Elevator landing door management method and device, terminal and medium
By obtaining the automatic force clearance and static parameters of the elevator floor door, an elevator floor door management solution is generated, which solves the problems of strong subjectivity of elevator floor door management and the inability to fully consider the specific situation in the existing technology, and achieves efficient and precise maintenance of elevator floor doors.
Patent Information
- Application Number
- CN202510108800.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-23
- Publication Date
- 2025-05-06
AI Technical Summary
The existing elevator floor door management methods are based on empirical judgment, which are prone to errors due to differences in experience of maintenance personnel, and traditional maintenance management solutions cannot fully consider the specific situation of each floor door.
By obtaining the current automatic force gap and static parameters of each elevator floor door in the target building, determining the offset value based on the preset threshold range, using the preset management plan to generate a model, and generating the elevator floor door management plan based on the offset value and static parameters, and performing accurate maintenance.
It realizes efficient and precise maintenance of elevator floor doors, reduces subjective judgment errors, and can more scientifically quantify the maintenance needs of each elevator floor door.
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Figure CN119929616A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of elevator management, and in particular to an elevator floor door management method, device, terminal and medium. Background Art
[0002] The elevator floor door is mainly composed of door panels, door frames, door guides, sills, door locks, self-closing devices and other parts. The primary function is to isolate the elevator car from the floor passage and provide passengers with a safe access. When the elevator reaches the target floor and stops at the same level, the car door and the floor door open synchronously, and passengers can enter and exit safely; during the operation of the elevator, the floor door is closed to prevent passengers from falling into the elevator shaft and ensure the safety of passengers. Maintenance personnel will inspect the elevator floor doors according to a fixed cycle, such as weekly, monthly or quarterly. The inspection content includes whether the appearance of the floor door is damaged, such as whether the door panel is deformed or scratched, whether the door frame is loose; whether the door runs smoothly, check whether there are foreign objects and wear on the door guides and sills, and whether the door opening and closing speed is normal; and whether the door lock device is reliable, by manually checking the engagement of the lock hook and whether the signal feedback of the electrical interlock is normal.
[0003] However, existing elevator floor door management methods are often based on experience to judge the severity of the problem. This subjective judgment may lead to errors due to differences in experience among maintenance personnel. At the same time, traditional maintenance management solutions are usually more general and may not fully consider the specific conditions of each floor door. Summary of the invention
[0004] The main purpose of this application is to provide an elevator floor door management method, device, terminal and medium, which aims to maintain each elevator floor door more accurately, scientifically and quantitatively by efficiently understanding the actual status of the automatic force application gap of each elevator floor door in the target building.
[0005] To achieve the above object, the present application provides an elevator floor door management method, the method comprising:
[0006] Obtain the current automatic force application gap corresponding to each elevator floor door in the target building and the static parameters corresponding to each elevator floor door;
[0007] Determine a current automatic force application gap offset value corresponding to the target building based on a preset automatic force application gap threshold range and the current automatic force application gap;
[0008] A target management solution generation model is generated by presetting a target management solution, and a target elevator door management solution is obtained according to the current automatic force gap offset value corresponding to the target building and the static parameters;
[0009] Based on the target elevator floor door management solution, maintenance processing is performed on each elevator floor door in the target building.
[0010] Specifically, determining the current automatic force application gap offset value corresponding to the target building based on the preset automatic force application gap threshold range and the current automatic force application gap includes:
[0011] Determine the current automatic force application gap offset value corresponding to each elevator door based on the current automatic force application gap and the preset automatic force application gap threshold range;
[0012] Based on the current automatic force application gap offset values corresponding to the elevator floor doors, the current automatic force application gap offset value corresponding to the target building is determined.
[0013] Specifically, determining the current automatic force application gap offset value corresponding to each elevator door based on the current automatic force application gap and the preset automatic force application gap threshold range includes:
[0014] If the current automatic force application gap corresponding to the elevator floor door is within the preset automatic force application gap threshold range, the current automatic force application gap offset value corresponding to the elevator floor door is determined to be 0;
[0015] If the current automatic force application gap corresponding to the elevator floor door is greater than the upper limit value of the preset automatic force application gap threshold range, the absolute value of the difference between the current automatic force application gap corresponding to the elevator floor door and the upper limit value is determined as the current automatic force application gap offset value corresponding to the elevator floor door;
[0016] If the current automatic force application gap corresponding to the elevator floor door is less than the lower limit value of the preset automatic force application gap threshold range, the absolute value of the difference between the current automatic force application gap corresponding to the elevator floor door and the lower limit value is determined as the current automatic force application gap offset value corresponding to the elevator floor door.
