Wireless communication system, terminal station device, and wireless communication method

The wireless communication system allows IoT terminals to activate and transmit data using a separate frequency scheme, eliminating the need for additional activation signal circuits and reducing costs.

JP7741452B2Active Publication Date: 2025-09-18NIPPON TELEGRAPH & TELEPHONE CORP
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Patent Information

Application Number
JP2024527982
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-06-15
Publication Date
2025-09-18
Estimated Expiration
2042-06-15

AI Technical Summary

Technical Problem

Existing IoT terminals require a separate circuit to receive activation signals from satellites, increasing cost and complexity due to different frequency requirements for various LPWA methods.

Method used

A wireless communication system comprising a mobile collection station device, relay station devices, and terminal station devices, where the mobile collection station transmits a terminal activation signal at a second frequency, relay station devices transmit a predetermined signal at the terminal's first frequency, and terminal station devices activate and transmit data after receiving the signal.

Benefits of technology

Enables data transmission from IoT terminals without the need for a separate activation signal receiving circuit, reducing costs and simplifying terminal design.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

One embodiment of the present invention is a wireless communication system comprising: a mobile collection station device; one or more relay station devices; and one or more terminal station devices. The mobile collection station device transmits a terminal activation signal for activating a terminal station device on a second frequency which differs from a first frequency that is the transmission frequency of the terminal station device. The relay station device transmits, upon receiving the terminal activation signal from the mobile collection station device, a prescribed signal on the first frequency. The terminal station device is activated upon receiving the prescribed signal from the relay station device, and then transmits a desired data signal to the mobile collection station device.
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Description

[Technical Field]

[0001] The present invention relates to a wireless communication system, a relay station device, a terminal station device, and a wireless communication method. [Background technology]

[0002] For example, remote sensing is being developed to collect data from IoT (Internet of Things) terminals via satellites. In such satellite sensing platforms, in order to realize a battery life of, for example, years for terrestrial IoT terminals, it is necessary to transmit data via uplink when, for example, a low-orbit satellite is detected in the sky. In order to detect the arrival of a low-orbit satellite in the sky, one possible method is to observe downlink signals from the satellite to the ground (see, for example, Non-Patent Document 1). [Prior art documents] [Non-patent literature]

[0003] [Non-Patent Document 1] F. Shu, X. Zhang, T. Kondo, “Development of correlator model for differential VLBI observations of satellites”, 2008 International Conference on Microwave and Millimeter Wave Technology, ICMMT2008 Proceedings, Vol.1, pp.443-446, April 2008. Summary of the Invention [Problem to be solved by the invention]

[0004] However, the technology described in Non-Patent Document 1 has the problem that, in order to receive an activation signal from a satellite to activate a ground-side device, it is necessary to equip the terminal with a circuit that receives an activation signal frequency separate from the transmission frequency of, for example, an LPWA (Low Power Wide Area Network), which makes the terminal expensive. Note that, since there are multiple LPWA methods, the ground-side device needs to equip the terminal with a circuit that receives an activation signal frequency separate from the transmission frequency for each method. In view of the above circumstances, the present invention aims to provide a technology that can transmit data when a satellite-side device arrives, without having to install a circuit in the ground-side device that receives the frequency of the activation signal. [Means for solving the problem]

[0005] One aspect of the present invention is a wireless communication system comprising a mobile collection station device, one or more relay station devices, and one or more terminal station devices, wherein the mobile collection station device transmits a terminal activation signal for activating the terminal station device at a second frequency different from a first frequency which is a transmission frequency of the terminal station device, the relay station device transmits a predetermined signal at the first frequency upon receiving the terminal activation signal from the mobile collection station device, and the terminal station device transmits a desired data signal to the mobile collection station device after activating the terminal station device upon receiving the predetermined signal from the relay station device.

[0006] One aspect of the present invention is a relay station device that includes a relay processing unit that, upon receiving from a mobile collection station device a terminal activation signal that requests activation of a terminal station device and requests the mobile collection station device to transmit a desired data signal, transmits a predetermined signal to the terminal station device at a first frequency that is a transmission frequency of the terminal station device, and the frequency of the terminal activation signal is a second frequency that is different from the first frequency.

[0007] One aspect of the present invention is a terminal station device including a terminal processing unit that, upon receiving from a relay station device a predetermined signal of a first frequency for activating a terminal station device based on a terminal activation signal received from a mobile collection station device, activates the terminal station device and then transmits a desired data signal to the mobile collection station device, wherein the frequency of the terminal activation signal is a second frequency different from the first frequency which is the transmission frequency of the terminal station device.

[0008] One aspect of the present invention is a wireless communication method in a wireless communication system including a mobile collection station device, one or more relay station devices, and one or more terminal station devices, in which the mobile collection station device transmits a terminal activation signal for activating the terminal station device at a second frequency different from a first frequency which is the transmission frequency of the terminal station device, the relay station device transmits a predetermined signal at the first frequency upon receiving the terminal activation signal from the mobile collection station device, and the terminal station device transmits a desired data signal to the mobile collection station device after activating the terminal station device upon receiving the predetermined signal from the relay station device. [Effects of the Invention]

[0009] According to the present invention, it is possible to transmit data when the satellite-side device arrives, without having to install a circuit for receiving the frequency of the activation signal in the ground-side device. [Brief explanation of the drawings]

