WO2014038007A1 - 撮像装置及び画像処理方法 - Google Patents
撮像装置及び画像処理方法 Download PDFInfo
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- WO2014038007A1 WO2014038007A1 PCT/JP2012/072591 JP2012072591W WO2014038007A1 WO 2014038007 A1 WO2014038007 A1 WO 2014038007A1 JP 2012072591 W JP2012072591 W JP 2012072591W WO 2014038007 A1 WO2014038007 A1 WO 2014038007A1
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Classifications
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Definitions
- the present invention relates to an imaging apparatus and an image processing method.
- Paper was common as a data medium.
- electronic data has become widespread as a data medium. For this reason, there are increasing opportunities to save data printed on paper as image data.
- Patent Document 1 As a technique for storing data printed on paper as image data, there is a technique described in Patent Document 1, for example.
- a positioning symbol is printed on a rectangular sheet, and an area to be stored is cut out from image data obtained by imaging the sheet based on the positioning symbol. Further, Patent Document 1 also describes that the cut out region is trapezoidally corrected.
- Patent Document 1 only a necessary part of image data can be cut out and stored.
- the technique described in Patent Document 1 requires that a positioning symbol is printed in advance on an object to be processed (for example, paper). For this reason, it was not possible to digitize only the necessary part of the data printed on the object on which the positioning symbols are not printed.
- An example of a problem to be solved by the present invention is that only a necessary portion of image data can be cut out even if a positioning symbol is not printed on an object to be stored as image data. It is done.
- the invention according to claim 1 is a mark irradiating unit that irradiates a target with a mark; An imaging unit that images the object and generates image data; An imaging area data generation unit that recognizes the position of the mark in the image data and extracts imaging area data that is a part of the image data based on the position; It is an imaging device provided with.
- the invention according to claim 12 generates image data by imaging the object in a state where the mark is irradiated on the object, An image processing method in which a computer recognizes the position of the mark in the image data and cuts out imaging area data that is a part of the image data based on the mark.
- FIG. 1 is a perspective view illustrating a configuration of an imaging apparatus according to a first embodiment. It is a block diagram which shows the function structure of an imaging device. It is a figure which shows the hardware constitutions of the imaging device shown in FIG. It is sectional drawing which shows the structure of the organic EL element which the organic EL panel as an illumination panel has. It is a figure which shows the 1st example of mark irradiation by a mark irradiation part. It is a figure which shows the other example of mark irradiation by a mark irradiation part. It is a figure which shows an example of the method in which a control part correct
- 3 is a flowchart illustrating a first example of the operation of the imaging apparatus. It is a flowchart which shows the 2nd example of operation
- movement of an imaging device. 12 is a flowchart illustrating a third example of the operation of the imaging apparatus. It is a figure for demonstrating the calculation method of the estimated position of the mark in 2nd Embodiment. It is a figure which shows the structure of the imaging device which concerns on 3rd Embodiment. It is a block diagram which shows the function structure of an image processing apparatus. 3 is a flowchart for explaining a first example of processing performed by the image processing apparatus. It is a flowchart for demonstrating the 2nd example of the process which an image processing apparatus performs.
- FIG. 1 is a perspective view illustrating a configuration of an imaging apparatus 10 according to the first embodiment.
- FIG. 2 is a block diagram illustrating a functional configuration of the imaging apparatus 10.
- the imaging apparatus 10 includes a mark irradiation unit 130, an imaging unit 140, and an imaging area data generation unit 230 (shown in FIG. 2).
- the mark irradiating unit 130 irradiates the target with a mark.
- the object is a sheet-like object such as paper on which data is printed, but may be another object such as an exhibition product.
- the imaging unit 140 captures an object and generates image data.
- the imaging area data generation unit 230 recognizes a mark in the image data, and cuts out imaging area data that is a part of the image data based on the mark.
- the mark irradiating unit 130 irradiates the object with the mark, only a necessary portion of the image data is obtained even if the positioning symbol is not printed on the object to be stored as image data. Can be cut out. Details will be described below.
- the mark irradiation unit 130 and the imaging unit 140 are built in the edge 155 of the holding member 150.
- the edge 155 is rotatably attached to the holding member 150.
- the orientation of the edge 155 with respect to the holding member 150, that is, the angle of the edge 155 with respect to the holding member 150 is detected by the position angle detection unit 135.
- the holding member 150 further holds the illumination unit 170.
- the illumination unit 170 illuminates the object and brightens the image indicated by the imaging data.
- One end of the holding member 150 is attached to the guide member 120 via the attachment portion 160.
- the edge portion 155 is attached to the other end side of the holding member 150, that is, the side opposite to the attachment portion 160 via the illumination portion 170.
- the illumination unit 170 has, for example, an organic EL (Electroluminescence) panel as a light source.
- This organic EL panel has a plurality of types of organic ELs having different spectral characteristics. These organic EL elements emit light of different colors, for example.
- a combination of colors emitted by the illumination unit 170 is arbitrary, but RGB (red, green, and blue) or RYB (red, yellow, and blue) is exemplified.
- the intensity of the plurality of colors is controlled by the control unit 220 shown in FIG. For this reason, the user of the imaging device 10 can adjust the illumination light of the target to a desired color.
