Wireless communication system, communication device, and wireless communication method
The wireless communication system uses peripheral detection stations to measure and report radio wave conditions, addressing hidden terminal issues and reducing interference in IoT-satellite communication by determining optimal transmission bands.
Patent Information
- Application Number
- JP2023573754
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-01-14
- Publication Date
- 2025-10-23
- Estimated Expiration
- 2042-01-14
AI Technical Summary
Existing wireless communication systems between IoT devices and low-earth orbit satellites face challenges with hidden terminal problems, leading to radio wave interference due to the inability to detect interference from out-of-range IoT devices.
A wireless communication system with peripheral detection stations that measure and report radio wave conditions to the main IoT device, allowing it to determine interference-free transmission bands for data relay through a mobile relay device.
This system significantly reduces radio wave interference by enabling accurate detection of potential interference sources, allowing for efficient data transmission without the need for control signals like RTS/CTS, even in limited communication periods.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a wireless communication system, a communication device, and a wireless communication method. [Background technology]
[0002] With the development of IoT (Internet of Things) technology, the installation of IoT terminals equipped with various sensors in various locations is being considered. IoT terminals may be installed in places where it is difficult to install base stations, such as on buoys at sea, ships, and mountainous areas. Therefore, in order to collect data obtained by IoT terminals installed in various locations, technology is being considered that relays data transmission from the IoT terminals to base stations using relay devices installed on low Earth orbit (LEO) satellites.
[0003] Many IoT devices will be installed on the ground. Therefore, there is a technology that allows low-earth orbit satellites to receive multiple LPWA (Low Power Wide Area) device signals transmitted at the same time using multiple antennas and separate them into signals for each IoT device. This makes it possible to increase the number of IoT devices that can be accommodated by low-earth orbit satellites.
[0004] Conventionally, IoT devices communicate with low-earth orbit satellites by receiving radio waves of a specific frequency for a certain period of time. When the IoT device confirms that there are no other devices interfering with each other, it transmits data to the low-earth orbit satellite. However, when multiple IoT devices are located outside each other's signal range, they are unable to recognize that radio wave interference is occurring, which can lead to the hidden terminal problem, which causes interference.
[0005] To address this hidden terminal problem, the technology described in Non-Patent Document 1 controls the timing of data transmission by sending and receiving control signals RTS (Request to send) / CTS (Clear to send), thereby preventing radio interference. [Prior art documents] [Non-patent literature]
[0006] [Non-Patent Document 1] S. Khurana, et al., "Effect of hidden terminals on the performance of IEEE 802.11 MAC protocol," Proceedings 23rd Annual Conference on Local Computer Networks, IEEE, pp.12-20, October 1998. Summary of the Invention [Problem to be solved by the invention]
[0007] However, when communicating between an IoT device and a low-earth orbit satellite, even if the IoT device transmits a control signal to the low-earth orbit satellite, the control signal does not subsequently reach other IoT devices. Therefore, in this case, it is not possible to apply the technology using control signals such as RTS / CTS, making it difficult to prevent radio interference.
[0008] In view of the above circumstances, an object of the present invention is to provide a wireless communication system, a communication device, and a wireless communication method that can further reduce the occurrence of radio wave interference. [Means for solving the problem]
[0009] One aspect of the present invention is a wireless communication system having a first communication device, one or more second communication devices arranged in the vicinity of the first communication device, and a mobile relay device, wherein the second communication device is equipped with a second receiving unit that attempts to receive radio waves in a predetermined band and measures the reception strength, and a second transmitting unit that transmits reception result information to the first communication device indicating the surrounding radio wave conditions based on the reception strength measured by the second receiving unit, and the first communication device is equipped with a first receiving unit that attempts to receive radio waves in the predetermined band and measures the reception strength, a determination unit that determines a band to be used for transmitting data to the relay device based on the surrounding radio wave conditions based on the reception strength measured by the first receiving unit and the surrounding radio wave conditions based on the reception result information transmitted from the second transmitting unit, and a first transmitting unit that transmits the data to the relay device using the band determined by the determination unit.
[0010] Another aspect of the present invention is a communication device that has a first communication unit and one or more second communication units arranged in the vicinity of the first communication unit, and communicates with a mobile relay device, wherein the second communication unit comprises a second receiving unit that attempts to receive radio waves in a predetermined band and measures the reception strength, and a second transmitting unit that transmits reception result information to the first communication unit indicating the surrounding radio wave conditions based on the reception strength measured by the second receiving unit, and the first communication unit comprises a first receiving unit that attempts to receive radio waves in the predetermined band and measures the reception strength, a determination unit that determines a band to be used for transmitting data to the relay device based on the surrounding radio wave conditions based on the reception strength measured by the first receiving unit and the surrounding radio wave conditions based on the reception result information transmitted from the second transmitting unit, and a first transmitting unit that transmits the data to the relay device using the band determined by the determination unit.
