Industrial waste storage interaction method, device, system and medium
By setting up temporary display trigger controls and pie charts on the industrial waste storage management interface, the cumbersome problem of industrial waste storage monitoring in the existing technology is solved, and more efficient management convenience and ease of use are achieved.
Patent Information
- Application Number
- CN202510034733.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-09
- Publication Date
- 2025-05-30
AI Technical Summary
The monitoring methods for industrial waste storage in the prior art are cumbersome, which is not conducive to comprehensive viewing, resulting in insufficient management convenience and ease of use.
By setting up an expiration storage management interface, the combination of multiple expiration display trigger controls and pie charts is used to display the storage of industrial waste during different expiration reminder periods.
It improves users' intuitive understanding and management convenience of industrial waste storage conditions, and improves the ease of use of industrial waste storage management.
Smart Images

Figure CN120066606A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of intelligent environmental protection, and in particular, to an industrial waste storage interaction method, device, system and medium. Background Art
[0002] For the storage time of industrial waste, monitoring is required. According to existing regulatory requirements, different types of industrial waste have corresponding storage times in the warehouse. When the storage time of industrial waste reaches the specified time, the industrial waste needs to be taken out of the warehouse. The existing monitoring methods for the storage of industrial waste generally query and monitor through data tables. This method is relatively cumbersome to monitor and is not conducive to a comprehensive view of the storage of industrial waste. Therefore, how to improve the convenience and usability of the interaction for industrial waste storage is a technical problem that urgently needs to be studied in the industry. Summary of the Invention
[0003] The present invention provides an industrial waste storage interaction method, device, system and medium to solve one or more technical problems existing in the prior art, and at least provide a beneficial choice or create conditions.
[0004] The present invention provides an industrial waste storage interaction method, including: displaying a login interface; wherein, the login interface is provided with a password input trigger control and a login trigger control, and the password input trigger control is used to obtain the password input by the user and record the password as the target password; When it is determined that the login trigger control is triggered, the target password is verified. After the verification is correct, an industrial waste storage management interface is displayed; wherein, the industrial waste storage management interface is provided with: a near-term storage trigger control; When it is determined that the near-term storage trigger control is triggered, a near-term storage management interface is displayed; Wherein, the near-term storage management interface is provided with: a first near-term display trigger control, a second near-term display trigger control,..., and an i-th near-term display trigger control; i = 1, 2,..., n; n is a positive integer, n≥3; A first pie chart is displayed in the display area of the i-th near-term display trigger control, and the first pie chart includes: a first type sector area, a second type sector area,..., and a j-th type sector area; the filling colors of the first type sector area, the second type sector area,..., and the j-th type sector area are not the same; Let the central angle of the j-th type sector area be a, then ; P represents the mass of the j-th type of industrial waste stored within the i-th near-term reminder time period; Q represents the total mass of all stored industrial waste; the i-th near-term reminder time period is a preset time range; where j = 1, 2, …, m; m is a positive integer, m ≥ 1; m represents the number of types of industrial waste stored.
[0005] Furthermore, the industrial waste storage interaction method further includes: determining that the i-th expiration display trigger control is triggered, and then displaying the i-th sub-interface; where on the i-th sub-interface, there are: the 1st display row, the 2nd display row, …, the k-th display row; k = 1, 2, …, j; Obtaining the description information of the 1st type of industrial waste in the i-th pie chart to obtain the 1st description information; obtaining the description information of the 2nd type of industrial waste in the i-th pie chart to obtain the 2nd description information; …; obtaining the description information of the k-th type of industrial waste in the i-th pie chart to obtain the k-th description information; k = 1, 2, …, j; Filling the 1st description information into the 1st display row, filling the 2nd description information into the 2nd display row, …, filling the k-th description information into the k-th display row; k = 1, 2, …, j.
[0006] Furthermore, the expiration storage management interface is further provided with a monitoring display control, and the monitoring display control is used to play the real-time monitoring video of the storage warehouse in real time.
[0007] Furthermore, the expiration storage management interface is further provided with a warehouse environment display control, and the warehouse environment display control is used to display the humidity, temperature and alarm information of the storage warehouse.
[0008] Furthermore, the expiration storage management interface is further provided with a storage situation display control, and the storage situation display control is used to display the total mass data of the industrial waste put into storage, the total mass data of the industrial waste taken out of storage and the remaining total mass data of the industrial waste in the storage warehouse.
[0009] On the other hand, an industrial waste storage interaction device is provided, including: a processor and a memory; the memory is used to store a computer-readable program; when the computer-readable program is executed by the processor, the processor realizes the industrial waste storage interaction method as described in any one of the above technical solutions.
[0010] On the other hand, an industrial waste storage interaction system is provided, including: a first display module, a second display module and a third display module; The first display module is used to: display a login interface; where on the login interface, there are a password input trigger control and a login trigger control, and the password input trigger control is used to obtain the password input by the user and record the password as the target password; The second display module is used to: determine that the login trigger control is triggered, then verify the target password, and after successful verification, display the industrial waste storage management interface; wherein, the industrial waste storage management interface is provided with: an approaching expiration storage trigger control; The third display module is used to: determine that the approaching expiration storage trigger control is triggered, then display the approaching expiration storage management interface; wherein, the approaching expiration storage management interface is provided with: a first approaching expiration display trigger control, a second approaching expiration display trigger control,..., and an i-th approaching expiration display trigger control; i = 1, 2,..., n; n is a positive integer, n ≥ 3; In the display area of the i-th approaching expiration display trigger control, an i-th pie chart is displayed, and the i-th pie chart includes: a first type sector area, a second type sector area,..., and a j-th type sector area; the filling colors of the first type sector area, the second type sector area,..., and the j-th type sector area are different; Let the central angle of the j-th type sector area be a, then ; P represents the mass of the j-th type of industrial waste stored within the i-th approaching expiration reminder time period; Q represents the total mass of all the stored industrial waste; the i-th approaching expiration reminder time period is a pre-set time range; Wherein, j = 1, 2,..., m; m is a positive integer, m ≥ 1; m represents the number of types of stored industrial waste.
