Method and system for refraction measurement, method for optical design of a spectacle lens, and spectacles comprising such a spectacle lens
Patent Information
- Application Number
- DE602017091606
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2016-12-07
- Filing Date
- 2017-10-27
- Publication Date
- 2025-09-03
- Estimated Expiration
- 2037-10-27
AI Technical Summary
Traditional refraction measurements do not account for an individual's visuo-postural parameters, leading to biased and poorly suited visual correction equipment prescriptions.
A method that adjusts refraction measuring devices using visuo-postural parameters to personalize refraction measurements, allowing for measurements in the individual's natural posture and behavior, and iteratively refining these measurements to ensure accuracy.
The method provides a precise and personalized refraction measurement, resulting in better-adapted visual correction equipment and improved visual comfort.
Description
[0001] The present invention relates generally to the field of optometry and the optical design of ophthalmic lenses.
[0002] It relates more particularly to a method of measuring an individual's refraction.
[0003] It also relates to a system adapted to the implementation of this method as well as a computer program usable in said system and intended to automate one or more steps of said measuring method.
[0004] It also relates to a method of optical design of an ophthalmic lens and a method of selecting an eyeglass frame from the refraction measurement obtained with said measuring method.
[0005] Finally, it concerns a pair of glasses comprising such an ophthalmic lens or such a frame. TECHNOLOGICAL BACKGROUND
[0006] Usually, measurements of an individual's refraction are carried out with a measuring device (refractometer or trial glasses for example) in measurement conditions which deviate, sometimes quite widely, from those in which the individual will wear their visual correction equipment, fitted with one or two ophthalmic lenses intended to correct this refraction.
[0007] In other words, the refraction measurements carried out on the individual are carried out using a standard measuring device, for which the adjustment parameters are fixed a priori, without taking into account any possible visuo-postural parameters of the individual. Throughout this application, we will understand by " visuo-postural parameter» a parameter concerning the posture of the individual in a vision situation or activity. The posture of the individual will be understood in the broad sense as including either data relating to the positioning of his head (position and / or orientation) and / or his eye(s). In an even broader sense, the posture of the individual may also be understood as including data relating to the positioning of the individual's trunk.
[0008] For example, when measuring near vision visual acuity, the distance generally used to perform the appropriate visual test is set at a standard value of 33 or 40 centimeters. However, this standardized distance may not correspond to the individual's actual reading distance when they are in their reading posture. It therefore follows that the refraction measurement is biased and that the visual correction equipment prescribed based on this visual acuity measurement proves to be poorly or not at all suitable for restoring sufficient acuity.
[0009] Similarly, an individual's refraction measurement is traditionally performed without vision correction equipment (e.g., the last prescribed equipment) and almost always without the frame that the individual might choose for their new prescription. However, wearing a frame, with or without ophthalmic lenses, has an impact on the individual's posture in wearing conditions and also on the way in which they perform visual acuity tests.
[0010] Thus, the usual refraction measurements are not carried out in conditions of natural and unconstrained posture of the individual, nor with the frame that he would be likely to wear.
[0011] Consequently, refraction measurements carried out according to the prior art measuring methods are not very personalized and may prove to be approximate or, at the very least, poorly suited to the prescription of new visual correction equipment.
[0012] For example, document FR2984716 discloses a method for determining an individual's refraction.
[0013] Also known from document FR2992843 is a device for measuring ocular refraction and a geometric-morphological parameter of an individual. SUBJECT OF THE INVENTION
[0014] In order to overcome the aforementioned drawback of the state of the art, the present invention proposes a method for measuring the refraction of an individual which makes it possible to take into account as best as possible the posture and visual behavior of the individual in wearing conditions.
[0015] According to the invention, a method for measuring the refraction of an individual by means of a refraction measuring device, according to claim 1, is proposed.
[0016] Thus, thanks to the use of one or more adjustment parameters, respectively deduced from one or more visuo-postural parameters of the individual, for the prior adjustment of the measuring device intended for the measurement, it is possible to carry out this measurement in conditions for which the individual in vision activity is in the most natural posture possible and adopts usual visual behavior.
[0017] By pre-setting the measuring device with the initial value(s) of these adjustment parameters, the refraction measurement therefore takes into account a priori of the individual's visuo-postural parameters and becomes a personalized measure of the individual's refraction. This measurement is also more representative of the real-life wearing conditions that the individual may experience with future vision correction equipment prescribed in correspondence with this personalized refraction measurement.
[0018] This process allows us to converge towards a personalized measurement of the individual's refraction which is even more precise and more representative of the individual's wearing conditions.
[0019] Other non-limiting and advantageous characteristics of the measuring method according to the invention, taken individually or in all technically possible combinations, are set out in claims 2 to 4.
[0020] The invention also provides a method of optically designing an ophthalmic lens for an individual according to claim 5.
[0021] By implementing the measurement method according to the invention, the measurement of the individual's refraction is more precise and the optical design of the ophthalmic lens is better adapted to the individual's visual correction.
[0022] The optical design process therefore allows for better personalization of visual correction equipment intended for the individual.
[0023] Furthermore, this optical design process finds a particularly advantageous application for the design of an ophthalmic lens intended to improve the visual comfort of an individual.
[0024] The invention finally proposes a system for implementing the method for measuring the refraction of an individual in accordance with the invention, in accordance with claim 6.
[0025] Another invention relates to a computer program adapted to carry out the calculations of step b) of the method for measuring the refraction of an individual when it is loaded and executed in said calculation means of the aforementioned system. DETAILED DESCRIPTION OF AN EXAMPLE OF IMPLEMENTATION
[0026] The description which follows with reference to the appended drawings, given as non-limiting examples, will make it clear what the invention consists of and how it can be implemented.
[0027] On the attached drawings: there figure 1 represents a schematic diagram of a first embodiment of the refraction measurement method proposed by the invention; figure 2 represents a schematic diagram of a second embodiment of the refraction measurement method proposed by the invention; figure 3 represents a schematic diagram of a third embodiment of the refraction measurement method proposed by the invention; figure 4 is a schematic view of an individual holding in his hands a visual testing device usable during certain steps of the aforementioned measuring methods; Figure 5 is a front view of the test device of the figure 4on which a visual target moving according to a visual tracking protocol is displayed; figure 6 is a schematic view of the individual's head and different planes associated with this head; the figure 7 represents a landmark linked to the individual's head; the figure 8 represents a display of the test device of the figure 4 with a displayed target and a marker linked to the head of the individual looking at the target in a final position of the protocol; the figures 9 and 10 represent examples of measured positions of the target in the frame of reference linked to the individual's head during the reading protocol; figure 11 is a schematic diagram showing a reference gaze direction in a frame of reference linked to the individual's head and a fictitious display surface of the theoretical target positions; the figure 12represents in the frame of reference linked to the individual's head the theoretical target positions on the display surface and the target positions measured in this frame of reference; figure 13 is a graph illustrating the calculation of the deviation between the theoretical target positions and the measured target positions; the figure 14 is a curve representing the deviations between the theoretical target positions and the measured target positions as a function of the theoretical target positions; figures 15 and 16 are curves illustrating the calculation of parameters of the visual behavior of the individual when looking at the target of the protocol of the Figure 5 .
[0028] As a preamble, it will be noted that the identical or similar elements of the different embodiments represented in the different figures will be referenced by the same reference signs and will not be described each time.
[0029] It should also be noted that in the following discussion, the terms "top" or "upper") and "bottom" (or "lower") will be used in relation to the individual, with top designating the side facing the individual's head and bottom designating the side facing the individual's feet.
[0030] Similarly, the term "front" will designate the side facing the individual, the term "back" designating the side opposite the front side.
