WO2008001659A1 - Dispositif d'émission/réception de son - Google Patents
Dispositif d'émission/réception de son Download PDFInfo
- Publication number
- WO2008001659A1 WO2008001659A1 PCT/JP2007/062393 JP2007062393W WO2008001659A1 WO 2008001659 A1 WO2008001659 A1 WO 2008001659A1 JP 2007062393 W JP2007062393 W JP 2007062393W WO 2008001659 A1 WO2008001659 A1 WO 2008001659A1
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- WIPO (PCT)
- Prior art keywords
- sound
- signal
- collected
- collection
- reference plane
- Prior art date
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Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04R—LOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; DEAF-AID SETS; PUBLIC ADDRESS SYSTEMS
- H04R3/00—Circuits for transducers, loudspeakers or microphones
- H04R3/005—Circuits for transducers, loudspeakers or microphones for combining the signals of two or more microphones
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04M—TELEPHONIC COMMUNICATION
- H04M3/00—Automatic or semi-automatic exchanges
- H04M3/42—Systems providing special services or facilities to subscribers
- H04M3/56—Arrangements for connecting several subscribers to a common circuit, i.e. affording conference facilities
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04M—TELEPHONIC COMMUNICATION
- H04M3/00—Automatic or semi-automatic exchanges
- H04M3/42—Systems providing special services or facilities to subscribers
- H04M3/56—Arrangements for connecting several subscribers to a common circuit, i.e. affording conference facilities
- H04M3/568—Arrangements for connecting several subscribers to a common circuit, i.e. affording conference facilities audio processing specific to telephonic conferencing, e.g. spatial distribution, mixing of participants
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04R—LOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; DEAF-AID SETS; PUBLIC ADDRESS SYSTEMS
- H04R1/00—Details of transducers, loudspeakers or microphones
- H04R1/20—Arrangements for obtaining desired frequency or directional characteristics
- H04R1/32—Arrangements for obtaining desired frequency or directional characteristics for obtaining desired directional characteristic only
- H04R1/40—Arrangements for obtaining desired frequency or directional characteristics for obtaining desired directional characteristic only by combining a number of identical transducers
- H04R1/406—Arrangements for obtaining desired frequency or directional characteristics for obtaining desired directional characteristic only by combining a number of identical transducers microphones
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04M—TELEPHONIC COMMUNICATION
- H04M2201/00—Electronic components, circuits, software, systems or apparatus used in telephone systems
- H04M2201/18—Comparators
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04R—LOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; DEAF-AID SETS; PUBLIC ADDRESS SYSTEMS
- H04R2201/00—Details of transducers, loudspeakers or microphones covered by H04R1/00 but not provided for in any of its subgroups
- H04R2201/40—Details of arrangements for obtaining desired directional characteristic by combining a number of identical transducers covered by H04R1/40 but not provided for in any of its subgroups
- H04R2201/403—Linear arrays of transducers
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04R—LOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; DEAF-AID SETS; PUBLIC ADDRESS SYSTEMS
- H04R2430/00—Signal processing covered by H04R, not provided for in its groups
- H04R2430/20—Processing of the output signals of the acoustic transducers of an array for obtaining a desired directivity characteristic
Definitions
- the present invention relates to a sound emission and collection device used for audio conferences or the like performed between a plurality of points via a network or the like, and more particularly to a sound emission and collection device in which a microphone and a speaker are arranged relatively close to each other. It is.
- the audio conference device (sound emitting and collecting device) of Patent Document 1 emits an audio signal input via a network from a speaker arranged on the top surface, and different multiple components arranged on the side surface.
- the microphone picks up each microphone sound signal whose direction is the front direction, and sends the sound pickup signal to the outside via the network.
- Patent Document 1 JP-A-8-298696
- an object of the present invention is to provide a sound collecting and collecting apparatus that can collect and output a speaker-powered voice with a high SZN ratio by removing the influence of the wraparound voice while having a simple configuration. Is to provide.
- the sound emission and collection device of the present invention emits sound at a sound pressure that is symmetric with respect to a predetermined reference plane.
