Vehicle lighting fixture, vehicle lighting fixture control device and control method, vehicle lighting fixture system, vehicle lighting fixture setting device and setting method

The integration of an acceleration sensor in the lamp ECU and a setting device addresses communication failures and customization challenges in vehicle lamps, ensuring reliable operation and user-friendly customization within legal bounds.

JP7798909B2Active Publication Date: 2026-01-14KOITO MFG CO LTD
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Patent Information

Application Number
JP2023552877
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-10-04
Filing Date
2022-10-03
Publication Date
2026-01-14
Estimated Expiration
2042-10-03

AI Technical Summary

Technical Problem

Existing vehicle lamp systems face issues with communication failures between the vehicle ECU and lighting fixture ECU, leading to malfunction of lighting fixtures, and users face difficulties in customizing lamp configurations while meeting legal requirements.

Method used

Incorporating an acceleration sensor into the lamp ECU to provide fail-safe operation based on vehicle acceleration information and a setting device to assist users in customizing lamp configurations within legal boundaries.

Benefits of technology

Ensures reliable operation of vehicle lamps even in communication failures and allows users to customize lamp arrangements and lighting modes while adhering to regulatory standards, enhancing safety and user satisfaction.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

Provided is a vehicular lamp (100) comprising: lamp units (110); a lamp electronic control unit (ECU) (200) which controls the lamp units (110) on the basis of vehicle information received from a vehicle; and an acceleration sensor (202) which provides information indicating a vehicle acceleration to the lamp ECU (200). The lamp ECU (200) detects whether or not the reception of the vehicle information is discontinued and controls the lamp units (110) on the basis of the vehicle acceleration when the discontinuation of the reception of the vehicle information is detected.
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Description

[Technical Field]

[0001] The present invention relates to a vehicle lamp, a control device and a control method for a vehicle lamp, and also to a vehicle lamp system, a setting device and a setting method for a vehicle lamp. [Background technology]

[0002] It is known that a lamp ECU (Electronic Control Unit) that controls rear combination lamps is connected to a vehicle ECU that controls the entire vehicle, and controls the lamps based on information input from the vehicle ECU. Various sensors, such as a vehicle speed sensor, are connected to the vehicle ECU, and information detected by the sensors, such as vehicle speed, is input from the vehicle ECU to the lamp ECU (see, for example, Patent Document 1).

[0003] Patent Document 1 also describes a vehicle panel module equipped with a rear combination lamp and an adjacent image display device. This rear combination lamp has three light sources, each consisting of a full-color LED, which function as a tail / stop lamp, a backup lamp, and a turn signal lamp, respectively. In this device, each lamp lights up normally while the vehicle is moving, but when parking, the lamps can be illuminated decoratively in various colors, brightnesses, and timings, and various images can be displayed on the image display device. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2016-40159 Summary of the Invention [Problem to be solved by the invention]

[0005] Generally, the vehicle ECU and the lighting fixture ECU are connected by a communication line such as a wire harness, and information is transmitted between these ECUs via the communication line. If communication between the vehicle ECU and the lighting fixture ECU is interrupted due to a break in the communication line or some other communication error, the lighting fixture ECU cannot obtain information from the vehicle ECU. In this case, the vehicle lighting fixtures, such as rear combination lamps, controlled by the lighting fixture ECU cannot obtain the information necessary to execute their control and will no longer operate.

[0006] One exemplary object of some aspects of the present invention is to provide a fail-safe function for a vehicle lamp.

[0007] In some cases, a vehicle lamp with multiple marker lights is realized by defining areas on an array of multiple light-emitting elements, such as a display, that function as marker lights, such as tail lamps and turn signal lamps. These areas on the display must meet legal requirements when functioning as marker lights. Therefore, the area configuration is typically performed by the vehicle lamp manufacturer during the manufacturing process. If users were allowed to customize this configuration, they would be able to change the appearance of the vehicle lamp to their own preferences, which could lead to increased user satisfaction. However, even user-customized vehicle lamps must still meet legal requirements, and customizing the settings to meet those requirements can be difficult for users who are unaware of them.

[0008] One exemplary object of certain aspects of the present invention is to assist users in customizing vehicle lighting fixtures while meeting regulatory requirements. [Means for solving the problem]

[0009] A vehicle lamp according to one aspect of the present invention includes a lamp unit, a control device that controls the lamp unit based on vehicle information received from the vehicle, and an acceleration sensor that provides information indicating vehicle acceleration to the control device. The control device detects whether reception of the vehicle information has been interrupted, and if interruption of reception of the vehicle information is detected, controls the lamp unit based on the vehicle acceleration.

[0010] According to this aspect, even if vehicle information for controlling the lamp unit cannot be obtained, the lamp unit can be operated based on vehicle acceleration information provided by the acceleration sensor, thereby providing a fail-safe function to the vehicle lamp.

[0011] The acceleration sensor may be built into the control device. This reduces the risk of the control device being unable to obtain vehicle acceleration information due to poor communication between the acceleration sensor and the control device, compared to when the acceleration sensor is provided externally to the control device. This makes it possible to more reliably provide a fail-safe function using the acceleration sensor.

[0012] The lighting unit may include a plurality of marker lights that provide different lighting functions. The control device may select one of the plurality of marker lights based on the vehicle acceleration and control the selected marker light. In this way, even if vehicle information cannot be acquired, the vehicle's driving state, such as deceleration, backing up, or turning right or left, can be determined from the vehicle acceleration, and an appropriate marker light can be turned on according to the determined state.

[0013] The lighting unit may include a tail lamp. The control device may turn on the tail lamp when it detects that the vehicle information has been lost. In this way, the tail lamp can be automatically turned on even when the vehicle information cannot be acquired. This is particularly useful for improving safety at night.

[0014] Another aspect of the present invention is a control device for a vehicle lamp. The device includes an ECU (Electronic Control Unit) that controls a lamp unit based on vehicle information received from the vehicle, and an acceleration sensor that provides the ECU with information indicating vehicle acceleration. The ECU detects whether reception of the vehicle information has been interrupted, and if interruption of reception of the vehicle information is detected, controls the lamp unit based on the vehicle acceleration.

[0015] Yet another aspect of the present invention is a method for controlling a vehicle lamp, comprising the steps of: detecting whether reception of vehicle information for controlling a lamp unit has been interrupted; acquiring information indicating vehicle acceleration from an acceleration sensor; and, if the interruption of reception of the vehicle information has been detected, controlling the lamp unit based on the vehicle acceleration.

