Patent classifications
G09B9/063
Systems and methods for incorporating pneumatic robotic systems into structures
A system may include a virtual reality system configured to present one or more virtual objects via an electronic display. The system may also include one or more inflatable objects that correspond to the one or more virtual objects, such that the one or more inflatable objects matches one or more shapes of the one or more virtual objects. The system may also include a processor configured to cause at least one of the one or more inflatable objects to inflate based on feedback from the virtual reality system.
Helmet point-of-view training and monitoring method and apparatus
A helmet point-of-view training and monitoring method and apparatus to solve problems encountered in the training and monitoring of pilots of airplanes and other air, sea, land, and space vessels, or vehicles where the seating arrangement in the cockpit prevents an instructor or evaluator from sitting beside or directly observing the pilot's view of the controls and indicators in the cockpit and the outside view from the pilot's position in the cockpit, by providing an apparatus to affix a camera to the standard multi-angle mounting surface found on pilot's helmets, in a proper position and at a proper angle, and by capturing a series of images from the pilot's point of view and displaying such images in real time to an instructor and as recordings for review by pilots, instructors, and others.
SYSTEMS AND METHODS FOR INCORPORATING PNEUMATIC ROBOTIC SYSTEMS INTO STRUCTURES
A system may include a virtual reality system configured to present one or more virtual objects via an electronic display. The system may also include one or more inflatable objects that correspond to the one or more virtual objects, such that the one or more inflatable objects matches one or more shapes of the one or more virtual objects. The system may also include a processor configured to cause at least one of the one or more inflatable objects to inflate based on feedback from the virtual reality system.
SYSTEMS AND METHODS FOR INCORPORATING PNEUMATIC ROBOTIC SYSTEMS INTO INFLATABLE OBJECTS
An inflatable assembly may include a housing that has a plurality of adjustment inflatables that may form a range of shapes at different levels of inflation. The inflatable may also include one or more sensors disposed on the housing and one or more valves disposed in the housing. The valves are controllable and configured to direct fluid flow into the plurality of adjustment inflatables. The assembly may also include a processor that receives data from the one or more sensors disposed on the housing and adjust one or more positions of the one or more valves based on the data to control fluid flow into one or more of the plurality of adjustment inflatables.
SYSTEMS AND METHODS FOR INCORPORATING PNEUMATIC ROBOTIC SYSTEMS INTO STRUCTURES
A system may include a virtual reality system configured to present one or more virtual objects via an electronic display. The system may also include one or more inflatable objects that correspond to the one or more virtual objects, such that the one or more inflatable objects matches one or more shapes of the one or more virtual objects. The system may also include a processor configured to cause at least one of the one or more inflatable objects to inflate based on feedback from the virtual reality system.
SYSTEMS AND METHODS FOR CUSTOMIZING AMUSEMENT PARK ATTRACTION EXPERIENCES USING PNEUMATIC ROBOTIC SYSTEMS
A system may include a housing that may hold a body of water, an inflatable assembly disposed within the body of water, and a processor. The processor may receive an indication related to a speed of a flow of the body of water and send a signal to at least one valve coupled between the inflatable assembly and a fluid source in response to the indication. The signal may cause the at least one valve to fluidly couple the inflatable assembly to the fluid source to cause the inflatable assembly to expand to an inflated configuration.
SYSTEMS AND METHODS FOR INCORPORATING PNEUMATIC ROBOTIC SYSTEMS INTO AMUSEMENT PARK ATTRACTIONS
A system may include an inflatable assembly having a plurality of members. The system may also include a plurality of sensors disposed at a plurality of positions inside or around the inflatable assembly, such that the plurality of sensors may acquire data related to a shape of the inflatable assembly. The system also includes one or more valves, each configured to direct a fluid into a corresponding member of the plurality of members of the inflatable assembly. The system also includes a processor that adjusts positions of the one or more valves to cause the fluid to be directed into the corresponding member of the plurality of members of the inflatable assembly based on the data and a desired shape of the inflatable assembly.
Sound Generator for Virtual Switches in a Simulator
A method and apparatus for managing a simulation. The method comprises detecting a user input manipulating a virtual control on a control panel displayed in a target output location on a display system in a simulator during the simulation of a platform. Further, the method comprises identifying a sound for the virtual control when the user input is detected. Still further, the method comprises controlling a speaker system to output the sound identified during the simulation in a manner that is perceived by a human operator to be from the target output location.
HELMET POINT-OF-VIEW TRAINING AND MONITORING METHOD AND APPARATUS
A helmet point-of-view training and monitoring method and apparatus to solve problems encountered in the training and monitoring of pilots of airplanes and other air, sea, land, and space vessels, or vehicles where the seating arrangement in the cockpit prevents an instructor or evaluator from sitting beside or directly observing the pilot's view of the controls and indicators in the cockpit and the outside view from the pilot's position in the cockpit, by providing an apparatus to affix a camera to the standard multi-angle mounting surface found on pilot's helmets, in a proper position and at a proper angle, and by capturing a series of images from the pilot's point of view and displaying such images in real time to an instructor and as recordings for review by pilots, instructors, and others.
Three-dimensional system for UUV performance
A vehicle test system is illustrated. The vehicle test system includes a vehicle simulator comprising hardware from a vehicle to be tested. The test system further includes a controller coupled to the vehicle simulator configured to control the vehicle simulator. The test system further includes a 3D environmental simulator coupled to the vehicle simulator, wherein the 3D environmental simulator is configured simulate a 3D environment and movement of a vehicle simulated by the vehicle simulator in the 3D environment based on control inputs to devices for the vehicle simulator.