- a speaker a first microphone group that collects sound on one side of the predetermined reference plane, a second microphone group that collects sound on the other side of the predetermined reference plane, and a sound collection signal of the first microphone group
- the difference between the collected sound beam signal generators to be generated symmetrically, the collected sound beam signals of the first collected beam signal group, and the collected sound beam signals generated symmetrically with respect to the second collected beam group The difference signal generation unit that generates each signal, the absolute level of each difference signal are compared, the signal comparison unit that selects the maximum level difference signal, and the maximum level difference signal selected by the signal comparison unit is output.
- a sound collection beam signal output unit A sound collection beam signal output unit.
- each collected beam signal of the first collected beam signal group and each collected beam signal of the second collected beam signal group are symmetric with respect to the reference plane.
- the wraparound sound components between the collected sound beam signals that are related have the same magnitude in the direction perpendicular to the reference plane.
- a difference signal is generated by subtracting the collected sound beam signals in the plane symmetry, and the signal levels are compared.
- the differential signal having the maximum level is selected as the output signal. Since the speaker emits sound at a sound pressure that is symmetric with respect to the reference plane, the sneak sound from the speaker to the microphone can be obtained by simply performing differential processing on each collected beam signal that has a plane-symmetrical relationship. Repress. As a result, the wraparound sound included in the collected sound is reliably and effectively suppressed, and the SZN ratio of the collected sound is improved.
- the first microphone group includes a plurality of microphones arranged in a straight line along a predetermined reference plane, and the second microphone group extends along the predetermined reference plane. It has multiple microphones arranged in a straight line.
- the sound emission and collection device is configured such that a simulated signal obtained by processing an input audio signal with an adaptive filter is subtracted from a sound collection beam signal output by the sound collection beam signal output unit, A regressive sound removal unit that controls so that the sound emitted from the sound is not included in the output sound signal.
- the sneak signal included in the collected sound beam signal output from the collected sound beam signal output unit is further removed by the regression sound removing unit. Therefore, the wraparound sound is more effectively removed.
- the sound emission and collection device of the present invention includes a speaker that emits sound at a sound pressure that is symmetric with respect to a predetermined reference plane, and a first collection of audio in a first area on one side of the predetermined reference plane.
- a first sound collecting unit that picks up sound as a sound signal
- a second sound collecting unit that picks up the sound of the second area on the other side that is symmetrical to the first area with respect to a predetermined reference plane as a second sound collecting signal.
- the first sound collection signal and the second sound collection signal are sound signals obtained by collecting areas that are symmetrical with respect to the reference plane, the respective sound collection signals having a plane-symmetrical relationship are used.
- the wraparound sound component of the sound signal has the same magnitude with respect to the direction perpendicular to the reference plane.
- a difference signal is generated by outputting each collected sound signal having the plane symmetry, and output. Since the speaker emits sound at a sound pressure that is symmetrical with respect to the reference plane, the wraparound sound from the speaker to the microphone is suppressed by simply performing differential processing on each collected sound signal that is in a plane-symmetrical relationship. To do.
- the wraparound sound included in the collected sound is reliably and effectively suppressed, and the SZN ratio of the collected sound is improved.
- two sound collecting beam signals that are symmetrical with respect to the reference plane may be generated.
- the first sound collection unit includes a first microphone array having a plurality of microphones arranged in a straight line along a predetermined reference plane, and the second sound collection unit.
- the sound unit includes a second microphone array having a plurality of microphones arranged in a straight line along a predetermined reference plane, and the sound emission and collection device further includes a first area to be collected by the first microphone array.
- the first virtual focus is set in the opposite direction with respect to the predetermined reference plane, and the plurality of microphones of the first microphone array are set so that the distances between the plurality of microphones of the first microphone array and the first virtual focus are equal.
- the first collected beam signal generator that generates the first collected beam signal from the first collected sound signal and the second microphone array collect the sound by delaying and synthesizing the collected sound signals.
- Second power The second virtual focus is set in the direction opposite to the area and the predetermined reference plane, and the plurality of microphones of the second microphone array are set to have the same distance from each other.
- a second sound collecting beam signal generating unit that generates a second sound collecting beam signal from the second sound collecting signal by delaying and synthesizing the sound signals collected by the microphones.
- the microphone array is configured along a predetermined reference plane.