[0010] [Figure 1] 1 is a diagram illustrating an example of the configuration of a wireless communication system and an example of the configuration of each device. [Figure 2] 1A and 1B are diagrams illustrating an example of the configuration and operation of a wireless communication system according to a first embodiment. [Figure 3] FIG. 4 is a diagram illustrating an example of a start-up signal according to the first embodiment. [Figure 4] 6 is a flowchart showing a processing procedure of the relay station device according to the first embodiment. [Figure 5] 5 is a flowchart showing a processing procedure of the terminal station device according to the first embodiment. [Figure 6]FIG. 10 is a diagram illustrating a modified example of the wireless communication system according to the first embodiment. [Figure 7] 13 (dBm), 920 (MHz) free space loss and CS level examples. [Figure 8] 10A and 10B are diagrams illustrating an example of the configuration and operation of a wireless communication system according to a second embodiment. [Figure 9] 10 is a timing chart of a wireless communication system according to a second embodiment. [Figure 10] 10 is a flowchart showing a processing procedure of a relay station device according to the second embodiment. [Figure 11] FIG. 10 is a diagram illustrating a modified example of the wireless communication system according to the second embodiment. [Figure 12] FIG. 11 is a diagram showing an example of a start signal using a cyclic code sequence according to the third embodiment. [Figure 13] 11 is a flowchart showing a processing procedure of a terminal station device according to the third embodiment. [Figure 14] FIG. 10 is a diagram for explaining a process according to a fourth embodiment. [Figure 15] 10 is a flowchart showing a processing procedure of a terminal station device according to the fourth embodiment. [Figure 16] 13A and 13B are diagrams for explaining examples of interference signals and processing according to the fifth embodiment. [Figure 17] 13 is a flowchart showing a processing procedure of a relay station device according to the fifth embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0011] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS An embodiment of the present invention will be described in detail with reference to the drawings.

[0012] <Configuration example of wireless communication system and configuration example of each device> First, a configuration example of a wireless communication system and a configuration example of each device will be described. Fig. 1 is a diagram showing a configuration example of a wireless communication system and a configuration example of each device. As shown in Fig. 1, the wireless communication system 1 includes a relay station device 2, a terminal station device 3, and a mobile collection station device 4.

[0013] The relay station device 2 includes, for example, an antenna 21, a receiving unit 22, a transmitting unit 23, a relay processing unit 24, and a storage unit 27. The relay processing unit 24 includes a generating unit 25 and a modulating unit 26.

[0014] The terminal station device 3 includes, for example, an antenna 3 1, a receiving unit 32, a transmitting unit 33, a terminal processing unit 34, a storage unit 36, and a sensor 37. The terminal processing unit 34 includes a demodulation unit 35.

[0015] The mobile collection station device 4 includes, for example, a receiving unit 41, a transmitting unit 42, a collection station processing unit 43, and a storage unit 44.

[0016] (Mobile collection station equipment) The mobile collection station 4 is, for example, a device provided on a low-orbit communication satellite. The mobile collection station 4 transmits a terminal activation signal sg1 for activating IoT terminals on Earth. The terminal activation signal sg1 is a 400 (MHz) signal (downlink) that is a second frequency different from the first frequency that can be received by the terminal station 3. The mobile collection station 4 may be, for example, a drone, a High Altitude Platform Station (HAPS), an unmanned aircraft equipped with a mobile phone base station device and flying at high altitudes, a train, a vehicle, or any other mobile object.

[0017] The receiver 41 receives a transmission signal sg3 (desired data signal) transmitted by the terminal station device 3, and outputs the received transmission signal sg3 to the collection station processor 43.

[0018] The transmitter 42 transmits the terminal activation signal output by the collection station processor 43 .

[0019] The collection station processing unit 43 transmits the terminal activation signal sg1 via the transmission unit 42. The collection station processing unit 43, for example, acquires the transmission signal sg3 received by the reception unit 41, and stores information included in the acquired transmission signal sg3 in the storage unit 44.

[0020] The storage unit 44 stores, for example, programs and values ​​used for control by the collection station processing unit 43. The storage unit 44 stores, for example, information based on a transmission signal received from the terminal station device 3.

[0021] (Relay station equipment) The relay station device 2 receives a terminal activation signal sg1 transmitted from a mobile collection station device 4. Triggered by receiving the terminal activation signal sg1, the relay station device 2 transmits an activation signal sg2 (predetermined signal) obtained by on-off modulating a specific signal sequence to the terminal station device 3. The number of relay station devices 2 may be two or more. When the relay station device 2 receives, from the mobile collection station device 4, the terminal activation signal sg1, which requests activation of the terminal station device 3 and requests the mobile collection station device 4 to transmit a desired data signal, the relay station device 2 transmits the predetermined signal to the terminal station device 3 at a first frequency, which is the transmission frequency of the terminal station device 3. The frequency of the terminal activation signal sg1 is a second frequency different from the first frequency.

[0022] The antenna 21 is a transmitting and receiving antenna.

[0023] The receiver 22 receives the terminal activation signal sg1 via the antenna 21 and outputs the received terminal activation signal sg1 to the relay processor 24.

[0024] The transmitter 23 transmits the activation signal sg2 output by the relay processor 24 to the terminal station device 3 via the antenna 21. The activation signal sg2 (predetermined signal) has a frequency of a first frequency that can be received by the terminal station device 3, for example, a signal of 920 (MHz).

[0025] The generation unit 25 detects that the terminal activation signal sg1 has been received based on the information stored in the storage unit 27. The generation unit 25 generates a predetermined transmission signal sequence based on the information stored in the storage unit 27, for example, using the reception of the terminal activation signal sg1 as a trigger.

[0026] The modulation unit 26 performs, for example, on-off modulation (0, 1 modulation) on the generated predetermined transmission signal sequence. Note that the relay station device 2 and the terminal station device 3 store the predetermined transmission signal sequence and on-off modulation used as the activation signal in their own storage units 27 in advance.

[0027] The storage unit 27 stores information relating to a predetermined transmission signal sequence. The storage unit 27 stores a modulation method for the predetermined transmission signal sequence. The storage unit 27 stores programs, values, etc. used for control by the relay processing unit 24. The storage unit 27 stores information relating to the terminal activation signal sg1.

[0028] (Terminal station device) The terminal station device 3 receives the activation signal sg2 transmitted by the relay station device 2, demodulates the received signal, and activates the transmitter 33. The terminal station device 3 transmits a transmission signal sg3 to the mobile collection station device 4. The terminal station device 3 is, for example, an environmental data collection device that detects and transmits temperature, humidity, etc. The number of terminal station devices 3 may be two or more. The terminal station device 3 does not have a receiving circuit for the 400 (MHz) terminal activation signal sg1 transmitted by the mobile collection station device 4.

[0029] The antenna 31 is a transmitting and receiving antenna.

[0030] The receiver 32 receives the activation signal sg2 transmitted by the relay station device 2 via the antenna 31, and outputs the received activation signal sg2 to the terminal processor .

