Interconnection and intercommunication system, related method and device and storage medium

By introducing servers to the Chejia Internet system for information transfer and instruction generation, the problems of insufficient interaction depth and intelligent management in the existing system are solved, and more efficient inter-device interaction and user operations are achieved.

CN120075252APending Publication Date: 2025-05-30IFLYTEK CO LTD
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Patent Information

Application Number
CN202411327174.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-09-23
Publication Date
2025-05-30

AI Technical Summary

Technical Problem

The existing car-home interconnection system lacks in-depth interaction and intelligent management, and the user operations are complex.

Method used

An interconnection system is designed, including user terminals, vehicle and computer equipment, smart homes and servers. The server generates instructions to be executed based on the collected data and sends them to the corresponding equipment for execution, so as to realize efficient information transfer and automated operations between the equipment.

Benefits of technology

It has improved the interaction depth and management intelligence of the interconnected system, simplified user operations, and improved the automation level and user experience of the system.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an interconnection and intercommunication system, a related method, equipment and a storage medium, and the interconnection and intercommunication system at least comprises a user terminal, in-vehicle equipment, a smart home, and a server which is in communication connection with the user terminal, the in-vehicle equipment and the smart home. Wherein at least one of the user terminal, the vehicle machine equipment and the smart home serves as first equipment and is used for transmitting collected data to the server, and the server is used for generating a to-be-executed instruction based on the collected data and sending the to-be-executed instruction to at least one second equipment except the first equipment in the user terminal, the vehicle machine equipment and the smart home; the second equipment is used for executing the to-be-executed instruction. According to the scheme, the interaction depth and the management intelligence degree of the interconnection and intercommunication system can be improved, and user operation is simplified as much as possible.
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Description

Technical Field

[0001] This application relates to the field of Internet of Things technology, and in particular, to an interconnection system and related methods, devices, and storage media. Background Art

[0002] With the development of technology, vehicles such as cars have evolved from simple means of transportation into intelligent and networked mobile spaces. At the same time, homes are gradually becoming intelligent, and various household devices are connected through the network to enable remote control and intelligent management.

[0003] Currently, most of the existing vehicle-home interconnection systems on the market only stay at the simple connection between the vehicle and the mobile phone APP, lacking in-depth interaction and intelligent management, and relying heavily on manual operation by users. In view of this, how to improve the interaction depth and management intelligence of the interconnection system and simplify user operations as much as possible has become an urgent problem to be solved. Summary of the Invention

[0004] The main technical problem to be solved by this application is to provide an interconnection system and related methods, devices, and storage media that can improve the interaction depth and management intelligence of the interconnection system and simplify user operations as much as possible.

[0005] To solve the above technical problem, in the first aspect of this application, an interconnection system is provided, which at least includes: a user terminal, a vehicle-mounted device, and a smart home, as well as a server that is communicatively connected to the user terminal, the vehicle-mounted device, and the smart home respectively; wherein, at least one of the user terminal, the vehicle-mounted device, and the smart home is used as a first device to transmit the collected data to the server, the server is used to generate a to-be-executed instruction based on the collected data, and send the to-be-executed instruction to at least one second device other than the first device among the user terminal, the vehicle-mounted device, and the smart home, and the second device is used to execute the to-be-executed instruction.

[0006] To solve the above technical problem, in the second aspect of this application, an interconnection method is provided. The interconnection method is executed by the server of the interconnection system in the first aspect above, and includes: receiving the collected data sent by the first device in the interconnection system; generating a to-be-executed instruction based on the collected data, and sending the to-be-executed instruction to at least one second device other than the first device in the interconnection system for the second device to execute the to-be-executed instruction.

[0007] To solve the above technical problems, a third aspect of the present application provides an interconnection method, which is executed by the first device of the interconnection system in the first aspect above, and includes: obtaining the collected data; sending the collected data to the server in the interconnection system; wherein, the server is used to generate an instruction to be executed based on the collected data, and send the instruction to be executed to at least one second device other than the first device in the interconnection system, so that the second device executes the instruction to be executed.

[0008] To solve the above technical problems, a fourth aspect of the present application provides an interconnection method, which is executed by the second device of the interconnection system in the first aspect above, and includes: receiving the instruction to be executed sent by the server in the interconnection system; wherein, the instruction to be executed is generated by the server based on the collected data, and the collected data is sent by the first device in the interconnection system to the server; executing the instruction to be executed.

[0009] To solve the above technical problems, a fifth aspect of the present application provides an electronic device, at least including a communication circuit, a memory and a processor, the communication circuit and the memory are respectively coupled to the processor, and at least program instructions are stored in the memory, and the processor is used to execute the program instructions to implement the interconnection method in any one of the second aspect to the fourth aspect above.

[0010] To solve the above technical problems, a sixth aspect of the present application provides a computer-readable storage medium, storing program instructions that can be run by a processor, and the program instructions are used to implement the interconnection method in any one of the second aspect to the fourth aspect above.

[0011] In the above solution, the interconnection system at least includes a user terminal, a vehicle-mounted device and a smart home, as well as a server respectively communicatively connected to the user terminal, the vehicle-mounted device and the smart home. At least one of the user terminal, the vehicle-mounted device and the smart home is used as the first device to transmit the collection device to the server. The server is used to generate an instruction to be executed based on the collection device, and send the instruction to be executed to at least one second device other than the first device among the user terminal, the vehicle-mounted device and the smart home. The second device is used to execute the instruction to be executed. Therefore, on the one hand, by using the server as an information transfer center for end-side devices such as user terminals, vehicle-mounted devices, and smart homes, the interaction depth between different end-side devices can be greatly improved. On the other hand, compared with the simple connection between the vehicle and the mobile phone APP, using a server with higher computing power to provide information transfer can also improve the degree of management intelligence. On the other hand, the server also generates an instruction to be executed based on the collected data and sends the instruction to be executed to the second device. Therefore, the user operation can be minimized as much as possible. Therefore, the interaction depth and management intelligence of the interconnection system can be improved, and the user operation can be simplified as much as possible. BRIEF DESCRIPTION OF THE DRAWINGS

[0012] Figure 1 It is a schematic framework diagram of an embodiment of the interconnection system of the present application; Figure 2 It is a schematic flowchart of an embodiment of the interconnection method of the present application; Figure 3 It is a schematic flowchart of another embodiment of the interconnection method of the present application; Figure 4 It is a schematic flowchart of yet another embodiment of the interconnection method of the present application; Figure 5 It is a schematic framework diagram of an embodiment of the interconnection device of the present application; Figure 6 It is a schematic framework diagram of another embodiment of the interconnection device of the present application; Figure 7 It is a schematic framework diagram of yet another embodiment of the interconnection device of the present application; Figure 8 It is a schematic framework diagram of an embodiment of the electronic device of the present application; Figure 9 It is a schematic framework diagram of an embodiment of the computer-readable storage medium of the present application. Detailed Embodiments

[0013] The solutions of the embodiments of the present application will be described in detail below with reference to the accompanying drawings of the specification.

[0014] In the following description, specific details such as specific system architectures, interfaces, and technologies are presented for the purpose of illustration rather than limitation, so as to thoroughly understand the present application.

[0015] The terms "system" and "network" are often used interchangeably herein. The term " / and" in this article merely describes the association relationship of associated objects, indicating that there can be three relationships. For example, A and / or B can represent: A exists alone, A and B exist simultaneously, and B exists alone. In addition, the fragment " / " in this article generally represents an "or" relationship between the associated objects before and after. In addition, "multiple" in this article means two or more than two.