[0016] A vehicle lighting system according to a second aspect of the present invention includes a lighting unit having a plurality of marker light areas each operating as a different marker light and capable of customizing the arrangement of the plurality of marker light areas, a setting device that accepts customization of the arrangement of the plurality of marker light areas and generates a customization setting that represents the customized arrangement of the plurality of marker light areas, and a control device that defines the plurality of marker light areas in the lighting unit according to the customization setting and controls the lighting unit to operate the plurality of marker light areas as different marker lights. When accepting the customization, the setting device displays a configurable area that can be used as a marker light area for each marker light.

[0017] According to this aspect, the user can customize the arrangement of the marker light area while understanding the configurable area. The configurable area can be defined in advance in accordance with legal requirements. Therefore, the user can be assisted in customizing the vehicle lamp while satisfying legal requirements.

[0018] When accepting customization, the setting device may display, for each marker lamp, a non-configurable area that cannot be used as a marker lamp area, along with the configurable area. This allows the user to understand the configurable and non-configurable areas. This makes it easier for the user to customize the vehicle lamp to meet legal requirements.

[0019] The setting device may accept customization of the arrangement and lighting mode of the plurality of marker light regions, and the customization setting may represent the customized arrangement and lighting mode of the plurality of marker light regions. In this way, the user can change not only the arrangement of the marker light regions but also their lighting mode. Being able to customize the vehicle lamp to better suit one's preferences can lead to further improvement in user satisfaction.

[0020] Another aspect of the present invention is a setting device for a vehicle lamp. The vehicle lamp includes a lighting unit having a plurality of marker light areas each operating as a different marker light, and the arrangement of the plurality of marker light areas can be customized. The setting device includes an input interface that accepts customization of the arrangement of the plurality of marker light areas, a display that, when accepting the customization, displays a configurable area that can be used as a marker light area for each marker light, and a processor that generates a customization setting that represents the customized arrangement of the plurality of marker light areas.

[0021] Yet another aspect of the present invention is a method for setting a vehicle lamp. The vehicle lamp includes a lighting unit having a plurality of marker light areas, each of which operates as a different marker light, and the arrangement of the plurality of marker light areas is customizable. The method includes the steps of: accepting a customization of the arrangement of the plurality of marker light areas in a setting device; when accepting the customization, displaying, on the setting device, configurable areas usable as marker light areas for each marker light; and generating, by the setting device, a customization setting representing the customized arrangement of the plurality of marker light areas.

[0022] Any combination of the above components, or conversion of the present disclosure into a method, device, system, computer program, or the like, is also effective as an aspect of the present invention. [Effects of the Invention]

[0023] According to the present invention, it is possible to provide a fail-safe function for a vehicle lamp, and it is possible to assist a user in customizing a vehicle lamp while meeting regulatory requirements. [Brief explanation of the drawings]

[0024] [Figure 1] 1 is a block diagram of a vehicle lamp according to a first embodiment. [Figure 2] 3 is a flowchart illustrating a method for controlling a vehicle lamp according to the first embodiment. [Figure 3] 3(a) and 3(b) are block diagrams of a vehicle lamp according to a modified example. [Figure 4] FIG. 10 is a block diagram of a vehicle lamp according to a second embodiment. [Figure 5] 5(a) and 5(b) are schematic diagrams showing exemplary vehicle lamps. [Figure 6] 10 is a flowchart illustrating a method for setting a vehicle lamp according to a second embodiment. [Figure 7] 7(a) and 7(b) are schematic diagrams showing examples of settable areas and non-settable areas according to the second embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0025] The present invention will be described below with reference to the drawings based on preferred embodiments. The embodiments are illustrative and do not limit the invention, and all features and combinations thereof described in the embodiments are not necessarily essential to the invention. Identical or equivalent components, parts, and processes shown in each drawing are designated by the same reference numerals, and redundant description will be omitted where appropriate. The scale and shape of each part shown in each drawing are set for convenience to facilitate explanation and should not be interpreted as limiting unless otherwise specified. Terms such as "first" and "second" used in this specification or claims do not indicate any order or importance, but are used to distinguish one configuration from another. Some components that are not important for explaining the embodiments are omitted in each drawing.

[0026] (First embodiment) 1 is a block diagram of a vehicle lamp 100 according to a first embodiment. The vehicle lamp 100 is suitable as a marker lamp for a vehicle such as an automobile. In this embodiment, the vehicle lamp 100 is described as a rear combination lamp installed at the rear of a vehicle.

[0027] The vehicular lamp 100 includes a pair of a first lamp unit 110R and a second lamp unit 110L, and a lamp ECU (Electronic Control Unit) 200 that controls these lamp units 110. The vehicle also includes a vehicle ECU 300 as a controller that comprehensively controls the entire vehicle or a part of the vehicle. The vehicle ECU 300 may be a controller also referred to as a BCM (Body Control Module). The ECU can be implemented as a combination of a processor (hardware) such as a CPU (Central Processing Unit) or a microcomputer, and a software program executed by the processor (hardware).

[0028] For convenience, communication lines connecting functional blocks are shown in Figure 1 with dashed arrows. The lamp ECU 200 can communicate with the vehicle ECU 300 via an in-vehicle network that complies with a network protocol such as CAN (Controller Area Network) or LIN (Local Interconnect Network), or any other appropriate communication network. The lamp ECU 200 can also communicate with the lamp unit 110 via an appropriate communication network. The communication between the lamp ECU 200 and the vehicle ECU 300 and the communication between the lamp ECU 200 and the lamp unit 110 may comply with different protocols or may comply with the same protocol.

[0029] 1, for convenience, power supply lines connecting functional blocks are shown as solid lines. The lamp ECU 200 and the vehicle ECU 300 receive power from a power source 310 such as an in-vehicle battery. The lamp ECU 200 supplies power to the lamp unit 110. The lamp ECU 200 can also be considered as a power source for the lamp unit 110.

[0030] For example, the communication line between the lamp ECU 200 and the vehicle ECU 300 is illustrated with the reference numeral 302. The communication line 302 and other communication lines are, for example, wire harnesses. The ECUs, or the ECU and the lamp unit 110, are connected to each other by the wire harness so that they can communicate with each other. The wire harness may also include a power supply line.

