound crack increases. It is therefore required to cut the input of a low frequency signal, but cutting off a low frequency signal causes reduction of a sound pressure and feeling of a sound volume in reproduced sound as a whole.
As shown in
Each block of the demodulation and decoding circuit 12, the acoustic processor 13, and the equalizer processor 14 can be realized by a DSP (digital signal processor) or can be realized by an individual dedicated LSI (large scale integrated circuit). Other components can also be integrated from each other in one LSI chip or a module by using a DSP, or can be configured by an individual LSI or IC (integrated circuit).
However, in the present example, a boost amount in a high frequency signal needs to be designed under the consideration of a margin for a digital/analog full scale of a full band signal. Therefore, the boost amount in a high frequency signal is limited to a narrow range. Accordingly, it is required to improve a sound pressure and feeling of a sound volume as a whole in micro-speakers and micro-receivers with low capacity of reproducing low-frequency characteristics.
For example, Japanese Laid-Open Patent Application JP-P2004-112414A discloses a technique for relatively accentuating a low frequency component to render the boldness of the sound by controlling a high frequency component of an input audio signal to be further attenuated in accordance with a larger amplitude compression amount.
Japanese Laid-Open Patent Application JP-P2004-248298A also discloses a technique regarding a hearing aid including a compressor having a fine delay which is independent of a gain with low power consumption. According to the hearing aid disclosed in Japanese Laid-Open Patent Application JP-P2004-248298A, a multi-channel compressor for compensating the loss of a hearing sense in a dynamic range is used to improve capacity of reproducing low frequency characteristics.
However, the techniques disclosed in Japanese Laid-Open Patent Applications JP-P2004-112414A and JP-P2004-248298A are provided without carrying out an acoustic process to improve a sound pressure and feeling of a sound volume as a whole.
Accordingly, an object of the present invention is to provide an electronic apparatus acoustic processing system and an electronic apparatus acoustic processing method, wherein a sound process for improving a sound pressure and feeling of a sound volume as a whole is carried out by attenuating a low frequency and substantially enhancing an average sound pressure in a high frequency.
In order to solve the problems, the present invention provides an electronic apparatus acoustic processing system for outputting sound by demodulating and decoding a signal sent from an audio digital sound source and carrying out various kinds of acoustic processes for the signal which converts a signal format.
According to the present invention, an acoustic processing system for an electronic apparatus includes: an equalizer processor configured to boost or cut a digital signal being acoustically processed for each of frequency components; a low-pass filter configured to extract and output a signal of low frequency from the signal outputted from the equalizer processor; a high-pass filter configured to extract and output a signal of high frequency from a signal outputted from the equalizer processor; a high frequency compressor configured to compress the signal of high frequency; an adder configured to generate an addition of the signal of low frequency and the compressed signal of high frequency; and a speaker configure to output a sound in accordance with the addition signal.
According to the present invention, an acoustic processing method for an electronic apparatus includes: a step of boosting or cutting a digital signal being acoustically processed for each of frequency components; a step of extracting and outputting a signal of low frequency from the boosted or cut signal; a step of extracting and outputting a signal of a high frequency from the boosted or cut signal; a step of compressing the signal of high frequency; a step of generating an addition of the signal of low frequency and the compressed signal of high frequency; and a step of outputting a sound in accordance with the addition signal.
It is also preferable that an acoustic processing device for an electronic apparatus according to the present invention is mounted on a mobile telephone terminal.
As explained above, even if a high frequency signal is boosted to be larger by the equalizer processor, the present invention realizes compression of a dynamic range through suppression of only an excessive peak of a boosted high frequency signal by a high frequency compressor. It is therefore made possible to enhance the average value of the output signal level in comparison with an input signal in a time domain and improve an executed sound pressure without changing a voltage peak inputted to a micro-speaker. Furthermore, a sound is generated by the signal obtained by adding a low frequency signal and a high frequency signal which was compressed by a high frequency compressor. Therefore, feeling of a sound volume is substantially improved with improvement of an executed sound pressure.
The above object, effects and characteristics of the present invention will be identified more clearly from descriptions of exemplary embodiments in conjunction with accompanying diagrams, in which:
Exemplary embodiments of the electronic apparatus acoustic processing system according to the present invention will be explained below referring to accompanying drawings. Identical or similar reference numbers refer to identical, similar or equivalent elements in the drawings.
The demodulation and decoding circuit 102 demodulates and decodes a signal sent from the audio digital sound source 101 so as to convert the signal format. The various functions acoustic processor 103 carries out acoustic processes including a 3D effect, a reverberation effect, a chorus effect, a delay effect, an enhance effect and a frequency band boost effect with respect to the signal sent from the demodulation and decoding circuit 102. The equalizer processor 109 carries out a boosting and/or cut process for each frequency of the signal which was subjected to an acoustic process. The low-pass filter 111 extracts a low frequency component of an output of the equalizer processor to output as a low frequency signal. The high-pass filter 112 extracts a high frequency component of an output of the equalizer processor to output as a high frequency signal. The high frequency compressor 113 compresses the high frequency signal boosted by the equalizer processor 109. The adder 114 adds the low frequency signal and the compressed high frequency signal. The D/A converter 105 converts the digital signal, which was obtained by adding signals in the adder 114, into an analog signal. The band-pass filter 106 carries out a low frequency cut, a harmonic cut and a noise cut with respect to the converted analog signal. The amplifier 107 amplifies a signal sent from the band-pass filter 106. The band-pass filter 108 is arranged as needed so as to carry out a low frequency cut, a harmonic cut and a noise cut with respect to the signal amplified by the amplifier 107. The micro-speaker 109 converts an electric signal sent from the band-pass filter 108 into a sound to output.
