Vehicle capability set configuration method and device, computer equipment and storage medium
By automatically updating and inheriting parameters in vehicle capability set management, the problems of cumbersome operations and inconsistent parameters in the existing technology are solved, and efficient and accurate vehicle capability set configuration is achieved.
Patent Information
- Application Number
- CN202510793004.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-13
- Publication Date
- 2025-10-03
AI Technical Summary
In the existing technology of vehicle capability set management, it is necessary to configure parameters separately at each level, which is cumbersome and easily leads to inconsistency in the parameters of the same capability set at different levels.
By obtaining the user's capability set parameters at the target level, the parameters of the overall vehicle capability set are automatically updated based on the hierarchical relationship, realizing parameter inheritance and transfer, reducing repeated operations, and ensuring the consistency of parameters at each level through a merging and overwriting mechanism.
It improves the efficiency and accuracy of vehicle capability set configuration, avoids parameter conflicts, and ensures parameter consistency at different levels.
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Figure CN120743329A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of vehicle intelligent management, and in particular to a vehicle capability set configuration method, device, computer equipment and storage medium. Background Art
[0002] As the demand for vehicle functions and product lines gradually increases, precise management of vehicle capabilities and related parameters becomes the key to improving product competitiveness and user experience.
[0003] Currently, existing technologies for vehicle capability set management mostly adopt a relatively simple configuration method, such as associating vehicle series with capability set parameters, and all models of the vehicle series and all vehicles under all models are configured with the same capability set parameters.
[0004] However, vehicles are complex structural products with multiple levels of association, such as car series and models. Existing technologies only set the vehicle's capability set parameters at a single level, and the configurations between different levels are independent of each other. When a capability set parameter needs to be modified, it is necessary to perform operations at each level separately. The operation is cumbersome and it is easy to miss the modification of the capability set parameters of a certain level, resulting in inconsistencies in the same capability set parameters at different levels. Summary of the Invention
[0005] In view of this, an embodiment of the present invention provides a vehicle capability set configuration method, apparatus, computer equipment and storage medium to solve the problem that the existing technology requires configuring capabilities at each level separately, which is cumbersome and easily leads to inconsistent parameters of the same capability set at different levels.
[0006] In a first aspect, an embodiment of the present invention provides a method for configuring a vehicle capability set, the method comprising:
[0007] Obtaining a first capability set parameter configured by the user at a target level; the target level being any level in the overall vehicle capability set;
[0008] Based on the first capability set parameters, updating original capability set parameters associated with the target level and sublevels of the target level to obtain second capability set parameters associated with each level in the overall vehicle capability set; wherein, for each level, the original capability set parameters associated with the level include original capability set parameters inherited from the parent level of the level;
[0009] The overall capability set of the target vehicle included in the overall vehicle capability set is configured according to the second capability set parameter associated with the last level of the overall vehicle capability set.
[0010] This application allows users to configure the first capability set parameters at any target level. It will automatically update the original capability set parameters of the relevant levels of the overall vehicle capability set based on the hierarchical relationship of the overall vehicle capability set, thereby realizing the inheritance and transfer of parameters between different levels, so that there is no need to configure and update the aforementioned parameters one by one at each level, reducing repeated operations. For example, when configuring a certain functional parameter at the vehicle series level, the vehicle model and material levels can directly inherit it without having to set it again. At the same time, through this hierarchical linkage update, the consistency of parameters at each level can be ensured, avoiding parameter conflicts caused by separate configurations, and effectively improving configuration efficiency and accuracy.
[0011] In an optional embodiment, the updating of original capability set parameters associated with the target level and sublevels of the target level based on the first capability set parameters to obtain second capability set parameters associated with each level in the overall vehicle capability set includes:
[0012] Determining second capability set parameters associated with the target layer based on the first capability set parameters and original capability set parameters associated with the target layer;
[0013] For a sub-level of the target level, based on the second capability set parameters associated with the target level and the original capability set parameters associated with the sub-level, a second capability set parameter associated with the sub-level is determined.
[0014] In an optional implementation, determining the second capability set parameters associated with the target layer based on the first capability set parameters and the original capability set parameters associated with the target layer includes:
[0015] Merging the first capability set parameter and the original capability set parameter associated with the target layer to obtain a first merged capability set parameter;
[0016] Based on the first capability set parameters, the first merged capability set parameters are overwritten to obtain the second capability set parameters associated with the target level.
[0017] In an optional implementation, determining the second capability set parameter associated with the sub-level based on the second capability set parameter associated with the target level and the original capability set parameter associated with the sub-level includes:
[0018] Merging the second capability set parameter associated with the target level and the original capability set parameter associated with the sub-level to obtain a second merged capability set parameter;
[0019] Based on the original capability set parameters associated with the sub-level, the second merged capability set parameters are overwritten to obtain the second capability set parameters associated with the sub-level.
[0020] In an optional embodiment, the multiple levels of the overall vehicle capability set are divided into vehicle series, vehicle models, and materials from top to bottom, each vehicle series is associated with at least one vehicle model, and each vehicle model is associated with at least one material; configuring the overall capability set of the target vehicle included in the overall vehicle capability set based on the second capability set parameter associated with the last level of the overall vehicle capability set includes:
[0021] Acquire a second capability set parameter associated with each material in the overall vehicle capability set, and obtain a target capability set parameter of a target vehicle included in the overall vehicle capability set;
[0022] The overall capability set of the target vehicle is configured using the target capability set parameters.
[0023] In an optional embodiment, the method further includes:
[0024] In response to a subscription request for personalized capability set parameters from a target vehicle, performing a legitimacy verification based on a vehicle identification code of the target vehicle;
[0025] If it is detected that the target vehicle passes the legality verification, the overall capability set of the target vehicle is personalized configured using the personalized capability set parameters.
[0026] In an optional embodiment, the method further includes:
[0027] In response to a user's query request for a capability set of a target vehicle, the overall capability set of the target vehicle is displayed.
[0028] In a second aspect, an embodiment of the present invention provides a computer device comprising: a memory and a processor, the memory and the processor being communicatively connected to each other, computer instructions being stored in the memory, and the processor executing the vehicle capability set configuration method of the first aspect or any corresponding embodiment thereof by executing the computer instructions.
[0029] In a third aspect, an embodiment of the present invention provides a computer-readable storage medium having computer instructions stored thereon, the computer instructions being used to enable a computer to execute the vehicle capability set configuration method of the first aspect or any corresponding embodiment thereof.