- a focal point is set behind the microphone array, and an audio signal is collected with a wavefront that converges to this focal point.
- “delay so that the distances from the microphones of the microphone array to the virtual focus are equal” means that the microphones of the microphone array are different in distance from the virtual focus, but these microphones are different.
- This is a process of delaying the sound collection signal of the microphone far from the virtual focal point so that the signals can be synthesized at a timing such that are arranged at equal distances from the virtual focal point.
- the area between the two half straight lines that pass through both ends of the virtual focus microphone array becomes the sound collection area.
- the first sound collection signal and the second sound collection signal are collected from an area symmetrical with respect to the predetermined reference plane.
- FIG. 1 is a plan view showing a microphone and speaker arrangement of a sound emission and collection device according to the present embodiment.
- FIG. 3 is a diagram showing a sound collection beam area formed by a sound emission and collection device
- FIG. 5 is a block diagram showing the configuration of the collected sound beam selection / correction unit 19 shown in FIG.
- FIG. 6 A diagram showing a situation where the sound emitting and collecting apparatus 1 of the present embodiment is placed on a desk C and two conference persons A and B are having a meeting.
- FIG. 7 is a block diagram showing a configuration of a sound collection beam selection / correction unit 19 according to the second embodiment. [0018] 1 Sound emission and collection device
- FIG. 1 is a plan view showing the microphone and speaker arrangement of the sound emission and collection device 1 according to the present embodiment.
- the sound emission and collection device 1 of the present embodiment includes a housing 101 having a plurality of speakers SP1 to SP3, a plurality of microphones MIC11 to MIC17, and MIC21 to MIC27.
- the casing 101 also has a substantially rectangular parallelepiped force that is long in one direction.
- the lower surface of the casing 101 is also spaced apart by a predetermined distance from both ends of the long side (surface) of the casing 101.
- a leg (not shown) with a predetermined height is installed.
- the long surface is referred to as a long surface
- the short surface is referred to as a short surface.
- These single speakers SP1 to SP3 are installed in a straight line at regular intervals along the length direction, and the straight line connecting the centers of the single speakers SP1 to SP3 is along the long surface of the casing 101. It is installed so that its horizontal position matches the central axis 100 that connects the centers of the short surfaces. That is, a straight line connecting the centers of the speaker forces SP1 to SP3 is arranged on a vertical reference plane including the central axis 100.
- the speaker array SPA10 is configured by arranging the single speakers SP1 to SP3 in an array. In such a state, when sound is emitted from each single speaker SP1 to SP3 of the speaker array SPA10, the emitted sound is equally transmitted to the two long surfaces. At this time, the sound emission propagating to two opposing long surfaces travels in mutually symmetrical directions orthogonal to the reference surface.
- microphones MIC11 to MIC17 having the same specifications are installed on one long surface of the casing 101. These microphones MIC 11 to MIC 17 are installed in a straight line at regular intervals along the longitudinal direction, thereby forming a microphone array MA10.
- microphones MIC21 to MIC27 having the same specifications are also installed on the other long surface of the casing 101. These microphones MIC21 to MIC27 are also installed in a straight line at regular intervals along the longitudinal direction, and thereby a microphone array MA20 is configured.
- the microphone array MA10 and the microphone array MA20 are arranged so that the vertical positions of the arrangement axes thereof coincide with each other.
- each microphone MIC11 to MIC17 of the microphone array MA10 and each microphone MIC21 to MIC27 of the microphone array MA20 are arranged. , Respectively, are arranged at symmetrical positions with respect to the reference plane. Specifically, for example, the microphone MIC11 and the microphone MIC21 are symmetrical with respect to the reference plane, and the microphone MIC17 and the microphone MIC27 are similarly symmetrical.
- the power of the speaker array SPA10 with three speakers and the microphone arrays MA10 and MA20 with seven microphones is not limited to this.
- the number of microphones may be set as appropriate.
- the distance between the speakers in the speaker array and the distance between the microphones in the microphone array may not be constant.
- the microphone arrangement in the microphone array is the distance between the microphones arranged in the center along the longitudinal direction. It may be arranged so that the distance between the microphones increases as you go to both ends that are smaller than the distance between the microphones arranged at both ends!
