Method and device for checking the centration of at least one spectacle lens

DE502017017061D1Active Publication Date: 2025-10-09RODENSTOCK GMBH
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
DE502017017061
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2016-08-11
Filing Date
2017-06-20
Publication Date
2025-10-09
Estimated Expiration
2037-06-20

AI Technical Summary

Technical Problem

Conventional methods for checking the centration of spectacle lenses are prone to human error and lack efficiency, as they rely heavily on manual measurements and semi-automated procedures that require pre-marking of points on the lenses.

Method used

An automated method and device that uses an image recording device to capture images of spectacle lenses, determine the positions of functional engravings and lens contours, and check centration by accounting for parallax shifts and user-dependent target geometries, eliminating the need for manual point marking.

Benefits of technology

The method and device provide a precise, automated centration check that reduces human error and improves accuracy by accounting for parallax shifts and user-specific data, ensuring the visual points of the wearer are correctly positioned on the lenses.

✦ Generated by Eureka AI based on patent content.
Patent Text Reader
Need to check novelty before this filing date? Find Prior Art

Description

[0001] The invention relates to a method and a device for checking the centration of at least one spectacle lens.

[0002] The lenses of optical eyeglasses are usually edged to specific specifications, which may depend on the wearer. For example, the optical lenses should be positioned in the frame so that the visual points of the wearer's eyes are located at predetermined positions on the respective lenses when the eyeglasses are in use. In this context, the lenses are said to be correctly centered in the frame.

[0003] A check of this centration of the lenses, i.e. a check of the manufacturing quality and / or the grinding quality, can be carried out either on the finished glasses or on the shaped lenses.

[0004] Conventionally, centration checks are performed using manual measuring methods, e.g., by marking the functional engravings and measuring distances with a pupil distance ruler at the optician's office. Manual checks are always prone to errors because they are performed by humans.

[0005] Furthermore, semi-automated procedures for checking the centration, the grinding height and / or the pupil distance are known, in which individual points (such as a centration point) are first pre-marked on the lenses.

[0006] Optical parameters and terms such as "pupillary distance", "grinding height", "centering point", "position of use", "functional engravings", "viewing point", etc. are defined in relevant standards such as DIN EN ISO 1366, DIN 58 208, DIN EN ISO 8624 and DIN 5340 and can be found therein.

[0007] Document DE 10 2008 039 416 A1 discloses a method and device for checking the centration of spectacles. Mounted spectacle lenses are measured using an image recognition system, capturing permanent markings. Target centration points are determined based on the data contained in the position of the permanent markings. A video centration device measures the wearer's physiological data and determines the actual centration points. Finally, the target centration points are compared with the actual centration points.

[0008] From the document DE 10 2014 005 281 A1 a device for the contactless detection of a position of at least one spectacle lens provided with markings in three-dimensional space by means of a stereoscopic system is known.

[0009] The invention is based on the object of simplifying and / or improving the checking of centering.

[0010] This object is solved by the subject matter of the independent claims. Embodiments of the invention are the subject matter of the subclaims.

[0011] The invention relates to a method for checking the centration of at least one spectacle lens, comprising the steps: Arranging the spectacle lens in a recording field of an image recording device; Recording at least one image of the spectacle lens using the image recording device; Determining the position of functional engravings of the spectacle lens in the recorded image; Determining at least one lens contour of the spectacle lens in the recorded image; and Checking the centering of the at least one spectacle lens taking into account the determined position of the functional engravings and the determined lens contour of the spectacle lens at least one frame lens angle (a, β) of the spectacle lens of a previously known, user-dependent target geometry of the centering and a parallax shift if the functional engravings (11) are arranged on the side of the spectacle lens that faces away from the image recording device (2) when the image is recorded, wherein the parallax shift is calculated from the frame lens angle (a, β) and associated theoretical data such as a lens thickness, a front surface and a rear surface of the at least one spectacle lens via ray calculation through the spectacle lens.

[0012] The method can be used to check the centration of finished spectacles as well as to check pre-rimmed lenses. A finished pair of spectacles refers to a spectacle frame into which lenses are inserted as optical lenses. Pre-rimmed lenses refer to lenses that are made, for example, from a lens blank and that are edged in such a way that they can be inserted into a specific spectacle frame without further processing, thus forming a finished pair of spectacles. The method is carried out on at least one spectacle lens. In particular, it can be carried out on two spectacle lenses simultaneously or one after the other, both intended for a single pair of spectacles.Since the procedure can usually be carried out on both lenses of a pair of glasses, reference is usually made below to lenses, i.e. in the plural, even though the procedure can in principle also be carried out on a single, for example, shaped-rimmed lens.

[0013] In the method, the finished pair of spectacles or the molded-rimmed lenses are first placed in the recording field of the image recording device. The image recording device can be a camera, in particular a digital camera such as a CCD camera. The recording field of the image recording device can be a substantially three-dimensional spatial region that can be recorded by the image recording device. The recording field usually comprises a spatial region in front of an objective and / or a lens of the image recording device, which spatial region is intersected by an optical axis of the image recording device.

[0014] The finished spectacles and / or the molded-rimmed lenses can be arranged at a predetermined distance and orientation relative to the image recording device, in particular relative to an optical recording axis of the image recording device. This distance and orientation can be part of a calibration that is taken into account when checking the centering.

[0015] The image is recorded using the image recording device; in particular, a digital image of the finished pair of spectacles or the shaped-rimmed spectacle lenses can be recorded and / or created. The image contains at least parts of the finished pair of spectacles or the shaped-rimmed spectacle lenses. In particular, the image can contain both shaped-rimmed spectacle lenses or the finished spectacles essentially in their entirety. Either a single image or multiple images can be recorded using the image recording device. The recorded image preferably contains an image section in which a spatial region and / or object arranged behind the spectacle lenses (i.e., on the side of the spectacle lenses facing away from the image recording device) is imaged. The image can be recorded at least partially from a perspective against or in a zero viewing direction through the spectacles and / or the shaped-rimmed spectacle lenses.