[0011] Furthermore, the industrial waste storage interaction system further includes a fourth display module, and the fourth display module is used to: determine that the i-th approaching expiration display trigger control is triggered, then display the i-th sub-interface; Wherein, the i-th sub-interface is provided with: a first display row, a second display row,..., and a k-th display row; k = 1, 2,..., j; Obtain the description information of the first type of industrial waste in the i-th pie chart to obtain the first description information; obtain the description information of the second type of industrial waste in the i-th pie chart to obtain the second description information;...; obtain the description information of the k-th type of industrial waste in the i-th pie chart to obtain the k-th description information; k = 1, 2,..., j; Fill the first description information into the first display row, fill the second description information into the second display row,..., and fill the k-th description information into the k-th display row; k = 1, 2,..., j.
[0012] Furthermore, the approaching expiration storage management interface is further provided with a monitoring display control, and the monitoring display control is used to play the real-time monitoring video of the storage warehouse in real time.
[0013] On the other hand, a computer-readable storage medium is provided, in which a program executable by a processor is stored. When the program executable by the processor is executed by the processor, it is used to implement the industrial waste storage interaction method described in any one of the above technical solutions.
[0014] The present invention has at least the following beneficial effects: By setting up an approaching expiration storage management interface, by setting a plurality of approaching expiration display trigger controls on the approaching expiration storage management interface, and by setting a pie chart on the approaching expiration display trigger control, the user can more clearly understand the storage situation of industrial waste in different approaching expiration reminder time periods by using the different central angles of the sector areas of each type in the pie chart. This enables the user to grasp the approaching expiration storage situation of industrial waste as a whole, improving the convenience and usability of the user in the storage management of industrial waste. The present invention also provides corresponding devices, systems and media. The beneficial effects of the devices, systems and media are similar to those of the method and will not be repeated here. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The drawings are used to provide a further understanding of the technical solutions of the present invention, and constitute a part of the specification. They are used together with the embodiments of the present invention to explain the technical solutions of the present invention, and do not constitute a limitation to the technical solutions of the present invention.
[0016] Figure 1 is a flowchart of the steps of the industrial waste storage interaction method; Figure 2 is a schematic structural diagram of the industrial waste storage interaction device; Figure 3 is a schematic system connection structure diagram of the industrial waste storage interaction system; Figure 4 is a schematic interface structure diagram of the industrial waste storage management interface; Figure 5 is a schematic interface structure diagram of the approaching expiration storage management interface. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0017] In order to make the objectives, technical solutions and advantages of the present invention clearer, the present invention will be further described in detail below with reference to the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.
[0018] It should be noted that although the functional modules are divided in the system schematic diagram and the logical order is shown in the flowchart, in some cases, the steps shown or described can be executed in a different order from the module division in the system or the flowchart. Terms such as "first" and "second" in the specification, claims and the above drawings are used to distinguish similar objects and do not necessarily need to describe a specific order or sequence.
[0019] For ease of description, some terms in this text are explained below.
[0020] Trigger control: A trigger control is a user interface element that can trigger a preset operation or event when the user interacts with the interface (such as clicking, inputting, selecting, etc.) or when specific conditions are met (such as time arrival, data change, etc.).
[0021] Common types of trigger controls include: Button: A common trigger control used to perform user click operations; it can be a text button, an icon button, or a combined button; trigger operations usually include submitting a form, opening a new page, performing a specific function, etc. TextBox: A control used to input text information; it can trigger validations, searches, or other operations through changes in the input content. CheckBox: A control that provides multiple options for the user to select; when the user selects or deselects an option, corresponding operations can be triggered. RadioButton: A control that provides a set of mutually exclusive options for the user to select; when the user selects an option, other options are automatically deselected and corresponding operations are triggered. ComboBox / DropDownList: A control that provides a drop-down selection function; when the user selects an option, a corresponding operation is triggered. Timer: A control used to trigger an operation after a specific time interval. It is often used for periodic tasks, animation effects, etc.
[0022] Human - Machine Interface: The Human - Machine Interface (HMI) refers to the communication medium or means between humans and computer systems, and is a platform for two - way information exchange of various symbols and actions between humans and computers.
[0023] Intelligent device: An intelligent device (intelligent device) refers to any device, instrument, or machine with computing and processing capabilities.
[0024] The objective of the present invention is to provide a solution that can facilitate people's supervision of industrial waste, thereby enhancing the convenience and usability of users (management personnel) in managing industrial waste.
[0025] Refer to Figure 1 、 Figure 4 and Figure 5 , Figure 1 is the step - flow chart of the industrial waste storage interaction method. Figure 4 is the schematic diagram of the interface structure of the industrial waste storage management interface. Figure 5 is the schematic diagram of the interface structure of the approaching - expiration storage management interface.
[0026] To achieve the goal of improving the convenience and usability of users' management of industrial waste, the present invention discloses an industrial waste storage interaction method. The industrial waste storage interaction method can be run through an intelligent device. During the operation of the intelligent device, the steps it can achieve include: Step 1: Display a login interface.
[0027] Among them, the login interface is provided with a password input trigger control and a login trigger control. The password input trigger control is used to obtain the password input by the user and record the password as the target password.
[0028] The intelligent device displays the login interface through its human-machine interaction interface. The main function of the login interface is to obtain the user's input password, so as to determine whether the user has the permission to log in according to the input password. Therefore, at least two controls are set on the login interface, namely the password input trigger control and the login trigger control. The user needs to trigger the input trigger control to input the password through the input trigger control. After the user completes the password input, the intelligent device can be informed through the login trigger control to enter the next link.
[0029] Step 2: Determine that the login trigger control is triggered, then verify the target password. After the verification is correct, display the industrial waste storage management interface.
[0030] Among them, the industrial waste storage management interface is provided with: an approaching expiration storage trigger control 101.
