Sound system
Patent Information
- Application Number
- JP2024510591
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-28
- Publication Date
- 2025-10-15
- Estimated Expiration
- 2042-03-28
AI Technical Summary
Existing technologies require at least four speakers for stereo playback, increasing volume, weight, and cost due to the use of speaker boxes.
An audio system utilizing speaker units without speaker boxes, employing pairs of speakers that emit sound in opposite phases to create localized stereo reproduction, with signal processing to ensure sound is audible only in specific directions and inaudible elsewhere.
Reduces the number of speakers required for stereo reproduction, allowing sound to be heard only in a very limited range, thereby minimizing volume, weight, and cost.
Smart Images

Figure 0007754286000001 
Figure 0007754286000002 
Figure 0007754286000003
Abstract
Description
[Technical Field]
[0001] The present invention relates to a technology for localized sound reproduction. [Background technology]
[0002] There is a technique for pairing at least two speakers to realize local reproduction of an acoustic signal (see Patent Document 1). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] International Publication No. 2021 / 192166 Summary of the Invention [Problem to be solved by the invention]
[0004] Patent Document 1 discloses a technology that uses the bidirectionality of multiple speakers without using speaker boxes, allowing users to listen only in a local area near the speaker system. However, the technology described in Patent Document 1 uses two speakers to perform local playback of one channel, so at least four speakers are required for stereo playback. Requiring more speakers increases the volume and weight occupied, and doubles the cost.
[0005] SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide an audio system that makes it possible to reduce the number of speakers required for performing localized stereo reproduction. [Means for solving the problem]
[0006] In one aspect of the present invention, an audio system includes a speaker unit pair including at least a first speaker that does not include a speaker box and a second speaker that does not include a speaker box. The L(2n-1)th acoustic signal is an acoustic signal of one channel of stereo channels of a predetermined sound source, the R(2n-1)th acoustic signal is an acoustic signal of the other channel of the stereo channels, the L(2n)th acoustic signal is an acoustic signal of an opposite phase to the L(2n-1)th acoustic signal, and the R(2n)th acoustic signal is an acoustic signal of an opposite phase to the R(2n-1)th acoustic signal. The first speaker outputs the L(2n-1)th acoustic signal that has been subjected to signal processing for making the L(2n-1)th acoustic signal audible in a first region in the L direction. 1) The first speaker emits a sound based on the processed sound signal and an R(2n)-processed sound signal that has been subjected to signal processing to make the R(2n)-th sound signal inaudible in a fourth region in the R direction, and the second speaker emits a sound based on the L(2n)-processed sound signal that has been subjected to signal processing to make the L(2n)-th sound signal inaudible in a second region in the L direction, and an R(2n-1)-processed sound signal that has been subjected to signal processing to make the R(2n-1)-th sound signal audible in a third region in the R direction.
[0007] In one aspect of the present invention, an acoustic system includes a playback device including an n-th playback unit (n=1, ..., N) that outputs an L(2n-1)th acoustic signal that is an acoustic signal of one channel of stereo channels of a predetermined sound source, an L(2n)th acoustic signal that is an acoustic signal in opposite phase to the L(2n-1)th acoustic signal, an R(2n-1)th acoustic signal that is an acoustic signal of the other channel of the stereo channels, and an R(2n)th acoustic signal that is an acoustic signal in opposite phase to the R(2n-1)th acoustic signal; and an Ln-th directivity control unit (n=1, ..., N) that performs predetermined signal processing to generate an L(2n-1)th processed acoustic signal from the L(2n-1)th acoustic signal and generate an L(2n)th processed acoustic signal from the L(2n)th acoustic signal. a directivity control device including an Rn-th directivity control unit (n=1, ..., N) that performs predetermined signal processing to generate an R(2n-1)-th processed sound signal from the R(2n-1)-th sound signal and generate the R(2n)-th processed sound signal from the R(2n)-th sound signal; an Ln synthesis unit (n=1, ..., N) that synthesizes the L(2n-1)-th processed sound signal and the R(2n)-th processed sound signal to obtain an Ln-th synthesized sound signal; and an Rn synthesis unit (n=1, ..., N) that synthesizes the R(2n-1)-th processed sound signal and the L(2n)-th processed sound signal to obtain the Rn-th synthesized sound signal. N), and a speaker system including an n-th speaker unit pair (n=1, ..., N) including a speaker unit (hereinafter referred to as a speaker unit for Lch) that emits sound based on the Ln-th synthesized acoustic signal and a speaker unit (hereinafter referred to as a speaker unit for Rch) that emits sound based on the Rn-th synthesized acoustic signal.The signal processing performed by the Ln-th directivity control unit (n=1, ..., N) is processing that makes the sound emitted from the speaker unit for Lch of the n-th speaker unit pair and the sound emitted from the speaker unit for Rch of the n-th speaker unit pair audible in an area near the n-th speaker unit pair in the L direction where they should be audible, but inaudible in an area in the R direction where they should not be audible. The signal processing performed by the Rn-th directivity control unit (n=1, ..., N) is processing that makes the sound emitted from the speaker unit for Rch of the n-th speaker unit pair and the sound emitted from the speaker unit for Lch of the n-th speaker unit pair audible in an area near the n-th speaker unit pair in the R direction where they should be audible, but inaudible in an area in the L direction where they should not be audible. [Effects of the Invention]
[0008] According to the present invention, it is possible to reduce the number of speakers required to reproduce in stereo audible sounds that can only be heard in a very limited range. [Brief explanation of the drawings]