[0016] After the image has been taken, the position of the functional engravings on the finished pair of glasses or the shaped-rimmed lenses is determined in the captured image. Optical lenses usually have at least two functional engravings that can be used to correctly center, edge, and / or position the lenses in a frame. The exact location of the functional engravings on the lenses can vary from manufacturer to manufacturer. Lenses usually have two functional engravings, one of which is located nasally and one temporally from an optical center and / or centering point of the respective lens. In the case of decentered lenses, the optical center and / or centering point of the lens can also be offset above or below the functional engravings.

[0017] Since functional engravings are generally not visible to the naked eye, they can first be made visible before their position in the recorded image is determined. For this purpose, for example, a specially arranged lighting unit can be provided which is arranged and / or designed such that the functional engravings can be identified, recognized and / or determined in the recorded image. In this case, the functional engravings can be made visible in particular by recording a screen through the lenses on which one or more different patterns are displayed, such as stripe projections. Another possibility for making the functional engravings visible can be by means of a retroreflection unit, as described, for example, in the document DE 103 33 426 A1.Another possible implementation involves automatic recognition of the engravings, as described, for example, in the document DE 10 2014 005 281 A1.

[0018] The positions of the functional engravings thus made visible in the captured image can, for example, be determined graphically, particularly using software. This can first involve determining pixel positions in the captured image, which can then be converted into two-dimensional and / or three-dimensional coordinates, particularly into world coordinates in the Earth's reference system.

[0019] Furthermore, the lens contours of the spectacle lenses are determined in the recorded image, for example the positions at which the lens edges are arranged in the recorded image. In particular, the pixel positions of the lens edges can be determined here. It may be sufficient to determine the lens contours at least partially and / or sectionally and / or point by point. The lens contours can be determined differently on finished glasses than on shaped-edged spectacle lenses without a frame. For example, determining a single lens reference point may be sufficient to determine the lens contours of finished glasses, whereas more positions in the recorded image are determined to determine the lens contours of shaped-edged spectacle lenses. Determining the lens contours can contain information about where (e.g. at which pixels) the lens edges are arranged in the recorded image.

[0020] The centering of the finished pair of spectacles or the shaped-rimmed lenses is checked taking into account both the determined positions of the functional engravings and the determined position of at least one reference point and / or the determined lens shape. Furthermore, additional data can be taken into account during the check, in particular previously known user-dependent data. This previously known, user-dependent data can be referred to as the target geometry of the spectacles and / or the lenses. Thus, the target geometry can comprise a target centering of the finished pair of spectacles and / or the shaped-rimmed lenses, in particular a target pupil distance and / or a target grinding height. Furthermore, the previously known data can include, for example, the lens thickness.When checking the centering, it can be verified whether the visual points of the eyes of a user for whom the glasses were or are to be manufactured are arranged at predetermined positions on the respective lenses of the glasses in the wear position. The determined actual positions of the visual points can be compared with the theoretical target positions of the visual points.

[0021] When checking the centration, it can be determined whether the actual positions of the visual points deviate from the target positions of the visual points by a maximum of a predetermined value. This predetermined and / or permissible deviation from the positions of the visual points can depend on the type of spectacle lens. For example, a permissible deviation for progressive lenses may be smaller than a permissible deviation for lenses with a single prescription. The inspection can therefore include a check to determine whether or not permissible deviations in the centration are being observed.

[0022] The method provides a way to check the centering of the finished spectacles and / or the molded-rimmed lenses as automatically as possible. The method can eliminate or at least reduce human error. The check is carried out at least partially automatically, in particular essentially fully automatically. When determining positions in the recorded image, i.e., in particular when determining the position of the functional engravings, when determining the lens contours of the lenses, additional manual confirmation of individual points in the recorded images by an optician or another operator can be provided. In other embodiments, this manual check can be omitted.

[0023] This process simplifies and improves the centration check of finished spectacles or molded-rimmed lenses. In particular, it eliminates the need to mark points on the lenses when checking centration. Manual centration measurement is no longer necessary.

[0024] According to one embodiment, the at least one spectacle lens is provided either in a finished pair of spectacles or as a molded-edged spectacle lens. In this case, the lens contour of the spectacle lens is either by determining the position of at least one spectacle reference point of the spectacles in the recorded image or by determining a lens shape of the shaped-rimmed spectacle lens in the recorded image.

[0025] The centration of the spectacles or the shaped lenses is checked taking into account the determined position of the spectacle reference point or the determined lens shape.

[0026] The method step of determining the lens contours is therefore a determination of the position of at least one spectacle reference point of the finished spectacles in the recorded image and / or a lens shape of the shaped-rimmed spectacle lenses in the recorded image.

[0027] In this embodiment, a distinction is made between checking the centering of a finished pair of spectacles and checking the centering of molded lenses. Depending on this, the individual process steps can be performed differently, particularly the determination of the lens contours.

[0028] In the event that the centration of a finished pair of glasses is checked, the position of at least one reference point of the finished pair of glasses can be determined in the same image and / or another recorded image. A center point of the nose bridge of the glasses can be determined as a reference point. The reference point is used to compare and relate the positions of the functional engravings with the orientation and position of the frame. In particular, the reference point can be used to determine how the lenses are arranged in the frame. If this at least one reference point is determined in the recorded image, together with the positions of the functional engravings, sufficient data is determined to check the centration of the finished pair of glasses. Starting from the reference point, previously known frame data (such asa frame contour) of the spectacle frame must be taken into account in order to determine and / or identify the lens contours in the captured image.

[0029] If the centering is checked on shaped-edged spectacle lenses that have not yet been inserted into a frame, the lens shape of the shaped-edged spectacle lenses can be at least partially determined instead of the spectacle reference point. This can be done for each shaped-edged spectacle lens individually, or for both shaped-edged spectacle lenses of a single pair of glasses at the same time using a single image in which both shaped-edged spectacle lenses are depicted. In particular, a contour of the shaped-edged spectacle lenses, i.e. a profile of the edges of the shaped-edged spectacle lenses, can be determined at least partially in the recorded image, in particular graphically and / or with software support. From the lens shape and / or the lens contour, it can be estimated at which positions the frame edge and / or the lens edge will be arranged relative to the functional engravings on the finished pair of glasses.When determining the lens shape, it may be sufficient to determine at least three spaced-apart points, preferably at least four spaced-apart points, on each of the shaped-rimmed spectacle lenses in the recorded image. In particular, a temporal, a nasal, an upper, and / or a lower point on the rim of the spectacle lens can be determined to determine the lens shape. By determining the lens shape of the shaped-rimmed spectacle lenses, the lens contour of the spectacle lenses is thus determined.