- the sound emission and collection device of the present embodiment beams the sound collection directivity of the entire microphone array by delaying and synthesizing the sounds collected by the respective microphones. At the destination of the sound collection beam, the voice of the speaker generated at a specific spot or area is picked up with high gain, and the voice (noise) other than the speaker is suppressed.
- the beam-collected sound directivity is called a sound collection beam.
- the sound collecting directivity beam can be formed in two modes.
- FIG. 2 is a diagram for explaining these two modes.
- FIG. 2 (A) is a diagram for explaining the spot pickup mode which is the first mode.
- FIG. 2 (B) is a diagram for explaining the area sound collection mode which is the second mode.
- the spot sound collection mode forms a sound collection beam that focuses on the point where the sound is collected! In this mode, sound is collected with gain.
- the sound collection spots P1 to P4 are set, for example, at seating positions of conference attendees.
- the audio signals picked up by each microphone MIC11 to MIC17 (or MIC21 to MIC27) are delayed so as to be equidistant from the focal point (F4 in the figure) and then synthesized, so that the voice generated around the focal point is increased. Can be extracted with gain.
- the equidistant from the focal point means that the sum of the physical distance from the focal point to the microphone and the distance obtained by multiplying the delay time of the sound signal collected by the microphone by the speed of sound is equal for each microphone. That is.
- the microphone array MA10 forms sound collection beams MB11 to MB14 toward the sound collection spots
- the microphone array MA20 is a sound collection beam MB21 toward the sound collection spots.
- Form MB24 Form MB24.
- FIG. 2 (B) is a diagram for explaining the area sound collection mode.
- a virtual focal point F10 is set behind the microphone array, and a directional audio signal is picked up by the microphone array at the focal point F10.
- the range between the virtual focal point F10 and the two half straight lines RIO, R11 passing through the microphone ends MIC11, MIC17 is the sound collection area.
- the virtual focus position in the area sound collection mode is not limited to the position of F10, but is set according to the area to be picked up.
- the virtual focus F The microphone closest to 10 is microphone MIC11, and the distance is L11. Distance from other microphones MIC 12 to MIC17 to the focal point F10 L12 to L17 are longer than L11.
- the virtual distance from the microphones MIC12 to MIC17 to the focal point F10 is equal to the distance L11 between the microphones MIC11 and F10.
- a delay corresponding to the difference between L12 to L15 and L11 is given.
- the area sound collection mode has a wider range of sound collection than the above-mentioned spot sound collection mode, so the gain is not high, but a large area can be collected all at once, and the speaker moved. Sound can be picked up accurately without following the situation.
- this area sound collection mode for example, as shown in FIG. 3B, the microphone array MA10 forms a sound collection beam MB101 directed to the front sound collection area of the microphones MIC11 to MIC17, and the microphone array MA20 The sound collection beam MB201 toward the front sound collection area of the microphones MIC21 to MIC27 is formed.
- FIG. 4 is a block diagram showing a configuration of the sound emission and collection device 1.
- the sound emission and collection device 1 of the present embodiment includes an operation unit 4, a control unit 10, an input / output connector 11, an input / output IZF 12, a sound emission directivity control unit 13, a DZA converter 14, a sound emission Amplifier 15, speaker array SPA10 (speakers SP1 to SP3), microphone array MAIO, MA20 (microphones MIC11 to MIC17, MIC21 to MIC27), sound collecting amplifier 16, AZD converter 17, sound collecting beam generator 181 and 182, a collected sound beam selection / correction unit 19, and an echo cancellation unit 20.
- the control unit 10 comprehensively controls the sound emission and collection device 1, and switches the above-described two sound collection modes to the sound collection beam generation units 181 and 182 and the sound collection beam selection / correction unit 19. Instruct.
- the operation unit 4 receives an operation input from the user and outputs it to the control unit 10. The user can use the operation unit 4 to instruct switching between the two sound collection modes.
- the input / output IZF 12 converts an input audio signal input from the input / output connector 11 from another sound emitting and collecting apparatus from a data format (protocol) corresponding to the network,
- the sound emission directivity control unit 13 is provided via 20.
- the input / output IZF 12 converts the output audio signal generated by the echo cancel unit 20 into data corresponding to the network.