[0009] [Figure 1] FIG. 2 is a diagram illustrating the directivity of sound emitted from a speaker. [Figure 2] 3A and 3B are diagrams for explaining the directionality of sound emitted from a speaker unit. [Figure 3] 10A and 10B are diagrams for explaining sounds emitted from a speaker unit pair. [Figure 4] 10A and 10B are diagrams for explaining the directivity of sounds emitted from a speaker unit pair. [Figure 5] FIG. 1 shows the experimental setup (the relative positions of the speaker and microphone). [Figure 6] FIG. 1 shows the experimental setup (the relative positions of the speaker unit and microphone). [Figure 7] FIG. 1 shows the experimental setup (the relative positions of the speaker unit pair and microphone). [Figure 8]FIG. 10 is a diagram showing the experimental conditions (other measurement positions). [Figure 9] FIG. 10 is a diagram showing experimental results (condition 1). [Figure 10] FIG. 10 is a diagram showing experimental results (condition 2). [Figure 11] FIG. 10 is a diagram showing experimental results (condition 3). [Figure 12] FIG. 10 is a diagram showing experimental results (condition 4). [Figure 13] FIG. 1 is a diagram showing an example of an audio system installed in an aircraft seat. [Figure 14] 1 is a block diagram showing an example of the configuration of an acoustic system 100. FIG. [Figure 15] 10A and 10B are diagrams illustrating sounds emitted from a pair of speaker units. [Figure 16] FIG. 2 is a block diagram showing an example of the configuration of an acoustic system 200. [Figure 17] FIG. 2 is a block diagram showing an example of the configuration of an acoustic system 202. [Figure 18] 12 is a diagram showing an example of the configuration of a speaker unit pair 122 to which a member 1224 is attached. [Figure 19] FIG. 1 is a diagram showing an example of an audio system installed in a car seat. [Figure 20] FIG. 1 is a diagram showing an example of an audio system installed in a car seat. [Figure 21] FIG. 1 is a diagram showing an example of an audio system installed in a car seat. [Figure 22] FIG. 2 is a block diagram showing an example of the configuration of an acoustic system 300. [Figure 23] 3A and 3B are diagrams for explaining the directionality of sound emitted from a speaker unit. [Figure 24] 3A and 3B are diagrams for explaining the directionality of sound emitted from a speaker unit. DETAILED DESCRIPTION OF THE INVENTION
[0010] Hereinafter, embodiments of the present invention will be described in detail. Components having the same functions are given the same numbers, and duplicated explanations will be omitted.
[0011] <Technical background> First, the directivity of the sound emitted from the speaker will be described. Next, the directivity of the sound emitted from the speaker unit pair of the present invention will be described. Finally, the results of an experiment to confirm the effects of the speaker unit pair of the present invention will be described.
[0012] 1: Directionality of sound emitted from a speaker Typically, a speaker consists of a speaker unit and a speaker box. The speaker unit is a component that includes a diaphragm that converts electrical acoustic signals into vibrations in the air (i.e., generates sound waves). The speaker box is a component that houses the speaker unit.
[0013] When an acoustic signal is input to a speaker, the diaphragm of the speaker unit vibrates, and sound waves are emitted in both directions of the diaphragm's vibration. Here, sound waves emitted outside the speaker box (i.e., toward the front of the speaker unit) are called positive sound waves, and sound waves emitted inside the speaker box (i.e., toward the back of the speaker unit) are called negative sound waves. Negative sound waves are sound waves with the opposite phase to positive sound waves. Figure 1 is a diagram explaining the directionality of sound emitted from a speaker. As shown in Figure 1, positive sound waves are emitted from the speaker in all directions, while negative sound waves do not leave the speaker box. As a result, the sound emitted from the speaker can be heard over a wide range.
[0014] 2: Directivity of sound emitted from a speaker unit pair Here, we will first explain the directionality of sound emitted from a speaker unit, which is a bare speaker. Figure 2 is a diagram for explaining the directionality of sound emitted from a speaker unit. Unlike the case of a speaker unit alone, negative sound waves are emitted from the back of the speaker unit, which is hidden inside the speaker box. Therefore, as shown in Figure 2, the sound emitted from the speaker unit has a bidirectional characteristic.
[0015] The present invention utilizes this bidirectionality. A more detailed explanation follows. First, as shown in FIG. 3, two speaker units are arranged to form a speaker unit pair. The two speaker units are arranged so that they emit sound in approximately the same direction. When acoustic signals of approximately the same magnitude but in opposite phase are input to the speaker unit pair, the diaphragms of the two speaker units vibrate, emitting sounds based on these two acoustic signals. As a result, the sound emitted from the speaker unit pair is greatly suppressed in all directions except for the vicinity of the speaker unit pair, and the sound pressure approaches zero. For example, in FIG. 4, sound is not eliminated in the point area near the speaker unit, but is inaudible outside the point area. In other words, sound is eliminated only at positions sufficiently far from the speaker unit pair, and sound is not eliminated near the speaker unit pair. The reason why sounds are not cancelled near the speaker unit pair is that when the sound waves emitted from each of the speaker unit pair overlap at the observation point, the distance based on the arrival path from each speaker unit to the observation point has a large effect. At distances where the influence of path differences due to the spacing between the speaker unit pair and wraparound is small, the positive and negative phases overlap and cancel each other out, but near the speaker unit pair, the difference in the path taken by the sound waves emitted from the front of the speaker unit and the sound waves wraparound from the back is large, so the positive and negative phases are in a completely opposite relationship and do not overlap.
