Method and apparatus for transmitting and receiving PPDU based on MCS configuration in wireless LAN system

By using a method based on modulation and coding scheme (MCS) setting in a wireless LAN system, the problem of sending and receiving PPDUs in the millimeter wave (mmWave) frequency band is solved, and efficient communication efficiency and reliability are achieved.

CN120019599APending Publication Date: 2025-05-16LG ELECTRONICS INC
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Patent Information

Application Number
CN202380072215.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Priority Date
2022-10-14
Filing Date
2023-09-11
Publication Date
2025-05-16

AI Technical Summary

Technical Problem

In wireless LAN systems, especially in millimeter wave (mmWave) frequency bands, it is difficult for the prior art to effectively transmit and receive physical layer protocol data units (PPDUs) based on modulation and coding scheme (MCS) settings.

Method used

By implementing a method in a wireless LAN system, the first station (STA) may receive information indicating a first modulation and coding scheme (MCS) index or a second MCS index associated with a copy mode and transmit and receive a PPDU based on this information. The method uses a first number of data tones in a 20*N MHz, 40*N MHz or 80*N MHz bandwidth and uses a second number of data tones less than the first number of data tones in a specified bandwidth.

Benefits of technology

This method realizes PPDU transmission and reception based on MCS settings in a wireless LAN system, especially in the millimeter wave (mmWave) frequency band, improving communication efficiency and reliability.

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Abstract

A method and apparatus for operating in a wireless LAN system are disclosed. According to an embodiment of the present disclosure, a method performed by a first STA in a wireless LAN system comprises the steps of: receiving first information indicating a first modulation and coding scheme (MCS) index or a second MCS index associated with a duplication (DUP) mode from a second STA; and transmitting a first physical layer protocol data unit (PPDU) to the second STA based on the first information, in which a first MCS index is indicated in 20 * N (N is a natural number of 1 or more) MHz bandwidth, 40 * N MHz bandwidth, or 80 * N MHz bandwidth, using a first number of data tones, based on the first information, and a second MCS index is indicated in 20 * N MHz bandwidth, 40 * N MHz bandwidth, or 80 * N MHz bandwidth, using a second number of data tones, based on the first information, using a second number of data tones. A second number of data tones less than the first number may be used.
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Description

Technical Field

[0001] The present disclosure relates to communication operations in a wireless local area network (WLAN) system, and more particularly, to a method and apparatus for transmitting and receiving a physical layer protocol data unit (PPDU) based on a modulation and coding scheme (MCS) setting in a next generation wireless LAN system. Background Art

[0002] New technologies have been introduced for wireless LAN (WLAN) to increase transmission rates, increase bandwidth, improve reliability, reduce errors, and reduce latency. Among WLAN technologies, the Institute of Electrical and Electronics Engineers (IEEE) 802.11 series of standards may be referred to as Wi-Fi. For example, technologies recently introduced to WLAN include the Very High Throughput (VHT) enhancements of the 802.11ac standard and the High Efficiency (HE) enhancements of the IEEE 802.11ax standard.

[0003] In order to provide a more advanced wireless communication environment, improved technologies for extremely high throughput (EHT) are being discussed. For example, technologies for MIMO and multi-access point (AP) coordination that support increased bandwidth, efficient use of multiple frequency bands, and increased spatial streams are being studied, and specifically, various technologies are being studied to support low latency or real-time services. In addition, new technologies are being discussed to support ultra-high reliability (UHR), including improvements or extensions of EHT technologies. Summary of the invention

[0004] Technical issues

[0005] The technical problem of the present disclosure is to provide a PPDU transmission and reception method and apparatus based on MCS setting in a wireless LAN system.

[0006] The technical problem of the present disclosure is to provide a PPDU transmission and reception method and apparatus based on MCS definition and setting in a millimeter wave (mmWave) frequency band.

[0007] The technical objectives to be achieved by the present disclosure are not limited to the above-mentioned technical objectives, and those skilled in the art can clearly understand other technical objectives not described herein through the following description.

[0008] Technical Solution

[0009] According to one embodiment of the present disclosure, a method performed by a first station (STA) in a wireless LAN system may include: receiving first information from a second STA, the first information indicating a first modulation and coding scheme (MCS) index or a second MCS index associated with a duplication (DUP) mode; and sending a first physical layer protocol data unit (PPDU) to the second STA based on the first information, and, based on the first information indicating the first MCS index in a 20*N MHz (N is a natural number greater than or equal to 1) bandwidth, 40*N MHz, or 80*N MHz, a first number of data tones may be used, and based on the first information indicating the second MCS index in a 20*N MHz, 40*N MHz bandwidth, or 80*N MHz bandwidth, a second number of data tones less than the first number may be used.

[0010] According to another embodiment of the present disclosure, a method performed by a second station (STA) in a wireless LAN system may include: sending first information to a first STA, the first information indicating a first modulation and coding scheme (MCS) index or a second MCS index associated with a duplication (DUP) mode; and receiving a first physical layer protocol data unit (PPDU) from the first STA based on the first information, and, based on the first information indicating the first MCS index in a 20*N MHz (N is a natural number greater than or equal to 1) bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth, a first number of data tones may be used, and based on the first information indicating the second MCS index in a 20*N MHz bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth, a second number of data tones less than the first number may be used.