[0031] Throughout this application, measurement of an individual's refraction will be understood to mean the determination of the optical properties of one and / or the other of the individual's two eyes by an ophthalmologist, an optometrist or an optician-eyewear specialist.
[0032] The optical properties commonly measured include spherical power (positive or negative), astigmatism (cylindrical and axis power) and more specifically near vision astigmatism, exophoria or esophoria (prismatic power), accommodative power (addition of spherical power in near vision). Other optical properties may include contrast sensitivity, blur sensitivity, visual acuity, higher-order optical aberrations of the eye, stereoscopic acuity, color vision, or the extent of the visual field.
[0033] There figure 1 schematically represents the main steps of a first example of embodiment of a refraction measurement method in accordance with the invention.
[0034] This process begins with a step E2 of determining, using a visual testing device, a value of a visuo-postural parameter PP of the individual whose refraction is to be measured.
[0035] In the example described here, the individual is not wearing any visual correction equipment.
[0036] However, it could be provided as an alternative that the individual wears visual correction equipment, for example visual correction glasses (glasses formed from a frame carrying at least one ophthalmic lens) made on the basis of a previous prescription, or trial glasses (the correction provided by these trial glasses can be selected by conventional methods, less precise than the refraction measurement method described here).
[0037] According to another variant, the individual could then wear a bare frame (i.e. without an ophthalmic lens).
[0038] The visuo-postural parameter PP concerned is, for example, a reading distance in near vision, an angle of lowering of the gaze (in particular in near vision), a parameter of convergence of the two eyes (in particular in near vision), or a direction of gaze (for example in near vision).
[0039] The following is described with reference to the figures 4 to 16 , an example of a possible implementation of step E2 mentioned above using a particular visual testing device. In this example, the determined visuo-postural parameter PP is the direction of gaze (here in near vision) or the posture barycenter in near vision or NVB barycenter (for " Near-Vision Behavior ") described further (data from which one can determine the direction of gaze and / or the reading distance as indicated further).
[0040] In the case where the individual wears a frame (whether or not it is a frame equipped with ophthalmic lenses as explained above), it is also possible to measure on this occasion at least one geometric-morphological parameter characteristic of the wearing of this frame by the individual (i.e. associated with the individual - frame pair), such as for example a lens-eye distance, a pantoscopic angle of said frame, a curve parameter of said frame or a centering parameter of ophthalmic lenses in said spectacle frame. To do this, a method as described in document WO 2015 / 101 737 can be used.
[0041] Once the value of the visuo-postural parameter PP has been determined, the method continues in step E4 by processing this PP value in order to deduce a value of an adjustment parameter PR associated with the aforementioned visuo-postural parameter.
[0042] This processing can be carried out in practice by a dedicated processing device. Such a processing device may comprise a module for receiving the value of the visuo-postural parameter PP determined in step E2 and a module for controlling a refraction measuring device, as explained below. The aforementioned receiving module is for example designed to enter into communication and exchange data (in particular the PP value) with the device used to determine the value of the visuo-postural parameter PP in step E2.
[0043] Alternatively, the processing of the value of the visuo-postural parameter PP can be carried out by the device for determining this parameter (device used for implementing step E2, for example a device as described below with reference to figures 4 to 16 ).
[0044] According to yet another variant, the processing of the value of the visuo-postural parameter PP can be carried out by the refraction measuring device used for the implementation of steps E6 and E8 described below.
[0045] In the example described here, this processing of step E4 consists, for example, of converting a value of gaze lowering in near vision into an orientation angle of the refraction measuring device.
[0046] In some embodiments, the visuo-postural parameter of the individual is identical to the adjustment parameter of the refraction measuring device; the aforementioned processing may then consist of equalizing said PR value of the adjustment parameter to said PP value of the visuo-postural parameter.
[0047] The processing may further include a transformation of the measured PP value of the visuo-postural parameter into a corresponding generally observed value of the same visuo-postural parameter, a transformation carried out according to a predefined rule. It has indeed been noted that there is generally a predictable gap between the PP value of the visuo-postural parameter measured during a visual test and the actual value of this same visuo-postural parameter in common situations (outside the test).
[0048] The method continues in step E6 by adjusting the refraction measuring apparatus (already mentioned above) in accordance with the value of the adjustment parameter PR obtained by the processing of step E4.
[0049] The refraction measuring device is, for example, a refractor as described in WO 2015 / 155458 or in WO 2015 / 092244. The above-mentioned control module can thus, after converting a gaze lowering value into an orientation angle, control an actuator of the aforementioned refractor in order to orient the orientable support of the refractor in accordance with this orientation angle.
[0050] If step E4 is performed by a dedicated treatment device, the value of the PR adjustment parameter may be transmitted (for example by means of a communication system) from this treatment device to the refraction measuring device. Alternatively, the practitioner may adjust the refraction measuring device according to indications relating to the value of the PR adjustment parameter given by the dedicated treatment device (for example by displaying the value of the PR adjustment parameter on a screen of the dedicated treatment device).
[0051] We can then implement a step E8 of measuring the individual's refraction using the refraction measuring device, here the aforementioned refractor.
[0052] The refraction measurement is thus carried out under the individual's natural posture conditions so that the visual correction equipment subsequently produced on the basis of the results of this refraction measurement will be particularly well adapted to the individual.
[0053] In the case where at least one geometric-morphological parameter characteristic of the wearing of a frame by the individual has been measured in step E2, the refraction measuring device can further be adjusted in accordance with one of these parameters. For example, the refractor or the trial glasses can be adjusted so that the position of the trial lenses corresponds to the intended positioning of the lenses (as defined by the frame worn during step E2).
[0054] It is possible to further provide, after implementation of the aforementioned refraction measurement step and when the refraction measuring device cannot be precisely adjusted to the PR value of the adjustment parameter determined in step E4, a final correction step intended to correct the value of the refraction thus measured to take into account a difference between the PR value of the adjustment parameter determined in step E4 and the value to which it was possible to adjust the refraction measuring device during step E6.
[0055] The refraction measurement of step E8 makes it possible to obtain a refraction value R (or correction value) associated with the individual. In practice, at least one refraction value R is naturally measured for each eye of the individual. As already indicated, such a refraction value R is, for example, a spherical power value, a cylindrical power value or a cylindrical correction axis.
[0056] The refraction value of the individual measured during step E8 is then used, in the context of a method for optically designing an ophthalmic lens intended for this individual, to determine the optical profile of this ophthalmic lens (so that this optical profile makes it possible to obtain the desired correction, defined in particular by the measured refraction value, possibly also taking into account the aforementioned geometric-morphological parameters).
[0057] There figure 2 schematically represents the main steps of a second exemplary embodiment of a refraction measurement method in accordance with the invention.
[0058] As will be apparent from what is indicated below, steps E12 to E18 correspond to steps E2 to E8 described above with reference to the figure 1and will therefore not be described in detail again. The observations and variants mentioned in the description of steps E2 to E8 may apply to steps E12 to E18 described now.
[0059] The process of the figure 2 begins with an initial determination step E12, carried out without initial visual correction equipment, of at least one initial PP value of a visuo-postural parameter of the individual whose refraction is to be measured.
[0060] The method then comprises a step E14 of processing said initial value of the visuo-postural parameter PP to deduce at least one initial value of an adjustment parameter PR associated with said visuo-postural parameter.
[0061] The method then continues with a step E16 of adjusting a refraction measuring device according to said initial value PR of the adjustment parameter.
[0062] The method then comprises a step E18 of measuring the refraction of the individual by means of said refraction measuring device as set in step E16. An initial value R0 of the individual's refraction is thus obtained.