[0016] In other words, by taking advantage of the property that when a specified acoustic signal is input to one speaker unit that makes up a speaker unit pair and an acoustic signal of the opposite phase to the specified acoustic signal is input to the other speaker unit, the sound can only be heard in the vicinity of the speaker unit pair, it is possible to create a situation in which the sound can only be heard by users in the vicinity of the speaker unit pair, and cannot be heard by other users.
[0017] 3. Experimental Results Here we explain the results of an experiment to measure the frequency characteristics of a speaker, speaker unit, and speaker unit pair. The speakers, speaker units, and speaker unit pairs used in the experiment were a speaker with a 4.5 cm diameter diaphragm (see Figure 5), a speaker with the speaker box removed, leaving only the speaker unit (see Figure 6), and two of these speaker units lined up (see Figure 7). In addition, to measure the frequency characteristics near the speaker, speaker unit, and speaker unit pair, microphones were placed under the following four conditions.
[0018] (Condition 1) 5cm from the front of the speaker (Condition 2) 5cm from the front of the speaker unit (Condition 3) 2 cm from the front of the speaker unit (Condition 4) 2 cm from the front of the speaker unit pair In addition, for comparison purposes, microphones were placed 100 cm from the front, back, and side of the speaker, speaker unit, and speaker unit pair under all conditions (see Figure 8).
[0019] The experimental results are explained below. Figures 9, 10, 11, and 12 show the experimental results, illustrating the relationship between frequency and attenuation under Conditions 1, 2, 3, and 4, respectively. Each figure shows four curves. The curve indicated by the arrow represents sound picked up by a microphone positioned 5 cm or 2 cm from the front, while the other three curves represent sound picked up by microphones positioned 100 cm from the front, back, and side. Note that the curves positioned 5 cm or 2 cm from the front are located near the speaker, so the gain is very large. Therefore, for ease of viewing, the curve positioned 5 cm from the front is plotted at a -25 dB offset from the three curves positioned 100 cm from the front. Similarly, the curve positioned 2 cm from the front is plotted at a -32 dB offset. Comparing Figures 9 and 10, when a speaker is used, there is almost no difference between the four curves. However, when a speaker unit is used, there is a difference between the curve positioned 5 cm from the front and the other three curves. This difference is more pronounced in the low frequency range. Also, comparing Figure 11 and Figure 12, it can be seen that the difference between the curve 2 cm from the front and the other three curves is greater for the speaker unit pair than for the speaker unit itself.
[0020] As described above, it has been confirmed through experiments that the sound emitted from the speaker unit pair of the present invention can be heard only in the vicinity of the speaker unit pair.
[0021] First Embodiment A system that reproduces an acoustic signal obtained based on a reproduction object is called an acoustic system. An acoustic system includes a speaker system for emitting the acoustic signal as sound (hereinafter, this sound will be referred to as sound based on the acoustic signal). Here, a speaker system is a device that converts an analog acoustic signal into sound. Furthermore, a reproduction object refers to data or signals from which an acoustic signal can be obtained by predetermined processing, such as data recorded on a CD, DVD, or record, data received via the Internet, or signals received via radio or television broadcasts.
[0022] Here, we will describe an acoustic system that reproduces sound based on an acoustic signal obtained from a playback target so that only users near the speaker system can hear it. In other words, the sound reproduced by the acoustic system cannot be heard by users other than those near the speaker system. If such an acoustic system is used as an acoustic system for a user using a seat on an airplane, for example, a system can be provided in which the reproduced sound can only be heard by the user using that seat. FIG. 13 is a diagram showing an example of an acoustic system installed on an airplane seat. The acoustic system of FIG. 13 is installed on the seat so as to sandwich the head of a seated user, with two speaker unit pairs positioned near the left and right ears. Note that such an acoustic system can also be installed in vehicles other than airplanes, such as automobiles and trains, or in reclining chairs, and can also be installed in a wearable form, such as on the shoulder. Furthermore, a driver unit pair consisting of two driver units arranged side by side, corresponding to the above-mentioned speaker unit pair, may be installed in each of the left and right units of headphones or earphones. Headphones are generally divided into two main types: open-air and closed-air. Applying the above technology to open-air headphones, which are particularly susceptible to sound leakage, is expected to reduce sound leakage.
[0023] The acoustic system 100 will be described below with reference to FIG. 14. FIG. 14 is a block diagram showing the configuration of the acoustic system 100. As shown in FIG. 14, the acoustic system 100 includes a playback device 110 and a speaker system 120. The playback device 110 includes N (where N is an integer equal to or greater than 1) playback units 112 (i.e., first playback unit 112, ..., Nth playback unit 112). The speaker system 120 includes N speaker unit pairs 122 (i.e., first speaker unit pair 122, ..., Nth speaker unit pair 122). Each speaker unit pair 122 includes two speaker units (i.e., a positive speaker unit 1221 and a negative speaker unit 1221). An acoustic signal having an opposite phase to that input to the positive speaker unit 1221 is input to the negative speaker unit 1221. The speaker system 120 is installed near the head of a user using the seat.
[0024] The direction in which the nth speaker unit pair 122 faces the user is defined as the nth user direction (n=1, ..., N), and the positive speaker unit 1221 and the negative speaker unit 1221 of the nth speaker unit pair 122 (n=1, ..., N) are arranged so that sound emitted from the positive speaker unit 1221 in the direction opposite to the nth user direction and sound emitted from the negative speaker unit 1221 in the direction opposite to the nth user direction are transmitted to the nth user direction by wraparound. Here, the nth user direction refers to the front direction of the positive speaker unit 1221 and the negative speaker unit 1221 of the nth speaker unit pair 122. Furthermore, the direction opposite to the nth user direction refers to the rear direction of the positive speaker unit 1221 and the negative speaker unit 1221 of the nth speaker unit pair 122.