[0011] Technical Effects

[0012] According to various embodiments of the present disclosure, a PPDU transmission and reception method and apparatus based on MCS setting in a wireless LAN system may be provided.

[0013] According to various embodiments of the present disclosure, a method and apparatus for transmitting and receiving a PPDU based on defining and setting an MCS in a millimeter wave (mmWave) frequency band may be provided.

[0014] Effects achievable by the present disclosure are not limited to the above-described effects, and other effects not described herein may be clearly understood by those skilled in the relevant art through the following description. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] The accompanying drawings, which are included as a part of the detailed description for understanding the present disclosure, provide embodiments of the present disclosure and describe technical features of the present disclosure together with the detailed description.

[0016] Figure 1 A configuration block diagram of a wireless communication device according to an embodiment of the present disclosure is illustrated.

[0017] Figure 2 is a diagram illustrating an exemplary structure of a WLAN system to which the present disclosure can be applied.

[0018] Figure 3 It is a diagram for explaining a link establishment process to which the present disclosure can be applied.

[0019] Figure 4 This is a diagram for explaining a backoff process to which the present disclosure can be applied.

[0020] Figure 5 It is a diagram for explaining a frame transmission operation based on CSMA / CA to which the present disclosure can be applied.

[0021] Figure 6 is a diagram for explaining an example of a frame structure used in a WLAN system to which the present disclosure can be applied.

[0022] Figure 7 is a diagram illustrating an example of a PPDU defined in the IEEE 802.11 standard to which the present disclosure can be applied.

[0023] Figure 8 , Fig. 9 and Fig.10 is a diagram for explaining an example of a resource unit of a wireless LAN system to which the present disclosure can be applied.

[0024] Fig.11 FIG. 1 is a diagram illustrating an example of a region where channelization of a millimeter wave band according to the present disclosure can be applied.

[0025] Fig.12 is a flowchart for explaining a method for a first STA to transmit a PPDU according to an embodiment of the present disclosure.

[0026] Fig.13 is a flowchart for explaining a method for a second STA to transmit a PPDU according to an embodiment of the present disclosure. DETAILED DESCRIPTION

[0027] Hereinafter, embodiments according to the present disclosure will be described in detail with reference to the accompanying drawings. The detailed description disclosed by the accompanying drawings is intended to describe exemplary embodiments of the present disclosure, rather than to represent the only embodiment in which the present disclosure can be implemented. The following detailed description includes specific details to provide a complete understanding of the present disclosure. However, those skilled in the relevant art know that the present disclosure can be implemented without these specific details.

[0028] In some cases, well-known structures and devices may be omitted, or may be shown in the form of a block diagram based on the core functions of each structure and device in order to prevent ambiguity of the concepts of the present disclosure.

[0029] In the present disclosure, when an element is referred to as being "connected", "combined" or "linked" to another element, it may include an indirect connection relationship between another element and a direct connection relationship. In addition, in the present disclosure, the term "comprising" or "having" specifies the presence of the mentioned features, steps, operations, components and / or elements, but does not exclude the presence or addition of one or more other features, stages, operations, components, elements and / or groups thereof.

[0030] In the present disclosure, terms such as "first", "second", etc. are only used to distinguish one element from another element and are not used to limit the elements, and unless otherwise specified, they do not limit the order or importance between elements, etc. Therefore, within the scope of the present disclosure, the first element in an embodiment may be referred to as the second element in another embodiment, and similarly, the second element in an embodiment may be referred to as the first element in another embodiment.

[0031] The terms used in this disclosure are intended to describe specific embodiments, rather than to limit the claims. As used in the description of the embodiments and the appended claims, the singular form is intended to include the plural form, unless the context clearly indicates otherwise. The term "and / or" used in this disclosure may refer to one of the related enumerated items, or mean that it refers to and includes any and all possible combinations of two or more of them. In addition, unless otherwise stated, the " / " between words in this disclosure has the same meaning as "and / or".

[0032] Examples of the present disclosure can be applied to various wireless communication systems. For example, examples of the present disclosure can be applied to wireless LAN systems. For example, examples of the present disclosure can be applied to wireless LANs based on IEEE 802.11a / g / n / ac / ax standards. In addition, examples of the present disclosure can be applied to wireless LANs based on the newly proposed IEEE 802.11be (or EHT) standard. Examples of the present disclosure can be applied to wireless LANs based on the IEEE802.11be version 2 standard corresponding to the additional enhanced technology of the IEEE 802.11be version 1 standard. In addition, examples of the present disclosure can be applied to wireless LANs based on next-generation standards after IEEE 802.11be. In addition, examples of the present disclosure can be applied to cellular wireless communication systems. For example, it can be applied to cellular wireless communication systems based on long-term evolution (LTE) technology and 5G new radio (NR) technology based on the third generation partnership project (3GPP) standard.

[0033] Hereinafter, technical features of examples to which the present disclosure can be applied will be described.