[0031] The first lamp unit 110R includes a plurality of first lamps that provide different lamp functions, such as a tail lamp 120a, a stop lamp 120b, a turn signal lamp 120c, and a backup lamp 120d in this example. Similarly, the second lamp unit 110L includes a plurality of second lamps 120a-120d that provide different lamp functions. The vehicular lamp 100 includes a pair of first lamps and a pair of second lamps that provide the same lamp function, with the first lamps arranged in a group and the second lamps arranged in a group corresponding to the first lamps. The first lamp unit 110R may be a right rear combination lamp, and the second lamp unit 110L may be a left rear combination lamp.

[0032] Each of the first lamp unit 110R and the second lamp unit 110L includes a lighting circuit 130 that individually lights up the lamps 120a to 120d belonging to the first lamp unit 110R under the control of the lamp ECU 200. The lighting circuit 130 includes a lighting control IC (Integrated Circuit) (LED driver) that can individually control the brightness and on / off of the light-emitting elements (e.g., LEDs) of each of the lamps 120a to 120d.

[0033] In this embodiment, the lighting circuit 130 is a lighting circuit common to the multiple types of lighting fixtures 120a to 120d that belong to the lighting fixture unit 110. This has the advantage that by using a common communication line and power supply line that connect the lighting circuit 130 to the lighting fixture ECU 200, the communication lines and power supply lines for the multiple types of lighting fixtures can be consolidated and the number of wirings can be reduced. Another advantage is that it becomes easy to light multiple types of lighting fixtures in coordination with each other, making it easy to realize various lighting modes such as colorful lighting effects.

[0034] It is not essential that the lighting circuit 130 is a common lighting circuit. In one embodiment, the lamp unit 110 may have a typical configuration in which each lamp has an individual lighting circuit, and each lighting circuit is connected to the lamp ECU 200 by an individual communication line and power supply line, and the corresponding lamp is operated individually under the control of the lamp ECU 200.

[0035] The lamp ECU 200 includes an acceleration sensor 202 , a processor 210 , a memory 220 , and a communication circuit 230 .

[0036] The acceleration sensor 202 generates information indicating vehicle acceleration (including deceleration) (hereinafter also referred to as acceleration sensor information) and provides the acceleration sensor information to the lamp ECU 200. The acceleration sensor 202 is built into the lamp ECU 200. The acceleration sensor 202 may be, for example, a capacitance-type MEMS acceleration sensor, or may be another type of acceleration sensor.

[0037] The acceleration sensor 202 is configured to measure acceleration in at least one axis (e.g., the longitudinal direction of the vehicle). The acceleration sensor 202 may be configured to measure acceleration in at least two axes (e.g., the longitudinal direction and the transverse direction of the vehicle), or may be configured to measure acceleration in three axes.

[0038] The acceleration sensor 202 and other components within the lamp ECU 200, such as the processor 210, are communicatively connected to each other via internal wiring 204. The acceleration sensor 202 outputs the generated acceleration sensor information to the processor 210 or the components of the lamp ECU 200 via the internal wiring 204.

[0039] For example, the acceleration sensor 202 and the processor 210 may both be separate components mounted on the same printed circuit board, and the internal wiring 204 may be a wiring pattern formed on this board and connecting the acceleration sensor 202 and the processor 210 so as to enable communication between them. Alternatively, the acceleration sensor 202 and other components in the lamp ECU 200, such as the processor 210, may be integrated as a microcontroller or an SoC (System on Chip), and the internal wiring 204 may be the internal wiring of the microcontroller or the SoC.

[0040] The processor 210 includes a detection unit 212 that detects a communication abnormality between the lamp ECU 200 and the vehicle ECU 300, and a control unit 214 that controls the lamp unit 110. The detection unit 212 and the control unit 214 are implemented in the processor 210 by the processor 210 executing a software program stored in the memory 220. The memory 220 may include a non-volatile memory and / or a volatile memory. In addition to the software program, the memory 220 stores data required for the operation of the lamp ECU 200 and the execution of the software program, and data generated by the execution of the software program. The lamp ECU 200 may be configured to be able to update the software program and / or data required for its execution, for example, via OTA (Over The Air) or wired communication.

[0041] The detection unit 212 is configured to detect whether reception of vehicle information from the vehicle ECU 300 has been interrupted. The detection unit 212 may monitor the communication state of the communication line 302 connecting the lamp ECU 200 and the vehicle ECU 300, and detect the interruption of reception of vehicle information based on this communication state. For example, the detection unit 212 may detect the interruption of reception of vehicle information when a state in which no vehicle information is received from the vehicle ECU 300 continues for a predetermined period of time. The detection unit 212 may be configured to execute an existing method for detecting a communication abnormality between the lamp ECU 200 and the vehicle ECU 300.

[0042] The communication circuit 230 is an interface that communicates with the vehicle ECU 300. In the illustrated example, the detection unit 212 is built in the processor 210, but this is not limitative, and the communication circuit 230 may function as the detection unit 212.

[0043] The lamp ECU 200 is configured to receive vehicle information from the vehicle ECU 300 and, based on the received vehicle information, control each of the lamps 120a to 120d of the lamp unit 110. More specifically, the control unit 214 selects one of the lamps 120a to 120d in accordance with a lighting instruction included in the received vehicle information, generates a control signal for controlling the selected lamp, and provides the control signal to the lighting circuit 130 of the lamp unit 110.

[0044] The vehicle information includes, for example, an instruction to turn on the tail lamps 120a generated in response to the driver's operation of the light switch, an instruction to turn on the stop lamps 120b generated in response to the driver's operation of the brakes, an instruction to turn on the turn signal lamps 120c generated in response to the driver's operation of the turn signal switch, and shift information indicating the shift position (for example, whether the shift position is reverse (R) or not).

[0045] The control unit 214 performs functions such as determining whether or not the lighting fixtures 120a to 120d of the lighting unit 110 should be turned on, selecting the lighting fixtures to be turned on, dimming control of the lighting fixtures to be turned on (for example, calculating the duty ratio of PWM (Pulse Width Modulation) dimming, or calculating the magnitude of the current value to be supplied to the light-emitting element), and sending command values ​​(for example, command values ​​for the duty ratio or current value) to the lighting circuit 130 for executing the dimming control.

[0046] Therefore, when the vehicle information includes an instruction to turn on the tail lamps 120a, the control unit 214 turns on the tail lamps 120a at a predetermined brightness. When the vehicle information includes an instruction to turn on the stop lamps 120b, the control unit 214 turns on the stop lamps 120b brighter than the tail lamps 120a. When the vehicle information includes an instruction to turn on the turn signal lamps 120c, the control unit 214 blinks the turn signal lamps 120c. When the vehicle information includes shift information indicating that the shift position is reverse (R), the control unit 214 turns on the backup lamps 120d.

