WO2021104342A1 - 基于物联网的激光彩色打印方法及系统 - Google Patents

基于物联网的激光彩色打印方法及系统 Download PDF

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Publication number
WO2021104342A1
WO2021104342A1 PCT/CN2020/131642 CN2020131642W WO2021104342A1 WO 2021104342 A1 WO2021104342 A1 WO 2021104342A1 CN 2020131642 W CN2020131642 W CN 2020131642W WO 2021104342 A1 WO2021104342 A1 WO 2021104342A1
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Prior art keywords
laser color
printing
color printer
print
printer
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PCT/CN2020/131642
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English (en)
French (fr)
Inventor
张怿
黄智�
王伟聪
吴泽民
龙安川
唐忞旻
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深圳市金城保密技术有限公司
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Publication of WO2021104342A1 publication Critical patent/WO2021104342A1/zh

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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/12Digital output to print unit, e.g. line printer, chain printer
    • G06F3/1201Dedicated interfaces to print systems
    • G06F3/1202Dedicated interfaces to print systems specifically adapted to achieve a particular effect
    • G06F3/1203Improving or facilitating administration, e.g. print management
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/12Digital output to print unit, e.g. line printer, chain printer
    • G06F3/1201Dedicated interfaces to print systems
    • G06F3/1223Dedicated interfaces to print systems specifically adapted to use a particular technique
    • G06F3/1224Client or server resources management
    • G06F3/1226Discovery of devices having required properties
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/12Digital output to print unit, e.g. line printer, chain printer
    • G06F3/1201Dedicated interfaces to print systems
    • G06F3/1223Dedicated interfaces to print systems specifically adapted to use a particular technique
    • G06F3/1237Print job management
    • G06F3/1253Configuration of print job parameters, e.g. using UI at the client
    • G06F3/1254Automatic configuration, e.g. by driver
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/12Digital output to print unit, e.g. line printer, chain printer
    • G06F3/1201Dedicated interfaces to print systems
    • G06F3/1278Dedicated interfaces to print systems specifically adapted to adopt a particular infrastructure
    • G06F3/1285Remote printer device, e.g. being remote from client or server
    • G06F3/1288Remote printer device, e.g. being remote from client or server in client-server-printer device configuration

Definitions

  • This application relates to the technical field of printers, and in particular to a laser color printing method and system based on the Internet of Things.
  • the purpose of this application is to provide a laser color printing method and system based on the Internet of Things, which can perform printing activation files and servers through the configured print activation file every time a laser color printer is added. Interact, and find the printer relationship information of the matching slave laser color printer in the target print queue from the master laser color printer corresponding to the target print queue, and add IoT configuration information to the target print queue to start printing During operation, it performs linkage printing with the slave laser color printer according to the configuration information of the Internet of Things, so as to solve the problem of matching failure or coordination error in the linkage printing process during the linkage printing process, and effectively avoid the new laser color printer joining the new laser color printer. Increase the IoT communication failure of other laser color printers linked with laser color printers.
  • the present application provides a laser color printing method based on the Internet of Things, which is applied to a laser color printing system based on the Internet of Things.
  • the laser color printing system based on the Internet of Things includes a laser color printer that communicates with each other, Internet of Things terminal and server, the method includes:
  • the Internet of Things terminal obtains the printing activation file of the application environment where it is located, and sends the printing activation file to the server.
  • the printing activation file includes the difference between the newly added laser color printer in the application environment and the current printer set. Printer relationship information and the IoT control type of the newly added laser color printer;
  • the server generates printer configuration information of the newly-added laser color printer according to the print activation file, and sends the printer configuration information to the newly-added laser color printer, and the printer configuration information includes the print activation File and queue configuration information for the print activation file, where the queue configuration information includes the IoT identifier of the target print queue;
  • the newly-added laser color printer searches for the IoT identifier of the target print queue according to the printer configuration information, and sends the queue configuration information and the print activation file to the corresponding target print queue according to the IoT identifier
  • the main laser color printer ;
  • the master laser color printer sends the printer relationship information of the slave laser color printer in the target print queue that matches the IoT control type of the newly-added laser color printer to the newly-added laser color printer;
  • the newly-added laser color printer adds the Internet of Things configuration information of the newly-added laser color printer to the target print queue according to the printer relationship information of the slave laser color printer, so as to start the printing operation according to the Internet of Things configuration
  • the information is printed in linkage with the slave laser color printer.
  • the embodiments of the present application provide a laser color printing system based on the Internet of Things.
  • the laser color printing system based on the Internet of Things includes a laser color printer, an Internet of Things terminal, and a server that are communicatively connected to each other;
  • the Internet of Things terminal is used to obtain the printing activation file of the application environment where it is located, and send the printing activation file to the server, and the printing activation file includes the new laser color printer and the current printer set in the application environment
  • the server is configured to generate printer configuration information of the newly-added laser color printer according to the printing activation file, and send the printer configuration information to the newly-added laser color printer, and the printer configuration information includes all The print activation file and queue configuration information for the print activation file, where the queue configuration information includes the IoT identification of the target print queue;
  • the newly-added laser color printer is used to search for the IoT identification of the target print queue according to the printer configuration information, and send the queue configuration information and the print activation file to the target printing according to the IoT identification
  • the main laser color printer corresponding to the queue
  • the master laser color printer is configured to send, according to the queue configuration information, the printer relationship information of the slave laser color printer that matches the IoT control type of the newly added laser color printer in the target print queue to the Add laser color printer;
  • the newly-added laser color printer is configured to add the Internet of Things configuration information of the newly-added laser color printer to the target print queue according to the printer relationship information of the slave laser color printer, so as to start the printing operation according to the The configuration information of the Internet of Things is printed in linkage with the slave laser color printer.
  • an embodiment of the present application provides a laser color printer, including a processor, a memory, and a network interface.
  • the memory and the network interface processor can be connected through a bus system.
  • the network interface is used to receive messages
  • the memory is used to store programs, instructions or codes
  • the processor is used to execute the programs, instructions or codes in the memory to complete all of the above-mentioned first aspect or any possible design method of the first aspect. Action performed.
  • an embodiment of the present application provides a computer-readable storage medium with instructions stored in the computer-readable storage medium, which when detected on a computer, cause the computer to execute the above method.
  • the printing activation file is configured through the IoT terminal in the application environment, and the server sends the printer configuration to the newly added laser color printer according to the printing activation file.
  • the printer relationship information between the new laser color printer and the current printer set and the IoT control type of the new laser color printer can be sent according to the Internet of Things identification of the searched target print queue Give the master laser color printer corresponding to the target print queue, and obtain the printer relationship information of the slave laser color printer that matches the IoT control type of the newly added laser color printer in the target print queue found by the master laser color printer.
  • FIG. 1 is a schematic diagram of an application scenario of a laser color printing system based on the Internet of Things provided by an embodiment of the application;
  • FIG. 2 is a schematic flowchart of a laser color printing method based on the Internet of Things provided by an embodiment of the application;
  • step S110 shown in FIG. 2;
  • step S120 shown in FIG. 2;
  • FIG. 5 is a schematic flowchart of each sub-step included in step S150 shown in FIG. 2;
  • FIG. 6 is a schematic block diagram of the structure of the laser color printer shown in FIG. 1 provided by an embodiment of the application.
  • At least one includes one or more.
  • Multiple means two or more.
  • at least one of A, B, and C includes: the presence of A alone, the presence of B alone, the presence of A and B at the same time, the presence of A and C at the same time, the presence of B and C at the same time, and the presence of A, B, and C at the same time.
  • FIG. 1 is an interactive schematic diagram of a laser color printing system 10 based on the Internet of Things provided by an embodiment of the present application.
  • the laser color printing system 10 based on the Internet of Things may be an online debugging platform such as a laser printer.
  • the laser color printing system 10 based on the Internet of Things may include a laser color printer 100, a server 200, and an Internet of Things terminal 300, and the server 200 may include a processor that executes command operations.
  • the laser color printing system 10 based on the Internet of Things shown in FIG. 1 is only a feasible example. In other feasible embodiments, the laser color printing system 10 based on the Internet of Things may also include only the components shown in FIG. 1 Part of or may also include other components.
  • the server 200 may be a single server or a server group.
  • the operation server group may be centralized or distributed (for example, the server 200 may be a distributed system).
  • the server 200 may be local or remote relative to the laser color printer 100.
  • the server 200 can access information stored in the laser color printer 100, the IoT terminal 300, and a database, or any combination thereof via a network.
  • the server 200 may be directly connected to at least one of the laser color printer 100, the Internet of Things terminal 300, and a database to access the information and/or data stored therein.
  • the server 200 may be implemented on a cloud platform; as an example, the cloud platform may include private cloud, public cloud, hybrid cloud, community cloud, distributed cloud, and inter-cloud. , Multi-cloud, etc., or any combination of them.
  • the server 200, the laser color printer 100, and the IoT terminal 300 may be implemented on the electronic device 200 having one or more components shown in FIG. 2 in the embodiments of the present application.
  • the server 200 may include a processor.
  • the processor may process information and/or data related to the service request to perform one or more functions described in this application.
  • the processor may include one or more processing cores (for example, a single-core processor (S) or a multi-core processor (S)).
  • the processor may include a Central Processing Unit (CPU), an Application Specific Integrated Circuit (ASIC), a dedicated instruction set processor (Application Specific Instruction-set Processor, ASIP), and a graphics processing unit.
  • CPU Central Processing Unit
  • ASIC Application Specific Integrated Circuit
  • ASIP Application Specific Instruction-set Processor
  • the network can be used for the exchange of information and/or data.
  • one or more components in the laser color printing system 10 based on the Internet of Things can send information and/or data to other components .
  • the server 200 may obtain a print request from the laser color printer 100 via the network.
  • the network can be any type of wired or wireless network, or a combination of them.
  • the network 130 may include a wired network, a wireless network, an optical fiber network, a telecommunication network, an intranet, the Internet, a local area network (LAN), a wide area network (Wide Area Network, WAN), and a wireless local area network (Wireless Local Area Networks). , WLAN), Metropolitan Area Network (MAN), Wide Area Network (Wide Area Network, WAN), Public Switched Telephone Network (PSTN), Bluetooth network, ZigBee network, or Near Field Communication (Near Field Communication, NFC) network, etc., or any combination thereof.
  • the network may include one or more network access points.
  • the network may include wired or wireless network access points, such as base stations and/or network switching nodes, through which one or more components of the laser color printing system 10 based on the Internet of Things may be connected to the network to exchange data and /Or information.