[0031] The transmitter 33 transmits the activation signal sg2 output by the terminal processing unit 34 to the mobile collection station device 4 via the antenna 31. When no signal is being transmitted or received, or when detection by the sensor is being performed, at least the transmitter 33 is in, for example, a sleep state to save power.

[0032] If the device processing unit 34 detects that the activation signal sg2 demodulated by the demodulation unit 35 matches the predetermined signal sequence stored in the storage unit 36, the device processing unit 34 activates the transmission unit 33.

[0033] The demodulation unit 35 has a carrier sense function. The carrier sense function is a mechanism for, for example, checking whether another wireless communication station is using the wireless channel (own channel) from which the wireless communication station is about to start transmission before starting transmission, and if another wireless communication station is using the own channel, not transmitting on the same frequency to avoid interference. The demodulation unit 35 uses the carrier sense function to demodulate the received activation signal sg2.

[0034] The storage unit 36 ​​stores information relating to a predetermined signal sequence. The storage unit 36 ​​stores programs, values, etc. that the terminal local processing unit 34 uses for control.

[0035] The sensor 37 is an environmental sensor that detects environmental information such as temperature and humidity.

[0036] The relay processing unit 24, the terminal processing unit 34, and the collection station processing unit 43 are each configured using a processor such as a CPU (Central Processing Unit) and a memory. The relay processing unit 24 functions as the generation unit 25 and the modulation unit 26 when the processor executes a program. Note that all or part of the functions of the relay processing unit 24, the terminal processing unit 34, and the collection station processing unit 43 may be realized using hardware such as an ASIC (Application Specific Integrated Circuit), a PLD (Programmable Logic Device), or an FPGA (Field Programmable Gate Array). The above program may be recorded on a computer-readable recording medium. Examples of computer-readable recording media include portable media such as a flexible disk, a magneto-optical disk, a ROM, a CD-ROM, and a semiconductor storage device (e.g., a solid-state drive (SSD)), as well as storage devices such as a hard disk or semiconductor storage device built into a computer system. The above program may be transmitted via a telecommunications line.

[0037] First Embodiment 2 is a diagram showing an example of the configuration and operation of a wireless communication system according to this embodiment. As shown in FIG. 2, a wireless communication system 1 includes one relay station device 2, one terminal station device 3, and a mobile collection station device 4. The terminal station device 3 is located within a range zn1 in which it can receive an activation signal sg2 from the relay station device 2. The configurations of the relay station device 2, the terminal station device 3, and the mobile collection station device 4 are the same as those described in FIG. 1.

[0038] The collection station processing unit 43 transmits the terminal activation signal sg1 via the transmission unit 42. The collection station processing unit 43, for example, acquires the transmission signal sg3 received by the reception unit 41, and stores information included in the acquired transmission signal sg3 in the storage unit 44. The relay station 2 receives the terminal activation signal sg1 transmitted by the mobile collection station 4. Receipt of the terminal activation signal sg1 triggers the relay station 2 to transmit an activation signal sg2, which is an on-off modulated specific signal sequence, to the terminal station 3. While receiving the terminal activation signal sg1, the relay station 2 continues to transmit the activation signal sg2 to the terminal station 3. This is because, for example, there may be cases where the terminal station 3 is not activated even after transmitting the activation signal sg2 once. The terminal station device 3 receives the activation signal sg2 transmitted by the relay station device 2, demodulates the received signal, and activates the transmitter 33. The terminal station device 3 transmits a transmission signal sg3 to the mobile collection station device 4. After activation, the terminal station device 3 may transmit to the relay station device 2 information indicating that it has received the activation signal sg2 or information indicating that it has been activated.

[0039] FIG. 3 is a diagram showing an example of an activation signal according to this embodiment. As shown in FIG. 3, activation signal sg2 is a signal obtained by on-off modulating signal sg22 having a frequency of, for example, 920 (MHz). Period T1 is the on period, and period T2 is the off period. In each embodiment, the on state is represented as "1" (or "H") and the off state is represented as "0" (or "L"), but reverse logic may also be used. The frequency used may be any transmission frequency used in IoT systems such as LPWA.

[0040] (Relay station device processing procedure) FIG. 4 is a flowchart showing a processing procedure of the relay station device according to this embodiment.

[0041] (Step S11) When mobile collection station device 4, which is, for example, a low-orbit satellite, arrives above a data collection area, receiver 22 receives a terminal activation signal transmitted from mobile collection station device 4. Generator 25 detects, based on information stored in memory 27, that the terminal activation signal has been received.

[0042] (Step S12) The generating unit 25 generates a predetermined transmission signal sequence based on information stored in the storage unit 27, for example, when triggered by the reception of a terminal activation signal.

[0043] (Step S13) The modulation unit 26 performs on-off modulation on the generated predetermined transmission signal sequence.

[0044] (Step S14) Relay processing unit 24 determines whether or not the on-off modulated activation signal has been transmitted for a predetermined signal length. If relay processing unit 24 determines that the activation signal has been transmitted for the predetermined signal length (step S14; YES), it proceeds to the processing of step S15. If relay processing unit 24 determines that the activation signal has not been transmitted for the predetermined signal length (step S14; NO), it returns to the processing of step S13.

[0045] (Step S15) The relay processing unit 24 determines whether or not a terminal activation signal has been received from the mobile collection station device 4. If the relay processing unit 24 determines that the terminal activation signal has been received (step S15; YES), the process returns to step S13. As a result, the relay processing unit 24 repeats transmission of a predetermined signal length while the terminal activation signal is being received. If the relay processing unit 24 determines that the terminal activation signal has not been received (step S15; NO), the process ends.

[0046] (Terminal station device processing procedure) FIG. 5 is a flowchart showing the processing procedure of the terminal station device according to this embodiment.

[0047] (Step S21) The demodulator 35 demodulates and detects the signal using the carrier sense function.

[0048] (Step S22) The terminal processing unit 34 determines whether or not a signal of a predetermined signal length has been received. If the terminal processing unit 34 determines that a signal of a predetermined signal length has been received (step S22; YES), the terminal processing unit 34 proceeds to the processing of step S23. If the terminal processing unit 34 determines that a signal of a predetermined signal length has not been received (step S22; NO), the terminal processing unit 34 returns to the processing of step S21.