[0063] After the first passage to step E18, the method continues to step E20, in which the individual is equipped with visual correction testing equipment adapted to correct the refraction R0 measured in step E18. (The case of the second passage to step E18 is described below.)
[0064] Such visual correction test equipment is for example vision compensation glasses as described in WO 2015 / 155 456. In the case where a control module is used as described above with reference to the figure 1, the control module transmits for example instructions to such visual compensation glasses so that they generate a correction corresponding to the refraction measured in step E18.
[0065] In the example described here, an additional step E22 is then provided for determining at least one additional value PP' of the aforementioned visuo-postural parameter while the individual is equipped with the test equipment. For this purpose, the visual test device already mentioned is used, for example, to implement step E2, described below with reference to figures 4 to 16 .
[0066] The method can thus continue with an additional step E24 of processing said additional value PP' of the visuo-postural parameter to deduce at least one following value PR' of the adjustment parameter associated with said visuo-postural parameter. This processing is of the same type as the processing of step E4 described above and will therefore not be described in detail here.
[0067] As visible in figure 2 , the method then loops to step E16, however using the following value PR' of the adjustment parameter instead of the initial value PR.
[0068] The refraction measuring device is thus set with the next value PR' of the adjustment parameter and can then be used to measure a new value R' of the individual's refraction.
[0069] After this second refraction measurement, the process can be terminated and the new R' value (obtained during the second pass to step E18) can then be used as the result of the measurement process.
[0070] As already indicated, the refraction value (here R') of the individual obtained using the measurement method can then be used, within the framework of an optical design method for an ophthalmic lens intended for this individual, to determine the optical profile of this ophthalmic lens (so that this optical profile makes it possible to obtain the desired correction, defined in particular by the measured refraction value R').
[0071] This results in an ophthalmic lens that is particularly suited to the individual, since the refraction measurement used to design the ophthalmic lens was not only carried out in the individual's natural posture, but also in a situation where the individual is wearing visual correction equipment, as will be the case when using the ophthalmic lens.
[0072] There figure 3 schematically represents the main steps of a third example of embodiment of a refraction measurement method in accordance with the invention.
[0073] As will be apparent from what is indicated below, steps E32 to E38 correspond to steps E2 to E8 described above with reference to the figure 1 and will therefore not be described in detail again. The observations and variants mentioned in the description of steps E2 to E8 may apply to steps E32 to E38 described now.
[0074] The process of the figure 3 begins with an initial determination step E32, carried out without initial visual correction equipment, of at least one initial PP value of a visuo-postural parameter of the individual whose refraction is to be measured.
[0075] The method then comprises a step E34 of processing said initial value of the visuo-postural parameter PP to deduce at least one initial value of an adjustment parameter PR associated with said visuo-postural parameter.
[0076] The method then continues with a step E36 of adjusting a refraction measuring device according to said initial value PR of the adjustment parameter.
[0077] The method then comprises a step E38 of measuring the refraction of the individual by means of said refraction measuring device as set in step E36. A current refraction value R of the individual is thus obtained (which is an initial refraction value during the first passage to step E38).
[0078] The method continues at step E40, in which the individual is equipped with visual correction testing equipment suitable for correcting the current refraction R measured during the last passage at step E18.
[0079] As in the case of the embodiment described above with reference to the figure 2 , such visual correction test equipment is for example vision compensation glasses as described in WO 2015 / 155 456. In the case where a control module is used as described above with reference to the figure 1, the control module transmits for example instructions to such visual compensation glasses so that they generate a correction corresponding to the refraction measured during the last passage to step E38.
[0080] An additional step E42 is then carried out for determining at least one additional value PP" of the aforementioned visuo-postural parameter, the individual being equipped with the test equipment. For this purpose, the visual test device already mentioned is used, for example, to implement step E2, described below with reference to figures 4 to 16 .
[0081] The method can thus continue with an additional step E44 of processing said additional value PP" of the visuo-postural parameter to deduce at least one following value PR" of the adjustment parameter associated with said visuo-postural parameter. This processing is of the same type as the processing of step E4 described above and will therefore not be described in detail here.
[0082] In step E46, a step is then carried out to compare the initial value PR of the adjustment parameter and the following value PR" of the adjustment parameter.
[0083] When the comparison of step E46 indicates that the initial value PR and the following value PR" differ beyond a predetermined difference threshold, the method loops to step E36 so as to implement steps E36 and E38 using the following value PR" of the adjustment parameter to measure a new value of the individual's refraction using the refraction measuring device adjusted according to this following value PR".
[0084] The new measured refraction value is then recorded as the current refraction R and the next value PR" of the adjustment parameter is recorded as the replacement for the initial value PR, and steps E40 and following are then repeated as described above.
[0085] When the comparison of step E46 indicates on the contrary that the initial value PR and the following value PR" differ below said predetermined difference threshold, said additional value PP" determined in step E42 and said current refraction R (measured during the last passage to step E38) are recorded as results of the measurement method.
[0086] This refraction value R can then be used, as part of an optical design process for an ophthalmic lens intended for this individual, to determine the optical profile of this ophthalmic lens (so that this optical profile makes it possible to obtain the desired correction, defined in particular by the refraction value R obtained by the process which has just been described).
[0087] Such an ophthalmic lens is particularly suited to the individual since the refraction measurement used to design the ophthalmic lens was carried out in a natural posture of the individual in a situation where the individual is wearing visual correction equipment similar to that which he will ultimately have, the refraction measurement conditions notably approaching the wearing conditions thanks to the possible iterations of the process.
[0088] As is apparent from the preceding description, to implement the method for measuring the refraction of an individual in the embodiments proposed above, a system is used comprising a visual testing device adapted to evaluate said visuo-postural parameter of the individual, calculation means adapted to deduce a value of an adjustment parameter from a value of the visuo-postural parameter of the individual evaluated by the visual testing device, and a refraction measuring apparatus adapted to be adjusted according to said value of the adjustment parameter deduced by the calculation means and to measure the refraction of the individual.
[0089] As already indicated, an example of such a test device is described further below with reference to figures 4 to 16 The refraction measuring device is, for example, a refractor as described in document WO 2015 / 155 458.
[0090] The computing means may be integrated into a control module (as already mentioned above), possibly a dedicated control module. Alternatively, as already indicated, the computing means may be integrated into the vision testing device or the refraction measuring device.
[0091] In order to carry out the processing provided for in particular in step E4 above, it is possible to use a computer program adapted to carry out the calculations necessary for the processing of step E4 when this computer program is loaded and executed in the aforementioned calculation means.
[0092] The data obtained during the process described above (value of the visuo-postural parameter, measured refraction) can also be used to help in the selection of a spectacle frame.
[0093] The values of visuo-postural parameters obtained within the framework of the process described below with reference to the figures 6 to 16can be used for example to deduce a minimum frame size to help the practitioner recommend a frame.
[0094] In particular, it is possible, by determining one or more visuo-postural parameters, to deduce the final position of the near vision point on an ophthalmic lens based on the frame parameters. Depending on the necessary or desired progression length, it is therefore possible to make a recommendation on the size of the frame, and more precisely on its vertical size (a size known as "B dimension" in the optical field).
[0095] The individual will thus ultimately be able to wear a pair of glasses comprising an ophthalmic lens designed using one of the aforementioned optical design methods and a glasses frame selected as just described.
[0096] We now describe with reference to the figures 4 to 16a visual test device usable for implementing steps E2, E12, E22, E32 and E42 described above.
[0097] On the figure 4 , we have represented an individual 1 whose visual behavior we wish to test.