[0031] After the intelligent device determines that the login trigger control is triggered, it can obtain the target password from the password input trigger control and then verify the target password. The intelligent device can verify the target password through a local device or a remote server.
[0032] Among them, in some further specific embodiments, the intelligent device can transmit the target password to a remote verification server and request the verification server to verify the target password. The verification server returns the verification result to the intelligent device. The intelligent device completes the verification of the target password by receiving the verification result.
[0033] When the intelligent device determines that the target password verification is correct, it can be considered that the user is legitimate. Therefore, the intelligent device will display the industrial waste storage management interface.
[0034] The function of the industrial waste storage management interface is to provide an interaction interface to help users manage the storage of industrial waste in the warehouse. In order to facilitate the approaching expiration management of the storage of industrial waste in the warehouse, an approaching expiration storage trigger control 101 is set on the industrial waste storage management interface.
[0035] When the user needs to manage the storage of industrial waste, they can trigger the approaching-expiry storage trigger control 101 to inform the intelligent device.
[0036] Step 3: Determine that the approaching-expiry storage trigger control 101 is triggered, and then display the approaching-expiry storage management interface.
[0037] After the intelligent device determines that the user has triggered the approaching-expiry storage trigger control 101, it will display the approaching-expiry storage management interface. The role of the approaching-expiry storage management interface is to set various trigger controls on the same interface, so as to facilitate the user to intuitively and comprehensively understand the approaching-expiry situation of the industrial waste stored in the warehouse.
[0038] To achieve this technical goal, on the approaching-expiry storage management interface, there are set: the 1st approaching-expiry display trigger control 110, the 2nd approaching-expiry display trigger control 120,..., and the ith approaching-expiry display trigger control; i = 1, 2,..., n; n is a positive integer, n ≥ 3.
[0039] In the display area of the ith approaching-expiry display trigger control, there is displayed the ith pie chart, and the ith pie chart includes: the 1st type sector area, the 2nd type sector area,..., the jth type sector area; the filling colors of the 1st type sector area, the 2nd type sector area,..., the jth type sector area are not the same.
[0040] Let the central angle of the jth type sector area be a, then ; P represents the mass of the jth type of industrial waste stored within the ith approaching-expiry reminder time period; Q represents the total mass of all the industrial waste stored; the ith approaching-expiry reminder time period is a pre-set time range; where, j = 1, 2,..., m; m is a positive integer, m ≥ 1; m represents the number of types of industrial waste stored.
[0041] When the intelligent device generates the temporary storage management interface, it will set multiple approaching-expiry display trigger controls on the temporary storage management interface. Among them, the number of approaching-expiry display trigger controls is determined according to the approaching-expiry reminder time periods set in the warehouse. For example, when three approaching-expiry reminder time periods need to be set for the warehouse, then 3 approaching-expiry display trigger controls need to be set. For the convenience of description and explanation, this application takes the setting of 3 approaching-expiry reminder time periods as an example. Among them, the 1st approaching-expiry reminder time period is > 1 day and ≤ 3 days; the 2nd approaching-expiry reminder time period is > 3 days and ≤ 5 days; the 3rd approaching-expiry reminder time period is > 7 days and ≤ 10 days.
[0042] Then, there are 3 expiration display trigger controls set on the expiration storage management interface. These 3 expiration display trigger controls are respectively: the 1st expiration display trigger control 110, the 2nd expiration display trigger control 120, and the 3rd expiration display trigger control 130.
[0043] A pie chart is set on each expiration display trigger control. The pie chart mainly shows the mass ratio between different types of industrial waste within the corresponding expiration reminder time period and all the industrial waste in the warehouse. Therefore, multiple sectors are set on the pie chart, and each sector represents a type of industrial waste. For the sake of description, here, 3 types of industrial waste are taken as an example. Then, there will be 3 sectors set on the pie chart. For the sake of description, these 3 sectors are respectively denoted as: the 1st type sector, the 2nd type sector, and the 3rd type sector.
[0044] The pie chart set on the 1st expiration display trigger control 110 is denoted as the 1st pie chart 201, the pie chart set on the 2nd expiration display trigger control 120 is denoted as the 2nd pie chart 202, and the pie chart set on the 3rd expiration display trigger control 130 is denoted as the 3rd pie chart 203.
[0045] On the 1st pie chart 201, there are the 1st type sector, the 2nd type sector, and the 3rd type sector. On the 2nd pie chart 202, there are the 1st type sector, the 2nd type sector, and the 3rd type sector. On the 3rd pie chart 203, there are the 1st type sector, the 2nd type sector, and the 3rd type sector.
[0046] In the 1st pie chart 201, the central angle of the 1st type sector is determined by the mass ratio of the 1st type of industrial waste stored within the 1st expiration reminder time period to all the industrial waste.
[0047] The central angle of the 2nd type sector is determined by the mass ratio of the 2nd type of industrial waste stored within the 1st expiration reminder time period to all the industrial waste.
[0048] The central angle of the 3rd type sector is determined by the mass ratio of the 3rd type of industrial waste stored within the 1st expiration reminder time period to all the industrial waste.
[0049] Suppose the total mass of all the currently stored industrial waste is 1000 tons, and the 1st type of industrial waste stored within the 1st expiration reminder time period is 10 tons. The 2nd type of industrial waste stored within the 1st expiration reminder time period is 20 tons. The 3rd type of industrial waste stored within the 1st expiration reminder time period is 20 tons.
[0050] Then at this time, the central angle of the 1st type sector is: , that is, the central angle of the 1st type sector is 3.6°.
[0051] At this time, the central angle of the second type of sector area is: , that is, the central angle of the second type of sector area is 7.2°.
[0052] At this time, the central angle of the third type of sector area is: , that is, the central angle of the third type of sector area is 7.2°.
[0053] In the second pie chart 202, the central angle of the first type of sector area is determined by the ratio of the mass of the first type of industrial waste stored within the second approaching expiration reminder time period to the mass of all industrial wastes.