[0049] (Step S23) The terminal processing unit 34 determines whether the received signal is a predetermined signal sequence. If the terminal processing unit 34 determines that the received signal is a predetermined signal sequence (step S23; YES), the process proceeds to step S24. If the terminal processing unit 34 determines that the received signal is not a predetermined signal sequence (step S23; NO), the process returns to step S21.

[0050] (Step S24) The terminal processing unit 34 generates a transmission signal and transmits the generated transmission signal to the mobile collection station device 4 via the transmitter 33 and the antenna 31. After transmission, the terminal processing unit 34 controls, for example, its own unit, the transmitter 33, etc. to enter a sleep state.

[0051] After starting up, the terminal processing unit 34 may stop receiving the activation signal transmitted by the relay station device 2. This can reduce the power consumption required for reception. Note that signals used by IoT terminals are of various standards, such as CSS (Chirp Spread Spectrum) signals and DSSS (Direct Sequence Spread Spectrum) signals, making it difficult for the relay station device 2 to support all communication standards.

[0052] For this reason, in this embodiment, a carrier sense function implemented in most IoT terminals is used to check whether a frequency channel is in use before transmitting its own signal. More specifically, the terminal station device 3 encodes the signal as 1 if it exceeds the threshold of the carrier sense function provided in the demodulation unit 35 and as 0 if it falls below the threshold. When a specific signal sequence is received, the terminal station device is activated and starts transmission to the mobile collection station device 4.

[0053] In the wireless communication system 1 configured in this manner, the relay station device 2 does not need to support a specific method, but only one type is sufficient, and the terminal station device 3 can perform startup support using firmware support for the carrier sense function.

[0054] (Variation) Fig. 6 is a diagram showing a modified example of the wireless communication system according to this embodiment. As shown in Fig. 6, the wireless communication system 1A includes one relay station device 2, three terminal station devices 3 (3-1, 3-2, 3-3), and a mobile collection station device 4. The terminal station device 3-1 is located within a range zn1. The terminal station device 3-2 is located outside the range zn1 but within a range zn2. The terminal station device 3-3 is located outside the range zn2 but within a range zn3. The configurations of the relay station device 2, the terminal station device 3, and the mobile collection station device 4 are the same as those described in Fig. 1.

[0055] FIG. 7 is a diagram showing an example of free space loss and CS (carrier sense) level at 13 (dBm) and 920 (MHz). The horizontal axis is distance (m) and the vertical axis is reception level (dBm). Line g11 indicates the carrier sense threshold, and line g12 indicates the reception level versus distance. As shown in FIG. 7, the threshold for the carrier sense function is uniquely determined by radio equipment regulations, etc. Therefore, the transmission power may be controlled on the relay station device 2 side to control the activation timing of terminal station devices 3-1, 3-2, 3-3, ...

[0056] For example, relay station device 2 may set the transmission power to a large value, such as the maximum, and simultaneously activate all terminals accommodated in the area, and then gradually reduce the transmission power. Relay station device 2 may control transmissions at different times by changing the time for which transmission is stopped after exceeding the carrier sense level. Conversely, relay station device 2 may adjust the range and timing of the activation signal by gradually increasing the power from a low level. In the example of FIG. 6, relay station device 2 activates terminal station devices 3-1, 3-2, 3-3, ... in order of proximity to relay station device 2.

[0057] This makes it possible to control the start-up timing of the terminal station devices 3-1, 3-2, 3-3, . . .

[0058] Second Embodiment 8 is a diagram showing an example of the configuration and operation of a wireless communication system according to this embodiment. As shown in FIG. 8, a wireless communication system 1B includes two relay station devices 2 (2-1 and 2-2), two terminal station devices 3 (3-1 and 3-2), and a mobile collection station device 4. The terminal station device 3-1 is located within a range zn1 in which it can receive an activation signal sg2-11 from the relay station device 2-1. The terminal station device 3-2 is located within a range zn2 in which it can receive an activation signal sg2-21 from the relay station device 2-2. The configurations of the relay station device 2, the terminal station device 3, and the mobile collection station device 4 are the same as those described in FIG. 1.

[0059] In the case of the terminal activation signal sg1-1 transmitted from the mobile collection station device 4, multiple relay station devices 2 may be activated at the same time, and may transmit activation signals simultaneously to terminals around the relay station device 2. If the frequency channels of the respective terminal station devices 3 are different, this is not a problem, but if the same frequency channel must be used because the reception band on the mobile collection station device 4 side is limited, the signals collide, causing interference and making it impossible to separate them.

[0060] In a wireless communication system 1B such as that shown in Figure 8, relay station device 2-1 receives a terminal activation signal sg1-1 and transmits an activation signal sg2-11 to terminal station device 3-1 within communication range zn1. Relay station device 2-2 receives a terminal activation signal sg1-2 and transmits an activation signal sg2-21 to terminal station device 3-2 within communication range zn2. If relay station device 2-1 transmits an activation signal sg2-12 to terminal station device 3-2 outside range zn1, the reception level decreases with increasing distance, so the CS level becomes, for example, -80 dBm, which is below the carrier sense threshold, and the activation signal sg2-21 does not reach terminal station device 3-2. In such a case, if the timing at which the terminal station device 3-1 transmits a transmission signal and the timing at which the terminal station device 3-2 transmits a transmission signal overlap, interference may occur at the receiving mobile collection station device 4.

[0061] For this reason, in this embodiment, unlike the first embodiment, the relay station 2 performs on-off modulation on the terminal station 3, and communication is performed between the relay station 2 using a normal LPWA system (e.g., FSK (Frequency Shift Keying) signal, PSK (Phase Shift Keying) signal, or other system with a low required C / N (Carrier to Noise Ratio)). Note that, for example, the LoRa standard, which is a type of LPWA standard, has a receiving sensitivity of -130 dBm, so signals can reach each other between the relay station 2. As a result, in this embodiment, the opposing relay station 2 can demodulate, for example, the LPWA system and coordinate signal transmission timing, thereby preventing interference on the mobile collection station 4 side when the terminal station 3-1 and the terminal station 3-2 simultaneously transmit signals.