[0011] Another aspect of the present invention is a wireless communication method between a first communication device, one or more second communication devices arranged in the vicinity of the first communication device, and a moving relay device, the wireless communication method comprising: a second reception step in which the second communication device attempts to receive radio waves in a predetermined band and measures the reception strength; a second transmission step in which the second communication device transmits to the first communication device reception result information indicating the surrounding radio wave conditions based on the reception strength measured by the second reception step; a first reception step in which the first communication device attempts to receive radio waves in the predetermined band and measures the reception strength; a determination step in which the first communication device determines a band to be used for transmitting data to the relay device based on the surrounding radio wave conditions based on the reception strength measured by the first reception step and the surrounding radio wave conditions based on the reception result information transmitted by the second transmission step; and a first transmission step in which the first communication device transmits the data to the relay device using the band determined by the determination step.
[0012] Another aspect of the present invention is a wireless communication method for a communication device that has a first communication unit and one or more second communication units arranged in the vicinity of the first communication unit, and that communicates with a mobile relay device, the wireless communication method comprising: a second reception step in which the second communication unit attempts to receive radio waves in a predetermined band and measures the reception strength; a second transmission step in which the second communication unit transmits reception result information to the first communication unit indicating the surrounding radio wave conditions based on the reception strength measured in the second reception step; a first reception step in which the first communication unit attempts to receive radio waves in the predetermined band and measures the reception strength; a determination step in which the first communication unit determines a band to be used for transmitting data to the relay device based on the surrounding radio wave conditions based on the reception strength measured in the first reception step and the surrounding radio wave conditions based on the reception result information transmitted in the second transmission step; and a first transmission step in which the first communication unit transmits the data to the relay device using the band determined in the determination step. [Effects of the Invention]
[0013] According to the present invention, it is possible to further reduce the occurrence of radio wave interference. [Brief explanation of the drawings]
[0014] [Figure 1] 1 is a configuration diagram of a wireless communication system according to an embodiment. [Figure 2] FIG. 2 is a flowchart showing processing of the wireless communication system according to the embodiment. [Figure 3] FIG. 2 is a flowchart showing processing of the wireless communication system according to the embodiment. [Figure 4] FIG. 2 is a diagram illustrating an example of the positional relationship between a terminal station and peripheral detection stations in the embodiment. [Figure 5] FIG. 2 is a block diagram showing the functional configuration of a terminal station and a periphery detection station in the embodiment. [Figure 6] FIG. 1 is a flowchart showing processing in a conventional wireless communication system. [Figure 7] FIG. 2 is a flowchart showing processing of the wireless communication system according to the embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0015] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS An embodiment of the present invention will be described in detail below with reference to the accompanying drawings. First, a basic configuration of data transmission between a terminal station, a mobile relay station, and a base station in a wireless communication system according to the embodiment will be described.
[0016] [Basic configuration of wireless communication system] 1 is a configuration diagram of a wireless communication system 1 according to an embodiment. The wireless communication system 1 includes a mobile relay station 2, a terminal station 3, and a base station 4. The wireless communication system 1 may include any number of mobile relay stations 2, terminal stations 3, and base stations 4, but it is assumed that the number of terminal stations 3 will be large.
[0017] The mobile relay station 2 is an example of a relay device that is mounted on a moving body and whose communication area moves over time. The mobile relay station 2 is provided, for example, on a LEO (Low Earth Orbit) satellite. The altitude of a LEO satellite is 2000 km or less, and it orbits the Earth once every approximately 1.5 hours. The terminal station 3 and the base station 4 are installed on the Earth, such as on land or sea. The terminal station 3 is, for example, an IoT terminal. The terminal station 3 collects data such as environmental data detected by sensors and transmits it wirelessly to the mobile relay station 2. Only two terminal stations 3 are shown in the figure.
[0018] As the mobile relay station 2 moves above the Earth, it receives data transmitted by radio signals from a plurality of terminal stations 3. The mobile relay station 2 stores the received data and transmits the stored data collectively to the base station 4 by radio when communication with the base station 4 is possible. The base station 4 receives the data collected by the terminal stations 3 from the mobile relay station 2.
[0019] Mobile relay stations can be mounted on geostationary satellites, drones, or unmanned aerial vehicles such as HAPS (High Altitude Platform Station). However, while relay stations mounted on geostationary satellites have a wide ground coverage area (footprint), their high altitude means that the link budget for IoT devices installed on the ground is very small. On the other hand, relay stations mounted on drones or HAPS have a high link budget but a narrow coverage area. Furthermore, drones require batteries, and HAPS require solar panels.
[0020] In this embodiment, a mobile relay station 2 is mounted on a LEO satellite. Therefore, the link budget is kept within limits, and since LEO satellites orbit outside the atmosphere, there is no air resistance and fuel consumption is low. In addition, the footprint is larger than when a relay station is mounted on a drone or HAPS.
[0021] Mobile relay stations 2 mounted on LEO satellites communicate while moving at high speed. Therefore, the time periods during which individual terminal stations 3 and base stations 4 can communicate with the mobile relay stations 2 are limited. Specifically, from the perspective of the Earth, the mobile relay stations 2 pass overhead every 10 minutes or so. Furthermore, the terminal stations 3 use wireless communication methods with various specifications.
