WO2015094321A1 - Determining image rescale factors - Google Patents

Determining image rescale factors Download PDF

Info

Publication number
WO2015094321A1
WO2015094321A1 PCT/US2013/076808 US2013076808W WO2015094321A1 WO 2015094321 A1 WO2015094321 A1 WO 2015094321A1 US 2013076808 W US2013076808 W US 2013076808W WO 2015094321 A1 WO2015094321 A1 WO 2015094321A1
Authority
WO
WIPO (PCT)
Prior art keywords
image
scale
references
rescale
resolution
Prior art date
Application number
PCT/US2013/076808
Other languages
French (fr)
Inventor
Jordi Arnabat Benedicto
Alessia RULLO
Jordi VILAR BENITO
Jesus DE LA LAMA PESQUERA
Original Assignee
Hewlett-Packard Development Company, L.P.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Hewlett-Packard Development Company, L.P. filed Critical Hewlett-Packard Development Company, L.P.
Priority to CN201380081654.5A priority Critical patent/CN105830014B/en
Priority to EP13899663.2A priority patent/EP3084587A4/en
Priority to PCT/US2013/076808 priority patent/WO2015094321A1/en
Priority to US15/105,285 priority patent/US10313558B2/en
Publication of WO2015094321A1 publication Critical patent/WO2015094321A1/en

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/387Composing, repositioning or otherwise geometrically modifying originals
    • H04N1/393Enlarging or reducing
    • 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
    • G06F3/14Digital output to display device ; Cooperation and interconnection of the display device with other functional units
    • G06F3/1423Digital output to display device ; Cooperation and interconnection of the display device with other functional units controlling a plurality of local displays, e.g. CRT and flat panel display
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/0035User-machine interface; Control console
    • H04N1/00405Output means
    • H04N1/00408Display of information to the user, e.g. menus
    • H04N1/00411Display of information to the user, e.g. menus the display also being used for user input, e.g. touch screen
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/0035User-machine interface; Control console
    • H04N1/00405Output means
    • H04N1/00408Display of information to the user, e.g. menus
    • H04N1/0044Display of information to the user, e.g. menus for image preview or review, e.g. to help the user position a sheet
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/0035User-machine interface; Control console
    • H04N1/00405Output means
    • H04N1/00408Display of information to the user, e.g. menus
    • H04N1/0044Display of information to the user, e.g. menus for image preview or review, e.g. to help the user position a sheet
    • H04N1/00461Display of information to the user, e.g. menus for image preview or review, e.g. to help the user position a sheet marking or otherwise tagging one or more displayed image, e.g. for selective reproduction
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2320/00Control of display operating conditions
    • G09G2320/06Adjustment of display parameters
    • G09G2320/0693Calibration of display systems
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2340/00Aspects of display data processing
    • G09G2340/04Changes in size, position or resolution of an image
    • G09G2340/045Zooming at least part of an image, i.e. enlarging it or shrinking it
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2354/00Aspects of interface with display user
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N2201/00Indexing scheme relating to scanning, transmission or reproduction of documents or the like, and to details thereof
    • H04N2201/0077Types of the still picture apparatus
    • H04N2201/0094Multifunctional device, i.e. a device capable of all of reading, reproducing, copying, facsimile transception, file transception

