Vehicle indicator light generation processing method, display method, and apparatus and device

By using dynamic attribute marking and display strategies to distinguish between fixed and dynamic display areas, the problem of cluttered layout of traditional in-vehicle instrument indicator lights is solved. This enables contextualized information adaptation and efficient information acquisition for drivers, improving driving safety and convenience.

CN120840401BActive Publication Date: 2025-12-26CHENGDU CELIS TECH CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202511360717.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-09-23
Publication Date
2025-12-26
Estimated Expiration
2045-09-23

AI Technical Summary

Technical Problem

The fixed layout of traditional vehicle instrument panel indicator lights results in a cluttered instrument interface, distracts the driver, poses safety hazards, and cannot effectively manage irrelevant information interference.

Method used

By adopting a dynamic attribute tagging and display strategy, and by establishing an indicator light array and a display list, the fixed display area and multiple dynamic display areas are distinguished. The generation and display logic of the indicator lights are optimized to ensure that key information is identified in real time and dynamic display areas are allocated on demand.

Benefits of technology

The display management of vehicle indicator lights has been optimized, improving the efficiency of information acquisition and interaction for drivers, reducing information overload, and enhancing driving safety and ease of operation.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120840401B_ABST
    Figure CN120840401B_ABST
Patent Text Reader

Abstract

The application relates to a generation processing method, a display method and a device thereof, and equipment of a vehicle indicator light. The generation method comprises the following steps: establishing a plurality of indicator light arrays, the indicator light array comprising a display state and a dynamic attribute mark of a corresponding indicator light, the dynamic attribute mark being used for identifying a display type of the indicator light, the display type comprising fixed display area display and one or more dynamic display area display; establishing an indicator light display list corresponding to the display type, and used for storing the indicator light array of the corresponding dynamic attribute mark; in response to a display signal, storing the indicator light array into the corresponding indicator light display list according to the display state and the dynamic attribute mark of the corresponding indicator light array in the display signal; and generating a corresponding indicator light display strategy according to the indicator light display list. The method can optimize the display logic of the vehicle instrument indicator light and reduce invalid information interference.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of vehicle indicator light display, in particular to a vehicle indicator light generation processing method, display method and device and equipment. BACKGROUND

[0002] As an important interactive interface between the vehicle and the driver, the indicator light system of the vehicle-mounted instrument undertakes key functions such as vehicle state prompting, fault warning, and function state feedback, and directly affects driving safety and operation convenience.

[0003] In the traditional technology, the display of the indicator light of the vehicle-mounted instrument mostly adopts a fixed layout design, that is, all possible indicator lights are preset at fixed positions on the instrument interface, and whether the indicator light needs to be activated or not, the physical position always occupies the instrument screen space. The increasing complexity of vehicle functions leads to an increase in the number of indicator lights, and the fixed layout causes a large number of inactive indicator light positions to continuously occupy the screen space, which easily makes the instrument interface messy, distracts the driver's attention, and even may lead to misjudgment of key warning information, and there is a potential safety hazard. SUMMARY

[0004] Therefore, it is necessary to provide a vehicle indicator light generation processing method, display method and device and equipment capable of optimizing the display logic of the indicator light of the vehicle-mounted instrument and reducing invalid information interference.

[0005] In a first aspect, the present application provides a vehicle indicator light generation processing method, which comprises:

[0006] establishing a plurality of indicator light arrays, wherein the indicator light array comprises a display state and a dynamic attribute mark of a corresponding indicator light, and the dynamic attribute mark is used to identify the display type of the indicator light, and the display type comprises fixed display area display and one or more dynamic display area display;

[0007] establishing an indicator light display list corresponding to the display type, for storing the indicator light array with the corresponding dynamic attribute mark;

[0008] in response to a display signal, storing the indicator light array in the corresponding indicator light display list according to the display state and the dynamic attribute mark of the corresponding indicator light array in the display signal;

[0009] generating a corresponding indicator light display strategy according to the indicator light display list.

[0010] In some embodiments of the method, the indicator light array further comprises a texture identifier of the corresponding indicator light, and the method further comprises:

[0011] In response to the display signal, in a case where the display type is a special dynamic display, the indicator light array is stored in an indicator light display list corresponding to the texture identifier.

[0012] In some embodiments of the method, the indicator light display list includes a fixed display list, one or more dynamic display lists, and the generating of the corresponding indicator light display strategy according to the indicator light display list includes:

[0013] The data of the indicator light array in the fixed display list is transmitted into the visualization tool through a first intermediate variable group;

[0014] The data of the indicator light array in the corresponding dynamic display list is transmitted into the visualization tool through one or more second intermediate variable groups.

[0015] In some embodiments of the method, the transmitting of the data of the indicator light array in the corresponding dynamic display list into the visualization tool through the one or more second intermediate variable groups includes:

[0016] The texture identifier and the display state of the indicator light are transmitted into the corresponding second intermediate variable group in a case where the dynamic display list has valid data within the index range;

[0017] Data outside the index range is operated as 0.

[0018] In some embodiments of the method, the storage order of the indicator light array in the dynamic display list is configured to be sequentially stored in the order of the receiving time of the display signal of the indicator light, and the generating of the corresponding indicator light display strategy according to the indicator light display list further includes:

[0019] The indicator light display strategy is generated according to the reverse order or the order of the storage order of the indicator light array in the dynamic display list.

[0020] According to a second aspect of the embodiments of the present disclosure, a display method of a vehicle indicator light is provided, and the method includes:

[0021] In response to a display signal, determining a to-be-displayed indicator light according to the display signal;

[0022] Matching a corresponding indicator light display list according to the display type of the to-be-displayed indicator light, the display type including a fixed display area display and one or more dynamic display area displays; the indicator light display list is a corresponding indicator light display list established in advance according to the display type, and is used to store an indicator light array with a corresponding dynamic attribute mark, the dynamic attribute mark being contained in the indicator light array established in advance and being used to identify the display type of the indicator light;

[0023] displaying the indicator light in the corresponding display area according to the indicator light display strategy.

[0024] According to a third aspect of the embodiments of the present disclosure, a generation processing device of a vehicle indicator light is provided, and the device comprises:

[0025] A first generation module is configured to establish a plurality of indicator light arrays, wherein each of the indicator light arrays comprises a display state of a corresponding indicator light and a dynamic attribute mark, and the dynamic attribute mark is used to identify a display type of the indicator light, and the display type comprises a fixed display area display and one or more dynamic display area displays.

[0026] A second generation module is configured to establish an indicator light display list corresponding to the display type, and the indicator light display list is used to store the indicator light array with the corresponding dynamic attribute mark.

[0027] A third generation module is configured to, in response to a display signal, store the indicator light array in the corresponding indicator light display list according to the display state and the dynamic attribute mark of the corresponding indicator light array in the display signal.

[0028] A fourth generation module is configured to generate a corresponding indicator light display strategy according to the indicator light display list.

[0029] According to a fourth aspect of the embodiments of the present disclosure, a display device of a vehicle indicator light is provided, and the device comprises:

[0030] A communication module is configured to, in response to a display signal, determine a to-be-displayed indicator light according to the display signal.

[0031] A first display module is configured to match a corresponding indicator light display list according to a display type of the to-be-displayed indicator light, and the display type comprises a fixed display area display and one or more dynamic display area displays; and the indicator light display list is a corresponding indicator light display list established in advance according to the display type, and the indicator light display list is used to store an indicator light array with a corresponding dynamic attribute mark, and the dynamic attribute mark is contained in the indicator light array established in advance and is used to identify the display type of the indicator light.

