Ophthalmic apparatus for binocular examination of a subject's eyes - Patent Application 20070122997

The optometric device addresses the limitations of existing binocular examination devices by providing precise refractive analysis in near and intermediate vision states with ergonomic configurations and accurate alignment, enhancing examination precision and comfort.

JP7757421B2Active Publication Date: 2025-10-21ESSILOR INTERNATIONAL(COMPAGNIE GENERALE D OPTIQUE)
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Patent Information

Application Number
JP2023566667
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-04-28
Filing Date
2022-04-22
Publication Date
2025-10-21
Estimated Expiration
2042-04-22

AI Technical Summary

Technical Problem

Existing ophthalmic devices for binocular examination are limited to distance viewing conditions and do not accurately determine refractive characteristics in near and/or intermediate vision states, often requiring unnatural patient postures and lacking precise control of binocular vision and accommodation.

Method used

An optometric device with a binocular refraction testing unit and display system that provides different vision correction powers along separate optical axes, allowing for near and intermediate vision examination with ergonomic configurations, precise alignment, and easy switching between viewing states, using adjustable lenses and image alignment verification.

Benefits of technology

Enables accurate determination of binocular refractive characteristics in various viewing conditions, improving patient comfort and examination precision by simulating natural vision tasks with stereoscopic images and ergonomic positioning.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to an optometric device for binocular testing of a subject's eyes, comprising: a binocular refraction testing unit with a first optically refractive element adapted to provide different vision correction powers along a first optical axis and a second optically refractive element adapted to provide different vision correction powers along a second optical axis; a display system for providing a first and a second test image, the first test image being transmitted along a first optical path to the first optically refractive element and the second test image being transmitted along a second optical path to the second optically refractive element, said first and second test images being provided with details smaller than 1 arc minute over a field of view of at least 8° in the horizontal direction, said first and second optical paths having a length comprised between 25 and 100 centimeters, making it possible to test the subject's eyes in near and / or intermediate vision.
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Description

[Technical Field]

[0001] The present invention relates to an ophthalmic examination device for binocular examination of a subject's eyes.

[0002] The device according to the invention can in particular be used to examine the subject's eyes in near and / or intermediate vision conditions in natural or ergonomic and comfortable conditions which can be precisely controlled. [Background technology]

[0003] Known devices and methods for binocular testing of a subject's eyes are typically only used to test the eyes in a distance viewing condition, where the images shown to the subject to test the subject's binocular distance vision are typically positioned more than one meter away from the subject's eyes.

[0004] However, the refractive characteristics of the eye in near and / or intermediate viewing states may differ from the refractive characteristics in distance viewing. This may be due, among other things, to the fact that the accommodation and convergence of the eyes are different in near and / or intermediate viewing states.

[0005] Known methods for testing a subject's eyes in near and / or intermediate vision are performed using visual targets that ensure the subject's straight-line gaze direction or with the subject wearing trial frames, which lead to unnatural postures for near and / or intermediate vision, conditions for near and / or intermediate vision testing that are uncomfortable for the patient and difficult to control for the eye care professional.

[0006] These known methods, for example, use a refractometer (also called a phoropter) to simulate the vision correction that is provided.

[0007] Such phoropters include a support element designed to receive an individual's head and hold it in position relative to the refraction testing unit.

[0008] The refraction testing unit contains trial lenses that provide different corrections, which can be successively placed in front of the individual's eyes until the appropriate correction is found.

[0009] In the phoropter, the trial lenses are located on two freely rotatably mounted discs, so that the trial lenses on these discs can be successively positioned in front of the corresponding patient's eyes.

[0010] Such phoropters only allow for frontal measurements and do not allow precise control of an individual's binocular vision and accommodation.

[0011] It is known that the visual correction required for near vision in horizontal gaze and near vision in downward gaze is not the same.

[0012] It is also known that accommodation is not the same in binocular and monocular vision, but varies as a function of the direction of gaze and the vision used (monocular or binocular). Summary of the Invention [Problem to be solved by the invention]

[0013] It is therefore an object of the present invention to provide a new device that allows for accurate determination of the binocular refractive characteristics of a subject's eyes in near and / or intermediate viewing conditions. [Means for solving the problem]

[0014] The object of the present invention is to provide an optometric device for binocular examination of an eye of a subject, comprising: - a binocular refraction testing unit comprising a first optically refractive element adapted to provide different vision correction powers along a first optical axis and a second optically refractive element adapted to provide different vision correction powers along a second optical axis; a display system for providing first and second inspection images, the first inspection image being transmitted along a first optical path to a first light-refractive element, and the second inspection image being transmitted along a second optical path to a second light-refractive element; Including, the first and second inspection images are provided with detail smaller than 1 arc minute over a field of view of at least 8 degrees in the horizontal direction; This is achieved by providing an optometric device, wherein the first and second optical paths have a length comprised between 25 and 100 centimeters, making it possible to examine the subject's eye for near vision and / or intermediate vision.

[0015] Preferably, in order to accurately determine the refractive characteristics of the subject's eye in near and / or intermediate vision, the device according to the invention is such that the binocular refraction testing unit presents a strabismus testing configuration in which the first and second optical axes of the first and second refractive elements are inclined downwards, thus providing satisfactory ergonomic conditions for determining the refractive characteristics in near and / or intermediate vision.

[0016] It is a further object of the present invention to provide an apparatus that allows for accurate determination of the binocular refractive characteristics of a subject's eyes in both horizontal and oblique viewing configurations, with a simple and fast method of switching from one configuration to the other, thereby making it possible to test the eye in distance vision and near and / or intermediate vision states, in particular with a simple method of changing states from near or intermediate vision to distance vision and from distance vision to near or intermediate vision.

[0017] For this purpose, the display system is preferably mechanically coupled to the binocular refraction testing unit so as to be integral with the binocular refraction testing unit.

[0018] Furthermore, the binocular refraction testing unit is advantageously movable between at least two testing configurations: a horizontal viewing testing configuration in which the first and second optical refractive elements are positioned in a first position in which the first and second optical axes extend horizontally, and an oblique viewing testing configuration in which the first and second optical refractive elements are inclined compared to the first position, whereby the first and second optical axes are inclined downwards.

[0019] Preferably, in the ophthalmic examination device according to the present invention, the binocular refraction examination unit is rotatable as a whole about a horizontal axis of rotation parallel to the mean plane of the first and second optical refractive elements, the horizontal axis of rotation passing through a predetermined point at which the center of rotation of one of the subject's eyes is located when the subject's eye looks through the refraction examination elements.

[0020] It is therefore possible to easily switch from horizontal to oblique vision testing without having to check twice the alignment of the subject's eyes with the optical paths of the light emitted by the first and second test images.

[0021] Other advantageous, non-limiting features of the device according to the invention include: - positions of the first and second inspection images within the display system are adjustable such that the first and second inspection images are aligned with the first or second optical path; - the apparatus includes an alignment verification device for verifying alignment of the first and second optical paths with each eye of the subject, the alignment verification device including at least a camera or an eye-tracking device pointed at the eye of the subject; - the display system of the device can be moved forward or backward towards the object or away from the object in order to determine the magnitude of the visual acuity of the object with a direct measurement of this magnitude; - the first and second test images provided by the display system include images of real-life activities performed in near or intermediate vision having a plurality of stereoscopic peripheral image components adapted to be viewed in three dimensions by a subject viewing each of the test images with one of the subject's eyes; - at least two image components of the plurality of stereoscopic image components are displayed with different binocular disparity values; - the display system includes a single display area on which the first and second inspection images are both generated, and an image selection unit for selectively transmitting the first and second inspection images along the first or second optical path to a first or second light-refractive element; - the image selection unit comprises a filter adapted to selectively transmit and / or reflect light having wavelengths included in a predetermined wavelength range or a polarizer adapted to selectively transmit and / or reflect light having a polarization oriented along a predetermined axis, in which case the display system preferably simultaneously generates the first and second test images in the display area; - the display system simultaneously generates the first and second test images in the display area, and the image selection unit includes a plurality of microlenses, each microlens being mapped to a portion of the single display area and adapted to transmit light emitted by this portion of the single display area in at least two different directions; - the display system alternately generates the first and second test images in the single display area; - the image selection unit includes two shutters, each associated with one of the first and second optical paths, and presenting two states: an actuated state in which each shutter selectively blocks propagation of light in the corresponding first or second optical path, and a deactuated state in which each shutter selectively allows propagation of light in the same first or second optical path; - the apparatus includes a synchronization device arranged to synchronize the changes in state of both shutters with the generation of the first and second inspection images; - each shutter comprises an electronic shutter associated with the display system and / or the refraction inspection unit; - the display system generates the first and second test images in two separated display areas, and the ophthalmic device includes a light transmission unit that transmits the first and second test images to the first and second eyes along the first and second paths; the light transfer unit includes a polarizer rotator that alternately rotates the first and second inspection images forward; the light transmitting unit includes a wall that blocks transmission of light between the first and second light paths; - the light transfer unit comprises a movable or variable polarizer, - the display system includes two separate screens, each of the separate screens displaying one of the first and second inspection images; - the light delivery unit includes a beam splitter; - said display system, - two separate microdisplays, each of the separate microdisplays displaying one of the first and second inspection images; or - a single screen providing the two separated display areas, each of the separated display areas displaying one of the first and second inspection images; Including, the light delivery unit includes two light guides each delivering light emitted in one of the separated display areas towards one of the subject's eyes;