[0016] Please refer to Figure 1 , Figure 1 It is a schematic framework diagram of an embodiment of the interconnection system of the present application. As Figure 1As shown in the figure, the interconnection system 10 at least includes: a user terminal 11, a vehicle-mounted device 12, and a smart home 13, as well as a server 14 that is communicatively connected to the user terminal 11, the vehicle-mounted device 12, and the smart home 13 respectively; among them, at least one of the user terminal 11, the vehicle-mounted device 12, and the smart home 13 serves as a first device A for transmitting collected data to the server 14, and the server 14 is used to generate a to-be-executed instruction based on the collected data and send the to-be-executed instruction to at least one second device B other than the first device A among the user terminal 11, the vehicle-mounted device 12, and the smart home 13, and the second device B is used to execute the to-be-executed instruction.

[0017] In an implementation scenario, the user terminal 11 may include, but is not limited to, terminal devices such as a smart phone and a tablet computer. It should be noted that the underlying system of the user terminal 11 may include, but is not limited to: Android, iOS, etc., and the underlying system of the user terminal 11 is not limited herein. In addition, the user terminal 11 may be mainly used for sending notifications and receiving instructions, etc. Information such as household meter information such as water, electricity, and gas may be entered in the user terminal 11 to obtain household water, electricity, gas, etc. fees. The user terminal 11 may also be edited with a custom scenario for issuing an instruction under specific conditions to operate end-side devices such as the vehicle-mounted device 12 and the smart home 13. The specific process can refer to the following related descriptions and will not be elaborated herein.

[0018] In an implementation scenario, the system and / or related applications in the vehicle-mounted device 12 may be custom-developed by different vehicle manufacturers and connected to the interconnection system 10. The vehicle-mounted device 12 can collect driving data (such as longitude and latitude, vehicle speed, positioning information, etc.) and perform audio and video communication through the speaker, microphone, camera, etc. on the vehicle-mounted device 12. In addition, the vehicle-mounted device 12 can also send relevant instructions to the smart home 13 through the server 14 to operate the smart home 13. The specific process can refer to the following related descriptions and will not be elaborated herein.

[0019] In an implementation scenario, the smart home 13 may include, but is not limited to: sensors such as temperature, humidity, smoke, and water immersion; the smart home 13 may also include, but is not limited to: a blood pressure monitor, a weighing scale, a curtain companion, a window pusher, a water valve robotic arm, an air conditioner companion, etc. In addition, the smart home 13 may also include a home hub such as a gateway for communicatively connecting with the above sensors, home medical devices, home auxiliary devices, etc. through protocols such as wifi, Bluetooth, and zigbee and uniformly connecting to the server 14. The specific process can refer to the following related descriptions and will not be elaborated herein.

[0020] In an implementation scenario, the interconnection system 10 may further include in-vehicle devices 15, which may include but are not limited to: in-vehicle sensors such as heart rate, blood pressure, body temperature, and weight; the in-vehicle devices 15 may also include but are not limited to in-vehicle refrigerators, in-vehicle aromatherapy devices, in-vehicle ambient lights, etc.

[0021] In an implementation scenario, the server 14 is used to summarize the data of the above-mentioned user terminals 11, in-vehicle device 12, smart home 13, and in-vehicle devices 15, and perform service processing and instruction issuance. In addition, to ensure security, encrypted communication may be adopted between the user terminal 11, in-vehicle device 12, smart home 13, in-vehicle devices 15 and the server 14, and authentication and signature verification may be further adopted. For the specific implementation method, the technical details of encrypted communication and authentication and signature verification can be referred to, and will not be elaborated here. In addition, the interaction process of the server 14 can be referred to the following relevant descriptions and will not be elaborated here for the time being.

[0022] In an implementation scenario, when the smart home 13, as the first device A, transmits the collected data including personnel entry and exit to the server 14, the server 14 is used to generate a to-be-executed instruction for starting the vehicle in response to detecting that the collected data indicates that the personnel go out, and send the to-be-executed instruction for starting the vehicle to the in-vehicle device 12, as the second device B, so that the in-vehicle device 12, as the second device B, starts the vehicle. The above method can automatically pre-start the vehicle when detecting that the personnel go out, which is very convenient.

[0023] In a specific implementation scenario, as a possible example, the "camera" of the smart home 13 with a shooting range including the entrance door can be used as the first device A, that is, the collected data may include a captured image, so that the server 14 can perform target detection on the captured image to detect whether there is a person going out, and if so, a to-be-executed instruction for starting the vehicle can be generated.

[0024] In another specific implementation scenario, as another possible example, the "smart door lock" of the smart home 13 installed on the entrance door can be used as the first device A, that is, the collected data may include door lock data, so that the server 14 can parse the door lock data to detect whether there is a person going out, and if so, a to-be-executed instruction for starting the vehicle can be generated.

[0025] It should be noted that the above examples are only several possible examples of the collected data including personnel entry and exit, and do not limit the specific connotation of the collected data including personnel entry and exit, and no further examples will be given here.

[0026] In a specific implementation scenario, after the in-vehicle device 12 receives the to-be-executed instruction for starting the vehicle, it can start the vehicle. Additionally, if the vehicle door is not detected to be opened within a preset duration (e.g., 5 minutes, etc.) after starting the vehicle, the vehicle can be automatically turned off.

[0027] In an implementation scenario, when the smart home 13, as the first device A, transmits the collected data including personnel entry and exit to the server 14, the server 14 is further configured to, in response to detecting that the collected data indicates that a person has gone out, generate a to-be-executed instruction for adjusting the travel route with reference to the road condition data, and send the to-be-executed instruction for adjusting the travel route to the in-vehicle device 12 and / or the user terminal 11, which act as the second device B, for execution by the in-vehicle device 12 and / or the user terminal 11 that act as the second device B. In the above manner, when it is detected that a person has gone out, the travel route is automatically adjusted according to the road condition data, which helps to avoid congested sections as early as possible and improve travel efficiency.

[0028] In a specific implementation scenario, as a possible example, the road condition data may include real-time road conditions, such as road congestion, slow traffic, smooth traffic, traffic restrictions, etc.

[0029] In a specific implementation scenario, after the second device B receives the to-be-executed instruction for adjusting the travel route, it can prompt the to-be-executed instruction, and when a confirmed execution operation for the to-be-executed instruction is detected, execute the to-be-executed instruction for adjusting the travel route. Exemplarily, the second device B can prompt in forms such as voice, text, etc., "It is detected that there is congestion (or slow traffic, accident, etc.) on the XX section. It is recommended to adjust to the following travel route. Please confirm whether to adjust", etc. The specific content of the prompted to-be-executed instruction is not limited herein.

[0030] In an implementation scenario, when the smart home 13, as the first device A, transmits the collected data including personnel entry and exit to the server 14, the server 14 is further configured to, in response to detecting that the collected data indicates that a person has gone out, generate a to-be-executed instruction for adjusting the in-vehicle environment with reference to the weather data, and send the to-be-executed instruction for adjusting the in-vehicle environment to the in-vehicle device 12, which acts as the second device B, for execution by the in-vehicle device 12 that acts as the second device B. In the above manner, when it is detected that a person has gone out, the in-vehicle environment is pre-adjusted according to the weather data, which helps to pre-adjust the in-vehicle environment to be as comfortable as possible and improve the driving and riding comfort.

[0031] In a specific implementation scenario, as a possible example, the weather data may include but is not limited to: temperature, humidity, ultraviolet index, etc. The specific connotation of the weather data is not limited herein.

