This application claims the benefit of Taiwan application Serial No. 98137336, filed Nov. 3, 2009, the subject matter of which is incorporated herein by reference.
1. Technical Field
The disclosure relates in general to a sound receiving system and a sound receiving method, and more particularly to an indoor sound receiving system and an indoor sound receiving method.
2. Description of the Related Art
For a media-rich life, people need one of versatile and different kinds of communication media including audio, video, images and texts. especially, the audio and video media are used mostly. Thus, many indoor communications products, such as video conference system and audio conference system are provided. No matter what kinds of the conference systems, absolutely, the sound, especially voices are important things that should be considered.
However, some conference systems, including the fixed directional microphone array and the noise reduction algorithm, just can reduce noises in some fixed direction and cannot adaptively point out which direction the sound come from. Thus, the flexibility, the convenience and the clearness of sound receiving are affected.
The disclosure is directed to an indoor sound receiving system and an indoor sound receiving method.
According to the first aspect of the above disclosure, an indoor sound receiving system is provided. The indoor sound receiving system comprises a microphone array, a path function database, a sound tracking unit, a path function selecting unit and a signal processing unit. The microphone array senses at least one primary sound source to output a plurality of microphones sensing signals. The path function database stores a plurality of sets of path functions. The sound tracking unit locates a primary sound source region according to the signals of the microphone array. The path function selecting unit selects and uses a set of path functions corresponding to the primary sound source region as a set of primary sound source path functions from the path function database. The signal processing unit executes an audio enhancement process to output an enhanced speech signal according to the set of primary sound source path functions and the microphone sensing signals.
According to the second aspect of the above disclosure, an indoor sound receiving method used in an indoor sound receiving system is provided. The indoor sound receiving system comprises a microphone array, which comprises a plurality of microphones respectively disposed in some positions of a room. The indoor sound receiving method at least comprises the following steps: Firstly, at least one primary sound source is sensed by a plurality of microphones of the microphone array to output a plurality of microphones sensing signals. Next, the position of the primary sound source is located as a primary sound source region from a plurality of regions of an indoor space according to a plurality of microphones sensing signals. Then, a set of path functions corresponding to the primary sound source region is selected as a set of primary sound source path functions from a plurality of sets of path functions corresponding to a plurality of regions respectively. Lastly, an audio enhancement process is executed to output an enhanced speech signal according to the set of primary sound source path functions and a plurality of microphones sensing signals.
The above and other aspects of the disclosure will become better understood with regard to the following detailed description of the preferred but non-limiting embodiment(s). The following description is made with reference to the accompanying drawings.
An indoor sound receiving system and an indoor sound receiving method are disclosed in a exemplary embodiment below. The indoor sound receiving system comprises a microphone array, a path function database, a sound tracking unit, a path function selecting unit and a signal processing unit. The microphone array comprises a plurality of microphones respectively disposed in a plurality of positions of an indoor space. The said microphones sense at least one primary sound source to output a plurality of microphones sensing signals. The path function database stores a plurality of sets of path functions corresponding to the said positions respectively. The sound tracking unit locates position of the primary sound source from a plurality of regions according to a plurality of microphones sensing signals. The path function selecting unit selects a set of path functions corresponding to the primary sound source region from a plurality of sets of path functions. The signal processing unit executes an audio enhancement process to output an enhanced speech signal according to the set of primary sound source path functions and a plurality of microphones sensing signals.
The indoor sound receiving method used in an indoor sound receiving system at least comprises the following steps: Firstly, at least one primary sound source is sensed from a plurality of microphones of the microphone array to output a plurality of microphones sensing signals. Next, the position of the primary sound source is located from a plurality of regions of an indoor space according to a plurality of microphones sensing signals. Then, a set of path functions corresponding to the primary sound source region is selected from a plurality of sets of path functions corresponding to a plurality of regions respectively. Lastly, an audio enhancement process is executed to output an enhanced speech signal according to the set of primary sound source path functions and a plurality of microphones sensing signals.