[0098] For this purpose, the individual 1 holds in his hands 2 a test device 10 intended to determine this visual behavior under given conditions, and in particular the values of visuo-postural parameters defining this behavior.
[0099] More specifically here, it is desired to use the test device 10 to generally analyze the near vision of the individual 1, and in particular the visual behavior that he adopts when he is in a reading situation.
[0100] Near vision will be considered to correspond to an observation distance DO (see figure 4 ) between the eye 3 of individual 1 and the test device 10 less than 70 centimeters (cm).
[0101] In other embodiments, intermediate vision (OD between 40 cm and 4 meters) or distance vision (OD greater than 4 m) may be tested using such a testing device.
[0102] The test device 10 comprises (see figures 4 And 5 ) : an active display 11 which displays a visually predominant target 20 in a plurality of target positions 30 aligned in at least two substantially parallel rows or columns, and a control unit (not shown) of the display 11, programmed so that the target positions 30 define, over time, a visual tracking protocol so as to reproduce the movement of the individual's gaze during reading.
[0103] The display 11 of the test device can display, at each instant of the visual test, a single target or several targets simultaneously. In both cases, the visually predominant target is the one that is suitable for catching the individual's gaze and that the individual will follow during the visual test.
[0104] When several targets are displayed by the display 11, the visually predominant target may be, for example, a brighter or more contrasted target, of a different color or shape (round, square, star, etc.), or of a smaller or larger size than the others, or even a target that flashes while the others do not flash. The different targets displayed by the display may also include a set of indicators or form a grid of gray dots.
[0105] In the embodiments where the display 11 only displays a single target 20 (case of the Figure 5), it can take a plurality of target positions 30 on the display 11. These target positions 30 are “variable” in the sense that the target 20 moves sequentially from one target position 30 to another during the visual test. It will nevertheless be noted that the sequence of target positions 30 taken successively by the target 20 in these embodiments can comprise two identical target positions 30. In other words, it is possible that during the visual test the target 20 passes through a target position 30 already taken previously.
[0106] In embodiments where the display displays several targets, one of which is visually predominant, the display positions of the targets may vary over time, but in any event, the visually predominant target is the one that moves according to a sequence of target positions so as to impose on the individual 1 a succession of particular gaze directions.
[0107] In this description, the term “ visual tracking protocol » the display sequence of the visually predominant target 20 during the visual test carried out by individual 1.
[0108] In other words, this visual tracking protocol corresponds to the succession, over time, of the target positions 30 taken by the visually predominant target 20. Thanks to this, a protocol is imposed on the individual 1 who looks successively in a plurality of desired particular directions which are each associated with a particular target position 30 taken by the target 20. In this way, if the target positions 30 of this target 20 are known, it is then possible, under certain conditions, to go back to the information concerning the direction of gaze of the individual 1 during the visual test.
[0109] In the remainder of the description, the term “gaze direction” of individual 1 associated with a target position 30 of target 20 will be understood to mean the direction of the line passing through: one of the centers of rotation of the right eye or the left eye of individual 1, or a barycenter of these centers of rotation; and said target position 30 when individual 1 observes target 20 taking this target position 30.
[0110] As illustrated in the Figure 5 , the test device 10 is here in the form of a digital tablet. This digital tablet comprises a screen which constitutes the display 11 of the test device 10. It also comprises a housing 12 surrounding the screen. The control unit of the test device 10 corresponds, for its part, to the display controller of the screen 11 of the tablet which is housed inside the housing 12.
[0111] The test device 10 also comprises an image capture apparatus 13 which is controlled by the control unit synchronously with the display 11 to trigger image captures of the head 4 of the individual 1 observing the target 20 displayed by the display 11, each captured image corresponding to a predetermined target position 30.
[0112] Preferably, the front camera 13 integrated into the tablet 10 is used here as the image capture device of the test device. This front camera 13 has the advantage of always facing and aiming at the individual 1 during the visual test carried out by the individual 1.
[0113] In other embodiments, provision may be made to use an image capture apparatus separate and distinct from the display.
[0114] The target 20 here comprises a luminous disc which is displayed on the screen of the tablet, the size of the target being sufficient for it to be visible to individual 1 under the conditions of the visual test. Here, under reading conditions and near vision (OD < 70 cm), the target 20 has a characteristic size (e.g. diameter) greater than 5 millimeters.
[0115] Advantageously, the characteristic size of the target 20 is determined such that it can be seen with an acuity greater than 0.1 tenth at 70 cm.
[0116] Alternatively, the target may comprise a geometric pattern, whether regular or not. It is preferably any pattern, excluding a sign used by any writing system understandable by the individual. In particular, the visually predominant target is meaningless to the individual. For example, the target is not a word intelligible to the individual.
[0117] We will now describe, with reference to the Figure 5 , the visual tracking protocol which is implemented by the test device 10 and which is intended here to simulate the reading of a text by the individual 1.
[0118] Advantageously, the display of the target according to the visual tracking protocol implemented by the test device 10 constitutes a visual stimulus for the individual 1, intended to make him move his eyes 3 by tracking this target 20 according to the same pattern as that which the individual 1 would adopt if he were actually reading a text.
[0119] In other words, the display of the visually predominant target 20 on the display 11 is controlled in such a way that, when the individual 1 follows the target 20 with his gaze from one target position 30 to another, the direction of the gaze of the individual 1 presents successive gaze directions entirely similar to the gaze directions that this individual 1 would have when reading a text.
[0120] The sequence of target positions 30 taken successively by the visually predominant target 20 is preferably predetermined based on a reference text, and / or a reading model, corresponding to the characteristics and / or reading / writing preferences of the individual.
[0121] For example, the sequence may be predetermined in advance with another device, during a calibration operation in which the individual is asked to choose a reference text from a plurality of available real texts and read it aloud. The reading speed can then serve as a parameter for determining the target display positions.
[0122] The sequence may also be predetermined based on the individual's age or based on a reading level reported by the individual, following a questionnaire completed by the individual.
[0123] One can also consider doing training with an average speed, asking the individual if this average speed was too fast or not fast enough and adjusting the speed according to their response.
[0124] We will first observe that the reading of a text by an individual is done naturally according to a reading pattern comprising three distinct operations: fixations, saccades and retro-saccades.
[0125] During fixations, the individual deciphers the word he is reading, that is, the word on which the individual's gaze is fixed.
[0126] During saccades, corresponding to the displacement phases, that is to say the passages from reading one word to the next, the individual's eyes move quickly to pass from one fixation to another.
[0127] These saccades are linked to the visual span, that is, the number of characters (letters, symbols, ideograms, etc.) that can be deciphered for a given fixation. They allow the reader to decipher all the characters in a text.
[0128] Saccades are generally made in the direction of reading the text. However, the eyes also make very rapid "retro-saccades" in the opposite direction to the reading direction to move from one fixation to another. This movement is induced by an error in the oculomotor muscles or by poor reading and understanding of the text.
[0129] One of the advantages of the test device 10 is that it offers visual tracking protocols that are as close as possible to the individual's reading patterns.
[0130] The test device 10 therefore makes it possible to simply simulate the reading of a text and to place the individual in a situation where he will adopt a natural posture close to that which he would adopt for reading with close vision.
[0131] A determination of the individual's visual behavior under these conditions is therefore made more precise and the optical design of an ophthalmic lens intended for the individual can be improved so that the design of the ophthalmic lens meets the individual's visual needs.
[0132] Preferably, the target positions 30 of the target 20 are aligned along at least two substantially parallel lines. More precisely, in the exemplary embodiment shown in the figures, the control unit of the display 11 is programmed so that the successive target positions 30 of the target 20 are aligned along five lines L1, L2, L3, L4, L5 (see Figure 5 ).