[0030] By making this distinction between checking the centration of a finished pair of glasses and checking the centration of molded lenses, the individual process steps are optimized for the respective application.

[0031] According to the invention, a parallax shift is taken into account when checking the centration of the spectacle lenses if the functional engravings are arranged on the side of the spectacles or the shaped-rimmed spectacle lenses that faces away from the image recording device when the image is taken. The parallax shift is taken into account when checking the centration and can be included in the calculation of the visual point(s). The parallax shift can occur if the functional engravings are arranged on the side of the spectacle lenses that faces away from the image recording device. In this case, the functional engravings are recorded through the spectacle lenses in the recorded image.

[0032] When calculating the parallax shift, further data can be used; in particular, at least one thickness, at least one refractive index, at least one optical power, at least one frame angle and / or at least one forward inclination of the lenses can be taken into account. The actual (or real) position of the functional engravings can therefore deviate by up to one or even several millimeters from the position at which they are directly determined in the recorded image (i.e. without taking the parallax shift into account). By taking the parallax shift into account, the centration check is improved. If the image is taken from the side of the lenses on which the functional engravings are arranged, the parallax shift does not need to be taken into account.Since the functional engravings can be arranged on the side of the lenses facing the user and on the side facing away from the user, depending on the manufacturer, checking for the presence of a parallax error improves the versatility of the process.

[0033] According to one embodiment, when determining the position of the functional engravings, a structure is arranged on a side of the spectacle lenses facing away from the image recording device, which structure is at least partially imaged through the spectacle lenses in the recorded image. The structure can, for example, be generated by a screen and / or projected onto the spectacle lenses. The structure can, in particular, be designed as a striped pattern and / or have at least one pattern with a plurality of contrast transitions between differently illuminated areas. As an alternative to a screen, the structure can also be designed as a finished, static structure that has been created in advance, for example, printed on a film or a printing surface. When the image is recorded, the structure is arranged on the side of the spectacle lenses that is recorded through the spectacle lenses when the image is recorded.In the captured image, for example, it is possible to determine graphically and / or software-controlled where, for example, a disturbance in the structure indicates that a functional engraving or an edge of the lens is located at that position. Using the structure thus simplifies and / or enables the determination of the positions of the functional engravings, the knowledge of which is further processed to verify centration. In other words, the structure makes the functional engravings visible and / or detectable in the captured image.

[0034] According to one embodiment, at least one frame lens angle of the spectacle lenses is determined, and the determined frame lens angle is taken into account when checking the centration of the spectacle lenses. The frame lens angle is defined in the standards listed above and describes an inclination of the spectacle lenses in the spectacle frame about a rotation axis that is essentially vertically aligned in the wear position. Taking the frame lens angle into account improves the centration check. It is therefore advantageous to include the frame lens angle in the centration check. The frame lens angle usually only needs to be taken into account when checking a finished pair of spectacles, since mold-rimmed spectacle lenses can be arranged relative to the optical recording axis of the image recording device essentially without this inclination.When checking the centering of shaped-rimmed lenses, instead of the frame lens angle, an angle of inclination of the shaped-rimmed lenses relative to the optical recording axis of the image recording device can be considered and / or determined in advance, which essentially corresponds to the frame lens angle. Instead of checking the frame lens angle, the (e.g., horizontal and / or vertical) alignment and / or inclination of the lenses relative to the optical recording axis of the image recording device can also be determined and taken into account.

[0035] In a further development of this embodiment, the frame lens angle (or more generally: the alignment and / or inclination of the spectacle lenses relative to the optical recording axis) is determined by evaluating a reflection of at least one laser line on the spectacle lenses. The method thus determines precisely the frame lens angle (or the alignment and / or inclination) at which the spectacle lenses are arranged in the recording field of the image recording device. For this purpose, for example, the reflection of a laser line generated by a laser scanner across the finished pair of glasses or the shaped-edged spectacle lenses can be used. The position of the laser line can vary. In particular, when using a scanner, the laser line can be projected over parts of the surface of the spectacle lenses.The laser line can, in particular, be arranged transversely across both lenses of the spectacles, i.e., in a direction that is essentially horizontal and / or nasal-temporal in the wear position. Such an alignment of the laser line simplifies the determination of the frame lens angle, which also describes an inclination of the lenses in an essentially nasal-temporal direction. The reflection of the laser line can either be recorded and / or evaluated by means of a separate measuring device; or detected and / or determined by means of the image recording device. In particular, the reflection of the laser line can be determined, recorded, and / or evaluated in the image recorded by the image recording device.

[0036] Laser light with a wavelength of approximately 400 nm to 500 nm can be used as the laser line. Blue laser light is therefore used to determine the frame lens angle (or more generally: the alignment and / or inclination of the lenses relative to the optical axis). Blue light has the advantage over red light in that a larger proportion of it is reflected by lenses, which are often weakly reflective in the red wavelength range. The restriction to a wavelength above approximately 400 nm also rules out the use of UV light. Although the reflection of UV light on lenses would usually be even better than that of blue light, the use of UV light would require additional measures to protect the operator. This is why blue laser light is particularly well suited to determining the frame lens angle.

[0037] As an alternative to determining the frame lens angle using a laser line projected onto the lenses, the frame lens angle can be determined from the manufacturing data of the frame and / or using an external measuring device. For example, the frame lens angle may be known in advance because it is predefined for the glasses. The frame lens angle can either be taken directly from the manufacturing data or determined, for example, using another external measuring device. In this case, the determined frame lens angle(s) are recorded, for example, manually entered or automatically transmitted to a verification device, and taken into account when checking the centration.