[0030] In a fourth aspect, the present invention provides a computer program product comprising computer instructions for causing a computer to execute the vehicle capability set configuration method of the first aspect or any corresponding embodiment thereof. BRIEF DESCRIPTION OF THE DRAWINGS
[0031] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the specific embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0032] Figure 1 is a flow chart of a method for configuring a vehicle capability set according to some embodiments of the present invention;
[0033] Figure 2 is a schematic diagram of the hierarchical relationship of the overall vehicle capability set according to some embodiments of the present invention;
[0034] Figure 3 is a schematic diagram of an interface for configuring capability parameters according to some embodiments of the present invention;
[0035] Figure 4 is a schematic diagram of a storage structure of an overall vehicle capability set according to some embodiments of the present invention;
[0036] Figure 5 is a schematic diagram of the overall architecture of vehicle capability set configuration according to some embodiments of the present invention;
[0037] Figure 6 is a flowchart of another vehicle capability set configuration method according to some embodiments of the present invention;
[0038] Figure 7 is a schematic diagram of querying a vehicle capability set according to some embodiments of the present invention;
[0039] Figure 8 is a flow chart for configuring a vehicle capability set according to some embodiments of the present invention;
[0040] Figure 9 is a structural block diagram of a vehicle capability set configuration device according to an embodiment of the present invention;
[0041] Figure 10 Schematic diagram of the hardware structure of a computer device according to an embodiment of the present invention. DETAILED DESCRIPTION
[0042] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without making creative efforts shall fall within the scope of protection of the present invention.
[0043] According to an embodiment of the present invention, a vehicle capability set configuration method, apparatus, computer device and storage medium are provided. It should be noted that the steps shown in the flowchart of the accompanying drawings can be executed in a computer system such as a set of computer executable instructions, and although a logical order is shown in the flowchart, in some cases, the steps shown or described can be executed in an order different from that shown here.
[0044] In this embodiment, a vehicle capability set configuration method is provided. Figure 1 FIG. 1 is a flow chart of a vehicle capability set configuration method according to an embodiment of the present invention. Figure 1 As shown, the process includes the following steps:
[0045] Step S101, obtaining the first capability set parameters configured by the user at the target level; the target level is any level in the overall vehicle capability set.
[0046] The method of the embodiment of the present application is applied to a vehicle capability set configuration and management system, which can independently configure the vehicle's capability set based on N (N is an integer greater than 1) feature dimensions of the vehicle, and use the capability set of each feature dimension to construct the vehicle's overall capability set, thereby realizing the comprehensive integration of the vehicle's personalized capability configuration. In the embodiment of the present application, there is no excessive limitation on the specific feature dimensions of the N feature dimensions, and those skilled in the art may set them according to actual needs. For example, the N feature dimensions of a vehicle may include but are not limited to any one or any combination of region, car manufacturer, vehicle brand, car series, model, material, etc., where region refers to the main deployment area of the vehicle, car manufacturer refers to the manufacturer / car company of the vehicle, vehicle brand refers to one or more vehicle brands under the car manufacturer (such as brand B of car manufacturer A), car series refers to the series of vehicles under a certain vehicle brand (such as the C1 car series or C2 car series under the aforementioned brand B, etc.), model refers to different models of vehicles under a certain car series (such as the D1 model or D2 model under the C1 car series, etc.), and material refers to the materials used in the production of a certain model of vehicle, including but not limited to hardware materials and / or software materials. Hardware materials may include but are not limited to any one or any combination of various controllers (such as body controller, power controller, etc.), sensors, components, body materials, etc., and software materials may include but are not limited to various vehicle control systems (such as power system, steering system, lighting control system, etc.) or service functions.
[0047] In the present application, a hierarchical relationship of the overall vehicle capability set of the vehicle is constructed according to the range inclusion relationship of different feature dimensions in N feature dimensions; if the range inclusion relationship indicates "the order of the corresponding ranges of each feature dimension in the N feature dimensions from large to small", then the N feature dimensions can be respectively corresponded to the order from the top level to the last level in multiple levels of the overall vehicle capability set (hierarchical order) according to the order from large to small (range size order) of the corresponding ranges of each feature dimension in the N feature dimensions to construct the overall vehicle capability set; wherein: the hierarchical relationship from the top level to the last level in the overall vehicle capability set is "the first level closer to the top level in two adjacent levels is the parent level of the second level, that is, the second level is the child level of the first level, and the second level is the other level other than the first level in the two adjacent levels);
[0048] The scope inclusion relationship of different feature dimensions can be set based on actual business needs. For example, when the aforementioned N feature dimensions include region, car manufacturer, vehicle brand, car series, vehicle model, and material, the scope inclusion relationship of the N feature dimensions is "region, car manufacturer, vehicle brand, car series, vehicle model, and material in the order of the corresponding scope of the feature dimension from large to small". Then, "region, car manufacturer, vehicle brand, car series, vehicle model, and material" can be respectively corresponded to the "first layer (top layer), second layer, third layer, fourth layer, fifth layer, and sixth layer (last layer)" in the order (hierarchical order) of multiple levels of the overall vehicle capability set to construct the overall vehicle capability set.
[0049] As an embodiment, for ease of understanding, the following content of this application uses vehicle series, vehicle models, and materials as the overall vehicle capability set constructed based on the aforementioned N feature dimensions.
[0050] like Figure 2 As shown, corresponding hierarchical capability sets are constructed for vehicle series, vehicle models, and materials. Each vehicle series is associated with at least one vehicle model, and each vehicle model is associated with at least one material. For example, if the original capability set parameters for a vehicle series include the specific parameters for capabilities F1 and F2, then the original capability set parameters for vehicle models D1, D2, ..., and Dn associated with the vehicle series will inherit the specific parameters for capabilities F1 and F2 associated with the vehicle series. The original capability set parameters for materials E1 and E2 associated with vehicle model D1 will inherit the capability set parameters for vehicle model D1. The parent level of vehicle model D1 is the vehicle series, and the child levels of vehicle model D1 are materials E1 and E2.
[0051] Take a vehicle as an example. Figure 2 The model D2 under the car series shown uses material E1, so the overall capability set of the vehicle is the collection of all capabilities associated with the car series, model D2 and material E1. The overall vehicle capability set is a comprehensive integration of the overall capability sets of multiple vehicles.
