Information processing equipment, vehicles, and systems

By using a server device to relay object information between vehicles, the system overcomes data capacity limitations in vehicle communication, ensuring stable acquisition and control operations.

JP7852521B2Active Publication Date: 2026-04-28TOYOTA JIDOSHA KK
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
TOYOTA JIDOSHA KK
Filing Date
2023-01-17
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

Existing vehicle communication systems face challenges in efficiently transmitting large amounts of object information between vehicles due to data capacity limitations, making it difficult to perform stable control operations.

Method used

The system employs a server device to relay object information acquired by one vehicle to another vehicle, using different communication methods for vehicle-to-vehicle and vehicle-to-server communications, enabling stable acquisition and control based on both vehicle and object information.

Benefits of technology

This approach allows vehicles to reliably acquire and utilize both vehicle and object information, facilitating stable driver assistance and notification controls.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To allow a vehicle capable of wireless communication with another vehicle and a server device to more suitably acquire information acquired by the other vehicle.SOLUTION: An information processor mounted on a first vehicle receives, via inter-vehicle communication, vehicle information including information on a traveling state of a second vehicle from the second vehicle. Further, when receiving the vehicle information from the second vehicle, the information processor receives, from a server device, object marker information acquired by the second vehicle and transmitted by the second vehicle to the server device.SELECTED DRAWING: Figure 2
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Description

Technical Field

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[0001] The present disclosure relates to a vehicle capable of wireless communication with other vehicles and a server device.

Background Art

[0002] Patent Document 1 discloses a vehicle surrounding situation acquisition device. The vehicle surrounding situation acquisition device disclosed in Patent Document 1 receives information including the position and vehicle speed of another vehicle and the situation of obstacles around the other vehicle by vehicle-to-vehicle communication. Then, the vehicle surrounding situation acquisition device converts the position included in the information received from the other vehicle into a relative position from the host vehicle, and integrates the converted information from the other vehicle with the position and the situation of obstacles of the host vehicle to obtain the surrounding information of the host vehicle.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0006] The vehicle relating to the second aspect of this disclosure is Receiving vehicle information, including information regarding the driving status of other vehicles, from the other vehicles via vehicle-to-vehicle communication, When the vehicle information is received from the second vehicle, the server device receives the target information acquired by the other vehicle and transmitted by the other vehicle to the server device. Execute this.

[0007] The system relating to the third aspect of this disclosure is A system including a first vehicle, a second vehicle, and a server device, The second vehicle transmits vehicle information, including information regarding the driving status of the second vehicle, to the first vehicle via vehicle-to-vehicle communication. The second vehicle transmits the target information it has acquired to the server device. When the second vehicle transmits the vehicle information to the first vehicle, the server device transmits the target information received from the second vehicle to the first vehicle. [Effects of the Invention]

[0008] According to this disclosure, in a vehicle capable of wireless communication with other vehicles and server equipment, the other vehicle The acquired information can be obtained more effectively. [Brief explanation of the drawing]

[0009] [Figure 1] Figure 1 is a diagram showing the schematic configuration of a communication system and a vehicle according to an embodiment. [Figure 2] Figure 2 shows an example of a traffic situation including the first and second vehicles. [Figure 3] Figure 3 shows an example of a table structure for vehicle information. [Figure 4] Figure 4 shows an example of a table structure for target information. [Figure 5]Figure 5 is a sequence diagram showing the flow of information processing performed in a communication system. [Figure 6] Figure 6 is a flowchart showing the information processing flow performed in the ECU installed in the second vehicle. [Modes for carrying out the invention]

[0010] The information processing device related to this disclosure is a device mounted on a vehicle. The information processing device mounted on the first vehicle has the function of performing vehicle-to-vehicle communication with the second vehicle. The information processing device mounted on the first vehicle also has the function of performing wireless communication with a server device. Here, the server device that performs wireless communication with the first vehicle also performs wireless communication with the second vehicle.