[0038] According to one embodiment, if the centering of at least one shaped-edged spectacle lens is checked, the shaped-edged spectacle lens is arranged in the recording field of the image recording device at a frame lens angle of approximately 0° (or more generally: with virtually no inclination of the shaped-edged spectacle lenses relative to the optical recording axis), wherein the frame lens angle is disregarded when checking the centering (or more generally: the orientation and / or inclination of the shaped-edged spectacle lenses relative to the optical recording axis). When checking the shaped-edged spectacle lenses, they can be arranged in the recording field of the image recording device such that the image recording device records the image essentially perpendicularly through the shaped-edged spectacle lenses.In other words, the optical recording axis of the image recording device is essentially perpendicular to the surface of the shaped-rimmed spectacle lenses, so that the optical recording axis of the image recording device, with a target frame lens angle of 0°, is arranged essentially parallel to the direction of view (at least in a projection onto a horizontal plane from the wearing position). In this case, a frame lens angle of approximately 0° can be assumed when checking centration based on the recorded image. Therefore, the frame lens angle does not need to be taken into account when checking centration. The same or similar can apply to a forward tilt of the shaped-rimmed spectacle lenses. By ignoring the frame lens angle, the inspection can be simplified.

[0039] According to one embodiment, a pre-tilt of the spectacle lenses is determined and the determined pre-tilt is taken into account when checking the centration of the spectacle lenses. The pre-tilt of spectacles is also defined in the standards mentioned above and describes an inclination of the spectacle lenses about an axis of rotation which, in the wearing position, is aligned essentially horizontally through both spectacle lenses. The pre-tilt can, similar to the frame lens angle, be determined by evaluating a reflection of at least one laser line on the spectacle lenses. In this case, the laser line can be projected in a substantially vertical direction over the spectacle lenses. The term vertical refers to the position that the finished spectacles or the shaped-rimmed spectacle lenses would assume in the wearing position.For the reasons described above, the laser line can be designed, in particular, as a blue laser line. Alternatively or additionally, previously known values ​​for the forward tilt can be used and / or determined from the manufacturing data of a frame, or the forward tilt can be determined using an external measuring device. Taking the forward tilt into account further improves the centration check.

[0040] The invention relates to a device for checking the centration of spectacle lenses with: a lens holder for holding the spectacle lenses; an image recording device for recording an image of the spectacle lenses arranged in the lens holder; an engraving detection means for determining positions of functional engravings of the spectacle lenses in the recorded image; a geometry detection means for determining lens contours of the spectacle lenses in the recorded image; and a checking means for checking the centering of the spectacle lenses, taking into account the determined position of the functional engravings and the determined lens contours. at least one frame lens angle (a, β) of the spectacle lens of a previously known, user-dependent target geometry of the centering and a parallax shift if the functional engravings (11) are arranged on the side of the spectacle lens that faces away from the image recording device (2) when recording the image, wherein the parallax shift is calculated from the frame lens angle (a, β) and associated theoretical data such as a lens thickness, a front surface and a rear surface of the at least one spectacle lens via ray calculation through the spectacle lens.

[0041] The device can be used in particular for carrying out the method according to the aspect described above. Therefore, all statements made in connection with the above aspect also relate to the device and vice versa. In the device, the image recording device can be designed, for example, as a digital camera, in particular as a CCD camera. The lens holder can be designed to hold and / or arrange the finished pair of spectacles or the shaped-rimmed spectacle lenses in the recording field of the image recording device. Image processing can be provided as the engraving determination means, in particular a software-controlled graphic evaluation of the recorded image. The geometry determination means can also be implemented by a graphic evaluation, in particular by a software-controlled and / or software-supported graphic evaluation.The verification device can also be controlled by software.

[0042] In one embodiment of the device, the verification means takes a parallax shift into account when checking the centering of the spectacle lenses if the functional engravings are arranged on the side of the spectacle lenses facing away from the image recording device when the image is captured. The verification means can first check and / or determine on which side of the spectacle lenses the functional engravings are arranged. Subsequently, depending on the result, the verification means can either take the parallax shift into account or not.

[0043] According to one embodiment, the device comprises an alignment determination means for determining an alignment of the spectacle lenses relative to an optical recording axis of the image recording device, wherein the checking means is designed to take the determined alignment into account when checking the centering of the spectacle lenses. In this case, the alignment determination means can be designed in particular as a frame lens angle determination means and / or a pre-inclination determination means. As described in connection with the previous aspect, the alignment determination means can, for example, include a projector for a laser line, which projects at least one laser line onto and / or over the finished pair of spectacles and / or the molded-rimmed spectacle lenses. The alignment determination means can in particular include a laser scanner, preferably a laser scanner that emits blue laser light.

[0044] According to one embodiment, the image recording device comprises a telecentric lens. A telecentric lens is particularly suitable for taking an image of the finished pair of spectacles or of the molded-rimmed lenses, in which the positions of individual points are determined, since the recorded images exhibit no distortion. In particular, a telecentric lens can be used particularly well to record a structure through the lenses, which can then be graphically evaluated to determine individual positions on the lenses.

[0045] According to one embodiment, the device comprises a structure-generating means for generating a structure on the side of the spectacle lenses facing away from the image-capturing device, wherein the structure can be imaged in the captured image through the spectacle lenses. A screen and / or a (e.g., illuminated) structured surface, for example, can be used as the structure-generating means. If a screen is used as the structure-generating means, the structure can be controlled in a targeted manner; in particular, the brightness of the structure can be adjusted and / or the dimensions of individual elements of the structure can be adjustable.

[0046] According to one embodiment, the lens holder is substantially transparent and / or the lens holder holds the finished spectacles or the molded-edged spectacle lenses in a lateral region with respect to an optical recording axis of the image recording device. This design of the lens holder makes it possible to record the image in such a way that, for example, a structure through the spectacle lenses is included in the recorded image. In particular, the lens holder can be transparent for this purpose, for example from glass and / or plastic. Alternatively and additionally, the lens holder can hold the spectacles or the spectacle lenses only in one edge region, i.e. in a lateral and / or temporal region, so that the image can be recorded through the spectacle lenses despite the use of the lens holder.

[0047] The invention relates to a computer program product containing program parts which, when executed on a processor, determine the position of the functional engravings, determine the lens contours of the spectacle lenses (thus, for example, determining the position of the spectacle reference point and / or the lens shape of the spectacle lenses), and check the centration of the spectacles or lenses. Furthermore, program parts of the computer program product can perform further steps of the method, such as determining a frame lens angle, determining a pre-tilt, and / or appropriately considering the alignment / tilt of the spectacle lenses when checking centration.

