An ophthalmologic apparatus includes a visual target presenting portion that presents fixation targets to subject eyes; an objective measurement optical system that objectively measures eye characteristics of the subject eyes; and a controller. Each of the fixation targets includes fusion targets depicted in a manner that allows binocular fusion while the subject eyes respectively view the fixation targets. The visual target presenting portion presents the fixation targets while changing an examination distance from the subject eyes to the fixation target when an anisometropia is induced. In the anisometropia, one subject eye is in a fully corrected condition and the other subject eye is corrected by a predetermined degree from the fully corrected condition. The controller controls the objective measurement optical system to measure the eye characteristics while the subject eyes binocularly view the fixation targets and acquire refractive values of the subject eyes as objective measurement information.
A61B 3/00 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux
A61B 3/103 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient pour la détermination de la réfraction, p. ex. réfractomètres, skiascopes
This plant sensor comprises a first light source (6) that emits first measurement light (3a) including a first wavelength band, a second light source (7) that emits second measurement light (3b) including a second wavelength band, a first lens (8) that converts the first measurement light into a parallel light beam, a second lens (9) that converts the second measurement light into a parallel light beam, a measurement light deflecting member (11) that is provided on a common optical path of the first measurement light and the second measurement light and that deflects either the first measurement light or the second measurement light such that the first measurement light and the second measurement light are coaxial, a reference light deflecting member (15) that extracts a part of each measurement light as reference light (26), a reference light receiving unit (16) that receives the reference light, a light receiving unit (18) that receives first reflected measurement light (5a) and second reflected measurement light (5b) from a measurement target, and a control unit (19) that computes the growth status of the measurement target on the basis of the received amount of the reference light and the received amount of each reflected measurement light, wherein a light receiving surface area of the reference light deflecting member is smaller than the area of the light beam cross-section of each measurement light, and the reference light deflecting member is disposed so as to be capable of extracting light in a central portion of the light beam cross-section of each measurement light.
G01N 21/27 - CouleurPropriétés spectrales, c.-à-d. comparaison de l'effet du matériau sur la lumière pour plusieurs longueurs d'ondes ou plusieurs bandes de longueurs d'ondes différentes en utilisant la détection photo-électrique
Navigation receiver comprising navigation system (200) includes a plurality of range frequency paths configured to receive Global Navigation Satellite Systems (GNSS) signals from an antenna and transmit the GNSS signals in a frequency range for digitizing the GNSS signals. Navigation system includes a number of Analog Digital Converters (101); a plurality of signal processors forming a plurality of signal paths (102); requantizers (103); navigation channels (104); time control (105) transmitting tick signal (S106). The navigation receiver also includes a central processing unit (CPU) system (110) which includes CPU (107). BUS (databus) (108), and memory (109), which receives data readiness flag signal (Si11). The navigation system and the CPU system connect by interface blocks (202) and (203). The invention provides increased speed of processing of navigation data.
G01S 19/36 - Détails de construction ou détails de matériel ou de logiciel de la chaîne de traitement des signaux concernant l'étage d'entrée du récepteur
G01S 19/37 - Détails de matériel ou de logiciel de la chaîne de traitement des signaux
The present invention comprises: a ranging unit having a light-emitting element (31) that emits a ranging beam and a light-receiving element that receives a reflected ranging beam from an object being measured; rotary deflecting units (15, 24) that radiate the ranging beam; a perpendicular-rotation drive unit (13) that rotates the rotary deflecting units perpendicularly via a hollow perpendicular-rotation shaft (11); a bracket unit (5) on which the rotary deflecting units are provided; a horizontal-rotation drive unit (8) that rotates the bracket unit horizontally; and an arithmetic-operation control unit (17) that performs arithmetic operations on the distance to the object being measured, on the basis of results of reception of the reflected ranging beam at the light-receiving element. The rotary deflecting units are configured: so as to include a cast-beam deflecting unit that is formed in the center part of the rotary deflecting units and deflects the ranging beam at right angles, and a received-beam deflecting unit that is formed outside the center part and deflects the reflected ranging beam at right angles in the opposite direction from that of the light-emitting element; so that a through-hole (23) which interconnects with the hollow section of the perpendicular rotation shaft and which is parallel to the optical axis of the ranging beam is formed in the received-beam deflecting unit; and so that the cast-beam deflecting unit is arranged so that a portion thereof is fitted into the through-hole.
The present invention is provided with: a distance measurement unit that has a light-emitting element (28) for emitting distance measurement light and a light-receiving element for receiving distance measurement light reflected from a to-be-measured object; rotating deflection parts (15, 23, 24) that direct the distance measurement light; a vertical rotation drive unit (13) that rotates the rotating deflection parts in the vertical direction via a hollow vertical rotation shaft (11); a frame part (5) in which the rotating deflection parts are provided; a horizontal rotation drive unit (8) that rotates the frame part in the horizontal direction; and an arithmetic control unit (17) that computes the distance to the to-be-measured object on the basis of the result of the light-receiving element receiving the reflected distance measurement light. The rotating deflection parts have an emitted-light deflection section that is formed at a central portion and deflects the distance measurement light at a right angle, and a received-light deflection section that is formed at a portion other than the central portion and deflects the reflected distance measurement light at a right angle. The distance measurement light passes through the vertical rotation shaft and is then incident on the emitted-light deflection section. The reflected distance measurement light is incident on the received-light deflection section and deflected in an orientation opposite to the light-emitting element.
A fundus observation apparatus includes an optical system, two concave mirrors, and a holding member. The optical system is configured to project light from a light source onto a fundus of an eye to be examined, and to receive returning light from the fundus. The two concave mirrors have concave reflective surfaces, respectively, configured to guide the light from the optical system to the fundus, and to guide the returning light to the optical system. The holding member is configured to be capable of holding the two concave mirrors in a state where the concave mirrors are arranged on both sides of the holding member so that the concave mirrors are positioned in a default relative position in a predetermined one-dimensional direction or predetermined two-dimensional directions.
A61B 3/12 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient pour examiner le fond de l'œil, p. ex. ophtalmoscopes
A61B 3/10 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient
7.
WAVELENGTH SELECTION DEVICE, WAVELENGTH SELECTION METHOD, AND MEASURING DEVICE
The present invention comprises: an EW element (2) having a transparent container (4) that encapsulates a first solution (5) transparent to a first wavelength and a second solution (6) transparent to a second wavelength different from the first wavelength; a power supply unit (3) capable of applying a predetermined voltage to the EW element; and a control unit (10) that controls the power supply unit. The EW element is configured to move either the first solution or the second solution to the center of the transparent container in response to an applied voltage, and such that broadband light (7) incident on the EW element is transmitted through only one of the first solution and the second solution.
G01C 15/00 - Instruments de géodésie ou accessoires non prévus dans les groupes
G02B 1/06 - Éléments optiques caractérisés par la substance dont ils sont faitsRevêtements optiques pour éléments optiques faits de fluides en cellules transparentes
The present invention comprises: a distance measurement unit (19) that has a light-emitting element (33) which emits distance measurement light (34) and a light-receiving element (43) which receives reflected distance-measurement light (48) from an object to be measured; a rotation unit (20) that emits the distance measurement light; a vertical rotation drive unit that rotates the rotation unit in the vertical direction; a support frame part (5) to which the rotation unit is provided; a horizontal rotation drive unit that rotates the support frame part in the horizontal direction; a detection unit (21) that has a detection light emission unit which emits detection light and a detection light reception unit which has a detection light-receiving element for receiving reflected detection light reflected by the object to be measured, the detection unit (21) emitting the detection light having a wavelength different from that of the distance-measurement light towards the rotation unit; and a calculation control unit that calculates the distance to the object to be measured on the basis of the result of the reflected distance-measurement light received by the light-receiving element, and calculates the direction of the object to be measured on the basis of the result of the reflected detection light received by the detection light-receiving element, wherein the rotation unit has a detection light separating optical member that transmits the distance-measurement light and reflects the detection light, and the detection light is configured so as to be emitted by rotation of the rotation unit in a range equal to or greater than a spread angle of the detection light.
09 - Appareils et instruments scientifiques et électriques
10 - Appareils et instruments médicaux
44 - Services médicaux, services vétérinaires, soins d'hygiène et de beauté; services d'agriculture, d'horticulture et de sylviculture.
Produits et services
Computers; tablet computers; personal digital assistants;
recorded computer software for displaying, analyzing, and
processing of electronic data in the field of healthcare,
medical information and ophthalmology; recorded cloud
computing software for displaying, analyzing, and processing
of electronic data in the field of healthcare, medical
information and ophthalmology; recorded computer programs
for use in data management of electronic medical records;
recorded computer programs for use in data processing of
electronic medical records; recorded computer application
software for personal digital assistants, namely software
for displaying, analyzing, and processing of electronic data
in the field of healthcare, medical information and
ophthalmology; microscopes and their parts for surgical
operation. Eye testing apparatus; cornea testing apparatus, namely,
topographic medical apparatus and instruments for measuring
the cornea, keratoscopes; ophthalmic lens measuring
apparatus for medical purposes; vision testing apparatus;
slit lamps for medical purposes; anterior eye imaging
devices for use in diagnosing issues with the eyes;
ophthalmic apparatus, namely, corneal topographers for
corneal endothelium; medical apparatus and instrument for
measuring the cornea, namely, topographic medical apparatus
and instruments for measuring the cornea, keratometers,
ophthalmometers; laser therapy apparatus for ophthalmic
purposes; retinal cameras for medical purposes; ophthalmic
cameras for medical purposes; skiascopes; tonometers; lasers
for ophthalmic purposes; ophthalmic cameras for medical
purposes; optical coherence tomography apparatus;
ophthalmological apparatus and instruments for measuring the
visual field of the eye, namely perimeters; ophthalmic
apparatus and instruments for verifying the correct
prescription in a pair of eyeglasses, namely, lensmeter;
ophthalmological apparatus and instruments for testing
eyesight, namely, vision tester. Providing medical information; physical examination
services; rental of medical apparatus and instruments;
medical screening services for eye diseases and conditions;
disease diagnostic testing based on ophthalmological
information; provision of medical information in the nature
of clinical data in the field of ophthalmology.
09 - Appareils et instruments scientifiques et électriques
10 - Appareils et instruments médicaux
44 - Services médicaux, services vétérinaires, soins d'hygiène et de beauté; services d'agriculture, d'horticulture et de sylviculture.
Produits et services
Computers; tablet computers; personal digital assistants;
recorded computer software for displaying, analyzing, and
processing of electronic data in the field of healthcare,
medical information and ophthalmology; recorded cloud
computing software for displaying, analyzing, and processing
of electronic data in the field of healthcare, medical
information and ophthalmology; recorded computer programs
for use in data management of electronic medical records;
recorded computer programs for use in data processing of
electronic medical records; recorded computer application
software for personal digital assistants, namely software
for displaying, analyzing, and processing of electronic data
in the field of healthcare, medical information and
ophthalmology; microscopes and their parts for surgical
operation. Eye testing apparatus; cornea testing apparatus, namely,
topographic medical apparatus and instruments for measuring
the cornea, keratoscopes; ophthalmic lens measuring
apparatus for medical purposes; vision testing apparatus;
slit lamps for medical purposes; anterior eye imaging
devices for use in diagnosing issues with the eyes;
ophthalmic apparatus, namely, corneal topographers for
corneal endothelium; medical apparatus and instrument for
measuring the cornea, namely, topographic medical apparatus
and instruments for measuring the cornea, keratometers,
ophthalmometers; laser therapy apparatus for ophthalmic
purposes; retinal cameras for medical purposes; ophthalmic
cameras for medical purposes; skiascopes; tonometers; lasers
for ophthalmic purposes; ophthalmic cameras for medical
purposes; optical coherence tomography apparatus;
ophthalmological apparatus and instruments for measuring the
visual field of the eye, namely perimeters; ophthalmic
apparatus and instruments for verifying the correct
prescription in a pair of eyeglasses, namely, lensmeter;
ophthalmological apparatus and instruments for testing
eyesight, namely, vision tester. Providing medical information; physical examination
services; rental of medical apparatus and instruments;
medical screening services for eye diseases and conditions;
provision of medical information in the nature of clinical
data in the field of ophthalmology.