[0047] The lamp ECU 200 is also configured to control each of the lamps 120a-120d of the lamp unit 110 based on acceleration sensor information output by the acceleration sensor 202. More specifically, the control unit 214 determines the current vehicle driving state, such as driving, turning, or stopping, from the acceleration sensor information, or predicts the vehicle's immediate subsequent driving state. The control unit 214 then selects one of the lamps 120a-120d in accordance with the determined driving state, generates a control signal for controlling the selected lamp, and provides the control signal to the lighting circuit 130 of the lamp unit 110.

[0048] 2 is a flowchart illustrating a control method for the vehicle lamp 100 according to the first embodiment. This method is repeatedly executed by the lamp ECU 200 at predetermined intervals (for example, at intervals of several milliseconds to several tens of milliseconds).

[0049] This method includes a step (S10) of detecting whether reception of vehicle information for controlling the lighting unit 110 has been interrupted, a step (S20) of acquiring information indicating vehicle acceleration from the acceleration sensor 202, and a step (S30) of controlling the lighting unit 110 based on the vehicle acceleration if interruption of reception of the vehicle information is detected.

[0050] When this method starts, as shown in FIG. 2, the detection unit 212 detects whether or not reception of vehicle information from the vehicle ECU 300 has been interrupted (S10). If interruption of reception of vehicle information is not detected, i.e., if the lamp ECU 200 is receiving vehicle information from the vehicle ECU 300 (No in S10), the control unit 214 selects a lamp from the plurality of lamps 120a-120d that corresponds to an illumination instruction included in the received vehicle information, and controls the selected lamp (S12). Alternatively, if the received vehicle information does not include an illumination instruction for any lamp, the control unit 214 turns off the plurality of lamps 120a-120d. In other words, this is the normal operation of the vehicle lamp 100.

[0051] On the other hand, if the detection unit 212 detects that reception of vehicle information has been interrupted (Yes in S10), the control unit 214 turns on the tail lamps 120a (S14). In this way, even if the lamp ECU 200 cannot acquire vehicle information from the vehicle ECU 300, the vehicle lamp 100 can automatically turn on the tail lamps 120a without waiting for an instruction to turn on the tail lamps 120a from the vehicle ECU 300. Even if reception of vehicle information is interrupted at night, the tail lamps 120a can be reliably turned on. Therefore, this is useful for improving safety, especially at night.

[0052] The lamp ECU 200 acquires acceleration sensor information from the acceleration sensor 202 (S20). Subsequently, the lamp ECU 200 controls the lamp unit 110 based on the acceleration sensor information (S30). The control unit 214 determines the current vehicle driving state from the acquired acceleration sensor information, selects a lamp from the plurality of lamps 120a to 120d according to the determined driving state, and controls this lamp.

[0053] For example, if the acceleration sensor 202 can measure the acceleration in the longitudinal direction of the vehicle, the acceleration sensor information can represent the measured acceleration in the longitudinal direction of the vehicle. Therefore, the control unit 214 can use the acceleration sensor information to determine whether the vehicle is decelerating from the acceleration in the longitudinal direction of the vehicle. If the vehicle is decelerating, it is assumed that a brake operation is being performed, and the control unit 214 turns on the stop lamp 120b.

[0054] The control unit 214 can determine whether the deceleration of the vehicle is due to emergency braking or normal braking, based on the magnitude of the measured acceleration (deceleration) in the vehicle's longitudinal direction. For example, if the magnitude of the measured deceleration in the vehicle's longitudinal direction exceeds a first deceleration threshold value that indicates emergency braking, the control unit 214 may determine that emergency braking is being performed. If the measured deceleration in the vehicle's longitudinal direction is below the first deceleration threshold value, the control unit 214 may determine that normal braking is being performed. When emergency braking is detected in this manner, the control unit 214 may turn on the lamp unit 110 to indicate emergency braking, for example, by turning on a high flasher (high-speed flashing) of the stop lamp 120b.

[0055] Furthermore, a second deceleration threshold greater than the first deceleration threshold may be preset. If a large deceleration exceeding the second deceleration threshold is measured, this may be due to a collision between the host vehicle and another vehicle or a surrounding structure. Therefore, if the measured deceleration in the longitudinal direction of the vehicle exceeds the second deceleration threshold, the control unit 214 may turn on the lighting unit 110, for example, the hazard lamps, i.e., the high flashers of the turn signal lamps 120c on both the left and right sides, to indicate the occurrence or possibility of a collision.

[0056] The control unit 214 may determine whether the vehicle is reversing based on the direction (forward or backward) of the measured acceleration (vector) in the vehicle's longitudinal direction. If the measured acceleration in the vehicle's longitudinal direction is directed toward the front of the vehicle, the control unit 214 may determine that the vehicle is moving forward. If the measured acceleration in the vehicle's longitudinal direction is directed toward the rear of the vehicle, the control unit 214 may determine that the vehicle is reversing. If the vehicle is reversing, the control unit 214 turns on the backup lamp 120d.

[0057] If the acceleration sensor 202 can measure acceleration in the vehicle width direction, the acceleration sensor information can represent the measured acceleration in the vehicle width direction. The control unit 214 can determine whether the vehicle is turning right or left or changing lanes from the measured acceleration in the vehicle width direction. In this case, the control unit 214 may flash the turn signal lamp 120c.

[0058] During control of the vehicle lamp 100 based on the acceleration sensor information, the detection unit 212 may monitor whether or not vehicle information is being received from the vehicle ECU 300, thereby detecting whether or not reception of the vehicle information has been restored. If reception of the vehicle information has not been restored and the interruption in reception of the vehicle information continues, the control based on the acceleration sensor information continues. If reception of the vehicle information is restored, the control unit 214 may return to normal control based on the vehicle information.

[0059] As described above, according to this embodiment, the vehicle's traveling state, such as deceleration, backing up, or turning right or left, can be determined based on acceleration sensor information, and an appropriate marker lamp can be turned on according to the determined state. Even if the lamp ECU 200 cannot acquire vehicle information from the vehicle ECU 300 due to a communication interruption between the lamp ECU 200 and the vehicle ECU 300, the vehicle lamp 100 can be operated. In this way, a fail-safe function can be provided to the vehicle lamp 100.

