Machine room management method and device, equipment and storage medium

By using a station manager in the communication equipment room to automatically collect and analyze station status information, the problem of low operation and maintenance efficiency in existing technologies has been solved, and the intelligent and real-time management of the equipment room has been improved.

CN122457451APending Publication Date: 2026-07-24CHINA MOBILE GROUP DESIGN INST +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
CHINA MOBILE GROUP DESIGN INST
Filing Date
2026-03-12
Publication Date
2026-07-24

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Abstract

The application discloses a kind of machine room management method, device, equipment and storage medium, applied to site manager, site manager is set in communication machine room for installing the site of communication equipment, method specifically discloses: through the occupation state information and environmental information of preset sensor acquisition site;Pre-set sensor includes space perception sensor, temperature and humidity sensor;Occupation state information is used to indicate whether the site is installed with communication equipment;Environmental information includes temperature and humidity;Obtain machine room management information;Machine room management information includes, at least one of network alarm information, equipment configuration information and construction work order information associated with the communication equipment installed in site;Based on occupation state information, environmental information, and machine room management information, determine the real-time comprehensive state of site;Comprehensive state includes at least one of idle state, occupation state, pre-occupation state, to-be-constructed state, alarm state;Real-time comprehensive state is indicated.
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Description

Technical Field

[0001] This application relates to the field of communication technology, and in particular to a data center management method, apparatus, equipment and storage medium. Background Technology

[0002] Currently, the following solutions are commonly used when managing communication equipment rooms: The first solution is a manual inspection solution, where maintenance personnel need to go to the equipment room on-site according to the plan, visually inspect and manually measure and record the occupancy of equipment positions, equipment information and environmental data, and then manually enter the recorded information into the background management system; The second solution is an electronic tag identification solution, which stores static identity information by affixing QR codes or RFID (Radio Frequency Identification) tags to equipment or cabinets, and maintenance personnel use handheld devices to scan the tags on-site to obtain the information and manually upload it to the management platform.

[0003] While the above solutions can manage communication equipment rooms, they have obvious technical problems: the first solution relies entirely on manpower, has a long information update cycle and poor real-time performance, and manual operation is prone to errors, resulting in low accuracy of management data and low operation and maintenance efficiency; the second solution introduces electronic identification, but the electronic tag information is static and fixed, and cannot be associated with the dynamic operating status of the equipment or real-time alarms and configuration information from the network management system. Summary of the Invention

[0004] The main objective of this invention is to provide a data center management method, apparatus, equipment, and storage medium, which aims to solve the problems of low operation and maintenance efficiency, poor real-time information updates, and inability to accurately support the field caused by existing communication data center management methods that rely on manual on-site operations and static electronic tag identification.

[0005] In a first aspect, embodiments of this disclosure provide a data center management method, applied to a station manager, wherein the station manager is located at a station in a communication data center for installing communication equipment, and the method includes: The occupancy status information and environmental information of the machine location are collected by preset sensors; the preset sensors include a spatial sensing sensor and a temperature and humidity sensor; the occupancy status information is used to indicate whether communication equipment is installed at the machine location; the environmental information includes temperature and humidity; Obtain data center management information; the data center management information includes at least one of the following: network alarm information, equipment configuration information, and construction work order information associated with the communication equipment installed at the machine position; Based on the occupancy status information, the environmental information, and the data center management information, the real-time comprehensive status of the server position is determined; the comprehensive status includes at least one of the following: idle status, occupied status, pre-occupied status, pending construction status, and alarm status. The real-time integrated status is indicated.

[0006] Secondly, this disclosure provides a data center management device applied to a station manager, wherein the station manager is installed at a station in a communication data center for installing communication equipment, and the device includes: The data acquisition module is used to acquire occupancy status information and environmental information of the machine location through preset sensors; the preset sensors include a spatial sensing sensor and a temperature and humidity sensor; the occupancy status information is used to indicate whether communication equipment is installed at the machine location; the environmental information includes temperature and humidity; The acquisition module is used to acquire data center management information; the data center management information includes at least one of the following: network alarm information, equipment configuration information, and construction work order information associated with the communication equipment installed at the machine position. The determination module is used to determine the real-time comprehensive status of the machine position based on the occupancy status information, the environmental information, and the machine room management information; the comprehensive status includes at least one of the following: idle status, occupied status, pre-occupied status, pending construction status, and alarm status; The indicator module is used to indicate the real-time integrated status.

[0007] Thirdly, embodiments of this disclosure provide an electronic device, including: a processor; and a memory configured to store computer-executable instructions, which, when executed, cause the processor to perform the steps of the method described in the first aspect above.

[0008] Fourthly, embodiments of this disclosure provide a computer-readable storage medium for storing computer-executable instructions that, when executed by a processor, implement the steps of the method described in the first aspect above.

[0009] Fifthly, embodiments of this disclosure provide a computer program product, the computer program product including a computer program, which, when executed by a processor, implements the steps of the method described in the first aspect above.