[0022] Therefore, the mobile relay station 2 receives a terminal uplink signal from a terminal station 3 within the coverage area of the current location while moving, and stores the waveform data of the received terminal uplink signal. When a base station 4 is present within its coverage area, the mobile relay station 2 wirelessly transmits a base station downlink signal, in which the waveform data of the terminal uplink signal is set, to the base station 4. The base station 4 demodulates the base station downlink signal received from the mobile relay station 2 to obtain the waveform data of the terminal uplink signal. The base station 4 obtains terminal transmission data, which is the data transmitted by the terminal station 3, by demodulating and decoding the terminal uplink signal represented by the waveform data.
[0023] The configurations of the mobile relay station 2, the terminal station 3, and the base station 4 will be explained below.
[0024] As shown in FIG. 1, the mobile relay station 2 includes an antenna 21, a terminal communication unit 22, a data storage unit 23, a base station communication unit 24, and an antenna 25.
[0025] The terminal communication unit 22 has a receiving unit 221 and a received waveform recording unit 222. The receiving unit 221 receives a terminal uplink signal via the antenna 21. The received waveform recording unit 222 samples the received waveform of the terminal uplink signal received by the receiving unit 221 and generates waveform data indicating the values obtained by the sampling. The received waveform recording unit 222 writes received waveform information, which sets the reception time of the terminal uplink signal at the antenna 21 and the generated waveform data, into the data storage unit 23. The data storage unit 23 stores the received waveform information written by the received waveform recording unit 222.
[0026] The base station communication unit 24 transmits the received waveform information to the base station 4 via a base station downlink signal of any wireless communication method. The base station communication unit 24 includes a storage unit 241, a control unit 242, a transmission data modulation unit 243, and a transmission unit 244. The storage unit 241 stores a transmission start timing calculated in advance based on the orbital information of the LEO satellite on which the mobile relay station 2 is mounted and the position of the base station 4. The LEO orbital information is information that makes it possible to obtain the position, speed, movement direction, etc. of the LEO satellite at any time. The transmission time may be expressed, for example, as the elapsed time from the transmission start timing.
[0027] The control unit 242 controls the transmission data modulation unit 243 and the transmission unit 244 so as to transmit the received waveform information to the base station 4 at the transmission start timing stored in the storage unit 241. The transmission data modulation unit 243 reads out the received waveform information from the data storage unit 23 as transmission data, and modulates the read transmission data to generate a base station downlink signal. The transmission unit 244 converts the base station downlink signal from an electrical signal to a radio signal and transmits it from the antenna 25.
[0028] As shown in FIG. 1, the terminal station 3 includes a data storage unit 31, a transmitter 32, and one or more antennas 33.
[0029] The data storage unit 31 stores sensor data, etc. The transmission unit 32 reads out the sensor data from the data storage unit 31 as terminal transmission data, and wirelessly transmits from the antenna 33 a terminal uplink signal in which the read terminal transmission data is set.
[0030] The transmitter 32 transmits signals, for example, by LPWA (Low Power Wide Area). LPWA includes LoRaWAN (registered trademark), Sigfox (registered trademark), LTE-M (Long Term Evolution for Machines), NB (Narrow Band)-IoT, etc., but any wireless communication method can be used. Furthermore, the transmitter 32 may transmit signals to other terminal stations 3 by time division multiplexing, OFDM (Orthogonal Frequency Division Multiplexing), etc.
[0031] The transmitter 32 determines the channel and transmission timing to be used by the local station for transmitting the terminal uplink signal by a method predetermined for the wireless communication system to be used. The transmitter may also perform beamforming of signals to be transmitted from the multiple antennas 33 by a method predetermined for the wireless communication system to be used.
[0032] As shown in FIG. 1, the base station 4 includes an antenna 41, a receiver 42, a base station signal reception processor 43, and a terminal signal reception processor 44.
[0033] The receiver 42 converts the terminal downlink signal received by the antenna 41 into an electrical signal. The base station signal reception processor 43 demodulates and decodes the received signal converted into an electrical signal by the receiver 42 to obtain received waveform information. The base station signal reception processor 43 outputs the received waveform information to the terminal signal reception processor 44.
[0034] The terminal signal reception processing unit 44 performs reception processing of the terminal uplink signal indicated by the received waveform information. At this time, the terminal signal reception processing unit 44 performs reception processing using the wireless communication method used for transmission by the terminal station 3 to acquire terminal transmission data. The terminal signal reception processing unit 44 includes a terminal signal demodulation unit 441 and a terminal signal decoding unit 442.
[0035] The terminal signal demodulation unit 441 demodulates the waveform data and outputs the symbols obtained by demodulation to the terminal signal decoding unit 442. The terminal signal demodulation unit 441 may perform processing to compensate for the Doppler shift of the terminal uplink signal received by the antenna 21 of the mobile relay station 2 for the signal indicated by the waveform data, before performing demodulation. The Doppler shift suffered by the terminal uplink signal received by the antenna 21 is calculated in advance based on the position of the terminal station 3 and orbit information of the LEO on which the mobile relay station 2 is mounted. The terminal signal decoding unit 442 decodes the symbols demodulated by the terminal signal demodulation unit 441 and obtains the terminal transmission data transmitted from the terminal station 3.
[0036] [Basic operation of wireless communication systems] The following describes the basic operation of the wireless communication system 1. Fig. 2 is a flow chart showing the processing of the wireless communication system 1 when the terminal station 3 transmits an uplink signal.