  • the aforementioned database can store data and/or instructions.
  • the database may store data obtained from the laser color printer 100 and/or the IoT terminal 300.
  • the database may store data and/or instructions for the exemplary methods described in this application.
  • the database may include large-capacity memory, removable memory, volatile read-write memory, or read-only memory (Read-Only Memory, ROM), etc., or any combination thereof.
  • mass storage may include magnetic disks, optical disks, solid-state drives, etc.; removable storage may include flash drives, floppy disks, optical disks, memory cards, zip disks, tapes, etc.; volatile read-write storage may include random access memory ( Random Access Memory, RAM; RAM can include dynamic RAM (Dynamic Random Access Memory, DRAM), double data rate synchronous dynamic RAM (Double Date-Rate Synchronous RAM, DDR SDRAM); static RAM (Static Random-Access Memory, SRAM) ), Thyristor-Based Random Access Memory (T-RAM) and Zero-Capacitor RAM (Zero-RAM), etc.
  • RAM Random Access Memory
  • RAM can include dynamic RAM (Dynamic Random Access Memory, DRAM), double data rate synchronous dynamic RAM (Double Date-Rate Synchronous RAM, DDR SDRAM); static RAM (Static Random-Access Memory, SRAM) ), Thyristor-Based Random Access Memory (T-RAM) and Zero-Capacitor RAM (Zero-RAM), etc
  • ROM may include mask ROM (Mask Read-Only Memory, MROM), programmable ROM (Programmable Read-Only Memory, PROM), Erasable Programmable ROM (Programmable Read-only Memory, PEROM), electrical Erasable programmable ROM (Electrically Erasable Programmable read only memory, EEPROM), compact disc ROM (CD-ROM), and digital universal disk ROM, etc.
  • MROM mask ROM
  • PROM programmable ROM
  • PROM Programmable ROM
  • PEROM Erasable Programmable ROM
  • EEPROM Electrical Erasable programmable ROM
  • CD-ROM compact disc ROM
  • digital universal disk ROM etc.
  • the database can be implemented on a cloud platform.
  • the cloud platform may include private cloud, public cloud, hybrid cloud, community cloud, distributed cloud, cross-cloud, multi-cloud, or other similar, or any combination thereof.
  • the database may be connected to a network to communicate with one or more components in an IoT-based laser color printing system 10 (eg, server 200, laser color printer 100, IoT terminal 300, etc.).
  • an IoT-based laser color printing system 10 eg, server 200, laser color printer 100, IoT terminal 300, etc.
  • One or more components in the laser color printing system 10 based on the Internet of Things can access data or instructions stored in a database via a network.
  • the database can be directly connected to one or more components in the laser color printing system 10 based on the Internet of Things (for example, the server 200, the laser color printer 100, the Internet of Things terminal 300, etc.); or, in some implementations
  • the database may also be a part of the server 200.
  • FIG. 2 is a schematic flowchart of the laser color printing method based on the Internet of Things provided in an embodiment of the application.
  • the laser color printing method based on the Internet of Things provided in this embodiment can be as shown in FIG. 1
  • the laser color printing system 10 based on the Internet of Things shown is implemented, and the laser color printing method based on the Internet of Things will be introduced in detail below.
  • Step S110 The Internet of Things terminal obtains the printing activation file of the application environment where it is located, and sends the printing activation file to the server.
  • the printing activation file includes the printer relationship information between the newly added laser color printer and the current printer set in the application environment and the Added IoT control type of laser color printer.
  • Step S120 The server generates printer configuration information of the newly added laser color printer according to the printing activation file, and sends the printer configuration information to the newly added laser color printer.
  • the printer configuration information includes the printing activation file and queue configuration information for the printing activation file.
  • the queue configuration information includes the IoT identification of the target print queue.
  • Step S130 the newly added laser color printer searches for the IoT identification of the target print queue according to the printer configuration information, and sends the queue configuration information and the printing activation file to the main laser color printer corresponding to the target print queue according to the IoT identification.
  • step S140 the master laser color printer sends the printer relationship information of the slave laser color printer in the target print queue that matches the IoT control type of the newly added laser color printer to the newly added laser color printer according to the queue configuration information.
  • Step S150 the newly added laser color printer adds the IoT configuration information of the newly added laser color printer to the target print queue according to the printer relationship information from the laser color printer, so as to start the printing operation according to the IoT configuration information and the slave laser color The printer performs linkage printing.
  • the printing activation file is configured through the IoT terminal in the application environment, and the server sends printer configuration information to the newly added laser color printer according to the printing activation file.
  • the laser color printer can send the printer relationship information between the newly added laser color printer and the current printer set and the IoT control type of the newly added laser color printer to the target print queue according to the Internet of Things identification of the searched target print queue.
  • the newly-added IoT configuration information of the laser color printer can be linked to the slave laser color printer based on the IoT configuration information when the printing operation is started, so as to solve the difference in the type of IoT control due to the laser color printer itself and other laser color printers.
  • step S110 please refer to FIG. 3 in combination, which can be specifically implemented through the following sub-steps:
  • the Internet of Things terminal establishes two-way interactive communication with the newly-added laser color printer according to the adding request of the newly-added laser color printer in the application environment, and obtains the information of the newly-added laser color printer from the newly-added laser color printer. IoT control type and IoT printing control information.
  • Sub-step S112 comparing the Internet of Things printing control information of the current printer set in the application environment of the Internet of Things printing control information to obtain printer relationship information between the printer relationship information between the newly added laser color printer and the current printer set .
  • a print activation file of the application environment is generated according to the printer relationship information and the Internet of Things control type.
  • step S120 please refer to FIG. 4 in combination, which can be specifically implemented through the following sub-steps:
  • the server determines the corresponding target print queue according to the print activation file and obtains the queue identifier of the target print queue, where the printer relationship between each laser color printer in the target print queue and the newly added laser color printer is related to the printer The average matching degree of the relationship information exceeds the set matching degree.
  • Sub-step S122 configure the queue configuration information for the printing activation file according to the IoT configuration information of each laser color printer in the target print queue.
  • the printer configuration information of the newly added laser color printer is generated according to the queue configuration information, the queue identifier of the target print queue, and the printing activation file.
  • the linkage obtained by each laser color printer in the target print queue through the simulated linkage printing process can be obtained.
  • the result of the communication process and then determine the first communication information of each laser color printer in the linkage communication process and the second communication information during the disconnection of the linkage communication process in the result of the linkage communication process, and establish the relationship between the first communication information and the second communication information Correspondence.
  • the fourth communication information of the laser color printer in the process of disconnecting the linkage communication is determined, wherein, according to The communication breakpoint value in the first communication information and the communication breakpoint value in the second communication information corresponding to the two laser color printers, and the communication breakpoint value in the third communication information of the laser color printer, determine the laser color printer
  • the communication breakpoint value in the fourth communication information is based on the communication breakpoint recovery value in the first communication information and the communication breakpoint recovery value in the second communication information corresponding to the two laser color printers, and the laser color printer
  • the communication breakpoint recovery value in the third communication information of the laser color printer determines the communication breakpoint recovery value in the fourth communication information of the laser color printer, where two of the communication breakpoint values selected in the fourth communication information of the laser color printer are determined Among the two laser color printers selected for determining the communication breakpoint recovery value in the fourth communication information of the laser color printer, at most
  • the queue configuration information for the printing activation file can be configured according to the first communication information, the second communication information, the third communication information, and the fourth communication information.
  • this embodiment takes into account the configuration information of the communication information configuration queue of each laser color printer that simulates the linkage communication process during the linkage printing process and disconnects the linkage communication process, which can effectively solve the subsequent problems caused by the Internet of Things control type of the laser color printer itself.
  • the addition of the newly-added laser color printer has caused the Internet of Things communication failures in other laser color printers linked with the newly-added laser color printer.
  • the master laser color printer can obtain each laser color printer according to the effective communication node of each laser color printer corresponding to the queue configuration information and the communication information corresponding to each laser color printer
  • the IoT control parameters of the corresponding printing type, and the IoT control sequence results are obtained according to the preset IoT control parameter level range and the printing type IoT control parameters corresponding to the laser color printer.
  • the control result can be obtained according to the preset control strategy and the control sequence result of the Internet of Things.
  • the control result includes the first control set and the second control set.
  • the laser color printers included in the first control set are all the same as the newly added laser color printers.
  • the printers have the same first type of IoT control type, and the laser color printers included in the second control set are all of the second type that is different from the newly added laser color printer's IoT control type.
  • the statistical results include: the number of laser color printers of the first type and the number of laser color printers of the second type. One or more of the number of laser color printers, the ratio of the number of laser color printers of the first type to the total number of laser color printing.
  • the linked printing configuration result can be scanned according to the scanning mode in the preset scanning sequence, and the first scanning node of the linked printing configuration result can be obtained.
  • the second scan node of the target laser color printer corresponding to each first scan node of the linked printing configuration result can be determined.
  • each target laser color printer According to each first scanning node and the corresponding second scanning node of each target laser color printer, multiple candidate slave laser color printers included in the linkage printing configuration information of the linkage printing configuration result can be determined, and the linkage printing Multiple original laser color printers corresponding to the configuration results.
  • the original laser color printer corresponding to the candidate slave laser color printer can be determined separately, and according to the candidate slave laser color printer's printing member level in the linkage printing configuration information and the linkage printing configuration information and The candidate is the corresponding relationship between the original laser color printers corresponding to the laser color printer, and extracts at least one printing range segment corresponding to the candidate laser color printer from the original laser color printers corresponding to the candidate laser color printer, And for each extracted print range segment, according to the corresponding relationship between the print range segment and the linked printing configuration information, set sequence information for the print range segment.
  • sequence information of each print range segment corresponding to each candidate slave laser color printer can be determined respectively, and the print range segments can be sorted according to the sequence information.
  • a weighted judgment can be performed on each sorted printing range segment to obtain a list of target candidate printer members corresponding to the linked printing configuration result.
  • a slave laser color printer that matches the IoT control type of the newly added laser color printer can be determined from the target print queue.
  • the printer relationship information of the selected slave laser color printer can be sent to the newly added laser color printer.
  • step S150 please refer to FIG. 5 in combination, which can be specifically implemented through the following sub-steps:
  • sub-step S151 in the process of starting the printing operation, the printing data of the text information and the printing data of the image information of the target printing file are obtained according to the configuration information of the Internet of Things.