[0052] Specifically, users can configure capability sets at any target level (such as vehicle series, vehicle model, or material level) through the vehicle capability set configuration and management system. The system receives the first capability set parameters configured by the user at any target level (such as vehicle series, vehicle model, or material level). The cascade relationship of the levels included in the vehicle capability set configuration and management system can be seen again in Figure 2 , each level has independent capability set parameter configuration permissions.
[0053] In some embodiments, the system captures the capability set and its parameter values defined by the user at the selected level (e.g., vehicle series level) through a user interface or data interface. Figure 2 The parent-child hierarchical structure shown is defined, and user configuration operations can be directly applied to any non-final level (e.g., vehicle series). These parameters are then passed down to the child levels (models) for inheritance or overwriting. This step provides the basic data input for subsequent inter-level parameter merging and priority overriding.
[0054] For example, Figure 3 As shown in the figure, taking the user configuring the capability set for vehicle model D1 in the system as an example, vehicle model D1 has the capability of "Discharge Status Reminder 2.0". The parameters of this capability are shown in the following table 1:
[0055] Table 1
[0056] Parameter name Parameter code Parameter Type Parameter value Parameter value (English) Push method PushMode Multiple-select values information message Push method PushMode Multiple-select values notify notice Push method PushMode Multiple-select values Short message SMS
[0057] See again Figure 3 When the user wants to configure the push method of the "Discharge Status Reminder 2.0" capability to include both message and SMS reminders, the user can check the box on the user interface provided by the system. The system captures the user's parameter configuration of "Discharge Status Reminder 2.0" for vehicle type D1, stores the parameter values of the push method of "Discharge Status Reminder 2.0" as message and SMS, and obtains the first capability set parameters.
[0058] In some embodiments, as Figure 4 As shown, the system will store the overall vehicle capability set, capability set parameters, capability set hierarchy and capability set classification in a table structure, wherein the overall vehicle capability set includes the capability identification, capability code, capability type identification and capability type of each capability, and the capability set parameters associated with the overall vehicle capability set include parameter identification, associated capability identification, parameter code, parameter value, parameter type and other information, the capability set hierarchy includes hierarchy identification, hierarchy type (such as vehicle series, vehicle model, material), associated vehicle identification and associated capability identification and other information, and the capability set classification includes capability type identification, capability type code, capability type and other information.
[0059] It should be noted that the parameter type may include at least one parameter type from Boolean value, multiple choice value, interval range, single choice value or manual value, and the capability type may include at least one capability type from basic capability, intermediate capability and advanced capability. Among them, basic capability is a necessary capability for all vehicles, while intermediate capability and advanced capability need to be associated and configured based on the actual situation of the vehicle.
[0060] Step S102: Based on the first capability set parameters, the original capability set parameters associated with the target level and the sub-levels of the target level are updated to obtain the second capability set parameters associated with each level in the overall vehicle capability set; wherein, for each level, the original capability set parameters associated with the level include the original capability set parameters inherited from the parent level associated with the level.
[0061] Specifically, based on the first capability set parameters configured by the user at the target level, the original capability set parameters of the target level and all its sub-levels are updated in a hierarchical linkage manner. Specifically, for the target level, the first capability set parameters input by the user are merged with its original capability set parameters to form a first merged capability set parameter containing the newly added or modified parameters, and the second capability set parameters of the level are generated through the parameter overwriting mechanism (with the user's new configuration parameters taking priority).
[0062] Furthermore, for each sub-level of the target hierarchy, the original capability set parameters inherited from the parent level are merged with the sub-level's own existing parameters to form a second merged capability set. This is then overwritten again based on the priority of the sub-level's own parameters, ultimately generating the sub-level's second capability set parameters. This layer-by-layer update process enables dynamic inheritance and overwriting of parameters within the parent-child hierarchy (car series, vehicle model, and material), ensuring that parameter updates are cascaded across levels.
[0063] Step S103 : configuring the overall capability set of the target vehicle included in the overall vehicle capability set according to the second capability set parameter associated with the last level of the overall vehicle capability set.
[0064] Specifically, the target vehicles included in the overall vehicle capability set are queried by querying the vehicle identifier associated with each level. For each target vehicle, the second capability set parameters associated with the target vehicle's final level (i.e., the material level) are traversed, and the capability set parameters are aggregated and prioritized to complete the final configuration of the overall capability set for that target vehicle.
[0065] Specifically, first, all second capability set parameter sets corresponding to the material levels associated with the target vehicle are extracted, and an initial capability set list is generated based on the parameter configuration data of the material level.
[0066] Subsequently, according to the priority rule of material > vehicle model > vehicle series, the parameter values of each capability set are covered step by step: if a capability set parameter is defined at the material level, the parameter value at the material level is directly adopted; if the material is not defined but the vehicle model level is defined, the parameter value at the vehicle model level is adopted; if both the material and the vehicle model are undefined, the default parameter value at the vehicle series level is adopted.
[0067] Finally, the parameter set after priority determination is integrated with the result of the union of capability sets at each level to form the complete configuration data of the capability set of the target vehicle, and this data is written into the vehicle configuration database to complete the dynamic binding and effectiveness of the vehicle capability set.
[0068] For example, Figure 5 As shown, users use the vehicle capability set configuration and management system to associate different capability sets with the vehicle series (such as the brand's electric SUV series), model (such as the high-end model), and materials (such as batteries, motors, etc.).
[0069] In practice, the first capability set parameters configured by the user at the vehicle level are obtained. For example, if the user has configured the vehicle model with intelligent driver assistance systems and seat heating, the vehicle level then merges these parameters with the original capability set parameters to form the second capability set parameters, which are then passed down to the item level. The item level then merges the inherited parameters with its own parameters and overwrites the parameters for the same capabilities.
[0070] Finally, traverse the second capability set parameters associated with the material level, such as the fast charging capability of the battery, the torque of the motor and other parameters. According to the priority rule of material> vehicle model> vehicle series, if the battery fast charging capability has clear parameters at the material level (such as 80% fast charging in 30 minutes), use this value; if the interior ambient light color set at the vehicle model level is not defined at the material level, use the value defined at the vehicle model level. Integrate the determined parameters with the capability sets of each level to form complete configuration data and write it to the database. TCAM monitors vehicle-related status through heartbeat monitoring, and the VIN code is used for OTA subscription to facilitate subsequent remote updating and management of the vehicle capability set.