[0048] The invention is described in more detail below with reference to exemplary embodiments shown in the figures. Individual features shown in the figures may be realized and / or implemented in other embodiments. The same reference numerals may designate the same or similar features of the embodiments. They show: Figure 1 shows a schematically illustrated device for checking the centering of finished spectacles and / or shaped-rimmed spectacle lenses; Figure 2 shows a schematically illustrated pair of spectacles being examined by a frame lens angle determination device; Figure 3 shows a schematic illustration of how frame lens angles of spectacles are determined from a surface profile; and Figure 4 shows a schematic flow diagram of a method for checking the centering of finished spectacles or shaped-rimmed spectacle lenses.

[0049] Figure 1shows a schematic representation of a device 1 for checking the centering of spectacle lenses, i.e., the centering of a finished pair of spectacles 10 and / or the centering of molded-edge spectacle lenses. The device 1 has an image recording device 2, which can be designed, for example, as a CCD camera. The image recording device 2 has a lens 3, which can be designed, in particular, as a telecentric lens. The orientation of the lens 3 determines the orientation of the optical recording axis of the image recording device 2.

[0050] The image recording device 2 is aligned such that the optical recording axis of the image recording device 2 points from the lens 3 of the image recording device 2 towards the glasses 10, which are arranged in the recording field of the image recording device 2.

[0051] The figures show a Cartesian coordinate system, where the coordinates are denoted by x, y, and z. Here, the x and z directions can be essentially horizontal, while the y direction can be vertical, pointing from top to bottom.

[0052] The terms horizontal and vertical refer to directions relative to the spectacles 10 when worn in the wear position. In the wear position, the x-direction points from the lens center of a spectacle lens in a substantially nasal or temporal direction, respectively, while the z-direction essentially coincides with the zero gaze direction. The y-direction points essentially from an upper lens edge to a lower lens edge, and in the wear position, essentially vertically downward.

[0053] In Figure 1the optical recording axis of the image recording device 2 is arranged such that it is arranged substantially parallel to the z-direction, namely pointing opposite to the viewing direction.

[0054] The finished pair of spectacles 10 is arranged in the recording field of the image recording device 2 such that the image recording device 2 can record an image that contains both the spectacles 10 and a structure-generating means 6 arranged on the side of the lenses of the spectacles 10 facing away from the image recording device 2. In other words, the image recording device 2 can record an image of the structure-generating means 6 through the lenses of the spectacles 10.

[0055] The structure generation means 6 can, in particular, be designed as a screen on which a structure is displayed. The structure can, for example, be designed as a striped pattern and / or have stripes. When an image of the structure, generated by the structure generation means 6, is captured through the lenses of the spectacles 10, irregularities in the structure can be detected. These irregularities can, for example, be associated with functional engravings on the lenses and / or edges of the lenses.

[0056] The spectacles 10 can be arranged on and / or in a lens holder 7. The lens holder 7 can be designed as a holder, in particular as a transparent holder. The transparent design of the lens holder enables the image recording device 2 to record an image through the lenses of the spectacles 10 of the structure displayed by the structure generation means 6. The lens holder 7 can alternatively or additionally be designed as a lateral clamping device that holds the spectacles 10 only at the edge sides adjacent to the spectacle frame, so as not to impede or only slightly impede the recording of the structure through the lenses.

[0057] The device 1 further comprises an alignment determination means 5. The alignment determination means 5 can be designed as a laser scanner, which is designed and provided to project a laser line 4 onto the glasses 10. The functioning of the alignment determination means 5 is discussed in more detail in the following figures.

[0058] The device 1 is designed and intended to capture an image of the spectacles 10. Instead of the spectacles 10, the two lenses of the spectacles 10 in a molded state could also be used to capture the image. The device 1 captures at least one image of the spectacles 10, in which it detects the functional engravings on the spectacles 10 and determines their position.

[0059] Figure 2shows a schematic representation of the finished pair of glasses 10. The glasses 10 have a frame with two temples and a nose bridge, into which two lenses are inserted. As indicated by the infinity symbol in the figure, the glasses 10 have at least two functional engravings 11 on each of the two shaped-rimmed lenses.

[0060] The exact position of the functional engravings 11 depends on the manufacturer and / or the specific lens model. Typically, each lens has at least two of these functional engravings 11. The functional engravings 11 are not located directly in the center or optical center of the respective lens, but rather are offset to the left and right, i.e., temporal and nasal, relative to the wearer's visual point. In decentralized lenses, the functional engravings 11 can also be offset upwards or downwards.

[0061] This is done, among other things, to avoid impairing the optical properties of the respective lens at the viewing point. The functional engravings 11 of a lens are usually not visible to the naked eye, or are very difficult to see. Therefore, in order to detect and / or determine the position of the functional engravings 11 in the captured image, the functional engravings are first made visible. Various options are available for this.

[0062] The image recording device 2 is aligned such that it has the functional engravings 11 of the adjacent spectacle lenses and / or the finished spectacles 10 in the image field and / or in its recording area. Since the spectacle lenses can have different curvatures and / or thicknesses, and since the frame of the spectacles 10 can also have different curvatures, the image is recorded through the telecentric lens 3 to always obtain a sharp image without perspective distortions. Calibration can be used to obtain the distances and positions of the functional engravings 11, for example, in world coordinates in a plane. This calibration can include knowledge of the distance of the spectacles 10 or the spectacle lenses from the image recording device 2, as well as a fixed orientation of the spectacles 10 or the spectacle lenses relative to the optical recording axis of the image recording device 2.Preferably, for example, a frontal shot of the glasses 10 can be taken as the image, similar to that in . Figure 2 schematically shown glasses 10.

[0063] In other embodiments, the spectacles 10 can also be photographed in the viewing direction. If the centering of the finished pair of spectacles 10 is not checked, but only of the molded lenses without the frame, the lenses can be arranged at a predetermined distance from the image recording device 2 such that the image 2 is recorded in the viewing direction through the lenses. For example, a three-point support can be provided as a lens holder 7 for the convex side of the lenses, which holds these lenses.