[0060] In the above-described embodiment, the acceleration sensor 202 is built into the lamp ECU 200. This reduces the risk that the lamp ECU 200 will not be able to acquire acceleration sensor information from the acceleration sensor 202, compared to when the acceleration sensor 202 is provided outside the lamp ECU 200 and connected to the lamp ECU 200 by wiring such as a wire harness. This makes it possible to more reliably provide a fail-safe function using the acceleration sensor 202. However, the location of the acceleration sensor 202 is not limited to this, and the acceleration sensor 202 may be provided outside the lamp ECU 200. Such modifications are described below.

[0061] 3(a) and 3(b) are block diagrams of a vehicle lamp 100 according to a modified example. As shown in FIG. 3(a), the acceleration sensor 202 may be disposed outside the lamp ECU 200 and provide acceleration sensor information to the lamp ECU 200. For example, the acceleration sensor 202 may be connected to the lamp ECU by a communication line 304 (e.g., a wire harness) separate from the communication line 302 connecting the lamp ECU 200 and the vehicle ECU 300. The acceleration sensor 202 may transmit the acceleration sensor information to the lamp ECU 200 through the communication line 304. Even in this case, even if the lamp ECU 200 cannot acquire vehicle information from the vehicle ECU 300, the vehicle lamp 100 can be operated based on the acceleration sensor information, as in the above-described embodiment.

[0062] As shown in FIG. 3(b), an ECU (for example, a meter ECU) 400 separate from the vehicle ECU 300 may be communicatively connected to the lamp ECU 200, and this separate ECU 400 may have acceleration sensor information (for example, may have a built-in acceleration sensor 202) and provide the acceleration sensor information to the lamp ECU 200. Alternatively, the acceleration sensor 202 may be provided outside the ECU 400 and connected to the ECU 400, and the acceleration sensor information may be provided from the acceleration sensor 202 to the ECU 400, and further provided from the ECU 400 to the lamp ECU 200. Alternatively, the acceleration sensor 202 (or another acceleration sensor) may be connected to the vehicle ECU 300, and the ECU 400 may acquire the acceleration sensor information from the vehicle ECU 300. This configuration also makes it possible to achieve a fail-safe against communication interruptions between the lamp ECU 200 and the vehicle ECU 300.

[0063] (Second embodiment) 4 is a block diagram of a vehicle lamp 100 according to a second embodiment. The vehicle lamp 100 is suitable as a marker lamp for a vehicle such as an automobile. In this embodiment, the vehicle lamp 100 is described as a rear combination lamp installed at the rear of a vehicle.

[0064] The vehicle lamp 100 includes an array of a large number of light-emitting elements (for example, high-definition LEDs or other LEDs), in this example a display 140, and a lamp ECU (Electronic Control Unit) 200 that controls the display 140. At least a portion of the display 140 functions as a pair of a first lamp unit 110R and a second lamp unit 110L (hereinafter, collectively referred to as lamp units 110). In this example, the first lamp unit 110R corresponds to the right rear combination lamp, and the second lamp unit 110L corresponds to the left rear combination lamp.

[0065] 4, a setting device 250 is provided for a user (e.g., a driver or other occupant) to customize the vehicle lamp 100. The setting device 250, together with the vehicle lamp 100, constitutes a vehicle lamp system according to the embodiment.

[0066] As will be described in detail later, in this embodiment, the lighting unit 110 (i.e., the display 140) has a plurality of marker light areas, each of which operates as a different marker light, and the arrangement of the plurality of marker light areas is customizable. The setting device 250 accepts customization of the arrangement of the plurality of marker light areas and generates a customization setting S1 that represents the customized arrangement of the plurality of marker light areas. The lighting fixture ECU 200 defines a plurality of marker light areas in the lighting unit 110 in accordance with the customization setting S1 and controls the lighting unit 110 so that the plurality of marker light areas each operate as a different marker light. The ECU can be implemented as a combination of a processor (hardware) such as a CPU (Central Processing Unit) or a microcomputer, and a software program executed by the processor (hardware).

[0067] The vehicle is also provided with a vehicle ECU 300 as a controller that comprehensively controls the entire vehicle or a part of the vehicle. The vehicle ECU 300 may be a controller also referred to as a BCM (Body Control Module). The vehicle ECU 300, together with the lamp ECU 200, may be considered to constitute a control device that controls the lamp unit 110. The vehicle ECU 300, together with the vehicle lamp 100, may be considered to constitute a vehicle lamp system according to the embodiment.

[0068] For convenience, in FIG. 4, communication lines connecting functional blocks are indicated by dashed arrows. The lamp ECU 200 can communicate with the vehicle ECU 300 via an in-vehicle network conforming to a network protocol such as CAN (Controller Area Network) or LIN (Local Interconnect Network), or any other appropriate communication network. The vehicle ECU 300 can also communicate with the setting device 250 via an appropriate communication network. The communication between the lamp ECU 200 and the vehicle ECU 300 and the communication between the setting device 250 and the vehicle ECU 300 may conform to different protocols or may conform to the same protocol. Similarly, the lamp ECU 200 can communicate with the lamp unit 110 via an appropriate communication network.

[0069] 4, for convenience, power supply lines connecting functional blocks are shown as solid lines. The lamp ECU 200 and the vehicle ECU 300 are supplied with power from a power source 310 such as an on-board battery. The lamp ECU 200 supplies power to the lamp unit 110. The lamp ECU 200 can also be considered as the power source for the lamp unit 110. The setting device 250 may be supplied with power from the power source 310, or may have a built-in battery for powering itself.

[0070] The display 140 includes a display drive circuit (display driver IC) 142 and a display panel 144. On the display panel 144, marker lamp areas corresponding to the plurality of marker lamps (in this example, the tail lamp 120a, the stop lamp 120b, the turn signal lamp 120c, and the backup lamp 120d) that constitute the first lamp unit 110R are arranged according to an initial setting (for example, set by the manufacturer of the vehicle lamp 100 at the manufacturing stage) or according to a customization setting S1. Similarly, marker lamp areas corresponding to the plurality of marker lamps 120a to 120d that constitute the second lamp unit 110L are arranged on the display panel 144.

[0071] 5(a) and 5(b) are schematic diagrams showing an exemplary vehicle lamp 100. Both figures show the appearance of the rear part of a vehicle equipped with the vehicle lamp 100 as viewed from behind the vehicle.