[0017] Specifically, determining the current automatic force application gap offset value corresponding to the target building based on the current automatic force application gap offset value corresponding to each elevator floor door includes:
[0018] Based on the current automatic force application gap offset values corresponding to the elevator floor doors, the current automatic force application gap offset value corresponding to the target building is calculated by the following calculation formula:
[0019]
[0020] Among them, W1, W2, W3…W n are the preset calculation weights corresponding to each elevator floor door, n is the number of elevator floor doors in the target building, F1, F2, F2…F n is the current automatic force application gap offset value corresponding to each elevator floor door, and S is the current automatic force application gap offset value corresponding to the target building.
[0021] Specifically, the preset target management solution generation model includes an input layer, an embedding layer, a fusion layer, a hidden layer, a regression layer and an output layer, and the static parameters include an elevator floor door type parameter, and the elevator floor door type parameter is used to characterize the elevator floor door type corresponding to the elevator floor door;
[0022] The model is generated by presetting the target management solution, and a target elevator door management solution is obtained according to the current automatic force gap offset value corresponding to the target building and the static parameters, including:
[0023] Obtaining a first input vector through the input layer according to the static parameters and the current automatic force application gap offset value corresponding to the target building;
[0024] Obtaining a second input vector according to the elevator door type parameter through the embedding layer;
[0025] Obtaining a comprehensive input vector according to the first input vector and the second input vector through the fusion layer;
[0026] Obtaining a feature representation vector through the hidden layer according to the comprehensive input vector;
[0027] Obtaining output values corresponding to each elevator door according to the feature representation vector through the regression layer;
[0028] Through the output layer, the target elevator floor door management solution is obtained according to the output values corresponding to the various elevator floor doors.
[0029] Specifically, the output layer includes at least one neuron, the target elevator floor door management scheme includes a recommended maintenance frequency corresponding to each elevator floor door, and the neuron corresponds to the elevator floor door one by one;
[0030] The target elevator floor door management scheme is obtained through the output layer according to the output values corresponding to the elevator floor doors, including:
[0031] The output values corresponding to the elevator floor doors are input into the output layer, and the recommended maintenance frequencies corresponding to the elevator floor doors are obtained as output.
[0032] Specifically, the output layer includes at least one neuron, the target elevator floor door management solution includes maintenance category labels corresponding to each elevator floor door, the maintenance category labels are used to characterize different maintenance urgency levels of each elevator floor door, and the neurons correspond to the types of the maintenance category labels one by one;
[0033] The target elevator floor door management scheme is obtained through the output layer according to the output values corresponding to the elevator floor doors, including:
[0034] The output values corresponding to the elevator floor doors are input into the output layer, and the maintenance category labels corresponding to the elevator floor doors are output.
[0035] To achieve the above object, the present application also provides an elevator floor door management device, the device comprising:
[0036] The first unit is used to obtain the current automatic force application gap corresponding to each elevator floor door in the target building and the static parameters corresponding to each elevator floor door;
[0037] The second unit is used to determine a current automatic force application gap offset value corresponding to the target building based on a preset automatic force application gap threshold range and the current automatic force application gap;
[0038] The third unit is used to generate a model through a preset target management solution, and obtain a target elevator door management solution according to the current automatic force gap offset value corresponding to the target building and the static parameters;
[0039] The fourth unit is used to perform maintenance processing on each elevator floor door in the target building based on the target elevator floor door management solution.
[0040] To achieve the above-mentioned purpose, the present application also provides a terminal, including a memory storing multiple instructions; the processor loads instructions from the memory to execute the steps in any one of the methods provided in the present application.
[0041] To achieve the above objectives, the present application also provides a medium, wherein the medium stores a plurality of instructions, wherein the instructions are suitable for a processor to load to execute the steps in any one of the methods provided in the present application.
[0042] The present application provides an elevator floor door management method, device, terminal and medium, which can first obtain the current automatic force application gap corresponding to each elevator floor door in the target building and the static parameters corresponding to each elevator floor door; then, based on the preset automatic force application gap threshold range and the current automatic force application gap, accurately determine the current automatic force application gap offset value corresponding to the target building; then, generate a model through a preset target management plan, and obtain the target elevator floor door management plan according to the current automatic force application gap offset value corresponding to the target building and the static parameters; finally, based on the target elevator floor door management plan, perform maintenance processing on each elevator floor door in the target building.
