Abstract:
A chassis for an electronic device may include a first metal layer to form an inner surface of the chassis, an insulating layer on the first metal layer, and a second metal layer on the insulating layer. The second metal layer may be connected to a ground area of a circuit board to be provided in the chassis.
Abstract:
Computing devices and at least one machine readable medium for controlling the functioning of a touch screen are described herein. The computing device includes a touchscreen having one or more force sensors. The computing device also includes first logic to detect a force applied to the touchscreen via the one or more force sensors and second logic to control a functioning of the touchscreen in response to the applied force.
Abstract:
A system and method for automatic session data transfer between computing devices based on zone transition detection are disclosed. A particular embodiment is configured to: determine if a mobile or wearable computing device is located within a proximity zone around a location of a stationary computing device; establish an authorized wireless data connection with the mobile or wearable computing device via a wireless transceiver; determine if the mobile or wearable computing device is likely departing the proximity zone and if so, upload user session data to the mobile or wearable computing device; and determine if the mobile or wearable computing device is likely approaching the stationary computing device and if so, download user session data from the mobile or wearable computing device.
Abstract:
Methods and apparatus relating to context aware secure touch implementation of integrated touch are described. In an embodiment, a touch sensitive display device is configured into one or more touch active regions and one or more touch inactive regions. The one or more of the touch inactive regions are capable to communicate wireless signals. Other embodiments are also disclosed and claimed.
Abstract:
Particular embodiments described herein provide for a stylus that includes a body, a plurality of conductive traces, a resonance circuit, and a tip, wherein the tip can be used to interact with both an electromagnetic resonance touchscreen and a capacitive touchscreen. The conductive traces can be spaced such that the conductive traces do not substantially block a resonance frequency of the resonance circuit.
Abstract:
In one example an electronic device comprises at least one sensor to detect an input from a remote input source and a controller comprising logic, at least partly including hardware logic, to detect an input on the at least one sensor, generate a signal in response to the input; and forward the signal to an application. Other examples may be described.
Abstract:
FIG. 1 is a perspective view of a computer notebook, showing our new design; FIG. 2 is a top view of the computer notebook in FIG. 1; FIG. 3 is a bottom view of the computer notebook in FIG. 1; FIG. 4 is a front view of the computer notebook in FIG. 1; FIG. 5 is a back view of the computer notebook in FIG. 1; FIG. 6 is a side view of the computer notebook in FIG. 1; and, FIG. 7 is another side view of the computer notebook in FIG. 1. The broken lines shown in the drawings illustrate portions of the computer notebook that form no part of the claimed design.
Abstract:
An electronic device may include an organic light emitting display (OLED), a heat generating device, and a heat spreading device. The heat generating device may provide heat directly to the heat spreading device, and the heat spreading device is to dissipate the heat from the heat generating device and evenly heat the OLED and lower a driving voltage of the OLED to reduce power consumption of the OLED.