- the data is converted into a format (protocol) and sent to the network via the input / output connector 11.
- the sound emission directivity control unit 13 If the sound emission directivity control unit 13 is not set, the sound emission directivity control unit 13 simultaneously gives sound emission signals based on the input sound signal to the speakers SP1 to SP3 of the speaker array SP A10. Further, when the sound emission directivity such as the setting of the virtual point sound source is designated, the sound emission directivity control unit 13 applies to each speaker SP1 to SP3 of the speaker array SPA10 based on the designated sound emission directivity.
- An individual sound emission signal is generated by performing inherent delay processing and amplitude processing on the input audio signal.
- the sound emission directivity control unit 13 outputs these individual sound emission signals to the DZA converter 14 installed for each of the sound forces SP1 to SP3. Each DZA converter 14 converts the individual sound emission signal into an analog format and outputs it to each sound emission amplifier 15, and each sound emission amplifier 15 amplifies the individual sound emission signal and applies it to the speakers SP 1 to SP 3.
- the speakers SP1 to SP3 emit a given individual sound emission signal to the outside. Since the speakers SP1 to SP3 are installed on the lower surface of the housing 101, the sound emitted is reflected from the installation surface of the desk on which the sound emitting and collecting device 1 is installed, and the side force of the device Propagated in a diagonally upward direction. Also, a part of the emitted sound wraps around the side surface of the sound emitting and collecting apparatus 1 where the microphone array MA 10 and MA 20 are installed.
- the microphones MIC11 to MIC17 and MIC21 to MIC27 of the microphone arrays MA10 and MA20 may be omnidirectional or directional, but it is desirable to be directional.
- the sound of the external force of the device 1 is collected and the collected sound signal is output to each sound collecting amplifier 16.
- Each of the sound collection amplifiers 16 amplifies the sound collection signal and supplies the amplified sound collection signal to the AZD converter 17, and the AZD converter 17 converts the sound collection signal into digital and outputs it to the sound collection beam generation units 181 and 182.
- the collected sound signal from the microphones MIC11 to MIC17 of the microphone array MA10 installed on one long surface is input to the collected sound beam generation unit 181, and the other long length is input to the collected sound beam generation unit 182.
- Sound pickup signals from microphones MIC21 to MIC27 of the microphone array MA20 installed on the surface are input.
- the sound collection beam generation unit 181 and the sound collection beam generation unit 182 are based on the sound collection mode designated by the control unit 10, as shown in Figs. 2 (A), 2 (B), 3 (A), Delay processing is performed on the audio signal collected by each microphone in order to form a shift between the spot-type sound collection beam and area-type sound collection beam shown in Fig. 3 (B).
- the sound collection beam generation unit 181 performs predetermined delay processing on the sound collection signals of the microphones MIC11 to MIC17, and in the spot sound collection mode, the sound coming from a specific spot as described above is used. Sound pickup beam signals MB11 to MB14, which are emphasized signals, are generated. In the area sound collection mode, the sound collection beam signal MB101, which is a signal in which a voice signal coming from a specific area is emphasized, is generated. As shown in Fig. 3 (A), the collected sound beam signals MB11 to MB14 are divided into areas with different predetermined widths along the long surface where the microphones MIC11 to MIC17 are installed. It is set as an area (a specific space or direction emphasized by the collected sound beam signal). As shown in FIG. 3 (B), the sound collecting beam signal 101 has a predetermined width area (wide area) along the long surface where the microphones MIC11 to MIC17 are installed. It is set as an area!
- the sound collection beam generation unit 182 performs predetermined delay processing or the like on the sound collection signals of the microphones MIC21 to MIC27, and generates the sound collection beam signals MB21 to MB24 in the spot sound collection mode.
- a sound collection beam signal MB201 is generated.
- the sound collecting beam signals MB21 to MB24 collect areas of different predetermined widths along the long surface on the long surface side where the microphones MIC21 to MIC27 are installed. It is set as the sound beam area.
- the sound collecting beam signal 201 has a predetermined width (wide area) along the long surface where the microphones MIC21 to MIC27 are installed. It is set as an area.
- the collected sound beam signal MB11 and the collected sound beam signal MB21 are formed as beams symmetric with respect to a vertical plane (reference plane) having the central axis 100.
