Driving assistance device and driving assistance method

The driving assistance device uses vehicle-to-vehicle communication to predict collisions by analyzing turn signal states and provides proactive safety measures, improving traffic safety and convenience.

JP7747722B2Active Publication Date: 2025-10-01HONDA MOTOR CO LTD
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Patent Information

Application Number
JP2023219944
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-12-26
Publication Date
2025-10-01
Estimated Expiration
2043-12-26

AI Technical Summary

Technical Problem

Existing systems struggle to accurately determine the turn signal states of other vehicles, making it difficult to provide effective driving assistance and enhance traffic safety.

Method used

A driving assistance device that utilizes vehicle-to-vehicle communication to acquire surrounding vehicle information, including position, travel path, and turn signal states, predicts potential collisions based on these factors, and provides notifications or braking assistance to prevent collisions.

Benefits of technology

Enhances driving safety by accurately predicting and preventing collisions through precise turn signal analysis and vehicle communication, contributing to sustainable transportation systems.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a technique advantageous for appropriately performing driving assistance of a self-vehicle.SOLUTION: A driving assistance device includes: an acquisition section that acquires peripheral vehicle information indicating vehicle speed, a position, a traveling track, and an indication state of a blinker of a peripheral vehicle from the peripheral vehicle existing around a self-vehicle mounted with the driving assistance device by vehicle-to-vehicle communication; a prediction section that predicts a possibility of collision between the self-vehicle and the peripheral vehicle on the basis of self-vehicle information indicating vehicle speed, a position, a traveling track, and an indication state of a blinker of the self-vehicle and the peripheral vehicle information; and a notification section that notifies an occupant of the self-vehicle on the basis of a prediction result by the prediction section. The prediction section predicts a possibility of collision between the self-vehicle and the peripheral vehicle on the basis of at least the indication state of the blinker of the self-vehicle, the indication state of the blinker of the peripheral vehicle, and the position of the peripheral vehicle with respect to the self-vehicle.SELECTED DRAWING: Figure 9
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Description

[Technical Field]

[0001] The present invention relates to a driving assistance device and a driving assistance method. [Background technology]

[0002] In recent years, efforts to provide access to sustainable transportation systems that take into consideration vulnerable traffic participants have been gaining momentum. Toward this goal, efforts are being made to further improve traffic safety and convenience through research and development of preventive safety technologies. Devices that provide driving assistance to prevent collisions with other vehicles (surrounding vehicles) are known. Patent Document 1 describes determining whether a dangerous situation exists based on the state of the turn signal of the other vehicle. Patent Document 2 describes determining whether a leading vehicle will change lanes or paths based on the state of the turn signal. Patent Document 3 describes determining whether a collision between a vehicle and another vehicle is likely based on whether the vehicle is turning right or left. Patent Document 4 describes suppressing collision avoidance assistance depending on the steering situation of the vehicle driver. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Publication No. 2020-16950 [Patent Document 2] Patent No. 7274991 [Patent Document 3] Japanese Patent Application Laid-Open No. 2013-134567 [Patent Document 4] International Publication No. 2015 / 008380 Summary of the Invention [Problem to be solved by the invention]

[0004] It is difficult to accurately obtain the indication state of the turn signals of other vehicles using sensors such as cameras. Some aspects of the present disclosure aim to provide an advantageous technology for appropriately providing driving assistance for a vehicle, thereby contributing to the development of sustainable transportation systems. [Means for solving the problem]

[0005] According to some embodiments, the driving assistance device includes: an acquisition unit that acquires, via vehicle-to-vehicle communication, surrounding vehicle information indicating a vehicle speed, a position, a travel path, and a turn signal indication state of a surrounding vehicle from a surrounding vehicle that is present around a host vehicle on which the driving assistance device is installed; position a prediction means for predicting the possibility of a collision between the host vehicle and the surrounding vehicle based on host vehicle information indicating the indication state of a turn signal and the surrounding vehicle information; and a notification means for notifying an occupant of the host vehicle based on the prediction result by the prediction means. a determination means for determining whether the nearby vehicle has changed lanes based on the travel path of the nearby vehicle included in the nearby vehicle information; The prediction means predicts the possibility of a collision between the host vehicle and the surrounding vehicle based on at least the indication state of a turn signal of the host vehicle, the indication state of a turn signal of the surrounding vehicle, and the position of the surrounding vehicle relative to the host vehicle. and when the turn signal of the surrounding vehicle continues to indicate a direction even after the surrounding vehicle has completed a lane change, the possibility of a collision between the host vehicle and the surrounding vehicle is predicted without being based on the indication state of the turn signal of the surrounding vehicle. , a driving assistance device is provided. [Effects of the Invention]

[0006] According to some embodiments, an advantageous technique is provided for appropriately providing driving assistance for a vehicle. [Brief explanation of the drawings]

[0007] [Figure 1] FIG. 1 is a block diagram illustrating an example configuration of a vehicle according to some embodiments. [Figure 2] FIG. 10 illustrates an example of risk location information according to some embodiments. [Figure 3] 10A and 10B are schematic diagrams illustrating examples of trajectory intersections according to some embodiments. [Figure 4] FIG. 1 is a flow diagram illustrating an example of a method for registering nearby vehicles according to some embodiments. [Figure 5]FIG. 10 is a schematic diagram illustrating an example of a range that includes surrounding vehicles according to some embodiments. [Figure 6] FIG. 10 is a flow diagram illustrating an example of a driving assistance operation regarding a nearby vehicle to the side, according to some embodiments. [Figure 7] 10A and 10B are schematic diagrams illustrating an example of a driving assistance operation regarding a nearby vehicle to the side according to some embodiments. [Figure 8] 10A and 10B are schematic diagrams illustrating an example of a driving assistance operation regarding a nearby vehicle to the side according to some embodiments. [Figure 9] 10A and 10B are schematic diagrams illustrating an example of a driving assistance operation regarding a nearby vehicle to the side according to some embodiments. [Figure 10] FIG. 10 is a flow diagram illustrating an example of a driving assistance operation regarding a nearby vehicle ahead according to some embodiments. [Figure 11] 10A and 10B are schematic diagrams illustrating an example of a driving assistance operation regarding a nearby vehicle ahead according to some embodiments. [Figure 12] 10A and 10B are schematic diagrams illustrating an example of a driving assistance operation regarding a nearby vehicle ahead according to some embodiments. [Figure 13] 10A and 10B are schematic diagrams illustrating an example of a method for determining a nearby vehicle to be determined according to some embodiments. DETAILED DESCRIPTION OF THE INVENTION

[0008] Hereinafter, the embodiments will be described in detail with reference to the accompanying drawings. Note that the following embodiments do not limit the scope of the invention as claimed, and not all combinations of features described in the embodiments are necessarily essential to the invention. Two or more of the features described in the embodiments may be combined in any desired manner. Furthermore, the same reference numerals are used to designate identical or similar components, and redundant descriptions will be omitted.

[0009] <Vehicle configuration example> With reference to FIG. 1 , an example configuration of a vehicle 100 according to some embodiments will be described. As shown in FIG. 1 , the vehicle 100 may include a sensor group 101, a turn signal lever 102, a Global Navigation Satellite System (GNSS) antenna 103, a vehicle-to-vehicle communication antenna 104, a notification device 105, a braking device 106, turn signals 107, and a control device 108. Although FIG. 1 illustrates the components referred to in the following description, the vehicle 100 may include other components for operating as a vehicle, such as a drive unit and a transmission. Additionally or alternatively, the vehicle 100 may not include some of the components shown in FIG. 1 . The vehicle 100 may be a four-wheeled vehicle, a two-wheeled vehicle, or another type of vehicle. Hereinafter, a driver of the vehicle 100 may be simply referred to as a driver.

[0010] The control device 108 controls the overall operation of the vehicle 100. As will be described later, the control device 108 performs driving assistance for the vehicle 100 in which the control device 108 is installed. Therefore, the control device 108 may be referred to as a driving assistance device. The driving assistance provided by the control device 108 may be collision prevention assistance for preventing (reducing) collisions with other vehicles. In some embodiments, the control device 108 is capable of performing collision prevention assistance without using map information. In the following description, the vehicle 100 may be referred to as the host vehicle 100 to easily distinguish it from other vehicles. Furthermore, a vehicle different from the vehicle 100 may be referred to as another vehicle. Of the other vehicles, a vehicle currently present around the host vehicle 100 may be referred to as a surrounding vehicle. A surrounding vehicle may be a vehicle currently capable of vehicle-to-vehicle communication with the host vehicle 100.

[0011] The sensor group 101 includes various sensors for performing driving assistance for the vehicle 100. For example, the sensor group 101 may include a speed sensor that detects the speed of the vehicle 100, an acceleration sensor that detects the acceleration of the vehicle 100, etc. The sensor group 101 may also include external detection sensors such as a camera, millimeter wave radar, and LIDAR (Light Detection and Ranging) that can detect objects around the vehicle 100. The sensor group 101 outputs the detection results to the control device 108.

[0012] The turn signal lever 102 is an operator for receiving an operation to change the indication state of the turn signal 107 (which may also be called a direction indicator) from the driver. The indication state of the turn signal 107 may include a state indicating the right side of the vehicle 100, a state indicating the left side of the vehicle 100, and a state indicating neither side. The control device 108 switches the indication state of the turn signal 107 in response to the operation of the turn signal lever 102 by the driver. The turn signal 107 may be located on both the right and left sides of the vehicle 100. For example, when the driver operates the turn signal lever 102 to indicate the right side, the control device 108 causes the turn signal 107 on the right side of the vehicle 100 to flash. When the driver operates the turn signal lever 102 to indicate the left side, the control device 108 causes the turn signal 107 on the left side of the vehicle 100 to flash. The control device 108 turns off the turn signals 107 on both sides of the vehicle 100 when the driver operates the turn signal lever 102 so as not to indicate either direction. The control device 108 may change the indication state of the turn signals 107 without depending on the driver's operation of the turn signal lever 102. For example, the control device 108 may turn off the blinking turn signals 107 in response to the completion of turning of the vehicle 100.