[0022] The following description, which refers to the accompanying drawings, will clarify what constitutes the present invention and how it can be achieved. The present invention is not limited to the embodiments shown in the drawings. Thus, when features recited in a claim are followed by reference signs, it should be understood that such signs are included solely for the purpose of enhancing the comprehension of the claim and do not limit the scope of the claim. [Brief explanation of the drawings]

[0023] [Figure 1] 1 is a schematic diagram of a first embodiment of an optometric device according to the present invention in a strabismus configuration for binocular testing of a subject's eyes; FIG. [Figure 2] 2 is a schematic diagram of the optometric apparatus of FIG. 1 in a horizontal viewing configuration for binocular testing of a subject's eyes. [Figure 3]1 is a schematic diagram of a second embodiment of an optometric device according to the present invention in a perspective viewing configuration for binocular testing of a subject's eyes; FIG. [Figure 4] 3 is a schematic diagram of a refraction testing unit for the optometric apparatus of FIG. 1 or 2 in front of a subject's eye in a position of horizontal gaze through the refraction testing unit; FIG. [Figure 5] 3 is a schematic diagram of a refraction test unit for the optometric apparatus of FIG. 1 or FIG. 2 in front of a subject's eye in an intermediate position of the refraction test unit. [Figure 6] 3 is a schematic diagram of a refraction testing unit for the optometric apparatus of FIG. 1 or 2 in front of a subject's eye in a position of oblique gaze through the refraction testing unit. [Figure 7] 3 is a schematic diagram of a different embodiment of a refraction testing unit for the optometric apparatus of FIG. 1 or 2 configured to pivot about a horizontal axis of rotation passing through a predetermined point that is in particular the center of rotation of one of the subject's eyes; [Figure 8] 3 is a schematic diagram of a different embodiment of a refraction testing unit for the optometric apparatus of FIG. 1 or 2 configured to pivot about a horizontal axis of rotation passing through a predetermined point that is in particular the center of rotation of one of the subject's eyes; [Figure 9] FIG. 3 is a schematic top view of a first embodiment of a display system for the optometric device of FIG. 1 or 2. [Figure 10] FIG. 3 is a schematic top view of a second embodiment of a display system for the optometric device of FIG. 1 or 2. [Figure 11] FIG. 10 is a partial schematic diagram of the display system shown in FIG. [Figure 12] FIG. 10 is a partial schematic diagram of the display system shown in FIG. [Figure 13] FIG. 10 is a partial schematic diagram of the display system shown in FIG. [Figure 14] FIG. 3 is a schematic front view of a screen of a third embodiment of a display system for the optometric apparatus of FIG. 1 or FIG. 2. [Figure 15] FIG. 15 is a schematic cross-sectional side view of the screen of FIG. 14. [Figure 16] FIG. 10 is a schematic diagram of a screen of a display system and synchronization data of two shutters in a fourth embodiment of an optometric apparatus. [Figure 17] FIG. 3 is a schematic top view of the fourth embodiment of a display system for the optometric device of FIG. 1 or 2. [Figure 18] 3 is an example of an examination image displayed by the display system of the optometry apparatus of FIG. 1 or FIG. 2. [Figure 19] 19 is an example of an image that a subject sees with binocular vision when presented with the image shown in FIG. 18. [Figure 20] 3 is an example of an examination image displayed by the display system of the optometry apparatus of FIG. 1 or FIG. 2. [Figure 21] This is an example of an image that a subject sees with binocular vision when presented with the image shown in Figure 20. DETAILED DESCRIPTION OF THE INVENTION

[0024] Figures 1, 2, 3 and 13 show, in perspective views, two embodiments of a binocular optometric device 1, two main elements for determining at least one refractive characteristic of a subject's first eye E1 and / or second eye E2 in a binocular manner.

[0025] This binocular determination of the refractive characteristics of the eyes is based on binocular measurements performed with the subject's eyes E1, E2 open and unobstructed.

[0026] More precisely, during the binocular measurement, a test image is provided to each eye E1, E2 of the subject. The test images provided to the two eyes are configured to allow fusion of the two test images by the subject's brain. Preferably, the two test images are stereoscopic images that provide an at least partially three-dimensional representation I1, I2 of the subject (FIGS. 19 and 21).

[0027] To this end, each test image is constructed to be precisely aligned with the subject's corresponding eye.

[0028] The optometric device 1, 2 according to the present invention comprises a binocular refraction examination unit 10 with a first optical refractive element 11 adapted to provide different vision correction powers along a first optical axis OA1 and a second optical refractive element 12 adapted to provide different vision correction powers along a second optical axis OA2 (Figures 1 to 6 and 11).

[0029] The first optical refractive element 11 is configured to provide a first corrective power to a first eye E1 of a subject, and the second optical refractive element 12 is configured to provide a second corrective power to a second eye E2 of the subject.

[0030] Corrective power means a diopter power that makes it possible to correct the refractive error of the subject's eye, such as spherical power, cylindrical power and cylinder axis, prismatic power and prismatic axis.

[0031] The optometric apparatuses 1 and 2 also include a display system 20 for providing first and second examination images, the first examination image being transmitted along a first optical path OP1 to a first optical refractive element 11 and the second examination image being transmitted along a second optical path OP2 to a second optical refractive element 12 (Figures 9 and 11).

[0032] Thus, the image display system 20 is configured to provide a first test image I11, I21 to a first eye E1 of the subject, and simultaneously provide a second test image I12, I22 to a second eye E2 of the subject, the second test image being different from the first test image.

[0033] The first test image I11, I21 is seen by the subject's first eye E1 through the first light-refractive element 11, and the second test image I12, I22 is seen by the subject's second eye E2 through the second light-refractive element 12.

[0034] In a notable manner, the first and second test images are provided with details smaller than 1 arc minute over a field of view of at least about 8° in the horizontal direction, and the first and second optical paths OP1, OP2 have a length comprised between 25 and 100 centimeters, making it possible to test the subject's eye in near and / or intermediate vision.

[0035] Each of the first optical refractive element 11 and the second optical refractive element 12 comprises a lens or a mirror or a prism or a set of such optical components that have adjustable refractive power characteristics or that allow the refractive power to be adjusted by rotation or translation of the optical components.

[0036] The length of each optical path is measured from a test image displayed on the outer surface of a set of optical components, such as lenses, prisms, or refractive elements, intended to be directed towards the subject's eye. In practice, the optical path length, for example, here, is equal to the distance light travels from the image plane to the outer surface of the set of optical components.

[0037] In the embodiments of the ophthalmic devices 1, 2 shown in the accompanying drawings and described below, the first light-refractive element 11 and the second light-refractive element 12 each comprise a lens with variable power. The lenses here comprise deformable liquid lenses with an adjustable shape. The aforementioned optical axes OA1, OA2 therefore coincide with the optical axes of the corresponding lenses.

[0038] Alternatively or additionally, the photorefractive element may comprise a collection of non-deforming lenses with different optical powers and a mechanical system that allows selecting some of these lenses and grouping them to form a set of lenses through which the subject can see. In this last case, to adjust the refractive power of the set of lenses, one or more lenses of the set of lenses are replaced by other lenses stored in the refraction testing unit. The aforementioned optical axis therefore coincides with the optical axis of the lens placed in front of the subject's eye.

[0039] In particular, each photorefractive element 11, 12 may include a lens with a variable spherical power and an optical component with a variable cylinder power and a variable cylinder axis. Each photorefractive element 11, 12 may also include an optical component adapted to provide a prismatic power to the subject's eye. The resulting set of optical components is shown schematically in the figures by lenses 11A, 12A.

[0040] Each of the photorefractive elements 11, 12 is intended to be placed in front of and close to one of the eyes 2, 3 of the subject. Each of the photorefractive elements 11, 12 is placed, for example, at a distance comprised between 5 and 25 millimeters from the eye. For example, this distance is measured between the outer surface of the set of optical components 11A, 12A of the photorefractive elements directed towards the eye and the eye placed in front of the photorefractive elements, and between the apex of curvature of the outer surface of the set of optical components 11A, 12A and the apex of curvature of the cornea of ​​the eye.

