Relay device, control method, and program for forming beams to relay communications between base station device and terminal device

By outputting and reproducing the reference signal of the base station device in a wireless player or reflector, identifying and allocating the opportunity for signal transmission, the problem that the wireless player or reflector is difficult to identify and use signals suitable for terminal devices is solved, and the efficiency and coverage of signal transmission are improved.

JP7674192B2Active Publication Date: 2025-05-09KDDI CORP
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Patent Information

Application Number
JP2021133661
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-08-18
Publication Date
2025-05-09
Estimated Expiration
2041-08-18

AI Technical Summary

Technical Problem

In wireless reproducers or reflectors that do not require user data decoding, it is difficult to identify and use radiation beams suitable for signal transmission of the terminal device.

Method used

The appropriate radiation direction is determined by outputting and reproducing the reference signal regularly transmitted by the base station device in a wireless reproducer or reflector, and the opportunity for signal transmission is selected and allocated among multiple radiation directions.

Benefits of technology

It is realized that the radiation beam is transmitted in a wireless reproducer or reflector and used signals suitable for terminal devices, improving the efficiency and coverage of signal transmission.

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Abstract

To provide a relay device which is configured to output signals to a plurality of directions, while specifying a beam to be used for a communication with a terminal device, without decoding user data, and a control method and a program thereof.SOLUTION: A relay device for relaying communication between a base station device and a terminal device is configured to: relay a predetermined signal, transmitted by a base station device via a predetermined beam, by outputting the predetermined signal in a plurality of radio waves output directions without decoding user data; and select, from among the plurality of radio waves output directions, on the basis of timing of reception of a second predetermined signal from the terminal device, an output direction for outputting radio waves during signal transfer between the terminal device and the relay device. The relay device relays a predetermined signal, transmitted by means of a predetermined beam in a first time slot, in a first direction among the plurality of radio waves output directions, and relays a predetermined signal transmitted by means of the predetermined beam in a second time slot in a second direction among the plurality of radio waves output directions.SELECTED DRAWING: Figure 5
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Description

[Technical field]

[0001] The present invention relates to a relay transmission technique for relaying a radio signal without decoding processing of user data. [Background technology]

[0002] In mobile communications, wireless repeaters are used to expand the communication area. A wireless repeater amplifies the received signal (and converts the frequency as necessary) before sending it out, enabling a signal transmitted by a base station device, for example, to reach a distant location or an area where radio waves are difficult to reach, such as behind a building. Note that a reflector can be used instead of a wireless repeater for areas such as behind a building.

[0003] A base station device can generally be configured to form multiple beams to provide a sufficiently high-speed communication service to terminal devices within the area. In this case, the wireless repeater receives and transmits a signal transmitted by one of the multiple beams formed by the base station device. On the other hand, in this case, if the wireless repeater relays using an omnidirectional antenna, the area expansion effect may be insufficient due to insufficient gain due to relaying. For this reason, it is assumed that the wireless repeater will form multiple beams each oriented in a different direction to relay the signal. Also, when a reflector is used, it is important to appropriately set the direction in which the signal is reflected. Note that the reflector can change the direction in which the signal is reflected by changing the physical orientation, but by using a metamaterial reflector (see Non-Patent Document 1), radio waves can be reflected in various directions without changing the physical orientation. [Prior art documents] [Non-patent literature]

[0004] [Non-Patent Document 1] Shimin Gong, et al., “Toward Smart Wireless Communications via Intelligent Reflecting Surfaces: A Contemporary Survey”, IEEE COMMUNICATIONS SURVEYS & TUTORIALS, VOL. 22, NO. 4, 2020. Summary of the Invention [Problem to be solved by the invention]

[0005] When a wireless repeater or reflector can transmit radio waves in multiple directions as described above, it is important that relay devices such as wireless repeaters and reflectors that do not perform decoding of user data identify and use a beam suitable for relaying communications of terminal devices. [Means for solving the problem]

[0006] The present invention provides a technique for identifying a beam to be used for communication with a terminal device in a relay device that is capable of outputting signals in multiple directions and does not perform decoding processing of user data.