  • Sub-step S152 Determine a preset number of print nodes corresponding to the print node sequence according to the print node sequence specified by the target print file.
  • Sub-step S153 performing adaptation processing on the printing data of the text information, dividing the printing data of the text information into a preset number of printing nodes, performing adaptation processing on the printing data of the image information, and dividing the printing data of the image information To the preset number of printing nodes.
  • Sub-step S154 according to the text information printing parameter values corresponding to the preset number of print nodes, synthesize the print data of the text information divided into the preset number of print nodes to obtain the first print data of the text information to be fused and printed , And synthesize the print data of the image information divided into the preset number of print nodes according to the image information printing parameter values respectively corresponding to the preset number of print nodes to obtain the second print data of the image information to be fused and printed.
  • Sub-step S155 Determine the linked print data according to the layout order of the target print file according to the first print data and the second print data, and determine from the linked print data according to the load rate of the newly added laser color printer and the load rate of the laser color printer Hand over the third print data printed by the newly added laser color printer, and hand over the fourth print data printed from the laser color printer.
  • sub-step S156 it is determined that the first printing node for printing the third printing data from the laser color printer and the second printing node for printing the fourth printing data from the laser color printer are newly added.
  • Sub-step S157 the newly added laser color printer prints the third print data according to the layout order of the print target print file according to the first printing node, and prints the fourth print from the laser color printer according to the second print node according to the layout order of the print target print file data.
  • the typesetting order of the target print file can be followed.
  • Process the first print data and the second print data to determine the initial linkage print data then perform feature extraction on the initial linkage print data to obtain a linkage print feature sequence, and then divide the linkage print feature sequence into multiple linkage print blocks in turn ,
  • Each linked printing block includes a main linked printing block, each main linked printing block is spliced with a slave linked printing block, and each main linked printing block and its corresponding slave linked printing block include multiple linked printing feature information.
  • the last linked printing characteristic information of the linked printing block matches the first linked printing characteristic information of the spliced slave linked printing blocks.
  • the low-level prediction results of the main linkage printing block in each linkage printing block and the high-level prediction results of each linkage printing block can be calculated according to all linkage printing blocks, and the low-level prediction results of each linkage printing block can be obtained.
  • the linked printing data of the predicted results and the high-level predicted results and then extract the reference printing sequence of the linked printing data, and obtain the print queue library of the newly added laser color printer and the last printing task from the laser color printer.
  • the reference printing sequence includes multiple printing nodes .
  • the print sequence of any print file is divided into multiple print node subsequences, each print node subsequence includes at least one print node, and two adjacent print node subsequences
  • the intersection between the sequences includes a preset number of print nodes.
  • the preset number is an integer greater than or equal to 0 and less than a specified value.
  • the specified value is any print file including the number of print nodes and the number of divided print node subsequences Quotient.
  • the print sequence of any print file has a repeating sequence
  • obtain the reference print node subsequence of any print file the reference print node subsequence includes at least one print node, and the number of print nodes included in the reference print node subsequence is less than any The number of print nodes included in a print file.
  • the matching degree between the linked print data and any print file is determined, and the matching degree between the linked print data and any print file is determined according to the matching degree between the linked print data and any print file.
  • the load rate of the newly added laser color printer and the load rate of the slave laser color printer are determined by the third print data printed by the newly added laser color printer and the fourth print data printed by the laser color printer.
  • the laser color printer 100 may be the aforementioned newly-added laser color printer or the aforementioned main Laser color printer, or the aforementioned laser color printer.
  • the laser color printer 100 may include a network interface 110, a machine-readable storage medium 120, a processor 130 and a bus 140.
  • the simulation container data of the processor 130 may be one or more.
  • one processor 130 is taken as an example; the network interface 110, the machine-readable storage medium 120, and the processor 130 may be connected by a bus 140 or other methods, as shown in FIG. 6 Take the connection via the bus 140 as an example.
  • the machine-readable storage medium 120 can be used to store software programs, computer-executable programs, and modules, such as program instructions/modules corresponding to the laser color printing method based on the Internet of Things in the embodiments of the present application.
  • the processor 130 detects the software programs, instructions, and modules stored in the machine-readable storage medium 120 to execute various functional applications and data processing of the terminal device, that is, to realize the above-mentioned laser color printing method based on the Internet of Things. No longer.
  • the machine-readable storage medium 120 may mainly include a program storage area and a data storage area.
  • the program storage area may store an operating system and an application program required for at least one function; the data storage area may store data created according to the use of the terminal, etc. .
  • the machine-readable storage medium 120 may be volatile memory or non-volatile memory, or may include both volatile and non-volatile memory.
  • the non-volatile memory can be read-only memory (Read-Only Memory, ROM), programmable read-only memory (Programmable ROM, PROM), erasable programmable read-only memory (Erasable PROM, EPROM), and electrically available Erase programmable read-only memory (Electrically EPROM, EEPROM) or flash memory.
  • the volatile memory may be a random access memory (Random Access Memory, RAM), which is used as an external cache.
  • RAM Random Access Memory
  • many forms of RAM are available, such as static random access memory (Static RAM, SRAM), dynamic random access memory (Dynamic RAM, DRAM), synchronous dynamic random access memory (Synchronous DRAM, SDRAM), double data rate synchronous dynamic random access memory (Double Data Rate SDRAM, DDR SDRAM), enhanced synchronous dynamic random access memory (Enhanced SDRAM, ESDRAM), synchronous connection dynamic random access memory (Synchlink DRAM, SLDRAM) And Direct Rambus RAM (DR RAM).
  • the memories of the systems and methods described herein are intended to include, but are not limited to, these and any other memories suitable for publishing nodes.
  • the machine-readable storage medium 120 may further include a memory remotely provided with respect to the processor 130, and these remote memories may be connected to the terminal device through a network. Examples of the aforementioned networks include, but are not limited to, the Internet, intranets, local area networks, transfer communication networks, and combinations thereof.
  • the processor 130 may be an integrated circuit chip with signal processing capability. In the implementation process, each step of the foregoing method embodiment may be completed by an integrated logic circuit of hardware in the processor 130 or instructions in the form of software.
  • the aforementioned processor 130 may be a general-purpose processor, a digital signal processor (Digital Signal Processor DSP), an application specific integrated circuit (ASIC), a ready-made programmable gate array (Field Programmable Gate Array, FPGA) or other programmable logic Devices, discrete gates or transistor logic devices, discrete hardware components.
  • DSP Digital Signal Processor
  • ASIC application specific integrated circuit
  • FPGA ready-made programmable gate array
  • the methods, steps, and logical block diagrams disclosed in the embodiments of the present application can be implemented or executed.
  • the general-purpose processor may be a microprocessor or the processor may also be any conventional processor or the like.
  • the steps of the method disclosed in the embodiments of the present application may be directly embodied as being executed and completed by a hardware decoding processor, or executed and
  • the laser color printer 100 can exchange information with other devices (for example, the server 200) through the communication interface 110.
  • the communication interface 110 may be a circuit, a bus, a transceiver, or any other device that can be used for information exchange.
  • the processor 130 may use the communication interface 110 to send and receive information.
  • the above embodiments it may be implemented in whole or in part by software, hardware, firmware, or any combination thereof.
  • software it can be implemented in the form of a computer program product in whole or in part.
  • the computer program product includes one or more computer instructions.
  • the computer program instructions When the computer program instructions are loaded and executed on the computer, the processes or functions according to the embodiments of the present application are generated in whole or in part.
  • the computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable devices.
  • Computer instructions can be stored in a computer-readable storage medium, or transmitted from one computer-readable storage medium to another computer-readable storage medium.
  • computer instructions can be transmitted from a website, computer, server, or data center through a cable (such as Coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (such as infrared, wireless, microwave, etc.) to transmit to another website site, computer, server or data center.
  • the computer-readable storage medium may be any available medium that can be accessed by a computer or a data storage device such as a server or a data center integrated with one or more available media.
  • the usable medium may be a magnetic medium (for example, a floppy disk, a hard disk, and a magnetic tape), an optical medium (for example, a DVD), or a semiconductor medium (for example, a solid state hard disk (Sol ID State Disk, SSD)).
  • These computer program instructions can also be stored in a computer-readable memory that can direct a computer or other programmable data processing equipment to work in a specific manner, so that the instructions stored in the computer-readable memory produce an article of manufacture including the instruction device.
  • the device implements the functions specified in one process or multiple processes in the flowchart and/or one block or multiple blocks in the block diagram.
  • These computer program instructions can also be loaded on a computer or other programmable data processing equipment, so that a series of operation steps are executed on the computer or other programmable equipment to produce computer-implemented processing, so as to execute on the computer or other programmable equipment.
  • the instructions provide steps for implementing the functions specified in one process or multiple processes in the flowchart and/or one block or multiple blocks in the block diagram.

