Printing device

The printing device addresses memory capacity issues by selectively printing patch images based on layer weights, reducing memory usage and enhancing printing efficiency through selective data generation.

JP7739773B2Active Publication Date: 2025-09-17BROTHER KOGYO KK
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Patent Information

Application Number
JP2021096420
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-06-09
Publication Date
2025-09-17
Estimated Expiration
2041-06-09

AI Technical Summary

Technical Problem

Conventional printing devices face challenges in reducing memory capacity when printing multiple-layered images due to the need to store and process data for both the base and upper layer images, making selective printing difficult.

Method used

A printing device that selectively prints patch images based on weight information of each layer, generating print data only for determined layers with higher weight values, thereby reducing memory usage and allowing selective printing.

Benefits of technology

The solution reduces memory capacity and enables selective printing of patch images by determining priority colors or layers, optimizing memory usage and improving printing efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

To provide a printing device that can reduce memory capacities and selectively print patch images of layers on a medium to be printed.SOLUTION: A printing device comprises a printing part that prints an image on a medium to be printed and a control device. The control device controls the printing part so that an image is printed on the medium to be printed using printing data including a plurality of layers, and further controls the printing part so that some layers of the plurality of layers are determined on the basis of weight information concerning respective weight of the plurality of layers, printing data are generated on the basis of the determined some layers, and patch images are printed on the medium to be printed on the basis of the generated printing data.SELECTED DRAWING: Figure 9
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Description

[Technical Field]

[0001] The present invention relates to a printing device such as an inkjet printer or a laser printer. [Background technology]

[0002] Conventionally, printing devices that perform printing using print data that includes multiple layers have been known. For example, Patent Document 1 discloses a printing device that prints, onto a print medium, a white ink patch image that is a patch image as a base layer and a color patch image that is an image above the white ink patch image. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Publication No. 2020-042543 Summary of the Invention [Problem to be solved by the invention]

[0004] However, in the conventional printing device described above, both the white ink patch image represented by the base layer and the color patch image represented by the upper layer positioned above the base layer are printed onto the printing medium, making it difficult to reduce the memory capacity of the printing device.

[0005] SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide a printing device that can reduce memory capacity and selectively print patch images of each layer onto a print medium. [Means for solving the problem]

[0006] The printing device of the present invention comprises a printing unit that prints an image on a printing medium, and a control unit, wherein the control unit controls the printing unit to print an image on the printing medium using printing data that includes multiple layers, and further controls the printing unit to determine some of the multiple layers based on weight information regarding the weights of each of the multiple layers, generate printing data based on the determined some of the layers, and print a patch image on the printing medium based on the generated printing data.

[0007] According to the present invention, patch images are printed on a print medium based on a determined portion of layers, rather than printing patch images of all layers on the print medium as in the past. This reduces memory capacity and enables patch images to be printed selectively. This allows selective printing to be achieved when a user wants to print patch images by determining a priority color, for example. [Effects of the Invention]

[0008] According to the present invention, it is possible to provide a printing device that can reduce memory capacity and selectively print patch images of each layer onto a print medium. [Brief explanation of the drawings]

[0009] [Figure 1] 1 is a perspective view illustrating an example of a printing apparatus according to an embodiment of the present invention. [Figure 2] 2 is a plan view showing an example of a droplet ejection device provided in the printing apparatus of FIG. 1. FIG. [Figure 3] 3 is a plan view showing an example of a discharge head and an ultraviolet irradiation device in the liquid discharge device of FIG. 2. FIG. [Figure 4] FIG. 4 is a cross-sectional view showing the configuration of the ejection head of FIG. [Figure 5] FIG. 2 is a block diagram showing components of the printing device of FIG. 1. [Figure 6]10A is a diagram showing an image of an overcoat instruction layer and an image layer, and FIG. 10B is a diagram showing an image of a character layer and a background layer. [Figure 7] 10A is a diagram showing a specific example of an overcoat instruction layer, and FIG. 10B is a diagram showing a specific example of an image layer. [Figure 8] A weight map showing the weight values ​​of each layer. [Figure 9] 4 is a flowchart showing a main routine for printing patch images by the printing device of FIG. 1. [Figure 10] 10 is a flowchart showing a subroutine related to the patch image printing process of FIG. 9. DETAILED DESCRIPTION OF THE INVENTION

[0010] A printing device according to an embodiment of the present invention will be described below with reference to the drawings. The printing device described below is merely one embodiment of the present invention. Therefore, the present invention is not limited to the following embodiment, and additions, deletions, and modifications can be made without departing from the spirit of the present invention.