[0062] Each relay station device 2 stores, for example, identification information of devices other than its own device in the storage unit 27. For example, when the relay station device 2-1 receives a terminal activation signal, it transmits an activation signal sg2-11 to the terminal station device 3-1 and also transmits a signal sg2-13. The signal sg2-13 may be the activation signal sg2-11.

[0063] Before starting to transmit the activation signal g2-21, the relay processing unit 24 of the relay station device 2-2 determines whether or not it has received the signal sg2-13 transmitted from the relay station device 2-1. The signal sg2-13 transmitted from the relay station device 2-1 includes identification information. If the relay processing unit 24 of the relay station device 2-2 receives the signal sg2-13, it delays the transmission timing of the activation signal to be transmitted to the terminal station device 3-2 by, for example, a predetermined time.

[0064] (Example of transmission and reception timing in a wireless communication system) Next, an example of transmission and reception timing of the wireless communication system 1B will be described. Fig. 9 is a timing chart of the wireless communication system according to this embodiment. The horizontal axis represents time. During the period from time t0 to t2, the terminal station device 3-1 receives an activation signal from the relay station device 2-1, and during the period from time t2 to t4, the terminal station device 3-1 transmits a transmission signal. Furthermore, during the period from time t0 to t1, relay station device 2-2 receives signal sg2-13 from relay station device 2-1. During the period from time t1 to t3, relay station device 2-2 waits to transmit an activation signal to terminal station device 3-2, and during the period from time t3 to t5, it transmits an activation signal to terminal station device 3-2. During the period from time t3 to t5, the terminal station device 3-2 receives an activation signal from the relay station device 2-2. During the period from time t5 to t6, the terminal station device 3-2 transmits a transmission signal.

[0065] As a result, the mobile collection station device 4 receives a transmission signal from the terminal station device 3-1 during the period from time t2 to t4, and receives a transmission signal from the terminal station device 3-2 during the period from time t5 to t6, thereby preventing interference. Note that the timing shown in Fig. 9 is an example and is not limiting. For example, the period from time t4 to t5 may be approximately zero.

[0066] (Relay station device processing procedure) Next, the processing procedure of the relay station device 2-2 will be described with reference to Fig. 10, which is a flowchart showing the processing procedure of the relay station device according to this embodiment.

[0067] (Step S31) When the mobile collection station device 4, which is, for example, a low-orbit satellite, arrives above the data collection area, the receiver 22 of the relay station device 2-2 receives the terminal activation signal transmitted by the mobile collection station device 4. The generator 25 of the relay station device 2-2 detects, based on the information stored in the memory 27, that the terminal activation signal has been received.

[0068] (Step S32) The generation unit 25 of the relay station device 2-2 generates a predetermined transmission signal sequence based on information stored in the storage unit 27, for example, when triggered by the reception of the terminal activation signal.

[0069] (Step S33) The relay processing unit 24 of the relay station device 2-2 determines whether or not a signal from a nearby relay station device 2 has been detected. If the relay processing unit 24 of the relay station device 2-2 determines that a signal from a nearby relay station device 2 has been detected (step S33; YES), the relay processing unit 24 proceeds to the processing of step S34. If the relay processing unit 24 of the relay station device 2-2 determines that a signal from a nearby relay station device 2 has not been detected (step S33; NO), the relay processing unit 24 proceeds to the processing of step S35.

[0070] (Step S34) The relay processing unit 24 of the relay station device 2-2 controls the start timing of transmission of the activation signal to the terminal station device 3-2 to be delayed by a predetermined time. After processing, the relay processing unit 24 of the relay station device 2-2 proceeds to the processing of step S35.

[0071] (Step S35) The modulator 26 of the relay station device 2-2 performs on-off modulation on the generated predetermined transmission signal sequence.

[0072] (Step S36) Relay processing unit 24 of relay station device 2-2 determines whether or not the on-off modulated activation signal has been transmitted for a predetermined signal length. If relay processing unit 24 determines that the activation signal has been transmitted for the predetermined signal length (step S36; YES), it proceeds to the processing of step S37. If relay processing unit 24 of relay station device 2-2 determines that the activation signal has not been transmitted for the predetermined signal length (step S36; NO), it returns to the processing of step S32.

[0073] (Step S37) The relay processing unit 24 of the relay station device 2-2 determines whether or not a terminal activation signal has been received from the mobile collection station device 4. If the relay processing unit 24 of the relay station device 2-2 determines that a terminal activation signal has been received (step S37; YES), the relay processing unit 24 returns to the processing of step S32. If the relay processing unit 24 of the relay station device 2-2 determines that a terminal activation signal has not been received (step S37; NO), the relay processing unit 24 ends the processing.

[0074] The processing procedures of the terminal station device 3-1 and the terminal station device 3-2 are the same as those in Fig. 5 of the first embodiment. However, as shown in Fig. 9, the terminal station device 3-1 transmits a transmission signal to the mobile collection station device 4 at, for example, time t2. Then, the terminal station device 3-2 transmits a transmission signal to the mobile collection station device 4 at, for example, time t5, which is Δt after time t2 (or time t5, which is Δt' after time t4).

[0075] 8 to 10, a signal is transmitted from relay station device 2-1 to relay station device 2-2, and relay station device 2-2 adjusts the timing. However, this is not limiting. A relay station device 2 that first receives a terminal activation signal from mobile collection station device 4 may transmit a signal to another relay station device 2. For example, if relay station device 2-2 first receives the terminal activation signal, relay station device 2-2 may transmit a signal to relay station device 2-1, and relay station device 2-1 may adjust the timing. In this case, terminal station device 3-2 transmits a transmission signal to mobile collection station device 4 at, for example, time t2. Then, terminal station device 3-1 transmits a transmission signal to mobile collection station device 4 at, for example, time t5, which is Δt after time t2.

[0076] 8, the terminal station device 3-1 checks the received power based on the received signal strength indicator (RSSI), and therefore refers only to the power information (envelope), for example. On the other hand, the relay station device 2-2 sees the signal as modulated by an arbitrary IoT method, and can cooperate with the relay station device 2-1 by demodulating the signal transmitted from the relay station device 2-1.