[0034] Figure 1 A block diagram of a wireless communication device according to an embodiment of the present disclosure is illustrated.

[0035] Figure 1 The first device 100 and the second device 200 illustrated in the figure may be replaced with various terms such as terminal, wireless device, wireless transmit / receive unit (WTRU), user equipment (UE), mobile station (MS), user terminal (UT), mobile subscriber station (MSS), mobile subscriber unit (MSU), subscriber station (SS), advanced mobile station (AMS), wireless terminal (WT) or simple user, etc. In addition, the first device 100 and the second device 200 include an access point (AP), a base station (BS), a fixed station, a node B, a base transceiver system (BTS), a network. It may be replaced with various terms such as an artificial intelligence (AI) system, a roadside unit (RSU), a repeater, a router, a relay and a gateway.

[0036] Figure 1 The devices 100 and 200 illustrated in the example may be referred to as stations (STAs). Figure 1 The devices 100 and 200 illustrated in the figure may be referred to by various terms such as a transmitting device, a receiving device, a transmitting STA, and a receiving STA. For example, STA110 and 200 may perform an access point (AP) role or a non-AP role. That is, in the present disclosure, STA110 and 200 may perform the functions of an AP and / or a non-AP. When STA110 and 200 perform an AP function, they may be simply referred to as an AP, and when STA110 and 200 perform a non-AP function, they may be simply referred to as a STA. In addition, in the present disclosure, an AP may also be indicated as an APSTA.

[0037] Reference Figure 1 , the first device 100 and the second device 200 can send and receive radio signals through various wireless LAN technologies (e.g., IEEE802.11 series). The first device 100 and the second device 200 may include interfaces for a medium access control (MAC) layer and a physical layer (PHY) that conform to the IEEE802.11 standard.

[0038] In addition, in addition to the wireless LAN technology, the first device 100 and the second device 200 may further support various communication standards (e.g., 3GPP LTE series, 5G NR series standards, etc.) technologies. In addition, the device of the present disclosure may be implemented in various devices such as mobile phones, vehicles, personal computers, augmented reality (AR) devices, and virtual reality (VR) devices. In addition, the STA of the present specification may support various communication services such as voice calls, video calls, data communications, autonomous driving, machine type communications (MTC), machine to machine (M2M), device to device (D2D), IoT (Internet of Things), etc.

[0039] The first device 100 may include one or more processors 102 and one or more memories 104, and may further include one or more transceivers 106 and / or one or more antennas 108. The processor 102 may control the memory 104 and / or the transceiver 106, and may be configured to implement the descriptions, functions, processes, suggestions, methods, and / or operational flowcharts included in the present disclosure. For example, the processor 102 may send a wireless signal including the first information / signal through the transceiver 106 after generating the first information / signal by processing the information in the memory 104. In addition, the processor 102 may receive a wireless signal including the second information / signal through the transceiver 106, and then store the information obtained by the signal processing of the second information / signal in the memory 104. The memory 104 may be connected to the processor 102 and may store various information related to the operation of the processor 102. For example, the memory 104 may store software codes including instructions for executing all or part of the processing controlled by the processor 102 or for executing the descriptions, functions, processes, suggestions, methods, and / or operational flowcharts included in the present disclosure. Here, the processor 102 and the memory 104 may be part of a communication modem / circuit / chip designed to implement wireless LAN technology (e.g., IEEE 802.11 series). The transceiver 106 may be connected to the processor 102 and may send and / or receive wireless signals through one or more antennas 108. The transceiver 106 may include a transmitter and / or a receiver. The transceiver 106 may be used in conjunction with an RF (radio frequency) unit. In the present disclosure, a wireless device may refer to a communication modem / circuit / chip.

[0040] The second device 200 may include one or more processors 202 and one or more memories 204, and may further include one or more transceivers 206 and / or one or more antennas 208. The processor 202 may control the memory 204 and / or the transceiver 206, and may be configured to implement the descriptions, functions, processes, suggestions, methods, and / or operation flowcharts included in the present disclosure. For example, the processor 202 may generate third information / signals by processing the information in the memory 204, and then send a wireless signal including the third information / signal through the transceiver 206. In addition, the processor 202 may receive a wireless signal including fourth information / signals through the transceiver 206, and then store information obtained by signal processing of the fourth information / signal in the memory 204. The memory 204 may be connected to the processor 202 and may store various information related to the operation of the processor 202. For example, the memory 204 may store software codes including instructions for executing all or part of the processing controlled by the processor 202 or for executing the descriptions, functions, processes, suggestions, methods, and / or operation flowcharts included in the present disclosure. Here, the processor 202 and the memory 204 may be part of a communication modem / circuit / chip designed to implement wireless LAN technology (e.g., IEEE 802.11 series). The transceiver 206 may be connected to the processor 202 and may send and / or receive wireless signals through one or more antennas 208. The transceiver 206 may include a transmitter and / or a receiver. The transceiver 206 may be used in conjunction with an RF unit. In the present disclosure, a device may refer to a communication modem / circuit / chip.

