Abstract:
An extremely high-throughput (EHT) station (STA) encodes a management frame to include a quality-of-service (QoS) capability element that includes a QoS information field configured to signal QoS redundancy capability. The EHT STA may set a QoS redundancy bit in the QoS information field of the QoS capabilities element to indicate (i.e., signal) that the EHT STA supports redundancy for QoS data frames. The EHT STA may include an Extended Capabilities element in the management frame and set a new redundancy indicator bit in the Extended Capabilities element to indicate (i.e., signal) that the EHT STA supports redundancy for a select subset of IEEE802.11 management frames.
Abstract:
For example, a Federated Authentication Service (FAS) server may be configured to register the FAS server with a wireless communication roaming federation service; to authenticate a user of a mobile device according to a network authentication protocol of the wireless communication roaming federation service, e.g., over a Remote Authentication Dial-In User Service (RADIUS) over Transport Layer Security (RADSec) tunnel between the FAS server and an Access Network Provider (ANP); to identify an Identity Provider (IDP) for the user based on user information for the user received from the ANP via the RADSec tunnel; to trigger user authentication of the user with the IDP for the user via an authentication interface between the FAS server and the IDP for the user; and based on a determination that the user is successfully authenticated with the IDP for the user, to send an authentication success message to the ANP via the RADSec tunnel.
Abstract:
This disclosure describes systems, methods, and devices related to multi-link devices (MLDs). A MLD may identify a first security key received from a first access point MLD (A-MLD); identify a second security key received from the first A-MLD; transmit, from a first physical location, a first packet to the first A-MLD, the first packet including the first security key; identify a first subset of N packets, the first subset received from the first A-MLD; transmit, from a second physical location, a second packet to the second A-MLD, the second packet including the second security key; identify a second subset of the N packets, the second subset received from the second A-MLD; determine that a third packet of the N packets was not received; and transmit, to the first A-MLD or the second A-MLD, an indication that the third packet was not received.
Abstract:
This disclosure describes systems, methods, and devices for OpenRoaming networks. A device may be installed, during a pre-provisioning process, with an activation profile on the STA for one-time use with OpenRoaming networks; identify, after the pre-provisioning process, a first OpenRoaming network within range of the STA; transmit, to a first access point (AP), a first authentication request for the first OpenRoaming network, the first authentication request including an indication of the activation profile; identify a first authentication response received from the first AP, the first authentication request granting access of the STA to the first OpenRoaming network; and access the first OpenRoaming network based on the first authentication response. Following successful association and authentication with the OpenRoaming network, a process for establishing a user profile on the device may be triggered for future connections to OpenRoaming networks.
Abstract:
For example, an apparatus may be configured to cause an Extremely High Throughput (EHT) wireless communication station (STA) to set a control field including presence signaling information corresponding to a plurality of parameter fields, the presence signaling information configured to indicate, for a parameter field of the plurality of parameter fields, whether the parameter field is to be present or absent in a Quality of Service (QoS) element; and to transmit a frame including the QoS element, the QoS element including the control field, wherein the presence or absence of the plurality of parameter fields in the QoS element is configured according to the presence signaling information in the control field.
Abstract:
Embodiments of a mobile device and methods automatically connecting to a Wi-Fi Hotspot 2.0 are generally described herein. In some embodiments, subscription information for one or more service providers (SP) that operate Wi-Fi networks is stored in a subscription data object of the mobile device. The subscription information includes home service provider information, policy information and pre-provisioned credentials. The mobile device may be configured to determine, without user interaction, if the subscription information is applicable to an available Wi-Fi network and perform without user interaction, an extensible authentication protocol (EAP) based authentication using the pre-provisioned credentials with the available Wi-Fi network to establish a Wi-Fi connection with the available Wi-Fi network. This automatic connectivity may allow a mobile device to roam across Wi-Fi hotspots of Wi-Fi networks and offload traffic to Wi-Fi networks.
Abstract:
Examples are disclosed for selecting an access point for network discovery by a mobile device. In some examples, a mobile device may scan access points belonging to one or more extended service sets (ESSs) belonging to one or more networks. The one or more networks may have advertisement servers capable of providing a generic advertising service (GAS) to the mobile device. The mobile device may select a single access point from among each of the ESSs to relay messages to advertisement servers of the one or more networks for the advertisement servers to provide the GAS to the mobile device. Other examples are described and claimed.
Abstract:
Embodiments of a mobile device and method for secure on-line sign-up and provisioning of credentials for Wi-Fi hotspots are generally described herein. In some embodiments, the mobile device may be configured to establish a transport-layer security (TLS) session with a sign-up server through a Wi-Fi Hotspot to receive a certificate of the sign-up server. When the certificate is validated, the mobile device may be configured to exchange device management messages with the sign-up server to sign-up for a Wi-Fi subscription and provisioning of credentials, and retrieve a subscription management object (MO) that includes a reference to the provisioned credentials for storage in a device management tree. The credentials are transferred/provisioned securely to the mobile device. In some embodiments, an OMA-DM protocol may be used. The provisioned credentials may include certificates in the case of certificate-based credentials, machine-generated credentials such as username/password credentials, or SIM-type credentials.
Abstract:
Examples are disclosed for selecting an access point for network discovery by a mobile device. In some examples, a mobile device may scan access points belonging to one or more extended service sets (ESSs) belonging to one or more networks. The one or more networks may have advertisement servers capable of providing a generic advertising service (GAS) to the mobile device. The mobile device may select a single access point from among each of the ESSs to relay messages to advertisement servers of the one or more networks for the advertisement servers to provide the GAS to the mobile device. Other examples are described and claimed.
Abstract:
A WiFi serial bus (WSB) attribute for use in Wi-Fi Alliance defined point-to-point (P2P) discovery mechanism includes a plurality of fields disposed in the frame. The WiFi serial bus attribute is arranged to provide information in the plurality of fields to support connectivity decisions for a USB device in a point-to-point network using a WSB protocol. The WSB attribute includes WSB architectural element information and information associated with a USB device behind a USB protocol adaptation layer (PAL).