[0133] Alternatively, the target positions of the target can be aligned in at least two columns.
[0134] Generally, the target positions 30 of the target 20 can define parallel lines of any direction, in particular substantially horizontal or vertical for the individual 1.
[0135] More preferably, each row, or alternatively each column, comprises at least three aligned positions of said target (case of positions 37, 38, 39 for row L5 of the Figure 5 ).
[0136] In order for the visual tracking protocol to be as representative as possible of reading by the wearer, it is advantageously provided that the visual tracking protocol describes a reading path which is consistent with that defined by a given writing system, so as to reproduce the movement of the individual's gaze during reading in accordance with the writing system.
[0137] The reading path can be defined here as the path, at the level of the display 11, scanned by the direction of gaze of the individual 1 when he looks at the sequence of target positions 30 taken by the visually predominant target 20.
[0138] The reading pattern adopted by an individual is linked not only to the nature or specific properties of the text, but also to the specificities of each script.
[0139] It should also be noted that the different writings can be classified functionally (alphabetic, syllabic or logographic writing) and directionally (horizontal and vertical direction of writing and / or reading).
[0140] The test device therefore provides that the control unit memorizes a vertical SV and horizontal SH direction of travel (see Figure 5 ) preferred visual tracking protocol.
[0141] This preferred direction of vertical and horizontal travel is previously determined based on the characteristics of the individual, and in particular their ability to read a text according to a given writing system.
[0142] For example, when the test device is used by a French person who reads from left to right and from top to bottom, the horizontal direction of travel memorized by the control unit is a direction of travel going from the left of screen 11 to the right of screen 11, and the vertical direction of travel memorized by the control unit is a direction of travel going from the top of screen 11 to the bottom of screen 11.
[0143] Also, in a preferred embodiment, the substantially parallel lines L1, L2, L3, L4, L5 along which the target positions 30 of the target 20 are aligned extend substantially horizontally, the direction of travel of the visual tracking protocol being identical for all the lines taken successively from the highest to the lowest, from left to right (or from right to left for a right-to-left writing such as Arabic or Hebrew).
[0144] Similarly, when the test device is used by a Mongolian, who reads from top to bottom and from right to left, the vertical direction of travel memorized by the control unit is a direction of travel going from the top of the screen to the bottom of the screen, and the horizontal direction of travel memorized by the control unit is a direction of travel going from the right of the screen to the left of the screen.
[0145] Also, in an embodiment adapted to this writing system, the substantially parallel lines along which the predetermined positions of the target are aligned extend substantially vertically, the direction of travel of the visual tracking protocol being identical, from top to bottom or from bottom to top, for all the lines taken successively from right to left.
[0146] Advantageously, the control unit of the test device 10 is programmed to allow the selection of the visual tracking protocol from a plurality of visual tracking protocols recorded in a local or remote database, in which a direction of travel is recorded in association with the visual tracking protocol to which it corresponds.
[0147] Thus, the individual, depending on their own reading and / or writing characteristics, can choose the visual protocol that suits them, so that they are in natural conditions close to reading when carrying out the visual test. We then ensure that their reading mechanisms and strategies are put in place in order to recover the posture most representative of the use of their near vision.
[0148] In order to reproduce the reading pattern as described above, with fixations, saccades and retro-saccades, it is provided that the control unit of the display 11 displays the target 20 according to a preferential visual tracking protocol.
[0149] Also, it is provided that the control unit imposes, in each target position 30 of the visual tracking protocol, that the target 20 is displayed for a predetermined duration. This means that the target 20 is kept fixedly displayed on the screen so that the individual 1 is forced to fix his gaze on the target 20, which corresponds to a fixation on the target position 30 in the reading path of the individual 1.
[0150] Advantageously, the target 20 is fixed for the predetermined duration, i.e. the target position 30 of the target 20 during this predetermined duration does not change, before moving to the next target position of the reading path.
[0151] Preferably, this predetermined duration is between 50 milliseconds and 1 second, which typically corresponds to standard fixation times.
[0152] The predetermined duration can also vary during the reading process, this taking into account the fact that the fixation of the gaze of individual 1 on a word during actual reading can depend on the word (size, length) and the level of understanding of this word (poorly known or unknown word, difficult to decipher word or character, misspelled word, etc.).
[0153] Advantageously also, it is provided that the control unit imposes a predetermined delay between the displays of the target 20 in two successive target positions (see for example the target positions 31, 32 on the Figure 5 ) of the visual tracking protocol.
[0154] In this way, the saccades or retro-saccades existing during the reading path of the individual 1 can be simulated using the test device 10. As previously, the control unit can be provided to vary the predetermined delay during the visual tracking protocol.
[0155] This allows us to realize that the reading speed of individual 1 can vary during the reading of a text.
[0156] This also allows us to consider cases where the direction of gaze of individual 1 passes from one line to another, as is the case for example from target position 33 to target position 34 of the Figure 5 , the return to the line requiring more time since the variation in the direction of gaze of individual 1 is greater.
[0157] It is then possible to predict two cases for the target during the predetermined time.
[0158] In one embodiment, it can be provided that the target is invisible during the predetermined time. This corresponds to the case of target positions 31 and 32 of the Figure 5 where the target 20 " jump» (the jump being represented by the dotted arrow 40) from position 31 to the next position 32. This embodiment makes it possible to account for the gaze of the individual who jumps from word to word when reading a text.
[0159] In an alternative embodiment, it can be provided that the target is visible during the predetermined delay and moves between the two corresponding successive target positions of the visual tracking protocol, from one to the other. This corresponds to the case of target positions 35 and 36 where the target moves (the movement being represented by the dotted arrow 49), while remaining visible.
[0160] Advantageously, the test device 10 of the invention is such that the control unit requires that two successive target positions 37, 38, 39 of the visual tracking protocol are separated by a distance EM1, EM2 of less than 10 centimeters. In this way, during the visual test, the individual 1 is not solicited in such a way that the variation in his direction of gaze is not too great, which is generally the case in reading conditions.
[0161] Preferably, it is further provided that the control unit imposes that the distance EM1, EM2 separating two successive target positions 37, 38, 39 of the visual tracking protocol varies along the visual tracking protocol. This makes it possible to adapt the gap between the targets 20 displayed as a function of the average span of the words for a given writing system.
[0162] In another embodiment, the control unit is programmed so that the display of the target 20 in two successive target positions of the visual tracking protocol follows the preferred direction of travel, horizontal and / or vertical, at least six times out of ten. This is illustrated in the Figure 5 on which we have represented in the visual monitoring protocol, directions of travel, represented by the dotted arrows 43, 45, 48, which go not from left to right like the preferred horizontal direction of travel SH, but from right to left.
[0163] It is thus possible thanks to this to simulate the retro-saccade movements previously described during the reading of a text by individual 1. Indeed, here four times out of ten, the movement of the eyes 3 of individual 1 following the target 20 of the gaze between two successive target positions 30 is done in the opposite direction to the preferred direction of travel.
[0164] As with the saccadic movements detailed above, target 20 may move from one target position to the next target position, in a direction of travel opposite to the preferred direction of travel, either by jumping from one position to the other (invisible target), or by moving from one to the other (visible target).
[0165] We will now describe, with reference to the figures 6 to 16 , a method for determining at least one visual behavior parameter of individual 1, or visuo-postural parameter; this method uses the test device described above which is particularly suitable for the implementation of this method.
[0166] The determination method includes the following steps: a step of requesting the individual to carry out a visual test during which he observes at least one target position, a step of measuring data representative of at least one direction of gaze of the individual during said visual test, a step of determining a reference direction of gaze, as a function of said measured representative data, a step of positioning, relative to said reference direction of gaze, at least one measured target position which is determined as a function of said data representative of said direction of gaze of the individual measured during the visual test.