[0054] The central angle of the second type of sector area is determined by the ratio of the mass of the second type of industrial waste stored within the second approaching expiration reminder time period to the mass of all industrial wastes.
[0055] The central angle of the third type of sector area is determined by the ratio of the mass of the third type of industrial waste stored within the second approaching expiration reminder time period to the mass of all industrial wastes.
[0056] Suppose the total mass of all currently stored industrial wastes is 1000 tons, the first type of industrial waste stored within the second approaching expiration reminder time period is 20 tons, the second type of industrial waste stored within the second approaching expiration reminder time period is 20 tons, and the third type of industrial waste stored within the second approaching expiration reminder time period is 10 tons.
[0057] At this time, the central angle of the first type of sector area is: , that is, the central angle of the first type of sector area is 7.2°.
[0058] At this time, the central angle of the second type of sector area is: , that is, the central angle of the second type of sector area is 7.2°.
[0059] At this time, the central angle of the third type of sector area is: , that is, the central angle of the third type of sector area is 3.6°.
[0060] In the third pie chart 203, the central angle of the first type of sector area is determined by the ratio of the mass of the first type of industrial waste stored within the third approaching expiration reminder time period to the mass of all industrial wastes.
[0061] The central angle of the second type of sector area is determined by the ratio of the mass of the second type of industrial waste stored within the third approaching expiration reminder time period to the mass of all industrial wastes.
[0062] The central angle of the third type of sector is determined by the mass ratio of the industrial waste of the third type stored within the third near-term reminder time period to all industrial waste.
[0063] Suppose the total mass of all currently stored industrial waste is 1000 tons, and the industrial waste of the first type stored within the third near-term reminder time period is 40 tons. The industrial waste of the second type stored within the third near-term reminder time period is 40 tons. The industrial waste of the third type stored within the third near-term reminder time period is 20 tons.
[0064] Then at this time, the central angle of the first type of sector is: , that is, the central angle of the first type of sector is 14.4°.
[0065] Then at this time, the central angle of the second type of sector is: , that is, the central angle of the second type of sector is 14.4°.
[0066] Then at this time, the central angle of the third type of sector is: , that is, the central angle of the third type of sector is 7.2°.
[0067] Among them, in order to enable people to better distinguish these three types of sectors, the intelligent device will also fill different colors in the first type of sector, the second type of sector, and the third type of sector. In this specific embodiment, the first type of sector is filled with red, the second type of sector is filled with yellow, and the third type of sector is filled with green.
[0068] The present invention enables users to more clearly understand the storage situation of industrial waste in different near-term reminder time periods by setting a near-term storage management interface, setting multiple near-term display trigger controls on the near-term storage management interface, and setting a pie chart on the near-term display trigger control, and by virtue of the different central angles of the sectors of each type in the pie chart. This enables users to comprehensively grasp the near-term storage situation of industrial waste. It improves the convenience and usability of users in the storage management of industrial waste.
[0069] In order to facilitate users to understand the situation of near-term industrial waste in detail, in some further specific embodiments, the industrial waste storage interaction method further includes: determining that the i-th near-term display trigger control is triggered, and then displaying the i-th sub-interface.
[0070] Among them, the i-th sub-interface is provided with: the first display row, the second display row,..., the k-th display row; k = 1, 2,..., j; Obtain the description information of the first type of industrial waste in the i-th pie chart to obtain the first description information; obtain the description information of the second type of industrial waste in the i-th pie chart to obtain the second description information; …; obtain the description information of the k-th type of industrial waste in the i-th pie chart to obtain the k-th description information; k = 1, 2, …, j; Fill the first description information into the first display row, fill the second description information into the second display row, …, fill the k-th description information into the k-th display row; k = 1, 2, …, j.
[0071] When the user needs to further understand the situation of industrial waste within the corresponding approaching expiration reminder time period, they can trigger the corresponding approaching expiration display trigger control. For the convenience of description, in this specific embodiment, it is taken as an example that the user triggers the first approaching expiration display trigger control 110. When the intelligent device determines that the user has triggered the first approaching expiration display trigger control 110, the first sub-interface will be displayed.
[0072] Among them, there are 3 display rows set on the first sub-interface, namely the first display row, the second display row, and the third display row. The intelligent device obtains the description information of the first type of industrial waste in the first pie chart 201, and records the description information as the first description information. The intelligent device obtains the description information of the second type of industrial waste in the first pie chart 201, and records the description information as the second description information. The intelligent device obtains the description information of the third type of industrial waste in the first pie chart 201, and records the description information as the third description information.
[0073] The intelligent device fills the first description information in the first display row, fills the second description information in the second display row, and fills the third description information in the third display row.
[0074] The user can then understand the situation of the first type of industrial waste in the first pie chart 201 through the first display row on the first sub-interface. Can understand the situation of the second type of industrial waste in the first pie chart 201 through the second display row on the first sub-interface. Understand the situation of the third type of industrial waste in the first pie chart 201 through the third display row on the first sub-interface.
[0075] In order to facilitate users to better view the storage situation of industrial waste in the warehouse, in some further specific embodiments, a monitoring and display control 102 is further provided on the industrial waste storage management interface. The monitoring and display control 102 is used to play the real-time monitoring video of the warehouse storing industrial waste in real time. The intelligent device will connect to the monitoring camera in the warehouse through the communication network, obtain the real-time monitoring video of the monitoring camera, and play and display the obtained real-time monitoring video by using the monitoring and display control 102. Thus, it is convenient for users to view the situation in the warehouse.
[0076] In some further specific embodiments, a warehouse environment display control 104 is further provided on the industrial waste storage management interface. The warehouse environment display control 104 is used to display the humidity, temperature and alarm information of the warehouse. The intelligent device will connect to the humidity sensor, temperature sensor and alarm system in the warehouse through the communication network. Obtain the humidity of the warehouse through the humidity sensor, obtain the temperature of the warehouse through the temperature sensor, and obtain the alarm information of the warehouse through the alarm system. And display the obtained humidity, temperature and alarm information by using the warehouse environment display control 104. Thus, it is convenient for users to view the situation in the warehouse.