[0041] Each of the subject's eyes E1, E2 can view the first or second test image I11, I12; I21, I22 displayed by the display system 20 through a set of optical components of the optical refractive elements 11, 12, through a lens or set of lenses, or in an alternative implementation, by reflection on a mirror of the optical refractive element.

[0042] In the following, an ophthalmic device is described where each photorefractive element comprises a set of optical components 11A, 12A with a lens having a variable spherical power, an optical component having a variable cylindrical power and a variable cylindrical axis, and optionally a prism, as shown in the figures by the lenses with reference symbols 11A, 12A.

[0043] The optical set has an overall spherical power S, which corresponds to a spherical power, expressed in diopters. The optical set has a cylinder power C, also expressed in diopters, and an orientation indicated by an angle A. Each of the first and second refractive corrections provided by the corresponding optical refractive elements 11, 12 can be characterized by the values ​​of these three power parameters S, C and A.

[0044] The light-refractive elements 11, 12 are mounted on a common support 13 which extends above and between the light-refractive elements along a longitudinal axis H (Figures 1-3) which is horizontal.

[0045] This support 13 is connected to an overall support structure (not shown or only partially shown in the figures) that rests on the table or on the ground.

[0046] As will be explained later, each of the photorefractive elements 11, 12 is mounted on a support 13 so as to be rotatably movable about an axis V1, V2 perpendicular to said longitudinal axis H. The mean plane MP of the first and second photorefractive elements 11, 12 passes through these axes V1, V2 (FIG. 10). As shown in FIG. 10, this mobility of the photorefractive elements allows for adjustment of the alignment of the optical axes OA1, OA2 with the subject's eye, taking into account the convergence of the eyes in near and / or intermediate vision states.

[0047] Preferably, each axis V1, V2 about which one of the photorefractive elements can be rotated passes through a predetermined point (not shown) at which the center of rotation of the corresponding eye of the subject is located when the eye looks through the refractive test element, thereby making it possible to keep the gaze on the center of the photorefractive element when passing from a distance vision test (without convergence) to a near and / or intermediate vision test or from a near and / or intermediate vision test to a distance vision test without modifying the distance between the two photorefractive elements.

[0048] The display system 20 is adapted to provide the first and second test images, examples of which are described below, in myopic and / or intermediate vision conditions, across a horizontal field of view of at least 8° and providing detail of less than 1 arc minute.

[0049] Here, near and intermediate vision states are considered to encompass the appearance of targets located at a distance between the refractive elements 11, 12 and the test image displayed by the display system 20, the distance corresponding to the optical path being comprised between 25 and 100 centimeters, plus the distance between the refractive elements and the eye.

[0050] This distance can be fixed or variable. Varying the distance between the inspection image displayed by the display system and the light-refractive element can be achieved by varying the distance between the entire display system and the refractive inspection unit, or by using movable optical components such as mirrors within the display system 20.

[0051] If the distance between the test image displayed by the display system and the optically refractive element is variable, this distance can be varied over a wider range, for example from 25 cm to 6 or 8 meters or to infinity. The ophthalmic device according to the invention can then be used to test a subject's visual acuity in a distance viewing condition or in a near or intermediate viewing condition.

[0052] A test image with details smaller than 1 arc minute makes it possible to test the subject's visual acuity to better than 10 / 10 (10 / 10) or 0 logMAR, ideally to 15 / 10 (-0.18 logMAR) or even 20 / 10 (-0.3 logMAR).

[0053] To obtain such test images, the display system may include at least one screen with pixels having a size that allows the display of images for measuring 15 / 10 or 20 / 10 visual acuity, for example, pixels having a size comprised between 80 and 20 micrometers.

[0054] The use of at least an 8° horizontal field of view ensures easier accommodation and fusion, improving subject comfort while providing better control of near viewing conditions. Preferably, the field of view of display system 20 is 8° vertically and horizontally.

[0055] To obtain such test images, the display system may include at least one screen with a display area for each test image having dimensions adapted to provide such a field of view. A dimension of at least 56 millimeters for a viewing distance of 40 centimeters (cm) provides an 8° field of view. Preferably, screens having dimensions comprised between 35 and 147 millimeters may be used for viewing distances comprised between 25 and 105 centimeters, respectively.

[0056] Advantageously, here the refraction testing unit presents an oblique viewing testing configuration in which the first and second optical axes of the first and second refractive elements are inclined downwards.

[0057] For example, the optical axis is inclined at an angle AD with respect to the horizontal plane (FIGS. 2 and 3). This angle AD is preferably comprised between 10 and 50 degrees. This allows the subject to adopt an ergonomic near-vision position when testing the subject's eyes in a near-vision state. In this ergonomic near-vision position, the subject gazes downward through the optical refractive element.

[0058] This ergonomic near viewing position, for example, approximates the subject's natural reading position.

[0059] The values ​​of the refractive features determined for near vision are more accurate when the subject is placed in such an ergonomic position. Indeed, the accommodation and convergence of the subject are closer to those in natural near vision situations such as reading.

[0060] This oblique viewing testing configuration of the optometric device 1, 2 according to the invention can be obtained in different ways.

[0061] In the first preferred embodiment of FIGS. 1 and 2, the display system 20 is mechanically coupled to the binocular refraction testing unit 10 so as to be integral with the binocular refraction testing unit 10 .

[0062] In other words, the display system 20 and the binocular refraction testing unit 10 are mounted so that they can only move together, without any possibility of relative movement.

[0063] This attachment may be permanent. Alternatively, the display system 20 and the binocular refraction testing unit 10 may be temporarily decoupled to correct the relative positions of the display system 20 and the binocular refraction testing unit 10 before performing a vision test.

[0064] For example, as described below, in some embodiments, the distance between the display system 20 and the refraction inspection unit 10 can be modified, while the display system 20 and the refraction inspection unit 10 can only rotate together as a unit.

[0065] 1 and 2 and described in more detail below, display system 20 is housed within a box 21 mounted on rails 26 that are attached to the common support 13 for light-refractive elements 11, 12. Rails 26 extend generally perpendicular to the mean plane of the light-refractive elements 11, 12.

[0066] In the second embodiment of Fig. 3, the display system 20 is independent and separate from the binocular refraction testing unit 10. The display system 20 is placed on a horizontal surface, such as a table, in a fixed position with the optical paths OP1, OP2 inclined at the angle AD with respect to the horizontal plane. The display system 20 of the second embodiment is similar to the display system of the first embodiment, except that the display system 20 is not mounted on a rail, for example, but is placed on a horizontal surface.

[0067] In both embodiments, the binocular refraction testing unit 10 is rotatable as a whole about a horizontal axis of rotation parallel to the mean plane of the first and second optically refractive elements 11, 12. In the first preferred embodiment, the display system 20 rotates together with the binocular refraction testing unit 10.

[0068] Furthermore, in both embodiments, the binocular refraction testing unit 10 is preferably movable between at least two testing configurations: a horizontal viewing testing configuration in which the first optical refractive element 11 and the second optical refractive element 12 are positioned in a first position in which the first optical axis OA1 and the second optical axis OA2 extend horizontally, and an oblique viewing testing configuration in which the first optical refractive element 11 and the second optical refractive element 12 are tilted compared to the first position, whereby the first optical axis OA1 and the second optical axis OA2 are tilted downwards.

[0069] The strabismus testing configuration is preferably used to determine the refractive characteristics of the subject's eye in the near viewing condition.

[0070] The horizontal viewing test configuration may be used to determine the refractive characteristics of the eye in near and / or intermediate viewing states, but is preferably used to determine the refractive characteristics of the eye in distance viewing states.

[0071] To display the visual target in the distance viewing state, the display system 20 of the first embodiment described herein may have optical components that display the test image at variable distances from the refraction testing unit 10, as previously described. Alternatively, the display system 20 described herein used for near and / or intermediate vision testing may be a detachable display unit. The display system 20 may then be detached from the refraction testing unit 10, and an additional display device may be used to display the target in the distance viewing state.

[0072] In the second embodiment, an additional display device may be used to display the target in the far viewing state.

[0073] According to a first possibility, the horizontal axis of rotation of the refraction testing unit 10 passes above the light-refractive elements 11, 12 through the common support 13 of the light-refractive elements 11, 12. This horizontal axis of rotation coincides, for example, with the longitudinal axis H of the support 13 of the refraction testing unit. In this case, the binocular refraction testing unit 10 is also translatable along the vertical direction.

[0074] The movement of the light refraction unit 10 in front of the subject's eye in this case is shown in FIGS.