12.
ANALYSIS PROCESSING DEVICE, OPTICAL COHERENCE TOMOGRAPHY DEVICE, ANALYSIS PROCESSING METHOD, AND PROGRAM
This analysis processing device includes an acquisition unit, an analysis unit, and a display control unit. The acquisition unit acquires two or more items of motion contrast data for the same cross-section of an object under measurement at mutually different inter-scan time intervals, the motion contrast data being obtained by repeating a B-scan three or more times on the cross-section. The analysis unit executes an analysis process for deriving the temporal variation of motion contrast intensity in the cross-section on the basis of the two or more items of motion contrast data. The display control unit causes a display means to display an image representing the temporal variation obtained using the analysis process.
A61B 3/10 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient
A61B 3/12 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient pour examiner le fond de l'œil, p. ex. ophtalmoscopes
The present invention comprises: a distance measurement unit having a light-emitting element that emits distance measurement light and a light-receiving element that receives reflected distance measurement light from a measurement object; a rotation unit (20) that emits the distance measurement light; a vertical rotation drive unit that rotates the rotation unit in the vertical direction; a bracket unit (5) that is provided with the rotation unit; a horizontal rotation drive unit that rotates the bracket unit in the horizontal direction; a laser pointer light emitting unit (21) that emits laser pointer light (26) toward the rotation unit; and a calculation control unit that calculates the distance to the measurement object on the basis of a light-reception result of the reflected distance measurement light to the light-receiving element. The rotation unit has a visible light separation optical member that transmits the distance measurement light and reflects the laser pointer light, and the calculation control unit is configured to rotate the rotation unit and the bracket unit such that the laser pointer light is emitted to a desired point.
This surveying device is equipped with a collimation optical system (11) which is equipped with an object lens (14), a light-receiving prism (15), a focusing lens (16), an erecting prism (17), a reticle (18), and an ocular lens (19) that are arranged on a collimation axis. A beam splitter is provided on the collimation axis on a side closer to the ocular lens as compared to the focusing lens. The collimation axis is branched by the beam splitter. A guide light source (32) is provided at or near the focal distance of the objective lens on the branched optical axis. Guide light emitted from the guide light source is outputted through the focusing lens, the light-receiving prism, and the objective lens.
This guide light beaming device that beams guide light for indicating direction to a stakeout worker is configured such that: the optical system of the guide light beaming device includes a beaming lens (12), a spectroscopic plate (15), and a light source (14); the light source is a broadband light source for emitting broadband light; a coloring element (17) is formed on the spectroscopic plate; the coloring element has at least two regions (17a, 17b) having different spectral characteristics; one of the spectroscopic plate or the light source is positioned on or near the focal position of the beaming lens and the other of the spectroscopic plate or the light source is positioned near or on the focal position of the beaming lens; and the light emitted from the broadband light source is colored by the regions and beamed from the beaming lens as guide light (18) including at least two colors.
F21V 9/00 - Éléments modifiant les caractéristiques spectrales, la polarisation ou l’intensité de la lumière émise, p. ex. filtres
F21V 13/00 - Production de caractéristiques ou d'une distribution particulières de la lumière émise au moyen d'une combinaison d'éléments spécifiés dans plusieurs des groupes principaux
A guide light irradiation device that emits guide light (16) to show a direction to a surveying worker, wherein an optical system of the guide light irradiation device includes an irradiation lens (15), an irradiation prism (14), and a light source (13), the light source is a broadband light source that emits light in a broad band, a coloring element (17) having two regions with different spectral characteristics is provided on a light incidence surface of the irradiation prism, the light emitted from the broadband light source enters the irradiation prism through the regions as guide light containing light of two colors, and the guide light is irradiated from the irradiation lens after being internally reflected at least twice inside the irradiation prism.
G01C 15/00 - Instruments de géodésie ou accessoires non prévus dans les groupes
F21V 5/02 - Réfracteurs pour sources lumineuses de forme prismatique
F21V 9/20 - Filtres dichroïques, c.-à-d. dispositifs fonctionnant selon le principe de l’interférence entre ondes lumineuses faisant passer des plages de valeurs spécifiques de longueurs d’onde tout en en annulant d’autres
F21V 9/40 - Éléments modifiant les caractéristiques spectrales, la polarisation ou l’intensité de la lumière émise, p. ex. filtres avec des dispositions pour commander les propriétés spectrales, p. ex. la couleur, ou l’intensité
F21V 13/02 - Combinaisons de deux sortes d'éléments uniquement
An optical characteristic display device includes an aberration acquiring unit configured to acquire an intraocular aberration, a cornea aberration, and an internal aberration of a patient's eye into which an intraocular lens is inserted, a display controlling unit configured to display an optical characteristic of the patient's eye on a monitor based at least on the intraocular aberration and the internal aberration, a first operating unit configured to receive a changing operation, an internal aberration predicting unit configured to predict the internal aberration after the parameter is changed in accordance with the changing operation, and a re-calculating unit configured to re-calculate the intraocular aberration based on the predicted internal aberration and the acquired cornea aberration, and the display controlling unit updates the optical characteristic to be displayed on the monitor based on the predicted internal aberration and the re-calculated intraocular aberration.
A61B 3/10 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient
A61B 3/00 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux
A61B 3/117 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient pour examiner la chambre antérieure ou l'angle de la chambre antérieure, p. ex. gonioscopes
A61B 3/14 - Dispositions spécialement adaptées à la photographie de l'œil
Provided is an ophthalmic device that makes it possible to easily and selectively attach a specific light irradiation system for emitting specific light. A slit-lamp microscope (100), which is an example of this ophthalmic device, comprises: a body part (10) having an illumination system (30) for irradiating an eye (E) being examined of a subject with illumination light and an observation system (40) for observing return light from the eye (E) being examined; and an imaging unit (60) that is detachably attached to the body part (10). The imaging unit (60) has an imaging section (61) for acquiring an image of the eye (E) being examined and a background illumination system (80) for irradiating the eye (E) being examined with background light different from the illumination light.
The optical element for surgical microscopes having antifogging properties, antibacterial properties, and durability against autoclave treatment is provided, the optical element including a substrate, an antireflection coating arranged on the substrate, and an antifouling coating layer containing acrylic polymer arranged on the antireflection coating, in which C—H bonding of carbon of the end of the surface of the antifouling coating layer is substituted by C—OSi(OH)3 by a combustion chemical vapor deposition method. A method for production thereof includes steps of coating a solution containing alkoxysilane having an acrylic group on the antireflection coating so as to form the antifouling coating layer, and substituting C—H bonding of carbon of the end of the surface of the antifouling coating layer by C—OSi(OH)3 by a combustion chemical vapor deposition method using silane based gas.
An ophthalmologic apparatus includes an anterior-ocular-segment camera that captures images of an anterior segment of a subject eye; a trained-model setting unit that sets a trained model for the images of the anterior segment of the eye; and a pupil detection processing unit that detects a pupil region of the eye. The trained-model setting unit sets a trained pupil-region-prediction model created by a training process where a large number of teacher data are prepared by adding a pupil region information to anterior-ocular-segment camera image data collected in advance, and where the teacher data are read into a selected machine learning model. The pupil detection processing unit detects the pupil region of the eye, based on a pupil-region prediction information as a model output that is obtained by an inference operation where an anterior-ocular-segment camera image data captured by the camera is input to the trained pupil-region-prediction model.
A61B 3/00 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux
A61B 3/117 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient pour examiner la chambre antérieure ou l'angle de la chambre antérieure, p. ex. gonioscopes
A61B 3/15 - Dispositions spécialement adaptées à la photographie de l'œil avec des moyens d'alignement, d'espacement ou de suppression des réflexions parasites
A method for automated steering by machine vision receives a point cloud that is generated using a stereo camera. A location of a row is determined based on the point cloud and a steering angle is generated based on the location of the row. The center of the row is detected using a Hough transform detection algorithm and a horizontal projection of the point cloud.
A slit lamp microscope of an aspect example includes an illumination system, first photographing system, fixation system, movement mechanism, and controller. The illumination system projects slit light onto an anterior segment of a subject's eye from a first direction. The first photographing system photographs the anterior segment onto which the slit light is being projected, from a second direction different from the first direction. The fixation system outputs fixation light for fixation of the subject's eye. The movement mechanism moves the illumination system and the first photographing system, the controller performs a first control for the movement mechanism to move at least the illumination system and a second control for the first photographing system to photograph the anterior segment a plurality of times in parallel with each other while causing the fixation system to output the fixation light.
[Problem] To increase the accuracy of survey work using laser scanning. [Solution] A laser scanning method comprising: performing first laser scanning using a laser scanner on a range including a reflection prism in a known position (Step S103); detecting the reflection prism on the basis of scan data obtained through the first laser scanning (Step S106); and performing second laser scanning on the reflection prism with scanning light having a light intensity distribution in which a gradient portion thereof has been widened as compared with that in the first laser scanning (Step S105).
The present invention is provided with: a distance measurement unit that has a light-emitting element for emitting distance measurement light and a light-receiving element for receiving reflected distance measurement light from a to-be-measured object; a rotation unit (20) that directs the distance measurement light; a vertical rotation drive unit that rotates the rotation unit in the vertical direction; a frame part (5) in which the rotation unit is provided; a horizontal rotation drive unit that rotates the frame part in the horizontal direction; a guide-light directing unit (21) that directs guide light formed from two different light rays toward the rotation unit into the same plane as the distance measurement light; and an arithmetic control unit that computes the distance to the to-be-measured object on the basis of the result of the light-receiving element receiving the reflected distance measurement light. The rotation unit has a visible light separation optical member that transmits the distance measurement light and reflects the guide light. The guide light is configured to be directed over a range that is equal to or greater than the spread angle of the guide light as a result of the rotation of the rotation unit.
To provide an ophthalmic device in which an operator can objectively grasp a positional relationship between an eye to be examined and an acquisition optical system, and an operability when the operator controls a position or an orientation of the acquisition optical system can be improved, an ophthalmic device includes an acquisition optical system that acquires eye information of an eye to be examined; an electric position change mechanism that changes a position and an angle change mechanism that changes an orientation of the acquisition optical system with respect to the eye to be examined; a display that is visually recognizable by an operator who operates the electric position change mechanism and the angle change mechanism; and a controller that displays, on the display, positional relationship information indicating a positional relationship between the eye to be examined and the acquisition optical system.