[0011] An information processing device installed in the first vehicle receives vehicle information, including information regarding the driving status of the second vehicle, from the second vehicle via vehicle-to-vehicle communication. This enables the first vehicle to perform various controls based on the vehicle information received from the second vehicle. Examples of controls performed by the first vehicle based on the vehicle information received from the second vehicle include driver assistance control and notification control. Driver assistance control is an automatic driving control of the first vehicle performed to avoid a collision with the second vehicle. Notification control is a control that notifies the driver of the first vehicle of the presence of the second vehicle.

[0012] Furthermore, the second vehicle has the function of acquiring target information. Target information is information about targets that are within a predetermined detection range from the second vehicle. Here, examples of targets include vehicles other than the second vehicle, people, animals, or objects. Also, examples of target information include location information or speed information for each target.

[0013] In situations where vehicle-to-vehicle communication is taking place between the first and second vehicles, a target corresponding to the target information acquired by the second vehicle may obstruct the movement of the first vehicle. Therefore, not only the vehicle information of the second vehicle, but also the target information acquired by the second vehicle may be useful for various control purposes in the first vehicle.

[0014] However, it may be difficult to transmit the object information acquired by the second vehicle to the first vehicle via vehicle-to-vehicle communication in the same manner as the vehicle information of the second vehicle. For example, when the number of objects existing around the second vehicle is large, the capacity of the object information acquired by the second vehicle also becomes large. As a result, it may be difficult to transmit the object information acquired by the second vehicle to the first vehicle via vehicle-to-vehicle communication.

[0015] Therefore, in the present disclosure, the information processing device mounted on the first vehicle receives the object information acquired by the second vehicle by communication via the server device, rather than vehicle-to-vehicle communication. That is, the second vehicle transmits the object information it has acquired to the server device. Then, when the information processing device mounted on the first vehicle receives the vehicle information from the second vehicle, it receives the object information transmitted by the second vehicle to the server device from the server device.

[0016] According to this, the first vehicle can stably acquire the vehicle information of the second vehicle and the object information acquired by the second vehicle. As a result, it becomes possible to stably execute various controls in the first vehicle using both the vehicle information of the second vehicle and the object information acquired by the second vehicle. As a result, it becomes possible to stably execute various controls in the first vehicle using both the vehicle information of the second vehicle and the object information acquired by the second vehicle.

[0017] Hereinafter, specific embodiments of the present disclosure will be described based on the drawings. The dimensions, materials, shapes, and relative arrangements of the components described in this embodiment are not intended to limit the technical scope of the present disclosure only to those, unless otherwise specified.

[0018] <Embodiment> (System Outline) The schematic configuration of the communication system and vehicles according to this embodiment will be described with reference to Figure 1. Figure 1 is a diagram showing the schematic configuration of the communication system and vehicles according to this embodiment. In the communication system 1, wireless communication is performed between each of the multiple vehicles 10 and the server device 200. In the following, when distinguishing between the first vehicle (own vehicle) and the second vehicle (other vehicle), the reference number of the first vehicle will be 10a and the reference number of the second vehicle will be 10b. In addition, in the communication system 1, vehicle-to-vehicle communication is performed between the first vehicle 10a and the second vehicle 10b when they are within a predetermined communication range.

[0019] Here, different communication methods are used for vehicle-to-vehicle communication between the first vehicle 10a and the second vehicle 10b, and for wireless communication between each vehicle 10 and the server device 200. For example, vehicle-to-vehicle communication between the first vehicle 10a and the second vehicle 10b may be performed using DSCR (Dedicated Short Range Communications) or C-V2X (Cellular V2X). Furthermore, a communication method with a larger data transmission capacity than that used for vehicle-to-vehicle communication between the first vehicle 10a and the second vehicle 10b is used for wireless communication between each vehicle 10 and the server device 200. For example, wireless communication between each vehicle 10 and the server device 200 may be performed using cellular communication.