[0025] In addition, the positive speaker unit 1221 and the negative speaker unit 1221 of the nth speaker unit pair 122 (n=1, ..., N) are positioned in a positional relationship such that the sounds emitted from the positive speaker unit 1221 and the negative speaker unit 1221 cancel each other out so that they cannot be heard by users using other seats.
[0026] The operation of the acoustic system 100 will be described below with reference to FIG.
[0027] The playback device 110 receives as input a first acoustic signal, a third acoustic signal, ..., a 2N-1th acoustic signal, which are acoustic signals obtained based on a playback object, and outputs the first acoustic signal, the second acoustic signal, ..., the 2Nth acoustic signal. More specifically, the nth playback unit 112 (n = 1, ..., N) receives as input the 2n-1th acoustic signal, generates from the 2n-1th acoustic signal a 2nth acoustic signal that is an acoustic signal of opposite phase to the 2n-1th acoustic signal, and outputs the 2n-1th acoustic signal and the 2nth acoustic signal. The 2n-1th acoustic signal and the 2nth acoustic signal are input to the positive speaker unit 1221 and the negative speaker unit 1221 of the nth speaker unit pair 122, respectively.
[0028] The speaker system 120 receives as input the first acoustic signal, the second acoustic signal, ..., the 2Nth acoustic signal output by the playback device 110, and emits a sound based on the first acoustic signal, a sound based on the second acoustic signal, ..., a sound based on the 2Nth acoustic signal. More specifically, the nth speaker unit pair 122 (n = 1, ..., N) receives as input the 2n-1th acoustic signal and the 2nth acoustic signal, and emits a sound based on the 2n-1th acoustic signal from the positive speaker unit 1221, and emits a sound based on the 2nth acoustic signal from the negative speaker unit 1221. Because the 2n-1th acoustic signal and the 2nth acoustic signal are in opposite phase to each other, as described in <Technical Background>, the sounds can be heard only in the vicinity of the seat where the speaker system 120 is installed. For example, when N=2, if the first acoustic signal and the third acoustic signal are the right channel acoustic signal and the left channel acoustic signal of a certain sound source, respectively, stereo sound can be heard only in the vicinity of the seat where the speaker system 120 is installed.
[0029] Note that the sound emitted from the positive speaker unit 1221 of the n-th speaker unit pair 122 in the n-th user direction and the sound emitted from the positive speaker unit 1221 of the n-th speaker unit pair 122 in the direction opposite to the n-th user direction have opposite phases to each other. Similarly, the sound emitted from the negative speaker unit 1221 of the n-th speaker unit pair 122 in the n-th user direction and the sound emitted from the negative speaker unit 1221 of the n-th speaker unit pair 122 in the direction opposite to the n-th user direction have opposite phases to each other.
[0030] According to an embodiment of the present invention, it is possible to reproduce a sound that can only be heard within a very narrow range, namely, the vicinity of the speaker system. The term "vicinity" refers to a distance defined based on the environment and experimental results, in accordance with the frequency and the degree of sound attenuation. For example, in <3: Experimental Results>, if the state of sound at a distance where the sound pressure at a position approximately the diameter of the speaker diaphragm from the center of the speaker diaphragm gradually decreases to a sound pressure equivalent to background noise, and this state is considered to be sound attenuation, then "vicinity" is defined as, for example, a distance of approximately twice the diameter of the speaker diaphragm from the center of the speaker diaphragm. In other words, assuming an environment with a certain level of background noise, such as the inside of a car, the vicinity range is set so that the speaker system 120 can be heard by a person sitting in the seat where it is installed, but cannot be heard by a person sitting in the seat next to it. For example, in (3: Experimental Results), if we consider the state in which sound emitted from a speaker unit is radiated into the surrounding area and reaches a sound pressure equivalent to that of background noise to be sound elimination, then "nearby" can be considered to be up to a distance of approximately twice the user's shoulder width from the center of the speaker diaphragm.
[0031] Second Embodiment FIG. 15 is a diagram showing the sound emitted from a speaker unit pair. In the diagram, SPU represents a speaker unit. In the case of a speaker unit pair installed near the right ear, the sounds from each speaker unit cancel each other out in the intermediate region between the two speaker units, creating an area where the sound emitted from the speaker unit pair cannot be heard, and the user cannot hear the sound. On the other hand, in the case of a speaker unit pair installed near the left ear, the area where the sound emitted from the speaker unit pair can be heard shifts from the position of the ears, causing the user to be unable to hear the sound. In other words, when (i) both / either of the left and right ears are located in the intermediate region, (ii) both / either of the left and right ears are located outside the audible region, or (iii) one of the left and right ears is located in the intermediate region and the other is located outside the audible region, the user cannot hear the sound or has difficulty hearing it. To solve these problems, the directivity of the sound emitted from the speaker unit pair is controlled. Here, an audio system that performs directivity control processing is described.
[0032] The acoustic system 200 will be described below with reference to Fig. 16. Fig. 16 is a block diagram showing the configuration of the acoustic system 200. As shown in Fig. 16, the acoustic system 200 includes a playback device 110, a directivity control device 210, and a speaker system 120. The directivity control device 210 includes N directivity control units 212 (i.e., a first directivity control unit 212, ..., an Nth directivity control unit 212). The acoustic system 200 differs from the acoustic system 100 in that it includes the directivity control device 210.
[0033] The operations of the directivity control device 210 and the speaker system 120 will be described below with reference to FIG.
