WO2013049012A1 - Integrated eye tracking and display system - Google Patents

Integrated eye tracking and display system Download PDF

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Publication number
WO2013049012A1
WO2013049012A1 PCT/US2012/057035 US2012057035W WO2013049012A1 WO 2013049012 A1 WO2013049012 A1 WO 2013049012A1 US 2012057035 W US2012057035 W US 2012057035W WO 2013049012 A1 WO2013049012 A1 WO 2013049012A1
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WIPO (PCT)
Prior art keywords
infrared
planar waveguide
eye
illumination
display
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PCT/US2012/057035
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French (fr)
Inventor
David D. Bohn
Original Assignee
Bohn David D
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Publication of WO2013049012A1 publication Critical patent/WO2013049012A1/en

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Classifications

    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B5/00Optical elements other than lenses
    • G02B5/20Filters
    • 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
    • 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

  • Mixed or augmented reality is a technology that allows virtual imagery to be mixed with a user's actual view of the real world.
  • the user can literally see through the display and interact with the real world while also seeing images generated by one or more software applications.
  • the user's field of view is not stationary as a user moves his or her head. What the user is looking at in the field of view, also referred to as the user's gaze, changes as the user shifts his or her eyes, even if his or her head does not move. The ability to identify eye movements would enhance the placement of images within the display.
  • Embodiments described herein permit the eye-tracking system to illuminate and capture data along an optical axis of each display positioned to be seen through by a respective eye resulting in simpler computations, better illumination of the eye, and a higher probability of capturing more data of the eye than eye tracking sensor systems which capture data off axis and are more hindered by obstructions like droopy eyelids and sitess on eyelids.
  • the technology provides an embodiment of an integrated eye tracking and display system for a see-through, near-eye, mixed reality display device.
  • the system comprises, for each eye, a display optical system having an optical axis and a see-through, planar waveguide positioned to be seen through by the respective eye.
  • One or more wavelength selective filters are positioned in the waveguide in co-axial alignment with the optical axis of the respective display optical system.
  • the one or more filters direct infrared and visible illumination out of the respective planar waveguide. Additionally, the one or more filters direct infrared reflections into the planar waveguide.
  • a wavelength selective filter Some examples are fixed and active diffractive grating elements, reflective grating elements, and other reflective elements which direct radiation of a predetermined wavelength or within a range of wavelengths.
  • An infrared illumination source is positioned for having its infrared illumination optically coupled into the planar waveguide.
  • An infrared sensor is optically coupled to the planar waveguide for directing infrared and visible illumination out of the planar waveguide and for receiving the infrared reflections directed from the wavelength selective filters.
  • An image generation unit is optically coupled for transmission of visible illumination into the planar waveguide.
  • the technology provides another embodiment of an integrated eye tracking and display system for a see-through, near eye, mixed reality display device.
  • the system embodiment comprises a display optical system for each eye.
  • Each display optical system has an optical axis and a see-through, planar waveguide positioned to be seen through by the respective eye.
  • One or more wavelength selective filters are positioned within the waveguide in co-axial alignment with the optical axis of the respective display optical system for directing infrared reflections into the planar waveguide.
  • An array of optical elements including light sources for transmitting infrared and visible illumination is optically coupled to the planar waveguide for directing their illumination into the planar waveguide.
  • An infrared sensor is optically coupled to the planar waveguide for receiving infrared reflections directed from the wavelength selective filters.
  • the technology provides an embodiment of a method for processing visible and infrared wavelengths for image display and eye tracking in an optical path of a see- through planar waveguide positioned to be seen through in a display optical system of a see-through, near-eye, mixed reality display device.
  • the method comprises optically coupling visible and infrared illumination into the planar waveguide in a first direction of an optical path.
  • the visible and infrared illumination are directed out of the planar waveguide toward the eye by one or more wavelength selective filters co-axially aligned with an optical axis of the display optical system.
  • the filters also direct infrared reflections from the eye into the planar waveguide in a second direction of the same optical path.
  • the method further comprises optically coupling the infrared reflections from the planar waveguide to an infrared sensor.
  • Data generated by the infrared sensor e.g. charge-coupled device (CCD) or CMOS pixel sensor array
  • eye tracking data are image data from an IR camera or positions detected for glints by a position sensitive detector (PSD).
  • PSD position sensitive detector
  • the first and second direction may be the same. In other embodiments, the first direction and second direction may be different. An example of different directions are opposite directions.
  • Figure 1 is a block diagram depicting example components of one embodiment of a see-through, mixed reality display device system.
  • Figure 2A is a side view of an eyeglass temple of the frame in an embodiment of the see-through, mixed reality display device embodied as eyeglasses providing support for hardware and software components.
  • Figure 2B is a top view of an embodiment of an integrated eye tracking and display optical system of a see-through, near-eye, mixed reality device.
  • Figure 2C is a top view of another version of the embodiment of Figure 2B in which infrared reflections traverse the waveguide 112 in the same direction, rather than a reverse direction, as the IR illumination traveled.
  • Figure 3A is a block diagram of one embodiment of hardware and software components of a see-through, near-eye, mixed reality display device as may be used with one or more embodiments.
  • Figure 3B is a block diagram describing the various components of a processing unit.
  • Figure 4 is a flowchart of an embodiment of a method for processing visible and infrared wavelengths for image display and eye tracking in an optical path of a see- through, planar waveguide positioned to be seen through in a display optical system of a see-through, near-eye, mixed reality display device.
  • Figure 5A is a view from the perspective of an eye looking through a planar waveguide of another embodiment of an integrated eye tracking and display optical system using an integrated linear array of light sources and a scanning mirror for generating an image.
  • Figure 5B illustrates another version of the embodiment of Figure 5A in which infrared sensing elements are integrated into the array of light sources.
  • Figure 6A illustrates an exemplary layout of a linear integrated array of light sources generating both visible and infrared illumination for use in an integrated eye tracking and display optical system of a see-through, near-eye, mixed reality device.
  • Figure 6B illustrates an exemplary layout of a linear integrated array of optical elements including infrared sensing elements and light sources generating both visible and infrared illumination for use in an integrated eye tracking and display optical system of a see-through, near-eye, mixed reality device.
  • Figure 6C illustrates another exemplary layout of a linear integrated array of light sources generating both visible and infrared illumination in which infrared light sources are placed at the end of each row in an arrangement suitable for glint tracking.
  • Figure 6D illustrates another exemplary layout of a linear integrated array of optical elements including infrared sensing elements, visible light sources and infrared light sources at the end of visible light rows in an arrangement suitable for glint tracking.
  • Figure 7A is a view from the perspective of an eye looking through a planar waveguide of another embodiment of an integrated eye tracking and display optical system using modulated light sources and a 2D scanning mirror.
  • Figure 7B illustrates another version of the embodiment of Figure 7A using a single modulated light source and an active grating.
  • Figure 8 is a block diagram of another embodiment of hardware and software components of a see-through, near-eye, mixed reality display device for use with an image generation unit comprising light sources and a scanning mirror.
  • Figure 9 is a block diagram of an embodiment of an electronics module which may be used for controlling hardware components of an integrated eye tracking and display system using at least one light source and a scanning mirror.
  • Embodiments of a see-through, near-eye, head mounted mixed reality display device system with an integrated eye tracking and display system are described.
  • the eye tracking system shares portions of a see through head mounted display (HMD) optical path to project the eye tracking infrared illumination to the eye and to capture infrared reflections from the eye by an infrared sensor.
  • An eye tracking system uses infrared (IR) illumination so that the illumination is not visible to the user.
  • the IR sensor may be an IR camera which provides infrared image data of the eye or an IR sensor which detects glints or reflections off the cornea of the eye generated by IR illumination of the eye.
  • a display optical system for each eye which includes a see-through, planar waveguide.
  • the waveguide provides an optical path in a practical implementation based on the operating principle of total internal reflection.
  • One or more wavelength selective filters are positioned in the waveguide in co- axial alignment with an optical axis of the display optical system.
  • the optical axis of the display system is co-axially, or closely approximates being co-axially, with a nominal eye line of sight.
  • a nominal eye line of sight is centered on the pupil and extends from the pupil center when the user is looking straight ahead.
  • visible illumination representing images and infrared illumination are directed out of the waveguide along the optical axis toward the eye, and reflections from the eye centered about the optical axis are directed into the waveguide.
  • Illuminating the eye and capturing reflections from the eye centered around the optical axis which is approximating the eye line of sight, simplifies image processing algorithms for eye image data and is more tolerant of individualistic differences in human facial features. For example a sty on the eye or a low eyelid may block illumination directed from an upper corner of an eyeglass frame embodiment more so than if the illumination is directed along the optical axis of a respective display for the eye.
  • the better illumination and eye data capture centered at the optical axis can improve the results of many applications such as corneal glint tracking and pupil tracking for gaze determination, blinking tracking for user command interpretation, iris scanning and retinal vein tracking for biometric identification based applications, measuring convergence, identifying pupil alignment with an optical axis and determining interpupillary distance (IPD), and structured light pattern techniques for cornea tracking.
  • IPD interpupillary distance
  • FIG. 1 is a block diagram depicting example components of one embodiment of a see-through, mixed reality display device system.
  • System 8 includes a see-through display device as a near-eye, head mounted display device 2 in communication with processing unit 4 via wire 6.
  • head mounted display device 2 communicates with processing unit 4 via wireless communication.
  • Processing unit 4 may take various embodiments.
  • processing unit 4 may be embodied in a mobile device like a smart phone, tablet or laptop computer.
  • processing unit 4 is a separate unit which may be worn on the user's body, e.g. the wrist in the illustrated example or in a pocket, and includes much of the computing power used to operate near-eye display device 2.
  • Processing unit 4 may communicate wirelessly (e.g., WiFi, Bluetooth, infrared, RFID transmission, wireless Universal Serial Bus (WUSB), cellular, 3G, 4G or other wireless communication means) over a communication network 50 to one or more hub computing systems 12 whether located nearby in this example or at a remote location.
  • the functionality of the processing unit 4 may be integrated in software and hardware components of the display device 2.
  • Head mounted display device 2 which in one embodiment is in the shape of eyeglasses in a frame 115, is worn on the head of a user so that the user can see through a display, embodied in this example as a display optical system 14 for each eye, and thereby have an actual direct view of the space in front of the user.
  • actual direct view refers to the ability to see real world objects directly with the human eye, rather than seeing created image representations of the objects. For example, looking through glass at a room allows a user to have an actual direct view of the room, while viewing a video of a room on a television is not an actual direct view of the room.
  • the system can project images of virtual objects, sometimes referred to as virtual images, on the display that are viewable by the person wearing the see- through display device while that person is also viewing real world objects through the display.
  • Frame 115 provides a support for holding elements of the system in place as well as a conduit for electrical connections.
  • frame 115 provides a convenient eyeglass frame as support for the elements of the system discussed further below.
  • other support structures can be used.
  • An example of such a structure is a visor or goggles.
  • the frame 115 includes a temple or side arm for resting on each of a user's ears.
  • Temple 102 is representative of an embodiment of the right temple and includes control circuitry 136 for the display device 2.
  • Nose bridge 104 of the frame includes a microphone 110 for recording sounds and transmitting audio data to processing unit 4.
  • Figure 2A is a side view of an eyeglass temple 102 of the frame 115 in an embodiment of the see-through, mixed reality display device embodied as eyeglasses providing support for hardware and software components.
  • At the front of frame 115 is physical environment facing or outward facing video camera 113 that can capture video and still images which are transmitted to the processing unit 4.
  • the data from the camera may be sent to a processor 210 of the control circuitry 136, or the processing unit 4 or both, which may process them but which the unit 4 may also send to one or more computer systems 12 over a network 50 for processing.
  • the processing identifies and maps the user's real world field of view.
  • Control circuits 136 provide various electronics that support the other components of head mounted display device 2. More details of control circuits 136 are provided below with respect to Figure 3 A.
  • ear phones 130 Inside, or mounted to temple 102, are ear phones 130, inertial sensors 132, GPS transceiver 144 and temperature sensor 138.
  • inertial sensors 132 include a three axis magnetometer 132A, three axis gyro 132B and three axis accelerometer 132C (See Figure 3A). The inertial sensors are for sensing position, orientation, and sudden accelerations of head mounted display device 2. From these movements, head position may also be determined.
  • the image source includes micro display 120 for projecting images of one or more virtual objects and lens system 122 for directing images from micro display 120 into a see-through planar waveguide 112.
  • Lens system 122 may include one or more lenses.
  • lens system 122 includes one or more collimating lenses.
  • a reflecting element 124 receives the images directed by the lens system 122 and optically couples the image data into the planar waveguide 112.
  • micro display 120 can be implemented using a transmissive projection technology where the light source is modulated by optically active material, backlit with white light. These technologies are usually implemented using LCD type displays with powerful backlights and high optical energy densities.
  • Micro display 120 can also be implemented using a reflective technology for which external light is reflected and modulated by an optically active material. Digital light processing (DLP), liquid crystal on silicon (LCOS) and Mirasol® display technology from Qualcomm, inc. are all examples of reflective technologies.
  • micro display 120 can be implemented using an emissive technology where light is generated by the display, see for example, a PicoPTM display engine from Microvision, Inc. Another example of emissive display technology is a micro organic light emitting diode (OLED) display. Companies eMagin and Microoled provide examples of micro OLED displays.
  • OLED micro organic light emitting diode
  • Figure 2B is a top view of an embodiment of a display optical system 14 of a see-through, near-eye, augmented or mixed reality device.
  • a portion of the frame 115 of the near-eye display device 2 will surround a display optical system 14 for providing support for one or more optical elements as illustrated here and in the following figures and for making electrical connections.
  • a portion of the frame 115 surrounding the display optical system is not depicted.
  • the display optical system 14 includes a planar waveguide 112, an optional opacity filter 114, see-through lens 116 and see-through lens 118.
  • opacity filter 114 is behind and aligned with see-through lens 116
  • planar waveguide 112 is behind and aligned with opacity filter 114
  • see-through lens 118 is behind and aligned with planar waveguide 112.
  • See-through lenses 116 and 118 may be standard lenses used in eye glasses and can be made to any prescription (including no prescription).
  • head mounted display device 2 will include only one see-through lens or no see-through lenses.
  • Opacity filter 114 which is aligned with planar waveguide 112, selectively blocks natural light, either uniformly or on a per-pixel basis, from passing through planar waveguide 112.
  • the opacity filter enhances the contrast of the virtual imagery. More details of an opacity filter are provided in U.S. Patent Application No. 12/887,426, "Opacity Filter For See-Through Mounted Display,” filed on September 21, 2010, incorporated herein by reference in its entirety.
  • planar waveguide 112 transmits visible light from micro display 120 to the eye 140 of the user wearing head mounted display device 2.
  • the see-through planar waveguide 112 also allows visible light from in front of the head mounted display device 2 to be transmitted through itself 112 to eye 140, as depicted by arrow 142 representing an optical axis of the display optical system 14r, thereby allowing the user to have an actual direct view of the space in front of head mounted display device 2 in addition to receiving a virtual image from the micro display 120.
  • the walls of planar waveguide 112 are see-through.
  • Planar waveguide 112 includes a first reflecting surface 124 (e.g., a mirror or other surface). Visible light from micro display 120 passes through lens 122 and becomes incident on reflecting surface 124. The reflecting surface 124 reflects the incident visible light from the micro display 120 such that visible light is trapped inside a planar, substrate comprising planar waveguide 112 by internal reflection as described further below.
  • Infrared illumination and reflections also traverse the planar waveguide 112 for an eye tracking system 134 for tracking the position of the user's eyes.
  • a user's eyes will be directed at a subset of the environment which is the user's area of focus or gaze.
  • the eye tracking system 134 comprises an eye tracking illumination source 134A in this example located on temple 102 and an eye tracking IR sensor 134B positioned between lens 118 and temple 102.
  • the technology allows flexibility in the placement of entry and exit optical couplings to and from the waveguide's optical path for the image generation unit 120, the illumination source 134A and the IR sensor 134B.
  • the visible illumination representing images and the infrared illumination may enter from any direction about the waveguide 112, and one or more wavelength selective filters (e.g. 127) direct the illumination out of the waveguide centered about the optical axis 142 of the display optical system 14.
  • one or more wavelength selective filters e.g. 1257
  • the placement of the IR sensor is flexible as long as it is optically coupled to receive infrared reflections directed by one or more wavelength selective filters positioned to receive infrared reflections along the optical axis 142.
  • the eye tracking illumination source 134A may include one or more infrared (IR) emitters such as an infrared light emitting diode (LED) or a laser (e.g. VCSEL) emitting about a predetermined IR wavelength or a range of wavelengths.
  • IR infrared
  • the eye tracking sensor 134B may be an IR camera or an IR position sensitive detector (PSD) for tracking glint positions.
  • a wavelength selective filter 123 is embodied as a grating 123 which passes through visible spectrum light from the micro display 120 via reflecting surface 124 and directs the infrared wavelength illumination from the eye tracking illumination source 134A into the planar waveguide 112 where the IR illumination is internally reflected within the waveguide until reaching another wavelength selective filter 127 aligned with the optical axis 142.
  • the grating 123 may be a diffraction grating or a reflection grating.
  • the IR sensor 134B is also optically coupled to a grating 125, which may also be a diffraction grating or a reflection grating. These gratings are stacked.
  • grating 125 is unidirectional in that grating 125 passes through the IR illumination from source 134A in the optical path heading in the direction of the nose bridge 104, but directs infrared radiation including infrared reflections traveling from the optical axis 142 towards the grating 125 out of the waveguide 112 to the IR sensor 134B.
  • a grating may be a fixed diffractive element like an air space grating, a fixed reflective grating, or an active or switchable grating for either diffraction, reflection or a combination of these for different wavelengths.
  • the position of the pupil within the eye socket can be identified by known imaging techniques when the IR sensor is an IR camera, and by glint position data when the IR sensor is a type of position sensitive detector (PSD).
  • PSD position sensitive detector
  • the planar waveguide is a reflective array planar waveguide.
  • Other types of planar waveguides may also be used, for example, a diffractive optical element planar waveguide or a planar waveguide with total internal reflection (TIR) grooves.
  • TIR total internal reflection
  • the trapped visible light waves after several reflections off the surfaces of the substrate, the trapped visible light waves reach an array of wavelength selective filters embodied in this example as selectively reflecting surfaces 1261 to 126N.
  • a wavelength selective filter 127 aligned with the optical axis of the display optical system is also positioned in the waveguide 112. Reflecting surfaces 126 couple visible light wavelengths incident upon those reflecting surfaces out of the substrate directed in the direction of the eye 140 of the user.
  • the reflecting surfaces 126 also pass infrared radiation within the waveguide.
  • aligned with the optical axis 142 of the display optical system 14r is one or more wavelength selective filters 127 which direct not only visible illumination but received infrared illumination from the illumination source 134A.
  • the one or more selective filters 127 may reflect wavelengths in the red visible spectrum and the infrared spectrum.
  • the filters 127 can reflect wavelengths covering the entire visible spectrum or a larger portion thereof and the infrared spectrum for wavelengths of IR reflections and those generated by the IR illumination source.
  • the one or more wavelength selective filters 127 direct infrared reflections from the eye which pass through the see-through walls of the planar waveguide centered about the optical axis 142 into the optical path of the planar waveguide but in an opposite direction towards the wavelength selective filter 125 which selectively filters the infrared reflections from the waveguide and directs them to the IR sensor 134B.
  • the filters 127 may include a bidirectional infrared filter.
  • visible and infrared filters may be stacked in the direction from lens 116 to 118 so that they are all co-axial with the optical axis.
  • a bidirectional hot mirror placed in front of a visible reflecting element with respect to the eye lets visible light pass but reflects IR wavelengths.
  • the one or more filters 127 may be embodied as an active grating which is modulated between filtering wavelengths in the visible and infrared spectrums. This would be done at a rate fast enough for the human eye not to detect.