Referring to
The indoor sound receiving method comprises the following steps. Firstly, the method begins at Step 210, the path functions of each region are stored in a path function database. Next, the method proceeds to Step 220, at least one primary sound source is sensed by the microphones 110(1)˜110(n) to output a plurality of first microphone sensing signals A(1)˜A(n). Then, the method proceeds to Step 230, the position of the primary sound source is located from n regions by the sound tracking unit 130 according to a plurality of microphone sensing signals A(1)˜A(n). The sound tracking unit 130 such as executes time domain cross correlation (TDCC) algorithm or speaker localization algorithm to locate the primary sound source region.
According to TDCC algorithm, the time delay is obtained by using the correlation among the signals of different microphones in time domain. After a microphone sensing signal is received by two microphones, the time delay with the largest correlation is calculated by TDCC algorithm, and lastly, the sound source azimuth angle is obtained from the obtained time delay, the distance between microphones, and the speed of the sound.
According to the speaker localization algorithm, the fast Fourier transform (FFT) is applied to the signal received by the microphones; the energy of each microphone in the frequency domain is calculated; and lastly, the direction with the largest sum of energy is located as the direction of the sound source in the space.
For example, the said indoor space can be divided into 24 regions 310(1)˜310(24), and the said microphone array is realized by a two-dimensional array of microphones. The sound tracking unit 130 calculates the intersection of the incoming angles of the sound source according to the microphones in the x-axis and the y-axis. The region 310(14) in which the intersection of the incoming angles of the sound source is identified as the primary position.
Then, the method proceeds to step 240, a set of path functions corresponding to the primary sound source region is selected as a set of primary sound source path functions H(i) from n sets of path functions stored in the path function database 120 to the path function selecting unit 140. Lastly, the method proceeds to step 250, an audio enhancement process is executed by the signal processing unit 150 to output an enhanced speech signal CS according to the set of primary sound source path function H(i) selected by the path function selecting unit 140 and the first microphone sensing signals A(1)˜A(n). By this way, the voice message transmitted will not be distorted, and the sound received in a remote end, such as a conference room, is still clear.
Since the indoor sound receiving system 10 executes an audio enhancement process according to the situated region of the primary sound source, an adaptive directional sound receiving process can be applied according to the current direction of the user, and it can clearly recognize the sound sources at different distances in the same direction. By this way, the sound receiving quality will not be affected even when the speaker walks and talks.
Also, the microphones of the indoor sound receiving system 10 are not necessarily disposed on the conference table, and can also be disposed on the ceiling or the walls according to the needs. Thus, the indoor sound receiving system 10 of the disclosure does not limit on the desk or tables and allows the speaker not to hold a microphone in hand. Moreover, the user does not have to raise sound volume in order to enhance the sound receiving effect.
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The computation unit 184, which can be realized by a subtractor, outputs an error value e(k) according to the second microphone sensing signal d(k), the filter output signal y(k) and the noise signal n(k), wherein k=1˜n. When the error value e(k) is smaller than a predetermined threshold, the adaptive filter 182 obtains a set of path functions corresponding to the position of the reference microphone 170 and the broadband sound source player 160.
The indoor sound receiving system and the indoor sound receiving method disclosed in the above embodiments of the disclosure have many advantages exemplified below:
Firstly, the indoor sound receiving system and the indoor sound receiving method of the disclosure are capable of recognizing several sound sources at different distances in the same direction.
Secondly, the indoor sound receiving system and the indoor sound receiving method of the disclosure can do without expensive directional microphones.
Thirdly, the indoor sound receiving system and the indoor sound receiving method of the disclosure prevent the voice message transmitted from being distorted, and make sound received in a remote end, such as a conference room, still clear.
Fourthly, the indoor sound receiving system and the indoor sound receiving method of the disclosure apply an adaptive directional sound receiving process and provide well-quality sound receiving even when the speaker walk and talk.
Fifthly, the microphone does not limit on the desk or table and makes the speaker to be hand free when the user is speaking, and the user does not need to raise his/her voice volume in order to enhance sound receiving.
While the disclosure has been described by way of example and in terms of the disclosed embodiment(s), it is to be understood that the disclosure is not limited thereto. On the contrary, it is intended to cover various modifications and similar arrangements and procedures, and the scope of the appended claims therefore should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements and procedures.
Number | Date | Country | Kind |
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98137336 | Nov 2009 | TW | national |