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Abstract

一种基于物联网的激光彩色打印方法及系统,能够在每次新增激光彩色打印机时,通过配置的打印激活文件与服务器进行交互,并从目标打印队列所对应的主激光彩色打印机中查找到的目标打印队列内与相匹配的从激光彩色打印机的打印机关系信息,在目标打印队列中添加物联网配置信息,以在启动打印运行时根据物联网配置信息与从激光彩色打印机进行联动打印,从而解决在联动打印过程出现匹配失败或者联动打印过程协调出错的情况,也能有效避免由于新增激光彩色打印机的加入使得与该新增激光彩色打印机联动的其它激光彩色打印机出现的物联网通信故障的情况。

Description

基于物联网的激光彩色打印方法及系统 技术领域
本申请涉及打印机技术领域,具体而言,涉及一种基于物联网的激光彩色打印方法及系统。
背景技术
现有技术中,针对一个物联网的打印机系统而言,通常需要多个激光彩色打印机相互通信协作实现联动打印。然而,实际场景中,由于激光彩色打印机本身物联网控制类型的不同,与其它激光彩色打印机之间的联动关系不同,往往导致在每次打印队列中新增激光彩色打印机时,在联动打印过程出现匹配失败或者联动打印过程协调出错的情况,甚至可能导致由于新增激光彩色打印机的加入使得与该新增激光彩色打印机联动的其它激光彩色打印机出现物联网通信故障,进而导致整个物联网的打印机系统在大规模应用时存在较大的瓶颈。
发明内容
为了至少克服现有技术中的上述不足,本申请的目的在于提供一种基于物联网的激光彩色打印方法及系统,能够在每次新增激光彩色打印机时,通过配置的打印激活文件与服务器进行交互,并从目标打印队列所对应的主激光彩色打印机中查找到的目标打印队列内与相匹配的从激光彩色打印机的打印机关系信息,在目标打印队列中添加物联网配置信息,以在启动打印运行时根据物联网配置信息与从激光彩色打印机进行联动打印,从而解决在联动打印过程出现匹配失败或者联动打印过程协调出错的情况,也能有效避免由于新增激光彩色打印机的加入使得与该新增激光彩色打印机联动的其它激光彩色打印机出现的物联网通信故障的情况。
第一方面,本申请提供一种基于物联网的激光彩色打印方法,应用于基于物联网的激光彩色打印系统,所述基于物联网的激光彩色打印系统包括相互之间通信连接的激光彩色打印机、物联网终端以及服务器,所述方法包括:
所述物联网终端获取所在应用环境的打印激活文件,并将所述打印激活文件发送给所述服务器,所述打印激活文件中包括该应用环境中新增激光彩色打印机与当前打印机集合之间的打印机关系信息以及该新增激光彩色打印机的物联网控制类型;
所述服务器根据所述打印激活文件生成所述新增激光彩色打印机的打印机配置信息,并将所述打印机配置信息发送给所述新增激光彩色打印机,所述打印机配置信息中包括所述打印激活文件和针对所述打印激活文件的队列配置信息,所述队列配置信息包括目标打印队列的物联网标识;
所述新增激光彩色打印机根据所述打印机配置信息搜索目标打印队列的物联网标识,并根据所述物联网标识将所述队列配置信息和所述打印激活文件发送给所述目标打印队列所对应的主激光彩色打印机;
所述主激光彩色打印机根据所述队列配置信息,将所述目标打印队列内与该新增 激光彩色打印机的物联网控制类型相匹配的从激光彩色打印机的打印机关系信息发送给所述新增激光彩色打印机;
所述新增激光彩色打印机根据所述从激光彩色打印机的打印机关系信息在所述目标打印队列中添加该新增激光彩色打印机的物联网配置信息,以在启动打印运行时根据所述物联网配置信息与所述从激光彩色打印机进行联动打印。
第二方面,本申请实施例提供一种基于物联网的激光彩色打印系统,所述基于物联网的激光彩色打印系统包括相互之间通信连接的激光彩色打印机、物联网终端以及服务器;
所述物联网终端,用于获取所在应用环境的打印激活文件,并将所述打印激活文件发送给所述服务器,所述打印激活文件中包括该应用环境中新增激光彩色打印机与当前打印机集合之间的打印机关系信息以及该新增激光彩色打印机的物联网控制类型;
所述服务器,用于根据所述打印激活文件生成所述新增激光彩色打印机的打印机配置信息,并将所述打印机配置信息发送给所述新增激光彩色打印机,所述打印机配置信息中包括所述打印激活文件和针对所述打印激活文件的队列配置信息,所述队列配置信息包括目标打印队列的物联网标识;
所述新增激光彩色打印机,用于根据所述打印机配置信息搜索目标打印队列的物联网标识,并根据所述物联网标识将所述队列配置信息和所述打印激活文件发送给所述目标打印队列所对应的主激光彩色打印机;
所述主激光彩色打印机,用于根据所述队列配置信息,将所述目标打印队列内与该新增激光彩色打印机的物联网控制类型相匹配的从激光彩色打印机的打印机关系信息发送给所述新增激光彩色打印机;
所述新增激光彩色打印机,用于根据所述从激光彩色打印机的打印机关系信息在所述目标打印队列中添加该新增激光彩色打印机的物联网配置信息,以在启动打印运行时根据所述物联网配置信息与所述从激光彩色打印机进行联动打印。
第三方面,本申请实施例提供一种激光彩色打印机,包括处理器、存储器和网络接口。其中,存储器、网络接口处理器之间可以通过总线系统相连。网络接口用于接收报文,存储器用于存储程序、指令或代码,处理器用于执行存储器中的程序、指令或代码,以完成上述第一方面或第一方面的任意可能的设计方式中的所执行的操作。
第四方面,本申请实施例提供一种计算机可读存储介质,计算机可读存储介质中存储有指令,当其在计算机上检测时,使得计算机执行上述方法。
基于上述任意一个方面,本申请在每次新增激光彩色打印机时,通过所在应用环境的物联网终端配置好打印激活文件,并由服务器根据打印激活文件向该新增激光彩色打印机下发打印机配置信息,之后新增激光彩色打印机可以根据搜索到的目标打印队列的物联网标识将该新增激光彩色打印机与当前打印机集合之间的打印机关系信息以及该新增激光彩色打印机的物联网控制类型发送给目标打印队列所对应的主激光彩色打印机,并获得主激光彩色打印机查找到的目标打印队列内与该新增激光彩色打印机的物联网控制类型相匹配的从激光彩色打印机的打印机关系信息后在目标打印队列中添加该新增激光彩色打印机的物联网配置信息,以在启动打印运行时根据物联网配置信息与从激光彩色打印机进行联动打印,从而解决由于激光彩色打印机本身物联网控制类型的不同以及与其它激 光彩色打印机之间的联动关系不同导致的在每次打印队列中新增激光彩色打印机时,在联动打印过程出现匹配失败或者联动打印过程协调出错的情况,也能有效避免由于新增激光彩色打印机的加入使得与该新增激光彩色打印机联动的其它激光彩色打印机出现的物联网通信故障,从而便于物联网的打印机系统的大规模应用。
附图说明
为了更清楚地说明本申请实施例的技术方案,下面将对实施例中所需要使用的附图作简单地介绍,应当理解,以下附图仅示出了本申请的某些实施例,因此不应被看作是对范围的限定,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图获得其他相关的附图。
图1为本申请实施例提供的基于物联网的激光彩色打印系统的应用场景示意图;
图2为本申请实施例提供的基于物联网的激光彩色打印方法的流程示意图;
图3为图2中所示的步骤S110包括的各个子步骤的流程示意图;
图4为图2中所示的步骤S120包括的各个子步骤的流程示意图;
图5为图2中所示的步骤S150包括的各个子步骤的流程示意图;
图6为本申请实施例提供的图1中所示的激光彩色打印机的结构示意框图。
具体实施方式
下面结合说明书附图对本申请进行具体说明,方法实施例中的具体操作方法也可以应用于装置实施例或系统实施例中。在本申请的描述中,除非另有说明,“至少一个”包括一个或多个。“多个”是指两个或两个以上。例如,A、B和C中的至少一个,包括:单独存在A、单独存在B、同时存在A和B、同时存在A和C、同时存在B和C,以及同时存在A、B和C。在本申请中,“/”表示或的意思,例如,A/B可以表示A或B;本文中的“和/或”仅仅是一种描述关联候选从激光彩色打印机的关联关系,表示可以存在三种关系,例如,A和/或B,可以表示:单独存在A,同时存在A和B,单独存在B这三种情况。
图1是本申请一种实施例提供的基于物联网的激光彩色打印系统10的交互示意图。例如,基于物联网的激光彩色打印系统10可以是用于诸如激光打印机的在线调试平台。基于物联网的激光彩色打印系统10可以包括激光彩色打印机100、服务器200以及物联网终端300,服务器200中可以包括执行指令操作的处理器。图1所示的基于物联网的激光彩色打印系统10仅为一种可行的示例,在其它可行的实施例中,该基于物联网的激光彩色打印系统10也可以仅包括图1所示组成部分的其中一部分或者还可以包括其它的组成部分。
在一些实施例中,服务器200可以是单个服务器,也可以是一个服务器组。运营服务器组可以是集中式的,也可以是分布式的(例如,服务器200可以是分布式系统)。在一些实施例中,服务器200相对于激光彩色打印机100,可以是本地的、也可以是远程的。例如,服务器200可以经由网络访问存储在激光彩色打印机100、物联网终端300以及数据库、或其任意组合中的信息。作为另一示例,服务器200可以直接连接到激光彩色打印机100、物联网终端300和数据库中的至少一个,以访问其中存储的信息和/或数据。在一些实施例中,服务器200可以在云平台上实现;仅作为示例,云平台可以包括私有云、公有云、混合云、社区云(community cloud)、分布式云、跨云(inter-cloud)、多云(multi-cloud)等,或者它们的任 意组合。在一些实施例中,服务器200、激光彩色打印机100以及物联网终端300可以在具有本申请实施例中图2所示的一个或多个组件的电子设备200上实现。
在一些实施例中,服务器200可以包括处理器。处理器可以处理与服务请求有关的信息和/或数据,以执行本申请中描述的一个或多个功能。处理器可以包括一个或多个处理核(例如,单核处理器(S)或多核处理器(S))。仅作为举例,处理器可以包括中央处理单元(Central Processing Unit,CPU)、专用集成电路(Application Specific Integrated Circuit,ASIC)、专用指令集处理器(Application Specific Instruction-set Processor,ASIP)、图形处理单元(Graphics Processing Unit,GPU)、物理处理单元(Physics Processing Unit,PPU)、数字信号处理器(Digital Signal Processor,DSP)、现场可编程门阵列(Field Programmable Gate Array,FPGA)、可编程逻辑器件(Programmable Logic Device,PLD)、控制器、微控制器单元、简化指令集计算机(Reduced Instruction Set Computing,RISC)、或微处理器等,或其任意组合。