[0037] The terminal station 3 acquires data detected by an externally or internally provided sensor (not shown) as needed, and writes the acquired data to the data storage unit 31 (step S111). The transmitter 32 reads the sensor data from the data storage unit 31 as terminal transmission data. The transmitter 32 wirelessly transmits, from the antenna 33, a terminal uplink signal in which the terminal transmission data is set, at a transmission start timing obtained in advance based on the orbital information of the LEO satellite on which the mobile relay station 2 is mounted (step S112). The terminal station 3 repeats the processing from step S111.
[0038] The receiver 221 of the mobile relay station 2 receives a terminal uplink signal transmitted from a terminal station 3 (step S121). Depending on the wireless communication method of the transmitting terminal station 3, the terminal uplink signal may be received from only one terminal station 3 in a time-division manner for the same frequency, or may be received from multiple terminal stations 3 simultaneously at the same frequency. The received waveform recorder 222 writes received waveform information that associates waveform data representing the waveform of the terminal uplink signal received by the receiver 221 with the reception time into the data storage unit 23 (step S122). The mobile relay station 2 repeats the process from step S121.
[0039] 3 is a flow diagram showing the processing of the wireless communication system 1 when a base station downlink signal is transmitted from the mobile relay station 2. When the control unit 242 of the base station communication unit 24 of the mobile relay station 2 detects that it is the transmission start timing stored in the storage unit 241, it instructs the transmission data modulation unit 243 and the transmission unit 244 to transmit received waveform information (step S211).
[0040] The transmission data modulation unit 243 reads out the received waveform information stored in the data storage unit 23 as transmission data, modulates the read transmission data, and generates a base station downlink signal. The transmission unit 244 wirelessly transmits the base station downlink signal generated by the transmission data modulation unit 243 from the antenna 25 (step S212). The mobile relay station 2 repeats the processing from step S211.
[0041] The antenna 41 of the base station 4 receives a base station downlink signal from the mobile relay station 2 (step S221). The receiver 42 converts the base station downlink signal received by the antenna 41 into an electrical received signal and outputs it to the base station signal reception processor 43. The base station signal reception processor 43 demodulates the received signal and decodes the demodulated received signal (step S222). The base station signal reception processor 43 outputs received waveform information obtained by decoding to the terminal signal reception processor 44.
[0042] The terminal signal reception processing unit 44 performs reception processing of the terminal uplink signal represented by the waveform data included in the received waveform information (step S223). Specifically, the terminal signal demodulation unit 441 identifies the wireless communication method used by the terminal station 3 to transmit the terminal uplink signal, based on information specific to the wireless communication method included in the received signal represented by the waveform data. The terminal signal demodulation unit 441 demodulates the received signal represented by the waveform data in accordance with the identified wireless communication method, and outputs the symbols obtained by the demodulation to the terminal signal decoding unit 442.
[0043] The terminal signal decoding unit 442 decodes the symbols input from the terminal signal demodulation unit 441 using the specified wireless communication method, and obtains the terminal transmission data transmitted from the terminal station 3. Note that the terminal signal decoding unit 442 can also use a decoding method with a large calculation load, such as SIC (Successive Interference Cancellation). The base station 4 repeats the process from step S221.
[0044] [Configuration of wireless communication system for interference detection] The configuration of the wireless communication system 1 related to interference detection will be described below. In this embodiment, in communication with the mobile relay station 2, the terminal station 3 attempts to receive radio waves of a specific frequency for a certain period of time before transmitting desired data to the mobile relay station 2. The terminal station 3 transmits data to the mobile relay station 2 when it has confirmed, based on the reception result, that there are no other terminal stations 3 that may interfere with each other.
[0045] Furthermore, in the wireless communication system 1 of this embodiment, one or more peripheral detection stations 8 are installed around each terminal station 3. Like the terminal station 3, the peripheral detection stations 8 also attempt to receive radio waves of a specific frequency for a certain period of time in advance. The peripheral detection stations 8 transmit the reception results to the terminal station 3. The terminal station 3 checks whether there are other terminal stations 3 that will interfere with it, taking into account not only the reception results at its own device but also the reception results at one or more peripheral detection stations 8. This allows the terminal station 3 to check whether there are other terminal stations 3 that will interfere with it, based on reception results over a wider range.
[0046] With this configuration, in the wireless communication system 1 of this embodiment, the terminal station 3 can more accurately detect other terminal stations 3 that interfere with each other. As a result, the wireless communication system 1 of this embodiment can further reduce the occurrence of radio wave interference in communication between the mobile relay station 2 and the terminal station 3.
[0047] In this embodiment, the periphery detection stations 8 are assumed to be reception-only radio stations that attempt to receive radio waves of a specific frequency and transmit the reception results to the terminal station 3, but this is not limiting. For example, each of the periphery detection stations 8 may be configured to function as a terminal station 3 that transmits and receives data to and from the mobile relay station 2 as appropriate.
[0048] Fig. 4 is a diagram showing an example of the positional relationship between the terminal station 3 and the peripheral detection stations 8. As shown in Fig. 4, a plurality of peripheral detection stations 8 are installed at predetermined intervals, for example, at positions on an approximately concentric circle centered on the position of the terminal station 3. This allows the terminal station 3 to check whether there are other terminal stations 3 that may interfere with each other, based on the reception conditions over a wider range.