[0077] For this reason, in this embodiment, relay station device 2-1 and relay station device 2-2 each wait for a fixed or random time when receiving a terminal activation signal from mobile collection station device 4. For example, if relay station device 2-1 transmits an activation signal first, relay station device 2-2 demodulates the activation signal transmitted by relay station device 2-1 and transmits the activation signal to terminal station device 3-2 so as not to overlap with the signal transmission timing of relay station device 2-1.

[0078] In this embodiment, for example, the terminal station device 3 determines a rule such as transmitting a signal between Δt1 seconds and Δt2 seconds after receiving a start-up signal, thereby enabling signals to be separated in the time axis direction between the terminal station devices 3 within the communication range of the relay station device 2-1 and the relay station device 2-2.

[0079] Here, the transmission signal from relay station device 2-1 may include, for example, information about the next scheduled transmission timing of relay station device 2-2 and terminal station device 3 within the communication range of relay station device 2-1, in the activation signal. In this embodiment, relay station device 2-2 may control the timing of transmission of the activation signal to a timing that estimates completion of transmission by terminal station device 3-1 after relay station device 2-1 transmits a signal. Alternatively, relay station device 2-2 may control the timing of transmission of the activation signal so that terminal station device 3-2 transmits a signal at a time that overlaps with the transmission time of relay station device 2-1 (the time when terminal station device 3-1 is receiving the signal from relay station device 2-1).

[0080] (Variation) Next, an example in which there are three relay station devices 2 will be described. FIG. 11 is a diagram showing a modified example of the wireless communication system according to this embodiment. As shown in FIG. 11, the wireless communication system 1C includes three relay station devices 2 (2-1, 2-2, 2-3), two terminal station devices 3 (3-1, 3-2), and a mobile collection station device 4. The terminal station device 3-1 is located within a range zn1 in which it can receive an activation signal sg2-11 from the relay station device 2-1. The terminal station device 3-2 is located within a range zn2 in which it can receive an activation signal sg2-21 from the relay station device 2-2. The configurations of the relay station device 2, the terminal station device 3, and the mobile collection station device 4 are the same as those described in FIG. 1.

[0081] If location information or the like is carried in the transmission signal from relay station device 2-1 and relay station device 2-3 determines that the location information or the like can be separated using the angular resolution of the array antenna or the like in mobile collection station device 4, it may be controlled so that terminal station device 3 transmits a signal during the same time period as relay station device 2-1.

[0082] As described above, in this embodiment, the transmission timing of the activation signal is controlled based on information such as demodulated signals of time (transmission time and transmission signal length) and space (position information) and the angular resolution of the mobile collection station.

[0083] As a result, according to this embodiment, it is possible to prevent interference of terminal stations with mobile collection stations.

[0084] Third Embodiment In this embodiment, an example will be described in which a cyclic code sequence is used as the predetermined signal sequence. First, an example of an on-off modulation signal format for carrier sensing will be described. Here, a signal sequence such that C(x) = G(x)I(x) is used. Note that G(x) is an m-th degree generating polynomial, and is assumed to be known to each terminal station device 3. In the following equation (1), activation occurs when the remainder becomes 0 when multiplying the k-th degree (k=nm-1) polynomial I(x) and G(x) such that C(x) has a predetermined signal length n.

[0085]

number

[0086] In equation (1), the sign "+" represents an exclusive OR. When the coefficients of g, i, and c are 0 or 1, C(x) becomes a cyclic code sequence. For example, it is assumed that the signal sequence of G(x), I(x), and C(x) is expressed by the following equation (2).

[0087]

number

[0088] In this case, C(x) is represented by a cyclic code sequence [111001].

[0089] Fig. 12 is a diagram showing an example of a start-up signal using a cyclic code sequence according to this embodiment. In the example of Fig. 12, the start-up signal sg2 repeats [111001]. The interval between each [111001] signal is time T (sampling interval), and one period is nT. For example, times t0 to t13 are the first period, and times t13 to t16 are the second period.

[0090] If the terminal station device 3-1 receives such a wake-up signal sg2 for the period until the fixed signal length n (n=6 in FIG. 11) of the determined sampling interval T, that is, from time t11 to time t14, it will receive "111001." On the other hand, if the terminal station device 3-2 is in a sleep state until time t12, wakes up at time t12, and receives signals from time t12 until time t15, a predetermined time later, it will receive "100111."

[0091] 12, when the terminal station device 3-2 performs carrier sensing, the terminal station device 3-2 may be in sleep mode to save power, and may miss the first bit. In contrast, in this embodiment, a cyclic code sequence is selected as the wake-up signal, so that the terminal station device 3 performs carrier sensing for a fixed length after starting reception.

[0092] The terminal station device 3 determines that a start-up signal has been received when the signal pattern of the received start-up signal is divided by the generator polynomial G(x) of equation (1), for example, and the remainder is 0. Alternatively, the storage unit 36 ​​of each terminal station device 3 may store in advance all patterns of cyclic code sequences for a period up to a fixed signal length n (n=6 in FIG. 12) at a predetermined sampling interval T, and compare the patterns with the received signal pattern.

[0093] (Terminal station device processing procedure) Next, an example of the processing procedure of the terminal station device 3 will be described. The processing procedure of the relay station device 2 is similar to, for example, the procedure of the first embodiment (FIG. 4), and the relay station device 2 repeatedly transmits a predetermined signal length. FIG. 13 is a flowchart showing the processing procedure of the terminal station device according to this embodiment.

[0094] (Step S41) The demodulator 35 demodulates and detects the signal using the carrier sense function.

[0095] (Step S42) The terminal processing unit 34 determines whether or not a signal of a predetermined signal length has been received. If the terminal processing unit 34 determines that a signal of a predetermined signal length has been received (step S42; YES), the terminal processing unit 34 proceeds to the processing of step S43. If the terminal processing unit 34 determines that a signal of a predetermined signal length has not been received (step S42; NO), the terminal processing unit 34 returns to the processing of step S41.

[0096] (Step S43) The device processing unit 34 divides the received activation signal by, for example, the generator polynomial G(x). After the process, the device processing unit 34 proceeds to the process of step S44.

[0097] (Step S44) The terminal processing unit 34 determines whether the remainder is 0 as a result of the division. If the terminal processing unit 34 determines that the remainder is 0 as a result of the division (step S44; YES), the terminal processing unit 34 proceeds to the processing of step S45. If the terminal processing unit 34 determines that the remainder is not 0 as a result of the division (step S44; NO), the terminal processing unit 34 returns to the processing of step S41.