[0071] This application allows users to configure the first capability set parameters at any target level, and then automatically update the original capability set parameters of the sub-level based on the hierarchical relationship, realizing parameter inheritance and transmission and reducing repeated operations. For example, if a certain function parameter is configured at the vehicle series level, the vehicle model and material levels can directly inherit it without having to set it again. At the same time, through this hierarchical linkage update, the consistency of parameters at each level can be ensured, avoiding parameter conflicts caused by separate configurations, and effectively improving configuration efficiency and accuracy.
[0072] Figure 6FIG. 1 is a flow chart of a vehicle capability set configuration method according to an embodiment of the present invention. Figure 6 As shown, the process includes the following steps:
[0073] Step S601: Obtain the first capability set parameters configured by the user at the target level; the target level is any level in the overall vehicle capability set. Figure 1 The description of step S101 of the illustrated embodiment will not be repeated here.
[0074] Step S602: Determine second capability set parameters associated with the target level based on the first capability set parameters and the original capability set parameters associated with the target level.
[0075] Specifically, the first capability set parameters configured by the user at the target level are merged and overwritten with the original capability set parameters of the level to generate the second capability set parameters of the level. The system first fully merges the parameter set (first capability set parameters) input by the user with the original parameter set (original capability set parameters) of the target level to form a first merged capability set parameter containing all new and old parameter items. Subsequently, based on the priority rules of the user-configured parameters, the repeated key values in the merged parameters are overwritten, that is, when the same capability set parameter exists in both the user input and the original parameters, the value of the first capability set parameter newly configured by the user shall prevail, and finally the updated second capability set parameters of the target level are generated.
[0076] In this way, parameter merging ensures that the newly added capability set is fully retained, and the overwriting mechanism enables accurate replacement of the original parameters with user configuration, completing the dynamic update of the target layer's own capability set parameters.
[0077] In an optional embodiment, based on the first capability set parameters and the original capability set parameters associated with the target level, the second capability set parameters associated with the target level are determined, including: merging the first capability set parameters and the original capability set parameters associated with the target level to obtain first merged capability set parameters; based on the first capability set parameters, overwriting the first merged capability set parameters to obtain second capability set parameters associated with the target level.
[0078] It should be noted that the first capability set parameters are the capability set parameters that the user actively configures at the target level (such as any level of vehicle series, vehicle model, or material), representing the personalized needs of that level (for example, the acceleration response time parameters set at the vehicle model level for the power system capability set). The original capability set parameters associated with the target level include the original parameters inherited from the parent level of the target level (such as the default parameters inherited from the vehicle series level by the vehicle model level) and the default original parameters of the target level (if not inherited, it is its own initial setting). For example: the vehicle series level sets the default cruising speed range for the autonomous driving capability set to [60-120km / h]. The original parameters at the vehicle model level inherit the parameters of the vehicle series. If the vehicle model level is not actively configured, the original parameters remain unchanged.
[0079] Specifically, first, the first capability set parameters configured by the user at the target level are logically merged with the original capability set parameters at the level to form the first merged capability set parameters. The merging rules may include: for non-conflicting parameters (such as capability parameters newly added by the user or parameters not defined by the parent level), directly superimpose and retain them; for conflicting parameters (such as the same parameter of the same capability has different values in the user configuration and the original parameters), do not handle the conflict for the time being, and only generate a set containing all parameters. For example, the original parameter setting of the vehicle series layer sets the automatic parking function activation condition as "vehicle speed ≤ 15km / h" (original parameter), and the user configures it as "vehicle speed ≤ 10km / h" (first capability set parameter) at the vehicle model layer. After merging, two values exist at the same time.
[0080] Secondly, with the first capability set parameters configured by the user as the priority, the conflicting parameters in the first merged capability set parameters are overwritten to generate the second capability set parameters associated with the target level. The overwriting rules may include: if there is a conflict between the first capability set parameters and the original parameters (such as different values of the same parameter), the parameter value configured by the user shall prevail and the original parameters shall be overwritten; if the first capability set parameters are newly added parameters (not present in the original parameters), they shall be directly retained in the merged result. For example, in the conflict of the above-mentioned conditions for turning on the automatic parking function, the final parameter after overwriting is the "vehicle speed ≤ 10km / h" configured by the user, and the original parameters of the vehicle series layer are overwritten.
[0081] The embodiment of the present application allows the lower layer (such as vehicle model, material) to achieve differentiated adjustment through active configuration on the basis of inheriting the default parameters of the upper layer (such as car series) through a merging and overwriting mechanism, avoiding the repeated definition of all parameters and improving configuration efficiency. The user's configuration at the target level (first capability set parameters) has a higher priority than the original parameters (including parameters inherited from the parent level), ensuring the "near-level configuration priority" principle and complying with the priority system of "material> vehicle model> car series" (for example, material layer configuration can override vehicle model and car series layer parameters). It not only retains the parameter inheritance relationship between levels, but also supports independent modification of each level, which is suitable for precise control of capability set parameters in complex business scenarios (such as different models based on the same car series platform, achieving performance differentiation by adjusting parameters).
[0082] Step S603 : for a sub-level of the target level, determining the second capability set parameters associated with the sub-level based on the second capability set parameters associated with the target level and the original capability set parameters associated with the sub-level.
[0083] Specifically, the target vehicle's multiple hierarchies are divided from top to bottom into vehicle series, vehicle models, and materials. The sub-levels of the target level are the entities below the target level (e.g., the sub-level of the vehicle series is the vehicle model, and the sub-level of the vehicle model is the material). The original capability set parameters associated with the sub-level include the original capability set parameters inherited from the target level (parent level) and the default original capability set parameters of the sub-level.
[0084] First, the second capability set parameters associated with the target layer (which have integrated the original parameters of the target layer and the first capability set parameters configured by the user) and the original capability set parameters associated with the sub-layer are merged to obtain second merged capability set parameters.
[0085] Then, based on the original capability set parameters associated with the sub-level (i.e., the parameters independently configured at the sub-level), the conflicting parts of the second merged capability set parameters are overwritten to obtain the second capability set parameters associated with the sub-level, thus completing the update and determination of the sub-level capability set parameters. This step follows the logic of "sub-level configuration takes precedence over parent-level configuration" to ensure that the personalized parameters of each level are effective.