  • FIG. 2C is a top view of another version of the embodiment of Figure 2B in which infrared reflections traverse the waveguide 112 in the same direction, rather than a reverse direction, as the IR illumination traveled.
  • the IR sensor 134B is positioned in the nose bridge 104.
  • another wavelength selective filter 125 is embodied as an IR reflecting element which passes visible light through the waveguide and also directs IR reflections received about the optical axis 142 into the waveguide and toward the IR sensor 134B.
  • An example of such an IR reflecting element 125 is a hot mirror embodiment.
  • a diffractive or reflective grating may also be used.
  • sensor 134B is in a portion of the waveguide 112 located within the nose bridge 104 so as not to obstruct the user field of view.
  • An electrical connection (not shown) can be made to the sensor 134B in the nose bridge portion to readout the sensor data.
  • each eye will have its own planar waveguide 112.
  • each eye can have its own micro display 120 that can display the same image in both eyes or different images in the two eyes.
  • FIG. 2A, 2B and 2C only show half of the head mounted display device 2.
  • a full head mounted display device would include, for example, another set of see through lenses 116 and 118, another opacity filter 114, another planar waveguide 112 with one or more wavelength selective filters 127, another micro display 120, another lens system 122 physical environment facing camera 113 (also referred to as outward facing or front facing camera 113), eye tracking assembly 134, earphone 130, gratings 123, 125, and temperature sensor 138. Additional details of a head mounted display 2 are illustrated in United States Patent Application Serial No. 12/905952 entitled Fusing Virtual Content Into Real Content, Filed October 15, 2010, fully incorporated herein by reference.
  • Figure 3A is a block diagram of one embodiment of hardware and software components of a see-through, near-eye, mixed reality display device 2 as may be used with one or more embodiments.
  • Figure 3B is a block diagram describing the various components of a processing unit 4.
  • near-eye display device 2 receives instructions about a virtual image from processing unit 4 and provides data from sensors back to processing unit 4.
  • Software and hardware components which may be embodied in a processing unit 4, for example as depicted in Figure 3B, receive the sensory data from the display device 2 and may also receive sensory information from a computing system 12 over a network 50. Based on that information, processing unit 4 will determine where and when to provide a virtual image to the user and send instructions accordingly to the control circuitry 136 of the display device 2.
  • Figure 3A shows the control circuit 200 in communication with the power management circuit 202.
  • Control circuit 200 includes processor 210, memory controller 212 in communication with memory 244 (e.g., D-RAM), camera interface 216, camera buffer 218, display driver 220, display formatter 222, timing generator 226, display out interface 228, and display in interface 230.
  • memory 244 e.g., D-RAM
  • all of components of control circuit 200 are in communication with each other via dedicated lines of one or more buses.
  • each of the components of control circuit 200 are in communication with processor 210.
  • Camera interface 216 provides an interface to the two physical environment facing cameras 113 and, in this embodiment, an IR camera as sensor 134B and stores respective images received from the cameras 113, 134B in camera buffer 218.
  • Display driver 220 will drive microdisplay 120.
  • Display formatter 222 may provide information, about the virtual image being displayed on microdisplay 120 to one or more processors of one or more computer systems, e.g. 4 and 12 performing processing for the mixed reality system.
  • the display formatter 222 can identify to the opacity control unit 224 transmissivity settings with respect to the display optical system 14.
  • Timing generator 226 is used to provide timing data for the system.
  • Display out interface 228 includes a buffer for providing images from physical environment facing cameras 113 and the eye cameras 134B to the processing unit 4.
  • Display in interface 230 includes a buffer for receiving images such as a virtual image to be displayed on microdisplay 120.
  • Display out 228 and display in 230 communicate with band interface 232 which is an interface to processing unit 4.
  • Power management circuit 202 includes voltage regulator 234, eye tracking illumination driver 236, audio DAC and amplifier 238, microphone preamplifier and audio ADC 240, temperature sensor interface 242, active grating controller 237, and clock generator 245.
  • Voltage regulator 234 receives power from processing unit 4 via band interface 232 and provides that power to the other components of head mounted display device 2.
  • Illumination driver 236 controls, for example via a drive current or voltage, the eye tracking illumination unit 134A to operate about a predetermined wavelength or within a wavelength range.
  • Audio DAC and amplifier 238 provides audio data to earphones 130.
  • Microphone preamplifier and audio ADC 240 provides an interface for microphone 110.
  • Temperature sensor interface 242 is an interface for temperature sensor 138.
  • Active grating controller 237 receives data indicating one or more wavelengths for which each active grating 127 is to act as a selective wavelength filter.
  • Power management unit 202 also provides power and receives data back from three axis magnetometer 132A, three axis gyro 132B and three axis accelerometer 132C.
  • Power management unit 202 also provides power and receives data back from and sends data to GPS transceiver 144.
  • FIG. 3B is a block diagram of one embodiment of the hardware and software components of a processing unit 4 associated with a see-through, near-eye, mixed reality display unit.
  • Control circuit 304 includes a central processing unit (CPU) 320, graphics processing unit (GPU) 322, cache 324, RAM 326, memory control 328 in communication with memory 330 (e.g., D-RAM), flash memory controller 332 in communication with flash memory 334 (or other type of non-volatile storage), display out buffer 336 in communication with see-through, near-eye display device 2 via band interface 302 and band interface 232, display in buffer 338 in communication with near- eye display device 2 via band interface 302 and band interface 232, microphone interface 340 in communication with an external microphone connector 342 for connecting to a microphone, PCI express interface for connecting to a wireless communication device 346, and USB port(s) 348.
  • CPU central processing unit
  • GPU graphics processing unit
  • RAM random access memory
  • memory control 328 in communication with memory 330 (e.g.
  • wireless communication component 346 can include a Wi- Fi enabled communication device, Bluetooth communication device, infrared communication device, cellular, 3G, 4G communication devices, wireless USB (WUSB) communication device, RFID communication device etc.
  • the wireless communication component 346 thus allows peer-to-peer data transfers with for example, another display device system 8, as well as connection to a larger network via a wireless router or cell tower.
  • the USB port can be used to dock the processing unit 4 to another display device system 8.
  • the processing unit 4 can dock to another computing system 12 in order to load data or software onto processing unit 4 as well as charge the processing unit 4.
  • CPU 320 and GPU 322 are the main workhorses for determining where, when and how to insert virtual images into the view of the user.
  • Power management circuit 306 includes clock generator 360, analog to digital converter 362, battery charger 364, voltage regulator 366, see-through, near-eye display power source 376, and temperature sensor interface 372 in communication with temperature sensor 374 (located on the wrist band of processing unit 4).
  • An alternating current to direct current converter 362 is connected to a charging jack 370 for receiving an AC supply and creating a DC supply for the system.
  • Voltage regulator 366 is in communication with battery 368 for supplying power to the system.
  • Battery charger 364 is used to charge battery 368 (via voltage regulator 366) upon receiving power from charging jack 370.
  • Device power interface 376 provides power to the display device 2.
  • Figure 4 is a flowchart of an embodiment of a method for processing visible and infrared wavelengths for image display and eye tracking in an optical path of a see-through, planar waveguide positioned to be seen through in a display optical system of a see-through, near-eye, mixed reality display device.
  • visible and infrared illumination are optically coupled into the planar waveguide in a first direction of an optical path.
  • reflective element 124 couples visible light into the waveguide
  • grating 123 couples IR illumination into the waveguide toward the elements 126 and the one or more filters 127.
  • the one or more wavelength selective filters co-axially aligned with an optical axis of the respective display optical system are directed out of the planar waveguide toward the eye. See, for example, grating 127 in Figure 2B and grating 125 in Figure 2C.
  • the illumination is centered on the eye providing the most illumination of the pupil for tracking or the iris for scanning.
  • one or more wavelength selective filters direct infrared reflections from the eye into the planar waveguide in a second direction of the same optical path.
  • the infrared reflections are optically coupled from the planar waveguide to an infrared sensor.
  • data generated by the infrared sensor e.g. charge-coupled device (CCD) or CMOS pixel sensor array
  • eye tracking data are image data from an IR camera or positions detected for glints by a position sensitive detector (PSD).
  • the first and second direction may be the same as in Figure 2C. In other embodiments, the first direction and second direction may be different as in Figure 2B. An example of different directions are opposite directions.
  • Figure 5A is a view from the perspective of an eye looking through a planar waveguide of another embodiment of an integrated eye tracking and display optical system using an integrated linear array of light sources and a scanning mirror for generating an image.
  • an integrated array of light sources 504 and an IR sensor 516 are electrically connected to an electronics module, for example a printed circuit board (PCB) 502, positioned in the brow of frame 115 above a display optical system 14.
  • the electronics module is connected via electrical connections 140 to control circuitry 136.
  • the display optical system 14 includes at least one see-through lens 118 and a see through planar waveguide 112.
  • the waveguide 112 may be embodied as a TIR grooved planar waveguide.
  • the image generation unit is embodied by the integrated array of light sources 504, optical element 508, a beam combiner 506, a scanning mirror 510, and an optical coupler 512.
  • the electronics module 502 as described in Figure 9 below determine and set the output wavelengths of the different visible light sources for generating an image.
  • the light sources include an infrared illuminator for generating the infrared illumination for eye tracking.
  • the output of the light sources 504, for example integrated LEDs or lasers (e.g. VCSELS), are combined into a combined beam by beam combiner 506 and optically coupled by optical element 508, e.g. a reflecting element, to scanning mirror 510.
  • the scanning mirror may be implemented with microelectromechanical systems (MEMS) technology.
  • MEMS microelectromechanical systems
  • the mirror may be moved to direct the received illumination along one axis for one-dimensional scanning or along two axes, e.g. horizontal and vertical axes, for two-dimensional scanning.
  • the layout of the array is discussed next before returning to the optical coupling of the illumination into the planar waveguide.
  • Figure 6A illustrates an exemplary layout of a linear integrated array of light sources generating both visible and infrared illumination for use in an integrated eye tracking and display optical system of a see-through, near-eye, mixed reality device.
  • the array of light sources 504 may be implemented as a linear integrated array of visible light sources, e.g. LEDs or VCSELS.
  • lines of red, represented by "R”, green represented by “G” and blue represented by “B” are used.
  • Other color ranges may be used such as cyan, magenta, and yellow.
  • each visible light source may be individually modulated to any color of the visible spectrum.
  • the array includes a line of infrared illuminators represented by "I.” The array lines repeat for the size of the array. So the image generation illuminators and the eye tracking illuminators are combined in one integrated array unit.
  • the lines of red, green, blue and the infrared illuminators are in columns, and the rows are scanned.
  • Each of the red, blue and green light sources are modulated to represent a segment of an image, for example a picture element such as a pixel.
  • Each set of red, green, blue, and infrared in a line may correspond to a segment of the image.
  • the output of the integrated linear array 504 passes to the beam combiner 506 and the optical element 508 which directs the combined beam of both the visible an IR illumination to the scanning mirror 510.
  • infrared illuminators there may be fewer or more infrared illuminators interspersed with the visible light sources. For example, there may be one IR illuminator for every twenty (20) visible illuminators. Such an arrangement may be used for an application based on structured lighting.
  • Figure 6C illustrates another exemplary layout of a linear integrated array of light sources generating both visible and infrared illumination in which infrared light sources are placed at the end of each row in an arrangement suitable for glint tracking.
  • Glints are reflections off one or more surfaces of the cornea.
  • the specular reflectivities of different eye parts like the pupil, the iris and the sclera affect the intensity value for each glint received at an IR sensor such as a position sensitive detector (PSD) or photodetector.
  • Pupil position can be determined from the glint data values generated by the sensor.
  • the scanning mirror 510 scans each row and reflects each row onto an optical surface 512 thus reproducing the image on a surface of optical element 512.
  • Column by column scanning may also be used in other examples.
  • Row by row scanning is an example of one dimensional scanning which use of the linear array allows. Embodiments with two dimensional scanning may also be used if desired.
  • visible and infrared wavelengths pass through the optical element 512.
  • the other side of the optical element 512 includes a unidirectional wavelength selective filter 511 for infrared wavelengths in order to direct infrared reflections in an optical path direction to the infrared sensor 518.
  • Optical coupler, e.g. one or more collimating lenses, 527 couples the image and IR illumination into the waveguide 112.
  • a grating 524 diffracts the visible and IR illumination in the planar waveguide for total internal reflection.
  • grating 524 may be implemented using stacked gratings, one for directing visible spectrum wavelengths and another for direction IR radiation.
  • a hot mirror may be stacked above the surface of a visible spectrum reflecting element.
  • the grating 524 in this example includes a bidirectional IR reflective grating in order to couple IR reflections along path 529 to the wavelength selective filter 511 (e.g. a hot mirror) of optical element 512 and to reflect IR illumination to an IR wavelength selective filter 525 positioned co- axially with the optical axis 142 of the display optical system.
  • stacked gratings 526 and 525 are both aligned co-axially with the optical axis 142.
  • Grating 526 which directs visible light out of the waveguide along optical axis 142 is behind grating 525 which directs, e.g. by diffraction or reflection, infrared illumination out of the waveguide, and directs IR reflections received into the waveguide.
  • Arrow 522 representing the IR illumination coming out of the waveguide, out of the page in this example, and IR reflections going into the waveguide, into the page in this example, centered about the optical axis 142.
  • both the visible grating 526 and the IR grating 525 may have an IR blocking coating on their longer right side surfaces to block IR illumination being internally reflected back to the grating 524.
  • the IR grating 525 is bidirectional in this example, and directs the infrared reflections back to the grating 524 which is also bidirectional for infrared wavelengths.
  • the IR reflections 529 are directed back to wavelength selective filter 511 of the optical element 512 which directs the IR reflections to another IR wavelength selective filter 514 (e.g. hot mirror, reflection grating, diffraction grating) which directs the IR reflections 528 through a coupling lens 516 to IR sensor 518.
  • IR wavelength selective filter 514 e.g. hot mirror, reflection grating, diffraction grating
  • Figure 5B illustrates another version of the embodiment of Figure 5A in which the integrated array is an array of optical elements in which infrared sensing elements are integrated into the array of light sources.
  • Figure 6B illustrates an exemplary layout of a linear integrated array of optical elements including infrared sensing elements and light sources generating both visible and infrared illumination for use in an integrated eye tracking and display optical system of a see-through, near-eye, mixed reality device.
  • an array of optical elements 505 includes lines of IR sensing elements represented by "S.”
  • the IR sensing elements "S" may be integrated photodetectors.
  • the order of the represented lines of illuminators is flexible. For example, the order of red, green, blue, infrared is used for the array 504 in Figure 6A while the order of red, infrared, green, sensor, blue is used in Figure 6B.
  • each set may include color light sources and an IR light source and, if using the arrangement of optical elements, an IR sensor as well. Examples of the geometrical arrangement of each set may be a square, a circle, or a rectangle.
  • the visible and infrared illumination are coupled into the waveguide as discussed above for the embodiment of Figure 5A.
  • the optical element 612 upon which the scanning mirror 510 reproduces the image by reflecting the visible illumination may be a passthrough optical element.
  • the IR reflections from the grating 524 pass through optical element 612.
  • the scanning mirror 510 reflects the IR reflections back to the bidirectional reflecting element 508 in a reverse path which proceeds through the beam combiner 506 and back to the array 505 of optical elements including the infrared sensing elements, "S" elements.
  • the sensing elements generate electrical signals responsive to the IR photons received.
  • the electrical signals are converted to representative data signals which are transferred (e.g. electrical connections 140) by the electronics module 502 to the one or more processors of the control circuitry 136 and the processing unit 4 for applications like gaze determination, biometric monitoring and biometric identification.
  • Figure 6D illustrates another exemplary layout of a linear integrated array of optical elements including infrared sensing elements, visible light sources and infrared light sources "I” and infrared sensing elements "S” positioned at the end of visible light source rows in an arrangement suitable for glint tracking.
  • the processing discussed above for the embodiment of Figure 5B also applies to such an embodiment using an integrated array of optical elements like in Figure 6D.
  • the IR sensing elements may be integrated photodetectors in some examples.
  • Figure 7A is a view from the perspective of an eye looking through a planar waveguide of another embodiment of an integrated eye tracking and display optical system using modulated light sources and a 2D scanning mirror.
  • This embodiment is another version of the embodiment of Figure 5A accept that the integrated array of light sources 504 is replaced by individual light sources 507.
  • four light sources are shown in keeping with the context of examples using red, green and blue to generate different colors but other combinations, of course, may be used.
  • one of the light sources e.g. laser, LED
  • transmits red spectrum illumination, another blue spectrum illumination, another green spectrum illumination and another infrared spectrum illumination so three light sources are generating the colors making up all the segments of the image.
  • the scanning mirror 510 is a two dimensional scanning mirror which moves in both the vertical and horizontal directions to reproduce each image segment represented by a current output of the lasers onto the optical element 512 to complete the image.
  • Optical element 512 is analogous to a projector screen.
  • Figure 7B illustrates another version of the embodiment of Figure 7A using a single modulated light source and an active grating.
  • the set of individual light sources is replaced by a single light source 509 which is modulated to one of a number of wavelengths in the visible spectrum and also for generating illumination in the infrared spectrum.
  • the scanning mirror is a two-dimensional scanning mirror.
  • the light source transmits the infrared and visible illumination at separate time intervals.
  • the scanning mirror directs the IR illumination towards the center of element 512 through the collimating lens 516 and into the waveguide 1 12.
  • a single active grating also referred to as a switchable grating may be used for the wavelength selective filter 525 which filters visible and infrared wavelengths into and out of the waveguide 112 along optical axis 142 toward and from the eye (e.g. 522).
  • an electrical connection 141 is made between the electronics module 502 and the planar waveguide 1 12.
  • a control signal from the active gratings controller 237 modulates the wavelength selectivity of the grating 525 between the visible spectrum and the infrared spectrum in timing with the separate time intervals for modulation of the single source for generating the different visible and infrared wavelengths.
  • Figure 8 is a block diagram of another embodiment of hardware and software components of a see-through, near-eye, mixed reality display device for use with an image generation unit comprising light sources and a scanning mirror.
  • This embodiment is another version of the hardware and software components of Figure 3A in which the control circuitry 136 interfaces with the electronics module 502.
  • the display driver 220 provides its image data to a display illumination controller 554 of the electronics module 502.
  • the IR sensor 518 or the IR sensing elements "S" in 505 are IR image sensing elements
  • an IR camera interface 558 of the electronics module 502 is coupled to the camera interface 216 for transferring the IR image data for eye tracking processing.
  • FIG. 9 is a block diagram of an embodiment of an electronics module which may be used for controlling hardware components of an integrated eye tracking and display system using at least one light source and a scanning mirror.
  • the electronics module 502 is communicatively coupled to the control circuitry 136, for example via electrical connections 140 as shown in Figures 5 A, 5B, 7A and 7B.
  • the display illumination controller 554 receives image data from the display driver 220 and stores it in a display data buffer 560.
  • the display illumination controller 554 translates the image data into modulation signals for the visible light sources 568 here denoted as color 1 light source 5681, color 2 light source 5682, and color N light source 568N.
  • the controller 554 sends each light source modulation signal to control the respective driver 570 of the light source 568.
  • the display illumination controller 554 also provides a modulation signal for a predetermined IR wavelength or range of IR wavelengths for the IR illumination driver 572 which drives the IR light source 569.
  • Each light source 568 may be a single separate modulated light source as in Figure 7A and 7B or be part of an integrated array of light sources 504 or an integrated array of optical elements 505.
  • the drivers 570, 572 may also be integrated in an array, and each driver drives a corresponding light source 568 in a corresponding array 504, 505.
  • the drivers 570 may activate a line of light sources 568 or a set of light sources 568 in an array in a sequence of time intervals.
  • the electronics module 510 also includes a scanning mirror controller 556 for controlling the movement of the scanning mirror 510.
  • the scanning mirror controller 556 can be programmed to perform one dimensional scanning or two dimensional scanning.
  • An IR camera interface 558 receives the data representative of the photons received by the IR camera 564 in this example, and stores them in an IR data buffer 562 from which the interface 558 transfers them to the camera interface 216 of the control circuitry.
  • An integrated eye tracking and display system as described in the embodiments above simplifies eye tracking processing for many applications such as measuring vergence, inter-pupillary distance (IPD), gaze determination, eye movement based commands and biometric identification. Additionally, the integration of eye tracking and the display system as described may be implemented in form factors suitable for generally available consumer products.