Definitions

  • Digital reprography can be described as the reproduction of drawings, illustrations and other images through digital Imaging, scanning, and/or printing.
  • Print provider businesses commonly use digital reprography processes to meet standard-format, targe-format, and wide-format reproduction needs of the architectural, engineering, and construction industries.
  • Items produced for such customers may include plans, blueprints, renderings, maps, and other technical documents.
  • FIG 1 Is a block diagram depicting an example environment in which various embodiments may be Implemented.
  • FIG. 2 is a block diagram depicting an example of a system to determine image rescaie factors.
  • £OO04J Fi6. 3 is a block diagram depicting an example data structure for a system to determine image rescaie factors.
  • FIG. 4 is a block diagram depicting a memory resource and a processing resource according to an example
  • FIG, 5 illustrates an example of determining and applying an image rescaie factor to a print job.
  • FIG, 6 is a flow diagram depicting steps taken to Implement an example.
  • a print provider may receive print jobs containing technical drawings in a file formats such as PDF, TIFF, HPGL2, or DWG.
  • the provider may receive as part of the job print instructions specifying a media size and a prescribed or desired scale for printed drawings,
  • a resolution or scale instructions that are Included in an image file were generated incorrectly as a result of an error in software that was used to render the document to a printer-ready format such as PCL3, PC 15, or PostScript
  • the prescribed scale included in the print job may be inaccurate due to a software application having created an incorrect resolution tag (e.g., a TIFF tag) or other indication of scale that is included in the image file or otherwise included within the print job,
  • a print fob with instructions for printing an image at a prescribed resolution, is obtained.
  • a display of the image, at the prescribed resolution is caused at a display device.
  • a first reference and a second reference are indicated or designated within the displayed image,
  • a quantity of pixels between the first and second references is determined.
  • An indication of a real distance between the first and second references is received.
  • a desired scale for the Image is obtained.
  • a rescale factor for the image is determined upon the resolution, the determined pixel quantity, the real distance, and the desired scale. The rescale factor can be applied to rescale the image such that a printing or display of the reseated image will result in an adjusted image that Is correctly scaled as compared to the desired scale.
  • embodiments of this disclosure present an automated and efficient manner determine a rescale factor for out of scale images, and apply the rescale factor to enable printing of the image at the corrected resolution.
  • a print-provider uses the newly disclosed method and system to utilize a user- guided estimation of the scale of a technical drawing before printing, and thereby automatically identify out-of-sca!e situations and automatically fix the scale-print-setting of the page in order to create a correct print out.
  • Print providers will not be required to manually compute adjustment factors and explicitly reset document print scales to accomplish correct printing. Accordingly, users will benefit from savings In materials and time.
  • Such advantages of the disclosure will cause customer satisfactio with digital printing of technical drawings, and the applications, and computing devices that facilitate the digital printing, to increase.
  • FIG. 1 depicts an example environment 100 in which embodiments may be implemented as a system for determining image rescale factors 102.
  • Environment 100 Is show to include computing device 104, client devices 108, 108, and 1 10, server device 1 12, and printer 1 14.
  • Components 108-114 are interconnected via link 116.
  • Link 118 represents generally any infrastructure or combination of infrastructures configured to enable an electronic connection, wireless connection, or other connection to enable data communication between components 104-1 14.
  • Infrastructure or infrastructures may include, but are not limited to, one or more of a cable, wireless, fiber optic, or remote connections via telecommunication link, an infrared link, or a radio frequency link.
  • link 1 16 may represent the internet, one or more intranets, and any intermediate routers, switches, and other interfaces.
  • an "electronic connection * refers generally to a transfer of data between components, e.g., between two computing devices, that are connected by an electrical conductor.
  • a "wireless connection” refers generally to a transfer of data between two components, e.g., between two computing devices, that are not directly connected by an electrical conductor,
  • a wireless connection ma be via a wireless communication protocol or wireless standard for exchanging data.
  • Client devices 108-110 represent generally any computing device with which a user may Interact to communicate with other client devices, server device 1 12. and printer 114 via link 116, Server device 112 represents generally any computing device configured to sen e an application and corresponding data for consumption by components 104- 10 and 114.
  • Printer 1 14 represents generally any computing device configured to produce a physical printed representation of an image.
  • Printer 114 may be a multifunction device that can perform a function such as scanning and/or copying in addition to printing.
  • printer 114 may be a printe located in a printing system located in a commercial print provider facility. In other examples printer 114 may be a printer located in a home.
  • printer 1 14 may be thermal Inkjet printer, a piezoelectric Inkjet printer, a latex ink printer, a solid ink printer, a laser printer, or any other type of printer that ejects a colorant or colorants to form an image.
  • Printer 114 includes hardware and programming for providing printing functions.
  • Printer 114 may include an operating system to cause the printer to interpret print data, and a printing element to cause the application of one or more colorants upon a media according to mapping provided by print data, to thereby form an image upon a media,
  • Computing device 104 represents generally any computing device with which a user may interact to communicate with client devices 106-110, server device 112, and/or printer 114 via link 116
  • Computing device 104 is shown to include core device components 118.
  • Core devic components 118 represent generally the hardware and programming for providing the computing functions for which device 104 is desig ed.
  • Such hardware can include a processor and memory, a displa apparatus 120, and a user interface 122.
  • the programming can include an operating system and applications.
  • Display apparatus 120 represents generally an combination of hardware and programming configured to exhibit or present a message, image, view, or other presentation for perception by a user, and can include, but is not limited to, a visual, tactile or auditory display.
  • the display device may he or Include a monitor, a touchscreen, a projection device, a touch/sensory display device, or a speaker.
  • User interface 122 represents generally any combination of hardware and programming configured to enable interaction between a user and device 04 such that the user may effect operation or control of device 104.
  • user Interface 122 may be, or include, a keyboard, keypad, or a mouse.
  • the functionality of display apparatus 120 and user Interface 122 may be combined, as in the case of a touchscreen apparatus that may enable presentation of Images at device 104, and that also may enable a user to operate or control functionality of devic 104.
  • C0O2OJ System 102 represents generally a combination of hardware and programming configured to enable the determining of image rescale factors.
  • System 102 is to receive a print job 124 including instructions for printing of an image at a resolution.
  • a ' print job refers generally to content, e.g., an image, and/or instructions as to formatting and presentation of the content sent to a computer system for printing, in examples, a print Job may be stored in a programming language and/or a numerical form so that the job can b stored and used in computing devices, servers, printers and other machines capable of performing calculations and manipulating data.
  • an "image” refers generally to a rendering of an object, scene, person, or abstraction such text or a geometric shape.
  • a “resolution” refers generally to a measure of the detail an Image holds, in an example, resolution may be a pixel resolution, and may be expressed in terms of a pixel count such as "X by Y ⁇ wherein * X" is a variable representing a number greater than zero that is a number of pixel columns (width) and " is a variable representing a number greater than zero that is a number of pixel rows (height). In another example, resolution may be a pixel resolution, and may be expressed In terms of a total number of pixels in the image, e.g. * Z megapixels," wherein !: Z" Is a variable representing a numbe greater than zero,
  • 10021 J System 02 is to cause a display of the image, at the resolution, at a display device.
  • a "display” refers generally to an exhibition or presentation for perception by a participant.
  • the display is or includes a graphic user interface display to be presented at a computer monitor, touchscreen, or other electronic display device.
  • System 102 Is to indicate or designate a first reference and a second reference inside the displayed Image.
  • a "reference” refers generally to any indicated or designated feature, mark, or point within an image.
  • the reference may designated by illuminating an element in the display, in another example, a reference may be designated by a pointer, line, ellipsis, geometric shape, or other indicator included n the display with the image,
  • System 102 ss to determine a number of pixels in the interval that separates the designated first and second references.
  • a "pixel * refers generally to a discrete unit of a digitally quantized image
  • pixels of an image may be organized as, or classified, using a two-dimensional grid, and ma be represented using dots or squares.
  • System 102 is to obtain a designation of a reai distance between th first and second references.
  • a "real distance" between reference points depicted in an image refers generally to a true or reai distance between distinct physical features represented or signified by the reference points.
  • the physical features may be features of a single object, e.g. distinct points in an assembled, real world door frame, in another example, the physical features may be features of unique objects, e.g. a doorframe edge and a kitchen counter edge.
  • the real distance is a distance received by system 102 via a graphic user interface display provided by system 102.
  • system 102 may obtain the designation of the real distance via system 102 analyzing the -mage and recognizing a real distance included within the image, in a example, the real distance may be included within the image as text that is visible in the displa and is adjacent to the first and second references, !n another example, the real distance may be included within the image as metadata,
  • System 102 is also to receive a desired scale for the image.
  • a “desired scale” refers generally to a scale for the image that was intended, anticipated or prescribed.
  • a “scale” of an image refers generally to proportional ratio of a linear dimension of the image to the same feature of an original item, in an example, an image may include a two- dimensional or three-dimensional scale model of a building or the scale drawings of the elevations or plans of a building. Typically the scale of an image is consistent throughout the model or drawing, and may be expressed as a ratio (e.g. 1:100 ⁇ as a fraction (e ⁇ g. > 1/100), or as a number (e.g.. 0.01).
  • system 102 receives the desired scale via user interaction with a graphic user interface provided by System 102.
  • System 102 is to determine an actual scale for the image, in consideration of the resolution, the determined number of pixels, and the real distance.
  • actual scale refers generally to calculated or determined scale.
  • System 102 Is to then, in consideration of t is determined actuai scale and the desired scale, determine a rescaie factor for the image.
  • a "rescaie factor' refers generally to a number or quantity that is to be mathematically applied to change the scale of an image. In an example the resale factor is may be expressed as a percentage by which an actual or current scale is to be increased or reduced.
  • System 02 in turn applies the determined rescaie factor to the actual scal to rescaie the image to b the desired scale.
  • syste 02 is to cause revision of the print job 12 to include the rescaied image
  • system 102 is to cause replacement of the print Job 124 with a new print job that includes the rescaied Image
  • system 102 is to cause printing of the rescaied image.
  • I0027J System 102 may be wholly Integrated within core device components 118.
  • System 102 may be implemented as a component of any of computing device 104, client devices 104-1 10, server device 112, or printer 114, where it may take action based in part on data received from core device components 1 18 via link 116.
  • System 102 may be distributed across computing device 104, and any of client devices 108-110, server device 112, or printer 114.
  • obtaining the print job causing a display of the image, indicating or designating the first reference and second reference, determining a quantity of pixels between the first and second references, receiving a real distance, and obtaining a desired scale for the image may be performed on computing device 104, while determining a rescaie factor for the image, causing revision or replacement of the print job, and causing printing of the rescaied image may be performed by printer 114,
  • Other distributions of system 102 across computing device 04, client devices 106- 0, server device 1 12, and printer 114 are possible and contemplated by this disclosure, It is noted that all or portions of the system for determining image rescale factors 102 may also be included on client devices 106, 108 or 110.
  • FIGS. 2, 3, and 4 depict examples of physical and logical components for implementing various embodiments.
  • various components are Identified as engines 202, 204, 208, 208, 210.
  • engines 202. 204, 206, 208, 210 focus is on each engine's designated function.
  • engine refers generally to a combination of hardware and programming configured to perform a
  • each engine may include one or both of a processor and a memory, while the programing ma be code stored on that memory and executable by the processor to perform the designated function.
  • FIG. 2 is a block diagram depicting components of system for determining image rescale factors 102.
  • system 102 includes job engine 202.
  • display engine 204 reference engine 2.08, interface engine 208, and rescale engine 210,
  • engines 202, 204, 206, 208, 210 may access data repository 212
  • Repository 212 represents generally any memory accessible to system 102 that can be used to store and retrieve data.
  • the desired resolution is a resolution included within an Image document that contains the image to be printed.
  • the resolution may be included within the image document as a resolution tag (e.g., a TIFF tag) or as other metadata within the image document.
  • the desired resolution may be included within instructions for printing an image, wherein the instructions are in the form of data communicated separate from the image document.
  • C0O31J Display engine 204 represents a combination of hardware and programming configured to cause a display of the image, at the desired resolution, at a display device.
  • the display of the image at the display device is, or includes, a graphic user interface display to be presented a a computer monitor, touchscreen, projection device, touch/sensory display or other electronic display device.
  • display engine 204 includes the display device.
  • display engine 204 may be configured to cause the display by sending the image, along with instructions for display of the image, to a display device that is electronically or wirelessiy connected to system i 02.
  • Reference engine 206 represents a combination of hardware and programming configured to indicate a first reference and a second reference within the displayed image, and determine a quantity of pixels between the first and second references.
  • the reference engine 208 may be configured to cause presentation of a first graphic user interface, the first interface for enabling a user to select or designate the firs! and second references at the display.
  • the user selection may be via user interaction with a computer mouse (e g. a mouseclick or hover operation), or via a finger touch upon a touchpad display, whereby a user selects two points in the displayed image to serve as the first reference and the second reference.
  • the reference engine 206 may he configured to cause the first and second references to be indicated automatically from elements of the image, without providing an opportunity for a user to select which image elements are to serve as the first and second references
  • reference engine 208 may be configured to cause a connecting element or bridging element to be drawn in the display between the first and second references.