[0020] Vehicle 10 includes an ECU (Electric Central Unit) 100, a first communication device 11, and a The system is equipped with two communication devices 12. The first communication device 11 is a communication device used for vehicle-to-vehicle communication. The second communication device 12 is a communication device used for communication with the server device 200.

[0021] The ECU 100 is a computer installed in the vehicle 10. The ECU 100 has a processor 101, a main memory unit 102, an auxiliary memory unit 103, and an in-vehicle communication interface (in-vehicle communication I / F) 104.

[0022] The processor 101 is, for example, a CPU (Central Processing Unit) or a DSP (Digital Signal Processor). The main memory 102 is, for example, RAM (Random Access Memory). The auxiliary memory 103 is, for example, ROM (Read Only Memory), HDD (Hard Disk Drive), or flash memory. The auxiliary memory 103 may also include removable media (portable recording media). Here, removable media is, for example, a USB memory stick, an SD card, or a disk recording medium such as a CD-ROM, DVD disc, or Blu-ray disc.

[0023] The in-vehicle communication interface 104 is an interface that allows the ECU 100 to communicate with other devices installed in the vehicle 10 using a predetermined in-vehicle communication standard. Examples of predetermined in-vehicle communication standards include CAN (Controller Area Network) or LIN (Local Interconnect Network). The ECU 100 communicates via the in-vehicle communication interface 104. The ECU 100 communicates with the first communication device 11 and the second communication device 12. The ECU 100 can acquire information received from other vehicles 10 by the first communication device 11 and information received from the server device 200 by the second communication device 12 via the in-vehicle communication I / F 104. .

[0024] The auxiliary storage unit 103 stores the operating system (OS), various programs, and various information tables. The processor 101 loads the programs stored in the auxiliary storage unit 103 into the main storage unit 102 and executes them, thereby realizing the driver assistance control and notification control described later. The ECU 100 does not necessarily have to be realized by a single physical configuration, but may be composed of multiple computers that cooperate with each other. In addition, some or all of the functions of the ECU 100 may be realized by hardware circuits such as ASICs or FPGAs.

[0025] Furthermore, vehicle 10 is a vehicle capable of performing driver assistance control and notification control. Driver assistance control is a driving control of vehicle 10 that is performed automatically to avoid collisions with obstacles (e.g., other vehicles, people, animals, or objects) present on the road on which vehicle 10 is traveling. Notification control is a control that notifies the driver of vehicle 10 of the presence of obstacles present on the road on which vehicle 10 is traveling.

[0026] Furthermore, vehicle 10 is a vehicle capable of acquiring target information. Target information is information about targets that are within a predetermined detection range from vehicle 10. Here, examples of targets include other vehicles, people, animals, or objects. Vehicle 10 acquires target information by analyzing images captured by an external camera mounted on it, or by analyzing detection values ​​from a target detection sensor (e.g., LiDAR or millimeter-wave sensor) mounted on it.

[0027] Here, we will explain the traffic conditions under which driver assistance control or notification control will be implemented in the first vehicle 10a, based on Figure 2. Figure 2 is a diagram showing an example of a traffic condition including the first vehicle 10a and the second vehicle 10b. In Figure 2, the white arrow A represents the direction of travel of the first vehicle 10a. Also in Figure 2, the solid arrow, dashed arrow, and dotted arrow indicate the transmission and reception of information.

[0028] In Figure 2, the first vehicle 10a is about to enter an intersection. The second vehicle 10b is traveling towards the intersection on a road that intersects with the road the first vehicle 10a is traveling on. At this time, the first vehicle 10a and the second vehicle 10b are assumed to be within a predetermined communication range of each other. Furthermore, a third vehicle 20 is located in front of the second vehicle 10b, also traveling towards the intersection. Here, the third vehicle 20 is a vehicle that does not have vehicle-to-vehicle communication capabilities or wireless communication capabilities with the server device 200. At this time, the third vehicle 20 is assumed to be within a predetermined detection range of the second vehicle 10b.

