WO2020082599A1 - Procédé et dispositif de gestion en nuage, appareil informatique, et support d'informations - Google Patents

Procédé et dispositif de gestion en nuage, appareil informatique, et support d'informations Download PDF

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Publication number
WO2020082599A1
WO2020082599A1 PCT/CN2018/125111 CN2018125111W WO2020082599A1 WO 2020082599 A1 WO2020082599 A1 WO 2020082599A1 CN 2018125111 W CN2018125111 W CN 2018125111W WO 2020082599 A1 WO2020082599 A1 WO 2020082599A1
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Prior art keywords
task
service end
request
instruction
reminder
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PCT/CN2018/125111
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English (en)
Chinese (zh)
Inventor
赵阳
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平安科技(深圳)有限公司
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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F9/00Arrangements for program control, e.g. control units
    • G06F9/06Arrangements for program control, e.g. control units using stored programs, i.e. using an internal store of processing equipment to receive or retain programs
    • G06F9/46Multiprogramming arrangements
    • G06F9/48Program initiating; Program switching, e.g. by interrupt
    • G06F9/4806Task transfer initiation or dispatching
    • G06F9/4812Task transfer initiation or dispatching by interrupt, e.g. masked
    • G06F9/4825Interrupt from clock, e.g. time of day
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F9/00Arrangements for program control, e.g. control units
    • G06F9/06Arrangements for program control, e.g. control units using stored programs, i.e. using an internal store of processing equipment to receive or retain programs
    • G06F9/46Multiprogramming arrangements
    • G06F9/48Program initiating; Program switching, e.g. by interrupt
    • G06F9/4806Task transfer initiation or dispatching
    • G06F9/4812Task transfer initiation or dispatching by interrupt, e.g. masked
    • G06F9/4818Priority circuits therefor

Definitions

  • the embodiments of the present application relate to the field of business processing, and in particular to a cloud control method, device, computer equipment, and storage medium.
  • Timed task means that the computer executes the operation command preselected or set by the user at the time set by the user to automatically complete the timed task and the timed command.
  • the inventor realizes that in the prior art, the same user or company has multiple system platforms, and multiple system platforms need to build their own independent servers.
  • each server pair The scheduled tasks in the system are monitored.
  • the number of scheduled tasks in the system is large, the maintenance and management costs of each server are too high, causing unnecessary waste. Too many monitoring tasks are also a heavy burden on a server or computer terminal with a large load, and occupy too much computing power of the processor.
  • Embodiments of the present application provide a cloud control method, device, computer equipment, and storage medium that uniformly execute timing tasks of each terminal or service end.
  • a technical solution adopted by the embodiment created by the present application is to provide a cloud control method, including the following steps: acquiring a task request for establishing a scheduled task sent by a business end, wherein Including the operation instruction executed by the scheduled task and the start time of the scheduled task; establishing a delayed reminder task according to the task request; when the delayed reminder task is completed, sending a preset first instruction to the service end, Therefore, the service terminal executes the operation instruction according to the first instruction.
  • embodiments of the present application also provide a cloud control device, including: an acquisition module for acquiring a task request sent by a service end to establish a scheduled task, wherein the task request includes the execution of the scheduled task Operation instruction and the start time of the timed task; the processing module is used to establish a delayed reminder task according to the task request; the execution module is used to send a preset A first instruction, so that the service end executes the operation instruction according to the first instruction.
  • the embodiments of the present application further provide a computer device, including a memory and a processor, and the memory stores computer-readable instructions.
  • the computer-readable instructions are executed by the processor,
  • the processor executes the steps of the cloud control method described above.
  • the embodiments of the present application further provide a storage medium storing computer-readable instructions, which when executed by one or more processors cause the one or more processors to execute the above Describe the steps of the cloud control method.
  • an independent timed task management and control system is established in the cloud according to the start time of the timed task and the corresponding operation instruction. Can supervise all the timed tasks.
  • the preset first instruction is sent to the corresponding business end.
  • the first instruction includes timing due to the business end.
  • the operation instruction is executed. Therefore, after receiving the first instruction, the business end executes the operation instruction after parsing, so as to realize the cloud control of the timing task, reduce the monitoring cost of each business end for the timing task, and also It reduces the task burden on the business side and releases more computing power to improve the response speed and business capacity of the business side.
