Abstract:
Resource allocation signaling in a high efficiency wireless local area network (WLAN) is disclosed. An access point (AP) may generate a resource unit (RU) size indicator in a first WLAN signaling field, the RU size indicator decodable by a set of stations. The AP may also generate a common user field in a second WLAN signaling field, such that a size of the common user field may be based on the RU size indicator of the first WLAN signaling field. The AP may generate a station-specific field in the second WLAN signaling field, such that a position of the a station-specific field corresponds to one or more RUs associated with the a station-specific field. The AP may then transmit a WLAN preamble that includes the first WLAN signaling field followed by the second WLAN signaling field.
Abstract:
A wireless device for narrowband MTC may use a sampling rate that is less than a default sampling rate associated with a wireless carrier for reduced processing complexity. The device may operate in a narrowband portion of a system bandwidth, and the sampling rate may be less than that used by devices monitoring the whole bandwidth but with the same subcarrier spacing or symbol duration. A reduced sampling rate implies a shorter IFFT for each symbol, but in order to align the subframe timing with the conventional subframe timing, three solutions are proposed: 1) reduced sampling rate for useful portion and CP but alternating CP lengths between symbols. 2) dual sampling rate processing: first sampling rate for useful portion and part of CP and sampling rate conversion and CP filling samples added at second sampling rate. 3) reduced sampling rate (1.92 MHZ) with overlapping symbol windows (ie a postfix overlapping the CP of the next symbol) to improve spectral shaping. The size of a cyclic prefix (CP) may be adjusted based on the sampling rate to align subframe timing boundaries for signals of different sampling rates.
Abstract:
Methods, systems, and devices are described for wireless communication. A source device of a wireless local area network (WLAN) may identify one or more attributes of a first wireless link and a second wireless link between the source device and a sink device of the WLAN. The one or more attributes may be compared with a source device connection policy associated with a streaming protocol. The source device may determine whether to establish a streaming session with the sink device over the first wireless link or the second wireless link based at least in part on the comparing.
Abstract:
A device may determine that an unlicensed radio frequency (RF) spectrum band is available for a communication. The device may transmit a first transmission indicator that indicates that the device is transmitting information via the unlicensed RF spectrum band. The first transmission indicator may be associated with a first radio access technology. The device may transmit a second transmission indicator that indicates that the device is transmitting information via the unlicensed RF spectrum band. The second transmission indicator may be associated with a second radio access technology that is different from the first radio access technology.
Abstract:
Methods, systems, and devices for wireless communications are described. The described techniques provide for first integrated access and backhaul (IAB) node establishing a signaling connection with an IAB donor node and a sidelink connection with a second IAB node or a user equipment (UE). The first IAB node may include a mobile termination unit and a distributed unit and may support sidelink communications. In some cases, the first IAB node may report an indication of sidelink communications support, receive an indication of sidelink communication authorization, and receive sidelink configuration information. The first IAB node may transmit one or more data messages to the IAB donor on the signaling connection and transmit one or more data messages to the second IAB node or the UE via the sidelink connection.
Abstract:
Methods, systems, and devices for wireless communications are described. A first wireless device may identify a set of data resource elements for transmitting data in one or more symbols periods. The first wireless device may generate, for the one or more symbol periods based on the set of data resource elements, a sequence of a set of pilot resource elements associated with the set of data resource elements, the sequence of the set of pilot resource elements including a demodulation reference signal. The first wireless device may transmit, to a second wireless device in the one or more symbol periods, the set of data resource elements and the set of pilot resource elements. The second wireless device may decode a first subset of the set of pilot resource elements based on a second subset of the set of pilot resource elements to determine the demodulation reference signal.
Abstract:
Methods, systems, and devices for wireless communication at a remote user equipment (UE) are described. A remote UE may identify a quasi-colocation relationship between one or more control regions of resources during a time interval and a set of data regions of the resources during the time interval. In some examples, the set of data regions may include at least a first data region for a first relay UE and a second data region for a second relay UE. The remote UE may identify, according to the quasi-colocation relationship, one or more symbol periods for one or more automatic gain control measurements. The remote UE performs the one or more automatic gain control measurements on signals received in the one or more symbol periods and receive a first data message in the first data region and a second data message in the second data region.
Abstract:
Methods, systems, and devices for wireless communications are described. Generally, the described techniques provide for configuration of switching between a singleslot processing mode and a multi-slot processing mode. For example, a user equipment (UE) may receive, from a base station, a first configuration of a first processing mode that is associated with communications scheduled for a single slot (e.g., a single-slot processing mode). The UE may also receive a second configuration of a second processing mode that is associated with communications scheduled for a plurality of slots (e.g., a multi-slot processing mode). The UE may communicate according to one of the modes, determine to switch to the other different mode, and communicate according to the different mode.
Abstract:
Methods, systems, and devices for wireless communications are described. Some wireless communications system may utilize an inter-system information report message (e.g., a self-organizing network (SON) information report message) to support inter-system mobility load balancing (MLB). For example, a first node, operating in accordance with a first radio access technology (RAT), may receive an information report message from a second node operating in accordance with a second RAT. The information report message may include a periodic load reporting request information element (IE) or an event-triggered load reporting request IE. In response, the first node may determine a traffic load based on the load reporting request and transmit, to the second node, an information report message which includes one or more IEs for reporting the determined traffic load. The exchange of the load information via the IEs may enable for MLB between nodes of different RAT.
Abstract:
Methods, systems, and devices for wireless communications are described. A base station may identify, for a user equipment (UE), a configuration for receiving a set of downlink control information (DCI) messages on one or more layers of a set of layers of a downlink shared channel. The base station may transmit, to the UE, a first DCI message in a downlink control channel, where the first DCI message may schedule resources of the downlink shared channel for the set of piggybacking DCI messages. The UE may receive the first DCI message and identify the configuration for receiving the set of DCI messages on the one or more layers of the downlink shared channel. The UE may receive, from the base station, the set of DCI messages on the one or more layers of the downlink shared channel based on the identified configuration.