[0029] Under the circumstances shown in Figure 2, the second vehicle 10b and the third vehicle 20 may become obstacles to the first vehicle 10a. In this case, as shown by the solid arrows in Figure 2, the first vehicle 10a receives vehicle information from the second vehicle 10b via vehicle-to-vehicle communication. Figure 3 shows an example of the structure of a vehicle information table. As shown in Figure 3, the vehicle information table has a vehicle ID field, a location information field, and a speed information field. The vehicle ID field is entered with the vehicle ID, which is identification information for identifying the second vehicle 10b. The location information field is entered with information indicating the current location of the second vehicle 10b. The speed information field is entered with information indicating the speed of the second vehicle 10b. Note that the vehicle information transmitted from the second vehicle 10b may include information indicating the driving status of the second vehicle 10b, other than location information and speed information.

[0030] The first vehicle 10a can be aware of the presence of the second vehicle 10b by receiving vehicle information from the second vehicle 10b. However, since wireless communication does not occur between the first vehicle 10a and the third vehicle 20, the first vehicle 10a cannot be aware of the presence of the third vehicle 20. That is difficult.

[0031] On the other hand, the second vehicle 10b can perceive the third vehicle 20 as a target. Therefore, the second vehicle 10b can acquire information regarding the movement of the third vehicle 20 as target information. Figure 4 is a diagram showing an example of the target information table configuration. As shown in Figure 4, the target information table has a vehicle ID field, a target location information field, and a target speed information field. The vehicle ID field is entered with the vehicle ID, which is identification information for identifying the second vehicle 10b. The target location information field is entered with information indicating the current position of the third vehicle 20. The target speed information field is entered with information indicating the speed of the third vehicle 20. Note that the target information transmitted from the second vehicle 10b may also include information indicating the driving status of the third vehicle 20, other than target location information and target speed information. Furthermore, if multiple targets exist within a predetermined detection range from the second vehicle 10b, the target information table is entered with target location information and target speed information for each target. Then, as shown by the dashed arrow in Figure 2, the second vehicle 10b transmits the target information it has acquired to the server device 200.

[0032] When the first vehicle 10a receives vehicle information from the second vehicle 10b, it sends a transmission request to the server device 200, as shown by the dashed arrow in Figure 2. The transmission request is information requesting that the server device 200 transmit the target information received from the second vehicle 10b to the first vehicle 10a. When the server device 200 receives the transmission request from the first vehicle 10a, it transmits the target information received from the second vehicle 10b to the first vehicle 10a, as shown by the dashed arrow in Figure 2. Then, in the first vehicle 10a, the ECU 100 performs driving assistance control or notification control based on the received vehicle information and target information.

[0033] As described above, in the communication system 1, when the first vehicle 10a receives vehicle information from the second vehicle 10b via vehicle-to-vehicle communication, the first vehicle 10a receives the target information acquired by the second vehicle 10b via the server device 200. This allows the first vehicle 10a to acquire the target information even if the amount of target information acquired by the second vehicle 10b is too large to be transmitted via vehicle-to-vehicle communication. Therefore, the first vehicle 10a can reliably acquire both the vehicle information of the second vehicle 10b and the target information acquired by the second vehicle 10b. As a result, the first vehicle 10a can reliably perform various controls using both the vehicle information of the second vehicle 10b and the target information acquired by the second vehicle 10b.

[0034] (Information processing) Next, the information processing performed in the communication system 1 according to this embodiment will be described with reference to Figure 5. Figure 5 is a sequence diagram showing the flow of information processing performed in the communication system 1. In the sequence diagram shown in Figure 5, the processing at each step performed in the first vehicle 10a is performed by the processor 101 of the ECU 100 mounted on the first vehicle 10a. Also, in the sequence diagram shown in Figure 5, the processing at each step performed in the second vehicle 10b is performed by the processor 101 of the ECU 100 mounted on the second vehicle 10b. Furthermore, the information processing shown in Figure 5 is performed when the first vehicle 10a and the second vehicle 10b are within a predetermined communication range of each other.