  • FIG. 1 is a schematic flowchart of a cloud control method according to an embodiment of the present application
  • FIG. 2 is a schematic flowchart of assigning multiple delay reminder tasks to a task process according to an embodiment of the present application
  • FIG. 3 is a schematic flowchart of process sequencing according to the access volume after the execution of an operation instruction according to an embodiment of the present application
  • FIG. 4 is a schematic flowchart of an early warning based on predicted traffic according to an embodiment of the present application
  • FIG. 5 is a schematic flowchart of determining an executable operation instruction according to priority according to an embodiment of the present application
  • FIG. 6 is a schematic flowchart of cloud computing power distribution according to an embodiment of the present application.
  • FIG. 7 is a schematic diagram of a basic structure of a cloud control device according to an embodiment of the present application.
  • FIG. 8 is a block diagram of a basic structure of a computer device according to an embodiment of the present application.
  • terminal and “terminal device” used here include not only devices with wireless signal receivers, but only devices with wireless signal receivers that do not have transmitting capabilities, but also devices that receive and transmit hardware.
  • Such devices may include: cellular or other communication devices with single-line displays or multi-line displays or cellular or other communication devices without multi-line displays; PCS (Personal Communications Services), which can combine voice and data Processing, fax and / or data communication capabilities; PDA (Personal Digital Assistant), which can include radio frequency receivers, pagers, Internet / Intranet access, web browsers, notepads, calendars and / or GPS (Global Positioning System (Global Positioning System) receiver; conventional laptop and / or palmtop computer or other device that has and / or includes a conventional laptop and / or palmtop computer or other device of a radio frequency receiver.
  • GPS Global Positioning System
  • terminal and “terminal equipment” may be portable, transportable, installed in a vehicle (aeronautical, maritime, and / or terrestrial), or suitable and / or configured to operate locally, and / or In a distributed form, it operates at any other location on the earth and / or space.
  • the "terminal” and “terminal device” used herein may also be a communication terminal, an Internet terminal, a music / video playback terminal, for example, may be a PDA, MID (Mobile Internet Device), and / or have music / video playback
  • Functional mobile phones can also be smart TVs, set-top boxes and other devices.
  • FIG. 1 is a schematic diagram of a basic process of a cloud control method in this embodiment.
  • a cloud control method includes the following steps:
  • the service end can be (but not limited to): computer equipment such as a server end, a PC end, and a mobile terminal.
  • the service side when the service side newly creates a timed task, it sends the start time of the timed service, that is, the time when the timed task starts to be executed, and the operation instruction that the timed task needs to execute to the cloud.
  • the cloud After receiving the task request sent by the server, the cloud parses and obtains the operation instruction executed by the scheduled task and the start time of the scheduled task.
  • the service end is a server
  • the server is used to receive the lottery request of the user terminal at 20:00 every night. Therefore, it is necessary to open access at 20:00 every night.
  • the business end establishes a timed task.
  • the content of the timed task includes: task start time: 20:00 and the operation instruction that the timed task needs to perform: receive and respond to the lottery request.
  • a task request is generated and sent to the cloud.
  • the cloud analyzes the task request, and obtains the operation instruction executed by the scheduled task and the start time of the scheduled task.
  • the cloud in this embodiment does not just receive the lottery timed task of the business end, but can accept any form of timed task request sent by any computer device according to different application scenarios, for example, in some selective implementations
  • the task request received by the cloud can be (not limited to): an alarm timer task sent by the terminal, a timer task sent by the server to start the dedicated interface, a timer switch task sent by the terminal or server, or a timer send sent by the terminal Email tasks, etc.
  • the operation instruction is the operation that the task needs to perform at the specified time.
  • the operation instruction can be (not limited to): open setting authority, open setting interface, opening the alarm application, turning on or off the email, etc.
  • the cloud After receiving the task request sent by the service end, the cloud parses the task request to obtain the operation instruction of the scheduled task and the start time of the scheduled task. Based on the start time, the cloud creates a delayed reminder task.
  • the delay reminder task means that the cloud obtains the time information of the current time, calculates the time difference between the start time of the scheduled task and the current time, and uses the time difference as the delay time of the delay task. For example, the cloud receives the task request at 16:00, and the start time of the timed character is 20:00. After the cloud calculates that the time difference between the two is 4 hours, a delay task is created, and the delay time of the delay task is 4 hours. When the delay task returns to zero, the cloud sends control instructions including the operation instructions of the timed task to the corresponding business end.
