Optical communication system, base station device, and management device

The optical communication system addresses the challenge of constructing seamless underwater coverage by employing movable base station devices and a management device for dynamic positioning, ensuring complete coverage without blind spots.

JP7801479B2Active Publication Date: 2026-01-16KYOCERA CORP
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Patent Information

Application Number
JP2024552962
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-10-26
Filing Date
2023-10-13
Publication Date
2026-01-16
Estimated Expiration
2043-10-13

AI Technical Summary

Technical Problem

Conventional optical communication systems face challenges in constructing underwater coverage areas without blind spots, as existing techniques do not effectively arrange multiple base station devices to prevent coverage holes.

Method used

An optical communication system with movable base station devices and a management device that allows for the dynamic positioning and arrangement of base station devices using a control unit and movement mechanisms, enabling the construction of a seamless underwater optical communication coverage area.

Benefits of technology

The system enables the smooth construction of an underwater optical communication coverage area by allowing base station devices to be positioned and maintained at arbitrary locations, eliminating blind spots and facilitating efficient communication with mobile terminal devices.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided is a system that performs optical communication underwater. This optical communication system comprises a base station device that performs optical communication with an underwater terminal device, and a movement mechanism that is provided to or connected to the base station device. The movement mechanism causes the base station device to move on the water and / or underwater.
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Description

[Technical Field]

[0001] The present disclosure relates to an optical communication system, a base station device, and a management device. [Background technology]

[0002] For example, optical communication systems that use light (especially visible light) as a transmission medium for underwater communication are known. Because light has high directivity, conventional optical communication systems generally perform one-to-one communication by placing the transmitter and receiver facing each other, assuming that the optical communication devices on each side are fixed. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 4-103232 Summary of the Invention

[0004] An optical communication system according to a first aspect is a system for performing optical communication underwater. The optical communication system includes a base station device that performs optical communication with an underwater terminal device, and a mobile mechanism provided in or connected to the base station device. The mobile mechanism moves the base station device on the water surface and / or underwater.

[0005] The base station device according to the second aspect is a base station device used in an optical communication system, and comprises an optical communication unit that performs optical communication with an underwater terminal device, and a movement mechanism that moves the base station device on the water surface and / or underwater.

[0006] The management device of the third aspect is a management device used in an optical communication system, and includes a communication unit that communicates with a base station device that performs optical communication with an underwater terminal device, and a control unit that determines the placement position of the base station device and notifies the base station device of instruction information that specifies the placement position. [Brief explanation of the drawings]

[0007] [Figure 1] 1 is a diagram illustrating a configuration example of an optical communication system according to an embodiment. [Figure 2] 1 is a diagram illustrating a transmission operation in an uplink (UL) of a terminal device according to an embodiment. FIG. [Figure 3] FIG. 2 is a diagram illustrating an example of a block configuration of a base station device according to an embodiment. [Figure 4] 1 is a diagram illustrating an example of the external configuration of an optical communication unit of a base station device according to an embodiment. [Figure 5] 10 is a diagram illustrating a first modified example of the external configuration of the optical communication unit of the base station device according to the embodiment. FIG. [Figure 6] FIG. 10 is a diagram illustrating a second modified example of the external configuration of the optical communication unit of the base station device according to the embodiment. [Figure 7] FIG. 2 is a diagram illustrating an example of a block configuration of a terminal device according to an embodiment. [Figure 8] FIG. 1 is a diagram illustrating an example of the external configuration of a terminal device according to an embodiment. [Figure 9] FIG. 10 is a diagram showing a first modified example of the external configuration of the terminal device according to the embodiment. [Figure 10] FIG. 10 is a diagram showing a second modified example of the external configuration of the terminal device according to the embodiment. [Figure 11] FIG. 1 is a diagram illustrating downlink (DL) communication as an example of optical communication according to an embodiment. [Figure 12] 1 is a diagram illustrating an example of the configuration of a communication frame used in an optical communication system according to an embodiment. [Figure 13] FIG. 2 is a diagram illustrating an example of a block configuration of a management device according to an embodiment. [Figure 14] FIG. 10 is a diagram illustrating an example of the operation of a management device according to an embodiment. [Figure 15] FIG. 10 is a diagram illustrating an example of the operation of a management device according to an embodiment. [Figure 16] FIG. 10 is a diagram illustrating an example of the operation of a management device according to an embodiment. [Figure 17] FIG. 10 is a diagram illustrating an example of the operation of a management device according to an embodiment. [Figure 18] FIG. 10 is a diagram illustrating an example of the operation of a management device according to an embodiment. [Figure 19] FIG. 10 is a diagram illustrating a first example of an operation flow of the management device according to the embodiment. [Figure 20] FIG. 10 is a diagram illustrating a second example of the operation flow of the management device according to the embodiment. [Figure 21] FIG. 10 is a diagram illustrating a first modified example of the operation of the optical communication system according to the embodiment. [Figure 22] FIG. 10 is a diagram for explaining a second modified example of the operation of the optical communication system according to the embodiment. [Figure 23] FIG. 10 is a diagram illustrating a third modified example of the operation of the optical communication system according to the embodiment. [Figure 24] FIG. 10 is a diagram illustrating a modified example of the configuration of the optical communication system according to the embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0008] It is expected that future optical communication systems will realize optical communication between terminal devices and base station devices, similar to radio wave wireless communication on land. In such optical communication systems, a coverage area will be constructed underwater by the communication areas formed by multiple base station devices, and terminal devices within the coverage area will perform optical communication with the base station devices.

[0009] However, conventional technology does not provide a technique for appropriately arranging multiple base station devices to prevent blind spots (coverage holes) from occurring within an underwater coverage area, making it difficult to build an underwater optical communication coverage area.

[0010] Therefore, an object of the present disclosure is to provide an optical communication system, a base station device, and a management device that enable smooth construction of an underwater optical communication coverage area.

[0011] An optical communication system according to an embodiment will be described with reference to the drawings. In the drawings, identical or similar parts are denoted by identical or similar reference numerals. The optical communication system according to the embodiment is a system that performs optical communication underwater using visible light as an example of light. However, the optical communication system may also be a system that performs optical communication using light other than visible light, for example, infrared light. Note that underwater refers to, for example, the ocean, a lake, a river, or the like.

[0012] (Example of optical communication system configuration) 1 is a diagram showing an example of the configuration of an optical communication system 1 according to this embodiment. The optical communication system 1 includes a plurality of terminal devices 100 (100a to 100c), a plurality of base station devices 200 (200a to 200c), and a management device 300. However, the number of terminal devices 100 and the number of base station devices 200 are not limited to those shown in the example.

[0013] Each terminal device 100 is an example of an optical communication device. Each terminal device 100 is underwater. Each terminal device 100 is configured to be able to move underwater. For example, each terminal device 100 may be a self-propelled device such as an underwater robot or an underwater drone. The terminal device 100 connects to one of the base station devices 200 and performs optical communication with the connected base station device 200 (serving base station).

[0014] Each terminal device 100 has a plurality of light receiving and emitting units whose optical axes (or, from another perspective, the directivity of optical communication) are oriented in different directions. This allows each terminal device 100 to use light as a transmission medium and perform optical communication in various ways (all directions) using the plurality of light receiving and emitting units.

[0015] Each terminal device 100 may include a sensor such as an image sensor and generate sensor data. For example, each terminal device 100 may transmit uplink (UL) data including the sensor data to the base station device 200 (serving base station) by optical communication. Each terminal device 100 may receive downlink (DL) data including instruction data from the base station device 200 (serving base station) by optical communication. The terminal device 100 may move and perform a sensing operation (such as taking a photograph) based on the instruction data.

[0016] Each base station device 200 is another example of an optical communication device. In order to establish a wide coverage area underwater, multiple base station devices 200 are arranged at horizontal intervals. Each base station device 200 may be temporarily installed, for example, during the period when underwater surveys are conducted using each terminal device 100. In FIG. 1, the communication area of ​​each base station device 200 is indicated by a dashed line. The communication area of ​​each base station device 200 is also referred to as a cell. Each base station device 200 is configured to be movable on the water surface and / or underwater. Furthermore, each base station device 200 is configured to be able to measure (i.e., locate) its own position.

[0017] Each base station device 200 has a main body unit 203, an optical communication unit 205, and a connecting member 207. The main body unit 203 has a floating member and is located near the water surface. The main body unit 203 may be disposed on the upper surface of the floating member and located above the water. The main body unit 203 is configured to be movable horizontally on the water surface. The main body unit 203 may be suspended from the floating member and located underwater. In this case, each antenna of the base station device 200 (for example, an antenna for backhaul communication and / or an antenna for positioning) may be provided on the floating member.

[0018] The main unit 203 is communicably connected to the network 10 via a backhaul line. The backhaul line may be a wireless line. The backhaul line may be a wired line. In this embodiment, an example in which the backhaul line is a wireless line will be mainly described. The main unit 203 performs wireless communication using radio waves with the network 10. The main unit 203 may perform inter-base station communication with other base station devices 200 via the network 10.