[0086] In an optional embodiment, based on the second capability set parameters associated with the target level and the original capability set parameters associated with the sub-level, the second capability set parameters associated with the sub-level are determined, including: merging the second capability set parameters associated with the target level and the original capability set parameters associated with the sub-level to obtain second merged capability set parameters; based on the original capability set parameters associated with the sub-level, overwriting the second merged capability set parameters to obtain second capability set parameters associated with the sub-level.
[0087] It should be noted that the multi-level structure of the target vehicle is car series → car model → material (from top to bottom), and each level is the "parent level" of the next level. For example: if the target level is the car series, the sub-level is the car model; if the target level is the car model, the sub-level is the material. After the merging and overwriting are completed, the second capability set parameters associated with the target level include the original parameters of the target level (inherited from the parent level + its own default values) and the first capability set parameters configured by the user, representing the final effective parameter set of the target level (such as the parameters after the car model level merges the car series parameters and its own configuration). The original capability set parameters associated with the sub-level are the original parameters inherited by the sub-level from the target level (that is, the original parameters of the target level, excluding the user configuration of the target level) and the sub-level's own default original parameters (such as the original parameters inherited by the material level from the car model level + the material's own default parameters).
[0088] Specifically, first, the second capability set parameters associated with the target layer (with the target layer user configuration integrated) are logically merged with the original capability set parameters associated with the sub-layer to generate the second merged capability set parameters. The merging rules may include: the part of the sub-layer original parameters inherited from the target layer (the original value that is not the user configuration) coexists with the corresponding parameters in the second parameters of the target layer; the parameters in the sub-layer original parameters that are independent of the target layer (such as parameters unique to the material layer) are directly added to the merged set; if there is a conflict between the second parameters of the target layer (including user configuration) and the original parameters of the sub-layer (including inherited values) (such as different values for the same parameter), the conflict will not be processed temporarily, and only a set containing all parameters will be generated.
[0089] For example, the automatic parking speed in the second parameter of the vehicle model layer is ≤10km / h (user configuration overrides the default value of the vehicle series), the original parameter of the material layer inherits the original value of the vehicle model (≤15km / h) and adds its own parameter "brake force distribution = 8:2", which includes three parameters after merging: ≤10km / h, ≤15km / h, and 8:2.
[0090] Secondly, the original capability set parameters associated with the sub-level (i.e., the parameters independently configured by the sub-level, excluding the user configuration part inherited from the target level) are prioritized to overwrite the conflicting parameters in the second merged capability set parameters to generate the second capability set parameters associated with the sub-level. The overwriting rules may include: if there are independently configured parameters in the original parameters of the sub-level (not the default values inherited from the target level), then the conflicting value in the second parameter of the target level is overwritten; if the sub-level does not independently configure the parameters, then the value in the second parameter of the target level is retained (i.e., the user configuration inherited from the target level). For example, in the above-mentioned automatic parking speed conflict, the original parameters of the material layer do not independently configure the parameter (only the original value of the vehicle model is inherited ≤15km / h), then the value of the second parameter of the target level is ≤10km / h after overwriting; if the material layer is independently configured to ≤5km / h, then the overwriting is ≤5km / h, reflecting the highest priority of the material layer.
[0091] The method provided in this embodiment uses a "merge → overwrite" mechanism. Sub-levels can inherit the final configuration of the target level (including user modifications) and then precisely adjust their own original parameters (such as the special performance parameters of a material) to ensure the flexibility of the underlying configuration. Through layered merging and targeted overwriting, the system automatically handles parameter inheritance and conflicts between levels without manual intervention, improving configuration efficiency and stability (for example, the parameters of high-performance brake components directly override the vehicle model level settings to ensure that the vehicle's braking performance meets the component's characteristics).
[0092] For example, see again Figure 2 and Figure 3 As shown in the figure, the user configures capabilities associated with vehicle model D1. Vehicle model D1's original capability set is "Discharge Status Reminder 2.0," and the push method for the original capability set parameter "Discharge Status Reminder 2.0" is Message and SMS. For vehicle model D1's sub-level items E1 and E2, using item E1 as an example, before the user operates the system, item E1's original capability set parameters inherit those of vehicle model D1.
[0093] If the user changes the push method for this capability to messages, notifications, and SMS (adding new parameters for the same capability), that is, vehicle model D1's first capability set parameter, "Discharge Status Reminder 2.0," has push methods of messages, notifications, and SMS, then by merging and overwriting the original capability set parameters with the first capability set parameters, the system determines that vehicle model D1's second capability set parameter, "Discharge Status Reminder 2.0," has push methods of messages, notifications, and SMS. Furthermore, the system merges vehicle model D1's second capability set parameters with the original capability set parameters of item E1, resulting in a second merged capability set parameter, "Discharge Status Reminder 2.0," with push methods of messages, notifications, and SMS. However, because item E1 has a higher priority than vehicle model D1, the system overwrites the second merged capability set parameters with the original capability set parameters of item E1, determining that the push method for item E1's second capability set parameter, "Discharge Status Reminder 2.0," is messages and SMS.
[0094] Alternatively, if the user changes the push method for the capability in vehicle model D1 to message (deleting or modifying the parameters of the same capability), that is, the push method for vehicle model D1's first capability set parameter "Discharge Status Reminder 2.0" is message. After merging vehicle model D1's original capability set parameters with the first capability set parameters, the push methods for the first merged capability set parameter "Discharge Status Reminder 2.0" are message and SMS. The first capability set parameters are then used to overwrite the parameters of the same capability in the first merged capability set parameters. This determines that the push method for vehicle model D1's second capability set parameter "Discharge Status Reminder 2.0" is message. Furthermore, the system automatically merges vehicle model D1's second capability set parameters with the original capability set parameters of item E1, resulting in a second merged capability set parameter "Discharge Status Reminder 2.0" with message, notification, and SMS. However, since item E1 has a higher priority than vehicle model D1, the system overwrites the parameters of the second merged capability set parameters with those of item E1's original capability set parameters, determining that the push method for item E1's second capability set parameter "Discharge Status Reminder 2.0" is message and SMS.
