A public address radio system, and a loudspeaker substation and signal processing device for the public address radio system.

The public address radio system adjusts audio signals based on environmental data to maintain clarity, addressing the challenge of varying transmission characteristics and enhancing speech intelligibility in disaster prevention broadcasting.

JP7841328B2Active Publication Date: 2026-04-07GENERAL CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-31
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing disaster prevention radio broadcasting systems face challenges in accurately transmitting voice information due to varying transmission characteristics based on season and weather conditions, leading to potential misinterpretation of critical messages by residents.

Method used

A public address radio system that includes a master station and outdoor loudspeaker substations, which transmit environmental data such as temperature, humidity, and weather to adjust audio signals using signal processing units to maintain a predetermined clarity index, employing frequency patterns and equalization to enhance intelligibility.

Benefits of technology

Ensures clear transmission of audio signals regardless of weather conditions, improving speech intelligibility and ensuring effective dissemination of disaster prevention information.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a broadcast wireless system capable of correctly transmitting audio to a resident, and a public-address slave station and a signal processing device for the broadcast wireless system.SOLUTION: A broadcast wireless system according to an embodiment of the present invention comprises a master station facility, and at least one public-address slave station installed outdoors, and broadcasts loudspeaker information including an audio signal distributed from the master station facility to the public-address slave station from the public-address slave station. The master station facility has a transmission unit for transmitting the audio signal and environmental information including data related to at least one of a temperature, a humidity, and a weather of a location where the master station facility or the public-address slave station is installed to the public-address slave station. The public-address slave station has: a receiver for receiving the audio signal and the environmental information; a loudspeaker for reproducing the audio signal; and a signal processing device for correcting the audio signal based on the environmental information so that an evaluation index relating to clarity of the audio reproduced by the loudspeaker becomes a predetermined reference value.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] The present invention relates to a technology of a wireless repeater system used, for example, in disaster prevention radio broadcasting.

Background Art

[0002] In disaster prevention radio broadcasting in municipalities, etc., a wireless repeater system is widely used. The wireless repeater system is an information transmission means for broadcasting voice information simultaneously distributed from a master station facility to a plurality of wireless loudspeaker slave stations installed at various outdoor locations, from each wireless loudspeaker slave station to a disaster prevention location or a resident's house. For such a purpose, it is desired that the broadcast content be clearly and accurately transmitted to the residents in the area covered by each wireless loudspeaker slave station.

[0003] For example, in Patent Document 1, when outputting voice information from a master station facility as amplified voice information from a speaker of an outdoor loudspeaker slave station, the volume level of the amplified voice information is adjusted by an output amplifier according to the ambient noise sound pressure level measured by a sound pressure meter. A wireless repeater system is disclosed.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0005] The transmission characteristics of voice vary greatly depending on the season or weather. Therefore, even if the volume of the voice is at a sufficient level, there are cases where residents cannot recognize the voice as correct words, and for this reason, there is a problem that there is a risk that disaster prevention information cannot be correctly transmitted to the residents.

[0006] In view of the above circumstances, the object of the present invention is to provide a public address radio system that makes it easier for voices to be transmitted correctly to residents regardless of various conditions such as season and weather, as well as a loudspeaker substation and signal processing device for the public address radio system. [Means for solving the problem]

[0007] A broadcast radio system according to one embodiment of the present invention comprises a master station and at least one loudspeaker substation installed outdoors, and broadcasts loudspeaker information including an audio signal distributed from the master station to the loudspeaker substation from the loudspeaker substation, The master station equipment includes a transmitting unit that transmits the voice signal and environmental information, including data related to at least one of the temperature, humidity, and weather of the location where the master station equipment or the loudspeaker substation is installed, to the loudspeaker substation. The loudspeaker substation includes a receiving unit that receives the voice signal and the environmental information, a loudspeaker that reproduces the voice signal, and a signal processing unit that corrects the voice signal based on the environmental information so that an evaluation index for the clarity of the voice reproduced by the loudspeaker becomes a predetermined reference value.

[0008] This broadcast radio system corrects the audio signal to achieve the target evaluation indicators according to weather conditions such as temperature, humidity, and weather outside where the loudspeaker substation is installed. This makes it easier for residents to hear the audio correctly.

[0009] The signal processing device may have a storage unit and a control unit. The memory unit stores frequency patterns obtained in advance for each of several types of weather conditions in which at least one of the outdoor temperature, humidity, and weather differs, for the audio signal reproduced by the loudspeaker, and for which the predetermined reference value is obtained as the evaluation index. The control unit extracts a frequency pattern corresponding to the environmental information from the storage unit and corrects the frequency characteristics of the audio signal based on the extracted frequency pattern.

[0010] The storage unit may further store the loudspeaker frequency characteristics, which are the frequency characteristics of the loudspeaker, and the control unit may correct the frequency characteristics of the audio signal based on the environmental information and the loudspeaker frequency characteristics. Alternatively, the loudspeaker substation may have a plurality of loudspeakers with different loudspeaker frequency characteristics, and the storage unit may store a plurality of loudspeaker frequency characteristics, each of which is the frequency characteristic of the plurality of loudspeakers. This allows for correction of the audio signal, taking into account the frequency characteristics of the loudspeaker.

[0011] Each frequency pattern stored in the memory unit may be correction data for the audio signal.

[0012] The master station equipment further includes a data acquisition unit that acquires weather data for the area where the master station equipment or the loudspeaker substation is installed, and may transmit an identifier corresponding to the weather data from a plurality of identifiers pre-categorized according to at least one of temperature, humidity, and weather as environmental information. In this case, the storage unit may store a plurality of correction data corresponding to each of the plurality of identifiers as the frequency pattern.

[0013] The signal processing device further includes a voice synthesis unit that synthesizes predetermined preliminary voice signals transmitted from the master station equipment or stored in the storage unit before and after the playback of the voice signal, and the control unit may selectively correct only the voice signal from the voice signal and the preliminary voice signals.

[0014] The main station equipment may further include a data acquisition unit that acquires weather data for the area where the loudspeaker substation is installed, and may generate the environmental information based on the acquired weather data.

[0015] The aforementioned evaluation index may be SII (Speech Intelligibility Index).

[0016] The predetermined reference value may be a value that satisfies a predetermined level of intelligibility for the voice signal broadcast from the loudspeaker, which has been measured in advance on a predetermined subject at a predetermined distance from the loudspeaker.

[0017] A loudspeaker substation according to one embodiment of the present invention is a loudspeaker substation for a broadcast radio system that is installed outdoors and broadcasts loudspeaker information including voice signals distributed from a master station facility, and comprises a receiving unit, a loudspeaker, and a signal processing unit. The receiving unit receives the audio signal and environmental information including data related to at least one of the outdoor temperature, humidity, and weather. The loudspeaker reproduces the audio signal. The signal processing device corrects the audio signal based on the environmental information so that the evaluation index for the clarity of the sound reproduced by the loudspeaker reaches a predetermined reference value.

[0018] Another embodiment of the present invention is a loudspeaker substation for a broadcast radio system that is installed outdoors and broadcasts loudspeaker information including voice signals distributed from a master station, and comprises a receiving unit, a measuring instrument, a loudspeaker, and a signal processing device. The receiving unit receives the audio signal. The measuring instrument acquires environmental information, including data related to at least one of the outdoor temperature, humidity, wind, and weather. The loudspeaker reproduces the audio signal. The signal processing device corrects the audio signal based on the environmental information so that the evaluation index for the clarity of the sound reproduced by the loudspeaker reaches a predetermined reference value.

[0019] The loudspeaker may include a plurality of loudspeakers, and the signal processing device may individually correct the audio signals reproduced by each of the plurality of loudspeakers according to the wind direction outdoors.

[0020] A signal processing device according to an aspect of the present invention is a signal processing device for a radio communication system that broadcasts dissemination information including an audio signal distributed from a master station facility to an outdoor loudspeaker slave station, and includes a storage unit and a control unit. The storage unit stores a frequency pattern in which a predetermined reference value can be obtained as an evaluation index regarding the clarity of voice, which is set in advance for each of a plurality of types of weather conditions in which at least one of the outdoor temperature, humidity, and weather is different for the voice signal reproduced by the loudspeaker of the loudspeaker slave station. The control unit extracts one frequency pattern corresponding to the current outdoor weather conditions from the storage unit, and corrects the audio signal so that the extracted frequency pattern can be obtained.

