Abstract:
In one embodiment an electronic device comprises a display, a motion sensor, one or more wireless communication devices, and logic configured to receive, in the controller, data indicating that the controller is in motion, determine a velocity of the controller, and activate a first location service to determine a coarse location of the controller when the velocity of the controller falls above a predetermined threshold for a predetermined period of time. Other embodiments may be described.
Abstract:
An approach for managing the privacy and disclosure of location information associated with a computer system. For one aspect, a request is received from a requestor for a location property associated with a location of a computer system. It is then determined whether a privacy preference associated with the requestor has been specified. If not, a user may be prompted to supply privacy preferences associated with the requestor. The privacy preferences are then applied to determine whether or not to provide the requested information. A user setting, such as a basic input-output system memory location setting, may also be implemented to enable and/or disable location-aware computing.
Abstract:
An apparatus is provided that includes a microcontroller to facilitate data communication within a system comprising a plurality of peripheral devices, a power manager to put the microcontroller into a sleep state to save power, and an I/O controller to enable communication between two or more particular peripheral devices in the plurality of peripheral devices without involvement of the microcontroller while the microcontroller is in the sleep state. The microcontroller is to wake from the sleep state in response to at least one signal from a component of the system external to the microcontroller and communication between at least some of the plurality of peripheral devices is facilitated using the microcontroller when in an awake state.
Abstract:
Embodiments of a method and apparatus are described for operating a mobile computing device in different modes using different operating systems. An apparatus may comprise, for example, a memory operative to store multiple operating systems, a processor operative to execute the multiple operating systems, an operating system management module operative to select a first operating system when the mobile computing device is in a first mode or a second operating system when the mobile computing device is in a second mode and the mobile computing device is coupled to one or more external devices. Other embodiments are described and claimed.
Abstract:
An approach for managing the privacy and disclosure of location information associated with a computer system. For one aspect, a request is received from a requestor for a location property associated with a location of a computer system. It is then determined whether a privacy preference associated with the requestor has been specified. If not, a user may be prompted to supply privacy preferences associated with the requestor. The privacy preferences are then applied to determine whether or not to provide the requested information. A user setting, such as a basic input-output system memory location setting, may also be implemented to enable and/or disable location-aware computing.
Abstract:
A computing system is described that includes a main system bus that remains active while said computing system operates within a non main CPU/OS based operational state. The computing system also includes a controller that operates functional tasks while the computing system is within the non main CPU/OS based operational state. The computing system also includes an I/O unit coupled to the main system bus that remains active while the computing system operates within the non main CPU/OS based operational state.
Abstract:
A computing system is described that includes a main system bus that remains active while said computing system operates within a non main CPU/OS based operational state. The computing system also includes a controller that operates functional tasks while the computing system is within the non main CPU/OS based operational state. The computing system also includes an I/O unit coupled to the main system bus that remains active while the computing system operates within the non main CPU/OS based operational state.
Abstract:
A computing system is described that includes a main system bus that remains active while said computing system operates within a non main CPU/OS based operational state. The computing system also includes a controller that operates functional tasks while the computing system is within the non main CPU/OS based operational state. The computing system also includes an I/O unit coupled to the main system bus that remains active while the computing system operates within the non main CPU/OS based operational state.
Abstract:
A computing system is described that includes a main system bus that remains active while said computing system operates within a non main CPU/OS based operational state. The computing system also includes a controller that operates functional tasks while the computing system is within the non main CPU/OS based operational state. The computing system also includes an I/O unit coupled to the main system bus that remains active while the computing system operates within the non main CPU/OS based operational state.