[0049] The positional relationship between the terminal station 3 and the periphery detection station 8 is not limited to the positional relationship shown in Fig. 1. For example, there may be obstacles, such as undulating terrain, that block radio waves, or obstacles, such as buildings, that reflect radio waves, around the terminal station 3. In such cases, it is desirable to place the periphery detection station 8 in an appropriate position depending on the strength of radio wave transmission and reception, the modulation method, and the type of interference source (pulse wave, white noise, etc.).
[0050] The communication between the periphery detecting station 8 and the terminal station 3 may be either wireless communication or wired communication.
[0051] The configuration of the terminal station 3 and the periphery detection station 8 involved in interference detection will be described below. Fig. 5 is a block diagram showing the functional configuration of the terminal station 3 and the periphery detection station 8 involved in interference detection. Note that Fig. 5 only shows the functional configuration involved in interference detection, and other functional configurations are omitted. That is, the terminal station 3 further includes the functional configuration shown in the block diagram of Fig. 5 in addition to the functional configuration shown in the block diagram of Fig. 1. Note that in Fig. 5, functional units common to Fig. 1 are assigned the same reference numerals, and descriptions thereof may be omitted.
[0052] As shown in FIG. 5, the terminal station 3 includes a transmitter 32, an antenna 33, a receiver , a surrounding detection station controller 35, and a surrounding radio wave condition determiner .
[0053] The transmitter 32 acquires a perimeter detection request output from the perimeter detection station control unit 35. The perimeter detection request is a request signal for causing the perimeter detection station 8 to receive, for a certain period of time, the band that the terminal station 3 wants to use to transmit data to the mobile relay station 2. The transmitter 32 transmits the acquired perimeter detection request to the perimeter detection station 8 via the antenna 33.
[0054] Furthermore, if the surrounding radio wave condition determination unit 36 determines that the reception level at the terminal station 3 and the surrounding detection station 8 does not exceed a predetermined threshold value over a certain period of time, the transmission unit 32 transmits the desired data to the mobile relay station 2 using the desired band.
[0055] The receiving unit attempts to receive, for a certain period of time, the band that is to be used for transmitting data to the mobile relay station 2. The receiving unit outputs information indicating the reception result to the surrounding radio wave condition determining unit .
[0056] The receiving unit 34 also receives reception result information transmitted from one or more peripheral detection stations. The reception result information is information indicating the results of reception attempted by the peripheral detection station 8 in response to the peripheral detection request using the desired band. The receiving unit 34 outputs the received reception result information to the peripheral radio wave condition determination unit 36.
[0057] The periphery detection station control unit 35 transmits a periphery detection request to one or more periphery detection stations 8 via the transmission unit 32 and antenna 33, for example, at the timing when the terminal station 3 and the mobile relay station 2 become able to communicate with each other.
[0058] The surrounding radio wave condition determination unit 36 acquires, from the receiving unit 34, information indicating the reception result of reception by the receiving unit 34 in the band desired to be used for transmitting data to the mobile relay station 2, and reception result information acquired from one or more surrounding detection stations. Based on this acquired information, the surrounding radio wave condition determination unit 36 determines whether the reception level at the terminal station 3 or the surrounding detection station 8 has not exceeded a predetermined threshold over a certain period of time. If the surrounding radio wave condition determination unit 36 determines that the reception level at the terminal station 3 and the surrounding detection station 8 has not exceeded the predetermined threshold over a certain period of time, it causes the transmitting unit 32 to transmit the desired data to the mobile relay station 2 using the band desired to be used.
[0059] As shown in FIG. 5, the periphery detection station 8 includes an antenna 81, a receiving unit 82, a periphery detection request processing unit 83, a periphery radio wave condition transmitting unit 84, and a transmitting unit 85.
[0060] The receiving unit 82 receives the periphery detection request transmitted from the terminal station 3 by the antenna 81. The receiving unit 82 outputs the received periphery detection request to the periphery detection request processing unit 83.
[0061] The periphery detection request processing unit 83 acquires the periphery detection request output from the receiving unit 82. Based on the acquired periphery detection request, the periphery detection request processing unit 83 attempts to receive, for a certain period of time, the band to be used for transmitting data to the mobile relay station 2, using the receiving unit 82 and the antenna 81.
[0062] The periphery detection request processing unit 83 determines whether the reception level has not exceeded a predetermined threshold value over a certain period of time. The periphery detection request processing unit 83 outputs reception result information indicating the result of the above determination to the surrounding radio wave condition transmission unit 84.
[0063] The surrounding radio wave condition transmission unit 84 acquires the reception result information output from the surrounding detection request processing unit 83. The surrounding radio wave condition transmission unit 84 transmits the acquired reception result information to the terminal station 3 via the transmission unit 85 and the antenna 81.
[0064] [Operation of terminal station and surrounding detection station related to interference detection] The operations of the terminal station 3 and the periphery detection station 8 relating to interference detection will be explained below, but for ease of understanding, an example of the operation of a conventional terminal station relating to interference detection will first be explained.
