WO2012126808A1 - Method for determining at least one parameter of two eyes by setting data rates and optical measuring device - Google Patents

Method for determining at least one parameter of two eyes by setting data rates and optical measuring device Download PDF

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Publication number
WO2012126808A1
WO2012126808A1 PCT/EP2012/054605 EP2012054605W WO2012126808A1 WO 2012126808 A1 WO2012126808 A1 WO 2012126808A1 EP 2012054605 W EP2012054605 W EP 2012054605W WO 2012126808 A1 WO2012126808 A1 WO 2012126808A1
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WO
WIPO (PCT)
Prior art keywords
eye
signals
data rate
data
eyes
Prior art date
Application number
PCT/EP2012/054605
Other languages
French (fr)
Inventor
Walter Nistico
Jan Hoffmann
Eberhard Schmidt
Original Assignee
Sensomotoric Instruments Gmbh
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Sensomotoric Instruments Gmbh filed Critical Sensomotoric Instruments Gmbh
Priority to US14/005,286 priority Critical patent/US20140078283A1/en
Priority to JP2013558448A priority patent/JP6026444B2/en
Priority to CN201280014104.7A priority patent/CN103442629B/en
Publication of WO2012126808A1 publication Critical patent/WO2012126808A1/en
Priority to US17/470,789 priority patent/US20220061660A1/en

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Classifications

    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B3/00Apparatus for testing the eyes; Instruments for examining the eyes
    • A61B3/10Objective types, i.e. instruments for examining the eyes independent of the patients' perceptions or reactions
    • A61B3/14Arrangements specially adapted for eye photography
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B3/00Apparatus for testing the eyes; Instruments for examining the eyes
    • A61B3/0008Apparatus for testing the eyes; Instruments for examining the eyes provided with illuminating means
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B3/00Apparatus for testing the eyes; Instruments for examining the eyes
    • A61B3/02Subjective types, i.e. testing apparatus requiring the active assistance of the patient
    • A61B3/024Subjective types, i.e. testing apparatus requiring the active assistance of the patient for determining the visual field, e.g. perimeter types
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B3/00Apparatus for testing the eyes; Instruments for examining the eyes
    • A61B3/10Objective types, i.e. instruments for examining the eyes independent of the patients' perceptions or reactions
    • A61B3/107Objective types, i.e. instruments for examining the eyes independent of the patients' perceptions or reactions for determining the shape or measuring the curvature of the cornea
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B3/00Apparatus for testing the eyes; Instruments for examining the eyes
    • A61B3/10Objective types, i.e. instruments for examining the eyes independent of the patients' perceptions or reactions
    • A61B3/11Objective types, i.e. instruments for examining the eyes independent of the patients' perceptions or reactions for measuring interpupillary distance or diameter of pupils
    • A61B3/112Objective types, i.e. instruments for examining the eyes independent of the patients' perceptions or reactions for measuring interpupillary distance or diameter of pupils for measuring diameter of pupils
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B3/00Apparatus for testing the eyes; Instruments for examining the eyes
    • A61B3/10Objective types, i.e. instruments for examining the eyes independent of the patients' perceptions or reactions
    • A61B3/113Objective types, i.e. instruments for examining the eyes independent of the patients' perceptions or reactions for determining or recording eye movement
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/0093Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00 with means for monitoring data relating to the user, e.g. head-tracking, eye-tracking
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/01Head-up displays
    • G02B27/017Head mounted
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/01Head-up displays
    • G02B27/017Head mounted
    • G02B27/0172Head mounted characterised by optical features
    • GPHYSICS
    • G02OPTICS
    • G02CSPECTACLES; SUNGLASSES OR GOGGLES INSOFAR AS THEY HAVE THE SAME FEATURES AS SPECTACLES; CONTACT LENSES
    • G02C11/00Non-optical adjuncts; Attachment thereof
    • G02C11/10Electronic devices other than hearing aids
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/011Arrangements for interaction with the human body, e.g. for user immersion in virtual reality
    • G06F3/013Eye tracking input arrangements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/10Cameras or camera modules comprising electronic image sensors; Control thereof for generating image signals from different wavelengths
    • H04N23/11Cameras or camera modules comprising electronic image sensors; Control thereof for generating image signals from different wavelengths for generating image signals from visible and infrared light wavelengths
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/50Constructional details
    • H04N23/54Mounting of pick-up tubes, electronic image sensors, deviation or focusing coils
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/60Control of cameras or camera modules
    • H04N23/61Control of cameras or camera modules based on recognised objects
    • H04N23/611Control of cameras or camera modules based on recognised objects where the recognised objects include parts of the human body
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/60Control of cameras or camera modules
    • H04N23/69Control of means for changing angle of the field of view, e.g. optical zoom objectives or electronic zooming
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/90Arrangement of cameras or camera modules, e.g. multiple cameras in TV studios or sports stadiums
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/01Head-up displays
    • G02B27/0101Head-up displays characterised by optical features
    • G02B2027/0138Head-up displays characterised by optical features comprising image capture systems, e.g. camera
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/01Head-up displays
    • G02B27/0101Head-up displays characterised by optical features
    • G02B2027/014Head-up displays characterised by optical features comprising information/image processing systems
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/01Head-up displays
    • G02B27/017Head mounted
    • G02B2027/0178Eyeglass type
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/01Head-up displays
    • G02B27/0179Display position adjusting means not related to the information to be displayed
    • G02B2027/0187Display position adjusting means not related to the information to be displayed slaved to motion of at least a part of the body of the user, e.g. head, eye

