Abstract:
Systems, apparatuses and methods may provide for technology that sends first operation instructions to a first platoon of autonomous vehicles positioned behind a first lead vehicle, wherein the first operation instructions correspond to a manual operation of the first lead vehicle. The technology may also establish a direct communications link between the first lead vehicle and a second lead vehicle positioned ahead of the first lead vehicle, wherein the second lead vehicle is to be associated with a second platoon of autonomous vehicles. Additionally, the technology broadcasts second operation instructions from the direct communications link to the first platoon of autonomous vehicles while the first lead vehicle is in an autonomous mode, wherein the second operation instructions correspond to a manual operation of the second lead vehicle. The technology may also discontinue the direct communications link between the first lead vehicle and the second lead vehicle.
Abstract:
In an embodiment of the invention, a portable electronic device may conserve power while in a normal power mode. The display screen of the portable electronic device may be switched from an original screen mode to an adjusted screen mode. In adjusted screen mode, the display screen may display an adjustable displaying area that is reduced from an original size and it may include an inactive area sized to reduce display consumption of power. An original interface, or a portion thereof, may be displayed in the adjustable displaying area. Other embodiments are described and claimed.
Abstract:
A vehicle (100) may include one or more image sensors (110) configured to provide sensor image data (112d) representing a sensor image of a vicinity of the vehicle (100), and one or more processors (120) configured to determine one or more obstacles (132) from the sensor image data (112d), to determine a distance from ground for each of the one or more obstacles (132) based its corresponding image object (114), and to trigger a safety operation when the distance from ground is equal to or less than a safety height associated with the vehicle (100). A method for avoiding a collision of a vehicle with one or more obstacles.
Abstract:
Apparatus, method and storage medium associated with a beverage dispensing apparatus are disclosed herein. In embodiments, a beverage dispensing apparatus may include a dispenser to dispense a beverage into a beverage container placed underneath the dispenser; one or more sensors to sense and collect depth data associated with the beverage container; and a controller coupled to the dispenser and the one or more sensors to control the dispenser's dispensation of the beverage, in accordance with a capacity of the beverage container inferred based at least in part on the collected depth data associated with the beverage container. Other embodiments may be disclosed or claimed.
Abstract:
An embodiment of a semiconductor package apparatus may include technology to analyze an electronic image to determine indirect information including one or more of shadow information and reflection information, and provide the indirect information to a vehicle guidance system. Other embodiments are disclosed and claimed.
Abstract:
Example haptic gloves for virtual reality systems and related methods are disclosed herein. An example apparatus disclosed herein includes a glove to be worn on a hand of a user, an ultrasonic array disposed on an inner surface of the glove, and a control unit to activate the ultrasonic array device to generate haptic feedback on the hand of the user.
Abstract:
Example haptic gloves for virtual reality systems and related methods are disclosed herein. An example apparatus disclosed herein includes a glove to be worn on a hand of a user, an ultrasonic array disposed on an inner surface of the glove, and a control unit to activate the ultrasonic array device to generate haptic feedback on the hand of the user.
Abstract:
Techniques are disclosed for analyzing a graph image in a disconnected mode, e.g., when a graph is rendered as .jpeg, .gif, .png, and so on, and identifying a portion of the graph image associated with a plot/curve of interest. The identified portion of the graph image may then be utilized to generate an adjusted image. The adjusted image may therefore dynamically increase visibility of the plot/curve of interest relative to other plots/curves, and thus the present disclosures provides additional graph functionalities without access to the data originally used to generate the graph. The disconnected graph functionalities disclosed herein may be implemented within an Internet browser or other “app” that may present images depicting graphs to a user.
Abstract:
In an embodiment, a method includes receiving user interface information having event registrations for a user interface to be displayed on a display of a system, partitioning the display into an unused display area and an active display area based on the event registrations, and power managing the unused display area while maintaining the active display area fully powered. Other embodiments are described and claimed.
Abstract:
The present disclosure is directed at pairing a host electronic device with a peripheral electronic device using visual recognition and deep learning techniques. In particular, the host device may receive an indication of a peripheral device via a camera or as a result of searching for the peripheral device (e.g., due startup of a related application or periodic scanning). The host device may also receive an image of the peripheral device (e.g., captured via the camera), and determine a visual distance to the peripheral device based on the image. The host device may also determine a signal strength of the peripheral device, and determine a signal distance to the peripheral device based on the signal strength. The host device may pair with the peripheral device if the visual distance and the signal distance are approximately equal.