Inspection device, inspection device control method, inspection processing system, and program
Patent Information
- Application Number
- JP2022191504
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2022-11-30
- Publication Date
- 2025-11-28
AI Technical Summary
Existing inspection systems fail to correctly inspect the finish of printed matter when insert sheets such as correction papers are inserted, causing a mismatch between registered image data and read images.
An inspection device that includes first and second registration means for arranging image data and reference images, and an inspection means to compare scanned images with the arranged reference images, ensuring correct inspection even with inserted sheets.
The inspection device accurately inspects the finish of printed matter despite the presence of insert sheets, maintaining consistency in image data order and correctness of inspection.
Smart Images

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Abstract
Description
[Technical field]
[0001] The present invention relates to an inspection device, a control method for an inspection device, an inspection processing system, and a program. [Background technology]
[0002] In recent years, an inspection system has become known that allows an inspection device to inspect paper printed by a printing device while it is being transported. In the inspection of printed paper, the image printed on the output (printed paper) of an executed print job is analyzed and compared with a reference image registered in the inspection device to determine whether the printed paper is normal or not. In the inspection system described in Patent Document 1, image data input to the image forming unit is also registered in the inspection device at first. Then, a system has been proposed that compares an image read from the printed paper with the image data registered in the inspection device to inspect the finish of the printed paper. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] JP 2016-180856 A [Patent Document 2] Patent Publication No. 2022-66766 Summary of the Invention [Problem to be solved by the invention]
[0004] However, in printing devices, insertion sheets such as printing sheets on which correction images are printed and partition sheets may be inserted separately from the printed matter. When such insertion sheets are inserted, a problem occurs in the inspection system such as that in Patent Document 1. When an insertion sheet is inserted, a difference occurs between the image data registered by the inspection device and the order of the read images, which causes a problem that the inspection device cannot correctly inspect the finish of the printed matter. [Means for solving the problem]
[0005] The present invention is an inspection device comprising: a first registration means for registering image data when it receives image data; a receiving means for receiving a destination of the image data on a recording sheet, the destination being obtained based on the image data and print settings; a second registration means for registering a reference image in which the image data registered in the first registration means is rearranged based on the destination of the image data; an inspection means for inspecting the printed matter based on the scanned image and the reference image when it receives a scanned image obtained by reading a printed matter on which the image data is printed; and the destination of the image data on the recording sheet further includes information as to whether or not inspection will be performed by the inspection means. Effect of the Invention
[0006] According to the present invention, even if an insertion sheet separate from the printed matter is inserted, there is no difference between the image data registered in the inspection device and the order of the read images, and the inspection device can correctly inspect the finished printed matter. [Brief description of the drawings]
[0007] [Figure 1] Overall diagram of the printing system hardware configuration [Diagram 2] Block diagram showing the system configuration of the printing system [Diagram 3] A cross-sectional view of the mechanism of an image forming apparatus. [Figure 4] FIG. 1 is a diagram showing a data flow according to a first embodiment. [Diagram 5] (A) An example of a flowchart for a printing device in the first and second embodiments. (B) An example of a flowchart for an image reading device in the first and second embodiments. (C) An example of a flowchart for an inspection device in the first and second embodiments. [Figure 6] FIG. 13 is a diagram showing a data flow according to the second embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0008] Each embodiment of the present invention will be described in detail with reference to the accompanying drawings. Note that the following embodiments do not limit the invention according to the claims, and not all of the combinations of features described in each embodiment are necessarily essential to the solution of the present invention. The external controller in this embodiment may also be called an image processing controller, a digital front end, a print server, a DFE, etc. The image forming apparatus may also be called a multifunction device, a multifunction peripheral, or an MFP.
[0009] The underlying technology of this embodiment will be described below. When inspecting printed paper in an inspection system, an inspection device first reads an image of the conveyed printed paper and registers the read image as a reference image. Then, the output (printed paper) of the executed print job is subjected to image analysis and compared with the reference image to determine whether the printed paper is normal or not. Inspection by the inspection device makes it possible to detect, for example, print stains and missing pages.
[0010] (First embodiment) 1 is an overall diagram of the hardware configuration of an image processing system according to this embodiment. The image processing system includes an image forming apparatus 101 and an external controller 102. The image forming apparatus 101 and the external controller 102 are communicatively connected via a LAN 105 and a video cable 106. The external controller 102 is communicatively connected to a PC 103 via a LAN 104, and a print instruction is sent from the PC 103 to the external controller 102. The image forming apparatus 101 and an inspection device 112 are communicatively connected to the LAN 105 and a video cable 113.
[0011] A printer driver having a function of converting print data into a print description language that can be processed by the external controller 102 is installed in the PC 103. A user who performs printing can issue a print instruction from various applications via the printer driver. The printer driver transmits print data to the external controller 102 based on the print instruction from the user. When the external controller 102 receives a print instruction from the PC 103, it performs data analysis and rasterization processing, and inputs the print data to the image forming apparatus 101 to issue a print instruction. The external controller 102 inputs the print data to the image forming apparatus 101 via the LAN 105, and inputs the rasterized image data via a video cable 106.
[0012] Next, a description will be given of the image forming apparatus 101. A plurality of devices having different functions are connected to the image forming apparatus 101, and the image forming apparatus 101 is configured to be capable of complex printing processes such as bookbinding.
[0013] The printing device 107 forms an image using toner on paper conveyed from a paper feed unit located at the bottom of the printing device 107. Note that, although paper is used as an example here, other printing media such as recording sheets may be used.
[0014] The configuration and operating principle of this printing device 107 are as follows: A light beam such as a laser beam modulated in accordance with image data is reflected by a rotating polygon mirror such as a polygon mirror and irradiated onto a photosensitive drum as scanning light.
[0015] The electrostatic latent image formed on the photosensitive drum by this laser light is developed with toner, and the toner image is transferred to the paper attached to the transfer drum. This series of image formation processes is performed sequentially for yellow (Y), magenta (M), cyan (C), and black (K) toners to form a full-color image on the paper. The paper on the transfer drum on which the full-color image has been formed is transported to the fixing device. The fixing device includes rollers, belts, etc., and has a heat source such as a halogen heater built into the roller, and melts the toner on the paper on which the toner image has been transferred by heat and pressure, and fixes it to the paper. The sensing unit 108 is a device for reading a diagnostic chart, which is an image for correction and image diagnosis on the transported paper. In this embodiment, the sensing unit is called an image diagnosis unit. The sensing unit can feed back the reading result to the printing device 107 and reflect the correction result in subsequent printing, and can diagnose faults in the printing device 107 in addition to correcting the color tone. More specifically, first, a predetermined diagnostic chart is printed by the printing device 107, and the diagnostic chart is read by the sensing unit 108. Next, based on a comparison between the result of reading the diagnostic chart and a diagnostic chart image stored in advance, it is possible to reflect corrections in subsequent printing by the printing device 107, or to diagnose faults in the printing device 107. The results of the diagnosis of faults can be notified to the user.
