Abstract:
A system may receive a bandwidth allocation policy, may allocate first bandwidth to a first set of queues based on the bandwidth allocation policy, and may allocate second bandwidth to a second set of queues based on the bandwidth allocation policy. The system may identify a first characteristic associated with packets, and may store information associated with the packets in first queues based on the first characteristic. The system may identify a second characteristic associated with the packets, and may store information associated with the packets, from the first queues, in second queues, based on the second characteristic, the allocated first bandwidth, and the bandwidth allocation policy. The system may store information associated with the packets, from the second queues, in an output queue based on the allocated second bandwidth and the bandwidth allocation policy, and may service the packets from the output queue for delivery to a device.
Abstract:
A system is configured to receive, from a user device, voice traffic to be sent to another user device; determine whether the voice traffic is local traffic based on whether an eNodeB, associated with the user device, and another eNodeB, associated with the other user device, are served by a particular network device; forward the voice traffic, as non-local traffic, to another network device, associated with a packet data network, for processing when the eNodeB or the other eNodeB are not served by the particular network device; process the voice traffic as local traffic when the eNodeB and the other eNodeB are served by the particular network device; and forward, to the other user device via the other eNodeB, the voice traffic, as local traffic, where the forwarding is performed in a manner that does not include routing the voice traffic via the other network device.
Abstract:
A first network device receives an authentication request, from a second network device, to authenticate a user device and a first over-the-top application, stored on the user device, to determine whether to apply a level of quality of service to the first over-the-top application. The first network device authenticates the user device, based on the authentication requested. The first network device authenticates the first over-the-top application, based on the authentication request. The first network device sends an authentication result, based on the authentication of the user device and the first over-the-top application, to the second network device; and the second network device initiates, based on the authentication result, a process to apply a level of quality of service to information sent between the first over-the-top application and a provider associated with the first over-the-top application.
Abstract:
A user equipment (UE) provides for display, to a user, information identifying available over-the-top (OTT) services provided via voice-over-Long-Term Evolution (VoLTE), and receives, from the user, a selection of a particular OTT service of the available OTT services. The UE receives, from the user, information identifying a selected contact associated with the particular OTT service, and determines whether a particular UE associated with the selected contact is a VoLTE capable device or a non-VoLTE capable device. The UE provides a call to the particular UE, via a LTE network and an Internet protocol (IP) Multimedia Subsystem (IMS) network, when the particular UE is a VoLTE capable device.
Abstract:
A system configured to receive a request to identify a quality of service (QoS) policy to be used to process traffic that is received from a user device associated with another network; obtain an interoperable QoS policy, where the interoperable QoS policy identifies a first QoS level, associated with the other network, that corresponds to a type of traffic received from the user device; obtain, from the interoperable QoS policy, a second QoS level that corresponds to the first QoS level; and send, to a device, an instruction to process the traffic based on the second QoS level.
Abstract:
A method, performed by a fixed wireless router device, may include receiving a packet from a Long Term Evolution network, where the packet is associated with a particular Long Term Evolution Quality of Service class and mapping the particular Long Term Evolution Quality of Service class to a particular Differentiated Services Core Point Quality of Service class. The method may further include assigning a Differentiated Services Core Point Quality of Service class to the packet based on the particular Differentiated Services Core Point Quality of Service class and forwarding the packet to particular device associated with a customer premises network serviced by the fixed wireless router device, based on a priority associated with the assigned Differentiated Services Core Point Quality of Service class.
Abstract:
A system may be configured to identify attributes of a bearer channel. Based on the attributes of the bearer channel, the system may identify a header compression policy associated with the bearer channel. The system may be configured to identify, based on attributes of traffic sent and/or received via the bearer channel, and further based on the header compression policy, that header compression should be performed on at least a portion of the traffic associated with the bearer channel. The system may be configured to perform header compression on the at least the portion of the traffic.
Abstract:
A visual indicator, such as a light emitting diode (LED), may display the quality of the radio frequency (RF) link. In one implementation, a device may include, a RF antenna; a control module to connect to a Long-Term Evolution (LTE) network through the RF antenna; and a LED, disposed on an outer surface of the device, to emit light of a number of different colors, where the color to emit is selected based on a quality of the connection to the LTE network. The device may include an outdoor broadband unit connected to an external portion of a customer premise.
Abstract:
A device receives or creates file packets to be broadcast, via multicast delivery, to multiple user equipment by a broadcast multicast service control (BMSC) device. The device stores the file packets in the memory, and receives, via unicast delivery, a file repair request from a particular user equipment of the multiple user equipment. The device identifies particular file packets in the memory based on the file repair request, and provides, via unicast delivery, the particular file packets to the particular user equipment.
Abstract:
A device receives a first request to establish a bearer with a first UE associated with a LTE device, where the first request includes first parameters associated with the first UE. The device also determines that the LTE device does not have the bearer established, and provides a new bearer request, with the first parameters, to a wireless network in order to establish the bearer with the LTE device at a first data rate. The device further receives a second request to establish another bearer with a second UE associated with the LTE device, where the second request includes second parameters associated with the second UE. The device determines that the LTE device has the bearer established, and provides a modify bearer request, with the second parameters, to the wireless network in order to modify the bearer with the LTE device to a second data rate.