Patent classifications
G09B9/44
AUGMENTED REALITY FOR VEHICLE OPERATIONS
Systems, methods, and computer products according to the principles of the present inventions may involve a training system for a pilot of an aircraft. The training system may include an aircraft sensor system affixed to the aircraft adapted to provide a location of the aircraft, including an altitude of the aircraft, speed of the aircraft, and directional attitude of the aircraft. It may further include a helmet position sensor system adapted to determine a location of a helmet within a cockpit of the aircraft and a viewing direction of a pilot wearing the helmet. The helmet may include a see-through computer display through which the pilot sees an environment outside of the aircraft with computer content overlaying the environment to create an augmented reality view of the environment for the pilot. A computer content presentation system may be adapted to present computer content to the see-through computer display at a virtual marker, generated by the computer content presentation system, representing a geospatial position of a training asset moving within a visual range of the pilot, such that the pilot sees the computer content from a perspective consistent with the aircraft's position, altitude, attitude, and the pilot's helmet position when the pilot's viewing direction is aligned with the virtual marker.
AUGMENTED REALITY FOR VEHICLE OPERATIONS
Systems, methods, and computer products according to the principles of the present inventions may involve a training system for a pilot of an aircraft. The training system may include an aircraft sensor system affixed to the aircraft adapted to provide a location of the aircraft, including an altitude of the aircraft, speed of the aircraft, and directional attitude of the aircraft. It may further include a helmet position sensor system adapted to determine a location of a helmet within a cockpit of the aircraft and a viewing direction of a pilot wearing the helmet. The helmet may include a see-through computer display through which the pilot sees an environment outside of the aircraft with computer content overlaying the environment to create an augmented reality view of the environment for the pilot. A computer content presentation system may be adapted to present computer content to the see-through computer display at a virtual marker, generated by the computer content presentation system, representing a geospatial position of a training asset moving within a visual range of the pilot, such that the pilot sees the computer content from a perspective consistent with the aircraft's position, altitude, attitude, and the pilot's helmet position when the pilot's viewing direction is aligned with the virtual marker.
AUGMENTED REALITY FOR VEHICLE OPERATIONS
Systems, methods, and computer products according to the principles of the present inventions may involve a training system for a pilot of an aircraft. The training system may include an aircraft sensor system affixed to the aircraft adapted to provide a location of the aircraft, including an altitude of the aircraft, speed of the aircraft, and directional attitude of the aircraft. It may further include a helmet position sensor system adapted to determine a location of a helmet within a cockpit of the aircraft and a viewing direction of a pilot wearing the helmet. The helmet may include a see-through computer display through which the pilot sees an environment outside of the aircraft with computer content overlaying the environment to create an augmented reality view of the environment for the pilot. A computer content presentation system may be adapted to present computer content to the see-through computer display at a virtual marker, generated by the computer content presentation system, representing a geospatial position of a training asset moving within a visual range of the pilot, such that the pilot sees the computer content from a perspective consistent with the aircraft's position, altitude, attitude, and the pilot's helmet position when the pilot's viewing direction is aligned with the virtual marker.
AUGMENTED REALITY FOR VEHICLE OPERATIONS
Systems, methods, and computer products according to the principles of the present inventions may involve a training system for a pilot of an aircraft. The training system may include an aircraft sensor system affixed to the aircraft adapted to provide a location of the aircraft, including an altitude of the aircraft, speed of the aircraft, and directional attitude of the aircraft. It may further include a helmet position sensor system adapted to determine a location of a helmet within a cockpit of the aircraft and a viewing direction of a pilot wearing the helmet. The helmet may include a see-through computer display through which the pilot sees an environment outside of the aircraft with computer content overlaying the environment to create an augmented reality view of the environment for the pilot. A computer content presentation system may be adapted to present computer content to the see-through computer display at a virtual marker, generated by the computer content presentation system, representing a geospatial position of a training asset moving within a visual range of the pilot, such that the pilot sees the computer content from a perspective consistent with the aircraft's position, altitude, attitude, and the pilot's helmet position when the pilot's viewing direction is aligned with the virtual marker.
METHODS, SYSTEMS, APPARATUSES, AND DEVICES FOR FACILITATING PROVISIONING OF A VIRTUAL EXPERIENCE IN A RACING ENVIRONMENT
A computer system including a memory in communication with a processor, the memory storing instructions that when executed by the processor cause the processor to maintain a virtual environment, manage a virtual asset within the virtual environment, map a geospatial position of a real vehicle into a position within the virtual environment representative of the geospatial position. determine a measurement between the position of the real vehicle in the virtual environment to the virtual asset and communicate content representative of the virtual asset to a mixed reality optical system configured for an operator of the real vehicle, wherein the content is presented at a time and position based, at least in part, on the measurement.
METHODS, SYSTEMS, APPARATUSES, AND DEVICES FOR FACILITATING PROVISIONING OF A VIRTUAL EXPERIENCE IN A RACING ENVIRONMENT
A computer system including a memory in communication with a processor, the memory storing instructions that when executed by the processor cause the processor to maintain a virtual environment, manage a virtual asset within the virtual environment, map a geospatial position of a real vehicle into a position within the virtual environment representative of the geospatial position. determine a measurement between the position of the real vehicle in the virtual environment to the virtual asset and communicate content representative of the virtual asset to a mixed reality optical system configured for an operator of the real vehicle, wherein the content is presented at a time and position based, at least in part, on the measurement.
METHODS, SYSTEMS, APPARATUSES, AND DEVICES FOR FACILITATING PROVISIONING OF A VIRTUAL EXPERIENCE IN A GAMING ENVIRONMENT
A computer system, includes a memory in communication with a processor, the memory storing instructions that when executed by the processor cause the processor to maintain a virtual environment, manage a virtual asset within the virtual environment, map a geospatial position of a real vehicle into a position within the virtual environment representative of the geospatial position and determine a measurement between the position of the real vehicle in the virtual environment to the virtual asset, wherein one or more attributes of the virtual asset are controlled by a user playing a game comprising the virtual environment and wherein the user controls the virtual asset with respect to a virtual representation of the real vehicle.
Augmented reality for vehicle operations
An augmented reality system, includes a head-mounted see-through optic adapted to present digital content viewable by a user and having a transparency that allows the user to see though to the surrounding environment, a non-visual tracking system adapted to identify and track objects in a surrounding environment that cannot be seen visually, a training simulation system adapted to present a virtual training object on a display on the non-visual tracking system and a virtual content presentation system adapted to present digital content in the optic when the distance between the optic and the virtual training object indicates the object is in visual range.
Augmented reality for vehicle operations
An augmented reality system, includes a head-mounted see-through optic adapted to present digital content viewable by a user and having a transparency that allows the user to see though to the surrounding environment, a non-visual tracking system adapted to identify and track objects in a surrounding environment that cannot be seen visually, a training simulation system adapted to present a virtual training object on a display on the non-visual tracking system and a virtual content presentation system adapted to present digital content in the optic when the distance between the optic and the virtual training object indicates the object is in visual range.
Augmented reality for vehicle operations
A method of training a plurality of pilots, each in a separate real aircraft, includes providing a head mounted see-through computer display (HMD) to each of the plurality of pilots such that each of the plurality of pilots are enabled to view a common virtual environment with computer rendered training content, tracking a location, attitude and speed of each of the separate real aircraft, positioning the computer rendered training content at a geospatial location within a visual range of each of the plurality of pilots and presenting the computer rendered training content to the HMD of each of the plurality of pilots, wherein the presentation in each individual HMD is dependent on an alignment of each respective HMD and the computer rendered content geospatial location.