Abstract

Technology is provided for an integrated eye tracking and display system for a see-through, near-eye, mixed reality display device. Image data and IR illumination for eye tracking are optically coupled into a respective see-through, planar waveguide positioned to be seen through by each eye in a respective display optical system of the display device. The respective planar waveguide comprises one or more wavelength selective filters positioned to be co-axial with an optical axis of the respective display optical system. The wavelength selective filters direct IR and visible illumination out of the planar waveguide in the direction of the respective eye and direct IR reflections, including reflections from the eye, into the planar waveguide. The reflections are optically coupled out of the waveguide to an IR sensor which generates eye tracking data based on the reflections.

Description

INTEGRATED EYE TRACKING AND DISPLAY SYSTEM
BACKGROUND
[0001] Mixed or augmented reality is a technology that allows virtual imagery to be mixed with a user's actual view of the real world. A feature of a see-through, mixed or augmented reality near eye, (e.g. head mounted) display device, unlike other display devices, is that the images displayed do not monopolize the user's view. With a see- through, mixed reality display device, the user can literally see through the display and interact with the real world while also seeing images generated by one or more software applications. Furthermore, the user's field of view is not stationary as a user moves his or her head. What the user is looking at in the field of view, also referred to as the user's gaze, changes as the user shifts his or her eyes, even if his or her head does not move. The ability to identify eye movements would enhance the placement of images within the display.
SUMMARY
[0002] Technology is provided for integrating eye tracking and display functions using shared optics of a see-through, near-eye, mixed reality display device. Embodiments described herein permit the eye-tracking system to illuminate and capture data along an optical axis of each display positioned to be seen through by a respective eye resulting in simpler computations, better illumination of the eye, and a higher probability of capturing more data of the eye than eye tracking sensor systems which capture data off axis and are more hindered by obstructions like droopy eyelids and sties on eyelids.
[0003] The technology provides an embodiment of an integrated eye tracking and display system for a see-through, near-eye, mixed reality display device. The system comprises, for each eye, a display optical system having an optical axis and a see-through, planar waveguide positioned to be seen through by the respective eye. One or more wavelength selective filters are positioned in the waveguide in co-axial alignment with the optical axis of the respective display optical system. The one or more filters direct infrared and visible illumination out of the respective planar waveguide. Additionally, the one or more filters direct infrared reflections into the planar waveguide. Some examples of a wavelength selective filter are fixed and active diffractive grating elements, reflective grating elements, and other reflective elements which direct radiation of a predetermined wavelength or within a range of wavelengths. [0004] An infrared illumination source is positioned for having its infrared illumination optically coupled into the planar waveguide. An infrared sensor is optically coupled to the planar waveguide for directing infrared and visible illumination out of the planar waveguide and for receiving the infrared reflections directed from the wavelength selective filters. An image generation unit is optically coupled for transmission of visible illumination into the planar waveguide.
[0005] The technology provides another embodiment of an integrated eye tracking and display system for a see-through, near eye, mixed reality display device. As in the embodiment described above, the system embodiment comprises a display optical system for each eye. Each display optical system has an optical axis and a see-through, planar waveguide positioned to be seen through by the respective eye. One or more wavelength selective filters are positioned within the waveguide in co-axial alignment with the optical axis of the respective display optical system for directing infrared reflections into the planar waveguide. An array of optical elements including light sources for transmitting infrared and visible illumination is optically coupled to the planar waveguide for directing their illumination into the planar waveguide. An infrared sensor is optically coupled to the planar waveguide for receiving infrared reflections directed from the wavelength selective filters.
[0006] The technology provides an embodiment of a method for processing visible and infrared wavelengths for image display and eye tracking in an optical path of a see- through planar waveguide positioned to be seen through in a display optical system of a see-through, near-eye, mixed reality display device. The method comprises optically coupling visible and infrared illumination into the planar waveguide in a first direction of an optical path. The visible and infrared illumination are directed out of the planar waveguide toward the eye by one or more wavelength selective filters co-axially aligned with an optical axis of the display optical system. The filters also direct infrared reflections from the eye into the planar waveguide in a second direction of the same optical path.
[0007] The method further comprises optically coupling the infrared reflections from the planar waveguide to an infrared sensor. Data generated by the infrared sensor (e.g. charge-coupled device (CCD) or CMOS pixel sensor array) is stored as eye tracking data. Some examples of eye tracking data are image data from an IR camera or positions detected for glints by a position sensitive detector (PSD). In some embodiments the first and second direction may be the same. In other embodiments, the first direction and second direction may be different. An example of different directions are opposite directions.
[0008] This Summary is provided to introduce a selection of concepts in a simplified form that are further described below in the Detailed Description. This Summary is not intended to identify key features or essential features of the claimed subject matter, nor is it intended to be used as an aid in determining the scope of the claimed subject matter.
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] Figure 1 is a block diagram depicting example components of one embodiment of a see-through, mixed reality display device system.
[0010] Figure 2A is a side view of an eyeglass temple of the frame in an embodiment of the see-through, mixed reality display device embodied as eyeglasses providing support for hardware and software components.
[0011] Figure 2B is a top view of an embodiment of an integrated eye tracking and display optical system of a see-through, near-eye, mixed reality device.
[0012] Figure 2C is a top view of another version of the embodiment of Figure 2B in which infrared reflections traverse the waveguide 112 in the same direction, rather than a reverse direction, as the IR illumination traveled.
[0013] Figure 3A is a block diagram of one embodiment of hardware and software components of a see-through, near-eye, mixed reality display device as may be used with one or more embodiments.
[0014] Figure 3B is a block diagram describing the various components of a processing unit.
[0015] Figure 4 is a flowchart of an embodiment of a method for processing visible and infrared wavelengths for image display and eye tracking in an optical path of a see- through, planar waveguide positioned to be seen through in a display optical system of a see-through, near-eye, mixed reality display device.
[0016] Figure 5A is a view from the perspective of an eye looking through a planar waveguide of another embodiment of an integrated eye tracking and display optical system using an integrated linear array of light sources and a scanning mirror for generating an image.
[0017] Figure 5B illustrates another version of the embodiment of Figure 5A in which infrared sensing elements are integrated into the array of light sources. [0018] Figure 6A illustrates an exemplary layout of a linear integrated array of light sources generating both visible and infrared illumination for use in an integrated eye tracking and display optical system of a see-through, near-eye, mixed reality device.
[0019] Figure 6B illustrates an exemplary layout of a linear integrated array of optical elements including infrared sensing elements and light sources generating both visible and infrared illumination for use in an integrated eye tracking and display optical system of a see-through, near-eye, mixed reality device.
[0020] Figure 6C illustrates another exemplary layout of a linear integrated array of light sources generating both visible and infrared illumination in which infrared light sources are placed at the end of each row in an arrangement suitable for glint tracking.
[0021] Figure 6D illustrates another exemplary layout of a linear integrated array of optical elements including infrared sensing elements, visible light sources and infrared light sources at the end of visible light rows in an arrangement suitable for glint tracking.
[0022] Figure 7A is a view from the perspective of an eye looking through a planar waveguide of another embodiment of an integrated eye tracking and display optical system using modulated light sources and a 2D scanning mirror.
[0023] Figure 7B illustrates another version of the embodiment of Figure 7A using a single modulated light source and an active grating.
[0024] Figure 8 is a block diagram of another embodiment of hardware and software components of a see-through, near-eye, mixed reality display device for use with an image generation unit comprising light sources and a scanning mirror.
[0025] Figure 9 is a block diagram of an embodiment of an electronics module which may be used for controlling hardware components of an integrated eye tracking and display system using at least one light source and a scanning mirror.
DETAILED DESCRIPTION
[0026] Embodiments of a see-through, near-eye, head mounted mixed reality display device system with an integrated eye tracking and display system are described. The eye tracking system shares portions of a see through head mounted display (HMD) optical path to project the eye tracking infrared illumination to the eye and to capture infrared reflections from the eye by an infrared sensor. An eye tracking system uses infrared (IR) illumination so that the illumination is not visible to the user. The IR sensor may be an IR camera which provides infrared image data of the eye or an IR sensor which detects glints or reflections off the cornea of the eye generated by IR illumination of the eye. [0027] In the embodiments described below, there is a display optical system for each eye which includes a see-through, planar waveguide. The waveguide provides an optical path in a practical implementation based on the operating principle of total internal reflection. One or more wavelength selective filters are positioned in the waveguide in co- axial alignment with an optical axis of the display optical system. The optical axis of the display system is co-axially, or closely approximates being co-axially, with a nominal eye line of sight. A nominal eye line of sight is centered on the pupil and extends from the pupil center when the user is looking straight ahead. Due to the co-axial alignment of the one or more filters and the optical axis, visible illumination representing images and infrared illumination are directed out of the waveguide along the optical axis toward the eye, and reflections from the eye centered about the optical axis are directed into the waveguide. Illuminating the eye and capturing reflections from the eye centered around the optical axis, which is approximating the eye line of sight, simplifies image processing algorithms for eye image data and is more tolerant of individualistic differences in human facial features. For example a sty on the eye or a low eyelid may block illumination directed from an upper corner of an eyeglass frame embodiment more so than if the illumination is directed along the optical axis of a respective display for the eye.
[0028] The better illumination and eye data capture centered at the optical axis can improve the results of many applications such as corneal glint tracking and pupil tracking for gaze determination, blinking tracking for user command interpretation, iris scanning and retinal vein tracking for biometric identification based applications, measuring convergence, identifying pupil alignment with an optical axis and determining interpupillary distance (IPD), and structured light pattern techniques for cornea tracking. For examples of some of these applications which would benefit from the embodiments presented below, please see the following: Lewis et al, U.S. patent application number 13/221,739, entitled "Gaze Detection in a See-Through, Near-Eye, Mixed Reality Display,", Lewis et al, U.S. patent application number 13/221,662 "Aligning Inter- Pupillary Distance in a Near-Eye Display System," Lewis et al, U.S. patent application number 13/221,707 "Adjustment of a Mixed Reality Display for Inter-Pupillary Distance Alignment," and Perez et al, U.S. patent application number 13/221,669 "Head Mounted Display with Iris Scan Profiling."
[0029] Figure 1 is a block diagram depicting example components of one embodiment of a see-through, mixed reality display device system. System 8 includes a see-through display device as a near-eye, head mounted display device 2 in communication with processing unit 4 via wire 6. In other embodiments, head mounted display device 2 communicates with processing unit 4 via wireless communication. Processing unit 4 may take various embodiments. For example, processing unit 4 may be embodied in a mobile device like a smart phone, tablet or laptop computer. In some embodiments, processing unit 4 is a separate unit which may be worn on the user's body, e.g. the wrist in the illustrated example or in a pocket, and includes much of the computing power used to operate near-eye display device 2. Processing unit 4 may communicate wirelessly (e.g., WiFi, Bluetooth, infrared, RFID transmission, wireless Universal Serial Bus (WUSB), cellular, 3G, 4G or other wireless communication means) over a communication network 50 to one or more hub computing systems 12 whether located nearby in this example or at a remote location. In other embodiments, the functionality of the processing unit 4 may be integrated in software and hardware components of the display device 2.
[0030] Head mounted display device 2, which in one embodiment is in the shape of eyeglasses in a frame 115, is worn on the head of a user so that the user can see through a display, embodied in this example as a display optical system 14 for each eye, and thereby have an actual direct view of the space in front of the user.
[0031] The use of the term "actual direct view" refers to the ability to see real world objects directly with the human eye, rather than seeing created image representations of the objects. For example, looking through glass at a room allows a user to have an actual direct view of the room, while viewing a video of a room on a television is not an actual direct view of the room. Based on the context of executing software, for example, a gaming application, the system can project images of virtual objects, sometimes referred to as virtual images, on the display that are viewable by the person wearing the see- through display device while that person is also viewing real world objects through the display.
[0032] Frame 115 provides a support for holding elements of the system in place as well as a conduit for electrical connections. In this embodiment, frame 115 provides a convenient eyeglass frame as support for the elements of the system discussed further below. In other embodiments, other support structures can be used. An example of such a structure is a visor or goggles. The frame 115 includes a temple or side arm for resting on each of a user's ears. Temple 102 is representative of an embodiment of the right temple and includes control circuitry 136 for the display device 2. Nose bridge 104 of the frame includes a microphone 110 for recording sounds and transmitting audio data to processing unit 4. [0033] Figure 2A is a side view of an eyeglass temple 102 of the frame 115 in an embodiment of the see-through, mixed reality display device embodied as eyeglasses providing support for hardware and software components. At the front of frame 115 is physical environment facing or outward facing video camera 113 that can capture video and still images which are transmitted to the processing unit 4.
[0034] The data from the camera may be sent to a processor 210 of the control circuitry 136, or the processing unit 4 or both, which may process them but which the unit 4 may also send to one or more computer systems 12 over a network 50 for processing. The processing identifies and maps the user's real world field of view.
[0035] Control circuits 136 provide various electronics that support the other components of head mounted display device 2. More details of control circuits 136 are provided below with respect to Figure 3 A. Inside, or mounted to temple 102, are ear phones 130, inertial sensors 132, GPS transceiver 144 and temperature sensor 138. In one embodiment, inertial sensors 132 include a three axis magnetometer 132A, three axis gyro 132B and three axis accelerometer 132C (See Figure 3A). The inertial sensors are for sensing position, orientation, and sudden accelerations of head mounted display device 2. From these movements, head position may also be determined.
[0036] Mounted to or inside temple 102 is an image source or image generation unit 120. In one embodiment, the image source includes micro display 120 for projecting images of one or more virtual objects and lens system 122 for directing images from micro display 120 into a see-through planar waveguide 112. Lens system 122 may include one or more lenses. In one embodiment, lens system 122 includes one or more collimating lenses. In the illustrated example, a reflecting element 124 receives the images directed by the lens system 122 and optically couples the image data into the planar waveguide 112.
[0037] There are different image generation technologies that can be used to implement micro display 120. For example, micro display 120 can be implemented using a transmissive projection technology where the light source is modulated by optically active material, backlit with white light. These technologies are usually implemented using LCD type displays with powerful backlights and high optical energy densities. Micro display 120 can also be implemented using a reflective technology for which external light is reflected and modulated by an optically active material. Digital light processing (DLP), liquid crystal on silicon (LCOS) and Mirasol® display technology from Qualcomm, inc. are all examples of reflective technologies. Additionally, micro display 120 can be implemented using an emissive technology where light is generated by the display, see for example, a PicoP™ display engine from Microvision, Inc. Another example of emissive display technology is a micro organic light emitting diode (OLED) display. Companies eMagin and Microoled provide examples of micro OLED displays.
[0038] Figure 2B is a top view of an embodiment of a display optical system 14 of a see-through, near-eye, augmented or mixed reality device. A portion of the frame 115 of the near-eye display device 2 will surround a display optical system 14 for providing support for one or more optical elements as illustrated here and in the following figures and for making electrical connections. In order to show the components of the display optical system 14, in this case 14r for the right eye system, in the head mounted display device 2, a portion of the frame 115 surrounding the display optical system is not depicted.
[0039] In one embodiment, the display optical system 14 includes a planar waveguide 112, an optional opacity filter 114, see-through lens 116 and see-through lens 118. In one embodiment, opacity filter 114 is behind and aligned with see-through lens 116, planar waveguide 112 is behind and aligned with opacity filter 114, and see-through lens 118 is behind and aligned with planar waveguide 112. See-through lenses 116 and 118 may be standard lenses used in eye glasses and can be made to any prescription (including no prescription). In some embodiments, head mounted display device 2 will include only one see-through lens or no see-through lenses. Opacity filter 114, which is aligned with planar waveguide 112, selectively blocks natural light, either uniformly or on a per-pixel basis, from passing through planar waveguide 112. For example, the opacity filter enhances the contrast of the virtual imagery. More details of an opacity filter are provided in U.S. Patent Application No. 12/887,426, "Opacity Filter For See-Through Mounted Display," filed on September 21, 2010, incorporated herein by reference in its entirety.
[0040] The planar waveguide 112 transmits visible light from micro display 120 to the eye 140 of the user wearing head mounted display device 2. The see-through planar waveguide 112 also allows visible light from in front of the head mounted display device 2 to be transmitted through itself 112 to eye 140, as depicted by arrow 142 representing an optical axis of the display optical system 14r, thereby allowing the user to have an actual direct view of the space in front of head mounted display device 2 in addition to receiving a virtual image from the micro display 120. Thus, the walls of planar waveguide 112 are see-through. Planar waveguide 112 includes a first reflecting surface 124 (e.g., a mirror or other surface). Visible light from micro display 120 passes through lens 122 and becomes incident on reflecting surface 124. The reflecting surface 124 reflects the incident visible light from the micro display 120 such that visible light is trapped inside a planar, substrate comprising planar waveguide 112 by internal reflection as described further below.
[0041] Infrared illumination and reflections, also traverse the planar waveguide 112 for an eye tracking system 134 for tracking the position of the user's eyes. A user's eyes will be directed at a subset of the environment which is the user's area of focus or gaze. The eye tracking system 134, comprises an eye tracking illumination source 134A in this example located on temple 102 and an eye tracking IR sensor 134B positioned between lens 118 and temple 102. The technology allows flexibility in the placement of entry and exit optical couplings to and from the waveguide's optical path for the image generation unit 120, the illumination source 134A and the IR sensor 134B. The visible illumination representing images and the infrared illumination may enter from any direction about the waveguide 112, and one or more wavelength selective filters (e.g. 127) direct the illumination out of the waveguide centered about the optical axis 142 of the display optical system 14. Similarly, the placement of the IR sensor is flexible as long as it is optically coupled to receive infrared reflections directed by one or more wavelength selective filters positioned to receive infrared reflections along the optical axis 142.
[0042] In one embodiment, the eye tracking illumination source 134A may include one or more infrared (IR) emitters such as an infrared light emitting diode (LED) or a laser (e.g. VCSEL) emitting about a predetermined IR wavelength or a range of wavelengths. In some embodiments, the eye tracking sensor 134B may be an IR camera or an IR position sensitive detector (PSD) for tracking glint positions.
[0043] In this embodiment, a wavelength selective filter 123 is embodied as a grating 123 which passes through visible spectrum light from the micro display 120 via reflecting surface 124 and directs the infrared wavelength illumination from the eye tracking illumination source 134A into the planar waveguide 112 where the IR illumination is internally reflected within the waveguide until reaching another wavelength selective filter 127 aligned with the optical axis 142. The grating 123 may be a diffraction grating or a reflection grating. In this example, the IR sensor 134B is also optically coupled to a grating 125, which may also be a diffraction grating or a reflection grating. These gratings are stacked. However, at least grating 125 is unidirectional in that grating 125 passes through the IR illumination from source 134A in the optical path heading in the direction of the nose bridge 104, but directs infrared radiation including infrared reflections traveling from the optical axis 142 towards the grating 125 out of the waveguide 112 to the IR sensor 134B. In some examples, a grating may be a fixed diffractive element like an air space grating, a fixed reflective grating, or an active or switchable grating for either diffraction, reflection or a combination of these for different wavelengths.
[0044] From the IR reflections, the position of the pupil within the eye socket can be identified by known imaging techniques when the IR sensor is an IR camera, and by glint position data when the IR sensor is a type of position sensitive detector (PSD).
[0045] After coupling into the waveguide 112, the visible illumination representing the image data from the micro display 120 and the IR illumination are internally reflected within the waveguide 112. In the example of Figure 2B, the planar waveguide is a reflective array planar waveguide. Other types of planar waveguides may also be used, for example, a diffractive optical element planar waveguide or a planar waveguide with total internal reflection (TIR) grooves. In the example of Figure 2B, after several reflections off the surfaces of the substrate, the trapped visible light waves reach an array of wavelength selective filters embodied in this example as selectively reflecting surfaces 1261 to 126N. Additionally, a wavelength selective filter 127 aligned with the optical axis of the display optical system is also positioned in the waveguide 112. Reflecting surfaces 126 couple visible light wavelengths incident upon those reflecting surfaces out of the substrate directed in the direction of the eye 140 of the user.
[0046] The reflecting surfaces 126 also pass infrared radiation within the waveguide. However, aligned with the optical axis 142 of the display optical system 14r, is one or more wavelength selective filters 127 which direct not only visible illumination but received infrared illumination from the illumination source 134A. For example, if the reflecting elements 1261 to 126N are each reflecting different portions of the visible spectrum, the one or more selective filters 127 may reflect wavelengths in the red visible spectrum and the infrared spectrum. In other embodiments, the filters 127 can reflect wavelengths covering the entire visible spectrum or a larger portion thereof and the infrared spectrum for wavelengths of IR reflections and those generated by the IR illumination source.
[0047] Additionally the one or more wavelength selective filters 127 direct infrared reflections from the eye which pass through the see-through walls of the planar waveguide centered about the optical axis 142 into the optical path of the planar waveguide but in an opposite direction towards the wavelength selective filter 125 which selectively filters the infrared reflections from the waveguide and directs them to the IR sensor 134B. The filters 127 may include a bidirectional infrared filter. Additionally, visible and infrared filters may be stacked in the direction from lens 116 to 118 so that they are all co-axial with the optical axis. For example, a bidirectional hot mirror placed in front of a visible reflecting element with respect to the eye lets visible light pass but reflects IR wavelengths. Additionally, the one or more filters 127 may be embodied as an active grating which is modulated between filtering wavelengths in the visible and infrared spectrums. This would be done at a rate fast enough for the human eye not to detect.