[0010] The at least one technical solution provided by the embodiments of the present invention can achieve the following technical effects: In this embodiment of the invention, firstly, real-time occupancy status information and environmental information of the equipment positions in the communication equipment room are automatically collected by preset sensors. The occupancy status information indicates whether communication equipment is installed at the equipment position; the environmental information includes temperature and humidity. Then, equipment room management information is acquired, which includes at least one of the following: network alarm information associated with the communication equipment installed at the equipment position, equipment configuration information, and construction work order information. Based on this, the real-time comprehensive status of the equipment position is determined by comprehensively considering the occupancy status information, environmental information, and equipment room management information. This status includes at least one of the following: idle, occupied, pre-occupied, awaiting construction, and alarm. Finally, the real-time comprehensive status is indicated.

[0011] This invention enables automatic collection of physical status and environmental data of equipment locations via sensors, and dynamically integrates information from network management systems and work orders. This allows for fusion judgment and real-time visual indication of equipment status, replacing the traditional passive and discrete management methods that rely on manual on-site inspections or static electronic tags. Through the automatic acquisition, fusion analysis, and real-time decision-making of multi-source information, it effectively overcomes the technical shortcomings of existing technologies, such as low maintenance efficiency, poor management accuracy, and inability to accurately support on-site construction and alarm responses due to the lag in manual operation, long information update cycles, and inability to correlate with the dynamic operating status of equipment. This significantly improves the intelligence level, real-time performance, and maintenance efficiency of data center management. Attached Figure Description

[0012] Figure 1 A flowchart illustrating a data center management method according to an embodiment of the present invention; Figure 2 This is one of the structural schematic diagrams of a position manager provided in an embodiment of the present invention; Figure 3 This is a schematic diagram of the structure of a centralized information equipment for a computer room provided in one embodiment of the present invention; Figure 4 A schematic diagram of the architecture of a communication equipment room provided in one embodiment of the present invention; Figure 5 This is a second schematic diagram of the structure of a position manager provided in one embodiment of the present invention; Figure 6 This is a schematic diagram of the overall architecture of a data center management method provided in one embodiment of the present invention; Figure 7 A schematic diagram of the module composition of a data center management device 700 provided in one embodiment of the present invention; Figure 8 This is a schematic diagram of the hardware structure of an electronic device provided in one embodiment of the present invention. Detailed Implementation

[0013] To make the objectives, technical solutions, and advantages of this application clearer, the technical solutions of this application will be clearly and completely described below in conjunction with specific embodiments and corresponding drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of them. Based on the embodiments in this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0014] The technical solutions provided by the various embodiments of the present invention will be described in detail below with reference to the accompanying drawings.

[0015] Please see Figure 1 , Figure 1 This is a flowchart illustrating a data center management method according to an embodiment of the present invention. The method is applied to a station manager, which is located at a station in a communication equipment room where communication equipment is installed. Figure 1 As shown, the method includes the following steps: Step 102: Collect occupancy status information and environmental information of the machine location through preset sensors; the preset sensors include a space perception sensor and a temperature and humidity sensor; the occupancy status information is used to indicate whether communication equipment is installed at the machine location; the environmental information includes temperature and humidity.

[0016] Step 104: Obtain data center management information; data center management information includes at least one of the following: network alarm information associated with the communication equipment installed at the server position, equipment configuration information, and construction work order information.

[0017] Step 106: Based on the occupancy status information, environmental information, and data center management information, determine the real-time comprehensive status of the server position; the comprehensive status includes at least one of the following: idle status, occupied status, pre-occupied status, pending construction status, and alarm status.

[0018] Step 108: Provide an indication of the real-time integrated status.

[0019] In embodiments of the present invention, the station manager can collect station occupancy status information and environmental information through preset sensors. The station manager is physically installed at each rack location within the communication equipment room used for installing communication equipment. Each station manager integrates multiple sensors to automatically sense the physical condition of its assigned station.

[0020] In one example, the station manager can be a standalone hardware device, whose physical form can be as follows: Figure 2As shown, the device can be a cuboid or cube. Specifically, the front structure of the station manager is compact and clearly functionally divided. Multiple key modules are integrated sequentially from top to bottom of the front. At the very top is a wired communication interface, which serves as the physical connection between the station manager and an external network. Below the wired communication interface are four indicator lights. These four lights use different colors to indicate different overall statuses of the station. Below the indicator lights is a display screen that can display more detailed status information or operational instructions in graphical and textual form. At the very bottom of the front is an environmental sensor, typically green in color, used to directly collect environmental parameters such as temperature and humidity in the station area. Through the collaborative work of these modules, the station manager possesses core capabilities for data communication, status visualization, and environmental monitoring. The station manager can also be equipped with binding holes and adhesive tape. For the same station manager, both binding holes and adhesive tape can be installed simultaneously, or only one can be installed, depending on the actual needs of the station manager's installation or fixation. When installing or securing the machine manager, it can be attached to the equipment rack using adhesive tape, or it can be tied to a cable tray or channel using cable ties, or it can be suspended above the rack. The machine manager's casing can be waterproof and dustproof to adapt to various environments within the server room.