- the sound collecting beam signal MB12 and the sound collecting beam signal MB22, the sound collecting beam signal MB13 and the sound collecting beam signal MB 23, the sound collecting beam signal MB 14 and the sound collecting beam signal MB24 are also symmetrical with respect to the reference plane. Formed as a beam.
- the sound collecting beam signal MB101 and the sound collecting beam signal MB201 are also formed as symmetrical beams with respect to the reference plane.
- the collected sound beam selection 'correcting unit 19 calculates difference signals between the collected sound beam signals MB11 to MB14 and the collected sound beam signals MB21 to MB24 inputted in the spot sound collecting mode, and outputs the difference signals. The signal with the highest level is selected, and the difference signal is output to the echo canceling unit 20 as the corrected collected beam signal MB.
- the sound collection beam selection / correction unit 19 calculates a difference signal between the sound collection beam signal MB101 input in the area sound collection mode and the sound collection beam signal MB201, and corrects the difference signal for the sound collection.
- the beam signal MB is output to the echo cancel unit 20.
- FIG. 5 is a block diagram showing the main configuration of the collected sound beam selection / correction unit 19.
- the collected sound beam selection / correction unit 19 includes a signal difference circuit 191, a BPF (bandpass filter) 192, a full-wave rectifier circuit 193, a peak detection circuit 194, a level comparator 195, a signal selection circuit 196, and a subtractor 199. .
- BPF bandpass filter
- the signal difference circuit 191 calculates a difference between the collected sound beam signals symmetric about the reference plane from the collected sound beam signals MB 11 to MB 14 and MB 21 to MB 24. Specifically, a difference signal MS1 is generated by calculating a difference between the collected sound beam signals MB11 and MB21, and a difference signal MS2 is generated by calculating a difference between the collected sound beam signals MB12 and MB22. Further, a difference signal MS3 is generated by calculating a difference between the collected sound beam signals MB13 and MB23, and a difference signal MS4 is generated by calculating a difference between the collected sound beam signals MB14 and MB24. In the differential signals MS 1 to MS 4 generated in this way, the original collected beam signals are symmetric with respect to the axis of the speaker array on the reference plane.
- the BPF192 is a bandpass filter that uses a band mainly having beam characteristics and a main component band of human speech as a passband, and performs full-wave rectification by performing a bandpass filter process on the differential signals MS1 to MS4. Output to circuit 193.
- the full-wave rectifier circuit 193 performs full-wave rectification (absolute value) on the differential signals MS1 to MS4, and the peak detection circuit 194 performs peak detection on the differential signals MS1 to MS4 subjected to full-wave rectification, and provides peak value data.
- Psl to Ps4 are output.
- the level comparator 195 compares the peak value data Psl to Ps4 and gives selection instruction data for selecting the differential signal MS corresponding to the peak value data Ps of the highest level to the signal selection circuit 196.
- the signal level of the sound collection beam signal corresponding to the sound collection region where the speaker is present is different. It is used that the signal level of the sound collecting beam signal corresponding to the above region is higher. In other words, if one of the collected sound beam signals that are symmetrical with respect to the reference plane is a collected sound beam signal corresponding to the collected sound region where the speaker is present, the signal level of the differential signal is Based on the utterance sound of the speaker, it exists at a certain height. However, when both are sound-collecting beam signals corresponding to a region where no speaker is present, the sneak-in audio components cancel each other, and the signal level of the differential signal becomes extremely low. For this reason, the difference signal including the sound collection beam signal corresponding to the sound collection region where the speaker is present has a higher signal level than the other difference signals. Therefore, the direction of the speaker can be detected by selecting the differential signal having the highest signal level.
- Figs. 6 (A), 6 (B), and 6 (C) the sound emitting and collecting apparatus 1 of the present embodiment is arranged on a desk C, and two conference persons A and B hold a conference.
- Fig. 6 (A) shows the situation where Conference A is speaking
- Fig. 6 (B) is the status where Conference B is speaking
- Fig. 6 (C) is the conference. Both A and B speak and show a cunning situation.
- the signal level of the sound collecting beam signal MB 13 is changed to another sound collecting beam signal MB. 11, MB12, MB14, higher than the signal level of MB21 to MB24.
- the signal level of the difference signal MS3 obtained by subtracting the sound collection beam signal MB23 from the sound collection beam signal MB13 is higher than the signal level of the difference signals MS1, MS2, and MS4.
- the peak value data Ps3 of the difference signal MS3 becomes higher than the other peak value data Psl, Ps2, Ps4, and the level comparator 195 selects the difference signal MS3 by detecting the peak value data Ps3.
- the instruction data is supplied to the signal selection circuit 196.
- the level comparator 195A detects the peak value data Psl and selects the differential signal MS1. Selection instruction data to be applied is supplied to the signal selection circuit 196.
- both parties A and B say that, in the situation, the level comparator 195A indicates that all of the peak value data Ps1 to Ps4 have a predetermined threshold value.
- the previous selection instruction data is supplied to the signal selection circuit 196.
- the signal selection circuit 196 configures the differential signal MS instructed by the given selection instruction data.
- the sound collecting beam signals MB13 and MB23 constituting the differential signal MS3 are selected, and in the situation of FIG. 6 (B), the convergence constituting the differential signal MS1 is selected.
- the subtractor 199 subtracts and corrects the collected beam signal MB2x from the collected beam signal MBlx input from the signal selection circuit 196, and provides the corrected collected beam signal MB to the echo cancel unit 20.
- the sound collection beam signal MB 23 is subtracted from the sound collection beam signal MB13, and is given to the echo cancellation unit 20 as a corrected sound collection beam signal MB.
- the collected sound beam signal MB21 is subtracted from the collected sound beam signal MB11, and is given to the echo cancellation unit 20 as a corrected collected sound beam signal MB.
- the above description is an operation performed when the sound collection beam selection / correction unit 19 has designated the spot sound collection mode from the control unit 10, but the same operation is performed in the area sound collection mode. . Even in the area sound collection mode, it is possible to form sound collection beam signals in parallel in a plurality of different areas, and the sound collection beam selection / correction unit 19 performs the above-described operation to perform the correction collection. Sound beam signal MB is output.
- the signal difference circuit 191 discards the input sound pickup beam signals MB101 and MB201 without outputting them to the subsequent stage (BPF192 to level comparator 195), and the signal selection circuit 196 outputs the input sound pickup beam.
- the signals MB101 and MB201 are supplied to the subtractor 199 as they are.
- the subtractor 199 subtracts and corrects the collected sound beam signal MB201 from the collected sound beam signal MB101 input from the signal selection circuit 196, and supplies the corrected collected sound beam signal MB to the echo cancel unit 20.
- the sound collection beam signal MB1 that is symmetrical with respect to the reference plane is used.
- the collected sound beam signals MB101 and MB201 to which the signal difference circuit 191 is input may be output to the subsequent stage, but there is no other collected sound beam signal to be compared, and as a result, the level comparison is performed.
- the unit 195 instructs to select the collected sound beam signals MB101 and MB201.
- the echo cancellation unit 20 includes an adaptive filter 201 and a post processor 202.
- the adaptive filter 201 generates a pseudo regression sound signal based on the sound collection directivity of the selected corrected sound collection beam signal MB with respect to the input sound signal.
- the post processor 202 subtracts the pseudo-regression sound signal from the corrected sound pickup beam signal MB output from the sound pickup beam selection / correction unit 19 and outputs it to the input / output IZF 12 as an output sound signal.
- the sound collecting beam selection / correction unit 19 suppresses the sneak sound that could not be suppressed, and collects and outputs the uttered sound with a higher SZN ratio. Can do.
- the wraparound sound collected by the microphone array whose sound collection direction is the direction facing the speaker and the microphone array whose sound collection direction is the opposite side of the speaker direction are collected.
- the sound emission and collection device performs only the area sound collection mode
- two microphones with the directional axes oriented in directions symmetrical to the reference plane are used instead of the microphone arrays MA10 and MA20.
- a unidirectional microphone may be used.
- the sound collection beam generation unit 181 and the sound collection beam generation unit 182 may output the sound signals collected by the respective unidirectional microphones without performing delay control to the subsequent stage.
- the configuration of the collected sound beam selection / correction unit 19 may be as follows.
- FIG. 7 is a block diagram showing the configuration of the main part of the collected sound beam selection / correction unit 19 of the second embodiment.
- the sound emitting and collecting apparatus of the second embodiment is the same as that of the first embodiment shown in FIGS.
- the configuration of the sound collection beam selection / correction unit 19 is different from that of the configuration of the sound emission and collection device, and the other configurations are the same. Therefore, in the second embodiment, only different parts of the collected sound beam selection / correction unit 19 will be described, and description of other parts will be omitted.
- the collected sound beam signals MB11 to MB14 and MB21 to MB24 output from the collected sound beam generation units 181, 182 are signal difference selection circuits 1911. Is input.
- the signal difference selection circuit 1911 receives a difference signal between the input sound collection beam signals MB11 to MB14 and the sound collection beam signals MB21 to MB24. Calculate each.
- the selection instruction data output from the level comparator 195 is input to the signal difference selection circuit 1911.
- the signal difference selection circuit 1911 selects the difference signal MS based on the selection instruction data of the level comparator 195, and supplies this difference signal MS to the echo cancel unit 20 as a corrected sound collection beam signal MB.
- the differential signal MS3 has the highest level, and this differential signal MS3 is given to the echo cancel unit 20 as a corrected sound collection beam signal MB.
- the level of the differential signal MS1 is the highest, so this differential signal MS1 is given to the echo cancellation unit 20 as the corrected sound collection beam signal MB.
- the signal difference selection circuit 1911 gives the difference signal between the input sound collection beam signal MB 101 and the sound collection beam signal MB201 to the echo cancellation unit 20 as a corrected sound collection beam signal MB. Do not output differential signal to BPF192.
- the echo canceling unit 20 performs echo canceling processing on the corrected sound pickup beam signal MB as in the first embodiment, and outputs it to the input / output IZF 12 as an output audio signal.
- the present invention is based on a Japanese patent application filed on June 29, 2006 (Japanese Patent Application No. 2006-179792), the contents of which are incorporated herein by reference.
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- Engineering & Computer Science (AREA)
- Signal Processing (AREA)
- Multimedia (AREA)
- Health & Medical Sciences (AREA)
- Otolaryngology (AREA)
- Physics & Mathematics (AREA)
- Acoustics & Sound (AREA)
- General Health & Medical Sciences (AREA)
- Circuit For Audible Band Transducer (AREA)
- Obtaining Desirable Characteristics In Audible-Bandwidth Transducers (AREA)
Description
Claims
Priority Applications (3)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
EP07767232.7A EP2051542A4 (en) | 2006-06-29 | 2007-06-20 | DEVICE FOR PRODUCING / COLLECTING SOUND |
CN2007800246550A CN101480064B (zh) | 2006-06-29 | 2007-06-20 | 声音发射和采集装置 |
US12/306,413 US8447590B2 (en) | 2006-06-29 | 2007-06-20 | Voice emitting and collecting device |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP2006-179792 | 2006-06-29 | ||
JP2006179792A JP4984683B2 (ja) | 2006-06-29 | 2006-06-29 | 放収音装置 |
Publications (1)
Publication Number | Publication Date |
---|---|
WO2008001659A1 true WO2008001659A1 (fr) | 2008-01-03 |
Family
ID=38845426
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
PCT/JP2007/062393 WO2008001659A1 (fr) | 2006-06-29 | 2007-06-20 | Dispositif d'émission/réception de son |
Country Status (5)
Country | Link |
---|---|
US (1) | US8447590B2 (ja) |
EP (1) | EP2051542A4 (ja) |
JP (1) | JP4984683B2 (ja) |
CN (1) | CN101480064B (ja) |
WO (1) | WO2008001659A1 (ja) |
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Also Published As
Publication number | Publication date |
---|---|
JP2008011196A (ja) | 2008-01-17 |
US8447590B2 (en) | 2013-05-21 |
CN101480064B (zh) | 2012-11-07 |
CN101480064A (zh) | 2009-07-08 |
EP2051542A4 (en) | 2013-05-22 |
EP2051542A1 (en) | 2009-04-22 |
US20090248408A1 (en) | 2009-10-01 |
JP4984683B2 (ja) | 2012-07-25 |
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