Resource reporting in multi-AP cooperation in wireless LAN system
The method for resource reporting in multi-AP cooperation in wireless LAN systems addresses the challenge of managing resource updates across multiple APs by enabling unsolicited and individual reporting of resource changes, thereby improving the efficiency and timeliness of multi-AP cooperation operations.
Patent Information
- Application Number
- PCT/KR2024/096719
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-12-15
- Filing Date
- 2024-12-11
- Publication Date
- 2025-06-19
AI Technical Summary
In wireless LAN systems, existing technologies face challenges in efficiently managing resource updates across multiple Access Points (APs) during multi-AP cooperation, leading to potential delays and inefficiencies in signal transmission and scheduling.
A method and apparatus for resource reporting in multi-AP cooperation, where a first AP performs a negotiation procedure with other APs, updates resource configurations, and transmits a resource report frame to a second AP, allowing for unsolicited and individual reporting of resource changes.
This solution enables APs to update resource information independently, reducing the need for separate requests and enhancing the efficiency of multi-AP cooperation operations by allowing for more timely and accurate scheduling.
Smart Images

Figure KR2024096719_19062025_PF_FP_ABST
Abstract
Description
Resource reporting in multi-AP cooperation in wireless LAN systems
[0001] The present disclosure relates to resource reporting in multi-AP cooperation in a wireless LAN system.
[0002] Next-generation Wi-Fi (e.g., IEEE 802.11be and / or later) aims to support ultra-high reliability when transmitting signals to STAs. To this end, various technologies are being considered to support high throughput, low latency, and extended range. For example, APs can perform a negotiation process for multi-AP cooperation and perform multi-AP operations based on the negotiation / cooperation / resource information obtained during the negotiation process. In this case, the negotiation / cooperation / resource information provided by the AP during the negotiation process may change after the negotiation process is performed.
[0003] The present disclosure provides a method and device for resource reporting in multi-AP cooperation in a wireless LAN system.
[0004] According to an embodiment of the present disclosure, a method performed by a first AP in a wireless LAN system includes the steps of: performing a negotiation procedure for multi-AP cooperation with one or more APs; acquiring a configuration of a multi-AP set including the one or more APs based on the negotiation procedure; after acquiring the configuration of the multi-AP set, updating at least one resource configuration from resource information of the first AP transmitted by the first AP to a second AP of the multi-AP set in the negotiation procedure; and transmitting a resource report frame including information on the updated at least one resource configuration to the second AP.
[0005] According to an embodiment of the present disclosure, a method performed by a second AP in a wireless LAN system includes the steps of: performing a negotiation procedure for multi-AP cooperation with one or more APs; acquiring a configuration of a multi-AP set including the one or more APs based on the negotiation procedure; receiving, after acquiring the configuration of the multi-AP set, a resource report frame including information on at least one resource configuration from a first AP of the multi-AP set; and updating the at least one resource configuration from resource information of the first AP transmitted to the second AP by the first AP in the negotiation procedure.
[0006] In various embodiments, devices for implementing the above-described methods are provided.
[0007] The present disclosure may have various advantageous effects.
[0008] For example, according to embodiments of the present disclosure, an AP may transmit a frame for resource reporting (or resource report frame) in an unsolicited / individual manner without a separate request from the APs in the cooperative relationship regarding changes in information related to multi-AP cooperation (e.g., negotiation information / cooperation information / resource information). In this case, the APs in the cooperative relationship that receive the unsolicited frame for resource reporting may update the multi-AP cooperation information (or resource information) for the corresponding AP. Information for such multi-AP cooperation and / or multi-AP cooperation-based transmission (e.g., negotiation information / cooperation information / resource information) may be utilized in scheduling multi-AP cooperation operations of an AP that acts as an SAP in the future.
[0009] The beneficial effects that can be achieved through specific embodiments of the present disclosure are not limited to the beneficial effects listed above. For example, various technical effects may be understood and / or derived from the present disclosure by those skilled in the art. Therefore, the specific effects of the present disclosure are not limited to those explicitly described herein, but may include various effects that can be understood or derived from the technical features of the present disclosure.
[0010] FIG. 1 illustrates an example of a transmitting device and / or a receiving device of the present disclosure.
[0011] Figure 2 is a conceptual diagram showing the structure of a wireless local area network (WLAN).
[0012] Figure 3 is a diagram illustrating a general link setup process.
[0013] Figure 4 illustrates an embodiment of multi-link (ML).
[0014] FIG. 5 illustrates a modified example of a transmitting device and / or a receiving device of the present disclosure.
[0015] FIG. 6 illustrates an example of a PPDU (physical protocol data unit or physical layer (PHY) protocol data unit) transmitted / received by an STA of the present disclosure.
[0016] Figure 7 is a diagram showing the layout of resource units (RUs) used for 20MHz PPDU.
[0017] Figure 8 is a diagram showing the layout of resource units (RUs) used for 40MHz PPDU.
[0018] Figure 9 is a diagram showing the layout of resource units (RUs) used for 80MHz PPDU.
[0019] Figure 10 shows the operation according to UL-MU.
[0020] Figure 11 shows an example of channels used / supported / defined within the 2.4 GHz band.
[0021] Figure 12 illustrates an example of channels used / supported / defined within the 5 GHz band.
[0022] Figure 13 illustrates an example of channels used / supported / defined within the 6 GHz band.
[0023] Figure 14 illustrates a trigger frame format. The trigger frame format may also be referred to as the structure of a trigger frame.
[0024] Figure 15 shows an example of the user information field format of MU-RTS TXS TF.
[0025] Figure 16 shows an example of coordinated time division multiple access (Co-TDMA) between cooperating APs.
[0026] FIG. 17 illustrates an example of a pair-to-pair based negotiation procedure according to an embodiment of the present disclosure.
[0027] FIG. 18 illustrates an example of a broadcast-based negotiation procedure according to an embodiment of the present disclosure.
[0028] FIG. 19 illustrates an example of a method performed by a first AP according to an embodiment of the present disclosure.
[0029] FIG. 20 illustrates an example of a method performed by a second AP according to an embodiment of the present disclosure.
[0030] FIG. 21 illustrates an example of a non-guided resource reporting procedure using QoS data / null frames according to an embodiment of the present disclosure.
[0031] FIG. 22 illustrates an example of a non-guided resource reporting procedure using MU-RTS TXS TF according to an embodiment of the present disclosure.
[0032] FIG. 23 illustrates an example of a non-guided resource reporting procedure using a management frame according to an embodiment of the present disclosure.
[0033] In this disclosure, “A or B” can mean “only A,” “only B,” or “both A and B.” In other words, “A or B” in this disclosure can be interpreted as “A and / or B.” For example, “A, B or C” in this disclosure can mean “only A,” “only B,” “only C,” or “any combination of A, B, and C.”
[0034] As used herein, a slash ( / ) or a comma can mean "and / or." For example, "A / B" can mean "A and / or B." Accordingly, "A / B" can mean "only A," "only B," or "both A and B." For example, "A, B, C" can mean "A, B, or C."
[0035] In the present disclosure, “at least one of A and B” may mean “only A,” “only B,” or “both A and B.” Additionally, in the present disclosure, the expressions “at least one of A or B” or “at least one of A and / or B” may be interpreted identically to “at least one of A and B.”
[0036] In addition, parentheses used in the present disclosure may mean “for example.” Specifically, when “control information (UHR-Signal field)” is indicated, the “UHR-Signal field” may be suggested as an example of “control information.” In other words, the “control information” of the present disclosure is not limited to the “UHR-Signal field,” and the “UHR-Signal field” may be suggested as an example of “control information.” In addition, even when indicated as “control information (UHR-Signal field),” the “UHR-Signal field” may be suggested as an example of “control information.”
[0037] Additionally, as used herein, “a / an” can mean “at least one” or “one or more.” Additionally, terms ending in “(s)” can mean “at least one” or “one or more.”
[0038] Additionally, the expressions “based on” or “on the basis of” or “according to” used in this disclosure mean “based at least in part on” and do not mean “based solely on.”
[0039] Technical features individually described in one drawing in this disclosure may be implemented individually or simultaneously.
[0040] The following examples of the present disclosure can be applied to various wireless communication systems. For example, the following examples of the present disclosure can be applied to a wireless local area network (WLAN) system. For example, the present disclosure can be applied to the IEEE 802.11a / g / n / ac / ax / be / bn standards. Furthermore, the examples of the present disclosure can be applied to the Ultra High Reliability (UHR) standard or a next-generation wireless LAN standard that enhances IEEE 802.11bn. Furthermore, the examples of the present disclosure can be applied to a mobile communication system. For example, the examples of the present disclosure can be applied to a mobile communication system based on the Long Term Evolution (LTE) standard and its evolution based on the 3rd Generation Partnership Project (3GPP) standard.
[0041] In order to explain the technical features of the present disclosure, technical features to which the present disclosure can be applied are described below.
[0042] FIG. 1 illustrates an example of a transmitting device and / or a receiving device of the present disclosure.
[0043] An example of FIG. 1 can perform various technical features described below. FIG. 1 relates to at least one STA (station). For example, the STA (110, 120) of the present disclosure may also be referred to by various names such as a mobile terminal, a wireless device, a Wireless Transmit / Receive Unit (WTRU), a User Equipment (UE), a Mobile Station (MS), a Mobile Subscriber Unit, or simply a user. The STA (110, 120) of the present disclosure may also be referred to by various names such as a network, a base station, a Node-B, an access point (AP), a repeater, a router, a relay, etc. The STA (110, 120) of the present disclosure may also be referred to by various names such as a receiving apparatus, a transmitting apparatus, a receiving STA, a transmitting STA, a receiving device, a transmitting device, etc.
[0044] For example, STA (110, 120) may perform the role of an AP (access point) or a non-AP role. That is, STA (110, 120) of the present disclosure may perform the functions of an AP and / or a non-AP. In the present disclosure, an AP may also be indicated as an AP STA.
[0045] The STA (110, 120) of the present disclosure can support various communication standards other than the IEEE 802.11 standard. For example, it can support communication standards according to the 3GPP standard (e.g., LTE, LTE-A, 5G NR standard). In addition, the STA of the present disclosure can be implemented in various devices such as a mobile phone, a vehicle, a personal computer, etc. In addition, the STA of the present disclosure can support communication for various communication services such as voice calls, video calls, data communications, and autonomous driving (Self-Driving, Autonomous-Driving).
[0046] In the present disclosure, STA (110, 120) may include a medium access control (MAC) and a physical layer interface for a wireless medium that follow the provisions of the IEEE 802.11 standard.
[0047] Based on the sub-drawing (a) of Fig. 1, STA (110, 120) is described as follows.
[0048] The first STA (110) may include a processor (111), a memory (112), and a transceiver (113). The illustrated processor, memory, and transceiver may each be implemented as separate chips, or at least two blocks / functions may be implemented through a single chip.
[0049] The transceiver (113) of the first STA performs signal transmission and reception operations. Specifically, it can transmit and receive IEEE 802.11 packets (e.g., IEEE 802.11a / b / g / n / ac / ax / be, etc.).
[0050] For example, the first STA (110) can perform the intended operation of the AP. For example, the processor (111) of the AP can receive a signal through the transceiver (113), process the received signal, generate a transmission signal, and perform control for signal transmission. The memory (112) of the AP can store a signal received through the transceiver (113) (i.e., a reception signal) and store a signal to be transmitted through the transceiver (i.e., a transmission signal).
[0051] For example, the second STA (120) can perform the intended operation of a non-AP STA. For example, the transceiver (123) of the non-AP performs signal transmission and reception operations. Specifically, it can transmit and receive IEEE 802.11 packets (e.g., IEEE 802.11a / b / g / n / ac / ax / be, etc.).
[0052] For example, the processor (121) of the Non-AP STA can receive a signal through the transceiver (123), process the received signal, generate a transmission signal, and perform control for signal transmission. The memory (122) of the Non-AP STA can store a signal received through the transceiver (123) (i.e., a reception signal) and store a signal to be transmitted through the transceiver (i.e., a transmission signal).
[0053] For example, in the specification below, the operation of a device indicated as AP may be performed in the first STA (110) or the second STA (120). For example, if the first STA (110) is an AP, the operation of the device indicated as AP may be controlled by the processor (111) of the first STA (110), and a related signal may be transmitted or received through a transceiver (113) controlled by the processor (111) of the first STA (110). In addition, control information related to the operation of the AP or a transmission / reception signal of the AP may be stored in the memory (112) of the first STA (110). In addition, when the second STA (110) is an AP, the operation of the device indicated as an AP is controlled by the processor (121) of the second STA (120), and a related signal can be transmitted or received through a transceiver (123) controlled by the processor (121) of the second STA (120). In addition, control information related to the operation of the AP or the transmission / reception signal of the AP can be stored in the memory (122) of the second STA (110).
[0054] For example, in the specification below, the operation of a device indicated as a non-AP (or User-STA) may be performed in the STA (110) or the second STA (120). For example, if the second STA (120) is a non-AP, the operation of the device indicated as a non-AP may be controlled by the processor (121) of the second STA (120), and a related signal may be transmitted or received through a transceiver (123) controlled by the processor (121) of the second STA (120). In addition, control information related to the operation of the non-AP or the transmission / reception signal of the AP may be stored in the memory (122) of the second STA (120). For example, if the first STA (110) is a non-AP, the operation of a device indicated as a non-AP is controlled by the processor (111) of the first STA (110), and a related signal may be transmitted or received through a transceiver (113) controlled by the processor (111) of the first STA (120). In addition, control information related to the operation of the non-AP or the transmission / reception signal of the AP may be stored in the memory (112) of the first STA (110).