[0032] A second display module is configured to display the indicator light in the corresponding display area according to the indicator light display strategy.

[0033] According to a fifth aspect of the embodiments of the present disclosure, a generation processing device of a vehicle indicator light is provided, and the generation device of the indicator light comprises a memory and a processor, the memory stores a computer program, and the processor implements the following steps when executing the computer program:

[0034] establishing a plurality of indicator light arrays, the indicator light arrays comprising display states and dynamic attribute tags of corresponding indicator lights, the dynamic attribute tags being used to identify display types of the indicator lights, the display types comprising fixed display area display, one or more dynamic display area display;

[0035] establishing indicator light display lists corresponding to the display types, for storing the indicator light arrays of the corresponding dynamic attribute tags;

[0036] in response to a display signal, storing the indicator light arrays into the corresponding indicator light display lists according to the display states and the dynamic attribute tags of the corresponding indicator light arrays in the display signal;

[0037] generating corresponding indicator light display strategies according to the indicator light display lists.

[0038] According to a sixth aspect of the embodiments of the present disclosure, an indicator light display device is provided, comprising a memory and a processor, the memory storing a computer program, and the processor implementing the following steps when executing the computer program:

[0039] in response to a display signal, determining to-be-displayed indicator lights according to the display signal;

[0040] matching corresponding indicator light display lists according to display types of the to-be-displayed indicator lights, the display types comprising fixed display area display, one or more dynamic display area display;

[0041] displaying the indicator lights in the corresponding display areas according to the indicator light display strategies.

[0042] According to a seventh aspect of the embodiments of the present disclosure, an instrument display device is provided, comprising a fixed display module and one or more dynamic display modules;

[0043] the fixed display module is configured to display to-be-displayed indicator lights of a fixed display list in a fixed display area, and the one or more dynamic display modules are configured to display to-be-displayed indicator lights of corresponding dynamic display lists in corresponding dynamic display areas.

[0044] According to an eighth aspect of the embodiments of the present disclosure, a vehicle is provided, comprising at least one of the above-mentioned vehicle indicator light generation processing device, the above-mentioned indicator light display device, and the above-mentioned instrument display device.

[0045] The vehicle indicator light generation and display scheme provided by the embodiments of the present application can structureally manage the indicator light display, can divide the fixed display and the dynamic display, focus on the core key information in the fixed display area, ensure the instant identification of the key information, allocate the display space on demand in the dynamic display area, optimize the display logic, divide the dynamic display into the first dynamic display and the second dynamic display, can subdivide the dynamic display area, make the dynamic display logic match the operation habit of the driver, improve the information acquisition efficiency of the driver, thereby improving the interaction efficiency with the driver, and realize the scene-based adaptation of the display information.

[0046] It should be understood that the foregoing general description and the following detailed description are only exemplary and explanatory, and cannot limit the present disclosure. BRIEF DESCRIPTION OF DRAWINGS

[0047] The accompanying drawings incorporated in the specification and constituting a part of it illustrate embodiments consistent with the present disclosure and, together with the specification, serve to explain the principles of the present disclosure, and do not constitute an undue limitation on the present disclosure.

[0048] Figure 1 A flowchart of a vehicle indicator light generation processing method according to an exemplary embodiment is shown;

[0049] Figure 2 A schematic diagram of an indicator light display area according to an exemplary embodiment is shown;

[0050] Figure 3 A front and back comparison diagram of a dynamic display area according to an exemplary embodiment is shown;

[0051] Figure 4 A flowchart of an indicator light display strategy generation step according to an exemplary embodiment is shown;

[0052] Figure 5 A flowchart of a vehicle indicator light display method according to an exemplary embodiment is shown;

[0053] Figure 6 A structural block diagram of a vehicle indicator light generation processing device according to an exemplary embodiment is shown;

[0054] Figure 7 A structural block diagram of a vehicle indicator light display device according to an exemplary embodiment is shown;

[0055] Figure 8 An internal structure diagram of a vehicle indicator light generation processing equipment according to an exemplary embodiment is shown;

[0056] Figure 9 An internal structure diagram of a vehicle indicator light display equipment according to an exemplary embodiment is shown. Detailed Implementation

[0057] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.

[0058] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this disclosure are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this disclosure described herein can be implemented in orders other than those illustrated or described herein. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this disclosure. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this disclosure. The terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, product, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, product, or apparatus. Without further limitations, the presence of other identical or equivalent elements in a process, method, product, or apparatus that includes said elements is not excluded. For example, the use of terms such as "first," "second," etc., to denote names does not indicate any specific order.

[0059] In some embodiments of the present disclosure, the execution of the generation method of the vehicle indicator light can be controlled by a unified controller or by multiple controllers. These controllers can include controllers of local terminals such as vehicle controllers, and controllers of remote servers such as controllers in servers that can communicate with vehicles. In some embodiments, the generation method of the vehicle indicator light can also be completed by the controllers of the local terminals and the controllers of the servers jointly. The local terminals described in the present disclosure can include but are not limited to various robot devices, vehicle-mounted devices, personal computers, notebook computers, smartphones, tablet computers, wearable devices, medical devices, VR (Virtual Reality) virtual devices, etc. The servers described can be servers, server clusters, distributed systems, cloud processing platforms, servers containing blockchain nodes, and combinations thereof. The controllers described in the present disclosure can include various control units capable of implementing logical processing functions, including but not limited to CPUs (Central Processing Units), PLCs (Programmable Logic Controllers), ECUs (Electronic Control Units), MCUs (Microcontroller Units), FPGAs (Field Programmable Gate Arrays), CPLDs (Complex Programmable Logic Devices), and the like, as well as controllers composed of one or more logical function units, chips, etc.

[0060] In some embodiments of the present disclosure, a generation method of a vehicle indicator light is provided, as shown in Figure 1 The method comprises:

[0061] S20, a plurality of indicator light arrays are established, the indicator light array includes the display state and dynamic attribute mark of the corresponding indicator light, the dynamic attribute mark is used to identify the display type of the indicator light, and the display type includes fixed display area display and one or more dynamic display area display.

[0062] In some embodiments of the present disclosure, a structure array can be established, which generally refers to a set of arrays storing all the indicator light data information. The structure array can include a plurality of indicator light arrays. The indicator light array generally refers to an element in the structure array. The indicator light array can be a structure including a plurality of parameters. Each structure can correspond to a specific indicator light. The indicator light array can include a display state and a dynamic attribute mark of the corresponding indicator light. The display state is generally used to identify whether the corresponding indicator light needs to be displayed on the vehicle instrument. In some examples, when the display state is "1", it represents that the corresponding indicator light needs to be displayed on the vehicle instrument; when the display state is "0", it represents that the corresponding indicator light does not need to be displayed on the vehicle instrument. The dynamic attribute mark is generally used to identify the display type of the indicator light. The display type can include fixed display area display, one or more dynamic display area display. In some examples, the one or more dynamic display area display can include dynamic display in a certain independent dynamic display area, can include simultaneous display in a plurality of dynamic display areas, or can include sequential, reverse sequential, or random display in a plurality of dynamic display areas. In some examples, when the dynamic attribute mark is "0", it can represent that the display type is fixed display area display; when the dynamic attribute mark is "1", it can represent that the display type is first dynamic display; when the dynamic attribute mark is "2", it can represent that the display type is second dynamic display; and when the dynamic attribute mark is "3", it can represent that the display type is special dynamic display. In some examples, the first dynamic display can be displayed on the left side of the instrument display device; the second dynamic display can be displayed on the right side of the instrument display device. The special dynamic display can be displayed in one of the first dynamic display area or the second dynamic display area; the special dynamic display can also be displayed in the first dynamic display area first and then in the second dynamic display area; or the special dynamic display can be displayed in the first dynamic display area first and then in the first dynamic display area. It should be noted that the above-mentioned first dynamic display and second dynamic display are only exemplary descriptions, and it is foreseeable that third dynamic display, fourth dynamic display, etc. can also be included, which can be arranged in different display areas of the instrument display device.