[0064] As part of the calibration, the distance of the structure generation means 6 from the image recording device 2 can also be known in advance. In general, an illumination unit optimized such that the visibility of the functional engravings 11 can be created and / or is present in the image recorded by the image recording device 2 can be used to visualize the functional engravings 11. The structure generation means 6 can be used as such an illumination unit. To accurately detect the position of the functional engravings 11 in world coordinates, multiple images can be recorded, for example, with different illumination settings and / or pattern settings of the structure generation means 6. These different images can be processed using software to achieve increased visibility of the functional engravings 11.The functional engravings 11 may result in a disturbance of the recorded pattern and / or the recorded structure being visible in the recorded images at the positions of the functional engravings 11.

[0065] Another option for visualizing the functional engravings 11 is to use a retroreflective unit in addition to an illumination unit. This allows the functional engravings 11 to be automatically detected.

[0066] In the captured image, at least one eyeglass reference point can also be determined graphically, in particular the center of the nose bridge of the finished eyeglasses 10. The eyeglass reference point can be determined, for example, using a corresponding holder that is positioned centrally to the nose bridge of the eyeglasses 10 and provided with a marking. For contoured-rimmed eyeglass lenses, the approximate lens shape can be detected and / or determined instead to verify centering.

[0067] In other words, for example, the lens holder 7 can be designed such that it has at least one special marking that facilitates the detection of the lens reference point in the recorded image. The marking can, in particular, mark the lens reference point in the recorded image.

[0068] The positions of the functional engravings 11 and / or the spectacle reference point can be determined by means of software and / or graphic analysis by a processing device that evaluates and / or examines the at least one captured image. The processing device can have a processor and / or be embodied as a computer running appropriate software. The processing device can also perform the final verification of the centering data. In doing so, the processing device can provide an output that indicates to an operator whether the centering of the spectacles 10 is sufficient or not.

[0069] The centration check, in particular the evaluation in the processing device, can include knowledge of at least one of the frame lens angles at which the spectacle lenses are arranged on the spectacles 10.

[0070] Figure 3shows a schematic representation of the two frame lens angles α and β. Here, α denotes the right frame lens angle and the reference symbol β denotes the left frame lens angle of the spectacles 10. The exact position of the frame lens angles α, β is defined in the standards mentioned above.

[0071] Depending on the frame lens angle α, β, distortions may occur in the recorded image, which can be taken into account when determining the precise position of the functional engravings 11. The frame lens angle α, β can be determined in different ways. For example, the values ​​of the frame lens angles α, β can be read from a database in which the frame lens angles are stored. The database can contain the values ​​of the target frame lens angles, which result from the manufacturing data of the frames, for example, from 3D design data. Using the target frame lens angles from such a database, the frame lens angles α, β can be determined relatively easily and quickly.

[0072] However, since these theoretical target frame lens angles do not always correspond to reality, and in particular deviations can occur both during the manufacture of the spectacle frames and when inserting the lenses into the frame, which change the actual frame lens angles, the use of these theoretical target frame lens angles is sometimes inaccurate.

[0073] Therefore, it is preferable to determine the actual frame disc angles α and β and use them to check centering. For this purpose, the frame disc angles α and β can be determined using an external measuring device, such as a tracer or a mechanical frame disc angle meter.

[0074] Preferably, in addition to the engraving visualization, the device 1 has its own measuring device for the frame lens angles α and β of the inserted spectacles 10. For this purpose, a surface measurement of the spectacles 10 can be carried out by analyzing a reflection of one or more laser lines. For this purpose, the alignment determination means 5 can be provided, which can in particular be designed as a frame lens angle determination means and which can, for example, have a laser scanner. The alignment determination means 5 projects at least one laser line 4 over the surface of the spectacles 10. This is described in more detail in Figure 2, in which the laser line 4 is projected essentially horizontally, i.e., approximately parallel to the x-direction, over the glasses 10. Here, the laser line 4 is preferably projected offset from the functional engravings 11 over the surface of the glasses 10. As a result, the detection of the functional engravings 11 in the image is not disturbed by the laser line 4.

[0075] For this purpose, the laser line 4 is preferably generated with a blue light, which is particularly well reflected on the surface of spectacle lenses without posing a danger to an operator, such as UV light.

[0076] From the exact course of the laser line 4 in the recorded image, a surface profile 20 can be determined, which, as in Figure 3formed essentially runs along the surface of the spectacle lenses. The surface profile 20 results from the surface scan, which can be carried out and / or evaluated by means of the alignment determination means 5. The reflection of the at least one laser line can be detected by an additional recording device, or by the image recording device 2. In this case, the exact profile of the laser line 4 can be arranged aligned with the image recording device 2, so that, for example, conclusions can be drawn about the profile of the laser line 4 on the basis of previously known and / or determined positions in the recorded image. Furthermore, the positions of the frame and / or the edges of the spectacle lenses in space and / or in world coordinates can be determined and identified based on the profile of the laser line 4.In other words, the path of the laser line 4 is aligned with the spectacles 10 and / or the lenses, and this alignment is known in advance to the processing device. Particularly with a known lens geometry, the precise spatial position of the lenses can be determined and / or ascertained.

[0077] In this case, a forward tilt of the spectacle frame can also be determined and taken into account when checking the centering. For this purpose, at least one second laser line can be projected onto the spectacles 10 or the spectacle lenses, which can, for example, be aligned substantially perpendicular to the laser line 4. The alignment determination means 5 can also be designed for this purpose. In particular, at least one laser line aligned substantially parallel to the y-axis can be projected onto each of the two spectacle lenses, from which the forward tilt can be calculated. This laser line for determining the forward tilt can also be blue and projected offset from all functional engravings 11 onto the spectacles 10 or the spectacle lenses.

[0078] Like the one in Figure 3The surface profile 20 of the spectacles 10 shown can be used to calculate the frame lens angles α and β, as is known to the person skilled in the art and can be taken, for example, from the standards mentioned above. For this purpose, as an intermediate step, a frame plane F can be determined, which is also shown in Figure 3 is shown. The frame lens angles α and β can be determined as intersection angles with the frame plane F, in particular from geometric and ray-optical calculations.