Effect of the Invention

[0021] According to the present invention, voices can be correctly transmitted to residents easily regardless of various conditions such as seasons and weather.

Brief Description of the Drawings

[0022] [Figure 1] It is a schematic configuration diagram of a radio communication system according to a first embodiment of the present invention. [Figure 2] It is a diagram showing an example of the relationship between SII and intelligibility. [Figure 3] It is a diagram showing an example of a correction frequency pattern. [Figure 4] It is an experimental result explaining the difference in intelligibility depending on the presence or absence of correction of an audio signal when using a point-source speaker. [Figure 5A] It is an explanatory diagram showing conditions of seasons and weather classified into four types. [Figure 5B] It is a diagram showing a correlation map of SII and a corresponding table of intelligibility IDs for a combination of clear sky / point-source speaker. [Figure 5C] It is a diagram showing a correlation map of SII and a corresponding table of intelligibility IDs for a combination of bad weather / point-source speaker. [Figure 5D]This figure shows the correlation map of SII for clear-sky / linear source speaker combinations and the corresponding table of intelligibility IDs. [Figure 5E] This figure shows a correlation map of SII (Sound Indication Index) based on the combination of adverse weather conditions and line source speakers, and a corresponding table of intelligibility IDs. [Figure 6] This diagram shows the recognition level ID determination table, with (A) being the table for sunny weather and (B) being the table for bad weather. [Figure 7] This is a conceptual diagram of a broadcast radio system that explains how to determine the correction frequency pattern from environmental information (intelligibility ID) transmitted from the master station equipment. [Figure 8] This figure shows an example of the equalization ID list and equalization conversion list stored in each loudspeaker substation. [Figure 9] This flowchart shows an example of the operating procedure for the above-mentioned broadcast radio system. [Figure 10] This is a front view showing a loudspeaker substation in a broadcast radio system according to a second embodiment of the present invention. [Figure 11] This is a schematic plan view showing an example of the arrangement of loudspeakers in the above-mentioned loudspeaker substation. [Figure 12] This figure shows a modified configuration of the loudspeaker substation shown in Figure 10. [Figure 13] This diagram illustrates the relationship between the direction in which a loudspeaker is installed and the wind speed. [Figure 14] This diagram illustrates the grouping of multiple loudspeakers. [Figure 15] This figure shows the recognition level ID determination table, which is prepared according to the judgment value calculated based on wind speed and rainfall. [Figure 16] This figure shows the sound range of each loudspeaker substation in windless conditions (before control). [Figure 17] This figure shows the sound range of each loudspeaker substation during strong winds (before control). [Figure 18] This figure shows an example of control for each loudspeaker substation during strong winds. [Figure 19] This figure shows an example of optimal control for each loudspeaker substation during strong winds. [Figure 20] This diagram shows the sound range of each loudspeaker substation during strong winds and heavy rain (before control). [Figure 21] This figure shows an example of optimal control for each loudspeaker substation during strong winds and heavy rain. [Modes for carrying out the invention]

[0023] Embodiments of the present invention will be described below with reference to the drawings.

[0024] <First Embodiment> [Broadcast radio system] Figure 1 is a schematic diagram of a broadcast wireless system according to one embodiment of the present invention. The broadcast radio system 100 of this embodiment comprises a master station 10 and a plurality of loudspeaker substations 20 installed outdoors. The master station 10 simultaneously distributes voice signals to the loudspeaker substations 20, and the loudspeaker substations 20 broadcast loudspeaker information, including the distributed voice signals. The broadcast radio system 100 is operated, for example, as a disaster prevention administrative radio system that transmits disaster prevention information to local residents.

[0025] The main station equipment 10 is installed, for example, in administrative agencies such as city halls, or in public facilities such as schools and community centers. At least one loudspeaker substation 20 is installed in each area under the jurisdiction of a city, town, or village. The range over which a single loudspeaker substation 20 can transmit sound (sound range) may differ for each loudspeaker substation 20, or there may be some overlap.

[0026] Furthermore, the number of loudspeaker substations 20 is not limited to multiple units; one unit may suffice. In addition to the above configuration, a relay station may be installed to relay communications from the master station equipment 10 to the loudspeaker substations 20.

[0027] [Master station equipment] The master station equipment 10 includes an operating console 11, a control device 12, and a transmitter 13.

[0028] The control console 11 includes an input device 111, a display device 112, and a data acquisition unit 113. The input device 111 is for inputting voice information to be transmitted to each loudspeaker substation 20, and includes a touch panel, mouse, keyboard, and a microphone for voice input. The input device 111 converts voice information entered, for example, via a keyboard, into voice data. The display device 112 includes a screen that displays various information entered by the input device 111. The data acquisition unit 113 is connected to a server device 1 via a network N and acquires current weather data from observation points near the municipalities where the loudspeaker substations 20 are installed. The server device 1 may be, for example, the Japan Meteorological Agency's web server.

[0029] Weather data includes, for example, temperature, humidity, weather, and wind speed (including wind direction). Here, in this specification, "weather" refers to the state of the sky, such as sunny / rainy / cloudy, excluding temperature and humidity, and it is sufficient to know at least whether or not there is rainfall or the amount of rainfall (including zero). The acquired weather data is automatically taken in by the control device 12 or input by operating the input device 111.

[0030] Furthermore, the control console 11 is not limited to being an attached device to the master station equipment 10; it may be a separate device from the master station equipment 10. In other words, the control console 11 may be installed in a location different from the master station equipment 10, in which case the control console 11 is connected to the master station equipment 10 via wired or wireless communication.

[0031] The control device 12 generates an audio signal to be transmitted to the loudspeaker substation 20 based on the audio data generated by the input device 111. The control device 12 further generates environmental information, which includes weather data from the weather data acquired by the data acquisition unit 113, relating to at least one of the temperature, humidity, and weather at the location where the master station equipment 10 or each loudspeaker substation 20 is installed. In this embodiment, from a plurality of identifiers pre-categorized according to at least one of the temperature, humidity, and weather, identifiers corresponding to the weather data acquired by the data acquisition unit 113 are transmitted to each loudspeaker substation 20 as environmental information. Details of the above identifiers will be described later.

[0032] The control device 12 can be implemented using hardware elements used in a computer, such as a CPU (Central Processing Unit), RAM (Random Access Memory), and ROM (Read Only Memory), as well as necessary software. The control device 12 may also be part of the control console 11.

[0033] The transmitter 13 is a communication device that wirelessly transmits public address information, including the voice signal and environmental information generated by the control device 12, to each public address substation 20. The transmitter 13 includes a modulator that encodes the voice signal into a predetermined voice codec. The modulator may be provided by the control device 12.

[0034] [Laptop Substation] The loudspeaker substation 20 includes a receiver 21, a loudspeaker 22, an equalizer 23, and a signal processing device 24.

[0035] The receiver 21 is a communication device that receives public address information, including voice signals and environmental information, transmitted from the master station equipment 10. The receiver 21 has a demodulator that decodes the received public address information. The demodulator may be provided by the public address speaker 22 or the signal processing device 24.

[0036] The loudspeaker 22 is a speaker that reproduces the audio signal received by the receiver 21 as sound. At least one loudspeaker 22 is installed at each loudspeaker substation 20. The loudspeaker 22 includes an amplifier that amplifies the sound pressure level of the audio signal. The loudspeaker 22 reproduces the audio signal at a sound pressure level that can be transmitted over a preset sound range. The number and type of loudspeakers 22 are not particularly limited; they may be a single point source or line source speaker, multiple point source or line source speakers, or multiple speakers that simultaneously include both point sources and line sources. A point source refers to a speaker with general characteristics, such as a straight horn type, and a line source refers to a speaker with characteristics that emphasize the high-frequency range more than a point source, such as a line array type.

[0037] The equalizer 23 is an audio device that modifies the frequency characteristics of the audio signal reproduced by the loudspeaker 22 based on control commands from the signal processing device 24. The equalizer 23 improves the transmission characteristics of the audio signal so that the audibility of the audio is improved over the sound range of the loudspeaker 22 by emphasizing or attenuating specific frequency bands of the audio signal. The equalizer 23 also has a function to adaptively adjust the amount of emphasis in relation to the intensity of the input audio signal, for the purpose of protecting the loudspeaker 22 and ensuring sound quality.