[0041] In the following, the hardware elements of the apparatus 100, 200 will be described in more detail. Without limitation thereto, one or more protocol layers may be implemented by one or more processors 102, 202. For example, one or more processors 102, 202 may implement one or more layers (e.g., functional layers such as PHY, MAC). One or more processors 102, 202 may generate one or more PDUs (protocol data units) and / or one or more SDUs (service data units) according to the description, function, process, suggestion, method, and / or operation flow chart disclosed in the present disclosure. One or more processors 102, 202 may generate messages, control information, data, or information according to the description, function, process, suggestion, method, and / or operation flow chart disclosed in the present disclosure. One or more processors 102, 202 may generate signals (e.g., baseband signals) including PDUs, SDUs, messages, control information, data, or information according to the functions, processes, suggestions, and / or methods disclosed in the present disclosure to provide them to one or more transceivers 106, 206. One or more processors 102, 202 may receive a signal (e.g., a baseband signal) from one or more transceivers 106, 206 according to the descriptions, functions, processes, suggestions, methods, and / or operational flow charts included in the present disclosure and obtain a PDU, SDU, message, control information, data, or information.

[0042] One or more processors 102, 202 may be referred to as controllers, microcontrollers, microprocessors, or microcomputers. One or more processors 102, 202 may be implemented by hardware, firmware, software, or a combination thereof. For example, one or more ASICs (Application Specific Integrated Circuits), one or more DSPs (Digital Signal Processors), one or more DSPDs (Digital Signal Processing Devices), one or more PLDs (Programmable Logic Devices), or one or more FPGAs (Field Programmable Gate Arrays) may be included in one or more processors 102, 202. The descriptions, functions, processes, suggestions, methods, and / or operational flow charts included in the present disclosure may be implemented using firmware or software, and the firmware or software may be implemented to include modules, processes, functions, and the like. Firmware or software configured to execute the descriptions, functions, processes, suggestions, methods, and / or operational flow charts included in the present disclosure may be included in one or more processors 102, 202, or may be stored in one or more memories 104, 204 and driven by one or more processors 102, 202. The descriptions, functions, processes, suggestions, methods and / or operational flow charts included in the present disclosure may be implemented using firmware or software in the form of codes, instructions and / or instruction sets.

[0043] One or more memories 104, 204 may be connected to one or more processors 102, 202 and may store data, signals, messages, information, programs, codes, instructions, and / or commands in various forms. One or more memories 104, 204 may be configured with ROM, RAM, EPROM, flash memory, hard drive, registers, cache memory, computer-readable storage media, and / or combinations thereof. One or more memories 104, 204 may be located inside and / or outside one or more processors 102, 202. In addition, one or more memories 104, 204 may be connected to one or more processors 102, 202 via various technologies such as wired or wireless connections.

[0044] One or more transceivers 106, 206 may send user data, control information, wireless signals / channels, etc. mentioned in the method and / or operation flow chart of the present disclosure to one or more other devices. One or more transceivers 106, 206 may receive user data, control information, wireless signals / channels, etc. mentioned in the description, function, process, suggestion, method and / or operation flow chart, etc. included in the present disclosure from one or more other devices. For example, one or more transceivers 106, 206 may be connected to one or more processors 102, 202 and may send and receive wireless signals. For example, one or more processors 102, 202 may control one or more transceivers 106, 206 to send user data, control information or wireless signals to one or more other devices. In addition, one or more processors 102, 202 may control one or more transceivers 106, 206 to receive user data, control information or wireless signals from one or more other devices. In addition, one or more transceivers 106, 206 may be connected to one or more antennas 108, 208, and one or more transceivers 106, 206 may be configured to send and receive user data, control information, wireless signals / channels, etc. mentioned in the description, functions, processes, suggestions, methods and / or operation flow charts, etc. included in the present disclosure through one or more antennas 108, 208. In the present disclosure, one or more antennas may be multiple physical antennas or multiple logical antennas (e.g., antenna ports). One or more transceivers 106, 206 may convert received wireless signals / channels, etc. from RF band signals into baseband signals to process received user data, control information, wireless signals / channels, etc. by using one or more processors 102, 202. One or more transceivers 106, 206 may convert user data, control information, wireless signals / channels, etc. processed by using one or more processors 102, 202 from baseband signals into RF band signals. Thus, one or more of the transceivers 106 , 206 may include (analog) oscillators and / or filters.

