Abstract:
In response to detecting the entry condition, a determination is made as to when multiple mobile computing devices are present within the vehicle. An occupancy zone is determined for each multiple mobile computing device that is determined as being present within the vehicle. Profile information is determined for each mobile computing device. At least one of an operational or usage facet of the vehicle can be configured at each occupancy zone in which one of the mobile computing devices is determined to be present. The operational or usage facet of the vehicle at a location of each occupancy zone can be based at least in part on the profile information determined from the mobile computing device that is deemed to be present at that occupancy zone.
Abstract:
Systems and methods for managing in-vehicle system network connectivity. A media system processor may determine an application requirement of an application running on the media system and an available bandwidth of a cellular communication link of the media system. The processor may receive available cellular communication link bandwidths of one or more mobile devices in communication with the media system. The processor may rank an ability of the media system, the first one or more mobile devices to meet the application requirement based on their respective available bandwidths, select the highest ranked of the media system, and the one or more mobile devices via a short-range communication to receive content for presentation by the media system, and may receive the content for the selected highest ranked of the media system, and the one or more mobile devices.
Abstract:
The disclosure relates to collaborative intelligence and decision-making in an Internet of Things (IoT) device group. In particular, various IoT devices in the group may be interdependent, whereby a decision that one IoT device plans may impact other IoT devices in the group. Accordingly, in response to an IoT device planning a certain decision (e.g., to transition state or initiate another action), the IoT devices in the group may collaborate using distributed intelligence prior to taking action on the planned decision. For example, a recommendation request may be sent to other IoT devices in the group, which may then analyze relationships within the group to assess potential impacts associated with the planned decision and respond to approve or disapprove the planned decision. Based on the responses received from the other IoT devices, the IoT device may then determine whether to take action on the planned decision.
Abstract:
The disclosure relates to hosting a group call at a wireless user device. An embodiment receives, by the wireless user device, registration information for a plurality of client devices, receives, by the wireless user device, a call request for a call among two or more of the plurality of client devices, sets up, by the wireless user device, the call among the two or more client devices, receives, by the wireless user device, a media stream, and transmits, by the wireless user device, the media stream to at least one of the two or more client devices.
Abstract:
In response to detecting the entry condition, a determination is made as to when multiple mobile computing devices are present within the vehicle. An occupancy zone is determined for each multiple mobile computing device that is determined as being present within the vehicle. Profile information is determined for each mobile computing device. At least one of an operational or usage facet of the vehicle can be configured at each occupancy zone in which one of the mobile computing devices is determined to be present. The operational or usage facet of the vehicle at a location of each occupancy zone can be based at least in part on the profile information determined from the mobile computing device that is deemed to be present at that occupancy zone.
Abstract:
Systems, methods, and devices of the various embodiments enable dynamically creating and joining group communication sessions without (i.e., “free of”) operator-controlled or operator-assisted provisioning. By encoding group call provisioning information in a bar code, such as a Quick Response Code (“QR code”), that participants can scan using their mobile communication devices (e.g., smart phones), a group call may be created and provisioned on communication devices. The QR code encodes the information needed to initiate and/or join a group communication session maintained by a group communication server.
Abstract:
Embodiment methods and systems include external hardware that can be fitted to a wireless communication device that stores a communication application, communication presets and/or data that are downloaded to the wireless communication device where it may be implemented to optimize group communications on the wireless devices. The wireless device may be coupled to an external case configured with a physical button that enables group communication such as push-to-talk and other push-to-experience capabilities. Optimizations for push-to-talk communication may be implemented in a push-to-talk mode in response to detecting connection to the external hardware. Signaling between the external case and the wireless device allows detection of the switch to (or from) push-to-talk mode when a user depresses (or releases) the hard key.
Abstract:
Methods and apparatuses for optimizing performance using data from an Internet of Things (IoT) device with analytics engines. The method receives, from a requesting Internet of Things (IoT) device, a request for trend data of physical resource consumption based at least in part on a portion of received data from at least one of a plurality of IoT devices. The method retrieves, from memory of an analytics engine, at least the portion of the received data. The method calculates, in a calculator of the analytics engine, the trend data based on at least the portion of the received data. The method transmits, to the requesting IoT device, the calculated trend data, wherein the requesting IoT device adjusts parameters in an IoT device using the calculated trend data.
Abstract:
The disclosure relates to mechanisms that may be used to route notifications in an Internet of Things (IoT) environment according to user activity and/or proximity detection. More particularly, in various embodiments, an entity that manages the IoT environment may receive one or more messages, actions, or responses that indicate detected activity or detected proximity associated with one or more users from one or more IoT devices in the IoT environment. The management entity may then establish an activity and proximity trail from the one or more messages, actions, or responses that indicate the detected activity or the detected proximity, whereby in response to an IoT device reporting one or more notifications, an IoT device in proximity to at least one of the one or more users may be identified and the one or more notifications may be routed to the identified IoT device.
Abstract:
Systems and methods for connecting a proxy device to a mobile device are disclosed. In an aspect, the proxy device continuously scans for the mobile device, wherein the mobile device broadcasts advertising messages to connect to the proxy device, connects to the mobile device in response to the mobile device coming into communication range of the proxy device, and sends information to the mobile device, the information configured to enable the mobile device to connect to a low energy device.