[0016] The image reading device 109 generates scan image data by reading the image on the conveyed paper (printed matter) and transfers the data to an inspection device 112 via a video cable 113 .
[0017] The large-capacity stacker 110 is a device capable of stacking a large volume of paper. The finisher 111 is a device that performs finishing processes on the transported paper. The finisher 111 can perform finishing processes such as stapling, punching, and saddle-stitching depending on the settings, and discharges the paper to a paper discharge tray.
[0018] The inspection device 112 is a device for judging whether the printed image is normal or not by comparing the image data received via the video cable 113 with pre-registered reference image data. Note that the prints judged to be normal or not are discharged, for example, separated into normal prints and prints with errors.
[0019] 1 is configured such that the external controller 102 is connected to the image forming apparatus 101, but the present invention is not limited to a configuration in which the external controller 102 is connected. In other words, a configuration in which the image forming apparatus 101 is connected to a LAN 104 and print data that can be processed by the image forming apparatus 101 is transmitted from a PC 103 may also be used. In this case, data analysis and rasterization processing are performed in the image forming apparatus 101, and print processing is executed.
[0020] In this embodiment, the image forming apparatus 101 and the inspection apparatus 112 are collectively referred to as an image processing apparatus.
[0021] FIG. 2 is a block diagram showing a system configuration of the image forming apparatus 101, the external controller 102, the PC 103, and the inspection apparatus 112. As shown in FIG.
[0022] First, the configuration of the printing device 107 of the image forming apparatus 101 will be described. The printing device 107 of the image forming apparatus 101 is composed of a communication I / F 217, a LAN I / F 218, a video I / F 220, a HDD 221, a CPU 222, a memory 223, an operation unit 224, and a display 225. The printing device 107 of the image forming apparatus 101 further includes a document exposure unit 226, a laser exposure unit 227, an image creation unit 228, a fixing unit 229, and a paper feed unit 230. Each of the components is connected via a system bus 231.
[0023] The communication I / F 217 is connected to the sensing unit 108, the image reading device 109, the large-capacity stacker 110, and the finisher 111 via a communication cable 254, and performs communication for controlling each of the devices.
[0024] The LAN I / F 218 is connected to the external controller 102 and the inspection device 112 via the LAN 105, and performs communication of control commands, image data, and the like.
[0025] The video I / F 220 is connected to the external controller 102 via the video cable 106, and performs communication of rasterized image data and the like.
[0026] The HDD 221 is a storage device that stores programs and data. The CPU 222 comprehensively controls image processing and printing based on the programs and the like stored in the HDD 221. The memory 223 stores programs and image data required when the CPU 222 performs various processes, and operates as a work area.
[0027] An operation unit 224 receives various setting inputs and operation instructions from a user. A display 225 displays setting information of the image forming apparatus 101, a processing status of a print job, and the like.
[0028] The document exposure unit 226 performs a process of reading a document when using the copy function or the scan function. The document data is read by shining an exposure lamp onto a sheet of paper placed by a user and capturing an image with a CCD camera.
[0029] The laser exposure unit 227 is a device that performs primary charging and laser exposure to irradiate the photosensitive drum with laser light in order to transfer a toner image. In the laser exposure unit 227, primary charging is first performed to charge the surface of the photosensitive drum to a uniform negative potential. Next, the photosensitive drum is irradiated with laser light by a laser driver while adjusting the reflection angle with a polygon mirror. This neutralizes the negative charge in the irradiated area, and an electrostatic latent image is formed.
[0030] The image forming unit 228 is a device for transferring toner onto paper, and is made up of a developing unit, a transfer unit, a toner supply unit, etc., and transfers the toner on the photosensitive drum onto paper.
[0031] In the developing unit, negatively charged toner from a developing cylinder is attached to the electrostatic latent image on the photosensitive drum surface to make it visible. In the transfer unit, a positive potential is applied to the primary transfer roller to transfer the toner on the photosensitive drum surface to the transfer belt, and a positive potential is applied to the secondary transfer roller to transfer the toner on the transfer belt to paper.
[0032] The fixing unit 229 is a device for melting and fixing the toner on the paper to the paper by heat and pressure, and is composed of a heater, a fixing belt, a pressure belt, and the like.
[0033] The paper feed unit 230 is a device for feeding paper, and the paper feeding and transport operations are controlled by rollers and various sensors.
[0034] Next, the configuration of the sensing unit 108 of the image forming apparatus 101 will be described. The sensing unit 108 of the image forming apparatus 101 is composed of a communication I / F 232, a CPU 233, a memory 234, a paper discharge control unit 235, and a colorimetric sensor control unit 236, and each of the components is connected via a system bus 264. The communication I / F 232 is connected to the printing apparatus 107 via a communication cable 254, and communication required for control is performed. The CPU 233 reads an image for correction on the paper according to a control program stored in the memory 234, and performs various controls required to discharge the paper outside the machine as necessary. The memory 234 is a storage device in which the control program is saved. The colorimetric sensor control unit 236 reads an image for correction on the paper based on an instruction from the CPU 233. The paper discharge control unit 235 transports the paper transported from the printing apparatus 107 while controlling the rollers and the sensor based on an instruction from the CPU 233, and controls to discharge the paper outside the machine as necessary.
[0035] Next, the configuration of the image reading device 109 of the image forming apparatus 101 will be described. The image reading device 109 of the image forming apparatus 101 is composed of a communication I / F 237, a CPU 238, a memory 239, a photographing unit 240, and a video I / F 241, and each of the components is connected via a system bus 243. The communication I / F 237 is connected to the printing device 107 via a communication cable 254, and communication required for control is performed. The photographing unit 240 photographs the conveyed paper based on an instruction from the CPU 238, and stores the scanned image data obtained by photographing in the memory 239. In this embodiment, the image read by the image reading device 109 is called a scanned image, but it does not have to be generated by a scanning action. The CPU 238 transfers the image data to the inspection device 112 via the video I / F 241 and the video cable 113.
[0036] Next, the configuration of the large-capacity stacker 110 of the image forming apparatus 101 will be described. The large-capacity stacker 110 of the image forming apparatus 101 is composed of a communication I / F 244, a CPU 245, a memory 246, and a paper discharge control unit 247, and each of the components is connected via a system bus 248. The communication I / F 244 is connected to the printing apparatus 107 via a communication cable 254, and communication required for control is performed. The CPU 245 performs various controls required for paper discharge according to a control program stored in the memory 246. The memory 246 is a storage device in which the control program is saved. The paper discharge control unit 247 controls the transport of the transported paper to a stack tray, an escape tray, or a subsequent finisher 111 based on an instruction from the CPU 245.