[0048] Figure 2C is a top view of another version of the embodiment of Figure 2B in which infrared reflections traverse the waveguide 112 in the same direction, rather than a reverse direction, as the IR illumination traveled. In this embodiment, the IR sensor 134B is positioned in the nose bridge 104. In addition to the wavelength selective filter 127 directing the IR illumination toward the eye, another wavelength selective filter 125 is embodied as an IR reflecting element which passes visible light through the waveguide and also directs IR reflections received about the optical axis 142 into the waveguide and toward the IR sensor 134B. An example of such an IR reflecting element 125 is a hot mirror embodiment. In other examples, a diffractive or reflective grating may also be used. Additionally, sensor 134B is in a portion of the waveguide 112 located within the nose bridge 104 so as not to obstruct the user field of view. An electrical connection (not shown) can be made to the sensor 134B in the nose bridge portion to readout the sensor data.
[0049] In one embodiment, each eye will have its own planar waveguide 112. When the head mounted display device has two planar waveguides, each eye can have its own micro display 120 that can display the same image in both eyes or different images in the two eyes. In another embodiment, there can be one planar waveguide with two optical axes, one for each eye, which spans the nose bridge and reflects visible light into both eyes.
[0050] In the embodiments above, the specific number of lenses shown are just examples. Other numbers and configurations of lenses operating on the same principles may be used. Additionally, Figures 2A, 2B and 2C only show half of the head mounted display device 2. A full head mounted display device would include, for example, another set of see through lenses 116 and 118, another opacity filter 114, another planar waveguide 112 with one or more wavelength selective filters 127, another micro display 120, another lens system 122 physical environment facing camera 113 (also referred to as outward facing or front facing camera 113), eye tracking assembly 134, earphone 130, gratings 123, 125, and temperature sensor 138. Additional details of a head mounted display 2 are illustrated in United States Patent Application Serial No. 12/905952 entitled Fusing Virtual Content Into Real Content, Filed October 15, 2010, fully incorporated herein by reference.
[0051] Figure 3A is a block diagram of one embodiment of hardware and software components of a see-through, near-eye, mixed reality display device 2 as may be used with one or more embodiments. Figure 3B is a block diagram describing the various components of a processing unit 4. In this embodiment, near-eye display device 2, receives instructions about a virtual image from processing unit 4 and provides data from sensors back to processing unit 4. Software and hardware components which may be embodied in a processing unit 4, for example as depicted in Figure 3B, receive the sensory data from the display device 2 and may also receive sensory information from a computing system 12 over a network 50. Based on that information, processing unit 4 will determine where and when to provide a virtual image to the user and send instructions accordingly to the control circuitry 136 of the display device 2.
[0052] Note that some of the components of Figure 3A (e.g., outward or physical environment facing camera 113, eye camera 134, micro display 120, opacity filter 114, eye tracking illumination unit 134A, earphones 130, optional active gratings 127 for implementing at least one of the one or more wavelength selective filters 127, and temperature sensor 138 are shown in shadow to indicate that there are at least two of each of those devices, at least one for the left side and at least one for the right side of head mounted display device 2. Figure 3A shows the control circuit 200 in communication with the power management circuit 202. Control circuit 200 includes processor 210, memory controller 212 in communication with memory 244 (e.g., D-RAM), camera interface 216, camera buffer 218, display driver 220, display formatter 222, timing generator 226, display out interface 228, and display in interface 230. In one embodiment, all of components of control circuit 200 are in communication with each other via dedicated lines of one or more buses. In another embodiment, each of the components of control circuit 200 are in communication with processor 210.
[0053] Camera interface 216 provides an interface to the two physical environment facing cameras 113 and, in this embodiment, an IR camera as sensor 134B and stores respective images received from the cameras 113, 134B in camera buffer 218. Display driver 220 will drive microdisplay 120. Display formatter 222 may provide information, about the virtual image being displayed on microdisplay 120 to one or more processors of one or more computer systems, e.g. 4 and 12 performing processing for the mixed reality system. The display formatter 222 can identify to the opacity control unit 224 transmissivity settings with respect to the display optical system 14. Timing generator 226 is used to provide timing data for the system. Display out interface 228 includes a buffer for providing images from physical environment facing cameras 113 and the eye cameras 134B to the processing unit 4. Display in interface 230 includes a buffer for receiving images such as a virtual image to be displayed on microdisplay 120. Display out 228 and display in 230 communicate with band interface 232 which is an interface to processing unit 4.
[0054] Power management circuit 202 includes voltage regulator 234, eye tracking illumination driver 236, audio DAC and amplifier 238, microphone preamplifier and audio ADC 240, temperature sensor interface 242, active grating controller 237, and clock generator 245. Voltage regulator 234 receives power from processing unit 4 via band interface 232 and provides that power to the other components of head mounted display device 2. Illumination driver 236 controls, for example via a drive current or voltage, the eye tracking illumination unit 134A to operate about a predetermined wavelength or within a wavelength range. Audio DAC and amplifier 238 provides audio data to earphones 130. Microphone preamplifier and audio ADC 240 provides an interface for microphone 110. Temperature sensor interface 242 is an interface for temperature sensor 138. Active grating controller 237 receives data indicating one or more wavelengths for which each active grating 127 is to act as a selective wavelength filter. Power management unit 202 also provides power and receives data back from three axis magnetometer 132A, three axis gyro 132B and three axis accelerometer 132C. Power management unit 202 also provides power and receives data back from and sends data to GPS transceiver 144.
[0055] Figure 3B is a block diagram of one embodiment of the hardware and software components of a processing unit 4 associated with a see-through, near-eye, mixed reality display unit. Figure 3B shows controls circuit 304 in communication with power management circuit 306. Control circuit 304 includes a central processing unit (CPU) 320, graphics processing unit (GPU) 322, cache 324, RAM 326, memory control 328 in communication with memory 330 (e.g., D-RAM), flash memory controller 332 in communication with flash memory 334 (or other type of non-volatile storage), display out buffer 336 in communication with see-through, near-eye display device 2 via band interface 302 and band interface 232, display in buffer 338 in communication with near- eye display device 2 via band interface 302 and band interface 232, microphone interface 340 in communication with an external microphone connector 342 for connecting to a microphone, PCI express interface for connecting to a wireless communication device 346, and USB port(s) 348. [0056] In one embodiment, wireless communication component 346 can include a Wi- Fi enabled communication device, Bluetooth communication device, infrared communication device, cellular, 3G, 4G communication devices, wireless USB (WUSB) communication device, RFID communication device etc. The wireless communication component 346 thus allows peer-to-peer data transfers with for example, another display device system 8, as well as connection to a larger network via a wireless router or cell tower. The USB port can be used to dock the processing unit 4 to another display device system 8. Additionally, the processing unit 4 can dock to another computing system 12 in order to load data or software onto processing unit 4 as well as charge the processing unit 4. In one embodiment, CPU 320 and GPU 322 are the main workhorses for determining where, when and how to insert virtual images into the view of the user.
[0057] Power management circuit 306 includes clock generator 360, analog to digital converter 362, battery charger 364, voltage regulator 366, see-through, near-eye display power source 376, and temperature sensor interface 372 in communication with temperature sensor 374 (located on the wrist band of processing unit 4). An alternating current to direct current converter 362 is connected to a charging jack 370 for receiving an AC supply and creating a DC supply for the system. Voltage regulator 366 is in communication with battery 368 for supplying power to the system. Battery charger 364 is used to charge battery 368 (via voltage regulator 366) upon receiving power from charging jack 370. Device power interface 376 provides power to the display device 2.
[0058] Before proceeding to other system embodiments, Figure 4 is a flowchart of an embodiment of a method for processing visible and infrared wavelengths for image display and eye tracking in an optical path of a see-through, planar waveguide positioned to be seen through in a display optical system of a see-through, near-eye, mixed reality display device. In step 402, visible and infrared illumination are optically coupled into the planar waveguide in a first direction of an optical path. For example in Figures 2B and 2C, reflective element 124 couples visible light into the waveguide, and grating 123 couples IR illumination into the waveguide toward the elements 126 and the one or more filters 127. In step 404, the one or more wavelength selective filters co-axially aligned with an optical axis of the respective display optical system are directed out of the planar waveguide toward the eye. See, for example, grating 127 in Figure 2B and grating 125 in Figure 2C. By directing the IR illumination along the optical axis, the illumination is centered on the eye providing the most illumination of the pupil for tracking or the iris for scanning. Again, there is an assumption that the optical axis of the display optical system is aligned, or most closely aligned, with the user's pupil when looking straight ahead.
[0059] In step 406, one or more wavelength selective filters (e.g. 127, 125) direct infrared reflections from the eye into the planar waveguide in a second direction of the same optical path. In step 408, the infrared reflections are optically coupled from the planar waveguide to an infrared sensor. In step 410, data generated by the infrared sensor (e.g. charge-coupled device (CCD) or CMOS pixel sensor array) is stored as eye tracking data. Some examples of eye tracking data are image data from an IR camera or positions detected for glints by a position sensitive detector (PSD). In some embodiments the first and second direction may be the same as in Figure 2C. In other embodiments, the first direction and second direction may be different as in Figure 2B. An example of different directions are opposite directions.
[0060] Figure 5A is a view from the perspective of an eye looking through a planar waveguide of another embodiment of an integrated eye tracking and display optical system using an integrated linear array of light sources and a scanning mirror for generating an image.
[0061] In this embodiment, an integrated array of light sources 504 and an IR sensor 516 are electrically connected to an electronics module, for example a printed circuit board (PCB) 502, positioned in the brow of frame 115 above a display optical system 14. The electronics module is connected via electrical connections 140 to control circuitry 136. The display optical system 14 includes at least one see-through lens 118 and a see through planar waveguide 112. In this embodiment, the waveguide 112 may be embodied as a TIR grooved planar waveguide.
[0062] The image generation unit is embodied by the integrated array of light sources 504, optical element 508, a beam combiner 506, a scanning mirror 510, and an optical coupler 512. The electronics module 502 as described in Figure 9 below determine and set the output wavelengths of the different visible light sources for generating an image. Additionally, the light sources include an infrared illuminator for generating the infrared illumination for eye tracking. The output of the light sources 504, for example integrated LEDs or lasers (e.g. VCSELS), are combined into a combined beam by beam combiner 506 and optically coupled by optical element 508, e.g. a reflecting element, to scanning mirror 510. In some embodiments, the scanning mirror may be implemented with microelectromechanical systems (MEMS) technology. The mirror may be moved to direct the received illumination along one axis for one-dimensional scanning or along two axes, e.g. horizontal and vertical axes, for two-dimensional scanning. The layout of the array is discussed next before returning to the optical coupling of the illumination into the planar waveguide.
[0063] Figure 6A illustrates an exemplary layout of a linear integrated array of light sources generating both visible and infrared illumination for use in an integrated eye tracking and display optical system of a see-through, near-eye, mixed reality device. As shown in the example of Figure 6A, the array of light sources 504 may be implemented as a linear integrated array of visible light sources, e.g. LEDs or VCSELS. In this example, lines of red, represented by "R", green represented by "G" and blue represented by "B" are used. Other color ranges may be used such as cyan, magenta, and yellow. In other examples, each visible light source may be individually modulated to any color of the visible spectrum. Additionally, the array includes a line of infrared illuminators represented by "I." The array lines repeat for the size of the array. So the image generation illuminators and the eye tracking illuminators are combined in one integrated array unit.
[0064] In this example, the lines of red, green, blue and the infrared illuminators are in columns, and the rows are scanned. Each of the red, blue and green light sources are modulated to represent a segment of an image, for example a picture element such as a pixel. Each set of red, green, blue, and infrared in a line may correspond to a segment of the image. The output of the integrated linear array 504 passes to the beam combiner 506 and the optical element 508 which directs the combined beam of both the visible an IR illumination to the scanning mirror 510.
[0065] In other examples, there may be fewer or more infrared illuminators interspersed with the visible light sources. For example, there may be one IR illuminator for every twenty (20) visible illuminators. Such an arrangement may be used for an application based on structured lighting.
[0066] Figure 6C illustrates another exemplary layout of a linear integrated array of light sources generating both visible and infrared illumination in which infrared light sources are placed at the end of each row in an arrangement suitable for glint tracking. Glints are reflections off one or more surfaces of the cornea. As the user's eye moves, the specular reflectivities of different eye parts like the pupil, the iris and the sclera, affect the intensity value for each glint received at an IR sensor such as a position sensitive detector (PSD) or photodetector. Pupil position can be determined from the glint data values generated by the sensor. [0067] The scanning mirror 510 scans each row and reflects each row onto an optical surface 512 thus reproducing the image on a surface of optical element 512. Column by column scanning may also be used in other examples. Row by row scanning is an example of one dimensional scanning which use of the linear array allows. Embodiments with two dimensional scanning may also be used if desired. In the direction of the optical path from the illuminators to the planar waveguide 112, visible and infrared wavelengths pass through the optical element 512. As discussed below, the other side of the optical element 512 includes a unidirectional wavelength selective filter 511 for infrared wavelengths in order to direct infrared reflections in an optical path direction to the infrared sensor 518. Optical coupler, e.g. one or more collimating lenses, 527 couples the image and IR illumination into the waveguide 112.
[0068] In this example, a grating 524 diffracts the visible and IR illumination in the planar waveguide for total internal reflection. In one example, grating 524 may be implemented using stacked gratings, one for directing visible spectrum wavelengths and another for direction IR radiation. For example a hot mirror may be stacked above the surface of a visible spectrum reflecting element. Additionally, the grating 524 in this example includes a bidirectional IR reflective grating in order to couple IR reflections along path 529 to the wavelength selective filter 511 (e.g. a hot mirror) of optical element 512 and to reflect IR illumination to an IR wavelength selective filter 525 positioned co- axially with the optical axis 142 of the display optical system.
[0069] In this example, stacked gratings 526 and 525 are both aligned co-axially with the optical axis 142. Grating 526 which directs visible light out of the waveguide along optical axis 142 is behind grating 525 which directs, e.g. by diffraction or reflection, infrared illumination out of the waveguide, and directs IR reflections received into the waveguide. Arrow 522 representing the IR illumination coming out of the waveguide, out of the page in this example, and IR reflections going into the waveguide, into the page in this example, centered about the optical axis 142. In some examples, to better decrease backscattered IR illumination in the IR reflections, both the visible grating 526 and the IR grating 525 may have an IR blocking coating on their longer right side surfaces to block IR illumination being internally reflected back to the grating 524.
[0070] The IR grating 525 is bidirectional in this example, and directs the infrared reflections back to the grating 524 which is also bidirectional for infrared wavelengths. The IR reflections 529 are directed back to wavelength selective filter 511 of the optical element 512 which directs the IR reflections to another IR wavelength selective filter 514 (e.g. hot mirror, reflection grating, diffraction grating) which directs the IR reflections 528 through a coupling lens 516 to IR sensor 518.
[0071 ] Figure 5B illustrates another version of the embodiment of Figure 5A in which the integrated array is an array of optical elements in which infrared sensing elements are integrated into the array of light sources. Figure 6B illustrates an exemplary layout of a linear integrated array of optical elements including infrared sensing elements and light sources generating both visible and infrared illumination for use in an integrated eye tracking and display optical system of a see-through, near-eye, mixed reality device.
[0072] In the illustrated example, an array of optical elements 505 includes lines of IR sensing elements represented by "S." In some examples, the IR sensing elements "S" may be integrated photodetectors. For both the array of light sources 504 and the array of optical elements 505, the order of the represented lines of illuminators is flexible. For example, the order of red, green, blue, infrared is used for the array 504 in Figure 6A while the order of red, infrared, green, sensor, blue is used in Figure 6B.
[0073] Other geometries may be used for the integrated array of light sources. For example, instead of lines of light sources, there may be sets or clusters of light sources. Each set may include color light sources and an IR light source and, if using the arrangement of optical elements, an IR sensor as well. Examples of the geometrical arrangement of each set may be a square, a circle, or a rectangle. In this embodiment, the visible and infrared illumination are coupled into the waveguide as discussed above for the embodiment of Figure 5A. As the infrared reflections are to be directed back to the integrated array of optical elements, in this embodiment, the optical element 612 upon which the scanning mirror 510 reproduces the image by reflecting the visible illumination may be a passthrough optical element. The IR reflections from the grating 524 pass through optical element 612. As the reflections travel at the speed of light, the scanning mirror 510 reflects the IR reflections back to the bidirectional reflecting element 508 in a reverse path which proceeds through the beam combiner 506 and back to the array 505 of optical elements including the infrared sensing elements, "S" elements. The sensing elements generate electrical signals responsive to the IR photons received. The electrical signals are converted to representative data signals which are transferred (e.g. electrical connections 140) by the electronics module 502 to the one or more processors of the control circuitry 136 and the processing unit 4 for applications like gaze determination, biometric monitoring and biometric identification. [0074] Figure 6D illustrates another exemplary layout of a linear integrated array of optical elements including infrared sensing elements, visible light sources and infrared light sources "I" and infrared sensing elements "S" positioned at the end of visible light source rows in an arrangement suitable for glint tracking. The processing discussed above for the embodiment of Figure 5B also applies to such an embodiment using an integrated array of optical elements like in Figure 6D. As in the example of Figure 6B, the IR sensing elements may be integrated photodetectors in some examples.
[0075] Figure 7A is a view from the perspective of an eye looking through a planar waveguide of another embodiment of an integrated eye tracking and display optical system using modulated light sources and a 2D scanning mirror. This embodiment is another version of the embodiment of Figure 5A accept that the integrated array of light sources 504 is replaced by individual light sources 507. In this example, four light sources are shown in keeping with the context of examples using red, green and blue to generate different colors but other combinations, of course, may be used. In this example, one of the light sources (e.g. laser, LED) transmits red spectrum illumination, another blue spectrum illumination, another green spectrum illumination and another infrared spectrum illumination, so three light sources are generating the colors making up all the segments of the image. In this example, the scanning mirror 510 is a two dimensional scanning mirror which moves in both the vertical and horizontal directions to reproduce each image segment represented by a current output of the lasers onto the optical element 512 to complete the image. Optical element 512 is analogous to a projector screen.
[0076] Figure 7B illustrates another version of the embodiment of Figure 7A using a single modulated light source and an active grating. In this example, the set of individual light sources is replaced by a single light source 509 which is modulated to one of a number of wavelengths in the visible spectrum and also for generating illumination in the infrared spectrum. The scanning mirror is a two-dimensional scanning mirror. In this example, the light source transmits the infrared and visible illumination at separate time intervals. The scanning mirror directs the IR illumination towards the center of element 512 through the collimating lens 516 and into the waveguide 1 12.
[0077] A single active grating, also referred to as a switchable grating may be used for the wavelength selective filter 525 which filters visible and infrared wavelengths into and out of the waveguide 112 along optical axis 142 toward and from the eye (e.g. 522). Within the frame 115, an electrical connection 141 is made between the electronics module 502 and the planar waveguide 1 12. A control signal from the active gratings controller 237 modulates the wavelength selectivity of the grating 525 between the visible spectrum and the infrared spectrum in timing with the separate time intervals for modulation of the single source for generating the different visible and infrared wavelengths.
[0078] Figure 8 is a block diagram of another embodiment of hardware and software components of a see-through, near-eye, mixed reality display device for use with an image generation unit comprising light sources and a scanning mirror. This embodiment is another version of the hardware and software components of Figure 3A in which the control circuitry 136 interfaces with the electronics module 502. In this embodiment, the display driver 220 provides its image data to a display illumination controller 554 of the electronics module 502. In this embodiment, the IR sensor 518 or the IR sensing elements "S" in 505 are IR image sensing elements, and an IR camera interface 558 of the electronics module 502 is coupled to the camera interface 216 for transferring the IR image data for eye tracking processing.
[0079] Figure 9 is a block diagram of an embodiment of an electronics module which may be used for controlling hardware components of an integrated eye tracking and display system using at least one light source and a scanning mirror. The electronics module 502 is communicatively coupled to the control circuitry 136, for example via electrical connections 140 as shown in Figures 5 A, 5B, 7A and 7B. The display illumination controller 554 receives image data from the display driver 220 and stores it in a display data buffer 560. The display illumination controller 554 translates the image data into modulation signals for the visible light sources 568 here denoted as color 1 light source 5681, color 2 light source 5682, and color N light source 568N. The controller 554 sends each light source modulation signal to control the respective driver 570 of the light source 568. The display illumination controller 554 also provides a modulation signal for a predetermined IR wavelength or range of IR wavelengths for the IR illumination driver 572 which drives the IR light source 569. Each light source 568 may be a single separate modulated light source as in Figure 7A and 7B or be part of an integrated array of light sources 504 or an integrated array of optical elements 505. In some embodiments, the drivers 570, 572 may also be integrated in an array, and each driver drives a corresponding light source 568 in a corresponding array 504, 505. In other embodiments, the drivers 570 may activate a line of light sources 568 or a set of light sources 568 in an array in a sequence of time intervals. In the case of the single separate light source 509 of Figure 7B, there can be just one driver which generates modulated signals in both the IR and visible light spectrums or a switch (not shown) can switch the modulation signals from the different drivers 570 and 572 for receipt by light source 509.
[0080] The electronics module 510 also includes a scanning mirror controller 556 for controlling the movement of the scanning mirror 510. In some instances, the scanning mirror controller 556 can be programmed to perform one dimensional scanning or two dimensional scanning. An IR camera interface 558 receives the data representative of the photons received by the IR camera 564 in this example, and stores them in an IR data buffer 562 from which the interface 558 transfers them to the camera interface 216 of the control circuitry.
[0081] An integrated eye tracking and display system as described in the embodiments above simplifies eye tracking processing for many applications such as measuring vergence, inter-pupillary distance (IPD), gaze determination, eye movement based commands and biometric identification. Additionally, the integration of eye tracking and the display system as described may be implemented in form factors suitable for generally available consumer products.
[0082] Although the subject matter has been described in language specific to structural features and/or methodological acts, it is to be understood that the subject matter defined in the appended claims is not necessarily limited to the specific features or acts described above. Rather, the specific features and acts described above are disclosed as example forms of implementing the claims.