- the illumination unit 170 includes an organic EL element, the spectrum of light emitted from the illumination unit 170 can be broadened.
- the light source which the illumination part 170 has is not limited to an organic EL panel, For example, LED (Light * Emitting * Diode) may be sufficient.
- the illumination unit 170 may include a plurality of organic EL panels.
- the plurality of organic EL panels may emit light of the same color (including combinations of a plurality of colors).
- at least one organic EL panel may include an organic EL element that emits light of a color different from that of other organic EL panels.
- at least one organic EL panel may have a different spectrum width from other organic EL panels. In this case, the illumination unit 170 may switch the light emitting organic EL panel.
- the planar shape of the holding member 150 is a rectangle.
- the attachment portion 160 attaches one side of the holding member 150 to the guide member 120. Further, the attachment portion 160 attaches the holding member 150 to the guide member 120 so as to be rotatable with the attachment portion 160 as a fulcrum.
- the mark irradiation unit 130 and the imaging unit 140 are attached to the side of the holding member 150 opposite to the side attached to the guide member 120.
- the guide member 120 is attached to the pedestal 110 and extends upward from the pedestal 110.
- the holding member 150 is attached to the guide member 120 so that it can move in the vertical direction along the guide member 120.
- the attachment part 160 has a stopper built therein. This stopper is provided to fix the vertical position of the holding member 150 and to fix the angle of the mounting portion 160. For this reason, the user of the imaging device 10 can move the holding member 150 to a desired height and rotate it to a desired angle, and then fix the holding member 150 at that height and angle.
- the mounting portion 160 has an angle detection portion 162 and a position detection portion 164 built therein.
- the angle detection unit 162 detects the orientation of the holding member 150 when the guide member 120 is used as a reference, that is, the angle of the holding member 150 with respect to the guide member 120.
- the pedestal 110 is placed at the same place (for example, on a desk) as an object to be processed (for example, paper on which data is printed).
- the angle of the guide member 120 with respect to the pedestal 110 is fixed (for example, 90 degrees).
- the imaging device 10 can calculate the angles of the mark irradiation unit 130 and the imaging unit 140 with respect to the surface of the target that is irradiated with the mark, based on the detection result of the angle detection unit 162.
- the position detection unit 164 detects the position of the attachment unit 160 in the direction along the guide member 120.
- the guide member 120 is fixed to the pedestal 110. Therefore, the imaging area data generation unit 230 (illustrated in FIG. 2) calculates the distance (or height) between the mark irradiation unit 130 and the imaging unit 140 with respect to the object based on the detection result of the position detection unit 164. Can do.
- a control system of the imaging device 10 is configured by these electronic components.
- the mark irradiation unit 130 is controlled so that the center of the imaging area indicated by the mark coincides with the center of the imaging area by the imaging unit 140. Further, the centers of the illumination areas by the illumination unit 170 also coincide with these centers.
- the imaging device 10 includes an input unit 210, a control unit 220, an imaging area data generation unit 230, and a data storage unit 240 in addition to the imaging unit 140, the angle detection unit 162, the position detection unit 164, and the illumination unit 170. ing.
- the input unit 210 acquires input information from the user of the imaging apparatus 10.
- This input information indicates, for example, information indicating the imaging area indicated by the mark by the mark irradiation unit 130, information indicating the light intensity and color tone by the illumination unit 170, and the generation timing of image data by the imaging unit 140.
- the control unit 220 controls the mark irradiation unit 130, the imaging unit 140, and the illumination unit 170 according to information input from the input unit 210.
- the imaging area data generation unit 230 recognizes a mark in the image data by image processing, and cuts out the imaging area data based on the mark. For this reason, imaging area data can be cut out with high accuracy. Further, the imaging area data generation unit 230 corrects the distortion of the imaging area data based on the detection results of the angle detection unit 162 and the position detection unit 164. This correction is, for example, a process called trapezoid correction.
- the imaging area data generation unit 230 has a mark position (an example shown in FIG. 6B described later) or a shape (an example shown in FIG. 5 or FIG. 6A described later) in the image data generated by the imaging unit 140. Based on the above, the keystone correction of the imaging area data is performed.
- the mark irradiation unit 130 draws the mark so that the imaging area has a predetermined shape, for example, a square or a rectangle. Then, the imaging area data generation unit 230 corrects the imaging area data so that the shape indicated by the imaging area data becomes the above-described predetermined shape (for example, a square or a rectangle). Thereby, when the imaging area data is displayed, the displayed information is easy to see.
- a predetermined shape for example, a square or a rectangle.
- control unit 220 changes the irradiation angle of the mark irradiated by the mark irradiation unit 130 based on the detection results of the angle detection unit 162, the position detection unit 164, and the position angle detection unit 135, and sets the mark on the object. Indicates a desired imaging area (for example, a square or a rectangle). Details of this processing will be described later.
- both the mark irradiation unit 130 and the imaging unit 140 have an optical system such as a lens. These optical systems always have individual differences. For this reason, the imaging area data has distortion caused by these individual differences.
- the imaging area data generation unit 230 stores a correction parameter for correcting distortion of imaging area data caused by an individual difference between at least one of the imaging unit 140 and the mark irradiation unit 130 in advance. ing. Then, the imaging area data generation unit 230 corrects the imaging area data using this correction parameter.