A61B 3/00 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux
A61B 3/15 - Dispositions spécialement adaptées à la photographie de l'œil avec des moyens d'alignement, d'espacement ou de suppression des réflexions parasites
09 - Appareils et instruments scientifiques et électriques
Produits et services
Metalworking machines and tools; mining machines and
apparatus; construction machines and apparatus;
loading-unloading machines and apparatus; industrial fishing
machines; chemical processing machines and apparatus;
machines for making textile articles; food or beverage
processing machines and apparatus; lumbering, woodworking,
or veneer or plywood making machines and apparatus; pulp
making, papermaking or paper-working machines and apparatus;
printing or bookbinding machines and apparatus; sewing
machines; agricultural machines and agricultural implements,
other than hand-operated; shoe making machines; leather
tanning machines; tobacco processing machines; glassware
manufacturing machines and apparatus; painting machines and
apparatus; packaging or wrapping machines and apparatus;
potters' wheels; plastic processing machines; semiconductor
manufacturing machines; machines and apparatus for
manufacturing rubber goods; stone working machines and
apparatus; non-electric prime movers, not for land vehicles;
pneumatic or hydraulic machines and instruments; adhesive
tape dispensing machines; automatic stamping machines;
dishwashers; wax-polishing machines, electric; electric
washing machines; electric vacuum cleaners; electric food
blenders [for household purposes]; repairing or fixing
machines and apparatus; mechanical parking systems; vehicle
washing machines; machine elements, not for land vehicles;
dethatchers [machines]; curtain drawing devices electrically
operated; waste compacting machines and apparatus for
industrial purposes; waste crushing machines for industrial
purposes; starters for motors and engines; AC motors and DC
motors [not including those for land vehicles but including
parts for any AC motors and DC motors]; alternators; direct
current generators; dynamo brushes; arc welding machines;
electric metal cutting machines (by arc, gas or plasma);
electric welding machines; vending machines; fuel dispensing
machines for service stations; electric door openers. Ozonisers [ozonators]; electrolytic cells; egg-candlers;
cash registers; coin counting or sorting machines; work
recording machines; photocopying machines; hand-operated
calculators; mathematical instruments; time and date
stamping machines; time clocks [time recording devices];
punched card office machines; voting machines; billing
machines; apparatus to check stamping mail; coin-operated
mechanisms for operating gates for car parks; life-saving
apparatus and equipment; fire extinguishers; fire hose
nozzles; sprinkler systems for fire protection; fire alarms;
gas leak alarm systems; burglar alarms; safety helmets;
railway signals; vehicle breakdown warning triangles; road
signs, luminous or mechanical; vehicle driving simulators
for training purposes; sports training simulators;
laboratory apparatus and instruments; photographic apparatus
and instruments; cinematographic apparatus and instruments;
optical machines and apparatus; measuring or testing
machines and instruments; power distribution or control
machines and apparatus; rotary converters; phase modifiers;
electrical cells; electric or magnetic meters and testers;
conductors, electric; buzzers, electric; telecommunication
machines and apparatus; computers; computer software;
computer peripherals; magnetic cores; resistance wires;
electrodes; fire boats; fire trucks; gloves for protection
against accidents; dust masks; gas masks; welding masks;
fireproof garments; eyeglasses; electronic circuits and
CD-ROMs recorded with programs for hand-held games with
liquid crystal displays; weight belts for scuba diving; wet
suits; protective helmets for sports; air tanks [for scuba
diving]; regulators for scuba diving; phonograph records;
metronomes; electronic circuits and CD-ROMs recorded with
automatic performance programs for electronic musical
instruments; calculating scales; exposed cinematographic
films; slide film, exposed; slide film mounts; recorded
video discs and video tapes; electronic publications.
28.
OPHTHALMIC IMAGING APPARATUS, CONTROLLING METHOD OF THE SAME, AND RECORDING MEDIUM
The ophthalmic imaging apparatus of an embodiment example performs motion contrast imaging by applying OCT scanning to an eye. The data acquiring unit acquires a plurality of pieces of time-course data respectively corresponding to a plurality of scan points, by conducting repetitive A-scan application to individual scan points. The image constructing unit constructs a motion contrast image from the plurality of pieces of time-course data acquired. The controller controls the data acquiring unit such that data acquisition time intervals of first time-course data corresponding to a first scan point of the plurality of scan points and data acquisition time intervals of second time-course data corresponding to a second scan point become substantially equal to each other.
A61B 3/10 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient
A61B 3/12 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient pour examiner le fond de l'œil, p. ex. ophtalmoscopes
A survey system comprising a reference level measurement device (1) and a height difference deviation measurement device (2), wherein: the height difference deviation measurement device comprises a measurement target that is measured by the reference level measurement device, a distance measurement sensor (16) that is provided in a known relationship with the measurement target and measures the distance to a construction surface, an image camera (23) that images an area including the measurement area of the distance measurement sensor, and a calculation control unit (19); the measurement area is measured sequentially by the distance measurement sensor; the calculation control unit acquires an image of the construction surface that is measured by the distance measurement sensor; the calculation control unit calculates construction surface height difference information on the basis of height information of the measurement target measured by the reference level measurement device, and distance information measured by the distance measurement sensor; and the calculation control unit synthesizes the construction surface height difference information by means of image synthesis.
This surveying device comprises: a distance measurement unit (19) having a light-emitting element (32) that emits distance measuring light (37) to an object being measured and a light-receiving element (42) that receives distance measuring light (47) reflected from the object being measured; a rotation unit (20) that projects the distance measuring light; a vertical rotation drive unit that rotates the rotation unit in a vertical direction; a frame unit (5) in which the rotation unit is provided; a horizontal rotation drive unit that rotates the frame unit in a horizontal direction; at least one imaging unit (21) that is provided in the frame unit and captures an image at a predetermined angle of view; and an arithmetic control unit that computes the distance to the object being measured on the basis of the result of light reception of the reflected distance measuring light with respect to the light-receiving element. The rotation unit has a visible light separating optical member that transmits the distance measuring light and reflects background light. The visible light separating optical member is configured to deflect at least background light that is incident thereon in parallel with the reflected distance measuring light so that the background light is received by the imaging unit when the rotation unit is at a predetermined rotation position.
A surveying system is equipped with a height measurement device (1) and a vertical deviation measurement device (2). The vertical deviation measurement device is configured such that: an object being measured (18), a moving body (15), and an unevenness measurement device (14) provided to the moving body are equipped therewith; a reference level is detected by a reference level measurement device constituted by the height measurement device and the object being measured; a distance measuring sensor that are provided to have a known relationship with the object being measured and that measures the distance to a construction surface, a projection device (17) that projects vertical information on the construction surface, and a calculation control unit (21) are equipped therewith; and the calculation control unit calculates the vertical information on the basis of the reference level, distance information about the construction surface measured by the distance measuring sensor, and the design height of the finished construction surface.
This surveying device comprises a surveying device main body (3) that accommodates a ranging light emitting unit (23) including a light emitting element (28) that emits ranging light (35) to a measurement target object, a ranging light receiving unit (24) including a light receiving element (39) that receives reflected ranging light (45) from the measurement target object, a wide angle camera (21) that acquires an image with a predetermined angle of view, and an arithmetic control unit that controls the ranging light emitting unit and the wide angle camera and calculates the distance to the measurement target object on the basis of a light reception result of the reflected ranging light obtained by the light receiving element, wherein: the wide-angle camera includes an imaging optical axis (53) inclined in a direction moving away from an optical axis (27) of the ranging light, and a deflecting optical member that deflects the optical axis of incident background light (61) in a direction moving away from the optical axis of the ranging light; and the imaging optical axis is configured such that a machine center (30) of the surveying device main body is positioned substantially on an extension line thereof.
A slit-lamp microscope includes an illumination system that is configured to project a slit light onto a subject eye; a slit portion that is configured to generate the slit light having a width by passing a light from a light source through a slit between a pair of slit blades in the illumination system; and a controller that is configured to control the light source, wherein the controller is configured to turn the light source off when the pair of slit blades is closed.
Provided are an ophthalmic device and an ophthalmic device operating method, wherein an eye under examination by an examination head can be examined without bringing the examination head close to the nose of a subject. The present invention comprises an examination head (22) for examining an eye (E) under examination, and displacement mechanisms (an XZ movement mechanism (16), a Y movement mechanism (18), a swing rotation mechanism (20), and a tilt rotation mechanism (80)) that displace the examination head (22) relative to the eye (E) under examination. When an axis that is along the line-of-sight direction of the eye (E) under examination and is parallel to the front/rear direction is treated as a reference axis (VA), said front/rear direction being the operating distance direction (Z direction) of the examination head (22), and an axis that results from tilting the reference axis (VA) in an outward direction (X1) away from the nose of the subject with the eye (E) under examination as the center is treated as a tilt axis (TA), the displacement mechanisms displace the examination head (22) along the tilt axis (TA) to an examination location for the eye (E) under examination.
A61B 3/15 - Dispositions spécialement adaptées à la photographie de l'œil avec des moyens d'alignement, d'espacement ou de suppression des réflexions parasites
35.
OPHTHALMIC DEVICE AND METHOD FOR OPERATING OPHTHALMIC DEVICE
Provided are an ophthalmic device and a method for operating the ophthalmic device that make it possible to reliably prevent an inspection head from coming in proximity to the nose of a subject. This ophthalmic device comprises: a shift mechanism (an XZ movement mechanism (16), a Y movement mechanism (18), a swing rotation mechanism (20), and a tilt rotation mechanism (80)) that shifts an inspection head (22) with respect to an eye (E) being examined; a drive control unit (46) that drives the shift mechanism to shift the inspection head (22) to an inspection position for the eye (E) being examined along the tilt axis (TA); a distance detection unit (a stereo camera (34) and a detection control unit (47A)) that detects a face distance (Fd), which is the distance between the inspection head (22) and the face of the subject, while the inspection head (22) is shifted along the tilt axis (TA) by the shift mechanism; and a retraction control unit (47B) that drives the shift mechanism to rotate the inspection head (22) about a predetermined rotation axis in a direction in which the face distance (Fd) increases, when the face distance (Fd) detected by the distance detection unit is less than a predetermined threshold value.
A61B 3/15 - Dispositions spécialement adaptées à la photographie de l'œil avec des moyens d'alignement, d'espacement ou de suppression des réflexions parasites
A survey system comprises reference level measurement devices (3, 21) and a pole device (2). The reference level measurement devices measure a reference level to serve as a reference for the measurement of the height of the pole device. The pole device comprises a distance measurement sensor (16) for measuring the distance to a construction surface, a projection device (17) for projecting height information, and a computation control unit (19). The computation control unit has a storage unit (26) storing a projection pattern, and is configured so as to compute the height information to be projected onto the construction surface on the basis of the reference level, distance information obtained as a result of the measurement performed by the distance measurement sensor, and the projection pattern. The projection device is configured so as to project the height information onto the construction surface.
Provided is a method for identifying and detecting one selected target in a surveying system in which a plurality of targets exist for one surveying instrument. Light emission periods T1, T2, and T3 for the identification light of respective optical transmitters of the plurality of targets are different from one another, and a light reception period TA of an optical receiver of the surveying instrument is set to be the same as the light emission period of the identification light of the selected target. Each time the identification light of the selected target is received, the light is integrated and amplified, and the amplified signal is identified to detect the selected target.
A data management device 2 comprises: a storage unit 35 in which existing images including feature points are stored; an imaging unit 30 that captures a new image; a feature extracting unit 40 that extracts a feature point from the new image; a feature matching unit 41 that acquires the existing image corresponding to the new image, extracts feature points of the new image such that the feature points correspond to the feature points of the acquired existing image, and associates the feature points of the new image to the feature points of the existing image; an imaging state calculating unit 42 that calculates the imaging state of the new image from the associated feature points of the new image; a difference specifying unit 43 that extracts a difference feature point not associated with the feature points of the existing image among the feature points of the new image and adds relative position information about the associated feature points to the difference feature point on the basis of the imaging state of the new image; and a database updating unit 44 that stores the new image including the difference feature point with the added relative position information in the storage unit 35 as an existing image.
This surveying device is provided with a surveying unit and a distance calculation unit. The surveying unit surveys the position of a target. The distance calculation unit calculates the relative distance between a first position and a second position from a survey result of the first position of the target and a survey result of the second position of the target obtained from the survey unit.
[Problem] To improve the accuracy of three-dimensional data based on an image captured by a camera mounted on a moving body. [Solution] Image data of a captured image captured by a camera 101 that moves in a state of being mounted on a heavy machine 100 is obtained, the position of a reflection prism 102, which is a specific fixed part in relation to the camera 101, is measured by a total station 200, the position of the camera 101 is calculated based on the measured position of the reflection prism 102, there is a deviation between the measurement time of the position of the reflection prism 102 and the imaging time of the camera 101, in the calculation of the position of the camera 101, adjustment calculation using the position of the camera 101 as an unknown number is performed, and the adjustment calculation is performed on the basis of the measurement position of the reflection prism 101 to which a correction amount corresponding to the deviation of the time is added.