[0013] The GNSS antenna 103 receives radio waves for position measurement transmitted from GNSS satellites. For example, the GNSS antenna 103 can be used to acquire information about the current position and / or driving path (driving history) of the vehicle 100. The vehicle-to-vehicle communication antenna 104 is an antenna that transmits and receives various data to and from surrounding vehicles. For example, the vehicle-to-vehicle communication antenna 104 can be used to acquire information about the current position, speed, and driving path of surrounding vehicles.

[0014] The notification device 105 is a device that issues a notification to an occupant (e.g., a driver) of the vehicle 100. When there is a possibility that the vehicle 100 will collide with a surrounding vehicle, the control device 108 can notify the occupant of the vehicle 100 of the possibility of a collision with the surrounding vehicle by using the notification device 105 as driving assistance. For example, the notification device 105 may include a display unit such as a display, and may display information indicating the possibility of a collision with the surrounding vehicle on the display unit, or may include an audio output unit such as a speaker, and may output the information indicating the possibility of a collision with the surrounding vehicle from the audio output unit by voice or the like.

[0015] The braking device 106 is a device, such as a brake, for performing a braking operation on the vehicle 100. When there is a possibility that the vehicle 100 will collide with a nearby vehicle, the control device 108 operates the braking device 106 to assist in decelerating the vehicle 100 as driving assistance, thereby making it possible to avoid a collision with the nearby vehicle.

[0016] The control device 108 is a device (computer) that controls the vehicle 100, and can be configured, for example, by an ECU (Electric Control Unit). The control device 108 can perform driving assistance through inter-vehicle communication with other vehicles and processing within the vehicle 100. For example, the control device 108 can perform driving assistance without using map information. The control device 108 includes a processing unit 110, a storage unit 111, a GNSS module 113, and an inter-vehicle communication module 114, which are connected by a bus (not shown).

[0017] The processing unit 110 is a processor represented by a CPU (Central Processing Unit), and executes programs stored in the storage unit 111. The storage unit 111 includes, for example, a RAM (Random Access Memory), a ROM (Read Only Memory), a hard disk, etc., and stores a program (driving assistance program) for the processing unit 110 to execute driving assistance processing for the vehicle 100, a program (learning program) for the processing unit 110 to learn risk locations, various data, etc. The storage unit 111 may store risk location information 112 created based on intersections between the driving trajectory of the vehicle 100 and the driving trajectory of another vehicle. The risk location information 112 may include multiple risk locations. A risk location may be a location where there is a possibility or a high probability that the vehicle 100 will collide with another vehicle. The risk location information 112 may be managed as a database.

[0018] The GNSS module 113 receives position information and the like of the vehicle 100 from GNSS satellites via the GNSS antenna 103. The vehicle-to-vehicle communication module 114 receives various types of information from other vehicles via the vehicle-to-vehicle communication antenna 104.

[0019] The processing unit 110 may include an acquisition unit 110a, a prediction unit 110b, a support unit 110c, and an update unit 110d in order to perform driving support (collision prevention support in some embodiments) for the vehicle 100. Note that the processing unit 110 is not limited to a configuration including the units 110a to 110d. Other units may be added or some units may be omitted depending on the type of driving support to be performed by the vehicle 100.

[0020] The acquisition unit 110a acquires surrounding vehicle information indicating the current position, vehicle speed, traveling path, and blinker indication state of the surrounding vehicles from surrounding vehicles present around the vehicle 100 via the inter-vehicle communication antenna 104 (inter-vehicle communication module 114). The surrounding vehicle information may explicitly or implicitly indicate the current position, vehicle speed, traveling path, and blinker indication state of the surrounding vehicles. For example, the surrounding vehicle information may include the vehicle speed as is, or may include information for calculating the vehicle speed (current and immediately preceding two geographical positions and their positioning times). The acquisition unit 110a may acquire host vehicle information indicating the current position, speed, traveling path, and blinker indication state of the vehicle 100 via the sensor group 101 and the GNSS antenna 103 (GNSS module 113). The acquisition unit 110a may acquire the indication state of the blinker 107 from the blinker 107, or may store the most recent change command to the blinker 107 and acquire the indication state based on the stored change command.

[0021] The prediction unit 110b predicts the possibility of the vehicle 100 colliding with another vehicle based on the host vehicle information and surrounding vehicle information acquired by the acquisition unit 110a. The prediction unit 110b may set a judgment area and predict the possibility of the vehicle 100 colliding with another vehicle in the judgment area. The prediction unit 110b may also provide driving assistance for the vehicle 100 based on the risk position information 112. For example, when at least one risk position among multiple risk positions included in the risk position information 112 is located near the host vehicle, the prediction unit 110b may set the judgment area to include the risk position.

[0022] The support unit 110c performs driving support (collision prevention support) for the host vehicle 100 based on the prediction result by the prediction unit 110b. In some embodiments, the support unit 110c may perform at least one of the following as driving support for the vehicle 100: notifying the occupants of the vehicle 100 using the notification device 105, and supporting deceleration of the vehicle 100 using the braking device 106. The deceleration support may include support for decelerating the host vehicle 100 until it stops, i.e., stopping support. The stopping support may include not only deceleration of the host vehicle 100, but also determination of a stopping position for the host vehicle 100, route planning toward the stopping position, and automatic steering along the route.

[0023] The update unit 110d identifies an intersection between the travel trajectory of the vehicle 100 and the travel trajectories of the surrounding vehicles. An intersection between the travel trajectory of the vehicle 100 and the travel trajectories of the surrounding vehicles is hereinafter referred to as a trajectory intersection. There is a possibility that a road intersection exists near the trajectory intersection. Furthermore, the update unit 110d updates the risk location information 112 stored in the memory unit 111 based on the identified trajectory intersection. For example, the update unit 110d may update the risk location information 112 by adding the trajectory intersection to the risk location information 112. Alternatively or in addition to this, the update unit 110d may update the risk location information 112 by correcting any risk location included in the risk location information 112 based on the trajectory intersection.

[0024] Next, an example of the risk location information 112 will be described with reference to FIG. 2. In the example of FIG. 2, the risk location information 112 is described in a table format, but the risk location information 112 may be in other formats. The risk location information 112 has a record for each risk location. The columns of the risk location information 112 shown in FIG. 2 are an example. The risk location information 112 may include other columns, or may not include some of the columns shown in FIG. 2.

[0025] The risk location information 112 may include, for each risk location, information regarding a risk location ID, registration date and time, coordinates, and passing direction. The risk location ID is a number that uniquely identifies the risk location. The registration date and time is the date and time when the risk location was registered in the risk location information 112. The coordinates are data for identifying the risk location and are represented by, for example, latitude and longitude data. The coordinates may include altitude data such as elevation in addition to latitude and longitude data. The passing direction is the direction (direction, angle) in which the vehicle 100 was facing when passing the trajectory intersection used to determine the risk location. The passing direction may be understood as the traveling direction (approach direction) of the vehicle 100 when entering the trajectory intersection. In the example of FIG. 2, the passing direction of the vehicle 100 is defined as 0° north, 90° east, 180° south, and 270° west.

[0026] Next, an example of a trajectory intersection will be described with reference to FIG. 3. As described above, a trajectory intersection is an intersection between the travel trajectory of the vehicle 100 and the travel trajectory of another vehicle. In this specification, a case will be described in which the vehicle 100 is located in an area where driving on the right is mandatory. In this case, of the left and right sides, the side of the road on which driving on the road is mandatory in the area where the vehicle 100 is located is the right side, and the opposite side is the left side. In addition, the oncoming lane side of the vehicle 100 is the left side of the vehicle 100. The embodiments described in this specification are also applicable to cases in which the vehicle 100 is located in an area where driving on the left is mandatory. In this case, the left and right sides in the processing described below (e.g., right and left turns of the vehicle 100 or other vehicles, and right and left sides of the turn signal indication) are reversed. Specifically, of the left and right sides, the side of the road on which driving on the road is mandatory in the area where the vehicle 100 is located is the left side, and the opposite side is the right side. Furthermore, the oncoming traffic lane of the vehicle 100 is on the right side of the vehicle 100.

[0027] In the example shown in FIG. 3(a), the position where the travel trajectory 301a of the host vehicle 100 traveling straight north and the travel trajectory 302a of the other vehicle OVa traveling straight west intersect is the trajectory intersection CPa. Note that the timing (time) at which the host vehicle 100 passes the trajectory intersection CPa is different from the timing (time) at which the other vehicle OVa passes the trajectory intersection CPa, so no collision occurs between the host vehicle 100 and the other vehicle OVa. Furthermore, the travel trajectory 301a of the host vehicle 100 is included in the host vehicle information acquired by the acquisition unit 110a via the sensor group 101 and the GNSS antenna 103 (GNSS module 113). The travel trajectory 302a of the other vehicle OVa is included in the other vehicle information acquired by the acquisition unit 110a via the vehicle-to-vehicle communication antenna 104 (vehicle-to-vehicle communication module 114). Since the other vehicle OVa is a nearby vehicle present around the host vehicle 100 at the time of acquisition, the other vehicle information may be understood as nearby vehicle information.

