G03H1/024

Holographic reproducing apparatus and method, holographic implementing device and method

The present disclosure relates to a holographic reproducing apparatus comprising: a light source configured to supply a reproducing light beam to be incident to a photorefractive crystal, wherein the photorefractive crystal has holographic images recorded therein in a plurality of different angles respectively; a reflective mirror configured to reflect the reproducing light beam emitted from the light source to the photorefractive crystal; and a driving mechanism connected to the reflective mirror and configured to drive the reflective mirror to move on a plane elliptical arc, the plane elliptical arc is defined by using the light source and the photorefractive crystal as two mathematical focuses and using a predetermined constant, so that an incident angle of the reproducing light beam to be incident to the photorefractive crystal varies to form a plurality of reproducing light beams in different angles to be incident to the photorefractive crystal in sequence.

INTEGRATED OPTICAL CIRCUIT FOR HOLOGRAPHIC INFORMATION PROCESSING
20190041796 · 2019-02-07 ·

An integrated optical circuit for holographic information processing is disclosed. The optical circuit comprises a photorefractive medium and two transmitter arrays. The transmitter arrays are adapted for locally changing the refractive index of the photorefractive medium for holographic encoding of the information in a working plane of the photorefractive medium by transmitting light via optical paths into the photorefractive medium such that an interference pattern is generated in the working plane. The optical paths and the working plane are arranged in a single optical plane.

Integrated optical circuit for holographic information processing

An integrated optical circuit for holographic information processing is disclosed. The optical circuit comprises a photorefractive medium and two transmitter arrays. The transmitter arrays are adapted for locally changing the refractive index of the photorefractive medium for holographic encoding of the information in a working plane of the photorefractive medium by transmitting light via optical paths into the photorefractive medium such that an interference pattern is generated in the working plane. The optical paths and the working plane are arranged in a single optical plane.

Vehicle Onboard Holographic Communication System
20190018364 · 2019-01-17 · ·

A novel vehicle onboard holographic communication system is configured to generate, manage, and display various three-dimensional holographic objects, holographic digital assistance, and dynamically-updatable holographic contents in automotive infotainment, vehicle control, and occupant communication environments. Preferably, the vehicle onboard holographic communication system includes a vehicle infotainment hardware module, a vehicle infotainment operating system (e.g. Apple CarPlay, Android Auto, etc.) and a vehicle onboard holographic communication operating system (e.g. HoloDash OS) executed in a CPU and a memory unit of the vehicle infotainment hardware module, and a holographic display pod integrated into a vehicle dashboard or another part of the vehicle interior. The in-vehicle holographic display pod provides lifelike high-resolution 3D holographic objects for vehicle occupant infotainment, vehicle control, and communication applications. Furthermore, the vehicle onboard holographic communication system allows in-vehicle holograms to receive and interpret driver or passenger gesture commands with embedded sensors, which enable bilaterally-interactive experiences with the in-vehicle holograms.

CUSTOMIZABLE THREE-DIMENSIONAL INTERACTIVE VISUALIZATION AND MULTI-SENSORY SYSTEM AND METHOD
20190011700 · 2019-01-10 ·

The present invention relates to one or multiple customizable interactive three-dimensional (3D) visualization and multi-sensory technologies useful in a variety of applications, including medical applications and e-commerce. In addition to visualization (which is a common sensory output for all technologies used in the present invention), a number of additional sensory data can be derived including (but not limited to) taste, hearing, smell, vibration, and motion. From this multi-sensory data, in combination with 3D imagery, a myriad of applications can be derived for interactive analysis, including the creation, modification, testing, comparison, query, analysis, and refinement of imaging data, on an individual or collective basis.

High dynamic range two-stage photopolymers

The present invention, in one aspect, relates to monomers and photopolymers that exhibit a high refractive index. The photopolymers of the invention have properties suitable for fabricating holographic optical elements (HOEs).

SYSTEMS, DEVICES, AND METHODS FOR EYEBOX EXPANSION IN WEARABLE HEADS-UP DISPLAY
20180321494 · 2018-11-08 ·

Systems, devices, and methods for eyebox expansion in wearable heads-up displays (WHUD) are described. A WHUD includes a support structure, a scanning laser projector (SLP), a split mirror, an optical splitter, and a holographic combiner. When the WHUD is worn on the head of a user the holographic combiner is positioned in a field of view of the user. The SLP scans light signals onto the split mirror which reflects the light signals onto the optical splitter. The optical splitter redirects the light signals towards the holographic combiner such that subsets of the light signals originate from spatially-separated virtual positions. The holographic combiner redirects the light to the eye resulting in spatially-separated exit pupils. The spatial separation of the exit pupils results in an expanded eyebox. The indirect path of light from SLP to optical splitter enables a smaller and therefore more aesthetically desirable design for the WHUD.

SYSTEMS, DEVICES, AND METHODS FOR EYEBOX EXPANSION IN WEARABLE HEADS-UP DISPLAY
20180321495 · 2018-11-08 ·

Systems, devices, and methods for eyebox expansion in wearable heads-up displays (WHUD) are described. A WHUD includes a support structure, a scanning laser projector (SLP), a split mirror, an optical splitter, and a holographic combiner. When the WHUD is worn on the head of a user the holographic combiner is positioned in a field of view of the user. The SLP scans light signals onto the split mirror which reflects the light signals onto the optical splitter. The optical splitter redirects the light signals towards the holographic combiner such that subsets of the light signals originate from spatially-separated virtual positions. The holographic combiner redirects the light to the eye resulting in spatially-separated exit pupils. The spatial separation of the exit pupils results in an expanded eyebox. The indirect path of light from SLP to optical splitter enables a smaller and therefore more aesthetically desirable design for the WHUD.

Fingerprint Sensor Integrated Display Using Holographic Optical Element
20180314206 · 2018-11-01 ·

A fingerprint sensor integrated display using a holographic optical element and a recording and reconstruction method of the holographic optical element are disclosed. The fingerprint sensor integrated display includes a display panel on which an input image is displayed, a transparent substrate disposed on the display panel, and a light entering element configured to irradiate light from a light source onto the transparent substrate. A particular type of visual information is reconstructed through a holographic element at a location of the light entering element.

HOLOGRAPHIC REPRODUCING APPARATUS AND METHOD, HOLOGRAPHIC IMPLEMENTING DEVICE AND METHOD
20180275605 · 2018-09-27 ·

The present disclosure relates to a holographic reproducing apparatus comprising: a light source configured to supply a reproducing light beam to be incident to a photorefractive crystal, wherein the photorefractive crystal has holographic images recorded therein in a plurality of different angles respectively; a reflective mirror configured to reflect the reproducing light beam emitted from the light source to the photorefractive crystal; and a driving mechanism connected to the reflective mirror and configured to drive the reflective mirror to move on a plane elliptical arc, the plane elliptical arc is defined by using the light source and the photorefractive crystal as two mathematical focuses and using a predetermined constant, so that an incident angle of the reproducing light beam to be incident to the photorefractive crystal varies to form a plurality of reproducing light beams in different angles to be incident to the photorefractive crystal in sequence.