Abstract:
One wireless telecommunications system includes a Mobile Central Office (MCO) for capacity sharing. The MCO is communicatively coupled to a plurality of wireless base stations, each being operable to handle a session from a wireless device and to handoff the session to another base station when the wireless device moves into a range of the other base station. The MCO is operable to detect capacity on a base station to which it is coupled, to request capacity for the base station from a remotely located master scheduling system, to acquire at least a portion of the requested capacity from a base station of another MCO based on the request to the master scheduling system, to handle another session of another wireless device via the acquired capacity, and to release the acquired capacity to the master scheduling system when the first base station has completed use of the acquired capacity.
Abstract:
Systems and methods presented herein provide for capacity sharing between wireless systems. One wireless telecommunications system includes a plurality of base stations and a Mobile Central Office (MCO) communicatively coupled to each of the base stations. Each base station is operable to handle a session from a wireless device and to handoff the session to another of the base stations when the wireless device moves into a range of the other wireless base station. The MCO is operable to detect capacity on a first of the base stations, to request capacity from another wireless system in response to detecting the capacity on the first base station, to acquire at least a portion of the requested capacity from the other wireless system, and to direct the wireless device to communicate via the capacity acquired from the other wireless system.
Abstract:
A multiple-input multiple-output (MIMO) capable system is contemplated. The communication system may include a signal processor configured to separate an input stream into multiple signal paths to facilitate simultaneous transport through a communication medium. The capability to simultaneously transmit multiples signal paths may be beneficial in order to maximize throughput and/or minimize expense.
Abstract:
Predictive management of a network buffer is contemplated. The network buffer maybe predictively managed to control packet drop based at least in part on predicted sojourn time. The predicted sojourn time may be determined to predict time needed from an arriving packet to travel through a queue of the network buffer.
Abstract:
A multiple-input multiple-output (MIMO) capable system is contemplated. The communication system may include a signal processor configured to separate an input stream into multiple signal paths to facilitate simultaneous transport through a communication medium. The capability to simultaneously transmit multiples signal paths may be beneficial in order to maximize throughput and/or minimize expense.
Abstract:
Recommending a target access point is contemplated. The target access point recommendation may be used to recommend device connection to an access point having capabilities sufficient to facilitate access to electronic services, such as but not necessarily limited to recommending connection of a wireless device to a cellular or Wi-Fi capable access point.
Abstract:
Predictive management of a network buffer is contemplated. The network buffer maybe predictively managed to control packet drop based at least in part on predicted sojourn time. The predicted sojourn time may be determined to predict time needed from an arriving packet to travel through a queue of the network buffer.
Abstract:
Systems and methods presented herein provide for capacity sharing between wireless systems. In one embodiment, a scheduler is operable with a plurality of wireless base stations. Each base station is operable to digitize a frequency spectrum of radio communications from a plurality of user equipment (UEs). The scheduler communicatively couples to first and second Mobile Central Offices (MCOs). The scheduler processes the digitized frequency spectrums of the base stations, extracts radio communications of a first of the UEs from the digitized frequency spectrums of one or more of the base stations coupled to the first MCO, determines that a capacity of the first MCO has been exceeded, determines that a capacity of the second MCO is available, acquires at least a portion of the capacity of the second MCO, and handles a call of the first UE through the capacity acquired from the second MCO.
Abstract:
A multiple-input multiple-output (MIMO) capable system is contemplated. The communication system may include a signal processor configured to separate an input stream into multiple signal paths to facilitate simultaneous transport through a communication medium. The capability to simultaneously transmit multiples signal paths may be beneficial in order to maximize throughput and/or minimize expense.
Abstract:
A multiple-input multiple-output (MIMO) capable system is contemplated. The communication system may include a signal processor configured to separate an input stream into multiple signal paths to facilitate simultaneous transport through a communication medium. The capability to simultaneously transmit multiples signal paths may be beneficial in order to maximize throughput and/or minimize expense.