[0028] 3(b), the position where a travel trajectory 301b of the host vehicle 100, which travels straight north and turns left, intersects with a travel trajectory 302b of another vehicle OVb, which travels straight south, is the trajectory intersection CPb. Note that the timing (time) at which the host vehicle 100 passes through the trajectory intersection CPb is different from the timing (time) at which the other vehicle OVb passes through the trajectory intersection CPb, and therefore no collision occurs between the host vehicle 100 and the other vehicle OVb. Furthermore, the travel trajectory 301b of the host vehicle 100, like the travel trajectory 301a, is included in the host vehicle information acquired by the acquisition unit 110a via the sensor group 101 and the GNSS antenna 103 (GNSS module 113). The travel path 302b of the other vehicle OVb, like the travel path 302a, is included in the other vehicle information (surrounding vehicle information) acquired by the acquisition unit 110a via the inter-vehicle communication antenna 104 (inter-vehicle communication module 114).

[0029] The functions of the control device 108 can be realized by either hardware or software. For example, the functions of the control device 108 may be realized by the processing unit 110 (CPU) executing a driving assistance program and / or a learning program as described above, or may be realized by an integrated circuit such as a programmable logic device (PLD) or an application specific integrated circuit (ASIC). In the example of FIG. 1, the control device 108 is shown as a single element, but may be divided into two or more elements as necessary.

[0030] <Management of surrounding vehicles> An example of a process for managing nearby vehicles will be described with reference to Fig. 4. The process shown in the flowchart of Fig. 4 is executed by the processing unit 110 in accordance with a learning program read from the storage unit 111. The process of Fig. 4 may be started, for example, when the ignition of the vehicle 100 is turned on. The process of Fig. 4 may be repeatedly executed until the ignition of the vehicle 100 is turned off.

[0031] In step S401, the processing unit 110 (for example, the acquisition unit 110a) determines whether or not another vehicle is present around the host vehicle 100. If it is determined that another vehicle is present around the host vehicle 100, the processing unit 110 transitions the process to step S402, and otherwise transitions the process to step S404. For example, the processing unit 110 may determine that another vehicle is present around the host vehicle 100 when vehicle-to-vehicle communication can be performed via the vehicle-to-vehicle communication antenna 104 (vehicle-to-vehicle communication module 114).

[0032] In step S402, the processing unit 110 (for example, the acquisition unit 110a) registers the other vehicle discovered in step S401 as a nearby vehicle. For example, the memory unit 111 may store a list of nearby vehicles, and the processing unit 110 may add information about the discovered nearby vehicle to this list. As will be described later, the nearby vehicle is subject to collision possibility determination. Instead of managing the information about the nearby vehicles in a list, in a repeatedly executed process, information may be acquired from all other vehicles capable of vehicle-to-vehicle communication at the start of each cycle, and the information acquired in this cycle may be discarded at the end of each cycle.

[0033] In step S403, the processing unit 110 (for example, the acquisition unit 110a) starts acquiring surrounding vehicle information from surrounding vehicles through vehicle-to-vehicle communication. As described above, the surrounding vehicle information may represent the vehicle speed, position, and travel trajectory of the surrounding vehicles. After starting to acquire surrounding vehicle information in step S402, the processing unit 110 repeatedly acquires surrounding vehicle information periodically (for example, every 100 ms) until vehicle-to-vehicle communication with the surrounding vehicles becomes impossible.

[0034] After starting to acquire the surrounding vehicle information, in step S403, the processing unit 110 (for example, the acquisition unit 110a) determines whether there is one or more registered surrounding vehicles that are no longer able to perform inter-vehicle communication. If such a vehicle is present, the processing unit 110 transitions the process to step S405, and otherwise transitions the process to step S401. For example, if a surrounding vehicle moves out of the communication range of inter-vehicle communication or if the power of the surrounding vehicle is turned off, the vehicle 100 will no longer be able to perform inter-vehicle communication with the surrounding vehicle.

[0035] In step S405, the processing unit 110 (for example, the acquisition unit 110a) cancels the registration of the nearby vehicle with which inter-vehicle communication is no longer possible. In other words, the processing unit 110 does not treat the vehicle with which inter-vehicle communication is no longer possible as a nearby vehicle. For example, the processing unit 110 deletes information about the nearby vehicle with which inter-vehicle communication is no longer possible from the list of nearby vehicles stored in the memory unit 111.

[0036] As described above, by executing the process of FIG. 4, the processing unit 110 can periodically acquire the latest nearby vehicle information from other vehicles in the vicinity of the vehicle 100 (that is, nearby vehicles).

[0037] <Driving assistance processing> The driving assistance process of some embodiments will be described with reference to Figures 5 to 13. As described with reference to Figure 3(a), when another vehicle is included in the range to the side of the host vehicle 100, if the host vehicle 100 and the other vehicle both travel straight, there is a possibility that these vehicles will collide. On the other hand, as described with reference to Figure 3(b), when the other vehicle is included in the range ahead of the host vehicle 100, there is a possibility that these vehicles will collide if the host vehicle 100 turns left and the other vehicle travels straight. In this way, the situation in which these vehicles may collide may vary depending on the position of the other vehicle relative to the host vehicle 100. Therefore, in some embodiments, the control device 108 performs different driving assistance depending on whether the surrounding vehicle is present within a range ahead of the host vehicle 100 or within a range to the side of the host vehicle 100.

[0038] With reference to FIG. 5, the range for selecting a driving assistance method will be described. Range 500 is located ahead of vehicle 100. The range ahead of vehicle 100 may refer to a range that includes the front of vehicle 100. Range 500 may be a sector-shaped range as shown in FIG. 5, or may have another shape. The sector-shaped range may be defined by a predetermined distance and a predetermined angle. The predetermined distance may be, for example, between 800 m and 1000 m, for example, 900 m. The same applies to the predetermined distances of the sector-shaped ranges below. Range 500 may be symmetrical with respect to the direction ahead of vehicle 100. The central angle of range 500 may be, for example, approximately 100 to 110 degrees.

[0039] Area 501 is located on the side of vehicle 100. The side of vehicle 100 may refer to an area including a diagonally forward direction of vehicle 100. Area 501 may include a direction directly to the side of vehicle 100. Area 501 may be a sector-shaped area as shown in FIG. 5, or may have another shape. The sector-shaped area may be defined by a predetermined distance and a predetermined angle. In the example of FIG. 5, areas 501 are located on both the right and left sides of vehicle 100. The central angle of area 501 may be, for example, approximately 80 to 90 degrees.

[0040] In the example of FIG. 5, part of range 500 and part of range 501 overlap. The central angle of this overlapping portion may be, for example, approximately 10 to 20 degrees. When a nearby vehicle is present in this overlapping portion, this nearby vehicle becomes a target of driving assistance in both the situation of FIG. 3(a) and the situation of FIG. 3(b). As an alternative to the example of FIG. 5, range 500 and range 501 may simply touch each other or may be separated from each other. Range 500, range 501 on the right side of vehicle 100, and range 501 on the left side of vehicle 100 may all be the same size, or may have at least partially different sizes.

[0041] When the surrounding vehicle is included in the range 501, the control device 108 may collide with another vehicle by moving straight ahead as shown in FIG. 3(a). Therefore, the control device 108 predicts the possibility of a collision when the host vehicle 100 moves straight ahead. This operation will be described later with reference to FIGS. 6 to 9. On the other hand, when the surrounding vehicle is included in the range 500, the control device 108 may collide with another vehicle by turning left as shown in FIG. 3(b). Therefore, the control device 108 predicts the possibility of a collision when the host vehicle 100 moves straight ahead. This operation will be described later with reference to FIGS. 10 to 12. The positions of the ranges 500 and 501 relative to the host vehicle 100 may be set in advance (for example, when the vehicle 100 is manufactured or when the software is updated) and stored in the storage unit 111.

[0042] FIG. 6 illustrates an example of processing for executing driving assistance when a nearby vehicle RV (FIG. 7(a)) is present within a range 501 to the side of the host vehicle 100. The processing shown in the flowchart of FIG. 6 is executed by the processing unit 110 in accordance with a driving assistance program read from the storage unit 111. The processing of FIG. 6 may be executed for a nearby vehicle RV, for example, each time a nearby vehicle RV is newly registered in step S602 of FIG. 6 while the driving assistance setting is on. In the processing of FIG. 6, multiple other vehicles may be registered as nearby vehicles. The processing of FIG. 6 is executed for each of these multiple nearby vehicles.

[0043] In step S601, the processing unit 110 (for example, its prediction unit 110b) determines whether the surrounding vehicle RV is present within the range 501 to the side of the host vehicle 100. If it is determined that the surrounding vehicle RV is present within the range 501 to the side of the host vehicle 100, the processing unit 110 transitions the process to step S602, and otherwise repeats step S601. This determination may be made based on the current position of the surrounding vehicle RV included in the latest surrounding vehicle information acquired from the surrounding vehicle RV. In the example shown in FIG. 7(a), the surrounding vehicle RV is present within the range 501.

[0044] In step S602, the processing unit 110 (e.g., its prediction unit 110b) determines whether the predicted path of the host vehicle 100 and the predicted path of the peripheral vehicle RV intersect. If it is determined that the predicted paths of these two vehicles intersect, the processing unit 110 transitions the process to step S603, and otherwise repeats step S602. The predicted path may be a half line extending forward from the vehicle. In the example shown in FIG. 7(a), the predicted path 700 of the host vehicle 100 intersects with the predicted path 701 of the peripheral vehicle RV. The intersection of the predicted path 700 of the host vehicle 100 and the predicted path 701 of the peripheral vehicle RV is represented as a predicted intersection 702. The predicted path 700 of the host vehicle 100 may be determined based on host vehicle information (specifically, the current position and traveling trajectory). The processing unit 110 may acquire the latest host vehicle information at this point. The predicted course 701 of the nearby vehicle RV may be determined based on the latest nearby vehicle information (specifically, the current position and travel path).