Definitions

  • the invention relates to a method for determining at least one parameter of two eyes of a test person, the method comprising the steps of optically capturing of a first eye of the two eyes by means of a first capturing unit, of optically capturing the second eye of the two eyes by means of a second capturing unit, of transmitting first signals concerning the captured first eye from the first capturing unit to an analysis unit and transmitting second signals concerning the captured second eye from the second capturing unit to the analysis unit, and of determining the at least one parameter of the two eyes on the basis of the transmitted first and second signals in the analysis unit.
  • the invention also relates to an optical measuring device for determining at least one parameter of two eyes of a test person. It is known from the prior art to use head mounted eye tracker devices.
  • US RE39,539 E discloses an apparatus for monitoring movement of a person's eye.
  • the system includes a frame that is worn on a person's head, an array of emitters on the frame for directing light towards the person's eye, and an array of sensors on the frame for detecting light from the array of emitters.
  • the sensors detect light that is reflected off re- spective portions of the eye or its eyelid, thereby producing output signals indicating when the reflective portion of the eye is covered by the eyelid.
  • the system allows to monitor the persons level of drowsiness.
  • US 6,163,281 discloses a system and method for communication using movement of a person's eye, including an emitter for directing light towards an eye, a sensor for detecting emitted light from the emitter, and a processor coupled to the sensor for converting sequential light intensity signals received from the sensor to a stream of data, and/or for converting the signals into an understandable message.
  • US 2004/0196433 A1 discloses an eye tracking system for monitoring the movement of a user's eye comprising an eye camera and a scene camera for supplying to interlace electronics video data indicative of an image of the user's eye and an image of the scene observed by the user.
  • the system incorporates a frame grabber for digitizing the video data and for separating the eye and scene data into two processing channels, and a spot location module for determining from the video data the location of a reference spot formed on the user's eye by illumination of the user's eye by a point source of light.
  • the system further incorporates a pupil location module in order to determine the user's line of gaze.
  • WO 2010/83853 A1 discloses a gaze point detection system with one or more infrared signal sources to be placed in a test scene as reference points, at least one pair of eye glasses worn by a test subject, and a data processing and storage unit for calculating a gaze point of the person.
  • the eye glasses comprise an image sensor adapted to detect IR signals from the at least one IR signal source and to generate an IR signal source tracking signal, an eye tracking unit adapted to determine the gaze direction of the test subject person and to generate an eye tracking signal, and a camera unit adapted to acquire a test scene picture.
  • WO 2004/066097 A2 discloses an eye tracking system for displaying a video screen pointer at a point of regard of a users gaze.
  • the system comprises a camera focused on the user's eye, a support connected to the camera for fixing the relative position of the camera to the user's pupil, and a computer having a CPU and an eye tracking interface. By determining the center of the eye, a pointer on the video display screen can be displayed at the point of regard.
  • US 2010/0220291 A1 discloses an eye tracking system with a transparent lens, at least one light source, and a plurality of light detectors. The transparent lens is adapted for disposal adjacent an eye. At least one light source is disposed within the transparent lens and is configured to emit light towards the eye.
  • the at least one light source is transparent to visible light.
  • the plurality of light detectors is disposed within the trans- parent lens and is configured to receive light that is emitted from the at least one light source and is reflected off the eye.
  • Each of the light detectors is transparent to visible light and is configured, upon receipt of light that is reflected off the eye, to supply an output signal.
  • Known head mounted eye trackers suffer from the disadvantage that large data quantities have to be processed in order to guarantee reliable eye tracking. Cameras monitoring the test person's eyes individually acquire and provide abundant data relating to characteristics concerning the eyes. This data needs to be transferred to an adequate processing unit quickly. Thus, significant bandwidth for the data transfer is required. Furthermore, the large data quantities have to get processed fast to achieve eye tracking in real time, i.e. with only little time delay. Consequently, expensive processing units are required, which suffer from high power consumption, too. In particular, mobile and small eye tracking devices may thus get heavy, bulky and expensive. In addition to a head mounted unit an external device comprising a processing unit may be necessary.
  • An object of the present invention is to provide a method and an optical measuring device which allow for a more reliable determination of at least one parameter of two eyes of a test person.
  • This task according to the invention is solved by a method having the features according to patent claim 1 , and an optical measuring device having the features according to patent claim 1 1 .
  • Advantageous embodiments of the invention are the subject-matter of the independent claims and the description.
  • the method according to the invention serves for determining at least one parameter of two eyes of a test person, the method comprising the following steps:
  • first and second data rates differ from each other, one of the data rates is smaller than the other one.
  • the overall bandwidth required for transmitting the first and second data is reduced compared to the state of the art.
  • the method it is, for example, possible to capture a first parameter characterizing the first eye and a second parameter, differing from the first parameter, characterizing the second eye. Data relating to the first parameter are then transmitted with the first data rate, while data concerning the second parameter are transmitted with the second data rate. Both parameters taken together then allow reliable determination of one or more parameters of interest characterizing the two eyes.
  • first and second parameters do not need to be captured by both the first and second capturing unit. Capturing and transmission of redundant and superfluous information can be avoided. This way, data streams can be kept lean.
  • the capturing unit may comprise at least one camera. It is possible that the capturing of the respective eye with the first and second capturing unit is effected at the same data rate. The acquired data may then be preprocessed such that data relating to the first capturing unit are transmitted to the analysis unit with the first data rate while the data relating to the second capturing unit are transmitted to the analysis unit with the differing second data rate. Alternatively, it may also be possible that already data acquisition by the first and second capturing units is effected at two differing data rates.
  • the method comprises the following steps: - providing data concerning the respective captured eye in the first and/or the second capturing unit in dependency on the set first or second data rate;
  • the capturing or acquisition data rate of the first and second capturing units may thus differ.
  • the first capturing unit may optically capture the first eye according to the set first data rate, while the second capturing unit may capture the second eye with the second data rate. This way, already in the step of data acquisition the amount of data is kept low. Only such data is acquired which is indeed necessary to determine the at least one parameter of the two eyes. Superfluous data are avoided right from the start. The over- all data volume is kept low.
  • a data compression in dependency of the set first or second data rate is performed.
  • this step can be performed after data is acquired by the first and second capturing unit but before the respective data is transmitted to the analysis unit.
  • the step may comprise preprocessing of the data.
  • Known state of the art data compression algorithms may be used.
  • Data compression may be different for data provided by the first and second capturing units. For instance, data provided by the second capturing unit may undergo higher data compression than data provided by the first capturing unit. Different data compression algo- rithms may be performed in the first and second capturing units.
  • the method may comprise the following step: Setting a temporal capture resolution and/or a spatial capture resolution and/or a capturable image section, in particular a dynamic area of interest which follows the eye and can be adjusted with regard to its size and scan rate, of the first and/or the second capturing unit for the optical capturing of the respective eye in dependency on the set first or second data rate.
  • a temporal capture resolution relates to a temporal data acquisition rate of the respective capturing unit.
  • the first capturing unit may capture double the amount of signals during the same period of time as the second capturing unit.
  • the spatial capture resolution may be defined by a pixelated resolution.
  • the spatial resolution of the first and second capturing unit is defined by the same pixel array with the same pixel size the spatial capture resolution of the first capturing unit may be four times as high as the spatial capture resolution of the second capturing unit if the second capturing unit performs a two-by-two binning.
  • the capturable image section of the respective capturing unit may be a field of view of this capturing unit. This field of view may be dynamically adjusted to the gaze point of the respective captured eye. This way, first and second data acquisition rates can be flexibly adjusted. Depending on the respective situation an adequate first and/or second data rate can be chosen in an easy manner.
  • the optical capturing of the first and second eye may occur with the same data rate but with a specific phase shift. While the first capturing unit is scanning the first eye, the second capturing unit may not scan the second eye and vice versa.
  • the consecutive scanning intervals may be determined by a capturing rate, which may be the same for both capturing units. However, a time delay between scanning intervals of the first and second capturing unit may be introduced. If a parameter that is to be determined is virtually the same, irrespective of whether the first or second eye is observed, this redundancy together with the phase shift effectively results in an enhanced capturing rate. If, for example, the parameter that is to be determined is the pupil diameter, this diameter is usually the same for the first and second eye.
  • the first and second eye may then be captured with a capturing rate of 30 Hz each, the two capturing sequences being shifted by half a period.
  • the pupil diameter is then effectively sampled with 60 Hz rate. Varying the phase shift is thus an elegant way to set the desired data rate.
  • the method may comprise the following steps:
  • the third capturing unit may be a scene camera.
  • the captured field of view can be switched from a landscape into a portrait mode or vice versa. Consequently, the field of view captured by the third capturing unit may not be constant but may be adjusted depending, for example, on a point of regard of the two eyes, which may be determined on the basis of the first and third and/or second and third signals. Thus, only the field of view relevant in the respective situation is captured and unnecessary data is avoided.
  • the third capturing unit may comprise sev- eral capturing units or sensors, e.g. a scene camera and an infrared camera.
  • the method comprises the following step: determining a third data rate for the third signals, wherein the transmitting of the third signals is effected at the third data rate, wherein the third data rate in particular is different from the first and/or second data rate. All three data rates may thus be chosen individually and in dependency of the respective capturing situation. If, for example, a high first data rate is required, the second and/or third data rate can be adjusted accordingly and respective lower values can be chosen for them.
  • the first data rate is set to be larger than the second data rate, and on the basis of the first and second signals a directional view and/or a visual focus of the test person is determined.
  • first and second data rates do not need to be equal but the second data rate can be chosen to be lower than the first data rate. This way, the directional view and/or visual focus can be determined very precisely despite reduced overall data rates.
  • a parallax correction is performed on the basis of the first and the second signals and/or the first and the third signals and/or the second and the third signals in the analysis unit.
  • One of the group of the first, second or third signals may then serve as a primary data source for determining a point of regard.
  • Another signal of the group of first, second and third signals may then serve as a corrective signal to perform the parallax correction with respect to the point of regard. Determining the point of regard may require a comparatively high amount of data and consequently a high data rate, while the data required for the parallax correction may be acquired and/or transmitted with a comparatively lower data rate. The overall data rate is kept low.
  • the at least one captured parameter concerns an orientation and/or a position and/or an eyelid closure and/or a pupil diameter and/or a sclera characteristic and/or an iris characteristic and/or a characteristic of a blood vessel and/or a cornea characteristic of the at least one eye.
  • the at least one captured parameter may concern a cornea radius (anterior, posterior), an eyeball radius, a distance pupil- center to cornea-center, a distance cornea-center to eyeball-center, a distance pupil- center to limbus center, a cornea keratometric index of refraction, a cornea index of refraction, a vitreous humor index of refraction, a distance crystalline lens to eyeball- center and to cornea center and to corneal apex, a crystalline lens index of refraction, a visual axis orientation, an optical axis orientation, a pupil axis (achromatic axis) orientation, a line of sight orientation, an astigmatism degree (diopters) and orientation angle of flat and steep axis, an iris diameter, pupil diameters (pupil major and minor axes), pupil area), limbus major and minor axes, eye cyclo-torsion, eye intra-ocular distance, eye vergence, statistics over eye adduction/ab
  • An optical measuring device serves for determining at least one parameter of two eyes of a test person and comprises a first capturing unit configured to optically capture a first eye of the two eyes, a second capturing unit configured to optically capture the second eye of the two eyes, an analysis unit configured to receive first signals concerning the captured first eye and transmitted by the first capturing unit and second signals concerning the captured second eye and transmitted by the second capturing unit, and on the basis of the transmitted first and second signals to determine the at least one parameter of the two eyes, and an assigning unit configured to set a first data rate for the first signals and a different second data rate for the second signals, so that the transmission of the first signals to the analysis unit is effected at the first data rate and the transmission of the second signals to the analysis unit is effected at the second data rate.
  • the analysis unit and the assigning unit may be comprised by a single processing unit and/or computer.
  • the optical measuring device may comprise a third capturing unit configured to capture a field of view which at least partly corresponds to a field of view which is capturable by the eyes of the test person and configured to transmit third signals concerning the captured field of view at a third data rate to the analysis unit, wherein the assigning unit is configured to set the third data rate.
  • the third capturing unit may be a camera. While the first and second capturing units may be cameras observing the eyes of the test person, the third capturing unit may be a scene camera capturing a similar scene as seen by the test person. In particular, the first and second capturing units on the one hand and the third capturing unit on the other hand may be directed into opposite directions.
  • the assigning unit may be configured to set the ratio of the first to the second data rate and/or the ratio of the first to the third data rate and/or the ratio of the second to the third data rate to be such that it assumes a value in the range of 1 :5000 to 5000:1 .
  • the wide range allows setting the respective data rates independently of each other.
  • the overall data rate can be fine-tuned.
  • the assigning unit is configured to set the first and/or the second and/or the third data rate in dependency on each other and/or in dependency on prede- terminable parameters, in particular a data transmission volume on a data line, and/or in dependency on a predeterminable measurement purpose of the optical measuring device. Consequently, one can make use of the full bandwidth provided by a data line of the optical measuring device without leaving any bandwidth unused or surpassing the maximum data volume that can be transmitted.
  • the respective data rates can dy- namically adjust to the respective situation.
  • the optical measuring device comprises at least one common data line configured to transmit the first and second and/or the first and third and/or the second and third signals.
  • the bandwidth of a common data line is usually limited.
  • the first, second and third data rates adjustable one can make use of the full bandwidth provided. Compromising data by surpassing the allocatable bandwidth can be prevented.
  • the first and/or the second and/or the third capturing unit comprise at least one camera.
  • Figure 1 A a front view of a spectacle device according to an embodiment of the in- vention
  • Figure 1 B a side view of the spectacle device of Figure 1 A;
  • Figure 1 C a top view of the spectacle device of Figure 1 A;
  • Figure 1 D a perspective view of the spectacle device of Figure 1 A;
  • Figure 2 a rear view of a spectacle device
  • Figure 3 a schematic rear view of a spectacle device with an eye camera making use of a deflection element to direct its optical path onto the eye;
  • Figure 4 a side view of a spectacle device schematically showing the orientation of an eye camera
  • Figure 5 a schematic view of individual electronic components comprised by a
  • Figure 6A a picture with a symbol indicating a large parallax error attained with an optical measuring device according to the prior art
  • Figure 6B a picture showing a symbol indicating the lack of a parallax error with a spectacle device according to an embodiment of the invention
  • Figure 7 a parallax error model
  • Figure 8 a diagram comparing parallax errors of measuring devices according to the prior art and according to an embodiment of the invention.
  • Figure 9A a first field of view acquired by a scene camera
  • Figure 9B a second field of view acquired by the scene camera
  • Figure 10A a schematic side view of a spectacle device were the optical path of an eye camera extends in a straight line from the eye camera to an eye;
  • Figure 10B a schematic side view of a spectacle device where the optical path of an eye camera extends from the eye camera via a mirror to the eye.
  • Figures 2, 3, and 4 show the same reference frame with a Cartesian coordinate system and perpendicular axes x, y and z.
  • Figures 1 A to 1 D show an optical measuring device which has the form of a spectacle device 1 or eye tracking device, respectively.
  • the spectacle device 1 is designed such that a person can wear it on its head just like a normal pair of glasses. It comprises a frame 4 with two side bars 5I and 5r which support the spectacle device 1 on the ears of the person who is wearing it. Furthermore, the spectacle device 1 is held in place on the head by a nose support 7.
  • the mainframe has a specific width w1 and height h. Its length I depends on the length of the sidebars 5I and 5r.
  • the sidebars 5I and 5r are hinged to the front part of the frame 4 such that the distance w2 between the side bars 51 and 5r can be enlarged or reduced (see dashed sidebar configuration for sidebar 51 in Figure 1 C).
  • the optical measuring device may not be designed in form of a regular pair of eye glasses, but may be designed such that it resembles a helmet, forming a frame, with a face shield, forming a frame insert.