[0032] In a specific implementation scenario, after the in-vehicle device 12 receives a to-be-executed instruction for adjusting the in-vehicle environment, it can control in-vehicle devices such as air conditioners, ventilation fans, humidifiers, sunroofs, etc. according to the to-be-executed instruction to adjust the environment. Exemplarily, if according to the weather data, the outdoor temperature is relatively high, the to-be-executed instruction for adjusting the in-vehicle environment may include, but is not limited to, turning on the cooling mode; or, if according to the weather data, the outdoor temperature is relatively low, the to-be-executed instruction for adjusting the in-vehicle environment may include, but is not limited to, turning on the heating mode. Other situations can be deduced by analogy and will not be exemplified one by one here.

[0033] In an implementation scenario, when the smart home 13, as the first device A, transmits the collected data including personnel entry and exit to the server 14, the server 14 is further configured to, in response to detecting that the collected data indicates that the personnel go out, generate a to-be-executed instruction for reminding attention during travel with reference to the weather data, and send the to-be-executed instruction for reminding attention during travel to the in-vehicle device 12 and / or the user terminal 11, which act as the second device B, for execution by the in-vehicle device 12 and / or the user terminal 11 that act as the second device B. In the above manner, when it is detected that the personnel go out, automatically reminding attention matters during travel according to the weather data helps to improve travel safety.

[0034] In a specific implementation scenario, as a possible example, when the weather data includes snowing, a to-be-executed instruction for reminding to slow down due to slippery roads and to pay attention to carrying rain gear can be generated; or, as another possible example, when the weather data includes heavy rain, a to-be-executed instruction for reminding to slow down due to slippery roads, to be cautious when wading through waterlogged sections, and to pay attention to carrying rain gear can be generated. The above examples are only several possible examples of generating to-be-executed instructions for reminding attention during travel according to the weather data in the actual application process, and other possible to-be-executed instructions will not be exemplified one by one here.

[0035] In a specific implementation scenario, the to-be-executed instruction can be output in the form of text, voice, etc. by the in-vehicle device 12 and / or the user terminal 11 that act as the second device B, and the output manner of the to-be-executed instruction is not limited herein.

[0036] In an implementation scenario, when the user terminal 11, as the first device A, transmits the collected data including travel memos to the server 14, the server 14 is configured to, in response to detecting that the collected data contains a destination address, generate a to-be-executed instruction for prompting navigation recommendations, and send the to-be-executed instruction for prompting navigation recommendations to the in-vehicle device 12 that act as the second device B for execution by the in-vehicle device 12 that act as the second device B. In the above manner, when the destination address in the travel memo is detected, automatically prompting navigation recommendations helps to minimize user operations as much as possible.

[0037] In a specific implementation scenario, the collected data including travel memos may include, but are not limited to, to-do text data, voice memo data, etc. The specific data form of the collected data including travel memos is not limited herein.

[0038] In a specific implementation scenario, as a possible example, if the destination address "XXXX" is detected in the collected data including travel memos, a to-be-executed instruction "Whether to navigate to XXXX" for prompting navigation recommendations can be generated and sent to the in-vehicle device 12 of the vehicle as the second device B, so that the in-vehicle device of the second device B outputs the to-be-executed instruction "Whether to navigate to XXXX". If a confirmation execution operation for the to-be-executed instruction "Whether to navigate to XXXX" is detected, the in-vehicle device 12 of the second device B can output the action route for navigating to XXXX. Of course, the above example is only a possible example in the actual application process and does not limit other possible implementation manners, and no further examples are given herein. In addition, as mentioned above, household meter information such as water, electricity, and gas can be entered in the user terminal 11 to obtain household water, electricity, gas, etc. fees. When the user terminal 11, as the first device A, transmits the collected data including the balances of water, electricity, and gas to the server 14, the server 14 can generate a to-be-executed instruction for prompting payment in response to detecting that the collected data indicates insufficient balance and send the to-be-executed instruction for prompting payment to the in-vehicle device 12 of the second device B. Of course, the user terminal 11 can also detect the collected data including the balances of water, electricity, and gas by itself, and issue a to-be-executed instruction for prompting payment at the user terminal 11 itself when detecting that the collected data indicates insufficient balance.

[0039] In an implementation scenario, when the smart home 13, as the first device A, transmits the collected data including the home status to the server 14, the server 14 is further configured to generate a to-be-executed instruction for prompting whether to close in response to detecting that the collected data indicates an on state, and send the to-be-executed instruction for prompting whether to close to the in-vehicle device 12 of the second device B and / or the user terminal 11 for execution by the in-vehicle device 12 of the second device B or the user terminal 11. In the above manner, when it is detected that the home is in an on state, automatically remotely prompting whether to close helps to improve home security after going out.

[0040] In a specific implementation scenario, the collected data including the home status may include, but are not limited to, whether the window is closed, whether the curtain is closed, whether the air conditioner is closed, whether the faucet is closed, whether the gas is closed, etc. The collected data including the home status is not limited herein.

[0041] In a specific implementation scenario, when the collected data including the home status is detected to be in an on state (for example, the window is in an open state, the curtain is in an open state, the air conditioner is in an open state, the faucet is in an open state, the gas is in an open state, etc.), a to-be-executed instruction for prompting whether to close (such as whether to close the window, whether to close the curtain, whether to close the air conditioner, whether to close the faucet, whether to close the gas, etc.) can be generated and sent to the vehicle-mounted device 12 and / or the user terminal 11 that serve as the second device B. When the second device B detects a confirmation to close, the second device B sends a close instruction to the smart home 13. For example, a close instruction indicating closing the window can be sent to the "window pusher" of the smart home 13, or a close instruction indicating closing the curtain can be sent to the "curtain companion" of the smart home 13; or a close instruction indicating closing the faucet can be sent to the "water valve robotic arm" of the smart home 13; or a close instruction indicating closing the air conditioner can be sent to the "air conditioner companion" of the smart home 13. Of course, the above examples are only several possible examples in the actual application process and do not limit other possible situations, and no further examples will be given here.

[0042] In an implementation scenario, when the smart home 13, as the first device A, transmits the collected data including whether it is online to the server 14, the server 14 is further configured to generate a to-be-executed instruction for prompting whether to repair in response to detecting that the collected receipt represents an offline state, and send the to-be-executed instruction for prompting whether to repair to the vehicle-mounted device 12 and / or the user terminal 11 that serve as the second device B for execution by the vehicle-mounted device 12 and / or the user terminal 11 that serve as the second device B. In the above manner, when it is detected that the smart home 13 is in an offline state, automatically prompting whether to repair helps improve the timeliness and convenience of maintaining the smart home 13.

[0043] In a specific implementation scenario, the collected data including whether it is online can include multiple groups of identifiers indicating whether it is online and their times (such as XX day XX hour XX minute - online, XX day XX hour XX minute - offline, etc.).

[0044] In a specific implementation scenario, the server 14 can detect the collected data to determine whether the smart home 13 is in an offline state. In addition, when the collected data including whether it is online includes multiple groups of identifiers indicating whether it is online (such as using the number "1", the word "online", etc. to represent online, and using the number "0", the word "offline", etc. to represent offline) and their times, the server 14 can also detect the collected data to determine the duration for which the smart home 13 has been in an offline state, and generate a to-be-executed instruction for prompting whether to repair when the duration is more than a preset duration (such as 7 days, etc.).

[0045] In an implementation scenario, when the in-vehicle device 12, as the first device A, transmits the collected data containing time information and location information to the server 14, the server 14 is further configured to generate a to-be-executed instruction for informing that the user is working overtime in response to detecting that the collected data indicates that the user has not returned home beyond the preset time, and send the to-be-executed instruction for informing that the user is working overtime to the user terminal 11 and / or the smart home 13, which act as the second device B, for execution by the user terminal 11 and / or the smart home 13 acting as the second device B. In the above manner, when it is detected that the vehicle has not returned home beyond the preset time, automatic notification through the user terminal 11 and / or the smart home 13 can improve convenience.