Claims

CLAIMS What is claimed is:
1. An integrated eye tracking and display system for a see-through, near-eye, mixed reality display device comprising:
a display optical system for each eye, the display optical system having an optical axis and a see-through, planar waveguide positioned to be seen through by the respective eye;
one or more wavelength selective filters positioned in the respective see-through, planar waveguide in co-axial alignment with the optical axis of the respective display optical system for directing infrared and visible illumination out of the respective planar waveguide and for directing infrared reflections into the planar waveguide;
an infrared illumination source being positioned for having its infrared illumination optically coupled into the planar waveguide; an infrared sensor being optically coupled to the planar waveguide for receiving the infrared reflections directed from the wavelength selective filters; and
an image generation unit optically coupled for transmitting visible illumination into the planar waveguide.
2. The system of claim 1 wherein the one or more wavelength selective filters include one or more gratings and the infrared sensor is optically coupled to the planar waveguide by an infrared wavelength selective grating.
3. The system of claim 2 wherein at least one of the gratings include a diffraction grating.
4. The system of claim 1 wherein the one or more wavelength selective filters include stacked gratings and at least one of the stacked gratings is selective for one or more visible spectrum wavelengths and at least one of the stacked gratings is selective for a wavelength in the infrared spectrum.
5. The system of claim 1 wherein the image generation unit comprises
a light source being modulated for transmitting illumination at different wavelengths at separate time intervals;
the infrared illumination source also comprises the light source and the different wavelengths include wavelengths in both the visible and infrared spectrums;
a two-dimensional scanning mirror optically coupled to the light source for receiving the illumination and optically coupled to an optical path into the planar waveguide for directing the illumination into the planar waveguide; and
the one or more wavelength selective filters further comprise an active grating being modulated for being selective for the different wavelengths in the visible and infrared spectrums at separate time intervals.
6. An integrated eye tracking and display system for a see-through, near-eye, mixed reality display device comprising:
a display optical system for each eye, the display optical system having an optical axis and a see-through, planar waveguide positioned to be seen through by the respective eye;
one or more wavelength selective filters positioned in the respective see-through, planar waveguide in co-axial alignment with the optical axis of the respective display optical system for directing infrared and visible illumination out of the respective planar waveguide and for directing infrared reflections into the planar waveguide;
an array of optical elements including light sources for transmitting infrared and visible illumination, the light sources being optically coupled to the planar waveguide for directing their illumination into the planar waveguide; and
an infrared sensor being optically coupled to the planar waveguide for receiving infrared reflections directed from the wavelength selective filters.
7. The system of claim 6 wherein the infrared sensor comprises one or more sensors in the array of optical elements interspersed with the array of light sources.
8. The system of claim 7 wherein the one or more wavelength selective filters comprises a bidirectional infrared wavelength selective filter.
9. The system of claim 6 wherein the array of light sources is a linear array of lines of light sources which are scanned by a scanning mirror for coupling the visible and infrared illumination into the planar waveguide.
10. The system of claim 7 wherein infrared reflections of the respective eye are optically coupled in a reverse optical path from at least one of the one or more wavelength selective filters in the planar waveguide to the scanning mirror and to the one or more sensors in the array of optical elements.
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Cited By (75)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2013167864A1 (en) * 2012-05-11 2013-11-14 Milan Momcilo Popovich Apparatus for eye tracking
WO2015099924A1 (en) * 2013-12-26 2015-07-02 Microsoft Technology Licensing, Llc. Eye tracking apparatus, method and system
WO2016048729A1 (en) * 2014-09-24 2016-03-31 Microsoft Technology Licensing, Llc Waveguide eye tracking employing switchable diffraction gratings
US9377623B2 (en) 2014-08-11 2016-06-28 Microsoft Technology Licensing, Llc Waveguide eye tracking employing volume Bragg grating
EP3062142A1 (en) * 2015-02-26 2016-08-31 Nokia Technologies OY Apparatus for a near-eye display
WO2017005614A1 (en) * 2015-07-03 2017-01-12 Essilor International (Compagnie Generale D'optique) Methods and systems for augmented reality
JPWO2015140859A1 (en) * 2014-03-17 2017-04-06 パナソニックIpマネジメント株式会社 Display device
WO2018156941A1 (en) * 2017-02-23 2018-08-30 Google Llc Compact eye tracking using folded display optics
US10089516B2 (en) 2013-07-31 2018-10-02 Digilens, Inc. Method and apparatus for contact image sensing
US10145533B2 (en) 2005-11-11 2018-12-04 Digilens, Inc. Compact holographic illumination device
US10156681B2 (en) 2015-02-12 2018-12-18 Digilens Inc. Waveguide grating device
US10185154B2 (en) 2011-04-07 2019-01-22 Digilens, Inc. Laser despeckler based on angular diversity
US10209517B2 (en) 2013-05-20 2019-02-19 Digilens, Inc. Holographic waveguide eye tracker
WO2019036108A1 (en) * 2017-08-15 2019-02-21 Microsoft Technology Licensing, Llc Eye-tracking with mems scanning and optical relay
US10216061B2 (en) 2012-01-06 2019-02-26 Digilens, Inc. Contact image sensor using switchable bragg gratings
US10234696B2 (en) 2007-07-26 2019-03-19 Digilens, Inc. Optical apparatus for recording a holographic device and method of recording
US10241330B2 (en) 2014-09-19 2019-03-26 Digilens, Inc. Method and apparatus for generating input images for holographic waveguide displays
US10302945B2 (en) 2015-08-12 2019-05-28 Google Llc Near-eye display with stacked lightguides
US10330777B2 (en) 2015-01-20 2019-06-25 Digilens Inc. Holographic waveguide lidar
US10359736B2 (en) 2014-08-08 2019-07-23 Digilens Inc. Method for holographic mastering and replication
CN110168416A (en) * 2017-01-04 2019-08-23 3M创新有限公司 Asymmetric turning film with the distribution of apical cap type light output
US10423222B2 (en) 2014-09-26 2019-09-24 Digilens Inc. Holographic waveguide optical tracker
US10437064B2 (en) 2015-01-12 2019-10-08 Digilens Inc. Environmentally isolated waveguide display
US10459145B2 (en) 2015-03-16 2019-10-29 Digilens Inc. Waveguide device incorporating a light pipe
US10545346B2 (en) 2017-01-05 2020-01-28 Digilens Inc. Wearable heads up displays
US10591756B2 (en) 2015-03-31 2020-03-17 Digilens Inc. Method and apparatus for contact image sensing
US10642058B2 (en) 2011-08-24 2020-05-05 Digilens Inc. Wearable data display
US10670876B2 (en) 2011-08-24 2020-06-02 Digilens Inc. Waveguide laser illuminator incorporating a despeckler
US10678053B2 (en) 2009-04-27 2020-06-09 Digilens Inc. Diffractive projection apparatus
US10690916B2 (en) 2015-10-05 2020-06-23 Digilens Inc. Apparatus for providing waveguide displays with two-dimensional pupil expansion
US10690851B2 (en) 2018-03-16 2020-06-23 Digilens Inc. Holographic waveguides incorporating birefringence control and methods for their fabrication
US10732569B2 (en) 2018-01-08 2020-08-04 Digilens Inc. Systems and methods for high-throughput recording of holographic gratings in waveguide cells
US10890707B2 (en) 2016-04-11 2021-01-12 Digilens Inc. Holographic waveguide apparatus for structured light projection
US10914950B2 (en) 2018-01-08 2021-02-09 Digilens Inc. Waveguide architectures and related methods of manufacturing
US10914949B2 (en) 2018-11-16 2021-02-09 Magic Leap, Inc. Image size triggered clarification to maintain image sharpness
US10942430B2 (en) 2017-10-16 2021-03-09 Digilens Inc. Systems and methods for multiplying the image resolution of a pixelated display
US10983340B2 (en) 2016-02-04 2021-04-20 Digilens Inc. Holographic waveguide optical tracker
US11054648B2 (en) * 2016-02-04 2021-07-06 Google Llc Compact near-eye display optics for higher optical performance
US11092812B2 (en) 2018-06-08 2021-08-17 Magic Leap, Inc. Augmented reality viewer with automated surface selection placement and content orientation placement
US11112862B2 (en) 2018-08-02 2021-09-07 Magic Leap, Inc. Viewing system with interpupillary distance compensation based on head motion
US11189252B2 (en) 2018-03-15 2021-11-30 Magic Leap, Inc. Image correction due to deformation of components of a viewing device
US11187923B2 (en) 2017-12-20 2021-11-30 Magic Leap, Inc. Insert for augmented reality viewing device
US11200870B2 (en) 2018-06-05 2021-12-14 Magic Leap, Inc. Homography transformation matrices based temperature calibration of a viewing system
US11199713B2 (en) 2016-12-30 2021-12-14 Magic Leap, Inc. Polychromatic light out-coupling apparatus, near-eye displays comprising the same, and method of out-coupling polychromatic light
US11204491B2 (en) 2018-05-30 2021-12-21 Magic Leap, Inc. Compact variable focus configurations
US11210808B2 (en) 2016-12-29 2021-12-28 Magic Leap, Inc. Systems and methods for augmented reality
US11216086B2 (en) 2018-08-03 2022-01-04 Magic Leap, Inc. Unfused pose-based drift correction of a fused pose of a totem in a user interaction system
US11280937B2 (en) 2017-12-10 2022-03-22 Magic Leap, Inc. Anti-reflective coatings on optical waveguides
US11307432B2 (en) 2014-08-08 2022-04-19 Digilens Inc. Waveguide laser illuminator incorporating a Despeckler
US11378732B2 (en) 2019-03-12 2022-07-05 DigLens Inc. Holographic waveguide backlight and related methods of manufacturing
US11402801B2 (en) 2018-07-25 2022-08-02 Digilens Inc. Systems and methods for fabricating a multilayer optical structure
US11425189B2 (en) 2019-02-06 2022-08-23 Magic Leap, Inc. Target intent-based clock speed determination and adjustment to limit total heat generated by multiple processors
US11445232B2 (en) 2019-05-01 2022-09-13 Magic Leap, Inc. Content provisioning system and method
US11442222B2 (en) 2019-08-29 2022-09-13 Digilens Inc. Evacuated gratings and methods of manufacturing
US11448937B2 (en) 2012-11-16 2022-09-20 Digilens Inc. Transparent waveguide display for tiling a display having plural optical powers using overlapping and offset FOV tiles
US11460621B2 (en) 2012-04-25 2022-10-04 Rockwell Collins, Inc. Holographic wide angle display
US11480788B2 (en) 2015-01-12 2022-10-25 Digilens Inc. Light field displays incorporating holographic waveguides
US11510027B2 (en) 2018-07-03 2022-11-22 Magic Leap, Inc. Systems and methods for virtual and augmented reality
US11513350B2 (en) 2016-12-02 2022-11-29 Digilens Inc. Waveguide device with uniform output illumination
US11514673B2 (en) 2019-07-26 2022-11-29 Magic Leap, Inc. Systems and methods for augmented reality
US11543594B2 (en) 2019-02-15 2023-01-03 Digilens Inc. Methods and apparatuses for providing a holographic waveguide display using integrated gratings
US11567324B2 (en) 2017-07-26 2023-01-31 Magic Leap, Inc. Exit pupil expander
US11579441B2 (en) 2018-07-02 2023-02-14 Magic Leap, Inc. Pixel intensity modulation using modifying gain values
US11598651B2 (en) 2018-07-24 2023-03-07 Magic Leap, Inc. Temperature dependent calibration of movement detection devices
US11604314B2 (en) 2016-03-24 2023-03-14 Digilens Inc. Method and apparatus for providing a polarization selective holographic waveguide device
US11624929B2 (en) 2018-07-24 2023-04-11 Magic Leap, Inc. Viewing device with dust seal integration
US11681143B2 (en) 2019-07-29 2023-06-20 Digilens Inc. Methods and apparatus for multiplying the image resolution and field-of-view of a pixelated display
US11726332B2 (en) 2009-04-27 2023-08-15 Digilens Inc. Diffractive projection apparatus
US11737832B2 (en) 2019-11-15 2023-08-29 Magic Leap, Inc. Viewing system for use in a surgical environment
US11747568B2 (en) 2019-06-07 2023-09-05 Digilens Inc. Waveguides incorporating transmissive and reflective gratings and related methods of manufacturing
US11762623B2 (en) 2019-03-12 2023-09-19 Magic Leap, Inc. Registration of local content between first and second augmented reality viewers
US11856479B2 (en) 2018-07-03 2023-12-26 Magic Leap, Inc. Systems and methods for virtual and augmented reality along a route with markers
US11885871B2 (en) 2018-05-31 2024-01-30 Magic Leap, Inc. Radar head pose localization
US11928257B2 (en) 2021-02-17 2024-03-12 Samsung Electronics Co., Ltd. Method and electronic device for tracking eye
US11953653B2 (en) 2022-02-07 2024-04-09 Magic Leap, Inc. Anti-reflective coatings on optical waveguides