  • a scene camera 2 is installed above the nose support 7 in the frame 4 . It can either be attached to or integrated into the frame 4. With the scene camera 2 virtually a similar field of view can be captured as seen by a test person when wearing the spectacle device 1 .
  • the spectacle device 1 contains two eye cameras 3I and 3r.
  • Eye cameras 3I and 3r are designed to observe the person's left eye and right eye, respectively, i.e. capture characteristics of the person's eyes.
  • the frame 4 contains two openings which are filled with eye glass lenses 81 and 8r thus forming frame inserts.
  • the pictures acquired by the scene camera 2 and the eye cameras 31 and 3r lead to signals which are processed in one or several pre-processing units 6 integrated into the sidebars 51 and 5r.
  • FIG 2 shows an inside view of the spectacle device 1 .
  • LEDs Light Emitting Diods
  • FIG. 1 shows an inside view of the spectacle device 1 .
  • the LEDs 9 can illuminate the eyes of the test person in a defined way.
  • the LEDs 9 will cause reflections on the eyes of the test person (cornea reflections) for all possible gaze angles. Those reflections can be detected by the eye cameras 3I and 3r and can be used for eye tracking.
  • the LEDs 9 can be switched on an off individually, in groups or all together following a specific time pattern, strobe characteristic or spatial variation.
  • the on-off-switching- frequency of different LEDs 9 or groups of LEDs 9 may vary. Certain groups of LEDs 9 may get switched on exactly when other groups of LEDs 9 get switched off. A specific spatial and temporal correlation pattern may be implemented with regard to the switch- ing and thus illumination characteristics. This way a reflection pattern can be created on the eyes that can be recognized easily by the eye cameras 3.
  • the eye cameras 31 and 3r are connected to specific camera electronics 15 by 100 mm long cables 14.
  • the cameras 3I and 3r comprise only basic electronic components while their major electronic components are located within the camera electronics 15.
  • the primarily "optical part” of the cameras 3I and 3r can be located remote to the primarily "electronic part” within the camera electronics 15.
  • Both parts can then be connected by flex-PCB cables 14.
  • the optical sensor and the basic electronic components within the cameras 3I and 3r form a very small and highly compact entity while bulkier electronic components within the electronics 15 can be placed on more spacious integrated circuit boards elsewhere.
  • the electronics 15 are connected to a pre-processing unit 16 which can process the signals from the eye cameras 31 and 3r.
  • the pre-processing unit 16 can be identical to the pre-processing unit 6 located in the sidebars 5I and 5r of the spectacle device 1 .
  • the pre-processing unit 16 is connected to a USB-hub 19.
  • the LEDs 9 installed in the frame 4 form a first and a second IR LED chain 21 and 22 arranged in a ring configuration around the eye glass lenses 8I and 8r.
  • the IR LED chains 21 and 22 are connected to an IR LED constant current source 20, which is also connected to the USB-hub 19.
  • the USB-hub 19 additionally serves as a power source for the IR LED constant current source 20.
  • the LEDs 9 of the IR LED chains 21 and 22 can be switched on an off individually. To achieve this, they may be connected to the IR LED constant current source 20 in a parallel network with individual electrical switches for each LED 9 being implemented.
  • the USB-hub 19 is connected via a serial interface or USB cable 25 to a preprocessing unit 26.
  • the signals pre-processed in the pre-processing unit 26 are finally analyzed in a personal computer 27, which contains a recorder device 28.
  • An additional aux-/sync-port 13 forming an interface on the spectacle device 1 can also be connected to the USB-hub 19.
  • the aux-/sync-port 13 can serve as interface for synchronization with other electronic devices or for triggering parallel data acquisitions.
  • the electronics 15, pre-processing unit 16, USB-hub 19 and IR LED constant current source 20 are located on a common printed circuit board PCB 23. In analogy to this setup the scene camera 2 is also connected to electronics 15 via a 100 mm cable 14.
  • the electronics 15 are located on a second printed circuit board PCB 24, which also contains a pre-processing unit 17.
  • the pre-processing unit 17 can be based on electronics according to the DaVinci digital signal processor (DSP). It contains an MPEG encoder 18 for encoding the signals received from the electronics 15.
  • a microphone 12 may also be connected to the pre-processing unit 17.
  • the preprocessing unit 17 located on the PCB 24 is connected to the USB-hub 19. This way, processing signals acquired by the scene camera 2 are finally analyzed in the personal computer 27.
  • the pre-processing units 6, 16, 17 and 26 may be able to compress at least one of the three image streams generated by the two eye cameras 3I and 3r and the scene camera 2.
  • a pre-processing unit may compress only the image stream of one camera while each camera has its own pre-processing unit.
  • a single pre-processing unit may compress the image streams of all cameras.
  • the pre-processing units may be configurable via a system interface and corresponding software to manage the bandwidth by adjustment of resolution, region of interest, frame rate and compression parameters.
  • the pre-processing units may be designed to trigger synchronously the camera's image acquisition. They may provide time stamps for each acquired image which can be used to synchronise several or all camera data streams offline.
  • the pre-processing units may either be located on integrated circuit boards of the cameras or on a separate integrated circuit board that is located at or on a head mount (e. g. in the side bar 51 or 5r of the spectacle device 1 ) or in a separate housing that is worn by the test person 31 , e.g. on a belt.
  • the spectacle device 1 may also comprise an auxiliary interface which allows to acquire data in real time from external sensors.
  • sensors may be biometric sensors (includ- ing but not limited to EEG, ECG, etc.) or attitude sensors (including but not limited to accelerometers, magnetometers, gyroscopes, etc.). It is then possible to synchronise the data stream of the external sensors with the data streams acquired from the cameras 2, 3I and 3r.
  • an external clock or trigger signal can be provided that can be used by the external sensors to synchronise themselves with the system.
  • the bandwidth of data acquired from the interface can be reduced or compressed by means of on-board processing resources integrated in the system in its dedicated recording unit 28.
  • the eye cameras 31 and 3r can either be suited for visible or near infrared light.
  • the eye cameras 31 and 3r may be positioned in front and below the eyes 10I and 10r respectively, for example in or at the lower rim of a pair of eye glass lenses 8I and 8r, pointing at the eyes 101 and 10r in an angle of 30° to 50° and being mounted in the frame 4 in an angle a of 30° to 50°.
  • the eye cameras 31 and 3r are sensitive in the near infrared.
  • the eye cameras 31 and 3r are sensitive in the near infrared. They have a resolution of 640 * 480 and are read out with a 60 Hz frequency.
  • the scene camera 2 can be located on a vertical centre line that divides the user's face into two halves in or at the nose bridge of the frame 4. Alternatively, it may also be located at, in or close to the rim of a helmet, cap or headband.
  • the scene camera 2 may have HD (high definition) and/or adjustable resolution. It can either be mounted in landscape or portrait orientation. Furthermore, it can be mounted such that its orientation can be changed from landscape to portrait orientation (camera roll) and also the direction the camera is pointing in (camera pan and tilt).
  • the spectacle device 1 can also comprise a pair of scene cameras, where each scene camera can be oriented either in portrait mode or in landscape mode. Furthermore, each scene camera can be oriented independently of the respective second scene camera. Alternatively, both scene cameras 2 may have fixed orientations, which may or may not differ from each other. Furthermore a prism or lens can be mounted in front of the scene camera 2 to create a different positioning of the field of view of the scene camera 2 with respect to the glasses, especially a more downward oriented field of view for near range reading applications.
  • Six LEDs 9 are located around each eyeglass lens 8. They emit in the infrared wavelength range (typically above 750 nm and below 1000 nm) at a central wavelength of 850 nm. They are driven by 50 imA current provided by the IR LED constant current source 20.
  • a light guide can be envisaged.
  • One or several segments of light guides may be used.
  • the illumination of the eyes may be implemented with focusing optics (structured illumination).
  • suitable diffractive optics or lasers may be used to generate a pattern of coherent light for illuminating the eyes.
  • the light source can be used together with an optical element in order to create a pattern of reflections on the eyes 10I and 10r (e.g. with focusing optics or diffractive optics).
  • the illumination source may either emit visible or near infrared light.
  • the illumination source may be positioned in or on the frame 4, in particular in a circle-like arrangement around the eye glass lenses 81 and 8r. Alternatively, the illumination source may be located on the rim or frame of a head mounted display. It may specifically be designed to create a pattern of reflections on the eye surfaces of the test person 31 .
  • FIG. 10A When the spectacle device 1 shown in Figure 2 is worn by a test person the situation shown in Figure 10A in a simplified way is realized.
  • the eye camera 3 is arranged in such a way on the frame 4 that with the spectacle device 1 fixed to the head of a test person the optical path M capturing at least one parameter of the eye 10 extends in a straight line from the eye camera 3 to the eye 10.
  • Figures 3 and 10B show a different configuration of the spectacle device 1 .
  • the spectacle device 1 comprises a mirror 1 1 , forming an optical deflection element attached to the frame 4, the mirror 1 1 and the eye camera 3 being arranged in such a way on the frame 4 that with the spectacle device 1 fixed to the head of the test person the optical path M for capturing at least one parameter of the eye 10 extends from the eye camera 3 via the mirror 1 1 to the eye 10.
  • the three dimensional representation of Figure 3 shows the spectacle device 1 from a rear or inside view. In the figure, reflections of the left and right eye 101 and 10r, respectively, show in the eyeglass lenses 8I and 8r.
  • the coordinate system is a Cartesian one with the z-axis being directed into the plane of projection.
  • the eye cameras 31 and 3r may be mounted in front of and above the eyes 10I and 10r with an optical guide or mirror 1 1 located in front and below the eyes 10I and 10r, for example in or at the lower rim of a pair of eye glass lenses 8I and 8r in order to acquire an image of each eye 10I and 10r from a forward and low perspective and to make that image visible to the eye cameras 101 and 10r.
  • the optical guide or mirror 1 1 can either be a (flat) mirror, a spherical mirror, a dome, a custom lens, a holographic image guide, etc.
  • the mirror 1 1 can be reflecting only a specific range of wavelength and be transparent to others.
  • the mirror 1 1 can either be a flat mirror or a spherical mirror.
  • the advantage of a spherical mirror is that it magnifies the field of view of the eye camera 3 beyond the field of view achievable with a flat mirror.
  • the configuration of Figure 3 furthermore allows to place the optical system very close to the eye 10 (set direction) thus improving ergo- nomics and aesthetics.
  • the test person's own field of view is hardly obstructed.
  • the mirror 1 1 can be a so-called hot mirror, i.e. the mirror 1 1 is transparent in the visible wavelength range while having a higher reflectivity in the infrared wavelength range. It can be very thin and hollow (so-called dome) thus, minimizing the distortion due to refraction. It can be made out of a material showing a very low index of refraction (IOR).
  • the eye camera 3 is arranged in such a way that the optical path M for the capturing of at least one parameter of the eye 10 excludes the frame insert, i.e., the eye glass lens 8. Furthermore, the eye glass lens 8 is arranged in such a way that the optical axis K of the eye 10 and the optical path M as single jointly used optical element comprise the eye 10. Furthermore, the optical path M entirely runs within a space Sp which extends on the side of the eye glass lens 8 facing the eye 10.
  • Figures 6A to 8 illustrate the reduction of parallax errors in the spectacle device 1 compared to the prior art.
  • the position of an object 29 the test person actually focuses its eyes on and the point of regard 32 determined by the spectacle device 1 usually do not coincide very well when using spectacle devices 1 as known from the prior art. This effect is usually the more pronounced the closer the test person is located to the object 29 that is to be focused.
  • the spectacle device 1 according to an embodiment of the invention the coincidence between the determined point of regard 32 and the actual object 29 is very good, even for measuring distances as low as 0.5 m (see Figure 6B). This is achieved by minimizing the distance between the eye ball center and the camera focal point.
  • the situation is again illustrated in Figure 7.
  • the spectacle device 1 may get calibrated in the situation shown in Figure 6B.
  • the object 29 then lies in the calibration plain P and by calibrating the spectacle device 1 one can make sure that the determined point of regard 32 indeed falls onto the actual object 29.
  • Calibration is typically performed on a plane at some distance from the test subject. It relates measured gaze direction (angles) to pixels in the scene video frame. This calculation gives valid results only for points that lie in that calibration plane.
  • the parallax error is mathematically modelled as a function of the position of the scene camera 2 with respect to the eye position.
  • the gaze estimation error due to parallax is minimized by placing the scene camera 2 as close as possible to the eye 10, according to the results shown by the mathematical simulation.
  • the parallax error can be further corrected by estimating the distance to the point of regard by using vergence from binocular tracking and by estimating the position of the eyes with respect to the eye tracking device. To achieve even better results the field of view of the scene camera 2 can be optimized.
  • the scene camera 2 with standard optics has a field of view that does not cover the full physiological gaze range (horizontal field of view of standard optics: 40° to 50°; typical physiological gaze range: 60°).
  • the field of view of the scene camera 2 can thus be optimized depending on the respective application.
  • One such field of view optimization method is illustrated in Figure 9A and 9B.
  • a user wearing the spectacle device 1 is at the same time observing a background B and his mobile phone 30.
  • the field of view FOV1 mainly covers the background B.
  • the change in gaze direction is automatically determined by the eye cameras 3I and 3r and the scene camera's 2 field of view is automatically adjusted by switching from landscape to portrait orientation (field of view FOV2).
  • This can be achieved by a z-axis 90° mechanical roll of the scene camera 2 or by the use of an optical prism in front of the scene camera 2.
  • an optical beam splitter may be used in front of the scene camera 2.
  • the spectacle device 1 forms a head-mounted eye tracking system which consists of three cameras: two eye cameras 3I and 3r and at least one scene camera 2.
  • the three cameras 3I, 3r and 2 can have a manageable bandwidth, for example by adjustable frame rates or resolutions.
  • One or several pre-processing units 6, 16, 17 and 26 may exist that perform variable compression of the video streams received from the cameras 2, 3I and 3r.
  • the level of compression of the video streams may be the same for the eye cameras 3I and 3r and the scene camera 2, or the video streams may be separately compressed for the eye cameras 3I and 3r and the scene camera 2.
  • the frame rate for eye camera 3I may correspond to full speed acquisition
  • the one of eye camera 3r may correspond to 1/10 speed acquisition
  • the one for the scene camera 2 may correspond to 1/2 speed acquisition.
  • the acquisition rates may be chosen to be the same, while data processing is performed differently for each camera.
  • Data provided by one camera may be compressed more than data provided by another camera, although both cameras acquire the same amount of data.
  • One may also combine different compression rates with different acquisition rates. It is also possible to omit, for example, every second acquired image when transferring the data and thus reduce the amount of data to be sent to the CPU by half.
  • the signals of the cameras 2, 31 and 3r may be transferred to a CPU in the PC 27 via a wired or wireless interface (see Figure 5).
  • Auxiliary interfaces for other data sources and methods for synchronisation with these data sources may be implemented in the spectacle device 1 .
  • the spectacle device 1 can come as a system comprising several exchangeable pieces.
  • the spectacle device 1 can have an exchangeable set of nose pieces or nose supports 7 for faces with small or large noses. This way, the spectacle device 1 can be worn over vision correction glasses without a problem.
  • the spectacle de- vice 1 has a holding mechanism for exchangeable glasses that can have different levels of light transmittance (e g. clear glasses or sun glasses) for a certain range of wavelengths.
  • the exchangeable glasses can have a near infrared optical filter to match the wavelength of the illumination source and block some or all light from the outside of same and similar wavelengths from reaching the eye surface to improve signal to noise on the eye surface.
  • the spectacle device 1 has rims and a nose bridge that serve as a mount or housing for the eye cameras 3I and 3r and the scene camera 2.
  • the eye cameras 3I and 3r are mounted in such a way that their field of view extends behind the exchangeable glasses 8I and 8r.
  • a head mounted eye tracking device is realised which is calibration-free and provides an astigmatism estimation.
  • the eye-tracking functionality has zero set-up time. No adjustments are necessary.
  • a test person 31 can just put the spectacle device 1 on and start using it.
  • the spectacle device has a very large gaze-tracking range covering the physiological range of human eye movement (80° horizontal, 60° vertical). It is very robust and has a high accuracy in gaze mapping. Astigmatism is compensated for, parallax is minimized, pupil axis shift is compensated and the device is calibration free or can be calibrated using a one-point calibration fea- ture. Furthermore, it is designed to work irrespective of ethnic group (Caucasian, Asian, African, etc.), gender and age. The field of view of the scene camera 2 is optimized. By the use of optical, inertial or magnetic sensors a head tracking functionality can be implemented. The spectacle device furthermore offers biometric features, such as measuring the pupil diameter and offering interfacing and synchronisation options with EEG, ECG, etc. Finally, it can be integrated with a head mounted display. It is possible to project a virtual image onto a subject's eye of a portable computer screen. Furthermore, the possibility is offered to interact with "objects" in the virtual image using eye movement (gaze, blinks).
  • Head tracking functionality can be realized by the use of three axis gyroscopes, three axis accelerometers and/or three axis magnetometers with optional sensor fusion for six dimensional head tracking.
  • the spectacle device 1 offers a very specific optical and electronic architecture. With respect to the electronic architecture three or more high resolution cameras with allocateable bandwidth are incorporated in the device 1 . Separate processing channels for eye cameras 3I and 3r and the scene camera 2 are envisaged.
  • the optical architecture is characterized by exchangeable glasses with various properties.
  • the op- tical path of the eye cameras 31 and 3r extends behind the glasses or eye glass lenses 81 and 8r respectively.
  • a set of LEDs 9 allows for highly variable illumination of the eyes 101 and 10r. For instance, the illumination geometry around the eye can be controlled.
  • the specific LED subsets can be controlled with regard to strobe effect and sequencing.
  • eye illumination can be achieved by point, line or two- dimensional light sources.
  • FOV1 FOV2 field of view

