Abstract:
The disclosed technology relates to a process of dynamically assigning operational parameters for access points within a CBRS (Citizen Broadband Radio Service) network. In particular, the disclosed technology monitors for and detects interference between nearby access points and user equipment devices that may belong to the same enterprise or to different enterprises. Machine learning processes are used to revise the operational parameters that were initially assigned by the Spectrum Access System (SAS). These processes are also used to suggest an updated set of operational parameters to the SAS for the access points. The dynamic assignment reduces interference experienced by the access point with respect to nearby other access points and/or nearby other user equipment. The dynamic assignment aims to improve a quality of communication between the access point and its associated user equipment.
Abstract:
Presented herein are methodologies for managing a citizens broadband radio service (CBRS) network. The methodology includes at a spectrum access system (SAS), receiving, from a Donor CBRS base station device (CBSD), a registration request, the registration request including capabilities information about a CBRS Relay Node with which the Donor CBSD communicates, in response to the registration request, sending, from the SAS to the Donor CBSD, a registration response indicating successful registration of the CBRS Relay Node, in response to the registration response, receiving via the Donor CBSD a spectrum enquiry message from the CBRS Relay Node seeking a channel allocation from the SAS, and in response to the spectrum enquiry message, sending from the SAS, and via the Donor CBSD, a resource grant response to the CBRS Relay Node, wherein the resource grant response includes an allocated channel and a maximum EIRP for the allocated channel.
Abstract:
Presented herein are methodologies for managing a citizens broadband radio service (CBRS) network. The methodology includes at a spectrum access system (SAS), receiving, from a Donor CBRS base station device (CBSD), a registration request, the registration request including capabilities information about a CBRS Relay Node with which the Donor CBSD communicates, in response to the registration request, sending, from the SAS to the Donor CBSD, a registration response indicating successful registration of the CBRS Relay Node, in response to the registration response, receiving via the Donor CBSD a spectrum enquiry message from the CBRS Relay Node seeking a channel allocation from the SAS, and in response to the spectrum enquiry message, sending from the SAS, and via the Donor CBSD, a resource grant response to the CBRS Relay Node, wherein the resource grant response includes an allocated channel and a maximum EIRP for the allocated channel.
Abstract:
The disclosed technology relates to a process of dynamically assigning operational parameters for access points within a CBRS (Citizen Broadband Radio Service) network. In particular, the disclosed technology monitors for and detects interference between nearby access points and user equipment devices that may belong to the same enterprise or to different enterprises. Machine learning processes are used to revise the operational parameters that were initially assigned by the Spectrum Access System (SAS). These processes are also used to suggest an updated set of operational parameters to the SAS for the access points. The dynamic assignment reduces interference experienced by the access point with respect to nearby other access points and/or nearby other user equipment. The dynamic assignment aims to improve a quality of communication between the access point and its associated user equipment.
Abstract:
In one example, an apparatus is provided that includes a processor configured to receive, in a first wireless network, an identifier of a base station in a second wireless network, and to determine an identity of a first device in the second wireless network. The apparatus is configured to transmit the identifier of the base station to the second wireless network.
Abstract:
A method provided in one embodiment and includes receiving, at a first network element, a first resource indicator indicative of a first resource capability of each of a plurality of second network elements, receiving a second resource indicator indicative of a second resource capability of each of the plurality of second network elements, and receiving a third resource indicator indicative of a third resource capability of each of the plurality of second network elements. The method further includes determining a metric value for each of the plurality of second network elements based upon the first resource indicator, the second resource indicator, and the third resource indicator of each of the second network elements, and determining a list of one or more acceptable network elements for a wireless device to establish a connection therewith based upon the metric value of each of the plurality of second network elements.
Abstract:
Presented herein are methodologies for managing a citizens broadband radio service (CBRS) network. The methodology includes receiving, at an enterprise controller, measurement information from a first user equipment (UE) and a second UE, wherein the first UE and the second UE operate in a citizens broadband radio service (CBRS) network; selecting, at the enterprise controller, an information aggregation level based on a predetermined level of privacy associated with the first UE and the second UE; aggregating, at the enterprise controller, the measurement information from the first UE and the second UE in accordance with the information aggregation level to obtain aggregated measurement information; and sending, by the enterprise controller, the aggregated measurement information to a Spectrum Access System that controls allocation of resources in the CBRS network for the first UE and the second UE.
Abstract:
Systems, methods, and computer-readable media for improving resource management in Citizens Broadband Radio Service (CBRS) networks include a Spectrum Access System (SAS) in coordination with one or more CBRS devices (CBSDs) and a Digital Network Architecture center (DNA-C). Resource allocation decisions can be based on one or more policies such as a priority, a preemption capability index and/or a preemption vulnerability index associated with the CBSDs. Resource allocation can also be based on inter-access point (AP) coordination between two or more CBSDs and comparative performance indicators of the two or more CBSDs. Managing interference between two or more groups of CBSDs can be based on the inter-AP coordination and group identifiers associated with the two or more groups. Bandwidth allocation can be modified to the two or more CBSDs and seamless transition can be implemented using timers.
Abstract:
Presented herein are methodologies for managing a citizens broadband radio service (CBRS) network. The methodology includes receiving, at an enterprise controller, measurement information from a first user equipment (UE) and a second UE, wherein the first UE and the second UE operate in a citizens broadband radio service (CBRS) network; selecting, at the enterprise controller, an information aggregation level based on a predetermined level of privacy associated with the first UE and the second UE; aggregating, at the enterprise controller, the measurement information from the first UE and the second UE in accordance with the information aggregation level to obtain aggregated measurement information; and sending, by the enterprise controller, the aggregated measurement information to a Spectrum Access System that controls allocation of resources in the CBRS network for the first UE and the second UE.
Abstract:
Techniques for routing data in a wireless communication network including a hybrid of infrastructure wireless local area network (WLAN) and neighbor awareness networking (NAN). A subscription is identified between a first NAN device in a first NAN cluster in the network and a second NAN device in a second NAN cluster in the network. The first NAN cluster includes at least one NAN device not included in the second NAN cluster. A first path is generated between the first NAN device and the second NAN device. The first path includes a first network access point (AP) in the network. Data is transmitted from the first NAN device to the second NAN device using the first path comprising the first AP.