[0055] In the following specification, devices called (transmitting / receiving) STA, first STA, second STA, STA1, STA2, AP, first AP, second AP, AP1, AP2, (transmitting / receiving) Terminal, (transmitting / receiving) device, (transmitting / receiving) apparatus, network, etc. may refer to the STA (110, 120) of FIG. 1. For example, devices indicated as (transmitting / receiving) STA, first STA, second STA, STA1, STA2, AP, first AP, second AP, AP1, AP2, (transmitting / receiving) Terminal, (transmitting / receiving) device, (transmitting / receiving) apparatus, network, etc. without specific drawing symbols may also refer to the STA (110, 120) of FIG. 1. For example, in the example below, the operation of various STAs transmitting and receiving signals (e.g., PPPDU) may be performed by the transceiver (113, 123) of FIG. 1. In addition, in the example below, the operation of various STAs generating transmission and reception signals or performing data processing or calculations in advance for transmission and reception signals may be performed by the processor (111, 121) of FIG. 1.For example, an example of an operation for generating a transmission / reception signal or performing data processing or operation in advance for a transmission / reception signal may include 1) an operation for determining / obtaining / configuring / computing / decoding / encoding bit information of a subfield (SIG, STF, LTF, Data) field included in a PPDU, 2) an operation for determining / configuring / obtaining time resources or frequency resources (e.g., subcarrier resources) used for a subfield (SIG, STF, LTF, Data) field included in a PPDU, 3) an operation for determining / configuring / obtaining a specific sequence (e.g., a pilot sequence, an STF / LTF sequence, an extra sequence applied to SIG) used for a subfield (SIG, STF, LTF, Data) field included in a PPDU, 4) a power control operation and / or a power saving operation applied to an STA, 5) an operation related to determining / obtaining / configuring / computing / decoding / encoding an ACK signal, etc. Additionally, in the examples below, various information (e.g., information related to fields / subfields / control fields / parameters / power, etc.) used by various STAs for determining / acquiring / configuring / computing / decoding / encoding transmission / reception signals can be stored in the memory (112, 122) of FIG. 1.
[0056] The device / STA of the sub-drawing (a) of FIG. 1 described above can be modified as in the sub-drawing (b) of FIG. 1. Hereinafter, the STA (110, 120) of the present disclosure will be described based on the sub-drawing (b) of FIG. 1.
[0057] For example, the transceiver (113, 123) illustrated in sub-drawing (b) of FIG. 1 may perform the same function as the transceiver illustrated in sub-drawing (a) of FIG. 1 described above. For example, the processing chip (114, 124) illustrated in sub-drawing (b) of FIG. 1 may include a processor (111, 121) and a memory (112, 122). The processor (111, 121) and the memory (112, 122) illustrated in sub-drawing (b) of FIG. 1 may perform the same function as the processor (111, 121) and the memory (112, 122) illustrated in sub-drawing (a) of FIG. 1 described above.
[0058] The mobile terminal, wireless device, Wireless Transmit / Receive Unit (WTRU), User Equipment (UE), Mobile Station (MS), Mobile Subscriber Unit, user, user STA, network, Base Station, Node-B, Access Point (AP), repeater, router, relay, receiving device, transmitting device, receiving STA, transmitting STA, receiving Device, transmitting Device, receiving Apparatus, and / or transmitting Apparatus described below may refer to the STA (110, 120) illustrated in the sub-drawings (a) / (b) of FIG. 1, or may refer to the processing chip (114, 124) illustrated in the sub-drawing (b) of FIG. 1. That is, the technical feature of the present disclosure may be performed in the STA (110, 120) illustrated in the sub-drawings (a) / (b) of FIG. 1, or may be performed only in the processing chip (114, 124) illustrated in the sub-drawings (b) of FIG. 1. For example, the technical feature that the transmitting STA transmits a control signal may be understood as a technical feature that the control signal generated in the processor (111, 121) illustrated in the sub-drawings (a) / (b) of FIG. 1 is transmitted through the transceiver (113, 123) illustrated in the sub-drawings (a) / (b) of FIG. 1. Alternatively, the technical feature that the transmitting STA transmits a control signal may be understood as a technical feature that the control signal to be transmitted to the transceiver (113, 123) is generated in the processing chip (114, 124) illustrated in the sub-drawings (b) of FIG. 1.
[0059] For example, the technical feature of a receiving STA receiving a control signal can be understood as a technical feature of a control signal being received by a transceiver (113, 123) illustrated in sub-drawing (a) of FIG. 1. Alternatively, the technical feature of a receiving STA receiving a control signal can be understood as a technical feature of a control signal received by a transceiver (113, 123) illustrated in sub-drawing (a) of FIG. 1 being acquired by a processor (111, 121) illustrated in sub-drawing (a) of FIG. 1. Alternatively, the technical feature of a receiving STA receiving a control signal can be understood as a technical feature of a control signal received by a transceiver (113, 123) illustrated in sub-drawing (b) of FIG. 1 being acquired by a processing chip (114, 124) illustrated in sub-drawing (b) of FIG.
[0060] Referring to the sub-drawing (b) of FIG. 1, software code (115, 125) may be included in the memory (112, 122). The software code (115, 125) may include instructions that control the operation of the processor (111, 121). The software code (115, 125) may be included in various programming languages.
[0061] The processor (111, 121) or processing chip (114, 124) illustrated in FIG. 1 may include an application-specific integrated circuit (ASIC), another chipset, a logic circuit, and / or a data processing device. The processor may be an application processor (AP). For example, the processor (111, 121) or processing chip (114, 124) illustrated in FIG. 1 may include at least one of a digital signal processor (DSP), a central processing unit (CPU), a graphics processing unit (GPU), and a modem (modulator and demodulator). For example, the processor (111, 121) or processing chip (114, 124) illustrated in FIG. 1 may be a SNAPDRAGON® series processor manufactured by Qualcomm®, an EXYNOS® series processor manufactured by Samsung®, an A series processor manufactured by Apple®, a HELIO® series processor manufactured by MediaTek®, an ATOM® series processor manufactured by INTEL®, or an enhanced processor thereof.
[0062] In the present disclosure, uplink may mean a link for communication from a non-AP STA to an AP STA, and uplink PPDU / packet / signal, etc. may be transmitted through the uplink. In addition, in the present disclosure, downlink may mean a link for communication from an AP STA to a non-AP STA, and downlink PPDU / packet / signal, etc. may be transmitted through the downlink.
[0063] Figure 2 is a conceptual diagram showing the structure of a wireless local area network (WLAN).
[0064] The upper part of Figure 2 shows the structure of the infrastructure BSS (basic service set) of IEEE (institute of electrical and electronic engineers) 802.11.
[0065] Referring to the top of FIG. 2, the wireless LAN system may include one or more infrastructure BSSs (200, 205) (hereinafter, BSS). The BSSs (200, 205) are a collection of APs and STAs, such as an access point (AP) 225 and a station (STA1, 200-1), that have successfully synchronized and can communicate with each other, and are not a concept that designates a specific area. The BSS (205) may also include one or more STAs (205-1, 205-2) that can be associated with one AP (230).
[0066] A BSS may include at least one STA, an AP (225, 230) providing a distribution service, and a distribution system (DS, 210) connecting multiple APs.
[0067] A distributed system (210) can connect multiple BSSs (200, 205) to implement an extended service set (ESS, 240). An ESS (240) can be used as a term to indicate a network formed by connecting one or more APs through the distributed system (210). APs included in a single ESS (240) can have the same SSID (service set identification).
[0068] The portal (portal, 220) can act as a bridge to connect a wireless LAN network (IEEE 802.11) to another network (e.g., 802.X).
[0069] In a BSS such as the upper part of Fig. 2, a network between APs (225, 230) and a network between APs (225, 230) and STAs (200-1, 205-1, 205-2) can be implemented. However, it may also be possible to establish a network and perform communication between STAs without an AP (225, 230). A network that establishes a network and performs communication between STAs without an AP (225, 230) is defined as an ad-hoc network or an independent basic service set (IBSS).
[0070] The bottom of Figure 2 is a conceptual diagram showing IBSS.
[0071] Referring to the bottom of Fig. 2, the IBSS is a BSS that operates in ad-hoc mode. Since the IBSS does not include an AP, there is no centralized management entity. That is, in the IBSS, the STAs (250-1, 250-2, 250-3, 255-4, 255-5) are managed in a distributed manner. In the IBSS, all STAs (250-1, 250-2, 250-3, 255-4, 255-5) can be mobile STAs, and access to the distributed system is not permitted, forming a self-contained network.
[0072] Figure 3 is a diagram illustrating a general link setup process.
[0073] In step S310, the STA may perform a network discovery operation. This network discovery operation may include scanning by the STA. That is, for the STA to access the network, it must find a network it can join. Before joining a wireless network, the STA must identify compatible networks. The process of identifying networks in a specific area is called scanning. Scanning methods include active scanning and passive scanning.
[0074] Figure 3 illustrates a network discovery operation that includes an active scanning process as an example. In active scanning, an STA performing scanning transmits a probe request frame to discover which APs exist in the vicinity while moving between channels and waits for a response. A responder transmits a probe response frame to the STA that transmitted the probe request frame in response to the probe request frame. Here, the responder may be the STA that last transmitted a beacon frame in the BSS of the channel being scanned. In a BSS, the AP transmits the beacon frame, so the AP becomes the responder. In an IBSS, the STAs within the IBSS take turns transmitting beacon frames, so the responder is not constant. For example, an STA that transmits a probe request frame on channel 1 and receives a probe response frame on channel 1 can store BSS-related information included in the received probe response frame and move to the next channel (e.g., channel 2) to perform scanning (i.e., transmitting and receiving probe requests / responses on channel 2) in the same manner.
[0075] Although not shown in the example of FIG. 3, the scanning operation can also be performed in a passive scanning manner. An STA performing scanning based on passive scanning can wait for a beacon frame while moving between channels. A beacon frame is one of the management frames in IEEE 802.11. It announces the presence of a wireless network and is periodically transmitted so that the scanning STA can find the wireless network and participate in the wireless network. In the BSS, the AP periodically transmits the beacon frame, and in the IBSS, the STAs within the IBSS take turns transmitting the beacon frame. When the scanning STA receives a beacon frame, it stores the information about the BSS included in the beacon frame and moves to another channel, recording the beacon frame information on each channel. An STA that receives a beacon frame can store the BSS-related information included in the received beacon frame, move to the next channel, and perform scanning on the next channel in the same manner.
[0076] An STA that discovers a network can perform an authentication process through step S320. This authentication process may be referred to as the first authentication process to clearly distinguish it from the security setup operation of step S340 described below. The authentication process of S320 may include a process in which the STA transmits an authentication request frame to the AP, and the AP responds by transmitting an authentication response frame to the STA. The authentication frame used for the authentication request / response corresponds to a management frame.
[0077] The authentication frame may include information such as an authentication algorithm number, an authentication transaction sequence number, a status code, a challenge text, a Robust Security Network (RSN), and a Finite Cyclic Group.
[0078] An STA can transmit an authentication request frame to an AP. The AP can determine whether to grant authentication to the STA based on the information contained in the received authentication request frame. The AP can provide the result of the authentication process to the STA via an authentication response frame.
[0079] A successfully authenticated STA may perform an association process based on step S330. The association process includes a process in which the STA transmits an association request frame to the AP, and the AP transmits an association response frame to the STA in response. For example, the association request frame may include information related to various capabilities, such as a beacon listen interval, a service set identifier (SSID), supported rates, supported channels, RSN, mobility domain, supported operating classes, a Traffic Indication Map Broadcast request, and interworking service capabilities. For example, the association response frame may contain information related to various capabilities, status codes, Association ID (AID), supported rates, Enhanced Distributed Channel Access (EDCA) parameter sets, Received Channel Power Indicator (RCPI), Received Signal to Noise Indicator (RSNI), mobility domains, timeout interval (association comeback time), overlapping BSS scan parameters, TIM broadcast response, QoS maps, etc.
[0080] In step S340, the STA may perform a security setup process. The security setup process of step S340 may include, for example, a process of setting up a private key through a four-way handshaking using an Extensible Authentication Protocol over LAN (EAPOL) frame.
[0081] Figure 4 illustrates an example of a multi-link (ML).
[0082] As illustrated in FIG. 4, multiple multi-link devices (MLDs) can communicate over a remote link. The MLDs can be categorized into AP MLDs including multiple AP STAs and non-AP MLDs including multiple non-AP STAs. That is, the AP MLD can include affiliated APs (i.e., AP STAs), and the non-AP MLD can include affiliated STAs (i.e., non-AP STAs, or user-STAs).
[0083] A multilink may include a first link and a second link, and different channels / subchannels / frequency resources may be allocated to the first and second links. The first and second multilinks may be identified through a link ID of 4 bits (or other n bits). The first and second links may be configured in the same 2.4 GHz, 5 GHz, or 6 GHz band. Alternatively, the first link and the second link may be configured in different bands.
[0084] The AP MLD of FIG. 4 includes three affiliated APs. In the example of FIG. 4, AP1 may operate in the 2.4 GHz band, AP2 may operate in the 5 GHz band, and AP3 may operate in the 6 GHz band. In the example of FIG. 4, the first link in which AP1 and non-AP1 operate may be defined as a channel / subchannel / frequency resource within the 2.4 GHz band. Furthermore, in the example of FIG. 4, the second link in which AP2 and non-AP2 operate may be defined as a channel / subchannel / frequency resource within the 5 GHz band. Furthermore, in the example of FIG. 4, the third link in which AP3 and non-AP3 operate may be defined as a channel / subchannel / frequency resource within the 6 GHz band.
