This non-provisional application claims priority under 35 U.S.C. §119(a) on Patent Application No. 104,126,752 filed in Taiwan, R.O.C. on Aug. 17, 2015, the entire contents of which are hereby incorporated by reference.
Technical Field
The present disclosure relates to a method for audio processing and a system thereof, particularly relates to a method for audio processing and a system thereof simulating a headphone.
Description of the Related Art
Using a headphone as an audio player brings users a great surround sound of user experiences. However, using the headphone for a long time may cause hearing damages. Therefore, the method of simulating a headphone with speakers is developed.
However, the method of simulating a headphone with speakers in the prior art is letting the user not to hear the sound of the right channel with the left ear and not to hear the sound of the left channel with the right ear. The surround sound of the headphone is poorly performed when simulating the headphone with speakers. Therefore, how to perform the directional information of the surround sound with speakers in the headphone simulation system is still a problem to be overcome.
A method for audio signal processing for a system for audio signal processing includes obtaining a first sub-band audio of a first audio signal information, obtaining a second sub-band audio of a second audio signal information, determining an audio parameter according to the first sub-band audio and the second sub-band audio, and modulating the first audio signal information and the second audio signal information using the audio parameter to obtain a first outputting audio signal and a second outputting audio signal.
A system for audio signal processing includes a first filter, a second filter, an audio amplifier, an audio modulator, and an audio player. The first filter is for filtering a first audio signal information to obtain a first low frequency audio of the first audio signal information and a first sub audio of the first audio signal information, and the first sub audio and the first low frequency audio from the first audio signal information. The second filter is for filtering the second audio signal information to obtain a second low frequency audio of the second audio signal information and a second sub audio of the second audio signal information, and the second sub audio and the second low frequency audio form the second audio signal information. The audio amplifier is coupled to the first filter and the second filter, and is for determining an audio amplifying parameter according to the first sub audio and the second sub audio and amplifying the first sub audio and the second sub audio using the audio amplifying parameter. The audio modulator is coupled to the first filter, the second filter, and the audio amplifier respectively, and is for generating a first outputting audio signal and a second outputting audio signal according to the first low frequency audio, the second low frequency audio, the amplified first sub audio, and the amplified second sub audio. The audio player is coupled to the audio modulator, and is for outputting the first outputting audio signal and the second outputting audio signal.
The method for audio signal processing of the present disclosure captures the medium frequency or medium high frequency audio from the first audio signal information of the first channel and the second audio signal information of the second channel respectively and accordingly adjusts and amplifies the medium frequency audio of the first audio signal information and the medium frequency audio of the second audio signal information to enrich the directional information of the outputted audio.
The present disclosure will become more fully understood from the detailed description given herein below and the accompanying drawings, which are given by way of illustration only and thus are not limitative of the present disclosure and wherein:
In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawings. Due to the characteristic of digital signal processing (DSP) area, the devices and components of the present disclosure are implemented by software, firmware, and hardware to realize digital audio processing and playing.
Please refer to
In an embodiment, please refer to
The audio amplifier 1300 is for amplifying the first sub audio A11 and the second sub audio A21 according to the details of the first sub audio A11 and the second sub audio A21. Specifically, please refer to
The wave envelope detecting module 1310 is for detecting the wave envelopes of the first sub audio A11 and the second sub audio A21, and for determining an audio amplifying parameter according to the wave envelopes of the first sub audio A11 and the second sub audio A21. In an embodiment, the wave envelope detecting module 1310 detects the first wave envelope of the first sub audio A11 and the second wave envelope of the second sub audio A21, and compares the level of the second sub audio A21 with the level of the second wave envelope, and determines the audio amplifying parameter according to the maximum level corresponding to the first wave envelope and the second wave envelope. More specifically, when the maximum level corresponding to the first wave envelope is greater than the maximum level corresponding to the second wave envelope, the wave envelope detecting module 1310 determines the audio amplifying parameter according to the maximum level corresponding to the first wave envelope. When the maximum level corresponding to the first wave envelope is not greater than the maximum level corresponding to the second wave envelope, the wave envelope detecting module 1310 determines the audio amplifying parameter according to the maximum level corresponding to the second wave envelope. The controllable amplifying module 1320 is for amplifying the first wave envelope of the first sub audio A11 and the second wave envelope of the second sub audio A21 according to the amplifying parameter.
The audio modulator 1400 is for mixing the high frequency audio A2H of the second audio signal information A2 and the amplified first sub audio A11 delaying for a first duration P1 with the low frequency audio A2L of the second audio signal information A2 and the amplified second sub audio A21 to generate a second outputting audio signal A2o. Similarly, the audio modulator 1400 mixes the high frequency audio A1H of the second audio signal information A1 and the amplified second sub audio A21 delaying for a first duration P1 with the low frequency audio A1L of the first audio signal information A1 and the amplified first sub audio A11 to generate a first outputting audio signal A1o.
The audio player 1500 includes a first channel speaker 1510 and a second channel speaker 1520. The first channel speaker 1510 and the second channel speaker 1520 are both coupled to the audio modulator 1400, and the first channel speaker 1510 is for outputting the first outputting audio signal A1o to an analog audio and the second channel speaker 1520 is for outputting the second outputting audio signal A2o to an analog audio.
Please refer to
In an embodiment, as the distance D1 and the distance D2 changes, adequate adjustment for amplifying or modulating the first audio signal information A1 and the second audio signal information A2 are needed for the user 2000 to obtain a better listening enjoyment. Please refer back to
The reason why the audio amplifier 1300 does not process the low frequency audio A1L of the first audio signal information A1 and the low frequency audio A2L of the second audio signal information A2 is that the sound with low frequency contains less directional information to human hearing system. Therefore, the audio amplifier 1300 only processes the medium high frequency audio signal, so that the user 2000 sufficiently obtains the directional information from the first outputting audio signal A1o and the second outputting audio signal A2o.
In some embodiments, the outputted frequency responses of the first channel speaker 1510 and the second channel speaker 1520 are not the same, so the frequency response of the first filter 1100 is correspondingly set according to the frequency response of the first channel speaker 1510 and the frequency response of the second filter 1200 is correspondingly set according to the frequency response of the second channel speaker 1520. The specific implementation is described as follows. The first audio signal information A1 and second audio signal information A2 are added with a white noise or a sweep tone and are outputted from the aforementioned system structure. The audio outputted from the two speakers is received by an audio receiver, such as a microphone.
The frequency response of the first filter 1100 and the frequency response of the second filter 1200 are adjusted accordingly until the audio outputted from the two speakers are the same.
In some other embodiments, please refer to
The method for audio signal processing of the present disclosure captures the medium frequency or medium high frequency audio from the first audio signal information of the first channel and the second audio signal information of the second channel respectively and accordingly adjusts and amplifies the medium frequency audio of the first audio signal information and the medium frequency audio of the second audio signal information to enrich the directional information of the outputted audio.
The foregoing description has been presented for purposes of illustration. It is not exhaustive and does not limit the disclosure to the precise forms or embodiments disclosed. Modifications and adaptations will be apparent to those skilled in the art from consideration of the specification and practice of the disclosed embodiments of the disclosure. It is intended, therefore, that the specification and examples be considered as exemplary only, with a true scope and spirit of the disclosure being indicated by the following claims and their full scope of equivalents.
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104126752 A | Aug 2015 | TW | national |
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Number | Date | Country | |
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20170055080 A1 | Feb 2017 | US |