[0077] In some further specific embodiments, a storage situation display control 103 is further provided on the industrial waste storage management interface. The storage situation display control 103 is used to display the total mass data of the industrial waste entering the warehouse, the total mass data of the industrial waste leaving the warehouse and the total mass data of the remaining industrial waste in the warehouse. The intelligent device will connect to the management server of the warehouse through the communication network, and obtain the total mass data of the industrial waste entering the warehouse, the total mass data of the industrial waste leaving the warehouse and the total mass data of the remaining industrial waste in the warehouse through the management server. And display the total mass data of the industrial waste entering the warehouse, the total mass data of the industrial waste leaving the warehouse and the total mass data of the remaining industrial waste by using the storage situation display control 103. Thus, it is convenient for users to view the situation in the warehouse.
[0078] On the other hand, referring to Figure 2 , Figure 2 is a schematic structural diagram of an industrial waste storage interaction device.
[0079] Provided is an industrial waste storage interaction device, including: a processor and a memory; wherein, the memory is used to store a computer-readable program. When the computer-readable program is executed by the processor, the processor is enabled to implement the industrial waste storage interaction method as described in any one of the above technical solutions.
[0080] Those of ordinary skill in the art can understand that all or some of the steps and systems disclosed in the above methods can be implemented as software, firmware, hardware, and their appropriate combinations. Some physical components or all physical components can be implemented as software executed by a processor, such as a central processing unit, a digital signal processor, or a microprocessor, or can be implemented as hardware, or can be implemented as an integrated circuit, such as an application-specific integrated circuit. Such software can be distributed on a computer-readable medium, which can include a computer storage medium (or non-transitory medium) and a communication medium (or transitory medium). As is well known to those of ordinary skill in the art, the term computer storage medium includes volatile and non-volatile, removable and non-removable media implemented in any method or technology for storing information, such as computer-readable instructions, data structures, program modules, or other data. Computer storage media includes, but is not limited to, RAM, ROM, EEPROM, flash memory or other memory technologies, CD-ROM, digital versatile disk (DVD) or other optical disk storage, magnetic cassette, tape, magnetic disk storage or other magnetic storage devices, or any other medium that can be used to store the desired information and can be accessed by a computer. It is well known to those of ordinary skill in the art that communication media typically includes computer-readable instructions, data structures, program modules, or other data in a modulated data signal such as a carrier wave or other transmission mechanism, and can include any information delivery medium.
[0081] On the other hand, referring to Figure 3 , Figure 3 is a schematic diagram of the system connection structure of an industrial waste storage interaction system.
[0082] An industrial waste storage interaction system is provided, including: a first display module, a second display module, and a third display module.
[0083] The first display module is used to: display a login interface.
[0084] Wherein, the login interface is provided with a password input trigger control and a login trigger control. The password input trigger control is used to obtain the password input by the user and record the password as the target password.
[0085] The first display module displays the login interface through its human-computer interaction interface. The main function of the login interface is to obtain the input password of the user, so that it can be determined whether the user has the permission to log in according to the input password. Therefore, at least two controls are set on the login interface, namely a password input trigger control and a login trigger control. The user needs to trigger the input trigger control to input the password through the input trigger control. After the user has completed the input of the password, the second display module can be informed through the login trigger control.
[0086] The second display module is used to: determine that the login trigger control is triggered, then verify the target password, and after successful verification, display the industrial waste storage management interface.
[0087] Among them, the industrial waste storage management interface is provided with: an approaching expiration storage trigger control 101.
[0088] After the second display module determines that the login trigger control is triggered, it can obtain the target password from the password input trigger control, and then verify the target password. The second display module can verify the target password through a local device or a remote server.
[0089] Among them, in some further specific embodiments, the second display module can transmit the target password to a remote verification server and request the verification server to verify the target password. The verification server returns the verification result to the second display module. The second display module completes the verification of the target password by receiving the verification result.
[0090] When the second display module determines that the target password is verified correctly, it can be considered that the user is legitimate. Therefore, the second display module will display the industrial waste storage management interface.
[0091] The role of the industrial waste storage management interface is to provide an interaction interface to help users manage the storage of industrial waste in the warehouse. For the convenience of approaching expiration management of the storage of industrial waste in the warehouse, the industrial waste storage management interface is provided with an approaching expiration storage trigger control 101.
[0092] When a user needs to manage the storage of industrial waste, they can trigger the approaching expiration storage trigger control 101 to inform the third display module.
[0093] The third display module is used to: determine that the approaching expiration storage trigger control 101 is triggered, and then display the approaching expiration storage management interface.
[0094] After the third display module determines that the user triggers the approaching expiration storage trigger control 101, it will display the approaching expiration storage management interface. The role of the approaching expiration storage management interface is to set various trigger controls on the same interface to facilitate the user to intuitively and comprehensively understand the approaching expiration situation of the industrial waste stored in the warehouse.
[0095] To achieve this technical goal, among them, the approaching expiration storage management interface is provided with: a first approaching expiration display trigger control 110, a second approaching expiration display trigger control 120,..., and an i-th approaching expiration display trigger control; i = 1, 2,..., n; n is a positive integer, n ≥ 3; In the display area of the i-th approaching expiration display trigger control, an i-th pie chart is displayed. The i-th pie chart includes: a first type of sector area, a second type of sector area,..., a j-th type of sector area; the filling colors of the first type of sector area, the second type of sector area,..., the j-th type of sector area are different; Let the central angle of the j-th type of sector area be a, then ; P represents the mass of the j-th type of industrial waste stored within the i-th approaching expiration reminder time period; Q represents the total mass of all the industrial waste stored; the i-th approaching expiration reminder time period is a pre-set time range. Among them, j = 1, 2,..., m; m is a positive integer, m ≥ 1; m represents the number of types of industrial waste stored.