[0038] Generally, the transmission characteristics of sound vary greatly depending on the season or weather. For example, in winter, the temperature and humidity are lower than in summer, making it more difficult for high-frequency components (e.g., above 4kHz) to travel long distances. Also, in rainy weather, the transmission characteristics tend to deteriorate more easily than in sunny weather due to noise from rainfall. In other words, depending on the outdoor weather conditions, even if the volume of the sound played back by the loudspeaker 22 is at a sufficient level, the sound may not be recognized as correct words, and as a result, disaster prevention information may not be properly conveyed to residents.

[0039] Therefore, the loudspeaker substation 20 of this embodiment is equipped with a signal processing device 24 that corrects the audio signal based on environmental information transmitted from the main station equipment 10, so that the evaluation index for the clarity of the voice played back by the loudspeaker 22 reaches a predetermined standard value. This makes it easier to accurately transmit disaster prevention information to residents while suppressing the effects of season and weather.

[0040] The above evaluation indices refer to objective evaluation indices related to speech intelligibility that have been standardized by international standards, such as AI (Articulation Index), SII (Speech Intelligibility Index), and STI (Speech Transmission Index). For example, SII is standardized as "ANSI S3.5-1997," and basically, for each divided frequency band, the intelligibility index for each frequency is determined from the signal-to-noise ratio and frequency-specific coefficients (contribution rate to intelligibility for each frequency), and the overall intelligibility index is determined by summing these. These evaluation indices allow for the theoretical deriving of evaluation values ​​related to speech intelligibility from environmental factors such as the frequency and sound pressure level of the speech signal, temperature, humidity, and noise. Hereinafter, these evaluation indices will also be referred to as physical evaluation indices. In this embodiment, the objective is to reproduce clear speech that is not affected by these environmental factors by correcting the speech signal based on these physical evaluation indices.

[0041] The predetermined reference value in the physical evaluation index refers to the specific value of the physical evaluation index that serves as the reference when the audio signal correction processing is performed in the equalizer 23 based on a control command from the signal processing device 24. In setting the reference value, in this embodiment, intelligibility (voice intelligibility), which is an evaluation index different from SII, is used.

[0042] Figure 2 shows the results of one experiment illustrating the relationship between the above physical evaluation index and intelligibility. In this experiment, two types of sound sources were used as the speaker's sound source: a straight horn type point source and a line array type line source. The relationship between SII and word intelligibility was evaluated under identical conditions for the test sound source and outdoor environment. In the figure, the horizontal axis represents SII, and the vertical axis represents word intelligibility. As shown in the figure, there is a tendency for word intelligibility to increase as the SII value increases, and in both line source and point source cases, word intelligibility was approximately 85% when the SII was approximately 0.7 or higher. It should be noted that the results in the figure are merely an example, and the quantitative relationship between SII and intelligibility changes depending on the measurement environment and the frequency characteristics of the speaker. Therefore, while an SII value of 0.45 or higher is generally considered preferable, it is also possible to determine the relationship between SII and intelligibility experimentally in advance, as shown in Figure 2, and convert the reference value set based on the intelligibility to SII for use.

[0043] Speech intelligibility is a value that represents how accurately words or sentences are conveyed to the listener, and is expressed as a percentage of the ratio of the number of words the listener fully understood to the number of words they sent. Because speech intelligibility is measured based on actual listening experiments conducted with multiple subjects, it can be considered a psychological evaluation index, unlike physical evaluation indexes. Types of speech intelligibility include, for example, sentence intelligibility and word intelligibility. Sentence intelligibility is the level of intelligibility at the sentence level, while word intelligibility is the level of intelligibility at the individual word level.

[0044] To measure intelligibility, for example, a test sound source is played from the speaker (loudspeaker 22) of the loudspeaker substation 20, and a test is conducted in which participants transcribe what they hear at the confirmation point. The playback sound pressure level is set to the emergency setting (maximum sound pressure level). As for the test method, for linked words, the test score is given to whether all syllables were correctly transcribed word by word. The data from all confirmers (subjects) is compiled, the correct response rate is calculated, and this correct response rate is taken as the intelligibility score. The number of test sound sources and confirmers is ensured so that there are at least 100 people × number of words per measurement condition. Confirmers should be individuals with normal hearing, such as those who do not show significant hearing loss in hearing tests. From the perspective of controlling familiarity with the test sound source and proficiency in the response method, individuals with sufficiently high linguistic ability in the test sound source should be assigned. In addition, confirmers should not be informed of the test sound source in advance.

[0045] In this embodiment, the predetermined reference value is a value that satisfies a predetermined level of intelligibility for the audio signal broadcast from the loudspeaker substation 20, which was measured in advance for a predetermined subject at a predetermined distance from the loudspeaker substation 20. This predetermined level of intelligibility is a target level of intelligibility, and a higher value is preferable. By correcting the frequency characteristics of the audio signal to approach the SII corresponding to this target level of intelligibility, the level of intelligibility can be improved compared to before the correction.

[0046] Furthermore, the predetermined distance mentioned above refers to any distance within the sound transmission range of the loudspeaker substation 20. Since the sound pressure level attenuates with increasing distance, the measurement point for intelligibility is set to a point relatively far from the loudspeaker substation 20 within the sound transmission range, which in this embodiment is approximately 580m. The intelligibility value set as the reference value mentioned above may be a constant value regardless of weather conditions such as season and rainfall, or it may be a different value depending on the weather conditions.

[0047] As described above, the transmission characteristics of sound fluctuate depending on weather conditions such as season (temperature, humidity) and noise (rainfall), and therefore, the intelligibility of sound tends to decrease along with fluctuations in the transmission characteristics of sound. However, even in such cases, it is possible to improve intelligibility by appropriately equalizing the sound played back by the loudspeaker 22 according to the weather conditions. In this embodiment, intelligibility improvement patterns (sunny mode, rainy mode, etc.) with level adjustments for different scenes such as sunny days and bad weather are prepared in advance, and the frequency characteristics of the sound played back from the loudspeaker 22 are corrected according to the weather. This makes it possible to present easily audible audio information to residents in the area within the sound range of the loudspeaker 22.

[0048] [Signal processing device] The details of the signal processing device 24 will be described below. As shown in Figure 1, the signal processing device 24 in each loudspeaker substation 20 has a storage unit 241, a control unit 242, and a speech synthesis unit 243.

[0049] The memory unit 241 is an information storage device such as a hard disk drive or semiconductor memory. The memory unit 241 stores multiple frequency patterns for correcting the audio signal reproduced by the loudspeaker 22. These frequency patterns are data for correcting the audio signal by multiplying them with the audio signal transmitted from the master station equipment 10, so that the physical evaluation index (SII in this embodiment) of the audio signal becomes a predetermined reference value within the sound range of the loudspeaker 22. Hereinafter, the above frequency patterns will also be referred to as correction frequency patterns.

[0050] The correction frequency patterns are pre-set for multiple types of weather conditions in which at least one of the following differs: temperature, humidity, weather, wind speed, etc., of the outdoor location where the loudspeaker substation 20 is installed. Examples of weather conditions include correction frequency patterns for summer (high temperature, high humidity), winter (low temperature, low humidity), and rainfall. Multiple correction frequency patterns may be provided for summer and winter, each corresponding to different combinations of temperature and humidity. In addition to summer and winter, correction frequency patterns for spring and autumn may also be provided. Similarly, multiple correction frequency patterns may be provided for rainfall, corresponding to different rainfall amounts.

[0051] For example, a correction frequency pattern with emphasized high frequencies can be applied to a winter correction frequency pattern compared to a summer correction frequency pattern. Also, for a summer correction frequency pattern, if the rainfall is relatively heavy (e.g., 2-6 mm / h), a frequency pattern with attenuated low frequencies and emphasized high frequencies can be applied, as shown in Figure 3(A), for example. In the case of heavy rain, a correction frequency pattern with emphasized mid-range frequencies can be applied, as shown in Figure 3(B), for example. Furthermore, when using a high-frequency-emphasizing loudspeaker 22, a correction frequency pattern with emphasized mid-range frequencies can be applied according to the amount of rainfall.