[0045] For example, one of the STAs 100 and 200 may perform the expected operation of an AP, and the other of the STAs 100 and 200 may perform the expected operation of a non-AP STA. Figure 1 The transceivers 106 and 206 of the present invention may perform transmission and reception operations of signals (e.g., packets or physical layer protocol data units (PPDUs) compliant with IEEE 802.11a / b / g / n / ac / ax / be / bn). In addition, in the present disclosure, operations of various STAs generating transmission / reception signals or performing data processing or calculations on transmission / reception signals in advance may be performed by Figure 1The processors 102 and 202 are executed. For example, examples of operations of generating a transmission / reception signal or performing data processing or calculation for the transmission / reception signal in advance may include: 1) determining / obtaining / configuring / calculating / decoding / encoding bit information of fields (signal (SIG), short training field (STF), long training field (LTF), data, etc.) included in the PPDU; 2) determining / configuring / obtaining time resources or frequency resources (e.g., subcarrier resources) for fields (SIG, STF, LTF, data, etc.) included in the PPDU; 3) determining / configuring / obtaining a specific sequence (e.g., pilot sequence, STF / LTF sequence, additional sequence applied to SIG) for fields (SIG, STF, LTF, data, etc.) included in the PPDU action; 4) power control operations and / or power saving operations applied to STAs; 5) operations related to ACK signal determination / obtaining / configuring / calculating / decoding / encoding, etc. In addition, in the following example, various information used by various STAs to determine / acquire / configure / calculate / decode / encode transmission signals and reception signals (e.g., information related to fields / subfields / control fields / parameters / power, etc.) may be stored in Figure 1 in the memories 104 and 204.

[0046] Hereinafter, a downlink (DL) may mean a link for communication from an AP STA to a non-AP STA, and a DL PPDU / packet / signal may be transmitted and received through the DL. In DL communication, a transmitter may be a part of an AP STA, and a receiver may be a part of a non-AP STA. An uplink (UL) may mean a link for communication from a non-AP STA to an AP STA, and a UL PPDU / packet / signal may be transmitted and received through the UL. In UL communication, a transmitter may be a part of a non-AP STA, and a receiver may be a part of an AP STA.

[0047] Figure 2 is a diagram illustrating an exemplary structure of a wireless LAN system to which the present disclosure can be applied.

[0048] The structure of the wireless LAN system may be composed of a plurality of components. A wireless LAN supporting STA mobility transparent to an upper layer may be provided through the interaction of the plurality of components. A basic service set (BSS) corresponds to a basic building block of a wireless LAN. Figure 2 It is exemplarily shown that two BSSs (BSS1 and BSS2) exist, and two STAs (STA1 and STA2 are included in BSS1, and STA3 and STA4 are included in BSS2) are included as members of each BSS. Figure 2The ellipse representing the BSS in the figure can also be understood as representing the coverage area in which the STAs included in the corresponding BSS maintain communication. This area can be called a basic service area (BSA). When a STA moves outside the BSA, it cannot communicate directly with other STAs in the BSA.

[0049] If you don't consider Figure 2 , the most basic BSS type in the wireless LAN is an independent BSS (IBSS), if the DS is shown in FIG. 1 . For example, an IBSS may have a minimum form containing only two STAs. For example, assuming that other components are omitted, a BSS1 containing only STA1 and STA2 or a BSS2 containing only STA3 and STA4 may correspond to representative examples of IBSSs, respectively. This configuration is possible when STAs can communicate directly without an AP. In addition, in this type of wireless LAN, it is not pre-configured but can be configured when a LAN is needed, and this may be referred to as an ad-hoc network. Since the IBSS does not include an AP, there is no centralized management entity. That is, in the IBSS, STAs are managed in a distributed manner. In the IBSS, all STAs may be composed of mobile STAs, and access to the distributed system (DS) is not allowed, thereby forming a self-contained network.

[0050] The membership of a STA in a BSS can be changed dynamically by turning the STA on or off, entering or exiting a BSS region, etc. In order to become a member of a BSS, a STA can join the BSS using a synchronization process. In order to access all services of the BSS infrastructure, a STA should associate with the BSS. This association can be established dynamically and can include the use of a distributed system service (DSS).

[0051] The direct STA-to-STA distance in a wireless LAN may be limited by PHY performance. In some cases, this distance limitation may be sufficient, but in some cases, communication between STAs at longer distances may be required. A distributed system (DS) can be configured to support extended coverage.

[0052] DS refers to the structure of BSS interconnection. Specifically, Figure 2As shown, the BSS can exist as an extended form of a network composed of multiple BSSs. DS is a logical concept and can be specified by the characteristics of the distributed system medium (DSM). At this point, the wireless medium (WM) and the DSM can be logically separated. Each logical medium is used for different purposes and is used by different components. These media are not limited to being the same, nor are they limited to being different. In this way, the flexibility of the wireless LAN structure (DS structure or other network structure) can be interpreted as multiple media being logically different. That is, the wireless LAN structure can be implemented in various ways, and the corresponding wireless LAN structure can be independently specified by the physical characteristics of each implementation.

[0053] DS can support mobile devices by providing seamless integration of multiple BSSs and providing logical services necessary to address the address leading to the destination. In addition, DS can also include a component called a portal, which is used as a bridge for connection between wireless LAN and other networks (e.g., IEEE 802.X).

[0054] The AP enables access to the DS through the WM for associated non-AP STAs and means an entity that also has STA functionality. Data movement between the BSS and the DS can be performed through the AP. For example, Figure 2 STA2 and STA3 shown in the figure have the function of STA and provide the function of allowing the associated non-AP STA (STA1 and STA4) to access the DS. In addition, since all APs basically correspond to STAs, all APs are addressable entities. The address used by the AP to communicate on the WM is not necessarily the same as the address used by the AP to communicate on the DSM. A BSS composed of an AP and one or more STAs may be referred to as an infrastructure BSS.

