Abstract:
A communication system may include a plurality of geographically proximate nodes that communicate via one or more range-limited wireless technologies such as BLUETOOTH® low energy (BLE). An origin node may generate and communicate a first message responsive to detecting an event occurrence. The message may include an identifier associated with the origin node, data indicative of the event occurrence, a hop count, a maximum hop count, and a number of designated recipient nodes within the communication system. A first designated recipient node may, upon receiving the first message, attempt to confirm the event occurrence included in the first message. Upon confirming the event occurrence, the first designated recipient node may communicate a notification to an external third party. If unable to confirm the event occurrence, the first designated recipient node may generate and communicate a second message to a second designated recipient node included in the first message.
Abstract:
Systems, apparatuses, and methods for trusted vehicle messaging may include receiving a communication from one or more of an internal vehicle component or an external communication system and composing a trusted message to be displayed in response to the received communication. Content may be managed to be displayed on one or more displays supported by a body of a vehicle.
Abstract:
Technologies for representing alternate reality characters in a real-world environment include receiving sensor data from sensors of a sensor network of a home location of an alternate reality character, determining available response to the stimuli represented by the sensor data, and determining an activity of the alternate reality character for a time period based on the available responses. The technologies may also include generating a video of the alternate reality character performing the determined activity superimposed on an image map of a real-world environment of the home location during the time period. Users may view the video in real time or during a time period subsequent to the time period represented in the video. Additionally, the alternate reality character may be transferred to remote computing devices in some embodiments.
Abstract:
Embodiments of apparatus and methods for capturing and generating user experiences are described. In embodiments, an apparatus may include a processor. The apparatus may also include a data storage module, coupled with the processor, to store sensor data collected by a plurality of sensors attached to one or more devices. The apparatus may further include an experience correlation module, coupled with the data storage module, to associate at least a portion of the sensor data with a user experience based at least in part on one or more rules identifying the user experience, to enable regenerating at least a part of the user experience for a user based at least in part on the portion of the sensor data. Other embodiments may be described and/or claimed.
Abstract:
Embodiments of apparatus and methods for capturing and generating user experiences are described. In embodiments, an apparatus may include a processor. The apparatus may also include a data storage module, coupled with the processor, to store sensor data collected by a plurality of sensors attached to one or more devices. The apparatus may further include an experience correlation module, coupled with the data storage module, to associate at least a portion of the sensor data with a user experience based at least in part on one or more rules identifying the user experience, to enable regenerating at least a part of the user experience for a user based at least in part on the portion of the sensor data. Other embodiments may be described and/or claimed.
Abstract:
A communication system may include a plurality of geographically proximate nodes that communicate via one or more range-limited wireless technologies such as BLUETOOTH® low energy (BLE). An origin node may generate and communicate a first message responsive to detecting an event occurrence. The message may include an identifier associated with the origin node, data indicative of the event occurrence, a hop count, a maximum hop count, and a number of designated recipient nodes within the communication system. A first designated recipient node may, upon receiving the first message, attempt to confirm the event occurrence included in the first message. Upon confirming the event occurrence, the first designated recipient node may communicate a notification to an external third party. If unable to confirm the event occurrence, the first designated recipient node may generate and communicate a second message to a second designated recipient node included in the first message.
Abstract:
Various systems and methods for implementing smart clothing are described herein. A wearable system for implementing smart clothing comprises a sensor module to receive sensor data from a sensor of the wearable system; a state module to use the sensor data to construct a comfort state of a user of the wearable system; a context module to determine a context of the comfort state; an access module to access a comfort model of the user, the comfort model reflecting target comfort states for associated contexts; and an actuation module to initiate actuators in the wearable system based on the comfort model, the comfort state, and the context of the comfort state.
Abstract:
Methods, apparatus, systems and articles of manufacture are disclosed to develop driving simulations. An example apparatus includes a vehicle configuration engine to retrieve first tier environment parameters associated with a simulation type, and generate second tier environment parameters associated with the simulation type, a simulation modifier (SM) source engine to identify a source of SMs, and distinguish respective ones of the source of SMs that are compatible with the simulation type and the second tier environment parameters, and a development environment configuration engine to improve simulation design efficiency by associating simulation events with only the respective ones of the SMs that are compatible with the simulation type.
Abstract:
Methods, apparatus, systems and articles of manufacture are disclosed to develop driving simulations. An example apparatus includes a vehicle configuration engine to retrieve first tier environment parameters associated with a simulation type, and generate second tier environment parameters associated with the simulation type, a simulation modifier (SM) source engine to identify a source of SMs, and distinguish respective ones of the source of SMs that are compatible with the simulation type and the second tier environment parameters, and a development environment configuration engine to improve simulation design efficiency by associating simulation events with only the respective ones of the SMs that are compatible with the simulation type.
Abstract:
Methods of using subcutaneously implantable sensor devices and associated systems having a communication module that is controlled based upon the detection of a predetermined chemical agent.