[0011] FIG. 1 is a perspective view showing a printing device 1 according to an embodiment of the present invention. While FIG. 1 illustrates an inkjet printer as an example of the printing device 1, the printing device 1 is not limited to an inkjet printer and may be another type of printing device, such as a laser printer. In FIG. 1, mutually perpendicular directions are defined as the up-down direction, the left-right direction, and the front-to-back direction. The left-to-right direction is the main scanning direction Ds, and the front-to-back direction is the sub-scanning direction Df. In the main scanning direction Ds, the direction to the left as viewed from the printing device 1 is the leftward direction Ds1, and the direction to the right as viewed from the printing device 1 is the rightward direction Ds2. In addition, in the sub-scanning direction Df, the direction toward a platen 6 (described below) of the printing device 1 is defined as the forward direction Df1, and the direction opposite the platen 6 is defined as the rearward direction Df2. The printing device 1 is capable of printing on a printing medium W, such as printing paper, fabric, or a plastic case such as a smartphone case.

[0012] 1, the printing device 1 of this embodiment includes a housing 2, operation keys 4, a display unit 5, a platen 6 on which a print medium W is placed, and an upper cover 7. The printing device 1 also includes a droplet ejection device 1a (FIG. 2) and a controller unit 19 (FIG. 5), which will be described later.

[0013] The housing 2 is formed in a box shape. The housing 2 has an opening 2a on the front side and an opening (not shown) on the back side. Operation keys 4 are provided at a position on the front right side of the housing 2. The operation keys 4 include a weight value setting section 4a and an image selection setting section 4b. The weight value setting section 4a and the image selection setting section 4b will be described in detail later. A display section 5 is provided behind the operation keys 4. The operation keys 4 accept operation inputs from the user. The display section 5 is configured, for example, with a touch panel, and displays predetermined information. A part of the display section 5 also functions as an operation key at a predetermined timing. The controller unit 19 realizes the printing function and controls the display of the display section 5 based on inputs from the operation keys 4 or external inputs via a communication interface (not shown).

[0014] The platen 6 is configured so that a print medium W can be placed on it. The platen 6 has a predetermined thickness and is made of, for example, a rectangular plate material with the sub-scanning direction Df as its longitudinal direction. The platen 6 is removably supported by a platen support base (not shown). The platen support base is configured so that it can be moved in the sub-scanning direction Df between a printing position where printing is performed on the print medium W and a detachment position where the print medium W is detached from the platen 6 by driving a transport motor 33 (FIG. 5). As a result, the platen 6 moves the ejection surface of the print medium W in the sub-scanning direction Df relative to the ejection head 10 (described below). The printing position is a position where the platen 6 faces the ejection head 10, and the detachment position is a position where the platen support base is disposed outside the housing 2 and where the print medium W can be placed on the platen 6. During printing, the platen 6 moves in the sub-scanning direction Df, so that the print medium W placed on the platen 6 is transported in the sub-scanning direction Df.

[0015] The upper cover 7 is configured so that it rotates upward when the front portion thereof is lifted, thereby exposing the inside of the housing 2.

[0016] As shown in FIG. 2, the droplet ejection device 1a includes a storage tank 62, a carriage 3 on which, for example, two ejection heads 10 (10A, 10B) and two ultraviolet irradiation devices 40 (40A, 40B) are mounted, and a pair of guide rails 67. The ejection heads 10, which correspond to the printing unit, may be serial inkjet heads that eject, for example, ultraviolet-curable ink. The ultraviolet irradiation device 40 has multiple light-emitting diode chips that emit ultraviolet light and irradiates the ink ejected by the ejection heads 10 with ultraviolet light to cure the ink. While FIG. 2 illustrates the use of two ejection heads 10 and two ultraviolet irradiation devices 40, this is not a limitation, and one ejection head 10 and one ultraviolet irradiation device 40 may also be provided. If ultraviolet-curable ink is not used as the liquid, the ultraviolet irradiation device 40 is not necessary.

[0017] The carriage 3 is supported by a pair of guide rails 67 extending in the main scanning direction Ds, and moves back and forth in the main scanning direction Ds along the guide rails 67. This allows the two ejection heads 10 (10A, 10B) and the two ultraviolet irradiation devices 40 (40A, 40B) to move back and forth in the main scanning direction Ds. The ejection head 10 is also connected to a storage tank 62 via a tube 62a. Ink is stored in the storage tank 62. A storage tank 62 is provided for each type of ink. For example, six storage tanks 62 are provided, each storing black, yellow, cyan, magenta, white, and clear ink.

[0018] As shown in FIG. 3, the ejection head 10A and the ejection head 10B are arranged side by side in the sub-scanning direction Df. The ejection head 10B is arranged in front of the ejection head 10A. The ultraviolet irradiation device 40A and the ultraviolet irradiation device 40B are arranged side by side in the sub-scanning direction Df. The ultraviolet irradiation device 40B is arranged in front of the ultraviolet irradiation device 40A. The ejection head 10A and the ultraviolet irradiation device 40A are arranged side by side in the main scanning direction Ds. The ultraviolet irradiation device 40A is arranged to the left of the ejection head 10A. The ejection head 10B and the ultraviolet irradiation device 40B are arranged side by side in the main scanning direction Ds. The ultraviolet irradiation device 40B is arranged to the left of the ejection head 10B. The ejection head 10A and the ultraviolet irradiation device 40A may be arranged in reverse in the main scanning direction Ds, and the ejection head 10B and the ultraviolet irradiation device 40B may be arranged in reverse in the main scanning direction Ds.