Abstract

The invention relates to a method for determining at least one parameter of two eyes (10I, 10r) of a test person (31), the method comprising the following steps: - optically capturing of a first eye (10I; 10r) of the two eyes (10I, 10r) by means of a first capturing unit (3I; 3r); - optically capturing the second eye (10r; 10I) of the two eyes (10I, 10r) by means of a second capturing unit (3r; 3I); - transmitting first signals concerning the captured first eye (10I; 10r) from the first capturing unit (3I; 3r) to an analysis unit (27) and transmitting second signals concerning the captured second eye (10r; 10I) from the second capturing unit (3r; 3I) to the analysis unit (27); - determining the at least one parameter of the two eyes (10l, 10r) on the basis of the transmitted first and second signals in the analysis unit (27), characterized by the following step: - setting a first data rate for the first signals and a second data rate for the second signals, wherein the first and the second data rate differ from each other, and wherein the transmitting of the first signals is effected at a first data rate and the transmitting of the second signals is effected at a second data rate.

Description

DESCRIPTION:
The invention relates to a method for determining at least one parameter of two eyes of a test person, the method comprising the steps of optically capturing of a first eye of the two eyes by means of a first capturing unit, of optically capturing the second eye of the two eyes by means of a second capturing unit, of transmitting first signals concerning the captured first eye from the first capturing unit to an analysis unit and transmitting second signals concerning the captured second eye from the second capturing unit to the analysis unit, and of determining the at least one parameter of the two eyes on the basis of the transmitted first and second signals in the analysis unit. The invention also relates to an optical measuring device for determining at least one parameter of two eyes of a test person. It is known from the prior art to use head mounted eye tracker devices. US RE39,539 E discloses an apparatus for monitoring movement of a person's eye. The system includes a frame that is worn on a person's head, an array of emitters on the frame for directing light towards the person's eye, and an array of sensors on the frame for detecting light from the array of emitters. The sensors detect light that is reflected off re- spective portions of the eye or its eyelid, thereby producing output signals indicating when the reflective portion of the eye is covered by the eyelid. The system allows to monitor the persons level of drowsiness.
US 6,163,281 discloses a system and method for communication using movement of a person's eye, including an emitter for directing light towards an eye, a sensor for detecting emitted light from the emitter, and a processor coupled to the sensor for converting sequential light intensity signals received from the sensor to a stream of data, and/or for converting the signals into an understandable message.
US 2004/0196433 A1 discloses an eye tracking system for monitoring the movement of a user's eye comprising an eye camera and a scene camera for supplying to interlace electronics video data indicative of an image of the user's eye and an image of the scene observed by the user. In addition, the system incorporates a frame grabber for digitizing the video data and for separating the eye and scene data into two processing channels, and a spot location module for determining from the video data the location of a reference spot formed on the user's eye by illumination of the user's eye by a point source of light. The system further incorporates a pupil location module in order to determine the user's line of gaze.
WO 2010/83853 A1 discloses a gaze point detection system with one or more infrared signal sources to be placed in a test scene as reference points, at least one pair of eye glasses worn by a test subject, and a data processing and storage unit for calculating a gaze point of the person. The eye glasses comprise an image sensor adapted to detect IR signals from the at least one IR signal source and to generate an IR signal source tracking signal, an eye tracking unit adapted to determine the gaze direction of the test subject person and to generate an eye tracking signal, and a camera unit adapted to acquire a test scene picture.
WO 2004/066097 A2 discloses an eye tracking system for displaying a video screen pointer at a point of regard of a users gaze. The system comprises a camera focused on the user's eye, a support connected to the camera for fixing the relative position of the camera to the user's pupil, and a computer having a CPU and an eye tracking interface. By determining the center of the eye, a pointer on the video display screen can be displayed at the point of regard. US 2010/0220291 A1 discloses an eye tracking system with a transparent lens, at least one light source, and a plurality of light detectors. The transparent lens is adapted for disposal adjacent an eye. At least one light source is disposed within the transparent lens and is configured to emit light towards the eye. The at least one light source is transparent to visible light. The plurality of light detectors is disposed within the trans- parent lens and is configured to receive light that is emitted from the at least one light source and is reflected off the eye. Each of the light detectors is transparent to visible light and is configured, upon receipt of light that is reflected off the eye, to supply an output signal.
Known head mounted eye trackers suffer from the disadvantage that large data quantities have to be processed in order to guarantee reliable eye tracking. Cameras monitoring the test person's eyes individually acquire and provide abundant data relating to characteristics concerning the eyes. This data needs to be transferred to an adequate processing unit quickly. Thus, significant bandwidth for the data transfer is required. Furthermore, the large data quantities have to get processed fast to achieve eye tracking in real time, i.e. with only little time delay. Consequently, expensive processing units are required, which suffer from high power consumption, too. In particular, mobile and small eye tracking devices may thus get heavy, bulky and expensive. In addition to a head mounted unit an external device comprising a processing unit may be necessary. State of the art devices, which are designed with leaner components, may suffer from not being able to keep pace with the abundant data stream. Loss of important data or significant time delay in the eye tracking functionality may be the result, thus compromising reliable determination of parameters characterizing a captured eye.
An object of the present invention is to provide a method and an optical measuring device which allow for a more reliable determination of at least one parameter of two eyes of a test person. This task according to the invention is solved by a method having the features according to patent claim 1 , and an optical measuring device having the features according to patent claim 1 1 . Advantageous embodiments of the invention are the subject-matter of the independent claims and the description. The method according to the invention serves for determining at least one parameter of two eyes of a test person, the method comprising the following steps:
- optically capturing of a first eye of the two eyes by means of a first capturing unit;
- optically capturing the second eye of the two eyes by means of a second capturing unit; - transmitting first signals concerning the captured first eye from the first capturing unit to an analysis unit and transmitting second signals concerning the captured second eye from the second capturing unit to the analysis unit;
- determining the at least one parameter of the two eyes on the basis of the transmitted first and second signals in the analysis unit; and
- setting a first data rate for the first signals and a second data rate for the second signals, wherein the first and the second data rate differ from each other, and wherein the transmitting of the first signals is effected at a first data rate and the transmitting of the second signals is effected at a second data rate.
As the first and second data rates differ from each other, one of the data rates is smaller than the other one. Thus, the overall bandwidth required for transmitting the first and second data is reduced compared to the state of the art. With the method it is, for example, possible to capture a first parameter characterizing the first eye and a second parameter, differing from the first parameter, characterizing the second eye. Data relating to the first parameter are then transmitted with the first data rate, while data concerning the second parameter are transmitted with the second data rate. Both parameters taken together then allow reliable determination of one or more parameters of interest characterizing the two eyes. In particular, first and second parameters do not need to be captured by both the first and second capturing unit. Capturing and transmission of redundant and superfluous information can be avoided. This way, data streams can be kept lean. Despite reduced data volume determining the at least one parameter of the two eyes can be performed more reliably. The capturing unit may comprise at least one camera. It is possible that the capturing of the respective eye with the first and second capturing unit is effected at the same data rate. The acquired data may then be preprocessed such that data relating to the first capturing unit are transmitted to the analysis unit with the first data rate while the data relating to the second capturing unit are transmitted to the analysis unit with the differing second data rate. Alternatively, it may also be possible that already data acquisition by the first and second capturing units is effected at two differing data rates.
Advantageously, the method comprises the following steps: - providing data concerning the respective captured eye in the first and/or the second capturing unit in dependency on the set first or second data rate;
- generating the first and/or second signals on the basis of the provided data.
The capturing or acquisition data rate of the first and second capturing units may thus differ. The first capturing unit may optically capture the first eye according to the set first data rate, while the second capturing unit may capture the second eye with the second data rate. This way, already in the step of data acquisition the amount of data is kept low. Only such data is acquired which is indeed necessary to determine the at least one parameter of the two eyes. Superfluous data are avoided right from the start. The over- all data volume is kept low.
Advantageously, in the step of providing the data a data compression in dependency of the set first or second data rate is performed. In particular, this step can be performed after data is acquired by the first and second capturing unit but before the respective data is transmitted to the analysis unit. The step may comprise preprocessing of the data. Known state of the art data compression algorithms may be used. Data compression may be different for data provided by the first and second capturing units. For instance, data provided by the second capturing unit may undergo higher data compression than data provided by the first capturing unit. Different data compression algo- rithms may be performed in the first and second capturing units.
In one embodiment the method may comprise the following step: Setting a temporal capture resolution and/or a spatial capture resolution and/or a capturable image section, in particular a dynamic area of interest which follows the eye and can be adjusted with regard to its size and scan rate, of the first and/or the second capturing unit for the optical capturing of the respective eye in dependency on the set first or second data rate. In particular, a temporal capture resolution relates to a temporal data acquisition rate of the respective capturing unit. For instance, the first capturing unit may capture double the amount of signals during the same period of time as the second capturing unit. The spatial capture resolution may be defined by a pixelated resolution. If the spatial resolution of the first and second capturing unit is defined by the same pixel array with the same pixel size the spatial capture resolution of the first capturing unit may be four times as high as the spatial capture resolution of the second capturing unit if the second capturing unit performs a two-by-two binning. The capturable image section of the respective capturing unit may be a field of view of this capturing unit. This field of view may be dynamically adjusted to the gaze point of the respective captured eye. This way, first and second data acquisition rates can be flexibly adjusted. Depending on the respective situation an adequate first and/or second data rate can be chosen in an easy manner.
In one embodiment, the optical capturing of the first and second eye may occur with the same data rate but with a specific phase shift. While the first capturing unit is scanning the first eye, the second capturing unit may not scan the second eye and vice versa. The consecutive scanning intervals may be determined by a capturing rate, which may be the same for both capturing units. However, a time delay between scanning intervals of the first and second capturing unit may be introduced. If a parameter that is to be determined is virtually the same, irrespective of whether the first or second eye is observed, this redundancy together with the phase shift effectively results in an enhanced capturing rate. If, for example, the parameter that is to be determined is the pupil diameter, this diameter is usually the same for the first and second eye. The first and second eye may then be captured with a capturing rate of 30 Hz each, the two capturing sequences being shifted by half a period. The pupil diameter is then effectively sampled with 60 Hz rate. Varying the phase shift is thus an elegant way to set the desired data rate.
Advantageously, the method may comprise the following steps:
- optically capturing a field of view, which at least partly corresponds to a field of view capturable by the eyes of the test person, by means of a third capturing unit;
- transmitting third signals concerning the captured field of view from the third capturing unit to the analysis unit; and
- determining a correlation between the captured field of view and the at least one determined parameter on the basis of the first and third and/or second and third signals in the analysis unit.
In particular, the third capturing unit may be a scene camera. In a preferred embodiment depending on the first and third and/or second and third signals the captured field of view can be switched from a landscape into a portrait mode or vice versa. Consequently, the field of view captured by the third capturing unit may not be constant but may be adjusted depending, for example, on a point of regard of the two eyes, which may be determined on the basis of the first and third and/or second and third signals. Thus, only the field of view relevant in the respective situation is captured and unnecessary data is avoided. In other embodiments the third capturing unit may comprise sev- eral capturing units or sensors, e.g. a scene camera and an infrared camera.
Advantageously, the method comprises the following step: determining a third data rate for the third signals, wherein the transmitting of the third signals is effected at the third data rate, wherein the third data rate in particular is different from the first and/or second data rate. All three data rates may thus be chosen individually and in dependency of the respective capturing situation. If, for example, a high first data rate is required, the second and/or third data rate can be adjusted accordingly and respective lower values can be chosen for them. In one embodiment the first data rate is set to be larger than the second data rate, and on the basis of the first and second signals a directional view and/or a visual focus of the test person is determined. It may be possible that solely by optically capturing the first eye with the first capturing unit a coarse direction of view and/or a coarse visual focus may be determinable in the analysis unit. Then the data acquired with the second capturing unit may allow a fine adjustment of the determined coarse direction of view and/or visual focus. Consequently, first and second data rates do not need to be equal but the second data rate can be chosen to be lower than the first data rate. This way, the directional view and/or visual focus can be determined very precisely despite reduced overall data rates.
Advantageously, on the basis of the first and the second signals and/or the first and the third signals and/or the second and the third signals in the analysis unit a parallax correction is performed. One of the group of the first, second or third signals may then serve as a primary data source for determining a point of regard. Another signal of the group of first, second and third signals may then serve as a corrective signal to perform the parallax correction with respect to the point of regard. Determining the point of regard may require a comparatively high amount of data and consequently a high data rate, while the data required for the parallax correction may be acquired and/or transmitted with a comparatively lower data rate. The overall data rate is kept low. Advantageously, the at least one captured parameter concerns an orientation and/or a position and/or an eyelid closure and/or a pupil diameter and/or a sclera characteristic and/or an iris characteristic and/or a characteristic of a blood vessel and/or a cornea characteristic of the at least one eye. In particular the at least one captured parameter may concern a cornea radius (anterior, posterior), an eyeball radius, a distance pupil- center to cornea-center, a distance cornea-center to eyeball-center, a distance pupil- center to limbus center, a cornea keratometric index of refraction, a cornea index of refraction, a vitreous humor index of refraction, a distance crystalline lens to eyeball- center and to cornea center and to corneal apex, a crystalline lens index of refraction, a visual axis orientation, an optical axis orientation, a pupil axis (achromatic axis) orientation, a line of sight orientation, an astigmatism degree (diopters) and orientation angle of flat and steep axis, an iris diameter, pupil diameters (pupil major and minor axes), pupil area), limbus major and minor axes, eye cyclo-torsion, eye intra-ocular distance, eye vergence, statistics over eye adduction/abduction and statistics over eye elevation/depression. The optical measuring device can then work as an eye tracking device.
An optical measuring device according to the invention serves for determining at least one parameter of two eyes of a test person and comprises a first capturing unit configured to optically capture a first eye of the two eyes, a second capturing unit configured to optically capture the second eye of the two eyes, an analysis unit configured to receive first signals concerning the captured first eye and transmitted by the first capturing unit and second signals concerning the captured second eye and transmitted by the second capturing unit, and on the basis of the transmitted first and second signals to determine the at least one parameter of the two eyes, and an assigning unit configured to set a first data rate for the first signals and a different second data rate for the second signals, so that the transmission of the first signals to the analysis unit is effected at the first data rate and the transmission of the second signals to the analysis unit is effected at the second data rate.
In particular, the analysis unit and the assigning unit may be comprised by a single processing unit and/or computer. Advantageously, the optical measuring device may comprise a third capturing unit configured to capture a field of view which at least partly corresponds to a field of view which is capturable by the eyes of the test person and configured to transmit third signals concerning the captured field of view at a third data rate to the analysis unit, wherein the assigning unit is configured to set the third data rate. In particular, the third capturing unit may be a camera. While the first and second capturing units may be cameras observing the eyes of the test person, the third capturing unit may be a scene camera capturing a similar scene as seen by the test person. In particular, the first and second capturing units on the one hand and the third capturing unit on the other hand may be directed into opposite directions.
Advantageously, the assigning unit may be configured to set the ratio of the first to the second data rate and/or the ratio of the first to the third data rate and/or the ratio of the second to the third data rate to be such that it assumes a value in the range of 1 :5000 to 5000:1 . The wide range allows setting the respective data rates independently of each other. The overall data rate can be fine-tuned.
Advantageously, the assigning unit is configured to set the first and/or the second and/or the third data rate in dependency on each other and/or in dependency on prede- terminable parameters, in particular a data transmission volume on a data line, and/or in dependency on a predeterminable measurement purpose of the optical measuring device. Consequently, one can make use of the full bandwidth provided by a data line of the optical measuring device without leaving any bandwidth unused or surpassing the maximum data volume that can be transmitted. The respective data rates can dy- namically adjust to the respective situation.
Preferentially, the optical measuring device comprises at least one common data line configured to transmit the first and second and/or the first and third and/or the second and third signals. The bandwidth of a common data line is usually limited. By making the first, second and third data rates adjustable, one can make use of the full bandwidth provided. Compromising data by surpassing the allocatable bandwidth can be prevented. Advantageously, the first and/or the second and/or the third capturing unit comprise at least one camera.
Further features of the invention derive from the claims, the figures, and the description of the figures. All features and feature combinations previously mentioned in the description as well as the features and feature combinations mentioned further along in the description of the figures and/or shown solely in the figures are not only usable in the combination indicated in each case, but also in different combinations or on their own.
The invention is now explained in more detail with reference to individual preferred embodiments and with reference to the attached drawings. These show in:
Figure 1 A a front view of a spectacle device according to an embodiment of the in- vention;
Figure 1 B a side view of the spectacle device of Figure 1 A;
Figure 1 C a top view of the spectacle device of Figure 1 A;
Figure 1 D a perspective view of the spectacle device of Figure 1 A;
Figure 2 a rear view of a spectacle device; Figure 3 a schematic rear view of a spectacle device with an eye camera making use of a deflection element to direct its optical path onto the eye;
Figure 4 a side view of a spectacle device schematically showing the orientation of an eye camera;
Figure 5 a schematic view of individual electronic components comprised by a
spectacle device; Figure 6A a picture with a symbol indicating a large parallax error attained with an optical measuring device according to the prior art;
Figure 6B a picture showing a symbol indicating the lack of a parallax error with a spectacle device according to an embodiment of the invention;
Figure 7 a parallax error model;
Figure 8 a diagram comparing parallax errors of measuring devices according to the prior art and according to an embodiment of the invention;
Figure 9A a first field of view acquired by a scene camera;
Figure 9B a second field of view acquired by the scene camera;
Figure 10A a schematic side view of a spectacle device were the optical path of an eye camera extends in a straight line from the eye camera to an eye; and
Figure 10B a schematic side view of a spectacle device where the optical path of an eye camera extends from the eye camera via a mirror to the eye.
In the figures same elements or elements of the same function are equipped with the same reference signs. Figures 2, 3, and 4 show the same reference frame with a Cartesian coordinate system and perpendicular axes x, y and z.