[0063] In some implementations, indicator lights may include safety indicator lights, powertrain system indicator lights, driver assistance and control indicator lights, function status indicator lights, and fault warning indicator lights. Safety indicator lights may include braking system indicator lights, airbag indicator lights, tire pressure monitoring indicator lights, vehicle stability system indicator lights, and anti-lock braking system indicator lights. Powertrain system indicator lights may include engine indicator lights, oil pressure indicator lights, charging status indicator lights, and fuel level / range indicator lights. Driver assistance and control indicator lights may include left turn signal, right turn signal, low beam headlight indicator lights, high beam headlight indicator lights, front fog light indicator lights, rear fog light indicator lights, cruise control activation indicator lights, automated driving assistance system indicator lights, and reversing camera indicator lights. Function status indicator lights may include air conditioning system operation indicator lights, heated window indicator lights, heated seat indicator lights, headlight height adjustment indicator lights, and hill descent control indicator lights. Fault warning indicator lights may include low fuel warning indicator lights, transmission mode indicator lights, door / trunk not closed indicator lights, and other fault warning indicator lights.

[0064] In some embodiments, the aforementioned indicator lights can be displayed on the vehicle's instrument panel. The instrument panel may include a head-up display, a central control display, a rear entertainment display, a steering wheel-integrated display, an AR (Augmented Reality) interactive display system, and an instrument cluster. The instrument panel may include a fixed display module and one or more dynamic display modules. The fixed display module displays indicator lights from a fixed display list in a fixed display area, and the one or more dynamic display modules display indicator lights from a corresponding dynamic display list in a corresponding dynamic display area.

[0065] In some examples, such as Figure 2 As shown, a fixed display area can be used to display indicator lights with high information priority and / or high frequency of viewing. A dynamic display area can be used to display indicator lights with low information priority and / or low frequency of viewing. A dynamic display area can include a first dynamic display area and a second dynamic display area. For example, a fixed display area can display indicator lights that affect the basic safe operation of the vehicle, such as the aforementioned safety indicator lights and fault warning indicator lights. The fixed display area can be positioned to conform to the driver's long-established visual habits, such as the central area of ​​the instrument panel, and the positions of the indicator lights displayed in the fixed display area are usually fixed. The dynamic display area can follow the principle of "first come, first served." Taking an example where the dynamic display area (including the first and second dynamic display areas) contains 13 indicator lights, assuming that the dynamic display area needs to display 4 indicator lights, such as... Figure 3As shown, the to-be-displayed indicator lights can be sequentially displayed on demand in accordance with the principle of "who comes first, who is displayed first", which can improve the interface neatness and space utilization compared with the original display interface. The first dynamic display area can be a left display area in the instrument display device, and the second dynamic display area can be a right display area in the instrument display device. The first dynamic display area can display temporary or secondary indicator lights in accordance with the left visual habit of the driver, such as left turn signal, high beam, or auxiliary driving control indicator light, etc. The second dynamic display area can display temporary or secondary indicator lights in accordance with the right visual habit of the driver, such as right turn signal, front and rear fog light indicator light, and other function status indicator light, etc.

[0066] S22, an indicator light display list corresponding to the display type is established, which is used to store the indicator light array marked with the corresponding dynamic attribute.

[0067] In some embodiments of the present disclosure, the indicator light display list generally refers to a list of indicator lights whose display states are all required to be displayed. The fixed display list generally refers to a list of indicator lights required to be displayed in the fixed display area. The dynamic display list can include a first dynamic display list and a second dynamic display list. The first dynamic display list generally refers to a list of indicator lights required to be displayed in the first dynamic display area. The second dynamic display list generally refers to a list of indicator lights required to be displayed in the second dynamic display area.

[0068] S24, in response to the display signal, the indicator light array is stored in the corresponding indicator light display list according to the display state and the dynamic attribute mark of the indicator light array in the display signal.

[0069] In some embodiments of the present disclosure, the display signal generally refers to an instruction sent by a vehicle bottom system (e.g., a body controller, a power system controller, etc.) to a vehicle instrument display device. The display signal is used to inform the instrument that one or more indicator lights need to be activated for display. Real-time state information of the indicator light can be included in the display signal. In some examples, when the vehicle detects a left steering operation, the vehicle bottom system sends a display signal to the vehicle instrument display device indicating that the left turn indicator light needs to be displayed. In some examples, a dynamic attribute marked as "0" can represent a fixed display type, and the corresponding indicator light array can be stored in a fixed display list. When the dynamic attribute is marked as "1", it can represent a first dynamic display type, and the corresponding indicator light array can be stored in a first dynamic display list. The first dynamic display list can be used for display in the left display area of the vehicle instrument display device. When the dynamic attribute is marked as "2", it can represent a second dynamic display type, and the corresponding indicator light array can be stored in a second dynamic display list. The second dynamic display list can be used for display in the right display area of the vehicle instrument display device. When the dynamic attribute is marked as "3", it can represent a special dynamic display type. In some examples, the special dynamic display can be placed in the first dynamic display list or the second dynamic display list. In other examples, the special dynamic display can be placed in the first dynamic display list first and then in the second dynamic display list, or it can be placed in the second dynamic display list first and then in the first dynamic display list.

[0070] S26、According to the indicator light display list, a corresponding indicator light display strategy is generated.

[0071] In some embodiments of the present disclosure, the indicator light display strategy can include a fixed display list display strategy, a first dynamic display list display strategy, and a second dynamic display list display strategy. The fixed display list display strategy generally refers to a display logic of displaying the to-be-displayed indicator light in the fixed display area according to the fixed display list. The first dynamic display list display strategy generally refers to a display logic of displaying the to-be-displayed indicator light in the first dynamic display area according to the first dynamic display list. The second dynamic display list display strategy generally refers to a display logic of displaying the to-be-displayed indicator light in the second dynamic display area according to the second dynamic display list. In some embodiments, the indicator light display strategy further includes a special dynamic indicator light adaptive display strategy. The special dynamic indicator light adaptive display strategy can be displayed in one of the first dynamic display area or the second dynamic display area, can be displayed in the first dynamic display area first and then in the second dynamic display area, or can be displayed in the second dynamic display area first and then in the first dynamic display area. In addition to the first dynamic display area and the second dynamic display area, the indicator light can be displayed in sequence, in reverse order, or randomly in a third dynamic display area, a fourth dynamic display area, and the like, and can be displayed separately or simultaneously. In some embodiments of the present disclosure, the indicator light display can be managed in a structured manner. By dividing the fixed display and the dynamic display, the core key information can be focused in the fixed display area to ensure instant recognition of the key information, and the display space can be allocated as needed in the dynamic display area to optimize the display logic. By dividing the dynamic display into the first dynamic display and the second dynamic display, the dynamic display area can be subdivided to match the dynamic display logic with the operation habits of the driver, improve the information acquisition efficiency of the driver, and thus improve the interaction efficiency with the driver to achieve the scenario-based adaptation of the displayed information.