[0019] In this embodiment, the carriage 3 moves in the right direction Ds2 during one pass of the printing process. As a result, the ejection head 10 and the ultraviolet irradiation device 40 move in the right direction Ds2 during the printing process. In this case, the ejection head 10 ejects ink onto the print medium W while moving in the right direction Ds2, and the ultraviolet irradiation device 40 irradiates ultraviolet rays onto the ink that has landed on the print medium W while moving in the right direction Ds2 in the main scanning direction Ds. As a result, the ultraviolet irradiation device 40 is positioned behind the ejection head 10 in the movement direction of the carriage 3 during the printing process, so that ultraviolet rays can be irradiated onto the ink immediately after it has landed on the print medium W.

[0020] Furthermore, when one pass of the printing process is completed, the carriage 3 moves in the left direction Ds1 and returns to a predetermined position. This causes the ejection head 10 and the ultraviolet irradiation device 40 to move in the left direction Ds1. In this case, the ejection head 10 moves in the left direction Ds1 without ejecting ink, and the ultraviolet irradiation device 40 irradiates ultraviolet rays onto the ink ejected during the printing process while moving in the left direction Ds1. This allows the ink to be sufficiently irradiated with ultraviolet rays, thereby improving the curing properties of the ink.

[0021] In this embodiment, for example, the ejection head 10A ejects ink of each color, yellow (Y), magenta (M), cyan (C), and black (K), which are sometimes collectively referred to as color inks. The ejection head 10A includes a nozzle row NL including a plurality of yellow ink nozzles 121Y that eject yellow ink, a nozzle row NL including a plurality of magenta ink nozzles 121M that eject magenta ink, a nozzle row NL including a plurality of cyan ink nozzles 121C that eject cyan ink, and a nozzle row NL including a plurality of black ink nozzles 121K that eject black ink. Each nozzle row NL extends along the sub-scanning direction Df. A color image is printed on the print medium W by ejecting these four colors of ink onto the print medium W. The arrangement order in the main scanning direction Ds of the nozzle row NL including the yellow ink nozzles 121Y, the nozzle row NL including the magenta ink nozzles 121M, the nozzle row NL including the cyan ink nozzles 121C, and the nozzle row NL including the black ink nozzles 121K is not limited to the above and can be set arbitrarily.

[0022] On the other hand, the ejection head 10B ejects white (W) ink and clear (Cr) ink. When printing a color image on a print medium W, such as fabric, white ink is ejected first as a base ink to reduce the impact on the color and material of the fabric, and then color inks are ejected on top of the white ink. Clear ink is ejected to impart gloss or protect the printed area. This ejection head 10B includes a nozzle row NL including multiple white ink nozzles 121W that eject white ink, and a nozzle row NL including multiple clear ink nozzles 121Cr that eject clear ink. Each nozzle row NL extends along the sub-scanning direction Df. The arrangement order of the nozzle row NL including the white ink nozzles 121W and the nozzle row NL including the clear ink nozzles 121Cr in the main scanning direction Ds is not limited to the above and can be set arbitrarily.

[0023] 2, the droplet ejection device 1a further includes a purge unit 50 and a wiper unit 54. The purge unit 50 and the wiper unit 54 are disposed on one end side of the pair of guide rails 67 in the main scanning direction Ds so as to overlap the movement area of ​​the carriage 3.

[0024] The purge unit 50 has a cap 51, a suction pump 52, and an elevating mechanism 53. The suction pump 52 is connected to the cap 51. The elevating mechanism 53 raises and lowers the cap 51 between a suction position and a standby position. At the standby position, the nozzle surface NM (FIG. 4) is separated from the cap 51. At the suction position, the nozzle surface NM is covered by the cap 51, forming a sealed space. When the suction pump 52 is driven while the cap 51 is in the suction position, the sealed space is suctioned, and ink is discharged from the nozzle holes 121a (FIG. 4), which will be described later. In this manner, a purge process may be performed in which ink is forcibly discharged from the nozzles 121.

[0025] The wiping unit 54 has two wipers 55, 56 and a movement mechanism 57. The two wipers 55, 56 are supported by the movement mechanism 57. The movement mechanism 57 moves in the sub-scanning direction Df with the nozzle surface NM positioned opposite these wipers 55, 56. As a result, the two wipers 55, 56 perform a wiping operation (i.e., wipe the nozzle surface NM) while moving in the sub-scanning direction Df.