G01C 11/36 - Vidéogrammétrie, c.-à-d. traitement électronique de signaux vidéo provenant de différentes sources pour obtenir des informations sur la parallaxe ou la distance
41.
HEAVY EQUIPMENT INFORMATION ACQUISITION METHOD, SYSTEM, AND PROGRAM
[Problem] To obtain the position of a movable part of heavy equipment efficiently. [Solution] This method for obtaining the position of the center of rotation of a rotating portion 110 of heavy equipment 100 provided with the rotating portion 110, which rotates horizontally, and the orientation of the rotating portion 110, includes: using a total station 200 to measure the position of a reflecting prism 102 fixed to the rotating portion 110; obtaining image data of a captured image captured by a camera 101 fixed to the rotating portion 110; calculating the position of the camera 101 on the basis of the position of the reflecting prism 102 measured by the total station 200 and the image data of the captured image captured by the camera 101; and calculating the position of the center of rotation of the rotating portion 110 and the orientation of the rotating portion 110 on the basis of the calculated position of the reflecting prism 102 and the position of the camera 101.
Provided are: an ophthalmic apparatus capable of executing, by an examination head, an examination of an eye to be examined without bringing the examination head close to the nose of a subject; and an operating method of the ophthalmic apparatus. This ophthalmic apparatus is provided with: displacement mechanisms (an XZ movement mechanism (16), a Y movement mechanism (18), a swing rotation mechanism (20), and a tilt rotation mechanism (80)) which displace an examination head (66) with respect to an eye (E) to be examined; a nose imaging control unit (41) for causing at least two cameras (34a) to image the nose of a subject from a plurality of directions different from each other; a nose position detection unit (42) for detecting the position of the nose (N) on the basis of an image of the nose (N) captured by each of the cameras (34a); a tilt angle determination unit (43) for determining the tilt angle (θ) of a tilt axis (TA) with respect to a reference axis (VA) on the basis of the detection result of the nose position detection unit (42); and a drive control unit (46) for, by driving the displacement mechanisms, displacing the examination head (22) to an examination position of the eye (E) to be examined, along the tilt axis (TA) having the tilt angle (θ) determined by the tilt angle determination unit (43).
A61B 3/15 - Dispositions spécialement adaptées à la photographie de l'œil avec des moyens d'alignement, d'espacement ou de suppression des réflexions parasites
43.
OPHTHALMOLOGIC DEVICE AND METHOD FOR OPERATING OPHTHALMOLOGIC DEVICE
Provided are: an ophthalmologic device with which an examination head can be reliably prevented from approaching the nose of a subject; and a method for operating an ophthalmologic device. The present invention comprises: a displacement mechanism (XZ movement mechanism (16), a Y movement mechanism (18), a swing rotation mechanism (20), and a tilt rotation mechanism (80)) that displace an examination head (22) with respect to a subject eye (E); a drive control unit (46) that drives the displacement mechanism to displace the examination head (22) to an examination position of the subject eye (E) to be examined along a tilt axis (TA), where an axis along a sight line direction of the subject eye (E) parallel to a front-back direction (Z direction) which is an operating distance direction of the examination head is defined as a reference axis (VA), and an axis resulting from tilting the reference axis (VA) about the subject eye (E) to be examined in an outward direction (X1) away from a nose (N) of a subject (H) is defined as the inclination axis (TA); and a retraction control unit (54) that drives the displacement mechanism and retracts the examination head (22) in a direction away from a face of the subject when an examination of a first eye of the subject eye (E) by the examination head (22) has been completed.
A61B 3/15 - Dispositions spécialement adaptées à la photographie de l'œil avec des moyens d'alignement, d'espacement ou de suppression des réflexions parasites
This ocular fundus imaging device includes at least two curved mirrors, an illumination optical system, and an imaging sensor. The illumination optical system includes a slit having an opening formed therein, wherein the opening is configured so as to be disposed at an ocular fundus conjugate position that is approximately optically conjugated with the ocular fundus of an eye to be examined. Light from a light source is emitted to the slit to generate slit-shaped illumination light, and the slit-shaped illumination light is emitted to the ocular fundus via the at least two curved mirrors. The imaging sensor is configured so as to be disposed at the ocular fundus conjugate position, and receives return light from the eye to be examined. At least one of both lengthwise-direction ends of the opening is displaced in the widthwise direction of the opening relative to the lengthwise direction that passes through the center of the opening.
A61B 3/14 - Dispositions spécialement adaptées à la photographie de l'œil
A61B 3/12 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient pour examiner le fond de l'œil, p. ex. ophtalmoscopes
45.
SURVEYING DEVICE, SURVEYING METHOD, SURVEYING SYSTEM, AND SURVEYING PROGRAM
This surveying device comprises: a ranging unit 102 for measuring the distance to a survey target 300 using ranging light; direction detecting units 106, 107 for detecting an emission direction of the ranging light; a main body control unit 101 (computing unit) for calculating a distance between a reference position and the position of the survey target 300 on the basis of the distance measured by the ranging unit 102 and the emission direction detected by the direction detecting units 106, 107; and a determining unit 207 for determining whether a difference between the distance calculated by the main body control unit 101 and a set distance is less than a predetermined value.
This surveying device comprises: a surveying unit; a setting unit; and a deviation amount calculation unit. The surveying unit surveys a position to be surveyed. The setting unit sets a first reference position and a second reference position from surveying results of the surveying unit. The deviation amount calculation unit calculates a deviation amount from a linear reference line connecting the first reference position and the second reference position to a confirmation position which is a position different from both the first reference position and the second reference position in the surveying results of the surveying unit.
This surveying system 1 comprises: a ranging unit 102 that measures the distance to a to-be-surveyed object 301 by using ranging light; direction detection units 106 and 107 that detect the emission direction of the ranging light; a computation unit 101b that acquires position information of the to-be-surveyed object 301 on the basis of the distance measured by the ranging unit 102 and the emission direction detected by the direction detection units 106 and 107; a storage unit 111 that stores offset information R that is distance information about the distance from the to-be-surveyed object 301 to a survey point P; and a swinging guidance unit 201b that estimates the swinging state of the to-be-surveyed object 301 on the basis of the offset information and a plurality of pieces of position information acquired by the computation unit 101b, and generates swinging guidance information of the to-be-surveyed object 301 in accordance with the estimated swinging state.
09 - Appareils et instruments scientifiques et électriques
10 - Appareils et instruments médicaux
44 - Services médicaux, services vétérinaires, soins d'hygiène et de beauté; services d'agriculture, d'horticulture et de sylviculture.
Produits et services
(1) Computers; tablet computers; personal digital assistants; recorded computer software for displaying, analyzing, and processing of electronic data in the field of healthcare, medical information and ophthalmology; recorded cloud computing software for displaying, analyzing, and processing of electronic data in the field of healthcare, medical information and ophthalmology; recorded computer programs for use in data management of electronic medical records; recorded computer programs for use in data processing of electronic medical records; recorded computer application software for personal digital assistants, namely software for displaying, analyzing, and processing of electronic data in the field of healthcare, medical information and ophthalmology; microscopes and their parts for surgical operation.
(2) Eye testing apparatus; cornea testing apparatus, namely, topographic medical apparatus and instruments for measuring the cornea, keratoscopes; ophthalmic lens measuring apparatus for medical purposes; vision testing apparatus; slit lamps for medical purposes; anterior eye imaging devices for use in diagnosing issues with the eyes; ophthalmic apparatus, namely, corneal topographers for corneal endothelium; medical apparatus and instrument for measuring the cornea, namely, topographic medical apparatus and instruments for measuring the cornea, keratometers, ophthalmometers; laser therapy apparatus for ophthalmic purposes; retinal cameras for medical purposes; ophthalmic cameras for medical purposes; skiascopes; tonometers; lasers for ophthalmic purposes; ophthalmic cameras for medical purposes; optical coherence tomography apparatus; ophthalmological apparatus and instruments for measuring the visual field of the eye, namely perimeters; ophthalmic apparatus and instruments for verifying the correct prescription in a pair of eyeglasses, namely, lensmeter; ophthalmological apparatus and instruments for testing eyesight, namely, vision tester. (1) Providing medical information; physical examination services; rental of medical apparatus and instruments; medical screening services for eye diseases and conditions; provision of medical information in the nature of clinical data in the field of ophthalmology.
09 - Appareils et instruments scientifiques et électriques
10 - Appareils et instruments médicaux
44 - Services médicaux, services vétérinaires, soins d'hygiène et de beauté; services d'agriculture, d'horticulture et de sylviculture.
Produits et services
(1) Computers; tablet computers; personal digital assistants; recorded computer software for displaying, analyzing, and processing of electronic data in the field of healthcare, medical information and ophthalmology; recorded cloud computing software for displaying, analyzing, and processing of electronic data in the field of healthcare, medical information and ophthalmology; recorded computer programs for use in data management of electronic medical records; recorded computer programs for use in data processing of electronic medical records; recorded computer application software for personal digital assistants, namely software for displaying, analyzing, and processing of electronic data in the field of healthcare, medical information and ophthalmology; microscopes and their parts for surgical operation.
(2) Eye testing apparatus; cornea testing apparatus, namely, topographic medical apparatus and instruments for measuring the cornea, keratoscopes; ophthalmic lens measuring apparatus for medical purposes; vision testing apparatus; slit lamps for medical purposes; anterior eye imaging devices for use in diagnosing issues with the eyes; ophthalmic apparatus, namely, corneal topographers for corneal endothelium; medical apparatus and instrument for measuring the cornea, namely, topographic medical apparatus and instruments for measuring the cornea, keratometers, ophthalmometers; laser therapy apparatus for ophthalmic purposes; retinal cameras for medical purposes; ophthalmic cameras for medical purposes; skiascopes; tonometers; lasers for ophthalmic purposes; ophthalmic cameras for medical purposes; optical coherence tomography apparatus; ophthalmological apparatus and instruments for measuring the visual field of the eye, namely perimeters; ophthalmic apparatus and instruments for verifying the correct prescription in a pair of eyeglasses, namely, lensmeter; ophthalmological apparatus and instruments for testing eyesight, namely, vision tester. (1) Providing medical information; physical examination services; rental of medical apparatus and instruments; medical screening services for eye diseases and conditions; disease diagnostic testing based on ophthalmological information; provision of medical information in the nature of clinical data in the field of ophthalmology.
09 - Appareils et instruments scientifiques et électriques
10 - Appareils et instruments médicaux
44 - Services médicaux, services vétérinaires, soins d'hygiène et de beauté; services d'agriculture, d'horticulture et de sylviculture.
Produits et services
Computers; tablet computers; personal digital assistants; recorded computer software for displaying, analyzing, and processing of electronic data in the field of healthcare, medical information and ophthalmology; recorded cloud computing software for displaying, analyzing, and processing of electronic data in the field of healthcare, medical information and ophthalmology; recorded computer programs for use in data management of electronic medical records; recorded computer programs for use in data processing of electronic medical records; recorded computer application software for personal digital assistants, namely software for displaying, analyzing, and processing of electronic data in the field of healthcare, medical information and ophthalmology; microscopes and their parts for surgical operation. Eye testing apparatus; cornea testing apparatus, namely, topographic medical apparatus and instruments for measuring the cornea, keratoscopes; ophthalmic lens measuring apparatus for medical purposes; vision testing apparatus; slit lamps for medical purposes; anterior eye imaging devices for use in diagnosing issues with the eyes; ophthalmic apparatus, namely, corneal topographers for corneal endothelium; medical apparatus and instrument for measuring the cornea, namely, topographic medical apparatus and instruments for measuring the cornea, keratometers, ophthalmometers; laser therapy apparatus for ophthalmic purposes; retinal cameras for medical purposes; ophthalmic cameras for medical purposes; skiascopes; tonometers; lasers for ophthalmic purposes; ophthalmic cameras for medical purposes; optical coherence tomography apparatus; ophthalmological apparatus and instruments for measuring the visual field of the eye, namely perimeters; ophthalmic apparatus and instruments for verifying the correct prescription in a pair of eyeglasses, namely, lensmeter; ophthalmological apparatus and instruments for testing eyesight, namely, vision tester. Providing medical information; physical examination services; rental of medical apparatus and instruments; medical screening services for eye diseases and conditions; disease diagnostic testing based on ophthalmological information; provision of medical information in the nature of clinical data in the field of ophthalmology.