[0167] Advantageously, after the positioning step, a deduction step is carried out, as a function of said at least one measured target position, of the desired visuo-postural parameter(s).
[0168] In practice, the tablet 10, or a local or remote computer, is programmed to perform the steps above and detailed below.
[0169] Preferably, at the requesting step of the determination method, the individual 1 successively observes different target positions 30.
[0170] The individual 1 is therefore asked to observe the screen 11 of the tablet 10 which displays the visually predominant target 20 according to a predetermined sequence of target positions 30 of the visual tracking protocol chosen as described above with reference to the Figure 5 .
[0171] According to a first embodiment, the determination method comprises the following intermediate steps: said gaze directions of the individual are determined during the visual test in a reference frame linked to the individual's head, the coordinates of said target positions are determined in said reference frame linked to the individual's head, and a barycenter of said target positions in the reference frame linked to the individual's head is determined from said coordinates, and said reference gaze direction is defined as a straight line connecting a center of rotation of a left or right eye of the individual, or a barycenter of said centers of rotation, to said barycenter of the target positions in the reference frame linked to the individual's head.
[0172] As a reference linked to head 4 of individual 1, we can for example choose a reference called " primary gaze reference " Or " CRO benchmark ", in which the head 4 of the individual 1 has a fixed position and orientation and to which is associated a reference point, preferably orthonormal, having an origin and three unrelated axes.
[0173] THE figures 6 and 7 illustrate how this CRO benchmark is constructed.
[0174] In particular, it has been represented on the figure 6 a vertical plane PV corresponding to a sagittal plane of the head 4 of individual 1 which is the vertical plane passing through a mediator of the two right and left eyes OD, OG of individual 1.
[0175] This mediator of the eyes OD, OG is an axis which passes through the middle of a segment which is defined by the center of rotation of the right eye OD (hereinafter referenced CROD) and the center of rotation of the left eye OG (hereinafter referenced CROG) and which is parallel to the Frankfurt plane of head 4 of individual 1.
[0176] The Frankfurt plane of the individual's head is defined as the plane passing through the lower orbital points of individual 1 and the porion of individual 1, the porion being the highest point of the skull in the auditory canal, which corresponds to the tragion of the ear. For the determination of the Frankfurt plane, the individual is considered to be in an orthostatic position, in which he makes a minimum of effort. This position corresponds to a natural posture, hereinafter referred to as " primary gaze posture ".
[0177] In this natural position, the individual's gaze direction is then the primary gaze direction, that is, they are looking straight ahead. The Frankfurt plane is then generally horizontal.
[0178] We also define (see figure 6 ) a PH plane which contains the centers of rotation CROD, CROG of the eyes OD, OG of individual 1.
[0179] In the particular example described here, this PH plane is parallel to the Frankfurt plane of head 4 of individual 1 and is therefore horizontal.
[0180] From the primary gaze posture of individual 1, that is to say from the knowledge of the orientation of the Frankfurt plane, and the centers of rotation CROD, CROG of the eyes OD, OG of individual 1, it is possible to construct the CRO reference frame linked to the head 4 of individual 1, hereinafter referenced R CRO, by choosing: an origin which is one of the centers of rotation CROD, CROG of the right eye OD or of the left eye OG of individual 1 or a barycenter of these centers of rotation CROD, CROG; a first axis which is parallel to a primary gaze direction of individual 1; a second axis which is horizontal and perpendicular to the first axis, and a third axis which is perpendicular to the first axis and to the second axis.
[0181] In the embodiments described, the origin of the reference frame R CRO is chosen as being the point located in the middle of the segment joining the center of rotation CROD of the right eye OD and the center of rotation CROG of the left eye OG of individual 1. In other words, this point of origin, hereinafter referred to as " CRO cyclops » and referenced CRO C corresponds to the isobarycenter of the centers of rotation CROD, CROG of the eyes OD, OG of individual 1.
[0182] The three axes XH, YH, ZH, of the R CRO reference frame are also represented on the figure 7 .
[0183] The XH axis (second axis) passes through the cyclops CRO C and is here oriented from the left center of rotation CROG to the right center of rotation CROD. The XH axis is horizontal here because it is contained in the horizontal plane PH parallel to the Frankfurt plane. An opposite orientation is also possible.
[0184] The ZH axis (first axis) is parallel to the primary gaze direction when individual 1 is in a natural position, i.e., in the primary gaze posture. In the particular case described here, the ZH axis is located in the vertical plane PV of the head 4 of individual 1 and is parallel to the Frankfurt plane. In other cases where the individual's head has a yaw angle, this ZH axis may not be located in the vertical plane. The ZH axis here extends in a direction away from the head 4 of individual 1 (towards the rear).
[0185] The YH axis (third axis) extends in the vertical sagittal plane PV of head 4 of individual 1 and is perpendicular to the Frankfurt plane. The YH axis is therefore perpendicular to the XH axis and the ZH axis. Here it is oriented upwards, so that the R CRO reference frame is direct.
[0186] It will be noted that the R CRO reference frame is linked to the head 4 of individual 1 and that therefore this R CRO reference frame moves with the head 4 of individual 1, the position and orientation of this R CRO reference frame changing in relation to an absolute or reference reference frame (for example a reference frame linked to the room in which the individual is carrying out the visual test) which would not be linked to the head 4 of individual 1 depending on the movements of the head 4 of individual 1.
[0187] It should be noted that the determination of the positions of the centers of rotation CROD, CROG can be carried out according to the principle known per se and set out for example in document FR 2914173, an equivalent in English of which is document US 2010 / 0128220.
[0188] During this determination of the centers of rotation CROD, CROG, individual 1 wears, on his head 4, attached to head 4, a reference system (metrological reference) or " clip» which includes tracking elements (markers) detectable during an image capture of the head 4 of individual 1.
[0189] In summary, at least two images of the head 4 of individual 1 are captured using an image capture device: a first image when the individual looks at the image capture device from a front position, looking straight ahead into the distance (primary gaze posture), and a second image when the individual looks at the image capture device from a three-quarter position.
[0190] From processing the two captured images (see document FR 2914173), we deduce the positions of the rotation centers CROD, CROG in a reference frame linked to the location system.
[0191] It is then possible to determine the “cyclops” center of rotation, which is the isobarycenter of the two centers of rotation CROD, CROG previously determined.
[0192] To determine the primary gaze posture, the positions of the centers of rotation CROD, CROG and the first image captured from the front are reused. It is also possible to compensate for the tilt of the tablet 10 during this last determination.
[0193] It has been represented on the figure 8 the gaze direction DR joining the cyclops CRO to the target 20 positioned here on the last target position of the visual tracking protocol as well as the CRO reference point R linked to the head 4 of individual 1 with its three main axes XH, YH, ZH.
[0194] We also represented on this figure 8 the gaze directions referenced respectively DRD and DRG corresponding to the gaze directions for the right eye OD and the left eye OG of individual 1.
[0195] Once we have chosen the reference point linked to the head 4 of the individual 1, here the reference point R CRO , we can, for each target position 30 of the target 20 observed on the screen 11 of the tablet 10, determine the coordinates of these target positions in this reference point R CRO .