[0026] Next, the cross-sectional structure of the ejection head 10 will be described with reference to the drawings. As shown in FIG. 4, the ejection head 10 has a plurality of nozzles 121 that eject ink droplets using ink from a storage tank 62. The ejection head 10 has a laminated body of a flow path forming body and a volume changing unit. An ink flow path is formed inside the flow path forming body, and a plurality of nozzle holes 121a open in the nozzle surface NM, which is the lower surface of the flow path forming body. The volume changing unit is driven to change the volume of the ink flow path. At this time, a meniscus vibrates in the nozzle holes 121a, causing ink to be ejected. The configuration of the ejection head 10 will be described in detail below.

[0027] The flow path forming body of the ejection head 10 is a laminate of multiple plates, and the volume changing section includes a vibration plate 155 and an actuator (piezoelectric element) 160. An insulating film 156 is connected to the top of the vibration plate 155, and a common electrode 161 (described later) is connected to the top of the insulating film 156.

[0028] The multiple plates are stacked, including, from bottom to top, a nozzle plate 146, a spacer plate 147, a first flow path plate 148, a second flow path plate 149, a third flow path plate 150, a fourth flow path plate 151, a fifth flow path plate 152, a sixth flow path plate 153, and a seventh flow path plate 154.

[0029] Each plate has holes and grooves of various sizes formed therein. Inside the flow path forming body where the plates are stacked, the holes and grooves are combined to form a plurality of nozzles 121, a plurality of individual flow paths 164, and a manifold 122 as ink flow paths.

[0030] The nozzles 121 are formed to penetrate the nozzle plate 146 in the stacking direction (a direction perpendicular to the main scanning direction Ds and the sub-scanning direction Df in FIG. 4). In the nozzle surface NM of the nozzle plate 146, a plurality of nozzle holes 121a, which are the tips of the nozzles 121, are aligned in the sub-scanning direction Df to form a nozzle row NL.

[0031] The manifold 122 supplies ink to the pressure chambers 128 to which ink ejection pressure is applied. The manifold 122 extends in the sub-scanning direction Df, and is connected to one end of each of the individual flow paths 164. In other words, the manifold 122 functions as a common flow path for ink. The manifold 122 is formed by through-holes that penetrate the first flow path plate 148 to the fourth flow path plate 151 in the stacking direction and recesses that are recessed from the lower surface of the fifth flow path plate 152, which are overlapped in the stacking direction.

[0032] Nozzle plate 146 is disposed below spacer plate 147. Spacer plate 147 is formed of, for example, stainless steel. Spacer plate 147 has recess 145 formed by, for example, half-etching, recessing it in the thickness direction of spacer plate 147 from the surface on the nozzle plate 146 side, whereby a thin portion constituting damper portion 147a and damper space 147b are formed. With this configuration, damper space 147b is formed as a buffer space between manifold 122 and nozzle plate 146.

[0033] A supply port 122a communicates with the manifold 122. The supply port 122a is formed, for example, in a cylindrical shape and is provided at one end in the sub-scanning direction Df. The manifold 122 and the supply port 122a are connected by a flow path (not shown).

[0034] The multiple individual flow paths 164 are each connected to the manifold 122. The upstream end of each individual flow path 164 is connected to the manifold 122, and the downstream end is connected to the base end of the nozzle 121. Each individual flow path 164 is composed of a first communication hole 125, a supply throttle path 126 which is an individual throttle path, a second communication hole 127, a pressure chamber 128, and a descender 129, and these components are arranged in this order.

[0035] The first communication hole 125 has a lower end connected to the upper end of the manifold 122, extends upward in the stacking direction from the manifold 122, and penetrates through an upper portion of the fifth flow path plate 152 in the stacking direction.

[0036] The upstream end of supply throttle path 126 is connected to the upper end of first communication hole 125. Supply throttle path 126 is formed by half etching, for example, and is configured as a groove recessed from the lower surface of sixth flow path plate 153. Furthermore, second communication hole 127 has its upstream end connected to the downstream end of supply throttle path 126, extends upward in the stacking direction from supply throttle path 126, and is formed to penetrate sixth flow path plate 153 in the stacking direction.

[0037] The upstream end of the pressure chamber 128 is connected to the downstream end of the second communication hole 127. The pressure chamber 128 is formed to penetrate the seventh flow path plate 154 in the stacking direction.

[0038] The descender 129 is formed by penetrating the spacer plate 147, the first flow path plate 148, the second flow path plate 149, the third flow path plate 150, the fourth flow path plate 151, the fifth flow path plate 152, and the sixth flow path plate 153 in the stacking direction. The descender 129 has an upstream end connected to the downstream end of the pressure chamber 128 and a downstream end connected to the base end of the nozzle 121. The nozzle 121 overlaps the descender 129 in the stacking direction, for example, and is disposed at the center of the descender 129 in the width direction.

[0039] The vibration plate 155 is laminated on the seventh flow path plate 154 and covers the upper openings of the pressure chambers 128 .