网络可以用于信息和/或数据的交换。在一些实施例中,基于物联网的激光彩色打印系统10中的一个或多个组件(例如,服务器200,激光彩色打印机100,物联网终端300和数据库)可以向其他组件发送信息和/或数据。例如,服务器200可以经由网络向激光彩色打印机100获取打印请求。在一些实施例中,网络可以是任何类型的有线或者无线网络,或者是他们的结合。仅作为示例,网络130可以包括有线网络、无线网络、光纤网络、远程通信网络、内联网、因特网、局域网(Local AreaNetwork,LAN)、广域网(Wide Area Network,WAN)、无线局域网(Wireless Local Area Networks,WLAN)、城域网(Metropolitan AreaNetwork,MAN)、广域网(Wide AreaNetwork,WAN)、公共电话交换网(Public Switched Telephone Network,PSTN)、蓝牙网络、ZigBee网络、或近场通信(Near Field Communication,NFC)网络等,或其任意组合。在一些实施例中,网络可以包括一个或多个网络接入点。例如,网络可以包括有线或无线网络接入点,例如基站和/或网络交换节点,基于物联网的激光彩色打印系统10的一个或多个组件可以通过该接入点连接到网络以交换数据和/或信息。
前述的数据库可以存储数据和/或指令。在一些实施例中,数据库可以存储从激光彩色打印机100和/或物联网终端300获得的数据。在一些实施例中,数据库可以存储在本申请中描述的示例性方法的数据和/或指令。在一些实施例中,数据库可以包括大容量存储器、可移动存储器、易失性读写存储器、或只读存储器(Read-Only Memory,ROM)等,或其任意组合。作为举例,大容量存储器可以包括磁盘、光盘、固态驱动器等;可移动存储器可包括闪存驱动器、软盘、光盘、存储卡、zip磁盘、磁带等;易失性读写存储器可以包括随机存取存储器(Random Access Memory,RAM);RAM可以包括动态RAM(Dynamic Random Access Memory,DRAM),双倍数据速率同步动态RAM(Double Date-Rate Synchronous RAM,DDR SDRAM);静态RAM(Static Random-Access Memory,SRAM),晶闸管RAM(Thyristor-Based Random Access Memory,T-RAM)和零电容器RAM(Zero-RAM)等。作为举例,ROM可以包括掩模ROM(Mask Read-Only Memory,MROM)、可编程ROM(Programmable Read-Only Memory,PROM)、可擦除可编程ROM(Programmable Erasable Read-only Memory,PEROM)、电可擦除可编程ROM(Electrically Erasable Programmable read only memory,EEPROM)、光盘ROM(CD-ROM)、以及数字通用磁盘ROM等。在一些实施例中,数据库可以在云平台上实现。仅作为示例,云平台可以包括私有云、公有云、混合云、社区云、分布式云、跨云、多云或者其它类似 的等,或其任意组合。
在一些实施例中,数据库可以连接到网络以与基于物联网的激光彩色打印系统10(例如,服务器200,激光彩色打印机100,物联网终端300等)中的一个或多个组件通信。基于物联网的激光彩色打印系统10中的一个或多个组件可以经由网络访问存储在数据库中的数据或指令。在一些实施例中,数据库可以直接连接到基于物联网的激光彩色打印系统10中的一个或多个组件(例如,服务器200,激光彩色打印机100,物联网终端300等);或者,在一些实施例中,数据库也可以是服务器200的一部分。
为了解决前述背景技术中的技术问题,图2为本申请实施例提供的基于物联网的激光彩色打印方法的流程示意图,本实施例提供的基于物联网的激光彩色打印方法可以由图1中所示的基于物联网的激光彩色打印系统10执行,下面对该基于物联网的激光彩色打印方法进行详细介绍。
步骤S110,物联网终端获取所在应用环境的打印激活文件,并将打印激活文件发送给服务器,打印激活文件中包括该应用环境中新增激光彩色打印机与当前打印机集合之间的打印机关系信息以及该新增激光彩色打印机的物联网控制类型。
步骤S120,服务器根据打印激活文件生成新增激光彩色打印机的打印机配置信息,并将打印机配置信息发送给新增激光彩色打印机,打印机配置信息中包括打印激活文件和针对打印激活文件的队列配置信息,队列配置信息包括目标打印队列的物联网标识。
步骤S130,新增激光彩色打印机根据打印机配置信息搜索目标打印队列的物联网标识,并根据物联网标识将队列配置信息和打印激活文件发送给目标打印队列所对应的主激光彩色打印机。
步骤S140,主激光彩色打印机根据队列配置信息,将目标打印队列内与该新增激光彩色打印机的物联网控制类型相匹配的从激光彩色打印机的打印机关系信息发送给新增激光彩色打印机。
步骤S150,新增激光彩色打印机根据从激光彩色打印机的打印机关系信息在目标打印队列中添加该新增激光彩色打印机的物联网配置信息,以在启动打印运行时根据物联网配置信息与从激光彩色打印机进行联动打印。
本实施例在每次新增激光彩色打印机时,通过所在应用环境的物联网终端配置好打印激活文件,并由服务器根据打印激活文件向该新增激光彩色打印机下发打印机配置信息,之后新增激光彩色打印机可以根据搜索到的目标打印队列的物联网标识将该新增激光彩色打印机与当前打印机集合之间的打印机关系信息以及该新增激光彩色打印机的物联网控制类型发送给目标打印队列所对应的主激光彩色打印机,并获得主激光彩色打印机查找到的目标打印队列内与该新增激光彩色打印机的物联网控制类型相匹配的从激光彩色打印机的打印机关系信息后在目标打印队列中添加该新增激光彩色打印机的物联网配置信息,以在启动打印运行时根据物联网配置信息与从激光彩色打印机进行联动打印,从而解决由于激光彩色打印机本身物联网控制类型的不同以及与其它激光彩色打印机之间的联动关系不同导致的在每次打印队列中新增激光彩色打印机时,在联动打印过程出现匹配失败或者联动打印过程协调出错的情况,也能有效避免由于新增激光彩色打印机的加入使得与该新增激光彩色打印机联动的其它激光彩色打印机出现的物联网通信故障,从而便于物联网的打印机系统的大规模应用。
在一种可能的实施方式中,针对步骤S110,请结合参阅图3,具体可以通过如下子步骤实现:
子步骤S111,物联网终端根据该应用环境中新增激光彩色打印机的添加请求,与该新增激光彩色打印机建立双向交互通信,并从该新增激光彩色打印机中获得该新增激光彩色打印机的物联网控制类型和物联网打印控制信息。
子步骤S112,将物联网打印控制信息该应用环境中当前打印机集合的物联网打印控制信息进行比对,得到该新增激光彩色打印机与当前打印机集合之间的打印机关系信息之间的打印机关系信息。
子步骤S113,根据打印机关系信息和物联网控制类型生成所在应用环境的打印激活文件。
在一种可能的实施方式中,针对步骤S120,请结合参阅图4,具体可以通过如下子步骤实现:
子步骤S121,服务器根据打印激活文件,确定对应的目标打印队列并获取该目标打印队列的队列标识,其中,目标打印队列中每个激光彩色打印机与新增激光彩色打印机之间的打印机关系与打印机关系信息的平均匹配度超过设定匹配度。
子步骤S122,根据目标打印队列中每个激光彩色打印机的物联网配置信息配置针对打印激活文件的队列配置信息。
子步骤S123,根据队列配置信息、该目标打印队列的队列标识以及打印激活文件生成新增激光彩色打印机的打印机配置信息。
在一种可能的实施方式中,针对子步骤S122,具体可以根据目标打印队列中每个激光彩色打印机的物联网配置信息,获取目标打印队列中每个激光彩色打印机通过模拟联动打印过程获得的联动通信过程结果,然后确定联动通信过程结果中各激光彩色打印机在联动通信过程中的第一通信信息和在断开联动通信过程的第二通信信息,并建立第一通信信息和第二通信信息的对应关系。
接着,确定预设数量个相同物联网控制类型的激光彩色打印机中,各激光彩色打印机在联动通信过程中的第三通信信息,并基于联动通信过程中的每一次通信交互节点,选取出任意N个激光彩色打印机,并利用对应关系,确定N个激光彩色打印机各自对应的第一通信信息和第二通信信息,其中,N为大于2的正整数。
接着,根据激光彩色打印机的第三通信信息、N个激光彩色打印机各自对应的第一通信信息和第二通信信息,确定激光彩色打印机在断开联动通信过程中的第四通信信息,其中,根据其中两个激光彩色打印机各自对应的第一通信信息中的通信断点值和第二通信信息中的通信断点值、以及激光彩色打印机的第三通信信息中的通信断点值确定激光彩色打印机的第四通信信息中的通信断点值,根据其中两个激光彩色打印机各自对应的第一通信信息中的通信断点恢复值和第二通信信息中的通信断点恢复值、以及激光彩色打印机的第三通信信息中的通信断点恢复值确定激光彩色打印机的第四通信信息中的通信断点恢复值,其中,确定激光彩色打印机的第四通信信息中的通信断点值所选取的两个激光彩色打印机与确定激光彩色打印机的第四通信信息中的通信断点恢复值所选取的两个激光彩色打印机中,最多只有一个激光彩色打印机是同一个激光彩色打印机。
最后,可以根据第一通信信息、第二通信信息、第三通信信息以及第四通信信息配 置针对打印激活文件的队列配置信息。
基于上述步骤,本实施例考虑到模拟联动打印过程中联动通信过程和断开联动通信过程的各激光彩色打印机的通信信息配置队列配置信息,能够有效解决后续由于激光彩色打印机本身物联网控制类型的不同以及与其它激光彩色打印机之间的联动关系不同导致的在每次打印队列中新增激光彩色打印机时,在联动打印过程出现匹配失败或者联动打印过程协调出错的情况,也能有效避免后续由于新增激光彩色打印机的加入使得与该新增激光彩色打印机联动的其它激光彩色打印机出现的物联网通信故障。
在一种可能的实施方式中,针对步骤S140,主激光彩色打印机可以根据队列配置信息对应的每个激光彩色打印机的有效通信节点以及每个激光彩色打印机对应的通信信息,得到每个激光彩色打印机对应的打印类型的物联网控制参数,并根据预设物联网控制参数层级范围以及激光彩色打印机对应的打印类型的物联网控制参数,获取物联网控制序列结果。