[0052] Figure 4 shows the results of an experiment illustrating the difference in intelligibility with and without correction of the audio signal when using a point source speaker as the loudspeaker 22. In the figure, the horizontal axis represents SII, and the vertical axis represents word intelligibility. Each point in the figure (A1, A2, A3, B1, B2) represents the evaluation results for three conditions in which the outdoor temperature and humidity were the same, and only the weather was different. The same audio signal was used in all cases.

[0053] In Figure 4, points A1 to A3 represent the evaluation results without correction, with point A1 corresponding to heavy rain, point A2 to moderately heavy rain, and point A3 to sunny weather. On the other hand, points B1 and B2 represent the evaluation results when correction is applied. More specifically, point B1 is the evaluation result when the mid-range frequencies of the audio signal are emphasized under the conditions of point A1. Point B2 is the evaluation result when the low-frequency range of the audio signal is attenuated and the high-frequency range is emphasized under the conditions of point A2. As is clear from points B1 and B2, correction of the audio signal can improve both SII and intelligibility compared to points A1 and A2, respectively.

[0054] As shown in Figure 4, the correlation between SII and intelligibility for rain noise deteriorates towards the lower left (low SII, low intelligibility) in the case of no correction, while it can be maintained in the upper right (high SII, high intelligibility) state in the case of correction.

[0055] It should be noted that the frequency characteristics of the audio signal are not always corrected, and if the desired physical evaluation index or audio intelligibility can be obtained under suitable weather conditions, correction of the audio signal may not be necessary. For example, certain temperature and humidity conditions, such as those in summer when audio signals are relatively less attenuated, fall under this category.

[0056] The correction frequency pattern may also be adjusted taking into account the speaker characteristics (loudspeaker frequency characteristics) of the loudspeaker 22. As shown in Figure 2, the frequency characteristics differ for point sources and line sources, so it is preferable to set a correction frequency pattern for each speaker characteristic. In this case, a correction frequency pattern for the loudspeaker 22 may be set separately from the correction frequency pattern set for each weather condition, or a pattern including the correction frequency pattern for the loudspeaker 22 may be set as the correction frequency pattern for each weather condition.

[0057] While all audio signals may be corrected, if the goal is to enable the recognition of the audio as correct words, correction may be applied only to words containing specific, hard-to-hear consonants. For example, if the audio being transmitted contains the phrase "wear a mask when going out," words containing consonants such as "s," "k," and "t," like "shutsu" in "shutsu" (going out) and "suku" in "mask," are considered harder to hear than words with other consonants. In such cases, simply emphasizing only the words "shutsu" and "suku" can improve the overall intelligibility of the sentence.

[0058] The control unit 242 extracts one or more frequency patterns corresponding to the environmental information transmitted from the master station equipment 10 from the storage unit 241 and corrects the frequency characteristics of the audio signal based on the extracted frequency patterns. In this embodiment, the control unit 242 extracts a correction frequency pattern corresponding to the environmental information transmitted from the master station equipment 10 from among a plurality of correction frequency patterns stored in the storage unit 241. The control unit 242 corrects the frequency characteristics of the audio signal reproduced by the loudspeaker 22 by controlling the equalizer 23 based on the extracted correction frequency pattern. At this time, the gain may be adjusted so as not to make the volume of the broadcasted audio excessive.

[0059] The speech synthesis unit 243 synthesizes a backup speech signal before and after the playback of the speech signal. The backup speech signal is intended to alert local residents to disaster prevention information and is a fixed melody or chime broadcast at the beginning and end of the public address broadcast. Different voices may be prepared for the backup speech signal depending on the type or urgency of the disaster prevention information.

[0060] The backup audio signal may be transmitted simultaneously with the audio signal from the master station equipment 10, or it may be stored in the storage unit 241. By storing the backup audio signal in the storage unit 241, it can also be used for the self-broadcasting of each loudspeaker substation 20. Furthermore, the playback / stopping of the backup audio signal may be instructed from the master station equipment 10, or it may be performed at the loudspeaker substation 20 according to predetermined conditions.

[0061] The control unit 242 selectively corrects only the voice signal from the voice signal and the auxiliary voice signal. This is because the auxiliary voice signal does not contain significant information, so there is little need to improve its audibility, and because it is often familiar to local residents, a certain level of recognition effect can be obtained even when weather conditions change.

[0062] The control unit 242 and the speech synthesis unit 243 can be implemented using hardware elements used in computers, such as a CPU (Central Processing Unit), RAM (Random Access Memory), and ROM (Read Only Memory), as well as the necessary software. Instead of or in addition to the CPU, a PLD (Programmable Logic Device) such as an FPGA (Field Programmable Gate Array), a DSP (Digital Signal Processor), or other ASICs (Application Specific Integrated Circuits) may be used. The speech synthesis unit 243 may also be part of the control unit 242.

[0063] [Relationship between environmental information and correction frequency patterns] Next, we will explain the relationship between the environmental information transmitted from the master station equipment 10 and the correction frequency pattern selected by each loudspeaker substation 20 based on this environmental information.

[0064] (Basic concept) Figure 5A is an explanatory diagram showing four types of seasonal and weather conditions. In this example, the seasonal and weather conditions are categorized as follows: Type 1 is "other than winter, bad weather"; Type 2 is "winter, bad weather"; Type 3 is "other than winter, sunny"; and Type 4 is "winter, sunny." These four types, combined with differences in the speaker characteristics of the loudspeaker 22, result in a total of eight patterns.

[0065] Here, speaker characteristics are classified based on the type of sound source (point source speaker and line source speaker). Alternatively, speaker characteristics can also be classified by the sound range; for example, speakers with a sound range of less than 500m and speakers with a sound range of 500m or more.

[0066] Factors that affect intelligibility include "speaker," "weather," and "season (temperature and humidity)." For "speaker," the audio signal is corrected considering the speaker characteristics for each sound source. For "weather," normal correction (or no correction) is applied in sunny and cloudy conditions, while correction is applied to reduce the impact of rain noise in rainy conditions. And for "season (temperature and humidity)," correction is applied to reduce attenuation due to temperature and humidity.

[0067] In this embodiment, a plurality of identifiers (hereinafter also referred to as intelligibility IDs) that have been pre-categorized according to meteorological data relating to temperature, humidity, and weather (rainfall) and the speaker characteristics of the loudspeaker 22 are prepared in a manner described later. Then, the master station equipment 10 (control device 12) determines one intelligibility ID from among these plurality of intelligibility IDs that corresponds to the current meteorological data acquired by the data acquisition unit 113, and transmits the determined intelligibility ID as environmental information to each loudspeaker substation 20. Each loudspeaker substation 20 selects a correction frequency pattern for the audio signal based on the received intelligibility ID.

[0068] (Preparing the understanding level ID) The intelligibility ID contains information regarding correction guidelines for the audio signal so that the audio broadcast by the loudspeaker substation 20 achieves the target physical evaluation index (SII) over its range. Measurement environment factors that affect SII include, for example, the radio characteristics of the audio signal transmitted from the master station equipment 10, the speaker characteristics of the loudspeaker substation 10, the propagation characteristics of the audio broadcast by the loudspeaker substation 10 (distance, wind, etc.), ambient noise, atmospheric pressure, and road surface reflection. Depending on weather conditions and speaker characteristics, the target SII value (e.g., 0.55) may be obtained without correcting the audio signal. For ease of understanding, the intelligibility ID is classified into the following three ID numbers.

[0069] "1": No equalization is performed (SII value is greater than 0.55) "2": Perform weak equalization (SII value is between 0.50 and 0.55) "3": Implement strong equalization (SII value less than 0.50)

[0070] In this embodiment, as shown in Figures 5B to 5E, correlation maps showing the relationship between temperature, humidity, and SII are created in advance under different conditions: noise levels associated with weather (sunny / bad weather) and speaker characteristics (straight / line array). Weather (sunny / bad weather) is associated with, for example, the outdoor noise level due to rainfall. Here, weather with rainfall of less than 4 mm / h is defined as "sunny," with a noise level equivalent to 50 dB, and weather with rainfall of 4 mm / h or more is defined as "bad weather," with a noise level equivalent to 55 dB.