  • the connecting element may be a second graphic user interface to guide or instruct a user to provide or designate a real distance between the displayed first and second references, as discussed with respect to the interface engine below.
  • the reference engine 206 may be configured to cause the connecting element to be drawn between the first and second references following receipt of data indicating user-selection of the image elements that are to serve as the first and second references.
  • the reference engine 206 may be configured to cause provide a display of a reference-choosing tool concurrent with the display of the image.
  • the tool may enable a user to select any two points in the displayed image as the first and second references, and then draw a connecting element between the selected first and second references.
  • the connecting element may be in the form of a line, ellipsis, geometric shape, or any other element included in the display along with the image, for connecting the first and second references.
  • 0034J interface engine 208 represents a combination of hardware and programming configured to receive an indication of the real distance between the first and second references, in an example, the real distance is designated visibly in the displayed image, and the indication of the real distance between the first and second references may be received via a third graphic user interface following user interaction with the interface.
  • the third graphic user interface displayed, at least for a period, concurrently with the display of the image in examples, the third graphic user interface may include a text box, drop-down list, cycle button, slider, or any other type of graphic user interface control or widget to facilitate user interaction with the interface and system 102.
  • interface engine 208 may be configured to obtain an indication of the real distance between the first and second references by utilizing optical character recognition or other image analysis technology to identify the real distance from a display of the image.
  • Interface engine 208 may be configured to obtain an indication of the real distance between the first and second references by accessing metadata within the displayed image, or within a document that includes the image.
  • Reseaie engine 210 represents a combination of hardware and
  • reseaie engine 210 may be configured to obtain data indicative of the desired scale from the print fob itself.
  • the desired scale Is a scale included within an image document that contains the image to be printed, in an example, the desired scale may be included within the image document as a scale tag or as other metadata within the image document in another example, the desired scale may be included wit in instructions for printing an Image, wherein the Instructions are in the form of data
  • rescaie engine 210 may be configured to cause the display of a fourth graphic user interface, and to cause the desired scale to be received via the fourth graphic user Interface.
  • the fourth graphic user interface may be displayed : at least for a period, concurrently with the display of the Image, in examples, the fourth graphic user interface may include a text box, drop-down list, cycle button, slider, or any other type of graphic user interface control or widget to facilitate user interaction with the Interface and system 102.
  • rescaie engine 210 may b configured to, based upon the desired resolution, the pixel quantity as determined by the reference engine 206. and the real distance received via the interface engine 208, determine an actual scale for the image.
  • the actual scale may be determined according the following formula:
  • rescaie engine 210 may be configured: to determine a rescaie factor for the image based on the derived actual scale and ti desired scale.
  • the rescaie factor scale may be determined according the following formula:
  • rescate engine 210 may be configured to, upon determination of the rescale factor, apply the rescaie factor to rescale the image based upon the resca!e factor to adjust the image to the desired scale, in an example, rescale engine 210 may be configured to, upon determination of trie rescale factor, apply the rescaie factor to the derived actual scale, and thereby cause rescaling of the image to the desired scale.
  • rescate engine 210 may be configured to cause the print job to be revised to Include the reseated image
  • rescale engine 210 may be configured to cause the originally received print fob to be replaced with a new print job that includes the reseated image.
  • rescaie engine 210 may cause printing of the reseated image
  • rescale engine 210 may be incorporated within a printing device, e.g., printer 114 (FIG. 1) and cause printing of the reseaSed image,
  • FIG. 3 depicts an example implementation of data repository 212.
  • repository 212 includes data suggestive of a print job 302, print instructions 304, an image 306, an image resolution 308, first 310 and second 312 references within the Image, a number of pixels In an interval between the first and second references, a real distance 316 between the first and second references, a prescribed scale 318 for the image, a determined actual scale 320 for the Image, and a determined rescaie factor 322 for the image.
  • job engine 202 receives a print job 302 including instructions 304 for printing of an image 306 at a prescribed resolution 308.
  • the print job 302 may include an attached document or image file.
  • print job engine 302 may receive the print job 302 via a print driver application, via an email application, or via another software application.
  • the print job 302 may be received via an application executing at the same computing device that includes the job engine.
  • print job 302 may be received via an application executing at a computing device distinct from the computing device that includes print job engine 302,
  • display engine 204 causes presentation of the Image 306, at the prescribed resolution 308, at a display device.
  • Reference engine 206 designates a first reference 310 and a second reference 312 inside the presented image 306, and determines a number or count of pixels 314 in an -interval separating the first and second references 310 312,
  • interface engine 208 receives a designation of a real distance 316 between the first and second references 302 312.
  • Rescaie engine 210 ⁇ FIG. 2 ⁇ receives a prescribed scale 318 for the image 306.
  • Rescaie engine 210 determines an actual scale 320 for the image 306 in consideration of the resolution 308, the determined number of pixels 314, and the real distance.
  • Rescaie engine 210 in turn determines a rescaie factor 322 in consideration of the actual scale 320 and the prescribed scale 318, and applies the rescaie factor 322 to the determined actual scale 320 to rescaie the image.
  • engines 202, 204, 206, 208, 2 0 were described as combinations of hardware and programming. Engines 202, 204, 206, 208, 210 may be implemented in a number of fashions.
  • the programming may be processor executable instructions stored on a tangible memory resource 402 and the hardware may include a processing resource 404 for executing those Instructions.
  • memory resource 402 can b said to store program instructions that when executed by processing resource 404 implement system 102 of FIGS. 1 and 2.
  • Memory resource 402 represents generally any number of memory components capable of storing instructions that can be executed by processing resource 404.
  • Memory resource 402 is non-transitory in the sense that it does not encompass a transitory signal but instead is made up of more or more memory components configured to store the relevant instructions.
  • Memory resource 402 may be implemented in a single device or distributed across devices.
  • processing resource 404 represents any number of processors capable of executing instructions stored by memory resource 402.
  • Processing resource 404 may be integrated in a single device or distributed across devices. Further, memor resource 402 may be fully or partially integrated in the same device as processing resource 404, or it may be separate but accessible to that device and processing resource 404.
  • the program instructions can be part of an installation package that when installed can be executed by processing resource 404 to implement system 102.
  • memory resource 402 may be a portable medium such as a CO, DVD, or Hash drive or a memor maintained by a server from which the installation package can be downloaded and installed.
  • the program instructions may he part of an application or applications already installed.
  • memory resource 402 can include integrated memory such as a hard drive, solid state drive, or the like.
  • Job module 408 represents program instructions that when executed may cause processing resource 404 to cause the implementation of job engine 202 of FIG. 2
  • Display module 408 represents program instructions that when executed cause processing resource 404 to cause the implementation of display engine 204 of FIG. 2
  • Reference module 410 represents program instructions that when executed may cause processing resource 404 to cause the implementation of reference engine 208 of FIG. 2.
  • Interface module 412 represents program instructions that when executed may cause processing resource 404 to cause the implementation of interfac engine 208 of FIG. 2.
  • Rescaie module 414 represents program instructions that when executed may cause processing resource 404 to cause the implementation of rescaie engine 210 of FIG. 2.
  • FIG. 5 illustrates an example of determining image rescaie factors.
  • system 102 receives a print job with instructions for printing an architectural plan image 502 at a desired or prescribed resolution of 2.83 pixels/mm.
  • the prescribed resolution is a resolution Included as metadata within an image document tha includes the image 602 to he printed.
  • System 102 causes a graphic user interface display 504 of the image 502, at the prescribed resolution, at a computers display device, e.g., a computer monitor touchscreen.
  • system 102 causes the display by sending the image 502, along with Instructions for displa of the image, to 8 display device that is electronically or wireiessiy connected to system 02,
  • System 1 2 causes display of graphic user interface reference selection tools 506 ! 506", the tools for enabling a user to select or designate a first reference 508' and a second reference S08" within the display 504,
  • each reference selection too! includes a circle with an "X* enclosed within, the first tool 506 ' to select the first reference 508 ' and a second tool 506" to select the second reference SOS".
  • user selection of the first and second references 508' 506" occurs via user interaction with a computer mouse (e.g. a mcuseciick or hover operation). The user selects two points in the displayed Image to serve as the first reference 508" and the second reference 508".
  • system 102 causes a graphic user interface bridging element in the form of a bridging line 510 to be drawn in the display 504 between the first and second references 508 ' 508", concurrent with the display of the Image 504.
  • the bridging line 510 is to guide a user in determining a real distance between the displayed first and second references 508' 508 "' .
  • system 102 causes the bridging line 510 to be drawn between the first and second references 508 s 508" following receipt of data at system 102 indicating user-selection of image elements that are to serve as the first and second references 508 ! 508".
  • system 102 causes counting of, or otherwise determines that a quantity of 200 pixels exists between the first and second references 508' 508" ' .
  • the counting or determination of the quantity of pixels may be based upon pixels included within the bridge line.
  • System 102 causes presentation within display 504 at the display device of a first text box graphic user interface 512 for enabling a use to provide tie indication of the real distance between the first and second references 508' 508",
  • the first text box 512 is displayed, at least for a period, concurrently with the display of the image 304.
  • System 02 receives, as the result of user-input at the text box 5 2, an indication of a 872 mm real distance 514 between the first and second references 508' SOB".
  • system 102 obtains a 1:50 prescribed scale 518 for the image, in this example, system 102 causes presentation within the display 504 at the display device of a second text box graphic user interface 516 for enabling a user to provide the 1:50 prescribed scale 518, and receives the prescribed scaie 518 via user input a the second text bo interface 518.
  • the second text box interface 518 is displayed, at least for a period, concurrently with the display of the imag 502,
  • the actual scale may be determined according the following formula:
  • system 102 causes the determined actual scale 520 to be displayed concurrent with the display 504 of the image to be printed.
  • system 102 determines a 0.2474 rescaie factor for the image based on the derived 1:12.36 actual scale 520 and the 1 :50 prescribed scale 518.
  • the rescaie factor scale may be determined according the following formula: wherein "Prescribed ⁇ " ' s representative of tie prescribed scale 518, and * Actual scai is representative of the derived actual scale 520.
  • a rescale factor of 0.2474 is determined as follows ' .
  • system 102 upon determination of the rescale factor, applies the 0.2474 rescale factor to the derived 1:12.36 (or 0,809 ⁇ actual scale of the image, and thereby adjusts the actual scale of the image 502 to the prescribed scale, in this example, system 102 applies the 0.2474 rescale factor to adjust the actual scale by causing printing of th image 502 at 0.2474 (or 24,74 percent) of the actual scale, in this example, system 102 causes the print job to be revised to include the reseated image, and causes printing of the reseated image.
  • FIG, 8 is a flow diagram of steps taken to implement a method for determining image rescale factors, in discussing FIG. 6, reference may be made to the components depicted in FIGS. 2 and 4. Such reference is made to provide contextual examples and not to limi the manner in which the method depicted by FIG. 6 may be implemented.
  • a print job. with instructions for printing an image at a resolution is obtained (block 802), Referring back to FIGS. 2 and 4, job engine 202 (FIG. 2) or job module 406 (FIG. 4), when executed by processing resource 404, may be responsible for implementing block 802,
  • a display of the image at the resolution at a display device is caused (block 604).
  • display engine 204 (FIG. 2 ⁇ or display module 408 (FIG. 4), when executed by processing resource 404, may he responsible for implementing block 604,
  • a first reference and a second reference within the displayed imag are indicated, and a quantity of pixels between the first and second references is determined ⁇ block 608).
  • reference engine 206 (FIG. 2) or reference module 410 ⁇ FIG. 4), when executed by processing resource 404, may be responsible for implementing block 606.
  • An indication of a real distance between the firs and second references is received (block 608).
  • interface engine 208 (FIG. 2 ⁇ or interface module 412 (FIG, 4), when executed by processing resource 404, may be responsible for implementing block 608.
  • rescaie engine 20S (FiG. 2) or rescaie module 414 (F!G. 4), when executed by processing resource 404, may be responsible for implementing block 610.
  • a rescaie factor for the Image is determined based on the resolution, the determined pixel quantity, the real distance, and the desired scale (block 612). Referring back to FIGS. 2 and 4. rescaie engine 208 (FiG. 2) or rescaie module 414 (FIG. 4). when executed by processing resourc 404, may be responsible for implementing block 6 2.
  • FIGS. 1-6 aid in depicting the architecture, functionality, and operation of various embodiments.
  • FIGS. 1-4 depict various physical and logical components.
  • Various components are defined at least in part as programs or programming. Each such component, portion thereof, or various combinations thereof may represent in whole or in part a module, segment, or portion of code that comprises one or more executable instructions to implement any specified logical function(s).
  • Each component or various combinations thereof may represent a circuit or a number of interconnected circuits to implement the specified logical function ⁇ s).
  • Embodiments can be r lized In any memory resource for use by or in connection with processing resource.
  • a 'processing resource is an instruction execution system such as a computer/processor based system or an ASIC (Application Specific i tegrated Circuit) or other system: that can fetch or obtain instructions and data from computer-readable media and execute the instructions contained therein,
  • a "memory resource” Is any non- transitory storage media that can contain, store, or maintain programs and data for use by or in connection with the instruction execution system.
  • non-transitory * is used only to clarify thai the term media, as used herein, does not encompass a signal.
  • the memory resource can comprise any one of many physical media such as, for example, electronic, magnetic, optical, electromagnetic, or semiconductor media. More specific examples of suitable computer-readable media include, but are not limited to, hard drives, solid state drives, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory, iash drives, and portable compact discs.