接着,可以根据预设控制策略以及物联网控制序列结果,获取控制结果,控制结果包括第一控制集和第二控制集,其中,第一控制集中包含的激光彩色打印机均为与新增激光彩色打印机的物联网控制类型相同的第一类型,第二控制集中包含的激光彩色打印机均为与新增激光彩色打印机的物联网控制类型不相同的第二类型。
接着,可以根据第一控制集中激光彩色打印机的数量、第二控制集中激光彩色打印机的数量以及激光彩色打印机的总数,获取统计结果,统计结果包括:第一类型激光彩色打印机的数量、第二类型激光彩色打印机的数量、第一类型激光彩色打印机的数量与激光彩色打印的总数的比值中的一项或多项。
接着,可以根据统计结果,获取队列配置信息中每个激光彩色打印机与该新增激光彩色打印机之间的联动打印配置结果。
接着,可以将联动打印配置结果按照预设扫描顺序中的扫描方式进行扫描,得到联动打印配置结果的第一扫描节点。
接着,可以确定与联动打印配置结果的每个第一扫描节点对应的目标激光彩色打印机的第二扫描节点。
接着,可以根据每个第一扫描节点和对应的每个目标激光彩色打印机的第二扫描节点,确定联动打印配置结果的联动打印配置信息中包含的多个候选从激光彩色打印机,以及与联动打印配置结果相对应的多个原始激光彩色打印机。
接着,可以分别针对每个候选从激光彩色打印机确定该候选从激光彩色打印机所对应的原始激光彩色打印机,根据该候选从激光彩色打印机在联动打印配置信息中的打印成员层级以及联动打印配置信息与该候选从激光彩色打印机所对应的原始激光彩色打印机之间的对应关系,从该候选从激光彩色打印机所对应的原始激光彩色打印机中提取该候选从激光彩色打印机所对应的至少一个打印范围段,并针对提取出的每个打印范围段,根据该打印范围段与联动打印配置信息之间的对应关系,为该打印范围段设置序列信息。
接着,可以分别确定各个候选从激光彩色打印机所对应的各个打印范围段的序列信息,根据序列信息对各个打印范围段进行排序。
接着,可以针对排序后的各个打印范围段进行加权判断,以得到与联动打印配置结果相对应的目标候选打印机成员列表。
接着,可以基于目标候选打印机成员列表,从目标打印队列内确定与该新增激光彩色打印机的物联网控制类型相匹配的从激光彩色打印机。
接着,可以将选择的从激光彩色打印机的打印机关系信息发送给新增激光彩色打印机。
在一种可能的实施方式中,针对步骤S150,请结合参阅图5,具体可以通过如下子步骤实现:
子步骤S151,在启动打印运行的过程中,根据物联网配置信息获取目标打印文件的文本信息的打印数据和图像信息的打印数据。
子步骤S152,根据目标打印文件所指定的打印节点顺序序列,确定打印节点顺序序列对应的预设数目个打印节点。
子步骤S153,对文本信息的打印数据进行适配处理,将文本信息的打印数据分割到预设数目个打印节点中,并对图像信息的打印数据进行适配处理,将图像信息的打印数据分割到预设数目个打印节点中。
子步骤S154,根据预设数目个打印节点分别对应的文本信息打印参数值,对分割到预设数目个打印节点中的文本信息的打印数据进行合成,得到文本信息待融合打印的第一打印数据,并根据预设数目个打印节点分别对应的图像信息打印参数值,对分割到预设数目个打印节点中的图像信息的打印数据进行合成,得到图像信息待融合打印的第二打印数据。
子步骤S155,根据第一打印数据和第二打印数据按照目标打印文件的排版顺序确定联动打印数据,并从联动打印数据中按照新增激光彩色打印机的负载率和从激光彩色打印机的负载率确定交由新增激光彩色打印机打印的第三打印数据,以及交由从激光彩色打印机打印的第四打印数据。
子步骤S156,确定新增激光彩色打印机打印第三打印数据的第一打印节点和从激光彩色打印机打印第四打印数据的第二打印节点。
子步骤S157,新增激光彩色打印机根据第一打印节点按照打印目标打印文件的排版顺序打印第三打印数据,并且从激光彩色打印机根据第二打印节点按照打印目标打印文件的排版顺序打印第四打印数据。
在一种可能的实施方式中,为了降低了联动打印过程中的时间,提高了打印效率,避免联动打印时间过长导致通信不稳定的情况,针对子步骤S155,可以按照目标打印文件的排版顺序对第一打印数据和第二打印数据进行处理,以确定初始联动打印数据,然后对初始联动打印数据进行特征提取以得到联动打印特征序列,接着将联动打印特征序列依次分为多个联动打印块,每个联动打印块包括一主联动打印块,每一主联动打印块拼接有一从联动打印块,每个主联动打印块以及与其相应的从联动打印块均包括多个联动打印特征信息,主联动打印块的最后一个联动打印特征信息与拼接的从联动打印块的第一个联动打印特征信息相匹配。
在此基础上,可以根据所有联动打印块分别计算每个联动打印块中的主联动打印块的低层预测结果,以及每个联动打印块的高层预测结果,并获取每个联动打印块对应的低层预测结果以及高层预测结果的联动打印数据,接着提取联动打印数据的参考打印序列,并获取新增激光彩色打印机和从激光彩色打印机上一打印任务的打印队列库,参考打 印序列包括多个打印节点。
而后,对于打印队列库结束时的任一打印文件,将任一打印文件的打印序列划分为多个打印节点子序列,每个打印节点子序列包括至少一个打印节点,相邻两个打印节点子序列之间的交集包括预设数目个打印节点,预设数目为大于或者等于0,且小于指定数值的整数,指定数值为任一打印文件包括打印节点的数目与划分的打印节点子序列的数目之商。
接着,确定每个打印节点子序列之间的重复度,如果每个打印节点子序列之间的重复度大于预设重复度,确定任一打印文件的打印序列具有重复序列。当任一打印文件的打印序列具有重复序列时,获取任一打印文件的基准打印节点子序列,基准打印节点子序列包括至少一个打印节点,且基准打印节点子序列包括的打印节点的数目小于任一打印文件包括的打印节点的数目。而后,根据参考打印序列和任一打印文件的基准打印节点子序列,确定联动打印数据与任一打印文件之间的匹配度,并根据联动打印数据与任一打印文件之间的匹配度,按照新增激光彩色打印机的负载率和从激光彩色打印机的负载率确定交由新增激光彩色打印机打印的第三打印数据,以及交由从激光彩色打印机打印的第四打印数据。
图6为本申请实施例提供的用于执行上述基于物联网的激光彩色打印方法的激光彩色打印机100的结构示意图,激光彩色打印机100可以是前述的新增激光彩色打印机,也可以是前述的主激光彩色打印机,或者前述的从激光彩色打印机。如图6所示,该激光彩色打印机100可包括网络接口110、机器可读存储介质120、处理器130以及总线140。处理器130的仿真容器数据可以是一个或多个,图6中以一个处理器130为例;网络接口110、机器可读存储介质120以及处理器130可以通过总线140或其他方式连接,图6中以通过总线140连接为例。
机器可读存储介质120作为一种计算机可读存储介质,可用于存储软件程序、计算机可执行程序以及模块,如本申请实施例中的基于物联网的激光彩色打印方法对应的程序指令/模块。处理器130通过检测存储在机器可读存储介质120中的软件程序、指令以及模块,从而执行终端设备的各种功能应用以及数据处理,即实现上述的基于物联网的激光彩色打印方法,在此不再赘述。
机器可读存储介质120可主要包括存储程序区和存储数据区,其中,存储程序区可存储操作系统、至少一个功能所需的应用程序;存储数据区可存储根据终端的使用所创建的数据等。此外,机器可读存储介质120可以是易失性存储器或非易失性存储器,或可包括易失性和非易失性存储器两者。其中,非易失性存储器可以是只读存储器(Read-Only Memory,ROM)、可编程只读存储器(Programmable ROM,PROM)、可擦除可编程只读存储器(Erasable PROM,EPROM)、电可擦除可编程只读存储器(Electrically EPROM,EEPROM)或闪存。易失性存储器可以是随机存取存储器(Random Access Memory,RAM),其用作外部高速缓存。通过示例性但不是限制性说明,许多形式的RAM可用,例如静态随机存取存储器(Static RAM,SRAM)、动态随机存取存储器(Dynamic RAM,DRAM)、同步动态随机存取存储器(Synchronous DRAM,SDRAM)、双倍数据速率同步动态随机存取存储器(Double Data RateSDRAM,DDR SDRAM)、增强型同步动态随机存取存储器(Enhanced SDRAM,ESDRAM)、同步连接动态随机存取存储器(Synchlink DRAM,SLDRAM)和直接内存总线随机存取存储器 (DirectRambus RAM,DR RAM)。应注意,本文描述的系统和方法的存储器旨在包括但不限于这些和任意其它适合发布节点的存储器。在一些实例中,机器可读存储介质120可进一步包括相对于处理器130远程设置的存储器,这些远程存储器可以通过网络连接至终端设备。上述网络的实例包括但不限于互联网、企业内部网、局域网、转移通信网及其组合。
处理器130可能是一种集成电路芯片,具有信号的处理能力。在实现过程中,上述方法实施例的各步骤可以通过处理器130中的硬件的集成逻辑电路或者软件形式的指令完成。上述的处理器130可以是通用处理器、数字信号处理器(Digital SignalProcessorDSP)、专用集成电路(Application Specific Integrated Circuit,ASIC)、现成可编程门阵列(Field Programmable Gate Array,FPGA)或者其他可编程逻辑器件、分立门或者晶体管逻辑器件、分立硬件组件。可以实现或者执行本申请实施例中的公开的各方法、步骤及逻辑框图。通用处理器可以是微处理器或者该处理器也可以是任何常规的处理器等。结合本申请实施例所公开的方法的步骤可以直接体现为硬件译码处理器执行完成,或者用译码处理器中的硬件及软件模块组合执行完成。
激光彩色打印机100可以通过通信接口110和其它设备(例如服务器200)进行信息交互。通信接口110可以是电路、总线、收发器或者其它任意可以用于进行信息交互的装置。处理器130可以利用通信接口110收发信息。