[0019] The optical communication unit 205 is disposed below the main body unit 203 and forms a communication area for optical communication. The optical communication unit 205 has a plurality of light receiving and emitting units whose optical axes are oriented in different directions. In this embodiment, the optical communication unit 205 has a spherical housing, and a plurality of light receiving and emitting units are arranged in an array on the surface of the spherical housing. This allows the optical communication unit 205 to use light as a transmission medium and perform optical communication in various ways (all directions) using the plurality of light receiving and emitting units.

[0020] The connecting member 207 is a member that connects the main body unit 203 and the optical communication unit 205. The connecting member 207 may include a member that can be wound up and pulled out, such as a rope and / or a cable. The rope may be a wire rope. The optical communication unit 205 is suspended from the main body unit 203 via the connecting member 207.

[0021] The optical communication unit 205 is configured to be movable in the vertical direction. For example, the main body unit 203 or the optical communication unit 205 is provided with a mechanism for winding and unwinding the connecting member 207. The mechanism may include an electric winch. In the following embodiment, an example in which the mechanism is provided in the main body unit 203 will be mainly described.

[0022] In the illustrated example, each base station device 200 has only one optical communication unit 205. However, each base station device 200 may have multiple optical communication units 205. For example, one optical communication unit 205 may be arranged below another optical communication unit 205, and the one optical communication unit 205 and the other optical communication unit 205 may be connected via a connecting member 207.

[0023] Each base station device 200 selects its own light receiving and emitting unit corresponding to the direction of the terminal device 100 connected to it, and uses the selected light receiving and emitting unit to perform optical communication with the terminal device 100. Similarly, the terminal device 100 selects its own light receiving and emitting unit corresponding to the direction of the base station device 200 that is its own serving base station (destination base station device), and performs optical communication with the base station device 200 using the selected light receiving and emitting unit.

[0024] Each base station device 200 (each optical communication unit 205) may transmit its own unique synchronization optical signal and / or reference optical signal in all directions from all light receiving and emitting units. The terminal device 100 may identify the direction of the base station device 200 based on these optical signals, identify its own light receiving and emitting unit corresponding to that direction, and perform optical communication with the base station device 200 using the identified light receiving and emitting unit.

[0025] The management device 300 is a device that manages each base station device 200. The management device 300 is connected to a network 10 and communicates with each base station device 200 via the network 10. The network 10 may include the Internet. In this embodiment, an example in which the management device 300 is a server device provided on the Internet will be mainly described.

[0026] However, the management device 300 may be provided in any of the base station devices 200 operating as a master (host) and may be a device that manages each base station device 200 through inter-base station communication. Alternatively, the management device 300 may be a device that performs direct wireless communication with each base station device 200 without going through the network 10.

[0027] FIG. 2 is a diagram schematically showing a transmission operation in the UL of the terminal device 100 according to this embodiment.

[0028] In each terminal device 100, for example, a plurality of light receiving and emitting units 101 (light receiving and emitting units 101a, 101b, ...) are arranged in a transparent housing 150, and the light receiving and emitting units 101 perform optical communication with the base station device 200 via the housing 150. The plurality of light receiving and emitting units 101 are arranged in an array along the curved inner surface of the housing 150, and each has its optical axis directed in a different direction. For example, the optical axis of each light receiving and emitting unit 101 is directed in the normal direction to the curved surface of the housing 150. The optical communication unit 205 of each base station device 200 may be configured in a similar manner. Light has high directionality, and such a configuration makes it possible to perform optical communication in various directions.

[0029] (Configuration example of base station device) 3 is a diagram showing an example of a block configuration of a base station device 200 according to this embodiment. As described above, the base station device 200 includes a main body unit 203, an optical communication unit 205, and a connecting member 207. The base station device 200 may include a battery for supplying power necessary for the operation of the base station device 200.

[0030] The optical communication unit 205 has a plurality of light receiving and emitting units 201 (201#0, 201#1, . . . ).

[0031] The multiple light receiving and emitting units 201 are arranged with their optical communication directivities (optical axes) facing in different directions. Each light receiving and emitting unit 201 performs optical communication (visible light communication in this embodiment) with the terminal device 100 under the control of the control unit 230. Each light receiving and emitting unit 201 has a light receiving unit 210 and a light emitting unit 220. Since each light receiving and emitting unit 201 has the same configuration, the configuration of light receiving and emitting unit 201#0 will be described here.

[0032] The light receiving unit 210#0 of the light receiving and emitting unit 201#0 receives an optical signal (a visible light signal in this embodiment) from the terminal device 100 and outputs the received signal to the control unit 230. The light receiving unit 210#0 has at least one light receiving element 211#0 and a receiver 212#0. The light receiving element 211#0 may include a photodiode (PD) and its peripheral circuitry. The light receiving element 211#0 receives the optical signal, converts the received optical signal into an electrical signal (received signal), and outputs the received signal to the receiver 212#0. The optical axis of the light receiving element 211#0 is oriented in a predetermined direction different from the optical axis of the other light receiving elements 211 (for example, the light receiving element 211#1). The receiver 212#0 may be configured using an FPGA (Field Programmable Gate Array) and / or an SoC (System-on-a-Chip). The receiver 212#0 converts the received signal output by the light receiving element 211#0, performs signal processing on the converted received signal, and outputs the processed signal to the control unit 230. At least a part of the receiver 212#0 may be integrated with another receiver 212 (for example, the receiver 212#1). At least a part of the receiver 212#0 may be integrated with the transmitter 222.

[0033] The light emitting unit 220#0 of the light receiving / emitting unit 201#0 transmits an optical signal (in this embodiment, a visible light signal) to the terminal device 100 under the control of the control unit 230. The light emitting unit 220#0 has at least one light emitting element 221#0 and a transmitter 222#0. The light emitting element 221#0 may include a laser diode (LD) or a light emitting diode (LED) and its peripheral circuitry. The light emitting element 221#0 converts an electrical signal (transmission signal) output by the transmitter 222#0 for optical communication into an optical signal and transmits the optical signal. The optical axis of the light emitting element 221#0 is oriented in a predetermined direction different from the optical axes of other light emitting elements 221 (e.g., light emitting element 221#1). However, the optical axis of the light emitting element 221#0 is oriented in the same direction as the optical axis of the corresponding light receiving element 211#0. The transmitter 222#0 may be configured using an FPGA and / or an SoC. The transmitter 222#0 performs signal processing on a transmission signal output by the control unit 230, converts the processed signal, and outputs it to the light-emitting element 221#0. At least a part of the transmitter 222#0 may be integrated with another transmitter 222 (for example, the transmitter 222#1). At least a part of the transmitter 222#0 may be integrated with the receiver 212.

[0034] The main body unit 203 has a control unit 230, a backhaul communication unit 240, a movement mechanism 260, and a positioning unit 270. The main body unit 203 may further have a turbidity sensor 281 and an illuminance sensor 282. However, at least one of these functional blocks may be provided on the optical communication unit 205 side, rather than on the main body unit 203 side. At least one of these functional blocks may be provided separately in the main body unit 203 and the optical communication unit 205.

[0035] The control unit 230 controls the overall operation of the base station device 200. The above-mentioned operation of the base station device 200 and the operation of the base station device 200 described below may be controlled by the control unit 230. For example, the control unit 230 controls a plurality of light receiving and emitting units 201. The control unit 230 includes at least one processor 231 and at least one memory 232. The memory 232 stores programs executed by the processor 231 and information used in processing by the processor 231. The processor 231 may include a digital signal processor and a CPU (Central Processing Unit). The digital signal processor performs modulation, demodulation, encoding, decoding, etc. of digital signals. The CPU executes programs stored in the memory to perform various processes. At least a portion of the control unit 230 may be integrated with the receiver 212. At least a portion of the control unit 230 may be integrated with the transmitter 222.

[0036] The backhaul communication unit 240 performs backhaul communication via a backhaul line under the control of the control unit 230. The backhaul communication unit 240 may have a network communication unit 241 that communicates with the network 10 and an inter-base station communication unit 242 that performs inter-base station communication with adjacent base stations. For example, the network communication unit 241 receives data to be transmitted to the terminal device 100 from the network 10 and outputs the received data to the control unit 230. Furthermore, the network communication unit 241 transmits data received from the terminal device 100 by the light receiving and emitting unit 201 to the network 10. In this embodiment, the network communication unit 241 performs wireless communication using radio waves. This allows the base station device 200 to easily communicate with the network 10 under the assumption that the base station device 200 is moving.

[0037] The movement mechanism 260 moves the base station device 200 on the water surface and / or underwater under the control of the control unit 230. The movement mechanism 260 includes a horizontal movement mechanism 261 that moves the main body unit 203 in the horizontal direction and a vertical movement mechanism 262 that moves the optical communication unit 205 in the vertical direction. The horizontal movement mechanism 261 may be configured to include a motor, a screw, and the like. The main body unit 203 can be moved in the horizontal direction by the motor rotating a steerable screw. The vertical movement mechanism 262 may be configured to include a mechanism that winds and unwinds the connecting member 207, such as an electric winch. When the vertical movement mechanism 262 unwinds the connecting member 207, the optical communication unit 205 moves downward due to its own weight. On the other hand, when the vertical movement mechanism 262 winds up the connecting member 207, the optical communication unit 205 moves upward. Note that the vertical movement mechanism 262 may be provided on the optical communication unit 205 side, rather than on the main body unit 203 side. Such a moving mechanism 260 can move the optical communication unit 205 of the base station device 200 (that is, the communication area of ​​the base station device 200) three-dimensionally in the horizontal and vertical directions.