[0072] As an example, as shown in FIG. 5(a), the vehicle lamp 100 may have a single large display 140 that covers the entire rear of the vehicle. On this display 140, the first lamp unit 110R may be located at the right end, and the second lamp unit 110L may be located at the left end. As described above, the first lamp unit 110R and the second lamp unit 110L each have marker lamp areas corresponding to the tail lamps 120a, stop lamps 120b, turn signal lamps 120c, and backup lamps 120d. A plurality of mutually separated marker lamp areas are defined on the display 140 according to the initial setting or customization setting S1, and each marker lamp 120a to 120d is assigned to a corresponding marker lamp area. However, the tail lamps 120a and stop lamps 120b are arranged in the same position on the display 140.

[0073] In some cases, the display 140 may be composed of multiple parts, for example, a movable-side display 140a installed in a movable part such as a door that can move (open and close) relative to the vehicle body, and a fixed-side display 140b installed in a fixed part fixed to the vehicle body and adjacent to the movable-side display 140a. Each of the above-mentioned marker light areas may be provided across both the movable-side display 140a and the fixed-side display 140b.

[0074] The area of ​​display 140 excluding lighting unit 110, i.e., the remaining area not used as marker lights 120a to 120d, may be used freely as free area 112 for various purposes, such as displaying various characters and figures, or for various decorative lighting.

[0075] As another example, as shown in FIG. 5(b), the vehicle lamp 100 may have an elongated display 140 extending in the vehicle width direction along the lower edge of the rear of the vehicle. This display 140 extends in an elongated shape from left to right across the entire vehicle width. On the display 140, the first lamp unit 110R may be disposed at the right end, and the second lamp unit 110L may be disposed at the left end, and each lamp unit 110 may have a marker lamp area corresponding to a tail lamp 120a, a stop lamp 120b, a turn signal lamp 120c, and a backup lamp 120d. The central portion of the display 140 between the first lamp unit 110R and the second lamp unit 110L may be used as a free area 112.

[0076] The display 140 may be a single large display including both the first lamp unit 110R and the second lamp unit 110L, but this is not essential. The vehicle lamp 100 may include a first display that operates as the first lamp unit 110R and a second display that operates as the second lamp unit 110L.

[0077] Furthermore, the vehicle lamp 100 may include a third lamp unit different from the first lamp unit 110R and the second lamp unit 110L. Therefore, the display 140 may operate not only as the first lamp unit 110R and the second lamp unit 110L, but also as the third lamp unit. The third lamp unit may be, for example, a high-mounted stop lamp or another lamp unit provided at the rear of the vehicle. A part of the free area 112 may operate as the third lamp unit.

[0078] Referring again to FIG. 4 , the lamp ECU 200 is operable as a controller that controls the lamp unit 110. The lamp ECU 200 is configured to receive vehicle information from the vehicle ECU 300 and provide each of the marker lights 120a to 120d of the lamp unit 110 on the display 140 based on the received vehicle information. More specifically, the lamp ECU 200 selects a marker light to be operated from the plurality of marker lights 120a to 120d in accordance with a lighting instruction included in the received vehicle information, generates a control signal for displaying the selected marker light on the display 140, and provides the control signal to the display drive circuit 142. Under the control of the lamp ECU 200, the display drive circuit 142 controls the display panel 144 to display an image representing each marker light in accordance with the initial setting or customized setting S1 described above.

[0079] The vehicle information includes, for example, an instruction to turn on the tail lamps 120a generated in response to the driver's operation of the light switch, an instruction to turn on the stop lamps 120b generated in response to the driver's operation of the brakes, an instruction to turn on the turn signal lamps 120c generated in response to the driver's operation of the turn signal switch, and shift information indicating the shift position (for example, whether the shift position is reverse (R) or not).

[0080] Therefore, when the vehicle information includes an instruction to turn on the tail lamps 120a, the lamp ECU 200 controls the display 140 to turn on the tail lamps 120a at a predetermined brightness. When the vehicle information includes an instruction to turn on the stop lamps 120b, the lamp ECU 200 controls the display 140 to turn on the stop lamps 120b brighter than the tail lamps 120a. When the vehicle information includes an instruction to turn on the turn signal lamps 120c, the lamp ECU 200 controls the display 140 to flash the turn signal lamps 120c. When the vehicle information includes shift information indicating that the shift position is reverse (R), the lamp ECU 200 controls the display 140 to turn on the backup lamps 120d.

[0081] The setting device 250 is configured to receive customization of the arrangement of the plurality of marker light regions and generate a customization setting S1 that represents the customized arrangement of the plurality of marker light regions. When receiving the customization, the setting device 250 is also configured to display a configurable area that can be used as a marker light region for each marker light (for example, configurable areas 50a and 52a shown in FIG. 7).

[0082] The setting device 250 includes an input interface 252 that accepts customization of the arrangement of multiple marker light areas, a display 254 that displays a configurable area that can be used as a marker light area for each marker light when the customization is accepted, a processor 256 that generates a customization setting S1 that represents the customized arrangement of the multiple marker light areas, and a memory 258.

[0083] The input interface 252 may be a display that accepts input from a user, such as a touch panel display or an interactive display, in which case the display 254 may constitute a part of the input interface 252. Alternatively, the input interface 252 may be any other appropriate input means that can be operated by a user to input the user's desired arrangement of the marker light areas into the setting device 250.

[0084] The customization support function of the setting device 250, such as displaying the configurable area on the display 254, can be implemented in the processor 256 by the processor 256 executing a software program stored in the memory 258. The memory 258 can include a non-volatile memory and / or a volatile memory. In addition to the software program, the memory 258 can store data necessary for the operation of the setting device 250 and the execution of the software program, and data generated by the execution of the software program.

[0085] When accepting customization, processor 256 may display, for each marker lamp, a non-configurable area that cannot be used as a marker lamp area (e.g., non-configurable areas 50b, 52b shown in FIG. 7) along with the configurable area. This allows the user to understand the configurable area and the non-configurable area. This makes it easier for the user to customize the vehicle lamp to satisfy legal requirements.

[0086] The processor 256 may accept customization of the arrangement and lighting patterns of the multiple marker light areas, and the customization settings may represent customized arrangements and lighting patterns of the multiple marker light areas. The arrangement of the marker light areas may include, for example, the position, area, or shape of the marker light areas, or a combination thereof. The lighting pattern of the marker light areas may include, for example, the brightness, lighting timing, color, or animation (e.g., gradual change in brightness, sequential lighting, etc.) of the marker light areas, or a combination thereof. In this manner, the user can change not only the arrangement of the marker light areas but also their lighting patterns. Customizing a vehicle lamp to better suit one's preferences may lead to further improvement in user satisfaction.