[0075] When transitioning from the horizontal viewing configuration (FIG. 4) to the oblique viewing configuration (FIG. 6) of the refraction testing unit, the refraction testing unit 10 is pivoted toward the subject's eyes E1, E2 (FIG. 5) and then moved vertically downward. The optical refractive element 11 in FIG. 5 is shown in an intermediate viewing position, which pivots the refraction testing unit at an intermediate viewing angle without downward translation.

[0076] The downward movement of the refraction testing unit 10 is a movement along a vertical distance D (FIG. 5) that depends on the final tilt angle A3 of the refraction testing unit relative to the vertical direction, the distance L between the optical axis OA1 of the photorefractive elements 11, 12 and the horizontal axis of rotation H of the refraction testing unit 10, and the distance ERCLens (FIGS. 4 and 5) between the center of rotation ERC1 of the eye and the center of the set of optical components of the corresponding photorefractive element 11, where the tilt angle A3 corresponds to the angle AD defined in FIGS. 2 and 3.

[0077] The distance D is equal to the sum of dZ1 and dZ2, as shown in FIG.

[0078] Distance dZ1 is the vertical distance between the center of the set of optical components 11A, 12A of the light refractive element 11 when the light refractive element 11 is rotated by angle A3 and the center of the set of optical components 11A, 12A of the light refractive element 11 when the light refractive element 11 is oriented vertically.

[0079] Distance dZ2 is the vertical distance between the center of the set of optical components 11A, 12A of the optical refractive element 11 when the optical refractive element 11 is oriented vertically and the gaze direction of the corresponding eye when the subject's gaze direction is tilted downward by angle A3.

[0080] The distances dZ1 and dZ2 are calculated using the following formula: dZ1=L*(sin(A3)) 2 dZ2=ERClens*sin(A3) It can be calculated as:

[0081] Next, move the refraction inspection unit vertically at a distance D=L*(sin(A3)) 2 Move it down by +ERClens*sin(A3).

[0082] The refraction testing unit should also preferably be moved along the axis x of translation dx=L*sin(A3)-ERClens(1-cos(A3)) to maintain a similar distance between the eye and the set of optical components of the light refractive elements 11, 12.

[0083] Based on this calculation, automatic adjustment of the refraction testing unit 10 can be performed. With a motorized refraction testing unit, the optometric apparatus can be programmed to automatically adjust the position of the refraction testing unit 10.

[0084] When the refraction testing unit 10 is used in a tilted configuration for near and / or intermediate viewing conditions, the horizontal distance PD between the photorefractive elements 11, 12 is preferably shortened. The shortening amount dPD is dPD=PD*(1-Dist / (Dist+ERCLens)), where Dist is the distance between the displayed test image and the optical center of the set of optical components of the photorefractive elements, and ERCLens is the distance between the center of rotation of the eye and the center of the set of optical components of the photorefractive elements (typically 25.5 to 27 millimeters (mm)).

[0085] Based on this calculation, an automatic adjustment of the horizontal distance between the two light-refractive elements 11, 12 of the refraction testing unit 10 can be performed, taking into account the convergence of the eyes in near and / or intermediate vision states.

[0086] Preferably, the horizontal axis of rotation about which the binocular refraction testing unit 10 can be rotated passes through a predetermined point at which the center of rotation ERC1 of one of the subject's eyes E1 is located when the subject's eye looks through the refraction testing element (Figures 7 and 8). Preferably, as mentioned above, the axis V1, V2 about which each optical refractive element can pivot also passes through the predetermined point at which the center of rotation ERC1 of one of the subject's eyes E1 is located when the subject's eye looks through the refraction testing element.

[0087] In practice, the horizontal axis of rotation about which the binocular refraction testing unit 10 is rotatable preferably passes through two predetermined points at which the centers of rotation ERC1 of the subject's eyes E1, E2 are located when the subject's eyes look through the refraction testing elements 11, 12.

[0088] Two possible configurations are shown schematically in Figures 7 and 8. Each of these figures shows a schematic side view of the binocular refraction testing unit 10 in front of the subject's eye O1.

[0089] In the first configuration shown in FIG. 7 , the binocular refraction testing unit 10 is provided with pins 16 extending laterally and received in circular grooves 17. The circular grooves 17 are provided, for example, in a vertical panel of the support structure of the binocular refraction testing unit 10. The circular grooves 17 are centered on a point belonging to a horizontal axis passing through the predicted positions of the centers of rotation of the subject's eyes E1 and E2. The positions of these centers of rotation are controlled, for example, by a device for receiving the subject's head, e.g., the chin and forehead. This arrangement allows the binocular refraction testing unit 10 to be rotated around the horizontal axis passing through the centers of rotation of the eyes E1 and E2. FIG. 7 shows the binocular refraction testing unit 10 in a horizontal vision testing configuration (solid lines). FIG. 7 shows a diagonal vision testing configuration (dashed lines). Here, the refraction testing unit is rotated 30 degrees, providing the subject with a downward gaze direction tilted 30 degrees below horizontal.

[0090] In the second configuration of Fig. 8, the refraction testing unit 10 is integral with an arm 18 that connects the refraction testing unit 10 to a rotating plate 19. The rotating plate 19 is provided, for example, as part of the support structure of the refraction testing unit 10. The rotating plate 19 rotates about a horizontal axis that passes through the expected positions of the centers of rotation of the subject's eyes E1, E2. The positions of these centers of rotation are controlled, for example, by a device for receiving the subject's head, e.g., the chin and forehead.

[0091] This arrangement allows the light refraction unit to be pivoted about the horizontal axis passing through the center of rotation ERC1 of the eyes E1, E2. Figure 8 shows the refraction unit 10 in a horizontal viewing configuration in solid lines. Figure 8 shows the oblique viewing configuration in dashed lines. Here, the refraction unit is rotated 30 degrees, providing the subject with a downward gaze direction inclined 30 degrees below horizontal.

[0092] Either of these example configurations allows for very easy transition of the refraction testing unit from a horizontal viewing configuration to a perspective viewing configuration, as the eye remains aligned with the optical components of each light-refractive element, such as a variable lens, without the need for additional adjustments.

[0093] Furthermore, when the display system 20 rotates together with the refraction testing unit 10, the relative positions of these two parts of the optometric apparatus are fixed and do not require further adjustment.

[0094] As mentioned above, for binocular measurements of the eye's refractive characteristics to be accurate, the two test images presented to the subject's eyes by display system 20 must be precisely positioned so that they appear to the subject as completely overlapping as possible.

[0095] The mobility of the two refractive elements 11, 12 allows them to be moved in the mean plane and around axes V1, V2 to adjust the distance between the sets of optical components of the refractive elements 11, 12 depending on the subject's interpupillary distance and the orientation of these sets of optical components, depending on the subject's convergence in near and / or intermediate vision states (Figures 4, 11).

[0096] Furthermore, in the first embodiment, where the refraction testing unit 10 and the display system 20 are integral with each other, the alignment of the two parts of the optometric apparatus 1 is fixed and precise. In the second embodiment, this alignment is adjusted every time either the refraction testing unit 10 or the display system 20 is moved.

[0097] In addition to these possible precise positioning of parts of the optometric apparatus 1, 2 in front of the subject's eye, the positions of the first and second test images within the display system can be adjusted so that the first and second test images are aligned with the first or second optical path.

[0098] In practice, the first and second inspection images are provided, for example, on one or two screens, as will be explained in more detail below.

[0099] Each screen may include an active or passive screen associated with a projector.

[0100] Thus, an active screen may include an LCD screen, an OLED screen, or a microdisplay containing pixels. A receiving screen may also include a surface onto which a test image may be projected. A receiving screen may include, for example, a holographic film.

[0101] The position of each test image can then be adjusted pixel by pixel in both directions on the screen to ensure accurate relative positioning of the test image with respect to the two test images and the subject's eye. The test images can then be precisely overlaid to ensure proper fusion by the subject's brain.

[0102] This adjustment can be performed for each subject, or can be performed in a calibration step prior to using the optometric device, without the need to perform a calibration step for each subject.

[0103] The ophthalmological examination apparatus 1, 2 also preferably includes an alignment verification device for verifying the alignment of the first optical path OP1 and the second optical path OP2 with each eye E1, E2 of the subject, which preferably includes at least a camera or an eye tracking device aimed at the eye of the subject.

[0104] The camera is preferably a near-infrared camera to easily capture eye features such as pupil position.

[0105] In particular, the alignment verification device may include a retractable camera 28 (as shown in FIG. 13) adapted to be placed in front of the subject, for example in front of the center of one of the screens, to verify alignment and to be removed during eye testing. In practice, the camera preferably has its optical axis, when in operation, close to the center of the test image to avoid parallax errors when checking eye alignment. When not in use, the camera is retracted from the optical path of light emitted by the screen.