[0072] In some embodiments of the present disclosure, the indicator light array further includes a texture identifier of the corresponding indicator light, and the method further includes:

[0073] In response to the display signal, in a case where the display type is a special dynamic display, the indicator light array is stored in an indicator light display list corresponding to the texture identifier. In some embodiments of the present disclosure, the texture identifier generally refers to a parameter used to define the visual presentation form of the indicator light. The texture identifier can be stored in the indicator light array. The texture identifier can be used to represent the pattern (texture) and / or color of the indicator light when displayed on the instrument display device. In some examples, the texture identifier can include a first texture and a second texture. When the vehicle underlying system receives the display signal and the dynamic attribute flag of the corresponding indicator light array is identified as a special dynamic display, the vehicle underlying system determines at this time whether the texture identifier belongs to the first texture or the second texture according to the texture identifier in the indicator light array. If the texture identifier is the first texture (for example, a red warning pattern), the indicator light array can be stored in a first dynamic display list, and subsequently displayed according to the rules of the first dynamic display area (for example, the left display area, arranged in the order of activation). If the texture identifier is the second texture (for example, a green normal pattern), the indicator light array can be stored in a second dynamic display list, and subsequently displayed according to the rules of the second dynamic display area (for example, the right area, arranged in the order of activation).

[0074] In some embodiments of the present disclosure, the special dynamic display type of indicator light can have intuitive visual differences in different states through the differentiated design of the patterns and / or colors of different textures. The special dynamic display indicator light can be allocated to different dynamic display areas in combination with the texture identifier, so that the visual features are associated with the display positions, thereby forming a unified interaction logic. After the driver is familiar with the rules, the driver can quickly locate the indicator light in different states. At the same time, the display space can be allocated as needed, the display space utilization rate is improved, the information acquisition efficiency of the driver is improved, and thus the safety and use experience of driving are improved.

[0075] In some embodiments of the present disclosure, as shown in Figure 4 S26 includes:

[0076] S262, data of the indicator light array in the fixed display list is transmitted into the visualization tool through a first intermediate variable group;

[0077] S264, data of the indicator light array in the corresponding dynamic display list is transmitted into the visualization tool through one or more second intermediate variable groups.

[0078] In some embodiments of the present disclosure, the intermediate variable group generally refers to a structured data set used to transfer information between the indicator light data processing module and the visualization tool (for example, Kanzi Studio), and includes a plurality of variables used to temporarily store the display parameters of the indicator light. The first intermediate variable group generally refers to a set of intermediate variables bound to the fixed display list; and the second intermediate variable group generally refers to a set of intermediate variables bound to the corresponding dynamic display list.

[0079] In some examples, for the data processing of the fixed display of the to-be-displayed indicator light, the display state state of the indicator light array in the fixed display list and the texture identification of the indicator light can be transmitted into the visualization tool Kanzi Studio through the first intermediate variable group.

[0080] In other examples, for the data processing of the dynamic display of the to-be-displayed indicator light, it is necessary to determine the corresponding dynamic display list (i.e., whether to put into the first dynamic display list or the second dynamic display list, or the third, fourth dynamic display list, etc.) and the maximum number of displays of the corresponding dynamic display list. An intermediate variable base name for data transmission with the Kanzi tool can be defined, for example, targetPosName, which can pass through TTPos to indicate which picture the indicator light displays and pass through TTState to indicate the display state of the indicator light. The data of the indicator light array in the first dynamic display list and the second dynamic display list are transmitted into the visualization tool through the second intermediate variable group and the third intermediate variable group, respectively. The maximum number of dynamic indicator lights can be determined by lampsize, for example, the maximum number of displays of the first dynamic display list (the display list corresponding to the left dynamic display area) can be set to 12; the maximum number of displays of the second dynamic display list (the display list corresponding to the right dynamic display area) can be set to 15. For example, the second intermediate variable group can pass the parameters of the to-be-displayed indicator light in order according to each display position of the first dynamic display list display area, following the principle of “who comes first”. Similarly, the third intermediate variable group can pass the parameters of the to-be-displayed indicator light in order according to each display position of the second dynamic display list display area, following the principle of “who comes first”.

[0081] In some embodiments of the present disclosure, the data of the fixed display and the dynamic display of the indicator light are transmitted through independent intermediate variable groups, which can avoid the confusion of the parameters of different types of indicator lights, ensure that the visualization tool can accurately analyze and render the indicator light of the corresponding area, and improve the stability of the system; the first intermediate variable group can ensure the stable transmission of the core information of the fixed display area, and the second and third intermediate variable groups can realize flexible adaptation of the dynamic display area, which can ensure that the dynamic display area can efficiently utilize the space as needed while the core safety information is fixedly displayed, avoid information overload, and ultimately improve the driver's perception efficiency of the vehicle state.

[0082] In some embodiments of the present disclosure, S264 includes:

[0083] The dynamic display list is traversed, and the texture identification and display state of the indicator light are transmitted into the corresponding second intermediate variable group if there is valid data in the index range. The data outside the index range is set to 0.

[0084] In some embodiments of the present disclosure, the index range generally refers to the subscript range of valid elements in the dynamic display list. The index range is generally not more than the maximum display capacity of the corresponding dynamic area. The valid data generally refers to data that meets the system preset rules and can be directly used for the display logic of the indicator light. The valid data can be transmitted to the visualization tool (such as Kanzi Studio) by the intermediate variable group, and finally converted into an identifiable indicator light state on the instrument.

[0085] In some examples, the first and second dynamic display lists can be traversed, and if there is valid data in the list and within the index range, the indicator light texture identification and display state data are transmitted into the corresponding second intermediate variable group and third intermediate variable group according to the current subscript. For example, TTPosleft_i can be used to store the texture identification of the i th indicator light in the first dynamic display list, and TTStateleft_i can be used to store the display state data of the i th indicator light in the first dynamic display list. TTPosRight_j can be used to store the texture identification of the j th indicator light in the second dynamic display list, and TTStateRight_j can be used to store the display state data of the j th indicator light in the second dynamic display list.

[0086] In some embodiments of the present disclosure, the data outside the index range can be set to 0, even if the position outside the index range is displayed as empty. Through such operation, the data set in the last time can be cleared, and the same indicator light in different positions can be avoided. In some examples, the first dynamic display list (corresponding to the left display area) displays only 3 indicator lights. The first dynamic display list is traversed, and only 3 indicator light data are stored in the first dynamic display list. The corresponding data of the 3 indicator lights are parsed and transmitted to the Kanzi visualization tool, and the remaining 9 positions are set to 0, i.e. empty.

[0087] In some embodiments of the present disclosure, the valid data within the index range can be transmitted, invalid traversal can be avoided, system resource occupation can be reduced, and the change of the indicator light state can be quickly reflected on the instrument display device. The data outside the index range can be set to 0, historical indicator light residual display can be prevented, the scene of frequent switching of vehicle state can be applied, clear and reliable dynamic information display can be provided for the driver, and the driving safety can be indirectly improved.