- This correction parameter is generated as follows, for example.
- the position and angle of the holding member 150 of the imaging device 10 and the angle of the edge portion 155 are set so that the detection values of the angle detection unit 162, the position detection unit 164, and the position angle detection unit 135 become predetermined values.
- the imaging unit 140 captures an image of an object having a predetermined shape (for example, a sheet on which a predetermined mark is printed), and generates imaging data.
- the imaging area data generation unit 230 sets the correction parameter so that the shape of the target object (or the shape of the area defined by the mark) indicated by the imaging data becomes a predetermined shape.
- the imaging area data generation unit 230 can correct the distortion of the imaging area data caused by the individual difference between both the mark irradiation unit 130 and the imaging unit 140. This correction parameter can be generated at an arbitrary timing.
- the data storage unit 240 stores the imaging area data after being corrected by the imaging area data generation unit 230.
- the data storage unit 240 may be a volatile memory, a non-volatile memory, or a hard disk.
- the data storage unit 240 may be an external storage device (for example, an external hard disk or a non-volatile memory) with respect to the imaging device 10 or may be built in the base 110 of the imaging device 10.
- the imaging area data generation unit 230 is irradiated from the control unit 220 by the illumination unit 170. An illumination parameter indicating the intensity of each of a plurality of colors is acquired. Then, the imaging area data generation unit 230 performs color correction of the imaging area data using the acquired illumination parameter. Thereby, even if the color of the object indicated by the imaging area data deviates from the original color due to the color of the illumination light, it approaches the original color.
- the combination of the mark irradiation unit 130 and the imaging unit 140 is fixed. For this reason, parameters for color correction can be adjusted and fixed in advance. Therefore, the color can be corrected with high accuracy.
- each component of the imaging device 10 is not a hardware unit configuration but a functional unit block.
- Each component of the imaging apparatus 10 is centered on an arbitrary computer CPU, memory, a program for realizing the components shown in the figure loaded in the memory, a storage medium such as a hard disk for storing the program, and a network connection interface. Realized by any combination of hardware and software. There are various modifications of the implementation method and apparatus.
- FIG. 3 is a diagram illustrating a hardware configuration of the imaging apparatus 10 illustrated in FIG.
- the mark irradiation unit 130 includes a semiconductor laser 131, a laser controller 132, a laser driver 133, a MEMS mirror 134, a position angle detection unit 135, a mirror controller 136, and a mirror driver 137.
- the semiconductor laser 131 emits laser light for drawing a mark.
- the laser light is, for example, visible light.
- the laser controller 132 and the laser driver 133 control the semiconductor laser 131.
- the MEMS mirror 134 reflects light emitted from the semiconductor laser 131. A mark is drawn by the MEMS mirror 134 changing the light reflection direction.
- the direction of light reflection by the MEMS mirror 134 is controlled by a mirror controller 136 and a mirror driver 137.
- the position angle detection unit 135 detects the direction in which the MEMS mirror 134 is facing.
- the mirror controller 136 controls the MEMS mirror 134 via the mirror driver 137 using the detection result of the position angle detection unit 135.
- the illumination unit 170 includes an illumination panel 171, an illumination driver 172, and an illumination controller 173.
- the illumination panel 171 is, for example, the above-described organic EL panel.
- the lighting controller 173 and the lighting driver 172 control the lighting panel 171.
- the imaging apparatus 10 includes a CPU 222, a memory 242, an I / O controller 250, and a wireless communication unit 252.
- the CPU 222 corresponds to the control unit 220 and the imaging area data generation unit 230 in FIG. These, the input unit 210, the laser controller 132, the mirror controller 136, and the illumination controller 173 are connected to each other.
- the input unit 210, the CPU 222, the memory 242, the I / O controller 250, and the wireless communication unit 252 illustrated in FIG. 3 are incorporated in the base 110.
- the input unit 210 may be provided outside the pedestal 110.
- the imaging area data generation unit 230 and the data storage unit 240 illustrated in FIG. 2 may be provided in a device external to the imaging device 10.
- the imaging area data generation unit 230 and the data storage unit 240 may be connected to the imaging device 10 via a communication line, for example, a data communication network such as the Internet, or a cable is connected to the imaging device 10, for example. It may be provided so as to be removable.
- FIG. 4 is a cross-sectional view showing a structure of an organic EL element included in the organic EL panel as the illumination panel 171.
- an anode 420, a hole injection layer 422, a hole transport layer 424, a light emitting layer 426, an electron transport layer 428, an electron injection layer 430, and a cathode 432 are stacked in this order on a substrate 410. It has a structure.
- the substrate 410 is a resin such as quartz, glass, metal, or plastic.
- Examples of the phosphorescent organic compound used for the light-emitting layer 426 include Bis (3,5-difluoro-2- (2-pyridyl) phenyl- (2-carboxypyridyl) iridium (III), Tris (2-phenylpyridine) which are iridium complexes.
- organic compound having an electron transporting property which is a main component of the light emitting layer 426, the electron transporting layer 428, and the electron injecting layer 430
- polycyclic compounds such as p-terphenyl and quaterphenyl and derivatives thereof, naphthalene Condensed polycyclic hydrocarbon compounds such as tetracene, pyrene, coronene, chrysene, anthracene, diphenylanthracene, naphthacene, phenanthrene and their derivatives, phenanthroline, bathophenanthroline, phenanthridine, acridine, quinoline, quinoxaline, phenazine, etc.
- Ring compounds and derivatives thereof fluorescein, perylene, phthaloperylene, naphthaloperylene, perinone, phthaloperinone, naphthaloperinone, diphenylbutadiene, tetraphenylbutadiene, oxadiazole, al Examples include gin, bisbenzoxazoline, bisstyryl, pyrazine, cyclopentadiene, oxine, aminoquinoline, imine, diphenylethylene, vinylanthracene, diaminocarbazole, pyran, thiopyran, polymethine, merocyanine, quinacridone, rubrene, etc. and their derivatives. be able to.
- a metal chelate complex compound particularly a metal chelated oxanoid compound, tris (8-quinolinolato) aluminum, bis (8-quinolinolato) magnesium, bis [benzo (f) -8-quinolinolato ] Zinc, bis (2-methyl-8-quinolinolato) (4-phenyl-phenolato) aluminum, tris (8-quinolinolato) indium, tris (5-methyl-8-quinolinolato) aluminum, 8-quinolinolatolithium, tris
- metal complexes having at least one 8-quinolinolato or a derivative thereof such as (5-chloro-8-quinolinolato) gallium and bis (5-chloro-8-quinolinolato) calcium as a ligand.
- organic compounds having electron transport properties oxadiazoles, triazines, stilbene derivatives, distyrylarylene derivatives, styryl derivatives, and diolefin derivatives can be suitably used.
- organic compound that can be used as an organic compound having an electron transporting property 2,5-bis (5,7-di-t-benzyl-2-benzoxazolyl) -1,3,4-thiazole, 4, 4'-bis (5,7-t-pentyl-2-benzoxazolyl) stilbene, 4,4'-bis [5,7-di- (2-methyl-2-butyl) -2-benzoxazoly Ru] stilbene, 2,5-bis (5.7-di-t-pentyl-2-benzoxazolyl) thiophene, 2,5-bis [5- ( ⁇ , ⁇ -dimethylbenzyl) -2-benzoxa Zolyl] thiophene, 2,5-bis [5,7-di- (2-methyl-2-butyl) -2-benzoxazolyl] -3,4-diphenylthiophene, 2,5-bis (5- Methyl-2-benzoxazolyl) thiophene, 4,
- 1,4-bis (2-methylstyryl) benzene 1,4-bis (3-methylstyryl) benzene, 1,4-bis (4-methylstyryl) benzene, Distyrylbenzene, 1,4-bis (2-ethylstyryl) benzene, 1,4-bis (3-ethylstyryl) benzene, 1,4-bis (2-methylstyryl) -2-methylbenzene, 1,4 Examples thereof include -bis (2-methylstyryl) -2-ethylbenzene.
- organic compound having an electron transporting property 2,5-bis (4-methylstyryl) pyrazine, 2,5-bis (4-ethylstyryl) pyrazine, 2,5-bis [2- (1- Naphthyl) vinyl] pyrazine, 2,5-bis (4-methoxystyryl) pyrazine, 2,5-bis [2- (4-biphenyl) vinyl] pyrazine, 2,5-bis [2- (1-pyrenyl) vinyl ] Pyrazine etc. are mentioned.
- organic compounds having electron transport properties include 1,4-phenylene dimethylidin, 4,4'-phenylene dimethylidin, 2,5-xylylene dimethylidin, and 2,6-naphthylene dimethylidene. Din, 1,4-biphenylenedimethylidin, 1,4-p-terephenylenedimethylidin, 9,10-anthracenediyldimethylidin, 4,4 '-(2,2-di-t-butylphenylvinyl
- Known materials conventionally used for the production of organic EL devices such as biphenyl and 4,4 ′-(2,2-diphenylvinyl) biphenyl can be appropriately used.
- N, N, N ′, N′-tetraphenyl-4,4′-diaminophenyl is used as an organic compound having a hole transporting property, which is used for the hole transporting layer 424 and the hole transporting light emitting layer.
- organic compound having a hole transporting property those obtained by dispersing the above organic compound in a polymer or those obtained by polymerizing can be used.
- So-called ⁇ -conjugated polymers such as polyparaphenylene vinylene and derivatives thereof, hole-transporting non-conjugated polymers typified by poly (N-vinylcarbazole), and sigma-conjugated polymers of polysilanes can also be used.
- the hole injection layer 422 is not particularly limited, but conductive polymers such as metal phthalocyanines such as copper phthalocyanine (CuPc: Copper Phthalocyanine) and metal-free phthalocyanines, carbon films, and polyaniline can be preferably used.
- metal phthalocyanines such as copper phthalocyanine (CuPc: Copper Phthalocyanine) and metal-free phthalocyanines, carbon films, and polyaniline can be preferably used.
- the sharpness of the spectrum of light emitted from the lighting panel 171 can be adjusted.
- FIG. 5 is a diagram illustrating a first example of irradiation of the mark M by the mark irradiation unit 130.
- the mark irradiation unit 130 irradiates the laser beam so as to scan the entire imaging area F.
- FIG. 6A is a diagram showing a second example of mark M irradiation by the mark irradiation unit 130.
- the mark irradiation unit 130 irradiates the laser beam so as to draw the edge of the imaging area F.
- FIG. 6B is a diagram illustrating a third example of mark M irradiation by the mark irradiation unit 130.
- the imaging area F is rectangular. Then, the mark irradiation unit 130 draws marks indicating the four corners of the imaging area F with laser light.
- the shape of the mark M and the scanning method by the mark irradiation unit 130 are not limited to the above-described example.
- FIG. 7 is a diagram illustrating an example of a method in which the control unit 220 corrects the light irradiation range by the mark irradiation unit 130 to make the mark have a desired shape.
- the control unit 220 controls the irradiation angle of the light emitted from the mark irradiation unit 130 using the direction of the object when the imaging unit 140 is used as a reference and the distance from the object to the imaging unit 140. This will be specifically described below.
- the angle detection unit 162 detects the angle of the holding member 150 with respect to the guide member 120, that is, the angle of the mark irradiation unit 130 with respect to the guide member 120.
- the control unit 220 calculates an angle ⁇ 1 of the mark irradiating unit 130 with respect to the surface of the mounting unit 40 (for example, a desk) on which the object is mounted, from the detection result of the angle detecting unit 162.
- the angle detection unit 162 may be configured to directly detect the angle ⁇ 1 of the mark irradiation unit 130 with respect to the surface of the placement unit 40.
- the position angle detection unit 135 detects the angle of the reference position (for example, the center) of the mark irradiation unit 130 with respect to the holding member 150.
- the control unit 220 indicates an angle of the light irradiated by the mark irradiation unit 130 with respect to a reference axis (for example, a vertical axis passing through the center) of the mark irradiation unit 130 as a part of the control parameter of the mark irradiation unit 130. Holds data. For this reason, the control unit 220 can calculate the angle ⁇ 2 of the light irradiated by the mark irradiation unit 130 with respect to the holding member 150.
- the angle ⁇ 2 corresponds to the direction of the object when the imaging unit 140 is used as a reference.
- the length of the holding member 150 is a fixed value. For this reason, the control unit 220 uses the length of the holding member 150 and the angle ⁇ 1 to determine the distance from the guide member 120 to the mark irradiation unit 130 in a plane parallel to the placement unit 40 (see FIG. (Distance in the middle x direction) can be calculated. Further, the control unit 220 has a length, and by using the angle theta 1, marks the height of the irradiation unit 130 when a reference surface of the mounting portion 40 of the detection result h, the holding member 150 by the position detection unit 164 (Distance in the y direction in the figure) can be calculated. This height corresponds to the distance from the imaging unit 140 to the object. Then, by using these distances and the angles ⁇ 1 and ⁇ 2 , the control unit 220 can calculate the distance d 1 from the guide member 120 to the light irradiation position.
- control part 220 can recognize the irradiation position of the light by the mark irradiation part 130 by using distance d1 and angle (theta) 1 , (theta) 2 . By recognizing the irradiation position, the control unit 220 can control the mark irradiation unit 130 so that the imaging area indicated by the mark has a desired shape.
- FIG. 8 is a diagram for explaining another function of the mark irradiation unit 130.
- the mark irradiation unit 130 has a function of drawing information such as characters in addition to a function of irradiating a mark indicating an imaging area.
- Information drawn by the mark irradiation unit 130 may be input from the input unit 210 illustrated in FIG. 2, for example, or may be information held by the control unit 220.
- the information drawn by the mark irradiation unit 130 is, for example, illumination parameters used for controlling the illumination panel 171 or date / time information from a calendar or the like of the CPU 222 (control unit 220).
- the illumination parameter is information indicating the intensity of each of the light of a plurality of colors irradiated by the illumination unit 170, but is not limited thereto.
- the character information is included in the imaging area data, the imaging area data and the character information can be stored together.
- the illumination parameters of the product illumination can be stored together with image data obtained by imaging the product. If it does in this way, the lighting conditions of goods can be reproduced easily.
- the information drawn by the mark irradiation unit 130 may be a description of the target object.
- the illumination unit 170 of the imaging device 10 is used as illumination for illuminating a product.
- the laser which the mark irradiation part 130 draws information may be provided separately from the laser for drawing a mark.
- the imaging unit 140 may detect both visible light and infrared light after the laser that draws information such as characters is an infrared laser. In this way, even if the lighting parameters are drawn at the display location of the product, the lighting parameters are not visible to humans, and thus do not affect the design of the product display.
- FIG. 9 is a flowchart illustrating a first example of the operation of the imaging apparatus 10.
- the user of the imaging apparatus 10 adjusts the height and angle of the holding member 150 and the angle of the edge 155 with respect to the holding member 150 while irradiating the mark irradiation unit 130 with the mark.
- the user may adjust the light irradiation range by inputting to the input unit 210.
- the user can adjust the imaging area indicated by the mark to be in a desired range (step S10).
- the imaging unit 140 generates image data at the timing when an imaging command is input from the user (step S20).
- the imaging area data generation unit 230 recognizes the position of the mark in the image data generated by the imaging unit 140, and cuts out the imaging area data from the image data based on the recognized position of the mark (step S30).
- the imaging area data generation unit 230 performs keystone correction on the generated imaging area data (step S40).
- the imaging area data generation unit 230 stores the imaging area data after the keystone correction in the data storage unit 240 (step S50).
- FIG. 10 is a flowchart showing a second example of the operation of the imaging apparatus 10.
- the user of the imaging device 10 adjusts the illumination parameter of the illumination unit 170 and adjusts the color and intensity of illumination by the illumination unit 170 (step S5).
- the user adjusts the height and angle of the holding member 150 and the angle of the edge 155 with respect to the holding member 150 so that the imaging area indicated by the mark falls within a desired range (step S10).
- the imaging unit 140 generates image data in accordance with an input from the user.
- the control unit 220 stores the illumination parameter in the data storage unit 240 (step S22).
- step S30 to step S50 is the same as that in the first example.
- the imaging area data generation unit 230 associates the imaging area data with the illumination parameters stored in step S22 in step S50.
- FIG. 11 is a flowchart showing a third example of the operation of the imaging apparatus 10.
- the processes shown in step S5 and step S10 are the same as in the second example.
- the control unit 220 acquires character data to be drawn on the object, and draws the acquired character data on the object together with the mark (step S12).
- the imaging unit 140 captures an object and generates imaging data (step S20).
- the information indicated by the character data is as described with reference to FIG.
- step S30 and step S40 are the same as in the second example.
- the imaging area data generation unit 230 corrects the keystone of the imaging area data (step S40), and then corrects the color of the imaging area data using the illumination parameter (step S42). Thereafter, the imaging area data generation unit 230 stores the imaging area data in the data storage unit 240 (step S50).
- the mark irradiating unit 130 irradiates the target with the mark.
- the imaging unit 140 captures an object and generates image data.
- the imaging area data generation unit 230 recognizes the position of the mark on the object, and extracts imaging area data that is a part of the image data based on the mark. For this reason, since the mark irradiation unit 130 irradiates the target with the mark, only a necessary portion of the image data can be cut out even if the positioning symbol is not printed on the target to be stored as image data.
- the imaging area data generation unit 230 cuts out the imaging area data by recognizing the position of the mark in the image data. For this reason, the amount of calculation for generating imaging area data can be reduced.
- control unit 220 controls the angle of the mark irradiated by the mark irradiation unit 130 using the direction of the target object with respect to the imaging unit 140 and the distance from the target object to the imaging unit 140, and the mark
- the imaging area indicated by the irradiation unit 130 has a desired shape (for example, a square or a rectangle). For this reason, the calculation amount of the keystone correction by the imaging area data generation unit 230 can be reduced.
- the holding member 150 is movable up and down along the guide member 120 and is attached to be rotatable about the attachment portion 160. For this reason, the user of the imaging device 10 can easily set the range of the imaging area indicated by the mark to a desired size by adjusting the height and angle of the holding member 150.
- the imaging device 10 according to the second embodiment has the same configuration as that of the imaging device 10 according to the first embodiment except for the following points.
- the mark irradiation unit 130 does not perform mark irradiation when the imaging unit 140 generates image data. For example, when an imaging command for the imaging unit 140 is input from the input unit 210, the control unit 220 ends mark irradiation by the mark irradiation unit 130 at that timing. Then, the control unit 220 and the imaging area data generation unit 230 generate an image based on the angle of view of the imaging unit 140, the irradiation direction of the mark by the mark irradiation unit 130, and the distance from the object to the mark irradiation unit 130 and the imaging unit 140. The position where the mark is estimated to exist in the data is calculated.
- control unit 220 and the imaging area data generation unit 230 include the detection results of the angle detection unit 162, the position detection unit 164, and the position angle detection unit 135, the irradiation direction of the mark by the mark irradiation unit 130, and the imaging unit.
- the position where the mark is estimated to exist in the image data is calculated.
- the imaging area data generation part 230 produces
- FIG. 12 is a diagram for explaining a calculation method of the estimated position of the mark by the imaging area data generation unit 230.
- the mark irradiation unit 130 is controlled so that the center of the imaging area indicated by the mark coincides with the center of the imaging area by the imaging unit 140.
- the control unit 220 determines, based on the detection result of the angle detection unit 162, the angle of the mark irradiation unit 130 with respect to the surface of the mounting unit 40 (for example, a desk) on which the object is mounted. ⁇ 1 is calculated. Further, the position angle detection unit 135 detects the angle ⁇ 3 of the center of the mark irradiation unit 130 with respect to the holding member 150. In addition, the control unit 220 can acquire the angle ⁇ of the irradiation range when the mark irradiation unit 130 is irradiating the mark indicating the imaging area.
- control unit 220 can calculate the angle ⁇ 1 of the imaging unit 140 with respect to the upper end of the imaging area indicated by the mark using the angles ⁇ , ⁇ 1 , and ⁇ 3 , and the imaging area indicated by the mark can be calculated. it is possible to calculate the angle beta 2 of the imaging unit 140 relative to the lower end.
- the control unit 220 when the control unit 220 is based on the distance from the guide member 120 to the mark irradiation unit 130 (the distance in the x direction in the drawing) and the surface of the placement unit 40, The height of the mark irradiation unit 130 (distance in the y direction in the figure) can be calculated.
- the control unit 220 can calculate the distance d 1 from the guide member 120 to the lower end of the imaging area by using these distances and heights, and the angle ⁇ 1 , and these distances and heights, and it can be calculated distance (d 1 + d 2) from the guide member 120 by use of the angle beta 2 to the upper end of the imaging area.
- the distances d 1 and (d 1 + d 2 ) indicate the positions of marks indicating the imaging area.
- control unit 220 stores the angle of view of the imaging unit 140. Therefore, the control unit 220 calculates which region of the surface of the mounting unit 40 the image data generated by the imaging unit 140 indicates by using a method similar to the method of calculating the mark position. be able to. Further, the positional relationship between the angle ⁇ 3 of the center of the mark irradiating unit 130 with respect to the holding member 150 and the angle of view of the imaging unit 140 is fixed. For this reason, the imaging area data generation unit 230 can calculate the position where the mark is estimated to exist in the image data by using the data calculated by the control unit 220.
- FIG. 13 is a diagram illustrating a configuration of the imaging apparatus 10 according to the third embodiment, and corresponds to FIG. 1 in the first embodiment.
- the imaging device 10 according to the present embodiment has the same configuration as that of the imaging device 10 according to the first or second embodiment except that the imaging device 10 includes the image processing device 30.
- the image processing device 30 performs at least a part of the image processing performed by the imaging area data generation unit 230 in the first embodiment.
- FIG. 14 is a block diagram illustrating a functional configuration of the image processing apparatus 30.
- the image processing apparatus 30 includes an image acquisition unit 310, an image processing unit 320, a display unit 325, an input unit 330, and a data storage unit 340.
- the image acquisition unit 310 receives the image area data generated by the imaging area data generation unit 230 from the imaging device 10.
- the image acquisition unit 310 receives image area data via the I / O controller 250 or the wireless communication unit 252 of the imaging device 10.
- the image processing unit 320 processes the image data received by the image acquisition unit 310.
- the display unit 325 displays the image data that has been processed by the image processing unit 320.
- the input unit 330 receives information input from the user of the imaging device 10.
- the input information indicates parameters for image processing by the image processing unit 320.
- the data storage unit 340 stores the image data processed by the image processing unit 320.
- the data storage unit 340 may be a non-volatile memory or a hard disk.
- FIG. 15 is a flowchart for explaining a first example of processing performed by the image processing apparatus 30.
- the processing from step S5 to step S40 is the same as the processing described with reference to FIG. 11 in the first embodiment.
- the imaging area data generation unit 230 transmits the corrected imaging area data to the image processing device 30 when performing keystone correction on the image area data (step S40). At this time, the imaging area data generation unit 230 also transmits the illumination parameters used in the illumination unit 170 to the image processing apparatus 30 (step S41).
- the image acquisition unit 310 of the image processing device 30 receives the imaging area data and the illumination parameters transmitted from the image processing device 30.
- the image processing unit 320 corrects the color of the imaging area data using the illumination parameter received by the image acquisition unit 310.
- the image processing unit 320 causes the display unit 325 to display the corrected imaging area data. Thereafter, the user of the imaging apparatus 10 inputs an instruction for correction correction to the input unit 330 as necessary after viewing the image displayed on the display unit 325.
- the image processing unit 320 corrects the color correction of the imaging area data in accordance with the input correction instruction (step S45).
- the image processing unit 320 stores the corrected image area data in the data storage unit 340 (step S52).
- FIG. 16 is a flowchart for explaining a second example of processing performed by the image processing apparatus 30.
- the example shown in this figure is the same as the first example shown in FIG. 14 except that the image processing apparatus 30 also performs trapezoidal correction (step S43).
- step S5 to step S30 The processing from step S5 to step S30 is the same as the processing described with reference to FIG.
- the imaging area data generation unit 230 transmits the image area data before the keystone correction to the image processing apparatus 30 in association with the detection results of the angle detection unit 162, the position detection unit 164, and the position angle detection unit 135, and the illumination parameter. (Step S31).
- the image acquisition unit 310 of the image processing apparatus 30 receives data transmitted from the image processing apparatus 30. Then, the image processing unit 320 performs keystone correction (step S43). The process performed here is the same as the process performed in step S40 of FIG.
- step S45 and S52 The subsequent processing (steps S45 and S52) is the same as the first example shown in FIG.
- the same effect as the first or second embodiment can be obtained. Further, since image processing is performed using the image processing device 30, image processing with a large amount of calculation can be performed on the image area data. Further, the image processing unit 320 corrects the image processing in accordance with a user input. Therefore, it is possible to correct the image area data according to the user's preference.