[0085] In the example of FIG. 4, AP1 may initiate a multi-link setup procedure (ML setup procedure) by transmitting an Association Request frame to non-AP STA1. In the example of FIG. 4, non-AP STA1 may transmit an Association Response frame in response to the Association Request frame. Each AP (e.g., AP1 / 2 / 3) illustrated in FIG. 4 may be identical to the AP illustrated in FIG. 1 and / or FIG. 2, and each non-AP (e.g., non-AP1 / 2 / 3) illustrated in FIG. 4 may be identical to the STA (i.e., user-STA or non-AP STA) illustrated in FIG. 1 and / or FIG. 2.
[0086] The specific features of the present disclosure are not limited to the specific features of FIG. 4. That is, the number of links can be defined in various ways, and multiple links can be defined in various ways within at least one band.
[0087] FIG. 5 illustrates a modified example of a transmitting device and / or a receiving device of the present disclosure.
[0088] The devices (e.g., AP STA, non-AP STA) illustrated in FIGS. 1 to 4 may be modified as illustrated in FIG. 5. The transceiver (530) of FIG. 5 may be identical to the transceivers (113, 123) of FIG. 1. The transceiver (530) of FIG. 5 may include a receiver and a transmitter.
[0089] The processor (510) of FIG. 5 may be identical to the processor (111, 121) of FIG. 1. Alternatively, the processor (510) of FIG. 5 may be identical to the processing chip (114, 124) of FIG. 1.
[0090] The memory (150) of FIG. 5 may be the same as the memory (112, 122) of FIG. 1. Alternatively, the memory (150) of FIG. 5 may be a separate external memory different from the memory (112, 122) of FIG. 1.
[0091] Referring to FIG. 5, a power management module (511) manages power to a processor (510) and / or a transceiver (530). A battery (512) supplies power to the power management module (511). A display (513) outputs results processed by the processor (510). A keypad (514) receives input to be used by the processor (510). The keypad (514) may be displayed on the display (513). A SIM card (515) may be an integrated circuit used to securely store an international mobile subscriber identity (IMSI) and an associated key used to identify and authenticate a subscriber in a mobile phone device, such as a mobile phone or computer.
[0092] Referring to FIG. 5, the speaker (540) can output sound-related results processed by the processor (510). The microphone (541) can receive sound-related input to be used by the processor (510).
[0093] FIG. 6 illustrates an example of a PPDU (physical protocol data unit or physical layer (PHY) protocol data unit) transmitted / received by an STA of the present disclosure.
[0094] The STA (e.g., AP STA, non-AP STA, AP MLD, non-AP MLD) of the present disclosure can transmit and / or receive the PPDU of FIG. 6. The PPDU described in the present disclosure may have, for example, the structure of FIG. 6. In addition, the PPDU described in the present disclosure may be called by various names such as a transmission PPDU, a reception PPDU, a first type PPDU, or an Nth type PPDU, etc. The PPDU described in the present disclosure can be used in a WLAN system defined according to IEEE 802.11bn and / or a next-generation WLAN system that improves upon IEEE 802.11bn.
[0095] The PPDU of FIG. 6 may be related to various PPDU types used in a UHR system. For example, the example of FIG. 6 may be used for at least one of a single-user (SU) mode / type / transmission, a multi-user (MU) mode / type / transmission, and a null data packet (NDP) mode / type / transmission related to channel sounding. For example, if the example of FIG. 6 is related to NDP, the Data field illustrated may be omitted. If the PPDU of FIG. 6 is used for a trigger-based (TB) mode, the UHR-SIG of FIG. 6 may be omitted. In other words, an STA that has received a trigger frame for UL-MU (Uplink-MU) communication may transmit a PPDU with the UHR-SIG omitted in the example of FIG. 6.
[0096] In FIG. 6, L-STF or UHR-LTF may be called a preamble or physical preamble, and may be generated / transmitted / received / acquired / decoded in the physical layer (included in the transmitting / receiving STA).
[0097] Each block illustrated in Fig. 6 may be called a field / subfield / signal, etc. The names of these fields / subfields / signals may be, as illustrated in Fig. 6, L-STF (legacy short training field), L-LTF (legacy long training field), L-SIG (legacy signal), RL-SIG (repeated L-SIG), U-SIG (Universal Signal), UHR-SIG (UHR-signal), etc.
[0098] The subcarrier spacing of the L-STF, L-LTF, L-SIG, RL-SIG, U-SIG, and UHR-SIG fields in FIG. 6 may be set to 312.5 kHz, and the subcarrier spacing of the UHR-STF, UHR-LTF, and Data fields may be set to 78.125 kHz. That is, the tone index (or subcarrier index) of the L-STF, L-LTF, L-SIG, RL-SIG, U-SIG, and UHR-SIG fields may be expressed in units of 312.5 kHz, and the tone index (or subcarrier index) of the UHR-STF, UHR-LTF, and Data fields may be expressed in units of 78.125 kHz.
[0099] In the PPDU of Fig. 6, L-LTF and L-STF may be identical to conventional fields (e.g., non-HT LTF and non-HT STF defined in conventional WLAN standards).
[0100] The L-SIG field of FIG. 6 may include, for example, 24 bits of bit information. For example, the 24 bits of information may include a 4 bit Rate field, a 1 bit Reserved bit, a 12 bit Length field, a 1 bit Parity bit, and a 6 bit Tail bit. For example, the 12 bit Length field may include information about the length or time duration of the PPDU. For example, the value of the 12 bit Length field may be determined based on the type of the PPDU. For example, if the PPDU is a non-HT (non-High Throughput), HT (High Throughput), VHT (Very High Throughput) PPDU, or an EHT (extremely high throughput) PPDU or UHR PPDU, the value of the Length field may be determined as a multiple of 3. For example, if the PPDU is a HE PPDU, the value of the Length field may be determined as "a multiple of 3 + 1" or "a multiple of 3 + 2". In other words, for non-HT, HT, VHT PPDU, EHT PPDU, UHR PPDU, the value of the Length field can be determined as a multiple of 3, and for HE (High-Efficiency) PPDU, the value of the Length field can be determined as "a multiple of 3 + 1" or "a multiple of 3 + 2". In other words, the Length field in an UHR PPDU is set to a value satisfying the condition that the remainder is zero when LENGTH is divided by 3.
[0101] For example, (non-AP and AP) STAs can apply BCC encoding based on a code rate of 1 / 2 to the 24 bits of information in the L-SIG field. Then, the transmitting STA can obtain 48 BCC coded bits. BPSK modulation can be applied to the 48 coded bits to generate 48 BPSK symbols. The transmitting STA can map the 48 BPSK symbols to positions excluding the pilot subcarriers {subcarrier index -21, -7, +7, +21} and the DC subcarrier {subcarrier index 0}. As a result, the 48 BPSK symbols can be mapped to subcarrier indices -26 to -22, -20 to -8, -6 to -1, +1 to +6, +8 to +20, and +22 to +26. The transmitting STA can additionally map the signal {-1, -1, -1, 1} to the subcarrier indices {-28, -27, +27, +28}. The above signal can be used for channel estimation for the frequency domain corresponding to {-28, -27, +27, +28}.
[0102] For example, (non-AP and AP) STA can generate RL-SIG, which is generated in the same manner as L-SIG. BPSK modulation can be applied to RL-SIG. Receiving (non-AP and AP) STA can determine whether the received PPDU is a HE PPDU, EHT PPDU, or UHR PPDU based on the presence of RL-SIG. In other words, if RL-SIG is present, receiving (non-AP and AP) STA can determine whether the received PPDU is one of HE PPDU, EHT PPDU, or UHR PPDU. In other words, if RL-SIG is not present, receiving (non-AP and AP) STA can determine whether the received PPDU is one of non-HT PPDU, HT PPDU, or VHT PPDU. In other words, the RL-SIG field is a repeat of the L-SIG field and is used to differentiate an UHR PPDU from a non-HT PPDU, HT PPDU, and VHT PPDU.
[0103] After the RL-SIG in Fig. 6, a U-SIG (Universal SIG) may be inserted. The U-SIG may be called by various names such as the first SIG field, the first SIG, the first type SIG, the control signal, the control signal field, the first (type) control signal, the common control field, and the common control signal.
[0104] A U-SIG can contain N bits of information and can include information for identifying the type of EHT PPDU. For example, a U-SIG can be formed based on two symbols (e.g., two consecutive OFDM symbols). Each symbol (e.g., an OFDM symbol) for a U-SIG can have a duration of 4 microseconds. Each symbol of a U-SIG can be used to transmit 26 bits of information. For example, each symbol of a U-SIG can be transmitted and received based on 52 data tones and 4 pilot tones.
[0105] For example, A bit information (e.g., 52 uncoded bits) can be transmitted through U-SIG, and the first symbol of U-SIG can transmit the first X bits of information (e.g., 26 uncoded bits) out of the total A bit information, and the second symbol of U-SIG can transmit the remaining Y bits of information (e.g., 26 uncoded bits) out of the total A bit information. For example, the transmitting STA can obtain 26 uncoded bits included in each U-SIG symbol. The transmitting STA can perform convolutional encoding (i.e., BCC encoding) based on a rate of R=1 / 2 to generate 52 coded bits, and perform interleaving on the 52 coded bits. The transmitting STA can perform BPSK modulation on the interleaved 52 coded bits to generate 52 BPSK symbols allocated to each U-SIG symbol. A single U-SIG symbol can be transmitted based on 56 tones (subcarriers) from subcarrier index -28 to subcarrier index +28, excluding DC index 0. The 52 BPSK symbols generated by the transmitting STA can be transmitted based on the remaining tones (subcarriers) excluding the pilot tones -21, -7, +7, and +21.
[0106] For example, A bit information (e.g., 52 uncoded bits) transmitted by U-SIG may include a CRC field (e.g., a 4-bit long field) and a tail field (e.g., a 6-bit long field). The CRC field and the tail field may be transmitted through the second symbol of the U-SIG. The CRC field may be generated based on 26 bits allocated to the first symbol of the U-SIG and the remaining 16 bits excluding the CRC / tail field within the second symbol, and may be generated based on a conventional CRC calculation algorithm. In addition, the tail field may be used to terminate the trellis of the convolutional decoder and may be set to, for example, "000000".
[0107] The A bit information (e.g., 52 uncoded bits) transmitted by the U-SIG (or U-SIG field) can be divided into version-independent bits and version-dependent bits. For example, the size of the version-independent bits can be fixed or variable. For example, the version-independent bits can be assigned only to the first symbol of the U-SIG, or the version-independent bits can be assigned to both the first symbol and the second symbol of the U-SIG. For example, the version-independent bits and the version-dependent bits can be called by various names, such as the first control bit and the second control bit.
[0108] For example, the version-independent bits of the U-SIG may include a 3-bit PHY version identifier. For example, the 3-bit PHY version identifier may include information related to the PHY version of the transmitted and received PPDU. For example, a first value (e.g., a value of 000) of the 3-bit PHY version identifier may indicate that the transmitted and received PPDU is an EHT PPDU. In addition, a second value (e.g., a value of 001) of the 3-bit PHY version identifier may indicate that the transmitted and received PPDU is an UHR PPDU.
[0109] In other words, when the (AP / non-AP) STA transmits an EHT PPDU, it can set the 3-bit PHY version identifier to the first value. In other words, the receiving (AP / non-AP) STA can determine that the received PPDU is an EHT PPDU based on the PHY version identifier having the first value, and can determine that the received PPDU is an UHR PPDU based on the PHY version identifier having the second value.
[0110] For example, the version-independent bits of U-SIG may include a 1-bit UL / DL flag field. The first value of the 1-bit UL / DL flag field relates to UL communication, and the second value of the UL / DL flag field relates to DL communication.
[0111] For example, the version-independent bits of U-SIG may include information about the length of a transmission opportunity (TXOP) and information about the BSS color ID.
[0112] For example, if a UHR PPDU is classified into various types (e.g., a type related to SU transmission (performed based on UL or DL), a type related to DL transmission, a type related to NDP transmission, a type related to DL non-MU-MIMO, a type related to DL MU-MIMO, a type related to Multi-AP operation, a type related to Coordinated beamforming (Co-BF), Spatial Reuse (SR), a type related to Coordinated OFDMA (C-OFDMA), a type related to Coordinated TDMA (Co-TDMA)), information about the type of the EHT PPDU (e.g., 2-bit or 3-bit information) can be included in the version-dependent bits of the U-SIG.
[0113] For example, a U-SIG may include information about 1) a bandwidth field including information about a bandwidth, 2) a field including information about a Modulation and Coding Scheme (MCS) technique applied to the UHR-SIG, 3) an indication field including information about whether a dual subcarrier modulation (DCM) technique is applied to the UHR-SIG, 4) a field including information about the number of symbols used for the UHR-SIG, 5) a field including information about whether the UHR-SIG is generated over the entire band, 6) a field including information about the type of UHR-LTF / STF, and 7) a field indicating the length of the UHR-LTF and the CP length.
[0114] Preamble puncturing may be applied to the PPDU of FIG. 6. Preamble puncturing refers to applying puncturing to a portion of the entire bandwidth of the PPDU (e.g., the secondary 20 MHz band). For example, when an 80 MHz PPDU is transmitted, the STA may apply puncturing to the secondary 20 MHz band within the 80 MHz band, and transmit the PPDU only through the primary 20 MHz band and the secondary 40 MHz band.
