Abstract:
The disclosure provides methods, apparatus, and computer-readable medium for setting parameters pertaining to service period (SP) for reduced latency in wireless communication. The apparatus may determine whether an amount of data at a medium access control (MAC) layer at the apparatus exceeds a maximum amount of data transmittable in a single transmission opportunity (TXOP). If so, the apparatus sets a duration of the SP for transmission of the data to be greater than or equal to a duration required for transmitting the data, and the apparatus transmits the data during the set duration of the SP. The apparatus may also set a duration of a service period interval (SPI) to be greater than or equal to the duration of the SP and less than or equal to a duration for transmitting the data using the single TXOP. The data may be latency-sensitive data, such as isochronous data or interrupt data.
Abstract:
Various aspects of the present disclosure provide for determining whether a condition is satisfied during a docking session with a dockee and transmitting data to the dockee when the condition is satisfied. The transmitted data may control a modality of the dockee. The modality of the dockee may include a behavior of one or more components of the dockee. In some configurations, the condition includes a predetermined user input to a peripheral device communicating with the docking station during the docking session. In some configurations, the condition includes another dockee being docked to the docking station, and the transmitted data controls the modality of the dockee such that the dockee communicates with the another dockee exclusively via the docking station. Additional aspects, embodiments, and features are also provided herein.
Abstract:
Various aspects of the present disclosure provide for an apparatus configured for determining priority information associated with data traffic at an upper layer, mapping the data traffic to a queue at an intermediate layer based on the priority information determined at the upper layer, and mapping an endpoint associated with the queue to an access category (AC) at a lower layer based on the priority information determined at the upper layer. The priority information of the data traffic may be associated with a classification or type of data in the data traffic. The upper layer may be an application layer. The intermediate layer may be a protocol adaptation layer (PAL). The lower layer may be a media access control (MAC) layer. Various apparatuses, methods, computer-readable medium including similar features are also provided herein. Additional and alternative aspects, embodiments, and features are also provided herein.
Abstract:
Various aspects of the present disclosure provide for a first device that may establish a wireless docking session with a second device. The first device may determine whether a profile of a second device matches a profile stored in the first device. When such a match exists, the first device may export data to the second device in a format associated with the profile of the second device. When such a match does not exist, the first device may provide an error message or export data to the second device in a format associated with a default profile of the first device. The profile may indicate an operating system, a peripheral component, a display size, a display resolution, a touch screen-capability, a font type, a user setting, a power source or availability, a hardware component, or a software module. Additional aspects, embodiments, and features are also provided herein.
Abstract:
In one example, a computing device is configured to operate as a first wireless docking center, the computing device comprising one or more processors configured to determine the computing device is proximate to a second wireless docking center; and in response to determining the computing device is proximate to the second wireless docking center, configure the computing device to communicate with the second wireless docking center via a wireless communication channel.
Abstract:
Methods, systems, and devices for wireless communications are described. An access point (AP) may transmit, to a second AP and during a first portion of a transmission opportunity (TxOP), a request to participate in a multi-user (MU) transmission. The AP may receive, from the second AP and during the first portion of the TxOP, an indication of intent to participate in the MU transmission during the second portion of the TxOP, the indication of intent including a resource request of the second AP for participation in the MU transmission. The AP may transmit, during an initial period of the second portion of the TxOP, a trigger signal to the second AP indicating a set of one or more resources for the second AP during the MU transmission. The AP may participate, in conjunction with the second AP and during the second portion of the TxOP, in the MU transmission.
Abstract:
This disclosure provides methods, devices and systems for synchronized channel access. Some implementations more specifically relate to facilitating coexistence among wireless communication devices that support synchronized channel access and those that do not. A group of access points may schedule periodically recurring, synchronized channel access periods by periodically transmitting quiet elements. The quiet elements establish recurring quiet periods during which legacy devices are not permitted to transmit. In some implementations, an access point may transmit one or more quiet override elements each associated with a respective quiet element and indicating to other access points supporting synchronized channel access that they are permitted to contend for access during the respective quiet period. In some other implementations of synchronized channel access, an access point supporting synchronized channel access that wins contention after one or more consecutive synchronized channel access periods during which no other synchronized access points won contention, may be entitled to an extended TXOP.
Abstract:
This disclosure provides methods, devices and systems for wireless communication, and particularly, methods, devices and systems for multi-link operation. In some aspects, a first WLAN device (such as a non-AP STA) may establish with a second WLAN device (such as an AP) a multi-link association by which the first WLAN device can simultaneously transmit information to the second WLAN device via a first wireless communication link and a second wireless communication link. The first WLAN device may coordinate contention for the first wireless communication link by a first WLAN interface of the first WLAN device to be concurrent with contention for the second wireless communication link by a second WLAN interface of the first WLAN device.
Abstract:
This disclosure provides systems, methods, apparatus, including computer programs encoded on computer storage media for orthogonal multiplexing of high efficiency (HE) and extremely high throughput (EHT) wireless traffic. Devices in a wireless local area network (WLAN) may operate under HE or EHT conditions. An access point (AP) may support both HE and EHT communications with WLAN devices. To enable substantially simultaneous downlink HE and EHT transmissions and substantially simultaneous uplink HE and EHT transmissions, the AP may support orthogonal frequency-division multiple access (OFDMA) of HE and EHT transmissions. For example, pre-HE and pre-EHT modulated fields, HE and EHT modulated fields, and payloads may be aligned in time for the HE and EHT transmissions. The AP may ensure orthogonality for multiplexing the HE and EHT transmissions based on the alignment. In some implementations, a trigger frame may be utilized to indicate uplink transmission alignments.
Abstract:
This disclosure provides systems, methods, and apparatus, including computer programs encoded on computer-readable media, for implementing a hybrid automatic repeat request (HARQ) protocol in a wireless local area network (WLAN). In some aspects, a first WLAN device may transmit a first HARQ frame to a second WLAN device. The first WLAN device may determine whether a first feedback message received from the second WLAN device includes HARQ acknowledgement information or non-HARQ acknowledgment information. The first feedback message may be a HARQ Block Acknowledgement (H-BA) message having a multi-station Block ACK (M-BA) frame format that includes HARQ acknowledgment information. The first WLAN device may transmit a second HARQ frame to the second WLAN device in response to determining the first feedback message includes the HARQ acknowledgment information. The first WLAN device may transmit a non-HARQ frame in response to determining the first feedback message includes non-HARQ acknowledgement information.