[0043] The present application can more accurately, scientifically and quantitatively maintain each elevator floor door by efficiently understanding the actual status of the automatic force application gap of each elevator floor door in the target building. BRIEF DESCRIPTION OF THE DRAWINGS
[0044] Figure 1 A schematic diagram of a process for a method provided in an embodiment of the present application;
[0045] Figure 2 A schematic diagram of the structure of the device provided in the embodiment of the present application;
[0046] Figure 3 A schematic diagram of the structure of a terminal provided in an embodiment of the present application. DETAILED DESCRIPTION
[0047] The following will be combined with the drawings in the embodiments of the present application to clearly and completely describe the technical solutions in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work are within the scope of protection of this application.
[0048] Since existing elevator floor door management methods are often based on experience to judge the severity of the problem, this subjective judgment may lead to errors due to differences in experience among maintenance personnel; at the same time, traditional maintenance management solutions are usually more general and may not fully consider the specific conditions of each floor door.
[0049] Therefore, the embodiments of the present application provide an elevator floor door management method, device, terminal and medium to solve practical technical problems.
[0050] In some embodiments, the device may be specifically integrated into an electronic device, and the electronic device may be a terminal, a server, or other device.
[0051] In some embodiments, the server may also be implemented in the form of a terminal.
[0052] Among them, the server can be an independent physical server, a server cluster or distributed system composed of multiple physical servers, or a cloud server that provides basic cloud computing services such as cloud services, cloud databases, cloud computing, cloud functions, cloud storage, network services, cloud communications, middleware services, domain name services, security services, CDN (Content Delivery Network), as well as big data and artificial intelligence platforms.
[0053] The terminal may be a smart phone, a tablet computer, a laptop computer, a desktop computer, a smart speaker, a smart watch, etc., but is not limited thereto. The terminal and the server may be directly or indirectly connected via wired or wireless communication, and this application does not limit this.
[0054] It should be noted that the serial numbers of the following embodiments are not intended to limit the preferred order of the embodiments.
[0055] The present application embodiment provides an elevator floor door management method, such as Figure 1 As shown, the specific process of the method can be as follows:
[0056] S110, obtaining the current automatic force application gap corresponding to each elevator floor door in the target building and the static parameters corresponding to each elevator floor door.
[0057] The current automatic force-applying gap refers to the gap distance between the elevator floor door and related matching parts (such as door lock devices, self-closing devices, etc. that are associated when in action) in the current state, which is maintained by a certain force-applying mechanism. The size of this gap has a key impact on whether the elevator floor door can open and close normally and whether it can be locked reliably. For example, if the automatic force-applying gap is too small, it may cause increased friction during the opening and closing process of the door, affecting the smooth operation of the door and may even cause excessive wear of the parts; if the gap is too large, it may affect the engagement accuracy of the door lock and pose a safety hazard.
[0058] In some embodiments, the gap value can be obtained with the help of professional measuring tools, such as feeler gauges that can accurately measure smaller gaps. Maintenance personnel can insert the feeler gauge into the corresponding measuring position, such as the peripheral gap at the joint between the door lock hook and the lock buckle, the gap between the door and the guide rail under the action of the self-closing device, and other key parts for measurement, and then record these specific gap values corresponding to each elevator floor door to obtain the current automatic force gap data.
[0059] The static parameters may include the model of the elevator floor door. Different models of floor doors differ in design, size, material, and supporting mechanical and electrical components, which will affect subsequent maintenance and fault judgment; installation time is also critical and can help determine whether the components are aging. Generally speaking, the possibility of aging and wear of the components of floor doors with a longer installation time is relatively higher; it can also include the size specifications of the elevator floor door, involving the length and width of the door panel, the length of the guide rail, etc. The appropriate size specifications are the basis for ensuring the normal operation of the door. If the size deviates, it may cause the door to be installed loosely or jammed during operation. In addition, information such as the material used by the elevator floor door (such as whether the door panel is stainless steel or other alloy material) also belongs to the category of static parameters. Different materials have different properties such as strength and corrosion resistance, and the focus and cycle of maintenance will also be different.
[0060] In some embodiments, the model, installation time and other information can be obtained by viewing the original installation archives of the elevator. These archives generally record in detail the basic conditions of each component of the elevator, including the landing door. For static parameters such as size specifications and materials, on the one hand, they can be found from the installation archives, and on the other hand, they can be confirmed by direct on-site inspection and measurement, such as using a tape measure to measure the actual size of the door panel, and determining its material type through observation and simple material identification methods, so as to collect comprehensive static parameters corresponding to each elevator landing door.