[0046] In a specific implementation scenario, the collected data sent by the in-vehicle device may include several groups of time information and location information. Each group of information can be expressed in the form of "XX:XX - XX location", etc., which is not limited here. It should be noted that the location information can be obtained through the GPS module, mobile network module, etc. of the in-vehicle device 12. For specific technical details, reference can be made to technologies such as GPS positioning and cellular network positioning, which will not be elaborated here.

[0047] In a specific implementation scenario, after receiving the collected data containing time information and location information, the server 14 can first detect whether the time information has exceeded the preset time (such as 5:30 pm, 6:00 pm, 6:30 pm, etc.). If the return time has been exceeded, it can continue to detect whether the location information indicates that the user is on the way home. If not, it can be determined that the collected data indicates that the user has not returned home beyond the preset time. It should be noted that the preset time can be obtained through custom settings, or it can also be adaptively determined by analyzing each historical return time. For example, calculations such as averaging or weighting each historical return time can be performed to obtain the preset time.

[0048] In a specific implementation scenario, after generating the to-be-executed instruction for informing that the user is working overtime, the server 14 can send the to-be-executed instruction for informing of overtime to the user terminal 11, which acts as the second device B. Exemplarily, after receiving the to-be-executed instruction for informing of overtime, the user terminal 11, which acts as the second device B, can execute the to-be-executed instruction. For example, it can open the target application associated with the to-be-executed instruction for informing of overtime (such as text messages or instant messaging tools), select the target contact associated with the to-be-executed instruction for informing of overtime (such as parents, children, spouse, etc.) in the target application, and automatically fill in the target content associated with the to-be-executed instruction for informing of overtime (such as "working overtime today", etc.) in the target application. After execution, it can prompt whether to send, or it can also be automatically sent under the premise of obtaining prior authorization, which is not limited here.

[0049] In a specific implementation scenario, after the server 14 generates an executable instruction for notifying overtime work, it can send the executable instruction for notifying overtime work to the smart home 13 (such as, a camera, a smart TV, a smart speaker, etc.) serving as the second device B. Exemplarily, after receiving the executable instruction for notifying overtime work, the smart home 13 serving as the second device B can execute the executable instruction, such as notifying overtime work by playing audio, displaying text, etc. For example, the camera serving as the smart home 13 can automatically play audio (such as, "Working overtime today"), or the smart TV serving as the smart home 13 can automatically display text (such as, "Working overtime today"). Of course, the above examples are only several possible examples in the actual application process, and do not limit the specific manner in which the smart home 13 serving as the second device B executes the executable instruction accordingly.

[0050] In an implementation scenario, when the in-vehicle device 12 serves as the first device A and transmits the collected data containing the positioning information to the server 14, the server 14 is further configured to generate an executable instruction for prompting whether to start the home in advance in response to detecting that the collected data indicates that the user is about to arrive home, and at least send the executable instruction for prompting whether to start the home in advance to the user terminal 11 serving as the second device B for execution by the user terminal 11 serving as the second device B. As a possible example, when the server 14 detects that the collected data indicates that the user is about to arrive home, it can directly generate an executable instruction for prompting whether to start the home in advance, such as generating an executable instruction for prompting whether to start the microwave oven to heat the food inside. As another possible example, when the server 14 detects that the collected data indicates that the user is about to arrive home, it can generate an executable instruction for prompting whether to start the home in advance with reference to the weather data. For example, when the weather is hot, it can generate an executable instruction for prompting whether to start the air conditioner for cooling; or when the weather is cold, it can generate an executable instruction for prompting whether to start the air conditioner for heating, or it can also generate an executable instruction for prompting whether to start the water heater. Of course, the above examples are only several possible examples of generating an executable instruction for prompting whether to start the home in advance in the actual application process, and do not limit other possible situations, and no further examples will be given here.

[0051] In an implementation scenario, when the smart home 13, as the first device A, transmits the collected data containing sensing information to the server 14, the server 14 can be used to generate a to-be-executed instruction for prompting whether to intervene in the anomaly in response to detecting that the collected data represents an anomaly, and send the to-be-executed instruction to the in-vehicle device 12 and / or the user terminal 11, which act as the second device B. Exemplarily, when the smart home 13 includes sensors such as temperature, humidity, smoke, and water immersion, the sensing information may include the sensing results of the sensors (e.g., smoke alarm, water immersion alarm, etc.). In this case, if it is detected that the collected data contains a smoke alarm, a water immersion alarm, etc., it can be determined that an anomaly exists, and a to-be-executed instruction for prompting whether to intervene in the anomaly (e.g., calling the camera to aim at the location where the smoke alarm, water immersion alarm, etc. occurs for shooting) is generated; or, when the smart home 13 includes a camera, the sensing information may include the detection results of the camera (e.g., human detection result, activity detection result, etc.). In this case, if it is detected that the collected data contains a human detection result, an activity detection result, etc., it is determined that an anomaly exists, and a to-be-executed instruction for prompting whether to intervene in the anomaly (e.g., pushing the video segment of the detected human detection result, pushing the video segment of the detected activity detection result, etc.) is generated; or, when the smart home 13 includes a smart doorbell, the sensing information may include the detection results of the smart doorbell (e.g., someone rings the doorbell, someone is moving at the door, etc.). In this case, if it is detected that the collected data contains detection results such as someone ringing the doorbell, someone is moving at the door, etc., it can be determined that an anomaly exists, and a to-be-executed instruction for prompting whether to intervene in the anomaly (e.g., connecting the call of the smart doorbell to the second device B) is generated; or, when the smart home 13 includes a smart TV, the sensing information may include the detection results of the smart TV (e.g., video call request, etc.). In this case, if it is detected that the collected data contains detection results such as a video call request, etc., it can be determined that an anomaly exists, and a to-be-executed instruction for prompting whether to intervene in the anomaly (e.g., connecting the call of the smart TV to the second device B) is generated. It should be noted that the above examples are only several possible examples in the actual application process, and do not limit the possible situations when the smart home 13 is other devices, and no further examples will be given here.

[0052] In an implementation scenario, when the in-vehicle device 12 and / or the smart home 13, as the first device A, transmits the collected data containing energy consumption to the server 14, the server 14 is used to generate a to-be-executed instruction for prompting optimization suggestions in response to the collected data, and send the to-be-executed instruction for prompting optimization suggestions to the user terminal 11, which acts as the second device B, for execution by the user terminal 11, which acts as the second device B. In the above manner, by collecting and analyzing the energy consumption of the in-vehicle device 12 and / or the smart home 13 and generating optimization suggestions, the perception of energy consumption can be improved, and it helps to save energy consumption.

[0053] In a specific implementation scenario, when the in-vehicle device 12 serves as the first device A, it can transmit the collected data including energy consumption such as fuel and electricity to the server 14.

[0054] In a specific implementation scenario, when the smart home 13 serves as the first device A, it can transmit the collected data including energy consumption such as water, electricity, and gas to the server 14.

[0055] In an implementation scenario, as described above, the interconnection system 10 may further include a vehicle-mounted device 15. When the smart home 13 and the vehicle-mounted device 15 serve as the first device A and transmit the collected data including physical sign indicators to the server 14, the server 14 is configured to, in response to detecting an abnormal change in the collected data, refer to the collected data including physical sign indicators, the collected data including diet content transmitted by the smart home 13, and the collected data including location information transmitted by the in-vehicle device 12, generate a to-be-executed instruction for prompting medical advice, and send the to-be-executed instruction for prompting medical advice to the in-vehicle device 12 serving as the second device B for execution by the in-vehicle device 12 serving as the second device B. Of course, in the actual application process, it is not excluded that the to-be-executed instruction is still executed by the user terminal 11, which is not limited herein. In the above manner, by combining the physical sign differences in the home environment and the vehicle environment, physical sign abnormalities can be detected in a timely manner, and medical advice can be intelligently prompted in combination with factors such as diet and location, which can ensure that the passengers and drivers receive timely health tips and advice as much as possible during the driving process.