Landscapes

  • Engineering & Computer Science (AREA)
  • Multimedia (AREA)
  • Signal Processing (AREA)
  • Human Computer Interaction (AREA)
  • Theoretical Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • General Engineering & Computer Science (AREA)
  • General Physics & Mathematics (AREA)
  • Editing Of Facsimile Originals (AREA)

Abstract

In one example of the disclosure, a print job with instructions for printing an image at a resolution is obtained. A display of the image, at the resolution, at a display device is caused. A first reference and a second reference are indicated within the displayed image. A quantity of pixels between the first and second references is determined. An indication of a real distance between the first and second references is received. A desired scale for the image is obtained. A rescale factor for the image is determined based on the resolution, the determined pixel quantity, the real distance, and the desired scale.

Description

£TER»MN!H6 IMAGE RESCAUE FACTORS
BACKGROUND
[0001] Digital reprography can be described as the reproduction of drawings, illustrations and other images through digital Imaging, scanning, and/or printing. Print provider businesses commonly use digital reprography processes to meet standard-format, targe-format, and wide-format reproduction needs of the architectural, engineering, and construction industries. Items produced for such customers may include plans, blueprints, renderings, maps, and other technical documents.
DRAWINGS
[0002] FIG 1 Is a block diagram depicting an example environment in which various embodiments may be Implemented.
[0003] FIG. 2 is a block diagram depicting an example of a system to determine image rescaie factors.
£OO04J Fi6. 3 is a block diagram depicting an example data structure for a system to determine image rescaie factors.
[0005] FIG. 4 is a block diagram depicting a memory resource and a processing resource according to an example,
|0Q08] FIG, 5 illustrates an example of determining and applying an image rescaie factor to a print job.
[OO07| FIG, 6 is a flow diagram depicting steps taken to Implement an example.
DETAILED DESCRIPTION
[00083 INTRODUCTION: A print provider may receive print jobs containing technical drawings in a file formats such as PDF, TIFF, HPGL2, or DWG. The provider may receive as part of the job print instructions specifying a media size and a prescribed or desired scale for printed drawings,
[0009] Proper scaling of a printed technical drawing can be criticai for the print provider's architect, engineer, and construction industry customers. Such customers need to be able to tak measurements upon the printed drawing, and use such measurements to accurately calculate distances between elements in the drawing. Such accurate measurements are necessary for the customer to correctly engineer or construct the finished item that is the subject of the drawings. If a drawing is printed out of scale in comparison to the prescribed scale, there can he serious consequences to the customer in terms of wasted time, wasted materials, and damage to the customer's brand as a result of faultily manufactured products.
[00103 Notwithstanding that the print job includes a prescribed scale, print providers will sometimes experienc situations wherein printing according to the prescribed scale would result In a printout that Is out-of-sca!e vis a vis the intended scale One common cause for the error is that the drawings that are the subject of the print job were digitally scanned with a scanning device that erroneously caused the drawing file to be at a resolution that is different than the resolution of the original scanned drawings. Another common cause for such a scaling error is that, a resolution or scale instructions that are Included in an image file were generated incorrectly as a result of an error in software that was used to render the document to a printer-ready format such as PCL3, PC 15, or PostScript, In another example, the prescribed scale included in the print job may be inaccurate due to a software application having created an incorrect resolution tag (e.g., a TIFF tag) or other indication of scale that is included in the image file or otherwise included within the print job,
[0011] Typically detecting and fixing image files with incorrect scaling information as described above has involved a print provider manually taking measurements on a printout of the Image after the job has printed, and manually calculating an adjustment that when applied to the Image will cause a subsequent printout of the image to be at the prescribed scale. Such an approach can be a tedious task for the print provider, and the associated materials and labor costs often ultimately borne by the customer.
[0012J To address these issues, various embodiments described In more detail below provide for a system and a method to determining image rescale factors. In an example of the disclosure, a print fob, with instructions for printing an image at a prescribed resolution, is obtained. A display of the image, at the prescribed resolution, is caused at a display device. A first reference and a second reference are indicated or designated within the displayed image, A quantity of pixels between the first and second references is determined. An indication of a real distance between the first and second references is received. A desired scale for the Image is obtained. A rescale factor for the image is determined upon the resolution, the determined pixel quantity, the real distance, and the desired scale. The rescale factor can be applied to rescale the image such that a printing or display of the reseated image will result in an adjusted image that Is correctly scaled as compared to the desired scale.
[00133 In this manner, embodiments of this disclosure present an automated and efficient manner determine a rescale factor for out of scale images, and apply the rescale factor to enable printing of the image at the corrected resolution. Using the newly disclosed method and system it is possible for a print-provider to utilize a user- guided estimation of the scale of a technical drawing before printing, and thereby automatically identify out-of-sca!e situations and automatically fix the scale-print-setting of the page in order to create a correct print out. Print providers will not be required to manually compute adjustment factors and explicitly reset document print scales to accomplish correct printing. Accordingly, users will benefit from savings In materials and time. Such advantages of the disclosure will cause customer satisfactio with digital printing of technical drawings, and the applications, and computing devices that facilitate the digital printing, to increase.
[001 ] The following description is broken into sections. The first labeled "Environment," describes an environment in which various embodiments may be implemented. T e second section, labeled "Components, " describes examples of various physical and logical components for implementing various embodiments. The third section, labeled Illustrative Example." presents an example of determining image resca!e factors using record- relevancy tiers. The fourth section, labeled as Operation;"' describes steps taken to implement various embodiments.
[00 5] ENVIRONMENT: FIG. 1 depicts an example environment 100 in which embodiments may be implemented as a system for determining image rescale factors 102. Environment 100 Is show to include computing device 104, client devices 108, 108, and 1 10, server device 1 12, and printer 1 14. Components 108-114 are interconnected via link 116.
[0016] Link 118 represents generally any infrastructure or combination of infrastructures configured to enable an electronic connection, wireless connection, or other connection to enable data communication between components 104-1 14. Such Infrastructure or infrastructures may include, but are not limited to, one or more of a cable, wireless, fiber optic, or remote connections via telecommunication link, an infrared link, or a radio frequency link. For example, link 1 16 may represent the internet, one or more intranets, and any intermediate routers, switches, and other interfaces. As used herein an "electronic connection* refers generally to a transfer of data between components, e.g., between two computing devices, that are connected by an electrical conductor. A "wireless connection" refers generally to a transfer of data between two components, e.g., between two computing devices, that are not directly connected by an electrical conductor, A wireless connection ma be via a wireless communication protocol or wireless standard for exchanging data.
00173 Client devices 108-110 represent generally any computing device with which a user may Interact to communicate with other client devices, server device 1 12. and printer 114 via link 116, Server device 112 represents generally any computing device configured to sen e an application and corresponding data for consumption by components 104- 10 and 114.
[0018] Printer 1 14 represents generally any computing device configured to produce a physical printed representation of an image. Printer 114 may be a multifunction device that can perform a function such as scanning and/or copying in addition to printing. In examples, printer 114 may be a printe located in a printing system located in a commercial print provider facility. In other examples printer 114 may be a printer located in a home. In examples printer 1 14 may be thermal Inkjet printer, a piezoelectric Inkjet printer, a latex ink printer, a solid ink printer, a laser printer, or any other type of printer that ejects a colorant or colorants to form an image. Printer 114 includes hardware and programming for providing printing functions. Printer 114 may include an operating system to cause the printer to interpret print data, and a printing element to cause the application of one or more colorants upon a media according to mapping provided by print data, to thereby form an image upon a media,
[00193 Computing device 104 represents generally any computing device with which a user may interact to communicate with client devices 106-110, server device 112, and/or printer 114 via link 116, Computing device 104 is shown to include core device components 118. Core devic components 118 represent generally the hardware and programming for providing the computing functions for which device 104 is desig ed. Such hardware can include a processor and memory, a displa apparatus 120, and a user interface 122. The programming can include an operating system and applications. Display apparatus 120 represents generally an combination of hardware and programming configured to exhibit or present a message, image, view, or other presentation for perception by a user, and can include, but is not limited to, a visual, tactile or auditory display. In examples, the display device may he or Include a monitor, a touchscreen, a projection device, a touch/sensory display device, or a speaker. User interface 122 represents generally any combination of hardware and programming configured to enable interaction between a user and device 04 such that the user may effect operation or control of device 104. In examples user Interface 122 may be, or include, a keyboard, keypad, or a mouse. In some examples, the functionality of display apparatus 120 and user Interface 122 may be combined, as in the case of a touchscreen apparatus that may enable presentation of Images at device 104, and that also may enable a user to operate or control functionality of devic 104.
C0O2OJ System 102, discussed in more detail below., represents generally a combination of hardware and programming configured to enable the determining of image rescale factors. System 102 is to receive a print job 124 including instructions for printing of an image at a resolution. As used herein, a ' print job" refers generally to content, e.g., an image, and/or instructions as to formatting and presentation of the content sent to a computer system for printing, in examples, a print Job may be stored in a programming language and/or a numerical form so that the job can b stored and used in computing devices, servers, printers and other machines capable of performing calculations and manipulating data. As used herein, an "image" refers generally to a rendering of an object, scene, person, or abstraction such text or a geometric shape. As used herein, a "resolution" refers generally to a measure of the detail an Image holds, in an example, resolution may be a pixel resolution, and may be expressed in terms of a pixel count such as "X by Y\ wherein *X" is a variable representing a number greater than zero that is a number of pixel columns (width) and " is a variable representing a number greater than zero that is a number of pixel rows (height). In another example, resolution may be a pixel resolution, and may be expressed In terms of a total number of pixels in the image, e.g. *Z megapixels," wherein !:Z" Is a variable representing a numbe greater than zero,
10021 J System 02 is to cause a display of the image, at the resolution, at a display device. As used herein, a "display" refers generally to an exhibition or presentation for perception by a participant. In an example, the display is or includes a graphic user interface display to be presented at a computer monitor, touchscreen, or other electronic display device. System 102 Is to indicate or designate a first reference and a second reference inside the displayed Image. As used herein., a "reference" refers generally to any indicated or designated feature, mark, or point within an image. In an example, the reference may designated by illuminating an element in the display, in another example, a reference may be designated by a pointer, line, ellipsis, geometric shape, or other indicator included n the display with the image,
[0022] System 102 ss to determine a number of pixels in the interval that separates the designated first and second references. As used herein, a "pixel* refers generally to a discrete unit of a digitally quantized image
attribute, such as brightness, luminance or color, which unit may be combined with other discrete units to construct a digital image. In examples, pixels of an image may be organized as, or classified, using a two-dimensional grid, and ma be represented using dots or squares.
