Abstract:
Systems and methods for providing a slalom racing gate monitor system are provided herein. A system includes a microcontroller; a first, second, and third sensor, each coupled to the microcontroller, the first, second, and third sensors each having a field of view and disposed on a slalom pole, and disposed where the fields of view of the first, second, and third sensors substantially cover a 360 degree field of view around the slalom pole; wherein the microcontroller is to: obtain a sequence of sensor readings from a plurality of sensors of the first, second, and third sensors, each reading in the sequence of sensor readings indicating an object detected in the field of view of the respective sensor; determine whether the object passed the slalom pole on a correct side; and present a notification of whether the object passed the slalom pole on the correct side.
Abstract:
An electronic device may be provided that includes a first housing. The first housing may include a plurality of electronic components, and a circuit board having a first surface and a second surface. At least one of the electronic components may be provided on the second surface of the circuit board. The circuit board may be configured as a chassis of the first housing.
Abstract:
An electronic device may be provided that includes a first housing. The first housing may include a plurality of electronic components, and a circuit board having a first surface and a second surface. At least one of the electronic components may be provided on the second surface of the circuit board. The circuit board may be configured as a chassis of the first housing.
Abstract:
Embodiments of the invention utilize one or more vibration elements to enhance the audio output of a computing device. These vibration element(s) may comprise any conventional vibrating element including a mass element (i.e., counterweight) electrically driven via an actuator to produce the vibrations. The size of the mass element/counterweight may be selected based on the desired strength and frequency for the vibration components (i.e., lower frequencies may utilized larger/heavier mechanisms). Computing devices may process audio data and separately output some of the data for speakers (higher frequency data), and some of the data for vibration elements (lower frequency data). The surface where the device is placed creates a sounding board structure and the vibration elements generate the sensation of physical motion at low, sub-bass and sub-audio frequencies. This physical motion may be perceived by the user as low-frequency audio data, thereby enhancing the audio output of the speakers.
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:
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:
Device, system, and method for display calibration. For example, an apparatus includes: one or more color sensors, embedded within a body of a mobile device, to measure one or more color attributes of a visual element displayed by a display unit of the mobile device when a lid of the mobile device is in a closed position; and a color calibrator to calibrate one or more parameters of the display unit based on the one or more color attributes measured by the one or more color sensors.
Abstract:
Methods, apparatus, systems are disclosed for altering displayed content on a display device responsive to a user's proximity. In accord with an example, a computing system includes a display, a sensor to output a signal, machine readable instructions, and programmable circuitry to be programmed in accordance with the instructions to determine a distance between the compute system and a person based on the signal, and cause a size of at least one object to be presented on the display to be adjusted based on the distance.
Abstract:
Methods, apparatus, systems are disclosed for altering displayed content on a display device responsive to a user's proximity. In accord with an example, a computing system includes a display, a sensor to output a signal, machine readable instructions, and programmable circuitry to be programmed in accordance with the instructions to intermittingly determine a distance between the compute system and a person based on the signal, and cause a size of at least one object to be presented on the display to be adjusted based on the distance.