[0106] The alignment verification device may also include an eye-tracking device or sensor. The eye-tracking device may be fixed on the refraction test unit 10 near the eye, for example, in close proximity to the set of optical components 11A, 12A. The sensor may be integrated into one of the screens of the display system 20 or added to the display system 20. Data generated by the eye-tracking device or sensor may provide an indication from which the eye orientation and gaze direction may be estimated. Data from the sensor may also be used to determine the distance between the eye and the corresponding test image or screen. The alignment verification device may also include a sensor attached to the refraction test unit to measure the tilt of the refraction test unit.

[0107] Eye alignment verification can be performed by comparing the position of the pupil center with the center of the refraction test unit optics or the optical axis of each of the photorefractive elements 11, 12. The optical axis or center of the optics and the position of the pupil can be determined from image processing, for example by detecting the rounded edges of the optics and the circular shape of the pupil. Alternatively, instead of detecting the rounded edges of the refraction test unit optics, a known pattern can be used, for example identifying a small X printed in the center of the lens of the photorefractive test element.

[0108] Finally, the camera can also be used to determine near and / or intermediate viewing distances. Elements of the refraction testing unit 10 having known dimensions (printing, edges of the phoropter optics, etc.) can be identified on the images captured by the camera. The distance from the camera to the refraction testing unit 10 can then be derived from the pixel size of the images of these elements.

[0109] Now, with regard to the image display system 20, regardless of the embodiment of the optometric device considered, the image display system 20 includes at least one screen and one area for displaying the first and second images, as will be described in detail below.

[0110] More precisely, different embodiments of the display system 20 are described below, as shown in Figures 9 to 16. Generally, in the different embodiments described here, the two test images are generated either on two different and separate screens S1, S2, as in Figure 9, or on a single screen S0, as shown for example in Figures 10, 14, 15 and 17.

[0111] Furthermore, the two inspection images may be generated in two different, separate display areas belonging to two different, separate screens S1, S2 (Figure 9) or a single screen S0 (Figure 10), or may be generated in a single display area of ​​a single screen S0 (Figures 16, 15 and 17).

[0112] Generally, when the display system 20 generates the first and second test images I11, I12, I21, I22 in two separated display areas, the ophthalmological apparatus 1, 2 includes an optical transmission unit that transmits the first and second images to the first eye E1 and the second eye E2 along the first path OP1 and the second path OP2.

[0113] As shown in Figure 9, when each inspection image is generated by a different separate screen S1, S2, the light transmission unit may include a beam splitter and / or a movable polarizer and / or a switchable polarizer and / or a wavelength filter.

[0114] In a first embodiment of a display system 20 shown in FIG. 9, the optical components of the display system 20 are housed in said box 21 .

[0115] Box 21 contains two screens S1, S2 and is provided with a large opening 22 that allows the subject to see all of each screen S1, S2.

[0116] In the first embodiment of FIG. 9, the two screens S1, S2 are oriented perpendicular to each other and the light delivery unit includes a beam splitter 31.

[0117] The beam splitter 31 is preferably a polarization dependent beam splitter and the screens S1, S2 preferably emit polarized light.

[0118] The polarization dependent beam splitter 31 splits an incident beam of any polarization into two polarized beams: one transmitted with a first linear polarization and the other reflected with a second linear polarization perpendicular to the first. If the incident beam is already linearly polarized along the first or second linear polarization of the beam splitter, it will be completely transmitted or reflected.

[0119] The polarizations of the light emitted by the two screens are here orthogonal to and correspond to the first and second linear polarizations of the beam splitter, as shown in Figure 9. Furthermore, the light-refractive elements 11, 12 of the refraction inspection unit 10 preferably comprise vertically oriented polarizers, each corresponding to the polarization direction of the light emitted by the corresponding screen. In practice, it comprises two orthogonal polarizers, each of which is placed in front of one of the subject's eyes E1, E2.

[0120] Polarizers act as filters, allowing only light with a certain linear polarization to pass through the polarizer. All other polarizations of light are filtered out. Crossed or perpendicularly oriented polarizers mean that the polarizations allowed by the two polarizers are perpendicularly oriented.

[0121] 9, the light emitted by the first screen S1 is transmitted on a first optical path OP1 by the beam splitter 31 without changing its polarization. The light reaches the first photorefractive element 11 with a polarization parallel to the polarization of this first photorefractive element 11 and is therefore transmitted through the photorefractive element 11 to the first eye E1 of the subject.

[0122] The light emitted from the second screen S2 is reflected on a second optical path OP2 by the beam splitter 31 without changing its polarization. The light reaches the second photorefractive element 11 with a polarization parallel to that of this second photorefractive element 12 (orthogonal to the polarization of the first photorefractive element 11) and is therefore transmitted through the photorefractive element 12 to the second eye E2 of the subject.

[0123] Due to the orthogonal polarizations of light transmitted on the first and second optical paths and the corresponding polarizations of the photorefractive element, each eye of the subject sees only one of the two images displayed by display system 20. Furthermore, the intensity of light transmitted to the eye is higher than if the same setup were used with a polarization-independent beamsplitter and a non-polarizing screen.

[0124] In practice, this first embodiment can be realized as shown in FIGS.

[0125] To enable the subject to view the test image binocularly, the subject's brain must synthesize the two test images seen by the two eyes E1 and E2. To achieve this, the position and orientation of the screen, the position of the test image on the screen, and the position of the beam splitter must be properly adjusted, as described above.

[0126] The mechanical design shown in Figures 11, 12 and 13 allows for precise control of the relative positions of the different elements.

[0127] The display system 20 here comprises a square or rectangular plate 23 fitted with two receiving slots 24 perpendicular to the plate 23 .

[0128] Two receiving slots 24 are oriented perpendicular to the corners of the plate 23. Each of the two receiving slots 24 is adapted to receive a screen S1, for example a smartphone. The slots 24 are adapted to fit snugly against the screen so that the screen is held in a fixed position. In the diagonal of the plate through the corners, the beam splitter is received in a groove 25 perpendicular to the plate and at 45° to the respective screen, which holds the beam splitter in a fixed position.

[0129] Each of the receiving slots 24 and grooves 25 includes at least one fastening screw for drilling a hole in, for example, a screen or a beam splitter.

[0130] 13, the plate 23 with the fixed screen and beam splitter is housed in a box 21 mounted on rails 26. The box 21 can be fixed by means of clamping screws 27 at different positions along the rails 26.

[0131] 1, 2 and 13, the rail 26 is mounted on the refraction inspection unit 10. This mounting can be a removable mounting or a permanent mounting.

[0132] In a variant, the screen and / or the beam splitter and / or the photorefractive element may be polarization insensitive. Additional polarizers may be added before the screen and before the photorefractive element. In another variant, the screen and the beam splitter are polarization insensitive.

[0133] In a variant, the display unit includes a polarization rotator that alternately rotates the first and second inspection images forward, and the first and second light-refractive elements each include a first polarizer and a second polarizer having a polarization axis different from that of the first polarizer. In this case, the polarization rotator can be positioned on the path between the image and the light-refractive element to alternately rotate the polarization axis on the first light path and the polarization axis on the second light path. For example, the polarizer can be positioned on the screen. In this way, the first inspection image is viewed by the first eye, and then the second eye is viewed by the second eye, according to the rotation of the polarization rotator. The rotation frequency of the polarization rotator can be at least equal to 60 Hz.

[0134] The polarization rotator can be a Faraday rotator, a birefringent rotator such as an electronic liquid crystal polarizer, or a prismatic rotator.

[0135] In another embodiment (not shown), the transmission unit may also include a filter adapted to selectively transmit and / or reflect light having wavelengths within a predetermined wavelength range. The first test images I11, I21 generated by the first screen S1 are emitted at a first set of wavelengths, e.g., 440, 550, and 600 nanometers, while the second test images I12, I22 generated by the second screen S2 are emitted at a second set of wavelengths, e.g., 460, 570, and 620 nanometers, offset by 20 nanometers compared to the first set of wavelengths. Two trichromatic filters of corresponding wavelengths are arranged on the first and second paths. Holographic techniques or any other suitable techniques known to those skilled in the art may be used to obtain such filters.

[0136] In the second embodiment, in which each inspection image is generated by a single screen S0 divided into two display areas Z1 and Z2 as shown in FIG. 10, the unused area Z0, which does not display an image, is preferably located between the two display areas Z1 and Z2.

[0137] This unused area Z0 serves to separate the two display areas Z1, Z2, keeping the images seen by each eye of the subject separate.

[0138] Furthermore, to ensure that each eye of the subject sees only the corresponding associated image, the light transmission unit may include a wall 30 that blocks the transmission of light between the first light path OP1 and the second light path OP2, as in the second embodiment of the display system shown in Figure 10.