[0037] Next, the configuration of the finisher 111 of the image forming apparatus 101 will be described. The finisher 111 of the image forming apparatus 101 is composed of a communication I / F 249, a CPU 250, a memory 251, a paper discharge control unit 252, and a finishing processing unit 253. Each component is connected via a system bus 255. The communication I / F 249 is connected to the printing device 107 via a communication cable 254, and communication required for control is performed. The CPU 250 performs various controls required for finishing and paper discharge according to a control program stored in the memory 251. The memory 251 is a storage device in which the control program is saved. The paper discharge control unit 252 controls paper transport and paper discharge based on instructions from the CPU 250. The finishing processing unit 253 controls finishing processes such as stapling, punching, and saddle stitching based on instructions from the CPU 250.
[0038] Next, the configuration of the external controller 102 will be described. The external controller 102 is composed of a CPU 208, a memory 209, a HDD 210, a keyboard 211, a display 212, a LAN I / F 213, a LAN I / F 214, and a video I / F 215, and is connected via a system bus 216. The CPU 208 comprehensively executes processes such as receiving print data from the PC 103, RIP processing, and sending print data to the image forming apparatus 101 based on the programs and data stored in the HDD 210.
[0039] The memory 209 stores programs and data required for the CPU 208 to perform various processes, and operates as a work area. The HDD 210 stores programs and data required for operations such as printing. The keyboard 211 is a device for inputting operation instructions for the external controller 102. The display 212 displays information such as an application executed by the external controller 102 by video signals of still images and moving images. The LAN I / F 213 is connected to the PC 103 via the LAN 104, and performs communication such as print instructions. The LAN I / F 214 is connected to the image forming apparatus 101 via the LAN 105, and performs communication such as print data as print instructions. The video I / F 215 is connected to the image forming apparatus 101 via the video cable 106, and performs communication such as rasterized image data.
[0040] Next, the configuration of the PC 103 will be described. The PC 103 is composed of a CPU 201, a memory 202, a HDD 203, a keyboard 204, a display 205, and a LAN I / F 206, which are connected via a system bus 207. The CPU 201 creates print data and executes print instructions based on a document processing program stored in the HDD 203. The CPU 201 also comprehensively controls each device connected to the system bus. The memory 202 stores programs and data required for the CPU 201 to perform various processes, and operates as a work area. The HDD 203 stores programs and data required for operations such as print processing. The keyboard 204 is a device for inputting operation instructions for the PC 103. The display 205 displays information such as an application executed by the PC 103 by video signals of still images and moving images. The LAN I / F 206 is connected to the LAN 104, and communication such as print instructions is performed.
[0041] Next, the configuration of the inspection device 112 will be described. The inspection device 112 is composed of a CPU 256, a memory 257, a HDD 258, a keyboard 259, a display 260, a video I / F 261, and a LAN I / F 262, which are connected via a system bus 263. The CPU 256 executes the inspection process of the printed matter based on the inspection program and the like stored in the HDD 258. The CPU 256 also comprehensively controls each device connected to the system bus. The memory 257 stores programs and data required when the CPU 256 executes various processes, and operates as a work area. The HDD 258 stores programs and reference image data required for operations such as the inspection process, and information on the inspection result. The keyboard 259 is a device for inputting operation instructions for the inspection device 112. The display 260 displays the inspection result, the setting screen for the inspection process, and the like. The video I / F 261 is connected to the video cable 113, and receives the scanned image data captured by the image reading device 109. The LAN I / F 262 is connected to the LAN 105, and receives reference image data and performs other operations. The CPU 238 compares the image captured by the image capturing unit 240 with the reference image stored in the HDD 272 to determine whether the printed image is normal. Specifically, characteristic points are extracted from the reference image and the scan image captured by the image capturing unit 240, and the reference image and the scan image are aligned based on the extracted characteristic points. If the difference between the pixel value (brightness value) of the inspection target pixel in the scan image in the aligned image and the pixel value (brightness value) of the comparison target pixel in the correct image is equal to or less than a threshold value, the CPU 238 determines that the inspection target pixel is acceptable. Note that the threshold value is different for each inspection level. This inspection proceeds for each reference image corresponding to each scan image.
[0042] When all pixels have been inspected, it is determined whether the total number of pixels determined to be unacceptable is equal to or less than the pass threshold, and whether the scanned image is normal or not. If the total number of pixels determined to be unacceptable is equal to or less than the pass threshold, the CPU 238 determines that the scanned image is normal. If the total number of pixels determined to be unacceptable is greater than the pass threshold, the CPU 238 determines that the scanned image is not normal.
[0043] In the above description, the external controller 102 and the image forming apparatus 101 are connected by the LAN 105 and the video cable 106, but any other configuration is acceptable as long as data necessary for printing can be transmitted and received, and for example, a connection configuration using only a video cable is also acceptable. Also, the memory 202, memory 209, memory 223, memory 234, memory 239, memory 246, and memory 251 may each be a storage device for holding data and programs. For example, they may be replaced by volatile RAM, non-volatile ROM, built-in HDD, external HDD, USB memory, or the like.