Families Citing this family (213)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
IL166799A (en) 2005-02-10 2014-09-30 Lumus Ltd Substrate-guided optical device utilizing beam splitters
US10073264B2 (en) 2007-08-03 2018-09-11 Lumus Ltd. Substrate-guide optical device
US9229233B2 (en) 2014-02-11 2016-01-05 Osterhout Group, Inc. Micro Doppler presentations in head worn computing
US9715112B2 (en) 2014-01-21 2017-07-25 Osterhout Group, Inc. Suppression of stray light in head worn computing
US9400390B2 (en) 2014-01-24 2016-07-26 Osterhout Group, Inc. Peripheral lighting for head worn computing
US9298007B2 (en) 2014-01-21 2016-03-29 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
US20150205111A1 (en) 2014-01-21 2015-07-23 Osterhout Group, Inc. Optical configurations for head worn computing
US9952664B2 (en) 2014-01-21 2018-04-24 Osterhout Group, Inc. Eye imaging in head worn computing
US11204540B2 (en) 2009-10-09 2021-12-21 Digilens Inc. Diffractive waveguide providing a retinal image
WO2011042711A2 (en) 2009-10-09 2011-04-14 Milan Momcilo Popovich Compact edge illuminated diffractive display
US9286711B2 (en) 2011-09-30 2016-03-15 Microsoft Technology Licensing, Llc Representing a location at a previous time period using an augmented reality display
US9268406B2 (en) * 2011-09-30 2016-02-23 Microsoft Technology Licensing, Llc Virtual spectator experience with a personal audio/visual apparatus
IL219907A (en) * 2012-05-21 2017-08-31 Lumus Ltd Head-mounted display eyeball tracker integrated system
US20140009739A1 (en) * 2012-06-14 2014-01-09 Lindsay Greco Wearable apparatus and ir configuration for optimizing eye-tracking used for human computer interaction
US9223139B2 (en) * 2013-02-15 2015-12-29 Google Inc. Cascading optics in optical combiners of head mounted displays
US20140267667A1 (en) * 2013-03-14 2014-09-18 Valve Corporation Outward facing camera system with identical camera and eye image picture perspective
US10137361B2 (en) 2013-06-07 2018-11-27 Sony Interactive Entertainment America Llc Systems and methods for using reduced hops to generate an augmented virtual reality scene within a head mounted system
US10905943B2 (en) * 2013-06-07 2021-02-02 Sony Interactive Entertainment LLC Systems and methods for reducing hops associated with a head mounted system
US9625723B2 (en) 2013-06-25 2017-04-18 Microsoft Technology Licensing, Llc Eye-tracking system using a freeform prism
US10228561B2 (en) 2013-06-25 2019-03-12 Microsoft Technology Licensing, Llc Eye-tracking system using a freeform prism and gaze-detection light
US9488837B2 (en) * 2013-06-28 2016-11-08 Microsoft Technology Licensing, Llc Near eye display
US20150302773A1 (en) * 2013-07-29 2015-10-22 Fusao Ishii See Through Display enabling the correction of visual deficits
US10345903B2 (en) 2013-07-30 2019-07-09 Microsoft Technology Licensing, Llc Feedback for optic positioning in display devices
WO2015015454A2 (en) * 2013-07-31 2015-02-05 Saar Wilf Gaze tracking system
TWI507729B (en) * 2013-08-02 2015-11-11 Quanta Comp Inc Eye-accommodation-aware head mounted visual assistant system and imaging method thereof
US10073518B2 (en) * 2013-08-19 2018-09-11 Qualcomm Incorporated Automatic calibration of eye tracking for optical see-through head mounted display
TWI484219B (en) * 2013-08-30 2015-05-11 Univ Nat Chiao Tung Head-mounted display
WO2015038810A2 (en) 2013-09-11 2015-03-19 Firima Inc. User interface based on optical sensing and tracking of user's eye movement and position
US9420950B2 (en) 2013-09-17 2016-08-23 Pixart Imaging Inc. Retro-reflectivity array for enabling pupil tracking
US10416462B2 (en) * 2013-09-21 2019-09-17 IRON CITY MICRO DISPLAY, Inc. See through display enabling the correction of visual deficits
US10310287B2 (en) 2013-10-28 2019-06-04 Ramot At Tel-Aviv University Ltd. System and method for controlling light by an array of optical resonators
WO2015070182A2 (en) * 2013-11-09 2015-05-14 Firima Inc. Optical eye tracking
EP3074923A4 (en) 2013-11-27 2017-07-05 Shenzhen Huiding Technology Co., Ltd. Eye tracking and user reaction detection
EP4220999A3 (en) * 2013-11-27 2023-08-09 Magic Leap, Inc. Virtual and augmented reality systems and methods
US9360935B2 (en) * 2013-12-20 2016-06-07 Hong Kong Applied Science And Technology Research Institute Co. Ltd. Integrated bi-sensing optical structure for head mounted display
EP2887124A1 (en) * 2013-12-20 2015-06-24 Thomson Licensing Optical see-through glass type display device and corresponding optical unit
US9529195B2 (en) 2014-01-21 2016-12-27 Osterhout Group, Inc. See-through computer display systems
US11103122B2 (en) 2014-07-15 2021-08-31 Mentor Acquisition One, Llc Content presentation in head worn computing
US9671613B2 (en) 2014-09-26 2017-06-06 Osterhout Group, Inc. See-through computer display systems
US10649220B2 (en) 2014-06-09 2020-05-12 Mentor Acquisition One, Llc 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
US20160019715A1 (en) 2014-07-15 2016-01-21 Osterhout Group, Inc. Content presentation in head worn computing
US10191279B2 (en) 2014-03-17 2019-01-29 Osterhout Group, Inc. Eye imaging in head worn computing
US9939934B2 (en) 2014-01-17 2018-04-10 Osterhout Group, Inc. External user interface for head worn computing
US9575321B2 (en) 2014-06-09 2017-02-21 Osterhout Group, Inc. Content presentation in head worn computing
US9841599B2 (en) 2014-06-05 2017-12-12 Osterhout Group, Inc. Optical configurations for head-worn see-through displays
US9810906B2 (en) 2014-06-17 2017-11-07 Osterhout Group, Inc. External user interface for head worn computing
US9829707B2 (en) 2014-08-12 2017-11-28 Osterhout Group, Inc. Measuring content brightness in head worn computing
US10684687B2 (en) 2014-12-03 2020-06-16 Mentor Acquisition One, Llc See-through computer display systems
US20150228119A1 (en) 2014-02-11 2015-08-13 Osterhout Group, Inc. Spatial location presentation in head worn computing
US9594246B2 (en) 2014-01-21 2017-03-14 Osterhout Group, Inc. See-through computer display systems
US20150277118A1 (en) * 2014-03-28 2015-10-01 Osterhout Group, Inc. Sensor dependent content position in head worn computing
US9299194B2 (en) 2014-02-14 2016-03-29 Osterhout Group, Inc. Secure sharing in head worn computing
US9746686B2 (en) 2014-05-19 2017-08-29 Osterhout Group, Inc. Content position calibration in head worn computing
US9448409B2 (en) 2014-11-26 2016-09-20 Osterhout Group, Inc. See-through computer display systems
US9366868B2 (en) 2014-09-26 2016-06-14 Osterhout Group, Inc. See-through computer display systems
US10254856B2 (en) 2014-01-17 2019-04-09 Osterhout Group, Inc. External user interface for head worn computing
US9740280B2 (en) 2014-01-21 2017-08-22 Osterhout Group, Inc. Eye imaging in head worn computing
US11892644B2 (en) 2014-01-21 2024-02-06 Mentor Acquisition One, Llc See-through computer display systems
US11487110B2 (en) 2014-01-21 2022-11-01 Mentor Acquisition One, Llc Eye imaging in head worn computing
US9766463B2 (en) 2014-01-21 2017-09-19 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
US9532715B2 (en) 2014-01-21 2017-01-03 Osterhout Group, Inc. Eye imaging in head worn computing
US9494800B2 (en) 2014-01-21 2016-11-15 Osterhout Group, Inc. See-through computer display systems
US9651784B2 (en) 2014-01-21 2017-05-16 Osterhout Group, Inc. See-through computer display systems
US9836122B2 (en) 2014-01-21 2017-12-05 Osterhout Group, Inc. 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
US20150205135A1 (en) 2014-01-21 2015-07-23 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
US9846308B2 (en) 2014-01-24 2017-12-19 Osterhout Group, Inc. Haptic systems for head-worn computers
JP5956479B2 (en) * 2014-01-29 2016-07-27 株式会社東芝 Display device and gaze estimation device
US9852545B2 (en) 2014-02-11 2017-12-26 Osterhout Group, Inc. Spatial location presentation in head worn computing
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
US20160187651A1 (en) 2014-03-28 2016-06-30 Osterhout Group, Inc. Safety for a vehicle operator with an hmd
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
US9423842B2 (en) 2014-09-18 2016-08-23 Osterhout Group, Inc. Thermal management for head-worn computer
CN106662911B (en) 2014-04-29 2020-08-11 惠普发展公司,有限责任合伙企业 Gaze detector using reference frames in media
US9858855B2 (en) * 2014-06-05 2018-01-02 International Business Machines Corporation Wearable display device
US10663740B2 (en) 2014-06-09 2020-05-26 Mentor Acquisition One, Llc Content presentation in head worn computing
CN109893084A (en) 2014-06-20 2019-06-18 拉姆伯斯公司 System and method for having lens and lensless optical sensing
FR3025711B1 (en) * 2014-09-15 2020-12-25 Acep France DEVICE FOR MEASURING THE PHYSIOLOGICAL CHARACTERISTICS OF THE EYE, FOR A PATIENT WEARING TINTED GLASSES
US10684477B2 (en) * 2014-09-30 2020-06-16 Omnivision Technologies, Inc. Near-eye display device and methods with coaxial eye imaging
US9958680B2 (en) 2014-09-30 2018-05-01 Omnivision Technologies, Inc. Near-eye display device and methods with coaxial eye imaging
US9684172B2 (en) 2014-12-03 2017-06-20 Osterhout Group, Inc. Head worn computer display systems
JP6464708B2 (en) * 2014-12-08 2019-02-06 セイコーエプソン株式会社 Image display device
USD743963S1 (en) 2014-12-22 2015-11-24 Osterhout Group, Inc. Air mouse
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
US20160239985A1 (en) 2015-02-17 2016-08-18 Osterhout Group, Inc. See-through computer display systems
US10878775B2 (en) 2015-02-17 2020-12-29 Mentor Acquisition One, Llc See-through computer display systems
EP3278299A1 (en) * 2015-04-02 2018-02-07 Essilor International (Compagnie Générale D'Optique) A method for updating an index of a person
CA2986149A1 (en) 2015-05-19 2016-11-24 Magic Leap, Inc. Illuminator
WO2016191709A1 (en) * 2015-05-28 2016-12-01 Thalmic Labs Inc. Systems, devices, and methods that integrate eye tracking and scanning laser projection in wearable heads-up displays
US9910276B2 (en) 2015-06-30 2018-03-06 Microsoft Technology Licensing, Llc Diffractive optical elements with graded edges
US10670862B2 (en) 2015-07-02 2020-06-02 Microsoft Technology Licensing, Llc Diffractive optical elements with asymmetric profiles
US9864208B2 (en) 2015-07-30 2018-01-09 Microsoft Technology Licensing, Llc Diffractive optical elements with varying direction for depth modulation
US10038840B2 (en) 2015-07-30 2018-07-31 Microsoft Technology Licensing, Llc Diffractive optical element using crossed grating for pupil expansion
US9870049B2 (en) * 2015-07-31 2018-01-16 Google Llc Reflective lenses to auto-calibrate a wearable system
US10073278B2 (en) * 2015-08-27 2018-09-11 Microsoft Technology Licensing, Llc Diffractive optical element using polarization rotation grating for in-coupling
JP2017045407A (en) * 2015-08-28 2017-03-02 キヤノン株式会社 Information processor
CN105242773B (en) * 2015-08-31 2018-08-31 联想(北京)有限公司 A kind of electronic equipment
US10397546B2 (en) 2015-09-30 2019-08-27 Microsoft Technology Licensing, Llc Range imaging
US10429645B2 (en) 2015-10-07 2019-10-01 Microsoft Technology Licensing, Llc Diffractive optical element with integrated in-coupling, exit pupil expansion, and out-coupling
US10241332B2 (en) 2015-10-08 2019-03-26 Microsoft Technology Licensing, Llc Reducing stray light transmission in near eye display using resonant grating filter
US11609427B2 (en) * 2015-10-16 2023-03-21 Ostendo Technologies, Inc. Dual-mode augmented/virtual reality (AR/VR) near-eye wearable displays
US9946072B2 (en) 2015-10-29 2018-04-17 Microsoft Technology Licensing, Llc Diffractive optical element with uncoupled grating structures
US10013055B2 (en) * 2015-11-06 2018-07-03 Oculus Vr, Llc Eye tracking using optical flow
US10234686B2 (en) 2015-11-16 2019-03-19 Microsoft Technology Licensing, Llc Rainbow removal in near-eye display using polarization-sensitive grating
US10523923B2 (en) 2015-12-28 2019-12-31 Microsoft Technology Licensing, Llc Synchronizing active illumination cameras
IL243772B (en) * 2016-01-25 2018-03-29 Everysight Ltd Line-of-sight-based content-sharing dynamic ad-hoc networks
US10591728B2 (en) 2016-03-02 2020-03-17 Mentor Acquisition One, Llc Optical systems for head-worn computers
US10667981B2 (en) 2016-02-29 2020-06-02 Mentor Acquisition One, Llc Reading assistance system for visually impaired
US10462452B2 (en) 2016-03-16 2019-10-29 Microsoft Technology Licensing, Llc Synchronizing active illumination cameras
US9933855B2 (en) * 2016-03-31 2018-04-03 Intel Corporation Augmented reality in a field of view including a reflection
US9946074B2 (en) * 2016-04-07 2018-04-17 Google Llc See-through curved eyepiece with patterned optical combiner
US9910284B1 (en) 2016-09-08 2018-03-06 Osterhout Group, Inc. Optical systems for head-worn computers
US10466491B2 (en) 2016-06-01 2019-11-05 Mentor Acquisition One, Llc Modular systems for head-worn computers
US10684478B2 (en) 2016-05-09 2020-06-16 Mentor Acquisition One, Llc User interface systems for head-worn computers
US10824253B2 (en) 2016-05-09 2020-11-03 Mentor Acquisition One, Llc User interface systems for head-worn computers
US11416041B2 (en) 2016-05-23 2022-08-16 Microsoft Technology Licensing, Llc. Device having display integrated infrared and visible light source
CN107562179A (en) * 2016-06-30 2018-01-09 上海青研科技有限公司 It is a kind of to be used for eyeball tracking and the integrated mirror cup of iris recognition
CN105954992B (en) * 2016-07-22 2018-10-30 京东方科技集团股份有限公司 Display system and display methods
TWI614527B (en) * 2016-08-18 2018-02-11 盧姆斯有限公司 Compact head-mounted display system having uniform image
US10216263B2 (en) 2016-09-12 2019-02-26 Microsoft Technology Licensing, Llc Display active alignment systems utilizing test patterns for calibrating signals in waveguide displays
US10324291B2 (en) 2016-09-12 2019-06-18 Microsoft Technology Licensing, Llc Display active alignment system for waveguide displays
IL307292A (en) 2016-09-22 2023-11-01 Magic Leap Inc Augmented reality spectroscopy
CN109923499B (en) * 2016-09-27 2022-07-29 托比股份公司 Portable eye tracking device
JP6829375B2 (en) * 2016-09-28 2021-02-10 ミツミ電機株式会社 Optical scanning head-mounted display and retinal scanning head-mounted display
EP3301501B1 (en) * 2016-09-30 2022-11-09 Nokia Technologies Oy Augmented reality apparatus
US10877556B2 (en) * 2016-10-21 2020-12-29 Apple Inc. Eye tracking system
EP4152077A1 (en) * 2016-11-30 2023-03-22 Magic Leap, Inc. Method and system for high resolution digitized display
US20180157320A1 (en) * 2016-12-01 2018-06-07 Oculus Vr, Llc Air spaced optical assembly with integrated eye tracking
WO2018117753A1 (en) 2016-12-23 2018-06-28 Samsung Electronics Co., Ltd. Electronic device and method of controlling the same
US10108014B2 (en) * 2017-01-10 2018-10-23 Microsoft Technology Licensing, Llc Waveguide display with multiple focal depths
US10310598B2 (en) 2017-01-17 2019-06-04 Facebook Technologies, Llc Varifocal head-mounted display including modular air spaced optical assembly
EP3574360A4 (en) 2017-01-28 2020-11-11 Lumus Ltd. Augmented reality imaging system
US11841520B2 (en) 2017-02-02 2023-12-12 Technology Innovation Momentum Fund (Israel) Limited Partnership Multilayer optical element for controlling light
US10690919B1 (en) * 2017-02-17 2020-06-23 Facebook Technologies, Llc Superluminous LED array for waveguide display
EP4235258A3 (en) 2017-03-21 2023-09-27 Magic Leap, Inc. Method and system for tracking eye movement in conjunction with a light scanning projector
TWI634869B (en) * 2017-03-24 2018-09-11 及至微機電股份有限公司 Image display device with pupil tracking function and pupil tracking device thereof
CN108663806A (en) * 2017-03-31 2018-10-16 及至微机电股份有限公司 Imaing projector with pupil tracing function and its pupil position follow-up mechanism
US10303248B2 (en) * 2017-04-28 2019-05-28 Microsoft Technology Licensing, Llc Eye tracking using scanned beam and multiple detectors
US10674143B2 (en) 2017-05-12 2020-06-02 Qualcomm Incorporated System for eye tracking
US10175489B1 (en) 2017-07-05 2019-01-08 Microsoft Technology Licensing, Llc Compact optical system with MEMS scanners for image generation and object tracking
US10521658B2 (en) * 2017-07-07 2019-12-31 Facebook Technologies, Llc Embedded eye tracker with dichroic mirror
US20190019448A1 (en) * 2017-07-12 2019-01-17 Oculus Vr, Llc Redundant microleds of multiple rows for compensation of defective microled
US11243434B2 (en) 2017-07-19 2022-02-08 Lumus Ltd. LCOS illumination via LOE
US10969584B2 (en) 2017-08-04 2021-04-06 Mentor Acquisition One, Llc Image expansion optic for head-worn computer
US10976811B2 (en) * 2017-08-11 2021-04-13 Microsoft Technology Licensing, Llc Eye-tracking with MEMS scanning and reflected light
JP6953247B2 (en) * 2017-09-08 2021-10-27 ラピスセミコンダクタ株式会社 Goggles type display device, line-of-sight detection method and line-of-sight detection system
WO2019063706A1 (en) 2017-09-29 2019-04-04 Motognosis UG (haftungsbeschränkt) Device for the determination and analysis of the motor skill and the oculomotor skill of a person
US10627627B2 (en) * 2017-10-02 2020-04-21 Google Llc Eye tracking using light guide with faceted combiner
US10788677B2 (en) 2017-10-03 2020-09-29 Facebook Technologies, Llc Fresnel assembly for light redirection in eye tracking systems
US20190129174A1 (en) * 2017-10-31 2019-05-02 Google Llc Multi-perspective eye-tracking for vr/ar systems
EP3740809A4 (en) * 2017-11-01 2021-12-15 Vrgineers, Inc. Interactive augmented or virtual reality devices
CN107765435A (en) * 2017-11-22 2018-03-06 深圳创维新世界科技有限公司 Head-wearing display device
US10845594B1 (en) 2017-12-21 2020-11-24 Facebook Technologies, Llc Prism based light redirection system for eye tracking systems
US20200341269A1 (en) * 2017-12-21 2020-10-29 Bae Systems Plc Eye tracking for head-worn display
EP3514606A1 (en) * 2018-01-23 2019-07-24 BAE SYSTEMS plc Eye tracking for head-worn display
US10506220B2 (en) 2018-01-02 2019-12-10 Lumus Ltd. Augmented reality displays with active alignment and corresponding methods
US20190212482A1 (en) * 2018-01-10 2019-07-11 Oculus Vr, Llc Angle selective filter for near eye displays
US10313645B1 (en) * 2018-01-19 2019-06-04 Microsoft Technology Licensing, Llc Variable emission period for scanned-beam display
US10942355B2 (en) 2018-01-22 2021-03-09 Facebook Technologies, Llc Systems, devices, and methods for tiled multi-monochromatic displays
TWI669537B (en) * 2018-01-24 2019-08-21 宏碁股份有限公司 Display device
CN108170283A (en) * 2018-01-30 2018-06-15 小派科技(上海)有限责任公司 Virtual reality shows the interpupillary distance adjusting method and device of equipment
US10422989B2 (en) 2018-02-06 2019-09-24 Microsoft Technology Licensing, Llc Optical systems including a single actuator and multiple fluid-filled optical lenses for near-eye-display devices
US10551914B2 (en) * 2018-02-09 2020-02-04 Microsoft Technology Licensing, Llc Efficient MEMs-based eye tracking system with a silicon photomultiplier sensor
WO2019183399A1 (en) 2018-03-21 2019-09-26 Magic Leap, Inc. Augmented reality system and method for spectroscopic analysis
US11372243B2 (en) 2018-04-28 2022-06-28 Almalence, Inc. Optical hybrid reality system having digital correction of aberrations
IL259518B2 (en) 2018-05-22 2023-04-01 Lumus Ltd Optical system and method for improvement of light field uniformity
CN112165894A (en) * 2018-05-31 2021-01-01 托比股份公司 Method and system for flash/reflection identification
CN108983464B (en) 2018-09-03 2021-04-09 京东方科技集团股份有限公司 Light guide assembly and manufacturing method thereof, eyeball tracking module and method thereof, and video glasses
EP3854074A4 (en) * 2018-09-17 2022-06-08 Snap Inc. Creating shockwaves in three-dimensional depth videos and images
CN112771438B (en) * 2018-09-26 2023-10-10 美国斯耐普公司 Depth sculpturing three-dimensional depth images using two-dimensional input selection
KR102626811B1 (en) * 2018-09-27 2024-01-18 테크놀로지 이노베이션 모멘텀 펀드 (이스라엘) 리미티드 파트너쉽 See-through displays for augmented reality systems
US10886702B2 (en) * 2018-11-09 2021-01-05 Facebook Technologies, Llc Vertical-cavity surface-emitting laser for near-field illumination of an eye
US20200150443A1 (en) * 2018-11-13 2020-05-14 Facebook Technologies, Llc Pupil steering: combiner actuation systems
CN109521568B (en) * 2018-12-14 2020-08-14 浙江大学 Coaxial optical path system of AR glasses
CN111323918A (en) * 2018-12-17 2020-06-23 施轩杰 Display and imaging sharing light path scheme
EP3903135A4 (en) 2018-12-28 2022-10-19 Magic Leap, Inc. Virtual and augmented reality display systems with emissive micro-displays
CN109857253A (en) * 2019-02-03 2019-06-07 北京七鑫易维信息技术有限公司 A kind of eyeball tracking device and method
US10942320B2 (en) * 2019-02-11 2021-03-09 Facebook Technologies, Llc Dispersion compensation for light coupling through slanted facet of optical waveguide
US11624906B2 (en) * 2019-03-04 2023-04-11 Microsoft Technology Licensing, Llc IR illumination module for MEMS-based eye tracking
CN115202037A (en) * 2019-03-06 2022-10-18 株式会社理光 Optical device, retina projection display device, and head-mounted display device
TWI800657B (en) 2019-03-12 2023-05-01 以色列商魯姆斯有限公司 Image projector
TWI691735B (en) * 2019-03-26 2020-04-21 宏碁股份有限公司 Near-eye display device
CN112101065A (en) * 2019-06-17 2020-12-18 北京七鑫易维科技有限公司 Laser-based eyeball tracking method and terminal equipment
JP2022537092A (en) 2019-06-23 2022-08-24 ルーマス リミテッド Display with foveal optical correction
CN110161703A (en) * 2019-06-26 2019-08-23 北京枭龙科技有限公司 A kind of nearly eye display device with eyeball tracking function
US11150468B1 (en) * 2019-08-07 2021-10-19 Facebook Technologies, Llc Optical device having reduced diffraction artifacts for eye-tracking
US11822081B2 (en) * 2019-08-29 2023-11-21 Apple Inc. Optical module for head-mounted device
US11885965B1 (en) 2019-09-23 2024-01-30 Apple Inc. Head-mounted display and display modules thereof
KR20210052090A (en) 2019-10-31 2021-05-10 삼성전자주식회사 Augmented reality device
US11275250B2 (en) 2019-11-19 2022-03-15 Apple Inc. Optical alignment for head-mountable device
CN110989166A (en) 2019-12-25 2020-04-10 歌尔股份有限公司 Eyeball tracking system of near-to-eye display equipment and near-to-eye display equipment
CN110824699B (en) * 2019-12-25 2020-12-04 歌尔光学科技有限公司 Eyeball tracking system of near-to-eye display equipment and near-to-eye display equipment
US11169374B1 (en) * 2019-12-31 2021-11-09 Snap Inc. Eyewear eye-tracking using optical waveguide
CN113093378A (en) * 2020-01-08 2021-07-09 宏碁股份有限公司 Eyeball tracking device and head-mounted display equipment
CN111781723A (en) * 2020-07-01 2020-10-16 业成科技(成都)有限公司 Eyeball tracking structure, electronic device and intelligent glasses
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
CN111983803A (en) * 2020-08-19 2020-11-24 业成科技(成都)有限公司 Eyeball tracking module and electronic equipment
WO2022117355A1 (en) * 2020-12-04 2022-06-09 Ams International Ag Display device and method for operating a display device
US11536555B2 (en) * 2021-02-03 2022-12-27 Meta Platforms Technologies, Llc Scanning self-mixing interferometry system and sensor
US20240103273A1 (en) * 2021-02-11 2024-03-28 Apple Inc. Waveguide Display with Gaze Tracking
CN114200679B (en) * 2021-11-17 2024-03-26 小派科技(上海)有限责任公司 Optical module/system, display device, head-mounted display device and display system
US11741861B1 (en) 2022-02-08 2023-08-29 Lumus Ltd. Optical system including selectively activatable facets
CN114660806A (en) * 2022-04-19 2022-06-24 塔普翊海(上海)智能科技有限公司 Eye tracking optical device, head-mounted display equipment and eye tracking method
WO2023209710A1 (en) * 2022-04-24 2023-11-02 Lumus Ltd. Eye-tracking via lightguides