[0079] If, instead of the spectacles 10, only shaped-rimmed lenses are examined, then, as already mentioned above, a lens holder 7 can be used, which arranges the lenses approximately at a frame lens angle of approximately 0° in the recording field of the image recording device 2. Therefore, in this case, the centration check can be performed without taking into account the frame lens angle and / or the forward tilt. Alternatively, the precise alignment of the shaped-rimmed lenses in the recording field of the image recording device 2 can also be determined, as described above, with the aid of at least one laser line 4, which is projected onto the lenses by the alignment determination means 5.

[0080] From the frame lens angles α and β and / or the alignment / tilt of the lenses, for example, with the help of the associated theoretical data, such as a lens thickness, a front surface, a back surface, etc., a parallax shift that may occur when observing the functional engravings 11 through the lenses can be calculated using ray tracing. By taking the parallax shift into account, deviations between the actual positions of the functional engravings 11 and the positions of the functional engravings 11 determined in the image can be precisely determined. The exact position of the various functional engravings 11 can therefore be used to check the centering. By checking the centering, the manufacturing quality and / or the grinding quality of the finished pair of glasses or the shaped-edged lenses is checked.

[0081] A printed foil can also be used as the structure-generating means 6, which can, for example, be specially illuminated.

[0082] The surface profile 20, as shown in Figure 3 The surface contour shown can be completely determined, for example, using a laser scan as described. Alternatively, only parts of the surface contour 20 can be determined, which can then be extrapolated to the frame edges. The frame lens angles α and β can be calculated from the endpoints of the surface contour 20.

[0083] Figure 4 shows a schematic flow diagram of an embodiment of a method for checking the centration of finished spectacles or of shaped-rimmed spectacle lenses. In step ST1, the object to be examined (i.e., the finished spectacles or the shaped-rimmed spectacle lenses) is first placed in the lens holder 7, see also Figure 1 .

[0084] Subsequently, or even before, in a step ST2, theoretical target positions of the functional engravings 11 are calculated, i.e., positions at which the functional engravings 11 should be arranged if the spectacles 10 or the lenses are correctly centered. In particular, a target distance to a nasal and / or temporal lens edge and a target distance to a lower and / or upper lens edge can be calculated. The target distances can be calculated for all four functional engravings 11 (i.e., two per lens). The target distances can be calculated either to an actual lens edge or to the edge of a rectangle placed around the respective lens on which the respective functional engraving is arranged. Such a rectangle, which surrounds the lens, is regularly used in the box dimension and / or box system when edging and / or grinding spectacle lenses and is known to the person skilled in the art.

[0085] The nasal edge of the surrounding rectangle can be determined by subtracting half the distance between the lenses, also abbreviated as the distance between the lenses, from the frame center. This refers to the bridge width of the frame.

[0086] Furthermore, in a step ST3, a theoretical target rotation of the spectacle lenses can be calculated, i.e., a rotation at which the spectacle lenses are positioned in the recorded image. The target rotation can include, for example, a theoretical target frame lens angle and / or a theoretical target forward tilt. The rotation can refer to both a rotation of the spectacle lenses of the manufactured spectacles and a rotation of molded-edged spectacle lenses that have not yet been inserted into a spectacle frame. The theoretical target rotation can include an alignment and / or inclination relative to the optical recording axis of the image recording device 2.

[0087] As already explained above, in a step ST4 an image of the glasses 10 or the lenses is taken, for example by the image recording device 2, which in Figure 1 The image includes both the glasses 10 or the lenses, as well as, for example, a structure provided by the structure-generating means 6. Furthermore, the image may include light from an illumination source used to visualize and / or mark the functional engravings 11. If the structure-generating means 6 is configured as a screen, both the structure and the light may be provided by the screen.

[0088] In step ST5, a lens contour of the spectacle lenses is determined in the captured image. This can be used, for example, to create a surrounding rectangle around the two lenses for further calculation. Alternatively, at least one spectacle reference point can be detected, which can be used to determine the orientation, inclination, etc., of the spectacle frame in the captured image.

[0089] In a step ST6, the position of the functional engravings 11 is further determined in the recorded image. In this case, the positions of at least two functional engravings 11 can be determined per spectacle lens.

[0090] In the captured image, the positions of the functional engravings 11 may initially be represented in pixel coordinates. The same applies to the lens contours and / or the positions of the spectacle reference points. The pixel coordinates can be converted into SI units, for example, millimeters and / or world coordinates, in a step ST7, based on a calibration.

[0091] The distances between the respective functional engravings can then be calculated using the determined positions. In step ST8, the distances from a nasal and / or temporal edge of the surrounding rectangle can be determined, as can the distances from a lower and / or upper edge of the surrounding rectangle in step ST9. In other words, actual distances are calculated in steps ST8 and ST9, in contrast to the target distances calculated previously in step ST2, which the positions of the functional engravings should have if correct centering is present.

[0092] When checking the centering, an actual rotation of the spectacle lenses can also be taken into account in a step ST10, in particular the actual frame lens angle and / or the actual inclinations of the spectacle lenses. Alternatively or additionally, an actual vertical inclination and / or an actual horizontal inclination of the lenses can be taken into account. Furthermore, when calculating the actual distances from the target distances, a parallax shift can be taken into account, which always occurs when the functional engravings 11 are arranged on the side of the spectacle lenses facing away from the image recording device 2.

[0093] Finally, in a step ST11, the position deviations (ACTUAL - DESIRED) of the individual functional engravings 11 can be calculated, i.e. in particular a deviation of the actual position from the previously theoretically determined desired position of the functional engravings.

[0094] To verify centering, in step ST12, an actual pupillary distance (abbreviated as actual PD) and / or an actual grinding height (abbreviated as actual ESH) can be compared with the corresponding target pupillary distance (abbreviated as target PD) and / or a theoretically determined target grinding height (abbreviated as target ESH). This allows the degree to which the actual PD deviates from the target PD and / or the degree to which the actual ESH deviates from the target ESH to be calculated, e.g., using the equations: IST − PD = SOLL − PD + horizontale Abweichung der nasalen Gravur + horizontale Abweichung der temporalen Gravur / 2 ; and IST − ESH = SOLL − ESH + vertikale Abweichung der nasalen Gravur + vertikale Abweichung der temporalen Gravur / 2 .