在上述实施例中,可以全部或部分地通过软件、硬件、固件或者其任意组合来实现。当使用软件实现时,可以全部或部分地以计算机程序产品的形式实现。计算机程序产品包括一个或多个计算机指令。在计算机上加载和执行计算机程序指令时,全部或部分地产生按照本申请实施例的流程或功能。计算机可以是通用计算机、专用计算机、计算机网络、或者其他可编程装置。计算机指令可以存储在计算机可读存储介质中,或者从一个计算机可读存储介质向另一个计算机可读存储介质传输,例如,计算机指令可以从一个网站站点、计算机、服务器或数据中心通过有线(例如同轴电缆、光纤、数字用户线(DSL))或无线(例如红外、无线、微波等)方式向另一个网站站点、计算机、服务器或数据中心进行传输。计算机可读存储介质可以是计算机能够存取的任何可用介质或者是包含一个或多个可用介质集成的服务器、数据中心等数据存储设备。可用介质可以是磁性介质(例如,软盘、硬盘、磁带)、光介质(例如,DVD)、或者半导体介质(例如固态硬盘(sol标识state disk,SSD))等。
本申请实施例是参照根据本申请实施例的方法、设备(系统)、和计算机程序产品的流程图和/或方框图来描述的。应理解可由计算机程序指令实现流程图和/或方框图中的每一流程和/或方框、以及流程图和/或方框图中的流程和/或方框的结合。可提供这些计算机程序指令到通用计算机、专用计机、嵌入式处理机或其他可编程数据处理设备的处理器以产生一个机器,使得通过计算机或其他可编程数据处理设备的处理器执行的指令产生用于实现在流程图一个流程或多个流程和/或方框图一个方框或多个方框中指定的功能的装置。
这些计算机程序指令也可存储在能引导计算机或其他可编程数据处理设备以特定方式工作的计算机可读存储器中,使得存储在该计算机可读存储器中的指令产生包括指令装置的制造品,该指令装置实现在流程图一个流程或多个流程和/或方框图一个方框或多个方框中指定的功能。
这些计算机程序指令也可装载到计算机或其他可编程数据处理设备上,使得在计 算机或其他可编程设备上执行一系列操作步骤以产生计算机实现的处理,从而在计算机或其他可编程设备上执行的指令提供用于实现在流程图一个流程或多个流程和/或方框图一个方框或多个方框中指定的功能的步骤。
显然,本领域的技术人员可以对本申请实施例进行各种改动和变型而不脱离本申请的精神和范围。这样,倘若本申请实施例的这些修改和变型属于本申请权利要求及其等同技术的范围之内,则本申请也意图包含这些改动和变型在内。

Claims (10)

  1. 一种基于物联网的激光彩色打印方法,其特征在于,应用于基于物联网的激光彩色打印系统,所述基于物联网的激光彩色打印系统包括相互之间通信连接的激光彩色打印机、物联网终端以及服务器,所述方法包括:
    所述物联网终端获取所在应用环境的打印激活文件,并将所述打印激活文件发送给所述服务器,所述打印激活文件中包括该应用环境中新增激光彩色打印机与当前打印机集合之间的打印机关系信息以及该新增激光彩色打印机的物联网控制类型;
    所述服务器根据所述打印激活文件生成所述新增激光彩色打印机的打印机配置信息,并将所述打印机配置信息发送给所述新增激光彩色打印机,所述打印机配置信息中包括所述打印激活文件和针对所述打印激活文件的队列配置信息,所述队列配置信息包括目标打印队列的物联网标识;
    所述新增激光彩色打印机根据所述打印机配置信息搜索目标打印队列的物联网标识,并根据所述物联网标识将所述队列配置信息和所述打印激活文件发送给所述目标打印队列所对应的主激光彩色打印机;
    所述主激光彩色打印机根据所述队列配置信息,将所述目标打印队列内与该新增激光彩色打印机的物联网控制类型相匹配的从激光彩色打印机的打印机关系信息发送给所述新增激光彩色打印机;
    所述新增激光彩色打印机根据所述从激光彩色打印机的打印机关系信息在所述目标打印队列中添加该新增激光彩色打印机的物联网配置信息,以在启动打印运行时根据所述物联网配置信息与所述从激光彩色打印机进行联动打印。
  2. 根据权利要求1所述的基于物联网的激光彩色打印方法,其特征在于,所述物联网终端获取所在应用环境的打印激活文件的步骤,包括:
    所述物联网终端根据该应用环境中新增激光彩色打印机的添加请求,与该新增激光彩色打印机建立双向交互通信,并从该新增激光彩色打印机中获得该新增激光彩色打印机的物联网控制类型和物联网打印控制信息;
    将所述物联网打印控制信息该应用环境中当前打印机集合的物联网打印控制信息进行比对,得到该新增激光彩色打印机与当前打印机集合之间的打印机关系信息之间的打印机关系信息;
    根据所述打印机关系信息和所述物联网控制类型生成所在应用环境的打印激活文件。
  3. 根据权利要求1所述的基于物联网的激光彩色打印方法,其特征在于,所述服务器根据所述打印激活文件生成所述新增激光彩色打印机的打印机配置信息的步骤,包括:
    所述服务器根据所述打印激活文件,确定对应的目标打印队列并获取该目标打印队列的队列标识,其中,所述目标打印队列中每个激光彩色打印机与所述新增激光彩色打印机之间的打印机关系与所述打印机关系信息的平均匹配度超过设定匹配度;
    根据所述目标打印队列中每个激光彩色打印机的物联网配置信息配置针对所述打印激活文件的队列配置信息;
    根据所述队列配置信息、该目标打印队列的队列标识以及所述打印激活文件生成所述新增激光彩色打印机的打印机配置信息。
  4. 根据权利要求3所述的基于物联网的激光彩色打印方法,其特征在于,所述根据所述目标打印队列中每个激光彩色打印机的物联网配置信息配置针对所述打印激活文件的队 列配置信息的步骤,包括:
    根据所述目标打印队列中每个激光彩色打印机的物联网配置信息,获取所述目标打印队列中每个激光彩色打印机通过模拟联动打印过程获得的联动通信过程结果;
    确定所述联动通信过程结果中各激光彩色打印机在所述联动通信过程中的第一通信信息和在断开联动通信过程的第二通信信息,并建立所述第一通信信息和所述第二通信信息的对应关系;
    确定预设数量个相同物联网控制类型的激光彩色打印机中,各激光彩色打印机在所述联动通信过程中的第三通信信息;
    基于所述联动通信过程中的每一次通信交互节点,选取出任意N个激光彩色打印机,并利用所述对应关系,确定所述N个激光彩色打印机各自对应的第一通信信息和第二通信信息,其中,N为大于2的正整数;
    根据所述激光彩色打印机的第三通信信息、所述N个激光彩色打印机各自对应的第一通信信息和第二通信信息,确定所述激光彩色打印机在断开联动通信过程中的第四通信信息,其中,根据其中两个激光彩色打印机各自对应的第一通信信息中的通信断点值和第二通信信息中的通信断点值、以及激光彩色打印机的第三通信信息中的通信断点值确定激光彩色打印机的第四通信信息中的通信断点值,根据其中两个激光彩色打印机各自对应的第一通信信息中的通信断点恢复值和第二通信信息中的通信断点恢复值、以及激光彩色打印机的第三通信信息中的通信断点恢复值确定激光彩色打印机的第四通信信息中的通信断点恢复值,其中,确定激光彩色打印机的第四通信信息中的通信断点值所选取的两个激光彩色打印机与确定激光彩色打印机的第四通信信息中的通信断点恢复值所选取的两个激光彩色打印机中,最多只有一个激光彩色打印机是同一个激光彩色打印机;
    根据所述第一通信信息、所述第二通信信息、所述第三通信信息以及所述第四通信信息配置针对所述打印激活文件的队列配置信息。
  5. 根据权利要求1-4中任意一项所述的基于物联网的激光彩色打印方法,其特征在于,所述主激光彩色打印机根据所述队列配置信息,将所述目标打印队列内与该新增激光彩色打印机的物联网控制类型相匹配的从激光彩色打印机的打印机关系信息发送给所述新增激光彩色打印机的步骤,包括:
    所述主激光彩色打印机根据所述队列配置信息对应的每个激光彩色打印机的有效通信节点以及每个所述激光彩色打印机对应的通信信息,得到每个所述激光彩色打印机对应的打印类型的物联网控制参数;
    根据预设物联网控制参数层级范围以及所述激光彩色打印机对应的打印类型的物联网控制参数,获取物联网控制序列结果;
    根据预设控制策略以及所述物联网控制序列结果,获取控制结果,所述控制结果包括第一控制集和第二控制集,其中,第一控制集中包含的激光彩色打印机均为与所述新增激光彩色打印机的物联网控制类型相同的第一类型,所述第二控制集中包含的激光彩色打印机均为与所述新增激光彩色打印机的物联网控制类型不相同的第二类型;
    根据所述第一控制集中激光彩色打印机的数量、所述第二控制集中激光彩色打印机的数量以及激光彩色打印机的总数,获取统计结果,所述统计结果包括:第一类型激光彩色打印机的数量、第二类型激光彩色打印机的数量、第一类型激光彩色打印机的数量与激光彩 色打印机的总数的比值以及第二类型激光彩色打印机的数量与激光彩色打印机的总数的比值中的一项或多项;
    根据所述统计结果,获取所述队列配置信息中每个激光彩色打印机与该新增激光彩色打印机之间的联动打印配置结果;
    将所述联动打印配置结果按照预设扫描顺序中的扫描方式进行扫描,得到所述联动打印配置结果的第一扫描节点;
    确定与所述联动打印配置结果的每个第一扫描节点对应的目标激光彩色打印机的第二扫描节点;
    根据每个第一扫描节点和对应的每个目标激光彩色打印机的第二扫描节点,确定所述联动打印配置结果的联动打印配置信息中包含的多个候选从激光彩色打印机,以及与所述联动打印配置结果相对应的多个原始激光彩色打印机;
    分别针对每个候选从激光彩色打印机确定该候选从激光彩色打印机所对应的原始激光彩色打印机,根据该候选从激光彩色打印机在所述联动打印配置信息中的打印成员层级以及所述联动打印配置信息与所述该候选从激光彩色打印机所对应的原始激光彩色打印机之间的对应关系,从所述该候选从激光彩色打印机所对应的原始激光彩色打印机中提取该候选从激光彩色打印机所对应的至少一个打印范围段,并针对提取出的每个打印范围段,根据该打印范围段与所述联动打印配置信息之间的对应关系,为该打印范围段设置序列信息;
    分别确定各个候选从激光彩色打印机所对应的各个打印范围段的序列信息,根据所述序列信息对各个打印范围段进行排序;
    针对排序后的各个打印范围段进行加权判断,以得到与所述联动打印配置结果相对应的目标候选打印机成员列表;
    基于所述目标候选打印机成员列表,从所述目标打印队列内确定与该新增激光彩色打印机的物联网控制类型相匹配的从激光彩色打印机;
    将选择的所述从激光彩色打印机的打印机关系信息发送给所述新增激光彩色打印机。
  6. 根据权利要求1所述的基于物联网的激光彩色打印方法,其特征在于,所述在启动打印运行时根据所述物联网配置信息与所述从激光彩色打印机进行联动打印的步骤,包括:
    在启动打印运行的过程中,根据所述物联网配置信息获取目标打印文件的文本信息的打印数据和图像信息的打印数据;
    根据所述目标打印文件所指定的打印节点顺序序列,确定所述打印节点顺序序列对应的预设数目个打印节点;