[0035] In this flow, first, target information is acquired in the second vehicle 10b (S101). Here, the second vehicle 10b acquires target information by analyzing images captured by an external camera mounted on the second vehicle 10b, or by analyzing the detection values ​​of a target detection sensor mounted on the second vehicle 10b. If multiple targets exist within a predetermined detection range from the second vehicle 10b, the second vehicle 10b acquires target information for each target. Then, the second vehicle 10b transmits the target information acquired in S101 to the server device 200 (S102). At this time, the transmission of target information from the second vehicle 10b is performed via the second communication device 12 of the second vehicle 10b. The target information transmitted from the second vehicle 10b to the server device 200 includes the vehicle ID of the second vehicle 10b.

[0036] In addition, the second vehicle 10b also acquires its own vehicle information (S103). Here, the location information of the second vehicle 10b is acquired from the GPS receiver mounted on the second vehicle 10b. In addition, the speed information of the second vehicle 10b is acquired from the speed sensor mounted on the second vehicle 10b. The second vehicle 10b then transmits the vehicle information acquired in S103 to the first vehicle 10a via vehicle-to-vehicle communication (S104). At this time, the transmission of vehicle information from the second vehicle 10b is performed via the first communication device 11 of the second vehicle 10b. The vehicle information transmitted from the second vehicle 10b to the first vehicle 10a includes the vehicle ID of the second vehicle 10b.

[0037] In the first vehicle 10a, when vehicle information is received from the second vehicle 10b, a transmission request is generated (S105). At this time, the transmission request is generated based on the vehicle ID of the second vehicle 10b included in the vehicle information received from the second vehicle 10b. In other words, the transmission request is generated as information requesting the server device 200 to transmit the target information received from the second vehicle 10b. The first vehicle 10a then sends the transmission request generated in S105 to the server device 200 (S106). At this time, the transmission of the transmission request from the first vehicle 10a is performed via the second communication device 12 of the first vehicle 10a.

[0038] When the server device 200 receives a transmission request from the first vehicle 10a, it transmits the target information received from the second vehicle 10b to the first vehicle 10a in S102 (S107). Then, in the first vehicle 10a, driving support control or notification control is performed based on the vehicle information received from the second vehicle 10b in S104 and the target information received from the server device 200 in S107 (S108).

[0039] At this time, the processor 101 of the ECU 100 mounted in the first vehicle 10a determines, based on the vehicle information of the second vehicle 10b, whether or not the first vehicle 10a is likely to collide with the second vehicle 10b. The processor 101 of the ECU 100 mounted in the first vehicle 10a also determines, based on the target information, whether or not the first vehicle 10a is likely to collide with the target corresponding to the target information. If it is determined that the first vehicle 10a is likely to collide with the second vehicle 10b or the target corresponding to the target information, driver assistance control or notification control is executed.

[0040] (Variation 1) The following describes a first modified example of this embodiment. The amount of target information acquired by the second vehicle 10b varies depending on the surrounding conditions of the second vehicle 10b. In other words, the more targets there are within a predetermined detection range from the second vehicle 10b, the larger the amount of target information acquired by the second vehicle 10b. Conversely, if there are few targets within a predetermined detection range from the second vehicle 10b, the amount of target information acquired by the second vehicle 10b will be small. Therefore, depending on the surrounding conditions of the second vehicle 10b, the amount of target information acquired by the second vehicle 10b may be limited to an amount that can be transmitted to the first vehicle 10a via vehicle-to-vehicle communication. In this modified example, the destination for transmitting the target information from the second vehicle 10b is selected based on the amount of target information acquired by the second vehicle 10b.

[0041] Here, the information processing performed in the ECU 100 mounted on the second vehicle 10b according to this modified example will be explained with reference to Figure 6. Figure 6 is a flowchart showing the flow of information processing performed in the ECU 100 mounted on the second vehicle 10b. This flow is executed by the processor 101 of the ECU 100 mounted on the second vehicle 10b.