[0045] In step S603, the processing unit 110 (for example, the prediction unit 110b) sets a determination area using the predicted intersection 702 as a reference position and stores the determination area in the storage unit 111. The determination area may be an area in which a collision possibility is predicted. With reference to FIG. 7(a), an example of the determination area 703 set using the predicted intersection 702 as a reference position will be described. The determination area 703 may be a rectangle that includes the predicted intersection 702 and has sides parallel to the predicted path 700 of the host vehicle 100. Alternatively, the determination area 703 may have another shape. The position and shape of the determination area 703 relative to the predicted intersection 702 may be set in advance (for example, when the vehicle 100 is manufactured or when the software is updated) and stored in the storage unit 111. If a risk position exists near the determination area 703, the processing unit 110 may expand the determination area 703 to include the risk position.

[0046] As shown in FIG. 7(a), the processing unit 110 may set a determination region 703 of a different shape (size) depending on whether the peripheral vehicle RV is on the right side of the host vehicle 100 (i.e., the side opposite the oncoming lane) or the left side of the host vehicle 100 (i.e., the oncoming lane) as shown in FIG. 7(b). Whether the peripheral vehicle RV is on the right or left side of the host vehicle 100, the length 704 of the determination region 703 in the vehicle width direction may be the same length (for example, 3 m to 4 m, which is the length of one lane). The length 705 of the determination region 703 in the vehicle length direction when the peripheral vehicle RV is on the right side of the host vehicle 100 may be longer than the length 705 of the determination region 703 in the vehicle length direction when the peripheral vehicle RV is on the left side of the host vehicle 100. When the surrounding vehicle RV is on the right side of the host vehicle 100, the length 705 of the determination area 703 in the vehicle length direction may be, for example, 9 m to 11 m, which is equivalent to a length of three lanes. When the surrounding vehicle RV is on the left side of the host vehicle 100, the length 705 of the determination area 703 in the vehicle length direction may be, for example, 6 m to 8 m, which is equivalent to a length of two lanes.

[0047] Whether the peripheral vehicle RV is on the right or left side of the host vehicle 100, the distance between the side of the determination area 703 that is farther from the host vehicle 100 and the predicted intersection 702 may be the same (for example, approximately 1.5 m, equivalent to a half lane). As a result, a length 706 of a portion of the determination area 703 that is closer to the host vehicle 100 than the predicted intersection 702 when the peripheral vehicle RV is on the right side of the host vehicle 100 is greater than a length 706 of a portion of the determination area 703 that is closer to the host vehicle 100 than the predicted intersection 702 when the peripheral vehicle RV is on the left side of the host vehicle 100. When the peripheral vehicle RV is on the right side of the host vehicle 100, there is a possibility that an oncoming lane of the lane in which the peripheral vehicle RV is traveling exists between the predicted intersection 702 and the host vehicle 100. Therefore, by expanding the determination area 703 toward the host vehicle 100, it is possible to prevent a collision with another vehicle (which may not have a vehicle-to-vehicle communication function) traveling in this oncoming lane.

[0048] In step S604, the processing unit 110 (for example, the prediction unit 110b) predicts the possibility of a collision between the host vehicle 100 and the surrounding vehicle RV in the determination area 703. If the processing unit 110 predicts that there is a possibility of a collision between the host vehicle 100 and the surrounding vehicle RV, the processing unit 110 transitions the processing to step S605, and otherwise transitions the processing to step S607.

[0049] The possibility of collision may be determined based on a predicted time (hereinafter simply referred to as "arrival time") for the surrounding vehicle RV to reach the predicted intersection 702. This arrival time may be calculated, for example, based on the latest surrounding vehicle information acquired from the surrounding vehicle RV. For example, the processing unit 110 can predict the predicted time for the surrounding vehicle RV to reach the predicted intersection 702 by dividing the distance between the surrounding vehicle RV and the predicted intersection 702 by the speed of the surrounding vehicle RV.

[0050] The processing unit 110 may predict that there is a possibility of a collision if the arrival time is equal to or less than a time threshold, and may determine that there is no possibility of a collision if the arrival time is greater than the time threshold. The time threshold may be configurable by an occupant of the host vehicle 100.

[0051] The processing unit 110 may change the time threshold value according to the speed of the surrounding vehicle RV. FIG. 8 is a diagram showing the relationship between the speed of the surrounding vehicle RV and the stopping time of the surrounding vehicle RV. The stopping time of the surrounding vehicle RV is the time it takes for the surrounding vehicle RV to stop at a deceleration rate (e.g., 0.4 G) due to a typical braking operation. FIG. 8 shows a specified range (upper speed limit, lower speed limit) for the speed of the surrounding vehicle RV, and an upper time limit and a lower time limit for the time to collision (TTC). The specified range is the speed range of the surrounding vehicle RV within which driving assistance for the host vehicle 100 is performed. The upper time limit is the upper limit of the time to collision set arbitrarily by the driver or the like, and the lower time limit is the lower limit of the time to collision set based on the measurement position accuracy of the GNSS.

[0052] The processing unit 110 sets the stopping time corresponding to the speed of the surrounding vehicle RV as the time threshold based on the "relationship between the speed and stopping time of the surrounding vehicle RV" represented by line 800 in FIG. 8. The line 800 indicates the boundary between a typical braking operation (i.e., an operation for decelerating the vehicle under normal circumstances) and an emergency braking operation (i.e., an operation for suddenly stopping the vehicle). For example, because the deceleration of a typical braking operation is 0.4 G or less, the line 800 may have a slope corresponding to 0.4 G. In an area 801 above the line 800, the arrival time is longer than the stopping time, and if the driver of the surrounding vehicle RV performs a typical braking operation, the surrounding vehicle RV can be stopped before reaching the predicted intersection 702. Therefore, if the arrival time is longer than the time threshold (stopping time), driving assistance for the host vehicle SV may be suppressed. On the other hand, in an area 802 below the line 800, the arrival time is shorter than the stopping time, and even if the driver of the surrounding vehicle RV performs a typical braking operation (for example, deceleration of 0.4 G), the surrounding vehicle RV may reach the predicted intersection 702 before stopping. Therefore, if the arrival time is equal to or shorter than the time threshold (stopping time), driving assistance for the host vehicle SV may be executed. Note that the processing unit 110 may change the time threshold continuously or in stages according to the speed of the surrounding vehicle RV.

[0053] The possibility of collision may be determined based on the host vehicle 100 entering the determination area 703, instead of or in addition to the arrival time required for the surrounding vehicle RV to reach the predicted intersection 702. For example, the processing unit 110 may predict that there is a possibility of collision when the host vehicle 100 enters the determination area 703, and may determine that there is no possibility of collision when the host vehicle 100 has not entered the determination area 703.

[0054] Furthermore, the collision possibility may be determined based on the difference between the predicted time it takes for the surrounding vehicle RV to reach the predicted intersection 702 and the predicted time it takes for the host vehicle 100 to reach the predicted intersection 702 (hereinafter referred to as "arrival time difference"). The processing unit 110 may predict that there is a collision possibility when the arrival time difference is equal to or less than a time threshold, and may determine that there is no collision possibility when the arrival time difference is greater than the time threshold. The time threshold may be set by an occupant of the host vehicle 100.

[0055] Furthermore, the likelihood of a collision may be predicted based on the indication state of the turn signal 107 of the host vehicle 100, the indication state of the turn signal of the surrounding vehicle RV, and the position of the surrounding vehicle RV relative to the host vehicle 100. For example, the likelihood of a collision may be predicted based on at least one of the following: the surrounding vehicle RV is on the right or left side of the host vehicle 100; the turn signal 107 of the host vehicle 100 is pointing to the right or left side; and the turn signal of the surrounding vehicle RV is pointing to the right or left side.

[0056] A specific example of collision possibility prediction based on the indication state of the turn signal will be described with reference to Fig. 9. Fig. 9(a) describes a case where the nearby vehicle RV is located within a range 501 on the left side of the host vehicle 100. When the turn signal 107 of the host vehicle 100 is not indicating a direction (for example, the turn signal 107 is off), the host vehicle 100 is predicted to take a course 901S that goes straight through the intersection ahead of the host vehicle 100. When the turn signal 107 of the host vehicle 100 is indicating a right turn (for example, the turn signal 107 on the right side of the host vehicle 100 is flashing), the host vehicle 100 is predicted to take a course 901R that turns right at the intersection ahead of the host vehicle 100. When the turn signal 107 of the vehicle 100 is pointing to the left (for example, the turn signal 107 on the left side of the vehicle 100 is flashing), the vehicle 100 is expected to take a course 901L that turns left at the intersection ahead of the vehicle 100.

[0057] When the blinker of the peripheral vehicle RV is not indicating a direction, the peripheral vehicle RV is predicted to take a path 902S that goes straight through the intersection in front of the peripheral vehicle RV. When the blinker of the peripheral vehicle RV is indicating a right turn, the peripheral vehicle RV is predicted to take a path 902R that turns right at the intersection in front of the peripheral vehicle RV. When the blinker of the peripheral vehicle RV is indicating a left turn, the peripheral vehicle RV is predicted to take a path 902L that turns left at the intersection in front of the peripheral vehicle RV.

[0058] The processing unit 110 may predict a collision possibility for pairs of three paths 901S, 901R, and 901L predicted for the host vehicle 100 and three paths 902S, 902R, and 902L predicted for the surrounding vehicle RV, where the paths of both vehicles intersect or coincide, and may predict no collision possibility for other pairs. Table 910 in FIG. 9(a) summarizes the above explanation. In table 910, "YES" indicates that a collision possibility is predicted, and "NO" indicates that a collision possibility is predicted. The same applies to tables 911 and 1210 described below. For example, when the turn signal 107 of the host vehicle 100 is pointing left and the turn signal of the other vehicle is pointing left, the processing unit 110 may predict a collision possibility. On the other hand, when the turn signal 107 of the host vehicle 100 is pointing right and the turn signal of the other vehicle is pointing right, the processing unit 110 may predict no collision possibility.