[0038] The positioning unit 270 measures the position of the base station device 200 and outputs position information indicating the measured position to the control unit 230. The positioning unit 270 includes a horizontal positioning unit 271 that measures the latitude and longitude of the main body unit 203 and a vertical positioning unit 272 that measures the depth of the optical communication unit 205. The horizontal positioning unit 271 is configured to include a GNSS (Global Navigation Satellite System) receiver that performs positioning by receiving satellite radio waves. Because satellite radio waves are significantly attenuated underwater, the antenna of the GNSS receiver is positioned so that it is located on or above the water surface. In this embodiment, the vertical positioning unit 272 measures the depth of the optical communication unit 205 based on the state of winding and unwinding the connecting member 207. For example, the vertical direction positioning unit 272 may detect the rotation direction and rotation speed of the electric winch constituting the vertical direction movement mechanism 262, identify the length of the connecting member 207 between the main body unit 203 located on the water surface and the optical communication unit 205 located underwater, and measure this length as the depth of the optical communication unit 205. However, the vertical direction positioning unit 272 may be configured to include a depth sensor provided on the optical communication unit 205 side. For example, the depth sensor may measure the depth from the water pressure applied to the optical communication unit 205. Such a movement mechanism 260 can measure the position of the optical communication unit 205 of the base station device 200 (i.e., the center of the communication area of ​​the base station device 200) in three dimensions, the horizontal and vertical directions. The control unit 230 may control the backhaul communication unit 240 to transmit to the management device 300 position information indicating the position (latitude, longitude, depth) measured by the positioning unit 270.

[0039] The turbidity sensor 281 measures a parameter indicating the turbidity around the base station device 200 in water and outputs the measurement result to the control unit 230. For example, the turbidity sensor 281 includes a light source and a light receiving unit arranged in a detector, and light projected into the water is scattered by particles in the water, and the reflected light is detected by the light receiving unit and the turbidity value is measured via a converter. Instead of providing a dedicated turbidity sensor 281, any of the light receiving and emitting units 201 of the optical communication unit 205 may be used as a turbidity sensor. The control unit 230 may control the backhaul communication unit 240 to transmit information indicating the turbidity measured by the turbidity sensor 281 to the management device 300.

[0040] The illuminance sensor 282 measures a parameter indicating the illuminance around the base station device 200 underwater, and outputs the measurement result to the control unit 230. The illuminance sensor 282 includes a photodiode that generates a current according to incident light. Instead of providing a dedicated illuminance sensor 282, each light receiving unit 210 of the optical communication unit 205 may be used as an illuminance sensor. The control unit 230 may control the backhaul communication unit 240 to transmit information indicating the illuminance measured by the illuminance sensor 282 to the management device 300.

[0041] The management device 300 specifies the location of the base station device 200 configured as described above. For example, the backhaul communication unit 240 receives instruction information specifying the location of the base station device 200 from the management device 300. The instruction information is information specifying at least the horizontal position (latitude and longitude) of the base station device 200. The instruction information may be information specifying the vertical position (depth) of the base station device 200 (optical communication unit 205) in addition to or instead of the horizontal position. Note that the instruction information may be absolute position information that directly indicates the location of the base station device 200. The instruction information may be relative position information that indicates the location of the base station device 200 relative to the current location of the base station device 200.

[0042] Based on the position (latitude, longitude, depth) measured by the positioning unit 270, the control unit 230 controls the movement mechanism 260 to move or maintain the base station device 200 at the placement position specified by the management device 300. For example, when the management device 300 specifies latitude and longitude as the placement position, the control unit 230 controls the horizontal movement mechanism 261 to move or maintain the main body unit 203 of the base station device 200 at the specified latitude and longitude. When the management device 300 specifies depth as the placement position, the control unit 230 controls the vertical movement mechanism 262 to move or maintain the optical communication unit 205 of the base station device 200 at the specified depth.

[0043] This allows the position of the base station device 200 to be set arbitrarily, and the base station device 200 can be moved or maintained at any position. For example, by simultaneously releasing multiple base station devices 200 from a mother ship or a coast, and specifying the placement position of each base station device 200, a coverage area consisting of the communication areas of each base station device 200 can be automatically constructed. Furthermore, since the placement of the base station devices 200 can be maintained, fixing devices (e.g., weights, etc.) for the base station devices 200 are not required in places with slow currents, such as in inland seas and / or dam lakes. Furthermore, since depth can be specified as the placement position, the communication area of ​​each base station device 200 can be formed at any position (e.g., near the water surface or near the bottom, etc.).

[0044] FIG. 4 is a diagram showing an example of the external configuration of the optical communication unit 205 of the base station device 200 according to this embodiment.

[0045] The optical communication unit 205 of the base station device 200 has a spherical housing 250 and a plurality of light receiving and emitting units 201 arranged in an array on the curved surface of the housing 250. However, the housing 250 may be configured in a hemispherical shape. Each light receiving and emitting unit 201 is provided with a set of at least one light receiving element 211 and at least one light emitting element 221. With this configuration, the optical communication unit 205 of the base station device 200 can perform optical communication with the terminal device 100 in various directions.

[0046] FIG. 5 is a diagram showing a first modified example of the external configuration of the optical communication unit 205 of the base station device 200 according to this embodiment.

[0047] The optical communication unit 205 of the base station device 200 has a hook portion 290a provided at the upper end of the housing 250, a hook portion 290b provided at the lower end of the housing 250, a cable 292a extending upward from the housing 250, and a cable 292b extending downward from the housing 250. The cables 292a and 292b may be configured of optical fibers. The cable 292a is used for communication with the main body unit 203, and the cable 292b is used for communication with the optical communication unit 205 below. A rope 291a is attached to the upper hook portion 290a, and a rope 291b is attached to the lower hook portion 290b. The upper cable 292a is arranged along the upper rope 291a, and the lower cable 292b is arranged along the lower rope 291b. The light receiving and emitting unit 201 on the surface of the housing 250 is disposed at a position that avoids the hook portions 290a and 290b.

[0048] FIG. 6 is a diagram showing a second modified example of the external configuration of the optical communication unit 205 of the base station device 200 according to this embodiment.

[0049] In this modified example, the optical communication unit 205 of the base station device 200 has a hook portion 290a provided at the upper end of the housing 250, a hook portion 290b provided at the lower end of the housing 250, and a laser communication device 293 provided above the housing 250. The laser communication device 293 is used for communication with the main body unit 203.

[0050] (Example of terminal device configuration) 7 is a diagram showing an example of a block configuration of a terminal device 100 according to this embodiment. The terminal device 100 has a plurality of light receiving and emitting units 101 (101#0, 101#1, ...), a control unit 130, and a mechanism unit 140. The terminal device 100 may have a battery for supplying power necessary for the operation of the terminal device 100. The terminal device 100 may also have a sensor such as an image sensor and generate sensor data.

[0051] The multiple light receiving and emitting units 101 are arranged with their optical communication directivities (optical axes) facing in different directions. Each light receiving and emitting unit 101 performs optical communication (visible light communication in this embodiment) with the base station device 200 under the control of the control unit 130. Each light receiving and emitting unit 101 has a light receiving unit 110 and a light emitting unit 120. Since each light receiving and emitting unit 101 has the same configuration, the configuration of light receiving and emitting unit 101#0 will be described here.

[0052] The light receiving unit 110#0 of the light receiving and emitting unit 101#0 receives an optical signal (a visible light signal in this embodiment) from the base station device 200 and outputs the received signal to the control unit 130. The light receiving unit 110#0 has at least one light receiving element 111#0 and a receiver 112#0. The light receiving element 111#0 may include a photodiode (PD) and its peripheral circuitry. The light receiving element 111#0 receives the optical signal, converts the received optical signal into an electrical signal (received signal), and outputs the received signal to the receiver 112#0. The optical axis of the light receiving element 111#0 is oriented in a predetermined direction different from the optical axis of the other light receiving elements 111 (e.g., the light receiving element 111#1). The receiver 112#0 may be configured using an FPGA and / or an SoC. The receiver 112#0 converts the received signal output by the light receiving element 111#0, performs signal processing on the converted received signal, and outputs the processed signal to the control unit 130. At least a portion of the receiver 112#0 may be integrated with another receiver 112 (for example, the receiver 112#1). At least a portion of the receiver 112#0 may be integrated with the transmitter 122.