[0071] Figure 5B shows the correlation map of SII for clear-sky / point source speaker (straight type) combinations and the corresponding table of intelligibility IDs. The correlation map of SII shown in Figure (1) can represent the SII values ​​as contour lines when the horizontal axis is relative humidity (%) and the vertical axis is temperature (°C). The correspondence table for intelligibility IDs shown in Figure (2) is a correspondence table in which the equalizing conditions for realizing the correlation map in Figure (1) are assigned to intelligibility ID numbers according to the combination of temperature and relative humidity, using SII values ​​of 0.50 and 0.55 as thresholds.

[0072] Figure 5C shows the correlation map of SII for the combination of bad weather / point source speaker (straight type) (Figure (1)) and the corresponding table of intelligibility IDs (Figure (2)).

[0073] Similarly, Figure 5D shows the correlation map of SII for the combination of clear weather / line source speaker (line array type) (Figure (1)) and the corresponding table of intelligibility IDs (Figure (2)). Also, Figure 5E shows the correlation map of SII for the combination of bad weather / line source speaker (line array type) (Figure (1)) and the corresponding table of intelligibility IDs (Figure (2)). In the example shown in the figure, for both sunny and inclement weather conditions, the case where strong equalization is applied under temperature and humidity conditions of 20% relative humidity or higher is shown, compared to the point source speaker case shown in Figures 5B and 5C.

[0074] Figures 6(A) and 6(B) show the determination table for intelligibility IDs, which was created based on the correlation map and correspondence table of intelligibility IDs of SII measured as described above, and merged (integrated) considering the type of speaker. Figure (A) corresponds to clear weather, and Figure (B) corresponds to bad weather. The merged intelligibility IDs are numbered 1 to 6 as follows.

[0075] "1": (Regardless of speaker conditions) No equalization is performed. "2": Apply weak equalization (regardless of speaker conditions). "3": Apply strong equalization (regardless of speaker conditions). "4": (Point source or sound range less than 500m) No equalization is performed. (Linear sound source or audio range of 500m or more) Apply weak equalization. "5": (Point source or sound range less than 500m) Apply weak equalization. (Linear sound source or audio range of 500m or more) Apply strong equalization. "6": (Point source or sound range less than 500m) No equalization is performed. (Linear sound source or audio range of 500m or more) Apply strong equalization.

[0076] In this embodiment, the intelligibility ID determination table shown in Figures 6(A) and 6(B) is stored in the memory built into the control device 12 of the master station equipment 10. The control device 12 determines the intelligibility ID corresponding to the current weather data acquired by the data acquisition unit 113 by referring to the intelligibility ID determination table, and transmits the determined intelligibility ID as environmental information to each loudspeaker substation 20. When referring to the intelligibility ID determination table, for example, the temperature and humidity are rounded values ​​of the actual temperature and humidity (weather data acquired by the data acquisition unit 113).

[0077] In environments where weather data cannot be obtained in real time, a table of intelligibility IDs corresponding to winter or other seasons may be prepared as an intelligibility ID determination table, based on predetermined calendar dates. In this case, for example, an intelligibility ID corresponding to winter would be selected from November to February, and an intelligibility ID corresponding to other seasons would be selected from March to October. Alternatively, different intelligibility ID determination tables may be prepared for each season or each month.

[0078] (Method for determining the correction frequency pattern in a loudspeaker substation) Figure 7 is a conceptual diagram of a broadcast radio system 100 illustrating a method for determining a correction frequency pattern from environmental information (intelligibility ID) transmitted from the master station equipment 10. As shown in the figure, each loudspeaker substation 20 has an equalize ID list 244 and an equalize conversion list 245.

[0079] The equalize ID list 244 is a list that links equalize IDs with audio signal correction data (hereinafter also referred to as correction data) corresponding to the correction frequency pattern. Figure 8(A) shows an example of the equalize ID list 244. The equalize ID list 244 is stored in common in the memory unit 241 of each loudspeaker substation 20. In the example shown in the figure, five equalize IDs with ID numbers from "0" to "4" and their data are shown, where "0" is no equalization, "1" is weak (for clarity), "2" is strong (for improved intelligibility), "3" is weak (for main roads), and "4" is strong (for main roads). The data for each equalize ID includes the filter type (HPF: high-pass filter in the example shown), cutoff frequency fc, and gain of the frequency band to be corrected.

[0080] The data for clarity (equalize ID "1") includes corrected data that takes into account factors such as season (temperature, humidity), while the data for improving intelligibility and for main roads (equalize IDs "2" to "4") includes corrected data that takes into account the presence and intensity of noise.

[0081] On the other hand, the equalization conversion list 245 is a list that links environmental information (intelligibility ID) transmitted from the master station equipment 10 with the equalization ID. Figures 8(B) and (C) show examples of the equalization conversion list 245. The equalization conversion list 245 is stored in the memory unit 241 of each loudspeaker substation 20, similar to the equalization ID list 244, but it is set to different content for each loudspeaker substation 20. This makes it possible to set the optimal correction data according to the installation conditions of each loudspeaker substation 20.

[0082] For example, the setting example shown in Figure 8(B) is an equalization conversion list for a loudspeaker substation equipped with multiple speakers (loudspeakers 22) with different sound sources, and includes conversion lists for point source speakers and line source speakers. In each conversion list, the correspondence between environmental information (intelligibility ID) and equalization ID is shown, and even with the same environmental information (intelligibility ID), different equalization IDs may be assigned to point source speakers and line source speakers. In the example in the figure, the equalization ID corresponding to intelligibility ID "4" is set to equalization ID "0" for point source speakers ("no equalization") and equalization ID "1" for line source speakers ("weak: for clarification").

[0083] Furthermore, the example setting shown in Figure 8(C) is an equalization conversion list for a loudspeaker substation equipped with multiple speakers (loudspeakers 22) with different sound sources, but it is a conversion list for a loudspeaker substation installed near a main road. The difference from Figure 8(B) is that equalization is performed for all intelligibility IDs.

[0084] As shown in Figure 6, the signal processing unit 24 of each loudspeaker substation 20 determines an equalize ID corresponding to the environmental information (intelligibility ID) transmitted from the master station equipment 20 for each sound source of the speaker (loudspeaker 22) by referring to the equalize conversion list 245, determines correction data corresponding to the determined equalize ID by referring to the equalize ID list 245, and corrects the audio signal by controlling the equalizer 23 based on the determined correction data.

[0085] Note that the equalization ID list 244 common to all loudspeaker substations 20 is not necessarily required and may be omitted if necessary. In this case, for example, correction data corresponding to the equalization ID may be written to the equalization conversion list 245 of each loudspeaker substation 20.

[0086] [Operation of the broadcast radio system] Next, a typical operation of the broadcast wireless system 100 of this embodiment will be described. Figure 9 is a flowchart showing an example of the operation procedure of the broadcast wireless system 100.

[0087] To begin broadcasting disaster prevention information, first, the control console 11 of the master station equipment 10 is used to input the audio data to be broadcast (step 101). This audio data may be input word by word by the operator using the input component 111, selected from a set of pre-prepared sentences, or input by voice.

[0088] Next, the master station equipment 10 acquires current weather data (temperature, humidity, weather) for the area where the master station equipment 10 or the loudspeaker sub-station 20 is installed from the data acquisition unit 113 of the control console 11 (step 102). In this case as well, the weather data may be input by the operator, or the weather conditions may be automatically acquired from the data acquisition unit 112.

[0089] Next, the master station equipment 10 generates an audio signal based on the input audio data and generates environmental information based on the acquired weather data. For the environmental information, one intelligibility ID is determined from the intelligibility ID determination table (six intelligibility IDs "1" to "6") shown in Figures 6(A) and (B). The determination of the intelligibility ID may be performed automatically by the control device 12 or by an operator's input. The master station equipment 10 then simultaneously transmits the generated audio signal and environmental information (intelligibility ID) from the transmitter 13 to each loudspeaker substation 20 (step 103). Regardless of whether there is an audio signal or not, the master station equipment 10 periodically transmits the latest environmental information to each loudspeaker substation 20 simultaneously.

[0090] Each loudspeaker substation 20 receives the above-mentioned voice signal and environmental information via the receiver 21 (step 104). The signal processing device 24 determines the equalization ID corresponding to the intelligibility ID based on the received environmental information (intelligibility ID) (step 104, see Figures 8(A) to (C)).