[0098] (Step S45) The terminal processing unit 34 generates a transmission signal and transmits the generated transmission signal to the mobile collection station device 4 via the transmitter 33 and the antenna 31. After transmission, the terminal processing unit 34 controls, for example, its own unit, the transmitter 33, etc. to enter a sleep state.

[0099] In this way, in this embodiment, even if the terminal station device is unable to receive the first bit, it will start up if it receives a signal of a predetermined fixed length and the calculation result is an expected sequence.

[0100] As a result, according to this embodiment, it is possible to identify a specific signal sequence without receiving it from the first bit of on-off modulation, thereby relaxing the timing of the carrier sense function and realizing power saving through sleep control.

[0101] <Fourth embodiment> In the cyclic code sequence transmitted by relay station device 2, depending on the situation of the interfering station, there are cases where the signal is transmitted at the intended timing or where power exists in the air due to interference even though the code is supposed to be 0. For this reason, in this embodiment, even when the bit has changed due to interference from a neighboring station, bit errors are detected and if the number of error bits is below a predetermined number, the system is activated.

[0102] Fig. 14 is a diagram for explaining the processing of this embodiment. Fig. 14 shows an example of an activation signal transmitted from relay station device 2 to terminal station device 3. The activation signal transmitted from relay station device 2 to terminal station device 3 is a cyclic code sequence, similar to the third embodiment.

[0103] 12, assume that the terminal station 3-1 receives the activation signal "111001" and the terminal station 3-2 receives the activation signal "100111." In this case, when the activation signal "111001" received by the terminal station 3-1 is divided by the generator polynomial G(x), the remainder is 0, and when the activation signal "100111" received by the terminal station 3-2 is divided by the generator polynomial G(x), the remainder is 0. When the remainder is 0 in the fixed-length calculation, the terminal station 3-1 and the terminal station 3-2 start transmitting transmission signals after starting up.

[0104] However, since this is a frequency band in which carrier sensing is performed, there is a possibility that a signal from a nearby interfering station may be transmitted when relay station device 2 is about to transmit or when 0 is assigned. Therefore, for example, if the presence of an interference signal exceeding an arbitrarily determined threshold is confirmed during carrier sensing of relay station device 2-1, relay station device 2-1 can infer that interference is also being applied to terminal station device 3-1.

[0105] If there is no interference, the generator polynomial G(x) is x 2 When you add +1 to the original "111001", the remainder when you divide it is "000000". If the signal is transmitted as is after interference is detected, the signal sequence that is expected to be received by the terminal station device 3-1 will be, for example, "111101," as shown in FIG. 14. The code g101 is an example of an interference signal. In this case, when divided by the generator polynomial G(x), the remainder "000001" is generated in the terminal station device 3-1. In this case, a one-bit error can be detected.

[0106] For this reason, in this embodiment, the terminal station device 3 detects bit errors and starts up by allowing the number of error bits to be equal to or less than a predetermined number, for example, one bit error.

[0107] (Terminal station device processing procedure) Next, an example of the processing procedure of the terminal station device 3 will be described. The processing procedure of the relay station device 2 is similar to, for example, the procedure of the first embodiment (FIG. 4), and the relay station device 2 repeatedly transmits a predetermined signal length. FIG. 15 is a flowchart showing the processing procedure of the terminal station device according to this embodiment.

[0108] (Step S51) The demodulator 35 demodulates and detects a signal using the carrier sense function.

[0109] (Step S52) The terminal processing unit 34 determines whether or not a signal of a predetermined signal length has been received. If the terminal processing unit 34 determines that a signal of a predetermined signal length has been received (step S52; YES), the terminal processing unit 34 proceeds to the processing of step S53. If the terminal processing unit 34 determines that a signal of a predetermined signal length has not been received (step S52; NO), the terminal processing unit 34 returns to the processing of step S51.

[0110] (Step S53) The device processing unit 34 divides the received activation signal by, for example, the generator polynomial G(x). After the process, the device processing unit 34 proceeds to the process of step S54.

[0111] (Step S54) The terminal processing unit 34 determines whether the result of the division is the allowable error number. If the terminal processing unit 34 determines that the result of the division is the allowable error number (step S54; YES), it proceeds to the processing of step S45. If the terminal processing unit 34 determines that the result of the division is not the allowable error number (step S54; NO), it returns to the processing of step S51.

[0112] (Step S55) The terminal processing unit 34 generates a transmission signal and transmits the generated transmission signal to the mobile collection station device 4 via the transmitter 33 and the antenna 31. After transmission, the terminal processing unit 34 controls, for example, its own unit, the transmitter 33, etc. to enter a sleep state.

[0113] In this manner, in this embodiment, bit errors are detected, and if the number of error bits is below a predetermined number, the error is tolerated and the system is activated.

[0114] As a result, according to this embodiment, interference resistance can be improved.

[0115] Fifth Embodiment As explained in the fourth embodiment, interference may occur with the activation signal. For example, depending on the situation of the interfering station, a signal may be transmitted at a timing intended by the relay station device 2, or power may be present in the air even though the code is supposed to be 0 due to interference. For this reason, in this embodiment, when the relay station device 2 detects interference, the terminal station device 3 changes the transmission signal sequence so that the expected calculation result is obtained.

[0116] FIG. 16 is a diagram for explaining an example of an interference signal and processing according to this embodiment.

[0117] Reference numeral g200 is an example of an activation signal including the interference signal of reference numeral g201. Reference numeral g210 is a diagram for explaining the processing of this embodiment. In this embodiment, relay station device 2 adds the remainder bits where interference (code g211) is suspected to the signal sequence (code g213) to be transmitted, for example, in the first cycle, using an exclusive OR, and changes the last bit from 1 to 0 (code g212). Furthermore, in this embodiment, in the second cycle signal (code g214), relay station device 2 starts transmission with a new cyclic code sequence by transmitting in the time slot where interference was detected. In this embodiment, the activation signal transmitted by the relay station device 2 may or may not be a cyclic code sequence.