[0053] The light emitting unit 120#0 of the light receiving and emitting unit 101#0 transmits an optical signal (in this embodiment, a visible light signal) to the base station device 200 under the control of the control unit 130. The light emitting unit 120#0 has at least one light emitting element 121#0 and a transmitter 122#0. The light emitting element 121#0 may include a laser diode (LD) or a light emitting diode (LED) and its peripheral circuitry. The light emitting element 121#0 converts an electrical signal (transmission signal) output by the transmitter 122#0 for optical communication into an optical signal and transmits the optical signal. The optical axis of the light emitting element 121#0 is oriented in a predetermined direction different from the optical axes of other light emitting elements 121 (e.g., light emitting element 121#1). However, the optical axis of the light emitting element 121#0 is oriented in the same direction as the optical axis of the corresponding light receiving element 111#0. The transmitter 122#0 may be configured using an FPGA and / or an SoC. The transmitter 122#0 performs signal processing on a transmission signal output by the control unit 130, converts the processed signal, and outputs it to the light-emitting element 121#0. At least a part of the transmitter 122#0 may be integrated with another transmitter 122 (for example, the transmitter 122#1). At least a part of the transmitter 122#0 may be integrated with the receiver 112.

[0054] The control unit 130 controls the overall operation of the terminal device 100. The operations of the terminal device 100 described above and later may be operations controlled by the control unit 130. For example, the control unit 130 controls a plurality of light receiving and emitting units 101. The control unit 130 includes at least one processor 131 and at least one memory 132. The memory 132 stores programs executed by the processor 131 and information used in processing by the processor 131. The processor 131 may include a digital signal processor and a CPU. The digital signal processor performs modulation, demodulation, encoding, decoding, etc. of digital signals. The CPU executes programs stored in the memory to perform various processes. At least a portion of the control unit 130 may be integrated with the receiver 112. At least a portion of the control unit 130 may be integrated with the transmitter 122.

[0055] The mechanical unit 140 includes a movement mechanism that moves the terminal device 100 under the control of the control unit 130. The movement mechanism includes, for example, a motor and a screw connected to the rotation shaft of the motor. The mechanical unit 140 may also include an arm or the like used for work underwater.

[0056] FIG. 8 is a diagram showing an example of the external configuration of the terminal device 100 according to this embodiment.

[0057] The terminal device 100 has an upper housing 150a, a lower housing 150b, and a mechanism unit 140 provided between the housings 150a and 150b. The housings 150a and 150b are each hemispherical, and the terminal device 100 as a whole has a spherical shape. The housings 150a and 150b each have a plurality of light receiving and emitting units 101 distributed over their surfaces. Each light receiving and emitting unit 101 is provided with a set of at least one light receiving element 111 and at least one light emitting element 121. This configuration enables the terminal device 100 to perform optical communication with the base station device 200 in various directions.

[0058] FIG. 9 is a diagram showing a first modified example of the external configuration of the terminal device 100 according to this embodiment.

[0059] In this modified example, the terminal device 100 has a left housing 150a, a right housing 150b, and a mechanism unit 140 provided between the housings 150a and 150b. The housings 150a and 150b are each hemispherical, and the terminal device 100 as a whole has a spherical shape. The housings 150a and 150b each have a plurality of light receiving and emitting units 101 distributed over their surfaces. Each light receiving and emitting unit 101 is provided with a set of at least one light receiving element 111 and at least one light emitting element 121.

[0060] FIG. 10 is a diagram showing a second modified example of the external configuration of the terminal device 100 according to this embodiment.

[0061] In this modified example, terminal device 100 has a spherical housing 150 and a mechanism unit 140 connected to housing 150 via a cable 160. Housing 150 is spherical. Housing 150 has a plurality of light receiving and emitting units 101 distributed over its surface. Each light receiving and emitting unit 101 is provided with a set of at least one light receiving element 111 and at least one light emitting element 121.

[0062] (An example of optical communication) 11 is a diagram showing DL communication as an example of optical communication according to this embodiment. In the illustrated example, a cross section of the optical communication unit 205 of the base station device 200 and a cross section of the terminal device 100 are simply shown for DL ​​communication.

[0063] In the optical communication unit 205 of the base station device 200, the multiple light-emitting units 220 are arranged so that the angle formed between the optical axis of one light-emitting unit 220 and the optical axis of the other light-emitting unit 220 increases as the distance between the light-emitting unit 220 and the other light-emitting unit 220 increases. For example, the angle formed between the optical axis of light-emitting unit 220#0 and the optical axis of light-emitting unit 220#2 that is not adjacent to light-emitting unit 220#0 is larger than the angle formed between the optical axis of light-emitting unit 220#0 and the optical axis of light-emitting unit 220#1 that is adjacent to light-emitting unit 220#0.

[0064] The optical communication unit 205 of the base station device 200 associates the light emitting unit 220#4 (light receiving and emitting unit #4) corresponding to the direction in which the terminal device 100 is located with the terminal device 100, and performs optical communication with the terminal device 100 using the light emitting unit 220#4 (light receiving and emitting unit #4). The terminal device 100 associates the light receiving unit 110#0 (light receiving and emitting unit #0) corresponding to the direction in which the base station device 200 is located with the base station device 200, and performs optical communication with the base station device 200 using the light receiving unit 110#0 (light receiving and emitting unit #0).

[0065] 12 is a diagram showing an example of the configuration of a communication frame used in the optical communication system 1 according to this embodiment. In the example shown, one communication frame is made up of 10 time slots, but the number of time slots making up one communication frame is not limited to 10. Each time slot is made up of a predetermined number of symbol intervals.

[0066] In this frame configuration example, the communication frame consists of one synchronization slot (Sync.), one control slot (Ctrl.), four DL slots (DL slots) #0 to #3, and four UL slots (UL slots) #0 to #3. However, in a scenario where the amount of data in UL communication is greater than that in DL communication, the number of UL slots in the communication frame may be greater than the number of DL slots.

[0067] The synchronization slot (Sync.) is a time slot in which the base station device 200 transmits a synchronization optical signal (and a base station device-specific reference optical signal). The terminal device 100 identifies the base station device 200 by the synchronization optical signal received from the base station device 200, and establishes or maintains synchronization with the base station device 200 using the synchronization optical signal. Note that the base station device-specific reference optical signal may be transmitted in all slots except for the UL slot. The reference optical signal is used by the terminal device 100 to measure the reception strength (reference signal strength) from the base station device 200.

[0068] The control slot (Ctrl.) is a time slot in which the base station device 200 transmits a control optical signal. The control optical signal includes, for example, scheduling information indicating DL and UL resource allocation (for example, time slot allocation). The terminal device 100, for example, knows its own time slot allocation from the control optical signal received from the base station device 200.

[0069] DL slots #0 to #3 constitute a DL communication period. The base station device 200 allocates each of the DL slots #0 to #3 to one or more terminal devices 100. The base station device 200 transmits a DL data optical signal in each DL slot. A reference signal (Ref.TxElement) specific to a light-emitting element and a data optical signal may be allocated in each DL slot in a time-division manner.

[0070] UL slots #0 to #3 constitute a UL communication period. The base station device 200 allocates each of the UL slots #0 to #3 to one or more terminal devices 100. The terminal devices 100 transmit UL data optical signals in the allocated UL slots.

[0071] The base station device 200 can simultaneously communicate with multiple terminal devices 100 located in different directions. Specifically, the base station device 200 can spatially multiplex multiple terminal devices 100 located in different directions. Therefore, the base station device 200 may allocate one DL slot or one UL slot to multiple terminal devices 100.

[0072] (Example of management device configuration) 13 is a diagram showing an example of a block configuration of the management device 300 according to this embodiment. The management device 300 includes a communication unit 310 and a control unit 320.

[0073] The communication unit 310 is connected to the network 10 and communicates with each base station device 200 via the network 10. The communication unit 310 may also perform direct wireless communication with each base station device 200 without going through the network 10.

[0074] The control unit 320 controls the overall operation of the management device 300. The operations of the management device 300 described above and those described below may be operations controlled by the control unit 320. For example, the control unit 320 controls the communication unit 310. The control unit 320 includes at least one processor 321 and at least one memory 322. The memory 322 stores programs executed by the processor 321 and information used in processing by the processor 321. The processor 321 may include a CPU. The CPU executes programs stored in the memory to perform various processes.

[0075] In the management device 300 configured in this manner, the control unit 320 determines the placement position (latitude, longitude, depth) of each base station device 200, and notifies each base station device 200 of instruction information specifying the placement position. Specifically, the control unit 320 controls the communication unit 310 to transmit instruction information indicating the determined placement position to each base station device 200. This makes it possible to arbitrarily set the position of each base station device 200, and to move or maintain each base station device 200 at an arbitrary position.

[0076] In this embodiment, the control unit 320 acquires map information regarding a target water area (hereinafter simply referred to as "target water area") to be the coverage area of ​​optical communication. FIG. 14 is a diagram for explaining an example of the operation of the control unit 320 of the management device 300 according to this embodiment. In the illustrated example, the target water area is a two-dimensional water area defined by horizontal x- and y-axes, and the map information is two-dimensional map information. For example, the target water area may be an underwater area where underwater investigation and / or work is performed using the terminal device 100. Then, the control unit 320 determines the placement position (latitude and longitude) of each base station device 200 based on the acquired map information. In the illustrated example, the control unit 320 determines to place each base station device 200 at intervals in the horizontal direction (x-axis direction and y-axis direction) so that the communication area of ​​each base station device 200 covers the target water area.