[0091] For example, in the case of intelligibility ID "1", a loudspeaker substation 20 having the equalization conversion list 245 shown in Figure 8(B) will adopt equalization ID "0", which does not correct the received regenerated signal (no equalization), while a loudspeaker substation 20 having the equalization conversion list 245 shown in Figure 8(C) will adopt equalization ID "3", which has correction data for main roads. Note that even with the same intelligibility ID, if the equalization ID differs depending on the speaker sound source, the equalization ID corresponding to the speaker sound source being used will be selected.

[0092] Next, the signal processing device 24 determines correction data corresponding to the determined equalization ID from the equalization ID list 244 (step 106). Then, the signal processing device 24 corrects the frequency characteristics of the received audio signal based on the determined correction data (correction frequency pattern) (step 107). The audio signal correction process includes using the equalizer 23 to emphasize or attenuate specific frequency bands of the audio signal. After correcting the audio signal, the signal processing device 24 plays the corrected audio signal through the loudspeaker 22 (step 108). At this time, a backup audio signal transmitted from the master station equipment 10 or stored in the storage unit 241 is played before and after the playback of the audio signal, respectively.

[0093] As described above, according to this embodiment, the broadcast audio signal is corrected to the optimal frequency characteristics according to weather conditions. Compared to cases where the audio signal is not corrected, this suppresses attenuation of the audio transmission characteristics and enables the transmission of clear audio over the sound range of the loudspeaker 22. As a result, the intelligibility of the audio is improved even in bad weather, and local residents can recognize the broadcast content correctly.

[0094] Furthermore, according to this embodiment, since multiple correction frequency patterns are provided for different weather conditions such that the physical evaluation index for speech clarity becomes a predetermined reference value, the correction processing of the speech signal can be performed quickly by applying the correction frequency pattern that is suitable for the current environmental conditions. In addition, the speech signal can be optimized in real time in accordance with weather conditions that change moment by moment.

[0095] <Second Embodiment> Next, a second embodiment of the present invention will be described. In this embodiment, other configuration examples of the loudspeaker substation will be described. The same reference numerals are used for parts corresponding to those in the first embodiment described above, and their detailed descriptions will be omitted.

[0096] Figure 10 is a front view showing a loudspeaker substation 220 in the broadcast radio system of this embodiment. The loudspeaker substation 220 of this embodiment includes a receiving unit 21 that receives voice signals and environmental information from the master station equipment 10, a signal processing device 24 that corrects the received voice signals based on the environmental information, and a plurality of loudspeakers 22 (speakers) that reproduce the corrected voice signals. It also further includes an anemometer 27 that measures wind direction and wind speed, a rain gauge 28 that measures rainfall, and a thermometer / hygrometer 29 that measures temperature and humidity.

[0097] The wind direction and speed meter 27, rain gauge 28, and temperature and humidity meter 29 are measuring instruments that acquire environmental information including data related to at least one of the following: temperature, humidity, wind, and weather in the outdoor area where the loudspeaker substation 20 is installed.

[0098] Multiple loudspeakers 22 are arranged on the top of the support column 26 at equal angle intervals, facing in four directions. For example, as shown in Figure 11, the multiple loudspeakers 22 include a loudspeaker 22N that emits sound in the north direction (azimuth 0°), a loudspeaker 22E that emits sound in the east direction (azimuth 90°), a loudspeaker 22S that emits sound in the south direction (azimuth 180°), and a loudspeaker 22W that emits sound in the west direction (azimuth 270°). The wind direction and speed meter 27 is positioned at the top of the support column 26 and inputs the measured wind direction and wind speed results to the signal processing device 24. The rain gauge 28 and the thermometer / hygrometer 29 are positioned at any height on the support column 26. The rain gauge 28 inputs the rainfall measurement results to the signal processing device 24. The thermometer / hygrometer 29 inputs the temperature and humidity measurement results to the signal processing device 24.

[0099] Alternatively, instead of the wind direction and speed meter 27, rain gauge 28, and thermometer / hygrometer 29, a receiving device 30 may be provided to receive measurement results from wind direction and speed meters, rain gauges, thermometers / hygrometers, etc., installed outside the loudspeaker substation via an external short-range wireless communication device 31, for example, as shown in Figure 12. Examples of locations where the wind direction and speed meters, rain gauges, and thermometers / hygrometers are installed include weather stations, including weather shelters, installed in the installation area of ​​each loudspeaker substation.

[0100] In this embodiment, the environmental information transmitted from the master station equipment alone may not be sufficient to address conditions specific to each loudspeaker substation, such as localized heavy rainfall or localized valley winds / building winds. Therefore, each loudspeaker substation 220 independently acquires data on wind direction, wind speed, rainfall, etc., and optimizes the correction of the audio signal for each loudspeaker substation 220.

[0101] The signal processing device 24 adjusts the correction data for the audio signal for each loudspeaker 22 individually or in predetermined groups based on the measurement results of the wind direction and speed meter 27. In this embodiment, the signal processing device 24 calculates the wind speed component corresponding to the direction of the loudspeaker 22 from the direction of the loudspeaker 22 (direction of sound emission), wind direction, and wind speed measurement values, and evaluates the wind based on the magnitude of the calculated wind speed component. Wind direction refers to the direction from which the wind is blowing (the upstream direction of the wind), for example, the wind direction of a wind blowing from south to north (south wind) is 180°.

[0102] For example, as shown in Figures 13(A) and (B), if we define north as 0°, east as 90°, south as 180°, and west as 270°, then suppose an arbitrary loudspeaker 22 is installed at 300°. When a wind of 5 m / s acts on this loudspeaker 22 from the west, as shown in Figure 13(C), if we consider the wind speed component opposite to the direction of the loudspeaker 22 as the wind longitudinal direction, the direction perpendicular to it as the wind transverse direction, and the angle between the installation angle of the loudspeaker and the wind direction as θ, then the wind speed in the wind longitudinal direction can be calculated by wind speed × cosθ. Specifically, Wind speed in the longitudinal direction = 5 × cos(270° - 300°) = 5 × cos(-30° / 180° × π) = 4.33 [m / s] This is the result.

[0103] Furthermore, if the wind direction is 90° (east wind), and the wind speed is 5 [m / s], Wind speed in the longitudinal direction = 5 × cos(90°-300°) = 5 × cos(-210° / 180° × π) = -4.33 [m / s] Thus, headwinds (+) and tailwinds (-) are distinguished by positive and negative signs (+, -).

[0104] Based on the wind speed in the vertical direction of the loudspeaker 22 calculated as described above, the signal processing device 24 determines, for example, whether to adopt the "strong wind" equalization ID as the correction frequency pattern for the audio signal reproduced by the loudspeaker 22, depending on whether the wind speed exceeds a preset threshold (for example, 6.6 m / s). This processing can be performed individually for all loudspeakers 22.

[0105] In contrast, when adjusting the audio signal correction data for each loudspeaker 22 in predetermined group units, the signal processing device 24 corrects the audio signal using a common equalization ID for multiple loudspeakers 22. In the example shown in Figure 14, the first group of loudspeakers 221, including loudspeakers 22N and 22E, is commonly connected to the first amplifier 251, and the second group of loudspeakers 222, including loudspeakers 22S and 22W, is commonly connected to the second amplifier 252.

[0106] In this case, for example, with respect to the first loudspeaker group 221, the equalization IDs of loudspeakers 22N and 22E are determined by referring to the wind speed value of the loudspeaker with the largest headwind component in the longitudinal direction among loudspeakers 22N and 22E. Similarly, with respect to the second loudspeaker group 222, the equalization IDs of loudspeakers 22S and 22W are determined by referring to the wind speed value of the loudspeaker with the largest headwind component in the longitudinal direction among loudspeakers 22S and 22W.

[0107] Next, we will explain how to determine the equalization ID considering wind and noise. Here, we will use noise corresponding to rainfall as an example of noise.

[0108] For example, even with the same amount of rainfall, depending on the wind speed, it may not be possible to improve the SII (or intelligibility) in the service area (sound range) of each loudspeaker substation 20, even if the voice signal is corrected using the intelligibility ID determination table shown in Figures 6(A) and (B). Therefore, as explained below, multiple intelligibility ID determination tables may be prepared and used interchangeably based on predetermined judgment values ​​calculated using wind speed and rainfall as variables.