[0095] The calculation distinguishes between the position of the nasal engraving and the position of the temporal engraving. The nasal engraving is the functional engraving of the respective lens that is positioned closer to the wearer's nose in the wear position, while the temporal engraving is the functional engraving of the respective lens that is further away from the wearer's nose in the wear position.

[0096] If the determined deviation is less than a permissible and / or allowable deviation, the check may indicate that the centering is sufficiently good. If at least one of the two actual values ​​deviates from the theoretically determined target values ​​more than a permissible tolerance allows, the centering check may fail. Depending on the result of the check, an output may be generated indicating the result of the check to the operator.

[0097] Optionally, the rotation of the respective lens within the frame can also be checked. The rotation can be calculated and / or measured from the actual position of the functional engravings. The rotation check of the lens(es) can be incorporated into the centration check result.

[0098] The Figure 4The embodiment shown is intended as an example. Instead of the interpupillary distance and the grinding height, a deviation from an absolute target position could also be checked, for example, in two-dimensional box dimensions or in three-dimensional world coordinates.

[0099] In the context of this invention, the terms "substantially" and / or "about" may be used to include a deviation of up to 5% from a numerical value following the term, a deviation of up to 5° from a direction following the term and / or from an angle following the term. List of reference symbols

[0100] 1Device 2Image recording device 3Lens 4Laser line 5Alignment determination means 6Structure generation means 7Lens holder 10. Glasses 11Functional engraving 20Surface profile FFrame plane αRight frame lens angle βLeft frame lens angle

Claims

1. Method for checking the centring of at least one spectacle lens comprising the steps of: - arranging the at least one spectacle lens in a recording field of an image recording device (2); - recording at least one image of the spectacle lens by means of the image recording device (2); - determining the positions of functional engravings (11) of the spectacle lens in the recorded image; - determining at least one lens contour of the spectacle lens in the recorded image; and - checking the centring of the spectacle lens, taking into account - the determined position of the functional engravings (11), - the determined lens contour, - at least one lens angle (α, β ) of the spectacle lens, - a previously known, user-dependent target geometry of the centring and - a parallax shift, if the functional engravings (11) are arranged on the side of the spectacle lens which faces away from the image pick-up device (2) when the image is picked up, the parallax shift being calculated from the frame lens angle (α, β ) and associated theoretical data such as a lens thickness, a front surface and a rear surface of the at least one spectacle lens via ray calculation through the spectacle lens.

2. The method according to claim 1, wherein - the spectacle lens is provided either in a finished spectacle (10) or as at least one moulded spectacle lens, - the glass contour of the spectacle lens in the recorded image is either - is determined by determining the position of at least one spectacle reference point of the finished spectacles (10) in the recorded image, or - by determining a lens shape of the mould-edged spectacle lens in the recorded image; and - the centring of the finished spectacles (10) or of the shape-edged spectacle lens is checked, taking into account the determined position of the spectacle reference point or the determined lens shape.

3. The method according to one of the preceding claims, wherein to determine the position of the functional engravings (11) on a side of the spectacle lens facing away from the image recording device (2), a structure is generated which is at least partially imaged through the spectacle lens in the recorded image.

4. The method according to one of the preceding claims, wherein the frame lens angle (α, β ) is determined by evaluating a reflection of at least one laser line (4) on the spectacle lens.

5. The method according to claim 4, wherein laser light of a wavelength of about 400 nm to about 500 nm is used as the laser line (4).

6. The method according to one of the preceding claims, wherein the frame lens angle (α, β ) is determined from manufacturing data of a spectacle frame for the spectacle lens and / or by means of an external measuring device.

7. The method according to one of the preceding claims, wherein, in the event that the centring is checked on at least one shape-edged spectacle lens, the shape-edged spectacle lens is arranged at a frame lens angle (α, β ) of approximately 0° in the recording field of the image recording device (2), wherein the frame lens angle (α, β ) is not taken into account when checking the centring.

8. The method according to one of the preceding claims, wherein a pre-tilt of the spectacle lens is determined and the determined pre-tilt is taken into account when checking the centring of the spectacle lens.

9. A device (1) for checking the centring of at least one spectacle lens, comprising: - a lens holder (7) for holding the at least one spectacle lens; - an image recording device (2) for recording an image of the spectacle lens arranged in the glass holder (7); - an engraving detection means for detecting positions of functional engravings (11) of the spectacle lens in the recorded image; - a geometry determining means for determining at least one glass contour of the at least one spectacle lens in the recorded image; and - a checking means for checking the centring of the at least one spectacle lens, taking into account - the determined position of the functional engravings (11), - the determined lens contour, - at least one lens angle (α, β ) of the spectacle lens, - a previously known, user-dependent target geometry of the centring and - a parallax shift if the functional engravings (11) are arranged on the side of the spectacle lens which faces away from the image pick-up device (2) when the image is picked up, the parallax shift being calculated from the frame lens angle ( ,αβ ) and associated theoretical data such as a lens thickness, a front surface and a rear surface of the at least one spectacle lens by means of ray calculation through the spectacle lens.

10. The device (1) according to claim 9, comprising alignment determining means for determining an alignment of the spectacle lens relative to an optical pick-up axis of the image pick-up device (2), wherein the checking means is adapted to take the determined alignment into account when checking the centring of the spectacle lens.

11. The device (1) according to any one of claims 9 or 10, wherein the image pick-up device (2) comprises a telecentric lens (3).

12. The device (1) according to any one of claims 9 to 11, comprising a structure generating means (6) for generating a structure on the side of the spectacle lens facing away from the image recording device (2), wherein the structure can be imaged through the spectacle lens in the recorded image; and / or wherein the glass holder (7) is substantially transparent and / or the glass holder (7) accommodates the at least one spectacle lens at a lateral region with respect to an optical pick-up axis of the image pick-up device (2).

13. Computer program product which contains program parts which, when executed on a processor, determine the positions of the functional engravings (11) in a method according to any one of claims 1 to 8, determine the glass contour of the at least one spectacle lens and check the centring of the at least one spectacle lens.