[0065] Fig. 6 is a flow diagram showing the operation of a conventional terminal station related to interference detection. The operation of the conventional terminal station shown in the flow diagram of Fig. 6 starts when the conventional terminal station and the mobile relay station become able to communicate with each other.
[0066] First, the conventional terminal station attempts to receive, for a certain period of time, a band that it wishes to use for transmitting data to the mobile relay station (step S901).
[0067] Next, the conventional terminal station measures the reception level and determines whether the measured reception level exceeds a predetermined threshold value (step S902).
[0068] Next, if it is determined that the reception level has not exceeded a predetermined threshold value over a certain period of time (step S902: NO), the conventional terminal station transmits the desired data to the mobile relay station using the desired band (step S903). This completes the operation of the conventional terminal station related to interference detection shown in the flowchart of FIG.
[0069] An example of the operation relating to interference detection of the terminal station 3 and the periphery detection station 8 of the wireless communication system 1 in this embodiment will be described below. Fig. 7 is a flow diagram showing the operation relating to interference detection of the terminal station 3 and the periphery detection station 8. The operation of the terminal station 3 and the periphery detection station 8 shown in the flow diagram of Fig. 7 is started, for example, at the timing when the terminal station 3 and the mobile relay station 2 become able to communicate with each other.
[0070] First, the periphery detection station control unit 35 of the terminal station 3 transmits a periphery detection request to one or more periphery detection stations 8 via the transmission unit 32 and the antenna 33 (step S301).
[0071] Next, the receiving unit 34 of the terminal station 3 attempts, for a certain period of time, reception using the antenna 33 in the band that is desired to be used for transmitting data to the mobile relay station 2 (step S302). The receiving unit 34 outputs information indicating the reception result to the surrounding radio wave condition determining unit 36. The receiving unit 34 also waits for reception of reception result information transmitted from the surrounding detection station 8.
[0072] Next, the receiving unit 82 of the perimeter detecting station 8 waits for reception of the perimeter detecting request transmitted from the terminal station 3 in the above step S301 (step S401).
[0073] When the receiver 82 of the perimeter detection station 8 receives the perimeter detection request transmitted from the terminal station 3 via the antenna 81 (step S402: YES), it outputs the received perimeter detection request to the perimeter detection request processor 83. The perimeter detection request processor 83 attempts, for a certain period of time, via the receiver 82 and the antenna 81 to receive in the band that it wishes to use for transmitting data to the mobile relay station 2 (step S403).
[0074] Next, the periphery detection request processing unit 83 of the periphery detection station 8 determines whether the reception level has not exceeded a predetermined threshold value over a certain period of time. The periphery detection request processing unit 83 outputs reception result information indicating the result of the above determination to the surrounding radio wave condition transmission unit 84. The surrounding radio wave condition transmission unit 84 transmits the acquired reception result information to the terminal station 3 via the transmission unit 85 and the antenna 81 (step S404). This completes the operation of the periphery detection station 8 related to interference detection shown in the flow diagram of FIG.
[0075] Next, the receiving unit 34 of the terminal station 3 receives the reception result information transmitted from each of the one or more surrounding detection stations (step S303). The receiving unit 34 outputs the acquired reception result information to the surrounding radio wave condition determining unit 36.
[0076] Next, the surrounding radio wave condition determination unit 36 of the terminal station 3 determines whether the reception level at the terminal station 3 or the surrounding detection station 8 has not exceeded a predetermined threshold value over a certain period of time, based on the reception result received by the receiving unit 34 in the band desired to be used for transmitting data to the mobile relay station 2 and the reception result indicated by the reception result information respectively acquired from one or more surrounding detection stations (step S304).
[0077] Next, if it is determined that the reception level does not exceed the predetermined threshold value at the terminal station 3 and the surrounding detection station 8 throughout the above-mentioned certain period (step S304: NO), the transmitter 32 of the terminal station 3 transmits the desired data to the mobile relay station 2 using the above-mentioned desired band (step S305). This completes the operation of the terminal station 3 related to interference detection shown in the flowchart of FIG.
[0078] As described above, the wireless communication system 1 in this embodiment includes one or more peripheral detection stations 8 installed in the vicinity of the terminal station 3. In order to determine the band to be used for transmitting data to the mobile relay station 2, the terminal station 3 checks in advance whether the band it wants to use will interfere with other terminal stations 3. At this time, the terminal station 3 checks by attempting to receive the band it wants to use for a certain period of time.
[0079] Furthermore, the terminal station 3 not only checks itself, but also has one or more surrounding detection stations 8 installed around the terminal station 3 receive and check the band it wants to use. The terminal station 3 collects reception result information from one or more surrounding detection stations 8. This allows the terminal station 3 to check whether the band it wants to use will interfere with other terminal stations 3 based on reception conditions over a wider range. Therefore, the wireless communication system 1 in this embodiment can further reduce the occurrence of radio wave interference in communication between the mobile relay station 2 and the terminal station 3.
[0080] Furthermore, in the wireless communication system 1 of this embodiment, it is not necessary to use control signals for controlling the transmission timing of, for example, RTS and CTS, etc. This makes it possible to suppress the occurrence of radio interference even in a wireless communication system in which the time period during which the mobile relay station 2 and the terminal station 3 communicate with each other is limited.