[0007] A relay device according to one aspect of the present invention is a relay device that relays communication between a base station device and a terminal device, The relay device includes a relay means for relaying a predetermined signal transmitted by a base station device via a predetermined beam by outputting it in a plurality of radio wave output directions without decoding user data, a control means for controlling the relay means so that the predetermined signal transmitted in a first time slot by the predetermined beam is relayed in a first direction among the plurality of radio wave output directions and the predetermined signal transmitted in a second time slot by the predetermined beam is relayed in a second direction among the plurality of radio wave output directions, and a selection means for selecting an output direction for outputting radio waves in signal transmission between the terminal device and the relay device from among the plurality of radio wave output directions based on a timing at which a second predetermined signal is received from the terminal device. Effect of the Invention

[0008] According to the present invention, in a relay device capable of outputting signals in multiple directions and not performing decoding processing of user data, it is possible to identify a beam to be used for communication with a terminal device. [Brief description of the drawings]

[0009] [Figure 1] FIG. 1 is a diagram illustrating an example of the configuration of a wireless communication system. [Diagram 2] FIG. 1 is a diagram outlining a method for relaying a reference signal. [Diagram 3] 11 is a diagram outlining a process for determining a radio wave output direction to be used for relaying; [Figure 4] FIG. 2 illustrates an example of the configuration of a relay device. [Diagram 5] FIG. 11 is a diagram illustrating an example of a flow of processing executed by a relay device. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0010] Hereinafter, the embodiments will be described in detail with reference to the accompanying drawings. Note that the following embodiments do not limit the invention according to the claims, and not all combinations of features described in the embodiments are essential to the invention. Two or more features among the multiple features described in the embodiments may be arbitrarily combined. In addition, the same reference numbers are used for the same or similar configurations, and duplicated descriptions are omitted.

[0011] (Communication System Configuration) FIG. 1 shows an example of the configuration of a wireless communication system according to this embodiment. This wireless communication system is a relay communication system in which a relay device 121 relays communication between a base station device 101 and a terminal device 141. In this wireless communication system, the base station device 101 forms a plurality of beams 111-113 to transmit signals, and the relay device 121 relays a signal received through any one of the beams to the terminal device 141. The relay device 121 can set a plurality of radio wave output directions 131-133 and can output a received signal toward at least any one of the plurality of radio wave output directions 131-133. In one example, the relay device 121 is a wireless repeater and is configured to amplify and output a received signal. In this case, the relay device 121 can be configured to form a plurality of beams directed toward a plurality of radio wave output directions 131-133 using, for example, a plurality of antennas, and relay using the beams. In another example, the relay device 121 can be a reflector. The relay device 121 may be configured to physically change its orientation and reflect and output radio waves toward each of a plurality of radio wave output directions 131 to 133. The relay device 121 may also be a metamaterial reflector. The metamaterial reflector is, for example, a reflector in which a large number of passive elements are arranged in an array and the phases of the large number of passive elements are simultaneously controlled, so that the incident radio waves can be reflected in any direction without physical attitude control of the reflector. Details are described in Non-Patent Document 1, and therefore the description here is omitted. When the relay device 121 is a reflector, the incident signal is not amplified.

[0012] The relay device 121 simply forwards signals between the base station device 101 and the terminal device 141 without performing any decoding processing on the user data. As a result, the base station device 101 and the terminal device 141 perform the same communication processing as if they were directly connected to each other.

[0013] When the relay device 121 is not present, the terminal device 141 measures a predetermined signal, such as a reference signal, transmitted in each of a plurality of beams formed by the base station device 101, and selects a beam based on the wireless quality. Then, the terminal device 141 can connect to the base station device 101 via the beam by transmitting a random access preamble in the frequency / time resource corresponding to the beam. After connecting to the base station device 101, the terminal device 141 can transmit, at any timing, identification information of the beam with the strongest reception power, for example.

[0014] Here, if the relay device 121 exists, the relay device 121 will relay communication related to one of the beams formed by the base station device 101. Therefore, in one example, the terminal device 141 will receive a predetermined signal of only one beam relayed by the relay device 121 and will attempt a connection using that beam. On the other hand, even if the relay device 121 can output signals from the base station device 101 in multiple directions, it can only output the signals sent from the base station device 101 and cannot transmit reference signals corresponding to each of the multiple directions, for example. Therefore, as for the frequency / time resource for the terminal device 141 to transmit a random access preamble, the one corresponding to the beam relayed by the relay device 121 is used, and it is not possible to specify which of the radio wave output directions 131 to 133 should be used for signal transmission between the relay device 121 and the terminal device 141.