[0040] The actuator 160 includes a common electrode 161, a piezoelectric layer 162, and an individual electrode 163, which are arranged in this order. The common electrode 161 covers the entire surface of the vibration plate 155 via an insulating film 156. The piezoelectric layer 162 is provided for each pressure chamber 128, and is arranged on the common electrode 161 so as to overlap the pressure chamber 128. The individual electrode 163 is provided for each pressure chamber 128, and is arranged on the piezoelectric layer 162. One individual electrode 163, the common electrode 161, and the portion of the piezoelectric layer 162 sandwiched between the two electrodes constitute one actuator 160.

[0041] The individual electrodes 163 are electrically connected to a driver IC. This driver IC receives a control signal from a control device 20 (described later) to generate a drive signal (voltage signal) and apply it to the individual electrodes 163. In contrast, the common electrode 161 is always maintained at ground potential. In this configuration, the active portion of the piezoelectric layer 162 expands and contracts in the planar direction together with the common electrode 161 and the individual electrodes 163 in response to the drive signal. In response, the vibration plate 155 deforms in cooperation with the drive signal, and changes in the direction of increasing or decreasing the volume of the pressure chamber 128. As a result, an ejection pressure that causes ink to be ejected from the nozzle 121 is applied to the pressure chamber 128.

[0042] In the ejection head 10 described above, ink flows into the manifold 122 via the supply port 122a, then flows from the manifold 122 into the supply throttle passage 126 via the first communication hole 125, and then flows from the supply throttle passage 126 into the pressure chamber 128 via the second communication hole 127. The ink then flows through the descender 129 and into the nozzle 121. When an ejection pressure is applied to the pressure chamber 128 by the actuator 160, the ink is ejected from the nozzle hole 121a.

[0043] Next, each component of the printing device 1 of this embodiment will be described with reference to a block diagram. As shown in Figure 5, in addition to the components described above, the printing device 1 also includes a reading device 26, motor driver ICs 30 and 31, head driver ICs 32 and 35, a transport motor 33, a carriage motor 34, irradiation device driver ICs 36 and 37, a purge driver IC 38, and a wipe driver IC 39.

[0044] The controller unit 19 described above includes a control device 20, a storage unit (ROM 21, RAM 22, EEPROM 23, HDD 24), and an ASIC 25. The control device 20 is connected to the storage unit and controls the driver ICs 30 to 32, 35 to 39 and the display unit 5.

[0045] The control device 20 executes various functions by executing predetermined processing programs stored in the ROM 21. The control device 20 performs, for example, color conversion processing to convert print data in the RGB color space into print data in the CMYK color space, halftoning, and rasterization. The control device 20 may be implemented as a single processor in the controller unit 19, or as multiple processors working together. The processing programs are read by the reading device 26 from a computer-readable recording medium KB, such as a magneto-optical disk or a USB flash memory, and stored in the ROM 21. The RAM 22 stores print data received from an external device and calculation results of the control device 20. An example of the print data is data in which each RGB value has 256 levels. The EEPROM 23 stores various initial setting information entered by the user. The HDD 24 stores specific information and the like.

[0046] The ASIC 25 is connected to motor driver ICs 30 and 31, head driver ICs 32 and 35, irradiation device driver ICs 36 and 37, a purge driver IC 38, and a wipe driver 39. When the control device 20 accepts a print job, it outputs an image recording command to the ASIC 25 based on a processing program. The ASIC 25 drives the driver ICs 30-32, 35-39 based on the image recording command. The control device 20 moves the platen 6 in the sub-scanning direction Df by driving the conveyance motor 33 with the motor driver IC 30. The control device 20 moves the carriage 3 in the main scanning direction Ds by driving the carriage motor 34 with the motor driver IC 31. The control device 20 ejects ink from the ejection head 10 with the head driver ICs 32 and 35. The control device 20 causes the light-emitting diode chips of the ultraviolet irradiation devices 40A and 40B to emit ultraviolet light with the irradiation device driver ICs 36 and 37. The control device 20 drives the suction pump 52 and the lifting mechanism 53 of the purge unit 50 by the purge driver IC 38. The control device 20 drives the moving mechanism 57 of the wiping unit 54 by the wipe driver IC 39.

[0047] Next, patch image printing by the printing device 1 of this embodiment will be described. The colors printed by the ejection head 10 of the printing device 1 are not necessarily the colors desired by the user, and so may be adjusted by the user. In this case, color calibration is performed by printing patches and measuring the colors. In this embodiment, when executing patch printing, the control device 20 first determines some of the multiple layers based on weight information regarding the weights of each of the multiple layers. The control device 20 then generates print data based on the determined some of the layers and controls the ejection head 10 to print a patch image on the print medium W based on the generated print data. This will be described in detail below.