    对所述文本信息的打印数据进行适配处理,将所述文本信息的打印数据分割到预设数目个打印节点中,并对所述图像信息的打印数据进行适配处理,将所述图像信息的打印数据分割到所述预设数目个打印节点中;
    根据所述预设数目个打印节点分别对应的文本信息打印参数值,对分割到所述预设数目个打印节点中的文本信息的打印数据进行合成,得到文本信息待融合打印的第一打印数据,并根据所述预设数目个打印节点分别对应的图像信息打印参数值,对分割到所述预设数目个打印节点中的图像信息的打印数据进行合成,得到图像信息待融合打印的第二打印数据;
    根据所述第一打印数据和所述第二打印数据按照所述目标打印文件的排版顺序确定联动打印数据,并从所述联动打印数据中按照所述新增激光彩色打印机的负载率和所述从激光彩色打印机的负载率确定交由所述新增激光彩色打印机打印的第三打印数据,以及交由所述从激光彩色打印机打印的第四打印数据;
    确定所述新增激光彩色打印机打印所述第三打印数据的第一打印节点和所述从激光彩色打印机打印所述第四打印数据的第二打印节点;
    所述新增激光彩色打印机根据所述第一打印节点按照所述打印所述目标打印文件的排版顺序打印所述第三打印数据,并且所述从激光彩色打印机根据所述第二打印节点按照所述打印所述目标打印文件的排版顺序打印所述第四打印数据。
  7. 根据权利要求6所述的基于物联网的激光彩色打印方法,其特征在于,所述根据所述第一打印数据和所述第二打印数据按照所述目标打印文件的排版顺序确定联动打印数据,并从所述联动打印数据中按照所述新增激光彩色打印机的负载率和所述从激光彩色打印机的负载率确定交由所述新增激光彩色打印机打印的第三打印数据,以及交由所述从激光彩色打印机打印的第四打印数据的步骤,包括:
    按照所述目标打印文件的排版顺序对所述第一打印数据和所述第二打印数据进行处理,以确定初始联动打印数据;
    对所述初始联动打印数据进行特征提取以得到联动打印特征序列;
    将所述联动打印特征序列依次分为多个联动打印块,每个联动打印块包括一主联动打印块,每一主联动打印块拼接有一从联动打印块,每个主联动打印块以及与其相应的从联动打印块均包括多个联动打印特征信息,所述主联动打印块的最后一个联动打印特征信息与拼接的所述从联动打印块的第一个联动打印特征信息相匹配;
    根据所有联动打印块分别计算每个联动打印块中的主联动打印块的低层预测结果,以及每个联动打印块的高层预测结果;
    获取每个联动打印块对应的低层预测结果以及高层预测结果的联动打印数据;
    提取所述联动打印数据的参考打印序列,并获取所述新增激光彩色打印机和所述从激光彩色打印机上一打印任务的打印队列库,参考打印序列包括多个打印节点;
    对于所述打印队列库结束时的任一打印文件,将所述任一打印文件的打印序列划分为多个打印节点子序列,每个打印节点子序列包括至少一个打印节点,相邻两个打印节点子序列之间的交集包括预设数目个打印节点,所述预设数目为大于或者等于0,且小于指定数值的整数,所述指定数值为所述任一打印文件包括打印节点的数目与划分的打印节点子序列的数目之商;
    确定所述每个打印节点子序列之间的重复度;
    如果所述每个打印节点子序列之间的重复度大于预设重复度,确定所述任一打印文件的打印序列具有重复序列;
    当所述任一打印文件的打印序列具有重复序列时,获取所述任一打印文件的基准打印节点子序列,所述基准打印节点子序列包括至少一个打印节点,且所述基准打印节点子序列包括的打印节点的数目小于所述任一打印文件包括的打印节点的数目;
    根据所述参考打印序列和所述任一打印文件的基准打印节点子序列,确定所述联动打印数据与所述任一打印文件之间的匹配度;
    根据所述联动打印数据与所述任一打印文件之间的匹配度,按照所述新增激光彩色打印机的负载率和所述从激光彩色打印机的负载率确定交由所述新增激光彩色打印机打印的第三打印数据,以及交由所述从激光彩色打印机打印的第四打印数据。
  8. 一种基于物联网的激光彩色打印系统,其特征在于,所述基于物联网的激光彩色打印系统包括相互之间通信连接的激光彩色打印机、物联网终端以及服务器;
    所述物联网终端,用于获取所在应用环境的打印激活文件,并将所述打印激活文件发送给所述服务器,所述打印激活文件中包括该应用环境中新增激光彩色打印机与当前打印机集合之间的打印机关系信息以及该新增激光彩色打印机的物联网控制类型;
    所述服务器,用于根据所述打印激活文件生成所述新增激光彩色打印机的打印机配置信息,并将所述打印机配置信息发送给所述新增激光彩色打印机,所述打印机配置信息中包括所述打印激活文件和针对所述打印激活文件的队列配置信息,所述队列配置信息包括目标打印队列的物联网标识;
    所述新增激光彩色打印机,用于根据所述打印机配置信息搜索目标打印队列的物联网标识,并根据所述物联网标识将所述队列配置信息和所述打印激活文件发送给所述目标打印队列所对应的主激光彩色打印机;
    所述主激光彩色打印机,用于根据所述队列配置信息,将所述目标打印队列内与该新增激光彩色打印机的物联网控制类型相匹配的从激光彩色打印机的打印机关系信息发送给所述新增激光彩色打印机;
    所述新增激光彩色打印机,用于根据所述从激光彩色打印机的打印机关系信息在所述目标打印队列中添加该新增激光彩色打印机的物联网配置信息,以在启动打印运行时根据所述物联网配置信息与所述从激光彩色打印机进行联动打印。
  9. 根据权利要求8所述的基于物联网的激光彩色打印系统,其特征在于,所述主激光彩色打印机用于通过以下方式根据所述队列配置信息,将所述目标打印队列内与该新增激光彩色打印机的物联网控制类型相匹配的从激光彩色打印机的打印机关系信息发送给所述新增激光彩色打印机:
    所述主激光彩色打印机根据所述队列配置信息对应的每个激光彩色打印机的有效通信节点以及每个所述激光彩色打印机对应的通信信息,得到每个所述激光彩色打印机对应的打印类型的物联网控制参数;
    根据预设物联网控制参数层级范围以及所述激光彩色打印机对应的打印类型的物联网控制参数,获取物联网控制序列结果;
    根据预设控制策略以及所述物联网控制序列结果,获取控制结果,所述控制结果包括第一控制集和第二控制集,其中,第一控制集中包含的激光彩色打印机均为与所述新增激光彩色打印机的物联网控制类型相同的第一类型,所述第二控制集中包含的激光彩色打印机均为与所述新增激光彩色打印机的物联网控制类型不相同的第二类型;
    根据所述第一控制集中激光彩色打印机的数量、所述第二控制集中激光彩色打印机的数量以及激光彩色打印机的总数,获取统计结果,所述统计结果包括:第一类型激光彩色打印机的数量、第二类型激光彩色打印机的数量、第一类型激光彩色打印机的数量与激光彩色打印机的总数的比值以及第二类型激光彩色打印机的数量与激光彩色打印机的总数的比值中的一项或多项;
    根据所述统计结果,获取所述队列配置信息中每个激光彩色打印机与该新增激光彩色打印机之间的联动打印配置结果;
    将所述联动打印配置结果按照预设扫描顺序中的扫描方式进行扫描,得到所述联动打印配置结果的第一扫描节点;
    确定与所述联动打印配置结果的每个第一扫描节点对应的目标激光彩色打印机的第二扫描节点;
    根据每个第一扫描节点和对应的每个目标激光彩色打印机的第二扫描节点,确定所述联动打印配置结果的联动打印配置信息中包含的多个候选从激光彩色打印机,以及与所述联动打印配置结果相对应的多个原始激光彩色打印机;
    分别针对每个候选从激光彩色打印机确定该候选从激光彩色打印机所对应的原始激光彩色打印机,根据该候选从激光彩色打印机在所述联动打印配置信息中的打印成员层级以及所述联动打印配置信息与所述该候选从激光彩色打印机所对应的原始激光彩色打印机之间的对应关系,从所述该候选从激光彩色打印机所对应的原始激光彩色打印机中提取该候选从激光彩色打印机所对应的至少一个打印范围段,并针对提取出的每个打印范围段,根据该打印范围段与所述联动打印配置信息之间的对应关系,为该打印范围段设置序列信息;
    分别确定各个候选从激光彩色打印机所对应的各个打印范围段的序列信息,根据所述序列信息对各个打印范围段进行排序;
    针对排序后的各个打印范围段进行加权判断,以得到与所述联动打印配置结果相对应的目标候选打印机成员列表;
    基于所述目标候选打印机成员列表,从所述目标打印队列内确定与该新增激光彩色打印机的物联网控制类型相匹配的从激光彩色打印机;
    将选择的所述从激光彩色打印机的打印机关系信息发送给所述新增激光彩色打印机。
  10. 根据权利要求8所述的基于物联网的激光彩色打印系统,其特征在于,所述新增激光彩色打印机用于通过以下方式在启动打印运行时根据所述物联网配置信息与所述从激光彩色打印机进行联动打印:
    在启动打印运行的过程中,根据所述物联网配置信息获取目标打印文件的文本信息的打印数据和图像信息的打印数据;
    根据所述目标打印文件所指定的打印节点顺序序列,确定所述打印节点顺序序列对应的预设数目个打印节点;
    对所述文本信息的打印数据进行适配处理,将所述文本信息的打印数据分割到预设数目个打印节点中,并对所述图像信息的打印数据进行适配处理,将所述图像信息的打印数据分割到所述预设数目个打印节点中;
    根据所述预设数目个打印节点分别对应的文本信息打印参数值,对分割到所述预设数目个打印节点中的文本信息的打印数据进行合成,得到文本信息待融合打印的第一打印数据,并根据所述预设数目个打印节点分别对应的图像信息打印参数值,对分割到所述预设数目个打印节点中的图像信息的打印数据进行合成,得到图像信息待融合打印的第二打印数据;
    根据所述第一打印数据和所述第二打印数据按照所述目标打印文件的排版顺序确定 联动打印数据,并从所述联动打印数据中按照所述新增激光彩色打印机的负载率和所述从激光彩色打印机的负载率确定交由所述新增激光彩色打印机打印的第三打印数据,以及交由所述从激光彩色打印机打印的第四打印数据;
    确定所述新增激光彩色打印机打印所述第三打印数据的第一打印节点和所述从激光彩色打印机打印所述第四打印数据的第二打印节点;
    所述新增激光彩色打印机根据所述第一打印节点按照所述打印所述目标打印文件的排版顺序打印所述第三打印数据,并且所述从激光彩色打印机根据所述第二打印节点按照所述打印所述目标打印文件的排版顺序打印所述第四打印数据。
PCT/CN2020/131642 2019-11-28 2020-11-26 基于物联网的激光彩色打印方法及系统 WO2021104342A1 (zh)

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