Abstract:
Embodiments of the present disclosure describe systems, devices, and methods for interworking between a universal mobile telecommunications system (UMTS) network and a wireless local area network (WLAN). Various embodiments may include utilizing traffic steering rules based on radio access network assistance parameters to perform traffic steering between the UMTS network and the WLAN. Other embodiments may be described or claimed.
Abstract:
Some demonstrative embodiments include devices, systems and methods of providing offloadability information to a User Equipment (UE). For example, a core network (CN) may provide to the UE Packet Data Network (PDN) offloadability information corresponding to one or more PDN connections of the UE, the PDN offloadability information indicating which PDN connection of the one or more PDN connections is able to be offloaded to a Wireless Local Area Network (WLAN).
Abstract:
Wireless communication traffic can be offloaded from a user equipment (UE) to two wireless points of access. For example, user equipment (UE) is connected to a radio access network (RAN) using a radio access technology (RAT) such as a long term evolution (LTE) network. The UE can determine which network capabilities are available for traffic offloading and adapt to the capabilities presented. In one embodiment, the UE can determine whether the network supports three different configurations and configure traffic offloading to operate within the network conditions: (1) RAN rules without access network detection and selection function (ANDSF), (2) ANDSF in conjunction with RAN rules or (3) enhanced ANDSF with RAN assistance.
Abstract:
Embodiments of the present disclosure are directed towards devices and methods for identifying preferred access networks based at least in part on access network information including access network assistance information, steering policies, or access commands. In some embodiments, conflicts between access network information and access network discovery and selection function (ANDSF) policies may be rectified in identifying a preferred access network.
Abstract:
An apparatus, a system and a method for configuring a User Equipment (UE) position. For example, a UE may be configured to receive a cell ID parameter and a cell size parameter, to configure a cell position based on the cell ID, and to configure the UE position based on the cell size. The UE may be configured, for example, to connect to Access points (APs) of a Wireless local Area Network (WLAN) in its close vicinity, e.g., based on the determined position of the UE.
Abstract:
Some demonstrative embodiments include devices, systems of steering data radio bearer traffic to a wireless local area network link. For example, a User Equipment (UE) may include a Wireless Local Area Network (WLAN) transceiver; a cellular transceiver to communicate traffic of a plurality of Data Radio Bearers (DRBs) via a cellular link between the UE and an evolved Node B (eNB); and a controller to establish at least one Point-to-Point (P2P) link with the eNB via a WLAN link between the UE and a WLAN Access Point (AP), and to steer traffic of one or more of the DRBs from the cellular link to the P2P link.
Abstract:
Embodiments of the present disclosure describe systems, devices, and methods for long-term evolution and wireless local area interworking. Various embodiments may include utilizing access network selection and traffic steering rules based on radio access network assistance parameters. Other embodiments may be described or claimed.
Abstract:
Some demonstrative embodiments include devices, systems and/or methods of transferring control of a Remote Radio Head (RRH) between Base-Band Unit (BBU) processing pools. For example, a Base Band Unit (BBU) processing pool may include a transport network interface to communicate with a plurality of Remote Radio Heads (RRHs) via a transport network; and a pool processor to manage a plurality of BBUs, the plurality of BBUs configured to control the plurality of RRHs according to a RRH control protocol, the pool processor being configured to transfer control of at least one RRH of the plurality of RRHs from at least one BBU of the plurality of BBUs to at least one target BBU processing pool.
Abstract:
Some demonstrative embodiments include devices, systems and/or methods of controlling Radio Access Technology (RAT) communication managers. For example, a RAT controller may communicate with a plurality of RAT communication managers to receive measurement information from one or more of the RAT communication managers, and, based on the measurement information, to send traffic steering information to at least one RAT communication manager.
Abstract:
Some demonstrative embodiments include devices, systems and methods of providing offloadability information to a User Equipment (UE). For example, a core network (CN) may provide to the UE Packet Data Network (PDN) offloadability information corresponding to one or more PDN connections of the UE, the PDN offloadability information indicating which PDN connection of the one or more PDN connections is able to be offloaded to a Wireless Local Area Network (WLAN).