[00233 System 102 is to obtain a designation of a reai distance between th first and second references. As used herein, a "real distance" between reference points depicted in an image refers generally to a true or reai distance between distinct physical features represented or signified by the reference points. In an example, the physical features may be features of a single object, e.g. distinct points in an assembled, real world door frame, in another example, the physical features may be features of unique objects, e.g. a doorframe edge and a kitchen counter edge. In an example, the real distance is a distance received by system 102 via a graphic user interface display provided by system 102. In another example, system 102 may obtain the designation of the real distance via system 102 analyzing the -mage and recognizing a real distance included within the image, in a example, the real distance may be included within the image as text that is visible in the displa and is adjacent to the first and second references, !n another example, the real distance may be included within the image as metadata,
100241 System 102 is also to receive a desired scale for the image. As used herein, a "desired scale" refers generally to a scale for the image that was intended, anticipated or prescribed. As used herein, a "scale" of an image refers generally to proportional ratio of a linear dimension of the image to the same feature of an original item, in an example, an image may include a two- dimensional or three-dimensional scale model of a building or the scale drawings of the elevations or plans of a building. Typically the scale of an image is consistent throughout the model or drawing, and may be expressed as a ratio (e.g. 1:100^ as a fraction (e<g.> 1/100), or as a number (e.g.. 0.01). In an example, system 102 receives the desired scale via user interaction with a graphic user interface provided by System 102.
£00251 System 102 is to determine an actual scale for the image, in consideration of the resolution, the determined number of pixels, and the real distance. As used herein, "actual scale" refers generally to calculated or determined scale. System 102 Is to then, in consideration of t is determined actuai scale and the desired scale, determine a rescaie factor for the image. As usee5 herein, a "rescaie factor' refers generally to a number or quantity that is to be mathematically applied to change the scale of an image. In an example the resale factor is may be expressed as a percentage by which an actual or current scale is to be increased or reduced.
[0028] System 02 in turn applies the determined rescaie factor to the actual scal to rescaie the image to b the desired scale. In an example., syste 02 is to cause revision of the print job 12 to include the rescaied image, in another example, system 102 is to cause replacement of the print Job 124 with a new print job that includes the rescaied Image, In yet another example, system 102 is to cause printing of the rescaied image.
I0027J System 102 may be wholly Integrated within core device components 118. System 102 may be implemented as a component of any of computing device 104, client devices 104-1 10, server device 112, or printer 114, where it may take action based in part on data received from core device components 1 18 via link 116. System 102 may be distributed across computing device 104, and any of client devices 108-110, server device 112, or printer 114. For example, obtaining the print job, causing a display of the image, indicating or designating the first reference and second reference, determining a quantity of pixels between the first and second references, receiving a real distance, and obtaining a desired scale for the image may be performed on computing device 104, while determining a rescaie factor for the image, causing revision or replacement of the print job, and causing printing of the rescaied image may be performed by printer 114, Other distributions of system 102 across computing device 04, client devices 106- 0, server device 1 12, and printer 114 are possible and contemplated by this disclosure, It is noted that all or portions of the system for determining image rescale factors 102 may also be included on client devices 106, 108 or 110.
[0028j COMPONENTS: FIGS. 2, 3, and 4 depict examples of physical and logical components for implementing various embodiments. In FIG. 2 various components are Identified as engines 202, 204, 208, 208, 210. In describing engines 202. 204, 206, 208, 210, focus is on each engine's designated function. However, the term engine, as used herein, refers generally to a combination of hardware and programming configured to perform a
designated function. As is illustrated later with respect to FiG. 4V the hardware of each engine, for example, may include one or both of a processor and a memory, while the programing ma be code stored on that memory and executable by the processor to perform the designated function.
[0029=] FIG. 2 is a block diagram depicting components of system for determining image rescale factors 102. In this example, system 102 includes job engine 202. display engine 204, reference engine 2.08, interface engine 208, and rescale engine 210, In performing their respective functions, engines 202, 204, 206, 208, 210 may access data repository 212, Repository 212 represents generally any memory accessible to system 102 that can be used to store and retrieve data.
£00303 Job engine 202 represents a combination of hardware and
programming configured to obtain a print job with instructions for printing an image at a desired or prescribed resolution. Sn an example, the desired resolution is a resolution included within an Image document that contains the image to be printed. In an example, the resolution may be included within the image document as a resolution tag (e.g., a TIFF tag) or as other metadata within the image document. In another example, the desired resolution may be included within instructions for printing an image, wherein the instructions are in the form of data communicated separate from the image document. C0O31J Display engine 204 represents a combination of hardware and programming configured to cause a display of the image, at the desired resolution, at a display device. In an example, the display of the image at the display device is, or includes, a graphic user interface display to be presented a a computer monitor, touchscreen, projection device, touch/sensory display or other electronic display device. In an example, display engine 204 includes the display device. In another example, display engine 204 may be configured to cause the display by sending the image, along with instructions for display of the image, to a display device that is electronically or wirelessiy connected to system i 02.
00323 Reference engine 206 represents a combination of hardware and programming configured to indicate a first reference and a second reference within the displayed image, and determine a quantity of pixels between the first and second references. In an example, the reference engine 208 may be configured to cause presentation of a first graphic user interface, the first interface for enabling a user to select or designate the firs! and second references at the display. In examples, the user selection may be via user interaction with a computer mouse (e g. a mouseclick or hover operation), or via a finger touch upon a touchpad display, whereby a user selects two points in the displayed image to serve as the first reference and the second reference. In another example, the reference engine 206 may he configured to cause the first and second references to be indicated automatically from elements of the image, without providing an opportunity for a user to select which image elements are to serve as the first and second references
[0033] In a particular example, reference engine 208 may be configured to cause a connecting element or bridging element to be drawn in the display between the first and second references. In an example, the connecting element may be a second graphic user interface to guide or instruct a user to provide or designate a real distance between the displayed first and second references, as discussed with respect to the interface engine below. In an example, the reference engine 206 may be configured to cause the connecting element to be drawn between the first and second references following receipt of data indicating user-selection of the image elements that are to serve as the first and second references. In a particular example, the reference engine 206 may be configured to cause provide a display of a reference-choosing tool concurrent with the display of the image. The tool may enable a user to select any two points in the displayed image as the first and second references, and then draw a connecting element between the selected first and second references. In examples, the connecting element may be in the form of a line, ellipsis, geometric shape, or any other element included in the display along with the image, for connecting the first and second references.
|0034J interface engine 208 represents a combination of hardware and programming configured to receive an indication of the real distance between the first and second references, in an example, the real distance is designated visibly in the displayed image, and the indication of the real distance between the first and second references may be received via a third graphic user interface following user interaction with the interface. In an example, the third graphic user interface displayed, at least for a period, concurrently with the display of the image, in examples, the third graphic user interface may include a text box, drop-down list, cycle button, slider, or any other type of graphic user interface control or widget to facilitate user interaction with the interface and system 102. in another example, interface engine 208 may be configured to obtain an indication of the real distance between the first and second references by utilizing optical character recognition or other image analysis technology to identify the real distance from a display of the image. In yet another example, Interface engine 208 may be configured to obtain an indication of the real distance between the first and second references by accessing metadata within the displayed image, or within a document that includes the image.
[0035] Reseaie engine 210 represents a combination of hardware and
programming configured to obtain a desired scale for the image. In an example, reseaie engine 210 may be configured to obtain data indicative of the desired scale from the print fob itself. In an example, the desired scale Is a scale included within an image document that contains the image to be printed, in an example, the desired scale may be included within the image document as a scale tag or as other metadata within the image document in another example, the desired scale may be included wit in instructions for printing an Image, wherein the Instructions are in the form of data
communicated separate from the image document
[0036] In an example, rescaie engine 210 may be configured to cause the display of a fourth graphic user interface, and to cause the desired scale to be received via the fourth graphic user Interface. In an example, the fourth graphic user interface may be displayed: at least for a period, concurrently with the display of the Image, in examples, the fourth graphic user interface may include a text box, drop-down list, cycle button, slider, or any other type of graphic user interface control or widget to facilitate user interaction with the Interface and system 102.
£0037] in an example, rescaie engine 210 may b configured to, based upon the desired resolution, the pixel quantity as determined by the reference engine 206. and the real distance received via the interface engine 208, determine an actual scale for the image. In an example, the actual scale may be determined according the following formula:
P
Actual Scale =™~~~
R D
wherein "P\ *& and "FT are variables representing a number greate than zero, and "P" ~ pixel quantity between the first and second references, Έ" - resolution of the Image (In pixels per unit), and ΌΙ! - real distance between the first and second references.
IP03SJ In an example, rescaie engine 210 may be configured: to determine a rescaie factor for the image based on the derived actual scale and ti desired scale. In an example, the rescaie factor scale may be determined according the following formula:
Desired,,-,-.^
Rescaie Factor ~ ~~
Actual^*
wherein "Desire ^ is a variable representing a number greater than zero and is representative of the desired scale, and "Actual^ is a variable representing a number greater than zero and is representative of the derived scale. (00301 In an example, rescate engine 210 may be configured to, upon determination of the rescale factor, apply the rescaie factor to rescale the image based upon the resca!e factor to adjust the image to the desired scale,, in an example, rescale engine 210 may be configured to, upon determination of trie rescale factor, apply the rescaie factor to the derived actual scale, and thereby cause rescaling of the image to the desired scale. In an example, rescate engine 210 may be configured to cause the print job to be revised to Include the reseated image, in another example, rescale engine 210 may be configured to cause the originally received print fob to be replaced with a new print job that includes the reseated image. In another example, rescaie engine 210 may cause printing of the reseated image, in a particular example, rescale engine 210 may be incorporated within a printing device, e.g., printer 114 (FIG. 1) and cause printing of the reseaSed image,
[0040] FIG. 3 depicts an example implementation of data repository 212. in this example, repository 212 includes data suggestive of a print job 302, print instructions 304, an image 306, an image resolution 308, first 310 and second 312 references within the Image, a number of pixels In an interval between the first and second references, a real distance 316 between the first and second references, a prescribed scale 318 for the image, a determined actual scale 320 for the Image, and a determined rescaie factor 322 for the image.