[0042] In this flow, first, target information is acquired in S201 (the processing in this step is the same as the processing in S101 in the sequence diagram shown in Figure 5). Next, in S202, it is determined whether the capacity Qinfo of the target information acquired in S201 is greater than a predetermined capacity Q0. Here, the predetermined capacity Q0 is a capacity that is less than or equal to the upper limit of the data capacity that can be transmitted and received by vehicle-to-vehicle communication, and is a predetermined capacity.

[0043] If the determination in S202 is positive, then in S203, the target information is transmitted to the server device (the processing in this step is the same as the processing in S102 in the sequence diagram shown in Figure 5). On the other hand, if the determination in S202 is negative, then in S204, the target information is transmitted to the first vehicle 10a via vehicle-to-vehicle communication. At this time, the transmission of target information from the second vehicle 10b is performed via the first communication device 11 of the second vehicle 10b.

[0044] According to this modified example, when the amount of target information acquired by the second vehicle 10b is sufficiently small, the target information can be transmitted directly from the second vehicle 10b to the first vehicle 10a.

[0045] (Other variations) In the above embodiment, the first vehicle 10a sent a transmission request to the server device 200 in order to receive the target information transmitted to the server device 200 from the second vehicle 10b. However, the first vehicle 10a can also receive the target information from the server device 200 without sending a transmission request.

[0046] For example, the first vehicle 10a and the second vehicle 10b may each transmit their own vehicle information to the server device 200. In this case, the server device 200 can obtain location information from both the first vehicle 10a and the second vehicle 10b. Based on the current locations of the first vehicle 10a and the second vehicle 10b, the server device 200 can determine that the first vehicle 10a and the second vehicle 10b are within a predetermined communication range of each other. At this time, the server device 200 may specify the first vehicle 10a as the destination for the target information received from the second vehicle 10b. This allows the first vehicle 10a to receive target information from the server device 200 without sending a transmission request.

[0047] Furthermore, there may be cases where there are no other vehicles, people, animals, or objects that could serve as targets around the second vehicle 10b. In this case, the second vehicle 10b cannot acquire target information. Therefore, the server device 200 will not receive target information from the second vehicle 10b. In such cases, even if the first vehicle 10a receives vehicle information from the second vehicle 10b, the first vehicle 10a does not need to send a transmission request to the server device 200.

[0048] Therefore, when the second vehicle 10b acquires target information and transmits it to the server device 200, the vehicle information transmitted from the second vehicle 10b to the first vehicle 10a may include predetermined information indicating that the second vehicle 10b has transmitted the target information to the server device 200. The first vehicle 10a then sends a transmission request to the server device 200 if the vehicle information received from the second vehicle 10b includes the predetermined information. In other words, the first vehicle 10a does not send a transmission request to the server device 200 if the vehicle information received from the second vehicle 10b does not include the predetermined information. This prevents the first vehicle 10a from sending unnecessary transmission requests to the server device 200 when it receives vehicle information from the second vehicle 10b.

[0049] <Other Embodiments> The embodiments described above are merely examples, and this disclosure may be modified as appropriate without departing from its essence. Furthermore, the processes and means described in this disclosure may not result in any technical inconsistencies. As long as it does not violate any rules, it can be freely combined and implemented.

[0050] Furthermore, a process described as being performed by a single device may be divided and executed by multiple devices. Conversely, a process described as being performed by different devices may be executed by a single device. In a computer system, the hardware configuration (server configuration) by which each function is implemented can be flexibly changed.