[0095] Alternatively, when the user configures a new capability such as "cabin temperature detection" in vehicle model D1 and configures the parameters of the capability to "detect once every 1 minute" (configuration of the new capability), that is, the first capability set parameter of vehicle model D1 is "cabin temperature detection" and the detection method is to detect once every 1 minute, the system merges the first capability set parameters of vehicle model D1 and its original capability set parameters and overwrites the parameters, and determines that the second capability set parameters of vehicle model D1 are "Discharge Status Reminder 2.0" with the push method being messages and text messages, and the detection method of "cabin temperature detection" is to detect once every 1 minute. Furthermore, the system merges the second capability set parameters of vehicle type D1 and the original capability set parameters of material E1, and obtains the second merged capability set parameters as follows: the push method of "Discharge Status Reminder 2.0" is message and SMS, and the detection method of "Cabin Temperature Detection" is detection once every 1 minute. The system uses the original capability set parameters of material E1 to overwrite the parameters of the same capabilities in the second merged capability set parameters, and can determine that the second capability set parameters of material E1 are: the push method of "Discharge Status Reminder 2.0" is message and SMS, and the detection method of "Cabin Temperature Detection" is detection once every 1 minute.
[0096] Step S604 : configuring the overall capability set of the target vehicle included in the overall vehicle capability set according to the second capability set parameter associated with the last level of the overall vehicle capability set.
[0097] Specifically, the multiple levels of the overall vehicle capability set are divided into vehicle series, vehicle models and materials from top to bottom, each vehicle series is associated with at least one vehicle model, and each vehicle model is associated with at least one material; according to the second capability set parameters associated with the last level of the overall vehicle capability set, the overall capability set of the target vehicle included in the overall vehicle capability set is configured, including: obtaining the second capability set parameters associated with each material of the target vehicle, obtaining the target capability set parameters of the target vehicle, and using the target capability set parameters to configure the capability set of the target vehicle.
[0098] Specifically, first extract the second capability set parameter sets corresponding to all material levels associated with the target vehicle, and generate an initial capability set list based on the parameter configuration data at the material level; then, according to the priority rule of material>model>car series, perform level-by-level coverage judgment on the parameter values of each capability set, that is, if a capability set parameter is defined at the material level, use the parameter value at the material level; if the material is not defined but the model level is defined, use the parameter value at the model level; if both the material and the model are undefined, use the default parameter value at the car series level; finally, integrate the parameter set after priority judgment with the result of taking the union of the capability sets at each level to form the complete configuration data of the capability set of the target vehicle, and write the data into the vehicle configuration database, thereby completing the configuration of the capability set of the target vehicle.
[0099] For example, taking electric vehicles as an example, the associated material levels include battery packs, motors, smart driving chips, etc. First, extract the second capability set parameter sets corresponding to these materials, such as the fast charging speed of the battery pack (60kW), the maximum power of the motor (150kW), and the computing power of the chip (200TOPS), to generate an initial capability set list. Then perform a priority determination: if the parameter has been defined at the material level (such as the fast charging speed of the battery), then use the value directly; if it is not defined (such as the cruising range), check whether the vehicle model level has a definition (assuming the vehicle model level is defined as 600 kilometers). If so, use the value; if the vehicle model level is also undefined (such as the autonomous driving level), then use the default parameter value of the vehicle series level (assuming it is L2 level).
[0100] Finally, all the determined parameters (fast charging speed of 60kW, cruising range of 600 kilometers, and autonomous driving level L2) are integrated with the capability sets at each level (such as motor power at the material level, smart cockpit functions at the vehicle model level, and safety systems at the vehicle series level) to form a complete capability set configuration data (including parameters such as power, cruising range, and intelligent driving), and written into the vehicle configuration database to complete the dynamic binding and effectiveness of the capability set.
[0101] This application effectively solves the drawbacks of the existing technology through the hierarchical linkage configuration and parameter inheritance mechanism. In the existing technology, it is necessary to configure the capabilities separately at each level, which is extremely cumbersome and easily leads to parameter inconsistency problems. In this solution, the user only needs to configure the first capability set parameters at any target level of the target vehicle, and the system can determine the second capability set parameters of the target level based on the parameters and the original parameters of the target level, without repeating the operation at each level. At the same time, for the sub-level of the target level, the system will determine the second capability set parameters of the sub-level based on the second capability set parameters of the upper level and the original parameters of the sub-level, and realize automatic inheritance and update of parameters. In this way, not only the operation steps are reduced and the configuration efficiency is improved, but also the consistency of the capability set parameters of each level is ensured through the parameter transfer and integration between levels, avoiding problems such as parameter conflicts caused by separate configuration.
[0102] In an optional embodiment, the method further includes: in response to a subscription request from the target vehicle for personalized capability set parameters, performing legitimacy verification based on the vehicle identification code of the target vehicle; if it is detected that the legitimacy verification of the target vehicle passes, using the personalized capability set parameters, personalizing the overall capability set of the target vehicle.
[0103] Specifically, when the system receives a personalized capability set parameter subscription request from a target vehicle via its onboard terminal, it first extracts the vehicle identification number (VIN) contained in the request and compares it with a list of valid VINs stored in the vehicle management database. It also verifies the integrity and timeliness of the request signature to ensure that the request is legitimate and has not expired. If verification passes, the system further parses the personalized capability set parameters contained in the request (such as custom driving modes, smart cockpit themes, and specific function on / off settings), performing format verification based on the parameter type (Boolean value, numeric range, option value, etc.). Subsequently, based on the vehicle configuration information associated with the VIN code, the system locates the basic capability set for the corresponding vehicle platform and overwrites the valid personalized parameters into the basic capability set according to the priority rule of "personalized parameters > vehicle default parameters > vehicle series common parameters." For example, if a user subscribes to the personalized parameter "Sports mode acceleration response +20%," the system will prioritize this value in the power control module's capability configuration. Finally, the system generates a capability set data package containing the complete personalized configuration and pushes it to the target vehicle's onboard controller via a secure channel, completing the personalized configuration update and recording the configuration operation log for audit purposes. Throughout this process, the system continuously monitors the vehicle's status to ensure that the configuration update is executed in a safe environment, such as when the vehicle is stationary or driving at low speed.
[0104] In an optional embodiment, the method further includes: displaying the overall capability set of the target vehicle in response to a user's query request for the capability set of the target vehicle.
[0105] Specifically, such as Figure 7 As shown, after receiving a user's query request for the capability set of a target vehicle, the system first searches based on the vehicle's unique VIN code.
[0106] Next, the system obtains the vehicle's series capability set, which includes configuration parameters common to the vehicle series; the vehicle model capability set, which includes parameters unique to a specific vehicle model; the material capability set, which covers performance parameters related to each vehicle material; and the VIN capability set, which includes parameters customized for the vehicle. These four capability sets are then aggregated and unioned, combining capability parameters from different levels and dimensions.