[0044] FIG. 3 is a cross-sectional view of the mechanism of the image forming apparatus 101 shown in FIG. 1. 107 is a printing apparatus that forms an image to be printed on paper. The paper feed deck 301 and the paper feed deck 302 can store various types of paper. Information on the paper stored in each paper feed deck (paper size, paper type) can be set from the operation unit 224 of the printing apparatus 107. Each paper feed deck can separate only the topmost sheet of paper stored and transport it to the paper transport path 303. The developing stations 304 to 307 form toner images using color toners of Y, M, C, and K, respectively, to form a color image. The toner image formed here is primarily transferred to the intermediate transfer belt 308, which rotates clockwise in the figure, and the toner image is transferred to the paper transported from the paper transport path 303 at the secondary transfer position 309. The display 225 displays the printing status of the image forming apparatus 101 and information for settings. The fixing unit 311 fixes the toner image to the paper. The fixing unit 311 includes a pressure roller and a heating roller, and the toner is melted and pressed by the paper passing between the rollers, thereby fixing the toner image on the paper. The paper that has passed through the fixing unit 311 is transported to the paper transport path 315 through the paper transport path 312. If further melting and pressing is required for fixing depending on the type of paper, the paper is transported to the second fixing unit 313 using the upper paper transport path after passing through the fixing unit 311. After additional melting and pressing is performed in the second fixing unit 313, the paper is transported to the paper transport path 315 through the paper transport path 314. If the image formation mode is double-sided, the paper is transported to the paper inversion path 316, and after being inverted by the paper inversion path 316, the paper is transported to the double-sided transport path 317, and the image of the second side is transferred at the secondary transfer position 309. The sensing unit 108 reads the image for correction on the paper, and discharges the paper outside the machine as necessary. The sensing unit 108 includes color measurement sensors 321 and 322. Color measurement sensors 321 and 322 read the image for correction on the paper conveyed from the paper conveyance path 315. Then, the paper is discharged to a discharge tray 324 via a paper conveyance path 323 outside the apparatus.As a result, only the paper on which the image for correction is printed is discharged from the printer 107 out of the series of paper sheets conveyed from the printer 107, so that the paper on which the image for correction is printed is not mixed in with the original product. Alternatively, the paper on which the image for correction is printed is also sent to a subsequent device and discharged to an escape tray 346 described later, so that the paper on which the image for correction is printed is not mixed in with the original product. The paper that has passed through the sensing unit 108 is conveyed to the image reading device 109. Cameras 331 and 332 are arranged in the image reading device 109 so as to face each other. The camera 331 is a camera for reading the upper surface of the paper, and the camera 332 is a camera for reading the lower surface of the paper. When the paper conveyed to the paper conveying path 333 reaches a predetermined position, the image reading device 109 reads the image of the paper using the cameras 331 and 332, and transfers the scanned image data to the inspection device 112. The large-capacity stacker 110 is a large-capacity stacker capable of stacking a large amount of paper. The large-capacity stacker 110 has a stack tray 341 as a tray for stacking paper that has been determined to be normal paper (printed matter) by the inspection device 112. Paper that has passed through the image reading device 109 is input to the large-capacity stacker 110 through a paper transport path 344. The paper is stacked on the stack tray 341 via the paper transport path 344 and a paper transport path 345. The stacker 340 further has an escape tray 346 as a paper discharge tray. The escape tray 346 is a paper discharge tray used to discharge paper that has been determined to be paper (printed matter) with an error by the inspection device 112. When outputting to the escape tray 346, the paper is transported from the paper transport path 344 to the escape tray 346 via a paper transport path 347. When transporting paper to a post-processing device downstream of the large-capacity stacker 110, the paper is transported via a paper transport path 348. The inversion unit 349 inverts the paper. This inversion unit 349 is used when the paper is loaded onto the stack tray 341. When loading the paper onto the stack tray 341, the paper is inverted once by the inversion unit 349 so that the orientation of the input paper is the same as the orientation of the paper at the time of output.When the paper is transported to the escape tray 346 or the subsequent post-processing device, the paper is discharged as is without being flipped when stacked, so the reversing operation is not performed in the reversing unit 349. The finisher 111 is a device that performs finishing processing on the transported paper in accordance with the function specified by the user. Specifically, the finisher 111 has finishing functions such as stapling (one-point or two-point binding), punching (two-hole or three-hole), and saddle stitching. The finisher 111 has a paper output tray 351 and a paper output tray 352. The paper is output to the paper output tray 351 via a paper transport path 353. However, the paper transport path 353 cannot perform finishing processing such as stapling. When performing finishing processing such as stapling, the paper is output to the paper output tray 352 via a paper transport path 354, and the finishing function specified by the user is executed in a processing unit 355. The paper output trays 351 and 352 can each be raised and lowered, and it is also possible to operate to lower the paper output tray 351 so that the paper that has been finished in the processing section 355 is loaded onto the paper output tray 351. When saddle stitch binding is specified, the paper is stapled in the center in the saddle stitch processing section 356, folded in half, and output to the saddle stitch binding tray 358 via the paper transport path 357. The saddle stitch binding tray 358 is configured as a belt conveyor, and the saddle stitched bundle loaded on the saddle stitch binding tray 358 is transported to the left side.
[0045] FIG. 4 is a diagram showing the flow of data within the printing device 107 and the inspection device 112 in this embodiment.
[0046] The printing device 107 receives print setting information 2212 from the external controller 102 via the LAN I / F 218, and image data 2211 via the video I / F 220. The image data 2211 received here is image data that has been RIP-processed by the external controller 102. The image data 2211 and print setting information 2212 are then stored in the HDD 221 (4001, 4002). In this figure, they are stored in the HDD 221, but they may also be stored in the memory 223. These reception and storage processes are performed by a data control unit 2221 executed by the CPU 222. Also, both the print setting information 2212 and the image data 2211 may be received via the LAN I / F 218.
[0047] Furthermore, the data control unit 2221 transmits the image data 2211 to the inspection device 112 via the LAN I / F 218 (4003).
[0048] A paper production order determination unit 2222 executed by the CPU 222 generates paper production order data 2231 based on the image data 2211 and print setting information 2212 in the HDD 221, and stores it in the memory 223 (4004, 4005, 4006).
[0049] The paper generation order determination unit 2222 includes a correction image paper interruption determination unit 22221 that determines whether to insert paper on which an image for correction is printed (hereinafter, correction image paper) at predetermined intervals.
[0050] The paper production order determined by the paper production order determination unit 2222 is the order in which the papers are transported through the paper transport path 315 of the printing device 107. The image reading device 109 then reads the papers transported to the paper transport path 333 in that order, except for the papers discharged to the discharge tray 324 of the sensing unit 108.
[0051] In this diagram, image data 2211 is three pages of a document, and print setting information 2212 is set to "normal order, single-sided, one copy."
[0052] Also, it is assumed that the correction image paper interruption determination unit 22221 has determined to insert the correction image paper by interrupting the third sheet of paper. Here, whether or not to insert the correction image is set in advance. For example, it is determined to insert the correction image every 500 sheets in a user mode set as the operation of the printing device. Note that it is also possible to set the correction image interruption function to be enabled or disabled in the print settings set on a job-by-job basis. The correction image paper interruption determination unit 22221 determines whether or not to insert the correction image paper based on the user mode settings and the print settings set on a job-by-job basis.
[0053] As a result, the paper production order determination unit 2222 First sheet of paper (front: first page of image data 2211, back: blank) 2nd sheet of paper (front: 2nd page of image data 2211, back: blank) 3rd sheet of paper (front: image for correction, back: blank) 4th sheet of paper (front: 3rd page of image data 2211, back: blank) Here, the third sheet is an insertion sheet on which image data is not printed.