[0196] For this purpose, during the measurement stage of the determination method: capturing, by means of the front camera 13 of the test device 10 turned towards the head 4 of the individual 1, images of a part of the head 4 of the individual 1 observing each target position 30, each target position 30 being able to be predetermined in a reference frame linked to the front camera 13, storing these images in association with the coordinates, expressed in this reference frame linked to the front camera 13, of the target position 30 observed by the individual 1, and determining, from the captured images and the associated coordinates of the observed target position 30, the coordinates of the reference frame R CRO linked to the head 4 of the individual 1 in the reference frame linked to the image capture apparatus 13 or the coordinates of the gaze directions DR of the individual 1 in the reference frame R CRO linked to the head 4 of the individual 1.
[0197] A marker linked to the front camera 13 can be, for example, the marker R SCR of the screen 11 (see Figure 5for example) which has as its origin the upper left corner 90 of the screen 11 and for axes the two axes 91, 92 perpendicular to each other and directed according to the columns and lines of the screen 11.
[0198] Advantageously, the front camera 13 triggers an image capture of the head 4 of the individual 1 with a capture offset relative to the moment when the target 20 is displayed at the predetermined target positions 30 of the visual tracking protocol on the screen 11. This offset may be zero, or preferably small, for example less than 200 milliseconds. This makes it possible to take into account the reaction time and movement of the eyes 3 of the individual 1 during a change in position 30 of the target 20 on the screen 11.
[0199] Alternatively, the front camera may also produce a continuous video sequence, for example at a rate of twenty frames per second, and extract from the video sequence the best image providing the best information on the visual behavior of the individual when displaying the target at the corresponding target position.
[0200] Each image captured by the front camera 13 of the tablet 10 thus corresponds to a predetermined target position 30 of the visually predominant target 20, the position 30 of which in the R SCR reference frame linked to the image capture device 13 is perfectly known.
[0201] To determine the coordinates of the reference frame R CRO linked to the head 4 of the individual 1 in the reference frame linked to the image capture device 13 or the coordinates of the gaze directions DR of the individual 1 in the reference frame R CRO linked to the head 4 of the individual 1, image processing means of the tablet 10 are provided, constituted for example by the processor of the tablet 10, which detects in the captured images of the head 4 of the individual 1 the markers of the clip worn by the individual 1 on his head 4.
[0202] We then determine for each captured image, that is to say for each target position 30 of the target 20 of the visual tracking protocol, the position and the orientation of the clip in the R SCR reference frame linked to the front camera 13 for example using the method described in the document US 2010 / 0128220.
[0203] The positions of the centers of rotation CROD, CROG of the eyes of individual 1 relative to the clip being known, the position (spatial coordinates) and the orientation (angular coordinates) of the reference frame R CRO linked to the head 4 of individual 1 are also known relative to the clip.
[0204] This is also illustrated on the figure 8 where we have represented the R CRO reference frame with its origin at the cyclops rotation center CRO C (isobarycenter of the rotation centers CROD, CROG) and its axes XH, YH, ZH.
[0205] Thus, by a change of reference, it is possible to determine, for each target position 30 of the target 20 of the visual tracking protocol, the position and orientation of the reference R CRO linked to the head 4 of the individual 1 in the reference R SCR linked to the front camera 13 of the tablet 10.
[0206] We can also determine, for each target position 30 of target 20 of the visual tracking protocol, the gaze directions DR of individual 1 in the reference frame R CRO linked to the head 4 of individual 1, these gaze directions DR here joining the cyclops rotation center CRO C, origin of the reference frame R CRO linked to the head 4 of individual 1, to target 20.
[0207] Finally, we can reexpress, from the positions and orientations of head 4 or the gaze directions DR of individual 1, the target positions 30 of target 20 in the R CRO frame linked to head 4 of individual 1.
[0208] These target positions 30 in the R CRO reference frame linked to the head 4 of individual 1 are data representative of the gaze directions DR measured by individual 1 during the visual tracking protocol.
[0209] After the measurement step, a reference viewing direction can thus be determined based on these representative data.
[0210] In some embodiments, the reference gaze direction corresponds to an individual's observation direction of a distant target (distance vision) when the individual is in a natural posture.
[0211] In the embodiment described herein, the reference gaze direction is an average gaze direction of individual 1 during the visual test.
[0212] As shown on the figures 9 and 10 , this average direction of gaze, hereinafter referenced DR m , is preferably chosen as being the straight line connecting the cyclops CRO C to the barycenter 71 of the target positions 30.
[0213] Alternatively, the average gaze direction can be defined from the right center of rotation CROD, the left center of rotation CROG, the center of rotation of the dominant eye, or the center of rotation of the dominant eye.
[0214] Alternatively, the average gaze direction is chosen here as being the straight line connecting a center of rotation of the individual's left or right eye, or a barycenter of said centers of rotation, to a target position in the reference frame linked to the individual's head.
[0215] Taking into account the fact not only that the position and orientation of the head 4 of the individual 1 changes during the visual test protocol in relation to the reference frame R SCR linked to the image capture device 13 but also that the individual 1 modifies the position and orientation of the tablet 10 during the visual test, it is understood that the target positions 30 of the target 20 in the reference frame R CRO linked to the head 4 of the individual 1 provide information on the visual behavior of the individual 1, in particular on his propensity to move his eyes 3 when reading a text.
[0216] Indeed, if individual 1 follows the visual tracking protocol by greatly modifying his gaze direction DR, then the target positions 30 of the target 20 in the frame R CRO linked to the head 4 of individual 1 are arranged in a relatively similar manner to the target positions 30 of the target 20 in the frame R SCR linked to the front camera 13. This is the case of the figure 9 .
[0217] Conversely, if individual 1 follows the visual tracking protocol while maintaining a DR gaze direction almost fixed, then the target positions 30 of the target 20 in the R CRO frame linked to the head 4 of the individual 1 are grouped. This is the case of the figure 10 .
[0218] The determination method of the invention further comprises a step of positioning, relative to the reference viewing direction DR m , measured target positions 50 (see figure 11) which are determined from the gaze directions DR of individual 1 measured during the visual test when individual 1 follows the target positions 30 of target 20 arranged on the screen 11 of the tablet 10.
[0219] Preferably, during this positioning step, a fictitious display surface 111 is also determined, oriented, relative to the reference gaze direction DR m , according to an average orientation of the screen 11 during the visual test.
[0220] The average orientation may, for example, take into account the average tilt and / or pitch angles with which individual 1 holds tablet 10 in his hands 2 during the visual test.
[0221] As shown in the figure 11 , the measured target positions 50 (symbols “•” on the figure 8) as the intersections of the gaze directions DR of individual 1 during the visual test and the fictitious display surface 111.
[0222] In other words, the measured target positions 50 correspond to the projections of the target positions 30, along the gaze directions DR associated with these target positions 30.
[0223] In a preferred embodiment, the determination method comprises an additional positioning step.
[0224] During this additional positioning step, theoretical target positions 60 (“+” symbols on the figure 8 ) whose relative arrangements with respect to each other are identical to the relative arrangements of the target positions 30 on the display surface 11 (screen) of the tablet 10.
[0225] Preferably, these theoretical target positions 60 are positioned so that their barycenter 62 is located on the reference gaze direction DR m.
[0226] Thus, at the end of the positioning steps described above, the coordinates of the measured target positions 50 and the coordinates of the theoretical target positions 60 have been determined on the fictitious display surface 111, in the R CRO reference frame linked to the head 4 of the individual 1. This is illustrated in the figure 12 drawings.
[0227] Visual behavior parameters of individual 1 during the visual tracking protocol can be deduced from the measured target positions 50 and the theoretical target positions 60.
[0228] In fact, we can already determine a first parameter of visual behavior corresponding to the position (coordinates) of the barycenter (hereinafter referenced NVB for “ Near-Vision Behavior» in English) of the target positions 30 in the R CRO reference frame linked to the head 4 of individual 1. This NVB barycenter provides information in particular on the average gaze direction DR m of individual 1 (see above) during the visual test.