[0048] FIG. 6(a) is a diagram showing an image of an overcoat instruction layer L1 and an image layer L2, and FIG. 6(b) is a diagram showing an image of a character layer L3 and a background layer L4. FIG. 7(a) is a diagram showing a specific example of an overcoat instruction layer L1, and FIG. 7(b) is a diagram showing a specific example of an image layer L2. The print data (original data) may include, for example, an overcoat instruction layer L1 and an image layer L2. The print data may also include, for example, a character layer L3 and a background layer L4.

[0049] The image layer L2 in FIG. 6(a) is a layer that represents an image. The image represented by the image layer L2 is a color image with 256 gradations in the RGB color space. As shown in FIG. 7(b), the print data for the image represented by the image layer L2 includes on-pixel image data OND and off-pixel image data OFD. The on-pixel image data OND is image data corresponding to the setting area SR1 in the overcoat instruction layer L1, which indicates a command to eject clear ink from the clear ink nozzles 121Cr. The image represented by the on-pixel image data OND may be, for example, a company name or logo.

[0050] On the other hand, the off-pixel image data OFD has a weighting value (described in detail below) lower than that of the on-pixel image data OND, and is image data corresponding to the set area SR2 in which no command to eject clear ink is given. Images represented by the off-pixel image data OFD are, for example, graphs or landscape photographs.

[0051] The overcoat instruction layer L1 in Fig. 6(a) represents a protective layer positioned above the image layer L2, and may take the form shown in Fig. 7(a), for example. The overcoat instruction layer L1 shown in Fig. 7(a) realizes a protective layer that protects the image (letter "A") represented by the on-pixel image data OND in Fig. 7(b). The character layer L3 in Fig. 6(b) represents characters and is also called a foreground layer. The background layer L4 in Fig. 6(b) represents the background other than the characters.

[0052] In this embodiment, weight information is set in advance for each of the on-pixel image data OND of the character layer L3, the background layer L4, the image layer L2, and the off-pixel image data OFD of the image layer L2. The weight information is, for example, a weight value that indicates the weight numerically. The weight value will be described below.

[0053] FIG. 8 shows a weight map WD indicating the weight values ​​of the on-pixel image data OND of the character layer L3, the background layer L4, and the image layer L2, and the off-pixel image data OFD of the image layer L2. The weight map WD is stored in advance in the ROM 21 or the HDD 24. As shown in FIG. 8, in the weight map WD, the weight value of the character layer L3 is WD1, and the weight value of the background layer L4 is WD2. In this case, the weight value WD1 of the character layer L3 is set higher than the weight value WD2 of the background layer L4. Furthermore, the weight value WD3 of the on-pixel image data OND of the image layer L2 is set higher than the weight value WD4 of the off-pixel image data OFD of the image layer L2.

[0054] Here, the operation keys 4 include a weight value setting section 4a and an image selection setting section 4b. The weight value setting section 4a is operated by the user to set weight values, and the image selection setting section 4b is operated to set weight values ​​for a portion of the print data represented by the image layer L2. The user can arbitrarily set the weight values ​​of the character layer L3 and the background layer L4 in advance using the weight value setting section 4a provided on the operation keys 4. The user can also arbitrarily set the weight values ​​of the on-pixel image data OND in the image layer L2 and the off-pixel image data OFD in the image layer L2 in advance using the image selection setting section 4b provided on the operation keys 4. The weight value setting section 4a can also be used to set the weight value WD2 of the background layer L4 higher than the weight value WD1 of the character layer L3, in the opposite manner to the above. Similarly, the image selection setting section 4b can also be used to set the weight value WD4 of the off-pixel image data OFD in the image layer L2 higher than the weight value WD3 of the on-pixel image data OND in the image layer L2.

[0055] Next, the control device 20 determines some of the layers as layers on which patch images should be printed on the print medium W based on the weight values ​​(heights) of the layers as described above. To give a specific example, if the print data, which is the original data, includes a character layer L3 and a background layer L4, the control device 20 does not create print data based on the background layer L4, but generates print data based only on the character layer L3, and controls the ejection head 10 to print patch images on the print medium W based on the generated print data. In other words, the control device 20 generates print data based only on layers with high weight values, and does not generate print data for layers with low weight values. In this case, the control device 20 extracts colors in the character layer L3, which is one of the determined layers, whose color occupancy is equal to or greater than a threshold, and controls the ejection head 10 to generate print data based on the extracted colors and print patch images on the print medium W.

[0056] Furthermore, when the original data includes an overcoat instruction layer L1 and an image layer L2, the control device 20 generates print data based on the on-pixel image data OND in the image layer L2, and controls the ejection head 10 to print a patch image on the print medium W based on the generated print data. In this case, the control device 20 extracts colors whose color occupancy rate is equal to or greater than a threshold from each color in the on-pixel image data OND, generates print data based on the extracted colors, and controls the ejection head 10 to print a patch image on the print medium W.

[0057] FIG. 9 is a flowchart showing a main routine for printing patch images by the printing device 1 of this embodiment, and FIG. 10 is a flowchart showing a subroutine related to the patch image printing process of FIG.