[0139] In this case, the refractive elements 11, 12 are tilted and provide not only spherical / cylindrical power but also some prismatic power. The optical components providing the prismatic power act on the light emitted by the two display areas of the screen to deliver the light to the target eye. The prismatic value depends on the near and / or intermediate viewing distance and can be calculated so that the eyes converge at a given distance.

[0140] In a variant, the light transmission unit may also include two light guides that transmit light emitted in one of the separated display areas Z1, Z2 towards one of the subject's eyes E1, E2, respectively.

[0141] In another embodiment, the display system may also include two separate microdisplays, each displaying one of the first and second images, and the light delivery unit including two light guides that deliver light emitted by one of the microdisplays to one of the subject's eyes E1, E2, respectively. Each microdisplay may use microLED or microOLED technology. Each microdisplay may be as small as 10 millimeters wide and placed in front of one of the eyes. A mechanical or optical device may change the distance between the microdisplays to simulate far-viewing or near-viewing conditions.

[0142] When two inspection images I11, I12, I21, I22 are generated in the same single display area, the two inspection images can be generated simultaneously in the single display area (Figures 14, 15) or alternately (Figures 16, 17).

[0143] In either case, display system 20 includes an image selection unit for selectively transmitting the first and second test images along the first or second optical path OP1, OP2 to first or second optically refractive element 11, 12. In other words, display system 20 unit enables transmitting first test image I11, I21 to a first eye E1 of the subject and second test image I12, I22 to a second eye E2 of the subject.

[0144] In a third embodiment, two test images are simultaneously displayed, for example, in an interlaced manner in the same display area of ​​a single screen S0. In practice, each of the two test images is divided into several portions that are displayed using separate portions of the single screen. By staggering the portions of each test image and displaying these portions on portions of the screen that span the surface of the screen, a subject may perceive each of the two test images as being displayed across the entire surface of the screen.

[0145] Each test image is displayed, for example, on a group of pixels on a screen. The pixels may be grouped by rows and columns, for example, on a square or hexagonal base plane. The group of pixels used may also be determined based on the color of the pixel, for example, using a Bayer matrix. A first test image is displayed using some of the groups of pixels, and a second test image is displayed using other groups.

[0146] For example, as shown in Figure 14 or 15, two test images are displayed using every other column or row of pixels on screen S0. In other words, each test image is divided into portions the size of a column or row of pixels, and these portions are displayed by staggering the columns or rows of the first test image with the columns or rows of the second test image. For every two columns, one column is used to display the first test image, and the other column is used to display the second test image. Similarly, for every two rows, one row is used to display the first test image, and the other row is used to display the second test image.

[0147] The first test images I11, I21 are displayed, for example, using the first and odd columns of pixels on the screen, while the second test images I12, I22 are displayed using the second and even columns of pixels (Figures 14 and 15).

[0148] The image selection unit causes the subject's first eye E1 to view only the first test images I11 and I21 without viewing the second test images I12 and I22, and the subject's second eye E2 to view only the second test image I12 without viewing the first test images I11 and I21.

[0149] The image selection unit may include a plurality of microlenses, each of which is mapped to a portion of a single display area and adapted to transmit light emitted by this portion of the single display area in at least two different directions, the distance between the microlens and a pixel of the screen being approximately equal to the focal length of the microlens.

[0150] A microlens is associated with, for example, a pair of two adjacent pixel groups as defined above, each displaying a different portion of the test image.

[0151] In the example described here, where two test images are generated using every other column of the screen S0, the microlenses can be adapted to cover two adjacent columns and transmit light emitted by one of the two columns to a first eye E1 and light emitted by the other to a second eye E2 (Figure 15).

[0152] The microlenses used for different pairs of pixel groups may be the same or different, for example they may include microlenses with or without microprisms, microlenses of different focal lengths or microlenses with different properties.

[0153] According to a variant, the image selection unit may include a filter adapted to selectively transmit and / or reflect light having wavelengths included in a predetermined wavelength range. The first test images I11, I21 generated by the odd-numbered columns of the screen are emitted at a first set of wavelengths, e.g., 440, 550, and 600 nanometers, while the second test images I12, I22 generated by the even-numbered columns of the screen are emitted at a second set of wavelengths, e.g., 460, 570, and 620 nanometers, offset by 20 nanometers compared to the first set of wavelengths. Two trichromatic filters of corresponding wavelengths are used in front of the screen S0. The screen S0 or the filters may be mounted on a moving plate that translates back and forth parallel to the filters or screen at high frequency. To obtain such filters, holographic techniques or any other suitable technique known to those skilled in the art may be used.

[0154] The image selection unit may alternatively comprise a polarizer adapted to selectively transmit and / or reflect light having a polarization oriented along a predetermined axis. Thus, odd and even columns of the screen S0 may be configured to emit light having different polarizations, in particular polarizations that are orthogonal to each other.

[0155] Another possibility is that two test images I11, I12, I21, I22 are generated alternately, i.e., one after the other, on the same single display area of ​​said single screen S0, using the entire display area of ​​the screen. In a fourth embodiment of the display system 20, each test image is alternately displayed at a high frequency while synchronized electronic shutters 41, 42 completely or at least partially block the optical paths of the eye that should not carry the test image (FIG. 17).

[0156] The single screen may be a liquid crystal display (LCD), an organic light emitting diode (OLED) or a micro LED based screen, or any other suitable screen known to those skilled in the art.

[0157] In this case, the image selection unit includes two shutters 41, 42, each associated with one of the first and second optical paths OP1, OP2 and presenting two states: an actuated state in which the shutter selectively blocks the propagation of light in the corresponding first or second optical path, and a deactuated state in which the shutter selectively allows the propagation of light in the same first or second optical path.

[0158] Therefore, the display device 20 also includes a synchronization device 43 for synchronizing the state changes of both shutters with the generation of the first and second examination images. Thus, when an examination image for a first eye E1 of the subject is displayed, the shutter 41 arranged on the first optical path OP1 is in an inactivated state, and the shutter 42 arranged on the second optical path OP2 is in an activated state. When an examination image for a second eye E2 of the subject is displayed, the shutter 42 arranged on the second optical path OP2 is in an inactivated state, and the shutter 41 arranged on the first optical path OP1 is in an activated state.

[0159] Each shutter 41 , 42 may comprise, for example, an electronic shutter associated with the display system 20 and / or the refraction testing unit 10 .

[0160] Each electronic shutter 41, 42 may include, for example, an LCD screen.

[0161] Alternatively, the shutter may only partially block the light.The shutter may include an active diffuser, such as a component including a polymer dispersed liquid crystal layer.

[0162] Each LCD screen is disposed in one of the first and second optical paths OP1 and OP2. Each LCD screen is preferably disposed in close proximity to the subject's eye, for example mounted on the refraction testing unit 10. The activated state corresponds to a state in which the LCD screen is opaque (black) and completely blocks the propagation of light, while the deactivated state corresponds to a state in which the LCD screen is transparent, thus allowing light to pass through the LED screen (FIG. 17).

[0163] The synchronization of the state changes of both shutters and the generation of the first and second inspection images is shown diagrammatically in FIG.

[0164] The top graph of this figure shows diagrammatically successive test images displayed by a single screen S0, for example corresponding to successive frames of a video, each test image being displayed over the same period of time.

[0165] The bottom two graphs in this figure show the light transmission T of each shutter located on the first and second optical paths OP1 and OP2. As shown in the graphs, when a first test image is displayed, the shutter 41 located on the first optical path OP1 allows light to pass through, while the shutter 42 located on the second optical path OP2 blocks light. Accordingly, the first test image is transmitted to the first eye E1, as can be seen in the second graph, while no image is transmitted to the second eye E2, as can be seen in the third graph.

[0166] During the display of the second test image ("Frame 2") by the screen S0, the situation is reversed: the shutter 42 located on the second optical path OP2 allows light to pass through, while the shutter 41 located on the first optical path OP1 blocks light. Accordingly, the second test image is transmitted to the second eye E2, as can be seen in the third graph, while no image is transmitted to the first eye E1, as can be seen in the second graph.

[0167] As shown in the following two graphs, the state of each shutter is changed each time a new inspection image is displayed on the screen.

[0168] In the three graphs above in FIG. 16 showing the synchronization of the display system 20, it is not considered that the inspection image is not instantaneously displayed on the screen. It takes time to display and erase each inspection image. In order to optimize the display system, it is necessary to minimize the display time and the erasure (afterglow) time of the inspection image.

[0169] The screen used in this example is selected with the following additional specifications. - The frequency of the screen must be at least 60 Hz, and if possible, equal to 90 Hz, 120 Hz or 240 Hz. - The afterglow of the inspection image on the screen must be minimized. The timing of the afterglow of the inspection image is preferably shorter than 1 / 5 of the image display time. If possible, the afterglow time and the image display time are shorter than 1 / 10 of the image display time.