[0088] In some embodiments of this disclosure, the storage order of the indicator light array in the dynamic display list is configured to be stored sequentially according to the reception time of the indicator light display signals. Based on this, S26 further includes:

[0089] Generate an indicator light display strategy that displays the indicator lights in reverse or sequential order according to the storage order of the indicator light array in the dynamic display list.

[0090] In some embodiments of this disclosure, the corresponding indicator data can be stored in the corresponding dynamic display list according to the chronological order of the reception time of the indicator display signals. The data can be displayed in either the order or reverse order of the dynamic display list. In some examples, the dynamic display area can follow the principle of "first come, first served." Taking a dynamic display area (including a first dynamic display area and a second dynamic display area) containing 13 indicator lights as an example, assuming that the dynamic display area needs to display 4 indicator lights at this time, such as... Figure 3 As shown, indicator lights can be displayed sequentially according to their arrival time, following the principle of "first come, first served," which improves interface neatness and space utilization compared to the original display interface. In other examples, the dynamic display area can also follow the principle of "first come, first served," where the indicator light signal that arrives later is displayed at the top of the corresponding dynamic display area, making it easier for the driver to observe the latest and last arriving indicator lights. Drivers or users can configure the corresponding display method according to their own usage habits.

[0091] The first dynamic display area can be the left-hand display area of ​​the instrument panel, and the second dynamic display area can be the right-hand display area of ​​the instrument panel. The first dynamic display area can display temporary or secondary indicator lights that conform to the driver's left-hand vision, such as the left turn signal, high beam headlights, or driver assistance control indicator lights. The second dynamic display area can display temporary or secondary indicator lights that conform to the driver's right-hand vision, such as the right turn signal, front and rear fog light indicator lights, and other function status indicator lights.

[0092] In some embodiments of this disclosure, fixed display nodes and one or more dynamic display nodes can be established. Fixed display nodes include one or more fixed display control nodes, and dynamic display nodes include one or more dynamic display control nodes. Fixed display control nodes are configured to set the pattern of the corresponding indicator light stored in the indicator light library through a first texture attribute; dynamic display control nodes are configured to set the pattern of the corresponding indicator light stored in the indicator light library through a second texture attribute. The first texture attribute can be bound to a first intermediate variable group of the corresponding indicator light array; the second texture attribute can be bound to a second intermediate variable group of the corresponding indicator light array.

[0093] In some embodiments of the present disclosure, the indicator library generally refers to a collection of storing all the basic information of the indicator lights of the vehicle. The indicator library can include an indicator database, a sprite, and the like. The sprite generally refers to a graphical resource that integrates patterns or textures of multiple indicator lights into the same picture. In some implementations, each indicator light pattern in the sprite occupies a fixed area in the picture, and a specific indicator light pattern can be located by a texture attribute (i.e., a position index of the pattern in the sprite). In some examples, a fixed display node TTFixed and one or more dynamic display nodes can be established. The dynamic display nodes can include a first dynamic display node and a second dynamic display node. The first dynamic display node Left and the second dynamic display node Right can be established. A fixed display control node can be set for each fixed display indicator light in the Kanzi project. The fixed display control node can be used to bind the display state state and the pattern identifier of the corresponding fixed display indicator light transmitted by the indicator light data storage file (e.g., in the form of an xml file).

[0094] In some implementations, all indicator light patterns can be displayed in a sprite in the Kanzi project. The fixed display control node can be configured to set the pattern stored in the indicator library for the corresponding indicator light by a first texture attribute; and the dynamic display control node can be configured to set the pattern stored in the indicator library for the corresponding indicator light by a second texture attribute. In some examples, a specific indicator light pattern can be located by a texture attribute (textureID attribute). For example, setting textureID as 3 in the Left_1 control means that the texture attribute of the first dynamic display control node in the first dynamic display node is set to locate the third pattern in the sprite for display.

[0095] In some implementations, the first texture attribute can be bound to a first intermediate variable group of a corresponding indicator light array; and the second texture attribute can be bound to a second intermediate variable group of the corresponding indicator light array. In some examples, the textureID on each control node can also be bound to the corresponding data in the xml file in the Kanzi project. For example, bound to the intermediate variable groups TTPosleft_i and TTStateleft_i described above; or bound to the intermediate variable groups TTPosRight_j and TTStateRight_j, and the like. The data source can be bound by bindings in the Kanzi project.

[0096] In some embodiments of the present disclosure, the preset patterns in the indicator light library can be directly associated with the texture attributes. By dynamically setting the texture attributes and combining the code to transmit data in real time, the patterns of each control can be flexibly changed, thereby realizing the real-time display of dynamic indicator lights. When the vehicle state changes, the system can update the corresponding indicator light patterns or textures in a very short time, ensuring that the indicator light state is synchronized with the actual vehicle state in real time, so that the indicator light system can not only efficiently transmit the vehicle state, but also flexibly adapt to complex scenarios, thereby improving driving safety and user experience.

[0097] The generation processing method of some vehicle indicator lights provided by the present disclosure can structure the management of indicator light display. By dividing fixed display and dynamic display, the core key information can be focused in the fixed display area to ensure instant recognition of key information, and the display space can be allocated as needed in the dynamic display area to optimize the display logic. By dividing the dynamic display into first dynamic display and second dynamic display, the dynamic display area can be subdivided so that the dynamic display logic matches the operation habits of the driver, improves the information acquisition efficiency of the driver, thereby improving the interaction efficiency with the driver, and realizes the scene-based adaptation of display information.

[0098] In some embodiments of the present disclosure, a display method of a vehicle indicator light is provided, as shown in Figure 5 The method comprises:

[0099] S40, in response to the display signal, determining the indicator light to be displayed according to the display signal.

[0100] In some embodiments of the present disclosure, the display signal generally refers to the instruction sent by the underlying system of the vehicle (such as the body controller, power system controller, etc.) to the instrument display device of the vehicle. The display signal is used to inform the instrument that one or more indicator lights need to be activated. The real-time state information of the indicator light can be included in the display signal.

[0101] In some embodiments of the present disclosure, the to-be-displayed indicator lights can include safety indicator lights, power energy system indicator lights, auxiliary driving and control indicator lights, function status indicator lights, and fault warning indicator lights, etc. The safety indicator lights can include brake system indicator lights, airbag indicator lights, tire pressure monitoring indicator lights, vehicle body stability system indicator lights, anti-lock braking system indicator lights, etc. The power energy system indicator lights can include engine indicator lights, oil pressure indicator lights, charging status indicator lights, fuel quantity / range indicator lights, etc. The auxiliary driving and control indicator lights can include left turn indicator lights, right turn indicator lights, low beam indicator lights, high beam indicator lights, front fog lamp indicator lights, rear fog lamp indicator lights, cruise control activation indicator lights, autonomous driving assistance system indicator lights, reversing image indicator lights, etc. The function status indicator lights can include air conditioning system operation indicator lights, window heating indicator lights, seat heating indicator lights, light height adjustment indicator lights, steep slope descent function indicator lights, etc. The fault warning indicator lights can include low fuel warning indicator lights, transmission mode indicator lights, door / trunk not closed tightly indicator lights, other fault reminder indicator lights, etc.