[0034] The directivity control device 210 receives the first acoustic signal, the second acoustic signal, ..., the 2Nth acoustic signal output by the playback device 110 as input, and outputs a first-processed acoustic signal obtained by signal processing the first acoustic signal, a second-processed acoustic signal obtained by signal processing the second acoustic signal, ..., a 2Nth-processed acoustic signal obtained by signal processing the 2Nth acoustic signal. More specifically, the nth directivity control unit 212 (n = 1, ..., N) receives the 2n-1th acoustic signal and the 2nth acoustic signal as input, and performs predetermined signal processing to generate a 2n-1th-processed acoustic signal from the 2n-1th acoustic signal, generate a 2nth-processed acoustic signal from the 2nth acoustic signal, and output the 2n-1th-processed acoustic signal and the 2nth-processed acoustic signal. Here, the predetermined signal processing refers to processing for controlling directivity, and can be, for example, the method described in Reference 1 or other directivity control techniques. Needless to say, other directivity control techniques may also be used. In short, any technology may be used as long as it can control the directionality according to the positions of the user's ears and the positions of the speaker unit pair. (Reference 1) Futoshi Asano, "Sound Array Signal Processing - Sound Source Localization, Tracking and Separation", Corona Publishing, 2011, pp. 69-91 The predetermined signal processing is, for example, filtering using an FIR (Finite Impulse Response) filter. The FIR filter used here is designed by placing microphones in an audible range and an inaudible range, respectively, so that the filter coefficient value approaches 1 for the microphones placed in the audible range and the filter coefficient value approaches 0 for the microphones placed in the inaudible range. A specific explanation will be given below. The audible range and the inaudible range need to be designed depending on the case. For example, consider the case of placement in a car seat (hereinafter referred to as seat S). The position where the ear of a user using seat S would be when moving their head or turning their face should be included in the audible range, while the position where the ear of a user using a seat adjacent to seat S (e.g., the seat next to or in front of or behind seat S) would be included in the inaudible range. Therefore, for example, the filter coefficient value approaches 0 for microphones placed in an area that includes seats adjacent to seat S but does not include seat S. As described above, sounds cancel each other out in the intermediate region between the two speaker units, and as a result, sounds may not be heard even at the position where the ears are located when the head is moved or the direction of the face is changed. Taking this into consideration, the filter coefficient value of the microphone placed in the intermediate region is set to approach 1. In essence, the filter coefficient of the microphone placed in the region where the user's ears are assumed to be located can be controlled to approach 1, and / or the filter coefficient of the microphone placed in the region where the user's ears are assumed not to be located can be controlled to approach 0. In other words, the filter can be configured so that the sound arriving in the region where the user's ears are assumed to be located is as loud as possible, and so that the sound arriving in the region where the user's ears are assumed not to be located is reduced as much as possible.
[0035] As a result, the nth directivity control unit (n=1, ..., N) executes signal processing to make the sound emitted from the positive speaker unit of the nth speaker unit pair and the sound emitted from the negative speaker unit of the nth speaker unit pair audible in an area near the nth speaker unit pair that should be audible, but inaudible in an area that should not be audible. Note that the area that should be the audible area includes a point equidistant from the positive speaker unit of the nth speaker unit pair and the negative speaker unit of the nth speaker unit pair, where the sound emitted from the positive speaker unit of the nth speaker unit pair and the sound emitted from the negative speaker unit of the nth speaker unit pair cancel each other out.
[0036] The speaker system 120 receives as input the first processed acoustic signal, the second processed acoustic signal, ..., the 2Nth processed acoustic signal output by the directivity control device 210, and emits sound based on the first processed acoustic signal, the second processed acoustic signal, ..., the 2Nth processed acoustic signal. More specifically, the nth speaker unit pair 122 (n=1, ..., N) receives as input the 2n-1th processed acoustic signal and the 2nth processed acoustic signal, and emits sound based on the 2n-1th processed acoustic signal from the positive speaker unit 1221, and emits sound based on the 2nth processed acoustic signal from the negative speaker unit 1221.
[0037] (Variation) Here, we will explain an acoustic system that uses materials with sound-absorbing properties to prevent high-frequency sounds from leaking.
[0038] The acoustic system 202 will be described below with reference to Fig. 17. Fig. 17 is a block diagram showing the configuration of the acoustic system 202. As shown in Fig. 17, the acoustic system 202, like the acoustic system 200, includes a playback device 110, a directivity control device 210, and a speaker system 120. However, the acoustic system 202 differs from the acoustic system 200 in that a member 1224 is attached to the speaker unit pair 122.
[0039] The structure of the n-th speaker unit pair 122 (n=1, . . . , N) will be described below with reference to FIG.
[0040] The nth speaker unit pair 122 is fitted with a member 1224 for absorbing sounds emitted from the positive speaker unit 1221 and the negative speaker unit 1221 of the nth speaker unit pair 122 in the direction opposite to the nth user direction (see FIG. 18). The member 1224 may be any member that can prevent high-frequency sounds from being radiated from the rear surface. Note that instead of installing the member 1224 only on the rear surface of the speaker unit pair 122, the member 1224 may be installed so as to surround the speaker unit pair 122 on all sides except the front surface.
[0041] (Example of a car seat-mounted sound system) 19 and 20 are diagrams showing examples of sound systems installed in automobile seats. In the example of FIG. 19, a speaker unit pair is installed in the headrest of the automobile seat. Specifically, N=2, and a first speaker unit pair and a second speaker unit pair are installed in the headrest of the automobile seat. On the other hand, in the example of FIG. 20, a speaker unit pair is installed on arms attached to the automobile seat. Specifically, N=2, and the speaker units are installed on two arms attached to the automobile seat so as to sandwich the head of a user using the automobile seat. The arms may be movable.
[0042] (Other examples) An example other than a car seat, specifically a seat for a gaming machine such as a pachinko or slot machine, will be described. Typically, a user sits in front of the gaming machine and enjoys playing games on the gaming machine. Therefore, the seats for gaming machines may also be provided with arms as described in the example of a car, so that the speaker unit pair is located near the position of the user's ears when seated in the seat. Note that since the seats for gaming machines may not have a backrest, the arms may be provided on the gaming machine instead of the seat. Furthermore, the arms may be movable so that the user can adjust them so that the speaker unit pair is located near the user's ears.
[0043] Third Embodiment In the acoustic system of the second embodiment, only one speaker unit pair can reproduce a one-channel (monaural) acoustic signal. If two-channel (stereo) acoustic signals are to be reproduced, at least two speaker unit pairs are required.
[0044] In this embodiment, an audio system capable of reproducing two-channel (stereo) audio signals using one speaker unit pair will be described. Before going into details, an overview of the invention according to this embodiment will be described. As described above, an audio system in which a positive speaker unit (hereinafter also referred to as the first speaker) and a negative speaker unit (hereinafter also referred to as the second speaker) are in opposite phase to each other and neither speaker has a speaker box is realized. In this embodiment, the first speaker and the second speaker each have two roles. For simplicity of explanation, the speaker that emits an audio signal for listening is referred to as the main speaker, and the other speaker is referred to as the cancellation speaker. The first speaker plays the role of a left-channel main speaker and a right-channel cancellation speaker, and the second speaker plays the role of a left-channel cancellation speaker and a right-channel main speaker. By giving directionality to the signals emitted from the first and second speakers so that they can perform these functions, a single speaker unit pair can reproduce stereo sound signals that can only be heard in the vicinity.
[0045] In this embodiment, the sound signal obtained based on the object to be reproduced is a two-channel (stereo) sound signal.
[0046] FIG. 21 is a diagram showing an example of an audio system installed in an aircraft seat. The audio system in FIG. 21 is installed in the headrest of the seat, with two speaker units included in one speaker unit pair arranged horizontally in the center of the headrest. Note that while an aircraft seat is used as an example here, the invention may also be applied to an automobile seat, a train seat, an office chair, or a speaker unit pair installed on a separator or digital signage. In short, the invention described in this embodiment may be applied to any audio system that uses fewer speakers than the first embodiment and reproduces stereo audio signals that can only be heard by those in the vicinity.
[0047] The acoustic system 300 will be described below with reference to Fig. 22. Fig. 22 is a block diagram showing the configuration of the acoustic system 300. As shown in Fig. 22, the acoustic system 300 includes a playback device 310, a directivity control device 330, a synthesis device 340, and a speaker system 320.
[0048] The playback device 310 includes N (where N is an integer equal to or greater than 1) playback sections 312 (that is, first playback section 312, ..., Nth playback section 312).
[0049] The directivity control device 330 includes 2N directivity control units 332 (that is, the L1 directivity control unit 332-L, . . . , the LN directivity control unit 332-L, the R1 directivity control unit 332-R, . . . , the RN directivity control unit 332-R).
[0050] The combining device 340 includes 2N combining sections 342 (that is, an L1 combining section 342-L, . . . , an LN combining section 342-L, an R1 combining section 342-R, . . . , an RN combining section 342-R).
[0051] Speaker system 320 includes N speaker unit pairs 322 (i.e., first speaker unit pair 322, ..., Nth speaker unit pair 322). Each speaker unit pair 322 includes two speaker units (i.e., speaker unit 3221 for Lch and speaker unit 3221 for Rch). Speaker system 320 is installed near the head of a user using the seat.
[0052] Furthermore, the speaker unit 3221 for Lch and the speaker unit 3221 for Rch of the nth speaker unit pair 322 (n=1, ..., N) are positioned in a positional relationship such that the sounds emitted from the speaker unit 3221 for Lch and the sounds emitted from the speaker unit 3221 for Rch are cancelled out by each other so that they cannot be heard by users using other seats.
[0053] The operation of the acoustic system 300 will be described below with reference to FIG.
[0054] The playback device 310 receives as input two-channel audio signals obtained based on the object to be played back: an L1 audio signal and an R1 audio signal, an L3 audio signal and an R3 audio signal, ..., an L(2N-1) audio signal and an R(2N-1) audio signal, and outputs an L1 audio signal and an R1 audio signal, an L2 audio signal and an R2 audio signal, ..., an L(2N) audio signal and an R(2N) audio signal. More specifically, the nth reproducer 312 (n = 1, ..., N) receives the L(2n-1)th acoustic signal and the R(2n-1)th acoustic signal as input, generates an L(2n)th acoustic signal from the L(2n-1)th acoustic signal that is an acoustic signal of opposite phase to the L(2n-1)th acoustic signal, generates an R(2n)th acoustic signal from the R(2n-1)th acoustic signal that is an acoustic signal of opposite phase to the R(2n-1)th acoustic signal, and outputs the L(2n-1)th acoustic signal and the R(2n-1)th acoustic signal and the R(2n-1)th acoustic signal. The L(2n-1)th acoustic signal and the L(2n)th acoustic signal are input to the Ln directivity control unit 332-L, and the R(2n-1)th acoustic signal and the R(2n)th acoustic signal are input to the Rn directivity control unit 332-R.
[0055] The directivity control device 330 receives as input the L1 acoustic signal and the R1 acoustic signal, the L2 acoustic signal and the R2 acoustic signal, ..., the L(2N) acoustic signal and the R(2N) acoustic signal output by the playback device 310, and outputs an L1-processed acoustic signal obtained by signal processing the L1 acoustic signal, an L2-processed acoustic signal obtained by signal processing the L2 acoustic signal, ..., an L(2N)-processed acoustic signal obtained by signal processing the L(2N) acoustic signal, an R1-processed acoustic signal obtained by signal processing the R1 acoustic signal, an R2-processed acoustic signal obtained by signal processing the R2 acoustic signal, ..., an R(2N)-processed acoustic signal obtained by signal processing the R(2N) acoustic signal.
[0056] More specifically, the Lnth directivity control unit 332-L (n = 1, ..., N) receives the L(2n-1)th acoustic signal and the L(2n)th acoustic signal as input, and performs predetermined signal processing to generate an L(2n-1)th processed acoustic signal from the L(2n-1)th acoustic signal, generate an L(2n)th processed acoustic signal from the L(2n)th acoustic signal, and output the L(2n-1)th processed acoustic signal and the L(2n)th processed acoustic signal by performing predetermined signal processing.
[0057] Similarly, the Rnth directivity control unit 332-R (n = 1, ..., N) receives the R(2n-1)th acoustic signal and the R(2n)th acoustic signal as input, and performs predetermined signal processing to generate an R(2n-1)th processed acoustic signal from the R(2n-1)th acoustic signal, generate an R(2n)th processed acoustic signal from the R(2n)th acoustic signal, and output the R(2n-1)th processed acoustic signal and the R(2n)th processed acoustic signal by performing predetermined signal processing. Here, the predetermined signal processing is processing for controlling the directivity described in the second embodiment, and includes, for example, filtering processing having coefficients as will be described next.
[0058] A more detailed explanation follows. The audible and inaudible regions need to be designed depending on the case. For example, consider the case of installation in a car seat (hereinafter referred to as seat S). The Ln directivity control unit 332-L ensures that the position of the left ear of a user using seat S is included in the audible region, and that other positions are included in the inaudible region. The Rn directivity control unit 332-R ensures that the position of the right ear of a user using seat S is included in the audible region, and that other positions are included in the inaudible region. Therefore, for example, the Ln directivity control unit 332-L adjusts the filter coefficient value to approach 0 for a microphone installed in a region that includes the left seat adjacent to seat S but does not include the position of the left ear of a user using seat S. The Rn directivity control unit 332-R adjusts the filter coefficient value to approach 0 for a microphone installed in a region that includes the right seat adjacent to seat S but does not include the position of the right ear of a user using seat S. In essence, the filter coefficient of a microphone placed in an area where it is assumed that the user's ears are located should be controlled to approach 1, and / or the filter coefficient of a microphone placed in an area where it is assumed that the user's ears are not located should be controlled to approach 0. In other words, the filter should be configured so that the loudest possible sound arrives in the area where it is assumed that the user's ears are located, and so that the quietest possible sound arrives in the area where it is assumed that the user's ears are not located.
[0059] As a result, the Lnth directivity control unit (n=1, ..., N) performs signal processing so that the sound emitted from the speaker unit for the Lch of the nth speaker unit pair and the sound emitted from the speaker unit for the Rch of the nth speaker unit pair can be heard in an area near the nth speaker unit pair that should be audible (for example, the position where the user's left ear is located), but cannot be heard in an area that should not be audible.
[0060] Similarly, the Rnth directivity control unit (n = 1, ..., N) performs signal processing so that the sound emitted from the speaker unit for Rch of the nth speaker unit pair and the sound emitted from the speaker unit for Lch of the nth speaker unit pair can be heard in an area near the nth speaker unit pair that should be audible (for example, the position where the user's right ear is located), but cannot be heard in an area that should not be audible.
[0061] Figures 23 and 24 are diagrams explaining the areas that should be audible and the areas that should not be audible. A speaker unit for Rch and a speaker unit for Lch are installed horizontally aligned on a headrest. Here, it is assumed that the user's head is positioned near the center of the speaker unit pair. Stereo playback is possible with a speaker unit pair consisting of two speaker units by reproducing the stereo L channel using the directivity for the L channel created in advance with a fixed filter, and reproducing the stereo R channel using the directivity for the R channel.
[0062] The L(2n-1)th processed audio signal is an audio signal for making the R channel directivity audible in a region (hereinafter also referred to as the first region) to the left of the direction in which the user faces as viewed from the center of the speaker unit pair. The R(2n)th processed audio signal is an audio signal for making the R channel directivity inaudible in a region (hereinafter also referred to as the fourth region) to the right of the direction in which the user faces as viewed from the center of the speaker unit pair.
[0063] Similarly, the R(2n-1)th processed acoustic signal is an acoustic signal for making the L channel directivity audible in a region (hereinafter also referred to as the third region) to the right of the direction in which the user faces as viewed from the center of the speaker unit pair. The L(2n)th processed acoustic signal is an acoustic signal for making the L channel directivity inaudible in a region (hereinafter also referred to as the second region) to the left of the direction in which the user faces as viewed from the center of the speaker unit pair.
[0064] The synthesis device 340 receives as input the L1-processed acoustic signal, the L2-processed acoustic signal, ..., the L(2N)-processed acoustic signal, and the R1-processed acoustic signal, the R2-processed acoustic signal, ..., the R(2N)-processed acoustic signal, and synthesizes these signals to obtain an L1-processed acoustic signal, an L2-processed acoustic signal, ..., the LN-th processed acoustic signal, and an R1-processed acoustic signal, an R2-processed acoustic signal, ..., the RN-th processed acoustic signal, which it outputs.