[0059] FIG. 9(b) illustrates a case where the peripheral vehicle RV is located within a range 501 on the right side of the host vehicle 100. The predicted path for the host vehicle 100 is the same as that in FIG. 9(a). When the blinker of the peripheral vehicle RV is not indicating a direction, the peripheral vehicle RV is predicted to take a path 903S that goes straight through the intersection ahead of the peripheral vehicle RV. When the blinker of the peripheral vehicle RV is indicating to the right, the peripheral vehicle RV is predicted to take a path 903R that turns right at the intersection ahead of the peripheral vehicle RV. When the blinker of the peripheral vehicle RV is indicating to the left, the peripheral vehicle RV is predicted to take a path 903L that turns left at the intersection ahead of the peripheral vehicle RV.

[0060] The processing unit 110 may predict that there is a possibility of collision for pairs of three paths 901S, 901R, and 901L predicted for the host vehicle 100 and three paths 903S, 903R, and 903L predicted for the surrounding vehicle RV, where the paths of both vehicles intersect or coincide, and may predict that there is no possibility of collision for other pairs. Table 911 in Fig. 9(b) summarizes the above explanation.

[0061] The possibility of a collision may be determined by any combination of the above-mentioned four conditions (i.e., the arrival time is equal to or less than a time threshold, the host vehicle 100 has entered the determination area 703, the arrival time difference is equal to or less than another time threshold, and the indication state of the turn signal satisfies the above condition). For example, the processing unit 110 may determine that there is a collision possibility when all of these four conditions are satisfied, and may determine that there is no collision possibility otherwise. Alternatively, the processing unit 110 may determine that there is a collision possibility when at least one of these four conditions is satisfied, and may determine that there is no collision possibility otherwise. Alternatively, the processing unit 110 may determine that there is a collision possibility when at least one of two pre-set conditions of these four conditions is satisfied, and may determine that there is no collision possibility otherwise. Specifically, the processing unit 110 may predict that there is a collision possibility if the predicted time until the surrounding vehicle RV arrives at the predicted intersection 702 is smaller than a first time threshold and the arrival time difference is smaller than a second time threshold, and may predict that there is no collision possibility if the arrival time difference is greater than the second time threshold.

[0062] In step S605, the processing unit 110 (e.g., its assistance unit 110c) determines whether an assistance condition is satisfied. If it is determined that the assistance condition is satisfied, the processing unit 110 transitions the process to step S606; otherwise, the processing unit 110 transitions the process to step S607. The assistance condition may be a condition that must be satisfied in order to perform driving assistance. For example, the assistance condition may be based on whether the speed of the surrounding vehicle RV is within a specified range. The specified range may be set in advance by a lower speed limit value and an upper speed limit value for the speed of the surrounding vehicle RV. If the speed of the surrounding vehicle RV is equal to or lower than the lower speed limit value of the specified range, the driver of the surrounding vehicle RV is likely to notice the host vehicle 100 and decelerate the surrounding vehicle RV without colliding with the host vehicle 100. In other words, the lower speed limit value of the specified range for the speed of the surrounding vehicle RV may be set to a value that allows the surrounding vehicle RV to decelerate without colliding with the host vehicle 100. Furthermore, if the speed of the surrounding vehicle RV is equal to or greater than the upper limit of the specified range, the surrounding vehicle RV is likely not a vehicle traveling on the road into which the host vehicle 100 is entering, such as traveling on an expressway near the road into which the host vehicle 100 is entering. In other words, the upper limit of the specified range for the speed of the surrounding vehicle RV can be set to a value that makes it possible to determine whether the surrounding vehicle RV is a vehicle traveling on the road into which the host vehicle 100 is entering, or a vehicle traveling on an expressway near the road. In this way, by performing / suppressing driving assistance depending on whether the speed of the surrounding vehicle RV is within the specified range, it is possible to reduce the annoyance felt by the driver of the host vehicle 100 due to the driving assistance.

[0063] In step S606, the processing unit 110 (for example, the support unit 110c) performs driving support for the host vehicle 100. As driving support for the host vehicle 100, the processing unit 110 can notify the occupants of the host vehicle 100 of the possibility of a collision using the alarm device 105, or perform a braking operation for the host vehicle 100 using the braking device 150.

[0064] In step S608, the processing unit 110 (for example, the prediction unit 110b) deletes the determination area that has become unnecessary due to the execution of driving assistance (the determination area stored in step S603) from the storage unit 111. This prevents the capacity of the storage unit 111 from being consumed by unnecessary information.

[0065] If it is determined in step S604 that there is no possibility of collision or if it is determined in step S605 that the assistance condition is not satisfied, step S607 is executed. In step S607, the processing unit 110 (for example, its prediction unit 110b) determines whether the surrounding vehicle RV that is the processing target of the method of FIG. 6 has been deregistered in step S405 of FIG. 4. If it is determined that the registration of the surrounding vehicle RV has been deregistered, the processing unit 110 transitions the processing to step S608, and otherwise transitions the processing to step S602. If the registration of the surrounding vehicle RV has been deregistered, it is considered that the surrounding vehicle RV is no longer present in the vicinity of the host vehicle 100. Therefore, the processing unit 110 ends the processing without performing driving assistance regarding a collision with this surrounding vehicle RV. In this case as well, in step S608, the processing unit 110 (for example, its prediction unit 110b) deletes the unnecessary determination area from the storage unit 111.

[0066] If it is determined in step S607 that the registration of the nearby vehicle RV has not been cancelled, the process returns to step S602. In this case, if the predicted path of the host vehicle 100 and the predicted path of the nearby vehicle RV still intersect, a determination area is set in step S603 using the predicted intersection 702 as a reference position. If a vehicle (host vehicle 100 or nearby vehicle RV) changes its position within a lane or changes lanes, the position of the predicted intersection 702 may change. Because nearby vehicle information is repeatedly acquired, the processing unit 110 can detect such a change in the position of the predicted intersection 702. Therefore, in step S603, the processing unit 110 (for example, its prediction unit 110b) resets the reference position based on the newly acquired nearby vehicle information, and accordingly updates the determination area stored in the storage unit 111. As a result, the determination in step S604 is performed based on the updated determination area. If the predicted intersection 902 cannot be determined in step S603 (for example, if the predicted path 900 of the vehicle 100 and the predicted path 901 of the surrounding vehicle RV no longer intersect), the most recently determined reference position and judgment area may be maintained.

[0067] According to the method of Fig. 6, when multiple peripheral vehicles are present within range 501 to the side of host vehicle 100, an individual reference position is used for each of the multiple peripheral vehicles. Specifically, the method of Fig. 6 is executed individually for each of the multiple peripheral vehicles. As a result, a predicted intersection between the predicted path of host vehicle 100 and the predicted path of each peripheral vehicle is also determined for each of the multiple peripheral vehicles. As a result, an individual judgment area is set for each of the multiple peripheral vehicles based on the individual reference position. This makes it possible to appropriately predict the possibility of a collision with each of the multiple peripheral vehicles.

[0068] FIG. 10 illustrates an example of a process for executing driving assistance when a nearby vehicle RV (FIG. 11) is present within a range 500 ahead of the host vehicle 100. The process shown in the flowchart of FIG. 10 is executed by the processing unit 110 in accordance with a learning program read from the storage unit 111. The process of FIG. 10 may be started, for example, when the driving assistance setting is turned on. The process of FIG. 10 may be repeatedly executed until the driving assistance setting is turned off or the ignition of the vehicle 100 is turned off.

[0069] In step S1001, the processing unit 110 (e.g., its prediction unit 110b) determines whether the vehicle speed of the host vehicle 100 is within a threshold range. If the processing unit 110 determines that the vehicle speed of the host vehicle 100 is within the threshold range, the processing proceeds to step S1002. Otherwise, the processing unit 110 proceeds to step S1003. This determination may be made based on the vehicle speed and acceleration of the host vehicle 100 included in the latest host vehicle information. The upper limit of the threshold used in step S1001 is a value below which the vehicle speed falls after the vehicle 100 decelerates to turn (e.g., turn left or turn right), and may be, for example, 20 km / h. The lower limit of the threshold used in step S1001 is a value below which the vehicle speed falls when the vehicle 100 is stopped or nearly stopped, and may be, for example, 2 km / h. The position at which the host vehicle 100 is determined to be within the threshold range is referred to as a turning preparation position 1101 (FIG. 11). It should be noted that the vehicle 100 may be within the threshold range even if it does not turn. Even in this case, the processing unit 110 detects the turning preparation position 1101 and executes the processes from step S1002 onwards.

[0070] In step S1002, the processing unit 110 (for example, the prediction unit 110b thereof) sets a determination area using the turning preparation position 1101 as a reference position, and stores the reference position and the determination area in the storage unit 111. The determination area may be an area in which a collision possibility is predicted. With reference to FIG. 11 , an example of the determination area 1102 set using the turning preparation position 1101 as a reference position will be described. The determination area 1102 may be a rectangle centered on the left front position of the turning preparation position 1101 and including sides parallel to the vehicle length direction of the host vehicle 100. The length of the determination area 1102 in the vehicle width direction of the host vehicle 100 may be, for example, 3 m to 4 m, which is equivalent to a length of one lane. The length of the determination area 1102 in the vehicle length direction of the host vehicle 100 may be, for example, 9 m to 11 m, which is equivalent to a length of three lanes. The lower right corner of the determination area 1102 may overlap the turning preparation position 1101. Alternatively, the determination area 1102 may have another shape. The position of the determination area 1102 relative to the reference position may be set in advance (for example, when the vehicle 100 is manufactured or when the software is updated) and stored in the storage unit 111. When a risk position exists near the determination area 1102, the processing unit 110 may expand the determination area 1102 to include the risk position. The processing unit 110 sets the determination area 1102 to include the turning preparation position 1101 (i.e., the reference position) and to be offset toward the oncoming lane (left side in the example of FIG. 11 ) with respect to the host vehicle 100 in a direction perpendicular to the predicted path of the host vehicle 100. This makes it possible to appropriately predict the possibility of a collision that may occur when the host vehicle 100 turns left.