[0056] In a specific implementation scenario, as described above, the smart home 13 may include, but is not limited to, medical devices such as a blood pressure monitor and a weighing scale, which are used to obtain the collected data including physical sign indicators of relevant personnel in the home environment.

[0057] In a specific implementation scenario, as described above, the vehicle-mounted device 15 may include, but is not limited to, in-vehicle sensors such as heart rate, blood pressure, body temperature, and weight, which are used to obtain the collected data including physical sign indicators of the passengers and drivers in the vehicle environment.

[0058] In a specific implementation scenario, after the server 14 receives the collected data including physical sign indicators transmitted by the smart home 13 and the vehicle-mounted device 15 as the first device A, it can analyze and compare the two to confirm whether there is an abnormal change, such as a sudden drop / rise in blood pressure or a sudden drop / rise in heart rate, which is not limited herein.

[0059] In a specific implementation scenario, the server 14 may specifically refer to the latest collected data including physical sign indicators. Exemplarily, in the vehicle environment, the physical sign indicators of the passengers and drivers can be continuously collected to obtain the collected data including physical sign indicators.

[0060] In a specific implementation scenario, the smart home appliance 13, i.e., the "smart refrigerator", can obtain the changes in food ingredients during the periods before and after the abnormal change in the physical sign indicators. Based on this, the collected data of the driver and passenger including diet content can be obtained. For example, a caffeinated beverage was consumed before driving.

[0061] In a specific implementation scenario, the in-vehicle device 12 can obtain the collected data including location information. In addition, the in-vehicle device 12 can also obtain the collected data including information such as air pressure for the reference of the server 14.

[0062] In a specific implementation scenario, the server 14 can be provided with a third-party service, such as a large language model, etc., to analyze the collected data including physical sign indicators, the collected data transmitted by the smart home appliance 13 and including diet content, and the collected data transmitted by the in-vehicle device 12 and including location information, so as to obtain the to-be-executed instructions for prompting medical advice. Exemplarily, if the collected data including physical sign indicators shows an accelerated heart rate, the collected data including diet content shows consumption of green leafy vegetables, and the collected data including location information shows driving into a high-altitude area, then to-be-executed instructions for prompting medical advice are generated, such as "There may be altitude sickness. It is recommended that you take XXX for self-help", "There may be altitude sickness. It is recommended that you seek medical attention in time. Please confirm whether to navigate to the nearest medical institution", etc. Here, the specific content of the to-be-executed instructions for prompting medical advice is not limited.

[0063] In the above solution, the interconnection system 10 at least includes the user terminal 11, the in-vehicle device 12, and the smart home appliance 13, as well as the server 14 that is communicatively connected to the user terminal 11, the in-vehicle device 12, and the smart home appliance 13 respectively. At least one of the user terminal 11, the in-vehicle device 12, and the smart home appliance 13 serves as the first device A for transmitting the collection device to the server 14. The server 14 is used to generate the to-be-executed instructions based on the collection device and send the to-be-executed instructions to at least one second device B other than the first device A among the user terminal 11, the in-vehicle device 12, and the smart home appliance 13. The second device B is used to execute the to-be-executed instructions. Therefore, on the one hand, by providing information transfer for the end-side devices such as the user terminal 11, the in-vehicle device 12, and the smart home appliance 13 with the server 14, the interaction depth between different end-side devices can be greatly improved. On the other hand, compared with the simple connection between the vehicle and the mobile phone APP, providing information transfer by the server 14 with higher computing power can also improve the degree of management intelligence. On the other hand, the server 14 also generates the to-be-executed instructions based on the collected data and sends the to-be-executed instructions to the second device B. Therefore, the user operation can be minimized as much as possible. Therefore, the interaction depth and the degree of management intelligence of the interconnection system 10 can be improved, and the user operation can be simplified as much as possible.

[0064] Please refer to Figure 2 , Figure 2It is a schematic flowchart of an embodiment of the interconnection method of the present application. It should be noted that the process steps in the embodiments of the present disclosure can be executed by the server in the interconnection system. For specific reference, please refer to the foregoing disclosed embodiments and will not be elaborated herein. Specifically, the embodiments of the present disclosure may include the following steps: Step S21: Receive the collected data sent by the first device in the interconnection system.

[0065] As described in the foregoing disclosed embodiments, in addition to the server, the interconnection system may include, but is not limited to, user terminals, in-vehicle devices, smart homes, on-vehicle devices, etc. The specific meanings of the above devices can be referred to the foregoing disclosed embodiments and will not be elaborated herein. In this case, the first device may be some of the devices such as user terminals, in-vehicle devices, smart homes, on-vehicle devices, etc. For example, the first device may be a user terminal, and the collected data of the user terminal may include, but is not limited to, collected data containing travel memos, etc. Or, the first device may also be a smart home, and the collected data of the smart home may include, but is not limited to: collected data containing personnel entry and exit, collected data containing home status, collected data containing whether it is online, collected data containing energy consumption, collected data containing physical sign indicators, etc. Or, the first device may also be an in-vehicle device, and the collected data of the in-vehicle device may include, but is not limited to: collected data containing energy consumption, collected data containing time information and location information, etc.; or, the first device may also be an on-vehicle device, and the collected data of the on-vehicle device may include, but is not limited to, collected data containing physical sign indicators. The specific meanings of the above collected data can be referred to the relevant descriptions in the foregoing disclosed embodiments and will not be elaborated herein.

[0066] Step S22: Generate a to-be-executed instruction based on the collected data, and send the to-be-executed instruction to at least one second device other than the first device in the interconnection system for the second device to execute the to-be-executed instruction.

[0067] In an implementation scenario, when the smart home, as the first device, transmits the collected data containing personnel entry and exit to the server, the server is used to generate a to-be-executed instruction for starting the vehicle in response to detecting that the collected data indicates that the personnel go out, and send the to-be-executed instruction for starting the vehicle to the in-vehicle device, as the second device, for the in-vehicle device, as the second device, to start the vehicle.

[0068] In a specific implementation scenario, when the smart home, as the first device, transmits the collected data containing personnel entry and exit to the server, the server is also used to generate a to-be-executed instruction for adjusting the travel route with reference to the road condition data in response to detecting that the collected data indicates that the personnel go out, and send the to-be-executed instruction for adjusting the travel route to the in-vehicle device and / or the user terminal, as the second device, for the in-vehicle device and / or the user terminal, as the second device, to execute.

[0069] In a specific implementation scenario, when the smart home, as the first device, transmits the collected data including personnel entry and exit to the server, the server is further configured to, in response to detecting that the collected data indicates that a person is going out, generate a to-be-executed instruction for adjusting the in-vehicle environment with reference to the weather data, and send the to-be-executed instruction for adjusting the in-vehicle environment to the in-vehicle device, as the second device, for execution by the in-vehicle device, as the second device.

[0070] In a specific implementation scenario, when the smart home, as the first device, transmits the collected data including personnel entry and exit to the server, the server is further configured to, in response to detecting that the collected data indicates that a person is going out, generate a to-be-executed instruction for reminding attention during travel with reference to the weather data, and send the to-be-executed instruction for reminding attention during travel to the in-vehicle device and / or the user terminal, as the second device, for execution by the in-vehicle device and / or the user terminal, as the second device.