[0058] As shown in FIG. 9, the control device 20 refers to each weight value stored in the ROM 21 or HDD 24 for the multiple layers included in the print data, and determines some of the multiple layers based on the weight values ​​(step S1).

[0059] Next, the control device 20 determines whether or not there is an overcoat instruction layer L1 positioned above the determined partial layer (step S2). If there is an overcoat instruction layer L1 positioned above the partial layer (YES in step S2), the control device 20 generates on-pixel image data OND and off-pixel image data OFD (step S3). Here, the on-pixel image data OND is data in which the setting region SR2 in FIG. 7(b) is completely white, leaving only the image in the setting region SR1. On the other hand, the off-pixel image data OFD is data in which the setting region SR1 in FIG. 7(b) is completely white, leaving only the image in the setting region SR2.

[0060] Next, the control device 20 acquires the application frequency of each RGB value in the on-pixel image data OND for each pixel and stores it in RAM 22 or HDD 24 (step S4).The control device 20 then acquires the application frequency of each RGB value in the off-pixel image data OFD for each pixel and stores it in RAM 22 or HDD 24 (step S5).After that, the control device 20 executes a patch image printing process (step S6).

[0061] On the other hand, if there is no overcoat instruction layer L1 positioned above the partial layer (NO in step S2), the control device 20 obtains the occurrence frequency of RGB values ​​in the determined partial layer for each pixel and stores it in the RAM 22 or the HDD 24 (step S7).Then, the control device 20 executes a patch image printing process (step S6).

[0062] The patch image printing process will be described below. As shown in FIG. 10, the control device 20 extracts target colors based on predetermined conditions (step S11). In this case, if the overcoat instruction layer L1 is present, the control device 20 can extract, as the predetermined condition, colors in the on-pixel image data OND whose color occupancy is equal to or greater than a threshold (i.e., colors whose occupying area is relatively large). If the overcoat instruction layer L1 is not present, the control device 20 can extract, as the predetermined condition, colors in a determined portion of layers (e.g., the character layer L3) whose color occupancy is equal to or greater than a threshold (i.e., colors whose occupying area is relatively large).

[0063] Next, the control device 20 determines whether a predetermined number of target colors (e.g., 100 patches) have been extracted (step S12). If the predetermined number of target colors have been extracted (YES in step S12), the control device 20 determines whether there is subsequent print data to be subjected to patch printing (step S13). Note that, in order to suppress color distortion when converting from RGB color space to print data in CMYK color space, it is desirable that the predetermined number of target colors to be extracted be a maximum of 100.

[0064] If there is subsequent printing data to be subjected to patch printing, that is, if the original printing data contains three or more layers and the subsequent printing data is to be subjected to patch printing (YES in step S13), the control device 20 returns to processing in step S11.

[0065] On the other hand, if there is no subsequent print data to be subjected to patch printing, that is, if the original print data contains only two layers, or if the original print data contains three or more layers but the subsequent print data is not subjected to patch printing (NO in step S13), the control device 20 proceeds to processing in step S14.

[0066] In step S14, the control device 20 generates print data based on some of the layers, and then controls the ejection head 10 to print a patch image onto the print medium W based on the generated print data (step S15).

[0067] As described above, according to the printing device 1 of this embodiment, patch images are printed on the printing medium W based on a determined portion of layers, rather than printing patch images of all layers on the printing medium W as in the conventional method. This makes it possible to reduce memory capacity and selectively print patch images. This allows for selective printing when the user wants to print patch images by determining a priority color, for example.

[0068] Furthermore, in this embodiment, colors whose color occupancy is equal to or greater than a threshold are extracted from the colors in the character layer L3, which is one of the determined layers, and patch images are printed based on the extracted colors onto the print medium W. This makes it possible to obtain patch images based on colors that occupy a relatively large area in the character layer L3.

[0069] Furthermore, in this embodiment, when the original data includes a character layer L3 and a background layer L4, the control device 20 prints patch images based on the character layer L3 onto the print medium W. This makes it possible to selectively print patch images of character images, which often attract more visual attention than background images, onto the print medium W.

[0070] Furthermore, in this embodiment, when the original data includes an overcoat instruction layer L1 and an image layer L2, the control device 20 causes a patch image to be printed on the print medium W based on the on-pixel image data OND in the image layer L2. This makes it possible to selectively print on the print medium W an image of the on-pixel image data OND, which often attracts more visual attention than the off-pixel image data OFD.

[0071] Furthermore, in this embodiment, colors whose color occupancy rate is equal to or greater than a threshold are extracted from the colors in the on-pixel image data OND, and a patch image is printed based on the extracted colors onto the print medium W. This makes it possible to obtain a patch image based on colors that occupy a relatively large area in the on-pixel image data OND.