[0229] Furthermore, as explained above with reference to the figures 9 and 10 , it is understood that the distribution (position and spread) of the measured target positions 50 relative to the theoretical target points 60, the distribution of which on the fictitious display surface 111 is fixed by that of the target positions 30 on the screen 11, provides information on the tendency of the individual 1 to move the head 4 and / or the eyes 3 during a reading task.
[0230] Thus, in another embodiment described with reference to figures 13 to 16, the deduction step of the determination method preferably comprises a comparison of the theoretical target positions 60 and the measured target positions 50 in the reference frame R CRO linked to the head 4 of the individual 1. This comparison makes it possible to deduce one or more desired visual behavior parameters, in particular visual behavior parameters of the individual 1 which are representative of the vertical spread EV and the horizontal spread EH (see figure 6 ) of the target positions 30 in the R CRO reference frame linked to the head 4 of individual 1. The vertical spread EV, respectively the horizontal spread EH, is in fact representative of the propensity of individual 1 to move his eyes from top to bottom (or from bottom to top), respectively from left to right (or from right to left), during the visual task.
[0231] In a preferred embodiment, this comparison may comprise the determination of deviations between the theoretical target positions 60 and the measured target positions 50 along a preferred direction of the fictitious surface 111. This is illustrated in the figures 13 to 16 .
[0232] In particular, it has been represented on the figure 13 the fictitious display surface 111 provided with axes 191, 192 oriented and standardized in a manner identical to the axes 91, 92 of the screen 11 (real display surface), the measured target positions 50 (symbols " • ") as well as the corresponding theoretical target positions 60 (symbols "+").
[0233] For example, the vertical direction of the axis 192 can be chosen as the preferred direction of the fictitious surface 111.
[0234] Then, for each pair formed of a measured target position 51 and a theoretical target position 61 corresponding to the same target position 30 of the visual tracking protocol, a vertical difference is calculated, noted here Δv, corresponding to the distance, in the vertical direction, between the measured target position 51 and the theoretical target position 61 of said pair.
[0235] We can then represent (see figure 14 ), for each target position 30 corresponding to a couple, the set of vertical deviations Δv in the R SCR reference frame linked to the real display surface 11. This set is represented by the surface 100 of the figure 11 .
[0236] We could also choose a preferred horizontal direction (along axis 191 of the figure 13 ) and calculate horizontal rather than vertical deviations.
[0237] Advantageously, a statistical processing of the calculated deviations is carried out to determine the visual behavior parameter.
[0238] This statistical processing may, for example, include the following operations: take an average < Δv > per display line, of the vertical deviations Δv. We then obtain measured curves 80 as represented on the figures 15 and 16 where the mean < Δv > is a function of the column index; perform a linear regression to find an approximate line 81 which minimizes the deviation from the measured curves 80.
[0239] The slope coefficient of this approaching line 81 provides a visual behavior parameter of individual 1 during the visual test protocol.
[0240] This steering coefficient is in particular determined to be between 0 and 1. For this, a minimum threshold value and a maximum threshold value are determined, allowing, for ease of use, to standardize the coefficient. Thus, the ratio (steering coefficient - minimum value / maximum value - minimum value) is recalculated.
[0241] The maximum and minimum values can be obtained from a distribution of pre-recorded slope coefficients or obtained from several individuals.
[0242] Indeed, when this director coefficient is low (case of the figure 12 with a coefficient of 0.17), this means that the average of the deviations between the measured target positions 50 and the theoretical target positions 60 is small. This corresponds to the visual behavior of an individual 1 moving the eyes 3 a lot during the visual test.
[0243] Conversely, when this slope coefficient is high (case of the figure 13 with a coefficient of 0.83), this means that the average of the deviations between the measured target positions 50 and the theoretical target positions 60 is high. This corresponds to the visual behavior of an individual 1 moving his eyes little 3 during the visual test.
Claims
1. Method for measuring the refraction of an individual by means of a refraction-measuring apparatus, comprising: a) an initial step of determining, without initial vision-correcting equipment, at least one initial value of a visuo-postural parameter of said individual, relating to the positioning of their head and / or of their eye or eyes in a vision situation or activity; b) a step of processing said initial value of the visuo-postural parameter determined in step a) in order to deduce at least one initial value of an adjustment parameter of said refraction-measuring apparatus, said adjustment parameter being associated with said visuo-postural parameter; c) a step of adjusting said refraction-measuring apparatus depending on said initial value deduced in step b); and d) a step of measuring the refraction of the individual by means of said refraction-measuring apparatus adjusted in step c); e) a step of equipping the individual with an item of vision-correcting test equipment suitable for correcting the refraction measured in step d); f) an additional step of determining, with said test equipment, at least one additional value of said visuo-postural parameter of said individual; g) an additional step of processing said additional value of the visuo-postural parameter determined in step f) in order to deduce at least one following value of said adjustment parameter associated with said visuo-postural parameter; h) a step of comparing said initial and following values of said adjustment parameter, and wherein: - when the comparison of step h) indicates that said initial and following values of said adjustment parameter differ by more than a predetermined difference threshold, steps c) and d) of the method are repeated with said following value of the adjustment parameter in order to measure a new value of the refraction of the individual by means of said refraction-measuring apparatus adjusted depending on this following value of the adjustment parameter and said new value of the refraction and the value of the refraction measured in step d) are recorded; and - when the comparison of step h) indicates that said initial and additional values differ by less than said predetermined difference threshold, said additional value determined in step f) and said refraction measured in step d) are recorded.
2. Measuring method according to Claim 1, wherein said visuo-postural parameter of the individual determined in step a) comprises one of the following parameters: - a natural posture of the head of the individual; - a visual behaviour parameter in natural posture; - an eye / head coefficient; - a reading distance in near vision; - an offset value of a point of fixation with respect to the median plane of the head of the individual; - an angle of lowering of the gaze; - a parameter of convergence of the two eyes in near vision; - a gaze direction.
3. Measuring method according to either of Claims 1 and 2, wherein: - in step a), said individual is equipped with a spectacle frame, not provided with corrective ophthalmic lenses; and - in step c), said measuring apparatus is also adjusted depending on at least one of the following complementary adjustment parameters: - a lens-eye distance; - a pantoscopic angle of said frame; - a wrap parameter of said frame; - a parameter of centring of ophthalmic lenses in said spectacle frame.
4. Measuring method according to one of Claims 1 to 3, wherein, said visuo-postural parameter of the individual being identical to said adjustment parameter of the refraction-measuring apparatus adjusted in step c), said processing of step b) consists in making said initial value of the adjustment parameter equal to said initial value of the visuo-postural parameter.
5. Optical design method for designing an ophthalmic lens intended for an individual, comprising the following steps: i) determining a value of the refraction of the individual by virtue of the implementation of the measuring method according to one of Claims 1 to 4; and ii) determining the optical profile of said ophthalmic lens depending on said measured refraction value.
6. System for implementing the method for measuring the refraction of an individual according to one of Claims 1 to 4, said system comprising: - a vision-testing device suitable for evaluating said visuo-postural parameter of the individual; - computing means suitable for deducing a value of an adjustment parameter from a value of the visuo-postural parameter of the individual evaluated by the vision-testing device; and - a refraction-measuring apparatus suitable for being adjusted depending on said adjustment-parameter value deduced by the computing means and for measuring the refraction of the individual.
7. Computer program comprising code instructions for implementing step b) of the method for measuring the refraction of an individual according to one of Claims 1 to 4 when said program is executed on the computing means of the system of Claim 6.