  • the cloud sends the preset first instruction to the business end of the task request initiator.
  • the first instruction includes an operation instruction to be performed by the service end determined by the timing task, and the operation instruction can be (not limited to): open setting authority, open setting interface, opening an alarm application, turning on or off an email, etc.
  • the service end after receiving the first instruction, the service end must immediately execute the operation instruction included in the first instruction, so as to achieve the goal of centralized management of the timed task through the cloud.
  • the foregoing embodiment establishes an independent timing task management and control system in the cloud by accepting the timing tasks sent by each service end, and according to the start time of the timing task and the corresponding operation instruction. Can supervise all the timed tasks.
  • the preset first instruction is sent to the corresponding business end.
  • the first instruction includes timing due to the business end.
  • the operation instruction is executed. Therefore, after receiving the first instruction, the business end executes the operation instruction after parsing, so as to realize the cloud control of the timing task, reduce the monitoring cost of each business end for the timing task, and It reduces the task burden on the business side and releases more computing power to improve the response speed and business capacity of the business side.
  • a task process when the cloud receives a large number of timed task requests (for example, task requests in the order of millions), a task process needs to be established according to different moments.
  • the task process is to send a set operation instruction to multiple service terminals at the same time or within a period of time according to different delay reminding tasks.
  • FIG. 2 is a schematic flowchart of assigning multiple delay reminder tasks to a task process in this embodiment.
  • step S1200 also includes the following steps:
  • S1211 Classify the multiple task requests with the start time as a limiting condition
  • the cloud After acquiring multiple task requests, the cloud analyzes and obtains the start time of the scheduled task included in each task request, and then classifies the multiple task requests with the start time of the scheduled task as a limiting condition.
  • the classified categories are different start-up times.
  • S1212 Assign the delay reminder task corresponding to the task request that belongs to the same start time to the same task process for execution.
  • the delayed reminder task is established through the classification results, and the method for establishing the delayed reminder task is to establish the task process according to the sequence of the startup time.
  • the task process refers to that the cloud executes execution activities of sending multiple first instructions at a time at the same time.
  • the delay reminder task corresponding to the request task within the same start time is allocated to the same task process for execution. For example, statistics show that there are 8 task requests to be started at 20:00. When the task is created, the 8 tasks are established in a task process. When this time comes at 20:00, the task process is executed. The result is that within a short period of time (for example, 1 second), the first instructions are sent to the eight service ends respectively.
  • the task process By placing the delayed reminder tasks performed at the same moment in a task process for execution, the task process is reduced, and at the same time, the execution of the task through the process also increases the speed of task sending.
  • the cloud can perform multi-process calculation, that is, a task process includes multiple task threads capable of executing tasks, and each task thread corresponds to executing a delay reminder task. Since multiple task threads in the same task process are arranged linearly, that is, the threads execute in a sequential order, the time interval between threads is very small (for example, 0.01s). However, in order to further improve the differentiated management of each business end in the cloud, when performing task threads, it is sorted according to the access volume after executing the operation instruction. Please refer to FIG. 3, which is a schematic flowchart of process sequencing according to the access volume after the operation instruction is executed in this embodiment.
  • step S1212 the following steps are also included after step S1212:
  • the cloud After acquiring each task request, the cloud sends information to each business end to obtain the business access volume of each business end after executing the corresponding operation instruction.
  • the service side is a server side
  • the operation command regularly executed by the server side is: open a login interface.
  • the average access volume (XX times / second) of the service terminal after opening the login interface is obtained.
  • the average access volume after each operation instruction is executed by the service end is obtained.
  • Different visits according to specific application scenarios are not only average visits, in some embodiments, the visits can be peak visits.
  • S1222 Sort the multiple task requests by using the access amount as a limiting condition to generate a sorted list
  • the task requests are sorted in ascending order with the access volume as a limiting condition and a sorted list is generated. Make each task request correspond to a sequence number.
  • the order of the delay reminder tasks corresponding to each task request in the task process is determined according to the sequence number corresponding to each task request. Specifically, the delayed reminder task ranked first is regarded as the task executed by the first task thread, and so on. The last delayed reminder task in the sorted list corresponds to the last task thread.