Each block of the demodulation and decoding circuit 102, the acoustic processor 103 and the equalizer processor 109 can be realized by a DSP (digital signal processor) or can be realized by an individual dedicated LSI (large scale integrated circuit). Other components can also be integrated from each other in one LSI chip or a module by using DSP, or can be configured by an individual LSI or IC (integrated circuit).
The cut-off frequency of each of the low pass filter 111 and the high-pass filter 112 may be determined under the consideration of a frequency boosted by each equalizer processor 104. In the case of the setting of the equalizer processor 104 shown in
Parameters of the high frequency compressor 113 include a threshold level, a ratio, an attack time and a release time or the like, each of which can be tuned based on a sound or other factors. For example, as the parameters of the high frequency compressor, a threshold level of −5 to −15 dB, a ratio of 1:4 to 1:8, an attack time of 0 to 25 msec, and a release time of 0 to 50 msec are set. By inserting the high frequency compressor 113 with such setting, it is possible for the equalizer processor 104 to boost a frequency higher than that of conventional techniques.
Referring to
The total compressor 120 compresses a signal added in the adder 114 (i.e. added signal) so as to output to the D/A converter 105. The total compressor 120 makes it possible to suppress the peak level of a signal for whole of the frequency band of the input signal. As a result, compression of the dynamic range and enhancement of the executed sound pressure and the feeling of the sound volume can be achieved.
The parameter table 115 stores parameters for the equalizer processor 104, the high frequency compressor 113, the various functions acoustic processor 103, the total compressor 120, the low-pass filter 111, the high-pass filter 112 or other components in accordance with each function. The parameter table 115 is preferably recorded in, for example, a nonvolatile memory. Parameters set in the parameter table 115 may also be desirably set (or changed) by a user. In this case, it is possible for a user to carry out acoustic setting in accordance with a preference of the user at any time.
For example, in a case of a mobile telephone, parameters are set according to each function such as a call function (i.e. normal and hands-free call) and a music reproducing function (i.e. music category setting such as the rock and the classic). In this case, each of the various functions acoustic processor 103, the equalizer processor 104, the low-pass filter 111, the high-pass filter 112, the high frequency compressor 113 and the total compressor 120 in
By inserting the pre-gain amplifier 121, the pre-gain amplifier 122 and the host gain amplifier 123, it is possible to set the frequency gain without using the equalizer processor 104.
The total compressor 124 compresses an input to the low pass filter 111 and the high-pass filter 112. By such a configuration, it is possible to compress the dynamic range for whole of the frequency band in an input to the low pass filter 111 and the high-pass filter 112. Consequently, it is possible to adjust parameters in wider range in each of the equalizer processor 104, the high frequency compressor 113 and the total compressor 120.
The low pass filter 111, the high-pass filter 112 and the high frequency compressor 113 in the fifth modified example are arranged in a subsequent stage of the D/A converter 105 and serve as an audio path to carry out a dynamic range compressing process in a high frequency by analog. It is therefore possible to obtain effects similar to those of the electronic apparatus acoustic processing system 100 shown in
The equalizer processor 104, the low pass filter 111, the high-pass filter 112, and the high frequency compressor 113 in the sixth modified example are arranged in a subsequent stage of the D/A converter 105 and serve as an audio path to carry out a dynamic range compressing process in a high frequency by analog. It is therefore possible to obtain effects similar to those of the electronic apparatus acoustic processing system 100 in the fourth modified example.
By inserting the pre-gain amplifier 121, the pre-gain amplifier 122 and the host gain amplifier 123, it is possible to set the frequency gain in the same manner with the third modified example without using the equalizer processor 104.
As explained above, according to the present invention, even if a high frequency signal is boosted to be larger by the equalizer processor, only an excessive peak of a boosted high frequency signal is suppressed so that the dynamic range is compressed. Consequently, the average value of the signal level of the output signal is enhanced in comparison with the input signal in the time domain, along with enhancement of the executed sound pressure without changing the voltage peak inputted to a micro-speaker. Furthermore, a sound is generated by a signal which is obtained by adding a low frequency signal to a high frequency signal compressed by the high frequency compressor. Therefore, feeling of the sound volume is substantially enhanced with enhancement of an executed sound pressure.
Concrete configurations of the present invention are not limited to the exemplary embodiments described above in detail, and changes made in a range without deviating from the scope of the present invention are also included in the present invention.
Number | Date | Country | Kind |
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2007-073413 | Mar 2007 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2008/053528 | 2/28/2008 | WO | 00 | 12/7/2009 |