[0054] Furthermore, the paper production order determination unit 2222 determines whether each paper is to be read and inspected. The term "read" refers to whether each paper is to be conveyed to the image reading device 109 and have its image read by the cameras 331 and 332. A circle indicates a paper to be read, and an x indicates a paper not to be read.
[0055] The inspection target indicates whether or not the paper to be read is a paper to be inspected by comparing it with the inspection reference data 2582. A circle indicates that the paper is a target for inspection, and an x indicates that the paper is not a target for inspection.
[0056] The print setting information includes at least print settings that allow printing to be performed in an order different from the order of the image data, such as specifying the print order, the printing side (double-sided or single-sided), and the number of copies to be printed.
[0057] Then, this paper production sequence data 2231 is sent by the data control unit 2221 via the LAN I / F 218 to the inspection device 112 (4007).
[0058] An image formation control unit 2223 executed by the CPU 222 further determines the print order from the image data 2211 in the HDD 221 and the paper production order data 2231 in the memory 223. Furthermore, the CPU 222 controls the laser exposure unit 227, the image creation unit 228, the fixing unit 229, and the paper feed unit 230 to perform image formation (4008, 4009, 4010).
[0059] Image formation can only be performed for one page at a time by controlling the laser exposure unit 227, the image forming unit 228, the fixing unit 229, and the paper feed unit 230. In order to shorten the gap between sheets in the transport path and increase productivity, two or more sheets are fed at once, and then a double-sided circulation control is performed in which the sheets are fed and re-fed alternately.
[0060] When two sheets are fed at once, the printing order is as follows: First in printing order (front of first page) Second in printing order (front of second page) 3rd in printing order (back of first sheet of paper) 4th in printing order (3rd page, front) 5th in printing order (back of 2nd sheet of paper) 6th in printing order (4th page, front) 7th in printing order (back of 3rd sheet of paper) 8th in printing order (4th page, back) By printing in the above-mentioned printing order, the printed matter, which is the paper on which the printing is performed, is printed in accordance with the layout destination on the paper of the image data specified in the paper production order data.
[0061] The paper on which an image has been formed by the printing device 107 is transported to the subsequent device via the paper transport path 315 (4011).
[0062] Of the paper group 4011 conveyed from the paper conveying path 315 , the corrected image paper 40111 is discharged onto the discharge tray 324 via the paper conveying path 323 .
[0063] The remaining paper stack 40112 is transported to the image reading device 109 , where the images of the paper are read using the cameras 331 and 332 , and the scanned image data is transferred to the inspection device 112 .
[0064] Meanwhile, the inspection device 112 receives image data 2211 and paper production sequence data 2231 from the printing device 107 via the LAN I / F 262. Then, a data control unit 2561 executed by the CPU 256 stores the image data 2211 in the HDD 258 and the paper production sequence data 2231 in the memory 257. Although the storage form shown on the left is used in this diagram, it is also possible to store only the HDD 258 or only the memory 257, or vice versa. The image data 2211 stored in the inspection device 112 will be called 2581, and the paper production sequence data 2231 will be called 2571.
[0065] An inspection standard data generating unit 2562 executed by the CPU 256 generates inspection standard data 2582 based on image data 2581 in the HDD 258 and paper production sequence data 2571 in the memory 257, and stores it in the HDD 258 (4012, 4013, 4014).
[0066] The inspection reference data generating unit 2562 generates inspection reference data only for the paper sheets whose reading target in the paper production sequence data 2571 is ◯. 3rd sheet of paper (front: image for correction, back: blank) The corresponding inspection standard data is not generated, and the remaining First sheet of paper (front: first page of image data 2211, back: blank) 2nd sheet of paper (front: 2nd page of image data 2211, back: blank) 4th sheet of paper (front: 3rd page of image data 2211, back: blank) Generates only
[0067] Next, the inspection processing unit 2563 executed by the CPU 256 compares the inspection standard data 2582 in the HDD 258, the paper production sequence data 2571 in the memory 257, and the read image from the image reading device 109, and performs inspection (4015, 4016, 4017).
[0068] The inspection processing unit 2563 compares and inspects only the paper sheets that are to be read in the paper production sequence data 2571 .
[0069] In this embodiment, when inspection is completed, the image data 2581 in the inspection device and the inspection standard data 2582 are deleted from the HDD 258. In addition, the image data 2211 and the print setting information 2212 in the printing device 107 are also deleted.
[0070] However, the present invention is not limited to this, and all or part of the data may be left depending on the settings.
[0071] Also, after the inspection of all the papers is completed, the data may be deleted one by one instead of being deleted.
[0072] 5 is a flowchart showing the operation of the printing device 107 (A), the image reading device 109 (B), and the inspection device 112 (C) in this embodiment. In addition, S5000 to S5209 in the figure represent each step. In addition, steps S5000 to S5059 of the flowchart are realized by the CPU 222 in the printing device 107 reading and executing a program stored in the HDD 221. Steps S5101 to S5102 of the flowchart are realized by the CPU 238 in the image reading device 109 reading and executing a program stored in the memory 239. Steps S5201 to S5209 of the flowchart are realized by the CPU 256 in the inspection device 112 reading and executing a program stored in the HDD 258.
[0073] In this embodiment, the reference image is registered by registering rasterized image data. Note that, in this embodiment, an example is shown in which the rasterized image data is received from the external controller 102 via the video cable 106, but the present invention is not limited to this. For example, the image forming apparatus 101 may receive a print job (including, for example, PDL data) from the PC 103 and rasterize it.
[0074] The processing of the CPU 222 in the printing device 107 will be described with reference to FIG.
[0075] Steps S5001 to S5005 and steps S5051 to S5059 are executed in parallel by the CPU 222 in the printing apparatus 107 under a multitasking OS.
[0076] In step S5000, CPU 222 of printing device 107 receives print data and image data from the external controller.
[0077] In step S5001, the data control unit 2221 executed by the CPU 222 of the printing device 107 determines whether the data received from the external controller 102 is print data. If it is print data, the process proceeds to S5002. If it is not print data, the process proceeds to S5051.
[0078] In step S5002, the data control unit 2221 executed by the CPU 222 acquires print setting information and information on the printing device 107, and stores them in the HDD 221. This corresponds to the print setting information 2212 in FIG.
[0079] In step S 5003 , the data control unit 2221 executed by the CPU 222 stores the image data received via the video I / F 220 in the HDD 221 .
[0080] In step S5004, the data control unit 2221 executed by the CPU 222 transmits the image data to the inspection device 112 via the LAN I / F 218.
[0081] In step S5005, the data control unit 2221 executed by the CPU 222 determines whether processing of all pages of the print data has been completed. If so, the process proceeds to step S5001. If not, the process proceeds to step S5003.