[0061] S120: Determine a current automatic force application gap offset value corresponding to the target building based on a preset automatic force application gap threshold range and the current automatic force application gap.
[0062] In some embodiments, determining the current automatic force application gap offset value corresponding to the target building based on the preset automatic force application gap threshold range and the current automatic force application gap includes the following steps:
[0063] S121. Determine the current automatic force application gap offset value corresponding to each elevator floor door based on the current automatic force application gap and the preset automatic force application gap threshold range.
[0064] Specifically, the determining of the current automatic force application gap offset value corresponding to each elevator door based on the current automatic force application gap and the preset automatic force application gap threshold range includes the following specific implementation process:
[0065] If the current automatic force application gap corresponding to the elevator floor door is within the preset automatic force application gap threshold range, the current automatic force application gap offset value corresponding to the elevator floor door is determined to be 0;
[0066] If the current automatic force application gap corresponding to the elevator landing door is greater than the upper limit value of the preset automatic force application gap threshold range, then the absolute value of the difference between the current automatic force application gap corresponding to the elevator landing door and the upper limit value is determined as the current automatic force application gap offset value corresponding to the elevator landing door;
[0067] If the current automatic force application gap corresponding to the elevator landing door is less than the lower limit value of the preset automatic force application gap threshold range, then the absolute value of the difference between the current automatic force application gap corresponding to the elevator landing door and the lower limit value is determined as the current automatic force application gap offset value corresponding to the elevator landing door.
[0068] Specifically, the preset automatic force application gap threshold range can be [MinThreshold, MaxThreshold], the current automatic force application gap corresponding to the elevator landing door can be CurrentGap_i (i = 1, 2,..., n), where the number of elevator landing doors is n, and the current automatic force application gap offset value corresponding to the elevator landing door can be Offset_i.
[0069] When CurrentGap_i ∈ [MinThreshold, MaxThreshold], then the current automatic force application gap offset value corresponding to the elevator landing door is determined to be 0, that is, Offset_i = 0.
[0070] When CurrentGap_i < MinThreshold, then Offset_i = MinThreshold - CurrentGap_i.
[0071] When CurrentGap_i > MaxThreshold, then Offset_i = CurrentGap_i - MaxThreshold.
[0072] S122. Based on the current automatic force application gap offset values corresponding to the respective elevator landing doors, determine the current automatic force application gap offset value corresponding to the target building.
[0073] In some embodiments, the determining the current automatic force application gap offset value corresponding to the target building based on the current automatic force application gap offset values corresponding to the respective elevator landing doors includes the following specific content:
[0074] Based on the current automatic force application gap offset values corresponding to the respective elevator landing doors, through the following calculation formula, calculate the current automatic force application gap offset value corresponding to the target building:
[0075]
[0076] Among them, W1, W2, W3…Wn are the preset calculation weights corresponding to each elevator floor door, n is the number of elevator floor doors in the target building, F1, F2, F3…F n is the current automatic force application gap offset value corresponding to each elevator floor door, and S is the current automatic force application gap offset value corresponding to the target building.
[0077] In some embodiments, a weight W is assigned to each elevator door considering the importance of different elevator doors (such as passenger flow, usage frequency, etc.). i , i=1,2,…,n.
[0078] S130, generating a model through a preset target management solution, and obtaining a target elevator floor door management solution according to the current automatic force application gap offset value corresponding to the target building and the static parameters.
[0079] In some embodiments, the preset target management solution generation model includes an input layer, an embedding layer, a fusion layer, a hidden layer, a regression layer and an output layer, and the static parameters include elevator floor door type parameters, and the elevator floor door type parameters are used to characterize the elevator floor door type corresponding to the elevator floor door.
[0080] Specifically, the model is generated by presetting the target management solution, and the target elevator door management solution is obtained according to the current automatic force gap offset value corresponding to the target building and the static parameters, including the steps S131 to S136 as shown below:
[0081] S131. Obtain a first input vector through the input layer according to the static parameters and the current automatic force application gap offset value corresponding to the target building.
[0082] In some embodiments, the static parameters and the current automatic force gap offset value corresponding to the target building are input into the input layer, the data corresponding to each elevator floor door is organized into a feature vector, and the feature vectors of all elevator floor doors are combined into a matrix as the input of the input layer, namely, the first input vector.
[0083] S132. Obtain a second input vector through the embedding layer according to the elevator door type parameter.
[0084] In some embodiments, the static parameters include categorical variables (such as floor door type), which can be converted into dense vector representations through an embedding layer to better capture the relationship between them. The elevator floor door type parameter is input into the embedding layer to obtain the second input vector.