This ophthalmic device comprises two or more light sources, an illumination optical system, a light-receiving optical system, and an optical path dividing member. The illumination optical system includes an iris diaphragm and an illumination diaphragm, and illuminates a subject eye with light from the two or more light sources via the iris diaphragm and the illumination diaphragm. The iris diaphragm is disposed at an iris conjugate position which is optically substantially conjugate with the iris of the subject eye, and has two or more openings formed therein. The illumination diaphragm is disposed at a fundus conjugate position which is optically substantially conjugate with the fundus of the subject eye. The light-receiving optical system guides return light from the subject eye to an imaging element. The optical path dividing member spatially divides the optical path of the illumination optical system and the optical path of the light-receiving optical system such that, in a plane at the iris conjugate position, images of the two or more openings are disposed in the periphery of a light reception opening through which the return light passes. The centers of the two or more openings are respectively disposed on the optical axis of a corresponding one of the two or more light sources.
A61B 3/14 - Dispositions spécialement adaptées à la photographie de l'œil
A61B 3/12 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient pour examiner le fond de l'œil, p. ex. ophtalmoscopes
52.
SURVEYING DEVICE, SURVEYING METHOD, AND SURVEYING PROGRAM
[Problem] To provide a technique with which it is possible to obtain a required scan density on a designated scanning target surface. [Solution] A surveying method using a surveying device 100 having a laser scanning function, said method comprising: acquiring data of a position and an orientation of a scanning target surface, which is an object of laser scanning, with respect to the surveying device 100; receiving, as a required scan density, a laser scan density that is required on the scanning target surface; calculating, as an estimated scan density, a laser scan density in the case that a laser scan has been performed on the scanning target surface under a predetermined laser scan condition; and modifying the scan condition of the laser scan on the basis of a result of comparison between the required scan density and the estimated scan density.
The present invention comprises: a distance measurement light emission unit (23) that has a light-emitting element (28) for emitting distance measurement light (35) toward an object to be measured; a distance measurement light reception unit (24) that has a light-receiving element (39) for receiving reflected distance measurement light (49) from the object to be measured; a tracking light emission unit (25) that has a tracking light-emitting element (53) for emitting, toward the object to be measured, tracking light (36) coaxial with the distance measurement light; a tracking light reception unit (26) that has a tracking light-receiving element for receiving, from the object to be measured, reflected tracking light (51) coaxial with the reflected distance measurement light; and a computation control unit that controls the distance measurement light emission unit and the tracking light emission unit, computes the distance to the object to be measured on the basis of the result of the light-receiving element receiving the reflected distance measurement light, and computes the positional deviation between the object to be measured and the center of the tracking light-receiving element on the basis of the position at which the tracking light-receiving element receives the reflected tracking light. The distance measurement light reception unit and the tracking light reception unit have a light reception prism, the light reception prism being configured so as to internally reflect the reflected tracking light three times.
A surveying system 1 has a surveying device 100 and a retroreflector 200 provided with a transmission unit 210A. The surveying device 100 comprises: a horizontal drive unit 102 that is capable of rotating around the vertical axis of a body unit 100b; a reception unit 120 that receives specific radio waves; a computation unit 101b that, when the reception unit receives radio waves transmitted from a plurality of different positions, calculates the estimated arrival directions of the radio waves and sets the orientation direction of the body unit from the estimated arrival directions; and a survey control unit 101a that controls the horizontal drive unit so that the body unit is oriented in the orientation direction set by the computation unit. The transmission unit 210A comprises: a beacon 211A for transmitting specific radio waves; a support unit 212A for movably supporting the beacon; and a transmission control unit 213A for moving the beacon to transmit the radio waves from a plurality of positions.
The present invention comprises: a distance-measuring light emission unit (23) that has a light-emitting element (28) for emitting distance-measuring light (35) toward a measurement object; a distance-measuring light reception unit (24) that has a light-receiving element (39) for receiving reflected distance-measuring light coming from the measurement object; and an calculation control unit that controls the distance-measuring light emission unit and calculates a distance to the measurement object on the basis of a reception result of the reflected distance-measuring light received by the light-receiving element. The distance-measuring light reception unit has a light-receiving lens (43) that forms an image of the reflected distance-measuring light on the light-receiving element, and the light-receiving lens is configured so as to be a single odd-order aspherical lens that has a first lens portion in which the focal position continuously changes along the radial direction, and a second lens portion in which the focal position remains constant regardless of the in-plane position.
Provided are: a forehead band with which an examinee can easily fit their forehead to an appropriate position on the forehead band; and an ophthalmologic device provided with the forehead band. A forehead band (14c) is provided to an ophthalmologic device (slit lamp microscope (10)). The forehead of an examinee (H) is placed against the forehead band. The forehead band comprises: a forehead abutting surface (64) that abuts the forehead; and left/right edge forming surfaces (66) that connect to opposing-end sides of the left-right direction (X direction) of the forehead abutting surface (64) to form left/right edges (70) on the opposing-end sides of the forehead abutting surface (64) between the edge-forming surfaces and the forehead abutting surface (64).
Method of measuring ionosphere scintillation phase index Sigma-Phi, the method including, for each of N satellites being tracked, calculating a phase prediction at an i-th sample; for each of the N satellites, calculating an individual loop discriminator signal based on the phase prediction; rejecting the i-th samples of some of the N satellites, where K non-rejected satellites remain; calculating common loop discriminator signal based on the individual loop discriminator signals of non-rejected K satellites; calculating a phase estimate and a Doppler frequency estimate at the i-th sample for each of the N satellites based on individual loop discriminator signal; calculating test statistic based on the phase estimate at the i-th sample and an observed phase for each of the N satellites; calculating index Sigma-Phi as standard deviation estimation of the test statistic for each of the N satellites; and outputting the index Sigma-Phi for each of the N satellites.
G01S 19/07 - Éléments coopérantsInteraction ou communication entre les différents éléments coopérants ou entre les éléments coopérants et les récepteurs fournissant des données pour corriger les données de positionnement mesurées, p. ex. DGPS [GPS différentiel] ou corrections ionosphériques
G01S 19/14 - Récepteurs spécialement adaptés pour des applications spécifiques
G01S 19/29 - Acquisition ou poursuite des signaux émis par le système lié à la porteuse
G01S 19/37 - Détails de matériel ou de logiciel de la chaîne de traitement des signaux
G01S 19/39 - Détermination d'une solution de navigation au moyen des signaux émis par un système de positionnement satellitaire à radiophares le système de positionnement satellitaire à radiophares transmettant des messages horodatés, p. ex. GPS [Système de positionnement global], GLONASS [Système mondial de satellites de navigation] ou GALILEO
Dual-fed antenna includes a ground plane; first and second metal patch radiators positioned over the ground plane, the first and second metal patch radiators are mirror images of each other; the first and second metal patch radiators separated by a meander-shaped gap, thereby forming an interdigitated structure, with each radiator having at least three digits; each digit shorted to the ground plane using a corresponding metal pin; each radiator having a coaxial feed implemented as a connector connected to it through the ground plane, or an aperture-coupled feed. Matching networks can be connected to the coaxial feeds at both ports or to microstrip lines connected to the slots of the aperture-coupled feeds. Each radiator can have tuning pins on an opposite side of the radiator from the digits, where each tuning pin can have a capacitive load. A dielectric plate can be placed between the radiators and the ground plane.
The present invention comprises: a distance measurement light emitting unit (23) having a light emitting element (28) that emits distance measurement light (35) to an object subject to measurement; a distance measurement light receiving unit (24) having a light receiving unit (39) that receives reflected distance measurement light (47) from the object subject to measurement; and a calculation control unit that controls the distance measurement light emitting unit and calculates the distance to the object subject to measurement on the basis of the reception result of the reflected distance measurement light at the light receiving unit, wherein the distance measurement light receiving unit has a light receiving prism (44) that internally reflects the reflected distance measurement light at least once within the same plane, the light receiving prism has a recess (63) formed in the surface on the opposite side of the prism from the incident surface of the reflected distance measurement light, the recess being recessed toward the incident surface side, and the light receiving unit is disposed in the recess.
The present invention comprises: a distance measurement light emission unit (23) having a light-emitting element (28) that emits distance measurement light (35) toward an object to be measured; a distance measurement light reception unit (24) having a light-receiving section (39) that receives reflected distance measurement light (47) from the object to be measured; a tracking light emission unit (25) having a tracking light-emitting element (51) that emits tracking light (36) toward the object to be measured on the same axis as the measurement light; a tracking light reception unit (26) having a tracking light-receiving element (54) that receives reflected tracking light (48) from the object to be measured on the same axis as the reflected measurement light; and a calculation control unit that controls the distance measurement light emission unit and the tracking light emission unit, calculates the distance to the object to be measured on the basis of the result of the light reception unit receiving the reflected distance measurement light, and calculates positional deviation between the object to be measured and the center of the tracking light-receiving element on the basis of a tracking image obtained as a result of the tracking light-receiving element receiving the reflected tracking light. The distance measurement light reception unit and the tracking light reception unit have a light reception prism (44) whereby the reflected distance measurement light and the reflected tracking light are internally reflected at least two times in the same plane, and the light reception prism is configured so as to have at least one each of a reflective surface or a transmissive surface having a positive inclination and a reflective surface or a transmissive surface having a negative inclination with respect to a plane orthogonal to the principal light beam of the reflected tracking light.
This non-destructive inspection system 1 has a non-destructive inspection device 2 and a management device 3. The non-destructive inspection device 2 is provided with: a neutron emission unit 10 capable of emitting a neutron beam; a gamma ray detection unit 20 capable of detecting gamma rays; a device casing 30 covering the neutron emission unit 10 and the gamma ray detection unit 20, an opening 30a being formed in the device casing 30; an outer shutter 31 that opens/closes the opening 30a; dose monitors 51, 52, 53 provided to the device casing 30, the dose monitors 51, 52, 53 detecting the radiation dose; a device communication unit 56 capable of transmitting device information including the detected radiation dose to the management device 3, and capable of receiving inspection permission information from the management device 3; and a device control unit 40 that, when the inspection permission information is acquired, opens the outer shutter 31 and enables emission of a neutron beam from the neutron emission unit 10.
G01N 23/222 - Recherche ou analyse des matériaux par l'utilisation de rayonnement [ondes ou particules], p. ex. rayons X ou neutrons, non couvertes par les groupes , ou en mesurant l'émission secondaire de matériaux utilisant l'analyse par activation en utilisant l'analyse par activation neutronique [NAA]
Provided are a disease risk evaluation method, a disease risk evaluation system and a health information processing device, whereby it becomes possible to detect the latent onset tendency in a healthy stage in advance and to quantify the prospective disease risk of a disease of interest. Each of the disease risk evaluation method, the disease risk evaluation system and the health information processing device according to the present invention includes a plurality of steps, i.e., a step for classifying into a group in which the susceptibility to developing a specific disease is high and a group in which the susceptibility to developing the specific disease is low regardless of the degree of progression of the disease from a healthy stage until the onset of the disease, and a step for further classifying the degrees of the development of the disease in a group in which the incidence risk is determined as high. Each of the disease risk evaluation method, the disease risk evaluation system and the health information processing device is characterized by being achieved by changing the type of data to be used in a data-driven analysis in each of the steps.