[0082] In step S5051, it is determined whether the received data is image data. If it is image data, the paper production order determination unit 2222 executed by the CPU 222 adds it to the image data 2211 in the HDD 221. If it is added, the process proceeds to step S5052. If it is not image data, the process proceeds to step S5000.
[0083] In step S5052, the paper generation order determination unit 2222 executed by the CPU 222 determines the paper generation order based on the image data 2211 and print setting information 2212 in the HDD 221. The determined paper generation order data 2231 is stored in the HDD 221, and the process proceeds to step S5053.
[0084] The next paper generation order for printing cannot always be determined at the time of step S5052.
[0085] For example, the print setting information 2212 in FIG. 4 is set to "normal order, single-sided, one copy." If the setting is "normal order, double-sided, one copy," the paper generation order is not determined until two pages of image data, one for the front and one for the back, are received. Furthermore, if the setting is "reverse order," the paper generation order is not determined until all image data is received, since the order is reverse. Note that the print setting information in FIG. 4 describes a case where one image data is printed on one side of one sheet of paper in a so-called 1-in-1 printing method, and the print order and double-sided / single-sided printing are set in the print settings. However, the print setting information is not limited to this. For example, a page layout such as so-called 2-in-1 or 4-in-1, in which multiple image data are printed on one side of one sheet of paper, may be set in the print settings.
[0086] In step S5053, the corrected image paper interruption determination unit 22221 in the paper generation order determination unit 2222 executed by the CPU 222 determines whether or not to insert the correction image paper, and reflects this in the paper generation order data 2231, and the process proceeds to step S5054.
[0087] In step S5054, it is determined whether the correction image paper generated in step S5053 will pass through the image reading device 109. If it will pass through, the reading target in the paper generation sequence data 2231 is set to "O", and if it will not pass through and will be discharged outside the machine upstream of the image reading device 109, "X" information is added to the paper generation sequence data, and the process proceeds to step S5055.
[0088] In step S5055, it is determined whether the paper of the paper production sequence data 2231 processed in steps S5052, S5053, and S5054 is to be inspected after being read by the image reading device 109. If the paper is to be inspected, the inspection target in the paper production sequence data 2231 is set to "O", and if it is not to be inspected, "X" information is added to the paper production sequence data, and the process proceeds to step S5056.
[0089] In step S5056, the paper generation order determination unit 2222 executed by the CPU 222 determines whether the paper generation order of the paper to be printed next has been determined. If the paper generation order has been determined, the process proceeds to step S5057, and if not, the process proceeds to step S5051.
[0090] In step S5057, the paper production sequence determination unit 2222 executed by the CPU 222 transmits the paper production sequence data 2231 generated in steps S5052 to S5055 to the inspection device 112 via the LAN I / F 218.
[0091] In step S6058, the image formation control unit 2223 executed by the CPU 222 performs image formation for each sheet based on the image data 2211 in the HDD 221 and the paper production order data 2231 in the memory 223. The image formation is performed by the image formation control unit 2223 executed by the CPU 222 controlling the laser exposure unit 227, the image creating unit 228, the fixing unit 229, and the paper feeding unit 230.
[0092] In step S5059, the image forming control unit 2223 executed by the CPU 222 checks whether the image formed in step S5058 was the last sheet. The determination as to whether the last sheet has been formed is made by determining whether the end of the paper generation sequence data has been reached. If it is the last sheet, the process proceeds to step S5000. If it is not the last sheet, the process proceeds to step S5052, where image formation is performed on the next sheet.
[0093] The case where the flow proceeds to step S5052 is assumed to be a case where the next image is formed even if new image data is not added, such as when two copies are specified.
[0094] Next, the processing of the CPU 238 in the image reading device 109 will be described with reference to FIG.
[0095] In step S5101, if the CPU 238 of the image reading device 109 has acquired a read image, the process proceeds to step S5102; if not, the process proceeds to step S5101.
[0096] In step S5102, the CPU 238 transmits the read image acquired in step S5101 to the inspection device 112 via the video cable 113, and the process proceeds to step S5101.
[0097] Next, the processing of the CPU 256 in the inspection device 112 will be described with reference to FIG.
[0098] In step S5201, if the CPU 256 of the inspection device 112 receives any of image data, scanned image, and paper production sequence data, the process proceeds to step S5202; if not, the process proceeds to step S5201.
[0099] In step S 5202 , the CPU 256 stores the received data in the memory 257 or the HDD 258 .
[0100] In step S5203, the CPU 256 determines whether the received data is image data. If the result is YES, that is, image data, the process proceeds to step S5201, and if the result is NO, that is, the data is a scanned image or paper production sequence data, the process proceeds to step S5203.
[0101] In step S5204, the CPU 256 determines whether the received data is a scanned image. If the result is YES, that is, if the data is a scanned image, the process proceeds to step S5207, and if the result is NO, that is, if the data is paper production sequence data, the process proceeds to step S5205.
[0102] In step S5205, the CPU 256 determines whether the next paper to be processed is to be read based on the paper generation sequence data 2571 in the memory 257. If it is to be read, the process proceeds to step S5206, and if it is not to be read, the process proceeds to step S5201.
[0103] In step S5206, the inspection standard data generating unit 2562 executed by the CPU 256 generates inspection standard data 2582 based on the image data 2581 in the HDD 258 and the paper production sequence data 2571 in the memory 257, and stores it in the HDD 258. Then, the process proceeds to step S5201.
[0104] In step S5207, the inspection processing unit 2563 executed by the CPU 256 refers to the paper production sequence data 2571 in the memory 257 and determines whether the next paper is to be inspected. If it is to be inspected, the process proceeds to step S5208, and if it is not to be inspected, the process proceeds to step S5201.
[0105] In step S5208, the inspection processing unit 2563 executed by the CPU 256 compares the inspection reference data 2582 in the HDD 258 with the read image from the image reader 109, performs inspection, and the process proceeds to step S5209.
[0106] In step S5209, the inspection processing unit 2563 executed by the CPU 256 records the inspection judgment result, and the process proceeds to step S5201. Note that the stored inspection judgment result may be displayed on the display 260.
[0107] As described above, the finished print can be correctly inspected even if the order of the reference images (image data) registered in the inspection device does not match the order (imposition) of the images formed on the paper by the image forming unit.
[0108] In this embodiment, one print data from the external controller 102 is used for both reference image registration and printing, but separate print data for the reference image and for printing may be input from the external controller 102.
