Abstract:
A system may be configured to determine radio frequency (“RF”) transmission error types associated with a group of channels. Each channel may be associated with a particular remote radio node (“RRN”), of a group of RRNs, and a user device. The system may further modify subsequent RF communications between the RRNs and the user device, on a per-channel basis, and based on the determined transmission error types associated with each channel.
Abstract:
A base station may receive an indication to manage a connection, associated with a device, or traffic associated with the device. The indication may include a network identifier associated with a core network. The base station may determine, based on the network identifier, management information associated with managing the connection or the traffic associated with the device. The base station may manage, based on the management information, the connection or the traffic associated with the device.
Abstract:
A system may be configured to determine a floor of a building in which the user device is located at a time a call was placed. The information, indicating the determined floor, may be provided to a callee, such as a public safety answering point (“PSAP”). The floor may be determined based on, for example, comparing an altitude of the user device and/or a list of networks or devices that are visible to the user device, to a set of reference information.
Abstract:
A server may receive provisioning information for a client device; provision, based on the provisioning information, the client device to prepare the client device to gather data to form a data record and communicate with a user device, via the server, to receive or transmit information relating to the data record; and receive a communication request from the user device via a first network. The communication request may include a request to transmit the information relating to the data record to or from the client device. The server may communicate with the client device via a second network, on behalf of the user device, to process the communication request based on authorizing the user device. The second network may be different from the first network. The server may provide a response to the communication request to the user device. The response may include the information relating to the data record.
Abstract:
Voice over LTE (VoLTE) services may be provided to a roaming mobile device, even when the home network of the mobile device does not provide VoLTE service. In one implementation, one or more devices in a network may determine based on a mobile device attaching to a network as a roaming device for the network, a home network of the mobile device. The devices may further determine whether the home network, associated with the mobile device, provides VoLTE services; transmit, based on the determination that the home network does not provide VoLTE services, a VoLTE client application to the mobile device, the VoLTE client application providing functionality, for the mobile device, relating to usage of VoLTE services in the network. The devices may further communicate with the mobile device and the VoLTE client application, to provide one or more VoLTE services to the mobile device.
Abstract:
A first device may receive data associated with a second device from within a first network and independently of a second network. The second device may include a sensor or an application to form or process a data record. The first device may establish a bearer between the first device and a particular user device, of multiple user devices, in accordance with a bearer policy; and provide the data towards the particular user device via a first sub-network, of multiple sub-networks, of the second network and via the bearer. The first sub-network may be independent of a second sub-network of the multiple sub-networks. The second sub-network may permit user device data to be transmitted between the multiple user devices. The first sub-network and the second sub-network may consume different levels of network resources.
Abstract:
A server device may determine session information that identifies a quantity of sessions established between each of one or more serving gateways (SGWs) and a packet data network (PDN) gateway (PGW); and direct a mobility management entity (MME) to assign additional sessions between the one or more SGWs and the PGW based on the session information.
Abstract:
One or more server devices may determine a measure of popularity of multiple content items; select particular content to be provided via a multicast channel when the measure of popularity of the particular content satisfies a threshold; generate a notification regarding the availability of the particular content; and provide the notification to one or more user devices for display on the one or more user devices to notify respective users regarding the availability of the content. The notification may be received by the one or more user devices outside of a multicast control channel. The one or more servers may transmit the particular content via the multicast channel.
Abstract:
A device may receive information that identifies a radio frequency condition of a user device, where the radio frequency condition indicates a quality of a radio access network connection of the user device. The device may determine a radio frequency parameter value based on the radio frequency condition, and may set a data rate for a transmission control protocol (“TCP”) communication with the user device based on the radio frequency parameter value.
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.