Referring back to FIG, 2 In view of FIG. 3, in an example, job engine 202 {FIG. 2) receives a print job 302 including instructions 304 for printing of an image 306 at a prescribed resolution 308. In examples, the print job 302 may include an attached document or image file. In examples, print job engine 302 may receive the print job 302 via a print driver application, via an email application, or via another software application. In an example, the print job 302 may be received via an application executing at the same computing device that includes the job engine. In another example, print job 302 may be received via an application executing at a computing device distinct from the computing device that includes print job engine 302,
[0041] Continuing with the example of FIG, 3, display engine 204 (FIG. 2) causes presentation of the Image 306, at the prescribed resolution 308, at a display device. Reference engine 206 (FIG. 2) designates a first reference 310 and a second reference 312 inside the presented image 306, and determines a number or count of pixels 314 in an -interval separating the first and second references 310 312,
I00 2J Continuing with the example of FIG. 3, interface engine 208 (FIG. 2) receives a designation of a real distance 316 between the first and second references 302 312. Rescaie engine 210 {FIG. 2} receives a prescribed scale 318 for the image 306. Rescaie engine 210 determines an actual scale 320 for the image 306 in consideration of the resolution 308, the determined number of pixels 314, and the real distance. Rescaie engine 210 in turn determines a rescaie factor 322 in consideration of the actual scale 320 and the prescribed scale 318, and applies the rescaie factor 322 to the determined actual scale 320 to rescaie the image.
[0043] In the foregoing discussion of FIG. 2, engines 202, 204, 206, 208, 2 0 were described as combinations of hardware and programming. Engines 202, 204, 206, 208, 210 may be implemented in a number of fashions.
Locking at FIG. 4 the programming may be processor executable instructions stored on a tangible memory resource 402 and the hardware may include a processing resource 404 for executing those Instructions. Thus memory resource 402 can b said to store program instructions that when executed by processing resource 404 implement system 102 of FIGS. 1 and 2.
[0044] Memory resource 402 represents generally any number of memory components capable of storing instructions that can be executed by processing resource 404. Memory resource 402 is non-transitory in the sense that it does not encompass a transitory signal but instead is made up of more or more memory components configured to store the relevant instructions. Memory resource 402 may be implemented in a single device or distributed across devices. Likewise, processing resource 404 represents any number of processors capable of executing instructions stored by memory resource 402. Processing resource 404 may be integrated in a single device or distributed across devices. Further, memor resource 402 may be fully or partially integrated in the same device as processing resource 404, or it may be separate but accessible to that device and processing resource 404.
[0045] in one example, the program instructions can be part of an installation package that when installed can be executed by processing resource 404 to implement system 102. In this case, memory resource 402 may be a portable medium such as a CO, DVD, or Hash drive or a memor maintained by a server from which the installation package can be downloaded and installed. In another example, the program instructions may he part of an application or applications already installed. Here, memory resource 402 can include integrated memory such as a hard drive, solid state drive, or the like.
100 63 n FIG, 4, the executable program instructions stored in memory resource 402 are depicted as job module 406. display module 408, reference module 410, interface module 412, and rescaie module 414. Job module 408 represents program instructions that when executed may cause processing resource 404 to cause the implementation of job engine 202 of FIG. 2, Display module 408 represents program instructions that when executed cause processing resource 404 to cause the implementation of display engine 204 of FIG. 2, Reference module 410 represents program instructions that when executed may cause processing resource 404 to cause the implementation of reference engine 208 of FIG. 2. Interface module 412 represents program instructions that when executed may cause processing resource 404 to cause the implementation of interfac engine 208 of FIG. 2. Rescaie module 414 represents program instructions that when executed may cause processing resource 404 to cause the implementation of rescaie engine 210 of FIG. 2.
[0047] ILLUSTRATIVE EXAMPLE; FIG. 5 illustrates an example of determining image rescaie factors. Turning to FIG. 5, in view of FIG. 2, system 102 (FIG. 2} receives a print job with instructions for printing an architectural plan image 502 at a desired or prescribed resolution of 2.83 pixels/mm. In this example, the prescribed resolution is a resolution Included as metadata within an image document tha includes the image 602 to he printed. [00481 System 102 causes a graphic user interface display 504 of the image 502, at the prescribed resolution, at a computers display device, e.g., a computer monitor touchscreen. In this example, system 102 causes the display by sending the image 502, along with Instructions for displa of the image, to 8 display device that is electronically or wireiessiy connected to system 02,
[0049] System 1 2 causes display of graphic user interface reference selection tools 506! 506", the tools for enabling a user to select or designate a first reference 508' and a second reference S08" within the display 504, In this example,, each reference selection too! includes a circle with an "X* enclosed within, the first tool 506' to select the first reference 508' and a second tool 506" to select the second reference SOS". In this example, user selection of the first and second references 508' 506" occurs via user interaction with a computer mouse (e.g. a mcuseciick or hover operation). The user selects two points in the displayed Image to serve as the first reference 508" and the second reference 508".
[00503 in this example, system 102 causes a graphic user interface bridging element in the form of a bridging line 510 to be drawn in the display 504 between the first and second references 508' 508", concurrent with the display of the Image 504. In this example, the bridging line 510 is to guide a user in determining a real distance between the displayed first and second references 508' 508"'. !n this example, system 102 causes the bridging line 510 to be drawn between the first and second references 508s 508" following receipt of data at system 102 indicating user-selection of image elements that are to serve as the first and second references 508! 508". After indication of the first and second references 508! 508", system 102 causes counting of, or otherwise determines that a quantity of 200 pixels exists between the first and second references 508' 508"'. In an example, the counting or determination of the quantity of pixels may be based upon pixels included within the bridge line.
[0051] System 102 causes presentation within display 504 at the display device of a first text box graphic user interface 512 for enabling a use to provide tie indication of the real distance between the first and second references 508' 508", The first text box 512 is displayed, at least for a period, concurrently with the display of the image 304. System 02 receives, as the result of user-input at the text box 5 2, an indication of a 872 mm real distance 514 between the first and second references 508' SOB".
£0052] Continuing with the example of FIG. 5. system 102 obtains a 1:50 prescribed scale 518 for the image, in this example, system 102 causes presentation within the display 504 at the display device of a second text box graphic user interface 516 for enabling a user to provide the 1:50 prescribed scale 518, and receives the prescribed scaie 518 via user input a the second text bo interface 518. The second text box interface 518 is displayed, at least for a period, concurrently with the display of the imag 502,
[0053J System 102, based upon the prescribed resolution,, the determined pixel quantify, and the received real distance S14t determines an actual scale for the image, in this example, the actual scale may be determined according the following formula:
Actual Scale ~
Figure imgf000019_0001
wherein "P<! - pixel quantity between the first and second references, "R* ~ resolution of the image (in pixels per unst), and *D* ~ real distance between the first and second references, in this example, an actual scale of 0,0809 is determined as follows:
200 pixels
Actual Scale of 0,0809 or X: 12.36
2.83 pixeis/mm 872mm
In this example, system 102 causes the determined actual scale 520 to be displayed concurrent with the display 504 of the image to be printed.
£0054] Continuing with the example of FIG. 5, system 102 determines a 0.2474 rescaie factor for the image based on the derived 1:12.36 actual scale 520 and the 1 :50 prescribed scale 518. In an example, the rescaie factor scale may be determined according the following formula: wherein "Prescribed^" 's representative of tie prescribed scale 518, and *Actualscai is representative of the derived actual scale 520. In this example, a rescale factor of 0.2474 is determined as follows'.
Rescale Factor of 0.2474 -
(ϊ∑36)
[00δδ| Continuing with the example of FIG, 5, system 102. upon determination of the rescale factor, applies the 0.2474 rescale factor to the derived 1:12.36 (or 0,809} actual scale of the image, and thereby adjusts the actual scale of the image 502 to the prescribed scale, in this example, system 102 applies the 0.2474 rescale factor to adjust the actual scale by causing printing of th image 502 at 0.2474 (or 24,74 percent) of the actual scale, in this example, system 102 causes the print job to be revised to include the reseated image, and causes printing of the reseated image.
[00S6] OPERATION: FIG, 8 is a flow diagram of steps taken to implement a method for determining image rescale factors, in discussing FIG. 6, reference may be made to the components depicted in FIGS. 2 and 4. Such reference is made to provide contextual examples and not to limi the manner in which the method depicted by FIG. 6 may be implemented. A print job. with instructions for printing an image at a resolution, is obtained (block 802), Referring back to FIGS. 2 and 4, job engine 202 (FIG. 2) or job module 406 (FIG. 4), when executed by processing resource 404, may be responsible for implementing block 802,
00873 A display of the image at the resolution at a display device is caused (block 604). Referring back to FIGS. 2 and 4, display engine 204 (FIG. 2} or display module 408 (FIG. 4), when executed by processing resource 404, may he responsible for implementing block 604,
[00583 A first reference and a second reference within the displayed imag are indicated, and a quantity of pixels between the first and second references is determined {block 608). Referring back to FIGS, 2 and 4, reference engine 206 (FIG. 2) or reference module 410 {FIG. 4), when executed by processing resource 404, may be responsible for implementing block 606. 00591 An indication of a real distance between the firs and second references is received (block 608). Referring back to FIGS. 2 and 4, interface engine 208 (FIG. 2} or interface module 412 (FIG, 4), when executed by processing resource 404, may be responsible for implementing block 608.
[0060] A desired scale for the image is obtained (block 810), Referring back to FIGS. 2 and 4, rescaie engine 20S (FiG. 2) or rescaie module 414 (F!G. 4), when executed by processing resource 404, may be responsible for implementing block 610.
[0061] A rescaie factor for the Image is determined based on the resolution, the determined pixel quantity, the real distance, and the desired scale (block 612). Referring back to FIGS. 2 and 4. rescaie engine 208 (FiG. 2) or rescaie module 414 (FIG. 4). when executed by processing resourc 404, may be responsible for implementing block 6 2.
CO062J CONCLUSION; FIGS. 1-6 aid in depicting the architecture, functionality, and operation of various embodiments. In particular, FIGS. 1-4 depict various physical and logical components. Various components are defined at least in part as programs or programming. Each such component, portion thereof, or various combinations thereof may represent in whole or in part a module, segment, or portion of code that comprises one or more executable instructions to implement any specified logical function(s). Each component or various combinations thereof may represent a circuit or a number of interconnected circuits to implement the specified logical function{s).
Embodiments can be r lized In any memory resource for use by or in connection with processing resource. A 'processing resource" is an instruction execution system such as a computer/processor based system or an ASIC (Application Specific i tegrated Circuit) or other system: that can fetch or obtain instructions and data from computer-readable media and execute the instructions contained therein, A "memory resource" Is any non- transitory storage media that can contain, store, or maintain programs and data for use by or in connection with the instruction execution system. The term "non-transitory* is used only to clarify thai the term media, as used herein, does not encompass a signal. Thus, the memory resource can comprise any one of many physical media such as, for example, electronic, magnetic, optical, electromagnetic, or semiconductor media. More specific examples of suitable computer-readable media include, but are not limited to, hard drives, solid state drives, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory, iash drives, and portable compact discs.
0063] Although the flow diagram of FIG. 8 show a specific order of execution,, the order of execution may differ from that which is depicted. For example, the order of execution of two or more blocks or arrows may be scrambled relative to the order shown. Also, two or more blocks shown in succession may be executed concurrently or with partial concurrence. All such variations are within the scope of the present invention.
{00641 The present Invention has been shown and described with reference to the foregoing exemplary embodiments. It is to be understood, however, that other forms, details and embodiments may be made without departing from the spirit and scope of the invention that is defined in the following claims.