[0109] As another example, a method is considered in which image data rearranged in the determined paper generation order is registered in the inspection device as a reference image. In this case, even if it is desired to change the print settings and perform inspection processing again for image data for which a reference image has once been registered, it is necessary to start over again from registering the reference image. On the other hand, in this embodiment, when the order of images formed on paper by the image forming unit is determined, the paper generation order data is notified to the inspection device, and the order of the reference images registered in the inspection device is rearranged in the notified paper generation order and inspection is performed. Therefore, when it is desired to change the print settings and perform inspection processing again for image data for which a correct image has once been registered, it is possible to perform inspection processing by reusing the registered reference image without re-registering the reference image.
[0110] Second Embodiment In the first embodiment, the correction image paper is discharged outside the apparatus onto the discharge tray 324 of the sensing unit 108 upstream of the image reading device 109. However, by discharging the paper onto the escape tray 346 downstream of the image reading device 109, it is possible to prevent the paper on which the correction image is printed from being mixed in with the original product. This will be described as the second embodiment.
[0111] It should be noted that the parts for which description is omitted are similar to those in the first embodiment.
[0112] FIG. 6 is a diagram showing the flow of data within the printing device 107 and the inspection device 112 in this embodiment.
[0113] The printing device 107 receives print setting information 2212 from the external controller 102 via the LAN I / F 218, and image data 62211 via the video I / F 220. The image data 62211 and print setting information 62212 are then saved in the HDD 221 (6001, 6002). In this figure, they are held in the HDD 221, but they may also be held in the memory 223. These reception and saving processes are performed by a data control unit 2221 executed by the CPU 222.
[0114] Furthermore, the data control unit 2221 transmits the image data 62211 to the inspection device 112 via the LAN I / F 218 (6003).
[0115] The paper production order determination unit 2222 executed by the CPU 222 generates paper production order data 62231 based on the image data 62211 and print setting information 62212 in the HDD 221, and stores it in the memory 223 (6004, 6005, 6006).
[0116] The paper generation order determination unit 2222 includes a correction image paper interruption determination unit 22221 that determines whether to insert paper on which an image for correction is printed (hereinafter, correction image paper) at predetermined intervals.
[0117] The paper production order determined by the paper production order determination unit 2222 is the order in which the papers are transported through the paper transport path 315 of the printing device 107. The image reading device 109 then reads the papers transported to the paper transport path 333 in that order.
[0118] In this diagram, image data 62211 is three pages of a document, and print setting information 62212 is set to "normal order, single-sided, one copy."
[0119] It is also assumed that the corrected image paper interposing determination unit 22221 has determined that the corrected image paper is to be interposed on the third sheet.
[0120] As a result, the paper production order determination unit 2222 First sheet of paper (front: first page of image data 62211, back: blank) 2nd sheet of paper (front: 2nd page of image data 62211, back: blank) 3rd sheet of paper (front: image for correction, back: blank) 4th sheet of paper (front: 3rd page of image data 62211, back: blank) That is, the paper generation order determination unit 2222 performs a process of determining the placement destination on a recording sheet (on paper) of image data consisting of multiple pages, such as placing the first page of image data on the front side of the first sheet of paper.
[0121] Furthermore, the paper production order determination unit 2222 determines whether each sheet is to be read and inspected. The term "read" refers to whether each sheet is to be conveyed to the image reading device 109 and have its image read by the cameras 331 and 332. A circle indicates that the sheet is to be read, and an x indicates that the sheet is not to be read.
[0122] The inspection target indicates whether or not the paper to be read is a paper to be inspected by comparing it with the inspection reference data 2582. A circle indicates that the paper is a target for inspection, and an x indicates that the paper is not a target for inspection.
[0123] This paper production sequence data 62231 is sent by the data control unit 2221 to the inspection device 112 via the LAN I / F 218 (6007).
[0124] An image formation control unit 2223 executed by the CPU 222 further determines the print order from the image data 62211 in the HDD 221 and the paper production order data 62231 in the memory 223. The CPU 222 also controls the laser exposure unit 227, the image creation unit 228, the fixing unit 229, and the paper feed unit 230 to form images (6008, 6009, 6010).
[0125] Image formation can only be performed for one page at a time by controlling the laser exposure unit 227, the image forming unit 228, the fixing unit 229, and the paper feed unit 230. In order to shorten the gap between sheets in the transport path and increase productivity, two or more sheets are fed at once, and then a double-sided circulation control is performed in which the sheets are fed and re-fed alternately.
[0126] When two sheets are fed at once, the printing order is as follows: First in printing order (front of first page) Second in printing order (front of second page) 3rd in printing order (back of first sheet of paper) 4th in printing order (3rd page, front) 5th in printing order (back of 2nd sheet of paper) 6th in printing order (4th page, front) 7th in printing order (back of 3rd sheet of paper) 8th in printing order (4th page, back) By printing in the above-mentioned printing order, the printed matter, which is the paper on which the printing is performed, is printed in accordance with the layout destination on the paper of the image data specified in the paper production order data.
[0127] The paper on which an image has been formed by the printing device 107 is transported to the subsequent device via the paper transport path 315 (6011).
[0128] Unlike the first embodiment, in the second embodiment, all of the paper stack 6011 transported from the paper transport path 315 is transported to the image reading device 109, the images of the paper are read using the cameras 331 and 332, and the scanned image data is transferred to the inspection device 112.
[0129] Meanwhile, the inspection device 112 receives image data 62211 and paper production sequence data 62231 from the printing device 107 via the LAN I / F 262. Then, the image data 62211 is stored in the HDD 258 and the paper production sequence data 62231 is stored in the memory 257 by a data control unit 2561 executed by the CPU 256. Although the storage form shown on the left is shown in this diagram, it is also possible to store only the HDD 258 or only the memory 257, or vice versa. The image data 62211 stored in the inspection device 112 will be renamed 62581, and the paper production sequence data 62231 will be renamed 62571.
[0130] An inspection standard data generating unit 2562 executed by the CPU 256 generates inspection standard data 62582 based on image data 62581 in the HDD 258 and paper production sequence data 62571 in the memory 257, and stores it in the HDD 258 (6012, 6013, 6014).
[0131] The inspection reference data generating unit 2562 generates inspection reference data only for the paper sheets whose reading target in the paper production sequence data 62571 is ◯.
[0132] That is First sheet of paper (front: first page of image data 62211, back: blank) 2nd sheet of paper (front: 2nd page of image data 62211, back: blank) 3rd sheet of paper (front: image for correction, back: blank) 4th sheet of paper (front: 3rd page of image data 62211, back: blank) Generate.
[0133] Next, the inspection processing unit 2563 executed by the CPU 256 compares the inspection standard data 62582 in the HDD 258, the paper production sequence data 62571 in the memory 257, and the read image from the image reading device 109, and performs inspection (6015, 6016, 6017).