[0071] In an implementation scenario, when the user terminal, as the first device, transmits the collected data including travel memoranda to the server, the server is configured to, in response to detecting that the collected data contains a destination address, generate a to-be-executed instruction for prompting navigation recommendations, and send the to-be-executed instruction for prompting navigation recommendations to the in-vehicle device, as the second device, for execution by the in-vehicle device, as the second device.

[0072] In an implementation scenario, when the smart home, as the first device, transmits the collected data including the home status to the server, the server is further configured to, in response to detecting that the collected data indicates an on state, generate a to-be-executed instruction for prompting whether to turn off, and send the to-be-executed instruction for prompting whether to turn off to the in-vehicle device and / or the user terminal, as the second device, for execution by the in-vehicle device or the user terminal, as the second device.

[0073] In an implementation scenario, when the smart home, as the first device, transmits the collected data including whether it is online to the server, the server is further configured to, in response to detecting that the collected receipt indicates an offline state, generate a to-be-executed instruction for prompting whether to report for repair, and send the to-be-executed instruction for prompting whether to report for repair to the in-vehicle device and / or the user terminal, as the second device, for execution by the in-vehicle device and / or the user terminal, as the second device.

[0074] In an implementation scenario, when the in-vehicle device, as the first device, transmits the collected data including time information and location information to the server, the server is further configured to, in response to detecting that the collected data indicates that the person has not returned home beyond a preset time, generate a to-be-executed instruction for informing that the person is working overtime, and send the to-be-executed instruction for informing that the person is working overtime to the user terminal and / or the smart home, as the second device, for execution by the user terminal and / or the smart home, as the second device.

[0075] In an implementation scenario, when a vehicle-mounted device and / or a smart home, as a first device, transmits collected data including energy consumption to a server, the server is configured to generate a to-be-executed instruction for prompting an optimization suggestion in response to the collected data, and send the to-be-executed instruction for prompting the optimization suggestion to a user terminal as a second device for execution by the user terminal as the second device.

[0076] In an implementation scenario, when a smart home and a vehicle-mounted device, as a first device, transmit collected data including physical sign indicators to a server, the server is configured to generate a to-be-executed instruction for prompting a medical suggestion with reference to the collected data including physical sign indicators, the collected data including diet content transmitted by the smart home, and the collected data including location information transmitted by the vehicle-mounted device in response to detecting that the collected data indicates an abnormal change, and send the to-be-executed instruction for prompting the medical suggestion to the vehicle-mounted device as a second device for execution by the vehicle-mounted device as the second device.

[0077] It should be noted that the above examples are only several possible examples of vehicle-home interconnection in the actual application process, and do not limit other application scenarios of vehicle-home interconnection accordingly. No further examples will be given here.

[0078] In the above solution, the collected data sent by the first device in the interconnection system is received, the to-be-executed instruction is generated based on the collected data, and the to-be-executed instruction is sent to at least one second device other than the first device in the interconnection system for the second device to execute the to-be-executed instruction. Therefore, on the one hand, by providing information transfer for end-side devices such as the server, the user terminal, the vehicle-mounted device, and the smart home, the interaction depth between different end-side devices can be greatly improved. On the other hand, compared with the simple connection between the vehicle and the mobile phone APP, providing information transfer by a server with higher computing power can also improve the degree of management intelligence. On the other hand, the server also generates the to-be-executed instruction based on the collected data and sends the to-be-executed instruction to the second device. Therefore, the user operation can be minimized as much as possible. Therefore, the interaction depth and the degree of management intelligence of the interconnection system can be improved, and the user operation can be simplified as much as possible.

[0079] Please refer to Figure 3 , Figure 3 which is a schematic flowchart of another embodiment of the interconnection method of the present application. It should be noted that the process steps in the embodiments of the present disclosure can be executed by the first device in the interconnection system. For specific details, reference can be made to the foregoing disclosed embodiments, which will not be elaborated here. Specifically, the embodiments of the present disclosure may include the following steps: Step S31: Obtain the collected data.

[0080] For specific details, reference can be made to the relevant descriptions in the foregoing disclosed embodiments, which will not be elaborated here.

[0081] Step S32: Send the collected data to the server in the interconnection system.

[0082] In the embodiments of the present disclosure, the server is configured to generate a to-be-executed instruction based on the collected data, and send the to-be-executed instruction to at least one second device other than the first device in the interconnection system, so that the second device executes the to-be-executed instruction. For specific details, reference may be made to the relevant descriptions in the foregoing disclosed embodiments, which will not be elaborated herein.

[0083] In the above solution, the collected data is obtained and sent to the server in the interconnection system. The server is configured to generate a to-be-executed instruction based on the collected data and send the to-be-executed instruction to at least one second device other than the first device in the interconnection system, so that the second device executes the to-be-executed instruction. Therefore, on the one hand, by providing information transfer for end-side devices such as the server, user terminals, in-vehicle devices, and smart homes, the interaction depth between different end-side devices can be greatly improved. On the other hand, compared with the simple connection between a vehicle and a mobile phone APP, providing information transfer by a server with higher computing power can also improve the degree of management intelligence. On the other hand, the server also generates a to-be-executed instruction based on the collected data and sends the to-be-executed instruction to the second device, so that the user operation can be minimized as much as possible. Therefore, the interaction depth and management intelligence degree of the interconnection system can be improved, and the user operation can be simplified as much as possible.

[0084] Please refer to Figure 4 , Figure 4 FIG. is a schematic flowchart of another embodiment of the interconnection method of the present application. It should be noted that the process steps in the embodiments of the present disclosure can be executed by the second device in the interconnection system. For specific details, reference may be made to the foregoing disclosed embodiments, which will not be elaborated herein. Specifically, the embodiments of the present disclosure may include the following steps: Step S41: Receive the to-be-executed instruction sent by the server in the interconnection system.

[0085] In the embodiments of the present disclosure, the to-be-executed instruction is generated by the server based on the collected data, and the collected data is sent from the first device in the interconnection system to the server. For specific details, reference may be made to the relevant descriptions in the foregoing disclosed embodiments, which will not be elaborated herein.

[0086] Step S42: Execute the to-be-executed instruction.

[0087] For specific details, reference may be made to the relevant descriptions in the foregoing disclosed embodiments, which will not be elaborated herein.

[0088] In the above solution, the to-be-executed instruction sent by the server in the interconnection system is received. The to-be-executed instruction is generated by the server based on the collected data, and the collected data is sent from the first device in the interconnection system to the server, and then the to-be-executed instruction is executed. Therefore, on the one hand, by providing information transfer for end-side devices such as the server, user terminals, in-vehicle devices, and smart homes, the interaction depth between different end-side devices can be greatly improved. On the other hand, compared with the simple connection between the vehicle and the mobile phone APP, providing information transfer by a server with higher computing power can also improve the degree of management intelligence. On the other hand, the server also generates a to-be-executed instruction based on the collected data and sends the to-be-executed instruction to the second device. Therefore, the user operation can be reduced as much as possible. Therefore, the interaction depth and management intelligence level of the interconnection system can be improved, and the user operation can be simplified as much as possible.

[0089] Please refer to Figure 5 , Figure 5 FIG. is a schematic framework diagram of an embodiment of the interconnection device of the present application. In the embodiment of the present disclosure, the interconnection device 50 is provided in the server in any of the above interconnection systems. In the embodiment of the present disclosure, the interconnection device 50 specifically includes a data receiving module 51 and a generating and sending module 52. The data receiving module 51 is configured to receive the collected data sent by the first device in the interconnection system; the generating and sending module 52 is configured to generate a to-be-executed instruction based on the collected data and send the to-be-executed instruction to at least one second device other than the first device in the interconnection system for the second device to execute the to-be-executed instruction.