[0170] For example, when the frequency F = 60 Hz, - The display time of each inspection image is T=(1 / 60)s = 16.6 milliseconds (ms), - Therefore, the afterglow time dAfterglow of each inspection image is preferably less than 3 ms because dAfterglow < T / 5 = 16.6 / 5 = 3 ms. Preferably, the afterglow time dAfterglow of each inspection image is less than 1.66 ms because dAfterglow < T / 10 = 16.6 / 10 = 1.66.

[0171] For example, a compliant screen has the following specifications. - A horizontal dimension of 56 mm or more and an optional vertical dimension, - A pixel size of less than 50 microns for measuring a visual acuity of 20 / 10 (-0.3 LogMar) at 40 centimeters or less than 74 microns for measuring a visual acuity of 15 / 10 ((-0.2 LogMar), - a screen frequency of at least 60Hz, - A persistence time of less than 3 milliseconds (ms).

[0172] A smartphone screen can be used for this purpose.

[0173] Other types of screens may also be used, such as the screen of a virtual reality headset.

[0174] The shutter used may be, for example, an X-FOS(G2)® shutter from LC-Tec®, Sweden.

[0175] A synchronizer 43 of the display system 20 sends a signal to each shutter to change from an actuated state to an inactuated state and vice versa.

[0176] The synchronizer 43 can be realized in different ways.

[0177] The synchronizer 43 may include a photoreceptor positioned in front of a particular portion of the screen S0.

[0178] Thus, the synchronizer 43 also includes a portion of each test image displayed by the screen S0, such that each test image displayed for a given eye, e.g., the subject's first eye E1, includes a white area displayed on the particular portion of the screen S0 in front of which the photoreceptors are located, and a black area on all test images displayed for the other eye, e.g., the subject's second eye E2.

[0179] When a test image having black regions is displayed, the photoreceptor receives a signal that is entirely different from the signal received when a test image having white regions is displayed. The photoreceptor is then connected to an electrical circuit to convert this signal into an input signal for the shutter.

[0180] Other synchronization devices using photoreceptors may also be used, such as a synchronization device using two different photoreceptors placed in front of two different specific portions of the screen S0. Each test image associated with one eye is then provided with a white region positioned in a first of the two specific portions of the screen, and the test image associated with the other eye is provided with a white region positioned in a second specific portion of the screen S0.

[0181] Alternatively, the cable is, for example, a USB cable connected to the main socket of the mobile phone 150. The use of such a cable is preferred as this solution has the advantage of being almost instantaneous.

[0182] Alternatively, for example when using the screen of a smartphone, the synchronization device may comprise the smartphone's audio system, which is used to transmit an audio signal perfectly synchronized with the image, which is then connected to an electrical circuit to convert this signal into an input signal for the shutters 41, 42.

[0183] When the image for the first eye E1 is displayed, an electrical audio signal is generated, which is sent to the microcontroller of the synchronizer 43. The microcontroller converts this signal into an input signal for the shutters 41, 42.

[0184] When the shutters 41 and 42 receive this signal, the shutter 41 disposed on the first optical path OP1 is deactivated, and the other shutter 42 is activated.

[0185] After a timing corresponding to the screen frequency F, an image for the second eye E2 is displayed and an electrical audio signal is generated. The electrical signal is sent to a microcontroller, which converts it into an input signal for the shutters 41, 42.

[0186] When the shutters 41 and 42 receive this signal, the shutter 42 disposed on the second optical path OP2 is deactivated, and the other shutter 41 is activated.

[0187] The synchronization device 43 may include wireless communication means between the screen S0 and the shutters 41, 42 by Bluetooth, Wi-Fi or IR signals.

[0188] The electronic shutter may also include two polarizers disposed in each of the first and second optical paths OP1, OP2, where a first of the two polarizers has a fixed polarization and the polarization orientation of the other, second polarizer, can be controlled so that the polarization of the second polarizer can be selectively positioned parallel to the polarization of the first polarizer in a deactivated state or orthogonal to the polarization of the first polarizer in an activated state.

[0189] For example, the shutter may include an active polarization rotator placed on the screen S0 in front of the shutter, the active polarization rotator having a first state in which the linear polarization of the screen S0 is unchanged and a second state in which the linear polarization of the screen S0 is tilted by 90°.

[0190] Next, two active polarizers are positioned on the refraction testing unit 10 in front of each eye of the subject, with orthogonal polarization axes, one parallel to the unchanged linear polarization of the screen and the other parallel to the linear polarization of the screen tilted by 90° by an active polarization rotator.

[0191] In this case, the synchronizer simply synchronizes the active polarizer with the screen S0.

[0192] An example of this display system includes a screen with 45° linear polarization, such as a smartphone screen.

[0193] An active polarizer is positioned above the screen and, when inactive, rotates the polarization of the incident light by 90°. The polarization of the light emitted by the screen / active polarizer assembly is then oriented at 135°. When active, there is zero rotation. The polarization of the light emitted by the screen / active polarizer assembly is then oriented at 45°.

[0194] The active polarizer is controlled by a smartphone via a USB connector, which provides both an enable / disable signal and power.

[0195] Alternatively, when the display system 20 alternately generates the first and second inspection images in a single display area, the image selection unit may include two filters adapted to selectively transmit and / or reflect light having wavelengths falling within two separate predetermined wavelength ranges, or two polarizers adapted to selectively transmit and / or reflect light having different polarizations oriented along different predetermined axes.

[0196] One of two filters or polarizers is placed in front of each eye of the subject, and two test images are displayed alternately at wavelengths belonging to two different predetermined wavelength ranges of the filters or at polarizations parallel to the different predetermined axes.

[0197] Each eye sees only the test image associated with that eye. No synchronization is required. The optometric devices described herein can be used as visual stimuli during vision testing at near or intermediate vision.

[0198] The test image can be positioned at a near viewing distance, for example, 40 centimeters, or at an intermediate viewing distance, for example, 60 centimeters, from the subject's eye.

[0199] As will be presented in detail below, each of the first and second inspection images displayed includes: - central parts 111, 112; 121, 122 for displaying a visual target or any visual objective or for remaining blank; - peripheral portions 131, 132; 141, 142 surrounding central portions 111, 112; 121, 122; and contribute to a balanced fusion process between a subject's left and right visual pathways.

[0200] The two images are stereoscopic, designed to provide a subject with a stereoscopic vision.

[0201] An ophthalmic test image including a target or other visual object in the central portion is provided to the first eye of the subject, while a non-ophthalmic test image also including a target or other visual object in the central portion is provided to the second eye of the subject.

[0202] A target or other visual target displayed in a central portion of the non-ophthalmic examination image is displayed with a contrast lower than the contrast of the corresponding target or other visual target in the subject's examination image. A target or other visual target displayed in a central portion of the non-ophthalmic examination image can be the same target or visual target as displayed in the subject's examination image, only with a contrast lower than the contrast of the corresponding target or visual target in the subject's examination image.

[0203] Next, to determine the refractive error of the subject's second eye, an ophthalmic test image having a target or other visual object is provided to the second eye, while a non-ophthalmic test image having a lower contrast central portion is provided to the subject's first eye.

[0204] In the test images shown in Figures 18 and 20, one of the test images, shown on the right, has lower contrast than the other test image of the same figure, shown on the left.

[0205] Some subjects have binocular vision in which the image perceived by one of the subject's eyes, called the dominant eye, is strongly dominated. In other words, such subjects have one visual pathway that has a strong dominance over the other visual pathway in the neural process of binocular image fusion. For such subjects, if a completely blank image is presented to the subject's dominant eye during the binocular refraction procedure described above, a "suppression" phenomenon may occur due to binocular rivalry between the subject's left and right visual pathways. In this case, the image perceived by the subject is completely blank.

[0206] Such suppression of the visual target in the perceived image naturally makes it difficult or even impossible to determine the refractive error of the non-dominant eye. Even if the subject's ocular dominance is not strong enough to cause such suppression, it often causes the image perceived by the subject to flicker or flash. Furthermore, during such binocular refraction procedures, the flickering of the image perceived by the subject may also be caused by the subject's vision problems related to ocular convergence. These adverse effects reduce the accuracy or comfort of the binocular refraction procedure for the subject, and increase the time it takes to perform.

[0207] The peripheral portion of the test image stabilizes the fusion of the two test images by the subject's brain, reducing the "suppression" phenomenon. In this way, the visual test is more comfortable for the subject and provides more accurate results.

[0208] The test images I11, I12; I21, I22 or at least peripheral portions 131, 132; 141, 142 of the test images show real-life activities that are typically performed with near vision, such as cooking, reading, etc.