[0107] Finally, the overall capability set of the target vehicle is extracted from the aggregated capability set. If the user is the owner of the target vehicle, the overall capability set of the target vehicle is displayed to the user, completing the capability set query function based on the VIN code. The parameter configuration of each capability in the overall capability set is not displayed to the user. If the user is a system administrator, the overall capability set of the target vehicle and the configuration parameters of each capability in the overall capability set can be displayed to the user.
[0108] For example, a user sends a query request to the system through a mobile app, requesting the capability set of a specific vehicle (target vehicle). Upon receiving the request, the system quickly searches based on the vehicle's unique VIN number. Next, the system retrieves the relevant capability sets: the vehicle series capability set, such as common safety features common to all models in the series; the vehicle model capability set, such as the interior material options unique to that model; the material capability set, such as engine power parameters and tire grip indicators; and the VIN code capability set, such as the optional seat heating function. These four capability sets are then aggregated and unioned, summarizing the capability parameters for each aspect. Finally, the system extracts the vehicle's overall capability set from this aggregated result, presenting the user with capabilities such as safety features, interior materials, power parameters, and seat heating, completing the VIN-based capability set query.
[0109] The following is a complete embodiment of the present application. Figure 8 As shown:
[0110] First, the capability set master data and parameter templates were defined, determining parameters covering power performance, intelligent driving assistance, comfort features, etc. Next, vehicle series information was obtained, revealing that this compact SUV series had basic features such as a body stability control system and automatic start-stop functionality.
[0111] Then configure the capability set and parameters for the vehicle series, such as setting the standard reversing image for the vehicle series and parameters such as image clarity to certain standard values.
[0112] In parallel branch 1, the model information associated with the vehicle series is obtained. This vehicle series has two models: Comfort and Luxury. Capabilities and parameters are configured for each model. For example, the Luxury version adds a panoramic sunroof and heated seats.
[0113] In parallel branch 2, the material information associated with each vehicle model is obtained. For example, the Comfort Edition tire is a certain brand and has a size of 215 / 60R16, while the Luxury Edition tire is a better brand and has a size of 225 / 55R17. Capabilities and parameters are configured for the material, such as setting parameters such as grip and wear resistance for different tire brands.
[0114] In parallel branch 3, the vehicle capability set and parameters are determined based on the vehicle series configuration, such as the number of airbags defined by the vehicle series.
[0115] Afterwards, based on the three-level association of vehicle series, vehicle models, and materials, the capability sets are combined to determine the final vehicle capability set list, resulting in a complete capability set that includes the basic configuration of the vehicle series, the characteristic configuration of the vehicle models, and the characteristic parameters of the materials.
[0116] Finally, determine the vehicle capability set parameters according to the priority of material > vehicle model > vehicle series. If the material level has a clear parameter definition for tire grip, this value is used first. If the material is not defined and the vehicle model level has relevant configuration parameters, the value at the vehicle model level is used to complete the vehicle capability set configuration.
[0117] This embodiment also provides a vehicle capability set configuration device for implementing the above-mentioned embodiments and preferred embodiments. Details already described will not be repeated. As used below, the term "module" may refer to a combination of software and / or hardware that implements a predetermined function. Although the devices described in the following embodiments are preferably implemented in software, implementation in hardware, or a combination of software and hardware, is also possible and contemplated.
[0118] This embodiment provides a vehicle capability set configuration device, such as Figure 9 Shown, including:
[0119] An acquisition module 901 is used to acquire the first capability set parameters configured by the user at a target level; the target level is any level in the overall vehicle capability set;
[0120] An updating module 902 is configured to update the original capability set parameters associated with the target level and its sublevels based on the first capability set parameters to obtain second capability set parameters associated with each level in the overall vehicle capability set; wherein, for each level, the original capability set parameters associated with the level include the original capability set parameters inherited from the parent level of the level;
[0121] The configuration module 903 is configured to configure the overall capability set of the target vehicle included in the overall vehicle capability set according to the second capability set parameter associated with the last level of the overall vehicle capability set.
[0122] In an optional embodiment, the update module 902 is used to determine the second capability set parameters associated with the target level based on the first capability set parameters and the original capability set parameters associated with the target level; and for the sub-level of the target level, determine the second capability set parameters associated with the sub-level based on the second capability set parameters associated with the target level and the original capability set parameters associated with the sub-level.
[0123] In an optional embodiment, the update module 902 is used to merge the first capability set parameters and the original capability set parameters associated with the target level to obtain first merged capability set parameters; based on the first capability set parameters, the first merged capability set parameters are overwritten to obtain second capability set parameters associated with the target level.
[0124] In an optional embodiment, the update module 902 is used to merge the second capability set parameters associated with the target level and the original capability set parameters associated with the sub-level to obtain second merged capability set parameters; based on the original capability set parameters associated with the sub-level, the second merged capability set parameters are overwritten to obtain second capability set parameters associated with the sub-level.
[0125] In an optional embodiment, the multiple levels of the overall vehicle capability set are divided from top to bottom into vehicle series, vehicle models, and materials, each vehicle series is associated with at least one vehicle model, and each vehicle model is associated with at least one material;
[0126] In an optional embodiment, the configuration module 903 is used to obtain the second capability set parameters associated with each material in the overall vehicle capability set, and obtain the target capability set parameters of the target vehicle included in the overall vehicle capability set; and use the target capability set parameters to configure the overall capability set of the target vehicle.
[0127] In an optional embodiment, the device also includes: a first response module, which is used to respond to the target vehicle's subscription request for personalized capability set parameters and perform legitimacy verification based on the vehicle identification code of the target vehicle; if it is detected that the legitimacy verification of the target vehicle passes, the personalized capability set parameters are used to personalize the overall capability set of the target vehicle.
[0128] In an optional embodiment, the device further includes: a first response module, configured to display the overall capability set of the target vehicle in response to a user's query request for the capability set of the target vehicle.
[0129] See also Figure 10 , Figure 10is a structural diagram of a computer device provided by an optional embodiment of the present invention, such as Figure 10 As shown, the computer device includes: one or more processors 10, memory 20, and interfaces for connecting various components, including high-speed interfaces and low-speed interfaces. Various components utilize different buses to communicate with each other and can be installed on a common mainboard or installed in other ways as needed. The processor can process the instructions executed in the computer device, including instructions stored in the memory or on the memory to display the graphical information of the GUI on an external input / output device (such as, a display device coupled to the interface). In some optional embodiments, if necessary, multiple processors and / or multiple buses can be used together with multiple memories and multiple memories. Equally, multiple computer devices can be connected, and each device provides part of the necessary operations (for example, as a server array, a group of blade servers, or a multi-processor system).