[0096] When the third display module generates the temporary storage management interface, a plurality of approaching expiration display trigger controls will be set on the temporary storage management interface. Among them, the number of approaching expiration display trigger controls is determined according to the approaching expiration reminder time periods set in the warehouse. For example, when three approaching expiration reminder time periods need to be set for the warehouse, then 3 approaching expiration display trigger controls need to be set. For the convenience of description and explanation, this application takes the setting of three approaching expiration reminder time periods as an example. Among them, the first approaching expiration reminder time period is > 1 day and ≤ 3 days; the second approaching expiration reminder time period is > 3 days and ≤ 5 days; the third approaching expiration reminder time period is > 7 days and ≤ 10 days.
[0097] Then there are 3 approaching expiration display trigger controls set on the approaching expiration storage management interface. These 3 approaching expiration display trigger controls are respectively: the first approaching expiration display trigger control 110, the second approaching expiration display trigger control 120, and the third approaching expiration display trigger control 130.
[0098] A pie chart is set on each approaching expiration display trigger control. The pie chart is mainly used to display the mass ratio between different types of industrial waste within the corresponding approaching expiration reminder time period and all the industrial waste in the warehouse. Therefore, a plurality of sector areas are set on the pie chart, and each sector area represents a type of industrial waste. For the convenience of description, here, three types of industrial waste are taken as an example. Then, there will be 3 sector areas set on the pie chart. For the convenience of description, these 3 sector areas are respectively denoted as: the first type of sector area, the second type of sector area, and the third type of sector area.
[0099] The pie chart set on the first approaching expiration display trigger control 110 is denoted as the first pie chart 201, the pie chart set on the second approaching expiration display trigger control 120 is denoted as the second pie chart 202, and the pie chart set on the third approaching expiration display trigger control 130 is denoted as the third pie chart 203.
[0100] On the first pie chart 201, there will be a first - type sector, a second - type sector, and a third - type sector. On the second pie chart 202, there will be a first - type sector, a second - type sector, and a third - type sector. On the third pie chart 203, there will be a first - type sector, a second - type sector, and a third - type sector.
[0101] In the first pie chart 201, the central angle of the first - type sector is determined by the ratio of the mass of the first - type industrial waste stored within the first impending - reminder time period to the mass of all industrial wastes.
[0102] The central angle of the second - type sector is determined by the ratio of the mass of the second - type industrial waste stored within the first impending - reminder time period to the mass of all industrial wastes.
[0103] The central angle of the third - type sector is determined by the ratio of the mass of the third - type industrial waste stored within the first impending - reminder time period to the mass of all industrial wastes.
[0104] Suppose the total mass of all currently stored industrial wastes is 1000 tons, the mass of the first - type industrial waste stored within the first impending - reminder time period is 10 tons, the mass of the second - type industrial waste stored within the first impending - reminder time period is 20 tons, and the mass of the third - type industrial waste stored within the first impending - reminder time period is 20 tons.
[0105] Then at this time, the central angle of the first - type sector is: , that is, the central angle of the first - type sector is 3.6°.
[0106] Then at this time, the central angle of the second - type sector is: , that is, the central angle of the second - type sector is 7.2°.
[0107] Then at this time, the central angle of the third - type sector is: , that is, the central angle of the third - type sector is 7.2°.
[0108] In the second pie chart 202, the central angle of the first - type sector is determined by the ratio of the mass of the first - type industrial waste stored within the second impending - reminder time period to the mass of all industrial wastes.
[0109] The central angle of the second - type sector is determined by the ratio of the mass of the second - type industrial waste stored within the second impending - reminder time period to the mass of all industrial wastes.
[0110] The central angle of the third - type sector is determined by the ratio of the mass of the third - type industrial waste stored within the second impending - reminder time period to the mass of all industrial wastes.
[0111] Assume that the total mass of all industrial wastes currently stored is 1000 tons, and the industrial waste of the first type stored within the second overdue reminder time period is 20 tons. The industrial waste of the second type stored within the second overdue reminder time period is 20 tons. The industrial waste of the third type stored within the second overdue reminder time period is 10 tons.
[0112] Then at this time, the central angle of the sector area of the first type is: , that is, the central angle of the sector area of the first type is 7.2°.
[0113] Then at this time, the central angle of the sector area of the second type is: , that is, the central angle of the sector area of the second type is 7.2°.
[0114] Then at this time, the central angle of the sector area of the third type is: , that is, the central angle of the sector area of the third type is 3.6°.
[0115] In the third pie chart 203, the central angle of the sector area of the first type is determined by the ratio of the mass of the industrial waste of the first type stored within the third overdue reminder time period to the total mass of all industrial wastes.
[0116] The central angle of the sector area of the second type is determined by the ratio of the mass of the industrial waste of the second type stored within the third overdue reminder time period to the total mass of all industrial wastes.
[0117] The central angle of the sector area of the third type is determined by the ratio of the mass of the industrial waste of the third type stored within the third overdue reminder time period to the total mass of all industrial wastes.
[0118] Assume that the total mass of all industrial wastes currently stored is 1000 tons, and the industrial waste of the first type stored within the third overdue reminder time period is 40 tons. The industrial waste of the second type stored within the third overdue reminder time period is 40 tons. The industrial waste of the third type stored within the third overdue reminder time period is 20 tons.
[0119] Then at this time, the central angle of the sector area of the first type is: , that is, the central angle of the sector area of the first type is 14.4°.
[0120] Then at this time, the central angle of the sector area of the second type is: , that is, the central angle of the sector area of the second type is 14.4°.
[0121] Then at this time, the central angle of the sector area of the third type is: , that is, the central angle of the sector area of the third type is 7.2°.
[0122] Among them, in order to enable people to better distinguish these three types of fan-shaped areas, the intelligent device will also fill different colors in the first type of fan-shaped area, the second type of fan-shaped area, and the third type of fan-shaped area. In this specific embodiment, the first type of fan-shaped area is filled with red, the second type of fan-shaped area is filled with yellow, and the third type of fan-shaped area is filled with green.
[0123] In order to facilitate the user to understand the situation of approaching-expiry industrial waste in detail, in some further specific embodiments, the industrial waste storage interaction system further includes: a fourth display module.
[0124] The fourth display module is used for: determining that the i-th approaching-expiry display trigger control is triggered, and then displaying the i-th sub-interface.
[0125] Among them, on the i-th sub-interface, there are set: the first display row, the second display row,..., the k-th display row; k = 1, 2,..., j; Obtain the description information of the first type of industrial waste in the i-th pie chart to obtain the first description information; obtain the description information of the second type of industrial waste in the i-th pie chart to obtain the second description information;...; obtain the description information of the k-th type of industrial waste in the i-th pie chart to obtain the k-th description information; k = 1, 2,..., j; Fill the first description information into the first display row, fill the second description information into the second display row,..., and fill the k-th description information into the k-th display row; k = 1, 2,..., j.
[0126] When the user needs to further understand the situation of industrial waste within the corresponding approaching-expiry reminder time period, they can trigger the corresponding approaching-expiry display trigger control. For the sake of illustration, in this specific embodiment, it is taken as an example that the user triggers the first approaching-expiry display trigger control 110. When the fourth display module determines that the user triggers the first approaching-expiry display trigger control 110, the first sub-interface will be displayed.
[0127] Among them, there are 3 display rows on the first sub-interface, namely the first display row, the second display row, and the third display row. The fourth display module obtains the description information of the first type of industrial waste in the first pie chart 201, and records the description information as the first description information. The fourth display module obtains the description information of the second type of industrial waste in the first pie chart 201, and records the description information as the second description information. The fourth display module obtains the description information of the third type of industrial waste in the first pie chart 201, and records the description information as the third description information.
[0128] The fourth display module fills the first description information in the first display row, fills the second description information in the second display row, and fills the third description information in the third display row.
[0129] The user can learn about the situation of the first type of industrial waste in the first pie chart 201 through the first display row on the first sub-interface. The user can learn about the situation of the second type of industrial waste in the first pie chart 201 through the second display row on the first sub-interface. The user can learn about the situation of the third type of industrial waste in the first pie chart 201 through the third display row on the first sub-interface.
[0130] In order to facilitate the user to better view the storage situation of industrial waste in the warehouse, in some further specific embodiments, the industrial waste storage management interface is further provided with a monitoring display control 102, and the monitoring display control 102 is used to play the real-time monitoring video of the warehouse storing industrial waste in real time. The intelligent device will connect to the monitoring camera in the warehouse through the communication network, obtain the real-time monitoring video of the monitoring camera, and play and display the obtained real-time monitoring video by using the monitoring display control 102. Thus, it is convenient for the user to view the situation in the warehouse.
[0131] On the other hand, a computer-readable storage medium is also provided, in which a program executable by a processor is stored. When the program executable by the processor is executed by the processor, it is used to implement the industrial waste storage interaction method described in any one of the above specific embodiments.
[0132] The embodiment of the present application also discloses a computer program product, including a computer program or computer instructions. The computer program or computer instructions are stored in a computer-readable storage medium. The processor of the computer device reads the computer program or computer instructions from the computer-readable storage medium, and the processor executes the computer program or computer instructions, so that the computer device executes the industrial waste storage interaction method described in any of the previous embodiments.
[0133] The terms "first", "second", "third", "fourth", etc. (if any) in the specification of the present application and the above-mentioned drawings are used to distinguish similar objects, and do not have to be used to describe a specific order or sequence. It should be understood that such data can be interchanged under appropriate circumstances, so that the embodiments of the present application described here can be implemented in an order other than those illustrated or described here. In addition, the terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusion. For example, a process, method, system, product or device including a series of steps or units does not have to be limited to those steps or units clearly listed, but may include other steps or units not clearly listed or inherent to these processes, methods, products or devices.
[0134] It should be understood that in this application, "at least one (item)" means one or more, and "a plurality" means two or more. "And / or" is used to describe the association relationship of associated objects and indicates that there can be three relationships. For example, "A and / or B" can mean: only A exists, only B exists, and both A and B exist at the same time. Here, A and B can be singular or plural. The character " / " generally represents an "or" relationship between the associated objects before and after. "At least one (item) of the following" or its similar expressions refer to any combination of these items, including any combination of single item (item) or plural items (items). For example, at least one (item) of a, b, or c can mean: a, b, c, "a and b", "a and c", "b and c", or "a, b, and c", where a, b, and c can be single or multiple.
[0135] In several embodiments provided in this application, it should be understood that the disclosed systems, devices, and methods can be implemented in other ways. For example, the device embodiments described above are merely illustrative. For example, the division of the units is only a logical function division. In actual implementation, there can be other division methods. For example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the displayed or discussed coupling or direct coupling or communication connection to each other can be an indirect coupling or communication connection through some interfaces, devices, or units, and can be in electrical, mechanical, or other forms.
[0136] The units described as separate components may or may not be physically separated, and the components displayed as units may or may not be physical units, that is, they can be located in one place, or can be distributed to multiple network units. Some or all of the units can be selected according to actual needs to achieve the purpose of the solution of this embodiment.
[0137] In addition, each functional unit in various embodiments of this application can be integrated in a processing unit, or each unit can exist physically alone, or two or more units can be integrated in one unit. The above-mentioned integrated units can be implemented in the form of hardware or in the form of software functional units.
[0138] When the integrated unit is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present application, in essence, or the part that contributes to the prior art, or all or part of this technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions for causing a computer device (which may be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the methods described in various embodiments of the present application. The aforementioned storage medium includes: various media such as USB flash drives, mobile hard disks, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical discs that can store program codes.