[0015] In this embodiment, in consideration of such circumstances, a technique is provided that enables the relay device 121 to specify a radio wave output direction (beam or reflection direction) for signal transmission between the relay device 121 and the terminal device 141. The relay device 121 is configured to output and relay a predetermined signal, such as a reference signal, repeatedly transmitted by the base station device 101 using a predetermined beam, in each of a plurality of radio wave output directions. At this time, the relay device 121 assigns an opportunity to relay the predetermined signal separately to each of the plurality of radio wave output directions. That is, the relay device 121 outputs a predetermined signal transmitted in a first time slot in the first radio wave output direction, and outputs a predetermined signal transmitted in a second time slot different from the first time slot in the second radio wave output direction different from the first radio wave output direction.

[0016] FIG. 2 shows an outline of how the relay device 121 relays a predetermined signal (reference signal) transmitted from the base station device 101. As shown in FIG. 2, the base station device 101 transmits a reference signal at a fixed time interval. When the base station device 101 forms a plurality of beams, it transmits a reference signal using each of the plurality of beams. Then, the relay device 121 processes, for example, a reference signal having the strongest reception power among them. That is, when the base station device 101 transmits a reference signal using each of the plurality of beams, the relay device 121 selects a beam having a good wireless quality in light of a predetermined criterion (for example, a wireless quality that satisfies a criterion such as the best wireless quality or exceeding a predetermined quality threshold), among the plurality of beams, and amplifies and transmits or reflects the reference signal transmitted using the selected beam as a subject of the following processing. The relay device 121 relays a reference signal arriving from the base station device 101 at different timings in each of a plurality of radio wave output directions in which the relay device can output (emit or reflect) radio waves. 2 shows an example in which the relay device 121 relays the reference signal received the first time in a first direction, the reference signal received the second time in a second direction, and the reference signal received the third time in a third direction. In this way, the relay device 121 relays the reference signal according to the timing at which the reference signal is received, but relays the reference signal in only one direction for each relay opportunity. Note that this is just one example, and the reference signal may be relayed at the same relay opportunity to a plurality of grouped directions (however, to a portion of the configurable radio wave output directions).

[0017] Then, when the terminal device of this embodiment establishes a connection with the base station device 101, for example, the terminal device transmits a random access preamble within a predetermined period after receiving a reference signal stronger than a predetermined power. The frequency and time resources to which the random access preamble is transmitted are frequency and time resources for transmitting the random access preamble, which are formed by the base station device 101 and set for a beam whose communication is relayed by the relay device 121. Similarly, the terminal device transmits information indicating the identification information of the beam from which the reference signal was received with the strongest power during the connection with the base station device 101, for example, within a predetermined period after receiving the reference signal with the strongest power. The beam identification information of the source of the reference signal here is the identification information of the beam formed by the base station device 101 that is the target of relay by the relay device 121. That is, the relay device 121 only relays the signal transmitted by the base station device 101, and does not attach beam identification information for each of the multiple beams formed by the relay device 121.

[0018] For example, as shown in FIG. 3, the period from when the relay device 121 outputs a reference signal in a first direction to just before it outputs a reference signal in a second direction is associated with the first direction. Similarly, the period from when the relay device 121 outputs a reference signal in a second direction to just before it outputs a reference signal in a third direction is associated with the second direction, and the period from when the relay device 121 outputs a reference signal in a third direction to just before it outputs a reference signal in a first direction is associated with the third direction. In this way, a separate period corresponds to each of the multiple radio wave output directions, and the relay device 121 may specify the radio wave output direction to be used in communication with the relay device 121 based on the period that includes the timing when the terminal device 141 transmitted a signal. In the example of FIG. 3, since the terminal device 141 transmits a random access preamble in the period corresponding to the second direction, the relay device 121 may determine to use the second radio wave output direction in communication between the terminal device 141 and the base station device 101. The relationship between each radio wave output direction and the engine may be configured differently from that in the example of FIG.

[0019] The above-mentioned process may be performed separately for multiple terminal devices. That is, when relaying communication between the base station device 101 and multiple terminal devices, the relay device 121 may determine the radio wave output direction to be used for each of the terminal devices. In addition, in order to perform such a process, the relay device 121 may have a function for identifying the terminal device. For example, the relay device 121 may demodulate physical layer information from a signal sent from the terminal device (without decoding user data) to obtain information that can identify the terminal device, such as a radio network temporary identifier (RNTI). Then, the relay device 121 may perform the above-mentioned process for each terminal device based on the identified information, and determine the radio wave output direction to be used.