[0085] S133. Obtain a comprehensive input vector according to the first input vector and the second input vector through the fusion layer.
[0086] In some embodiments, data from different sources (such as automatic force gap offset values and static parameters) are fused together to form a richer feature representation. The first input vector and the second input vector are input to the fusion layer, and the comprehensive input vector is output.
[0087] S134. Obtain a feature representation vector through the hidden layer according to the comprehensive input vector.
[0088] In some embodiments, the hidden layer may include multiple fully connected layers (Dense Layers), and may also include convolutional layers (Convolutional Layers), recurrent layers (Recurrent Layers), etc., depending on the data characteristics and task requirements. The activation function of the hidden layer may be ReLU, Sigmoid, Tanh, etc., which are used to introduce nonlinearity so that the model can learn complex patterns. The comprehensive input vector is input to the hidden layer, and the feature representation vector is output.
[0089] S135. Obtain output values corresponding to the doors of each elevator floor through the regression layer according to the feature representation vector.
[0090] In some embodiments, the regression layer is used to predict the maintenance measures or adjustment degree required for each elevator floor door. The feature representation vector is input to the regression layer, and the output is output to obtain the output value corresponding to each elevator floor door.
[0091] S136. Obtain the target elevator floor door management solution through the output layer according to the output values corresponding to the various elevator floor doors.
[0092] In some embodiments, the output layer includes at least one neuron, the target elevator floor door management solution includes a recommended maintenance frequency corresponding to each elevator floor door, and the neuron corresponds to the elevator floor door one by one.
[0093] Specifically, the target elevator floor door management scheme is obtained through the output layer according to the output values corresponding to the elevator floor doors, including the specific implementation contents as shown below:
[0094] The output values corresponding to the elevator floor doors are input into the output layer, and the recommended maintenance frequencies corresponding to the elevator floor doors are obtained as output.
[0095] Specifically, the target elevator door management solution can be expressed by specific values, such as the specific value of adjusting the force gap, the time interval for replacing parts, etc. For each elevator door, one or more values are output, which can be directly used to guide maintenance work. The output can be a continuous value (such as an adjustment of 0.5mm) or a discrete value (such as a time interval of "immediately", "once a week", etc.).
[0096] In some embodiments, the output layer includes at least one neuron, the target elevator floor door management scheme includes maintenance category labels corresponding to each elevator floor door, the maintenance category labels are used to characterize the different maintenance urgency levels of each elevator floor door, and the neurons correspond one-to-one to the types of the maintenance category labels.
[0097] Specifically, the target elevator floor door management scheme is obtained through the output layer according to the output values corresponding to the elevator floor doors, including the specific implementation contents as shown below:
[0098] The output values corresponding to the elevator floor doors are input into the output layer, and the maintenance category labels corresponding to the elevator floor doors are output.
[0099] Specifically, when the target elevator door management scheme can be divided into a limited number of categories, such as "no adjustment", "minor adjustment", "immediate maintenance", etc., a category label is output for each elevator door, directly indicating the current state of the door and the recommended maintenance measures. A fully connected layer with a softmax activation function combined with a cross entropy loss function can be used as the output layer to perform multi-class classification tasks. The number of neurons in the output layer is equal to the number of categories, and each neuron corresponds to a possible maintenance category.
[0100] S140: Perform maintenance processing on each elevator floor door in the target building based on the target elevator floor door management solution.
[0101] Continuing with the above embodiment, the target elevator door management solution includes the following results:
[0102] Elevator door 1: Slight adjustment;
[0103] Elevator landing door 2: No adjustment required;
[0104] Elevator door 3: Repair immediately;
[0105] ...(other elevator landing doors).
[0106] Arrange the processing process according to the target elevator door management plan:
[0107] Prioritize elevator landing door 3 because it requires immediate repair.
[0108] Arrange technicians to make minor adjustments to elevator floor door 1 this week.
[0109] For other elevator floor doors, continue monitoring and do not take any action for now.
[0110] Maintenance personnel go to designated locations to perform specific maintenance tasks:
[0111] Carry out emergency repairs on elevator landing door 3 and replace damaged parts.
[0112] Adjust the force clearance of elevator door 1 to ensure it is within the normal range.
[0113] In summary, the present application provides an elevator floor door management method, which can maintain each elevator floor door more accurately, scientifically and quantitatively by efficiently understanding the actual status of the automatic force application gap of each elevator floor door in the target building.