[0087] For example, the setting device 250 may be an operation panel installed inside the vehicle, or may be a mobile terminal (such as a smartphone) carried by the user.

[0088] The setting device 250 may be connected to the vehicle ECU 300 by wire. The setting device 250 may be connected to the vehicle ECU 300 when the user customizes the vehicle lamp 100, and may be detached from the vehicle ECU 300 after the customization is completed. Instead of the setting device 250 being temporarily connected to the vehicle ECU 300 in this manner, the setting device 250 may be permanently connected to the vehicle ECU 300 or integrated with the vehicle ECU 300. Alternatively, the setting device 250 may be wirelessly connected to the vehicle ECU 300. In this case, the setting device 250 may establish a connection with the vehicle ECU 300 when the user customizes the vehicle lamp 100, and may be disconnected from the vehicle ECU 300 after the customization is completed.

[0089] The setting device 250 may be connected by wire or wirelessly to the lamp ECU 200 instead of the vehicle ECU 300. In this case, the lamp ECU 200 transmits the customization settings generated by the setting device 250 to the setting device 250. 0 can be obtained directly from

[0090] FIG. 6 is a flowchart illustrating a setting method for a vehicle lamp 100 according to the second embodiment. This method includes the steps of: receiving a customization of the arrangement of a plurality of marker light areas in the setting device 250 (S60); displaying, on the setting device 250, a configurable area that can be used as a marker light area for each marker light when the customization is received (S61); and generating, by the setting device 250, a customization setting S1 that represents the customized arrangement of the plurality of marker light areas (S62). The generated customization setting S1 is transmitted from the setting device 250 to the lamp ECU 200 via the vehicle ECU 300, as shown in FIG. 4, and stored in the lamp ECU 200. In this way, the lamp ECU 200 obtains the customization setting S1 from the vehicle ECU 300, and can subsequently control the vehicle lamp 100 in accordance with this customization setting S1.

[0091] 7(a) and 7(b) are schematic diagrams showing examples of settable areas and non-settable areas according to the second embodiment. FIG. 7(a) illustrates a settable area 50a and a non-settable area 50b for the tail lamp 120a, and FIG. 7(b) illustrates a settable area 52a and a non-settable area 52b for the backup lamp 120d. The settable area 50a and the non-settable area 50b shown in FIG. 7(a) can also be applied to the stop lamp 120b and the turn signal lamp 120c.

[0092] As shown in FIG. 7(a), a configurable area 50a and a non-configurable area 50b for the tail lamp 120a to be set on the display 140 of the vehicle lighting fixture 100 are displayed on the display 254 of the setting device 250. The configurable area 50a represents the range on the display 140 in which the arrangement of the tail lamp 120a is legally permitted. For example, the configurable area 50a has a height H1 and width W1 specified by the regulations. The configurable areas 50a are defined at the left and right ends of the display 140 corresponding to the left and right tail lamps. The user is permitted to arrange the tail lamp 120a in the configurable area 50a. Therefore, as shown by the dashed line in FIG. 7(a), the user can set at least a portion of the configurable area 50a as the tail lamp 120a.

[0093] On the other hand, the non-configurable area 50b shown by the diagonal lines in the figure corresponds to the remaining area on the display 140 excluding the configurable area 50a. Placing the tail lamp 120a in the non-configurable area 50b is not permitted by law. Therefore, the user is prohibited from placing the tail lamp 120a in the non-configurable area 50b.

[0094] Similarly, as shown in FIG. 7(b), a configurable area 52a and a non-configurable area 52b for the backup lamp 120d can also be displayed on the display 254 of the setting device 250. The configurable area 52a is the legally permitted range for arranging the backup lamp 120d, and has the height H2 and width W2 prescribed by the regulations. The configurable area 52a for the backup lamp 120d is the legally permitted range for arranging the backup lamp 120d, and has the legally permitted height H2 and width W2. 0 7B. Since the user is permitted to place the backup lamps 120d in the settable area 52a, the user can set at least a part of the settable area 52a as the backup lamps 120d, as shown by the dashed line in FIG. 7B. On the other hand, since the placement of the backup lamps 120d is prohibited by law in the non-settable area 52b shown by the diagonal line in the figure, the user is prohibited from placing the backup lamps 120d in the non-settable area 52b.

[0095] 6 may include a step of verifying the customized setting S1 after the customized setting S1 is generated. That is, the setting device 250 may verify whether the customized arrangement (and / or lighting mode) of the marker light area represented by the customized setting S1 satisfies regulatory requirements.

[0096] If the customization setting S1 passes the verification, the customization setting S1 is transmitted from the setting device 250 to the vehicle ECU 300 and is used by the lamp ECU 200 to control the vehicle lamp 100.

[0097] On the other hand, if the customized setting S1 fails the verification, the setting device 250 may notify the user of the failure and accept a reset. If the customized setting S1 is input again, the setting device 250 may perform the verification step again. If a reset is not performed, the setting device 250 may not adopt the customized setting S1 input this time and may maintain the original setting. In this way, it is possible to avoid a situation where the area set by the user is too small and not bright enough to meet the requirements, for example.

[0098] According to this embodiment, as described above, when accepting customization of the vehicular lamp 100 by the user, the setting device 250 displays the configurable and non-configurable areas for each marker lamp. Therefore, the user can customize the arrangement of the marker lamp regions while understanding the configurable and non-configurable areas. These areas can be defined in advance in accordance with regulatory requirements. Therefore, by using the setting device 250, the user can be assisted in customizing the vehicular lamp 100 while satisfying regulatory requirements.

[0099] The present invention is not limited to the above-described embodiments and modifications, but may be combined with the embodiments and modifications, or may be further modified, such as by various design changes, based on the knowledge of a person skilled in the art. Such combined or further modified embodiments and modifications are also included within the scope of the present invention. The above-described embodiments and modifications, as well as new embodiments resulting from the combination of the above-described embodiments and modifications with the following modifications, combine the effects of the combined embodiments, modifications, and further modifications.

[0100] For example, the vehicle lamp 100 may include a third lamp unit different from the first lamp unit 110R and the second lamp unit 110L. The lamp ECU 200 may control the third lamp unit in the same manner as in the above-described embodiment. That is, the lamp ECU 200 may control the third lamp unit based on vehicle information from the vehicle ECU 300 under normal circumstances, and based on acceleration sensor information from the acceleration sensor 202 when communication between the lamp ECU 200 and the vehicle ECU 300 is interrupted. The third lamp unit may be, for example, a high-mounted stop lamp or another lamp unit provided in the rear of the vehicle.