[0115] For example, the pattern of preamble puncturing can be preset. For example, when the first puncturing pattern is applied, puncturing can be applied only to the secondary 20 MHz band within the 80 MHz band. For example, when the second puncturing pattern is applied, puncturing can be applied only to one of the two secondary 20 MHz bands included in the secondary 40 MHz band within the 80 MHz band. For example, when the third puncturing pattern is applied, puncturing can be applied only to the secondary 20 MHz band included in the primary 80 MHz band within the 160 MHz band (or 80+80 MHz band). For example, when the fourth puncturing pattern is applied, a primary 40 MHz band included in the primary 80 MHz band within the 160 MHz band (or 80+80 MHz band) may be present, and puncturing may be applied to at least one 20 MHz channel that does not belong to the primary 40 MHz band.
[0116] Information regarding preamble puncturing applied to the PPDU may be included in the U-SIG and / or UHR-SIG. For example, the first field of the U-SIG may include information regarding the contiguous bandwidth of the PPDU, and the second field of the U-SIG may include information regarding preamble puncturing applied to the PPDU.
[0117] For example, U-SIG and UHR-SIG may include information regarding preamble puncturing based on the following method. If the bandwidth of the PPDU exceeds 80 MHz, the U-SIG may be individually configured in units of 80 MHz. For example, if the bandwidth of the PPDU is 160 MHz, the PPDU may include a first U-SIG for the first 80 MHz band and a second U-SIG for the second 80 MHz band. In this case, the first field of the first U-SIG may include information regarding the 160 MHz bandwidth, and the second field of the first U-SIG may include information regarding preamble puncturing applied to the first 80 MHz band (i.e., information regarding the preamble puncturing pattern). Additionally, the first field of the second U-SIG may include information about a 160 MHz bandwidth, and the second field of the second U-SIG may include information about preamble puncturing applied to the second 80 MHz band (i.e., information about a preamble puncturing pattern). Meanwhile, the UHR-SIG consecutive to the first U-SIG may include information about preamble puncturing applied to the second 80 MHz band (i.e., information about a preamble puncturing pattern), and the UHR-SIG consecutive to the second U-SIG may include information about preamble puncturing applied to the first 80 MHz band (i.e., information about a preamble puncturing pattern).
[0118] Additionally or alternatively, U-SIG and UHR-SIG may include information regarding preamble puncturing based on the following methods. U-SIG may include information regarding preamble puncturing for all bands (i.e., information regarding preamble puncturing patterns). That is, UHR-SIG may not include information regarding preamble puncturing, and only U-SIG may include information regarding preamble puncturing (i.e., information regarding preamble puncturing patterns).
[0119] U-SIGs can be configured in 20 MHz units. For example, if an 80 MHz PPDU is configured, U-SIGs can be duplicated. That is, four identical U-SIGs can be included within an 80 MHz PPDU. PPDUs exceeding the 80 MHz bandwidth can contain different U-SIGs.
[0120] The UHR-SIG of FIG. 6 may include control information for a receiving STA. The UHR-SIG may be transmitted via at least one symbol, and each symbol may have a length of 4 us. Information regarding the number of symbols used for the UHR-SIG may be included in the U-SIG.
[0121] UHR-SIG provides additional signals to the U-SIG field to enable STAs to interpret / decode UHR PPDUs. The UHR-SIG field may contain U-SIG overflow bits that are common to all users. The UHR-SIG field also contains resource allocation information, allowing STAs to look up resources used in fields containing data fields / UHR-STF / UHR-LTF (i.e., UHR modulated fields of an UHR PPDU).
[0122] The frequency resources of the UHR-LTF, UHR-STF, and data fields illustrated in FIG. 6 can be determined based on RUs (resource units) defined by multiple subcarriers / tones. That is, the UHR-LTF, UHR-STF, and data fields of the present disclosure can be transmitted / received through RUs (resource units) defined by multiple subcarriers / tones.
[0123] FIG. 7 is a diagram showing the layout of resource units (RUs) used for a 20 MHz PPDU. That is, the UHR-LTF, UHR-STF, and / or data fields included in the 20 MHz PPDU can be transmitted / received through at least one of the various RUs defined in FIG. 7.
[0124] As shown at the top of Fig. 7, 26 units (i.e., units corresponding to 26 tones) can be arranged. Six tones can be used as a guard band in the leftmost band of the 20 MHz band, and five tones can be used as a guard band in the rightmost band of the 20 MHz band. In addition, seven DC tones can be inserted in the center band, i.e., the DC band, and 26 units corresponding to 13 tones can exist on each side of the DC band. In addition, 26 units, 52 units, and 106 units can be allocated to other bands. Each unit can be allocated for a receiving station, i.e., a user.
[0125] Meanwhile, the RU arrangement of FIG. 7 is utilized not only in a situation for multiple users (MUs) but also in a situation for a single user (SU), in which case it is possible to use one 242-unit as shown at the bottom of FIG. 4, in which case three DC tones can be inserted.
[0126] In the example of Fig. 7, RUs of various sizes, such as 26-RU, 52-RU, 106-RU, and 242-RU, are proposed. Since the specific sizes of these RUs can be expanded or increased, the present embodiment is not limited to the specific size of each RU (i.e., the number of corresponding tones). In the present disclosure, N-RU may be represented as N-tone RU, etc. For example, 26-RU may be represented as 26-tone RU.
[0127] Figure 8 is a diagram showing the layout of resource units (RUs) used for 40MHz PPDU.
[0128] As in the example of Fig. 7 where RUs of various sizes were used, the example of Fig. 8 can also use 26-RU, 52-RU, 106-RU, 242-RU, 484-RU, etc. In addition, 5 DC tones can be inserted at the center frequency, 12 tones can be used as a guard band in the leftmost band of the 40 MHz band, and 11 tones can be used as a guard band in the rightmost band of the 40 MHz band.
[0129] Additionally, as illustrated, 484 RUs may be used when used for a single user. Meanwhile, the specific number of RUs may be changed, as in the example of FIG. 7.
[0130] Figure 9 is a diagram illustrating the layout of resource units (RUs) used for an 80MHz PPDU. The layout of the resource units (RUs) used in the present disclosure may vary. For example, the layout of the resource units (RUs) used in the 80MHz band may vary.
[0131] Figure 10 illustrates an operation according to UL-MU. As illustrated, a transmitting STA (e.g., AP) can acquire a TXOP (1025) by performing channel access through contending (i.e., backoff operation) and transmit a trigger frame (1030). That is, the transmitting STA (e.g., AP) can transmit a PPDU including a trigger frame (1030). When a PPDU including a trigger frame is received, a TB (trigger-based) PPDU is transmitted after a delay of SIFS.
[0132] TB PPDUs (1041, 1042) are transmitted at the same time and can be transmitted from multiple STAs (e.g., User STAs) whose AIDs are indicated in the Trigger frame (1030). The ACK frame (1050) for the TB PPDU can be implemented in various forms. For example, the ACK frame (1050) for the TB PPDU can be implemented in the form of a BA (block ACK).
[0133] In FIG. 10, transmission(s) of a Trigger Frame (1030), a TB PPDU (1041, 1042) and / or an ACK frame (1050) may be performed within a TXOP (1025).
[0134] Figure 11 shows an example of channels used / supported / defined within the 2.4 GHz band.
[0135] The 2.4 GHz band may be referred to by other names, such as the first band (band). Furthermore, the 2.4 GHz band may refer to a frequency range in which channels with a center frequency adjacent to 2.4 GHz (e.g., channels with a center frequency between 2.4 and 2.5 GHz) are used / supported / defined.
[0136] The 2.4 GHz band may include multiple 20 MHz channels. The 20 MHz within the 2.4 GHz band may have multiple channel indices (e.g., indices 1 through 14). For example, the center frequency of a 20 MHz channel assigned channel index 1 may be 2.412 GHz, the center frequency of a 20 MHz channel assigned channel index 2 may be 2.417 GHz, and the center frequency of a 20 MHz channel assigned channel index N may be (2.407 + 0.005*N) GHz. The channel indices may be referred to by various names, such as channel numbers. The specific numerical values of the channel indices and center frequencies may change.
[0137] Figure 11 exemplarily illustrates four channels within the 2.4 GHz band. The illustrated first frequency region (1110) to fourth frequency region (1140) may each include one channel. For example, the first frequency region (1110) may include channel 1 (a 20 MHz channel having an index of 1). In this case, the center frequency of channel 1 may be set to 2412 MHz. The second frequency region (1120) may include channel 6. In this case, the center frequency of channel 6 may be set to 2437 MHz. The third frequency region (1130) may include channel 11. In this case, the center frequency of channel 11 may be set to 2462 MHz. The fourth frequency region (1140) may include channel 14. In this case, the center frequency of channel 14 may be set to 2484 MHz.
[0138] Figure 12 illustrates an example of channels used / supported / defined within the 5 GHz band.
[0139] The 5 GHz band may be referred to by other names, such as a second band / band, etc. The 5 GHz band may refer to a frequency range in which channels with center frequencies greater than or equal to 5 GHz and less than 6 GHz (or less than 5.9 GHz) are used / supported / defined. Alternatively, the 5 GHz band may include multiple channels between 4.5 GHz and 5.5 GHz. The specific figures shown in FIG. 12 are subject to change.
[0140] Multiple channels within the 5 GHz band include Unlicensed National Information Infrastructure (UNII)-1, UNII-2, UNII-3, and ISM. UNII-1 may be referred to as UNII Low. UNII-2 may include frequency ranges called UNII Mid and UNII-2Extended. UNII-3 may be referred to as UNII-Upper.
[0141] Within the 5 GHz band, multiple channels can be configured, and the bandwidth of each channel can be variously configured, such as 20 MHz, 40 MHz, 80 MHz, or 160 MHz. For example, the 5170 MHz to 5330 MHz frequency domain / range within UNII-1 and UNII-2 can be divided into eight 20 MHz channels. The 5170 MHz to 5330 MHz frequency domain / range can be divided into four channels through a 40 MHz frequency domain. The 5170 MHz to 5330 MHz frequency domain / range can be divided into two channels through an 80 MHz frequency domain. Alternatively, the 5170 MHz to 5330 MHz frequency domain / range can be divided into one channel through a 160 MHz frequency domain.
[0142] Figure 13 illustrates an example of channels used / supported / defined within the 6 GHz band.
[0143] The 6 GHz band may also be referred to by other names, such as the third band / band. The 6 GHz band may refer to the frequency range in which channels with center frequencies above 5.9 GHz are used / supported / defined. The specific figures shown in Figure 13 are subject to change.
[0144] For example, the 20 MHz channel of FIG. 13 can be defined from 5.940 GHz. Specifically, the leftmost channel among the 20 MHz channels of FIG. 13 can have an index of 1 (or channel index, channel number, etc.), and a center frequency of 5.945 GHz can be assigned. That is, the center frequency of the indexed channel N can be determined as (5.940 + 0.005*N) GHz.
[0145] Accordingly, the indexes (or channel numbers) of the 20 MHz channels of FIG. 13 are 1, 5, 9, 13, 17, 21, 25, 29, 33, 37, 41, 45, 49, 53, 57, 61, 65, 69, 73, 77, 81, 85, 89, 93, 97, 101, 105, 109, 113, 117, 121, 125, 129, 133, 137, 141, 145, 149, 153, 157, 161, 165, 169, 173, 177, 181, 185, 189, 193, It can be 197, 201, 205, 209, 213, 217, 221, 225, 229, 233. Also, according to the (5.940 + 0.005*N) GHz rule mentioned above, the indices of the 40 MHz channels in Fig. 13 can be 3, 11, 19, 27, 35, 43, 51, 59, 67, 75, 83, 91, 99, 107, 115, 123, 131, 139, 147, 155, 163, 171, 179, 187, 195, 203, 211, 219, 227.
[0146] The MAC frames included in the data field of the PPDU of the present disclosure can be classified into various types. For example, the MAC frames of the present disclosure can be classified into a control frame, a management frame, and a data frame.
[0147] For example, the management frame includes Association Request, Association Response, Reassociation Request, Reassociation Response, Probe Request, Probe Response, Beacon, Disassociation, Authentication, and Deauthentication frames / signals defined in conventional WLAN. For the management frame, the values of the type fields (B3 and B2) of the MAC header are set to 00. In addition, the values of the subtype fields (B7, B6, B5, B4) of the MAC header are as follows: Association Request (0000), Association Response (0001), Reassociation Request (0010), Reassociation Response (0011), Probe Request (0100), Probe Response (0101), Beacon (1000), Disassociation (1010), Authentication (1011), Deauthentication (1100).
[0148] For example, the control frame includes Trigger Beamforming Report Poll, NDP Announcement (NDPA), Control Frame Extension, Control Wrapper, Block Ack Request (BlockAckReq), Block Ack (BlockAck), PS-Poll, RTS, CTS, Ack, and CF-End frames / signals defined in conventional WLAN. For the control frame, the value of the type field (B3 and B2) of the MAC header is set to 01. Additionally, the values of the subtype fields (B7, B6, B5, B4) of the MAC header are as follows: Trigger (0010), Beamforming Report Poll (0100), NDP Announcement (0101), Control Frame Extension (0110), Control Wrapper (0111), BlockAckReq (1000), BlockAck (1001), PS-Poll (1010), RTS (1011), CTS (1100), Ack (1101), CF-End (1110).
[0149] For example, the data frame includes (QoS) Data, (QoS) Null, etc. defined in conventional WLAN. For the data frame, the value of the type field (B3 and B2) of the MAC header is set to 10.