[0020] As described above, when multiple directions for outputting radio waves can be set in relay device 121, it becomes possible to relay communication of the terminal device in a direction suitable for the terminal device. Note that, in this embodiment, the relay device 121 mainly relays a signal from base station device 101 to terminal device 141, but it goes without saying that relay device 121 can also relay a signal transmitted from terminal device 141 to base station device 101.

[0021] (Device configuration) Next, the configuration of the relay device 121 that performs the above-mentioned processing will be described with reference to Fig. 4. The relay device 121 includes a relay circuit 401 and a controller 402, for example.

[0022] The relay circuit 401 is configured to include, for example, an amplifier and a frequency converter for performing non-regenerative relay. In this case, the relay circuit 401 includes, for example, a plurality of antennas, and has a function of multiplying the signals output from each of the antennas by an antenna weight and outputting the signals to each of a plurality of settable radio wave output directions. The relay circuit 401 may also be, for example, a reflector, and has a function of setting the reflection direction of the radio wave by the reflector to one of a plurality of radio wave output directions. For example, the relay circuit 401 may have a function of physically changing the orientation of the reflector so that the radio wave is reflected to each of a plurality of settable radio wave output directions. The relay circuit 401 may also be a metamaterial reflector with a fixed orientation of the reflector. In this case, the relay circuit 401 has a function of reflecting the radio wave to each of a plurality of settable radio wave output directions by phase control in a large number of passive elements in the reflector, etc.

[0023] The controller 402 executes control to determine the radio wave output direction used for signal transmission between the base station device 101 and the terminal device 141 when relaying a predetermined signal such as a reference signal as described above, and when relaying other signals from the base station device 101 or the terminal device 141, and to store information about the direction. The controller 402 may also demodulate an incoming signal in the physical layer, for example, to obtain information for identifying the terminal device. When the radio wave output direction is determined as described above, the controller 402 may store information for identifying the terminal device in association with information that can specify the radio wave output direction. When the terminal device communicates with the controller 402, the controller 402 may control the relay circuit 401 to relay a signal in the radio wave output direction associated with the terminal device. The controller 402 is, for example, a computer composed of one or more processors and one or more memories, and executes the processes by executing a program stored in the memory by the processor.

[0024] The relay device 121 can be configured to receive power from, for example, an external commercial power source (not shown), and the relay circuit 401 and the controller 402 can be configured to operate using that power. Therefore, even if the reflector performs processing such as demodulating the physical layer of the received signal, it is possible to prevent the power of the relayed signal from being reduced.

[0025] (Processing flow) Next, an example of the flow of a process for determining a direction to be used for relaying performed by the relay device 121 will be outlined with reference to FIG. 5. This process may be started, for example, when power supply to the relay device 121 is started. First, the relay device 121 performs initial settings such as resetting the target of the radio wave output direction (i=1) (S501), and then waits for a predetermined signal such as a reference signal to arrive from the base station device 101 (S502). Note that the relay device 121 may specify, for example, a beam corresponding to a reference signal with the strongest reception power as a relay target based on a predetermined signal such as a reference signal transmitted in each of a plurality of beams formed by the base station device 101. Note that the relay device 121 simply amplifies or reflects a received signal and outputs it, so it may also relay signals transmitted from beams other than the specified beam, but in S502, it waits for a reference signal of the specified beam.

[0026] When the relay device 121 receives a predetermined signal such as a reference signal (e.g., transmitted by a beam specified as a relay target) (YES in S502), the relay device 121 relays the predetermined signal to the i-th radio wave output direction (S503). Then, the relay device 121 judges whether or not a second predetermined signal such as a random access preamble or a signal indicating identification information of a beam with the strongest reception power has been received from a terminal device within a predetermined period corresponding to the i-th radio wave output direction (NO in S505) (S504). If the relay device 121 does not receive a second predetermined signal within the predetermined period (NO in S504, YES in S505), the relay device 121 judges whether or not a predetermined signal such as a reference signal has been relayed to all settable directions (S506). If the relay device 121 has relayed the predetermined signal to all settable directions (YES in S506), the process returns to S501. If there is a direction in which the predetermined signal has not been relayed (NO in S506), the relay device 121 changes the relay direction of the predetermined signal (S507) and returns to S502. On the other hand, if the relay device 121 receives a second specified signal within the specified period (YES in S504), it determines the direction in which the specified signal, such as a reference signal, was output in S503 as the direction to be used when relaying communication of the terminal device 141 (YES in S508), and terminates the processing.