Figures 1 A to 1 D show an optical measuring device which has the form of a spectacle device 1 or eye tracking device, respectively. The spectacle device 1 is designed such that a person can wear it on its head just like a normal pair of glasses. It comprises a frame 4 with two side bars 5I and 5r which support the spectacle device 1 on the ears of the person who is wearing it. Furthermore, the spectacle device 1 is held in place on the head by a nose support 7. The mainframe has a specific width w1 and height h. Its length I depends on the length of the sidebars 5I and 5r. As can be seen in Figure 1 C the sidebars 5I and 5r are hinged to the front part of the frame 4 such that the distance w2 between the side bars 51 and 5r can be enlarged or reduced (see dashed sidebar configuration for sidebar 51 in Figure 1 C).
Alternatively, the optical measuring device may not be designed in form of a regular pair of eye glasses, but may be designed such that it resembles a helmet, forming a frame, with a face shield, forming a frame insert.
Above the nose support 7 in the frame 4 a scene camera 2 is installed. It can either be attached to or integrated into the frame 4. With the scene camera 2 virtually a similar field of view can be captured as seen by a test person when wearing the spectacle device 1 . In the lower part of the frame 4 the spectacle device 1 contains two eye cameras 3I and 3r. When the spectacle device 1 is worn by a person the person's eyes can be captured by the eye cameras 3I and 3r, which are integrated into the frame 4 at a suitable angle. Eye cameras 3I and 3r are designed to observe the person's left eye and right eye, respectively, i.e. capture characteristics of the person's eyes.
The frame 4 contains two openings which are filled with eye glass lenses 81 and 8r thus forming frame inserts. The pictures acquired by the scene camera 2 and the eye cameras 31 and 3r lead to signals which are processed in one or several pre-processing units 6 integrated into the sidebars 51 and 5r.
Figure 2 shows an inside view of the spectacle device 1 . Along the rim of the frame part enclosing the eye glass lenses 8I and 8r several Light Emitting Diods (LEDs) 9 are located in a ring arrangement. When the spectacle device 1 is worn by a person, those LEDs 9 can illuminate the eyes of the test person in a defined way. The LEDs 9 will cause reflections on the eyes of the test person (cornea reflections) for all possible gaze angles. Those reflections can be detected by the eye cameras 3I and 3r and can be used for eye tracking. The LEDs 9 can be switched on an off individually, in groups or all together following a specific time pattern, strobe characteristic or spatial variation. The on-off-switching- frequency of different LEDs 9 or groups of LEDs 9 may vary. Certain groups of LEDs 9 may get switched on exactly when other groups of LEDs 9 get switched off. A specific spatial and temporal correlation pattern may be implemented with regard to the switch- ing and thus illumination characteristics. This way a reflection pattern can be created on the eyes that can be recognized easily by the eye cameras 3.
The overall setup with the most important electronic components is shown in Figure 5. The eye cameras 31 and 3r are connected to specific camera electronics 15 by 100 mm long cables 14. In particular, the cameras 3I and 3r comprise only basic electronic components while their major electronic components are located within the camera electronics 15. This way, the primarily "optical part" of the cameras 3I and 3r can be located remote to the primarily "electronic part" within the camera electronics 15. Both parts can then be connected by flex-PCB cables 14. This way, the optical sensor and the basic electronic components within the cameras 3I and 3r form a very small and highly compact entity while bulkier electronic components within the electronics 15 can be placed on more spacious integrated circuit boards elsewhere. The electronics 15 are connected to a pre-processing unit 16 which can process the signals from the eye cameras 31 and 3r. The pre-processing unit 16 can be identical to the pre-processing unit 6 located in the sidebars 5I and 5r of the spectacle device 1 . The pre-processing unit 16 is connected to a USB-hub 19. The LEDs 9 installed in the frame 4 form a first and a second IR LED chain 21 and 22 arranged in a ring configuration around the eye glass lenses 8I and 8r. The IR LED chains 21 and 22 are connected to an IR LED constant current source 20, which is also connected to the USB-hub 19. The USB-hub 19 additionally serves as a power source for the IR LED constant current source 20. The LEDs 9 of the IR LED chains 21 and 22 can be switched on an off individually. To achieve this, they may be connected to the IR LED constant current source 20 in a parallel network with individual electrical switches for each LED 9 being implemented.
The USB-hub 19 is connected via a serial interface or USB cable 25 to a preprocessing unit 26. The signals pre-processed in the pre-processing unit 26 are finally analyzed in a personal computer 27, which contains a recorder device 28. An additional aux-/sync-port 13 forming an interface on the spectacle device 1 can also be connected to the USB-hub 19. The aux-/sync-port 13 can serve as interface for synchronization with other electronic devices or for triggering parallel data acquisitions. The electronics 15, pre-processing unit 16, USB-hub 19 and IR LED constant current source 20 are located on a common printed circuit board PCB 23. In analogy to this setup the scene camera 2 is also connected to electronics 15 via a 100 mm cable 14. In this case the electronics 15 are located on a second printed circuit board PCB 24, which also contains a pre-processing unit 17. The pre-processing unit 17 can be based on electronics according to the DaVinci digital signal processor (DSP). It contains an MPEG encoder 18 for encoding the signals received from the electronics 15. A microphone 12 may also be connected to the pre-processing unit 17. The preprocessing unit 17 located on the PCB 24 is connected to the USB-hub 19. This way, processing signals acquired by the scene camera 2 are finally analyzed in the personal computer 27.
The pre-processing units 6, 16, 17 and 26 may be able to compress at least one of the three image streams generated by the two eye cameras 3I and 3r and the scene camera 2. Here, different alternatives are possible. A pre-processing unit may compress only the image stream of one camera while each camera has its own pre-processing unit. Alternatively, a single pre-processing unit may compress the image streams of all cameras. Furthermore, the pre-processing units may be configurable via a system interface and corresponding software to manage the bandwidth by adjustment of resolution, region of interest, frame rate and compression parameters. The pre-processing units may be designed to trigger synchronously the camera's image acquisition. They may provide time stamps for each acquired image which can be used to synchronise several or all camera data streams offline.
The pre-processing units may either be located on integrated circuit boards of the cameras or on a separate integrated circuit board that is located at or on a head mount (e. g. in the side bar 51 or 5r of the spectacle device 1 ) or in a separate housing that is worn by the test person 31 , e.g. on a belt.
The spectacle device 1 may also comprise an auxiliary interface which allows to acquire data in real time from external sensors. Such sensors may be biometric sensors (includ- ing but not limited to EEG, ECG, etc.) or attitude sensors (including but not limited to accelerometers, magnetometers, gyroscopes, etc.). It is then possible to synchronise the data stream of the external sensors with the data streams acquired from the cameras 2, 3I and 3r. Furthermore, an external clock or trigger signal can be provided that can be used by the external sensors to synchronise themselves with the system. The bandwidth of data acquired from the interface can be reduced or compressed by means of on-board processing resources integrated in the system in its dedicated recording unit 28. The eye cameras 31 and 3r can either be suited for visible or near infrared light. They are located symmetrically with respect to a vertical centre line that divides the user's face into two halves. The eye cameras 31 and 3r may be positioned in front and below the eyes 10I and 10r respectively, for example in or at the lower rim of a pair of eye glass lenses 8I and 8r, pointing at the eyes 101 and 10r in an angle of 30° to 50° and being mounted in the frame 4 in an angle a of 30° to 50°. In the embodiment the eye cameras 31 and 3r are sensitive in the near infrared.
In the embodiment the eye cameras 31 and 3r are sensitive in the near infrared. They have a resolution of 640*480 and are read out with a 60 Hz frequency.
The scene camera 2 can be located on a vertical centre line that divides the user's face into two halves in or at the nose bridge of the frame 4. Alternatively, it may also be located at, in or close to the rim of a helmet, cap or headband. The scene camera 2 may have HD (high definition) and/or adjustable resolution. It can either be mounted in landscape or portrait orientation. Furthermore, it can be mounted such that its orientation can be changed from landscape to portrait orientation (camera roll) and also the direction the camera is pointing in (camera pan and tilt).
Instead of a single scene camera 2, the spectacle device 1 can also comprise a pair of scene cameras, where each scene camera can be oriented either in portrait mode or in landscape mode. Furthermore, each scene camera can be oriented independently of the respective second scene camera. Alternatively, both scene cameras 2 may have fixed orientations, which may or may not differ from each other. Furthermore a prism or lens can be mounted in front of the scene camera 2 to create a different positioning of the field of view of the scene camera 2 with respect to the glasses, especially a more downward oriented field of view for near range reading applications. Six LEDs 9 are located around each eyeglass lens 8. They emit in the infrared wavelength range (typically above 750 nm and below 1000 nm) at a central wavelength of 850 nm. They are driven by 50 imA current provided by the IR LED constant current source 20.
Instead of direct illumination of the eyes with the LEDs 9 also an implementation with a light guide can be envisaged. One or several segments of light guides (e.g. fiber optics) may be used. The illumination of the eyes may be implemented with focusing optics (structured illumination). Instead of the LEDs 9 suitable diffractive optics or lasers may be used to generate a pattern of coherent light for illuminating the eyes. The light source can be used together with an optical element in order to create a pattern of reflections on the eyes 10I and 10r (e.g. with focusing optics or diffractive optics). The illumination source may either emit visible or near infrared light. The illumination source may be positioned in or on the frame 4, in particular in a circle-like arrangement around the eye glass lenses 81 and 8r. Alternatively, the illumination source may be located on the rim or frame of a head mounted display. It may specifically be designed to create a pattern of reflections on the eye surfaces of the test person 31 .
When the spectacle device 1 shown in Figure 2 is worn by a test person the situation shown in Figure 10A in a simplified way is realized. The eye camera 3 is arranged in such a way on the frame 4 that with the spectacle device 1 fixed to the head of a test person the optical path M capturing at least one parameter of the eye 10 extends in a straight line from the eye camera 3 to the eye 10. Figures 3 and 10B show a different configuration of the spectacle device 1 . The spectacle device 1 comprises a mirror 1 1 , forming an optical deflection element attached to the frame 4, the mirror 1 1 and the eye camera 3 being arranged in such a way on the frame 4 that with the spectacle device 1 fixed to the head of the test person the optical path M for capturing at least one parameter of the eye 10 extends from the eye camera 3 via the mirror 1 1 to the eye 10. The three dimensional representation of Figure 3 shows the spectacle device 1 from a rear or inside view. In the figure, reflections of the left and right eye 101 and 10r, respectively, show in the eyeglass lenses 8I and 8r. The coordinate system is a Cartesian one with the z-axis being directed into the plane of projection. Thus, the eye cameras 31 and 3r may be mounted in front of and above the eyes 10I and 10r with an optical guide or mirror 1 1 located in front and below the eyes 10I and 10r, for example in or at the lower rim of a pair of eye glass lenses 8I and 8r in order to acquire an image of each eye 10I and 10r from a forward and low perspective and to make that image visible to the eye cameras 101 and 10r. The optical guide or mirror 1 1 can either be a (flat) mirror, a spherical mirror, a dome, a custom lens, a holographic image guide, etc. The mirror 1 1 can be reflecting only a specific range of wavelength and be transparent to others.
The mirror 1 1 can either be a flat mirror or a spherical mirror. The advantage of a spherical mirror is that it magnifies the field of view of the eye camera 3 beyond the field of view achievable with a flat mirror. The configuration of Figure 3 furthermore allows to place the optical system very close to the eye 10 (set direction) thus improving ergo- nomics and aesthetics. The test person's own field of view is hardly obstructed. The mirror 1 1 can be a so-called hot mirror, i.e. the mirror 1 1 is transparent in the visible wavelength range while having a higher reflectivity in the infrared wavelength range. It can be very thin and hollow (so-called dome) thus, minimizing the distortion due to refraction. It can be made out of a material showing a very low index of refraction (IOR).
In both cases (Figures 10A and 10B) the eye camera 3 is arranged in such a way that the optical path M for the capturing of at least one parameter of the eye 10 excludes the frame insert, i.e., the eye glass lens 8. Furthermore, the eye glass lens 8 is arranged in such a way that the optical axis K of the eye 10 and the optical path M as single jointly used optical element comprise the eye 10. Furthermore, the optical path M entirely runs within a space Sp which extends on the side of the eye glass lens 8 facing the eye 10.
The embodiments shown in Figures 2 and 3 and Figures 10A and 10B, respectively, both reduce eye occlusion due to the upper eye-lid.
Figures 6A to 8 illustrate the reduction of parallax errors in the spectacle device 1 compared to the prior art. As can be seen in Figure 6A the position of an object 29 the test person actually focuses its eyes on and the point of regard 32 determined by the spectacle device 1 usually do not coincide very well when using spectacle devices 1 as known from the prior art. This effect is usually the more pronounced the closer the test person is located to the object 29 that is to be focused. However, with the spectacle device 1 according to an embodiment of the invention the coincidence between the determined point of regard 32 and the actual object 29 is very good, even for measuring distances as low as 0.5 m (see Figure 6B). This is achieved by minimizing the distance between the eye ball center and the camera focal point.
The situation is again illustrated in Figure 7. As eye 10 and scene camera 2 are located at slightly different positions the difference in their respective viewing angles for focus- sing the object 29 becomes the more pronounced the closer the object 29 is located to the eye 10 and scene camera 2, respectively (i.e. larger distortions for smaller z- values). The spectacle device 1 may get calibrated in the situation shown in Figure 6B. The object 29 then lies in the calibration plain P and by calibrating the spectacle device 1 one can make sure that the determined point of regard 32 indeed falls onto the actual object 29. Calibration is typically performed on a plane at some distance from the test subject. It relates measured gaze direction (angles) to pixels in the scene video frame. This calculation gives valid results only for points that lie in that calibration plane. For points that do not lie on that plane, a systematic error (parallax) is introduced. When the distance of the spectacle device from the object 29 is increased the difference between the distance to the calibration plain P and the actual distance to the object 29 causes the pronounced deviations. With the spectacle device 1 according to an embodiment of the invention these deviations or parallax errors (indicated by symbols S2, circles, in Figure 8) for all distances d are considerably smaller than with devices according to the prior art (symbols S1 , rectangles). Thin-lined crosses relate to the group of symbols S2, while bold crosses relate to the group of symbols S1 . The crosses correspond to the point of regard 32 used for calibration purposes.
The parallax error is mathematically modelled as a function of the position of the scene camera 2 with respect to the eye position. The gaze estimation error due to parallax is minimized by placing the scene camera 2 as close as possible to the eye 10, according to the results shown by the mathematical simulation. The parallax error can be further corrected by estimating the distance to the point of regard by using vergence from binocular tracking and by estimating the position of the eyes with respect to the eye tracking device. To achieve even better results the field of view of the scene camera 2 can be optimized. The scene camera 2 with standard optics has a field of view that does not cover the full physiological gaze range (horizontal field of view of standard optics: 40° to 50°; typical physiological gaze range: 60°). In an embodiment the field of view of the scene camera 2 can thus be optimized depending on the respective application. One such field of view optimization method is illustrated in Figure 9A and 9B. A user wearing the spectacle device 1 is at the same time observing a background B and his mobile phone 30. According to Figure 9A the field of view FOV1 mainly covers the background B. When the test person 31 looks down onto its mobile phone 30 the change in gaze direction is automatically determined by the eye cameras 3I and 3r and the scene camera's 2 field of view is automatically adjusted by switching from landscape to portrait orientation (field of view FOV2). This can be achieved by a z-axis 90° mechanical roll of the scene camera 2 or by the use of an optical prism in front of the scene camera 2. Also the use of two scene cameras with different tilt or roll angles is possible. Alternatively, also an optical beam splitter may be used in front of the scene camera 2.
In summary, the spectacle device 1 forms a head-mounted eye tracking system which consists of three cameras: two eye cameras 3I and 3r and at least one scene camera 2. The three cameras 3I, 3r and 2 can have a manageable bandwidth, for example by adjustable frame rates or resolutions. One or several pre-processing units 6, 16, 17 and 26 may exist that perform variable compression of the video streams received from the cameras 2, 3I and 3r. The level of compression of the video streams may be the same for the eye cameras 3I and 3r and the scene camera 2, or the video streams may be separately compressed for the eye cameras 3I and 3r and the scene camera 2. The frame rate for eye camera 3I may correspond to full speed acquisition, the one of eye camera 3r may correspond to 1/10 speed acquisition and the one for the scene camera 2 may correspond to 1/2 speed acquisition. Instead of adjusting the frame rates of the different cameras, alternatively the acquisition rates may be chosen to be the same, while data processing is performed differently for each camera. Data provided by one camera may be compressed more than data provided by another camera, although both cameras acquire the same amount of data. One may also combine different compression rates with different acquisition rates. It is also possible to omit, for example, every second acquired image when transferring the data and thus reduce the amount of data to be sent to the CPU by half. The signals of the cameras 2, 31 and 3r may be transferred to a CPU in the PC 27 via a wired or wireless interface (see Figure 5). Auxiliary interfaces for other data sources and methods for synchronisation with these data sources may be implemented in the spectacle device 1 .
The spectacle device 1 can come as a system comprising several exchangeable pieces. The spectacle device 1 can have an exchangeable set of nose pieces or nose supports 7 for faces with small or large noses. This way, the spectacle device 1 can be worn over vision correction glasses without a problem. Furthermore, the spectacle de- vice 1 has a holding mechanism for exchangeable glasses that can have different levels of light transmittance (e g. clear glasses or sun glasses) for a certain range of wavelengths. Additionally or alternatively the exchangeable glasses can have a near infrared optical filter to match the wavelength of the illumination source and block some or all light from the outside of same and similar wavelengths from reaching the eye surface to improve signal to noise on the eye surface. The spectacle device 1 has rims and a nose bridge that serve as a mount or housing for the eye cameras 3I and 3r and the scene camera 2. The eye cameras 3I and 3r are mounted in such a way that their field of view extends behind the exchangeable glasses 8I and 8r. With the spectacle device 1 it is possible to do eye tracking, occulometrics, biometrics and position and motion measurements in order to measure and classify as fully as possible human behaviour in a free range movement setup. A head mounted eye tracking device is realised which is calibration-free and provides an astigmatism estimation. The eye-tracking functionality has zero set-up time. No adjustments are necessary. A test person 31 can just put the spectacle device 1 on and start using it. It has a very large gaze-tracking range covering the physiological range of human eye movement (80° horizontal, 60° vertical). It is very robust and has a high accuracy in gaze mapping. Astigmatism is compensated for, parallax is minimized, pupil axis shift is compensated and the device is calibration free or can be calibrated using a one-point calibration fea- ture. Furthermore, it is designed to work irrespective of ethnic group (Caucasian, Asian, African, etc.), gender and age. The field of view of the scene camera 2 is optimized. By the use of optical, inertial or magnetic sensors a head tracking functionality can be implemented. The spectacle device furthermore offers biometric features, such as measuring the pupil diameter and offering interfacing and synchronisation options with EEG, ECG, etc. Finally, it can be integrated with a head mounted display. It is possible to project a virtual image onto a subject's eye of a portable computer screen. Furthermore, the possibility is offered to interact with "objects" in the virtual image using eye movement (gaze, blinks).
Head tracking functionality can be realized by the use of three axis gyroscopes, three axis accelerometers and/or three axis magnetometers with optional sensor fusion for six dimensional head tracking. In summary, the spectacle device 1 offers a very specific optical and electronic architecture. With respect to the electronic architecture three or more high resolution cameras with allocateable bandwidth are incorporated in the device 1 . Separate processing channels for eye cameras 3I and 3r and the scene camera 2 are envisaged. The optical architecture is characterized by exchangeable glasses with various properties. The op- tical path of the eye cameras 31 and 3r extends behind the glasses or eye glass lenses 81 and 8r respectively. Furthermore, a set of LEDs 9 allows for highly variable illumination of the eyes 101 and 10r. For instance, the illumination geometry around the eye can be controlled. The specific LED subsets can be controlled with regard to strobe effect and sequencing. Finally, eye illumination can be achieved by point, line or two- dimensional light sources.
REFERENCE SIGNS: 1 spectacle device
2 scene camera
3, 3I, 3r eye camera
4 frame
5I, 5r side bar
6 pre-processing unit
7 nose support
8, 8I, 8r eyeglass lens
9 LED
10, 101, 10r eye
1 1 mirror
12 microphone
13 aux-/sync-port
14 cable
15 electronics
16 pre-processing unit
17 pre-processing unit
18 MPEG encoder
19 USB hub
20 IR LED constant current source 21 , 22 IR LED chain
23, 24 PCB
25 USB 2.0 cable 26 pre-processing unit
27 PC
28 recorder
29 object
30 mobile phone
31 test person
32 point of regard
w1 , w2 width
h height
I length
a tilt angle
K optical axis
M optical path
O origin of system of reference
P calibration plane
Sp space
d distance
S1 , S2 symbols
B background
FOV1 , FOV2 field of view
x, y, z axis

