Abstract:
The quality of a multicast broadcast that is being received by a mobile device may be determined. In one implementation, a method may include receiving a radio signal corresponding to a multicast broadcast of content; measuring a strength of the received signal; determining a minimum signal strength to receive the content associated with the multicast broadcast; determining a signal quality metric, associated with the multicast broadcast, the signal quality metric being based on a difference between the measured strength of the signal and the determined minimum signal strength; and providing a visual indication of the signal quality metric.
Abstract:
A service quality metric, that measures the quality of a multicast broadcast that is being received by a mobile device, may be determined. In one implementation, a method may include receiving a radio signal corresponding to a multicast broadcast of content that was encoded using a forward error correction (FEC) technique in which the content is segmented and encoded as a plurality of blocks; and reassembling the content corresponding to the received radio signal. The method may further include determining an FEC failure rate based on a relative occurrence of the successfully reassembled blocks to the unsuccessfully reassembled blocks; determining a service quality metric based on the FEC failure rate; and providing a visual indication of the service quality metric.
Abstract:
A device may receive a request for a transmission of media content. The device may determine a set of rules associated with the transmission of the media content. The device may assign one or more radio frequency (RF) spectrum bands for the transmission of the media content. The device may provide or receive the media content via the one or more RF spectrum bands.
Abstract:
Techniques described herein may allow for the selective enabling and/or disabling of shared access points (“SAPs”). The selective enabling and/or disabling may occur based on the analysis of key performance indicators (“KPIs”) associated with the SAPs. The selective enabling and/or disabling may cause the SAPs to cease (or continue) broadcasting their availability for User Equipment (“UEs”) of a particular wireless provider, decline (or accept) bearer requests for UEs of the particular wireless provider, or terminate existing connections with UEs of the particular wireless provider. The selective enabling and/or disabling may be performed for certain applications or Quality of Service (“QoS”) levels. The selective enabling and/or disabling may be performed proactively (e.g., without necessarily determining that the performance for a given SAP has not met a threshold performance), based on historical trends.
Abstract:
A base station may obtain channel usage information identifying usage of one or more unlicensed radio frequency (RF) spectrum bands. The base station may select a selected band, of the one or more unlicensed RF spectrum bands, based on the channel usage information. The base station may select one or more RF channels, of multiple RF channels included in the selected band, based on a congestion value of the selected band. The congestion value may be determined based on values of the channel usage information corresponding to the selected band. The selected RF channel may include an impaired RF channel that may not permit full bandwidth utilization due to constraints. The base station may communicate with user equipment via the one or more RF channels of the selected band.
Abstract:
A base station may include logic configured to determine system throughput values for a plurality of modulation and coding schemes based on data throughput values and based on a number of user equipment (UE) devices serviced by the base station; determine a modulation and coding scheme, of the plurality of coding schemes, that is associated with a highest system throughput; and determine radio frequency (RF) conditions associated with the base station. The logic may further be configured to define a Multimedia Broadcast Multicast Service (MBMS) area based on the determined RF conditions and the selected modulation and coding scheme and provide an update to the UE devices serviced by the base station, wherein UE devices located within the defined MBMS area are sent the update using MBMS and UE devices located outside the defined MBMS area are sent the update using unicast.
Abstract:
A small cell device may communicate with a user device (e.g., a smartphone, a tablet computer, etc.) via a range extender device that extends the effective range of the small cell device to the user device. The small cell device, the range extender device, and the user device may communicate with one another using channels of a licensed spectrum (e.g., traditional LTE channels). The range extender device may determine channel conditions corresponding to an unlicensed spectrum (e.g., 5 Gigahertz (GHz) Spectrum) and communicate the channel conditions to the small cell device. Based on the channel conditions, the small cell device and the range extender device may select downlink-only channels of the unlicensed spectrum and cause the downlink capabilities of the channels of the unlicensed spectrum to be augmented by the downlink capabilities of the downlink-only channels of the unlicensed spectrum.
Abstract:
A device receives configuration information that instructs the device about when to send content to a user device. The device also receives content from an application server at a first time, and stores the content. The device determines, based on the configuration information, that the content is to be sent to the user device, and sends the content to the user device based on the determination. The content is sent to the user device at a second time that is later than the first time.
Abstract:
A device receives, from a content provider, traffic parameters associated with a video content request received from a fixed user device connected to a wireless access network, and determines, based on the traffic parameters, a trigger for creating a dedicated bearer for the fixed user device in the wireless access network. The device also provides the trigger to the wireless access network, where the wireless access network creates the dedicated bearer for the fixed user device based on the trigger, and the wireless access network assigns quality of service (QoS) parameters, based on the traffic parameters, to video content delivered to the fixed user device.
Abstract:
The quality of a multicast broadcast that is being received by a mobile device may be determined. In one implementation, a method may include receiving a radio signal corresponding to a multicast broadcast of content; measuring a strength of the received signal; determining a minimum signal strength to receive the content associated with the multicast broadcast; determining a signal quality metric, associated with the multicast broadcast, the signal quality metric being based on a difference between the measured strength of the signal and the determined minimum signal strength; and providing a visual indication of the signal quality metric.