[0021] In this embodiment of the invention, the sensors integrated into the machine location manager can mainly include a spatial sensing sensor and a temperature and humidity sensor. The spatial sensing sensor can be implemented using short-range radar, a camera, or a distance detector. This sensor is configured to emit a detection signal toward the machine location space and analyze the echo to determine whether there is an object in the physical space, thereby generating a status signal representing whether the machine location is occupied or not, i.e., occupancy status information, to determine whether equipment has been installed at the machine location; while the temperature and humidity sensor is used to continuously monitor the temperature and humidity values ​​of the local microenvironment of the machine location and generate environmental information.

[0022] Through the above methods, the machine location manager achieves automated and real-time data collection of machine location physical occupancy and local environmental parameters, replacing the traditional methods of requiring maintenance personnel to conduct on-site manual inspections or use electronic tag identification devices. For example, when a new piece of equipment is installed at a machine location, the spatial awareness sensor at that location can immediately detect the object's presence and update the occupancy status to "occupied." Simultaneously, temperature and humidity sensors continuously record the temperature and humidity changes resulting from the equipment's operation.

[0023] In embodiments of the present invention, the server location manager not only needs to perceive physical information but also needs to acquire data center management information from the upper-level management system. This data center management information originates from an external management system and involves multiple dimensions, including network operating status, equipment configuration, and engineering tasks. Specifically, the data center management information may include at least one of the following types of information: network alarm information associated with the communication equipment installed at the server location, equipment configuration information of the installed communication equipment, and work order information related to the server location. This information is dynamic. Specifically, network alarm information can indicate whether the communication equipment installed at the server location has experienced abnormal events such as performance degradation or malfunction; equipment configuration information may include the equipment's model name, structural dimensions, panel layout, and terminal information, as well as its operating status and configuration; work order information can indicate future planning actions for the server location, such as plans to install new equipment or upgrade and maintain existing equipment. Through this information, the physical status collected on-site can be integrated with the management, operation, and planning statuses in the background, thereby providing a data foundation for a comprehensive and accurate assessment of the server location status.

[0024] In one example, the station manager may include a communication module for exchanging data with the upper-level management system. Specifically, the station manager can receive data center management information from the data center resource management system through this communication module. In this example, the data center resource management system is an upper-level management system located on a cloud platform or in a data center. Its core function is to uniformly manage the resources of the entire communication equipment room. When generating data center management information, the data center resource management system can first obtain raw management information from an external system. This external system may include at least one of a professional network management system and a work order management system. The professional network management system can be used to manage the communication equipment installed in the communication equipment room, such as the operating status, configuration information, and alarm information of active devices, pipelines, and dumb resource devices in the equipment room; while the work order management system can be used to manage the workflow of various construction tasks in the communication equipment room, such as the application, approval, dispatch, and execution tracking of tasks for new equipment installation, old equipment debugging, and equipment maintenance. After obtaining the original management information from these systems, the data center resource management system integrates and processes the obtained original management information to generate data center management information with a unified format related to each specific computer station, and then sends it to the corresponding computer station manager.

[0025] In one example, the station managers and the data center resource management system can interact via an intermediary device. This intermediary device can be a data center information centralization device. Specifically, the station managers can receive data center management information from the data center resource management system through the data center information centralization device. The data center information centralization device is typically deployed within a communication equipment room to aggregate occupancy status and environmental information reported by at least one station manager. The data center information centralization device has two main functions: first, it connects upwards, communicating with the data center resource management system via wired or wireless means to report data from all station managers within the data center; second, it connects downwards, connecting with each station manager within the data center via wired or wireless means to receive their reported occupancy status and environmental information, and distributing data center management information issued by the data center resource management system to the corresponding station managers. There are various options for the networking method between the data center information centralization device and the station managers. When using wired connections, it can be a star-shaped point-to-point connection, where each station manager connects directly to the data center centralization equipment via a wired interface; or a cascaded serial connection, where station managers use two wired interfaces connected in series before connecting to the data center centralization equipment. Alternatively, a two-stage connection can be used, deploying an information aggregator between the data center centralization equipment and a large number of station managers. The aggregator first aggregates data from multiple station managers in a local area before uploading it to the data center centralization equipment, thus simplifying cabling or expanding management scale. The data center centralization equipment itself can include a power module, storage module, management and control module, and indicator light module, and its power supply can be 220V AC or -48V DC.

[0026] In one example, such as Figure 3 The diagram shows the functional modules inside the centralized information equipment in the computer room. Figure 3 In the top row, from left to right, are the communication module and the indicator light module. The communication module can connect to the data center resource management system and the station managers. It is a key part of the data center information centralization equipment as a data hub, responsible for receiving instructions and information from the upper-level data center resource management system and aggregating the occupancy status and environmental information reported by all subordinate station managers, completing bidirectional data forwarding. The indicator light module is used to indicate the operating and working status of the data center information centralization equipment itself.

[0027] In the middle row, arranged from left to right, are the power module and the storage module. The power module can be equipped with a battery, meaning that when the battery module powers the entire device, it can be powered not only by a conventional external power source but also by the onboard battery. This ensures that the device can continue to operate for a period of time when the external power supply is interrupted, improving reliability. The storage module can be used to temporarily store forwarded data, as well as the device's own configuration parameters and operating logs.