[0114] In order to better implement the above method, the embodiment of the present application also provides an elevator door management device, which can be integrated in an electronic device, and the electronic device can be a terminal, a server, etc. Among them, the terminal can be a mobile phone, a tablet computer, a smart Bluetooth device, a laptop, a personal computer, etc.; the server can be a single server or a server cluster composed of multiple servers.
[0115] For example, in this embodiment, the method of the embodiment of the present application will be described in detail by taking the elevator floor door management device specifically integrated in the terminal as an example.
[0116] For example, Figure 2 As shown, the elevator floor door management device 200 may include a first unit 201, a second unit 202, a third unit 203 and a fourth unit 204, and the device includes:
[0117] The first unit is used to obtain the current automatic force application gap corresponding to each elevator floor door in the target building and the static parameters corresponding to each elevator floor door;
[0118] The second unit is used to determine a current automatic force application gap offset value corresponding to the target building based on a preset automatic force application gap threshold range and the current automatic force application gap;
[0119] The third unit is used to generate a model through a preset target management solution, and obtain a target elevator door management solution according to the current automatic force gap offset value corresponding to the target building and the static parameters;
[0120] The fourth unit is used to perform maintenance processing on each elevator floor door in the target building based on the target elevator floor door management solution.
[0121] In specific implementation, the above units can be implemented as independent entities, or can be arbitrarily combined to be implemented as the same or several entities. The specific implementation of the above units can refer to the previous method embodiments, which will not be repeated here.
[0122] It can be seen from the above that the embodiments of the present application can maintain each elevator floor door more accurately, scientifically and quantitatively by efficiently understanding the actual state of the automatic force application gap of each elevator floor door in the target building.
[0123] The embodiment of the present application also provides an electronic device, which can be a terminal, a server, etc. The terminal can be a mobile phone, a tablet computer, a smart Bluetooth device, a laptop, a personal computer, etc. The server can be a single server or a server cluster composed of multiple servers, etc.
[0124] In some embodiments, the product processing device may also be integrated into multiple electronic devices. For example, the product processing device may be integrated into multiple servers, and the elevator floor door management method of the present application may be implemented by multiple servers.
[0125] In this embodiment, the electronic device of this embodiment is a terminal as an example for detailed description, for example, Figure 3 As shown, it shows a schematic diagram of the structure of the terminal 300 involved in the embodiment of the present application, specifically:
[0126] The terminal 300 may include one or more processors 301 of processing cores, one or more storage media 302, a power supply 303, an input module 304, and a communication module 305. Those skilled in the art will appreciate that Figure 3 The structure of the terminal 300 shown in the figure does not constitute a limitation on the terminal 300, and the terminal 300 may include more or fewer components than shown in the figure, or combine certain components, or arrange the components differently.
[0127] The processor 301 is the control center of the terminal 300. It uses various interfaces and lines to connect various parts of the entire terminal 300. It executes various functions of the terminal 300 and processes data by running or executing software programs and / or modules stored in the memory 302, and calling data stored in the memory 302, so as to monitor the terminal 300 as a whole. In some embodiments, the processor 301 may include one or more processing cores; in some embodiments, the processor 301 may integrate an application processor and a modem processor, wherein the application processor mainly processes the operating system, user interface, and application programs, and the modem processor mainly processes wireless communications. It is understandable that the above-mentioned modem processor may not be integrated into the processor 301.
[0128] The memory 302 can be used to store software programs and modules. The processor 301 executes various functional applications and data processing by running the software programs and modules stored in the memory 302. The memory 302 may mainly include a program storage area and a data storage area, wherein the program storage area may store an operating system, an application required for at least one function (such as a sound playback function, an image playback function, etc.), etc.; the data storage area may store data created according to the use of the terminal 300, etc. In addition, the memory 302 may include a high-speed random access memory, and may also include a non-volatile memory, such as at least one disk storage device, a flash memory device, or other volatile solid-state storage devices. Accordingly, the memory 302 may also include a memory controller to provide the processor 301 with access to the memory 302.
[0129] The terminal 300 also includes a power supply 303 for supplying power to various components. In some embodiments, the power supply 303 can be logically connected to the processor 301 through a power management system, so as to manage charging, discharging, and power consumption through the power management system. The power supply 303 can also include any components such as one or more DC or AC power supplies, recharging systems, power failure detection circuits, power converters or inverters, and power status indicators.
[0130] The terminal 300 may further include an input module 304, which may be used to receive input digital or character information and generate keyboard, mouse, joystick, optical or trackball signal inputs related to user settings and function controls.