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH11249588A (en) * 1998-02-27 1999-09-17 Shimadzu Corp Head-mounted display
JP2003520984A (en) * 1999-10-14 2003-07-08 ストラトス プロダクト ディヴェロップメント エルエルシー Virtual imaging system
JP3429320B2 (en) * 1996-10-08 2003-07-22 ザ マイクロオプティカル コーポレイション Image combining system for eyeglasses and face mask
JP2009282085A (en) * 2008-05-20 2009-12-03 Panasonic Corp Optical device and image display equipped with the same

Family Cites Families (46)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4634384A (en) 1984-02-02 1987-01-06 General Electric Company Head and/or eye tracked optically blended display system
US5016282A (en) 1988-07-14 1991-05-14 Atr Communication Systems Research Laboratories Eye tracking image pickup apparatus for separating noise from feature portions
US5471542A (en) 1993-09-27 1995-11-28 Ragland; Richard R. Point-of-gaze tracker
US5771124A (en) 1996-07-02 1998-06-23 Siliscape Compact display system with two stage magnification and immersed beam splitter
US5689619A (en) 1996-08-09 1997-11-18 The United States Of America As Represented By The Secretary Of The Army Eyetracker control of heads-up displays
US6396461B1 (en) 1998-08-05 2002-05-28 Microvision, Inc. Personal display with vision tracking
US6433760B1 (en) 1999-01-14 2002-08-13 University Of Central Florida Head mounted display with eyetracking capability
JP2002542505A (en) 1999-04-08 2002-12-10 ニューヨーク ユニバーシティ Foveated image display device with super-resolution
US6120461A (en) * 1999-08-09 2000-09-19 The United States Of America As Represented By The Secretary Of The Army Apparatus for tracking the human eye with a retinal scanning display, and method thereof
DE19953835C1 (en) 1999-10-30 2001-05-23 Hertz Inst Heinrich Computer-aided method for contactless, video-based gaze direction determination of a user's eye for eye-guided human-computer interaction and device for carrying out the method
US6456262B1 (en) 2000-05-09 2002-09-24 Intel Corporation Microdisplay with eye gaze detection
US6603491B2 (en) 2000-05-26 2003-08-05 Jerome H. Lemelson System and methods for controlling automatic scrolling of information on a display or screen
US6578962B1 (en) 2001-04-27 2003-06-17 International Business Machines Corporation Calibration-free eye gaze tracking
US6886137B2 (en) 2001-05-29 2005-04-26 International Business Machines Corporation Eye gaze control of dynamic information presentation
GB0119859D0 (en) 2001-08-15 2001-10-10 Qinetiq Ltd Eye tracking system
US6659611B2 (en) 2001-12-28 2003-12-09 International Business Machines Corporation System and method for eye gaze tracking using corneal image mapping
US7883415B2 (en) 2003-09-15 2011-02-08 Sony Computer Entertainment Inc. Method and apparatus for adjusting a view of a scene being displayed according to tracked head motion
US6943754B2 (en) 2002-09-27 2005-09-13 The Boeing Company Gaze tracking system, eye-tracking assembly and an associated method of calibration
US7401920B1 (en) * 2003-05-20 2008-07-22 Elbit Systems Ltd. Head mounted eye tracking and display system
US20050047629A1 (en) 2003-08-25 2005-03-03 International Business Machines Corporation System and method for selectively expanding or contracting a portion of a display using eye-gaze tracking
IL157837A (en) 2003-09-10 2012-12-31 Yaakov Amitai Substrate-guided optical device particularly for three-dimensional displays
US20080048931A1 (en) 2003-11-26 2008-02-28 Rafael - Armament Development Authority Ltd. Helmet System for Information or Weapon Systems
US7532230B2 (en) 2004-01-29 2009-05-12 Hewlett-Packard Development Company, L.P. Method and system for communicating gaze in an immersive virtual environment
JP4604190B2 (en) 2004-02-17 2010-12-22 国立大学法人静岡大学 Gaze detection device using distance image sensor
JP4218553B2 (en) 2004-03-08 2009-02-04 ソニー株式会社 Image display device
CA2576010C (en) 2004-08-03 2011-07-26 Silverbrook Research Pty Ltd Head mounted display with wave front modulator
US8248458B2 (en) 2004-08-06 2012-08-21 University Of Washington Through Its Center For Commercialization Variable fixation viewing distance scanned light displays
JP4560368B2 (en) 2004-10-08 2010-10-13 キヤノン株式会社 Eye detection device and image display device
US7396129B2 (en) 2004-11-22 2008-07-08 Carestream Health, Inc. Diagnostic system having gaze tracking
US7457434B2 (en) 2005-04-04 2008-11-25 Massachusetts Eye & Ear Infirmary Adaptively focusing extra-ocular vision prostheses
US7686451B2 (en) 2005-04-04 2010-03-30 Lc Technologies, Inc. Explicit raytracing for gimbal-based gazepoint trackers
US20060250322A1 (en) 2005-05-09 2006-11-09 Optics 1, Inc. Dynamic vergence and focus control for head-mounted displays
US7522344B1 (en) 2005-12-14 2009-04-21 University Of Central Florida Research Foundation, Inc. Projection-based head-mounted display with eye-tracking capabilities
WO2007076479A1 (en) * 2005-12-22 2007-07-05 Alcon Refractivehorizons, Inc. Pupil reflection eye tracking system and method
US8360578B2 (en) 2006-01-26 2013-01-29 Nokia Corporation Eye tracker device
US7542210B2 (en) 2006-06-29 2009-06-02 Chirieleison Sr Anthony Eye tracking head mounted display
KR100809479B1 (en) 2006-07-27 2008-03-03 한국전자통신연구원 Face mounted display apparatus and method for mixed reality environment
US8457352B2 (en) 2007-05-23 2013-06-04 The University Of British Columbia Methods and apparatus for estimating point-of-gaze in three dimensions
FR2919444B1 (en) 2007-07-23 2009-10-23 Somfy Sas DEVICE FOR SUPPLYING A DOMOTIC ACTUATOR AND METHOD FOR OPERATING SUCH A DEVICE
US20100149073A1 (en) * 2008-11-02 2010-06-17 David Chaum Near to Eye Display System and Appliance
WO2009136393A1 (en) * 2008-05-06 2009-11-12 Elbit Systems Ltd. Wide angle helmet mounted display system
KR100947990B1 (en) 2008-05-15 2010-03-18 성균관대학교산학협력단 Gaze Tracking Apparatus and Method using Difference Image Entropy
US7736000B2 (en) 2008-08-27 2010-06-15 Locarna Systems, Inc. Method and apparatus for tracking eye movement
US20100110368A1 (en) 2008-11-02 2010-05-06 David Chaum System and apparatus for eyeglass appliance platform
US20110214082A1 (en) 2010-02-28 2011-09-01 Osterhout Group, Inc. Projection triggering through an external marker in an augmented reality eyepiece
US8531355B2 (en) 2010-07-23 2013-09-10 Gregory A. Maltz Unitized, vision-controlled, wireless eyeglass transceiver