[0055] Data sent from one of the STAs associated with the AP to the STA address of the corresponding AP can always be received at the uncontrolled port and can be processed by the IEEE 802.1X port access entity. In addition, when the controlled port is authenticated, the transmitted data (or frame) can be delivered to the DS.

[0056] In addition to the above-mentioned structure of the DS, an extended service set (ESS) may also be configured to provide wide coverage.

[0057] ESS means a network with arbitrary size and complexity consisting of DS and BSS. ESS may correspond to a set of BSSs connected to one DS. However, ESS does not include DS. The ESS network is characterized by being regarded as an IBSS in the logical link control (LLC) layer. The STAs included in the ESS can communicate with each other, and the mobile STA can move from one BSS to another (within the same ESS) transparently for LLC. The APs included in one ESS may have the same service set identifier (SSID). SSID is distinguished from BSSID, which is an identifier of BSS.

[0058] The wireless LAN system does not assume anything about the relative physical location of the BSS, and all of the following forms are possible. The BSS may partially overlap, which is a form commonly used to provide continuous coverage. In addition, the BSS may not be physically connected, and logically, there is no limit on the distance between the BSS. In addition, the BSS may be physically located in the same location, which can be used to provide redundancy. In addition, one (or more than one) IBSS or ESS network may physically exist in the same space as one (or more than one) ESS network. When an ad hoc network operates in a location where an ESS network exists, when physically overlapping wireless networks are configured by different organizations, or when two or more different access and security policies are required in the same location, this may correspond to the form of an ESS network, etc.

[0059] Figure 3 is a diagram for explaining a link establishment process to which the present disclosure can be applied.

[0060] In order for a STA to establish a link with respect to a network and send / receive data, it first discovers the network, performs authentication, establishes association, and needs to perform authentication processing for security. The link establishment processing may also be referred to as a session initiation processing or a session establishment processing. In addition, the discovery, authentication, association, and security establishment processing of the link establishment processing may be collectively referred to as an association processing.

[0061] In step S310, the STA may perform a network discovery operation. The network discovery operation may include a scanning operation of the STA. That is, in order for the STA to access a network, it needs to find a network that it can participate in. The STA should identify compatible networks before participating in a wireless network, and the process of identifying networks present in a specific area is called scanning.

[0062] Scanning schemes include active scanning and passive scanning. Figure 3The network discovery operation including active scanning processing is exemplarily illustrated. In active scanning, the STA performing the scan sends a probe request frame to discover which APs exist around it while the channel moves and waits for a response thereto. The responder sends a probe response frame as a response to the probe request frame to the STA that has sent the probe request frame. Here, the responder may be the STA that last sent a beacon frame in the BSS of the channel being scanned. In the BSS, since the AP sends a beacon frame, the AP becomes the responder, and in the IBSS, the STAs in the IBSS rotate to send beacon frames, so the responder is not constant. For example, a STA that sends a probe request frame on channel 1 and receives a probe response frame on channel 1 may store the BSS-related information included in the received probe response frame, and may move to the next channel (e.g., channel 2), and perform scanning in the same manner (i.e., sending and receiving probe requests / responses on channel 2).

[0063] Although not in Figure 3 , but the scanning operation can be performed in a passive scanning manner. In passive scanning, the STA performing the scan waits for a beacon frame while the channel moves. The beacon frame is one of the management frames defined in IEEE 802.11, and is periodically sent to notify the existence of a wireless network and allow the STA performing the scan to find the wireless network and participate in the wireless network. In the BSS, the AP is used to periodically send beacon frames, and in the IBSS, the STAs within the IBSS rotate to send beacon frames. When the STA performing the scan receives the beacon frame, the STA stores the information of the BSS included in the beacon frame, and records the beacon frame information in each channel while moving to another channel. The STA receiving the beacon frame can store the BSS-related information included in the received beacon frame, move to the next channel, and perform scanning in the next channel in the same manner. Comparing active scanning with passive scanning, the advantage of active scanning is that it has less delay and less power consumption than passive scanning.

[0064] After the STA discovers the network, an authentication process may be performed at step S320. In order to clearly distinguish from the security establishment operation of step S340 to be described later, this authentication process may be referred to as a first authentication process.

[0065] The authentication process includes the following process: the STA sends an authentication request frame to the AP, and in response thereto, the AP sends an authentication response frame to the STA. The authentication frame for authentication request / response corresponds to a management frame.

[0066] The authentication frame includes an authentication algorithm number, an authentication transaction sequence number, a status code, a challenge text, a robust security network (RSN), a limited cycle group, etc. This corresponds to some examples of information that can be included in the authentication request / response frame, and can be replaced with other information, or additional information can also be included.

[0067] The STA may send an authentication request frame to the AP. The AP may determine whether to allow authentication of the corresponding STA based on the information included in the received authentication request frame. The AP may provide the result of the authentication process to the STA via an authentication response frame.