[0150] The type of the MAC frame used in the present disclosure can be identified through the type field / information and the subtype field / information included in the frame control field of the header of the MAC frame (i.e., the MAC header). For example, the “trigger frame” of the present disclosure can mean a MAC frame in which the type bits B3 and B2 bits in the frame control field of the MAC header are set to 01, and the subtype bits B7, B6, B5, and B4 bits in the frame control field are also set to 0010. Various MAC frames described in the present disclosure are inserted / included in the data field of various PPDUs (e.g., HE / VHT / HE / EHT / UHR PPDUs).
[0151] Figure 14 illustrates a trigger frame format. The trigger frame format may also be referred to as the structure of a trigger frame.
[0152] Referring to FIG. 14, a trigger frame may include a frame control field, a duration / ID field, a receiver address (RA) field, a transmitter address (TA) field, a common info field, a user info list field, a padding field, and / or a frame check sequence (FCS) field. Optionally, the trigger frame may further include a special user info field between the common info field and the user info list field. The user info list field may include one or more user info fields. The frame control field, the duration / ID field, the RA field, and the TA field may constitute a MAC header.
[0153] For example, the common information field may include a trigger type subfield. The trigger type subfield value may indicate a trigger frame variant, as shown in Table 4:
[0154] Trigger type subfield valueTrigger frame variant0Basic1Beamforming Report Poll (BFRP)2MU-BAR3MU-RTS4Buffer Status Report Poll (BSRP)5GCR MU-BAR6Bandwidth Query Report Poll (BQRP)7NDP Feedback Report Poll (NFRP)8-15Reserved
[0155] For example, if the value of the trigger type subfield is set to 0, the trigger frame may be a basic trigger frame. For example, if the value of the trigger type subfield is set to 3, the trigger frame may be a MU (multi-user) RTS trigger frame. Meanwhile, according to the EHT (or 802.11be) standard, in order to support peer-to-peer (P2P) transmission to a non-AP STA, an AP may allocate a portion of the time interval within the TXOP acquired by the AP. In order to allocate a portion of the time interval within the TXOP, a TXOP Sharing Mode subfield may be defined within the Common Info Field of the MU-RTS trigger frame. When the value of the TXOP Sharing Mode subfield is non-zero, such an MU-RTS trigger frame may be referred to as an MU-RTS TXOP Sharing (TXS) trigger frame (TF). The values of the TXOP Sharing Mode subfield are described in Table 5 below:
[0156] Triggered TXOP Sharing Mode subfield valueDescription0MU-RTS that does not initiate MU-RTS TXOP sharing procedure.1MU-RTS that initiates MU-RTS TXOP sharing procedure wherein a scheduledSTA can only transmit MPDU(s) addressed to its associated AP.2MU-RTS that initiates MU-RTS TXOP sharing procedure wherein a scheduled STA can transmit MPDU(s) addressed to its associated AP or addressed to another STA.3Reserved.
[0157] For example, if the value of the TXOP shared mode subfield is 1, one or more (non-TB) PPDU transmissions to the AP may be supported. If the value of the TXOP shared mode subfield is 2, not only (non-TB) PPDU transmissions to the AP but also P2P transmissions may be supported. In the present disclosure, the MU-RTS TXS TF may also be briefly referred to as a TXS trigger frame.
[0158] Figure 15 shows an example of the user information field format of MU-RTS TXS TF.
[0159] Referring to FIG. 15, the user information field may include an AID subfield, an RU allocation subfield, an allocation duration subfield, reserved bits, and / or a PS160 subfield.
[0160] The AID subfield may indicate the AID for the corresponding STA. The RU allocation subfield may indicate RU allocation for the corresponding STA.
[0161] The allocation interval subfield can contain 9 bits from B20 to B28 in the MU-RTS TXS TF and can indicate an allocation interval in units of 16us. In this case, the maximum length of the allocation interval that can be indicated by the allocation interval subfield can be 2^9= 8192us.
[0162] The PS160 subfield may indicate the primary 160MHz channel or the second 160MHz channel to which RU or MRU allocation applies.
[0163] Meanwhile, to enable terminals to maintain continuous WLAN connectivity over a wider area, numerous APs are being installed adjacent to each other. However, overlapping BSSs of multiple APs can lead to issues such as radio interference and transmission collisions between APs. To address these issues, various technologies related to coordination between APs in the frequency, time, and spatial domains (e.g., RU selection, joint transmission, nulling) have been proposed. Furthermore, various issues that may arise during inter-AP cooperation need to be addressed.
[0164] In this disclosure, multi-AP operation is proposed. Multi-AP operation may be based on a technique for reducing various interferences, such as inter-symbol interference (ISI), through coordination with neighboring APs (e.g., APs located in overlapping BSSs).
[0165] For example, multi-AP operation can be categorized into multi-AP cooperation schemes (or, cooperative schemes) based on various technologies / types / formats / protocols. For example, the cooperative scheme may include Coordinated TDMA (Co-TDMA), which distinguishes wireless resources allocated to multiple APs based on the time domain. Additionally or alternatively, the cooperative scheme may include Coordinated OFDMA (C-OFDMA), which distinguishes wireless resources allocated to multiple APs based on the frequency domain. Additionally or alternatively, the cooperative scheme may include Coordinated Spatial Reuse (Co-SR), which applies spatial reuse (SR) to at least one AP. Additionally or alternatively, the cooperative scheme may include Coordinated beamforming (Co-BF) / nulling, which transmits by nulling interference generated from neighboring APs (e.g., adjacent APs / STAs, and / or OBSS APs / OBSS STAs). Additionally or alternatively, the cooperative scheme may include AP selection, in which an AP with a good channel condition among neighboring APs (e.g., at least one AP located within a BSS or OBSS and with a good channel condition) transmits. Additionally or alternatively, the cooperative scheme may include Joint Transmission (JTX) or Joint Transmission (JT), in which multiple APs (e.g., multiple APs within the same BSS / OBSS, or multiple APs within different BSS / OBSS) cooperate to perform simultaneous transmission and reception, and JTX / JT may be implemented based on Joint Beamforming or Joint MU-MIMO.
[0166] In this disclosure, “multi-AP (cooperative) operation” may also be referred to as “multi-AP (cooperative) transmission.” Furthermore, “multi-AP (cooperative) operation / transmission” and “multi-AP cooperative scheme (or cooperative scheme)” may be used interchangeably.
[0167] When the triggered TXOP sharing protocol is utilized for multi-AP coordination, transmissions within the BSS of each cooperative AP are divided into time units, so that each cooperative AP can perform frame exchange without affecting other cooperative APs.
[0168] In the present disclosure, "frame exchange (FE)" may include frame transmission and / or reception operations between STAs. The STAs may be APs or non-AP STAs. Here, the frames may include various types of frames (e.g., data frames, control frames, management frames).
[0169] Figure 16 shows an example of coordinated time division multiple access (Co-TDMA) between cooperating APs.
[0170] For example, Co-TDMA could mean that each cooperating AP exchanges frames without affecting other cooperating APs by separating transmissions within the BSS of each cooperating AP into time units.
[0171] When the triggered TXS protocol is applied to a multi-AP cooperative operation, an AP in the triggered TXS protocol may be an AP that shares a TXOP in the multi-AP cooperative operation, and an STA in the triggered TXS protocol may be an AP that shares a TXOP in the multi-AP cooperative operation. In the present disclosure, an AP that shares a TXOP may be referred to as a SAP (sharing AP), and an AP that receives a TXOP from a SAP may be referred to as a DAP (shared AP). Here, the term SAP does not limit that the entity that shares a TXOP is only an AP STA, and a SAP may also include a non-AP STA that shares a TXOP. In addition, the term DAP does not limit that the entity that shares a TXOP is only an AP STA, and a DAP may also include a non-AP STA that shares a TXOP (or performs transmission and reception with an AP STA that shares a TXOP). Additionally, the frame exchange performed by the DAP with a non-AP STA or SAP belonging to the DAP BSS during the allocated time (i.e., the allocated period for DAP / AP2 within the TXOP indicated by the MU-RTS TXS TF transmitted from the SAP, which is the time allocated in the MU-RTS TXS TF in FIG. 16) may be referred to as a BSS frame exchange (FE) of the DAP. For example, the RTS / CTS frame exchange between the DAP and the non-AP STA followed by data frame transmission and block ACK frame response, UL data frame transmission of non-AP STAs by a trigger frame transmitted from the DAP, and / or data frame transmission of the DAP by a trigger frame transmitted from the SAP may be performed.
[0172] In order for multi-AP cooperation to be achieved between two APs, the two APs must be in a connected / bonded state, and / or a negotiation procedure must be performed in advance to exchange capability information / requirement information between them, and then multi-AP transmission (e.g., Co-TDMA (coordinated time division multiple access), C-OFDMA (coordinated orthogonal frequency division multiple access), Co-SR (coordinated spatial reuse), Co-BF (coordinated beamforming), AP selection, or J-TX (joint transmission)) can be performed based on the obtained information. In other words, in order for multi-AP transmission to be performed smoothly, a negotiation procedure for configuring / managing multi-AP cooperation and / or transmitting based on a specific multi-AP cooperation method must be performed in advance between the above-described SAP and DAP. A multi-AP set can be set up / configured through the negotiation procedure. Therefore, the negotiation procedure may also be referred to as a multi-AP set setup / configuration procedure.
[0173] Below, the negotiation procedure for multi-AP operation (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX) is described. Although the negotiation procedure for Co-TDMA operation is described in FIGS. 17 and 18, this is exemplary, and the negotiation procedure of FIGS. 17 and 18 can also be applied to other multi-AP operations (e.g., C-OFDMA, Co-SR, Co-BF, AP selection, J-TX).
[0174] FIG. 17 illustrates an example of a peer-to-peer based negotiation procedure according to an embodiment of the present disclosure.
[0175] Referring to Figure 17, before acquiring a TXOP, each AP whose role as a SAP or DAP has not been determined can perform a pre-negotiation procedure for multi-AP cooperation by transmitting and receiving a cooperation request frame and a cooperation response frame in response to the cooperation request frame with a neighboring AP. Through the negotiation procedure of exchanging request and response frames containing information for Co-TDMA operation (e.g., negotiation information / cooperation information), APs wishing to operate in multi-AP cooperation and Co-TDMA can obtain information about each other (e.g., negotiation information / cooperation information). Based on this negotiation information / cooperation information, an AP that acquires a TXOP and performs the SAP role can decide whether to first perform individual FEs with STAs within its BSS or share the TXOP with a specific DAP based on the negotiation information / cooperation information.
[0176] Additionally, an AP that receives a cooperation request frame or cooperation response frame that includes and / or indicates UHR STA support information indicating whether it supports only UHR STAs may assume that the AP intends to perform FE only for UHR STAs. A particular AP that is aware of this may acquire a TXOP and assume the SAP role, and may preferentially (or based on a negotiated agreement) share the TXOP with UHR STA-supporting DAPs that do not require additional signaling and new procedures that may be required from the SAP for FE with existing devices in the DAP's BSS.
[0177] FIG. 18 illustrates an example of a broadcast-based negotiation procedure according to an embodiment of the present disclosure.
[0178] Referring to Fig. 18, before acquiring a TXOP, each AP whose role as a SAP or DAP has not been determined can broadcast a TF containing Co-TDMA-related information (e.g., negotiation information / cooperation information) to participate in multi-AP cooperation, and receive TB PPDUs from corresponding APs. Here, the TF can be or correspond to a cooperation request frame, and the TB PPDU can be or correspond to a cooperation response frame. Through a broadcast-based negotiation procedure that exchanges TF and TB PPDU containing information for Co-TDMA operation (e.g., negotiation information / cooperation information), APs that wish to operate in multi-AP cooperation and Co-TDMA can obtain information about each other (e.g., negotiation information / cooperation information). Based on this information (e.g., negotiation information / cooperation information), an AP that acquires a TXOP and acts as a SAP can decide whether to first perform individual FEs with STAs within its BSS or share the TXOP with a specific DAP based on the negotiation information / cooperation information.
[0179] In the negotiation procedure for multi-AP operation (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX) proposed in the present disclosure, the cooperation request frame and / or cooperation response frame transmitted may include negotiation information / cooperation information based on one or a combination of multiple of A to H below. In the present disclosure, the negotiation information / cooperation information may include resource information of an AP transmitting the negotiation information / cooperation information (or resource information of an AP receiving the negotiation information / cooperation information).
[0180] A. Multi-AP Group ID: ID for the group / set of APs that constitute multi-AP cooperation (e.g. 0, 1, 2, ...)
[0181] B. Multi-AP ID: An ID locally assigned by each AP within the configured multi-AP group / set (e.g. 0, 1, 2, ...)
[0182] C. Multi-AP cooperation type (or cooperation method): Information about multi-AP cooperation methods including C-OFDMA, Co-TDMA, J-TX, and Co-SR.
[0183] D. Operating Channel: Information about the primary channel and punctured channels that are in operation.
[0184] For example, the operating channel information may include commonly operating channel information for smooth cooperation between APs participating in multi-AP operations (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX).
[0185] For example, the operating channel information may include primary channel information on which APs participating in multi-AP operations (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX) can commonly operate. In some implementations, a new field that serves as the CCSF0 field in the EHT operating information field may be defined to indicate a channel center frequency index for a 20 / 40 / 80 MHz channel. In some implementations, a new field that serves as the CCSF0 field in the EHT operating information field may be defined to indicate a channel center frequency for a primary 80 MHz channel of a 160 MHz channel or a channel center frequency for a primary 160 MHz channel of a 320 MHz channel. In addition, a new field that serves as the CCSF1 field in the EHT operating information field may be defined to indicate a channel center frequency for a 160 MHz channel or a channel center frequency for a 320 MHz channel.