[0134] The inspection processing unit 2563 compares and inspects only the paper sheets that are to be read in the paper production sequence data 62571.
[0135] In this embodiment, when inspection is completed, the image data 62581 in the inspection device and the inspection standard data 62582 are deleted from the HDD 258. In addition, the image data 62211 and the print setting information 62212 in the printing device 107 are also deleted.
[0136] However, the present invention is not limited to this, and all or part of the data may be left depending on the settings.
[0137] Also, after the inspection of all the papers is completed, the data may be deleted one by one instead of being deleted.
[0138] The flowchart showing the operations of the printing device 107, the image reading device 109, and the inspection device 112 in the second embodiment is similar to that in FIG. 5 described in the first embodiment.
[0139] As described above, even in the case where the corrected image paper is discharged to the escape tray 346 downstream of the image reading device 109, inspection can be performed by the inspection device 112 by controlling the reading target and inspection target of the paper production sequence data 62231.
[0140] (Third embodiment) In the first and second embodiments, corrected image paper was used as an example of paper on which no image exists to be inspected, but it is also possible to inspect blank paper or other partition paper that does not have image data using the same control.
[0141] (Other embodiments) Although various examples and embodiments of the present invention have been shown and described, the spirit and scope of the present invention is not limited to the specific descriptions within this specification.
[0142] The present invention can also be realized by a process in which a program for implementing one or more of the functions of the above-described embodiments is supplied to a system or device via a network or a storage medium, and one or more processors in a computer of the system or device read and execute the program. The present invention can also be realized by a circuit (e.g., ASIC) that implements one or more of the functions. [Explanation of symbols]
[0143] 101 Image forming device 107 Printing device 112 Inspection equipment 218 LANI / F 222 CPU 109 Image reading device 258 HDD 256 CPU
Claims
1. a first registration means for registering the image data upon receiving the image data; a receiving means for receiving information on the layout of the image data on a recording sheet, the information being obtained from the image data and print settings; a second registration means for registering a reference image obtained by rearranging the image data registered in the first registration means based on the information on the arrangement; an inspection means for receiving a scanned image obtained by reading a printed matter on which the image data is printed, and inspecting the printed matter based on the scanned image and the reference image; The information on the layout of the image data on the recording sheet further includes information on whether or not to perform inspection by the inspection means. An inspection device characterized by:
2. The image data is an image consisting of multiple pages to be printed on one or more recording sheets.
2. The inspection device according to claim 1.
3. The layout information indicates a layout destination of the image data on the recording sheet so that the image data is printed on the recording sheet based on the print settings.
2. The inspection device according to claim 1.
4. The reference image is an image obtained by rearranging the image data registered in the first registration means based on the information on the arrangement.
2. The inspection device according to claim 1.
5. The inspection means inspects the printed matter based on a comparison between the reference image registered in the second registration means and the scanned image.
2. The inspection device according to claim 1.
6. The print settings are settings for determining the layout of the image data on the recording sheet.
2. The inspection device according to claim 1.
7. The print settings include the print order, print side, number of copies, and page layout.
2. The inspection device according to claim 1.
8. The image data registered in the first registration means and the reference image registered in the second registration means are data in which the order of at least one image is different.
2. The inspection device according to claim 1.
9. The destination of the image data on the recording sheet includes information indicating the destination of the inserted sheet, and the inserted sheet is not an object of inspection.
2. The inspection device according to claim 1.
10. A method for controlling an inspection apparatus, comprising: a first registration step of registering the image data upon receiving the image data; a receiving step of receiving a layout destination obtained from the image data and print settings, and a layout destination of the image data on a recording sheet; a second registration step of registering a reference image in which the image data is rearranged based on the placement destination; an inspection step of receiving a scanned image obtained by reading a printed matter on which the image data is printed, and inspecting the printed matter based on the scanned image and the reference image; The destination of the image data on the recording sheet further includes information on whether or not inspection is to be performed in the inspection process.
2. A control method for an inspection apparatus comprising:
11. An inspection system comprising at least a printing device, an inspection device, and an image diagnostic unit, a first registration means for registering the image data upon receiving the image data; a generating means for generating a layout destination of the image data on a recording sheet, the layout destination being obtained from the image data and print settings; a second registration means for registering a reference image obtained by rearranging the image data registered in the first registration means based on the placement destination; an inspection means for receiving a scanned image obtained by reading a printed matter on which the image data is printed, and inspecting the printed matter based on the scanned image and the reference image; an image diagnostic unit that identifies a fault location in the inspection system based on the diagnostic chart inserted in the printed matter; The generating means adds information indicating that the inspection by the inspecting means is not performed to the placement destination corresponding to the diagnostic chart. An inspection system characterized by:
12. the inspection system includes a reading device that reads a printed material on which the image data is printed, The printed matter passes through a conveying path from the printing device, the image diagnosis unit, and the reading device, and a scanned image obtained by reading the printed matter with the reading device is used for inspection by the inspection means. The inspection system of claim 11 .
13. the diagnostic imaging unit has a paper ejection means for ejecting the diagnostic chart used in the diagnostic imaging; The generating unit generates information indicating that the diagnostic chart should not be read by the reading device at a placement destination corresponding to the diagnostic chart discharged by the paper discharge unit. The placement destination corresponding to the diagnostic chart discharged by the discharge means is added with information indicating that reading by the reading device and inspection by the inspection means are not to be performed. The inspection system of claim 12 .
14. A control method for an inspection system including at least a printing device, an inspection device, and an image diagnostic unit, a first registration step of registering the image data upon receiving the image data; a generating step of generating a layout destination of the image data on a recording sheet, the layout destination being obtained from the image data and print settings; a second registration step of registering a reference image in which the image data is rearranged based on the placement destination; an inspection step of receiving a scanned image obtained by reading a printed matter on which the image data is printed, and inspecting the printed matter based on the scanned image and the reference image; an image diagnostic unit that identifies a fault location in the inspection system based on the diagnostic chart inserted in the printed matter; The placement destinations generated in the generating step are added with information that the test is not performed in the placement destinations corresponding to the diagnostic chart.
10. A method for controlling an inspection system comprising:
15. a first registration means for registering the image data upon receiving the image data; a receiving means for receiving information on the layout destination of the image data on a recording sheet, the layout destination being determined based on the image data and print settings, and information on whether or not an inspection is to be performed; a second registration means for registering a reference image obtained by rearranging the image data registered in the first registration means based on the placement destination; an inspection means for receiving a scanned image obtained by reading a printed matter on which the image data is printed, and inspecting the printed matter based on the scanned image and the reference image; The inspection means performs the inspection based on the information on whether or not the inspection is to be performed, received by the receiving means. An inspection device characterized by: