WO2016009886A1 - Système d'endoscope - Google Patents
Système d'endoscope Download PDFInfo
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- WO2016009886A1 WO2016009886A1 PCT/JP2015/069488 JP2015069488W WO2016009886A1 WO 2016009886 A1 WO2016009886 A1 WO 2016009886A1 JP 2015069488 W JP2015069488 W JP 2015069488W WO 2016009886 A1 WO2016009886 A1 WO 2016009886A1
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- illumination
- light
- image
- unit
- subject image
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B1/00—Instruments for performing medical examinations of the interior of cavities or tubes of the body by visual or photographical inspection, e.g. endoscopes; Illuminating arrangements therefor
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B1/00—Instruments for performing medical examinations of the interior of cavities or tubes of the body by visual or photographical inspection, e.g. endoscopes; Illuminating arrangements therefor
- A61B1/04—Instruments for performing medical examinations of the interior of cavities or tubes of the body by visual or photographical inspection, e.g. endoscopes; Illuminating arrangements therefor combined with photographic or television appliances
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B23/00—Telescopes, e.g. binoculars; Periscopes; Instruments for viewing the inside of hollow bodies; Viewfinders; Optical aiming or sighting devices
- G02B23/24—Instruments or systems for viewing the inside of hollow bodies, e.g. fibrescopes
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/56—Cameras or camera modules comprising electronic image sensors; Control thereof provided with illuminating means
Definitions
- the present invention relates to an endoscope system, and more particularly to an endoscope system that irradiates illumination light in at least two directions and acquires subject images from at least two directions.
- the endoscope includes an illuminating unit and an observing unit at the distal end side of the insertion portion, and can be inserted into the subject to observe and inspect the subject.
- an endoscope capable of observing two or more directions has been proposed.
- a side surface of the insertion part is proposed.
- An endoscope having a side field of view with the side as an observation field has been proposed.
- an object of the present invention is to provide an endoscope system that prevents overheating of the tip of an endoscope that can observe two or more directions.
- An endoscope system includes an insertion portion that is inserted into a subject, and a first subject image that is provided in the insertion portion and includes a first region that includes the front of the insertion portion.
- a first subject image obtaining unit to obtain, and a second subject image from a second region provided in the insertion unit and including at least a part of the first region including a radial direction of the insertion unit.
- a second object image acquisition unit for acquiring the first illumination light, a first illumination unit for emitting the first illumination light to the first region, and a second for emitting the second illumination light to the second region.
- Illumination light is intermittently emitted to each of the first illumination unit and the second illumination unit so as to include at least The first object image acquired by the first object image acquisition unit and the second illumination light are emitted while the light control unit and the first illumination light are emitted.
- An image generation unit that generates an image based on the second object image acquired by the second object image acquisition unit.
- FIG. 1 It is a block diagram which shows the structure of the endoscope system in connection with the 3rd Embodiment of this invention. It is sectional drawing of the front-end
- FIG. 1 is a configuration diagram illustrating a configuration of an endoscope system according to the present embodiment.
- the endoscope system 1 includes an endoscope 2, a processor 3, and a display device 4.
- the endoscope 2 has an insertion section 6 inserted into the subject and an operation section (not shown), and is connected to the processor 3 by a cable (not shown).
- the distal end portion 6a of the insertion portion 6 of the endoscope 2 is provided with an illumination window 7 and an observation window 8 for front vision, two illumination windows 7a and 7b for side vision, and two observation windows 8a and 8b. It has been.
- the endoscope 2 has two illumination windows 7 a and 7 b in addition to the illumination window 7, and two observation windows 8 a and 8 b in addition to the observation window 8.
- the illumination window 7a and the observation window 8a are for the first side field
- the illumination window 7b and the observation window 8b are for the second side field.
- a plurality of, here two, observation windows 8 a and 8 b are arranged at substantially equal angles in the circumferential direction of the insertion portion 6.
- the distal end portion 6a of the insertion portion 6 has a distal end rigid member (not shown), the illumination window 7 is provided on the distal end surface of the distal end rigid member, and the illumination windows 7a and 7b are provided on the side surfaces of the distal end rigid member. .
- a first side-view imaging unit 11a is disposed in the distal end portion 6a behind the observation window 8a, and a second side-view imaging unit 11b is located behind the observation window 8b. Is disposed in the distal end portion 6a.
- An imaging unit 11c for the front visual field is disposed behind the observation window 8 for the front visual field.
- Each of the three image pickup units 11a, 11b, and 11c which are image pickup units, has an image pickup device, is electrically connected to the processor 3, and is controlled by the processor 3 to output an image pickup signal to the processor 3.
- Each of the imaging units 11a, 11b, and 11c is an imaging unit that photoelectrically converts a subject image.
- the observation window 8 is disposed at the distal end portion 6a of the insertion portion 6 in the direction in which the insertion portion 6 is inserted, and the observation windows 8a and 8b are disposed on the side surface portion of the insertion portion 6 outside the insertion portion 6. They are arranged in the radial direction.
- the observation window 8 is provided in the insertion portion 6 and is a first subject image that acquires a first subject image from a first region including the front of the insertion portion along the longitudinal direction of the insertion portion 6.
- Each of the observation windows 8a and 8b constitutes an acquisition unit, and is provided in the insertion unit 6, and includes a side that is the radial direction of the insertion unit 6 and a second region that is at least partially different from the first region.
- a second subject image acquisition unit that acquires a second subject image is configured.
- the first subject image is a subject image of the first region including the front of the insertion portion that is substantially parallel to the longitudinal direction of the insertion portion 6, and the second subject image is a portion of the insertion portion 6. It is a subject image of the second region including the side of the insertion portion that is inclined with respect to the longitudinal direction (for example, substantially orthogonal).
- the imaging unit 11c is an imaging unit that photoelectrically converts a subject image from the observation window 8
- the imaging units 11a and 11b are imaging units that photoelectrically convert two subject images from the observation windows 8a and 8b, respectively. .
- a first side-view illumination light emitting element 12a is disposed in the distal end portion 6a, and on the rear side of the illumination window 7b is a second side-view illumination.
- the light emitting element 12b is disposed in the tip 6a.
- a light emitting element 12c for illumination for the front visual field is disposed.
- Light emitting elements for illumination (hereinafter referred to as light emitting elements) 12a, 12b, and 12c are, for example, light emitting diodes (LEDs). Therefore, the illumination window 7 corresponding to the light emitting element 12c is an illumination unit that emits illumination light forward, and the illumination windows 7a and 7b corresponding to the light emitting elements 12a and 12b emit illumination light to the sides. It is an illumination part.
- the processor 3 includes an illumination control unit 31, a photometry unit 41, and a control unit 42.
- the control unit 42 generates and synthesizes three endoscopic images based on the three imaging signals from the three imaging units 11 a, 11 b, and 11 c, and outputs them to the display device 4.
- the illumination control unit 31 is a circuit that is controlled by the control unit 42 and controls the light emitting elements 12a, 12b, and 12c, and controls the light emission amount and on / off for each light emitting element. Furthermore, the illumination control unit 31 controls the light amount of each light emitting element based on the dimming signal from the control unit 42.
- the illumination control unit 31 controls the on / off light emission timing of each light emitting element. That is, the illumination control unit 31 constitutes an illumination control unit that controls the emission of illumination light forward and the emission of illumination light to the side at predetermined timings different from each other.
- the illumination control unit 31 simultaneously receives the first illumination light from the light emitting element 12c that illuminates the front and the second illumination light from the light emitting elements 12a and 12b that illuminate the side, based on the control of the control unit 42.
- the light emitting element 12c (first illumination unit) and the light emitting element 12a, so as to include at least a state of emitting and a state of emitting only one of the first illumination light and the second illumination light Illumination light is intermittently emitted to 12b (second illumination unit).
- the illumination control unit 31 is based on the control of the control unit 42, and in a time lapse, the first illumination light and the second illumination light are emitted at the same time, only the first illumination light is emitted, the second The light emitting element 12c (first illumination unit) and the light emitting elements 12a, 12b (second) are included so as to include a state in which only the illumination light is emitted and a state in which neither the first illumination light nor the second illumination light is emitted. It is preferable that the illumination light is emitted intermittently with respect to the illumination unit).
- FIG. 2 is a diagram showing an example of an image displayed on the endoscope image display screen 4a displayed on the display device 4.
- the display device 4 is a display unit that displays an image generated by the control unit 42 that is an image generation unit.
- the first area 21 is an area for displaying the first side observation image generated from the imaging signal from the imaging unit 11a.
- the second area 22 is an area for displaying a front observation image generated from the imaging signal from the imaging unit 11c.
- the third area 23 is an area for displaying the second side observation image generated from the imaging signal from the imaging unit 11b.
- the photometry unit 41 of the processor 3 calculates the brightness of each of the three endoscopic images generated by the processor 3 and outputs the brightness information to the control unit 42.
- the control unit 42 outputs a dimming signal for controlling the light amount of each light emitting element 12a, 12b, 12c to the illumination control unit 31 according to the brightness of each observation image.
- the processor 3 is an image generation unit that generates an image signal including a front observation image and two side observation images.
- the display device 4 receives an image signal from the processor 3 and displays an endoscopic image including the front observation image and the two side observation images so that the two side observation images are displayed next to the front observation image.
- a display unit is configured.
- the processor 3 displays two side observation images on the display device 4 so as to sandwich the front observation image.
- the illumination control unit 31 illuminates the light emitting elements 12a, 12b, and 12c by emitting light at a predetermined timing, and the control unit 42 combines the acquired observation images and outputs them to the display device 4 at a predetermined timing.
- the first subject image acquisition unit (corresponding to the imaging unit 11c) acquires the front (first) subject image while the first illumination light from the light emitting element 12c that illuminates the front is emitted. To do.
- the second subject image acquisition unit (corresponding to the imaging unit 11a) is a side (second) subject image while the second illumination light is emitted from the light emitting element 12a that illuminates the side.
- the second object image acquisition unit (corresponding to the imaging unit 11b) is configured to receive the second illumination light from the light emitting element 12b that illuminates the side (second ) Obtain a subject image.
- the imaging timing of the imaging elements of the imaging units 11a, 11b, and 11c and the display timing by the display device 4 are timings based on the illumination timing.
- At least a part of the illumination timing and the imaging timing of the imaging device are synchronized, for example, the illumination and display timings and the imaging frame rate are synchronized.
- FIG. 3 is a diagram illustrating a relationship between an acquired image of each imaging element and an observation image displayed on the display device 4 based on the acquired image in the timing pattern 1.
- FIG. 3 shows acquired images, which are three observation images acquired by the three imaging units 11a, 11b, and 11c, corresponding to the arrangement of the images in FIG. 2, and the right side shows the display screen 4a of the display device 4.
- 3 shows display images of three observation images displayed.
- the center of the three observation images is the observation image of the front field of view
- the left side is the observation image of the first side field of view
- the right side is the observation image of the second side field of view.
- the control unit 42 which is an image generation unit, arranges an endoscopic image in which the observation image of the front visual field is arranged in the center and the observation image of the two side visual fields is arranged so as to sandwich the observation image of the front visual field.
- the blocks indicated by diagonal lines indicate that the observation image is not acquired without being illuminated.
- blocks indicated by diagonal lines indicate that no observation image is displayed.
- the interval between adjacent timings is, for example, 1/60 seconds. 4 to 7B described later, the acquired image and the display image are shown in the same arrangement as in FIG.
- the illumination control unit 31 causes the two light emitting elements 12a, 12b, and 12c to emit light in a predetermined order, and images the subject illuminated by the light emitting elements that emit light at the light emission timing of each light emitting element. Two observation images are acquired by the imaging unit.
- FIG. 3 is a diagram illustrating a relationship between an acquired image of each imaging element and an observation image displayed on the display device 4 based on the acquired image in the timing pattern 1.
- the illumination control unit 31 causes the light emitting elements 12a, 12b, and 12c to emit light two by two in a predetermined order, and the subject illuminated by the light emitting element that emits light at the light emission timing of each light emitting element. Two observation images are acquired by the imaging unit for imaging.
- the two light emitting elements emit light intermittently at the timings t1, t2,...
- two of the three light emitting elements 12a, 12b, and 12c emit light in order.
- two of the three light emitting elements 12a, 12b, and 12c emit light, and the two imaging units behind the observation window corresponding to the light emitting elements that have emitted light acquire an observation image at that timing.
- any two of the three imaging units 11a, 11b, and 11c generate two observation images and output them to the processor 3.
- the control unit 42 displays an observation image from each imaging unit.
- the previously displayed observation image is input.
- Three observation images are output to the display device 4 so as to be replaced with the latest observation images.
- the observation image F1 with the front visual field and the observation image S11 with the first lateral visual field are acquired by the imaging units 11c and 11a, respectively, so that the front view observation image F1 and the front visual field are displayed on the display screen 4a. Only the observed image S11 is displayed.
- the observation image F2 with the front visual field and the observation image S21 with the second lateral visual field are acquired by the imaging units 11c and 11b, respectively.
- the side view observation image S21 and the first side view observation image S11 acquired at the timing t1 are displayed.
- the observation images S12 and S22 of the first and second lateral fields of view are acquired by the imaging units 11a and 11b, respectively, so that the first and second lateral fields of view are displayed on the display screen 4a.
- Observation images S12 and S22, and an observation image F2 of the front visual field acquired at timing t2 are displayed.
- the observation image F3 with the front visual field and the observation image S13 with the first lateral visual field are acquired by the imaging units 11c and 11a, respectively.
- the side-view observation image S13 and the second side-view observation image S22 acquired at timing t3 are displayed.
- the control unit 42 outputs three observation images arranged so as to replace the observation images displayed so far to the display device 4.
- Timing pattern 2 In this timing pattern 2, the light-emitting elements 12a, 12b, and 12c emit light intermittently at random over time t, and the object illuminated by the light-emitting elements that emit light at the light-emission timing of each light-emitting element. An image is acquired by an image sensor that captures.
- FIG. 4 is a diagram illustrating a relationship between an acquired image of each image sensor and an observation image displayed on the display device 4 based on the acquired image in the timing pattern 2.
- the illumination control unit 31 causes the light emitting elements 12a, 12b, and 12c to emit light intermittently with the light emission order of the light emitting elements 12a, 12b, and 12c over time.
- the display order of the acquired observation images is also determined according to the light emission order of 12b and 12c.
- the timing pattern 2 is different from the timing pattern 1 in that the order of light emission of the light emitting elements 12a, 12b, and 12c is not fixed but is random, but the other points are the same as the timing pattern 1. As described above, the timing for controlling the emission of the illumination light for the front visual field and the illumination light for the side visual field is random.
- control unit 42 displays the observation image from each imaging unit, but when a new observation image is input, the previously displayed observation image is replaced with the latest observation image that has been input. Thus, three observation images are output to the display device 4.
- the timing pattern 2 also includes a state in which only two light emitting elements emit light at each timing in the passage of time along the time t, and also includes a state in which only one light emitting element emits light and a state in which the light emitting element does not emit light. Therefore, the tip portion 6a is not easily heated excessively.
- Timing pattern 3 In FIG. 5, three light emitting elements 12a, 12b, and 12c emit light one by one in order. At each timing, one of the three light emitting elements 12a, 12b, and 12c emits light, and the imaging unit behind the observation window corresponding to the emitted light emitting element acquires an observation image at that timing.
- any one of the three imaging units 11a, 11b, and 11c generates one observation image at one timing and outputs the observation image to the processor 3.
- the control unit 42 displays an observation image from each imaging unit.
- the previously displayed observation image is replaced with the latest observation image that has been input.
- Three observation images are output to the display device 4.
- the display screen 4a includes the first side field of view observation image S11 and the front side acquired at timing t1. An observation image F1 of the visual field is displayed.
- the display screen 4a includes the second side field of view image S21 and the front image acquired at time t1.
- the observation image F1 of the visual field and the observation image S11 of the front visual field acquired at the timing t2 are displayed.
- the front visual field observation image F2 is acquired by the imaging unit 11c, and therefore the front visual field observation image F2 and the first side visual field observation image acquired at timing t2 are displayed on the display screen 4a. S11 and the observation image S21 of the second lateral field of view acquired at timing t3 are displayed. As described above, the timing for controlling the emission of the illumination light for the front visual field and the emission of the illumination light for the lateral visual field is in a predetermined order.
- control unit 42 outputs three observation images arranged so as to replace the observation images displayed so far to the display device 4.
- Timing pattern 4 In this timing pattern 4, the light emitting elements 12a, 12b, and 12c are caused to emit light randomly and intermittently two by two as time elapses along the time t, and the light emitting elements emit light at the light emission timing of each light emitting element. Two observation images are acquired by an imaging device that images the subject.
- FIG. 6 is a diagram illustrating a relationship between an acquired image of each imaging element and an observation image displayed on the display device 4 based on the acquired image in the timing pattern 4.
- the lighting control unit 31 randomly sets the timing at which two of the light emitting elements 12 a, 12 b, 12 c emit light over time t instead of in a predetermined order.
- the display order of the acquired observation images is also determined according to the order of light emission of the light emitting elements 12a, 12b, and 12c.
- the timing pattern 4 is different from the timing pattern 3 in that the order of light emission of the light emitting elements 12a, 12b, and 12c is not fixed but is random, but the other points are the same as the timing pattern 3.
- control unit 42 displays the observation image from each imaging unit, but when a new observation image is input, the previously displayed observation image is replaced with the latest observation image that has been input. Thus, three observation images are output to the display device 4.
- the tip portion 6a is hardly heated excessively.
- FIG. 7A is a diagram illustrating a relationship between an acquired image of each image sensor and an observation image displayed on the display device 4 based on the acquired image in a modification of the timing pattern 4.
- the three light emitting elements 12a, 12b, and 12c emit light intermittently at random. At each timing, one of the three light emitting elements 12a, 12b, and 12c emits light, and the imaging unit behind the observation window corresponding to the emitted light emitting element acquires an observation image at that timing.
- the observation image F1 of the front visual field is acquired by the imaging unit 11c, but the observation images of the first and second lateral visual fields are not acquired by the imaging units 11b and 11a, respectively, so that the display screen No observation image is displayed on 4a.
- the observation image S11 of the first side field of view is acquired by the imaging unit 11a, but the observation image of the second side field of view is not acquired by the imaging unit 11b, so that the display screen 4a Does not display any observation image.
- the second side field of view image S21 is acquired by the imaging unit 11b, and the front field of view observation image F1, the first side field of view observation image S11, and the second side field of view of the second side field of view are obtained. Since the observation image S21 is aligned, images of these three observation images are displayed on the display screen 4a.
- the observation image S12 of the first lateral field of view is acquired by the imaging unit 11a, but the observation image of the front field of vision and the observation image of the second side field of view are captured respectively. Since no images are acquired by the units 11c and 11b, no observation image is displayed on the display screen 4a.
- the observation image S22 of the second lateral field of view is acquired by the imaging unit 11b. However, since the observation image of the front field of view is not acquired by the imaging unit 11c, any one of the display screens 4a is displayed on the display screen 4a. No observation image is displayed.
- an observation image F2 with a front visual field is acquired by the imaging unit 11c, and an observation image F2 with a front visual field, an observation image S12 with a first lateral visual field, and an observation image S22 with a second lateral visual field. Therefore, these three images are displayed on the display screen 4a.
- the control unit 42 outputs the three observation images to the display device 4 so as to replace the observation images that have been displayed.
- the tip portion 6a is hardly heated excessively. Note that at timings t4 and t5, the image displayed at timing t3 may be displayed. That is, the display of the three currently displayed observation images may be continued until the three observation images are gathered.
- Timing pattern 5 In this timing pattern 5, the light-emitting elements 12a, 12b, and 12c are caused to emit light at random at each timing by the illumination control unit 31 at time intervals along the time t, and are illuminated by the emitted light-emitting elements.
- the obtained subject image is acquired by the imaging device. Then, the generated image is output to the display device 4 when three observation images are prepared. Therefore, only one light emitting element emits light and one observation image is acquired at each timing t1, t2,.
- FIG. 7B is a diagram showing the relationship between the acquired image of each image sensor and the observation image displayed on the display device 4 based on the acquired image in the timing pattern 5.
- the observation image displayed at timing t3 may be displayed as it is. Even in this case, if the interval between the adjacent timings is extremely short, even if the same observation image is displayed for several times, it is unlikely that the observation image has a sense of incongruity due to the afterimage effect of human eyes.
- control unit 42 which is an image generation unit, generates an image to be displayed on the display screen 4a, if the latest subject image has not been partially acquired, the subject image that has not been acquired. Generates an endoscopic image using the acquired subject image.
- the illumination light from the three illumination windows 7, 7 a, 7 b that illuminate different directions is emitted, and the processor 3, which is an image generation unit,
- the processor 3 which is an image generation unit
- an endoscopic image is generated based on three subject images acquired by three observation windows.
- the second timing which is the imaging timing, may be synchronized with the first timing at which the illumination light is emitted, but overlaps the time at which the illumination light is emitted at the first timing and emits the projection light.
- the timing may be shorter than the current time.
- control unit 42 which is an image generation unit, generates an endoscopic image for some reason, the latest subject image cannot be acquired for any of the three observation images.
- An endoscopic image may be generated using the latest acquired subject image for one observation image.
- each illumination is synchronized with the imaging timing of the image sensor, but the control unit 42 that is an image generation unit synchronizes the imaging frame rate of each image sensor and the emission of each illumination light. It is possible to detect whether or not an endoscope image is generated when synchronization is detected.
- one or two illumination units that is, light-emitting elements are turned on sequentially or randomly, and at each timing, at least one light-emitting element always emits light.
- the timing when the element is turned off may be generated or inserted periodically or randomly.
- Modification 2 You may make it light a some light emitting element by the pattern which combined any one of the some timing pattern of embodiment mentioned above, or the pattern which added the timing of the modification 1 to the combined pattern.
- a light emitting element is used for illumination.
- an endoscope system that sequentially illuminates two or more directions using a light guide for illumination. It is.
- FIG. 8 is a configuration diagram illustrating a configuration of an endoscope system 1A according to the second embodiment.
- the same components as those of the endoscope system 1 of the first embodiment are denoted by the same reference numerals, description thereof will be omitted, and different configurations will be described.
- the endoscope system 1 ⁇ / b> A includes an endoscope 2 ⁇ / b> A, a display device 4, and a light source device 5.
- the light source device 5 includes a light control unit 51, a drive unit 52, and a light source 53.
- the light control unit 51 includes a diaphragm 51a and a rotation filter 51b for illumination order control as a light amount adjustment unit.
- the drive unit 52 includes a drive circuit that controls the rotation of the rotary filter 51b while driving the diaphragm 51a to adjust the size of the aperture of the diaphragm 51a under the control of the control unit 42.
- the amount of light emitted from the light source 53 is adjusted by the diaphragm 51a of the light control unit 51.
- the light emitted from the light control unit 51 passes through the rotary filter 51b and is condensed on the proximal end portion 34a of the light guide 34 by a light collecting device (not shown).
- the light emitted from the light control unit 51 passes through the light guide 34 and is emitted from the tip end portion 34 b of the light guide 34.
- FIG. 9 is a diagram in which the end face of the base end portion 34 a of the light guide 34 is viewed from the front.
- the light guide 34 formed of an optical fiber bundle is composed of three light guides 35a, 35b, and 35c.
- the base end portion 34a of the light guide 34 is circular, and the base end portions of the three light guides 35a, 35b, and 35c are located in each of the three regions of the base end portion 34a. Are arranged to be.
- the light guide 35a in FIG. 9 is for first side illumination (in a region including a direction inclined with respect to the longitudinal direction of the insertion portion 6) for visual field illumination, and the distal end portion of the light guide 35a is behind the illumination window 7a. Placed on the side.
- the light guide 35b is for second side field illumination, and the tip of the light guide 35b is disposed behind the illumination window 7b.
- the light guide 35 c is for front-side illumination (including the front of the insertion portion along the longitudinal direction of the insertion portion 6), and the tip portion of the light guide 35 c is disposed on the rear side of the illumination window 7.
- FIG. 10 is a diagram for explaining the configuration of the rotary filter 51b.
- the rotary filter 51b is a circular filter device composed of three regions having shapes matching the shapes of the base end portions of the three light guides 35a, 35b, and 35c in the base end portion 34a of the light guide 34.
- the rotary filter 51b can be rotated around a circular center C1 by a motor (not shown), and is rotated at a predetermined rotational speed by the drive unit 52.
- the rotary filter 51b includes three regions 61a, 61b, and 61c.
- the two regions 61a are light-shielding regions, and the other two regions 61c and 61b are light-transmitting regions.
- the control unit 42 Since the rotation speed of the rotary filter 51b is controlled by the control unit 42, the control unit 42 synchronizes the acquisition timings of the images of the three imaging units 11a, 11b, and 11c in accordance with the rotation timing of the rotary filter 51b. Can be taken.
- the dimming unit 51 as the illumination control unit is based on the control of the control unit 42, and the first illumination light from the light guide 35c that guides the illumination light that illuminates the front and the illumination light that illuminates the side. Either of the state in which the second illumination light from the light guide 35a or 35b that guides the light is simultaneously emitted, the first illumination light from the light guide 35c, and the light guide 35a or 35b the second illumination light.
- the illumination light is intermittently emitted with respect to the first illumination light and the second illumination light over time so as to include at least the state in which only one emits.
- the dimming unit 51 as the illumination control unit drives the rotary filter 51b as a filter device that restricts the incidence of light to the light guides 35a, 35b, and 35c, thereby illuminating the front and two sides. Controls light emission.
- the light from the light source 53 that has passed through the diaphragm 51 a passes through the rotating rotary filter 51 b and enters the end face of the base end portion 34 a of the light guide 34. Therefore, the light control part 51 which comprises an illumination control part controls the emission of the illumination light ahead, and the emission of the illumination light to the side at predetermined timings different from each other.
- control unit 42 Since the control unit 42 controls the rotation of the rotary filter 51b, it can acquire the imaging signals from the imaging units 11a, 11b, and 11c at a predetermined timing while the rotary filter 51b is rotating. As a result, as shown in FIG. 3, the control unit 42 can acquire one observation image at each timing and display the three observation images on the display device 4.
- the illumination light from the three illumination windows 7, 7 a, 7 b that illuminate different directions is emitted at a predetermined first timing, at least one of which is different from each other.
- a predetermined first timing at least one of which is different from each other.
- an endoscopic image is generated based on three subject images acquired by three observation windows.
- the rotary filter 51b has one light shielding region. However, if the rotation filter 51b has two light shielding regions, an observation image as shown in FIG. An image can be displayed.
- FIG. 11 is a diagram for explaining a configuration of a rotary filter 51b1 having one light-shielding region, which relates to the first modification of the second embodiment.
- regions 61a and 61c are light shielding regions.
- control unit 42 can acquire two observation images at each timing and display images based on the three observation images on the display device 4.
- the rotary filter may have a disk shape as shown in FIG.
- FIG. 12 is a diagram for explaining the configuration of a disk-shaped rotary filter 51b2 provided with three annular filters, according to the second modification of the second embodiment.
- the rotary filter 51b2 includes a front-view illumination filter 62a, a first side-view illumination filter 62b, and a second side-view illumination filter 62c.
- Each of the filters 62a, 62b, and 62c is an annular filter, and is provided on one disk.
- Each of the filters 62a, 62b, and 62c is divided into six equal parts. Of the six divided areas, for example, three areas are transmission areas that transmit light, and the remaining three areas are light-shielding areas that do not transmit light ( (Shown with diagonal lines).
- the base end portion 34a of the light guide 34 is branched into three portions, and the end portions of the three portions are arranged adjacent to one of the filters 62a, 62b, and 62c.
- the part 34a is arranged.
- the two transmission areas and the four light-shielding areas of the filters 62a, 62b, and 62c indicate that when the rotary filter 51b2 rotates, the three imaging unit imaging units 11a, 11b, and 11c display an observation image as shown in FIG. It is arranged so that it can be obtained.
- the control unit 42 acquires one observation image at each timing and displays three observation images on the display device 4. can do.
- each filter of the rotary filter 51b2 there are four transmission regions, two light shielding regions, and when the rotary filter 51b2 is rotated, the three imaging units 11a, 11b, and 11c are as shown in FIG. These transmission regions and light shielding regions may be arranged so that an observation image can be acquired.
- the rotary filter may have a drum shape as shown in FIG.
- FIG. 13 is a diagram for explaining a configuration of a drum-shaped rotary filter 51b3 provided with three annular filters, which relates to the third modification of the second embodiment.
- the rotary filter 51b3 includes a filter 63a for front field illumination, a filter 63b for first side field illumination, and a filter 63c for second side field illumination.
- Each of the filters 63a, 63b, and 63c is an annular filter, and is provided on one drum-shaped cylindrical plate.
- Each of the filters 63a, 63b, and 63c is divided into six equal parts, and among the six divided areas, four areas are transmission areas that transmit light, and the remaining two areas are light-shielding areas that do not transmit light (indicated by diagonal lines). Show).
- three regions may be transmissive regions that transmit light, and the remaining three regions may be light-shielding regions that do not transmit light.
- the base end portion 34a of the light guide 34 has the same configuration as that of the second modification, and is branched into three portions, and the end portions of the three portions are arranged close to one of the filters 63a, 63b, and 63c. Be placed.
- the light L from the light source 53 is applied from the inner side to the outer side of the drum-shaped rotary filter 51b3, and the light guide 34 is placed outside the rotary filter 51b3 so that the light transmitted through the rotary filter 51b3 enters the light guide 34.
- Three base end portions 34a are arranged.
- the three base end portions 34a of the light guide 34 may be disposed inside the drum-shaped rotary filter 51b3 by applying light from the light source to the outside.
- the two transmission regions and the four light-shielding regions of the filters 63a, 63b, and 63c indicate that when the rotary filter 15b2 rotates, the three imaging unit imaging units 11a, 11b, and 11c display an observation image as shown in FIG. It is arranged so that it can be obtained.
- the control unit 42 acquires one observation image at each timing and displays three observation images on the display device 4. can do.
- each filter of the rotary filter 51b3 there are four transmission areas, two light-shielding areas, and when the rotary filter 51b3 rotates, the three imaging units 11a, 11b, and 11c are as shown in FIG. These transmission regions and light shielding regions may be arranged so that an observation image can be acquired.
- Modification 4 Furthermore, it may replace with a rotation filter and the filter apparatus which has several light-shielding plates which can protrude and retract.
- FIG. 14 is a diagram for explaining a configuration of a filter 51b4 having three light shielding plates, which is related to the modification 4 of the second embodiment.
- the filter 51b4 is a filter device having a light shielding plate 64a for front field illumination, a light shielding plate 64b for first side field illumination, and a light shielding plate 64c for second side field illumination.
- Each of the light shielding plates 64 a, 64 b, and 64 c is a plate member, and is provided so as to be able to project and retract from the main body portion 65.
- the main body 65 has a drive unit such as a magnet for projecting and retracting the light shielding plates 64a, 64b and 64c.
- the respective light shielding plates 64a, 64b, and 64c are protruded and submerged under the control of the control unit 42.
- the base end portion 34a of the light guide 34 has the same configuration as that of the second modification, and is branched into three portions, and each of the three portions has one of the light shielding plates 64a, 64b, and 64c projecting and subtracting. Are arranged side by side.
- the light L from the light source 53 is emitted toward the base end portion 34a of the light guide 34.
- the light source 53 and the base end portion 34a of the light guide 34 are arranged at a position where the light L is shielded by the protruding light shielding plate. .
- the light-shielding plate 64a When the light-shielding plate 64a is retracted, the light from the light source 53 is incident on the end of one branch portion of the base end portion 34a of the light guide 34 as illumination light for the front visual field.
- the light shielding plate 64b is retracted, the illumination light for the first side field of light from the light source 53 is incident on the end of the other branch portion of the base end portion 34a of the light guide 34.
- the light blocking plate 64c is retracted, the light from the light source 53 is incident on the end portion of the remaining one branch portion of the base end portion 34a of the light guide 34 as the illumination light for the second side field of view.
- an observation image as shown in FIG. 3 or FIG. An endoscopic image can be displayed.
- the light shielding plate of the filter device cannot be switched at the imaging frame rate, the light shielding plate is switched at a speed that is a fraction of an integer of the frame rate so that an appropriately illuminated image can be obtained. Also good.
- the distal end portion 6a of the insertion portion 6 of the endoscope according to the first and second embodiments incorporates two or more imaging elements in order to acquire a subject image from at least two directions.
- one image sensor is incorporated to acquire subject images from at least two directions.
- FIG. 15 is a configuration diagram showing the configuration of the endoscope system according to the present embodiment. Since the endoscope system 1B according to the present embodiment has substantially the same configuration as the endoscope system 1 or 1A according to the first or second embodiment, it is the same as the endoscope system 1 or 1A. About the component, the same code
- the front end portion 6a of the insertion portion 6 of the endoscope 2B is provided with an illumination window 7 and an observation window 8 for a front visual field, two illumination windows 7a and 7b for a side visual field, and an observation window 10.
- the observation window 10 that is a subject image acquisition unit is disposed closer to the proximal end side of the insertion unit 6 than the observation window 8 that is a subject image acquisition unit.
- the light guide 34 composed of an optical fiber bundle is composed of three light guides 35a, 35b, and 35c.
- the base end portion 34a of the light guide 34 is circular, and the base end portions of the three light guides 35a, 35b, and 35c are located in each of the three regions of the base end portion 34a. Are arranged to be.
- the light guide 35a in FIG. 9 is for first side field illumination, and the tip of the light guide 35a is disposed behind the illumination window 7a.
- the light guide 35b is for second side field illumination, and the tip of the light guide 35b is disposed behind the illumination window 7b.
- the light guide 35c is for front-view illumination, and the tip of the light guide 35c is disposed behind the illumination window 7.
- FIG. 16 is a cross-sectional view of the distal end portion 6 a of the insertion portion 6.
- FIG. 16 shows a cross section in which the tip 11 is cut so that the cross sections of the side view illumination window 7a, the front illumination illumination window 7, and the front view observation window 8 can be seen. Yes.
- the front end surface of the light guide 35c is disposed behind the illumination window 7.
- An observation window 8 is provided on the distal end surface of the distal end rigid member 71.
- An objective optical system 13 is disposed behind the observation window 8.
- An imaging unit 14 is disposed behind the objective optical system 13.
- a cover 71 a is attached to the distal end portion of the distal end rigid member 71.
- the insertion portion 6 is covered with an outer skin 71b.
- the front illumination light is emitted from the illumination window 7, and the reflected light from the subject that is the observation site in the subject enters the observation window 8.
- Two illumination windows 7a and 7b are disposed on the side surface of the distal end rigid member 71. Behind each illumination window 7a and 7b, light guides 35a and 35b are provided via a mirror 15 having a curved reflecting surface. The front end surface is disposed.
- the illumination window 7 and the plurality of illumination windows 7a and 7b provide the first illumination light in the first region including the front of the insertion portion along the longitudinal direction of the insertion portion 6 inside the subject, and
- An illumination light emitting unit that emits the second illumination light to a second region that includes a side that is the radial direction of the insertion portion 6 and that is at least partially different from the first region is configured.
- the second region that is at least partially different from the first region means that the optical axis corresponding to each region is directed in a different direction, and the first subject image and the second subject image May or may not overlap, and the irradiation range of the first illumination light and the irradiation range of the second illumination light may partially overlap or may not overlap.
- the observation window 10 is disposed on the side surface of the distal end rigid member 71, and the objective optical system 13 is disposed on the rear side of the observation window 10.
- the objective optical system 13 is configured to direct the reflected light from the front passing through the observation window 8 and the reflected light from the side passing through the observation window 10 to the imaging unit 14.
- the objective optical system 13 has two optical members 17 and 18.
- the optical member 17 is a lens having a convex surface 17 a
- the optical member 18 has a reflective surface 18 a that reflects light from the convex surface 17 a of the optical member 17 toward the imaging unit 14 via the optical member 17.
- the observation window 8 constitutes a first subject image acquisition unit that is provided in the insertion unit 6 and acquires a first subject image from a first region that is in front of the insertion unit 6. Is a second subject that is provided in the insertion portion 6 and obtains a second subject image from a second region that is at least partially different from the first region and is lateral to the insertion portion 6, that is, in the radial direction.
- An image acquisition unit is configured.
- the observation window 10 is disposed closer to the proximal end side of the insertion portion 6 than the observation window 8.
- the image from the front which is the first direction is a subject image of the first region including the front of the insertion portion 6 substantially parallel to the longitudinal direction of the insertion portion 6, and the second direction.
- the image from the side is a subject image of the second region including the side of the insertion portion 6 substantially orthogonal to the longitudinal direction of the insertion portion 6, and the observation window 8 includes the front of the insertion portion 6.
- a front subject image acquisition unit that acquires a subject image in a first direction, and the observation window 10 acquires a side subject image that acquires a subject image in a second direction including the side of the insertion unit 6. Part.
- the observation window 8 that is the subject image acquisition unit is arranged at the distal end portion 6a of the insertion unit 6 in the direction in which the insertion unit 6 is inserted, and the observation window 10 that is the subject unit is the insertion unit 6. It is arrange
- the imaging unit 14 that is an imaging unit is disposed so as to photoelectrically convert the subject image from the observation window 8 and the subject image from the observation window 10 on the same imaging plane, and is electrically connected to the processor 3 that is the image generation unit. Connected.
- the observation window 8 is arranged at the distal end in the longitudinal direction of the insertion portion 6 so as to acquire the first subject image from a region including the direction in which the insertion portion 6 is inserted, and the observation window 10 is It arrange
- the imaging unit 14 that is electrically connected to the control unit 42 of the processor 3 photoelectrically converts the first subject image and the second subject image on one imaging surface, and converts the imaging signal into the processor 3. To supply.
- the front illumination light is emitted from the illumination window 7, the reflected light from the subject is incident on the imaging unit 14 through the observation window 8, and the side illumination light is transmitted from the two illumination windows 7a and 7b.
- the emitted light and the reflected light from the subject enter the imaging unit 14 through the observation window 10.
- the imaging element 14 a of the imaging unit 14 photoelectrically converts the optical image of the subject and outputs an imaging signal to the processor 3.
- the imaging signal from the imaging unit 14 is supplied to the processor 3 which is an image generation unit, and an endoscopic image is generated by an image processing circuit (not shown).
- the processor 3 outputs an endoscopic image that is an observation image to the display device 4.
- FIG. 17 is a diagram illustrating an example of a display screen of an endoscopic image displayed on the display device 4 according to the present embodiment.
- a display image 81 that is an endoscopic image displayed on the display screen 4 a of the display device 4 is a substantially rectangular image and includes two regions 82 and 83.
- a circular area 82 in the central part is an area for displaying a front observation image, and a C-shaped area 83 around the central area 82 is an area for displaying a side observation image.
- the front observation image is displayed on the display screen 4a of the display device 4 so as to have a substantially circular shape
- the side observation image has an annular shape (substantially in this embodiment) surrounding at least a part of the periphery of the front observation image. It is displayed on the display screen 4a so as to be a shape obtained by masking a part of an annular shape. Therefore, a wide-angle endoscopic image is displayed on the display device 4.
- the endoscopic image shown in FIG. 17 is generated from the acquired image acquired by the image sensor 14a.
- the display image 81 is obtained by photoelectrically converting the subject image projected on the imaging surface of the imaging device 14a by the optical system shown in FIG. 16, and excluding the area 84 that is blacked out.
- the observation image region of the visual field and the observation image region of the lateral visual field corresponding to the region 83 are included.
- FIG. 18 is a diagram illustrating an example of a relationship between an observation image area acquired by the imaging element 14a and an observation image displayed according to the acquired observation image area.
- FIG. 18 shows an acquired image acquired by the image sensor 14a on the left side, and each acquired image includes an observation image with a central front visual field and an observation image with a lateral visual field, excluding the blacked-out area.
- On the right side two observation images displayed on the display screen 4a of the display device 4 are shown.
- a hatched portion indicates that the observation image is not acquired without illumination at that timing.
- a block indicated by diagonal lines indicates that an observation image is not displayed. Also in FIG. 18, the interval between adjacent timings is 1/60 seconds, for example.
- the illumination timing for illuminating the front and the side is such that the end surface of the proximal end portion 34a of the light guide 34 is divided into two regions, the front and the side, as shown in FIGS.
- a rotary filter device a disc-shaped rotary filter device as shown in FIG. 12, and a drum-type filter device as shown in FIG. 13, the two filters are arranged so as to alternately shield and transmit light. Can be changed.
- the processor 3 cuts out the image of the C-shaped region 83 from the acquired image from the image sensor 14a, and displays the display screen.
- An observation image F1 with a front visual field and an observation image S1 with a lateral visual field are displayed on 4a.
- the processor 3 cuts out the image of the circular area 82 in the center from the acquired image from the image sensor 14a, and displays the display screen 4a.
- the observation image F2 with the front visual field and the observation image S1 with the lateral visual field acquired at the timing t2 are displayed.
- the illumination timing of the front view and the side view is determined by a filter configuration such as a rotary filter device.
- a filter configuration such as a rotary filter device.
- the illumination timing of the front visual field and the side visual field can be made random.
- control unit 42 which is an image generation unit, if the latest subject image cannot be acquired in part, the subject image that has not been acquired. Generates an image using the acquired subject image.
- illumination light is emitted from the two illumination windows 7, 7a, 7b that illuminate different directions at a predetermined first timing, at least one of which is different from each other, to generate an image.
- the processor 3 as a unit generates an endoscopic image composed of two subject images acquired through two observation windows at a predetermined second timing.
- the tip timing is prevented from overheating by controlling the illumination timing when the plurality of illumination areas are different from each other.
- the plurality of illumination areas are partially overlapped.
- overheating of the tip is prevented by controlling the illumination timing while preventing the entire observation image from becoming dark.
- FIG. 19 is a perspective view of the distal end portion 6a of the insertion portion 6 of the endoscope according to the present embodiment.
- FIG. 20 is a schematic cross-sectional view for explaining an illumination range of each illumination window at the distal end portion 6a of the insertion portion 6 of the endoscope according to the present embodiment.
- the same components as those of the endoscope system 1 of the first embodiment are denoted by the same reference numerals, description thereof will be omitted, and different configurations will be described.
- observation window 101 for front visual field there are an observation window 101 for front visual field, a plurality (two in this case) of illumination windows 102 for front visual field illumination, and a plurality of (for example, here) for side visual fields.
- Two (2) observation windows 103 and a plurality (two in this case) of illumination windows 104 for side field illumination are provided.
- the illumination windows 102 and 104 are arranged so that the illumination ranges of the illumination windows 102 and 104 partially overlap.
- the observation window 101 is arranged so that an observation image of the illumination range illuminated by the illumination window 102 can be obtained
- the observation window 103 is arranged so that an observation image of the illumination range illuminated by the illumination window 104 can be obtained.
- the illumination range 102a of the illumination window 102 and the illumination range 104a of the illumination window 104 partially overlap. Therefore, part of the observation image obtained in each of the observation window 101 for the front visual field and the observation window 103 for the lateral visual field is illuminated by the overlapping illumination range.
- the illumination timing of the illumination windows 102 and 104 is controlled at the illumination timing as described in the above embodiments and modifications, the observation image obtained in each of the observation windows 101 and 103 is the entire observation image. By controlling the illumination timing without darkening, overheating of the tip can be prevented.
- the illumination light from the four illumination windows 102 and 104 that illuminate different directions is emitted at a predetermined first timing at least one of which is different from each other.
- an endoscopic image composed of three subject images acquired by three observation windows is generated.
- each embodiment may be 3 or more. And each modification is applicable.
- the illumination light is not emitted from the light emitting element or is blocked from being emitted.
- the light emission amount is set to an extremely low light amount that is not zero.
- the light shielding amount may be reduced to an amount other than 100.
- the illumination timing control using the timing pattern may be performed when the temperature of the distal end portion 6a becomes equal to or higher than a predetermined temperature. That is, for example, in the first embodiment, until the temperature of the distal end portion 6a of the insertion portion reaches a predetermined temperature or more, the three light emitting elements for illumination are caused to emit light at each timing. When the temperature reaches a predetermined temperature or higher, the three light emitting elements for illumination may be caused to emit light with the timing pattern as described above.
- the timing pattern may be such that the illumination light is irradiated to the side of the insertion portion 6 that is close to the body wall and is susceptible to the influence of heat and halation relative to the illumination light forward of the insertion portion 6.
- the timing pattern for intermittently irradiating illumination light to the front or side of the insertion portion 6 according to the operating time of the endoscope system 1 or the temperature of the distal end portion 6a of the insertion portion 6 of the endoscope 2 is set to a time. You may make it perform fine illumination control, such as changing gradually in progress.
- the image generation unit is an endoscope that combines an image of the front field of view (observation image) and an image of the side field of view (observation image) to form one image.
- An image may be displayed on the display screen 4a, or an internal view in which a front view image (observation image) and a side view image (observation image) are simply arranged as a plurality of, for example, two or three images without being synthesized. You may display on the display screen 4a as a mirror image.
- the illumination control unit 31 includes a state in which only one of the two illumination lights is emitted in the passage of time, the illumination control unit 31 controls the first illumination light and the second illumination in the passage of time based on the control of the control unit 42.
- a state in which the illumination light is emitted simultaneously, a state in which only the first illumination light is emitted, a state in which only the second illumination light is emitted, and a state in which neither the first illumination light nor the second illumination light is emitted are included.
- the filter pattern may be formed so that illumination light is intermittently emitted from the light emitting element 12c (first illumination unit) and the light emitting elements 12a and 12b (second illumination unit). Good.
- the mechanism for realizing the function of illuminating and observing the side is incorporated in the insertion portion 6 together with the mechanism for realizing the function of illuminating and observing the front.
- the mechanism for illuminating and observing the side may be a separate body that can be attached to and detached from the insertion portion 6.
- FIG. 21 is a perspective view of the distal end portion 6a of the insertion portion 6 to which a side observation unit is attached.
- the distal end portion 6 a of the insertion portion 6 has a front vision unit 600.
- the side view unit 500 has a structure that is detachable from the front view unit 600.
- the side view unit 500 includes two observation windows 501 for acquiring an image in the left-right direction and two illumination windows 502 for illuminating the left-right direction.
- the control unit 42 turns on and off the illumination windows 502 of the side visual field unit 500 in accordance with the frame rate of the front visual field so as to obtain observation images as shown in FIGS. Display can be made.
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Abstract
L'invention concerne un système d'endoscope (1) qui comprend : une section d'insertion (6); une fenêtre d'observation (8) qui est située sur la section d'insertion (6) et qui acquiert une première image de sujet à partir d'une première région; une fenêtre d'observation (8b) qui est située sur la section d'insertion (6) et qui acquiert une seconde image de sujet à partir d'une seconde région dont au moins une partie diffère de la première région; une fenêtre d'éclairage (7) qui émet une première lumière d'éclairage au niveau de la première région; une fenêtre d'éclairage (7b) qui émet une seconde lumière d'éclairage au niveau de la seconde région; une unité de commande d'éclairage (31) qui amène une première unité d'éclairage et une seconde unité d'éclairage à émettre, par intermittence, une lumière d'éclairage de façon à comprendre au moins un état, dans lequel la première lumière d'éclairage et la seconde lumière d'éclairage sont émises simultanément, et un état dans lequel seule l'une de la première lumière d'éclairage et de la seconde lumière d'éclairage est émise; et une unité de commande (42) qui génère une image sur la base de la première image de sujet acquise par l'intermédiaire de la fenêtre d'observation (8), tandis que la première lumière d'éclairage est émise, et d'une seconde image de sujet acquise par la fenêtre d'observation (8b) tandis que la seconde lumière d'éclairage est émise.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2016520714A JPWO2016009886A1 (ja) | 2014-07-16 | 2015-07-07 | 内視鏡システム |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2014146202 | 2014-07-16 | ||
| JP2014-146202 | 2014-07-16 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2016009886A1 true WO2016009886A1 (fr) | 2016-01-21 |
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/JP2015/069488 Ceased WO2016009886A1 (fr) | 2014-07-16 | 2015-07-07 | Système d'endoscope |
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| Country | Link |
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| JP (1) | JPWO2016009886A1 (fr) |
| WO (1) | WO2016009886A1 (fr) |
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2019049997A1 (fr) * | 2017-09-10 | 2019-03-14 | カイロス株式会社 | Système d'endoscope |
| JP2021101960A (ja) * | 2019-12-25 | 2021-07-15 | Hoya株式会社 | 内視鏡 |
Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2002017667A (ja) * | 1991-03-11 | 2002-01-22 | Olympus Optical Co Ltd | 画像処理装置 |
| JP2007536982A (ja) * | 2004-05-14 | 2007-12-20 | ジー.アイ.ヴュー リミテッド | 全方向および前方向を見る撮像デバイス |
| JP2010029545A (ja) * | 2008-07-30 | 2010-02-12 | Olympus Medical Systems Corp | 内視鏡 |
| JP2011007819A (ja) * | 2010-10-15 | 2011-01-13 | Toshiba Teli Corp | 管内検査カメラの照明装置 |
| JP2014018439A (ja) * | 2012-07-18 | 2014-02-03 | Scalar Corp | カメラ |
-
2015
- 2015-07-07 JP JP2016520714A patent/JPWO2016009886A1/ja active Pending
- 2015-07-07 WO PCT/JP2015/069488 patent/WO2016009886A1/fr not_active Ceased
Patent Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2002017667A (ja) * | 1991-03-11 | 2002-01-22 | Olympus Optical Co Ltd | 画像処理装置 |
| JP2007536982A (ja) * | 2004-05-14 | 2007-12-20 | ジー.アイ.ヴュー リミテッド | 全方向および前方向を見る撮像デバイス |
| JP2010029545A (ja) * | 2008-07-30 | 2010-02-12 | Olympus Medical Systems Corp | 内視鏡 |
| JP2011007819A (ja) * | 2010-10-15 | 2011-01-13 | Toshiba Teli Corp | 管内検査カメラの照明装置 |
| JP2014018439A (ja) * | 2012-07-18 | 2014-02-03 | Scalar Corp | カメラ |
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2019049997A1 (fr) * | 2017-09-10 | 2019-03-14 | カイロス株式会社 | Système d'endoscope |
| JP2021101960A (ja) * | 2019-12-25 | 2021-07-15 | Hoya株式会社 | 内視鏡 |
| JP7516041B2 (ja) | 2019-12-25 | 2024-07-16 | Hoya株式会社 | 内視鏡 |
Also Published As
| Publication number | Publication date |
|---|---|
| JPWO2016009886A1 (ja) | 2017-04-27 |
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