[0071] The processing from step S1003 onward is performed using the reference position and judgment area set in step S1002. As described above, since the method of FIG. 13 is repeatedly performed, steps S1001 and S1002 are also repeatedly performed. Therefore, while the vehicle speed of the host vehicle 100 is within a threshold range (e.g., 2 km / h or more and less than 20 km / h), the reference position and judgment area are continuously updated, and the processing from step S1003 onward is performed using the latest reference position and judgment area. When the vehicle speed of the host vehicle 100 falls outside the threshold range (e.g., less than 2 km / h or 20 km / h or more), the updating of the reference position and judgment area is stopped, and the processing from step S1003 onward is performed using the reference position and judgment area at the time the updating was stopped. If the reference position and judgment area have not been set at the time step S1003 is performed, the processing unit 110 may omit steps S1003 to S1010 and return to the processing at S1001.

[0072] In step S1003, the processing unit 110 (e.g., its prediction unit 110b) determines a predicted turning trajectory 1104 of the host vehicle 100. The predicted turning trajectory 1104 may be a turning trajectory predicted when the host vehicle 100 turns (e.g., turns left) into an oncoming lane. The predicted turning trajectory 1104 may be set in advance (e.g., when the vehicle 100 is manufactured or when the software is updated) and stored in the storage unit 111. The predicted turning trajectory 1104 set in advance in this manner may be referred to as a default predicted turning trajectory 1104.

[0073] A plurality of candidates for the predicted turning trajectory 1104 may be stored in the memory unit 111. The processing unit 110 (e.g., its prediction unit 110b) may select one predicted turning trajectory 1104 from the plurality of candidates for the predicted turning trajectory 1104 based on the steering angle of the host vehicle 100 at the turning preparation position 1101, and use the selected predicted turning trajectory for subsequent processing. For example, when the steering angle of the host vehicle 100 is small, the processing unit 110 may select the predicted turning trajectory 1104 with a small radius of curvature because it is considered that the host vehicle 100 is about to turn left at a small intersection. On the other hand, when the steering angle of the host vehicle 100 is large, the processing unit 110 may select the predicted turning trajectory 1104 with a large radius of curvature because it is considered that the host vehicle 100 is about to turn left at a large intersection.

[0074] In step S1004, the processing unit 110 (for example, its prediction unit 110b) identifies a peripheral vehicle RV present within the range 500 ahead of the host vehicle 100 as a target vehicle for subsequent processing. If no peripheral vehicle RV exists within the range 500, no target vehicle is identified. If multiple peripheral vehicles RV exist within the range 500, all of these multiple peripheral vehicles RV are identified as target vehicles. This identification may be performed based on the current positions of the peripheral vehicles RV included in the latest peripheral vehicle information acquired from the peripheral vehicles RV. In the example shown in FIG. 11, one peripheral vehicle RV exists within the range 500.

[0075] In step S1005, the processing unit 110 (for example, the prediction unit 110b) predicts the possibility of a collision between the host vehicle 100 and the surrounding vehicle RV in the determination area 1102. If it is determined that there is a possibility of a collision between the host vehicle 100 and the surrounding vehicle RV, the processing unit 110 transitions the process to step S1006, and otherwise transitions the process to step S1008.

[0076] The possibility of collision may be determined based on whether an intersection 1105 between the predicted turning trajectory 1104 determined in step S1003 and the predicted path 1103 of the surrounding vehicle RV is included in the determination area 1102. For example, the processing unit 110 may determine that there is a possibility of collision when the intersection 1105 is included in the determination area 1102, and may determine that there is no possibility of collision when the intersection 1105 is not included in the determination area 1102.

[0077] Furthermore, the likelihood of a collision may be predicted based on the indication state of the turn signal 107 of the host vehicle 100, the indication state of the turn signal of the surrounding vehicle RV, and the position of the surrounding vehicle RV relative to the host vehicle 100. For example, the likelihood of a collision may be predicted based on at least one of the following: the surrounding vehicle RV is on the right or left side of the host vehicle 100; the turn signal 107 of the host vehicle 100 is pointing to the right or left side; and the turn signal of the surrounding vehicle RV is pointing to the right or left side.

[0078] FIG. 12 describes a case where the peripheral vehicle RV is located within a range 500 ahead of the host vehicle 100. The predicted path of the host vehicle 100 is the same as that shown in FIG. 9(a). When the blinker of the peripheral vehicle RV is not indicating a direction, the peripheral vehicle RV is predicted to take a path 1201S that goes straight through the intersection ahead of the peripheral vehicle RV. When the blinker of the peripheral vehicle RV is indicating to the right, the peripheral vehicle RV is predicted to take a path 1201R that turns right at the intersection ahead of the peripheral vehicle RV. When the blinker of the peripheral vehicle RV is indicating to the left, the peripheral vehicle RV is predicted to take a path 1201L that turns left at the intersection ahead of the peripheral vehicle RV.

[0079] The processing unit 110 may predict that there is a possibility of collision for pairs of three paths 901S, 901R, and 901L predicted for the host vehicle 100 and three paths 1201S, 1201R, and 1201L predicted for the surrounding vehicle RV, where the paths of both vehicles intersect or coincide, and may predict that there is no possibility of collision for other pairs. Table 1210 in Fig. 12 summarizes the above explanation.

[0080] In step S1006, the processing unit 110 (for example, the support unit 110c) determines whether the support condition is satisfied. If it is determined that the support condition is satisfied, the processing unit 110 transitions the process to step S1007, and otherwise transitions the process to step S1008. Step S1006 may be the same as step S605, and therefore a redundant description will be omitted.

[0081] In step S1007, the processing unit 110 (for example, the support unit 110c) performs driving support for the host vehicle 100. As driving support for the host vehicle 100, the processing unit 110 can notify the occupants of the host vehicle 100 of the possibility of a collision using the alarm device 105, or perform a braking operation for the host vehicle 100 using the braking device 150.

[0082] In step S1010, the processing unit 110 (for example, the prediction unit 110b) deletes the reference position and determination area that have become unnecessary due to the execution of driving assistance (the reference position and determination area stored in step S603) from the storage unit 111. This prevents the capacity of the storage unit 111 from being consumed by unnecessary information.

[0083] Step S1008 is executed if it is determined in step S1005 that there is no possibility of a collision, or if it is determined in step S1006 that the assistance condition is not satisfied. In step S1008, the processing unit 110 (e.g., its prediction unit 110b) determines whether the host vehicle 100 has moved a predetermined distance (e.g., 30 m) or more from the reference position stored in step S1002. If it is determined that the host vehicle 100 has moved a predetermined distance or more from the reference position, the processing unit 110 transitions the process to step S1010; otherwise, the processing unit 110 transitions the process to step S1009. If the host vehicle 100 has moved a predetermined distance or more from the reference position, it is considered that there is no possibility that the host vehicle 100 will collide with the nearby vehicle RV at that point. Therefore, the processing unit 110 ends the process without performing driving assistance for this collision with the nearby vehicle RV. In this case as well, in step S1010, the processing unit 110 (for example, the prediction unit 110b) deletes from the storage unit 111 the reference positions and determination regions that are no longer needed.

[0084] Step S1009 is executed when it is determined in step S1009 that the host vehicle 100 is not away from the reference position by a predetermined distance or more. In step S1009, the processing unit 110 (e.g., its prediction unit 110b) may update the predicted turning trajectory 1104 based on a change in the steering angle of the host vehicle 100. For example, when the host vehicle 100 is turning left at a steering angle larger than that assumed in the predicted turning trajectory 1104, the processing unit 110 may update the predicted turning trajectory 1104 so that the radius of curvature becomes smaller. On the other hand, when the host vehicle 100 is turning left at a steering angle smaller than that assumed in the predicted turning trajectory 1104, the processing unit 110 may update the predicted turning trajectory 1104 so that the radius of curvature becomes larger. The predicted turning trajectory 1104 may be updated when the current steering angle of the host vehicle 100 becomes equal to or larger than the steering angle of the default predicted turning trajectory 1104. Thereafter, the processing unit 110 transitions the process to step S1004, and identifies the surrounding vehicle RV that is now newly included in the range 500 as a target vehicle for subsequent processing. In addition, the collision possibility in step S1005 is determined based on the updated predicted turning trajectory 1104.

[0085] 10, when multiple peripheral vehicles are present within a range 500 ahead of the host vehicle 100, a common reference position (i.e., turning preparation position 1101) is used for the multiple peripheral vehicles. As a result, a common determination area is set for each of the multiple peripheral vehicles based on the common reference position. This makes it possible to appropriately estimate the possibility of a collision when the host vehicle 100 turns into an oncoming lane (for example, when turning left).

[0086] According to the above-described embodiment, it is possible to appropriately predict the possibility of a collision depending on the positions of the surrounding vehicles. As a result, it is possible to appropriately perform driving assistance for the vehicle 100. Note that even in a situation where driving assistance based on surrounding vehicle information acquired from surrounding vehicles through vehicle-to-vehicle communication is not performed, driving assistance based on other criteria (for example, based on detection results from a camera or radar) may be performed.