Claims

PATENT CLAIMS: 1 . A method for determining at least one parameter of two eyes (10I, 10r) of a test person (31 ), the method comprising the following steps: - optically capturing of a first eye (101; 10r) of the two eyes (101, 10r) by means of a first capturing unit (3I; 3r); - optically capturing the second eye (1 Or; 101) of the two eyes (101, 10r) by means of a second capturing unit (3r; 3I); - transmitting first signals concerning the captured first eye (101; 10r) from the first capturing unit (3I; 3r) to an analysis unit (27) and transmitting second signals concerning the captured second eye (1 Or; 101) from the second capturing unit (3r; 31) to the analysis unit (27); - determining the at least one parameter of the two eyes (1 Ol, 10r) on the basis of the transmitted first and second signals in the analysis unit (27), characterized by the following step: - setting a first data rate for the first signals and a second data rate for the second signals, wherein the first and the second data rate differ from each other, and wherein the transmitting of the first signals is effected at a first data rate and the transmitting of the second signals is effected at a second data rate. 2. The method according to claim 1 , characterized by the following steps: - providing data concerning the respective captured eye (101, 10r) in the first and/or the second capturing unit (3I, 3r) in dependency on the set first or second data rate; - generating the first and/or second signals on the basis of the provided data. The method according to claim 2, characterized in that in the step of providing the data a data compression in dependency of the set first or second data rate is performed. The method according to one of the preceding claims, characterized by the following step: setting a temporal capture resolution and/or a spatial capture resolution and/or a capturable image section, in particular a dynamic area of interest, which follows the eye (101, 10r) and can be adjusted with regard to its size and scan rate, of the first and/or the second capturing unit (3I, 3r) for the optical capturing of the respective eye (101, 10r) in dependency on the set first or second data rate. The method according to one of the preceding claims, characterized by the following steps: - optically capturing a field of view (FOV1 , FOV2), which at least partly corresponds to a field of view capturable by the eyes (10I, 10r) of the test person (31 ), by means of a third capturing unit (2); - transmitting third signals concerning the captured field of view (FOV1 , FOV2) from the third capturing unit (2) to the analysis unit (27); - determining a correlation between the captured field of view (FOV1 , FOV2) and the at least one determined parameter on the basis of the first and third and/or second and third signals in the analysis unit (27). The method according to claim 5, characterized by the following step: - determining a third data rate for the third signals, wherein the transmitting of the third signals is effected at the third data rate, wherein the third data rate in particular is different from the first and/or second data rate. The method according to claim 5 or 6, characterized in that the first data rate is set to be larger than the second data rate, and on the basis of the first and second signals a direction of view (K) and/or a visual focus (32) of the test person (31 ) is determined. The method according to one of the preceding claims, characterized in that on the basis of the first and the second signals and/or the first and the third signals and/or the second and the third signals in the analysis unit (27) a parallax correction is performed. The method according to one of the preceding claims, characterized in that the transmitting of the first and/or second and/or third signals is effected via a common data line (25). 0. The method according to one of the preceding claims, characterized in that the at least one captured parameter concerns an orientation and/or a position and/or an eyelid closure and/or a pupil diameter and/or a sclera characteristic and/or an iris characteristic and/or a characteristic of a blood vessel and/or a cornea characteristic of the at least one eye (10I, 10r).
1 . An optical measuring device (1 ) for determining at least one parameter of two eyes (10I, 10r) of a test person (31 ), the optical measuring device (1 ) comprising:
- a first capturing unit (3I; 3r) configured to optically capture a first eye (101; 10r) of the two eyes (101, 10r);
- a second capturing unit (3r; 3I) configured to optically capture the second eye (1 Or; 10I) of the two eyes (10I, 10r);
- an analysis unit (27) configured to receive first signals concerning the captured first eye (101; 10r) and transmitted by the first capturing unit (3I; 3r) and second signals concerning the captured second eye (1 Or; 101) and transmitted by the second capturing unit (3r; 31), and on the basis of the transmitted first and second signals to determine the at least one parameter of the two eyes (101, 10r),
characterized by
an assigning unit (27) configured to set a first data rate for the first signals and a different second data rate for the second signals, so that the transmission of the first signals to the analysis unit (27) is effected at the first data rate and the transmission of the second signals to the analysis unit (27) is effected at the second data rate.
2. The optical measuring device (1 ) according to claim 1 1 ,
characterized by
a third capturing unit (2) configured to capture a field of view (FOV1 , FOV2) which at least partly corresponds to a field of view which is capturable by the eyes (101, 10r) of the test person (31 ), and configured to transmit third signals concerning the captured field of view (FOV1 , FOV2) at a third data rate to the analysis unit (27), wherein the assigning unit (27) is configured to set the third data rate.
3. The optical measuring device (1 ) according to claim 1 1 or 12,
characterized in that
the assigning unit (27) is configured to set the ratio of the first to the second data rate and/or the ratio of the first to the third data rate and/or the ratio of the second to the third data rate to be such that it assumes a value in the range of 1 /5000 to 5000/1 .
4. The optical measuring device (1 ) according to one of claims 1 1 to 13,
characterized in that
the assigning unit (27) is configured to set the first and/or the second and/or the third data rate in dependency on each other and/or in dependency on pre- determinable parameters, in particular a data transmission volume on a data line (25), and/or in dependency on a pre-determinable measurement purpose of the optical measuring device (1 ). The optical measuring device (1 ) according to one of claims 1 1 to 14, characterized by
at least one common data line (25) configured to transmit the first and second and/or the first and third and/or the second and third signals.
PCT/EP2012/054605 2011-03-18 2012-03-15 Method for determining at least one parameter of two eyes by setting data rates and optical measuring device WO2012126808A1 (en)

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JP2013558448A JP6026444B2 (en) 2011-03-18 2012-03-15 Method and optical measuring device for determining at least one parameter in two eyes by setting a data transfer rate
CN201280014104.7A CN103442629B (en) 2011-03-18 2012-03-15 By method and the optical measuring device of at least one parameter of setting data speed determination eyes
US17/470,789 US20220061660A1 (en) 2011-03-18 2021-09-09 Method for Determining at Least One Parameter of Two Eyes by Setting Data Rates and Optical Measuring Device

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PCT/EP2012/054610 WO2012126811A1 (en) 2011-03-18 2012-03-15 Spectacle device with an adjustable field of view and method
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2018164477A (en) * 2017-03-28 2018-10-25 株式会社トプコン Ophthalmologic apparatus