[0072] In this embodiment, the weight value setting unit 4 a can set the weight values ​​of the character layer L3 and the background layer L4, allowing the user to arbitrarily set desired weight values ​​based on the visual attention of the character layer L3 and the background layer L4.

[0073] Furthermore, in this embodiment, the image selection setting unit 4b can set the weight values ​​of the on-pixel image data OND in the image layer L2 and the off-pixel image data OFD in the image layer L2, allowing the user to arbitrarily set desired weight values ​​based on the visual attention of the on-pixel image data OND and the off-pixel image data OFD.

[0074] (Variation) The present invention is not limited to the above-described embodiment, and various modifications are possible without departing from the spirit of the present invention. For example, the following modifications are possible.

[0075] In the above embodiment, the control device 20 generates print data based on one layer that is a part of two layers, and prints a patch image on the print medium W based on the generated print data, but this is not limited to this. The control device 20 may generate print data based on two or one layer that is a part of, for example, three layers, and print a patch image on the print medium W based on the generated print data. In other words, in the present invention, the control device 20 prints a patch image based on some of multiple layers, but does not print patch images based on all of the multiple layers.

[0076] In the above embodiment, colors with a color occupancy rate equal to or greater than a threshold (i.e., colors with a large occupancy area) are extracted from the colors in the determined layer (e.g., character layer L3). Also, colors with a color occupancy rate equal to or greater than a threshold (i.e., colors with a large occupancy area) are extracted from the colors in the on-pixel image data OND. However, this is not limiting, and a configuration may be adopted in which the user can specify a desired color in advance.

[0077] Furthermore, in the above embodiment, a serial type ejection head 10 is employed, but this is not limiting, and a line type ejection head may also be employed.

[0078] Furthermore, in the above embodiment, a piezoelectric element is used as the actuator 160, but this is not limitative, and other actuators such as a heater for ejecting ink droplets by a film boiling method may also be used. [Explanation of symbols]

[0079] 1 Printing device 4 Operation keys 4a Weight value setting section 4b Image selection settings 10, 10A, 10B Discharge head 20 Control device 121 nozzle 121Cr clear ink nozzle L1 Overcoat instruction layer L2 Image Layer L3 Character Layer L4 Background layer OFD Off-pixel image data OND On-pixel image data SR1 Setting area showing the command to eject clear ink SR2 Setting area where no command to eject clear ink is given W Medium to be ejected WD1 Character Layer Weight WD2 Background layer weight value WD3 On-pixel image data weight value WD4 Off-pixel image data weighting value

Claims

1. a printing unit that prints an image on a print medium; a control device; The control device Controlling the printing unit to print an image on a print medium using print data including a plurality of layers; Furthermore, determining a portion of the plurality of layers based on weight information regarding weights of each of the plurality of layers; generating print data based on the determined part of the layers, and controlling the printing unit to print a patch image on a printing medium based on the generated print data; the plurality of layers include a character layer, which is a foreground layer representing characters, and a background layer, which represents a background other than characters; the weight information is a weight value indicating the weight by a numerical value, the character layer has a higher weight value than the background layer; When determining the part of the layers, the control device controls the printing unit to generate print data based on the character layer and print a patch image on a print medium.

2. a printing unit that prints an image on a print medium; a control device; The control device Controlling the printing unit to print an image on a print medium using print data including a plurality of layers; Furthermore, determining a portion of the plurality of layers based on weight information regarding weights of each of the plurality of layers; generating print data based on the determined part of the layers, and controlling the printing unit to print a patch image on a printing medium based on the generated print data; the printing unit has a clear ink nozzle that ejects clear ink onto a print medium; the plurality of layers includes an image layer representing an image, and an overcoat indication layer representing a protective layer positioned above the image layer; the weight information is a weight value indicating the weight by a numerical value, the print data of the image represented by the image layer includes on-pixel image data corresponding to a set area in the overcoat instruction layer where a command to eject the clear ink from the clear ink nozzle is indicated, and off-pixel image data whose weight value is lower than that of the on-pixel image data and which corresponds to a set area in which the command is not indicated; The control device controls the printing unit to generate print data based on the on-pixel image data and print a patch image on a print medium.

3. The printing device according to claim 1 or 2, wherein the control device extracts colors from each color in the determined portion of the layer whose color occupancy is greater than or equal to a threshold value, generates print data based on the extracted colors, and controls the printing unit to print a patch image on a printing medium.

4. The printing device according to claim 2, wherein the control device extracts colors from the on-pixel image data whose color occupancy rate is greater than or equal to a threshold value, generates print data based on the extracted colors, and controls the printing unit to print a patch image on a printing medium.

5. the weight information is a weight value indicating the weight by a numerical value, The printing device according to claim 4 , further comprising an image selection setting unit for allowing a user to set the weight value for a portion of the print data represented by the image layer.

6. the weight information is a weight value indicating the weight by a numerical value, The printing device according to claim 1 , further comprising a weight value setting unit for allowing a user to set the weight value.

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