[0065] More specifically, the Ln-th synthesis unit 342-L (n=1, ..., N) receives the L(2n-1)-th processed acoustic signal and the R(2n)-th processed acoustic signal as input, synthesizes these signals, and obtains the Ln-th synthesized acoustic signal.
[0066] Similarly, the Rn synthesis unit 342-R (n = 1, ..., N) receives the R(2n-1)th processed acoustic signal and the L(2n)th processed acoustic signal as input, synthesizes these signals, and obtains the Rnth synthesized acoustic signal.
[0067] The speaker system 320 receives as input the L1 synthesized acoustic signal, the L2 synthesized acoustic signal, ..., the LN synthesized acoustic signal, and the R1 synthesized acoustic signal, the R2 synthesized acoustic signal, ..., the RN synthesized acoustic signal output by the synthesizing device 340, and emits sound based on the L1 synthesized acoustic signal, sound based on the L2 synthesized acoustic signal, ..., the LN synthesized acoustic signal, and sound based on the R1 synthesized acoustic signal, sound based on the R2 synthesized acoustic signal, ..., the RN synthesized acoustic signal. More specifically, the n-th speaker unit pair 322 (n = 1, ..., N) receives as input the Ln synthesized acoustic signal and the Rn synthesized acoustic signal, and emits sound based on the Ln synthesized acoustic signal from the speaker unit 3221 for Lch, and emits sound based on the Rn synthesized acoustic signal from the speaker unit 3221 for Rch. The component of the Ln-th synthesized audio signal based on the L(2n-1)-th processed audio signal and the component of the Rn-th synthesized audio signal based on the L(2n)-th processed audio signal are in opposite phase to each other, and the component of the Rn-th synthesized audio signal based on the R(2n-1)-th processed audio signal and the component of the Ln-th synthesized audio signal based on the R(2n)-th processed audio signal are in opposite phase to each other, so that, as explained in <Technical Background>, sound can only be heard near the seat where speaker system 320 is installed. For example, when N=1, if the L1-th audio signal and the R1-th audio signal, which are two-channel audio signals obtained based on the playback object, are the left channel audio signal and the right channel audio signal of a certain sound source, respectively, stereo sound can only be heard near the seat where speaker system 320 is installed.
[0068] Note that the sound emitted in the direction of the nth user from the speaker unit 3221 for Lch of the nth speaker unit pair 322 and the sound emitted in the direction opposite to the nth user direction from the speaker unit 3221 for Lch of the nth speaker unit pair 322 are in opposite phases to each other. Similarly, the sound emitted in the direction of the nth user from the speaker unit 3221 for Rch of the nth speaker unit pair 322 and the sound emitted in the direction opposite to the nth user direction from the speaker unit 3221 for Rch of the nth speaker unit pair 322 are in opposite phases to each other.
[0069] According to an embodiment of the present invention, it is possible to reproduce sounds that can only be heard in a very limited narrow range, namely, in the vicinity of the speaker system, and stereo reproduction is possible using a speaker unit pair consisting of two speaker units.
[0070] The present embodiment may be combined with the modified example of the second embodiment. In addition, in this embodiment, directivity control is realized by the array signal processing explained in the second embodiment, but it may also be realized by using a directional speaker.
[0071] Furthermore, in this embodiment, an example where N=1 has been described, but N may be any integer greater than or equal to 2. Even when N is an integer greater than or equal to 2, local reproduction is possible, and N speaker unit pairs can reproduce N stereo channel acoustic signals, respectively.
[0072] <Additional Notes> The foregoing description of the embodiments of the present invention has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed. Modifications and variations are possible in light of the above teachings. The embodiments were chosen and described to provide the best illustration of the principles of the invention and to enable those skilled in the art to utilize the invention in various embodiments and with various modifications as may be suitable for the practical uses contemplated. All such modifications and variations are within the scope of the invention as defined by the appended claims, interpreted in accordance with the breadth to which they are fairly, legally, and equitably entitled.
Claims
[Claim 1] An acoustic system including a speaker unit pair including at least a first speaker not including a speaker box and a second speaker not including a speaker box, the L(2n-1)th acoustic signal is an acoustic signal of one channel of the stereo channels of a predetermined sound source, the R(2n-1)th acoustic signal is an acoustic signal of the other channel of the stereo channels, the L(2n)th acoustic signal is an acoustic signal having an opposite phase to the L(2n-1)th acoustic signal, The R(2n)th acoustic signal is an acoustic signal having an opposite phase to the R(2n-1)th acoustic signal, the first speaker emits a sound based on an L(2n-1)-th processed sound signal obtained by performing signal processing on an L(2n-1)-th sound signal to make the signal audible in a first region in an L direction, and an R(2n)-th processed sound signal obtained by performing signal processing on an R(2n)-th sound signal to make the signal inaudible in a fourth region in an R direction; the second speaker emits a sound based on an L(2n)-th processed sound signal obtained by performing signal processing on the L(2n)-th sound signal to make it inaudible in a second region in the L direction, and an R(2n-1)-th processed sound signal obtained by performing signal processing on the R(2n-1)-th sound signal to make it audible in a third region in the R direction. Sound system.
Citation Information
Patent Citations
JP1986095189U
Directivity controller and game machine
JP2003087888A
Arrangement method for speaker and acoustic reproducing device
JP2003087893A
Directional speaker control system
JP2005101902A
Acoustic reproducer with handsfree call function, and handsfree call method
JP2010056722A