  • the delay reminder task located in the last task thread is sent out first at the start time, and so on, ranking first
  • the operation instruction executed by the task thread is finally issued. Because the earlier the sending time is, the earlier the time for accepting the access can be, thereby dispersing the amount of access and reducing the chance of server-side congestion and downtime due to excessive access peaks.
  • FIG. 4 is a schematic diagram of an early warning process according to the predicted traffic in this embodiment.
  • step S1200 the following steps are also included:
  • S1111 Perform statistics on the multiple task requests using the start time as a limiting condition
  • the cloud After obtaining multiple task requests sent by the same service end, the cloud analyzes and obtains the start time of the scheduled task included in each task request, and then classifies the multiple task requests with the start time of the scheduled task as a limiting condition.
  • the classified categories are different start-up times.
  • the cloud sends information to the business end to obtain the business access volume of the business end after executing the corresponding operation instruction.
  • the service side is a server side
  • the operation command regularly executed by the server side is: open a login interface.
  • the average access volume (XX times / second) of the service terminal after opening the login interface is obtained.
  • the average access volume after each operation instruction is executed by the service end is obtained.
  • Different visits according to specific application scenarios are not only average visits, in some embodiments, the visits can be peak visits.
  • the visits of multiple operation instructions with the same start time uploaded by the same business end are accumulated to obtain the sum of the visits, and then the sum Compare with preset access threshold.
  • the access threshold refers to the upper limit of the amount of access that each service can handle. Therefore, depending on the model and configuration of each service, the access threshold changes accordingly.
  • the access threshold is obtained after the cloud sends an acquisition request to the corresponding service end.
  • the cloud sends warning information to the business.
  • the warning information includes reminding the business end that when multiple operation instructions are executed at the same time, the high concurrency caused by the access has exceeded the rated access threshold of the server, and prompting the business end to reduce the scheduled task at this time or adjust the start time of the scheduled task , In order to stagger access to high concurrency time periods, to achieve a reasonable utilization of computing power resources.
  • different operation instructions of the service end have a set priority.
  • the priority determines which operation instructions need to be executed and which need not be performed. carried out. Please refer to FIG. 5, which is a schematic flowchart of determining an executable operation instruction according to priority.
  • step S1114 the following steps are also included:
  • the cloud After calculating that the sum of the visits after the execution of the operation instruction is greater than the set access threshold, the cloud sends the service end to obtain the priority level of each regularly executed operation instruction. In this way, the priority registration of each operation instruction is acquired.
  • the multiple task requests are sorted in descending order according to the priority.
  • sorting task requests with the same priority are sorted at the same level by the time when the task request is accepted.
  • S1123 Accumulate the visits requested by the multiple tasks in a sorted order according to a preset flow calculation model
  • the access volume of the operation instructions represented by each order is accumulated in sequence.
  • S represents the cumulative traffic sum
  • Y represents the preset access threshold
  • B represents the access volume characterized by each task request
  • n represents the order of each task request.
  • the accumulated traffic sum is less than or equal to the set access threshold.
  • the access threshold it means that the excess needs to be returned to the previous step, and the sum of the accumulated values calculated in this step is the final value.
  • Task requests characterized by the number of visits involved in calculating this value can establish a delayed reminder task.
  • the cloud prohibits execution of the delayed reminder task characterized by the task request that does not perform the cumulative calculation.
  • the task request is screened through the dual variables of priority and access, high concurrency control is achieved, and the scheduling power of the server's computing power is improved.
  • the cloud can also be used as the execution party of the operation instruction, that is, after the server sends the scheduled task to the cloud, the execution of the scheduled task can also be performed by the cloud. Then, the final calculation result is returned from the cloud to the business side.
  • FIG. 6, is a schematic flowchart of cloud computing power distribution in this embodiment.
  • step S1300 the following steps are also included:
  • Computing power refers to the computing power that requires a processor.
  • the cloud includes multiple processors, which can work independently or perform different steps of the same task separately. Therefore, when an operation instruction needs to be run in the cloud, the processor needs to be allocated according to the computing power required by the operation instruction.
  • the computing power required for operating instructions can be obtained through historical records. It can also be obtained by directly sending request information to the corresponding service end.
  • S1312 Assign a processor having a mapping relationship with the computing power when the delayed reminder task is completed, so as to execute the operation instruction in the cloud.