G16H 50/30 - TIC spécialement adaptées au diagnostic médical, à la simulation médicale ou à l’extraction de données médicalesTIC spécialement adaptées à la détection, au suivi ou à la modélisation d’épidémies ou de pandémies pour le calcul des indices de santéTIC spécialement adaptées au diagnostic médical, à la simulation médicale ou à l’extraction de données médicalesTIC spécialement adaptées à la détection, au suivi ou à la modélisation d’épidémies ou de pandémies pour l’évaluation des risques pour la santé d’une personne
63.
OPTICAL DATA PROCESSING DEVICE, OPTICAL DATA PROCESSING METHOD, AND OPTICAL DATA PROCESSING PROGRAM
[Problem] To provide a feature with which an external standardization element of a camera attached to a measuring device is easily obtained. [Solution] An optical data processing device 500 comprising: an image data acceptance unit 501 that accepts image data pertaining to a plurality of first images obtained through imaging in a plurality of different directions by a first camera 115 provided to a measuring device 100, and data pertaining to a wide-angle image captured by a second camera, which is externally attached to the measuring device 100 and which captures a broader range than the imaging range of the first camera 115; a feature extraction unit 502 that extracts features from the plurality of first images and the wide-angle image; an image detection unit 503 that detects a specific image for which the features in the plurality of first images meet a specific condition, and a partial image for which the feature in the wide-angle image meets the specific condition; a correspondence relationship identification unit 504 that identifies a correspondence relationship between the specific image and the partial image; and a standardization unit 505 that, on the basis of the correspondence relationship, calculates a relationship between the positions and orientations of the first camera 115 and the second camera.
The present invention relates to a surface measurement instrument (40), a surface measurement system (1), and a measurement method with which it is possible to accurately measure a measurement surface in various states. Provided is a surface measurement jig having a columnar body (44) that is in ground contact with a measurement surface (WL) and has an outer-peripheral-side surface capable of moving along the measurement surface (WL), a base body (43) to which the columnar body is attached, and a target (42) from which position information can be acquired through measurement from a remote location, the target (42) being disposed on the rotational axis of the columnar body so that a center position in the position information is on the central axis (44a) of the columnar body. The distance (T) from the measurement surface to the center position of the target is always kept fixed even if the columnar body moves in contact with the measurement surface, therefore making it possible to accurately and easily measure the state of recesses and protrusions on the measurement surface, the dimensions of the measurement surface, and other such features.
G01B 11/30 - Dispositions pour la mesure caractérisées par l'utilisation de techniques optiques pour mesurer la rugosité ou l'irrégularité des surfaces
G01C 7/02 - Tracé de profils des surfaces du terrain
G01C 15/00 - Instruments de géodésie ou accessoires non prévus dans les groupes
65.
OPHTHALMIC INFORMATION PROCESSING DEVICE, OPHTHALMIC SYSTEM, OPHTHALMIC INFORMATION PROCESSING METHOD, AND PROGRAM
This ophthalmic information processing device includes an acquisition unit and an information processing unit. The acquisition unit acquires one or more interferograms obtained by performing an OCT scan of a subject's eye. The information processing unit performs, on the basis of the one or more interferograms, a generation process of generating medical service assistance information for assisting the provision of a medical service to the subject. The information processing unit performs at least a part of the above generation process using a trained model generated in advance by performing machine learning.
A61B 3/10 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient
An ophthalmic apparatus includes a light source, an iris aperture, a condensing member, a slit, and an image sensor. The light source is positioned substantially conjugate optically to an iris of an eye to be examined. The iris aperture is positioned substantially conjugate optically to the light source. In the iris aperture, an aperture is formed at an eccentric position from an optical axis. Illumination light from the light source passes through the aperture. The condensing member is positioned between the light source and the iris aperture. A slit is positioned substantially conjugate optically to a fundus of the eye to be examined. In the slit, a slit-shaped aperture is formed. The illumination light having passed through the aperture passes through the slit-shaped aperture. The image sensor is configured to receive returning light from the fundus illuminated by the illumination light having passed through the slit.
A61B 3/12 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient pour examiner le fond de l'œil, p. ex. ophtalmoscopes
An ophthalmologic apparatus includes a main body including a measurement optical system that measures eye characteristics of a subject eye; an anterior ocular segment camera provided in the main body to acquire an anterior ocular segment image by imaging an anterior ocular segment; and a controller that includes an alignment controller configured to control to adjust a relative positional relationship between the subject eye and the main body based on the anterior ocular segment image. The alignment controller includes an imaging start mode controller that is configured, when it is determined that the subject eye does not appear in the anterior ocular segment image in an imaging start mode by the anterior ocular segment camera, to calculate a predicted position of the subject eye based on image recognition of a face part in the anterior ocular segment image and to control movement toward the calculated predicted position.
A61B 3/117 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient pour examiner la chambre antérieure ou l'angle de la chambre antérieure, p. ex. gonioscopes
A61B 3/00 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux
A61B 3/14 - Dispositions spécialement adaptées à la photographie de l'œil
68.
METHOD AND APPARATUS FOR OPTICAL COHERENCE TOMOGRAPHY ANGIOGRAPHY
Optical coherence tomography (OCT) angiography (OCTA) data is generated by one or more machine learning systems to which OCT data is input. The OCTA data is capable of visualization in three dimensions (3D) and can be generated from a single OCT scan. Further, motion artifact can be removed or attenuated in the OCTA data by performing the OCT scans according to special scan patterns and/or capturing redundant data, and by the one or more machine learning systems.
G01B 9/02091 - Interféromètres tomographiques, p. ex. à cohérence optique
G06T 7/33 - Détermination des paramètres de transformation pour l'alignement des images, c.-à-d. recalage des images utilisant des procédés basés sur les caractéristiques
69.
METHOD AND APPARATUS FOR MACHINE OPERATOR COMMAND ATTENUATION
A method for machine operator command attenuation includes the step of detecting a position of a boom, stick, and bucket of a hydraulic implement of a construction machine. Movement of the stick is detected by a controller. The controller determines if the movement of the stick will cause excavation below a desired grade. If the movement will not cause excavation below a desired grade, the controller will take no action. If the movement will cause excavation below a desired grade, the controller will command the boom to raise.
E02F 3/43 - Commande de la position du plongeur ou de l'augeCommande de la succession des opérations d'entraînement
E02F 3/32 - DraguesEngins de terrassement entraînés mécaniquement avec des outils excavateurs montés sur un bras plongeur ou à godets, p. ex. plongeurs, godets et bras plongeur pivotant sur une poutre en porte à faux travaillant vers le bas et vers la machine, p. ex. avec retro-pelletage
Method for detecting motion of an object using GNSS signals, including (i) measuring distances between a GNSS antenna and GNSS satellites with carrier phases at a first time; (ii) computing distances between known positions of antenna and satellites at first time; (iii) for each satellite, calculating first set of residuals=distances in (i)— distances in (ii); (iv) measuring distances between antenna and satellites with carrier phases at a second time; (v) computing distances between known positions of antenna and satellites at second time; (vi) for each satellite, calculating second set of residuals=distances in (iv)— distances in (v); (vii) differencing first and second sets of residuals; (viii) computing a metric based on set of differences in (vii); (ix) comparing metric to a threshold; (x) based on comparison in (ix), determining if object moved or possibly moved between first time and second time.
G01S 19/43 - Détermination de position utilisant les mesures de la phase de la porteuse, p. ex. le positionnement cinématiqueDétermination de position utilisant l'interférométrie à ligne de base longue ou courte
According to an embodiment, an optical coherence tomography device is configured to detect interference light using a spectrometer, the interference light being generated by superposing reference light on return light of measurement light projected on a sample. The spectrometer includes a dispersion element, a photodetector, and an image forming lens. The dispersion element splits the interference light into a plurality of wavelength components. The photodetector separately detects the plurality of wavelength components generated by the dispersion element. The image forming lens is disposed between the dispersion element and the photodetector. The optical coherence tomography device further includes a lens unit and a mechanism. The lens unit is used to vary the focal distance of the spectrometer without varying the focal position of the spectrometer. The mechanism interposes the lens unit between the dispersion element and the photodetector and removes the lens unit from between the dispersion element and the photodetector.
A61B 3/10 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient
G02B 13/00 - Objectifs optiques spécialement conçus pour les emplois spécifiés ci-dessous
G02B 15/10 - Objectifs optiques avec moyens de faire varier le grossissement en modifiant, ajoutant ou retirant une partie de l'objectif, p. ex. objectifs transformables par adjonction d'une pièce, p. ex. bonnette d'approche
A vehicle autosteering system having a controller determines steering commands based on GNSS receiver position data, inertial measurement system data, and steering shaft rotation encoder data. The controller outputs a signal to drive an electric motor that rotates the vehicles steering shaft, changing the steering angle and guiding the vehicle along a predefined path e.g., a straight line.
B60W 10/20 - Commande conjuguée de sous-ensembles de véhicule, de fonction ou de type différents comprenant la commande des systèmes de direction
G05D 1/02 - Commande de la position ou du cap par référence à un système à deux dimensions
G01S 19/49 - Détermination de position en combinant ou en commutant entre les solutions de position dérivées du système de positionnement par satellite à radiophares et les solutions de position dérivées d'un autre système l'autre système étant un système de position inertielle, p. ex. en hybridation lâche
A01B 69/04 - Adaptations particulières de la conduite automatique du tracteur, p. ex. systèmes électriques pour labourage selon les courbes de niveau
A Global Navigation Satellite System (GNSS) receiver for processing GNSS satellite signals use reloadable channel implementation. The configuration of each channel for processing GNSS signals can be saved and loaded to the same or different channels in order to reduce the time required for channel configuration.
An integrated compact radio antenna system for receiving and transmitting 5G signals and receiving GNSS signals is described. The system comprises a high-precision GNSS antenna and a MIMO 5G multi-element antenna system. All the antennas within the proposed compact system are integrated with a shielded housing that enables electronic components of GNSS receiver and 5G modem to be arranged inside. The proposed integrated system has the following advantages: 1) compactness, 2) high efficiency of MIMO 5G antenna system, 3) a high degree of decoupling between 5G antennas, 4) a high degree of decoupling between 5G and GNSS antennas.
H01Q 5/20 - Dispositions pour faire fonctionner simultanément des antennes sur plusieurs gammes d'ondes, p. ex. dispositions bibandes ou multibandes caractérisées par les gammes d'ondes exploitées
An apparatus for detecting global navigation satellite system (GNSS) spoofing, including a GNSS receiver that includes a first radio-frequency front-end (RF1) connected to antenna 1; a second radio-frequency front-end (RF2) connected to antenna 2; a digital section connected to both RF1 and RF2 and controlled with a single frequency oscillator. The digital section generates a first set of GNSS raw measurements based on signals received from antenna 1; generates a second set of GNSS raw measurements based on signals received from antenna 2; computes single differences between simultaneous raw measurements, generated with the signals received from the antenna 1 and the antenna 2 for the same GNSS satellite; compares the single differences with a threshold; and issues a spoofing alert when more than one of the single differences is below a threshold.
G01S 19/36 - Détails de construction ou détails de matériel ou de logiciel de la chaîne de traitement des signaux concernant l'étage d'entrée du récepteur
G01S 19/43 - Détermination de position utilisant les mesures de la phase de la porteuse, p. ex. le positionnement cinématiqueDétermination de position utilisant l'interférométrie à ligne de base longue ou courte
76.
OPHTHALMIC DEVICE, OPHTHALMIC DEVICE CONTROL METHOD, OPHTHALMIC IMAGING METHOD, PROGRAM, AND RECORDING MEDIUM
An imaging unit of an ophthalmic device according to an embodiment performs imaging with a rolling-shutter-type imaging device while moving a projection position of slit light to the fundus of an eye-to-be-examined. A focus adjustment unit has a configuration for adjusting the focus of the imaging unit. A processor executes a slit light projection control, a condition determination process, and a focus adjustment control. In the slit light projection control, the processor controls the imaging unit for projecting the slit light to the fundus of the eye-to-be-examined. In the condition determination process, the processor determines the focus adjustment condition on the basis of an output from the imaging device that detects return light of the slit light that has been projected to the fundus. In the focus adjustment control, the processor controls the focus adjustment unit on the basis of this focus adjustment condition.