[0130] The processor 10 may be a central processing unit, a network processor, or a combination thereof. The processor 10 may further include a hardware chip. The hardware chip may be an application-specific integrated circuit, a programmable logic device, or a combination thereof. The programmable logic device may be a complex programmable logic device, a field programmable gate array, a general purpose array logic, or any combination thereof.
[0131] The memory 20 stores instructions that can be executed by at least one processor 10, so that the at least one processor 10 executes the method shown in the above embodiment.
[0132] The memory 20 may include a program storage area and a data storage area, wherein the program storage area may store an operating system, an application required for at least one function; the data storage area may store data created based on the use of a computer device for displaying a small program landing page, etc. In addition, the memory 20 may include a high-speed random access memory, and may also include a non-transient memory, such as at least one disk storage device, a flash memory device, or other non-transient solid-state storage device. In some optional embodiments, the memory 20 may optionally include a memory remotely located relative to the processor 10, and these remote memories may be connected to the computer device via a network. Examples of the above-mentioned network include, but are not limited to, the Internet, an intranet, a local area network, a mobile communication network, and a combination thereof.
[0133] The memory 20 may include a volatile memory, such as a random access memory; the memory may also include a non-volatile memory, such as a flash memory, a hard disk or a solid-state drive; the memory 20 may also include a combination of the above types of memory.
[0134] The computer device further includes a communication interface 30 for the computer device to communicate with other devices or a communication network.
[0135] The embodiment of the present invention also provides a computer-readable storage medium. The above-mentioned method according to the embodiment of the present invention can be implemented in hardware, firmware, or implemented as a computer code that can be recorded in a storage medium, or implemented as a computer code that is originally stored in a remote storage medium or a non-temporary machine-readable storage medium and downloaded through a network and will be stored in a local storage medium, so that the method described herein can be stored in such software processing on a storage medium using a general-purpose computer, a dedicated processor, or programmable or dedicated hardware. Among them, the storage medium can be a magnetic disk, an optical disk, a read-only storage memory, a random access memory, a flash memory, a hard disk or a solid-state drive, etc.; further, the storage medium can also include a combination of the above-mentioned types of memory. It can be understood that a computer, a processor, a microprocessor controller or programmable hardware includes a storage component that can store or receive software or computer code. When the software or computer code is accessed and executed by a computer, a processor or hardware, the method shown in the above embodiment is implemented.
[0136] Although the embodiments of the present invention have been described with reference to the accompanying drawings, those skilled in the art may make various modifications and variations without departing from the spirit and scope of the present invention. Such modifications and variations are all within the scope defined by the appended claims.
Claims
1. A vehicle capability set configuration method, characterized in that: The method comprises: Obtaining a first capability set parameter configured by the user at a target level; the target level being any level in the overall vehicle capability set; Based on the first capability set parameters, updating original capability set parameters associated with the target level and sublevels of the target level to obtain second capability set parameters associated with each level in the overall vehicle capability set; wherein, for each level, the original capability set parameters associated with the level include original capability set parameters inherited from the parent level of the level; The overall capability set of the target vehicle included in the overall vehicle capability set is configured according to the second capability set parameter associated with the last level of the overall vehicle capability set.
2. The method according to claim 1, characterized in that The updating of original capability set parameters associated with the target level and sublevels of the target level based on the first capability set parameters to obtain second capability set parameters associated with each level in the overall vehicle capability set includes: Determining second capability set parameters associated with the target layer based on the first capability set parameters and original capability set parameters associated with the target layer; For a sub-level of the target level, based on the second capability set parameters associated with the target level and the original capability set parameters associated with the sub-level, a second capability set parameter associated with the sub-level is determined.
3. The method according to claim 2, characterized in that The determining, based on the first capability set parameters and the original capability set parameters associated with the target level, the second capability set parameters associated with the target level includes: Merging the first capability set parameter and the original capability set parameter associated with the target layer to obtain a first merged capability set parameter; Based on the first capability set parameters, the first merged capability set parameters are overwritten to obtain the second capability set parameters associated with the target level.
4. The method according to claim 2, characterized in that The determining, based on the second capability set parameter associated with the target level and the original capability set parameter associated with the sub-level, the second capability set parameter associated with the sub-level includes: Merging the second capability set parameter associated with the target level and the original capability set parameter associated with the sub-level to obtain a second merged capability set parameter; Based on the original capability set parameters associated with the sub-level, the second merged capability set parameters are overwritten to obtain the second capability set parameters associated with the sub-level.
5. The method according to any one of claims 1 to 4, characterized in that The multiple levels of the overall vehicle capability set are divided into vehicle series, vehicle models, and materials from top to bottom, each vehicle series is associated with at least one vehicle model, and each vehicle model is associated with at least one material; configuring the overall capability set of the target vehicle included in the overall vehicle capability set based on the second capability set parameter associated with the last level of the overall vehicle capability set includes: Acquire a second capability set parameter associated with each material in the overall vehicle capability set, and obtain a target capability set parameter of a target vehicle included in the overall vehicle capability set; The overall capability set of the target vehicle is configured using the target capability set parameters.
6. The method according to any one of claims 1 to 4, characterized in that The method further comprises: In response to a subscription request for personalized capability set parameters from a target vehicle, performing a legitimacy verification based on a vehicle identification code of the target vehicle; If it is detected that the target vehicle passes the legality verification, the overall capability set of the target vehicle is personalized configured using the personalized capability set parameters.
7. The method according to any one of claims 1 to 4, characterized in that The method further comprises: In response to a user's query request for a capability set of a target vehicle, the overall capability set of the target vehicle is displayed.
8. A computer device, characterized in that: include: A memory and a processor, wherein the memory and the processor are communicatively connected to each other, the memory stores computer instructions, and the processor executes the vehicle capability set configuration method according to any one of claims 1 to 7 by executing the computer instructions.
9. A computer-readable storage medium, characterized in that The computer-readable storage medium stores computer instructions, and the computer instructions are used to enable a computer to execute the vehicle capability set configuration method according to any one of claims 1 to 7.
10. A computer program product, characterized in that The method comprises computer instructions for causing a computer to execute the vehicle capability set configuration method according to any one of claims 1 to 7.