[0077] 15 is a diagram illustrating an example of the operation of the control unit 320 of the management device 300 according to this embodiment. The target water area may be a three-dimensional water area defined by horizontal x- and y-axes and a vertical z-axis, and the map information may be three-dimensional map information. The control unit 320 may determine the placement position (latitude, longitude, and depth) of each base station device 200 based on the acquired three-dimensional map information.

[0078] 16 is a diagram illustrating an example of the operation of the control unit 320 of the management device 300 according to this embodiment. In the illustrated example, the bottom of the target water area is not flat, and the depth from the water surface to the bottom is uneven. In this case, the control unit 320 determines the placement depth of each base station device 200 (each optical communication unit 205) in the vertical direction so that the communication area of ​​each base station device 200 covers the target water area.

[0079] In this embodiment, the control unit 320 further acquires environmental information indicating the optical environment in the target water area, and adjusts the spacing between the base station devices 200 (specifically, the spacing between the optical communication units 205) based on the acquired environmental information. The spacing is the spacing in the horizontal direction and / or the spacing in the vertical direction. This allows the control unit 320 to appropriately adjust the spacing between the base station devices 200 (the spacing between the optical communication units 205).

[0080] The environmental information may be information indicating at least one of the optical environment of the turbidity in the target water area and the illuminance in the target water area. The control unit 320 may acquire the environmental information indicating the turbidity in the target water area from each base station device 200. The control unit 320 may acquire the environmental information from a turbidity sensor provided separately from each base station device 200. The control unit 320 may acquire the environmental information indicating the illuminance in the target water area from each base station device 200. The control unit 320 may acquire the environmental information from an illuminance sensor provided separately from each base station device 200.

[0081] The control unit 320 may acquire environmental information indicating illuminance by estimating illuminance based on the current time, the weather related to the target water body, and / or the current season. The control unit 320 may acquire information on the weather related to the target water body and / or information on the current season from an external server.

[0082] For example, the control unit 320 may identify or estimate the times of sunrise and sunset based on the current season. The control unit 320 may estimate that the illuminance in the target water body is high if the current time is between sunrise and sunset. On the other hand, the control unit 320 may estimate that the illuminance in the target water body is low if the current time is not between sunrise and sunset.

[0083] The control unit 320 may estimate the illuminance in the target water area based on the current weather. For example, the control unit 320 may estimate that the illuminance in the target water area is low if the weather in the target water area is rainy, snowy, or cloudy. On the other hand, the control unit 320 may estimate that the illuminance in the target water area is high if the weather in the target water area is sunny.

[0084] 17 and 18 are diagrams illustrating an example of the operation of the control unit 320 of the management device 300 according to this embodiment. As shown in FIG. 17, the control unit 320 may adjust the interval between the base station devices 200 (the interval between the optical communication units 205) so that the lower the turbidity in the target water area is, the wider it becomes. The control unit 320 may also adjust the interval between the base station devices 200 so that the lower the illuminance in the target water area is, the wider it becomes. In the illustrated example, the interval between the base station devices 200 is increased horizontally, but the interval between the optical communication units 205 may also be increased vertically.

[0085] The control unit 320 may take into consideration the turbidity and / or illuminance in the target water area when initially installing each base station device 200 in the target water area and determine the placement position of each base station device 200. After initially installing each base station device 200 in the target water area, the control unit 320 may periodically determine and update the placement position of each base station device 200, taking into consideration the turbidity and / or illuminance in the target water area.

[0086] When the intervals between the base station devices 200 are increased in the horizontal direction, there may be an excess of base station devices 200 in the target water area. The control unit 320 may perform control to move the excess base station devices 200 to a recovery position (for example, a ship or a coast). This allows the excess base station devices 200 to be recovered.

[0087] As shown in FIG. 18 , the control unit 320 may adjust the interval between the base station devices 200 (the interval between the optical communication units 205) so that it narrows as the turbidity in the target water area increases. Furthermore, the control unit 320 may adjust the interval between the base station devices 200 so that it narrows as the illuminance in the target water area increases. In the illustrated example, the interval between the base station devices 200 is narrowed horizontally, but the interval between the optical communication units 205 may also be narrowed vertically. Narrowing the interval between the base station devices 200 horizontally may result in a shortage of base station devices 200 in the target water area. In this case, the control unit 320 may perform control to move additional base station devices 200 to their locations in the target water area.

[0088] The control unit 320 may further acquire tidal information (so-called tide graph information) related to the tides in the target water area. The control unit 320 may adjust the deployment depth (i.e., vertical position) of each base station device 200 (each optical communication unit 205) based on the acquired tidal information (and the 3D map information). For example, assuming that a coverage area is to be established near the bottom of the water (ocean), the control unit 320 may vertically lower each base station device 200 (each optical communication unit 205) when the current time is high tide and the water level (e.g., sea level) is rising. On the other hand, the control unit 320 may vertically raise each base station device 200 (each optical communication unit 205) when the current time is low tide and the water level (e.g., sea level) is falling.

[0089] In this embodiment, the control unit 320 further acquires capability information indicating the optical communication capability of each base station device 200, and adjusts the intervals between the base station devices 200 (specifically, the intervals between the optical communication units 205) based on the acquired capability information. The intervals are the intervals in the horizontal direction and / or the intervals in the vertical direction. This allows the intervals between the base station devices 200 (the intervals between the optical communication units 205) to be appropriately adjusted.

[0090] For example, the capability information of the base station device 200 is information indicating at least one of the communication capabilities of the light-emitting intensity of the light-emitting element, the light-receiving sensitivity of the light-receiving element, the beam angle of the light-emitting element and / or the light-receiving element, and the degree of light concentration of the light-emitting element and / or the light-receiving element. The control unit 320 may determine that the optical communication capability of the base station device 200 is high in accordance with a high light-emitting intensity, a high light-receiving sensitivity, a narrow beam angle, and / or a high degree of light concentration. On the other hand, the control unit 320 may determine that the optical communication capability of the base station device 200 is low in accordance with a low light-emitting intensity, a low light-receiving sensitivity, a wide beam angle, and / or a low degree of light concentration.

[0091] The control unit 320 may determine the placement positions of each base station device 200, taking into account the optical communication capabilities of each base station device 200, when initially installing each base station device 200 in the target water area. For example, the control unit 320 may adjust the intervals between the base station devices 200 (the intervals between the optical communication units 205) so that the lower the optical communication capabilities of each base station device 200, the narrower the intervals. Furthermore, the control unit 320 may adjust the intervals between the base station devices 200 so that the higher the optical communication capabilities of each base station device 200, the wider the intervals. The control unit 320 may adjust the intervals between the base station devices 200 in the horizontal direction. The control unit 320 may adjust the intervals between the optical communication units 205 in the vertical direction.

[0092] (Example of management device operation flow) FIG. 19 is a diagram illustrating a first example of the operation flow of the management device 300 according to this embodiment.

[0093] In step S101, the management device 300 acquires map information of the target water area.

[0094] In step S102, the management device 300 determines the placement position of each base station device 200 based on the map information acquired in step S101. The determined placement position may be a two-dimensional position of longitude and latitude. The placement position may be a three-dimensional position of longitude, latitude, and depth. The management device 300 may determine the placement position of each base station device 200 by taking into consideration the capability information of each base station device 200. Specifically, the management device 300 may adjust the placement interval of each base station device 200 based on the capability information of each base station device 200.

[0095] In step S103, the management device 300 notifies each base station device 200 of a movement instruction based on the placement position determined in step S102. Each base station device 200 moves its own optical communication unit 205 to the specified placement position based on the movement instruction.

[0096] In step S104, the management device 300 acquires (collects) the location information obtained by each of the base station devices 200 through positioning.

[0097] In step S105, the management device 300 determines whether the current locations of each base station device 200 collected in step S104 are deviated from the placement locations (also referred to as "designated placement locations") determined (designated) in step S102. That is, the management device 300 determines whether there is a positional deviation for each base station device 200. For example, the positional deviation of a base station device 200 may occur due to wind and / or ocean currents, etc.

[0098] If there is a base station device 200 that has shifted its position (step S105: Yes), in step S103, the management device 300 issues a movement instruction to the shifted base station device 200 to return to the designated placement position. The management device 300 may then acquire location information from the shifted base station device 200 and check whether the base station device 200 has returned to the designated placement position. If the base station device 200 has not returned to the designated placement position after a predetermined time has elapsed, the management device 300 may perform control to place another base station device 200 at the designated placement position. Note that if the base station device 200 cannot be placed at the designated placement position even after performing such control, i.e., if the other base station device 200 cannot be moved and / or maintained at the designated placement position, the management device 300 may determine that the base station device 200 cannot be placed at the designated placement position. For example, wind and / or ocean currents may cause a location where the base station device 200 cannot be placed. In this case, the management device 300 may re-determine the placement positions of the base station devices 200 so as to avoid the placement positions and re-place the base station devices 200. That is, the management device 300 may re-determine the placement positions of the base station devices 200 in step S102 so as to create a placement pattern different from the previous placement pattern.

[0099] On the other hand, if there is no displaced base station device 200 (step S105: No), in step S106, the management device 300 determines whether to cancel the coverage area (i.e., whether to cancel the optical communication area of ​​the target water area). For example, when the underwater survey and / or work using the terminal device 100 is completed, the management device 300 determines to cancel the coverage area.