[0051] The present disclosure can also be realized by supplying a computer program implementing the functions described in the embodiments above to a computer, and having one or more processors in the computer read and execute the program. Such a computer program may be provided to the computer by a non-temporary computer-readable storage medium that can be connected to the computer's system bus, or it may be provided to the computer via a network. The non-temporary computer-readable storage medium includes any type of disk, such as magnetic disks (floppy disks, hard disk drives (HDDs), etc.), optical disks (CD-ROMs, DVDs, Blu-ray discs, etc.), read-only memory (ROM), random access memory (RAM), EPROM, EEPROM, magnetic cards, flash memory, or optical cards, and any other type of medium suitable for storing electronic instructions. [Explanation of symbols]

[0052] 1. Communication system 10. Vehicles 10a ··First vehicle 10b ··2nd vehicle 11. First communication device 12. Second communication device 100··ECU 200 Server Equipment

Claims

1. An information processing device to be installed in the first vehicle, Vehicle information, including information regarding the driving status of the second vehicle, is received from the second vehicle via vehicle-to-vehicle communication. When the vehicle information is received from the second vehicle, the target information acquired by the second vehicle and transmitted by the second vehicle to the server device is received from the server device, An information processing device comprising a control unit configured to perform the following:

2. The control unit, When the vehicle information is received from the second vehicle, the server device further transmits a request to transmit the target information received from the second vehicle to the server device. The information processing apparatus according to claim 1.

3. The control unit, If the vehicle information received from the second vehicle includes information indicating that the second vehicle has transmitted the target information to the server device, the transmission request is sent to the server device. The information processing apparatus according to claim 2.

4. The vehicle information includes identification information for identifying the second vehicle, The control unit generates the transmission request based on the identification information. The information processing apparatus according to claim 2 or 3.

5. The vehicle information includes, at a minimum, location information and speed information of the second vehicle, as information relating to the driving state of the second vehicle. The information processing apparatus according to claim 1 or 2.

6. The target information includes at least location information and speed information of the target that is within a predetermined detection range from the second vehicle. The information processing apparatus according to claim 1 or 2.

7. Receiving vehicle information, including information regarding the driving status of other vehicles, from the other vehicles via vehicle-to-vehicle communication, When receiving the vehicle information from the other vehicle, the server device receives the target information acquired by the other vehicle and transmitted to the server device by the other vehicle. A vehicle configured to perform [a certain action].

8. When the vehicle information is received from the other vehicle, the server device further transmits a request to transmit the target information received from the other vehicle to the server device. The vehicle according to claim 7.

9. If the vehicle information received from the other vehicle includes information indicating that the other vehicle has transmitted the target information to the server device, the transmission request is sent to the server device. The vehicle according to claim 8.

10. The aforementioned vehicle information includes identification information for identifying other vehicles, Based on the aforementioned identification information, the transmission request is generated. The vehicle according to claim 8 or 9.

11. The vehicle information includes, at a minimum, information regarding the driving status of the other vehicle, the location information of the other vehicle and the speed information of the other vehicle. The vehicle according to claim 7 or 8.

12. The aforementioned target information includes at least the location information of the target that is within a predetermined detection range from the other vehicle, and the speed information of the target. The vehicle according to claim 7 or 8.

13. A system including a first vehicle, a second vehicle, and a server device, The second vehicle transmits vehicle information, including information regarding the driving status of the second vehicle, to the first vehicle via vehicle-to-vehicle communication. The second vehicle transmits the target information it has acquired to the server device. When the second vehicle transmits the vehicle information to the first vehicle, the server device transmits the target information received from the second vehicle to the first vehicle. A system configured in such a way.

14. When the first vehicle receives the vehicle information from the second vehicle, it sends a request to the server device to transmit the target information. When the server device receives the transmission request from the first vehicle, it transmits the target information to the first vehicle. The system according to claim 13.

15. The aforementioned first vehicle is, If the vehicle information received from the second vehicle includes information indicating that the second vehicle has transmitted the target information to the server device, the transmission request is sent to the server device. The system according to claim 14.

16. The second vehicle is, If the amount of target information acquired by the system is greater than a predetermined amount, the system transmits the target information to the server device. If the amount of target information acquired by the system is less than or equal to the predetermined amount, the system transmits the target information to the first vehicle via vehicle-to-vehicle communication. The system according to claim 13.

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