[0209] Advantageously, as described above, the test images provided to the subject's eyes using the optometric devices 1 and 2 may have at least partially different contrasts. For example, the contrast of the optometric test image provided to the subject's eye is greater than 80%, preferably greater than 90%, and preferably equal to 100%. The contrast of the non-optometric test image provided to the other eye is less than 15%, preferably less than 10%, and preferably equal to 5%. Typically, the contrast of the non-optometric test image provided to the other eye is less than 50% of the contrast of the optometric test image provided to the subject's eye.

[0210] Contrast is sometimes defined as (Loptotype-Lbackground) / (Loptotype+Lbackground), where Loptotype is the luminance of the target and Lbackground is the luminance of the background.

[0211] Alternatively, the peripheral portion of the ophthalmic test image provided to the subject eye and the peripheral portion of the non-ophthalmic test image provided to the other eye have the same contrast. The central portion of the ophthalmic test image and only the central portion of the non-ophthalmic test image provided to the other eye have different contrast. For example, the contrast of the central portion of the ophthalmic test image is greater than 80%, preferably greater than 90%, and preferably equal to 100%. The contrast of the central portion of the non-ophthalmic test image is less than 15%, preferably less than 10%, and preferably equal to 5%. Typically, the contrast of the central portion of the non-ophthalmic test image is less than 50% of the contrast of the central portion of the ophthalmic test image.

[0212] Additionally, to improve subject comfort and further reduce suppression effects, the peripheral portions of each test image contain components with different binocular disparities.

[0213] In reality, due to the horizontal separation of the eyes, a subject's two eyes have different perspectives on any scene observed by the subject. The difference in the eyes' perspectives gives rise to binocular disparity, which the brain uses to extract depth information from the combination of the two 2D retinal images.

[0214] Binocular disparity refers to the difference in the position of an object seen by the left and right eyes during binocular observation of that object. In practice, binocular disparity represents the distance between two corresponding points in the left and right images of a stereo pair, reflecting the difference in the image position of an object seen by the left and right eyes resulting from the horizontal separation of the eyes and the distance between the target eye and the object.

[0215] A similar difference in perspective is simulated in a stereoscopic 3D representation by generating two images that differ from each other by a difference in perspective corresponding to a given disparity, and displaying each of them to one eye of the subject.

[0216] The disparity of the stereoscopic 3D representation of any component of the test image is determined based on the actual distance between this object and the subject's interpupillary distance in real life. Disparity is typically larger for objects closer to the subject than the screen, negative (crossed) for objects closer than the screen, and positive (uncrossed) for objects farther away from the screen. It can be expressed as the viewing angle through which the component is viewed.

[0217] In the example test images shown in FIGS. 18 and 20, the components in the peripheral portion of the test image are fruits. Different types of fruits are displayed with different disparities. For example, the components in the peripheral portion of the test image have disparities of 1600", 800", 400", 340", 280", 200", 160", 120", 100", and 80". Disparities are expressed herein as angles in arc minutes.

[0218] The central portions 111, 112; 121; 122 of the example test images I11, I12; I21, I22 shown in Figures 18 and 20 are visual targets for spherical testing of the first and second eyes in some cases (Figure 18), and for cylindrical testing of the first and second eyes in other cases (Figure 20).

[0219] In either case, the visual targets 112, 122 of the second test image displayed to the non-examined eye are identical to the visual targets 111, 121 of the first test image displayed to the eye being examined, and have lower contrast.

[0220] The final images seen by the subject are shown in FIG. 19 for the two test images of FIG. 18 and in FIG. 21 for the two test images of FIG.

[0221] Finally, the optometric device 1, 2 according to the invention also comprises a control unit, such as a computer, programmed to display the examination images at the appropriate times.

[0222] The sets of test images for the first and second eyes may be stored in the memory of the control unit. If the screen used belongs to a smartphone, the control unit may include the smartphone. The change from one test image to the next may be triggered manually by the operator of the optometric device, for example by clicking on the screen when the operator wants to change images.

[0223] Alternatively, in a preferred embodiment, the control unit may comprise a different smartphone than the one or two smartphones used in the display system to provide the screen.

[0224] All smartphones are connected to the same Wi-Fi network and communicate using the TCP-IP protocol. They can also communicate using the NearbyAPI protocol.

[0225] The operator selects the test they wish to perform, for example, determining sphere, cylinder, astigmatism axis, left eye visual acuity, right eye visual acuity, or binocular visual acuity.

[0226] A message is sent to each smartphone in the display system 20 indicating which test to perform.

[0227] Each smartphone in the display system receives the message and opens a file containing a list of all exam images corresponding to this exam. When this file is opened, the first image in the list is displayed on the screen of the corresponding smartphone.

[0228] The operator can remain remote from the wearer and the examination. [Explanation of symbols]

[0229] 1. Optometry equipment 2. Optometry equipment 10 Binocular Refraction Test Unit 11 Light-refractive elements 12 Second Photorefractive Element 20 Display System 31 Beam Splitter 41 Shutter 42 Shutter 50 microlenses

Claims

1. An optometric device (1, 2) for binocular examination of a subject's eyes, comprising: a binocular refraction test unit (10) comprising a first optically refractive element (11) adapted to provide different vision correction powers along a first optical axis (OA1) and a second optically refractive element (12) adapted to provide different vision correction powers along a second optical axis (OA2); a display system (20) for providing first and second inspection images (I11, I12; I21, I22), the first inspection image being transmitted along a first optical path (OP1) to the first light-refractive element (11) and the second inspection image being transmitted along a second optical path (OP2) to the second light-refractive (12) element; Including, the first and second inspection images are provided with detail of less than 1 arc minute over a field of view of at least 8 degrees in the horizontal direction; the binocular refraction testing unit (10) presents a toroidal vision testing configuration in which the first and second optical axes (OA1, OA2) of the first and second refractive elements (11, 12) are inclined downwards; said first and second optical paths (OP1, OP2) have a length comprised between 25 and 100 centimetres and make it possible to examine the eye of the subject at near and / or intermediate vision, the display system (20) generates the first and second test images in two separated display areas (Z1, Z2); the ophthalmological apparatus includes a light transmission unit that transmits the first and second images to the first and second eyes along the first and second paths, the light transmission unit including a beam splitter (31); the display system (20) includes two separate screens (S1, S2), each of the separate screens (S1, S2) displaying one of the first and second images; the two separate screens and the beam splitter are housed in the same box; the ophthalmological examination device includes an alignment verification device for verifying alignment of the first and second optical paths (OP1, OP2) with each eye (E1, E2) of the subject, the alignment verification device including at least a retractable camera directed at the subject's eye, the retractable camera being positioned in front of the center of one of the screens of the display system (20) or a sensor integrated into one of the screens of the display system (20); Optometry device (1, 2).

2. The optometric device (1) according to claim 1, wherein the display system (20) is mechanically coupled to the binocular refraction examination unit (10) so as to be integral with the binocular refraction examination unit (10).

3. 2. The ophthalmic examination device according to claim 1, wherein the binocular refraction examination unit (10) is movable between at least two examination configurations: a horizontal vision examination configuration in which the first and second optical refractive elements (11, 12) are positioned in a first position in which the first and second optical axes (OA1, OA2) extend horizontally, and an oblique vision examination configuration in which the first and second optical refractive elements (11, 12) are tilted compared to the first position, whereby the first and second optical axes (OA1, OA2) are tilted downwards.

4. 4. The ophthalmic examination device according to claim 3, wherein the binocular refraction examination unit (10) is rotatably movable as a whole about a horizontal axis (H) parallel to the mean plane (MP) of the first and second optical refractive elements (11, 12), the horizontal axis (H) passing through a predetermined point at which a center of rotation (ERC1) of one of the eyes (E1, E2) of the subject is located when the eye of the subject looks through the refraction examination element.

5. 2. The ophthalmic apparatus of claim 1, wherein the positions of the first and second examination images (I11, I12, I21, I22) in the display system (20) are adjustable so that the first and second images are aligned with the first or second optical path (OP1, OP2).

6. 2. The ophthalmological device (1, 2) according to claim 1, wherein the image selection unit comprises a filter adapted to selectively transmit and / or reflect light having a wavelength comprised in a predetermined wavelength range or a polarizer adapted to selectively transmit and / or reflect light having a polarization oriented along a predetermined axis.

7. The ophthalmic device (1, 2) according to claim 1 , wherein the light transfer unit comprises a polarizer rotator for alternately rotating the first and second test images in front of it.

8. The optometric device of claim 1 , wherein each screen comprises a microdisplay, each of the separate microdisplays displaying one of the first and second images.

9. The optometric device of claim 1 , wherein the light transmission unit includes two light guides that each transmit light emitted from one of the separated display areas toward one of the eyes of the subject.

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