  • a delay reminder task When a delay reminder task is cleared to zero, the delay reminder task is reached, and a processor that executes the operation instruction needs to be obtained through calculation of computing power. Then the corresponding processor is allocated to execute the operation instruction, and after the execution is completed, the operation instruction is sent to the service end.
  • embodiments of the present application also provide a cloud control device.
  • FIG. 7 is a schematic structural diagram of a cloud control device according to this embodiment.
  • a cloud control device includes the following steps: an acquisition module 2100, a processing module 2200, and an execution module 2300.
  • the obtaining module 2100 is used to obtain a task request sent by the service end to establish a timed task, wherein the task request includes an operation instruction executed by the timed task and a start time of the timed task;
  • the processing module 2200 is used to establish a delay reminder according to the task request Task;
  • the execution module 2300 is used to send a preset first instruction to the business end when the delay reminder task is completed, so that the business end executes the operation instruction according to the first instruction.
  • the cloud control device establishes an independent timing task management and control system in the cloud by accepting the timing tasks sent by each business end, and according to the start time of the timing tasks and the corresponding operation instructions. Can supervise all the timed tasks.
  • the preset first instruction is sent to the corresponding business end.
  • the first instruction includes timing due to the business end.
  • the operation instruction is executed. Therefore, after receiving the first instruction, the business end executes the operation instruction after parsing, so as to realize the cloud control of the timing task, reduce the monitoring cost of each business end for the timing task, and also It reduces the task burden on the business side and releases more computing power to improve the response speed and business capacity of the business side.
  • the cloud control device further includes: a first processing submodule and a first execution submodule.
  • the first processing sub-module is used to classify multiple task requests with the start time as a limiting condition; the first execution sub-module is used to allocate the delay reminder task corresponding to the task request that belongs to the same start time to the same task Process execution.
  • the task process includes multiple task threads, and each task thread corresponds to a delay reminder task;
  • the cloud control device further includes: a first acquisition submodule, a second processing submodule, and a second execution submodule.
  • the first obtaining sub-module is used to obtain the access amount of the operation instruction corresponding to each reminder task;
  • the second processing sub-module is used to sort the multiple task requests with the access amount as a limiting condition to generate a sorted list;
  • the second execution sub-module It is used to confirm that the order of each task request in the sorting list is the order of the task thread corresponding to each task request in the task process.
  • the cloud control device when the same service end sends multiple task requests; the cloud control device further includes: a first statistics submodule, a third processing submodule, a first calculation submodule, and a third execution submodule.
  • the first statistics sub-module is used to count multiple task requests with the start time as the limiting condition;
  • the third processing sub-module is used to obtain the operation instructions corresponding to each task request when the start time of the multiple task requests is the same Access volume;
  • the first calculation sub-module is used to calculate the sum of the access volume of multiple operation instructions, and the calculated sum of the access volume is compared with the preset access threshold;
  • the third execution sub-module is used as the access volume When the sum is greater than the access threshold, warning information is sent to the business side.
  • the cloud control device further includes: a second acquisition submodule, a first sorting submodule, a fourth processing submodule, and a fourth execution submodule.
  • the second obtaining sub-module is used to obtain the execution priority of each operation instruction;
  • the first sorting sub-module is used to sort the multiple task requests according to the priority;
  • the fourth processing sub-module is used to calculate the model according to the preset flow Accumulate the access volume of multiple task requests in sorted order;
  • the fourth execution sub-module is used to prohibit execution of the delay reminder task characterized by the task request that does not perform the cumulative calculation when the accumulated result is greater than or equal to the access threshold.
  • the characteristics of the flow calculation model are described as:
  • S represents the cumulative traffic sum
  • Y represents the preset access threshold
  • B represents the access volume characterized by each task request
  • n represents the order of each task request.
  • the cloud control device further includes: a third acquisition submodule and a fifth processing submodule.
  • the third obtaining sub-module is used to obtain the computing power required for the operation instruction to operate;
  • the fifth processing sub-module is used to allocate a processor having a mapping relationship with the computing power when the delay reminder task is completed, so as to execute the operating instruction in the cloud .
  • FIG. 8 is a block diagram of the basic structure of the computer device of this embodiment.
  • the computer device includes a processor, a non-volatile storage medium, a memory, and a network interface connected through a system bus.
  • the non-volatile storage medium of the computer device stores an operating system, a database, and computer-readable instructions.
  • the database may store a sequence of control information.