[0186] For example, the operating channel information may include punctured channel information of an AP participating in multi-AP operation (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX). In some implementations, a new field that acts as a Disabled subchannel bitmap field in the EHT operating information field may be defined to indicate a punctured 20 MHz subchannel using a bitmap. A bit value of 0 in the bitmap may indicate that the corresponding 20 MHz subchannel is not punctured. A bit value of 1 in the bitmap may indicate that the corresponding 20 MHz subchannel is punctured.
[0187] For example, the operating channel information may include information about the primary channel of the DAP within the channel on which the SAP operates.
[0188] For example, the operating channel information may include information about the primary channel of the DAP within the operating channel excluding the punctured channel of the SAP.
[0189] E. Operating Bandwidth Information: Operating bandwidth and maximum bandwidth information.
[0190] For example, the operating bandwidth information may include common operating bandwidth (BW) information for smooth cooperation between APs participating in multi-AP operations (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX). In some implementations, the operating channel and primary channel information described above may be utilized.
[0191] For example, the operating bandwidth information may include the maximum bandwidth information of an AP participating in multi-AP operations (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX). In some implementations, a new field that functions like the channel width field in the control field of the EHT operation information field may be defined to indicate the channel width, which is BSS BW information for each AP, as follows:
[0192] - Set to 0: Indicates 20 MHz bandwidth
[0193] - Set to 1: Indicates 40 MHz bandwidth
[0194] - Set to 2: Indicates 80 MHz bandwidth
[0195] - Set to 3: Indicates 160 / 80+80 MHz bandwidth
[0196] - Set to 4: Indicates 320 / 160+160 MHz bandwidth
[0197] - The remaining values 5 through 7 can be reserved.
[0198] For example, the operating bandwidth information may include BW field information within the SIG-A field.
[0199] For example, the operating bandwidth information may include UL BW field information included within the common information field of the MU-RTS TXS TF.
[0200] For example, the operating bandwidth information may include information about the bandwidth of the DAP within the overall bandwidth over which the SAP operates.
[0201] For example, a new field for bandwidth indication (i.e., operating bandwidth information) can be added by modifying / redefining the Medium Time field of the QoS characteristic element to include a new subfield. In some implementations, a new field that functions similarly to the Channel Width field in the Control field of the EHT Operating Information field can be defined to indicate the channel width, which is BSS BW information for each AP, as follows:
[0202] - Set to 0: Indicates 20 MHz bandwidth
[0203] - Set to 1: Indicates 40 MHz bandwidth
[0204] - Set to 2: Indicates 80 MHz bandwidth
[0205] - Set to 3: Indicates 160 / 80+80 MHz bandwidth
[0206] - Set to 4: Indicates 320 / 160+160 MHz bandwidth
[0207] - The remaining values 5 through 7 can be reserved.
[0208] F. Requested TXOP interval: Information related to the TXOP interval that each AP wishes to share.
[0209] For example, a new field including a required TXOP interval may be defined. In some implementations, a required interval field may be defined to indicate information and a required TXOP interval value required for multi-AP operation (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX). In some implementations, a Co-TDMA operation element may be defined to indicate information and a required TXOP interval value required for multi-AP operation (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX).
[0210] For example, the required TXOP interval may be included within a QoS characteristic element that may be used to include negotiation information / cooperation information during pre-negotiation for multi-AP operations (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX) or an element that may be newly defined for negotiation for multi-AP operations (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX).
[0211] For example, a UHR operation element that can be used to include broadcast information in the broadcast process of each AP for multi-AP operation (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX) or a required TXOP interval can be included within an element that can be newly defined for broadcast for multi-AP operation (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX).
[0212] G. Low Latency Traffic Information: Information related to low-latency traffic that each AP wishes to transmit and receive.
[0213] For example, low-latency traffic information may be included in the information of QoS attribute elements included in the SCS request / response frame.
[0214] For example, the Delay Bound field information among the QoS characteristic elements can be utilized. In some implementations, the Delay Bound field value for the QoS traffic that each AP wishes to transmit can be utilized as low-delay traffic information. Through this, the SAP can use it to check whether TXOP sharing is necessary for a DAP that can complete transmission of an MSDU or A-MSDU within the end time of the TXOP section to be shared (i.e., the time allocated for the pre-negotiated low-delay traffic information or Delay Bound field value is shorter than the time allocated) or to update the existing value.
[0215] For example, the MSDU Lifetime field information among the QoS characteristic elements can be utilized. In some implementations, the MSDU Lifetime field value for the QoS traffic that each AP wants to transmit can be utilized as low-latency traffic information. Through this, the SAP can use it to check whether TXOP sharing is necessary for a DAP that does not discard MSDUs within the end point of the TXOP section to be shared (i.e., the pre-negotiated low-latency traffic information or the MSDU Lifetime field value has not expired within the allocated time) or to update the existing value.
[0216] For example, the service start time field information among the QoS characteristic elements can be utilized. In some implementations, the service start time field value for the QoS traffic that each AP wishes to transmit can be utilized as low-latency traffic information. Through this, the SAP can use it to check whether TXOP sharing is necessary for a DAP that can start the expected service section and frame exchange within the end time of the TXOP section to be shared (i.e., the pre-negotiated low-latency traffic information or the service start time field value is shorter than the allocated time) or to update the existing value.
[0217] For example, low-latency traffic information may include TXOP sharing request information requested / instructed by an AP requiring transmission of low-latency traffic.
[0218] For example, the low-latency traffic information may include time bound information of the low-latency traffic requested / instructed by the AP requiring transmission of the low-latency traffic (e.g., minimum time-bound within which transmission of the low-latency traffic must begin / maximum time-bound within which transmission of the low-latency traffic must successfully end).
[0219] For example, the low-latency traffic information may include arrival rate information of low-latency traffic requested / instructed by an AP requiring periodic transmission of low-latency traffic (e.g., the arrival rate of low-latency traffic since the last reporting event).
[0220] For example, low-latency traffic information may include TID (Traffic Identifier) / AC (Access Category) information.
[0221] H. UHR STA Support: Information indicating whether only UHR non-AP STAs are supported.
[0222] For example, a 1-bit signaling may be defined to indicate UHR STA support information within a cooperation request / response frame. In this case, bit 0 may indicate that only UHR non-AP STAs are supported, and bit 1 may indicate that HE / EHT / UHR non-AP STAs are supported.
[0223] For example, information (e.g., PHY version identifier) in the Special User Information field included in the trigger frame may be utilized for UHR STA support information.
[0224] For example, a QoS characteristic element included in an SCS request / response frame may be utilized for UHR STA support information. In some implementations, a reserved bit of control information among the information of the QoS characteristic element may be utilized. That is, a 1-bit signaling may be defined among the reserved bits to indicate UHR STA support information. In this case, bit 0 may indicate that only UHR non-AP STAs are supported. Bit 1 may indicate that HE / EHT / UHR non-AP STAs are supported.
[0225] UHR STA support information / signaling may be defined to indicate, but is not limited to, that the AP supports only UHR non-AP STAs, or that it supports UHR as well as HE / EHT non-AP STAs.
[0226] Additionally, the cooperation response frame may include the following negotiation / cooperation information:
[0227] I. Status Code: Acceptance / Rejection / Proposal information for the cooperation request.
[0228] For example, the status code could indicate acceptance or success.
[0229] For example, the status code may indicate a rejection, or may indicate a rejection while including proposal information. In some implementations, the status code may include a rejection code that includes a reason for the rejection (e.g., REJECTED_BAD_SUPPORTED_CHANNELS). In some implementations, the status code may include a rejection code that includes proposal information (e.g., REJECTED_WITH_SUGGESTED_CHANGES). If the value of the status code includes rejection and / or proposal information, it may also include information for a new negotiation. That is, a neighboring AP that receives a cooperation request frame may include additional information about the operating channel, bandwidth, required TXOP period, low-latency traffic information, and / or UHR STA support described above.
[0230] The names of the IDs and / or signaling / information defined above may change, and information that is the basis for multi-AP operation (e.g., channel information, DAP buffer information) may exist and be included.
[0231] The negotiation process between APs for multi-AP cooperation may be performed in long cycles, which may result in the expiration of previously negotiated negotiation information / cooperation information and / or the need for negotiation information / cooperation information to be updated to the latest information.
[0232] Accordingly, the present disclosure proposes various embodiments for performing resource reporting individually in an unsolicited manner, rather than in a solicited manner in which APs participating in multi-AP cooperation receive and respond to resource requests from other APs. According to various embodiments of the present disclosure, each AP may report a frame including information related to its own multi-AP cooperation and / or information for multi-AP cooperation-based transmission (i.e., negotiation information / cooperation information) in an unsolicited manner, thereby enabling cooperating APs to update the corresponding information and update the resource information of the AP that transmitted the information.
[0233] The specific designations / names proposed in this disclosure may be changed and are not limited thereto.
[0234] FIG. 19 illustrates an example of a method performed by a first AP according to an embodiment of the present disclosure. The first AP may be an AP that performs resource reporting (or transmits a resource reporting frame).
[0235] Referring to FIG. 19, in step S1901, the first AP can perform a negotiation procedure for multi-AP cooperation with one or more APs.
[0236] In step 1903, the first AP may obtain a configuration of a multi-AP set including one or more APs based on a negotiation procedure.
[0237] In step S1905, after obtaining the settings of the multi-AP set, the first AP can update at least one resource setting from the resource information of the first AP transmitted to the second AP of the multi-AP set by the first AP in the negotiation procedure.
[0238] In step S1907, the first AP may transmit a resource report frame including information about at least one updated resource setting to the second AP.
[0239] In various embodiments, during the negotiation process, the first AP may transmit a cooperation request frame containing resource information of the first AP to the second AP. The first AP may receive a cooperation response frame in response to the cooperation request frame from the second AP. The cooperation response frame may contain resource information of the second AP.
[0240] In various embodiments, during the negotiation process, the first AP may receive a cooperation request frame from the second AP, which includes resource information about the second AP. The first AP may transmit a cooperation response frame to the cooperation request frame to the second AP. The cooperation response frame may include resource information about the first AP.
[0241] In various embodiments, the resource information of the first AP may include at least one of resource settings including an identifier (ID) of a multi-AP set; an ID of the first AP; an address of the first AP; information about a dynamic channel of the first AP; information about an operating bandwidth of the first AP; information about a transmission opportunity (TXOP) required by the first AP; information about a buffer status of the first AP; information about whether TXOP sharing is required for the first AP; or low-latency traffic information for the first AP.
[0242] In various embodiments, the at least one resource configuration being updated may include all or part of the resource configurations included in the resource information of the first AP.
[0243] In various embodiments, the resource report frame may be a quality of service (QoS) data frame or a QoS null frame. After transmitting the QoS data frame or the QoS null frame, the first AP may receive an acknowledgment (ACK) frame for the QoS data frame or the QoS null frame from the second AP.
[0244] In various embodiments, the resource report frame may be a multi-user (MU)-request-to-send (RTS) trigger frame. After transmitting the MU-RTS trigger frame, the first AP may receive a clear-to-send (CTS) frame for the MU-RTS trigger frame from the second AP.
[0245] In various embodiments, the resource report frame may be a management frame. After transmitting the management frame, the first AP may receive an acknowledgment (ACK) frame for the management frame from the second AP.
[0246] In various embodiments, the RA (receiver address) field of the resource report frame may be set to the address of the second AP. The AID (association identifier) field of the resource report frame may be set to a value not associated with the second AP.
[0247] In various embodiments, the first AP may transmit a resource report frame to the second AP without receiving a frame requesting a resource report frame from the second AP.
[0248] In various embodiments, at least one resource configuration may be updated after a negotiation procedure and before a subsequent negotiation procedure. A resource report frame including at least one resource configuration may be transmitted when at least one resource configuration is updated.
[0249] In various embodiments, the first AP may perform multi-AP operation with the second AP based on at least one updated resource configuration.
[0250] FIG. 20 illustrates an example of a method performed by a second AP according to an embodiment of the present disclosure. The second AP may be an AP that receives a resource report frame from a first AP that performs a resource report (or transmits a resource report frame).
[0251] Referring to FIG. 20, in step S2001, the second AP can perform a negotiation procedure for multi-AP cooperation with one or more APs.
[0252] In step S2003, the second AP can obtain a configuration of a multi-AP set including one or more APs based on a negotiation procedure.
[0253] In step S2005, after obtaining the configuration of the multi-AP set, the second AP can receive a resource report frame including information about at least one resource configuration from the first AP of the multi-AP set.
[0254] In step S2007, the second AP can update at least one resource setting from the resource information of the first AP transmitted to the second AP by the first AP in the negotiation procedure.
[0255] In various embodiments, the resource report frame may be a management frame. After receiving the management frame, the second AP may transmit an acknowledgment (ACK) frame for the management frame to the first AP.
[0256] In various embodiments, the second AP may receive a resource report frame from the first AP without transmitting a frame to request a resource report frame to the first AP.
[0257] In various embodiments, the resource report frame may be received from the first AP after a negotiation procedure and before a next negotiation procedure.
[0258] Below, a detailed implementation for unsolicited resource reporting in multi-AP collaboration is described.
[0259] In the non-guided resource reporting procedure for multi-AP cooperation proposed in this disclosure, a report frame (e.g., a resource report frame) transmitted may include resource information based on one or a combination of A to I below. The designations (names) of the resource information defined below may be changed and are not limited thereto.
[0260] A. Multi-AP Group ID: ID for the group / set of APs that constitute multi-AP cooperation (e.g. 0, 1, 2, ...)