[0101] In the above-described embodiment, the vehicle lamp 100 is described as a rear lamp, but the vehicle lamp 100 according to the embodiment may be installed anywhere. Therefore, the vehicle lamp 100 may be installed in the front of the vehicle or in another location. The vehicle lamp 100 is not limited to the lamps 120a to 120d illustrated in the above-described embodiment, and may be, for example, a clearance lamp, a daytime running lamp, a cornering lamp, a front fog lamp, or any other vehicle lamp.

[0102] In the above-described embodiment, the lighting unit 110 is provided with a plurality of individual lighting fixtures (e.g., a plurality of marker lights) each providing a different lighting function, but this is not limiting. For example, the lighting unit 110 may be provided with a display providing a plurality of different lighting functions, or a plurality of separate regions may be defined on the display, with each lighting function assigned to a corresponding region. For example, four regions may be defined on the display, with a tail lamp 120a, a stop lamp 120b, a turn signal lamp 120c, and a backup lamp 120d assigned to each of these regions. Alternatively, the lighting unit 110 may be a composite type that combines at least one individual lighting fixture with a display assigned at least one lighting function.

[0103] In the above-described embodiment, the user is free to customize the arrangement (position, area, shape, etc.) of the marker light area as long as it is within the configurable area. Alternatively, in some embodiments, when accepting customization for a marker light, the setting device 250 may display a plurality of pre-defined selectable candidates as the configurable area on the display 254. The arrangement (position, area, shape, etc.) of each candidate is pre-determined. The user may select one of these candidates, and the selected candidate may be set as the marker light area.

[0104] In the above-described embodiment, the control device that controls the vehicle lamp 100 is the lamp ECU 200, but the present invention is not limited to this. The control device may be configured to control not only the lamps 120a to 120d but also other electrical equipment installed in the vehicle. The control device may be a control device also called a zone ECU that comprehensively controls all or some of the various electrical equipment arranged in a specific zone when the vehicle is divided into multiple zones. In addition to the lamps, the electrical equipment may include wipers, a tailgate opener, a seat heater, a glass hatch, a rear window defogger, a backup camera, a sensor cleaner for the backup camera, a snow melting heater, a fuel lid motor, a rear door lock motor, power windows, millimeter-wave radar, and other sensors.

[0105] The present invention has been described using specific terms based on the embodiments, but the embodiments merely illustrate one aspect of the principles and applications of the present invention, and many modifications and changes in arrangement are permitted to the embodiments as long as they do not deviate from the concept of the present invention as defined in the claims. [Industrial Applicability]

[0106] The present invention can be used in the fields of vehicle lighting fixtures, vehicle lighting fixture control devices and control methods, and vehicle lighting systems, and vehicle lighting fixture setting devices and setting methods. [Explanation of symbols]

[0107] 100 Vehicle lamp, 110R First lamp unit, 110L Second lamp unit, 120a Tail lamp, 120b Stop lamp, 120c Turn signal lamp, 120d Backup lamp, 200 Lamp ECU, 202 Acceleration sensor, 250 Setting device, 300 Vehicle ECU.

Claims

1. A lighting unit, a control device that controls the lighting unit based on vehicle information received from the vehicle; an acceleration sensor that provides information indicative of vehicle acceleration to the control device; The control device detects whether reception of the vehicle information has been interrupted, and if interruption of reception of the vehicle information is detected, controls the lighting unit based on the vehicle acceleration.

2. 2. The vehicle lamp according to claim 1, wherein the acceleration sensor is built into the control device.

3. The lighting unit includes a plurality of marker lamps each providing a different lighting function, 3. The vehicle lamp according to claim 1, wherein the control device selects one of the plurality of marker lamps based on the vehicle acceleration and controls the selected marker lamp.

4. The lighting unit includes a tail lamp, 3. The vehicle lamp according to claim 1, wherein the control device turns on the tail lamp when a disruption of reception of the vehicle information is detected.

5. an ECU (Electronic Control Unit) that controls the lighting unit based on vehicle information received from the vehicle; an acceleration sensor that provides information indicating vehicle acceleration to the ECU; The ECU detects whether reception of the vehicle information has been interrupted, and if interruption of reception of the vehicle information is detected, controls the lighting unit based on the vehicle acceleration.

6. detecting whether reception of vehicle information for controlling a lighting unit has been interrupted; obtaining information indicative of vehicle acceleration from an acceleration sensor; and when a loss of reception of the vehicle information is detected, controlling the lighting unit based on the vehicle acceleration.

7. a lighting unit having a plurality of marker light areas each operating as a different marker light, and in which the arrangement of the plurality of marker light areas can be customized; a setting device that receives customization of the arrangement of the plurality of marker light regions and generates a customization setting that represents the customized arrangement of the plurality of marker light regions; a control device that defines the plurality of marker light areas in the lighting unit according to the customization setting and controls the lighting unit so that the plurality of marker light areas operate as different marker lights, The vehicle lighting system is characterized in that, when accepting the customization, the setting device displays a configurable area that can be used as a marker light area for each marker light.

8. 8. The vehicle lighting system according to claim 7, wherein when accepting the customization, the setting device displays, for each marker light, a non-configurable area that cannot be used as a marker light area, together with the configurable area.

9. 9. The vehicle lighting system according to claim 7, wherein the setting device accepts customization of the arrangement and lighting state of the plurality of marker light areas, and the customization setting represents customized arrangement and lighting state of the plurality of marker light areas.

10. A setting device for a vehicle lamp, the vehicle lamp having a plurality of marker light areas each operating as a different marker light, and a lamp unit capable of customizing an arrangement of the plurality of marker light areas, the setting device comprising: an input interface for accepting customization of the arrangement of the plurality of marker light regions; a display that displays a settable area that can be used as a marker light area for each marker light when the customization is accepted; a processor for generating a customized configuration representing a customized arrangement of the plurality of marker light regions.

11. A method for setting a vehicle lamp, the vehicle lamp including a lamp unit having a plurality of marker light areas each operating as a different marker light, the lamp unit being capable of customizing an arrangement of the plurality of marker light areas, the method comprising: receiving, into a setting device, customization of the arrangement of the plurality of marker light regions; a step of displaying, on the setting device, a configurable area that can be used as a marker light area for each marker light when accepting the customization; generating, by the setting device, a customization setting representing a customized arrangement of the plurality of marker light areas.

Citation Information

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