[0068] After the STA is successfully authenticated, an association process may be performed at step S330. The association process includes the following processes: the STA sends an association request frame to the AP, and in response, the AP sends an association response frame to the STA.

[0069] For example, the association request frame may include information related to various capabilities, a beacon listening interval, a service set identifier (SSID), supported rates, supported channels, RSN, a mobile domain, supported operation categories, a traffic indication map broadcast request (TIM broadcast request), interworking service capabilities, etc. For example, the association response frame may include information related to various capabilities, a status code, an association ID (AID), supported rates, an enhanced distributed channel access (EDCA) parameter set, a received channel power indicator (RCPI), a received signal-to-noise ratio indicator (RSNI), a mobile domain, a timeout interval (e.g., an association recovery time), an overlapping BSS scan parameter, a TIM broadcast response, a quality of service (QoS) map, etc. This corresponds to some examples of information that may be included in an association request / response frame, and may be replaced with other information, or may also include additional information.

[0070] After the STA successfully associates with the network, a security establishment process may be performed at step S340. The security establishment process at step S340 may be referred to as an authentication process through a robust security network association (RSNA) request / response, the authentication process at step S320 may be referred to as a first authentication process, and the security establishment process at step S340 may also be referred to simply as an authentication process.

[0071] The security establishment process of step S340 may include, for example, a process of establishing a private key through an Extensible Authentication Protocol over LAN (EAPOL) frame using a four-way handshake. In addition, the security establishment process may be performed according to a security scheme not defined in the IEEE 802.11 standard.

[0072] Figure 4 It is a diagram for explaining a backoff process to which the present disclosure can be applied.

[0073] In a wireless LAN system, the basic access mechanism of the medium access control (MAC) is a carrier sense multiple access with collision avoidance (CSMA / CA) mechanism. The CSMA / CA mechanism is also known as the distributed coordination function (DCF) of the IEEE 802.11 MAC, and basically adopts a "listen before talk" access mechanism. According to this type of access mechanism, before starting to send, the AP and / or STA may perform a clear channel assessment (CCA) of sensing the radio channel or medium during a predetermined time interval (e.g., DCF interframe space (DIFS)). As a result of the sensing, if it is determined that the medium is in an idle state, frame transmission is started through the corresponding medium. On the other hand, if it is detected that the medium is occupied or busy, the corresponding AP and / or STA does not start its own transmission, and a delay period (e.g., a random backoff period) for medium access may be set and frame transmission may be attempted after waiting. By applying a random backoff period, since multiple STAs are expected to attempt frame transmission after waiting for different time periods, conflicts can be minimized.

[0074] In addition, the IEEE 802.11 MAC protocol provides a hybrid coordination function (HCF). HCF is based on DCF and point coordination function (PCF). PCF is a synchronous access method based on polling, and refers to a method in which all receiving APs and / or STAs periodically poll to receive data frames. In addition, HCF has enhanced distributed channel access (EDCA) and HCF controlled channel access (HCCA). EDCA is a contention-based access method that provides data frames to multiple users in a direction, and HCCA uses a non-contention-based channel access method that utilizes a polling mechanism. In addition, HCF includes a medium access mechanism for improving the QoS (quality of service) of a wireless LAN, and QoS data can be sent during a contention period (CP) and a contention-free period (CFP).

[0075] Reference Figure 4, the operation based on the random backoff period will be described. When the occupied / busy medium becomes idle, multiple STAs may attempt to send data (or frames). As a method of minimizing conflicts, each of the STAs may select a random backoff count respectively and attempt to send after waiting for the corresponding time slot time. The random backoff count has a pseudo-random integer value and may be determined as one of the values ​​ranging from 0 to CW. Here, CW is a contention window parameter value. The CW parameter is assigned CWmin as an initial value, but may take a value twice as large in the event of a transmission failure (e.g., when an ACK for a transmitted frame is not received). When the CW parameter value reaches CWmax, data transmission may be attempted while maintaining the CWmax value until data transmission is successful, and when data transmission is successful, the CWmin value is reset. The values ​​of CW, CWmin, and CWmax are preferably set to 2n-1 (n=0, 1, 2, ...).

[0076] When the random backoff process starts, the STA continuously monitors the medium in the backoff slot countdown according to the determined backoff count value. When the medium is monitored for occupancy, it stops the countdown and waits, and restarts the remaining part of the countdown when the medium becomes idle.