[0118] (Relay station device processing procedure) Next, a description will be given of the processing procedure of the relay station device 2. Fig. 17 is a flowchart showing the processing procedure of the relay station device according to this embodiment.

[0119] (Step S61) When mobile collection station device 4, which is, for example, a low-orbit satellite, arrives above a data collection area, receiver 22 receives a terminal activation signal transmitted from mobile collection station device 4. Generator 25 detects, based on information stored in memory 27, that the terminal activation signal has been received.

[0120] (Step S62) The generation unit 25 generates a predetermined transmission signal sequence based on information stored in the storage unit 27, for example, when triggered by the reception of the terminal activation signal.

[0121] (Step S63) The modulation unit 26 performs on-off modulation on the generated predetermined transmission signal sequence.

[0122] (Step S64) The relay processing unit 24 determines whether or not an interference signal has been detected. If the relay processing unit 24 determines that an interference signal has been detected (step S64; YES), the process proceeds to step S65. If the relay processing unit 24 determines that an interference signal has not been detected (step S64; NO), the process proceeds to step S66.

[0123] (Step S65) The relay processing unit 24 performs a recalculation on the activation signal to generate a new cyclic code sequence. After the processing, the relay processing unit 24 returns to the processing of step S62.

[0124] (Step S66) Relay processing unit 24 determines whether or not the on-off modulated activation signal has been transmitted for a predetermined signal length. If relay processing unit 24 determines that the activation signal has been transmitted for the predetermined signal length (step S66; YES), it proceeds to the processing of step S67. If relay processing unit 24 determines that the activation signal has not been transmitted for the predetermined signal length (step S66; NO), it returns to the processing of step S63.

[0125] (Step S67) The relay processing unit 24 determines whether or not a terminal activation signal has been received from the mobile collection station device 4. If the relay processing unit 24 determines that a terminal activation signal has been received (step S67; YES), the relay processing unit 24 returns to the processing of step S63. If the relay processing unit 24 determines that a terminal activation signal has not been received (step S67; NO), the relay processing unit 24 ends the processing.

[0126] As described above, in this embodiment, when relay station device 2 detects interference, the transmission signal sequence is changed so that the terminal station device 3 side obtains the expected calculation result.

[0127] As a result, according to this embodiment, interference resistance can be improved.

[0128] Although an embodiment of the present invention has been described above in detail 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. [Industrial Applicability]

[0129] The present invention is applicable to a wireless communication system including IoT devices and mobile collection station devices. [Explanation of symbols]

[0130] 1, 1A, 1B, 1C... wireless communication system, 2, 2-1, 2-2, 2-3... relay station device, 3, 3-1, 3-2, 3-3... terminal station device, 4... mobile collection station device, 21... antenna, 22... receiving unit, 23... transmitting unit, 24... relay processing unit, 25... generating unit, 26... modulating unit, 27... memory unit, 31... antenna, 32... receiving unit, 33... transmitting unit, 34... terminal processing unit, 35... demodulating unit, 36... memory unit, 37... sensor, 41... receiving unit, 42... transmitting unit, 43... collection station processing unit, 44... memory unit

Claims

1. A mobile collection station device, one or more relay station devices, and one or more terminal station devices, the mobile collection station device transmits a terminal activation signal for activating the terminal station device at a second frequency different from a first frequency which is a transmission frequency of the terminal station device; when receiving the terminal activation signal from the mobile collection station device, the relay station device generates a predetermined transmission signal sequence, performs on-off modulation on the transmission signal sequence to generate a predetermined signal that is an activation signal, and transmits the predetermined signal at the first frequency; when the terminal station device receives the predetermined signal transmitted at the first frequency from the relay station device, the terminal station device starts up and then transmits a desired data signal at the first frequency to the mobile collection station device; the terminal station device does not have a receiving circuit for the second frequency; Wireless communication system.

2. the relay station device includes a first relay station device and a second relay station device; the terminal station device includes a first terminal station device and a second terminal station device; the first relay station device transmits the predetermined signal to the first terminal station device and notifies the second relay station device in the vicinity of the predetermined signal of a transmission timing; 2. The wireless communication system according to claim 1, wherein the first relay station device and the second relay station device control the timing of transmission of the desired data signal from the first terminal station device and the second terminal station device by shifting the transmission timing of the terminal activation signal that the second relay station device transmits to the second terminal station device.

3. 3. The wireless communication system according to claim 1, wherein the relay station device uses a cyclic code sequence for the predetermined signal, thereby controlling the terminal station device to be able to start up even if the start timing of detecting the predetermined signal is off.

4. 4. The wireless communication system according to claim 3, wherein said terminal station device detects the number of error bits in said received predetermined signal, and activates said terminal station device if the number of error bits is equal to or less than a predetermined number.

5. 2. The wireless communication system according to claim 1, wherein, when the relay station device detects interference in the predetermined signal, the relay station device changes a transmission pattern for the predetermined signal so that the same result is obtained at the terminal station device on the receiving side.

6. a terminal processing unit that, when receiving from a relay station device a predetermined signal of a first frequency for activating a terminal station device based on a terminal activation signal received from a mobile collection station device, activates the terminal station device and then transmits a desired data signal at the first frequency to the mobile collection station device; the frequency of the terminal activation signal is a second frequency different from a first frequency which is a transmission frequency of the terminal station device, the predetermined signal is a wake-up signal generated by the relay station device by generating a predetermined transmission signal sequence and performing on-off modulation on the transmission signal sequence, does not have a receiving circuit for the second frequency; Terminal station equipment.

7. A wireless communication method in a wireless communication system including a mobile collection station device, one or more relay station devices, and one or more terminal station devices, comprising: the mobile collection station device transmits a terminal activation signal for activating the terminal station device at a second frequency different from a first frequency which is a transmission frequency of the terminal station device; When the relay station device receives the terminal activation signal from the mobile collection station device, the relay station device generates a predetermined transmission signal sequence, performs on-off modulation on the transmission signal sequence to generate a predetermined signal that is an activation signal, and transmits the predetermined signal at the first frequency; when the terminal station device receives the predetermined signal transmitted at the first frequency from the relay station device, the terminal station device starts up and then transmits a desired data signal at the first frequency to the mobile collection station device; the terminal station device does not have a receiving circuit for the second frequency; Wireless communication method.

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