[0087] When predicting the possibility of a collision based on the indication state of the turn signal as described above, the processing unit 110 may determine whether the surrounding vehicle RV has changed lanes based on the travel path of the surrounding vehicle included in the surrounding vehicle information. If the turn signal of the surrounding vehicle RV continues to indicate a direction even after the surrounding vehicle RV has completed a lane change (for example, if the turn signal continues to flash), there is a possibility that the driver of the surrounding vehicle RV has forgotten to turn off the turn signal. In this case, the indication state of the turn signal of the surrounding vehicle RV does not necessarily match the predicted course of the surrounding vehicle RV. Therefore, the processing unit 110 may predict the possibility of a collision without based on the indication state of the turn signal of the surrounding vehicle RV when the turn signal of the surrounding vehicle RV continues to indicate a direction even after the surrounding vehicle RV has completed a lane change. 9(b), when the surrounding vehicle RV is located within a range 501 on the right side of the host vehicle 100 and the blinker of the host vehicle 100 is pointing to the right, it may be predicted that there is no possibility of a collision because the paths of the two vehicles will not intersect or overlap no matter which direction the surrounding vehicle RV travels. On the other hand, when the surrounding vehicle RV is located within a range 501 on the right side of the host vehicle 100 and the blinker of the host vehicle 100 is pointing to the left, the paths of the two vehicles may intersect or overlap depending on the path of the surrounding vehicle RV. Therefore, the processing unit 110 may predict that there is a possibility of a collision, taking safety into consideration.

[0088] The above-described collision possibility prediction may be performed using the latest surrounding vehicle information (including the indication state of the turn signals) acquired from the surrounding vehicle RV and the latest host vehicle information (including the indication state of the turn signals 107) acquired from the host vehicle 100. Therefore, the processing unit 110 may notify the occupants of the host vehicle 100 based on the predicted result of the collision possibility at the time when the turn signals of the host vehicle 100 or the surrounding vehicle RV start to indicate a direction. By basing the prediction result of the collision possibility at the time when the turn signals change direction in this way, it is possible to monitor the direction of the turn signals in real time, and to notify the driver of the possibility of a collision at an early stage. The change in direction indication by the turn signals may be the start of a direction indication by the turn signals or the end of a direction indication by the turn signals.

[0089] In the above-described driving assistance method, a nearby vehicle RV is set as a target for collision possibility prediction based on whether the nearby vehicle RV is located within range 500 or 501 in Fig. 5. The processing unit 110 may determine whether or not to set the nearby vehicle RV as a target for collision possibility prediction based on other information. An example of a method for determining a nearby vehicle RV as a target for collision possibility prediction will be described with reference to Fig. 13.

[0090] The processing unit 110 may determine whether to target the nearby vehicle RV for collision possibility prediction, further based on a rotation angle 1303 of a path vector 1302 of the nearby vehicle RV relative to a path vector 1301 of the host vehicle 100. The path vector 1301 may be a unit vector facing the traveling direction of the vehicle. For the sake of explanation, the clockwise direction of the rotation angle 1303 is taken as positive, and the counterclockwise direction is taken as negative.

[0091] Even if the surrounding vehicle RV is included in the range 500 ahead of the host vehicle 100, if the surrounding vehicle RV is traveling in the same direction as the host vehicle 100 or traveling to the right or left of the host vehicle 100, it is considered that there is no possibility of a collision between the host vehicle 100 and the surrounding vehicle RV. Therefore, the processing unit 110 may treat the surrounding vehicle RV as a target for determining the possibility of a collision in the processing of Figures 6 and 10 when the surrounding vehicle RV is within the range 500 ahead of the host vehicle 100 and the rotation angle 1303 is within a predetermined range (for example, 160° to 200°).

[0092] Even if the nearby vehicle RV is included in the range 501 on the right side of the host vehicle 100, if the nearby vehicle RV is traveling in the same direction as the host vehicle 100 or in the opposite direction, or if the nearby vehicle RV is traveling to the right of the host vehicle 100, it is considered that there is no possibility of a collision between the host vehicle 100 and the nearby vehicle RV. Therefore, the processing unit 110 may treat the nearby vehicle RV as a target for determining the possibility of a collision in the processing of Figures 6 and 10 when the nearby vehicle RV is included in the range 501 on the right side of the host vehicle 100 and the rotation angle 1303 is included in a predetermined range (for example, -110° to -70°).

[0093] Even if the nearby vehicle RV is included in the range 501 on the left side of the host vehicle 100, if the nearby vehicle RV is traveling in the same direction as the host vehicle 100 or in the opposite direction, or if the nearby vehicle RV is traveling to the left of the host vehicle 100, it is considered that there is no possibility of a collision between the host vehicle 100 and the nearby vehicle RV. Therefore, the processing unit 110 may treat the nearby vehicle RV as a target for determining the possibility of a collision in the processing of Figures 6 and 10 when the nearby vehicle RV is included in the range 501 on the left side of the host vehicle 100 and the rotation angle 1303 is included in a predetermined range (for example, 70° to 110°).

[0094] <Summary of the embodiment> <Item 1> A driving assistance device (108), an acquisition means (110a) for acquiring, from a surrounding vehicle (RV) present around the host vehicle (100) equipped with the driving assistance device, surrounding vehicle information indicating the vehicle speed, position, travel path, and indication state of a turn signal of the surrounding vehicle by vehicle-to-vehicle communication; a prediction means (110b) for predicting a possibility of a collision between the subject vehicle and the surrounding vehicle based on subject vehicle information indicating the vehicle speed, position, travel path, and indication state of a turn signal (107) of the subject vehicle and the surrounding vehicle information; and a notification means (110c) for notifying an occupant of the vehicle based on the prediction result by the prediction means, A driving assistance device in which the prediction means predicts the possibility of a collision between the host vehicle and the surrounding vehicle based at least on the indication state of the turn signal of the host vehicle, the indication state of the turn signal of the surrounding vehicle, and the position of the surrounding vehicle relative to the host vehicle. According to this item, the indicator status of the turn signals of surrounding vehicles can be obtained with high accuracy through vehicle-to-vehicle communication. The indicator status of the turn signals can be used to accurately predict the possibility of a collision between the vehicle and surrounding vehicles. This can prevent excessive notifications from being given to the driver. <Item 2> The prediction means defines the side of the road on which the vehicle is required to travel in the area where the vehicle is located as a first side, and defines the side opposite to the first side as a second side, and The nearby vehicle is on the first side or the second side of the host vehicle; A blinker of the host vehicle is pointing to the first side or the second side; The blinker of the surrounding vehicle is pointing to the first side or the second side; 2. The driving assistance device according to claim 1, wherein the driving assistance device predicts the possibility of a collision between the host vehicle and the surrounding vehicle based on at least one of the following: According to this item, excessive notification to the driver can be suppressed in certain situations. <Item 3> The prediction means When the surrounding vehicle is located within a first range (501) on the first side or within a second range (501) on the second side of the host vehicle, the turn signal of the host vehicle is pointing to the second side, and the turn signal of the surrounding vehicle is pointing to the first side, 3. The driving assistance device according to item 2, wherein the driving assistance device predicts that there is no possibility of a collision between the host vehicle and the surrounding vehicle. According to this item, excessive notification to the driver can be suppressed in certain situations. <Item 4> The prediction means The surrounding vehicle is located within a second range (501) on the second side of the host vehicle, and the blinker of the surrounding vehicle is pointing toward the first side, or When the surrounding vehicle is located within a second range on the second side of the host vehicle, the turn signal of the host vehicle is pointing to the first side, and the turn signal of the surrounding vehicle is pointing to the first side or the second side, 4. The driving assistance device according to item 2 or 3, wherein the driving assistance device predicts that there is no possibility of a collision between the host vehicle and the surrounding vehicle. According to this item, excessive notification to the driver can be suppressed in certain situations. <Item 5> The prediction means When the surrounding vehicle is located within a first range (501) on the first side of the host vehicle and the turn signal of the host vehicle is pointing to the first side, 5. The driving assistance device according to any one of items 2 to 4, wherein the driving assistance device predicts that there is no possibility of a collision between the host vehicle and the surrounding vehicle. According to this item, excessive notification to the driver can be suppressed in certain situations. <Item 6> The prediction means When the surrounding vehicle is located within a third range (500) ahead of the host vehicle, the turn signal of the host vehicle is pointing to the second side, and the turn signal of the surrounding vehicle is pointing to the second side, 6. The driving assistance device according to any one of items 2 to 5, wherein the driving assistance device predicts that there is no possibility of a collision between the host vehicle and the surrounding vehicle. According to this item, excessive notification to the driver can be suppressed in certain situations. <Item 7> The prediction means When the surrounding vehicle is located within a third range (500) ahead of the host vehicle, the turn signal of the host vehicle is not indicating a direction or is pointing to the first side, and the turn signal of the surrounding vehicle is not indicating a direction or is pointing to the first side, 7. The driving assistance device according to any one of items 2 to 6, wherein the driving assistance device predicts that there is no possibility of a collision between the host vehicle and the surrounding vehicle. According to this item, excessive notification to the driver can be suppressed in certain situations. <Item 8> The notification means 8. The driving assistance device according to any one of claims 1 to 7, wherein the driving assistance device notifies an occupant of the vehicle based on a prediction result by the prediction means at the time when the turn signal of the vehicle or the surrounding vehicle changes direction. This item allows for the prediction of the possibility of a collision at an early stage. <Item 9> the driving assistance device further includes a determination unit that determines whether the nearby vehicle has changed lanes based on a travel path of the nearby vehicle included in the nearby vehicle information; The driving assistance device according to any one of items 1 to 8, wherein the prediction means predicts the possibility of a collision between the host vehicle and the surrounding vehicle, regardless of the indication state of the turn signal of the surrounding vehicle, when the turn signal of the surrounding vehicle continues to indicate a direction even after the surrounding vehicle has completed a lane change. According to this item, appropriate driving assistance can be provided even if the driver forgets to turn off the turn signal after changing lanes. <Item 10> the first range is a sector-shaped range located on the first side of the host vehicle and defined by a predetermined distance and a predetermined angle, Item 4. The driving assistance device according to item 3, wherein the second range is a sector-shaped range on the second side of the host vehicle and defined by a predetermined distance and a predetermined angle. According to this item, surrounding vehicles within an appropriate range can be targeted for predicting the possibility of collision. <Item 11> 8. The driving assistance device according to item 6 or 7, wherein the third range is a sector-shaped range located ahead of the host vehicle and defined by a predetermined distance and a predetermined angle. According to this item, surrounding vehicles within an appropriate range can be targeted for predicting the possibility of collision. <Item 12> A driving assistance method, An acquisition step (S403) in which an acquisition means acquires, from a surrounding vehicle (RV) present around the vehicle (100), surrounding vehicle information indicating the vehicle speed, position, travel path, and indication state of a turn signal of the surrounding vehicle by vehicle-to-vehicle communication; a prediction step (S604, S1005) in which a prediction means predicts a possibility of a collision between the host vehicle and the surrounding vehicle based on host vehicle information indicating the host vehicle speed, position, travel path, and indication state of a turn signal, and the surrounding vehicle information; a notification step in which a notification means notifies an occupant of the host vehicle based on a prediction result in the prediction step, A driving assistance method in which, in the prediction step, the possibility of a collision between the host vehicle and the surrounding vehicle is predicted based at least on the indication state of the turn signal of the host vehicle, the indication state of the turn signal of the surrounding vehicle, and the position of the surrounding vehicle relative to the host vehicle. According to this item, excessive notification to the driver can be prevented. <Item 13> On the computer, An acquisition step (S403) of acquiring, from a surrounding vehicle (RV) present around the host vehicle (100), surrounding vehicle information indicating the vehicle speed, position, travel path, and indication state of the turn signal of the surrounding vehicle by vehicle-to-vehicle communication; a prediction step (S604, S1005) of predicting a possibility of a collision between the host vehicle and the surrounding vehicle based on host vehicle information indicating the vehicle speed, position, travel path, and indication state of a turn signal of the host vehicle and the surrounding vehicle information; a notification step (S606, S1007) of notifying an occupant of the host vehicle based on a prediction result in the prediction step, A program that, in the prediction process, predicts the possibility of a collision between the host vehicle and the surrounding vehicle based at least on the indication state of the turn signal of the host vehicle, the indication state of the turn signal of the surrounding vehicle, and the position of the surrounding vehicle relative to the host vehicle. According to this item, excessive notification to the driver can be prevented.