[0131] The terminal 300 may also include a communication module 305. In some embodiments, the communication module 305 may include a wireless module. The terminal 300 may perform short-range wireless transmission through the wireless module of the communication module 305, thereby providing the user with wireless broadband Internet access. For example, the communication module 305 may be used to help the user send and receive emails, browse web pages, and access streaming media.
[0132] Although not shown, the terminal 300 may also include a display unit, etc., which will not be described in detail here. Specifically in this embodiment, the processor 301 in the terminal 300 will load the executable files corresponding to the processes of one or more applications into the memory 302 according to the following instructions, and the processor 301 will run the applications stored in the memory 302, thereby realizing various functions, as follows:
[0133] Obtain the current automatic force application gap corresponding to each elevator floor door in the target building and the static parameters corresponding to each elevator floor door;
[0134] Determine a current automatic force application gap offset value corresponding to the target building based on a preset automatic force application gap threshold range and the current automatic force application gap;
[0135] A target management solution generation model is generated by presetting a target management solution, and a target elevator door management solution is obtained according to the current automatic force gap offset value corresponding to the target building and the static parameters;
[0136] Based on the target elevator floor door management solution, maintenance processing is performed on each elevator floor door in the target building.
[0137] The specific implementation of the above operations can be found in the previous embodiments, which will not be described in detail here.
[0138] It can be seen from the above that the embodiments of the present application can maintain each elevator floor door more accurately, scientifically and quantitatively by efficiently understanding the actual state of the automatic force application gap of each elevator floor door in the target building.
[0139] Those skilled in the art will appreciate that all or part of the steps in the various methods of the above embodiments may be completed by instructions, or by controlling related hardware through instructions. The instructions may be stored in a medium and loaded and executed by a processor.
[0140] To this end, an embodiment of the present application provides a medium in which a plurality of instructions are stored, and the instructions can be loaded by a processor to execute the steps in any one of the elevator door management methods provided in the embodiment of the present application. For example, the instructions can execute the following steps:
[0141] Obtain the current automatic force application gap corresponding to each elevator floor door in the target building and the static parameters corresponding to each elevator floor door;
[0142] Determine a current automatic force application gap offset value corresponding to the target building based on a preset automatic force application gap threshold range and the current automatic force application gap;
[0143] A target management solution generation model is generated by presetting a target management solution, and a target elevator door management solution is obtained according to the current automatic force gap offset value corresponding to the target building and the static parameters;
[0144] Based on the target elevator floor door management solution, maintenance processing is performed on each elevator floor door in the target building.
[0145] The medium may include: a read-only memory (ROM), a random access memory (RAM), a magnetic disk or an optical disk, etc.
[0146] According to one aspect of the present application, a computer program product or a computer program is provided, the computer program product or the computer program includes a computer instruction, the computer instruction is stored in a medium. A processor of a computer device reads the computer instruction from the medium, and the processor executes the computer instruction, so that the computer device executes the method provided in various optional implementations provided in the above embodiments.
[0147] Since the instructions stored in the medium can execute the steps in any elevator floor door management method provided in the embodiments of the present application, the beneficial effects that can be achieved by any elevator floor door management method provided in the embodiments of the present application can be achieved. Please refer to the previous embodiments for details and will not be repeated here.
[0148] The above is a detailed introduction to an elevator floor door management method, device, terminal and medium provided in the embodiments of the present application. Specific examples are used in this article to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the method of the present application and its core idea; at the same time, for technical personnel in this field, according to the ideas of the present application, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as a limitation on the present application.
Claims
1. An elevator door management method, characterized in that: The method comprises: Obtain the current automatic force application gap corresponding to each elevator floor door in the target building and the static parameters corresponding to each elevator floor door; Determine a current automatic force application gap offset value corresponding to the target building based on a preset automatic force application gap threshold range and the current automatic force application gap; A target management solution generation model is generated by presetting a target management solution, and a target elevator door management solution is obtained according to the current automatic force gap offset value corresponding to the target building and the static parameters; Based on the target elevator floor door management solution, maintenance processing is performed on each elevator floor door in the target building.
2. The method according to claim 1, characterized in that The determining, based on the preset automatic force application gap threshold range and the current automatic force application gap, a current automatic force application gap offset value corresponding to the target building includes: Determine the current automatic force application gap offset value corresponding to each elevator door based on the current automatic force application gap and the preset automatic force application gap threshold range; Based on the current automatic force application gap offset values corresponding to the elevator floor doors, the current automatic force application gap offset value corresponding to the target building is determined.