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP3429320B2 (en) * 1996-10-08 2003-07-22 ザ マイクロオプティカル コーポレイション Image combining system for eyeglasses and face mask
JPH11249588A (en) * 1998-02-27 1999-09-17 Shimadzu Corp Head-mounted display
JP2003520984A (en) * 1999-10-14 2003-07-08 ストラトス プロダクト ディヴェロップメント エルエルシー Virtual imaging system
JP2009282085A (en) * 2008-05-20 2009-12-03 Panasonic Corp Optical device and image display equipped with the same

Cited By (124)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10145533B2 (en) 2005-11-11 2018-12-04 Digilens, Inc. Compact holographic illumination device
US10725312B2 (en) 2007-07-26 2020-07-28 Digilens Inc. Laser illumination device
US10234696B2 (en) 2007-07-26 2019-03-19 Digilens, Inc. Optical apparatus for recording a holographic device and method of recording
US10678053B2 (en) 2009-04-27 2020-06-09 Digilens Inc. Diffractive projection apparatus
US11175512B2 (en) 2009-04-27 2021-11-16 Digilens Inc. Diffractive projection apparatus
US11726332B2 (en) 2009-04-27 2023-08-15 Digilens Inc. Diffractive projection apparatus
US10185154B2 (en) 2011-04-07 2019-01-22 Digilens, Inc. Laser despeckler based on angular diversity
US11487131B2 (en) 2011-04-07 2022-11-01 Digilens Inc. Laser despeckler based on angular diversity
US11287666B2 (en) 2011-08-24 2022-03-29 Digilens, Inc. Wearable data display
US10670876B2 (en) 2011-08-24 2020-06-02 Digilens Inc. Waveguide laser illuminator incorporating a despeckler
US10642058B2 (en) 2011-08-24 2020-05-05 Digilens Inc. Wearable data display
US10459311B2 (en) 2012-01-06 2019-10-29 Digilens Inc. Contact image sensor using switchable Bragg gratings
US10216061B2 (en) 2012-01-06 2019-02-26 Digilens, Inc. Contact image sensor using switchable bragg gratings
US11460621B2 (en) 2012-04-25 2022-10-04 Rockwell Collins, Inc. Holographic wide angle display
WO2013167864A1 (en) * 2012-05-11 2013-11-14 Milan Momcilo Popovich Apparatus for eye tracking
US10437051B2 (en) 2012-05-11 2019-10-08 Digilens Inc. Apparatus for eye tracking
US9804389B2 (en) 2012-05-11 2017-10-31 Digilens, Inc. Apparatus for eye tracking
US9456744B2 (en) 2012-05-11 2016-10-04 Digilens, Inc. Apparatus for eye tracking
US11448937B2 (en) 2012-11-16 2022-09-20 Digilens Inc. Transparent waveguide display for tiling a display having plural optical powers using overlapping and offset FOV tiles
US10209517B2 (en) 2013-05-20 2019-02-19 Digilens, Inc. Holographic waveguide eye tracker
US11662590B2 (en) 2013-05-20 2023-05-30 Digilens Inc. Holographic waveguide eye tracker
US10423813B2 (en) 2013-07-31 2019-09-24 Digilens Inc. Method and apparatus for contact image sensing
US10089516B2 (en) 2013-07-31 2018-10-02 Digilens, Inc. Method and apparatus for contact image sensing
KR20160102481A (en) * 2013-12-26 2016-08-30 마이크로소프트 테크놀로지 라이센싱, 엘엘씨 Eye tracking apparatus, method and system
US9759913B2 (en) 2013-12-26 2017-09-12 Microsoft Technology Licensing, Llc Eye tracking apparatus, method and system
KR102273001B1 (en) 2013-12-26 2021-07-06 마이크로소프트 테크놀로지 라이센싱, 엘엘씨 Eye tracking apparatus, method and system
KR20210084669A (en) * 2013-12-26 2021-07-07 마이크로소프트 테크놀로지 라이센싱, 엘엘씨 Eye tracking apparatus, method and system
WO2015099924A1 (en) * 2013-12-26 2015-07-02 Microsoft Technology Licensing, Llc. Eye tracking apparatus, method and system
US9459451B2 (en) 2013-12-26 2016-10-04 Microsoft Technology Licensing, Llc Eye tracking apparatus, method and system
KR102341225B1 (en) 2013-12-26 2021-12-17 마이크로소프트 테크놀로지 라이센싱, 엘엘씨 Eye tracking apparatus, method and system
JPWO2015140859A1 (en) * 2014-03-17 2017-04-06 パナソニックIpマネジメント株式会社 Display device
US11709373B2 (en) 2014-08-08 2023-07-25 Digilens Inc. Waveguide laser illuminator incorporating a despeckler
US10359736B2 (en) 2014-08-08 2019-07-23 Digilens Inc. Method for holographic mastering and replication
US11307432B2 (en) 2014-08-08 2022-04-19 Digilens Inc. Waveguide laser illuminator incorporating a Despeckler
US9377623B2 (en) 2014-08-11 2016-06-28 Microsoft Technology Licensing, Llc Waveguide eye tracking employing volume Bragg grating
US10241330B2 (en) 2014-09-19 2019-03-26 Digilens, Inc. Method and apparatus for generating input images for holographic waveguide displays
US11726323B2 (en) 2014-09-19 2023-08-15 Digilens Inc. Method and apparatus for generating input images for holographic waveguide displays
US9494799B2 (en) 2014-09-24 2016-11-15 Microsoft Technology Licensing, Llc Waveguide eye tracking employing switchable diffraction gratings
WO2016048729A1 (en) * 2014-09-24 2016-03-31 Microsoft Technology Licensing, Llc Waveguide eye tracking employing switchable diffraction gratings
US10423222B2 (en) 2014-09-26 2019-09-24 Digilens Inc. Holographic waveguide optical tracker
US11726329B2 (en) 2015-01-12 2023-08-15 Digilens Inc. Environmentally isolated waveguide display
US10437064B2 (en) 2015-01-12 2019-10-08 Digilens Inc. Environmentally isolated waveguide display
US11740472B2 (en) 2015-01-12 2023-08-29 Digilens Inc. Environmentally isolated waveguide display
US11480788B2 (en) 2015-01-12 2022-10-25 Digilens Inc. Light field displays incorporating holographic waveguides
US10330777B2 (en) 2015-01-20 2019-06-25 Digilens Inc. Holographic waveguide lidar
US11703645B2 (en) 2015-02-12 2023-07-18 Digilens Inc. Waveguide grating device
US10156681B2 (en) 2015-02-12 2018-12-18 Digilens Inc. Waveguide grating device
US10527797B2 (en) 2015-02-12 2020-01-07 Digilens Inc. Waveguide grating device
JP2018508144A (en) * 2015-02-26 2018-03-22 ノキア テクノロジーズ オーユー Near-eye display device
US11347960B2 (en) 2015-02-26 2022-05-31 Magic Leap, Inc. Apparatus for a near-eye display
US10878235B2 (en) 2015-02-26 2020-12-29 Magic Leap, Inc. Apparatus for a near-eye display
WO2016135375A1 (en) * 2015-02-26 2016-09-01 Nokia Technologies Oy Apparatus for a near-eye display
EP3062142A1 (en) * 2015-02-26 2016-08-31 Nokia Technologies OY Apparatus for a near-eye display
US11756335B2 (en) 2015-02-26 2023-09-12 Magic Leap, Inc. Apparatus for a near-eye display
US10459145B2 (en) 2015-03-16 2019-10-29 Digilens Inc. Waveguide device incorporating a light pipe
US10591756B2 (en) 2015-03-31 2020-03-17 Digilens Inc. Method and apparatus for contact image sensing
US10416456B2 (en) 2015-07-03 2019-09-17 Essilor International Methods and systems for augmented reality
WO2017005614A1 (en) * 2015-07-03 2017-01-12 Essilor International (Compagnie Generale D'optique) Methods and systems for augmented reality
US10302945B2 (en) 2015-08-12 2019-05-28 Google Llc Near-eye display with stacked lightguides
US10690916B2 (en) 2015-10-05 2020-06-23 Digilens Inc. Apparatus for providing waveguide displays with two-dimensional pupil expansion
US11754842B2 (en) 2015-10-05 2023-09-12 Digilens Inc. Apparatus for providing waveguide displays with two-dimensional pupil expansion
US11281013B2 (en) 2015-10-05 2022-03-22 Digilens Inc. Apparatus for providing waveguide displays with two-dimensional pupil expansion
US11054648B2 (en) * 2016-02-04 2021-07-06 Google Llc Compact near-eye display optics for higher optical performance
US10983340B2 (en) 2016-02-04 2021-04-20 Digilens Inc. Holographic waveguide optical tracker
US11604314B2 (en) 2016-03-24 2023-03-14 Digilens Inc. Method and apparatus for providing a polarization selective holographic waveguide device
US10890707B2 (en) 2016-04-11 2021-01-12 Digilens Inc. Holographic waveguide apparatus for structured light projection
US11513350B2 (en) 2016-12-02 2022-11-29 Digilens Inc. Waveguide device with uniform output illumination
US11790554B2 (en) 2016-12-29 2023-10-17 Magic Leap, Inc. Systems and methods for augmented reality
US11210808B2 (en) 2016-12-29 2021-12-28 Magic Leap, Inc. Systems and methods for augmented reality
US11874468B2 (en) 2016-12-30 2024-01-16 Magic Leap, Inc. Polychromatic light out-coupling apparatus, near-eye displays comprising the same, and method of out-coupling polychromatic light
US11199713B2 (en) 2016-12-30 2021-12-14 Magic Leap, Inc. Polychromatic light out-coupling apparatus, near-eye displays comprising the same, and method of out-coupling polychromatic light
CN110168416A (en) * 2017-01-04 2019-08-23 3M创新有限公司 Asymmetric turning film with the distribution of apical cap type light output
US10545346B2 (en) 2017-01-05 2020-01-28 Digilens Inc. Wearable heads up displays
US11194162B2 (en) 2017-01-05 2021-12-07 Digilens Inc. Wearable heads up displays
US11586046B2 (en) 2017-01-05 2023-02-21 Digilens Inc. Wearable heads up displays
US11347061B2 (en) 2017-02-23 2022-05-31 Google Llc Compact eye tracking using folded display optics
US10545347B2 (en) 2017-02-23 2020-01-28 Google Llc Compact eye tracking using folded display optics
WO2018156941A1 (en) * 2017-02-23 2018-08-30 Google Llc Compact eye tracking using folded display optics
US11927759B2 (en) 2017-07-26 2024-03-12 Magic Leap, Inc. Exit pupil expander
US11567324B2 (en) 2017-07-26 2023-01-31 Magic Leap, Inc. Exit pupil expander
US10394034B2 (en) 2017-08-15 2019-08-27 Microsoft Technology Licensing, Llc Eye-tracking with MEMS scanning and optical relay
WO2019036108A1 (en) * 2017-08-15 2019-02-21 Microsoft Technology Licensing, Llc Eye-tracking with mems scanning and optical relay
US10942430B2 (en) 2017-10-16 2021-03-09 Digilens Inc. Systems and methods for multiplying the image resolution of a pixelated display
US11280937B2 (en) 2017-12-10 2022-03-22 Magic Leap, Inc. Anti-reflective coatings on optical waveguides
US11187923B2 (en) 2017-12-20 2021-11-30 Magic Leap, Inc. Insert for augmented reality viewing device
US11762222B2 (en) 2017-12-20 2023-09-19 Magic Leap, Inc. Insert for augmented reality viewing device
US10732569B2 (en) 2018-01-08 2020-08-04 Digilens Inc. Systems and methods for high-throughput recording of holographic gratings in waveguide cells
US10914950B2 (en) 2018-01-08 2021-02-09 Digilens Inc. Waveguide architectures and related methods of manufacturing
US11776509B2 (en) 2018-03-15 2023-10-03 Magic Leap, Inc. Image correction due to deformation of components of a viewing device
US11908434B2 (en) 2018-03-15 2024-02-20 Magic Leap, Inc. Image correction due to deformation of components of a viewing device
US11189252B2 (en) 2018-03-15 2021-11-30 Magic Leap, Inc. Image correction due to deformation of components of a viewing device
US10690851B2 (en) 2018-03-16 2020-06-23 Digilens Inc. Holographic waveguides incorporating birefringence control and methods for their fabrication
US11150408B2 (en) 2018-03-16 2021-10-19 Digilens Inc. Holographic waveguides incorporating birefringence control and methods for their fabrication
US11726261B2 (en) 2018-03-16 2023-08-15 Digilens Inc. Holographic waveguides incorporating birefringence control and methods for their fabrication
US11204491B2 (en) 2018-05-30 2021-12-21 Magic Leap, Inc. Compact variable focus configurations
US11885871B2 (en) 2018-05-31 2024-01-30 Magic Leap, Inc. Radar head pose localization
US11200870B2 (en) 2018-06-05 2021-12-14 Magic Leap, Inc. Homography transformation matrices based temperature calibration of a viewing system
US11092812B2 (en) 2018-06-08 2021-08-17 Magic Leap, Inc. Augmented reality viewer with automated surface selection placement and content orientation placement
US11579441B2 (en) 2018-07-02 2023-02-14 Magic Leap, Inc. Pixel intensity modulation using modifying gain values
US11856479B2 (en) 2018-07-03 2023-12-26 Magic Leap, Inc. Systems and methods for virtual and augmented reality along a route with markers
US11510027B2 (en) 2018-07-03 2022-11-22 Magic Leap, Inc. Systems and methods for virtual and augmented reality
US11598651B2 (en) 2018-07-24 2023-03-07 Magic Leap, Inc. Temperature dependent calibration of movement detection devices
US11624929B2 (en) 2018-07-24 2023-04-11 Magic Leap, Inc. Viewing device with dust seal integration
US11402801B2 (en) 2018-07-25 2022-08-02 Digilens Inc. Systems and methods for fabricating a multilayer optical structure
US11630507B2 (en) 2018-08-02 2023-04-18 Magic Leap, Inc. Viewing system with interpupillary distance compensation based on head motion
US11112862B2 (en) 2018-08-02 2021-09-07 Magic Leap, Inc. Viewing system with interpupillary distance compensation based on head motion
US11216086B2 (en) 2018-08-03 2022-01-04 Magic Leap, Inc. Unfused pose-based drift correction of a fused pose of a totem in a user interaction system
US11609645B2 (en) 2018-08-03 2023-03-21 Magic Leap, Inc. Unfused pose-based drift correction of a fused pose of a totem in a user interaction system
US11521296B2 (en) 2018-11-16 2022-12-06 Magic Leap, Inc. Image size triggered clarification to maintain image sharpness
US10914949B2 (en) 2018-11-16 2021-02-09 Magic Leap, Inc. Image size triggered clarification to maintain image sharpness
US11425189B2 (en) 2019-02-06 2022-08-23 Magic Leap, Inc. Target intent-based clock speed determination and adjustment to limit total heat generated by multiple processors
US11543594B2 (en) 2019-02-15 2023-01-03 Digilens Inc. Methods and apparatuses for providing a holographic waveguide display using integrated gratings
US11762623B2 (en) 2019-03-12 2023-09-19 Magic Leap, Inc. Registration of local content between first and second augmented reality viewers
US11378732B2 (en) 2019-03-12 2022-07-05 DigLens Inc. Holographic waveguide backlight and related methods of manufacturing
US11445232B2 (en) 2019-05-01 2022-09-13 Magic Leap, Inc. Content provisioning system and method
US11747568B2 (en) 2019-06-07 2023-09-05 Digilens Inc. Waveguides incorporating transmissive and reflective gratings and related methods of manufacturing
US11514673B2 (en) 2019-07-26 2022-11-29 Magic Leap, Inc. Systems and methods for augmented reality
US11681143B2 (en) 2019-07-29 2023-06-20 Digilens Inc. Methods and apparatus for multiplying the image resolution and field-of-view of a pixelated display
US11592614B2 (en) 2019-08-29 2023-02-28 Digilens Inc. Evacuated gratings and methods of manufacturing
US11899238B2 (en) 2019-08-29 2024-02-13 Digilens Inc. Evacuated gratings and methods of manufacturing
US11442222B2 (en) 2019-08-29 2022-09-13 Digilens Inc. Evacuated gratings and methods of manufacturing
US11737832B2 (en) 2019-11-15 2023-08-29 Magic Leap, Inc. Viewing system for use in a surgical environment
US11928257B2 (en) 2021-02-17 2024-03-12 Samsung Electronics Co., Ltd. Method and electronic device for tracking eye
US11953653B2 (en) 2022-02-07 2024-04-09 Magic Leap, Inc. Anti-reflective coatings on optical waveguides

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US8998414B2 (en) 2015-04-07
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