Claims

What is claimed is:
1 , A memory resource storing instructions that when executed cause a processing resource to implement a system to determine a rescaie factor for an image to be printed, the instructions comprising: a job module, to obtain a print job with instructions for printing an image at a resolution; a display module, to cause a display of the image, at the resolution, at a display device: a referenc module, to indicate a first reference and a second reference within the displayed image, and determine a quantity of pixels between the first and second references; an interface module, to receive an indication of a real distance between the first and second references; and a rescaie module, to, obtain a desired scale for the image, and based on the resolution, the determined pixel quantity, the real distance, and the desired scale, determine a rescaie factor for the image. , The memory resource of claim 1. wherein % interface module includes instructions to determine an actual scale for the Image based on the resolution, the pixel quantity; and the real distance, and wherein the determined rescale factor is equivalent to a quotient of the desired scale divided by t e actual scale.
3. The memory resource of claim 2, wherein the rescal module includes instructions to rescale the Image based upon the rescale factor to adjust the image to the desired scale.
4. The memory resource of claim 1, wherein the rescale module inciudes instructions to cause revision of th print job to include the rescaled Image, or cause replacement of the print job with a new print job that includes the rescaled Image,
5. The memory resource of claim 1 , wherein the rescale module includes instructions to cause printing of the rescaled image.
8, The memory resource of claim 1 , wherein the reference module includes instructions to receive selections of the first and second references via a displayed graphic user interface.
7. The memory resource of claim 1 , wherein the reference module inciudes instructions to cause a connecting element to be drawn in the display between the first and second references.
8. The memory resource of claim 1, wherein the interface module Includes instructions to receive the indication via a displayed graphic user interface. 9- The memory resource of claim 8, wherein the interface is caused, at least for a period, to be displayed concurrentl with the display of the image,
10. A system to rescate an image to be printed, comprising; a job engine, to receive a print job including Instructions for printing of an image at a resolution; a display engine, to cause a presentation of the image, at the resolution, at a display device; a reference engine, to designate a first reference and a second reference inside the presented image, and determin a number of pixels in an interval separating the first and second references; an interface engine, to receive a designation of real distance between the first and second references; and a rescate engine, to, receive a desired scale for the image, in consideration of the resolution, the determined number of pixels, and the real distance, determine an actual scaie for the image, and in consideration of the actual scale and the desired scale, determine a rescale factor and apply the factor to rescale the image to the desired scale,
11. The system of claim 10, wherein the rescafe engine is incorporated wfthin a printing device and is to cause printing of the rescale image.
12. The system of claim 10, wherein the rescale engine is to receive the desired scale via a displayed graphic user interface,
13. The system of claim 12, wherein the reference engine Is to receive designations of the first and second references via a displayed graphic user interface.
14. The system of claim 10, wherein the rescale engine is to obtain data indicative of the real distance or the desired scale from the print job.
15. A method to rescale an image to be printed, comprising; obtaining a print job with instructions for printing an image at a resolution; causing a display of the image, at the resolution, at a display device; receiving a selection of first and second references within the image via a displayed graphic user interface; in response to the selection, displaying a bridging element between the selected first and second references; determining a number of pixels between the first and second references: receive an indication of real distance between the first and second references via a dispiayed graphic user interface;
receiving the desired scale via a dispiayed graphic user interface; determining an actual scale for the image based on the resolution, the pixel number, and the real distance;
determining a rescale factor for t e image by dividing the desired scale by the actual scale; and
adjusting ihe actual scale of the image by the rescale factor, to rescale the image from the actual scale to the desired scale.
PCT/US2013/076808 2013-12-20 2013-12-20 Determining image rescale factors WO2015094321A1 (en)