[0102] In some embodiments of the present disclosure, the above-mentioned indicator lights can be displayed in the instrument display device of the vehicle. The instrument display device can include a head-up display device, a center control display screen, a rear entertainment display screen, a steering wheel integrated display screen, an AR (Augmented Reality) interactive display system, and an instrument panel. The instrument display device can include a fixed display module, a first dynamic display module, and a second dynamic display module. The fixed display module is configured to display the to-be-displayed indicator lights in the fixed display list in a fixed display area, the first dynamic display module is configured to display the to-be-displayed indicator lights in the first dynamic display list in a first dynamic display area, and the second dynamic display module is configured to display the to-be-displayed indicator lights in the second dynamic display list in a second dynamic display area.

[0103] In some embodiments of the present disclosure, the to-be-displayed indicator lights can include safety indicator lights, power energy system indicator lights, auxiliary driving and control indicator lights, function status indicator lights, and fault warning indicator lights, etc. The safety indicator lights can include brake system indicator lights, airbag indicator lights, tire pressure monitoring indicator lights, vehicle body stability system indicator lights, anti-lock braking system indicator lights, etc. The power energy system indicator lights can include engine indicator lights, oil pressure indicator lights, charging status indicator lights, fuel quantity / range indicator lights, etc. The auxiliary driving and control indicator lights can include left turn indicator lights, right turn indicator lights, low beam indicator lights, high beam indicator lights, front fog lamp indicator lights, rear fog lamp indicator lights, cruise control activation indicator lights, autonomous driving assistance system indicator lights, reversing image indicator lights, etc. The function status indicator lights can include air conditioning system operation indicator lights, window heating indicator lights, seat heating indicator lights, light height adjustment indicator lights, steep slope descent function indicator lights, etc. The fault warning indicator lights can include low fuel warning indicator lights, transmission mode indicator lights, door / trunk not closed tightly indicator lights, other fault reminder indicator lights, etc.

[0104] In some embodiments of the present disclosure, the indicator light display list generally refers to a list of indicator lights in all display states that need to be displayed. The fixed display list generally refers to a list of indicator lights that need to be displayed in the fixed display area. The first dynamic display list generally refers to a list of indicator lights that need to be displayed in the first dynamic display area. The second dynamic display list generally refers to a list of indicator lights that need to be displayed in the second dynamic display area.

[0105] S44, display the indicator light in the corresponding display area according to the indicator light display strategy.

[0106] In some embodiments of the present disclosure, the indicator light display strategy can include a fixed display list display strategy, a first dynamic display list display strategy, and a second dynamic display list display strategy. The fixed display list display strategy generally refers to a display logic of displaying the to-be-displayed indicator light in the fixed display area according to the fixed display list. The first dynamic display list display strategy generally refers to a display logic of displaying the to-be-displayed indicator light in the first dynamic display area according to the first dynamic display list. The second dynamic display list display strategy generally refers to a display logic of displaying the to-be-displayed indicator light in the second dynamic display area according to the second dynamic display list. In some embodiments, the indicator light display strategy further includes a special dynamic indicator light adaptive display strategy. The special dynamic indicator light can be displayed in one of the first dynamic display area or the second dynamic display area, or can be displayed in the first dynamic display area first and then in the second dynamic display area, or can be displayed in the first dynamic display area first and then in the first dynamic display area. In addition to the first dynamic display area and the second dynamic display area, the third dynamic display area, the fourth dynamic display area, and the like can be included in the display area, and the display can be performed in sequence, in reverse order, or randomly.

[0107] In some embodiments, the fixed display area can be arranged at a position conforming to the long-term visual habits of the driver, such as the central area of the instrument panel, and the position of the indicator light displayed in the fixed display area is generally fixed. The dynamic display area can follow the principle of “who comes first”, and display the to-be-displayed indicator light in sequence as needed, thereby improving the interface neatness and space utilization. The first dynamic display area can be a left display area in the instrument display device, and the second dynamic display area can be a right display area in the instrument display device. The first dynamic display area can display temporary or secondary indicator lights conforming to the left visual habits of the driver, such as the left turn signal, the high beam, or the auxiliary driving control indicator light. The second dynamic display area can display temporary or secondary indicator lights conforming to the right visual habits of the driver, such as the right turn signal, the front and rear fog light indicator light, and other function state indicator lights.

[0108] In some embodiments of the present disclosure, the core key information can be focused in the fixed display area according to the indicator light display strategy, the instant recognition of the key information is ensured, the display space is allocated as needed in the dynamic display area, and the display logic is optimized; by dividing the dynamic display into the first dynamic display and the second dynamic display, the dynamic display area can be subdivided, so that the dynamic display logic matches the operation habits of the driver, the information acquisition efficiency of the driver is improved, the interaction efficiency with the driver is improved, and the scenario adaptive display of the display information is realized.

[0109] It can be understood that each of the above-mentioned methods is described in a progressive manner in the specification, and the same / similar parts between each embodiment can be referred to each other, and each embodiment mainly describes the difference from other embodiments. The relevant parts can be referred to the description of other method embodiments.

[0110] It should be understood that, although each step in the flowchart involved in the accompanying drawings is shown in sequence according to the arrow, these steps are not necessarily executed in sequence according to the arrow. Unless otherwise specified herein, the execution of these steps is not strictly limited in sequence, and these steps can be executed in other sequences. Moreover, at least part of the steps in the accompanying drawings can include multiple steps or multiple stages, which are not necessarily executed at the same time, but can be executed at different times, and the execution sequence of these steps or stages is not necessarily sequential, but can be executed alternately or alternately with at least part of other steps or other steps or stages.

[0111] Based on the description of the above-mentioned vehicle indicator light generation processing method embodiment, the present disclosure also provides a vehicle indicator light generation processing device for implementing the above-mentioned vehicle indicator light generation processing method. The device can include a system (including a distributed system), software (application), module, component, controller, server, terminal, etc. using the method described in the embodiments of the present disclosure and combining the necessary implementation hardware. Based on the same innovative concept, the device provided in one or more embodiments of the present disclosure is described in the following embodiments. Since the implementation scheme of the device to solve the problem is similar to the method, the implementation of the specific device in the embodiments of the present disclosure can be referred to the implementation of the foregoing method, and the repeated parts will not be described. The term "unit" or "module" used below can be a combination of software and / or hardware that implements a predetermined function. Although the device described in the following embodiments is preferably implemented in software, the implementation of hardware or a combination of software and hardware is also possible and is conceived.

[0112] Figure 6 is a schematic block diagram of a vehicle indicator light generation processing device according to an exemplary embodiment. The device can be the aforementioned terminal, or a server, or a module, component, device, control unit, etc. integrated in the terminal. For details, please refer to Figure 6The vehicle indicator light generation processing device 100 can include a first generation module 120, a second generation module 140, a third generation module 160, and a fourth generation module 180. The first generation module 120 is configured to establish a plurality of indicator light arrays, each of which includes a display state of a corresponding indicator light and a dynamic attribute mark, the dynamic attribute mark being used to identify a display type of the indicator light, the display type including a fixed display area display and one or more dynamic display area displays. The second generation module 140 is configured to establish an indicator light display list corresponding to the display type, and to store the indicator light array with the corresponding dynamic attribute mark. The third generation module 160 is configured to, in response to a display signal, store the indicator light array in the corresponding indicator light display list according to the display state and the dynamic attribute mark of the corresponding indicator light array in the display signal. The fourth generation module 180 is configured to generate a corresponding indicator light display strategy according to the indicator light display list.

[0113] In some embodiments of the device, the indicator light array further includes a texture identifier of the corresponding indicator light, and the third generation module 160 is further configured to, in response to the display signal, store the indicator light array in the indicator light display list corresponding to the texture identifier when the display type is a special dynamic display.

[0114] In some embodiments of the device, the fourth generation module 180 is further configured to transmit data of the indicator light array in the fixed display list into a visualization tool through a first intermediate variable group, and to transmit data of the indicator light array in the corresponding dynamic display list into the visualization tool through one or more second intermediate variable groups.

[0115] In some embodiments of the device, the fourth generation module 180 is further configured to traverse the dynamic display list, and to transmit the texture identifier and the display state of the indicator light into the corresponding second intermediate variable group when there is valid data in the dynamic display list within an index range. The fourth generation module 180 is further configured to perform a set-to-zero operation on data outside the index range.

[0116] In some embodiments of the device, the storage order of the indicator light array in the dynamic display list is configured to be stored in a sequential order according to the receiving time of the display signal of the indicator light, and the fourth generation module 180 is further configured to generate an indicator light display strategy displayed in a reverse or sequential order according to the storage order of the indicator light array in the dynamic display list.

[0117] The modules in the generation processing device 100 of the vehicle indicator light can be implemented by software, hardware, or a combination thereof. The modules can be embedded in a processor in a computer device or independent of the processor, or stored in a memory in the computer device in a software form, so that the processor can execute the operations of the modules.

[0118] Based on the description of the display method of the indicator light, the disclosure also provides a display device 200 of the vehicle indicator light for implementing the display method of the vehicle indicator light. The device can include a system (including a distributed system), software (application), module, component, controller, server, terminal, etc. that uses the method described in the embodiments of the disclosure and combines necessary implementation hardware. Based on the same innovative concept, the device in one or more embodiments provided by the embodiments of the disclosure is described as follows. Since the implementation scheme of the device for solving the problem is similar to the method, the implementation of the specific device in the embodiments of the disclosure can be referred to the implementation of the foregoing method, and the repeated parts will not be described herein. The term "unit" or "module" used below can be a combination of software and / or hardware that implements a predetermined function. Although the device described in the following embodiments is preferably implemented in software, the implementation of hardware or a combination of software and hardware is also possible and is conceived.

[0119] Figure 7 FIG. 1 is a schematic block diagram of a display device of a vehicle indicator light according to an exemplary embodiment. The device can be the terminal described above, or a server, or a module, component, device, control unit, etc. integrated in the terminal. For details, reference can be made to the foregoing description of the display method of the vehicle indicator light. Figure 7 The display device 200 of the vehicle indicator light can include a communication module 220, a first display module 240, and a second display module 260. The communication module 220 is configured to determine a to-be-displayed indicator light according to a display signal in response to the display signal. The first display module 240 is configured to match a corresponding indicator light display list according to a display type of the to-be-displayed indicator light. The display type includes a fixed display area display and one or more dynamic display area displays. The indicator light display list is a corresponding indicator light display list established in advance according to the display type, and is configured to store an indicator light array with a corresponding dynamic attribute mark. The dynamic attribute mark is contained in an indicator light array established in advance, and is configured to identify the display type of the indicator light. The second display module 260 is configured to display an indicator light in the corresponding display area according to an indicator light display strategy.

[0120] Each module in the indicator light display device 200 can be implemented entirely or partially through software, hardware, or a combination thereof. These modules can be embedded in or independent of the processor in a computer device, or stored in the memory of a computer device as software, so that the processor can call and execute the operations corresponding to each module.

[0121] In one embodiment, a vehicle indicator light generation and processing device is provided. This device can be a server, and its internal structure diagram can be as follows: Figure 8 As shown, the vehicle indicator light generation processing device includes a processor, memory, and network interface connected via a system bus. The processor provides computational and control capabilities. The memory includes non-volatile storage media and internal memory. The non-volatile storage media stores the operating system, computer programs, and a database. The internal memory provides an environment for the operation of the operating system and computer programs stored in the non-volatile storage media. The database stores data such as structure arrays and indicator light display lists. The network interface communicates with external terminals via a network connection. When the computer program is executed by the processor, it implements a vehicle indicator light generation processing method.

[0122] In one embodiment, a display device for vehicle indicator lights is provided. This display device can be a terminal, and its internal structure diagram can be as follows: Figure 9 As shown. The vehicle indicator light display device includes a processor, memory, communication interface, display screen, and input device connected via a system bus. The processor of the vehicle indicator light display device provides computing and control capabilities. The memory of the vehicle indicator light display device includes non-volatile storage media and internal memory. The non-volatile storage media stores the operating system and computer programs. The internal memory provides an environment for the operation of the operating system and computer programs in the non-volatile storage media. The communication interface of the vehicle indicator light display device is used for wired or wireless communication with external terminals. Wireless communication can be achieved through Wi-Fi, mobile cellular networks, NFC (Near Field Communication), or other technologies. When the computer program is executed by the processor, it implements a method for displaying the indicator light. The display screen of the vehicle indicator light display device can be an LCD screen or an e-ink screen. The input device of the vehicle indicator light display device can be a touch layer covering the display screen, buttons, a trackball, or a touchpad mounted on the casing of the vehicle indicator light display device, or an external keyboard, touchpad, or mouse, etc.

[0123] Those skilled in the art will understand that Figure 8 orFigure 9 The structure shown in the figure is only a block diagram of part of the structure related to the scheme of the present application, and does not constitute a limitation on the related equipment to which the scheme of the present application is applied. The generation processing equipment of the vehicle indicator light or the display equipment of the vehicle indicator light can include more or fewer components than those shown in the figure, or combine certain components, or have a different component arrangement.

[0124] In some embodiments of the present disclosure, an instrument display device is also provided, comprising a fixed display module and one or more dynamic display modules; the fixed display module is used to display the to-be-displayed indicator light of the fixed display list in the fixed display area, and the one or more dynamic display modules are used to display the to-be-displayed indicator light of the corresponding dynamic display list in the corresponding dynamic display area.

[0125] In some embodiments of the present disclosure, the fixed display area can be used to display the indicator light with high information priority and / or high frequency of viewing. The dynamic display area can be used to display the indicator light with low information priority and / or low frequency of viewing. The dynamic display area can include a first dynamic display area and a second dynamic display area. For example, the fixed display area can display the indicator light affecting the basic safe operation of the vehicle, such as the safety indicator light and the fault warning indicator light described above. The fixed display area can be arranged at a position conforming to the long-term visual habit of the driver, such as the central area of the instrument panel, and the position of the indicator light displayed in the fixed display area is generally fixed. The dynamic display area can follow the principle of "who comes first", and display the to-be-displayed indicator light in order as needed, thereby improving the interface neatness and space utilization. The first dynamic display area can be a left display area in the instrument display device, and the second dynamic display area can be a right display area in the instrument display device. The first dynamic display area can display the temporary or secondary indicator light conforming to the left visual habit of the driver, such as the left turn signal light, the high beam light, or the auxiliary driving control indicator light, etc. The second dynamic display area can display the temporary or secondary indicator light conforming to the right visual habit of the driver, such as the right turn signal light, the front and rear fog light indicator light, and other function state indicator light, etc.

[0126] In some embodiments of the present disclosure, a vehicle is also provided, comprising at least one of the generation processing equipment of the vehicle indicator light, the display equipment of the vehicle indicator light, and the instrument display device.

[0127] Each of the embodiments in the specification is described in a progressive manner, and the same or similar parts between the embodiments can be referred to each other. Each embodiment focuses on the difference from other embodiments. In particular, for the hardware + program type embodiment, since it is basically similar to the method embodiment, the description is relatively simple, and the related parts can be referred to the part of the method embodiment.

[0128] It should be noted that the user information (including but not limited to user equipment information, user personal information, etc.) and data (including but not limited to data for analysis, stored data, displayed data, etc.) involved in the present application are all information and data authorized by the user or authorized by all parties.

[0129] It can be understood by those skilled in the art that all or part of the processes in the above-mentioned embodiment methods can be completed by instructing related hardware through a computer program. The computer program can be stored in a non-volatile computer readable storage medium, and when executed, can include the processes of the above-mentioned embodiments. Any reference to memory, database or other medium used in the embodiments provided by the present application can include at least one of non-volatile and volatile memory. Non-volatile memory can include read-only memory (ROM), magnetic tape, floppy disk, flash memory, optical storage, high-density embedded non-volatile memory, resistive memory (ReRAM), magnetoresistive random access memory (MRAM), ferroelectric memory (FRAM), phase change memory (PCM), graphene memory, etc. Volatile memory can include random access memory (RAM) or external cache memory, etc. As an illustration but not limitation, RAM can be in various forms, such as static random access memory (SRAM) or dynamic random access memory (DRAM), etc. The database involved in the embodiments provided by the present application can include at least one of a relational database and a non-relational database. The non-relational database can include a distributed database based on a block chain, etc., without being limited thereto. The processor involved in the embodiments provided by the present application can be a general-purpose processor, a central processing unit, a graphics processing unit, a digital signal processor, a programmable logic device, a data processing logic device based on quantum computing, etc., without being limited thereto.

[0130] It should be noted that the above-mentioned apparatus, device, and vehicle according to the description of the method embodiments can also include other embodiments. The specific implementation can refer to the description of the related method embodiments. Meanwhile, the mutual combination of the features of each method and the device, equipment, and vehicle embodiments constitutes a new embodiment, which still belongs to the implementation range covered by the present disclosure, and is not described one by one here.

[0131] For ease of description, the above apparatus is described in various modules with functions respectively. Of course, when implementing one or more of the present specification, the functions of each module can be implemented in one or more software and / or hardware, and modules implementing the same function can be implemented by a combination of multiple sub-modules or sub-units, etc. The above-described apparatus embodiments are only illustrative, for example, the division of modules or units is only a logical function division, and actual implementation can have another division manner, for example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point, the coupling, communication connection, etc. between the apparatuses or units shown or described can be directly and / or indirectly coupled / connected in a manner, which can be through some standard or self-defined interface, protocol, etc., and is in an electrical, mechanical or other form.

[0132] Other embodiments of the present disclosure will be apparent to those skilled in the art from consideration of the specification and practice of the application disclosed herein. The present disclosure is intended to cover any variations, uses, or adaptations of the present disclosure following the general principles thereof and including such departures from the present disclosure that come within known use or custom in the art to which the present disclosure pertains. The specification and examples are to be regarded as illustrative only, and the true scope and spirit of the present disclosure are indicated by the following claims.

[0133] It should be understood that the present disclosure is not limited to the precise structures herein described and illustrated above, and that various modifications and changes in the herein described structures can be affected without departing from the scope thereof.

Claims

1. A generation processing method of a vehicle indicator light, characterized by, The method comprises: establishing a plurality of indicator light arrays, the indicator light arrays comprising display states and dynamic attribute markers of corresponding indicator lights, the dynamic attribute markers being used to identify display types of the indicator lights, the display types comprising fixed display area display and one or more dynamic display area display; establishing indicator light display lists corresponding to the display types, for storing the indicator light arrays of the corresponding dynamic attribute markers; in response to a display signal, storing the indicator light arrays in the corresponding indicator light display lists according to the display states and the dynamic attribute markers of the corresponding indicator light arrays in the display signal, the indicator light display lists comprising a fixed display list and one or more dynamic display lists; generating corresponding indicator light display strategies according to the indicator light display lists, comprising: transferring data of the indicator light arrays in the fixed display list into a visualization tool through a first intermediate variable group; transferring data of the indicator light arrays in the corresponding dynamic display lists into the visualization tool through one or more second intermediate variable groups, wherein the intermediate variable groups are used to transfer structured data sets of information between an indicator light data processing module and the visualization tool; the first intermediate variable group represents a set of intermediate variables bound to the fixed display list; and the second intermediate variable group represents a set of intermediate variables bound to the corresponding dynamic display list.

2. The method of claim 1, wherein, The indicator light arrays further comprise texture identifiers of the corresponding indicator lights, and the method further comprises: in response to the display signal, storing the indicator light arrays in the indicator light display lists corresponding to the texture identifiers in the case of special dynamic display.

3. The method of claim 1, wherein, The transferring of the data of the indicator light arrays in the corresponding dynamic display lists into the visualization tool through the one or more second intermediate variable groups comprises: iterating through the dynamic display list, and in the case that there is valid data in the dynamic display list within an index range, transferring the texture identifiers and the display states of the indicator lights into the corresponding second intermediate variable groups; performing a 0-setting operation on data outside the index range.

4. The method of claim 1, wherein, The storage order of the indicator light arrays in the dynamic display list is configured to be sequentially stored in a first-in-first-out order according to the receiving time of the display signal of the indicator lights, and the generating of the corresponding indicator light display strategies according to the indicator light display lists further comprises: generating an indicator light display strategy displayed in a reverse order or an order according to the storage order of the indicator light arrays in the dynamic display list.

5. A generating processing device of a vehicle indicator lamp, characterized by The apparatus comprises: a first generation module configured to establish a plurality of indicator light arrays, the indicator light arrays comprising display states and dynamic attribute markers of corresponding indicator lights, the dynamic attribute markers being used to identify display types of the indicator lights, the display types comprising fixed display area display and one or more dynamic display area display; a second generation module configured to establish indicator light display lists corresponding to the display types, for storing the indicator light arrays of the corresponding dynamic attribute markers; and a third generation module configured to generate corresponding indicator light display strategies according to the indicator light display lists. a third generating module, configured to store the indicator light array into a corresponding indicator light display list according to the display state and the dynamic attribute mark of the indicator light array in the display signal in response to the display signal, the indicator light display list comprising a fixed display list and one or more dynamic display lists; a fourth generating module, configured to generate a corresponding indicator light display strategy according to the indicator light display list, and configured to transmit the data of the indicator light array in the fixed display list into the visualization tool through a first intermediate variable group, and configured to transmit the data of the indicator light array in the corresponding dynamic display list into the visualization tool through one or more second intermediate variable groups, wherein the intermediate variable group is a structured data set for transmitting information between the indicator light data processing module and the visualization tool, the first intermediate variable group represents a set of intermediate variables bound to the fixed display list, and the second intermediate variable group represents a set of intermediate variables bound to the corresponding dynamic display list.

6. A generation processing device of a vehicle indicator light, characterized by, A computer readable storage medium, having stored thereon computer program, the computer program comprising instructions executable by a processor to cause the processor to perform the steps of the method of any one of claims 1 to 4.

Citation Information

Patent Citations

  • Indicator lamp display method and device, equipment and storage medium

    CN117162776A