[0261] B. DAP ID: ID assigned by each AP within the configured multi-AP group / set (e.g. 0, 1, 2, ...)
[0262] C. Address: Address information of the target AP (i.e., the AP transmitting the resource report frame) (e.g., BSS color, BSSID for multiple APs, multi-AP group ID, and / or DAP ID)
[0263] D. Operating Channel: Information about the primary channel and punctured channels that are in operation.
[0264] For example, the operating channel information may include commonly operating channel information for smooth cooperation between APs participating in multi-AP operations (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX).
[0265] For example, the operating channel information may include primary channel information on which APs participating in multi-AP operations (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX) can commonly operate. In some implementations, a new field that serves as the CCSF0 field in the EHT operating information field may be defined to indicate a channel center frequency index for a 20 / 40 / 80 MHz channel. In some implementations, a new field that serves as the CCSF0 field in the EHT operating information field may be defined to indicate a channel center frequency for a primary 80 MHz channel of a 160 MHz channel or a channel center frequency for a primary 160 MHz channel of a 320 MHz channel. In addition, a new field that serves as the CCSF1 field in the EHT operating information field may be defined to indicate a channel center frequency for a 160 MHz channel or a channel center frequency for a 320 MHz channel.
[0266] For example, the operating channel information may include punctured channel information of an AP participating in multi-AP operation (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX). In some implementations, a new field that acts as a Disabled subchannel bitmap field in the EHT operating information field may be defined to indicate a punctured 20 MHz subchannel using a bitmap. A bit value of 0 in the bitmap may indicate that the corresponding 20 MHz subchannel is not punctured. A bit value of 1 in the bitmap may indicate that the corresponding 20 MHz subchannel is punctured.
[0267] For example, the operating channel information may include information about the primary channel of the DAP within the channel on which the SAP operates.
[0268] For example, the operating channel information may include information about the primary channel of the DAP within the operating channel excluding the punctured channel of the SAP.
[0269] E. Operating Bandwidth Information: Operating bandwidth and maximum bandwidth information.
[0270] For example, the operating bandwidth information may include common operating bandwidth (BW) information for smooth cooperation between APs participating in multi-AP operations (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX). In some implementations, the operating channel and primary channel information described above may be utilized.
[0271] For example, the operating bandwidth information may include the maximum bandwidth information of an AP participating in multi-AP operations (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX). In some implementations, a new field, similar to the channel width field in the control field of the EHT operation information field, may be defined to indicate the channel width, which is BSS BW information for each AP, as follows:
[0272] - Set to 0: Indicates 20 MHz bandwidth
[0273] - Set to 1: Indicates 40 MHz bandwidth
[0274] - Set to 2: Indicates 80 MHz bandwidth
[0275] - Set to 3: Indicates 160 / 80+80 MHz bandwidth
[0276] - Set to 4: Indicates 320 / 160+160 MHz bandwidth
[0277] - The remaining values 5 through 7 can be reserved.
[0278] For example, the operating bandwidth information may include BW field information within the SIG-A field.
[0279] For example, the operating bandwidth information may include UL BW field information included within the common information field of the MU-RTS TXS TF.
[0280] For example, the operating bandwidth information may include information about the bandwidth of the DAP within the overall bandwidth over which the SAP operates.
[0281] For example, a new field for bandwidth indication (i.e., operating bandwidth information) can be added by modifying / redefining the Medium Time field of the QoS characteristic element to include a new subfield. In some implementations, a new field that functions similarly to the Channel Width field in the Control field of the EHT Operating Information field can be defined to indicate the channel width, which is BSS BW information for each AP, as follows:
[0282] - Set to 0: Indicates 20 MHz bandwidth
[0283] - Set to 1: Indicates 40 MHz bandwidth
[0284] - Set to 2: Indicates 80 MHz bandwidth
[0285] - Set to 3: Indicates 160 / 80+80 MHz bandwidth
[0286] - Set to 4: Indicates 320 / 160+160 MHz bandwidth
[0287] - The remaining values 5 through 7 can be reserved.
[0288] F. Requested TXOP interval: Information related to the TXOP interval that each AP wishes to share.
[0289] For example, a new field including a required TXOP interval may be defined. In some implementations, a required interval field may be defined to indicate information and a required TXOP interval value required for multi-AP operation (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX). In some implementations, a Co-TDMA operation element may be defined to indicate information and a required TXOP interval value required for multi-AP operation (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX).
[0290] For example, the required TXOP interval may be included within a QoS characteristic element that may be used to include negotiation information / cooperation information during pre-negotiation for multi-AP operations (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX) or an element that may be newly defined for negotiation for multi-AP operations (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX).
[0291] For example, a UHR operation element that can be used to include broadcast information in the broadcast process of each AP for multi-AP operation (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX) or a required TXOP interval can be included within an element that can be newly defined for broadcast for multi-AP operation (e.g., Co-TDMA, C-OFDMA, Co-SR, Co-BF, AP selection, J-TX).
[0292] G. Buffer Status: Buffer status information for each AP
[0293] H. TXOP sharing requirement: Indicates whether TXOP sharing is required, either because the pre-negotiated low-latency traffic information has expired and / or TXOP sharing becomes unnecessary (e.g., because individual FEs have already been performed). For example, bit 1 can be used to indicate and / or respond to whether TXOP sharing is required. Bit 0 can indicate that the AP (e.g., the DAP that received the selection request frame) does not require TXOP sharing. Bit 1 can indicate that the AP (e.g., the DAP that received the selection request frame) requires TXOP sharing.
[0294] I. Low Latency Traffic Information: Information related to low-latency traffic that each AP wishes to transmit and receive.
[0295] For example, low-latency traffic information may be included in the information of QoS attribute elements included in the SCS request / response frame.
[0296] For example, the Delay Bound field information in the QoS characteristic element can be utilized. In some implementations, the Delay Bound field value for QoS traffic that each AP wishes to transmit can be utilized as low-latency traffic information. If the pre-negotiated low-latency traffic information changes, updated low-latency traffic information or Delay Bound field values can be included.
[0297] For example, the MSDU Lifetime field information in the QoS characteristic element can be utilized. In some implementations, the MSDU Lifetime field value for QoS traffic that each AP wishes to transmit can be utilized as low-latency traffic information. If the pre-negotiated low-latency traffic information changes, the updated low-latency traffic information or MSDU Lifetime field value can be included.
[0298] For example, the service start time field information in the QoS characteristic element can be utilized. In some implementations, the service start time field value for QoS traffic that each AP wishes to transmit can be utilized as low-latency traffic information. If the pre-negotiated low-latency traffic information changes, updated low-latency traffic information or the service start time field value can be included.
[0299] For example, low-latency traffic information may include TXOP sharing request information requested / instructed by an AP requiring transmission of low-latency traffic.
[0300] For example, the low-latency traffic information may include time bound information of the low-latency traffic requested / instructed by the AP requiring transmission of the low-latency traffic (e.g., minimum time-bound within which transmission of the low-latency traffic must begin / maximum time-bound within which transmission of the low-latency traffic must successfully end).
[0301] For example, the low-latency traffic information may include arrival rate information of low-latency traffic requested / instructed by an AP requiring periodic transmission of low-latency traffic (e.g., the arrival rate of low-latency traffic since the last reporting event).
[0302] For example, low-latency traffic information may include TID (Traffic Identifier) / AC (Access Category) information.
[0303] FIG. 21 illustrates an example of a non-guided resource reporting procedure using QoS data / null frames according to an embodiment of the present disclosure.
[0304] Referring to FIG. 21, a transmitting AP (e.g., AP 2 / DAP) can transmit / perform non-guided resource reporting to multiple APs (e.g., AP 1 / SAP, AP3 / DAP) using a QoS data / QoS null frame. When the transmitting AP needs to update / renew its resource information to APs included in a multi-AP set configured through a multi-AP set configuration procedure (or negotiation procedure), the transmitting AP can transmit a QoS data / QoS Null frame containing information for multi-AP cooperation and / or multi-AP cooperation-based transmission (or updated negotiation information / cooperation information / resource information) to the APs included in the multi-AP set to notify them of updated resource information. At this time, if the RA field of the QoS data / QoS Null frame is set to the address of an individual / specific cooperating AP (e.g., an AP that has performed a negotiation procedure in advance / an AP included in a multi-AP set), the AID field can be set to an arbitrary value. APs that receive QoS data / QoS Null frames can update resource information if they have resource information to update, and transmit an ACK (acknowledgement) frame for receiving QoS data / QoS Null frames. Through this unguided resource reporting procedure, transmitting APs can voluntarily notify changes in their resource information, and receiving APs can update multi-AP cooperation-related information (or negotiation information / cooperation information / resource information) in short-term cycles. Receiving APs that have acquired updated resource information can support more efficient multi-AP cooperation-based transmission when they acquire a TXOP and perform the SAP role. For example, unnecessary cooperation can be prevented.
[0305] FIG. 22 illustrates an example of a non-guided resource reporting procedure using MU-RTS TF according to an embodiment of the present disclosure.
[0306] Referring to FIG. 22, a transmitting AP (e.g., AP 2 / DAP) can transmit / perform unguided resource reporting to multiple APs (e.g., AP 1 / SAP, AP3 / DAP) using an MU-RTS TF (e.g., MU-RTS TXS TF). When the transmitting AP needs to update / renew its resource information to APs included in a multi-AP set configured through a multi-AP set configuration procedure (or negotiation procedure), the transmitting AP can transmit an MU-RTS TF containing information for multi-AP cooperation and / or multi-AP cooperation-based transmission (or updated negotiation information / cooperation information / resource information) to the APs included in the multi-AP set to notify them of updated resource information. Information about APs in a cooperative relationship can be individually included in the user information fields of the MU-RTS TF. On the other hand, when the RA field of the MU-RTS TF is set to the address of an individual DAP, the AID field can be set to an arbitrary value. APs receiving an MU-RTS trigger frame can update resource information if they have resource information to update, and transmit a CTS (clear-to-send) frame in response to the reception of an MU-RTS TF. Through this unguided resource reporting procedure, a transmitting AP can voluntarily report changes in its resource information, and receiving APs can update multi-AP cooperation-related information (or negotiation information / cooperation information / resource information) in short-term cycles. Receiving APs that have acquired updated resource information can support more efficient multi-AP cooperation-based transmission when they acquire a TXOP and perform the SAP role. For example, unnecessary cooperation can be prevented.
[0307] FIG. 23 illustrates an example of a non-guided resource reporting procedure using a management frame according to an embodiment of the present disclosure.
[0308] Referring to FIG. 23, a transmitting AP (e.g., AP 2 / DAP) can transmit / perform non-guided resource reporting to multiple APs (e.g., AP 1 / SAP, AP3 / DAP) using a management frame (Mgmt. frame). When the transmitting AP needs to update / renew its resource information to APs included in a multi-AP set configured through a multi-AP set configuration procedure (or negotiation procedure), the transmitting AP can transmit a management frame containing information for multi-AP cooperation and / or multi-AP cooperation-based transmission (or updated negotiation information / cooperation information / resource information) to the APs included in the multi-AP set to notify them of updated resource information. At this time, the RA field of the management frame can be set to the address of an individual / specific cooperative AP (e.g., an AP that has performed a negotiation procedure in advance / an AP included in a multi-AP set). The APs that receive the management frame can update the resource information if there is resource information to be updated, and transmit an ACK (acknowledgement) frame in response to reception of the management frame. Through this unguided resource reporting procedure, transmitting APs can voluntarily report changes to their resource information, and receiving APs can update multi-AP cooperation-related information (or negotiation information / cooperation information / resource information) on a short-term basis. Receiving APs with updated resource information can acquire TXOPs and, when they assume the SAP role, support more efficient multi-AP cooperation-based transmission. For example, unnecessary cooperation can be prevented.
[0309] The present disclosure proposes various embodiments for APs participating in multi-AP cooperation to transmit / perform resource reporting in an unsolicited manner. Specifically, according to the embodiments of the present disclosure, an AP can transmit a frame for resource reporting (or resource report frame) in an unsolicited manner / individually without a separate request from the APs in the cooperation relationship regarding changes in information related to multi-AP cooperation (e.g., negotiation information / cooperation information / resource information). In this case, the APs in the cooperation relationship that receive the unsolicited frame for resource reporting can update the multi-AP cooperation information (or resource information) for the corresponding AP. Information for such multi-AP cooperation and / or multi-AP cooperation-based transmission (e.g., negotiation information / cooperation information / resource information) can be utilized in scheduling multi-AP cooperation operations of an AP that acts as an SAP in the future.
[0310] The technical features of the present disclosure described above can be applied to various devices and methods. For example, the technical features of the present disclosure described above can be performed / supported by the devices of FIG. 1 and / or FIG. 5. For example, the technical features of the present disclosure described above can be applied only to a portion of FIG. 1 and / or FIG. 5. For example, the technical features of the present disclosure described above can be implemented based on the processing chip (114, 124) of FIG. 1, or based on the processor (111, 121) and memory (112, 122) of FIG. 1, or based on the processor (510) and memory (520) of FIG. 5.
[0311] For example, the processor (121) and / or the processing chip (124) of FIG. 1 may be configured to execute instructions stored in the memory (122) to implement a method performed by a first AP in the present disclosure. The method includes: performing a negotiation procedure for multi-AP cooperation with one or more APs; acquiring a configuration of a multi-AP set including the one or more APs based on the negotiation procedure; updating at least one resource configuration in resource information of the first AP transmitted by the first AP to a second AP of the multi-AP set after acquiring the configuration of the multi-AP set in the negotiation procedure; and transmitting a resource report frame including information on the updated at least one resource configuration to the second AP.