[0090] In the above solution, the interconnection device 50 receives the collected data sent by the first device in the interconnection system, generates a to-be-executed instruction based on the collected data, and sends the to-be-executed instruction to at least one second device other than the first device in the interconnection system for the second device to execute the to-be-executed instruction. Therefore, on the one hand, by providing information transfer for end-side devices such as the server, user terminals, in-vehicle devices, and smart homes, the interaction depth between different end-side devices can be greatly improved. On the other hand, compared with the simple connection between the vehicle and the mobile phone APP, providing information transfer by a server with higher computing power can also improve the degree of management intelligence. On the other hand, the server also generates a to-be-executed instruction based on the collected data and sends the to-be-executed instruction to the second device. Therefore, the user operation can be reduced as much as possible. Therefore, the interaction depth and management intelligence level of the interconnection system can be improved, and the user operation can be simplified as much as possible.

[0091] Please refer to Figure 6 , Figure 6It is a schematic framework diagram of another embodiment of the interconnection device of the present application. In the embodiment of the present disclosure, the interconnection device 60 is provided in the first device in any of the above-mentioned interconnection systems. In the embodiment of the present disclosure, the interconnection device 60 specifically includes a data acquisition module 61 and a data sending module 62. The data acquisition module 61 is used to acquire acquisition data; the data sending module 62 is used to send the acquisition data to the server in the interconnection system; wherein, the server is used to generate a to-be-executed instruction based on the acquisition data, and send the to-be-executed instruction to at least one second device other than the first device in the interconnection system, so that the second device executes the to-be-executed instruction.

[0092] In the above solution, the interconnection device 60 acquires acquisition data and sends the acquisition data to the server in the interconnection system. The server is used to generate a to-be-executed instruction based on the acquisition data and send the to-be-executed instruction to at least one second device other than the first device in the interconnection system, so that the second device executes the to-be-executed instruction. Therefore, on the one hand, by providing information transfer for user terminals, vehicle-mounted devices, smart home and other end-side devices with the server, the interaction depth between different end-side devices can be greatly improved. On the other hand, compared with the simple connection between the vehicle and the mobile phone APP, providing information transfer by a server with higher computing power can also improve the degree of management intelligence. On the other hand, the server also generates a to-be-executed instruction based on the acquisition data and sends the to-be-executed instruction to the second device. Therefore, the user operation can be minimized as much as possible. Therefore, the interaction depth and management intelligence level of the interconnection system can be improved, and the user operation can be simplified as much as possible.

[0093] Please refer to Figure 7 , Figure 7 It is a schematic framework diagram of another embodiment of the interconnection device of the present application. In the embodiment of the present disclosure, the interconnection device 70 is provided in the second device in any of the above-mentioned interconnection systems. In the embodiment of the present disclosure, the interconnection device 70 specifically includes an instruction receiving module 71 and an instruction executing module 72. The instruction receiving module 71 is used to receive the to-be-executed instruction sent by the server in the interconnection system; wherein, the to-be-executed instruction is generated by the server based on the acquisition data, and the acquisition data is sent by the first device in the interconnection system to the server; the instruction executing module 72 is used to execute the to-be-executed instruction.

[0094] In the above solution, the interconnection device 70 receives the to-be-executed instruction sent by the server in the interconnection system. The to-be-executed instruction is generated by the server based on the collected data, and the collected data is sent from the first device in the interconnection system to the server, and then the to-be-executed instruction is executed. Therefore, on the one hand, by providing information transfer for user terminals, in-vehicle devices, smart home and other end-side devices with the server, the interaction depth between different end-side devices can be greatly improved. On the other hand, compared with the simple connection between the vehicle and the mobile phone APP, providing information transfer by the server with higher computing power can also improve the degree of management intelligence. On the other hand, the server also generates the to-be-executed instruction based on the collected data and sends the to-be-executed instruction to the second device, so the user operation can be minimized as much as possible. Therefore, the interaction depth and the degree of management intelligence of the interconnection system can be improved, and the user operation can be simplified as much as possible.

[0095] Please refer to Figure 8 , Figure 8 FIG. is a schematic framework diagram of an embodiment of an electronic device according to the present application. The electronic device 80 at least includes a communication circuit 81, a memory 82, and a processor 83. The communication circuit 81 and the memory 82 are respectively coupled to the processor 83. At least program instructions are stored in the memory 82, and the processor 83 is configured to execute the program instructions to implement the steps in any of the above embodiments of the interconnection method. Specifically, reference can be made to the foregoing disclosed embodiments, which will not be elaborated herein. As a possible example, the electronic device 80 may be a server in the interconnection system, or a first device in the interconnection system, or a second device in the interconnection system.

[0096] Specifically, the processor 83 is configured to control itself and the communication circuit 81 and the memory 82 to implement the steps in any of the above embodiments of the interconnection method. The processor 83 may also be referred to as a CPU (Central Processing Unit). The processor 83 may be an integrated circuit chip with signal processing capabilities. The processor 83 may also be a general-purpose processor, a digital signal processor (DSP), an application specific integrated circuit (ASIC), a field programmable gate array (FPGA), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components. The general-purpose processor may be a microprocessor or the processor may also be any conventional processor, etc. Additionally, the processor 83 may be implemented jointly by integrated circuit chips.

[0097] In the above solution, the electronic device 80 implements the steps in any of the above-described embodiments of the interconnection method. Therefore, on the one hand, by using the server to provide information transfer for end-side devices such as user terminals, vehicle-mounted devices, and smart homes, the interaction depth between different end-side devices can be greatly improved. On the other hand, compared with the simple connection between a vehicle and a mobile phone APP, using a server with higher computing power to provide information transfer can also improve the degree of management intelligence. On the further hand, the server also generates to-be-executed instructions based on the collected data and sends the to-be-executed instructions to the second device, so the user operation can be minimized as much as possible. Therefore, the interaction depth and management intelligence of the interconnection system can be improved, and the user operation can be simplified as much as possible.

[0098] Please refer to Figure 9 , Figure 9 which is a schematic framework diagram of an embodiment of the computer-readable storage medium 90 of the present application. The computer-readable storage medium 90 stores program instructions 91 that can be run by a processor, and the program instructions 91 are used to implement the steps in any of the above-described embodiments of the interconnection method.

[0099] In the above solution, the computer-readable storage medium 90 implements the steps in any of the above-described embodiments of the interconnection method. Therefore, on the one hand, by using the server to provide information transfer for end-side devices such as user terminals, vehicle-mounted devices, and smart homes, the interaction depth between different end-side devices can be greatly improved. On the other hand, compared with the simple connection between a vehicle and a mobile phone APP, using a server with higher computing power to provide information transfer can also improve the degree of management intelligence. On the further hand, the server also generates to-be-executed instructions based on the collected data and sends the to-be-executed instructions to the second device, so the user operation can be minimized as much as possible. Therefore, the interaction depth and management intelligence of the interconnection system can be improved, and the user operation can be simplified as much as possible.

[0100] In some embodiments, the functions or modules included in the device provided by the embodiments of the present disclosure can be used to execute the methods described in the above method embodiments. The specific implementation can refer to the description of the above method embodiments. For the sake of brevity, it will not be repeated here.

[0101] The descriptions of the above embodiments tend to emphasize the differences between the embodiments. The same or similar parts can be referred to each other. For the sake of brevity, they will not be repeated in this article.

[0102] In several embodiments provided in the present application, it should be understood that the disclosed methods and apparatuses can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative. For example, the division of modules or units is only a logical function division. In actual implementation, there may be other division methods. 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 is that the displayed or discussed couplings or direct couplings or communication connections to each other can be through some interfaces. The indirect couplings or communication connections of devices or units can be in electrical, mechanical or other forms.