[0081] Furthermore, according to the above-described embodiment, the mobile relay station saves and accumulates information on the waveform of the wireless terminal uplink signal received from the terminal station without demodulating the signal, and transmits the signal to the base station wirelessly at a timing when communication is possible. The base station performs reception processing such as demodulation and decoding on the terminal uplink signal represented by the received signal waveform at the mobile relay station. Therefore, a non-regenerative relay method that is independent of the communication method can be applied to a wireless communication system using low-earth orbit satellites.
[0082] Furthermore, because non-regenerative relay is performed, the mobile relay station does not need to implement the wireless communication method used by the terminal station. For example, even if a terminal station that communicates using a new wireless communication method is added, there is no need to change the mobile relay station; instead, the base station installed on the ground can be modified to add the new wireless communication method. Therefore, according to the embodiment described above, it is possible to simultaneously accommodate various IoT systems and easily accommodate updates to IoT systems.
[0083] Furthermore, according to the embodiment described above, the large Doppler shift experienced by each terminal station can be processed at the base station rather than at the mobile relay station, so there is no need to implement complex nonlinear calculations to compensate for the Doppler shift in the mobile relay station.
[0084] In the above embodiment, the mobile body on which the mobile relay station is mounted is described as a LEO satellite, but the mobile body may also be any other flying body capable of flying in the sky, such as a geostationary satellite, a drone, or a HAPS.
[0085] The mobile relay station 2 may transmit a base station downlink signal using multiple antennas 25. For example, MIMO (Multiple Input Multiple Output) may be used for transmitting the base station downlink signal. In this case, the mobile relay station 2 can transmit the data it has received and accumulated from multiple terminal stations 3 collectively in a short time with good quality at a timing when it can communicate with the base station 4.
[0086] The mobile relay station 2 may receive the terminal uplink signal by a plurality of antennas 21. For example, the mobile relay station 2 may receive the terminal uplink signal received from the terminal station 3 by diversity reception, MIMO reception, or the like. In this case, the mobile relay station 2 can improve the link budget between the mobile relay station 2 and the terminal station 3.
[0087] According to the above-described embodiment, the wireless communication system includes a first communication device, one or more second communication devices arranged around the first communication device, and a mobile relay device. For example, the wireless communication system is a wireless communication system 1 in the embodiment, the first communication device is a terminal station 3 in the embodiment, the second communication device is a periphery detection station 8 in the embodiment, and the relay device is a mobile relay station 2 in the embodiment.
[0088] The second communication device includes a second receiving unit and a second transmitting unit. The second receiving unit attempts to receive radio waves in a predetermined band and measures the reception strength. The second transmitting unit transmits reception result information indicating the surrounding radio wave conditions based on the reception strength measured by the second receiving unit to the first communication device. For example, the predetermined band is a band that the terminal station 3 in the embodiment wants to use to transmit data to the mobile relay station 2, the second receiving unit is the receiving unit 82 of the surrounding detection station 8 in the embodiment, and the second transmitting unit is the transmitting unit 85 of the surrounding detection station 8 in the embodiment.
[0089] The first communication device includes a first receiving unit, a determining unit, and a first transmitting unit. The first receiving unit attempts to receive radio waves in a predetermined band and measures the reception strength. The determining unit determines a band to use for transmitting data to the relay device based on the surrounding radio wave conditions based on the reception strength measured by the first receiving unit and the surrounding radio wave conditions based on the reception result information transmitted from the second transmitting unit. The first transmitting unit transmits data to the relay device using the band determined by the determining unit. For example, the first receiving unit is the receiving unit 34 in the embodiment, the determining unit is the surrounding radio wave conditions determining unit 36 in the embodiment, and the first transmitting unit is the transmitting unit 32 in the embodiment.
[0090] The first transmitting unit transmits request information to the second receiving unit to cause the second receiving unit to receive radio waves in a predetermined band. In this case, the second receiving unit receives radio waves in the predetermined band upon receiving the request information. For example, the request information is a perimeter detection request in the embodiment.
[0091] The first transmitter transmits the request information at a timing when the first receiver and the second receiver can communicate with the relay device. For example, the communication timing is when the mobile relay station 2 in the embodiment passes over the terminal station 3 and the surrounding detection station 8.
[0092] The relay device may be provided on a low-earth orbit satellite, and the first communication device and the second communication device may be installed on the Earth.
[0093] The wireless communication system may further include a third communication device. For example, the third communication device is the base station 4 in the embodiment. In this case, the relay device includes a relay device transmitter. For example, the relay device transmitter is the transmitter 244 in the embodiment. The relay device transmitter transmits data acquired from the first communication device to the third communication device at a timing when communication with the third communication device is possible. For example, the timing when communication is possible is when the mobile relay station 2 in the embodiment passes over the base station 4.
[0094] A computer may implement part or all of the configuration of the wireless communication system 1 in the above-described embodiment. In this case, a program for implementing the functions may be recorded on a computer-readable recording medium, and the program may be loaded into a computer system and executed. Note that the term "computer system" as used herein includes hardware such as an OS and peripheral devices. Furthermore, the term "computer-readable recording medium" refers to portable media such as flexible disks, optical magnetic disks, ROMs, and CD-ROMs, as well as storage devices such as hard disks built into a computer system. Furthermore, the term "computer-readable recording medium" may also include devices that dynamically store programs for a short period of time, such as communication lines used when transmitting programs via networks such as the Internet or telephone lines, or devices that store programs for a fixed period of time, such as volatile memory within a computer system that serves as a server or client. The program may be for implementing part of the functions described above, or may be capable of implementing the functions in combination with a program already stored in the computer system, or may be implemented using a programmable logic device such as an FPGA (Field Programmable Gate Array).