[0312] For example, the processor (111), the processing chip (114) of FIG. 1, and / or the processor (510) of FIG. 5 may be configured to execute instructions stored in the memory (112, 520) to implement a method performed by the second AP in the present disclosure. The method includes: performing a negotiation procedure for multi-AP cooperation with one or more APs; acquiring a configuration of a multi-AP set including the one or more APs based on the negotiation procedure; receiving, after acquiring the configuration of the multi-AP set, a resource report frame including information on at least one resource configuration from a first AP of the multi-AP set; and updating the at least one resource configuration from resource information of the first AP transmitted to the second AP by the first AP in the negotiation procedure.
[0313] The technical features of the present disclosure can be implemented based on a computer-readable medium (CRM). For example, the CRM proposed by the present disclosure is at least one computer-readable recording medium containing instructions that are executed by at least one processor.
[0314] For example, the CRM may be the memory (122) of FIG. 1 and / or a separate external memory / storage medium / disk. The CRM may store commands for implementing a method performed by the first AP in the present disclosure based on being executed by a processor (e.g., the processor (121) and / or the processing chip (124) of FIG. 1). The method includes: performing a negotiation procedure for multi-AP cooperation with one or more APs; acquiring a configuration of a multi-AP set including the one or more APs based on the negotiation procedure; updating at least one resource configuration in resource information of the first AP transmitted by the first AP to a second AP of the multi-AP set after acquiring the configuration of the multi-AP set in the negotiation procedure; and transmitting a resource report frame including information on the updated at least one resource configuration to the second AP.
[0315] For example, the CRM may be the memory (112) of FIG. 1, the memory (520) of FIG. 5, and / or a separate external memory / storage medium / disk. The CRM may store instructions for implementing a method performed by the second AP in the present disclosure based on being executed by a processor (e.g., the processor (111), the processing chip (114) of FIG. 1, and / or the processor (510) of FIG. 5). The method includes: performing a negotiation procedure for multi-AP cooperation with one or more APs; acquiring, based on the negotiation procedure, a configuration of a multi-AP set including the one or more APs; after acquiring the configuration of the multi-AP set, receiving, from a first AP of the multi-AP set, a resource report frame including information on at least one resource configuration; and updating, in the resource information of the first AP transmitted to the second AP by the first AP in the negotiation procedure, the at least one resource configuration.
[0316] The technical features of the present disclosure described above are applicable to various applications and business models. For example, the technical features described above can be applied to wireless communication in devices that support artificial intelligence (AI).
[0317] Artificial intelligence (AI) is the study of artificial intelligence or the methodologies for creating it, while machine learning (ML) defines various problems in the field of AI and studies the methodologies for solving them. Machine learning is also defined as an algorithm that improves performance on a task through consistent experience.
[0318] An artificial neural network (ANN) is a model used in machine learning. It can refer to a model with problem-solving capabilities, consisting of artificial neurons (nodes) formed by the connection of synapses to form a network. An ANN can be defined by the connection patterns between neurons in different layers, the learning process that updates model parameters, and the activation function that generates output values.
[0319] An artificial neural network may include an input layer, an output layer, and optionally one or more hidden layers. Each layer contains one or more neurons, and the artificial neural network may include synapses connecting neurons. In an artificial neural network, each neuron can output a function value of an activation function based on input signals, weights, and biases received through the synapses.
[0320] Model parameters are parameters determined through learning, including synaptic connection weights and neuron biases. Hyperparameters are parameters that must be set before learning in machine learning algorithms, including the learning rate, number of iterations, mini-batch size, and initialization function.
[0321] The goal of artificial neural network training can be seen as determining model parameters that minimize a loss function. The loss function can be used as an indicator for determining optimal model parameters during the artificial neural network training process.
[0322] Machine learning can be classified into supervised learning, unsupervised learning, and reinforcement learning depending on the learning method.
[0323] Supervised learning refers to a method for training an artificial neural network when given labels for the training data. The labels can refer to the correct answer (or output value) that the artificial neural network must infer when the training data is input to the artificial neural network. Unsupervised learning can refer to a method for training an artificial neural network when the training data is not given labels. Reinforcement learning can refer to a learning method in which an agent defined within a given environment is trained to select actions or action sequences that maximize the cumulative reward in each state.
[0324] Machine learning implemented with a deep neural network (DNN) containing multiple hidden layers among artificial neural networks is also called deep learning, and deep learning is a subset of machine learning. Hereinafter, the term "machine learning" is used to encompass deep learning.
[0325] Additionally, the above-described technical features can be applied to wireless communication of robots.
[0326] A robot can be defined as a machine that automatically performs or operates a given task based on its own capabilities. Specifically, a robot capable of perceiving its environment, making independent judgments, and performing actions can be called an intelligent robot.
[0327] Robots can be categorized into industrial, medical, household, and military applications based on their intended use or field. Robots are equipped with actuators or motors, enabling them to perform various physical actions, such as moving robot joints. Furthermore, mobile robots incorporate wheels, brakes, and propellers into their actuators, enabling them to move on the ground or fly in the air.
[0328] Additionally, the above-described technical features can be applied to devices that support extended reality.
[0329] Extended reality is a general term for virtual reality (VR), augmented reality (AR), and mixed reality (MR). VR technology presents real-world objects and backgrounds as CG images only, AR technology presents virtual CG images over images of real objects, and MR technology is a computer graphics technology that blends and combines virtual objects with the real world.
[0330] MR technology is similar to AR in that it presents both real and virtual objects simultaneously. However, while AR uses virtual objects to complement real objects, MR uses virtual and real objects on an equal footing.
[0331] XR technology can be applied to HMD (Head-Mount Display), HUD (Head-Up Display), mobile phones, tablet PCs, laptops, desktops, TVs, digital signage, etc., and devices to which XR technology is applied can be called XR devices.
[0332] The present disclosure may have various advantageous effects.
[0333] For example, according to embodiments of the present disclosure, an AP may transmit a frame for resource reporting (or resource report frame) in an unsolicited / individual manner without a separate request from the APs in the cooperative relationship regarding changes in information related to multi-AP cooperation (e.g., negotiation information / cooperation information / resource information). In this case, the APs in the cooperative relationship that receive the unsolicited frame for resource reporting may update the multi-AP cooperation information (or resource information) for the corresponding AP. Information for such multi-AP cooperation and / or multi-AP cooperation-based transmission (e.g., negotiation information / cooperation information / resource information) may be utilized in scheduling multi-AP cooperation operations of an AP that acts as an SAP in the future.
[0334] The beneficial effects that can be achieved through specific embodiments of the present disclosure are not limited to the beneficial effects listed above. For example, various technical effects may be understood and / or derived from the present disclosure by those skilled in the art. Therefore, the specific effects of the present disclosure are not limited to those explicitly described herein, but may include various effects that can be understood or derived from the technical features of the present disclosure.
[0335] The claims set forth in this disclosure may be combined in various ways. For example, the technical features of the method claims of this disclosure may be combined and implemented as a device, and the technical features of the device claims of this disclosure may be combined and implemented as a method. Furthermore, the technical features of the method claims of this disclosure and the technical features of the device claims of this disclosure may be combined and implemented as a device, and the technical features of the method claims of this disclosure and the technical features of the device claims of this disclosure may be combined and implemented as a method.
Claims
1. A step in which the first AP (access point) performs a negotiation procedure for multi-AP cooperation with one or more APs; A step in which the first AP obtains a configuration of a multi-AP set including one or more APs based on the negotiation procedure; After obtaining the settings of the multi-AP set, the first AP updates at least one resource setting from the resource information of the first AP transmitted to the second AP of the multi-AP set by the first AP in the negotiation procedure; and A method comprising the step of the first AP transmitting, to the second AP, a resource report frame including information about the at least one updated resource setting.
2. In claim 1, the steps of performing the negotiation procedure are: A step in which the first AP transmits a cooperation request frame including resource information of the first AP to the second AP; and The step of the first AP receiving a cooperation response frame for the cooperation request frame from the second AP, A method in which the above cooperation response frame includes resource information of the second AP.
3. In claim 1, the steps of performing the negotiation procedure are: A step in which the first AP receives a cooperation request frame including resource information of the second AP from the second AP; and The step of the first AP transmitting a cooperation response frame to the cooperation request frame to the second AP, A method in which the above cooperation response frame includes resource information of the first AP.
4. In claim 1, the resource information of the first AP includes at least one of the following resource settings: An identifier (ID) of the above multi-AP set; ID of the above first AP; Address of the above first AP; Information about the dynamic channel of the above first AP; Information about the operating bandwidth of the above first AP; Information about the transmission opportunity (TXOP) required by the first AP; Information about the buffer status of the above first AP; Information on whether TXOP sharing is required for the above first AP; or Low-latency traffic information for the above first AP.
5. A method according to claim 4, wherein the at least one resource setting includes all or part of the resource settings included in the resource information of the first AP.
6. In claim 1, the resource report frame is a QoS (quality of service) data frame or a QoS null frame, A method further comprising the step of the first AP receiving an ACK (acknowledgement) frame for the QoS data frame or the QoS null frame from the second AP after transmitting the QoS data frame or the QoS null frame.
7. In claim 1, the resource report frame is a MU (multi-user)-RTS (request-to-send) trigger frame, A method further comprising the step of the first AP receiving a CTS (clear-to-send) frame for the MU-RTS trigger frame from the second AP after transmitting the MU-RTS trigger frame.
8. In claim 1, the resource reporting frame is a management frame, A method further comprising the step of: after transmitting the management frame, the first AP receiving an ACK (acknowledgement) frame for the management frame from the second AP.
9. In claim 1, the RA (receiver address) field of the resource report frame is set to the address of the second AP, A method in which the AID (association identifier) field of the above resource report frame is set to a value not associated with the second AP.
10. A method according to claim 1, wherein the step of transmitting the resource report frame comprises a step of the first AP transmitting the resource report frame to the second AP without receiving a frame for requesting the resource report frame from the second AP.
11. In claim 1, at least one resource setting is updated before the next negotiation procedure after the negotiation procedure, A method in which the resource report frame including at least one resource setting is transmitted upon updating the at least one resource setting.
12. A method according to claim 1, further comprising the step of the first AP performing multi-AP operation with the second AP based on the updated at least one resource setting.
13. At the first AP (access point), Transmitter and receiver; memory; and At least one processor functionally coupled with the transceiver and the memory, The above memory stores instructions for performing operations based on being executed by the at least one processor, the operations being: An action that performs a negotiation procedure for multi-AP cooperation with one or more APs; An operation of obtaining a configuration of a multi-AP set including one or more APs based on the above negotiation procedure; After obtaining the settings of the multi-AP set, an operation of updating at least one resource setting in the resource information of the first AP transmitted to the second AP of the multi-AP set by the first AP in the negotiation procedure; and A first AP comprising an operation for transmitting a resource report frame including information about the at least one updated resource setting to the second AP.
14. In the device, at least one processor; and comprising at least one memory functionally coupled with at least one processor; The at least one memory stores instructions that perform operations based on being executed by the at least one processor, the operations comprising: An action that performs a negotiation procedure for multi-AP cooperation with one or more APs; An operation of obtaining a configuration of a multi-AP set including one or more APs based on the above negotiation procedure; After obtaining the settings of the multi-AP set, an operation of updating at least one resource setting in the resource information of the first AP transmitted to the second AP of the multi-AP set by the first AP in the negotiation procedure; and A device comprising an action of transmitting a resource report frame including information about the at least one updated resource setting to the second AP.
15. A non-transitory computer readable medium (CRM) storing program code implementing instructions that perform operations based on being executed by at least one processor, said operations comprising: An action that performs a negotiation procedure for multi-AP cooperation with one or more APs; An operation of obtaining a configuration of a multi-AP set including one or more APs based on the above negotiation procedure; After obtaining the settings of the multi-AP set, an operation of updating at least one resource setting in the resource information of the first AP transmitted to the second AP of the multi-AP set by the first AP in the negotiation procedure; and A CRM comprising the action of transmitting a resource report frame including information about the at least one updated resource setting to the second AP.
16. A step in which a second AP (access point) performs a negotiation procedure for multi-AP cooperation with one or more APs; A step of obtaining, by the second AP, a configuration of a multi-AP set including one or more APs based on the negotiation procedure; After obtaining the settings of the multi-AP set, the second AP receives a resource report frame including information on at least one resource setting from the first AP of the multi-AP set; and A method comprising a step of updating, by the second AP, at least one resource setting from the resource information of the first AP transmitted to the second AP by the first AP in the negotiation procedure.
17. At the second AP (access point), Transmitter and receiver; memory; and At least one processor functionally coupled with the transceiver and the memory, The above memory stores instructions for performing operations based on being executed by the at least one processor, the operations being: An action that performs a negotiation procedure for multi-AP cooperation with one or more APs; An operation of obtaining a configuration of a multi-AP set including one or more APs based on the above negotiation procedure; After obtaining the configuration of the multi-AP set, an operation of receiving a resource report frame including information on at least one resource configuration from a first AP of the multi-AP set; and A second AP including an operation of updating at least one resource setting in the resource information of the first AP transmitted to the second AP by the first AP in the above negotiation procedure.
18. In claim 17, the resource reporting frame is a management frame, The above operations further include an operation of transmitting, to the first AP, an ACK (acknowledgement) frame for the management frame after receiving the management frame.
19. In claim 17, the second AP further comprises an operation of receiving the resource report frame from the first AP without transmitting a frame for requesting the resource report frame to the first AP.
20. A method according to claim 17, wherein the resource report frame is received from the first AP after the negotiation procedure and before the next negotiation procedure.
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