[0103] The units described as separate components may or may not be physically separated. The components displayed as units may or may not be physical units, that is, they can be located in one place, or can be distributed to multiple network units. Some or all of the units can be selected according to actual needs to achieve the purpose of the solution of this embodiment.

[0104] In addition, in each embodiment of the present application, each functional unit can be integrated in a processing unit, or each unit can exist physically alone, or two or more units can be integrated in one unit. The above integrated units can be implemented in the form of hardware or in the form of software functional units.

[0105] If the integrated unit is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on such an understanding, the technical solution of the present application, in essence, or the part that contributes to the prior art, or all or part of this technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to enable a computer device (which can be a personal computer, a server, or a network device, etc.) or a processor to execute all or part of the steps of the methods in each embodiment of the present application. The foregoing storage medium includes: various media such as USB flash drives, mobile hard disks, read-only memories (ROM, Read-Only Memory), random access memories (RAM, Random Access Memory), magnetic disks or optical discs that can store program codes.

[0106] If the technical solution of this application involves personal information, before the product applying the technical solution of this application processes personal information, it has clearly informed the personal information processing rules and obtained the individual's independent consent. If the technical solution of this application involves sensitive personal information, before the product applying the technical solution of this application processes sensitive personal information, it has obtained the individual's separate consent and at the same time meets the requirements of "express consent". For example, at personal information collection devices such as cameras, a clear and prominent sign is set up to inform that the personal information collection scope has been entered and personal information will be collected. If an individual voluntarily enters the collection scope, it is regarded as consenting to the collection of their personal information; or on the device for personal information processing, when the personal information processing rules are informed by obvious signs / information, personal authorization is obtained through pop-up messages or by asking the individual to upload their personal information by themselves; among them, the personal information processing rules may include information such as the personal information processor, the purpose of personal information processing, the processing method, and the types of personal information processed.

Claims

1. An interconnection system, characterized in that: At least includes a user terminal, a vehicle device and a smart home, and a server connected to the user terminal, the vehicle device and the smart home respectively; Among them, at least one of the user terminal, the vehicle device and the smart home is used as a first device to transmit collected data to the server, and the server is used to generate instructions to be executed based on the collected data, and send the instructions to be executed to the user terminal, the vehicle device and at least one second device other than the first device in the smart home, and the second device is used to execute the instructions to be executed.

2. The system according to claim 1, characterized in that When the smart home as the first device transmits collected data containing the entry and exit of people to the server, the server is used to generate a to-be-executed instruction for starting the vehicle in response to detecting that the collected data represents the person going out, and send the to-be-executed instruction for starting the vehicle to the vehicle device as the second device, so that the vehicle is started by the vehicle device as the second device.

3. The system according to claim 2, characterized in that The server is also used to generate a to-be-executed instruction for adjusting the travel route with reference to the road condition data in response to detecting that the collected data represents a person going out, and send the to-be-executed instruction for adjusting the travel route to the vehicle-machine device and / or the user terminal as the second device, so that the vehicle-machine device and / or the user terminal as the second device can execute it.

4. The system according to claim 2, characterized in that The server is further configured to generate a to-be-executed instruction for adjusting the in-vehicle environment with reference to the weather data in response to detecting that the collected data indicates that the person has gone out, and send the to-be-executed instruction for adjusting the in-vehicle environment to the in-vehicle device as the second device, so that the in-vehicle device as the second device executes the instruction; And / or, the server is also used to generate a pending instruction for reminding people to pay attention to travel in response to detecting that the collected data represents that the person has gone out, referring to the weather data, and send the pending instruction for reminding people to pay attention to travel to the vehicle-mounted device and / or the user terminal as the second device, so that the vehicle-mounted device and / or the user terminal as the second device can execute it.

5. The system according to claim 1, characterized in that When the user terminal transmits collected data containing travel notes to the server as the first device, the server is used to generate a to-be-executed instruction for prompting navigation recommendations in response to detecting that the collected data contains a destination address, and send the to-be-executed instruction for prompting navigation recommendations to the vehicle device as the second device, so that the vehicle device as the second device can execute it.

6. The system according to claim 1, characterized in that When the smart home as the first device transmits the collected data including the home status to the server, the server is further configured to generate a to-be-executed instruction for prompting whether to turn off the home in response to detecting that the collected data represents the turned-on state, and send the to-be-executed instruction for prompting whether to turn off to the vehicle device and / or the user terminal as the second device, so that the vehicle device or the user terminal as the second device executes the instruction; And / or, when the smart home as the first device transmits collected data including whether it is online to the server, the server is also used to generate a pending instruction for prompting whether to report a repair in response to detecting that the collected data represents an offline state, and send the pending instruction for prompting whether to report a repair to the vehicle-mounted device and / or the user terminal as the second device, so that the vehicle-mounted device and / or the user terminal as the second device can execute it.

7. The system according to claim 1, characterized in that When the vehicle-mounted device as the first device transmits collected data containing time information and positioning information to the server, the server is also used to generate a to-be-executed instruction for notifying that overtime is being worked in response to detecting that the collected data indicates that the person has not returned home beyond the preset time, and send the to-be-executed instruction for notifying that overtime is being worked to the user terminal and / or smart home as the second device, so that the user terminal and / or smart home as the second device can execute it.

8. The system according to claim 1, characterized in that When the vehicle device and / or the smart home transmits collected data including energy consumption to the server as the first device, the server is used to generate a to-be-executed instruction for prompting optimization suggestions in response to the collected data, and send the to-be-executed instruction for prompting optimization suggestions to the user terminal as the second device, so as to be executed by the user terminal as the second device.

9. The system according to claim 1, characterized in that The interconnection system also includes a vehicle-mounted device. When the smart home and the vehicle-mounted device transmit collected data containing vital sign indicators to the server as the first device, the server is used to generate a pending instruction for prompting medical advice in response to detecting an abnormal change in the characteristic of the collected data, referring to the collected data containing vital sign indicators, the collected data transmitted by the smart home and containing dietary content, and the collected data transmitted by the vehicle-mounted device and containing positioning information, and send the pending instruction for prompting medical advice to the vehicle-mounted device as the second device, so that the vehicle-mounted device as the second device can execute it.

10. An interconnection method, characterized in that: The interconnection method is executed by a server in the interconnection system according to any one of claims 1 to 9, and the method comprises: Receiving collected data sent by a first device in the interconnection system; Generate instructions to be executed based on the collected data, and send the instructions to be executed to at least one second device other than the first device in the interconnection system, so that the second device executes the instructions to be executed.

11. An interconnection method, characterized in that: The interconnection method is executed by a first device in the interconnection system according to any one of claims 1 to 9, and the method includes: Get collected data; Send the collected data to a server in an interconnection system; wherein the server is used to generate instructions to be executed based on the collected data, and send the instructions to be executed to at least one second device other than the first device in the interconnection system, so that the second device executes the instructions to be executed.

12. An interconnection method, characterized in that: The interconnection method is performed by a second device in the interconnection system according to any one of claims 1 to 9, and the method includes: Receiving an instruction to be executed sent by a server in the interconnection system; wherein the instruction to be executed is generated by the server based on collected data, and the collected data is sent to the server by a first device in the interconnection system; Execute the instruction to be executed.

13. An electronic device, characterized in that: At least a communication circuit, a memory and a processor, wherein the communication circuit and the memory are respectively coupled to the processor, the memory at least stores program instructions, and the processor is used to execute the program instructions to implement the interconnection method described in any one of claims 10 to 12.

14. A computer-readable storage medium, characterized in that: Program instructions that can be executed by a processor are stored, and the program instructions are used to implement the interconnection method described in any one of claims 10 to 12.