[0095] Although an embodiment of the present invention has been described in detail above with reference to the drawings, the specific configuration is not limited to this embodiment, and includes designs within the scope of the gist of the present invention. [Explanation of symbols]
[0096] 1...wireless communication system, 2...mobile relay station, 3...terminal station, 4...base station, 8...periphery detection station, 21...antenna, 22...terminal communication unit, 23...data storage unit, 24...base station communication unit, 25...antenna, 31...data storage unit, 32...transmitting unit, 33...antenna, 34...receiving unit, 35...periphery detection station control unit, 36...periphery radio wave situation determination unit, 41...antenna, 42...receiving unit, 43...base station signal receiving processing unit, 44...terminal signal receiving processing unit, 81...antenna, 82...receiving unit, 83...periphery detection request processing unit, 84...periphery radio wave situation transmitting unit, 85...transmitting unit, 221...receiving unit, 222...received waveform recording unit, 241...storage unit, 242...control unit, 243...transmitted data modulation unit, 244...transmitting unit, 441...terminal signal demodulating unit, 442...terminal signal decoding unit
Claims
1. A wireless communication system having a first communication device, one or more second communication devices arranged around the first communication device, and a mobile relay device, The second communication device a second receiving unit that attempts to receive radio waves in a predetermined band and measures the reception strength for a predetermined period of time; a second transmitting unit that transmits reception result information indicating the reception intensity measured by the second receiving unit to the first communication device; Equipped with The first communication device a first receiving unit that attempts to receive radio waves in the predetermined band at the same timing as the second receiving unit and measures the reception intensity for the predetermined period; a first transmitter that transmits data to the relay device using the predetermined band when the reception strength measured by the first receiver and the reception strength based on the reception result information transmitted from the second transmitter are less than a predetermined value; A wireless communication system comprising:
2. the first transmitting unit transmits request information to the second receiving unit to cause the second receiving unit to receive radio waves in the predetermined band; The second receiving unit receives radio waves in the predetermined band when the request information is received.
10. The wireless communication system of claim 1.
3. The first transmitting unit transmits the request information at a timing when the first receiving unit and the second receiving unit can communicate with the relay device.
3. The wireless communication system according to claim 2.
4. the relay device is provided on a low-earth orbit satellite; The first communication device and the second communication device are installed on the Earth. The wireless communication system according to any one of claims 1 to 3.
5. further comprising a third communication device; The relay device a relay device transmitting unit that transmits the data acquired from the first communication device to the third communication device at a timing when communication with the third communication device is possible; 5. A wireless communication system according to claim 1, comprising:
6. A communication device having a first communication unit and one or more second communication units arranged around the first communication unit, and performing communication with a mobile relay device, The second communication unit a second receiving unit that attempts to receive radio waves in a predetermined band and measures the reception strength for a predetermined period of time; a second transmitting unit that transmits reception result information indicating the reception intensity measured by the second receiving unit to the first communication unit; Equipped with The first communication unit a first receiving unit that attempts to receive radio waves in the predetermined band at the same timing as the second receiving unit and measures the reception intensity for the predetermined period; a first transmitter that transmits data to the relay device using the predetermined band when the reception strength measured by the first receiver and the reception strength transmitted from the second transmitter are less than a predetermined value; A communication device comprising:
7. A wireless communication method among a first communication device, one or more second communication devices disposed in the vicinity of the first communication device, and a moving relay device, comprising: a second receiving step in which the second communication device attempts to receive radio waves in a predetermined band and measures the reception strength for a predetermined period of time; a second transmission step in which the second communication device transmits, to the first communication device, reception result information indicating the reception strength measured in the second reception step; a first receiving step in which the first communication device attempts to receive radio waves in the predetermined band at the same timing as the second receiving step and measures the reception strength for the predetermined period; a first transmission step in which the first communication device transmits data to the relay device using the predetermined band when the reception strength measured in the first receiving step and the reception strength based on the reception result information transmitted in the second transmitting step are less than a predetermined value; A wireless communication method comprising:
8. A wireless communication method for a communication device that has a first communication unit and one or more second communication units arranged around the first communication unit and that communicates with a moving relay device, comprising: a second receiving step in which the second communication unit attempts to receive radio waves in a predetermined band and measures the reception strength for a predetermined period of time; a second transmission step in which the second communication unit transmits reception result information indicating the reception intensity measured in the second reception step to the first communication unit; a first receiving step in which the first communication unit attempts to receive radio waves in the predetermined band at the same timing as the second receiving step and measures the reception strength for the predetermined period; a first transmission step in which the first communication unit transmits data to the relay device using the predetermined band when the reception strength measured in the first receiving step and the reception strength based on the reception result information transmitted in the second transmitting step are less than a predetermined value; A wireless communication method comprising:
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