Families Citing this family (173)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9229233B2 (en) 2014-02-11 2016-01-05 Osterhout Group, Inc. Micro Doppler presentations in head worn computing
US9400390B2 (en) 2014-01-24 2016-07-26 Osterhout Group, Inc. Peripheral lighting for head worn computing
US9715112B2 (en) 2014-01-21 2017-07-25 Osterhout Group, Inc. Suppression of stray light in head worn computing
US9298007B2 (en) 2014-01-21 2016-03-29 Osterhout Group, Inc. Eye imaging in head worn computing
US9952664B2 (en) 2014-01-21 2018-04-24 Osterhout Group, Inc. Eye imaging in head worn computing
US9965681B2 (en) 2008-12-16 2018-05-08 Osterhout Group, Inc. Eye imaging in head worn computing
IL221863A (en) * 2012-09-10 2014-01-30 Elbit Systems Ltd Digital system for surgical video capturing and display
US9894269B2 (en) * 2012-10-31 2018-02-13 Atheer, Inc. Method and apparatus for background subtraction using focus differences
JP6066676B2 (en) * 2012-11-06 2017-01-25 株式会社ソニー・インタラクティブエンタテインメント Head mounted display and video presentation system
CN102961119B (en) * 2012-11-26 2015-01-07 深圳恒兴视光科技有限公司 Centrometer
US20140218281A1 (en) * 2012-12-06 2014-08-07 Eyefluence, Inc. Systems and methods for eye gaze determination
US20140176327A1 (en) * 2012-12-20 2014-06-26 Nokia Corporation Method and apparatus for determining that medical assistance may be required
US9160915B1 (en) * 2013-01-09 2015-10-13 Amazon Technologies, Inc. Modifying device functionality based on device orientation
GB2513579A (en) * 2013-04-29 2014-11-05 Tobii Technology Ab Power efficient image sensing apparatus, method of operating the same and eye/gaze tracking system
JP6330258B2 (en) * 2013-05-15 2018-05-30 セイコーエプソン株式会社 Virtual image display device
TWI505260B (en) * 2013-07-30 2015-10-21 Univ Nat Chiao Tung Head-mount eye tracking system
AT513987B1 (en) * 2013-08-23 2014-09-15 Ernst Dipl Ing Dr Pfleger Spectacles and methods for determining pupil centers of both eyes of a human
US9710058B2 (en) 2013-09-03 2017-07-18 Tobii Ab Portable eye tracking device
US10686972B2 (en) 2013-09-03 2020-06-16 Tobii Ab Gaze assisted field of view control
US11327302B2 (en) 2013-09-18 2022-05-10 Beth Holst Secure capture and transfer of image and audio data
US10008124B1 (en) 2013-09-18 2018-06-26 Beth Holst Method and system for providing secure remote testing
JP2015061595A (en) * 2013-09-19 2015-04-02 ジーエヌ オトメトリックス エー/エスGN Otometrics A/S Headgear for observation of eye movements
US9332903B2 (en) 2013-09-19 2016-05-10 Gn Otometrics A/S Headgear for observation of eye movements
US9785231B1 (en) * 2013-09-26 2017-10-10 Rockwell Collins, Inc. Head worn display integrity monitor system and methods
CN104706422A (en) * 2013-12-13 2015-06-17 Ge医疗系统环球技术有限公司 Head-worn type medical device, medical system and operation method of medical system
US9841599B2 (en) 2014-06-05 2017-12-12 Osterhout Group, Inc. Optical configurations for head-worn see-through displays
US10254856B2 (en) 2014-01-17 2019-04-09 Osterhout Group, Inc. External user interface for head worn computing
US9529195B2 (en) 2014-01-21 2016-12-27 Osterhout Group, Inc. See-through computer display systems
US9594246B2 (en) 2014-01-21 2017-03-14 Osterhout Group, Inc. See-through computer display systems
US9299194B2 (en) 2014-02-14 2016-03-29 Osterhout Group, Inc. Secure sharing in head worn computing
US9939934B2 (en) 2014-01-17 2018-04-10 Osterhout Group, Inc. External user interface for head worn computing
US10191279B2 (en) 2014-03-17 2019-01-29 Osterhout Group, Inc. Eye imaging in head worn computing
US9746686B2 (en) 2014-05-19 2017-08-29 Osterhout Group, Inc. Content position calibration in head worn computing
US20160019715A1 (en) 2014-07-15 2016-01-21 Osterhout Group, Inc. Content presentation in head worn computing
US10684687B2 (en) 2014-12-03 2020-06-16 Mentor Acquisition One, Llc See-through computer display systems
US9575321B2 (en) 2014-06-09 2017-02-21 Osterhout Group, Inc. Content presentation in head worn computing
US11227294B2 (en) 2014-04-03 2022-01-18 Mentor Acquisition One, Llc Sight information collection in head worn computing
US11103122B2 (en) 2014-07-15 2021-08-31 Mentor Acquisition One, Llc Content presentation in head worn computing
US9829707B2 (en) 2014-08-12 2017-11-28 Osterhout Group, Inc. Measuring content brightness in head worn computing
US10649220B2 (en) 2014-06-09 2020-05-12 Mentor Acquisition One, Llc Content presentation in head worn computing
US20150277118A1 (en) 2014-03-28 2015-10-01 Osterhout Group, Inc. Sensor dependent content position in head worn computing
US9810906B2 (en) 2014-06-17 2017-11-07 Osterhout Group, Inc. External user interface for head worn computing
US9671613B2 (en) 2014-09-26 2017-06-06 Osterhout Group, Inc. See-through computer display systems
US11487110B2 (en) 2014-01-21 2022-11-01 Mentor Acquisition One, Llc Eye imaging in head worn computing
US9651784B2 (en) 2014-01-21 2017-05-16 Osterhout Group, Inc. See-through computer display systems
US11737666B2 (en) 2014-01-21 2023-08-29 Mentor Acquisition One, Llc Eye imaging in head worn computing
US9538915B2 (en) 2014-01-21 2017-01-10 Osterhout Group, Inc. Eye imaging in head worn computing
US9836122B2 (en) 2014-01-21 2017-12-05 Osterhout Group, Inc. Eye glint imaging in see-through computer display systems
US11892644B2 (en) 2014-01-21 2024-02-06 Mentor Acquisition One, Llc See-through computer display systems
US9494800B2 (en) 2014-01-21 2016-11-15 Osterhout Group, Inc. See-through computer display systems
US20150205135A1 (en) 2014-01-21 2015-07-23 Osterhout Group, Inc. See-through computer display systems
US9811159B2 (en) 2014-01-21 2017-11-07 Osterhout Group, Inc. Eye imaging in head worn computing
US9766463B2 (en) 2014-01-21 2017-09-19 Osterhout Group, Inc. See-through computer display systems
US9753288B2 (en) 2014-01-21 2017-09-05 Osterhout Group, Inc. See-through computer display systems
US11669163B2 (en) 2014-01-21 2023-06-06 Mentor Acquisition One, Llc Eye glint imaging in see-through computer display systems
US9523856B2 (en) 2014-01-21 2016-12-20 Osterhout Group, Inc. See-through computer display systems
US9846308B2 (en) 2014-01-24 2017-12-19 Osterhout Group, Inc. Haptic systems for head-worn computers
US9794475B1 (en) 2014-01-29 2017-10-17 Google Inc. Augmented video capture
US20170090557A1 (en) * 2014-01-29 2017-03-30 Google Inc. Systems and Devices for Implementing a Side-Mounted Optical Sensor
US20150241963A1 (en) * 2014-02-11 2015-08-27 Osterhout Group, Inc. Eye imaging in head worn computing
US9401540B2 (en) 2014-02-11 2016-07-26 Osterhout Group, Inc. Spatial location presentation in head worn computing
EP3105676B1 (en) * 2014-02-12 2022-10-19 Nokia Technologies Oy Method and apparatus for updating a firmware of an apparatus
GB2523356A (en) * 2014-02-21 2015-08-26 Tobii Technology Ab Apparatus and method for robust eye/gaze tracking
US10430985B2 (en) * 2014-03-14 2019-10-01 Magic Leap, Inc. Augmented reality systems and methods utilizing reflections
US20160187651A1 (en) 2014-03-28 2016-06-30 Osterhout Group, Inc. Safety for a vehicle operator with an hmd
US9361519B2 (en) * 2014-03-28 2016-06-07 Intel Corporation Computational array camera with dynamic illumination for eye tracking
JP2015202199A (en) * 2014-04-14 2015-11-16 株式会社ジェイアイエヌ Eye potential information processing equipment, eye potential information processing system, attachment tool, and program
JP2015202183A (en) * 2014-04-14 2015-11-16 株式会社ジェイアイエヌ Detection control device, attachment tool, eye potential information processing system, and program
US10853589B2 (en) 2014-04-25 2020-12-01 Mentor Acquisition One, Llc Language translation with head-worn computing
US9672210B2 (en) 2014-04-25 2017-06-06 Osterhout Group, Inc. Language translation with head-worn computing
US9651787B2 (en) 2014-04-25 2017-05-16 Osterhout Group, Inc. Speaker assembly for headworn computer
KR20170046108A (en) * 2014-05-09 2017-04-28 아이플루언스, 인크. Systems and methods for using eye signals with secure mobile communications
US10663740B2 (en) 2014-06-09 2020-05-26 Mentor Acquisition One, Llc Content presentation in head worn computing
CN104111530A (en) * 2014-06-30 2014-10-22 联想(北京)有限公司 Information processing method and wearable electronic equipment
US10540907B2 (en) 2014-07-31 2020-01-21 Intelligent Technologies International, Inc. Biometric identification headpiece system for test taking
WO2016028864A1 (en) 2014-08-22 2016-02-25 Intelligent Technologies International, Inc. Secure testing device, system and method
US9465991B2 (en) 2014-08-11 2016-10-11 Microsoft Technology Licensing, Llc Determining lens characteristics
US20160051145A1 (en) * 2014-08-20 2016-02-25 California Baptist University Systems and methods for monitoring eye health
US10410535B2 (en) 2014-08-22 2019-09-10 Intelligent Technologies International, Inc. Secure testing device
AT516326B1 (en) * 2014-09-29 2016-07-15 Pocket Sky Og Device for signal transmission to the eye
WO2016073202A1 (en) 2014-11-04 2016-05-12 Intelligent Technologies International, Inc. Smartcard
US9804392B2 (en) 2014-11-20 2017-10-31 Atheer, Inc. Method and apparatus for delivering and controlling multi-feed data
US9684172B2 (en) 2014-12-03 2017-06-20 Osterhout Group, Inc. Head worn computer display systems
USD751552S1 (en) 2014-12-31 2016-03-15 Osterhout Group, Inc. Computer glasses
USD753114S1 (en) 2015-01-05 2016-04-05 Osterhout Group, Inc. Air mouse
US10567641B1 (en) * 2015-01-19 2020-02-18 Devon Rueckner Gaze-directed photography
US20160239985A1 (en) 2015-02-17 2016-08-18 Osterhout Group, Inc. See-through computer display systems
NZ773820A (en) 2015-03-16 2022-07-29 Magic Leap Inc Methods and systems for diagnosing and treating health ailments
WO2016194849A1 (en) * 2015-06-01 2016-12-08 アルプス電気株式会社 Glasses-type electronic device
US9870049B2 (en) * 2015-07-31 2018-01-16 Google Llc Reflective lenses to auto-calibrate a wearable system
WO2017025483A1 (en) * 2015-08-07 2017-02-16 SensoMotoric Instruments Gesellschaft für innovative Sensorik mbH Method and apparatus for data capture and evaluation of ambient data
JP2016127587A (en) * 2015-09-03 2016-07-11 株式会社Fove Head-mounted display
WO2017042612A1 (en) 2015-09-12 2017-03-16 Shamir Optical Industry Ltd. Automatic eyewear measurement and specification
WO2017083331A1 (en) * 2015-11-09 2017-05-18 Digital Surgicals Pte Ltd. Personalized hand-eye coordinated digital stereo microscopic systems and methods
US10043075B2 (en) * 2015-11-19 2018-08-07 Microsoft Technology Licensing, Llc Eye feature identification
US10241569B2 (en) 2015-12-08 2019-03-26 Facebook Technologies, Llc Focus adjustment method for a virtual reality headset
US10445860B2 (en) 2015-12-08 2019-10-15 Facebook Technologies, Llc Autofocus virtual reality headset
CN108369451B (en) * 2015-12-18 2021-10-29 索尼公司 Information processing apparatus, information processing method, and computer-readable storage medium
US10678958B2 (en) 2015-12-28 2020-06-09 Intelligent Technologies International, Inc. Intrusion-protected memory component
CN113156650A (en) * 2016-01-19 2021-07-23 奇跃公司 Augmented reality system and method using images
CN108700743A (en) * 2016-01-22 2018-10-23 康宁股份有限公司 Wide visual field individual's display
US11054648B2 (en) * 2016-02-04 2021-07-06 Google Llc Compact near-eye display optics for higher optical performance
JP2017163180A (en) * 2016-03-07 2017-09-14 富士通株式会社 Deviation determination program, deviation determination method, and information processing device
USD794112S1 (en) * 2016-03-07 2017-08-08 Snap Inc. Eyeglasses
US11106276B2 (en) 2016-03-11 2021-08-31 Facebook Technologies, Llc Focus adjusting headset
US10379356B2 (en) 2016-04-07 2019-08-13 Facebook Technologies, Llc Accommodation based optical correction
WO2017176898A1 (en) 2016-04-08 2017-10-12 Magic Leap, Inc. Augmented reality systems and methods with variable focus lens elements
CN105676458A (en) * 2016-04-12 2016-06-15 王鹏 Wearable calculation device and control method thereof, and wearable equipment with wearable calculation device
KR102384882B1 (en) 2016-04-26 2022-04-07 매직 립, 인코포레이티드 Electromagnetic Tracking Using Augmented Reality Systems
WO2017189283A1 (en) * 2016-04-28 2017-11-02 Alex Artsyukhovich Detachable miniature microscope mounted keratometer for cataract surgery
US9854968B2 (en) * 2016-05-20 2018-01-02 International Business Machines Corporation Behind-eye monitoring using natural reflection of lenses
US10684479B2 (en) * 2016-06-15 2020-06-16 Vrvaorigin Vision Technology Corp. Ltd. Head-mounted personal multimedia systems and visual assistance devices thereof
WO2017216273A1 (en) * 2016-06-16 2017-12-21 SensoMotoric Instruments Gesellschaft für innovative Sensorik mbH Method and system for providing eye tracking based information about a user behavior, client device, server and computer program product
CN106200901B (en) * 2016-06-24 2019-03-29 联想(北京)有限公司 A kind of bearing calibration of wear-type ocular pursuit device and wear-type ocular pursuit device
KR102412525B1 (en) * 2016-07-25 2022-06-23 매직 립, 인코포레이티드 Optical Field Processor System
CN106293100A (en) * 2016-08-24 2017-01-04 上海与德通讯技术有限公司 The determination method of sight line focus and virtual reality device in virtual reality device
US10828560B2 (en) * 2016-09-30 2020-11-10 Sony Interactive Entertainment Inc. Systems and methods for stereoscopic vision with head mounted display
EP3306528B1 (en) * 2016-10-04 2019-12-25 Axis AB Using image analysis algorithms for providing traning data to neural networks
US10877556B2 (en) * 2016-10-21 2020-12-29 Apple Inc. Eye tracking system
CN206301289U (en) * 2016-11-29 2017-07-04 阿里巴巴集团控股有限公司 VR terminal devices
CN107066079A (en) 2016-11-29 2017-08-18 阿里巴巴集团控股有限公司 Service implementation method and device based on virtual reality scenario
US9905143B1 (en) * 2016-12-01 2018-02-27 Varjo Technologies Oy Display apparatus and method of displaying using image renderers and optical combiners
US11307333B2 (en) * 2017-01-04 2022-04-19 3M Innovative Properties Company Asymmetric turning film with top-hat light output distributions
US10310598B2 (en) * 2017-01-17 2019-06-04 Facebook Technologies, Llc Varifocal head-mounted display including modular air spaced optical assembly
JP7158396B2 (en) 2017-02-23 2022-10-21 マジック リープ, インコーポレイテッド Display system with variable power reflector
US10545347B2 (en) * 2017-02-23 2020-01-28 Google Llc Compact eye tracking using folded display optics
CN106873159A (en) 2017-02-27 2017-06-20 阿里巴巴集团控股有限公司 Virtual reality helmet
CN106873158A (en) * 2017-02-27 2017-06-20 阿里巴巴集团控股有限公司 Virtual reality helmet
CN107122642A (en) 2017-03-15 2017-09-01 阿里巴巴集团控股有限公司 Identity identifying method and device based on reality environment
CA3058669A1 (en) * 2017-04-14 2018-10-18 Magic Leap, Inc. Multimodal eye tracking
US10976551B2 (en) 2017-08-30 2021-04-13 Corning Incorporated Wide field personal display device
US10379628B2 (en) * 2017-09-27 2019-08-13 Htc Corporation Tracking system, virtual reality system and attachable device
FI20175960A1 (en) 2017-10-30 2019-05-01 Univ Of Eastern Finland Method and apparatus for gaze detection
US11138301B1 (en) * 2017-11-20 2021-10-05 Snap Inc. Eye scanner for user identification and security in an eyewear device
US10728517B2 (en) * 2017-12-22 2020-07-28 Flir Systems Ab Parallax mitigation for multi-imager systems and methods
JP7020110B2 (en) * 2017-12-26 2022-02-16 トヨタ自動車株式会社 Manufacturing method of catalyst for exhaust gas purification and catalyst for exhaust gas purification
JP2019124772A (en) * 2018-01-15 2019-07-25 株式会社東海理化電機製作所 Imaging device
CN108089326B (en) 2018-02-01 2023-12-26 北京七鑫易维信息技术有限公司 Device suitable for being used with glasses
US10845872B2 (en) 2018-02-09 2020-11-24 Ricoh Company, Ltd. Eye-gaze tracker, eye-gaze tracking method, and recording medium
US11393251B2 (en) 2018-02-09 2022-07-19 Pupil Labs Gmbh Devices, systems and methods for predicting gaze-related parameters
US11194161B2 (en) 2018-02-09 2021-12-07 Pupil Labs Gmbh Devices, systems and methods for predicting gaze-related parameters
US11556741B2 (en) 2018-02-09 2023-01-17 Pupil Labs Gmbh Devices, systems and methods for predicting gaze-related parameters using a neural network
KR102579034B1 (en) * 2018-02-23 2023-09-15 삼성전자주식회사 An electronic device including a semi-transparent member disposed at an angle specified with respect to a direction in which a video is outputbelow the video outputmodule
FR3079936B1 (en) * 2018-04-04 2020-04-17 Institut Mines-Telecom OPTICAL SYSTEM FOR DETECTING AND TRACKING EYE MOVEMENTS, EXTERNAL MOUNT AND CONNECTED CONTACT LENS THEREOF
EP3582077A1 (en) * 2018-06-13 2019-12-18 Tobii AB Eye tracking device and method for manufacturing an eye tracking device
US11179035B2 (en) * 2018-07-25 2021-11-23 Natus Medical Incorporated Real-time removal of IR LED reflections from an image
JP7227989B2 (en) * 2018-08-21 2023-02-22 メタ プラットフォームズ テクノロジーズ, リミテッド ライアビリティ カンパニー Illumination assembly with in-field microdevices
US10809760B1 (en) * 2018-10-29 2020-10-20 Facebook, Inc. Headset clock synchronization
US20200150425A1 (en) * 2018-11-09 2020-05-14 Facebook Technologies, Llc Inconspicuous near-eye electrical components
US11500185B2 (en) 2018-11-09 2022-11-15 Meta Platforms Technologies, Llc Catadioptric and refractive optical structures for beam shaping
US10914945B2 (en) 2018-11-09 2021-02-09 Facebook Technologies, Llc Inconspicuous near-eye electrical circuits
CN109725714B (en) 2018-11-14 2022-06-14 北京七鑫易维信息技术有限公司 Sight line determining method, device and system and head-mounted eye movement equipment
EP3891696A1 (en) 2018-12-04 2021-10-13 Telefonaktiebolaget Lm Ericsson (Publ) Improved optical see-through viewing device and method for providing virtual content overlapping visual objects
USD879865S1 (en) * 2018-12-27 2020-03-31 Snap Inc. Eyewear
USD879868S1 (en) * 2018-12-27 2020-03-31 Snap Inc. Eyewear
WO2020147948A1 (en) 2019-01-16 2020-07-23 Pupil Labs Gmbh Methods for generating calibration data for head-wearable devices and eye tracking system
US11861063B2 (en) 2019-02-05 2024-01-02 Samsung Electronics Co., Ltd. Eye-tracking device and display apparatus including the same
US10764571B1 (en) * 2019-04-22 2020-09-01 Snap Inc. Camera holder for economical and simplified test alignment
US11786694B2 (en) 2019-05-24 2023-10-17 NeuroLight, Inc. Device, method, and app for facilitating sleep
EP3979896A1 (en) 2019-06-05 2022-04-13 Pupil Labs GmbH Devices, systems and methods for predicting gaze-related parameters
WO2020244780A1 (en) * 2019-06-07 2020-12-10 Telefonaktiebolaget Lm Ericsson (Publ) Improved optical see-through viewing device and method for calibrating provision of virtual content overlapping visual objects
CN110441901A (en) * 2019-08-14 2019-11-12 东北大学 It is a kind of can real-time tracing watch the optical microscope system and method for position attentively
CN111651034B (en) * 2019-12-05 2023-12-26 寰采星科技(宁波)有限公司 Intelligent glasses, control method and control chip of intelligent glasses
AT523152B1 (en) * 2020-02-24 2021-06-15 Univ Graz Tech Device for detecting eye movements
CN116113867A (en) * 2020-05-14 2023-05-12 视觉系统有限责任公司 Method and glasses for determining pupil center
CN111783660B (en) * 2020-07-01 2023-11-10 业成科技(成都)有限公司 Eye movement tracking device and electronic device using same
WO2022020434A1 (en) * 2020-07-23 2022-01-27 Magic Leap, Inc. Eye tracking using alternate sampling
CN112244763A (en) * 2020-10-20 2021-01-22 垒途智能教科技术研究院江苏有限公司 Head-wearing glasses type eye movement instrument convenient to adjust
CN116635769A (en) * 2021-01-18 2023-08-22 三星电子株式会社 Wearable electronic device including miniature camera
US11818472B2 (en) 2022-01-31 2023-11-14 Donald Siu Simultaneously capturing images in landscape and portrait modes
US11806078B1 (en) 2022-05-01 2023-11-07 Globe Biomedical, Inc. Tear meniscus detection and evaluation system
US20240061499A1 (en) * 2022-08-22 2024-02-22 Meta Platforms Technologies, Llc Gaze adjusted avatars for immersive reality applications
CN115624315B (en) * 2022-11-18 2023-03-14 北京中科睿医信息科技有限公司 Eye movement tracking method and device, electronic equipment, computer storage medium and product