Priority Applications (4)

Application Number Priority Date Filing Date Title
CN201380081654.5A CN105830014B (en) 2013-12-20 2013-12-20 Determine that image scaled resets the factor
EP13899663.2A EP3084587A4 (en) 2013-12-20 2013-12-20 Determining image rescale factors
PCT/US2013/076808 WO2015094321A1 (en) 2013-12-20 2013-12-20 Determining image rescale factors
US15/105,285 US10313558B2 (en) 2013-12-20 2013-12-20 Determining image rescale factors

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/US2013/076808 WO2015094321A1 (en) 2013-12-20 2013-12-20 Determining image rescale factors

Publications (1)

Publication Number Publication Date
WO2015094321A1 true WO2015094321A1 (en) 2015-06-25

Family

ID=53403411

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2013/076808 WO2015094321A1 (en) 2013-12-20 2013-12-20 Determining image rescale factors

Country Status (4)

Country Link
US (1) US10313558B2 (en)
EP (1) EP3084587A4 (en)
CN (1) CN105830014B (en)
WO (1) WO2015094321A1 (en)

Families Citing this family (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20160179756A1 (en) * 2014-12-22 2016-06-23 Microsoft Technology Licensing, Llc. Dynamic application of a rendering scale factor
US10248630B2 (en) 2014-12-22 2019-04-02 Microsoft Technology Licensing, Llc Dynamic adjustment of select elements of a document
CN108389208B (en) * 2018-01-18 2021-06-04 复旦大学 Intelligent image adaptive display method based on semantic segmentation
JP7065738B2 (en) * 2018-09-18 2022-05-12 富士フイルム株式会社 Image processing equipment, image processing methods, programs and recording media
CN110865785B (en) * 2019-11-21 2023-10-13 武汉真元生物数据有限公司 Pixel size acquisition method and device and electronic equipment

Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070008355A1 (en) * 2005-07-05 2007-01-11 Seiko Epson Corporation Image processing device, calibration table generator, image processing method, program product, and test pattern
WO2007021467A2 (en) * 2005-08-09 2007-02-22 Eastman Kodak Company Image quality control in an imaging system
US20080187245A1 (en) 2004-05-28 2008-08-07 Koninklijke Philips Electronics, N.V. Image Processing Apparatus, an Imaging System, a Computer Program and a Method for Enabling Scaling of an Object in an Image
US20090009511A1 (en) 2007-07-05 2009-01-08 Toru Ueda Image-data display system, image-data output device, and image-data display method
KR20090009087A (en) * 2007-07-19 2009-01-22 삼성전자주식회사 Image forming apparatus and method for enhancing print quality thereof
US20100002246A1 (en) * 2006-07-12 2010-01-07 Mitsubishi Heavy Industries, Ltd Printing simulation method and apparatus, picture color tone controlling method and apparatus for printing press, and printing press
WO2011141291A1 (en) * 2010-05-10 2011-11-17 Oce-Technologies B.V. Method to restore edges in rasterized images
WO2013046759A1 (en) 2011-09-29 2013-04-04 株式会社セイコーアイ・インフォテック Terminal device and terminal device drawing display program

Family Cites Families (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH052589A (en) * 1991-06-24 1993-01-08 Dainippon Printing Co Ltd Document preparation device
US20070273895A1 (en) 2003-12-12 2007-11-29 Canon Information Systems Research Austrialia Efficient Whole Page Printing
KR100813962B1 (en) 2005-09-16 2008-03-14 삼성전자주식회사 Printing option applying method and apparatus using preview image
JP4880396B2 (en) 2006-08-03 2012-02-22 株式会社リコー Image processing apparatus, program, and preview image display method
CN102308276B (en) * 2008-12-03 2014-12-17 轩江 Displaying objects with certain visual effects
US8503030B2 (en) 2009-09-28 2013-08-06 Csr Imaging Us, Lp Preview of a document with printable components at a printing device based on its printing capability
JP5273133B2 (en) * 2010-12-06 2013-08-28 ブラザー工業株式会社 Image processing apparatus and image processing program
JP5818466B2 (en) 2011-03-10 2015-11-18 キヤノン株式会社 Image forming apparatus, image forming apparatus control method and program
JP5871606B2 (en) * 2011-12-22 2016-03-01 キヤノン株式会社 Image forming apparatus, image display method, and program

Patent Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20080187245A1 (en) 2004-05-28 2008-08-07 Koninklijke Philips Electronics, N.V. Image Processing Apparatus, an Imaging System, a Computer Program and a Method for Enabling Scaling of an Object in an Image
US20070008355A1 (en) * 2005-07-05 2007-01-11 Seiko Epson Corporation Image processing device, calibration table generator, image processing method, program product, and test pattern
WO2007021467A2 (en) * 2005-08-09 2007-02-22 Eastman Kodak Company Image quality control in an imaging system
US20100002246A1 (en) * 2006-07-12 2010-01-07 Mitsubishi Heavy Industries, Ltd Printing simulation method and apparatus, picture color tone controlling method and apparatus for printing press, and printing press
US20090009511A1 (en) 2007-07-05 2009-01-08 Toru Ueda Image-data display system, image-data output device, and image-data display method
KR20090009087A (en) * 2007-07-19 2009-01-22 삼성전자주식회사 Image forming apparatus and method for enhancing print quality thereof
WO2011141291A1 (en) * 2010-05-10 2011-11-17 Oce-Technologies B.V. Method to restore edges in rasterized images
WO2013046759A1 (en) 2011-09-29 2013-04-04 株式会社セイコーアイ・インフォテック Terminal device and terminal device drawing display program

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP3084587A4

Also Published As

Publication number Publication date
US10313558B2 (en) 2019-06-04
CN105830014B (en) 2019-03-19
CN105830014A (en) 2016-08-03
EP3084587A4 (en) 2017-08-09
EP3084587A1 (en) 2016-10-26
US20170006184A1 (en) 2017-01-05

Similar Documents

Publication Publication Date Title
US10346560B2 (en) Electronic blueprint system and method
US10313558B2 (en) Determining image rescale factors
JP6311764B2 (en) Automatic measurement of objects in images
JP5963325B2 (en) Apparatus, method, and program for presenting information specified based on marker
JP5301791B2 (en) Advertisement effect analysis apparatus, advertisement effect analysis method, and program
US20110276872A1 (en) Dynamic font replacement
US9143628B2 (en) Quality checks for printed pages using target images that are generated external to a printer
US11436453B2 (en) Using augmented reality to perform complex print jobs
US10861220B2 (en) Data acquisition and encoding process for manufacturing, inspection, maintenance and repair of a structural product
US20180350142A1 (en) Three-dimensional data processing apparatus and three-dimensional data processing method
US8107093B2 (en) Using geometry bounds to enable scale printing of virtual paper onto physical paper when using a printer with a differing printable area
US11929049B2 (en) Output content generation apparatus, output content generation method and program
US10657427B2 (en) Information processing apparatus, information processing method and storage medium
US20150220815A1 (en) Image forming apparatus and image forming method
US20150186758A1 (en) Image processing device
EP2996029B1 (en) Method for generating a proof of a print job comprising a document to be printed with parameters and system therewith
US7436432B2 (en) Sight line inducing information display device, sight line inducing information display program and sight line inducing information display method
JP2014086054A (en) Information management device, and information management program
JP6613871B2 (en) Information processing apparatus, image reading apparatus, and program
US9245216B2 (en) Imposing apparatus, imposing method, and non-transitory storage medium
US20210311671A1 (en) Visual timeline and operator prompt to improve data collection for production print system
US20210287003A1 (en) Information processing apparatus and non-transitory computer readable medium
JP5372330B2 (en) Publication progress management system, publication progress management method, and program
JP2005134282A (en) Display and computer program for displaying object inspection result
JP2014045348A (en) Image forming apparatus, image forming method, and program for image forming apparatus

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 13899663

Country of ref document: EP

Kind code of ref document: A1

REEP Request for entry into the european phase

Ref document number: 2013899663

Country of ref document: EP

WWE Wipo information: entry into national phase

Ref document number: 2013899663

Country of ref document: EP

WWE Wipo information: entry into national phase

Ref document number: 15105285

Country of ref document: US

NENP Non-entry into the national phase

Ref country code: DE