Remote communication control system for multiple printing devices
By analyzing the operation data and status data of the multi-printing device, and determining control instructions in combination with real-time communication control requirements, the problem of being unable to accurately schedule and control multiple printing devices in the prior art is solved, and the precise remote communication control and work efficiency of the multi-printing device are achieved.
Patent Information
- Application Number
- CN202510134398.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-06
- Publication Date
- 2025-05-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing multi-printing device remote communication control system cannot accurately schedule and control multiple printing devices, resulting in the inability to realize effective communication control.
By analyzing the operation data and status data of the multi-printing device, combining real-time communication control requirements, control instructions are determined, accurate remote communication control of the multi-printing device is realized, and control instructions are adjusted in time to maintain the optimal working state.
The working efficiency of multi-printing devices is improved, making remote communication control more accurate and accurate, and can be adjusted in time to maintain optimal working conditions.
Smart Images

Figure CN119937424A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of remote control, and in particular to a remote communication control system for multiple printing devices. Background Art
[0002] At present, as the openness of manufacturing production sites has received more and more attention, upper-level applications in enterprises have begun to pay attention to production data in lower-level workshops, and have attempted to form a more advanced intelligent management model by acquiring centralized production data. In printing companies, most of the equipment in the production workshop can exchange data and communicate remotely with each other to collaboratively complete production tasks.
[0003] However, the existing remote communication control system for multiple printing devices cannot accurately schedule the multiple printing devices, and thus cannot accurately implement effective communication control of the multiple printing devices.
[0004] Therefore, the present invention provides a remote communication control system for multiple printing devices. Summary of the invention
[0005] The present invention provides a remote communication control system for multiple printing devices, which is used to analyze the operating data and status data of each printing device in the multiple printing devices, thereby determining control instructions in combination with real-time communication control requirements, thereby making the remote communication control of the multiple printing devices more accurate, and also being able to perform remote communication control adjustments in a timely and accurate manner, thereby improving the working efficiency of the multiple printing devices.
[0006] The present invention provides a remote communication control system for multiple printing devices, comprising: Data acquisition module: used to collect the operation data of each printing device in real time based on the preset sensor to obtain the first operation data, and at the same time, monitor the operation status of each printing device in real time based on the preset sensor to obtain the first status data; Instruction synthesis module: used for obtaining real-time communication control requirements, and synthesizing the first state data with the real-time communication control requirements to determine the remote control instructions of the target printing device; Instruction execution module: used for performing instruction parsing based on the remote control instruction, thereby determining the first control instruction of each printing device, and obtaining the second control instruction in combination with the first operation data, thereby executing the instruction; Execution adjustment module: used to judge the operation status of each printing device based on the instruction execution result, and timely adjust the second control instruction so that each printing device is in the best working state.
[0007] The data acquisition module provided by the present invention includes: A first acquisition unit is used to collect the real-time operation data of each printing device in real time based on a preset sensor, and perform data transmission and data standardization processing on the real-time operation data to obtain the first operation data of each printing device; The second acquisition unit is used to monitor the real-time operating status of each printing device in real time based on a preset status sensor to obtain real-time status data; A state judgment unit: used for judging whether the operation state of each printing device belongs to a normal operation state based on the real-time state data; If the operation status of each printing device is not in a normal operation status, the device number of the corresponding printing device is obtained, and a status warning is issued in combination with the corresponding real-time status data; If the operation status of each printing device belongs to the normal operation status, the real-time status data is used as the first status data of each printing device.
[0008] The instruction synthesis module provided according to the present invention includes: A first evaluation unit: used for obtaining the real-time communication control requirement, and performing a comprehensive evaluation on each printing device based on the first state data and the real-time communication control requirement to obtain a first evaluation result; A printing priority unit: used for determining the printing priority of the target printing device that needs to be remotely controlled according to the first evaluation result; Initial control unit: used for determining an initial remote control instruction according to the first evaluation result and the corresponding printing priority; Remote control unit: used to determine the feasibility of the initial remote control instruction. If the initial remote control instruction is feasible, the initial remote control instruction is determined to be the remote control instruction of the target printing device.
[0009] The first evaluation unit provided according to the present invention comprises: The demand acquisition subunit is used to acquire the real-time communication control demand of each printing device, and extract the communication control sub-demand related to printing of each printing device, so as to obtain the first control demand of each printing device; The state analysis subunit is used to perform data analysis on the first state data, thereby determining the real-time working state and real-time performance level of each printing device, and obtaining a first performance state analysis result; Demand analysis subunit: used to analyze the first control demand and evaluate the demand priority of each sub-demand in the first control demand; An analysis and synthesis subunit: used to synthesize the first performance state analysis result and the demand priority of each sub-demand in the first control demand to obtain a first comprehensive result; Evaluation and synthesis subunit: used for performing evaluation based on the first synthesis result, thereby determining the first evaluation sub-result of each printing device under the current communication demand, thereby obtaining the first comprehensive evaluation result T of each printing device; ; Wherein, T is the comprehensive first evaluation result of each printing device, is the first influence weight of the printing device on the first evaluation result, is the second influence weight of the first comprehensive result of the current printing device on the first evaluation results of the multiple printing devices, n is the number of printing devices in the multiple printing devices, is the influence coefficient of the device type corresponding to the jth printing device on the ith printing device, is the influence weight of the device type corresponding to the jth printing device on the ith printing device, is the kth first comprehensive sub-result in the first comprehensive result corresponding to the i-th printing device; is the result influence weight of the kth first comprehensive sub-result in the first comprehensive result corresponding to the i-th printing device, is the number of the first comprehensive sub-results in the first comprehensive result corresponding to the i-th printing device, is the number of remaining printing devices in the multi-printing device except the current printing device, that is, .
[0010] The instruction execution module provided according to the present invention includes: A first control unit: used for performing command analysis according to the remote control command, so as to determine a first control command for each printing device; Printing parameter unit: used for determining the printing parameters to be executed by the corresponding printing device according to the first control instruction; A second control unit: used for adjusting the first control instruction based on the first operation data to obtain a second control instruction; Remote control unit: used to execute instructions based on the second control instruction, so as to remotely control the corresponding printing device in combination with the printing parameters.
[0011] The first control unit provided according to the present invention comprises: The instruction processing subunit is used to process the instruction based on the received remote control instruction, and decode the instruction based on the processed instruction to obtain the first instruction, so that the first instruction can meet the instruction recognition requirement of the intelligent terminal; The instruction parsing subunit is used to parse the instruction based on the first instruction, so as to obtain a first mapping relationship table between each parsed instruction and the printing device and the corresponding parameter setting; Instruction optimization subunit: used for generating a first optimization control instruction based on the first mapping relationship table; The optimization judgment subunit is used to judge whether the first optimization control instruction can be correctly identified by the corresponding printing device in combination with the device parameters of each printing device, and if it can be correctly identified, determine that the first optimization control instruction is the first initial instruction; The instruction verification subunit is used to obtain the instruction verification code of the remote control instruction received by the intelligent terminal, and determine the integrity of the instruction verification code, so as to realize the instruction verification of the first initial instruction; If the instruction verification code is complete, the first initial instruction is judged to be qualified; If the command verification code is incomplete, the first initial command is judged to be unqualified, and the remote control command needs to be re-determined, so as to be verified again; The instruction determination subunit is used to use the qualified first initial instruction as the first control instruction of each printing device.
[0012] The instruction execution module provided according to the present invention includes: An execution comparison unit: used for real-time monitoring of the execution result of each printing device for the second control instruction, and comparing the execution result with a preset control target, so as to determine the execution effect of the execution result based on the comparison result; Instruction adjustment unit: used to determine whether each printing device is in the optimal working state range according to the execution effect; If it is within the optimal working state range, the corresponding execution result is judged to be qualified; Otherwise, the control deviation between the execution result and the preset control target is obtained, so as to obtain the instruction adjustment scheme corresponding to the control deviation; Optimization execution unit: used to optimize the second control instructions of each printing device based on the instruction adjustment plan to obtain the second optimized control instructions, and perform remote communication control on each printing device based on the second optimized control instructions, so that each printing device is in the best working state.
[0013] The monitoring optimization module provided by the present invention specifically includes: The first monitoring unit is used to continuously monitor the real-time operation data and real-time status data of each printing device in the current working cycle; The first operation unit is used to sort the real-time operation data of the same printing device in the current working cycle according to the working sequence, and fill them into the same coordinate system in sequence, so as to obtain the first operation curve of each printing device; The first state unit is used to sort the real-time state data of the same printing device in the current working cycle according to the working sequence, and fill them into the same coordinate system in sequence, so as to obtain the first state curve of each printing device; Performance judgment unit: used to judge the curve fluctuation of the first operation curve and the first state curve of the same printing device, so as to determine the working performance of the current printing device in the current working cycle, and optimize the remote communication control instructions of the intelligent terminal based on the working performance results.
[0014] Compared with the prior art, the beneficial effects of the present invention are as follows: a remote communication control system for multiple printing devices provided by the present invention analyzes the operating data and status data of each printing device in the multiple printing devices, and thereby determines control instructions in combination with real-time communication control requirements, thereby making the remote communication control of multiple printing devices more precise, and also being able to make remote communication control adjustments in a timely and accurate manner, thereby improving the working efficiency of multiple printing devices. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In order to more clearly illustrate the technical solutions in the present invention or the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative work.
[0016] Figure 1 It is a structural diagram of a remote communication control system for multiple printing devices provided by an embodiment of the present invention. DETAILED DESCRIPTION
[0017] In order to make the purpose, technical solution and advantages of the present invention clearer, the technical solution of the present invention will be clearly and completely described below in conjunction with the drawings of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0018] Embodiment 1: The embodiment of the present invention provides a remote communication control system for multiple printing devices, such as Figure 1 As shown, including: Data acquisition module: used to collect the operation data of each printing device in real time based on the preset sensor to obtain the first operation data, and at the same time, monitor the operation status of each printing device in real time based on the preset sensor to obtain the first status data; Instruction synthesis module: used for obtaining real-time communication control requirements, and synthesizing the first state data with the real-time communication control requirements to determine the remote control instructions of the target printing device; Instruction execution module: used for performing instruction parsing based on the remote control instruction, thereby determining the first control instruction of each printing device, and obtaining the second control instruction in combination with the first operation data, thereby executing the instruction; Execution adjustment module: used to judge the operation status of each printing device based on the instruction execution result, and timely adjust the second control instruction so that each printing device is in the best working state.
[0019] In this embodiment, the preset sensor refers to a sensor pre-installed on the printing device, which is used to monitor and collect the operating data and status of the printing device in real time. Such data include but are not limited to key parameters such as temperature, humidity, speed, and pressure.
[0020] In this embodiment, the first operating data refers to the operating data of the printing device collected in real time by a preset sensor.
[0021] In this embodiment, the first status data is the operating status of the printing device monitored in real time by a preset sensor.
[0022] In this embodiment, the real-time communication control demand refers to the demand for remote control of the printing device proposed by the system in real time according to actual needs. The real-time communication control demand is based on production planning, fault handling or other operational considerations.
[0023] In this embodiment, the remote control instruction is an instruction for remotely controlling the target printing device determined comprehensively based on the first status data and the real-time communication control requirement, for example, it may include starting, stopping, adjusting parameters, etc.
[0024] In this embodiment, instruction parsing is to decompose and analyze the remote control instructions to determine the specific control instructions that each printing device needs to execute.
[0025] In this embodiment, the first control instruction is a specific control instruction determined for each printing device after instruction parsing.
[0026] In this embodiment, the second control instruction is an instruction for more finely controlling the printing device in combination with the first operating data and the first control instruction. The second control instruction may adjust or optimize the first control instruction according to the real-time operating data.
[0027] In this embodiment, instruction execution refers to the printing device executing a corresponding operation according to the second control instruction. For example, instruction execution includes adjusting parameters such as speed, pressure, temperature, or starting / stopping operation.
[0028] In this embodiment, the optimal working state refers to the operating state in which the printing device achieves the optimal balance in terms of efficiency, quality, energy consumption, etc. By timely adjusting the second control instruction, each printing device can be kept in the optimal working state as much as possible.
[0029] The beneficial effect of the above technical solution is: by analyzing the operation data and status data of each printing device in the multiple printing devices, and then determining the control instructions in combination with the real-time communication control requirements, the remote communication control of the multiple printing devices can be made more accurate, and the remote communication control adjustments can also be made in a timely and accurate manner, thereby improving the working efficiency of the multiple printing devices.
[0030] Embodiment 2: Based on Example 1, the data acquisition module includes: A first acquisition unit is used to collect the real-time operation data of each printing device in real time based on a preset sensor, and perform data transmission and data standardization processing on the real-time operation data to obtain the first operation data of each printing device; The second acquisition unit is used to monitor the real-time operating status of each printing device in real time based on a preset status sensor to obtain real-time status data; A state judgment unit: used for judging whether the operation state of each printing device belongs to a normal operation state based on the real-time state data; If the operation status of each printing device is not in a normal operation status, the device number of the corresponding printing device is obtained, and a status warning is issued in combination with the corresponding real-time status data; If the operation status of each printing device belongs to the normal operation status, the real-time status data is used as the first status data of each printing device.
[0031] In this embodiment, the preset sensor refers to a sensor pre-installed on the printing device, which is used to monitor and collect the operating data and status of the printing device in real time. Such data include but are not limited to key parameters such as temperature, humidity, speed, and pressure.
[0032] In this embodiment, the real-time operation data is the data of the printing device during operation collected in real time by preset sensors. The real-time operation data includes the measurement values of physical quantities such as temperature, pressure, speed, humidity, and other parameters related to printing quality, efficiency, etc.
[0033] In this embodiment, data transmission refers to the process of transmitting real-time operation data from the sensor to the data processing system or the monitoring center.
[0034] In this embodiment, data standardization processing is to process the real-time operation data to make it conform to certain format, unit or range requirements, so as to facilitate subsequent data analysis and processing, including data cleaning, format conversion, unit unification and other operations.
[0035] In this embodiment, the first operation data is standardized operation data of each printing device obtained after data transmission and data standardization processing.
[0036] In this embodiment, the real-time status data refers to the operation status data of the printing device collected in real time by a preset status sensor.
[0037] In this embodiment, the normal operating state is a state in which the printing device operates according to expected functions and performances under normal operating conditions.
[0038] In this embodiment, the device number is a unique identifier of each printing device and is used to distinguish different printing devices.
[0039] In this embodiment, the status warning refers to a warning or reminder issued by the system when it is detected that the operating status of the printing device does not belong to the normal operating status.
[0040] In this embodiment, when the first status data determines that the operating status of the printing device belongs to the normal operating status, the real-time status data is recorded and used as the status data of each printing device.
[0041] The beneficial effect of the above technical solution is: by real-time collection and analysis of the operation data and status data of the printing device, monitoring and early warning of the printing device are realized, which helps to timely discover and deal with potential faults and ensure smooth production.
[0042] Embodiment 3: Based on Example 2, the instruction synthesis module includes: A first evaluation unit: used for obtaining the real-time communication control requirement, and performing a comprehensive evaluation on each printing device based on the first state data and the real-time communication control requirement to obtain a first evaluation result; A printing priority unit: used for determining the printing priority of the target printing device that needs to be remotely controlled according to the first evaluation result; Initial control unit: used for determining an initial remote control instruction according to the first evaluation result and the corresponding printing priority; Remote control unit: used to determine the feasibility of the initial remote control instruction. If the initial remote control instruction is feasible, the initial remote control instruction is determined to be the remote control instruction of the target printing device.
[0043] In this embodiment, the real-time communication control demand refers to the demand for remote control of the printing device proposed by the system in real time according to actual needs. The real-time communication control demand is based on production planning, fault handling or other operational considerations.
[0044] In this embodiment, the comprehensive evaluation refers to a comprehensive analysis and evaluation of the performance, efficiency, stability, etc. of each printing device based on the first state data and the real-time communication control requirements.
[0045] In this embodiment, the first evaluation result is a quantitative index about the performance and requirements of each printing device obtained after comprehensive evaluation.
[0046] In this embodiment, the printing priority refers to the urgency or importance of remotely controlling the target printing device. The priority may be based on various factors, such as production demand, equipment failure degree, maintenance cost, etc.
[0047] In this embodiment, the initial remote control instruction is a preliminary instruction for remotely controlling the target printing device, which is formulated according to the first evaluation result and the corresponding printing priority.
[0048] In this embodiment, instruction feasibility refers to determining whether the initial remote control instruction is feasible in actual operation and whether it can achieve the expected effect.
[0049] In this embodiment, the remote control instruction is an instruction for remotely controlling the target printing device determined comprehensively based on the first status data and the real-time communication control requirement, for example, it may include starting, stopping, adjusting parameters, etc.
[0050] The beneficial effect of the above technical solution is: by comprehensively evaluating the printing device in combination with the communication control requirements, the remote control instructions of the target printing device can be determined, which can make the determined remote control instructions more accurate and better meet the accuracy of remote communication control of multiple printing devices.
[0051] Embodiment 4: Based on Embodiment 3, the first evaluation unit includes: The demand acquisition subunit is used to acquire the real-time communication control demand of each printing device, and extract the communication control sub-demand related to printing of each printing device, so as to obtain the first control demand of each printing device; The state analysis subunit is used to perform data analysis on the first state data, thereby determining the real-time working state and real-time performance level of each printing device, and obtaining a first performance state analysis result; Demand analysis subunit: used to analyze the first control demand and evaluate the demand priority of each sub-demand in the first control demand; An analysis and synthesis subunit: used to synthesize the first performance state analysis result and the demand priority of each sub-demand in the first control demand to obtain a first comprehensive result; Evaluation and synthesis subunit: used for performing evaluation based on the first synthesis result, thereby determining the first evaluation sub-result of each printing device under the current communication demand, thereby obtaining the first comprehensive evaluation result T of each printing device; ; Wherein, T is the comprehensive first evaluation result of each printing device, is the first influence weight of the printing device on the first evaluation result, is the second influence weight of the first comprehensive result of the current printing device on the first evaluation results of the multiple printing devices, n is the number of printing devices in the multiple printing devices, is the influence coefficient of the device type corresponding to the jth printing device on the ith printing device, is the influence weight of the device type corresponding to the jth printing device on the ith printing device, is the kth first comprehensive sub-result in the first comprehensive result corresponding to the i-th printing device; is the result influence weight of the kth first comprehensive sub-result in the first comprehensive result corresponding to the i-th printing device, is the number of the first comprehensive sub-results in the first comprehensive result corresponding to the i-th printing device, is the number of remaining printing devices in the multi-printing device except the current printing device, that is, .
[0052] In this embodiment, the real-time communication control demand refers to the demand of the printing device for communication control resources (such as network bandwidth, data transmission rate, etc.) at a certain moment or time period in order to complete a specific task or operation.
[0053] In this embodiment, the communication control sub-requirements refer to the specific communication control requirements related to printing in the real-time communication control requirements, such as the stability of data transmission, the integrity of data packets, the support of communication protocols, etc. These sub-requirements are the basis for realizing the overall communication control requirements.
[0054] In this embodiment, the first control requirement is the overall requirement of each printing device in terms of communication control obtained after extraction and sorting, and it includes multiple communication control sub-requirements related to printing.
[0055] In this embodiment, the first status data refers to data generated when the printing device is running, reflecting its working status and performance level, such as running time, processing speed, error rate, etc.
[0056] In this embodiment, data analysis is a process for processing and analyzing the first status data to extract useful information and evaluate the working status and performance level of the printing device.
[0057] In this embodiment, the real-time working status refers to the actual working status of the printing device at a certain moment or time period, such as whether it is operating normally or whether there is a fault.
[0058] In this embodiment, the real-time performance level refers to the performance capability of the printing device at a certain moment or time period, such as processing speed, printing quality, etc.
[0059] In this embodiment, the first performance status analysis result is obtained after analyzing the first status data, and is an evaluation result on the real-time working status and performance level of the printing device.
[0060] In this embodiment, demand analysis refers to a detailed analysis and interpretation of the first control demand to clarify the specific content, requirements and importance of each sub-demand.
[0061] In this embodiment, the demand priority is to sort the priorities of each sub-demand in the first control demand to determine which sub-demands need to be met first.
[0062] In this embodiment, the first comprehensive result is obtained by comprehensively considering the first performance status analysis result and the priority of each sub-requirement in the first control requirement, which reflects the degree to which the printing device satisfies the communication control requirement in the current state.
[0063] In this embodiment, the first evaluation sub-result is a comprehensive evaluation result of each printing device under the current communication demand, which is obtained based on the first comprehensive result and reflects the performance and demand satisfaction degree of the printing device under the current conditions.
[0064] In this embodiment, the first evaluation result is an overall result obtained after comprehensive evaluation of all printing devices, which includes the first evaluation sub-result of each printing device and is used to comprehensively evaluate the communication control requirements and performance of the printing device group.
[0065] The beneficial effect of the above technical solution is: by splitting the communication control requirements and combining the requirement priority judgment, the device evaluation results of each printing device are determined, and the remote control instructions of the target printing device are determined, so that the determined remote control instructions can be more accurate and better able to meet the accuracy of remote communication control of multiple printing devices.
[0066] Embodiment 5: Based on Example 3, the instruction execution module includes: A first control unit: used for performing command analysis according to the remote control command, so as to determine a first control command for each printing device; Printing parameter unit: used for determining the printing parameters to be executed by the corresponding printing device according to the first control instruction; A second control unit: used for adjusting the first control instruction based on the first operation data to obtain a second control instruction; Remote control unit: used to execute instructions based on the second control instruction, so as to remotely control the corresponding printing device in combination with the printing parameters.
[0067] In this embodiment, instruction parsing is to decompose and analyze the remote control instructions to determine the specific control instructions that each printing device needs to execute.
[0068] In this embodiment, the first control instruction is a specific control instruction determined for each printing device after instruction parsing.
[0069] In this embodiment, printing parameters refer to parameters that need to be set and adjusted during the printing process, such as ink volume, printing speed, paper type, etc.
[0070] In this embodiment, the first operation data refers to data generated when the printing device executes the previous round of control instructions or works normally, including but not limited to sensor data, status information, etc.
[0071] In this embodiment, the second control instruction is an instruction for more finely controlling the printing device in combination with the first operating data and the first control instruction. The second control instruction may adjust or optimize the first control instruction according to the real-time operating data.
[0072] In this embodiment, instruction execution refers to the printing device executing a corresponding operation according to the second control instruction. For example, instruction execution includes adjusting parameters such as speed, pressure, temperature, or starting / stopping operation.
[0073] The beneficial effect of the above technical solution is that by parsing the remote control instructions and combining the printing parameters for remote communication control, the remote communication control results of multiple printing devices can be made more accurate and effective.
[0074] Embodiment 6: Based on the fifth embodiment, the first control unit includes: The instruction processing subunit is used to process the instruction based on the received remote control instruction, and decode the instruction based on the processed instruction to obtain the first instruction, so that the first instruction can meet the instruction recognition requirement of the intelligent terminal; The instruction parsing subunit is used to parse the instruction based on the first instruction, so as to obtain a first mapping relationship table between each parsed instruction and the printing device and the corresponding parameter setting; Instruction optimization subunit: used for generating a first optimization control instruction based on the first mapping relationship table; The optimization judgment subunit is used to judge whether the first optimization control instruction can be correctly identified by the corresponding printing device in combination with the device parameters of each printing device, and if it can be correctly identified, determine that the first optimization control instruction is the first initial instruction; The instruction verification subunit is used to obtain the instruction verification code of the remote control instruction received by the intelligent terminal, and determine the integrity of the instruction verification code, so as to realize the instruction verification of the first initial instruction; If the instruction verification code is complete, the first initial instruction is judged to be qualified; If the command verification code is incomplete, the first initial command is judged to be unqualified, and the remote control command needs to be re-determined, so as to be verified again; The instruction determination subunit is used to use the qualified first initial instruction as the first control instruction of each printing device.
[0075] In this embodiment, the remote control instruction refers to an instruction sent from a remote location (such as a control center, an intelligent terminal, etc.) to the printing device, which is used to control the operation or parameter setting of the printing device.
[0076] In this embodiment, the instruction processing is to pre-process the received remote control instructions, such as format conversion, data verification, etc., to ensure the correctness and recognizability of the instructions.
[0077] In this embodiment, instruction decoding refers to decoding the processed remote control instruction into a format recognizable by the system or device, that is, obtaining the first instruction.
[0078] In this embodiment, the instruction recognition requirement refers to the requirements of the intelligent terminal or printing device on the format, content, etc. of the received instruction to ensure that the instruction can be correctly understood and executed.
[0079] In this embodiment, instruction parsing refers to further analyzing and splitting the decoded first instruction to obtain a mapping relationship between each instruction and the printing device and corresponding parameter settings.
[0080] In this embodiment, the first mapping relationship table is a table used to record the mapping relationship between each parsing instruction and the printing device and the corresponding parameter setting, and is used to guide the subsequent generation of control instructions.
[0081] In this embodiment, the first optimized control instruction is generated based on the first mapping relationship table. The optimized control instruction is closer to the actual demand and optimal working state of the printing device.
[0082] In this embodiment, the device parameters refer to basic properties or configuration information of the printing device, such as model, specifications, performance parameters, etc.
[0083] In this embodiment, the first initial instruction refers to a first optimized control instruction that is confirmed to be correctly recognized by the corresponding printing device.
[0084] In this embodiment, the instruction verification code is additional information used to verify the integrity or correctness of the remote control instruction, and is usually sent together with the instruction.
[0085] In this embodiment, instruction verification is to check the instruction and its verification code to ensure the integrity and correctness of the instruction.
[0086] In this embodiment, the first control instruction is a first initial instruction that has been verified to be qualified and will be sent to the printing device as a final control instruction.
[0087] The beneficial effect of the above technical solution is that by parsing the remote control instructions and combining the printing parameters for remote communication control, the remote communication control results of multiple printing devices can be made more accurate and effective.
[0088] Embodiment 7: Based on Example 6, the instruction execution module includes: An execution comparison unit: used for real-time monitoring of the execution result of each printing device for the second control instruction, and comparing the execution result with a preset control target, so as to determine the execution effect of the execution result based on the comparison result; Instruction adjustment unit: used to determine whether each printing device is in the optimal working state range according to the execution effect; If it is within the optimal working state range, the corresponding execution result is judged to be qualified; Otherwise, the control deviation between the execution result and the preset control target is obtained, so as to obtain the instruction adjustment scheme corresponding to the control deviation; Optimization execution unit: used to optimize the second control instructions of each printing device based on the instruction adjustment plan to obtain the second optimized control instructions, and perform remote communication control on each printing device based on the second optimized control instructions, so that each printing device is in the best working state.
[0089] In this embodiment, the second control instruction refers to an instruction sent to the printing device for controlling the printing device to perform a specific task or operation.
[0090] In this embodiment, the execution result refers to the output or effect generated by the printing device after executing the control instruction, such as printing quality, speed, stability, etc.
[0091] In this embodiment, the preset control target refers to a state or standard that the printing device is expected to achieve after executing the control instruction, and is usually set according to production needs and quality requirements.
[0092] In this embodiment, the execution effect refers to an evaluation of whether the execution result meets the preset target after comparing the execution result with the preset control target.
[0093] In this embodiment, the optimal operating state range refers to the operating parameter range within which the printing device can maintain optimal performance, efficiency and stability when executing the control instruction.
[0094] In this embodiment, the control deviation refers to the difference or degree of deviation between the execution result and the preset control target.
[0095] In this embodiment, the instruction adjustment scheme refers to a scheme for adjusting or optimizing the original control instruction according to the control deviation, so as to improve the execution effect and bring the printing device closer to the optimal working state.
[0096] In this embodiment, the second optimized control instruction refers to a control instruction that has been optimized, which is closer to the optimal working state of the printing device and can more effectively control the execution of the printing device.
[0097] In this embodiment, remote communication control refers to remotely controlling and operating the printing device through remote communication technology (such as the Internet, mobile communication network, etc.).
[0098] In this embodiment, the optimal working state refers to the operating state in which the printing device achieves the optimal balance in terms of efficiency, quality, energy consumption, etc. By timely adjusting the second control instruction, each printing device can be kept in the optimal working state as much as possible.
[0099] The beneficial effect of the above technical solution is that by judging the execution effect of the instruction execution result, the instruction adjustment can be carried out more timely and accurately, thereby improving the working efficiency of the multi-printing device.
[0100] Embodiment 8: Based on Example 7, it also includes: a monitoring optimization module, specifically including: The first monitoring unit is used to continuously monitor the real-time operation data and real-time status data of each printing device in the current working cycle; The first operation unit is used to sort the real-time operation data of the same printing device in the current working cycle according to the working sequence, and fill them into the same coordinate system in sequence, so as to obtain the first operation curve of each printing device; The first state unit is used to sort the real-time state data of the same printing device in the current working cycle according to the working sequence, and fill them into the same coordinate system in sequence, so as to obtain the first state curve of each printing device; Performance judgment unit: used to judge the curve fluctuation of the first operation curve and the first state curve of the same printing device, so as to determine the working performance of the current printing device in the current working cycle, and optimize the remote communication control instructions of the intelligent terminal based on the working performance results.
[0101] In this embodiment, the current working cycle refers to the cycle of the working task currently being executed by the printing device, which generally includes the entire time required from starting to completing the task.
[0102] In this embodiment, the real-time operation data refers to various parameters or status information of the printing device during operation, such as temperature, pressure, speed, etc., collected in real time by the sensor.
[0103] In this embodiment, the real-time status data refers to data collected by the sensor in real time that reflects the current operating status of the printing device, such as whether it is faulty, whether it is shut down, vibration status, etc.
[0104] In this embodiment, the working sequence refers to the sequential relationship between various time points or time periods during the working process of the printing device.
[0105] In this embodiment, the first operation curve is a curve obtained by sorting the real-time operation data of the same printing device in the current working cycle according to the working sequence and sequentially filling them into the same coordinate system, which is used to reflect the parameter changes of the printing device during the operation process.
[0106] In this embodiment, the first state curve is a curve obtained by sorting the real-time state data of the same printing device in the current working cycle according to the working sequence and sequentially filling them into the same coordinate system, which is used to reflect the state changes of the printing device in the current working cycle.
[0107] In this embodiment, the curve fluctuation refers to the fluctuation of the operation curve or the state curve on the time axis, reflecting the stability, periodicity and other characteristics of the parameters or state of the printing device.
[0108] In this embodiment, the working performance refers to the comprehensive performance of the printing device in terms of working effect, efficiency, stability, etc. in the current working cycle.
[0109] In this embodiment, the intelligent terminal refers to a terminal device with intelligent processing capabilities, such as a smart phone, a tablet computer, an intelligent controller, etc., which can receive, process and execute instructions from a remote server.
[0110] In this embodiment, the remote communication control instruction refers to an instruction sent to the smart terminal via remote communication means (such as the Internet, mobile communication network, etc.), which is used to control the smart terminal to perform specific operations or tasks.
[0111] In this embodiment, instruction optimization refers to adjusting and improving the remote communication control instructions according to the working performance results of the printing device to improve the control effect, reduce resource consumption or improve system stability.
[0112] The beneficial effect of the above technical solution is: by real-time monitoring of the operating data and status data of each printing device, the working stability of each printing device can be judged more accurately, so that parameters and instructions can be adjusted in time, thereby improving the working efficiency of each printing device.
[0113] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit the same. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that the technical solutions described in the aforementioned embodiments may still be modified, or some of the technical features may be replaced by equivalents. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A remote communication control system for multiple printing devices, characterized in that: include: Data acquisition module: used to collect the operation data of each printing device in real time based on the preset sensor to obtain the first operation data, and at the same time, monitor the operation status of each printing device in real time based on the preset sensor to obtain the first status data; Instruction synthesis module: used for obtaining real-time communication control requirements, and synthesizing the first state data with the real-time communication control requirements to determine the remote control instructions of the target printing device; Instruction execution module: used for performing instruction parsing based on the remote control instruction, thereby determining the first control instruction of each printing device, and obtaining the second control instruction in combination with the first operation data, thereby executing the instruction; Execution adjustment module: used to judge the operation status of each printing device based on the instruction execution result, and timely adjust the second control instruction so that each printing device is in the best working state.
2. A remote communication control system for multiple printing devices according to claim 1, characterized in that: Data acquisition module, including: A first acquisition unit is used to collect the real-time operation data of each printing device in real time based on a preset sensor, and perform data transmission and data standardization processing on the real-time operation data to obtain the first operation data of each printing device; The second acquisition unit is used to monitor the real-time operating status of each printing device in real time based on a preset status sensor to obtain real-time status data; A state judgment unit: used for judging whether the operation state of each printing device belongs to a normal operation state based on the real-time state data; If the operation status of each printing device is not in a normal operation status, the device number of the corresponding printing device is obtained, and a status warning is issued in combination with the corresponding real-time status data; If the operation status of each printing device belongs to the normal operation status, the real-time status data is used as the first status data of each printing device.
3. A remote communication control system for multiple printing devices according to claim 2, characterized in that: Instruction synthesis module, including: A first evaluation unit: used for obtaining the real-time communication control requirement, and performing a comprehensive evaluation on each printing device based on the first state data and the real-time communication control requirement to obtain a first evaluation result; A printing priority unit: used for determining the printing priority of the target printing device that needs to be remotely controlled according to the first evaluation result; Initial control unit: used for determining an initial remote control instruction according to the first evaluation result and the corresponding printing priority; Remote control unit: used to determine the feasibility of the initial remote control instruction. If the initial remote control instruction is feasible, the initial remote control instruction is determined to be the remote control instruction of the target printing device.
4. A remote communication control system for multiple printing devices according to claim 3, characterized in that: The first assessment unit includes: The demand acquisition subunit is used to acquire the real-time communication control demand of each printing device, and extract the communication control sub-demand related to printing of each printing device, so as to obtain the first control demand of each printing device; The state analysis subunit is used to perform data analysis on the first state data, thereby determining the real-time working state and real-time performance level of each printing device, and obtaining a first performance state analysis result; Demand analysis subunit: used to analyze the first control demand and evaluate the demand priority of each sub-demand in the first control demand; An analysis and synthesis subunit: used to synthesize the first performance state analysis result and the demand priority of each sub-demand in the first control demand to obtain a first comprehensive result; Evaluation and synthesis subunit: used for performing evaluation based on the first synthesis result, thereby determining the first evaluation sub-result of each printing device under the current communication demand, thereby obtaining the first comprehensive evaluation result T of each printing device; ; Wherein, T is the comprehensive first evaluation result of each printing device, is the first influence weight of the printing device on the first evaluation result, is the second influence weight of the first comprehensive result of the current printing device on the first evaluation results of the multiple printing devices, n is the number of printing devices in the multiple printing devices, is the influence coefficient of the device type corresponding to the jth printing device on the ith printing device, is the influence weight of the device type corresponding to the jth printing device on the ith printing device, is the kth first comprehensive sub-result in the first comprehensive result corresponding to the i-th printing device; is the result influence weight of the kth first comprehensive sub-result in the first comprehensive result corresponding to the i-th printing device, is the number of the first comprehensive sub-results in the first comprehensive result corresponding to the i-th printing device, is the number of remaining printing devices in the multi-printing device except the current printing device, that is, .
5. A remote communication control system for multiple printing devices according to claim 3, characterized in that: Instruction execution module, including: A first control unit: used for performing command analysis according to the remote control command, so as to determine a first control command for each printing device; Printing parameter unit: used for determining the printing parameters to be executed by the corresponding printing device according to the first control instruction; A second control unit: used for adjusting the first control instruction based on the first operation data to obtain a second control instruction; Remote control unit: used to execute instructions based on the second control instruction, so as to perform remote communication control on the corresponding printing device in combination with the printing parameters.
6. A remote communication control system for multiple printing devices according to claim 5, characterized in that: The first control unit comprises: The instruction processing subunit is used to process the instruction based on the received remote control instruction, and decode the instruction based on the processed instruction to obtain the first instruction, so that the first instruction can meet the instruction recognition requirement of the intelligent terminal; The instruction parsing subunit is used to parse the instruction based on the first instruction, so as to obtain a first mapping relationship table between each parsed instruction and the printing device and the corresponding parameter setting; Instruction optimization subunit: used for generating a first optimization control instruction based on the first mapping relationship table; The optimization judgment subunit is used to judge whether the first optimization control instruction can be correctly identified by the corresponding printing device in combination with the device parameters of each printing device, and if it can be correctly identified, determine that the first optimization control instruction is the first initial instruction; The instruction verification subunit is used to obtain the instruction verification code of the remote control instruction received by the intelligent terminal, and determine the integrity of the instruction verification code, so as to realize the instruction verification of the first initial instruction; If the instruction verification code is complete, the first initial instruction is judged to be qualified; If the command verification code is incomplete, the first initial command is judged to be unqualified, and the remote control command needs to be re-determined, so as to be verified again; The instruction determination subunit is used to use the qualified first initial instruction as the first control instruction of each printing device.
7. A remote communication control system for multiple printing devices according to claim 5, characterized in that: Instruction execution module, including: An execution comparison unit: used for real-time monitoring of the execution result of each printing device for the second control instruction, and comparing the execution result with a preset control target, so as to determine the execution effect of the execution result based on the comparison result; Instruction adjustment unit: used to determine whether each printing device is in the optimal working state range according to the execution effect; If it is within the optimal working state range, the corresponding execution result is judged to be qualified; Otherwise, the control deviation between the execution result and the preset control target is obtained, so as to obtain the instruction adjustment scheme corresponding to the control deviation; Optimization execution unit: used to optimize the second control instructions of each printing device based on the instruction adjustment plan to obtain the second optimized control instructions, and perform remote communication control on each printing device based on the second optimized control instructions, so that each printing device is in the best working state.
8. A remote communication control system for multiple printing devices according to claim 7, characterized in that: Also includes: Monitoring and optimization module, including: The first monitoring unit is used to continuously monitor the real-time operation data and real-time status data of each printing device in the current working cycle; The first operation unit is used to sort the real-time operation data of the same printing device in the current working cycle according to the working sequence, and fill them into the same coordinate system in sequence, so as to obtain the first operation curve of each printing device; The first state unit is used to sort the real-time state data of the same printing device in the current working cycle according to the working sequence, and fill them into the same coordinate system in sequence, so as to obtain the first state curve of each printing device; Performance judgment unit: used to judge the curve fluctuation of the first operation curve and the first state curve of the same printing device, so as to determine the working performance of the current printing device in the current working cycle, and optimize the remote communication control instructions of the intelligent terminal based on the working performance results.