[0100] When canceling the coverage area (step S106: Yes), the management device 300 may instruct each base station device 200 to end optical communication, and may also control each base station device 200 to move to a recovery position. For example, the management device 300 may designate a location such as a ship or a coast as a recovery position to each base station device 200, and cause each base station device 200 to move to the recovery position.

[0101] On the other hand, if the coverage area is not to be released (step S106: No), the management device 300 returns the process to step S104.

[0102] 20 is a diagram illustrating a second example of an operation flow of the management device 300 according to this embodiment. This example of an operation flow is a flow example that takes environmental information into consideration. In the illustrated example, the above-described positional deviation determination is omitted, but positional deviation determination may also be performed in this example of an operation flow.

[0103] In step S201, the management device 300 acquires map information of the target water area.

[0104] In step S202, the management device 300 determines the placement position of each base station device 200 based on the map information acquired in step S201. The determined placement position may be a two-dimensional position of longitude and latitude. The placement position may be a three-dimensional position of longitude, latitude, and depth. The management device 300 may determine the placement position of each base station device 200 by taking into consideration the capability information of each base station device 200. Specifically, the management device 300 may adjust the placement interval of each base station device 200 based on the capability information of each base station device 200.

[0105] In step S203, the management device 300 acquires environmental information. The management device 300 may determine (confirm) the placement positions of the base station devices 200 by adjusting the placement intervals of the base station devices 200 based on the acquired environmental information.

[0106] In step S204, the management device 300 notifies each base station device 200 of a movement instruction based on the placement position determined (confirmed) in step S203. Each base station device 200 moves its own optical communication unit 205 to the specified placement position based on the movement instruction.

[0107] In step S205, the management device 300 acquires (collects) the location information obtained by each of the base station devices 200 through positioning.

[0108] In step S205, the management device 300 acquires the latest environmental information. The management device 300 may acquire the latest environmental information from each base station device 200.

[0109] In step S206, the management device 300 determines whether the latest environmental information acquired in step S205 has changed from the previously acquired environmental information. If the latest environmental information acquired in step S205 has changed from the previously acquired environmental information (step S206: Yes), in step S203, the management device 300 determines the placement positions of each base station device 200 by adjusting the placement intervals of the base station devices 200 based on the latest environmental information.

[0110] On the other hand, if the latest environmental information acquired in step S205 has not changed from the previously acquired environmental information (step S206: No), in step S207, the management device 300 determines whether to cancel the coverage area (i.e., whether to cancel the optical communication area of ​​the target water area). For example, when the underwater survey and / or work using the terminal device 100 is completed, the management device 300 determines to cancel the coverage area.

[0111] When canceling the coverage area (step S207: Yes), the management device 300 may instruct each base station device 200 to end optical communication, and may also control each base station device 200 to move to a recovery position. For example, the management device 300 may specify a location such as a ship or a coast as a recovery position for each base station device 200, and cause each base station device 200 to move to the recovery position.

[0112] On the other hand, if the coverage area is not to be released (step S207: No), the management device 300 returns the process to step S205.

[0113] (First modified example of operation of optical communication system) FIG. 21 is a diagram showing a first modification of the operation of the optical communication system 1 according to the above embodiment.

[0114] In step S301, the management device 300 acquires status information indicating the status of each base station device 200 and monitors the status of each base station device 200. For example, the management device 300 monitors status information regarding the remaining battery charge of each base station device 200 and / or the presence or absence of a malfunction (e.g., a failure) in each block through communication with each base station device 200. Each base station device 200 may identify that an abnormality has occurred in itself (e.g., its remaining battery charge has fallen below a threshold), and notify the management device 300 of error information indicating the nature of the abnormality as status information.

[0115] In step S302, the management device 300 detects an abnormality in any of the base station devices 200 based on the status information acquired in step S301. For example, the management device 300 may compare the remaining battery power of the base station device 200 with a threshold, and if the remaining battery power falls below the threshold, determine that an abnormality has occurred in the base station device 200. The management device 300 may monitor the operation status of each block of the base station device 200, and if a block exhibiting an operational abnormality is found, determine that an abnormality has occurred in the base station device 200. Alternatively, if the management device 300 receives error information from any of the base station devices 200, it may determine that an abnormality has occurred in the base station device 200.

[0116] If an abnormality is detected in any of the base station devices 200 (step S302: Yes), in step S303, the management device 300 moves the base station device 200 to a recovery position and controls the placement of another base station device 200 in the placement position of the base station device 200. This makes it possible to prevent the occurrence of blind zones in optical communication, i.e., coverage holes.

[0117] (Second modified example of operation of optical communication system) Fig. 22 is a diagram for explaining a second modified example of the operation of the optical communication system 1 according to the above-described embodiment. As shown in Fig. 22, when the base station device 200 (optical communication unit 205) is in a backlit position as seen from the terminal device 100, that is, when the terminal device 100, the base station device 200 (optical communication unit 205), and the sun are aligned, there is a concern that sunlight disturbance may interfere with the communication light.

[0118] In this modified example, the base station device 200 and / or the management device 300 identify a first direction in which sunlight arrives and a second direction in which the terminal device 100 is located, the terminal device 100 performing optical communication with the base station device 200. For example, the base station device 200 and / or the management device 300 identify, in the optical communication unit 205, the optical axis direction of the light receiving and emitting unit 201 in which sunlight is incident as the first direction, and identify, in the optical communication unit 205, the optical axis direction of the light receiving and emitting unit 201 performing optical communication with the terminal device 100 as the second direction.

[0119] Then, based on the determination that the first direction and the second direction are aligned, the base station device 200 and / or the management device 300 controls the base station device 200 to move from its current location, thereby suppressing interference of sunlight disturbance with communication light.

[0120] Here, "the first direction and the second direction are on a straight line" does not necessarily mean that the first direction and the second direction are the same direction, but also means that the difference between the first direction and the second direction is within a predetermined range. For example, the base station device 200 and / or the management device 300 may determine that the first direction and the second direction are on a straight line when the combination of the light emitting and receiving unit 201 on which sunlight is incident and the light emitting and receiving unit 201 in optical communication with the terminal device 100 is a preset combination.

[0121] In response to the determination, the base station device 200 may move its own location by a predetermined distance. If moving the location of the base station device 200 causes a coverage hole, the management device 300 may instruct another base station device 200 to move so that the other base station device 200 fills the coverage hole.

[0122] (Third modified example of operation of optical communication system) FIG. 23 is a diagram showing a third modification of the operation of the optical communication system 1 according to the above embodiment.

[0123] In step S401, the base station device 200 and / or the management device 300 monitors the presence or absence of an obstacle within the communication area of ​​the base station device 200. For example, the obstacle may be a structure such as a ship, a buoy, or a fish pond. The obstacle may also be discarded fishing gear, marine debris, or driftwood or other floating objects. For example, a camera may be provided in the base station device 200 to monitor the obstacle using image recognition. Alternatively, if there is a communication area in which no optical communication has been performed for a long period of time, it may be determined that there is an obstacle in that area. Alternatively, the base station device 200 may receive a reference optical signal at the same time as transmitting it, and monitor the presence or absence of an obstacle based on the presence or absence of reflected light from the obstacle.

[0124] If it is determined that an obstacle exists within the communication area of ​​any of the base station devices 200 (step S402: Yes), in step S403, the management device 300 issues a movement instruction to another base station device 200 to fill the coverage hole caused by the obstacle. This allows the coverage hole to be filled by the other base station device 200.

[0125] (Example of change in optical communication system configuration) 24 is a diagram showing a modified example of the configuration of the optical communication system 1 according to the above embodiment. In a base station device 200 according to this modified example, a main body unit 203 and an optical communication unit 205 are integrated together.

[0126] In the illustrated example, multiple base station devices 200a to 200c form a base station group having base station devices 200 arranged at intervals in the vertical direction. Vertically adjacent base station devices 200 are connected by connecting members 207. In the illustrated example, base station device 200a, which is closest to the water surface, is suspended from a floating member (buoy) 410 on the water surface by connecting member 207a. Base station device 200b is suspended from base station device 200a by connecting member 207b. Base station device 200c is suspended from base station device 200b by connecting member 207c. However, base station device 200a may be integrated with floating member 410 and placed on the water surface. In that case, base station device 200a may have a hemispherical configuration instead of a spherical configuration.

[0127] In each base station group, the base station device 200c at the deepest position may be connected to a weight member 420 at the bottom of the water via a connecting member 207d. However, if each base station device 200c is sufficiently heavy, the weight member 420 may not be necessary.

[0128] A vertical movement mechanism 262 that winds up and unwinds the connecting member 207 is provided at the top of each base station device 200 (base station device 200a to base station device 200c). The vertical movement mechanism 262 may be an electric winch. Specifically, a vertical movement mechanism 262a that winds up and unwinds the connecting member 207a is provided at the top of base station device 200a. The vertical movement mechanism 262a may be controlled by the control unit 230 of base station device 200a. A vertical movement mechanism 262b that winds up and unwinds the connecting member 207b is provided at the top of base station device 200b. The vertical movement mechanism 262b may be controlled by the control unit 230 of base station device 200b. A vertical movement mechanism 262c that winds up and unwinds the connecting member 207c is provided at the top of base station device 200c. The vertical movement mechanism 262c may be controlled by the control unit 230 of base station device 200c.