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Abstract
Description
前記対象物を撮像して画像データを生成する撮像部と、
前記画像データ内における前記マークの位置を認識し、当該位置に基づいて、前記画像データの一部である撮像エリアデータを切り出す撮像エリアデータ生成部と、
を備える撮像装置である。
コンピュータが、前記画像データ内における前記マークの位置を認識し、当該マークに基づいて、前記画像データの一部である撮像エリアデータを切り出す画像処理方法である。
図1は、第1の実施形態に係る撮像装置10の構成を示す斜視図である。図2は、撮像装置10の機能構成を示すブロック図である。撮像装置10は、マーク照射部130、撮像部140、及び撮像エリアデータ生成部230(図2に図示)を備えている。マーク照射部130は、対象物にマークを照射する。対象物は、シート状の物、例えばデータが印刷された紙であるが、他のもの、例えば展示用の商品であってもよい。撮像部140は、対象物を撮像して画像データを生成する。撮像エリアデータ生成部230は、画像データ内におけるマークを認識し、当該マークに基づいて、画像データの一部である撮像エリアデータを切り出す。本実施形態によれば、マーク照射部130が対象物にマークを照射するため、画像データとして保存されるべき対象物に位置決めシンボルが印刷されていなくても、画像データのうち必要な部分のみを切り出せる。以下、詳細に説明する。
第2の実施形態に係る撮像装置10は、以下の点を除いて、第1の実施形態に係る撮像装置10と同様の構成である。
(第3の実施形態)
図13は、第3の実施形態に係る撮像装置10の構成を示す図であり、第1の実施形態における図1に対応している。本実施形態に係る撮像装置10は、画像処理装置30を備えている点を除いて、第1又は第2の実施形態に係る撮像装置10と同様の構成である。画像処理装置30は、第1の実施形態において撮像エリアデータ生成部230が行っていた画像処理の少なくとも一部を行う。
Claims (12)
- 対象物にマークを照射するマーク照射部と、
前記対象物を撮像して画像データを生成する撮像部と、
前記画像データ内における前記マークの位置を認識し、当該位置に基づいて、前記画像データの一部である撮像エリアデータを切り出す撮像エリアデータ生成部と、
を備える撮像装置。 - 請求項1に記載の撮像装置において、
前記撮像部を基準としたときの前記対象物の方向、及び前記対象物から前記撮像部までの距離を用いて、前記マークの照射角度を制御する制御部と、
を備える撮像装置。 - 請求項2に記載の撮像装置において、
前記撮像部を保持する保持部材と、
前記保持部材が移動可能かつ回転可能に取り付けられたガイド部材と、
前記ガイド部材が取り付けられた台座と、
前記ガイド部材に対する前記保持部材の角度を検出する角度検出部と、
前記ガイド部材における前記保持部材の位置を検出する位置検出部と、
を備え、
前記制御部は、前記角度検出部の検出結果を用いて前記撮像部を基準としたときの前記対象物の方向を算出し、かつ、前記位置検出部の検出結果を用いて前記対象物に対する前記撮像部の距離を算出する撮像装置。 - 請求項3に記載の撮像装置において、
前記撮像エリアデータ生成部は、前記撮像部の画角、前記マーク照射部による照射方向、並びに前記対象物から前記撮像部及び前記マーク照射部までの距離に基づいて、前記画像データ内における前記マークの位置を算出する撮像装置。 - 請求項2に記載の撮像装置において、
前記撮像エリアデータ生成部は、前記撮像エリアデータ内における前記マークの位置又は形状に基づいて、前記撮像エリアデータの歪みを補正する撮像装置。 - 請求項2に記載の撮像装置において、
前記撮像エリアデータ生成部は、前記撮像部及び前記マーク照射部の少なくとも一方の個体差に起因した前記撮像エリアデータの歪を補正するための補正パラメータを記憶しており、前記補正パラメータを用いて前記撮像エリアデータを補正する撮像装置。 - 請求項2に記載の撮像装置において、
前記対象物に照明光を照射する照明部を備える撮像装置。 - 請求項7に記載の撮像装置において、
前記照明部は、前記照明光として複数色の光を照射する撮像装置。 - 請求項8に記載の撮像装置において、
前記複数色の光の強度を互いに独立して制御する照明制御部を備え、
前記撮像エリアデータ生成部は、前記照明制御部から前記複数色の光のそれぞれの強度を示す照明パラメータを受信し、前記照明パラメータを用いて前記撮像エリアデータを補正する撮像装置。 - 請求項7に記載の撮像装置において、
前記マーク照射部は、前記撮像部が前記画像データを生成するときに、文字情報を前記対象物のうち前記撮像エリアデータに対応する領域に照射し、
前記文字情報は、前記照明部の制御に用いられる照明パラメータを示す撮像装置。 - 請求項2に記載の撮像装置において、
前記マーク照射部は、前記撮像部が前記画像データを生成するときに、文字情報を前記対象物のうち前記撮像エリアデータに対応する領域に照射する撮像装置。 - 対象物にマークを照射した状態で、前記対象物を撮像して画像データを生成し、
コンピュータが、前記画像データ内における前記マークの位置を認識し、当該マークに基づいて、前記画像データの一部である撮像エリアデータを切り出す画像処理方法。
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US14/425,275 US9794520B2 (en) | 2012-09-05 | 2012-09-05 | Image capture device and method for recognizing irradiated position mark on object |
JP2014534076A JP6099652B2 (ja) | 2012-09-05 | 2012-09-05 | 撮像装置及び画像処理方法 |
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JPH09130780A (ja) * | 1995-10-27 | 1997-05-16 | Toshiba Corp | 監視装置 |
JP2002262180A (ja) * | 2000-12-27 | 2002-09-13 | Casio Comput Co Ltd | 画像処理方法及び画像処理装置 |
JP2006134303A (ja) * | 2004-10-04 | 2006-05-25 | Denso Wave Inc | 光学情報読取装置 |
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