Abstract:
A security device may be configured to receive information regarding traffic that has been outputted by a particular user device; and compare the information regarding the traffic to security information. The security information may include device behavior information, traffic policy information, or device policy information. The security device may determine, based on the comparing, that a security threat exists with regard to the traffic; and take, based on determining that the security threat exists, remedial action with respect to the traffic. Taking the remedial action may include preventing the traffic from being forwarded to an intended destination associated with the traffic, providing an alert, regarding the security threat, to the particular user device, or providing an alert, regarding to the security threat, to another device.
Abstract:
A device may be configured to determine a type of traffic, received by the device from a user device; identify a radio resource control (“RRC”) timeout value associated with the type; start an RRC dormancy timer based on the RRC timeout value; and modify, based on expiration of the RRC dormancy timer, an RRC channel between the device and the user device.
Abstract:
A mobile device stores a service-creation application and presents, via the service-creation application, a user interface to solicit a service definition for client mobile devices. The mobile device stores a service-engine for providing the service and announces availability of the service to the client mobile devices. The mobile device receives, in response to the announcing, a registration request from one of the client mobile devices and validates the registration request. The mobile device then provides, to the one of the client mobile devices, the service via the service engine.
Abstract:
One or more devices may receive, from a user device via a first communication layer associated with a first network device, a request to add a second communication layer associated with a second network device; generate an instruction, based on receiving the request, to aggregate first data flow and the second data flow, to be provided via the first and second communication layers; and provide, to the second network device and based on generating the instruction, a response to indicate that the one or more devices are prepared to aggregate the first and second data flows. The response may include an instruction to direct the second network device to establish a simultaneous connection with the user device while the user device is connected to the first network device and to establish the connection with the user device via the second communication layer.
Abstract:
A system includes a network device receives a request for media content from a plurality of user devices and transmits the media content in accordance with at least one of a unicast mode and a broadcast mode. A content monitoring device counts a number of requests for the media content received at the network device and selects the mode of the network device based on the number of requests received. A method includes receiving a request for media content from a plurality of user devices, counting a number of requests for media content received at the network device, selecting at least one of a unicast mode and a broadcast mode of the network device based on the number of requests received at the network device, and transmitting the media content in accordance with the selected mode.
Abstract:
A video on demand (VoD) network architecture implements a gateway that provides both satellite-based communications and radio frequency-based communications. The gateway may receive a content request from a video client and determine whether the content request corresponds to a content delivery network (CDN). When the content request corresponds to the CDN, the gateway may install a VoD access point name (APN) route designated for VoD traffic between the video client and the CDN, and communicate the content request to the CDN via the VoD APN route. The VoD APN route may include a VoD APN of a wireless wide area network (WWAN) connected to the gateway via an air interface. When the content request does not correspond to the CDN, the gateway may communicate the content request via an Internet APN route.
Abstract:
A system described herein may dynamically determine whether a User Equipment (“UE”) is authorized to access a given Local Area Data Network (“LADN”) based on dynamically determined factors, such as temporal factors, network load factors, registration or de-registration of the UE for the LADN, etc. Updates to such polices may be further used to determine whether the UE is authorized to access the LADN. Thus, the providing of services associated with a LADN may be more dynamic and based on additional factors than a determination of whether UE subscription information (e.g., as provided by a UE information repository) indicates that a given UE has subscribed to the LADN.
Abstract:
A Unified Data Repository (UDR) may be included in a first network with a first Public Land Mobile Network (PLMN) identifier (ID). The UDR may include a resource that comprises data at a child node. The resource may have a name corresponding to a second PLMN ID. The UDR may include one or more processors configured to: receive a call, from a network function located in a second network with the second PLMN ID, to access the data; and send a response to the call.
Abstract:
In some implementations, a network device may receive a subscription request to subscribe to receive notifications associated with context data related to a registered session associated with a user equipment (UE). The registered session may be associated with a reauthorization timer that is associated with triggering the network device to provide a request for reauthorization of the registered session. The network device may provide, based on an expiration of the reauthorization timer, the request for reauthorization of the registered session.
Abstract:
A system described herein may provide a technique for the discovery and connection of Mesh Distributed Units (“MDUs”), which may establish a mesh topology and perform wireless backhaul of data between a core network and a User Equipment (“UE”). Multiple MDUs in an MDU network may be connected to establish an MDU route. One or more connected MDUs may broadcast an indication that the MDU is available to connect, one or more performance metrics, or an MDU performance score based on performance metrics. This broadcast may iteratively repeat in order to refine the mesh network topology in an ongoing process.