Abstract:
In embodiments, apparatuses, methods and storage media (transitory and non-transitory) are described that receive sensor data from one or more sensor devices that depict a user gesture in three dimensional space, determine a flight path based at least in part on the sensor data, and store the flight path in memory for use to control operation of a drone. Other embodiments may be described and/or claimed.
Abstract:
Systems and methods may provide for identifying sensor data associated with an intraoral device and analyzing a chemical composition of an ingestible product based on the sensor data. Additionally, a notification may be selectively generated based on the chemical composition. In one example, analyzing the chemical composition includes determining the level of one or more of an allergen, a toxin or a predetermined substance in the ingestible product.
Abstract:
The disclosed embodiments generally relate to methods, systems and apparatuses to provide ad hoc digital signage for public or private display. In certain embodiments, the disclosure provides dynamically formed digital signage. In one application, one or more drones are used to project the desired signage. In another application one or more drones are used to form a background to receive the projected image. In still another application, sensors are used to detect audience movement, line of sight or engagement level. The sensor information is then used to arrange the projecting drones or the surface-image drones to further signage presentation.
Abstract:
Methods and apparatus relating to characterizing proximity risks within a radio mesh are described. In an embodiment, collection logic receives risk data from one or more source devices and memory stores the risk data. Pattern logic analyzes the stored risk data to determine existence of one or more risks. The risk data includes results of two-way ping signals communicated between the one or more source devices and a target device. Other embodiments are also disclosed and claimed.
Abstract:
Techniques to project an image from a wearable computing device are provided. A wearable computing device including a projector configured to project an image into a user field of view based on output from one or more sensors and/or images captured by a camera. The wearable computing device can also include a touch input device. The wearable computing device can project an image responsive to a users touch based on signals received from the touch input device.
Abstract:
System and techniques for user input via elastic deformation of a material are described herein. The morphology of an elastic material may be observed with a sensor. The observations may include a first and a second morphological sample of the elastic material. The first and second morphological samples may be compared against each other to ascertain a variance. The variance may be filtered to produce an output. The output may be translated into a user input parameter. A device action corresponding to the user input parameter may be invoked.
Abstract:
Embodiments for providing a wearable device are generally described herein. A wearable device may include a processor having memory and communicatively coupled to a plurality of display areas; and an orientation sensing module communicatively coupled to the processor to determine at least one of an orientation and a location of at least one of the plurality of display areas with respect to a point of view of a user; wherein the processor provides a function for at least one of the plurality of display areas based on the determined at least one of the orientation and the location of at least one of the plurality of display areas by the orientation sensing module.
Abstract:
Technologies for remotely controlling a separate computing device includes a wearable computing device to receive sensor data from an optical sensor of the wearable computing device. The sensor data comprises data is indicative of a skin surface of a forearm of a user of the wearable computing device. The wearable computing device generates control data based on the received sensor data. The generated control data is transmitted to the separate computing device. In some embodiments, an x-coordinate is generated based on detection of longitudinal movement of the wearable computing device relative to the skin surface of the forearm of the user and a y-coordinate is generated based on detection of rotational movement of the wearable computing device relative to the skin surface of the forearm of the user.
Abstract:
Various systems and methods for improving map and navigation data are described herein. An electronic navigation system for improving map and navigation data comprises a database access module to access a database of physiological information to obtain a biometric value, the biometric value associated with a location and a time; a processing module to determine whether the biometric value violates a threshold; and a display module to display a notification on a map when the threshold is violated, the map including an area around the location associated with the biometric value, and the notification displayed proximate to the location associated with the biometric value.
Abstract:
Methods and apparatus to operate closed-lid portable computers are disclosed. An example portable computer includes a first display on a lid of the portable computer, the first display to be deactivated when the lid is in a closed position; a second display distinct from the first display, the second display to be visible when the lid is in the closed position; instructions; and processor circuitry to execute the instructions to cause activation of the first display in response to a user interaction with the second display while the lid is in the closed position.