3. The method according to claim 2, characterized in that The determining, based on the current automatic force application gap and the preset automatic force application gap threshold range, the current automatic force application gap offset value corresponding to each elevator floor door includes: If the current automatic force application gap corresponding to the elevator floor door is within the preset automatic force application gap threshold range, the current automatic force application gap offset value corresponding to the elevator floor door is determined to be 0; If the current automatic force application gap corresponding to the elevator floor door is greater than the upper limit value of the preset automatic force application gap threshold range, the absolute value of the difference between the current automatic force application gap corresponding to the elevator floor door and the upper limit value is determined as the current automatic force application gap offset value corresponding to the elevator floor door; If the current automatic force application gap corresponding to the elevator floor door is less than the lower limit value of the preset automatic force application gap threshold range, the absolute value of the difference between the current automatic force application gap corresponding to the elevator floor door and the lower limit value is determined as the current automatic force application gap offset value corresponding to the elevator floor door.
4. The method according to claim 2, characterized in that The determining the current automatic force application gap offset value corresponding to the target building based on the current automatic force application gap offset value corresponding to each elevator floor door includes: Based on the current automatic force application gap offset values corresponding to the elevator floor doors, the current automatic force application gap offset value corresponding to the target building is calculated by the following calculation formula: Among them, W1, W2, W3…W n are the preset calculation weights corresponding to each elevator floor door, n is the number of elevator floor doors in the target building, F1, F2, F3…F n is the current automatic force application gap offset value corresponding to each elevator floor door, and S is the current automatic force application gap offset value corresponding to the target building.
5. The method according to claim 1, characterized in that The preset target management solution generation model includes an input layer, an embedding layer, a fusion layer, a hidden layer, a regression layer and an output layer, and the static parameters include an elevator floor door type parameter, and the elevator floor door type parameter is used to characterize the elevator floor door type corresponding to the elevator floor door; The model is generated by presetting the target management solution, and a target elevator door management solution is obtained according to the current automatic force gap offset value corresponding to the target building and the static parameters, including: Obtaining a first input vector through the input layer according to the static parameters and the current automatic force application gap offset value corresponding to the target building; Obtaining a second input vector according to the elevator door type parameter through the embedding layer; Obtaining a comprehensive input vector according to the first input vector and the second input vector through the fusion layer; Obtaining a feature representation vector through the hidden layer according to the comprehensive input vector; Obtaining output values corresponding to each elevator door according to the feature representation vector through the regression layer; Through the output layer, the target elevator floor door management solution is obtained according to the output values corresponding to the various elevator floor doors.
6. The method according to claim 5, characterized in that The output layer includes at least one neuron, the target elevator floor door management scheme includes a recommended maintenance frequency corresponding to each elevator floor door, and the neuron corresponds to the elevator floor door one by one; The target elevator floor door management scheme is obtained through the output layer according to the output values corresponding to the elevator floor doors, including: The output values corresponding to the elevator floor doors are input into the output layer, and the recommended maintenance frequencies corresponding to the elevator floor doors are obtained as output.
7. The method according to claim 5, characterized in that The output layer includes at least one neuron, the target elevator floor door management solution includes maintenance category labels corresponding to each elevator floor door, the maintenance category labels are used to characterize different maintenance urgency levels of each elevator floor door, and the neurons correspond to the types of the maintenance category labels one by one; The target elevator floor door management scheme is obtained through the output layer according to the output values corresponding to the elevator floor doors, including: The output values corresponding to the elevator floor doors are input into the output layer, and the maintenance category labels corresponding to the elevator floor doors are output.
8. An elevator door management device, characterized in that: The device comprises: The first unit is used to obtain the current automatic force application gap corresponding to each elevator floor door in the target building and the static parameters corresponding to each elevator floor door; A second unit is used to determine a current automatic force application gap offset value corresponding to the target building based on a preset automatic force application gap threshold range and the current automatic force application gap; The third unit is used to generate a model through a preset target management solution, and obtain a target elevator door management solution according to the current automatic force gap offset value corresponding to the target building and the static parameters; The fourth unit is used to perform maintenance processing on each elevator floor door in the target building based on the target elevator floor door management solution.
9. A terminal, characterized in that: The method comprises a processor and a memory, wherein the memory stores a plurality of instructions; the processor loads instructions from the memory to execute the steps in the method according to any one of claims 1 to 7.
10. A medium, characterized in that The medium stores a plurality of instructions, and the instructions are suitable for being loaded by a processor to execute the steps in the method according to any one of claims 1 to 7.
Citation Information
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