[0129] However, the vertical direction moving mechanism 262 is not limited to being provided at the top of each base station device 200, but may be provided at the bottom of each base station device 200. Furthermore, the connecting member 207 is not limited to being configured to be retractable and retractable, but a slide mechanism as the vertical direction moving mechanism 262 may be provided in the connecting member 207, so that the connecting member 207 is extendable and retractable.

[0130] The floating member 410 may have a horizontal movement mechanism 261a for moving the base station group in the horizontal direction. The horizontal movement mechanism 261a may be configured to include a motor, a screw, and the like. When the floating member 410 moves on the water surface by the horizontal movement mechanism 261a, the base station group (base station device 200a to base station device 200c) moves horizontally in accordance with the movement of the floating member 410. The horizontal movement mechanism 261a may be controlled by the control unit 230 of the base station device 200a, for example, via a connecting member 207a (cable).

[0131] If the base station group has a weight member 420, the weight member 420 may have a horizontal movement mechanism 261b for moving the base station group in the horizontal direction. The horizontal movement mechanism 261b may be configured to include a motor, a crawler (caterpillar), and the like. When the weight member 420 moves along the bottom of the water by the horizontal movement mechanism 261b, the base station group (base station device 200a to base station device 200c) moves horizontally in accordance with the movement of the weight member 420. The horizontal movement mechanism 261b may be controlled by the control unit 230 of the base station device 200c, for example, via a connecting member 207d (cable).

[0132] In each base station group, a pair of vertically adjacent base station devices can perform backhaul communication between the base stations via a connecting member 207 (cable) connecting the pair of base station devices. For example, the pair of base station device 200a and base station device 200b can communicate via connecting member 207b. The pair of base station device 200b and base station device 200c can communicate via connecting member 207c. Alternatively, instead of inter-base station communication via connecting member 207 (cable), the above-mentioned laser communication device 263 may be used to perform inter-base station communication (see FIG. 6).

[0133] The base station group may perform backhaul communication with the network 10. For example, the base station device 200a may perform radio wave wireless communication with the network 10. However, because radio waves are significantly attenuated underwater, it may be inappropriate to provide an antenna in the underwater base station device 200a. Therefore, in the illustrated example, the antenna 412 of the network communication unit 241 (see FIG. 3) of the base station device 200a is provided on the floating member 410. However, if the base station device 200a is placed on the water surface, the antenna 412 for backhaul communication may be provided in the base station device 200a. The base station device 200a performs direct backhaul communication with the network 10. The base station device 200b performs indirect backhaul communication with the network 10 via the base station device 200a. The base station device 200c performs indirect backhaul communication with the network 10 via the base station devices 200a and 200b.

[0134] (Other embodiments) In the above-described embodiment, an example has been described in which the terminal device 100 and the base station device 200 (optical communication unit 205) are configured in a spherical shape. However, the terminal device 100 and / or the base station device 200 (optical communication unit 205) may be configured in a polyhedron shape. In this case, each face of the polyhedron may constitute an emitting and receiving unit, and a set of a light emitting element and a light receiving element may be arranged on each face. Alternatively, the terminal device 100 and / or the base station device 200 (optical communication unit 205) may be configured in a rod shape as a whole. For example, the terminal device 100 and / or the base station device 200 (optical communication unit 205) may form a prism, the side faces of the prism may constitute an emitting and receiving unit, and a set of a light emitting element and a light receiving element may be arranged on each side face.

[0135] A program may be provided that causes a computer to execute each process performed by the terminal device 100, the base station device 200, or the management device 300. The program may be recorded on a computer-readable medium. Using the computer-readable medium, the program can be installed on a computer. Here, the computer-readable medium on which the program is recorded may be a non-transitory recording medium. The non-transitory recording medium is not particularly limited, and may be, for example, a recording medium such as a CD-ROM or a DVD-ROM. Furthermore, circuits that execute each process performed by the terminal device 100, the base station device 200, or the management device 300 may be integrated, and at least a part of the terminal device 100, the base station device 200, or the management device 300 may be configured as a semiconductor integrated circuit (chip set, SoC: System on a chip).

[0136] As used in this disclosure, the terms "based on" and "depending on / in response to" do not mean "based only on" or "only in response to," unless expressly stated otherwise. The term "based on" means both "based only on" and "based at least in part on." Similarly, the term "in response to" means both "based only on" and "at least in part on." The terms "include," "comprise," and variations thereof do not mean including only the listed items, but may mean including only the listed items or including additional items in addition to the listed items. "Obtain" may mean obtaining information from stored information, from information received from another device, or by generating information. Additionally, the term "or" as used in this disclosure is not intended to mean an exclusive or. Furthermore, any reference to elements using designations such as "first," "second," etc., as used in this disclosure does not generally limit the quantity or order of those elements. These designations may be used in this disclosure as a convenient method of distinguishing between two or more elements. Thus, reference to first and second elements does not imply that only two elements may be employed therein or that the first element must precede the second element in some manner. In this disclosure, where articles are added by translation, such as a, an, and the in English, these articles shall include the plural unless the context clearly indicates otherwise.

[0137] This application claims priority from Japanese Patent Application No. 2022-171106 (filed October 26, 2022), the entire contents of which are incorporated herein by reference.

[0138] The above describes the embodiments in detail with reference to the drawings, but the specific configuration is not limited to that described above, and various design changes can be made within the scope that does not deviate from the gist of the invention.

[0139] (Addendum) Additional notes will be given regarding the features of the above-described embodiment.

[0140] (Appendix 1) An optical communication system (1) for performing optical communication underwater, a base station device (200) that performs optical communication with an underwater terminal device (100); a mobile mechanism (260) provided in the base station device (200) or connected to the base station device (200); The moving mechanism (260) moves the base station device (200) on the water surface and / or in the water. Optical communication systems (1).

[0141] (Appendix 2) a management device (300) that determines the placement position of the base station device (200) and notifies the base station device (200) of instruction information that designates the placement position; The base station device (200) a positioning unit (270) for measuring the position of the base station device (200); and a control unit (230) that controls the movement mechanism (260) to move or maintain the base station device (200) at the specified placement position based on the position measured by the positioning unit (270). 1. The optical communication system (1) according to claim 1.

[0142] (Appendix 3) The base station device (200) A main body (203), an optical communication section (205) that forms a communication area for optical communication; The moving mechanism (260) a horizontal movement mechanism (261) for moving the main body (203) in a horizontal direction; a vertical movement mechanism (262) for moving the optical communication unit (205) in the vertical direction. Attachment 2, the optical communication system (1).

[0143] (Appendix 4) The positioning unit (270) a horizontal direction positioning unit (271) provided in the main body unit (203) and configured to measure the latitude and longitude of the main body unit (203); a vertical direction positioning unit (272) provided in the main body unit (203) or the optical communication unit (205) for measuring the depth of the optical communication unit (205); Attachment 3. An optical communication system (1).

[0144] (Appendix 5) The management device (300) determines the latitude, the longitude, and the depth as the location of the base station device (200). Attachment 4, an optical communication system (1).

[0145] (Appendix 6) The management device (300) Obtain map information about the target water area to be covered by optical communications, Based on the map information, the location of each of a plurality of base station devices (200) including the base station device (200) is determined. An optical communication system (1) according to any one of appendices 2 to 5.

[0146] (Appendix 7) The management device (300) further acquiring environmental information indicating the optical environment in the target water area; Adjusting the intervals between the base station devices (200) based on the environmental information 1. The optical communication system (1) according to claim 6.

[0147] (Appendix 8) The environmental information is information indicating at least one of the optical environment factors, namely, the turbidity in the target water area and the illuminance in the target water area. 1. The optical communication system (1) according to claim 7.

[0148] (Appendix 9) The management device (300) acquires the environmental information by estimating the illuminance based on the current time, the weather related to the target water area, and / or the current season. 1. The optical communication system (1) according to claim 8.

[0149] (Appendix 10) The management device (300) Further acquiring tidal information regarding tides in the target water area; The deployment depth of each of the plurality of base station devices (200) is adjusted based on the tidal information. An optical communication system (1) according to any one of appendixes 6 to 9.

[0150] (Appendix 11) The management device (300) Further acquiring capability information indicating the optical communication capability of each of the plurality of base station devices (200); Adjusting the interval between the base station devices (200) based on the capability information An optical communication system (1) according to any one of appendixes 6 to 10.

[0151] (Appendix 12) The capability information is information indicating at least one of the optical communication capabilities of the light emitting element, the light receiving sensitivity of the light receiving element, the directivity angle of the light emitting element and / or the light receiving element, and the light concentration degree of the light emitting element and / or the light receiving element. 12. The optical communication system (1) according to claim 11.

[0152] (Appendix 13) The management device (300) Collecting information indicating the locations of each of the plurality of base station devices (200); instructing a base station device (200) located away from the designated location to return to the designated location; If the base station device (200) cannot return to the designated location, a predetermined control is performed to place another base station device (200) at the designated location. An optical communication system (1) according to any one of appendixes 2 to 12.