  • the processor may implement a A cloud control method.
  • the processor of the computer device is used to provide computing and control capabilities, and support the operation of the entire computer device.
  • the memory of the computer device may store computer readable instructions. When the computer readable instructions are executed by the processor, the processor may cause the processor to execute a cloud control method.
  • the network interface of the computer device is used to connect and communicate with the terminal.
  • FIG. 8 is only a block diagram of a part of the structure related to the solution of the present application, and does not constitute a limitation on the computer equipment to which the solution of the present application is applied.
  • the specific computer equipment may Include more or less components than shown in the figure, or combine certain components, or have a different arrangement of components.
  • the processor is used to perform specific functions of the acquisition module 2100, the processing module 2200, and the execution module 2300 in FIG. 7, and the memory stores program codes and various types of data required to execute the above modules.
  • the network interface is used for data transmission to user terminals or servers.
  • the memory in this embodiment stores the program codes and data required to execute all submodules in the face image key point detection device, and the server can call the server program codes and data to execute the functions of all submodules.
  • the computer equipment establishes an independent timing task management and control system in the cloud by accepting the timing tasks sent by each business end, and according to the start time of the timing tasks and the corresponding operation instructions. Can supervise all the timed tasks.
  • the preset first instruction is sent to the corresponding business end.
  • the first instruction includes timing due to the business end.
  • the operation instruction is executed. Therefore, after receiving the first instruction, the business end executes the operation instruction after parsing, so as to realize the cloud control of the timing task, reduce the monitoring cost of each business end for the timing task, and also It reduces the task burden on the business side and releases more computing power to improve the response speed and business capacity of the business side.
  • the present application also provides a storage medium storing computer-readable instructions, which when executed by one or more processors, cause the one or more processors to perform the cloud control method according to any of the foregoing embodiments A step of.
  • the computer program may be stored in a computer-readable storage medium, When executed, it may include the processes of the foregoing method embodiments.
  • the aforementioned storage medium may be a non-volatile storage medium such as a magnetic disk, an optical disk, a read-only memory (Read-Only Memory, ROM), or a random access memory (Random Access Memory, RAM), etc.
  • steps in the flowchart of the drawings are displayed in order according to the arrows, the steps are not necessarily executed in the order indicated by the arrows. Unless there is a clear description in this article, there is no strict order limitation for the execution of these steps, and they can be executed in other orders. Moreover, at least a part of the steps in the flowchart of the drawings may include multiple sub-steps or multiple stages. These sub-steps or stages are not necessarily executed at the same time, but may be executed at different times, and the order of execution is also It is not necessarily carried out sequentially, but may be executed in turn or alternately with at least a part of other steps or sub-steps or stages of other steps.

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Abstract

La présente invention concerne, selon des modes de réalisation, un procédé et un dispositif de gestion en nuage, un appareil informatique et un support d'informations. Le procédé comprend les étapes suivantes consistant à : acquérir une demande de tâche envoyée par une extrémité de service et utilisée pour établir une tâche planifiée; établir une tâche de rappel de délai selon la demande de tâche; et lorsque la tâche de rappel de délai est achevée, envoyer une première instruction prédéfinie à l'extrémité de service, de sorte que l'extrémité de service exécute une instruction opérationnelle selon la première instruction. Dans le procédé, un système de gestion et de commande de tâches planifiées indépendantes est établi dans le nuage, de sorte que toutes les tâches planifiées peuvent être supervisées. Lorsqu'une condition de la tâche planifiée est satisfaite, c'est-à-dire après retour à zéro de la tâche de rappel de délai, la première instruction prédéfinie est envoyée à une extrémité de service correspondante. La première instruction comprend une instruction opérationnelle nécessitant une exécution périodique par l'extrémité de service de sorte qu'après réception de la première instruction, l'extrémité de service analyse la première instruction de façon à exécuter l'instruction opérationnelle, ce qui permet de réaliser une gestion en nuage de la tâche planifiée, et de réduire les coûts de surveillance des tâches planifiées au moyen de chaque extrémité de service.
PCT/CN2018/125111 2018-10-22 2018-12-28 Procédé et dispositif de gestion en nuage, appareil informatique, et support d'informations WO2020082599A1 (fr)

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CN201811231463.3A CN109597681B (zh) 2018-10-22 2018-10-22 云端控制方法、装置、计算机设备及存储介质

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