A61B 3/12 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient pour examiner le fond de l'œil, p. ex. ophtalmoscopes
A61B 3/14 - Dispositions spécialement adaptées à la photographie de l'œil
This yoke member comprises a first yoke having a pair of first end parts facing each other, and a second yoke having a pair of second end parts that face each other in a direction different than the direction in which the first end parts face each other. Magnetic circuits of the first yoke and the second yoke partially intersect, and the first yoke and second yoke are connected so that magnetic path lengths thereof are equal.
G02B 26/08 - Dispositifs ou dispositions optiques pour la commande de la lumière utilisant des éléments optiques mobiles ou déformables pour commander la direction de la lumière
78.
INCLINATION DETECTION DEVICE AND INCLINATION DETECTION METHOD
This inclination detection device comprises: an optical member that is subjected to rotation control about a rotation central point; a retroreflection member that is fixed to the optical member and that is disposed at a position which is located on the side of the optical member opposite a functional surface and which is separated from the rotation central point; a light source that irradiates the retroreflection member with detection light; a detection unit that detects the detection light reflected by the retroreflection member; and a control unit that detects, from an optical-axis position signal of the detection light detected by the detection unit, the inclination of the optical member.
G02B 26/08 - Dispositifs ou dispositions optiques pour la commande de la lumière utilisant des éléments optiques mobiles ou déformables pour commander la direction de la lumière
G01B 11/26 - Dispositions pour la mesure caractérisées par l'utilisation de techniques optiques pour mesurer des angles ou des cônesDispositions pour la mesure caractérisées par l'utilisation de techniques optiques pour tester l'alignement des axes
G01S 7/481 - Caractéristiques de structure, p. ex. agencements d'éléments optiques
79.
INCLINATION DETECTION DEVICE AND INCLINATION DETECTION METHOD
The present invention comprises: a deflection member, the angle of which is controlled, and which has a reflecting surface that reflects a first light, and a light guiding part that guides a second light from one to the other of a reflecting surface side and a surface on the reverse side from the reflecting surface; a detection unit that detects the second light guided by the light guiding part; and a control unit. The light guiding part displaces the optical axis position of the second light in accordance with the inclination of the deflection member. The control unit detects the inclination of the deflection member from the optical axis position of the second light detected by the detection unit.
G01S 7/481 - Caractéristiques de structure, p. ex. agencements d'éléments optiques
G02B 26/08 - Dispositifs ou dispositions optiques pour la commande de la lumière utilisant des éléments optiques mobiles ou déformables pour commander la direction de la lumière
09 - Appareils et instruments scientifiques et électriques
10 - Appareils et instruments médicaux
44 - Services médicaux, services vétérinaires, soins d'hygiène et de beauté; services d'agriculture, d'horticulture et de sylviculture.
Produits et services
Computers; tablet computers; personal digital assistants; recorded computer software for displaying, analyzing, and processing of electronic data in the field of healthcare, medical information and ophthalmology; recorded cloud computing software for displaying, analyzing, and processing of electronic data in the field of healthcare, medical information and ophthalmology; recorded computer programs for use in data management of electronic medical records; recorded computer programs for use in data processing of electronic medical records; recorded computer application software for personal digital assistants, namely software for displaying, analyzing, and processing of electronic data in the field of healthcare, medical information and ophthalmology Eye testing apparatus; cornea testing apparatus, namely, topographic medical apparatus and instruments for measuring the cornea, keratoscopes; ophthalmic lens measuring apparatus for medical purposes; vision testing apparatus; slit lamps for medical purposes; anterior eye imaging devices for use in diagnosing issues with the eyes; observation instruments, namely, corneal topographers for corneal endothelium; medical apparatus and instrument for measuring the cornea, namely, topographic medical apparatus and instruments for measuring the cornea, keratometers, ophthalmometers; laser therapy apparatus for ophthalmic purposes; microscopes and their parts for surgical operation; fundus cameras; skiascopes; tonometers; lasers for ophthalmic purposes; ophthalmic cameras for medical purposes; optical coherence tomography apparatus; ophthalmological apparatus and instruments for measuring the visual field of the eye, namely perimeters; ophthalmic apparatus and instruments for verifying the correct prescription in a pair of eyeglasses, namely, lensmeter; ophthalmological apparatus and instruments for testing eyesight, namely, vision tester Providing medical information; physical examination services; rental of medical apparatus and instruments; medical screening services for eye diseases and conditions; ophthalmology services; provision of medical information in the nature of clinical data in the field of ophthalmology
A nondestructive inspection system 1 is provided with: a neutron radiation unit 10 capable of radiating a first neutron dose of neutrons; a neutron detection unit 20 capable of detecting a second neutron dose of neutrons scattered inside an inspection object A upon radiation of neutrons from the neutron radiation unit 10; a gamma ray detection unit 30 capable of detecting a gamma ray dose released from the inspection object A upon radiation of neutrons from the neutron radiation unit 10; and an analysis unit 50 that calculates the contained amount of a predetermined substance on the basis of the gamma ray dose and corrects the contained amount of the predetermined substance on the basis of the first neutron dose and the second neutron dose.
G01N 23/222 - Recherche ou analyse des matériaux par l'utilisation de rayonnement [ondes ou particules], p. ex. rayons X ou neutrons, non couvertes par les groupes , ou en mesurant l'émission secondaire de matériaux utilisant l'analyse par activation en utilisant l'analyse par activation neutronique [NAA]
G01N 23/204 - Recherche ou analyse des matériaux par l'utilisation de rayonnement [ondes ou particules], p. ex. rayons X ou neutrons, non couvertes par les groupes , ou en utilisant la diffraction de la radiation par les matériaux, p. ex. pour rechercher la structure cristallineRecherche ou analyse des matériaux par l'utilisation de rayonnement [ondes ou particules], p. ex. rayons X ou neutrons, non couvertes par les groupes , ou en utilisant la diffusion de la radiation par les matériaux, p. ex. pour rechercher les matériaux non cristallinsRecherche ou analyse des matériaux par l'utilisation de rayonnement [ondes ou particules], p. ex. rayons X ou neutrons, non couvertes par les groupes , ou en utilisant la réflexion de la radiation par les matériaux en mesurant la rétrodiffusion en utilisant des neutrons
G01N 23/2206 - Combinaison de plusieurs mesures, l'une au moins étant celle d’une émission secondaire, p. ex. combinaison d’une mesure d’électrons secondaires [ES] et d’électrons rétrodiffusés [ER]
82.
INFORMATION PROCESSING DEVICE AND INFORMATION PROCESSING METHOD
Provided is an information processing device generates learning data by using a set of complaint information including a complaint content and a complaint receipt time of a complaint received from a user and operational status data including an error log and an instrument log of a surveying instrument relating to the complaint in a predetermined period before occurrence of the complaint, from collected data collected regarding a plurality of surveying instruments and including various data on each surveying instrument, performs machine learning by using the learning data, and when operational status data of a target surveying instrument is input, generates a learning model for predicting a content and a time of a complaint that will occur in the future against the target surveying instrument.
A Global Navigation Satellite System (GNSS) receiver for processing GNSS satellite signals use a quasi-asynchronous sampling frequency grid to process the received signals. The GNSS receiver includes a plurality of RF paths configured to receive Global Navigation Satellite System (GNSS) signals from an antenna and transmit the GNSS signals in a frequency range for digitizing the GNSS signals. A phase-locked loop is configured to generate a clock signal and a plurality of clock dividers are configured to receive the clock signal and divide the clock signal. Each of a plurality of navigation systems receive a clock signal from one of the plurality of clock dividers.
A method and system for zone mapping displays a geographic area to a user and receives input from the user identifying a zone of the geographic area. An identification of an agricultural material to be applied in the zone is also received and an application plan is generated in response. The application plan is generated based on features identified in the zone, the agricultural material to be applied, and application requirements and restrictions associated with the agricultural material that are identified by the manufacturer of the material and, in some cases, governmental agencies. The agricultural machine tracks the application of the agricultural material and transmits application information for storage in the zone mapping system for later retrieval in response to requests, such as compliance requests.
G05D 1/00 - Commande de la position, du cap, de l'altitude ou de l'attitude des véhicules terrestres, aquatiques, aériens ou spatiaux, p. ex. utilisant des pilotes automatiques
A01M 7/00 - Adaptations ou aménagements particuliers des appareils de pulvérisation de liquides aux fins couvertes dans la présente sous-classe
B60K 35/00 - Instruments spécialement adaptés aux véhiculesAgencement d’instruments dans ou sur des véhicules
G01C 21/00 - NavigationInstruments de navigation non prévus dans les groupes
B60K 35/28 - Dispositions de sortie, c.-à-d. du véhicule à l'utilisateur, associées aux fonctions du véhicule ou spécialement adaptées à celles-ci caractérisées par le type d’informations de sortie, p. ex. divertissement vidéo ou informations sur la dynamique du véhiculeDispositions de sortie, c.-à-d. du véhicule à l'utilisateur, associées aux fonctions du véhicule ou spécialement adaptées à celles-ci caractérisées par la finalité des informations de sortie, p. ex. pour attirer l'attention du conducteur
G06F 3/0484 - Techniques d’interaction fondées sur les interfaces utilisateur graphiques [GUI] pour la commande de fonctions ou d’opérations spécifiques, p. ex. sélection ou transformation d’un objet, d’une image ou d’un élément de texte affiché, détermination d’une valeur de paramètre ou sélection d’une plage de valeurs
A nondestructive inspecting device 1 is provided with: a neutron beam emitting unit 10 capable of emitting a neutron beam in a prescribed emission direction D1; a gamma ray detecting unit 20 capable of detecting a gamma ray incident from a prescribed detection direction D2 intersecting the emission direction D1; a device housing 30 which covers the neutron beam emitting unit 10 and the gamma ray detecting unit 20, and in which an opening portion 30a is formed in the emission direction D1 and the detection direction D2; an outer shutter 31 for opening and closing the opening portion 30a of the device housing 30; an external dose monitor 41 for detecting a radiation dose inside the device housing 30; an internal dose monitor 42 for detecting a radiation dose outside the device housing 30; and a control unit 40 for prohibiting opening of the outer shutter 31 if the radiation dose detected by at least either of the dose monitors 41, 42 exceeds a predetermined threshold.
G01N 23/00 - Recherche ou analyse des matériaux par l'utilisation de rayonnement [ondes ou particules], p. ex. rayons X ou neutrons, non couvertes par les groupes , ou
G01N 23/22 - Recherche ou analyse des matériaux par l'utilisation de rayonnement [ondes ou particules], p. ex. rayons X ou neutrons, non couvertes par les groupes , ou en mesurant l'émission secondaire de matériaux
A broadband GNSS antenna has a broadband patch radiator with top slot excitation and a one-groove slotted vertical choke-ring structure around the patch radiator. The patch radiator includes a radiator ground plane, a slotted-fed radiation patch, a broadband feeding network, and a set of elements with vertical currents. The vertical choke-ring structure contains a top conducting surface with a set of slots, a bottom conducting surface and an adjacent vertical conducting cylinder.
H01Q 9/00 - Antennes électriquement courtes dont les dimensions ne sont pas supérieures à deux fois la longueur d'onde et constituées par des éléments rayonnants conducteurs actifs
87.