Citations (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5886767A (en) * 1996-10-09 1999-03-23 Snook; Richard K. Keratometry system and method for measuring physical parameters of the cornea
EP1038494A1 (en) * 1999-03-20 2000-09-27 Richard K. Snook Clinical keratometer system
US6163281A (en) 1996-08-19 2000-12-19 Torch; William C. System and method for communication using eye movement
EP1391176A1 (en) * 2002-08-16 2004-02-25 Universiteit Maastricht Method and arrangement for performing measurements of the topography of a corneal surface
WO2004066097A2 (en) 2003-01-23 2004-08-05 Tengshe Vishwas V Gaze tracking system and method
US20040196433A1 (en) 2001-08-15 2004-10-07 Durnell L.Aurence Eye tracking systems
USRE39539E1 (en) 1996-08-19 2007-04-03 Torch William C System and method for monitoring eye movement
WO2007043954A1 (en) * 2005-10-10 2007-04-19 Tobii Technology Ab Eye tracker having an extended span of operating distances
WO2010083853A1 (en) 2009-01-26 2010-07-29 Tobii Technology Ab Detection of gaze point assisted by optical reference signals
US20100220291A1 (en) 2009-03-02 2010-09-02 Honeywell International Inc. Wearable eye tracking system
US20100253907A1 (en) * 2009-04-01 2010-10-07 Tearscience, Inc. Ocular surface interferometery (OSI) devices and systems for imaging, processing, and/or displaying an ocular tear film
WO2010118292A1 (en) * 2009-04-09 2010-10-14 Dynavox Systems, Llc Calibration free, motion tolerant eye-gaze direction detector with contextually aware computer interaction and communication methods

Family Cites Families (60)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4145122A (en) * 1977-05-31 1979-03-20 Colorado Seminary Method and apparatus for monitoring the position of the eye
US4300818A (en) * 1978-03-13 1981-11-17 Schachar Ronald A Multifocal ophthalmic lens
US4659197A (en) * 1984-09-20 1987-04-21 Weinblatt Lee S Eyeglass-frame-mounted eye-movement-monitoring apparatus
US4852988A (en) * 1988-09-12 1989-08-01 Applied Science Laboratories Visor and camera providing a parallax-free field-of-view image for a head-mounted eye movement measurement system
US5092669A (en) * 1990-03-16 1992-03-03 Migra Limited Optical device and method for using same
US5610678A (en) * 1993-12-30 1997-03-11 Canon Kabushiki Kaisha Camera including camera body and independent optical viewfinder
JP3477567B2 (en) * 1995-05-15 2003-12-10 日本光電工業株式会社 Pupil measuring device and Alzheimer's disease diagnostic device
US5883691A (en) * 1995-05-15 1999-03-16 Nihon Kohden Corporation Pupil measuring system and Alzheimer's disease diagnosing system
EP0825826B1 (en) * 1995-05-15 2002-10-23 Leica Mikroskopie Systeme AG Process and device for the parallel capture of visual information
US6003991A (en) * 1996-02-17 1999-12-21 Erik Scott Viirre Eye examination apparatus and method for remote examination of a patient by a health professional
US5861936A (en) * 1996-07-26 1999-01-19 Gillan Holdings Limited Regulating focus in accordance with relationship of features of a person's eyes
US6120460A (en) * 1996-09-04 2000-09-19 Abreu; Marcio Marc Method and apparatus for signal acquisition, processing and transmission for evaluation of bodily functions
US6847336B1 (en) * 1996-10-02 2005-01-25 Jerome H. Lemelson Selectively controllable heads-up display system
US6133946A (en) * 1998-01-06 2000-10-17 Sportvision, Inc. System for determining the position of an object
CA2310114A1 (en) * 1998-02-02 1999-08-02 Steve Mann Wearable camera system with viewfinder means
US6614408B1 (en) * 1998-03-25 2003-09-02 W. Stephen G. Mann Eye-tap for electronic newsgathering, documentary video, photojournalism, and personal safety
JP2000023065A (en) * 1998-06-29 2000-01-21 Dainippon Printing Co Ltd Goggles display with sight line input
JP2000300520A (en) * 1999-04-23 2000-10-31 Matsushita Electric Works Ltd Pupil measuring apparatus
US6116736A (en) * 1999-04-23 2000-09-12 Neuroptics, Inc. Pupilometer with pupil irregularity detection capability
JP3200801B2 (en) * 1999-06-14 2001-08-20 八木 聰明 Imaging device
JP2001281520A (en) * 2000-03-30 2001-10-10 Minolta Co Ltd Optical device
JP4584408B2 (en) * 2000-05-17 2010-11-24 株式会社ニューオプト Eye image analysis system
DE10047237A1 (en) * 2000-09-23 2002-04-11 Physoptics Opto Electronic Gmb System for recording the retinal reflex image
US6384863B1 (en) * 2000-10-11 2002-05-07 Hewlett-Packard Company Ergonomically designed digital camera capable of being held by one hand
US6478425B2 (en) * 2000-12-29 2002-11-12 Koninlijke Phillip Electronics N. V. System and method for automatically adjusting a lens power through gaze tracking
DE10103922A1 (en) * 2001-01-30 2002-08-01 Physoptics Opto Electronic Gmb Interactive data viewing and operating system
FR2820486B1 (en) * 2001-02-02 2003-04-04 Dietrich & Cie De CLOSING BODY OF A VALVE CONTAINING AN INTERNAL HOUSING FOR A SENSOR ALLOWING THE EXTRACTION OF THE SAME WITHOUT DISMANTLING
US6760576B2 (en) * 2001-03-27 2004-07-06 Qualcomm Incorporated Method and apparatus for enhanced rate determination in high data rate wireless communication systems
JP2003061912A (en) * 2001-08-29 2003-03-04 Canon Inc Ophthalmologic image apparatus
US7753524B2 (en) * 2002-02-08 2010-07-13 Novavision, Inc. Process and device for treating blind regions of the visual field
US7206022B2 (en) * 2002-11-25 2007-04-17 Eastman Kodak Company Camera system with eye monitoring
AU2003903157A0 (en) * 2003-06-20 2003-07-03 The Lions Eye Institute of Western Australia Incorporated The Ophthalmic camera and ophthalmic camera adaptor
WO2005043218A1 (en) * 2003-10-30 2005-05-12 Brother Kogyo Kabushiki Kaisha Image display device
JP2005252732A (en) * 2004-03-04 2005-09-15 Olympus Corp Imaging device
CN102068237A (en) * 2004-04-01 2011-05-25 威廉·C·托奇 Controllers and Methods for Monitoring Eye Movement, System and Method for Controlling Calculation Device
US20110077548A1 (en) * 2004-04-01 2011-03-31 Torch William C Biosensors, communicators, and controllers monitoring eye movement and methods for using them
JP4580678B2 (en) * 2004-04-28 2010-11-17 株式会社ディテクト Gaze point display device
WO2006011870A1 (en) * 2004-06-25 2006-02-02 Fergason James L Optical system for monitoring eye movement
FI20045300A (en) * 2004-08-17 2006-02-18 Nokia Corp Electronic device and procedure for controlling the functions of the electronic device and software product for implementing the procedure
US7390088B2 (en) * 2004-12-03 2008-06-24 Searete Llc Adjustable lens system with neural-based control
US8174572B2 (en) * 2005-03-25 2012-05-08 Sensormatic Electronics, LLC Intelligent camera selection and object tracking
JP4617214B2 (en) * 2005-08-05 2011-01-19 キヤノン株式会社 Image photographing apparatus, control method therefor, program, and image photographing system
NZ564852A (en) * 2005-08-11 2010-01-29 Sleep Diagnostics Pty Ltd Alertness sensing spectacles having an eyelid sensor to detect eyelid movement
SE529763C2 (en) * 2005-10-10 2007-11-20 Tobii Technology Ab Automatic eye tracker for e.g. controlling computer system, has mask to alter basic optical transfer function of lens structure and image sensor into enhanced optical transfer function
CA2629903C (en) 2005-11-15 2016-04-12 Carl Zeiss Vision Australia Holdings Limited Ophthalmic lens simulation system and method
US20110298829A1 (en) * 2010-06-04 2011-12-08 Sony Computer Entertainment Inc. Selecting View Orientation in Portable Device via Image Analysis
JP4869757B2 (en) * 2006-03-24 2012-02-08 株式会社トプコン Fundus observation device
JP4961914B2 (en) * 2006-09-08 2012-06-27 ソニー株式会社 Imaging display device and imaging display method
JP4663700B2 (en) * 2007-09-28 2011-04-06 富士フイルム株式会社 Imaging apparatus and imaging method
CN201110916Y (en) * 2007-12-03 2008-09-03 吴汉标 Visual field adjusting glasses
US8786675B2 (en) * 2008-01-23 2014-07-22 Michael F. Deering Systems using eye mounted displays
US8348429B2 (en) * 2008-03-27 2013-01-08 Doheny Eye Institute Optical coherence tomography device, method, and system
US9844463B2 (en) * 2008-04-01 2017-12-19 Amo Development, Llc Ophthalmic laser apparatus, system, and method with high resolution imaging
US20100149073A1 (en) * 2008-11-02 2010-06-17 David Chaum Near to Eye Display System and Appliance
US8269893B2 (en) * 2008-05-12 2012-09-18 Flir Systems, Inc. Optical payload electrical system
JP2010081480A (en) * 2008-09-29 2010-04-08 Fujifilm Corp Portable suspicious individual detecting apparatus, suspicious individual detecting method, and program
JP5828070B2 (en) * 2010-08-20 2015-12-02 パナソニックIpマネジメント株式会社 Imaging apparatus and imaging method
US8593558B2 (en) * 2010-09-08 2013-11-26 Apple Inc. Camera-based orientation fix from portrait to landscape
JP2012070116A (en) * 2010-09-22 2012-04-05 Sony Corp Information processing device, information processing method, reproduction device, reproduction method, and program
US8836777B2 (en) * 2011-02-25 2014-09-16 DigitalOptics Corporation Europe Limited Automatic detection of vertical gaze using an embedded imaging device

Patent Citations (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6163281A (en) 1996-08-19 2000-12-19 Torch; William C. System and method for communication using eye movement
USRE39539E1 (en) 1996-08-19 2007-04-03 Torch William C System and method for monitoring eye movement
US5886767A (en) * 1996-10-09 1999-03-23 Snook; Richard K. Keratometry system and method for measuring physical parameters of the cornea
EP1038494A1 (en) * 1999-03-20 2000-09-27 Richard K. Snook Clinical keratometer system
US20040196433A1 (en) 2001-08-15 2004-10-07 Durnell L.Aurence Eye tracking systems
EP1391176A1 (en) * 2002-08-16 2004-02-25 Universiteit Maastricht Method and arrangement for performing measurements of the topography of a corneal surface
WO2004066097A2 (en) 2003-01-23 2004-08-05 Tengshe Vishwas V Gaze tracking system and method
WO2007043954A1 (en) * 2005-10-10 2007-04-19 Tobii Technology Ab Eye tracker having an extended span of operating distances
WO2010083853A1 (en) 2009-01-26 2010-07-29 Tobii Technology Ab Detection of gaze point assisted by optical reference signals
US20100220291A1 (en) 2009-03-02 2010-09-02 Honeywell International Inc. Wearable eye tracking system
US20100253907A1 (en) * 2009-04-01 2010-10-07 Tearscience, Inc. Ocular surface interferometery (OSI) devices and systems for imaging, processing, and/or displaying an ocular tear film
WO2010118292A1 (en) * 2009-04-09 2010-10-14 Dynavox Systems, Llc Calibration free, motion tolerant eye-gaze direction detector with contextually aware computer interaction and communication methods

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2018164477A (en) * 2017-03-28 2018-10-25 株式会社トプコン Ophthalmologic apparatus

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