[0153] (Appendix 14) When the management device (300) cannot place the base station device (200) at the placement position even after performing the predetermined control, the management device (300) re-determines the placement position of each of the plurality of base station devices (200) so as to re-place the base station device (200) while avoiding the placement position. 14. The optical communication system (1) according to claim 13.

[0154] (Appendix 15) The management device (300) Detecting an abnormality in the base station device (200) based on status information indicating the status of the base station device (200); In response to the detection of the abnormality, the base station device (200) is moved to a recovery position, and another base station device (200) is placed in the placement position of the base station device (200). An optical communication system (1) according to any one of appendixes 2 to 14.

[0155] (Appendix 16) The base station device (200) at the installation location Identifying a first direction from which sunlight arrives and a second direction in which a terminal device (100) performing optical communication with the base station device (200) is located; Based on the determination that the first direction and the second direction are on a straight line, control is performed to move the base station device (200) from the installation position. An optical communication system (1) according to any one of appendixes 2 to 15.

[0156] (Appendix 17) In response to detecting an obstacle within the communication area of ​​the base station device (200), the management device (300) performs control to place another base station device (200) in a coverage hole caused by the obstacle. An optical communication system (1) according to any one of appendixes 2 to 16.

[0157] (Appendix 18) The management device (300) instructs each base station device (200) to terminate optical communication in response to the termination of the optical communication coverage area, and controls each base station device (200) to move to a recovery position. An optical communication system (1) according to any one of appendixes 2 to 17.

[0158] (Appendix 19) A base station device (200) used in an optical communication system (1), an optical communication unit (205) for optical communication with an underwater terminal device (100); a moving mechanism (260) for moving the base station device (200) on the water surface and / or in water; Base station equipment (200).

[0159] (Appendix 20) A management device (300) for use in an optical communication system (1), a communication unit (310) for communicating with a base station device (200) that performs optical communication with an underwater terminal device (100); a control unit (320) that determines the placement position of the base station device (200) and notifies the base station device (200) of instruction information that designates the placement position. Management device (300). [Explanation of symbols]

[0160] 1: Optical communication system 10: Network 100: Terminal device 101: Light receiving and emitting unit 110: Light receiving part 111: Light receiving element 112: Receiver 120: Light emitting part 121: Light-emitting element 122: Transmitter 130: Control unit 131: Processor 132: Memory 140: Mechanism section 150: Housing 160: Cable 200:Base station equipment 201: Light receiving and emitting unit 203: Main body 205: Optical Communications Department 207: Connecting member 210: Light receiving part 211: Photodetector 212: Receiver 220: Light-emitting part 221: Light-emitting element 222: Transmitter 230: Control unit 231: Processor 232: Memory 240: Backhaul communication unit 241: Network Communications Department 242: Base station communication unit 250: Cabinet 260: Movement mechanism 261: Horizontal movement mechanism 262: Vertical movement mechanism 263: Laser communication equipment 270: Positioning unit 271: Horizontal positioning unit 272: Vertical positioning unit 281: Turbidity sensor 282: Illuminance sensor 290: Hook part 291: Rope 292: Cable 293: Laser communication equipment 300: Management device 310: Communications Department 320: Control unit 321: Processor 322: Memory 410: Floating member 412: Antenna 420: Weight member

Claims

1. An optical communication system for performing optical communication underwater, a base station device that performs optical communication with an underwater terminal device; a management device that determines an arrangement position of the base station device and notifies the base station device of instruction information that designates the arrangement position; a mobile mechanism provided in the base station device or connected to the base station device; The base station device a positioning unit for measuring the position of the base station device; a control unit that controls the movement mechanism to move or maintain the base station device at the specified placement position based on the position measured by the positioning unit, The management device Obtain map information about the target water area to be covered by optical communications, determining the placement position of each of a plurality of base station devices including the base station device based on the map information; The moving mechanism moves the base station device on the water surface and / or in water. Optical communication system.

2. The management device further acquiring environmental information indicating the optical environment in the target water area; adjust the interval between the base station devices based on the environmental information 2. The optical communication system according to claim 1.

3. The environmental information is information indicating at least one of the optical environment factors, namely, the turbidity in the target water area and the illuminance in the target water area.

3. The optical communication system according to claim 2.

4. A management device for use in an optical communication system, comprising: a communication unit that communicates with a base station device that performs optical communication with an underwater terminal device; a control unit that determines an arrangement position of the base station device and notifies the base station device of instruction information that specifies the arrangement position; The control unit Obtain map information about the target water area to be covered by optical communications, The location of each of a plurality of base station devices including the base station device is determined based on the map information. Management device.

5. The management device further acquiring environmental information indicating the optical environment in the target water area; adjust the interval between the base station devices based on the environmental information The management device according to claim 4 .

6. The environmental information is information indicating at least one of the optical environments of the turbidity in the target water area and the illuminance in the target water area. The management device according to claim 5 .

7. The management device acquires the environmental information by estimating the illuminance based on the current time, the weather related to the target water area, and / or the current season. The management device according to claim 6 .

8. The management device Further acquiring tidal information regarding tides in the target water area; and adjusting the deployment depth of each of the plurality of base station devices based on the tidal information. The management device according to claim 4 .

9. The management device further acquiring capability information indicating optical communication capabilities of each of the plurality of base station devices; adjust the interval between the base station devices based on the capability information The management device according to claim 4 .

10. The capability information is information indicating at least one of the optical communication capabilities of the light emitting element, the light receiving sensitivity of the light receiving element, the directivity angle of the light emitting element and / or the light receiving element, and the light concentration degree of the light emitting element and / or the light receiving element. The management device according to claim 9 .

11. The management device determines latitude, longitude, and depth as the placement position of the base station device. The management device according to claim 4 .

12. A management device for use in an optical communication system, comprising: a communication unit that communicates with a plurality of base station devices that perform optical communication with underwater terminal devices; a control unit that determines an arrangement position of the base station device and notifies the base station device of instruction information that specifies the arrangement position; The control unit collecting information indicating the locations of the plurality of base station devices; instructing a base station device located away from the designated location to return to the designated location; If the base station device cannot return to the designated location, a predetermined control is performed to place another base station device at the designated location. Management device.

13. When the management device is unable to place the base station device at the placement position even after performing the predetermined control, the management device re-determines the placement position of each of the plurality of base station devices so as to re-place the base station device while avoiding the placement position. The management device according to claim 12.

14. A management device for use in an optical communication system, comprising: a communication unit that communicates with a base station device that performs optical communication with an underwater terminal device; a control unit that determines an arrangement position of the base station device and notifies the base station device of instruction information that specifies the arrangement position; The control unit detecting an abnormality in the base station device based on status information indicating a status of the base station device; In response to the detection of the abnormality, the base station device is moved to a recovery position, and another base station device is placed at the placement position of the base station device. Management device.

15. A management device for use in an optical communication system, comprising: a communication unit that communicates with a base station device that performs optical communication with an underwater terminal device; a control unit that determines an arrangement position of the base station device and notifies the base station device of instruction information that specifies the arrangement position; The base station device at the deployment location, Identifying a first direction in which sunlight arrives and a second direction in which a terminal device performing optical communication with the base station device is located; Based on the determination that the first direction and the second direction are aligned, control is performed to move the base station device from the installation position. Management device.

16. A management device for use in an optical communication system, comprising: a communication unit that communicates with a base station device that performs optical communication with an underwater terminal device; a control unit that determines an arrangement position of the base station device and notifies the base station device of instruction information that specifies the arrangement position; The control unit, in response to detecting an obstacle within the communication area of ​​the base station device, instructs another base station device to move so as to fill a coverage hole caused by the obstacle. Management device.

17. A management device for use in an optical communication system, comprising: a communication unit that communicates with a base station device that performs optical communication with an underwater terminal device; a control unit that determines an arrangement position of the base station device and notifies the base station device of instruction information that specifies the arrangement position; The control unit instructs each base station device to terminate optical communication in response to the elimination of the optical communication coverage area, and controls each base station device to move to a recovery position. Management device.

18. A base station device for use in an optical communication system, comprising: a positioning unit for measuring the position of the base station device; an optical communication unit that performs optical communication with an underwater terminal device; a movement mechanism for moving the base station device on the water surface and / or in the water, The base station device located at a predetermined location Identifying a first direction in which sunlight arrives and a second direction in which a terminal device performing optical communication with the base station device is located; Based on the determination that the first direction and the second direction are aligned, control is performed to move the base station device from the installation position. Base station equipment.

19. The base station device, a main body portion; The moving mechanism includes: a horizontal movement mechanism that moves the main body in a horizontal direction; a vertical movement mechanism that moves the optical communication unit in a vertical direction. The base station device according to claim 18.

20. The positioning unit: a horizontal direction positioning unit provided in the main body unit and configured to measure the latitude and longitude of the main body unit; a vertical direction positioning unit provided in the main body unit or the optical communication unit, for measuring the depth of the optical communication unit. The base station device according to claim 19.

Citation Information

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