ANTERIOR SEGMENT ANALYSIS APPARATUS, ANTERIOR SEGMENT ANALYSIS METHOD, AND NON-TRANSITORY COMPUTER-READABLE STORAGE MEDIUM
An anterior segment analysis apparatus includes a control device configured to: obtain a tomographic image of an anterior segment including a cornea of a subject eye formed by OCT measurement; detect a plurality of edges included in the tomographic image; perform a first joining including joining between edges for each of the plurality of edges based on a first joining condition; select a first edge and a second edge from among the joined edges based on a length; performs a second joining including joining between edges with reference to each of the first edge and the second edge based on a second joining condition; and determine a boundary of a layer of the cornea of the tomographic image using the edges joined by the second joining.
A61B 3/10 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient
A61B 3/117 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient pour examiner la chambre antérieure ou l'angle de la chambre antérieure, p. ex. gonioscopes
An ophthalmologic apparatus includes a first left eye measurement optical system for measurement of dimensional information in a front-back direction of a left eye, a second left eye measurement optical system for measurement of a corneal shape of the left eye, a third left eye measurement optical system for measurement of a refractive property of the left eye, a first right eye measurement optical system for measurement of dimensional information in a front-back direction of a right eye, a second right eye measurement optical system for measurement of a corneal shape of the right eye, a third right eye measurement optical system for measurement of a refractive property of the right eye, and a control unit to control the first, second and third left eye measurement optical systems and the first, second and third right eye measurement optical systems.
A61B 3/10 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient
A61B 3/103 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient pour la détermination de la réfraction, p. ex. réfractomètres, skiascopes
A61B 3/107 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient pour déterminer la forme ou mesurer la courbure de la cornée
A full-range imaging method doubles imaging range of conventional techniques by removing mirror images of an imaged object that limit conventional images to a “half-range” and that are caused in part by the loss of phase information in a detected signal. Phase information of the detected signal is reconstructed with an averaging technique based on a modulated phase induced in the detected signal during scanning.
An ophthalmologic information processing apparatus corrects an image of a subject's eye formed by arranging a plurality of A-scan images acquired by scanning inside the subject's eye with measurement light deflected around a scan center position. The ophthalmologic information processing apparatus includes a specifying unit and a transforming unit. The specifying unit is configured to specify a transformation position along a traveling direction of the measurement light passing through the scan center position, the transformation position corresponding to a pixel position in the image. The transforming unit is configured to transform the pixel position into the transformation position.
A61B 3/00 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux
A61B 3/10 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient
Provided is an ophthalmological device which makes it possible to objectively know the positional relationship between an eye to be examined and an acquisition optical system even when the face of a subject is fixed to a head section. The ophthalmological device (10) is provided with: a pair of acquisition optical systems (measurement optical systems 20) for the acquisition of eye information about both eyes E to be examined; an optical system changing mechanism (measurement head driving section 15) which changes at least one of the position and the direction of the pair of acquisition optical systems (measurement optical systems 20); and a control section (27) which generates a positional relationship image Ip that shows the positional relationship of the pair of acquisition optical systems (measurement optical systems 20) relative to the pair of eyes E to be examined on the basis of optical posture information showing the position or direction of the pair of acquisition optical systems (measurement optical systems 20) which has been preset by the optical system changing mechanism (measurement head driving section 15) and eye positional information showing the position of the eyes E to be examined, and then displays the positional relationship image Ip on a display section (34).
A61B 3/08 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure subjective, c.-à-d. appareils de d’examen nécessitant la participation active du patient pour examen de vision binoculaire ou stéréoscopique, p. ex. pour le contrôle du strabisme
The present invention is provided with: a distance-measurement light emission unit (23) which emits distance-measurement light onto a measurement subject; a distance-measurement light reception unit (24) which has a light reception element for receiving reflected distance-measurement light from the measurement subject; a tracking-light emission unit (25) which emits tracking light onto the measurement subject on the same axis as the distance-measurement light; a tracking-light reception unit which has a tracking-light reception element for receiving reflected tracking light that is incident on the same axis as the reflected distance-measurement light; and a calculation control unit (17) which calculates the distance to the measurement subject on the basis of the light reception result of the reflected distance-measurement light on the light reception element, and which tracks the measurement subject on the basis of the light reception result of the reflected tracking light on the tracking-light reception element. The distance-measurement light reception unit and the tracking-light reception unit include a light reception prism that causes the reflected distance-measurement light and the reflected tracking light to be internally reflected multiple times, at least one chamfered portion is formed on a corner portion of said light reception prism located outside the optical path of the reflected tracking light, and the chamfered portion is subjected to an anti-reflection process.
In this rotary operation type inertial detecting device an inertial detecting unit (4) is provided inside an inner frame, the inner frame is supported in an outer frame by means of a first shaft (5), the inertial detecting unit is supported in the inner frame by means of a second shaft (7) perpendicular to the first shaft, the first shaft is provided with a first encoder (12), the second shaft is provided with a second encoder (17), the rotary operation type inertial detecting device is equipped with rotational motive forces provided on each shaft, and an arithmetic processing unit (19) for controlling the rotational motive forces on the basis of a detection result from the inertial detecting unit, and the arithmetic processing unit is configured to: associate a signal emitted by the inertial detecting unit with outputs of the first encoder and the second encoder; cause the inertial detecting unit to rotate continuously about the second shaft; calculate a horizontal angle of rotation of the inner frame and an angle of rotation of the second shaft relative to the horizontal, from a detected signal from the inertial detecting unit; cause the inner frame to perform a rotational movement through 180° at least once about the first shaft; and detect an angle of inclination relative to vertical and a horizontal angle of rotation of the outer frame.
G01C 9/06 - Moyens d'indication ou de lecture électriques ou photo-électriques
G01C 15/00 - Instruments de géodésie ou accessoires non prévus dans les groupes
G01C 19/00 - GyroscopesDispositifs sensibles à la rotation utilisant des masses vibrantesDispositifs sensibles à la rotation sans masse en mouvementMesure de la vitesse angulaire en utilisant les effets gyroscopiques
G01B 7/30 - Dispositions pour la mesure caractérisées par l'utilisation de techniques électriques ou magnétiques pour mesurer des angles ou des cônesDispositions pour la mesure caractérisées par l'utilisation de techniques électriques ou magnétiques pour tester l'alignement des axes
94.
ROTARY OPERATION-TYPE INERTIA DETECTION DEVICE AND SURVEYING DEVICE
The present invention comprises: an inner frame (3) that is provided with an inertia sensor unit (4) and is rotatably supported by an outer frame (2); a twin inertia sensor unit having two inertia detection sensors; a first encoder (12) that detects a rotation angle between the outer frame and the inner frame; and a second encoder (17) that detects a rotation angle between the inner frame and the twin inertia sensor unit. The signal emitted by the twin inertia sensor unit and the outputs of the first encoder and the second encoder are associated. The twin inertia sensor unit is continuously rotated. A horizontal rotation angle and a rotation angle with respect to the horizontal of the inner frame are calculated from a detection signal of the twin inertia sensor unit based on an angle of the second encoder. The inner frame is inversely rotated by at least 180° or by one full rotation. A horizontal rotation angle and a vertical angle with respect to the vertical of the outer frame are detected.
G01C 9/06 - Moyens d'indication ou de lecture électriques ou photo-électriques
G01C 15/00 - Instruments de géodésie ou accessoires non prévus dans les groupes
G01C 19/00 - GyroscopesDispositifs sensibles à la rotation utilisant des masses vibrantesDispositifs sensibles à la rotation sans masse en mouvementMesure de la vitesse angulaire en utilisant les effets gyroscopiques
G01B 7/30 - Dispositions pour la mesure caractérisées par l'utilisation de techniques électriques ou magnétiques pour mesurer des angles ou des cônesDispositions pour la mesure caractérisées par l'utilisation de techniques électriques ou magnétiques pour tester l'alignement des axes
An ophthalmologic apparatus includes a target projection system that presents an eye chart to a subject eye, an objective measurement optical system that objectively measures an eye characteristic of the subject eye, and a control portion that controls the target projection system and the objective measurement optical system, wherein the control portion presents the target for a predetermined time at a predetermined presentation position with the target projection system, and objectively measures the eye characteristic with the objective measurement optical system in a time series to control an operation of each portion based on a measurement result of the objective measurement.
A61B 3/00 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux
A61B 3/103 - Appareils pour l'examen optique des yeuxAppareils pour l'examen clinique des yeux du type à mesure objective, c.-à-d. instruments pour l'examen des yeux indépendamment des perceptions ou des réactions du patient pour la détermination de la réfraction, p. ex. réfractomètres, skiascopes
Provided is a new survey system capable of quickly locking on a target by a simple operation. The survey system includes a surveying instrument including an imaging unit configured to acquire an image in front of a telescope, a controller 80 including a GNSS device and configured to remotely operate the surveying instrument, and a target unit including a target and an optical transmitter, and based on position information acquired by the GNSS device in the vicinity of the target unit, the surveying instrument is rotated toward the GNSS device, images when the optical transmitter turns on light and turns off light are acquired by the imaging unit, and based on a difference image between the images, the surveying instrument is rotated toward the optical transmitter, scans the periphery by the tracking unit, and is locked on to the target.
A surveying instrument having a tracking function with a measure against sunlight is provided which includes a tracking unit and a distance-measuring unit, a driving unit, an imaging device, a filter switching device configured to make switching so that either of two filters is selectively disposed on an optical axis of the imaging device, and a control unit configured to, when the imaging device acquires an image including tracking guide light, analyze the image and operate an arrival direction of the tracking guide light, and control the driving unit so that a collimation axis is directed toward the arrival direction of the tracking guide light, wherein one filter of the two filters is a tracking guide light filter configured to transmit only wavelengths in a predetermined range centered on a wavelength of the tracking guide light.
A variable magnification optical component and an ophthalmic apparatus having a simpler mechanism and requiring a small space are provided. The variable magnification optical component includes an optical path, and a power changer, disposed rotatably with respect to an optical axis of the optical path. The power changer is configured to be removably inserted into the optical path, in which the power changer includes: multiple lenses for varying power and a light beam passage hole configured not to interfere with the lenses. In a first configuration of the variable magnification optical component, the power changer is inclined at a predetermined angle, such that the lenses are retracted outside the optical path, and the optical path passes through the light beam passage hole. In a second configuration of the variable magnification optical component, the power changer is restored and the lenses are positioned on the optical path.
G02B 15/04 - Objectifs optiques avec moyens de faire varier le grossissement en modifiant, ajoutant ou retirant une partie de l'objectif, p. ex. objectifs transformables par changement d'une partie
99.
BAR ARRANGEMENT INSPECTION SYSTEM AND BAR ARRANGEMENT INSPECTION METHOD
A bar arrangement inspection system includes a scanner for acquiring three-dimensional point cloud data of an inspection range, a camera for acquiring image data of the inspection range, a processor, and three-dimensional bar arrangement design data of the inspection range, the processor is configured to receive the three-dimensional point cloud data of the inspection range from the scanner and the image data of the inspection range from the camera, generate a point cloud composite image by combining the three-dimensional point cloud data with the image data, identify a bar arrangement state and positions of reinforcing bars included in the point cloud composite image, and by comparing the point cloud composite image with the three-dimensional bar arrangement design data, generate three-dimensional bar arrangement state inspection result data, and output the bar arrangement state inspection result data in such a manner that the bar arrangement error is visually identifiable.
A bar arrangement inspection result display system includes a surveying instrument, an eyewear display device including a display, a relative position sensor and a relative direction sensor, and a processor for manage coordinate spaces of the eyewear display device and the surveying instrument in a space with an origin set at a common reference point. The processor is configured to generate a three-dimensional model of a bar arrangement inspection range based on three-dimensional point cloud data of the inspection range, generate three-dimensional inspection result display data by associating bar arrangement inspection result data of the inspection range in which detail and position of bar arrangement error are associated with each other with the three-dimensional model, and display three-dimensional inspection result image by superimposing on actual objects observed with the eyewear display device in such a manner that the bar arrangement error is recognizable.