[0109] The following formula is used to calculate the judgment value. Judgment value = Weather + Wind speed × Coefficient Here, "weather" is set to a predetermined noise level (dB) corresponding to the amount of rainfall. For example, it is 50 dB for clear weather (rainfall of 0 mm / h) and 55 dB for rainfall of more than 0 mm / h but less than 4 mm / h. "Wind speed" is the wind speed in the longitudinal direction of the loudspeaker 22, with a positive sign indicating a headwind and a negative sign indicating a tailwind. "Coefficient" is a value based on the slope obtained from the correlation with wind speed, for example, by measuring the attenuation of the relative sound pressure level from the speaker output point to a specific point. Specifically, the "coefficient" is a value of, for example, 1.2 to 3.0, and here it is set to 1.5.

[0110] The relative sound pressure level is the difference between the sound pressure at the speaker location and the sound pressure at the measurement location (corresponding to the specific location mentioned above). For example, if 120 dB is observed at the speaker location and 60 dB at the measurement location, the relative level is -60 dB. The correlation with wind speed is shown with wind speed (m / s) on the horizontal axis and relative sound pressure level (dB) on the vertical axis.

[0111] (Example 1) When the weather is sunny and the wind speed is 2 m / s (headwind) Judgment value = Weather + Wind speed × Coefficient = 50 + 2 × 1.5 =53 (Example 2) When the weather is rainy (rainfall of more than 0 mm / h but less than 4 mm / h: 55 dB) and the wind speed is 4 m / s (headwind) Judgment value = Weather + Wind speed × Coefficient = 55 + 4 × 1.5 =61 (Example 3) When the weather is rainy (rainfall of more than 0 mm / h but less than 4 mm / h: 55 dB) and the wind speed is -4 m / s (tailwind) Judgment value = Weather + Wind speed × Coefficient = 55 + (-4) × 1.5 =49

[0112] Figure 15 shows three examples of different intelligibility ID determination tables depending on the magnitude of the judgment value: (A) is the table for judgment values ​​less than 55, (B) is the table for judgment values ​​between 55 and 60, and (C) is the table for judgment values ​​of 60 or more. As shown in Figures (A) to (C), the larger the judgment value, the stronger the equalization that is applied, even under the same temperature and relative humidity conditions. When the judgment value is 60 or more, the intelligibility ID is always set to "2". Note that the table for judgment values ​​less than 55 (Figure (A)) includes "0" as an intelligibility ID in addition to "1" and "2". An intelligibility ID of "0" corresponds to "no equalization", or equalize ID "0" (see Figure 8 (A)).

[0113] In the cases of (Example 1) and (Example 3) above, since the judgment value is less than 55 in both cases, the understanding level ID determination table shown in Figure 15(A) is referenced. On the other hand, in the case of (Example 2) above, since the judgment value is 60 or higher, the understanding level ID determination table shown in Figure 15(C) is referenced.

[0114] Furthermore, in cases where the wind direction is a tailwind, as in (Example 3), there is little need to correct the audio signal for the purpose of improving the SII value. For this reason, in the case of a tailwind, the wind speed can be set to 0, and the intelligibility ID can be determined based only on the "weather" element. In this case, the judgment value for (Example 3) is calculated as shown in (Example 4) below. (Example 4) Judgment value = Weather + Wind speed × Coefficient = 55 + 0 × 1.5 = 55 In this case, the understanding level ID determination table shown in Figure 15(B) is referenced.

[0115] Each intelligibility ID determination table shown in Figures 15(A) to (C) is stored in the memory unit 241 of the signal processing device 24 of each loudspeaker substation 20. Therefore, by using it in conjunction with the measurement value of the rain gauge 28, each loudspeaker substation 20 can independently determine its intelligibility ID (see Figure 5(B)). Thus, without requiring environmental information transmitted from the master station equipment 10, each loudspeaker substation 20 can determine its equalization ID based on its independently determined intelligibility ID.

[0116] Furthermore, if the intelligibility ID determined by the loudspeaker substation 20 differs from the intelligibility ID transmitted from the master station equipment 10, it is preferable to determine the equalization ID using the intelligibility ID determined by the loudspeaker substation 20. This allows for more flexible response to different weather conditions (wind speed, rainfall) for each loudspeaker substation 20 compared to determining the equalization ID using the intelligibility ID transmitted simultaneously to each loudspeaker substation 20.

[0117] As described above, according to this embodiment, it becomes possible to adjust the correction data at each loudspeaker substation 220 according to the wind direction and wind speed which differ in each region, thereby enabling the correction of the voice signal to suit the specific weather conditions at the installation location for each loudspeaker substation 220.

[0118] Furthermore, according to this embodiment, since each loudspeaker substation 220 individually adjusts the sound range according to the wind direction, it is possible to eliminate as much as possible situations in which loudspeaker sounds from multiple softspeaker substations reach the same area, or in which loudspeaker sounds from any softspeaker substation do not reach any area, due to the influence of wind direction, etc.

[0119] For example, Figure 16 is a schematic diagram showing the sound ranges (service areas) Ra, Rb, and Rc of three loudspeaker substations 220A, 220B, and 220C in windless conditions. In this example, we will explain using the case where the first loudspeaker substation 220A broadcasts loudspeaker sound towards the south, the second loudspeaker substation 220B broadcasts loudspeaker sound towards the north, and the third loudspeaker substation 220C broadcasts loudspeaker sound towards the east. The sound ranges Ra of the first loudspeaker substation 220A, Rb of the second loudspeaker substation 220B, and Rc of the third loudspeaker substation 220C are set to be non-overlapping ranges.

[0120] Now, let's consider the case where a strong wind W blows from the northeast. In this case, the sound range Ra of the first loudspeaker station 220A is affected by a tailwind component from the north, the sound range Rb of the second loudspeaker station 220B is affected by a headwind component from the north, and the sound range Rc of the third loudspeaker station 220C is affected by a headwind component from the east. Therefore, if no correction is made to the audio signal at each loudspeaker station 220A to 220C, as shown by the solid lines in Figure 17, the sound range Ra will be lengthened due to the tailwind component, the sound range Rb will be shortened due to the tailwind component, and the sound range Rc will be slightly shortened due to the headwind component. As a result, there will be areas where the loudspeaker sound does not reach from any of the three loudspeaker stations 220A to 220C (the shaded areas in the figure represent the reduction in sound range due to the headwind component).

[0121] Furthermore, in order to solve the above problem, for example, if the audio signal is corrected with strong wind correction data at all loudspeaker substations 220A to 220C, as shown in Figure 18, the sound range Ra of the first loudspeaker substation 220A will be further extended due to the influence of the tailwind component, and the sound range Rc of the third loudspeaker substation 220C will be extended due to the effect of the equalizer, although it will be affected by the headwind component. The second loudspeaker substation 220B shows that the effect of the headwind component is canceled out by the effect of the equalizer. As a result, there will be regions where the sound ranges Ra to Rc overlap, and the loudspeaker sounds from multiple loudspeaker substations will interfere with each other, which may prevent residents in the overlapping region from properly recognizing the audio.

[0122] In contrast, according to this embodiment, each loudspeaker substation 220 individually adjusts the equalization of the audio signal according to the wind direction. For example, the audio signal of the first loudspeaker substation 220A and the third loudspeaker substation 220C is not corrected (no equalization), while the audio signal of the second loudspeaker substation 220B is corrected with correction data for strong winds (maximum equalization). As shown in Figure 19, interference between the loudspeaker sounds from each loudspeaker substation 220A to 220C is avoided as much as possible, and the sound range Ra to Rc can be individually adjusted so that the loudspeaker sounds reach the entire service area of ​​each loudspeaker substation 220A to 220C. This makes it possible to eliminate as much as possible instances where loudspeaker sounds from multiple loudspeaker substations reach the same area, or where loudspeaker sounds from any of the loudspeaker substations do not reach certain areas.