[0095] The invention is not limited to the above-described embodiment, and various modifications and variations are possible within the scope of the gist of the invention. [Explanation of symbols]

[0096] 100: vehicle, 101: sensor group, 102: turn signal lever, 103: GNSS antenna, 104: vehicle-to-vehicle communication antenna, 105: alarm device, 106: braking device, 107: turn signal, 108: control device

Claims

1. A driving assistance device, an acquisition means for acquiring, via vehicle-to-vehicle communication, information about surrounding vehicles present around the host vehicle on which the driving assistance device is installed, the information indicating the speed, position, travel path, and indication state of the turn signal of the surrounding vehicles; a prediction means for predicting a possibility of a collision between the host vehicle and the surrounding vehicle based on host vehicle information indicating the position of the host vehicle and the indication state of a turn signal and the surrounding vehicle information; a notification means for notifying an occupant of the host vehicle based on a prediction result by the prediction means; a determination means for determining whether the surrounding vehicle has changed lanes based on a travel path of the surrounding vehicle included in the surrounding vehicle information, The prediction means predicting a possibility of a collision between the host vehicle and the surrounding vehicle based at least on an indication state of a turn signal of the host vehicle, an indication state of a turn signal of the surrounding vehicle, and a position of the surrounding vehicle relative to the host vehicle; A driving assistance device that predicts the possibility of a collision between the vehicle and a surrounding vehicle, regardless of the indication state of the turn signal of the surrounding vehicle, when the turn signal of the surrounding vehicle continues to indicate a direction even after the surrounding vehicle has completed a lane change.

2. The prediction means defines the side of the road on which the vehicle is required to travel in the area where the vehicle is located as a first side, and defines the side opposite to the first side as a second side, The nearby vehicle is on the first side or the second side of the host vehicle; A blinker of the host vehicle is pointing to the first side or the second side; A blinker of the surrounding vehicle is pointing to the first side or the second side; The driving assistance device according to claim 1 , wherein the driving assistance device predicts a possibility of a collision between the host vehicle and the surrounding vehicle based on at least one of the following:

3. The prediction means, while the host vehicle and the surrounding vehicle are traveling toward the same intersection, When the surrounding vehicle is located within a first range on the first side or within a second range on the second side of the host vehicle, the turn signal of the host vehicle is pointing to the second side, and the turn signal of the surrounding vehicle is pointing to the first side, The driving assistance device according to claim 2 , wherein the driving assistance device predicts that there is no possibility of a collision between the host vehicle and the surrounding vehicle.

4. The prediction means, while the host vehicle and the surrounding vehicle are traveling toward the same intersection, The surrounding vehicle is located within a second range on the second side of the host vehicle, and the blinker of the surrounding vehicle is pointing toward the first side; or When the surrounding vehicle is located within a second range on the second side of the host vehicle, a turn signal of the host vehicle is pointing toward the first side, and a turn signal of the surrounding vehicle is pointing toward the first side or the second side, The driving assistance device according to claim 2 , wherein the driving assistance device predicts that there is no possibility of a collision between the host vehicle and the surrounding vehicle.

5. The prediction means, while the host vehicle and the surrounding vehicle are traveling toward the same intersection, When the nearby vehicle is located within a first range on the first side of the host vehicle and a blinker of the host vehicle is pointing toward the first side, The driving assistance device according to claim 2 , wherein the driving assistance device predicts that there is no possibility of a collision between the host vehicle and the surrounding vehicle.

6. The prediction means, while the host vehicle and the surrounding vehicle are traveling toward the same intersection, When the peripheral vehicle is located within a third range ahead of the host vehicle, a turn signal of the host vehicle is pointing toward the second side, and a turn signal of the peripheral vehicle is pointing toward the second side, The driving assistance device according to claim 2 , wherein the driving assistance device predicts that there is no possibility of a collision between the host vehicle and the surrounding vehicle.

7. The prediction means, while the host vehicle and the surrounding vehicle are traveling toward the same intersection, When the surrounding vehicle is located within a third range ahead of the host vehicle, a turn signal of the host vehicle is not indicating a direction or is pointing to the first side, and a turn signal of the surrounding vehicle is not indicating a direction or is pointing to the first side, The driving assistance device according to claim 2 , wherein the driving assistance device predicts that there is no possibility of a collision between the host vehicle and the surrounding vehicle.

8. The notification means The driving assistance device according to claim 1 , wherein the driving assistance device notifies an occupant of the host vehicle based on a prediction result by the prediction means at a time when a turn signal of the host vehicle or the surrounding vehicle changes direction.

9. the first range is a sector-shaped range located on the first side of the host vehicle and defined by a predetermined distance and a predetermined angle, The driving assistance device according to claim 3 , wherein the second range is a sector-shaped range located on the second side of the host vehicle and defined by a predetermined distance and a predetermined angle.

10. 8. The driving assistance device according to claim 6, wherein the third range is a sector-shaped range located ahead of the host vehicle and defined by a predetermined distance and a predetermined angle.

11. A driving assistance method, an acquisition step in which an acquisition means acquires, from a surrounding vehicle present around the host vehicle, surrounding vehicle information indicating a vehicle speed, a position, a traveling path, and an indication state of a turn signal of the surrounding vehicle by vehicle-to-vehicle communication; a prediction step in which a prediction means predicts a possibility of a collision between the host vehicle and the surrounding vehicle based on host vehicle information indicating a position of the host vehicle and an indication state of a turn signal and the surrounding vehicle information; a notification step in which a notification means notifies an occupant of the host vehicle based on a result of the prediction step; a determination step in which a determination means determines whether the nearby vehicle has changed lanes based on a travel path of the nearby vehicle included in the nearby vehicle information; and In the prediction step, predicting a possibility of a collision between the host vehicle and the surrounding vehicle based at least on an indication state of a turn signal of the host vehicle, an indication state of a turn signal of the surrounding vehicle, and a position of the surrounding vehicle relative to the host vehicle; A driving assistance method that predicts the possibility of a collision between the vehicle and a surrounding vehicle without relying on the indication state of the turn signal of the surrounding vehicle when the turn signal of the surrounding vehicle continues to indicate a direction even after the surrounding vehicle has completed a lane change.

12. On the computer, an acquisition step of acquiring, from a surrounding vehicle present around the host vehicle, surrounding vehicle information indicating a vehicle speed, a position, a traveling path, and an indication state of a turn signal of the surrounding vehicle by vehicle-to-vehicle communication; a prediction step of predicting a possibility of a collision between the host vehicle and the surrounding vehicle based on host vehicle information indicating a position of the host vehicle and an indication state of a turn signal of the host vehicle and the surrounding vehicle information; a notification step of notifying an occupant of the host vehicle based on a result of the prediction step; a determination step of determining whether the surrounding vehicle has changed lanes based on a travel path of the surrounding vehicle included in the surrounding vehicle information, In the prediction step, predicting a possibility of a collision between the host vehicle and the surrounding vehicle based at least on an indication state of a turn signal of the host vehicle, an indication state of a turn signal of the surrounding vehicle, and a position of the surrounding vehicle relative to the host vehicle; A program that predicts the possibility of a collision between the vehicle and a surrounding vehicle, regardless of the indication state of the turn signal of the surrounding vehicle, when the turn signal of the surrounding vehicle continues to indicate a direction even after the surrounding vehicle has completed a lane change.

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