[0139] Although the description of the present application has been quite detailed and has particularly described several of the described embodiments, it is not intended to be limited to any of these details or embodiments or any particular embodiment, but rather should be regarded as effectively covering the intended scope of the present application by considering the prior art to provide a broad interpretation of these claims. In addition, the present application has been described above with embodiments foreseeable by the inventor for the purpose of providing a useful description, and non-substantive modifications to the present application that are not currently foreseeable may still represent equivalent modifications of the present application.
Claims
1. An industrial waste storage interaction method, characterized in that: include: Display a login interface; wherein the login interface is provided with a password input trigger control and a login trigger control, the password input trigger control is used to obtain the password input by the user and record the password as the target password; If the login trigger control is determined to be triggered, the target password is verified, and after the verification is correct, the industrial waste storage management interface is displayed; wherein the industrial waste storage management interface is provided with: an expiration storage trigger control; Determining that the near-expiry storage trigger control is triggered, then displaying the near-expiry storage management interface; The expiring storage management interface is provided with: a first expiring display trigger control, a second expiring display trigger control, ..., and an i-th expiring display trigger control; i=1,2, ...,n; n is a positive integer, n≥3; The display area of the i-th upcoming display trigger control displays an i-th pie chart, and the i-th pie chart includes: a first type of sector area, a second type of sector area, ..., a j-th type of sector area; the first type of sector area, the second type of sector area, ..., the j-th type of sector area have different filling colors; Assume that the central angle of the j-th sector is a, then ; P represents the mass of the jth type of industrial waste stored in the i-th reminder time period; Q represents the total mass of all stored industrial waste; the i-th reminder time period is a preset time range; Wherein, j=1,2,…,m; m is a positive integer, m≥1; m represents the number of types of industrial waste stored.
2. The industrial waste storage interaction method according to claim 1, characterized in that: Also includes: Determine that the i-th upcoming display trigger control is triggered, and then display the i-th sub-interface; The i-th sub-interface is provided with: the 1st display row, the 2nd display row, ..., the k-th display row; k=1, 2, ..., j; Obtaining the description information of the first type of industrial waste in the i-th pie chart to obtain the first description information; Obtain the description information of the second type of industrial waste in the i-th pie chart to obtain the second description information; ...; Obtain the description information of the k-th type of industrial waste in the i-th pie chart to obtain the k-th description information; k=1,2,...,j; Fill the first description information into the first display row, fill the second description information into the second display row, ..., fill the kth description information into the kth display row; k=1,2,...,j.
3. The industrial waste storage interaction method according to claim 1, characterized in that: The near-expiry storage management interface is also provided with a monitoring display control, and the monitoring display control is used to play the real-time monitoring image of the storage warehouse in real time.
4. The industrial waste storage interaction method according to claim 1, characterized in that: The near-expiry storage management interface is also provided with a warehouse environment display control, and the warehouse environment display control is used to display the humidity, temperature and alarm information of the storage warehouse.
5. The industrial waste storage interaction method according to claim 1, characterized in that: The near-expiry storage management interface is also provided with a storage status display control, which is used to display the total mass data of industrial waste entering the storage warehouse, the total mass data of industrial waste leaving the warehouse, and the total mass data of surplus industrial waste.
6. An industrial waste storage interactive device, characterized in that: include: processor; A memory for storing a computer readable program; When the computer-readable program is executed by the processor, the processor is caused to implement the industrial waste storage interaction method according to any one of claims 1 to 5.
7. An industrial waste storage interactive system, characterized in that: include: A first display module, a second display module and a third display module; The first display module is used to: display a login interface; wherein the login interface is provided with a password input trigger control and a login trigger control, the password input trigger control is used to obtain a password input by a user and record the password as a target password; The second display module is used to: determine that the login trigger control is triggered, then verify the target password, and after the verification is correct, display the industrial waste storage management interface; wherein the industrial waste storage management interface is provided with: an expiration storage trigger control; The third display module is used to: determine that the near-expiry storage trigger control is triggered, and then display the near-expiry storage management interface; wherein the near-expiry storage management interface is provided with: the first near-expiry display trigger control, the second near-expiry display trigger control, ..., and the i-th near-expiry display trigger control; i=1,2,...,n; n is a positive integer, n≥3; The display area of the i-th upcoming display trigger control displays an i-th pie chart, and the i-th pie chart includes: a first type of sector area, a second type of sector area, ..., a j-th type of sector area; the first type of sector area, the second type of sector area, ..., the j-th type of sector area have different filling colors; Assume that the central angle of the j-th sector is a, then ; P represents the mass of the jth type of industrial waste stored in the i-th reminder time period; Q represents the total mass of all stored industrial waste; the i-th reminder time period is a preset time range; Wherein, j=1,2,…,m; m is a positive integer, m≥1; m represents the number of types of industrial waste stored.
8. An industrial waste storage interactive system according to claim 7, characterized in that: The fourth display module is further included, and the fourth display module is used to: determine that the i-th upcoming display trigger control is triggered, and then display the i-th sub-interface; The i-th sub-interface is provided with: the 1st display row, the 2nd display row, ..., the k-th display row; k=1, 2, ..., j; Obtain the description information of the first type of industrial waste in the i-th pie chart to obtain the first description information; obtain the description information of the second type of industrial waste in the i-th pie chart to obtain the second description information; ...; obtain the description information of the k-th type of industrial waste in the i-th pie chart to obtain the k-th description information; k=1,2,...,j; Fill the first description information into the first display row, fill the second description information into the second display row, ..., fill the kth description information into the kth display row; k=1,2,...,j.
9. An industrial waste storage interactive system according to claim 7, characterized in that: The near-expiry storage management interface is also provided with a monitoring display control, and the monitoring display control is used to play the real-time monitoring image of the storage warehouse in real time.
10. A computer-readable storage medium, characterized in that: A processor-executable program is stored therein, and when the processor-executable program is executed by the processor, it is used to implement the industrial waste storage interaction method as described in any one of claims 1 to 5.