[0027] In this way, the relay device 121 can determine a radio wave output direction suitable for relaying the communication of the terminal device. After that, the relay device 121 relays the communication between the base station device 101 and the terminal device 141 according to the determined direction. Note that the relay device 121 can repeat the process shown in Fig. 5 at predetermined intervals. This makes it possible to relay the communication using an appropriate radio wave output direction even if a change in the situation occurs, such as the movement of the terminal device 141.

[0028] The radio wave output direction is the direction from relay device 121 to terminal device 141, but it can also be used when receiving radio wave input from terminal device 141 and relaying the signal toward base station device 101. That is, the above-mentioned radio wave output direction can be understood as a radio wave input / output direction. Also, the predetermined signal transmitted by base station device 101 is not limited to a reference signal, and may be another signal such as a synchronization signal.

[0029] The invention is not limited to the above-described embodiment, and various modifications and variations are possible within the scope of the gist of the invention.

Claims

1. A relay device that relays communication between a base station device and a terminal device, a relay means for relaying a predetermined signal transmitted by a base station device through a predetermined beam by outputting the predetermined signal in a plurality of radio wave output directions without decoding user data; a control means for controlling the relay means so that the predetermined signal transmitted in a first time slot by the predetermined beam is relayed in a first direction among the plurality of radio wave output directions, and the predetermined signal transmitted in a second time slot by the predetermined beam is relayed in a second direction among the plurality of radio wave output directions; a selection means for selecting, based on a timing at which a second predetermined signal is received from the terminal device, from among the plurality of radio wave output directions, a direction in which radio waves are output in signal transmission between the terminal device and the relay device; A relay device comprising:

2. the relay device is a wireless repeater, the relay means amplifies a signal from the base station device and relays the signal by transmitting the signal in at least one of the plurality of radio wave output directions.

2. The relay device according to claim 1 .

3. The relay device is a reflector, the relay means relays a signal from the base station device by reflecting it in at least one of the multiple radio wave output directions.

2. The relay device according to claim 1 .

4. 4. The relay device according to claim 3, wherein the reflector is a metamaterial reflector.

5. each of the plurality of radio wave output directions is associated with a different time period; The relay device according to any one of claims 1 to 4, characterized in that the selection means selects an output direction for outputting radio waves in signal transmission between the terminal device and the relay device from among the multiple radio wave output directions based on the relationship between the timing of receiving a second specified signal from the terminal device and the period.

6. An identification means for identifying the terminal device, The selection means selects the output direction for each of the terminal devices.

6. The relay device according to claim 5,

7. The relay device according to any one of claims 1 to 6, characterized in that the second predetermined signal is a random access preamble transmitted in a frequency / time resource corresponding to the predetermined beam.

8. 7. The relay device according to claim 1, wherein the second predetermined signal is a signal including identification information for identifying the predetermined beam.

9. A control method executed by a relay device that relays communication between a base station device and a terminal device, comprising: relaying a predetermined signal transmitted by the base station device through a predetermined beam in a plurality of radio wave output directions without decoding user data; selecting an output direction for outputting radio waves in signal transmission between the terminal device and the relay device from among the plurality of radio wave output directions based on a timing of receiving a second predetermined signal from the terminal device; Including, In relaying the predetermined signal, relaying the predetermined signal transmitted in a first time slot by the predetermined beam in a first direction among the plurality of radio wave output directions; relaying the predetermined signal transmitted in a second time slot by the predetermined beam in a second direction among the plurality of radio wave output directions; A control method comprising:

10. A computer provided in a relay device that relays communication between a base station device and a terminal device, relaying a predetermined signal transmitted by a base station device through a predetermined beam in a plurality of radio wave output directions without decoding user data; a program for selecting an output direction for outputting radio waves in signal transmission between the terminal device and the relay device from among the plurality of radio wave output directions based on a timing of receiving a second predetermined signal from the terminal device, In the relay, relaying the predetermined signal transmitted in a first time slot by the predetermined beam in a first direction among the plurality of radio wave output directions; relaying the predetermined signal transmitted in a second time slot by the predetermined beam in a second direction among the plurality of radio wave output directions; Program for.

Citation Information

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