[0028] At the bottom is the management and control module. The management and control module is the control core of the centralized information equipment in the computer room. It is responsible for overall coordination and control, including managing the data transmission and reception process of the communication module, monitoring and managing the power status, reading and writing data in the storage module, and driving the indicator light module to display the corresponding status, ensuring that the entire equipment operates in an orderly and stable manner.

[0029] In one example, such as Figure 4 As shown, two networking connection schemes between the centralized information equipment and multiple station managers within a communication equipment room are clearly illustrated. Figure 4 The communication room shown contains three key pieces of equipment: a blue central information control device, a green information aggregator, and a red station manager.

[0030] The blue centralized data center equipment is located on the left side of the data center. To the right of the centralized equipment are multiple red station managers. Two parallel connection paths are shown between the centralized equipment and these station managers: the first is a direct connection, where the centralized equipment connects directly to each of the station managers in the first row above via a communication link, achieving point-to-point communication; the second is a two-level connection, where the centralized equipment first connects downwards to a green data aggregator, which then acts as the aggregation point, connecting to the multiple station managers in the second row below.

[0031] Depend on Figure 4 It is readily apparent that the centralized information equipment in the data center, acting as the data hub within the data center, can directly manage each station manager using a star-shaped point-to-point topology. Alternatively, it can be deployed as an intermediate device, such as an information aggregator, to provide hierarchical and aggregated management of more station managers in a cascading manner. The introduction of information aggregators helps simplify cabling and expand the overall system capacity and coverage when managing large-scale, geographically dispersed station managers.

[0032] In one example, before receiving data center management information from the data center resource management system, the station manager can also send the acquired occupancy status information to the data center resource management system. The data center resource management system can then determine the real-time station usage status of the communication equipment room based on the received occupancy status information. Simultaneously, the data center resource management system can obtain the physical information of the installed communication equipment from the professional network management system. This physical information may include at least one of the following: equipment size, chassis structure, and panel layout. Then, based on the real-time station usage status and the equipment physical information, the data center resource management system can construct a usage status map representing the real-time usage of the communication equipment room stations. This usage status map may include at least one of a floor plan and a three-dimensional diagram. Finally, based on the constructed usage status map, the data center resource management system can generate or associate data center management information and send it to the corresponding station manager. This process enables precise mapping and bidirectional synchronization between physical space and digital information, which is crucial for building a digital twin of the data center. Through this mechanism, a floor plan or three-dimensional diagram of the real-time usage status of the data center stations can be remotely constructed, and environmental information can be further used to construct a temperature and humidity distribution map of the data center stations.

[0033] In embodiments of the present invention, the station manager can execute a status decision logic. This logic integrates and analyzes the aforementioned collected occupancy status information, environmental information, and acquired data center management information, and determines the current comprehensive status of the station based on preset rules. This comprehensive status can be an integrated semantic label that provides direct guidance to maintenance personnel. The comprehensive status can include idle status, occupied status, pre-occupied status, pending construction status, and alarm status. Based on this real-time comprehensive status, intelligent management decisions can be achieved.

[0034] In one example, when determining the real-time overall status of a server station based on occupancy status information, environmental information, and data center management information, the following specific judgment logics can be included: First, if the occupancy status information indicates that no communication equipment is installed at the station, and no construction work order information associated with the station is obtained from the data center management information, the real-time overall status is determined to be idle. This indicates that the station is physically idle and there are no recent construction plans. Second, if the occupancy status information indicates that communication equipment is installed at the station, and network alarm information associated with the communication equipment is obtained from the data center management information, the real-time overall status is determined to be alarm status. In this case, the backend network management alarm can be immediately associated with the specific physical location at the front end, enabling rapid alarm location. Third, if the occupancy status information indicates that no communication equipment is installed at the station, but construction work order information associated with the station is obtained from the data center management information, the real-time overall status is determined to be pending construction status. In this case, maintenance personnel can be notified that the station has been planned and equipment will be installed soon, thus avoiding misallocation of resources. Furthermore, this judgment logic can be further extended. For example, when pre-occupancy information of a workstation is obtained from the system device network or dumb resource network management system, the status can be defined as pre-occupancy status; and when the environmental information collected by the temperature and humidity sensor exceeds the safety threshold, an environmental alarm status can also be triggered. These statuses together constitute a complete description of the workstation's condition.

[0035] In embodiments of the present invention, after determining the real-time integrated status, the station manager can intuitively present this status to maintenance, design, or construction personnel in the data center. This is a key step in realizing on-site information visualization, allowing the station manager to display the results of its internal decisions so that on-site personnel can immediately obtain the core status and necessary information of the station without having to query any backend systems, simply by observing the station manager itself.

[0036] In one example, the station manager may include at least one of an indicator light module and an information display module. The information display module may include a display screen. Indicating the real-time overall status can specifically include the following two methods: One method, when the station manager includes an indicator light module, uses different colored lights to indicate the real-time overall status. For example, a green light can indicate a station is idle, a blue light indicates the station equipment is working normally, a flashing red light indicates an alarm, a yellow light indicates the station is awaiting construction, and a purple light indicates the station is pre-occupied. This solution is low-cost and provides a clear indication. The other method, when the station manager includes an information display module, indicates the real-time overall status using at least one of graphical and textual methods. For example, the display screen can directly display textual statuses such as idle, occupied, and alarm, or it can display graphical construction guidance information for the locations of racks, frames, slots, and board ports that need to be installed. The station manager can simultaneously have both an indicator light module and a display module to provide a combined indication effect.

[0037] In one example, such as Figure 5 As shown, the functional modules inside the station manager are illustrated. Figure 5 In the top row, from left to right, are the communication module, information display module, and indicator module. The communication module connects to the network management system and is the core hub for data exchange between the station manager and the upper-level management system. It receives data center management information from the data center resource management system or centralized data center equipment and reports the station's collected occupancy status and environmental information. The information display module is optional; its installation is determined by actual deployment needs. Physically, the information display module is the display screen on the front of the station manager, showing detailed equipment status, alarm information, construction instructions, or environmental data to on-site personnel in graphical or textual form. The rightmost module is the indicator module, typically corresponding to the indicator lights on the front of the station manager. It uses different colored lights to quickly indicate the overall status of the station, such as red for alarms and green for normal operation.

[0038] In the middle row, arranged from left to right, are the power module, temperature and humidity sensor modules, space sensing module, and storage module. The power module is optional and can be equipped with a battery. This means that when powering the entire station manager, the power module can be powered not only via wired connection but also by the included battery, ensuring the device can continue operating for a period of time even when external power is interrupted. The temperature and humidity sensor module is also optional. It integrates temperature and humidity sensors to collect real-time temperature and humidity data of the station area, serving as the primary source of environmental information. The space sensing module, also optional, is responsible for detecting whether the space in front of the station is occupied, thus generating station occupancy status information. In practice, this can be achieved using short-range radar or distance detectors. On the far right is the storage module, used to locally store the station manager's configuration parameters, operating logs, received instructions, and cached information to be displayed.

[0039] Located at the bottom and in the core position of all the above modules is the management and control module, which is responsible for overall coordination and control. The management and control module connects to all other modules through an internal bus or circuit, receives data from the sensor modules, acquires external information through the communication module, and then analyzes and processes it according to preset logic rules to finally obtain the real-time comprehensive status of the station. It then drives the indicator module and information display module to display the corresponding information and controls the entire communication process with external systems.

[0040] In one example, such as Figure 6 As shown, the overall architecture and data flow of the digital twin management system for communication equipment rooms are clearly displayed. Figure 6 The data center resource management system in the upper left corner is the core management platform of the entire architecture, responsible for unified resource management and status monitoring of the communication data center.

[0041] To the right of the data center resource management system, three different specialized management systems are connected via the network. At the top is the system network management system, which manages the operational status, network alarms, and configuration information of active communication devices (such as servers and switches) within the data center. In the middle is the network management system for non-active resources such as cabling and the data center itself, responsible for managing physical resources without active communication capabilities, such as cabling and the data center's spatial structure. Below is a project management system, including work orders, used to manage the workflow of various construction tasks such as installation, debugging, and maintenance within the data center. These three systems collectively serve as the source of original management information, aggregating their respective specialized data into the central data center resource management system via the network.

[0042] Below the data center resource management system is the data center information centralization equipment. Deployed in the communication equipment room, this equipment acts as a crucial data relay hub, connecting the upper-level management system with the massive number of on-site sensing units below. Through the communication link, the data center resource management system receives integrated instructions and information from itself, while simultaneously interacting with various workstations distributed within one or more specific communication equipment rooms.

[0043] pass Figure 6 The architecture shown allows the data center resource management system to integrate and centrally process logical information from different professional management systems, such as equipment alarms, resource topology, and construction plans, with physical information collected from on-site equipment locations through the data center information centralization device, such as equipment occupancy status and environmental temperature and humidity. This enables comprehensive and integrated digital twin management of the communication data center, from logical resources to physical entities.

[0044] In this embodiment of the invention, firstly, real-time occupancy status information and environmental information of the equipment positions in the communication equipment room are automatically collected by preset sensors. The occupancy status information indicates whether communication equipment is installed at the equipment position; the environmental information includes temperature and humidity. Then, equipment room management information is acquired, which includes at least one of the following: network alarm information associated with the communication equipment installed at the equipment position, equipment configuration information, and construction work order information. Based on this, the real-time comprehensive status of the equipment position is determined by comprehensively considering the occupancy status information, environmental information, and equipment room management information. This status includes at least one of the following: idle, occupied, pre-occupied, awaiting construction, and alarm. Finally, the real-time comprehensive status is indicated.

[0045] This invention enables automatic collection of physical status and environmental data of equipment locations via sensors, and dynamically integrates information from network management systems and work orders. This allows for fusion judgment and real-time visual indication of equipment status, replacing the traditional passive and discrete management methods that rely on manual on-site inspections or static electronic tags. Through the automatic acquisition, fusion analysis, and real-time decision-making of multi-source information, it effectively overcomes the technical shortcomings of existing technologies, such as low maintenance efficiency, poor management accuracy, and inability to accurately support on-site construction and alarm responses due to the lag in manual operation, long information update cycles, and inability to correlate with the dynamic operating status of equipment. This significantly improves the intelligence level, real-time performance, and maintenance efficiency of data center management.

[0046] Figure 7 The computer room management device 700 shown can achieve Figure 1 The method described in the embodiment achieves the same technical effect, and can be specifically referred to in the above description. Figure 1The description of the data center management method in the illustrated embodiment will not be repeated here. The data center management device 700 is applied to a station manager, which is installed at a station in a communication data center for installing communication equipment. The data center management device 700 includes: The acquisition module 701 is used to acquire occupancy status information and environmental information of the machine position through preset sensors; the preset sensors include a spatial sensing sensor and a temperature and humidity sensor; the occupancy status information is used to indicate whether the machine position is equipped with communication equipment; the environmental information includes temperature and humidity; The acquisition module 702 is used to acquire data center management information; the data center management information includes at least one of the following: network alarm information, equipment configuration information, and construction work order information associated with the communication equipment installed at the machine position. The determination module 703 is used to determine the real-time comprehensive status of the machine position based on the occupancy status information, the environmental information, and the computer room management information; the comprehensive status includes at least one of the following: idle status, occupied status, pre-occupied status, pending construction status, and alarm status; The indicator module 704 is used to indicate the real-time integrated status.

[0047] Optionally, the position manager includes at least one of an indicator module and an information display module; the information display module includes a display screen; the indicator module 704 is used for: When the camera manager includes the indicator light module, the real-time integrated status is indicated by the indicator light module using different colored lights; and when the camera manager includes the information display module, the real-time integrated status is indicated by at least one of graphics and text.

[0048] Optionally, the station manager includes a communication module, and the acquisition module 702 is used for: The communication module receives data center management information from the data center resource management system. The data center resource management system manages the resources of the communication data center, obtains original management information from at least one of a professional network management system and a work order management system, and generates data center management information corresponding to the data center location based on the original management information. The professional network management system manages the operating status and alarm information of the communication equipment installed in the communication data center. The work order management system manages the construction task process in the communication data center; the construction task includes at least one of installation, debugging, and maintenance.

[0049] Optionally, the device further includes ( Figure 7 (not shown in the image) The sending module 705 is configured to send the acquired occupancy status information to the data center resource management system before receiving the data center management information from the data center resource management system; wherein, the data center resource management system is configured to determine the real-time equipment usage status of the communication data center based on the received occupancy status information, and to obtain the physical information of the installed communication equipment from the professional network management system, and to construct a usage status diagram representing the real-time equipment usage status of the communication data center based on the real-time equipment usage status and the physical information of the equipment; the usage status diagram includes at least one of a plan view and a three-dimensional view; the physical information of the equipment includes at least one of equipment size, frame structure, and panel layout. The receiving module 706 is used to receive the data center management information sent by the data center resource management system; wherein the data center management information is generated by the data center resource management system based on the usage status diagram.

[0050] Optionally, the receiving module 706 is used for: The system receives data center management information from the data center resource management system via a data center information centralization device. The data center information centralization device is located within the communication data center and is used to collect the occupancy status information and environmental information reported by at least one of the device managers, and forward the occupancy status information and environmental information to the data center resource management system. It is also used to distribute the data center management information from the data center resource management system to the corresponding device managers.

[0051] Optionally, the determining module 703 is used for at least one of the following: If the occupancy status information indicates that no communication equipment is installed at the machine position, and no construction work order information associated with the machine position is obtained from the machine room management information, the real-time integrated status is determined to be idle. If the occupancy status information indicates that the machine position has been equipped with communication equipment, and network alarm information associated with the communication equipment is obtained from the computer room management information, the real-time comprehensive status is determined to be an alarm status. If the occupancy status information indicates that no communication equipment is installed at the machine station, but construction work order information associated with the machine station is obtained from the machine room management information, the real-time integrated status is determined to be a pending construction status.

[0052] In this embodiment of the invention, firstly, real-time occupancy status information and environmental information of the equipment positions in the communication equipment room are automatically collected by preset sensors. The occupancy status information indicates whether communication equipment is installed at the equipment position; the environmental information includes temperature and humidity. Then, equipment room management information is acquired, which includes at least one of the following: network alarm information associated with the communication equipment installed at the equipment position, equipment configuration information, and construction work order information. Based on this, the real-time comprehensive status of the equipment position is determined by comprehensively considering the occupancy status information, environmental information, and equipment room management information. This status includes at least one of the following: idle, occupied, pre-occupied, awaiting construction, and alarm. Finally, the real-time comprehensive status is indicated.

[0053] This invention enables automatic collection of physical status and environmental data of equipment locations via sensors, and dynamically integrates information from network management systems and work orders. This allows for fusion judgment and real-time visual indication of equipment status, replacing the traditional passive and discrete management methods that rely on manual on-site inspections or static electronic tags. Through the automatic acquisition, fusion analysis, and real-time decision-making of multi-source information, it effectively overcomes the technical shortcomings of existing technologies, such as low maintenance efficiency, poor management accuracy, and inability to accurately support on-site construction and alarm responses due to the lag in manual operation, long information update cycles, and inability to correlate with the dynamic operating status of equipment. This significantly improves the intelligence level, real-time performance, and maintenance efficiency of data center management.

[0054] Figure 8 This is a schematic diagram of the structure of an electronic device provided in one embodiment of this application. Please refer to it. Figure 8 At the hardware level, the electronic device includes a processor, and optionally also includes an internal bus, a network interface, and memory. The memory may include main memory, such as high-speed random-access memory (RAM), or non-volatile memory, such as at least one disk drive. Of course, the electronic device may also include other hardware required for other business operations.

[0055] The processor, network interface, and memory can be interconnected via an internal bus, which can be an ISA (Industry Standard Architecture) bus, a PCI (Peripheral Component Interconnect) bus, or an EISA (Extended Industry Standard Architecture) bus, etc. This bus can be divided into address bus, data bus, control bus, etc. For ease of representation, Figure 8 The symbol is represented by a single double-headed arrow, but this does not mean that there is only one bus or one type of bus.

[0056] Memory is used to store programs. Specifically, programs may include program code, which includes computer operation instructions. Memory may include main memory and non-volatile memory, and provides instructions and data to the processor.

[0057] The processor reads the corresponding computer program from non-volatile memory into main memory and then executes it, forming a non-contiguous transfer configuration at the logical level. The processor executes the program stored in memory and specifically performs the following operations: The occupancy status information and environmental information of the machine location are collected by preset sensors; the preset sensors include a spatial sensing sensor and a temperature and humidity sensor; the occupancy status information is used to indicate whether communication equipment is installed at the machine location; the environmental information includes temperature and humidity; Obtain data center management information; the data center management information includes at least one of the following: network alarm information, equipment configuration information, and construction work order information associated with the communication equipment installed at the machine position; Based on the occupancy status information, the environmental information, and the data center management information, the real-time comprehensive status of the server position is determined; the comprehensive status includes at least one of the following: idle status, occupied status, pre-occupied status, pending construction status, and alarm status. The real-time integrated status is indicated.

[0058] The above is as stated in this application. Figure 1The data center management method disclosed in the embodiments described above can be applied to a processor or implemented by a processor. The processor may be an integrated circuit chip with signal processing capabilities. During implementation, each step of the above method can be completed by integrated logic circuits in the processor's hardware or by instructions in software form. The processor can be a general-purpose processor, including a Central Processing Unit (CPU), a Network Processor (NP), etc.; it can also be 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, or discrete hardware components. It can implement or execute the methods, steps, and logic block diagrams disclosed in one or more embodiments of this application. The general-purpose processor can be a microprocessor or any conventional processor. The steps of the methods disclosed in one or more embodiments of this application can be directly implemented by a hardware decoding processor, or by a combination of hardware and software modules in the decoding processor. The software module can reside in a mature storage medium in the field, such as random access memory, flash memory, read-only memory, programmable read-only memory, electrically erasable programmable memory, or registers. This storage medium is located in memory, and the processor reads information from the memory and, in conjunction with its hardware, completes the steps of the above method.

[0059] The electronic device can also perform Figure 1 The data center management method described herein will not be repeated here.

[0060] This application also proposes a computer-readable storage medium that stores one or more programs, the programs including instructions that, when executed by a portable electronic device including multiple applications, enable the portable electronic device to perform... Figure 1 The methods of the embodiments shown are not described in detail here.

[0061] This application also proposes a computer program product, which is stored in a storage medium and executed by at least one processor to implement... Figure 1 The methods of the embodiments shown are not described in detail here.

[0062] Of course, in addition to software implementation, the electronic device of this application does not exclude other implementation methods, such as logic devices or a combination of hardware and software, etc. In other words, the execution subject of the following processing flow is not limited to each logic unit, but can also be hardware or logic devices.

[0063] In summary, the above description is merely a preferred embodiment of this application and is not intended to limit the scope of protection of this application. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of one or more embodiments of this application should be included within the scope of protection of one or more embodiments of this application.

[0064] The systems, devices, modules, or units described in the above embodiments can be implemented by computer chips or entities, or by products with certain functions. A typical implementation device is a computer. Specifically, a computer can be, for example, a personal computer, laptop computer, cellular phone, camera phone, smartphone, personal digital assistant, media player, navigation device, email device, game console, tablet computer, wearable device, or any combination of these devices.

[0065] Computer-readable media, including both permanent and non-permanent, removable and non-removable media, can store information using any method or technology. Information can be computer-readable instructions, data structures, program modules, or other data. Examples of computer storage media include, but are not limited to, phase-change memory (PRAM), static random access memory (SRAM), dynamic random access memory (DRAM), other types of random access memory (RAM), read-only memory (ROM), electrically erasable programmable read-only memory (EEPROM), flash memory or other memory technologies, CD-ROM, digital versatile optical disc (DVD) or other optical storage, magnetic tape, magnetic disk storage or other magnetic storage devices, or any other non-transferable medium that can be used to store information accessible by a computing device. As defined in the embodiments of this application, computer-readable media does not include transient computer-readable media, such as modulated data signals and carrier waves.

[0066] It should also be noted that the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitation, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0067] The various embodiments in this application are described in a progressive manner. Similar or identical parts between embodiments can be referred to mutually. Each embodiment focuses on describing the differences from other embodiments. In particular, the system embodiments are basically similar to the method embodiments, so the description is relatively simple; relevant parts can be referred to the descriptions of the method embodiments.

Claims

1. A method for managing a computer room, characterized in that, Applied to a station manager, the station manager being set up at a station in a communication equipment room for installing communication equipment, the method includes: The occupancy status information and environmental information of the machine location are collected by preset sensors; the preset sensors include a spatial sensing sensor and a temperature and humidity sensor; the occupancy status information is used to indicate whether communication equipment is installed at the machine location; the environmental information includes temperature and humidity; Obtain data center management information; the data center management information includes at least one of the following: network alarm information, equipment configuration information, and construction work order information associated with the communication equipment installed at the machine position; Based on the occupancy status information, the environmental information, and the data center management information, the real-time comprehensive status of the server position is determined; the comprehensive status includes at least one of the following: idle status, occupied status, pre-occupied status, pending construction status, and alarm status. The real-time integrated status is indicated.

2. The method according to claim 1, characterized in that, The station manager includes at least one of an indicator light module and an information display module; the information display module includes a display screen. The instruction on the real-time integrated status includes: When the camera manager includes the indicator light module, the real-time integrated status is indicated by the indicator light module using different colored lights; and when the camera manager includes the information display module, the real-time integrated status is indicated by at least one of graphics and text.

3. The method according to claim 1, characterized in that, The server room manager includes a communication module, and the step of obtaining server room management information includes: The communication module receives data center management information from the data center resource management system. The data center resource management system manages the resources of the communication data center, obtains original management information from at least one of a professional network management system and a work order management system, and generates data center management information corresponding to the data center location based on the original management information. The professional network management system manages the operating status and alarm information of the communication equipment installed in the communication data center. The work order management system manages the construction task process in the communication data center; the construction task includes at least one of installation, debugging, and maintenance.

4. The method according to claim 3, characterized in that, Before receiving the data center management information from the data center resource management system, the method further includes: The acquired occupancy status information is sent to the data center resource management system. The data center resource management system determines the real-time server space usage status of the communication data center based on the received occupancy status information, and obtains the physical information of the installed communication equipment from the professional network management system. Based on the real-time server space usage status and the physical information of the equipment, it constructs a usage status diagram representing the real-time server space usage status of the communication data center. The usage status diagram includes at least one of a floor plan and a three-dimensional diagram. The physical information of the equipment includes at least one of equipment dimensions, chassis structure, and panel layout. The system receives data center management information sent by the data center resource management system; wherein the data center management information is generated by the data center resource management system based on the usage status diagram.

5. The method according to claim 3, characterized in that, The receiving of the data center management information from the data center resource management system includes: The system receives data center management information from the data center resource management system via a data center information centralization device. The data center information centralization device is located within the communication data center and is used to collect the occupancy status information and environmental information reported by at least one of the device managers, and forward the occupancy status information and environmental information to the data center resource management system. It is also used to distribute the data center management information from the data center resource management system to the corresponding device managers.

6. The method according to claim 1, characterized in that, The determination of the real-time comprehensive status of the server station based on the occupancy status information, the environmental information, and the data center management information includes at least one of the following: If the occupancy status information indicates that no communication equipment is installed at the machine position, and no construction work order information associated with the machine position is obtained from the machine room management information, the real-time integrated status is determined to be idle. If the occupancy status information indicates that the machine position has been equipped with communication equipment, and network alarm information associated with the communication equipment is obtained from the computer room management information, the real-time comprehensive status is determined to be an alarm status. If the occupancy status information indicates that no communication equipment is installed at the machine station, but construction work order information associated with the machine station is obtained from the machine room management information, the real-time integrated status is determined to be a pending construction status.

7. A computer room management device, characterized in that, An application for a station manager, wherein the station manager is installed at a station in a communication equipment room for installing communication equipment, the device comprising: The data acquisition module is used to acquire occupancy status information and environmental information of the machine position through preset sensors; the preset sensors include a spatial sensing sensor and a temperature and humidity sensor; the occupancy status information is used to indicate whether the machine position is equipped with communication equipment; the environmental information includes temperature and humidity; The acquisition module is used to acquire data center management information; the data center management information includes at least one of the following: network alarm information, equipment configuration information, and construction work order information associated with the communication equipment installed at the machine position. The determination module is used to determine the real-time comprehensive status of the machine position based on the occupancy status information, the environmental information, and the machine room management information; the comprehensive status includes at least one of the following: idle status, occupied status, pre-occupied status, pending construction status, and alarm status; The indicator module is used to indicate the real-time integrated status.

8. An electronic device, characterized in that, include: A memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the computer program, when executed by the processor, implements the steps of the method as described in any one of claims 1 to 6.

9. A computer-readable storage medium, characterized in that, The computer-readable storage medium is used to store computer-executable instructions that, when executed by a processor, implement the steps of the method described in any one of claims 1 to 6.

10. A computer program product, characterized in that, The computer program product includes a computer program that, when executed by a processor, implements the steps of the method described in any one of claims 1 to 6.