[0123] Furthermore, in environments accompanied by strong winds and heavy rain, such as during an approaching typhoon, the transmission characteristics of sound deteriorate even further. Therefore, if no correction is performed on the sound signal at each of the loudspeaker substations 220A to 220C, regions where loudspeaker sound does not reach from any of the loudspeaker substations will become more pronounced, as shown by the solid lines in Figure 20. In contrast, according to this embodiment, even in such environments, the sound range Ra to Rc can be optimized across the entire coverage area of ​​each loudspeaker substation 220A to 220C, as shown in Figure 21. The example in the same figure shows an example in which the audio signal is corrected (equalized to maximum) with correction data for strong winds or heavy rain for all loudspeaker substations 220A to 220C.

[0124] Although embodiments of the present invention have been described above, it goes without saying that the present invention is not limited to the embodiments described above and can be modified in various ways.

[0125] For example, in the above embodiment, multiple correction frequency patterns were acquired in advance for different temperatures, humidity, and weather conditions. However, it is sufficient to prepare correction frequency patterns for conditions where at least one of the temperature, humidity, and weather conditions is different. In addition to temperature, humidity, and weather, correction frequency patterns corresponding to wind speed and wind direction may also be added.

[0126] Furthermore, in addition to correcting the audio signal with a correction frequency pattern suitable for weather conditions from among multiple correction frequency patterns, it is also possible to prepare in advance any algorithm or table that determines the amount of correction for each band of the audio signal (low frequency, mid frequency, and high frequency) from a combination of temperature, humidity, and rainfall, and then correct the audio signal using these algorithms or tables.

[0127] Furthermore, according to this embodiment, a correction frequency pattern corresponding to the audio signal for local broadcasting may be stored in the storage unit 241. In this case, even if disaster prevention information is not transmitted from the master station equipment 10 to each loudspeaker substation 20, environmental information can be periodically transmitted to each loudspeaker substation 20, thereby correcting the audio quality to an appropriate level according to the outdoor environment when broadcasting local broadcasts at the loudspeaker substation 20.

[0128] Furthermore, although this embodiment has been described using a broadcast radio system for disaster prevention information as an example, the present invention is not limited to this and can also be applied to business broadcasts or promotional announcements directed to specific areas or districts. For loudspeaker substations that do not transmit environmental information from the master station equipment, the technology described in the second embodiment above can be applied.

[0129] Furthermore, in the embodiments described above, three data points—temperature, humidity, and weather—were used to determine the intelligibility ID. Alternatively, the intelligibility ID may be determined based on at least one of these three data points. [Explanation of Symbols]

[0130] 1…Server device 10…Master station equipment 11...Operation console 12...Control device 13…Transmitter 20,220... Loudspeaker substations 21... Receiver 22... Megaphone 23... Equalizer 24... Signal Processing Device 27…Anemometer 28…Rain gauge 29…Thermo-hygrometer 30... Receiving device 100... Broadcast radio system 111...Input device 112...Display device 113...Data acquisition unit 241...Storage section 242... Control Unit 243...Speech synthesis unit

Claims

1. A broadcast radio system comprising a master station and at least one loudspeaker substation installed outdoors, wherein the loudspeaker substation broadcasts loudspeaker information, including an audio signal, distributed from the master station to the loudspeaker substation, The master station equipment has a transmitting unit that transmits the voice signal and environmental information including data related to at least one of the temperature, humidity, and weather of the location where the master station equipment or the loudspeaker substation is installed to the loudspeaker substation. The loudspeaker substation includes a receiving unit that receives the voice signal and the environmental information, a loudspeaker that reproduces the voice signal, and a signal processing device that corrects the voice signal based on the environmental information so that an evaluation index for the clarity of the voice reproduced by the loudspeaker reaches a predetermined reference value. Broadcast radio system.

2. A broadcast wireless system according to claim 1, The signal processing device is A storage unit that stores frequency patterns obtained in advance for each of several types of weather conditions in which at least one of the outdoor temperature, humidity, and weather differs, for the audio signal reproduced by the loudspeaker, in which a predetermined reference value is obtained as the evaluation index. A control unit extracts a frequency pattern corresponding to the environmental information from the storage unit and corrects the frequency characteristics of the audio signal based on the extracted frequency pattern. has Broadcast radio system.

3. A broadcast wireless system according to claim 2, The memory unit further stores the loudspeaker frequency characteristics, which are the frequency characteristics of the loudspeaker. The control unit corrects the frequency characteristics of the audio signal based on the environmental information and the loudspeaker frequency characteristics. Broadcast radio system.

4. A broadcast wireless system according to claim 3, The aforementioned loudspeaker substation has a plurality of loudspeakers with different loudspeaker frequency characteristics, The memory unit further stores multiple loudspeaker frequency characteristics, which are the frequency characteristics of each of the multiple loudspeakers. Broadcast radio system.

5. A broadcast wireless system according to any one of claims 2 to 4, Each frequency pattern stored in the memory unit is correction data for the audio signal. Broadcast radio system.

6. A broadcast radio system according to claim 5, The aforementioned base station equipment further includes a data acquisition unit that acquires weather data for the area where the base station equipment or the loudspeaker substation is installed, and transmits an identifier corresponding to the weather data from a plurality of identifiers that have been pre-categorized according to at least one of temperature, humidity, and weather as environmental information. The storage unit stores a plurality of correction data corresponding to each of the plurality of identifiers as the frequency pattern. Broadcast radio system.

7. A broadcast wireless system according to any one of claims 2 to 6, The signal processing device further includes a voice synthesis unit that synthesizes predetermined preliminary voice signals transmitted from the master station equipment or stored in the storage unit before and after the playback of the voice signal, The control unit selectively corrects only the audio signal from among the audio signal and the auxiliary audio signal. Broadcast radio system.

8. A broadcast wireless system according to any one of claims 1 to 7, The aforementioned base station equipment further includes a data acquisition unit that acquires weather data for the area where the loudspeaker substation is installed, and generates the environmental information based on the acquired weather data. Broadcast radio system.

9. A broadcast radio system according to any one of claims 1 to 8, The aforementioned evaluation index is the Speech Intelligibility Index (SII). Broadcast radio system.

10. A broadcast wireless system according to claims 1 to 9, The predetermined reference value is a value that satisfies a predetermined level of intelligibility for the audio signal broadcast from the loudspeaker, measured in advance on a predetermined subject at a predetermined distance from the loudspeaker. Broadcast radio system.

11. A loudspeaker substation for a broadcast radio system, which is installed outdoors and broadcasts loudspeaker information including voice signals distributed from a master station, A receiving unit that receives the aforementioned audio signal and environmental information including data related to at least one of the outdoor temperature, humidity, and weather, A loudspeaker that reproduces the aforementioned audio signal, A signal processing device that corrects the audio signal so that the evaluation index for the clarity of the sound reproduced by the loudspeaker reaches a predetermined standard value based on the aforementioned environmental information. A loudspeaker substation equipped with this system.

12. A loudspeaker substation for a broadcast radio system, which is installed outdoors and broadcasts loudspeaker information including voice signals distributed from a master station, A receiving unit that receives the aforementioned audio signal, A measuring instrument that acquires environmental information including data related to at least one of the outdoor temperature, humidity, wind, and weather, A loudspeaker that reproduces the aforementioned audio signal, A signal processing device that corrects the audio signal so that the evaluation index for the clarity of the sound reproduced by the loudspeaker reaches a predetermined standard value based on the aforementioned environmental information. A loudspeaker substation equipped with this system.

13. A loudspeaker substation according to claim 11 or 12, The aforementioned loudspeaker includes a plurality of loudspeakers, The signal processing device individually corrects the audio signals reproduced by each of the multiple loudspeakers according to the wind direction outdoors. Loudspeaker substation.

14. A signal processing device for a broadcast radio system that broadcasts public address information, including an audio signal distributed from a master station to an outdoor public address substation, from the public address substation, A storage unit that stores frequency patterns for which a predetermined reference value is obtained as an evaluation index for voice clarity, which are pre-set for each of several types of weather conditions in which at least one of the outdoor temperature, humidity, and weather differs, with respect to the voice signal reproduced by the loudspeaker of the loudspeaker substation. A control unit extracts a frequency pattern corresponding to the current outdoor weather conditions from the storage unit and corrects the audio signal so that the extracted frequency pattern is obtained. A signal processing device equipped with the following features.

Citation Information

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