[0077] exist Figure 4 In the example of , when the packet to be sent arrives at the MAC of STA 3, STA3 can send the frame immediately after confirming that the medium has been idle for up to DIFS. The remaining STAs monitor and wait for the medium to be occupied / busy. At the same time, the data to be sent can also occur in each of STA1, STA2 and STA5, and when the medium is monitored as idle, each STA waits for up to DIFS, and then the countdown of the backoff slot can be performed according to the random backoff count value selected by each STA. Assume that STA2 selects the minimum backoff count value and STA1 selects the maximum backoff count value. That is, the example illustrates the case where the remaining backoff time of STA5 is shorter than the remaining backoff time of STA1 when STA2 completes the backoff count and starts frame transmission. STA1 and STA5 temporarily stop the countdown and wait when STA2 occupies the medium. When STA2's occupation ends and the medium becomes idle again, STA1 and STA5 wait for DIFS and restart the stopped backoff count. That is, frame transmission can start after counting down the remaining backoff slot for the remaining backoff time. Since the remaining backoff time of STA5 is shorter than that of STA1, STA5 starts frame transmission. The data to be transmitted may also occur in STA4 while STA2 occupies the medium. From the perspective of STA4, when the medium becomes idle, STA4 may wait for DIFS, and then may perform a countdown according to a random backoff count value selected by STA4, and start transmitting frames. Figure 4The example shows a case where the remaining backoff time of STA5 accidentally collides with the random backoff count value of STA4. In this case, a collision may occur between STA4 and STA5. When a collision occurs, neither STA4 nor STA5 receives an ACK, so data transmission fails. In this case, STA4 and STA5 can double the CW value, select a random backoff count value, and perform a countdown. While the medium is occupied due to the transmission of STA4 and STA5, STA1 waits, and when the medium becomes idle, STA1 waits DIFS, and then starts frame transmission after the remaining backoff time has passed.

[0078] As in Figure 4 In the example of , a data frame is a frame for sending data forwarded to a higher layer, and may be sent after a backoff performed after DIFS has passed since the medium became idle. In addition, a management frame is a frame for exchanging management information that is not forwarded to a higher layer, and is sent after a backoff is performed after an IFS such as DIFS or a point coordination function IFS (PIFS). As subtype frames of the management frame, there are beacons, association requests / responses, reassociation requests / responses, probe requests / responses, authentication requests / responses, and the like. A control frame is a frame for controlling access to a medium. As subtype frames of the control frame, there are request to send (RTS), clear to send (CTS), acknowledgement (ACK), power save poll (PS-Poll), block ACK (BlockAck), block ACK request (BlockACKReq), empty data packet announcement (NDP announcement), and trigger, and the like. If the control frame is not a response frame of the previous frame, it is sent after performing a backoff after DIFS has passed, and if it is a response frame of the previous frame, it is sent without performing a backoff after a short IFS (SIFS) has passed. The type and subtype of the frame can be identified by the type field and subtype field in the frame control (FC) field.

[0079] Quality of Service (QoS) STA can perform a backoff performed after arbitration IFS (AIFS) (i.e., AIFS (where i is a value determined by AC)) for the access category (AC) to which the frame belongs, and then can send the frame. Here, the frame that can use AIFS may be a data frame, a management frame, or a control frame instead of a response frame.

[0080] Figure 5 is a diagram for explaining a frame transmission operation based on CSMA / CA to which the present disclosure can be applied.

[0081] As described above, in addition to the physical carrier sensing in which the STA directly senses the medium, the CSMA / CA mechanism also includes virtual carrier sensing. Virtual carrier sensing is intended to compensate for problems such as hidden node problems that may occur in medium access. For virtual carrier sensing, the MAC of the STA can use a network allocation vector (NAV). NAV is a value that indicates to other STAs the remaining time until the medium is available for use by the STA that is currently using or has the right to use the medium. Therefore, the value set to NAV corresponds to the period during which the STA sending the frame plans to use the medium, and during the corresponding period, the STA receiving the NAV value is prohibited from accessing the medium. For example, the NAV can be configured based on the value of the "Duration" field of the MAC header of the frame.

[0082] exist Figure 5 In the example of FIG. 1 , it is assumed that STA1 intends to send data to STA2, and STA3 is in a position to be able to eavesdrop on some or all frames sent and received between STA1 and STA2.

[0083] In order to reduce the possibility of transmission conflicts among multiple STAs in the CSMA / CA-based frame transmission operation, a mechanism using RTS / CTS frames can be applied. Figure 5 In the example of , when STA1's transmission is being performed, as a result of STA3's carrier sensing, it can be determined that the medium is in an idle state. That is, STA1 may correspond to a hidden node with respect to STA3. Alternatively, in Figure 5 In the example of , it can be determined that the carrier sensing result medium of STA3 is in an idle state while the transmission of STA2 is being performed. That is, STA2 may correspond to a hidden node with respect to STA3. By exchanging RTS / CTS frames before performing data transmission and reception between STA1 and STA2, STAs outside the transmission range of one of STA1 or STA2 or STAs outside the carrier sensing range of the transmission from STA1 or STA3 may not attempt to occupy the channel during data transmission and reception between STA1 and STA2.

[0084] Specifically, STA1 can determine whether the channel is being used by carrier sensing. In terms of physical carrier sensing, STA1 can determine the channel occupancy idle state based on the energy level or signal correlation detected in the channel. In addition, in terms of virtual carrier sensing, STA1 can use the network allocation vector (NAV) timer to determine the channel occupancy state.

[0085] When the channel is in an idle state during DIFS, STA1 may send an RTS frame to STA2 after performing backoff. When STA2 receives the RTS frame, STA2 may send a CTS frame to STA1 as a response to the RTS frame after SIFS.

[0086] If STA3 cannot eavesdrop on the CTS frame from STA2 but can eavesdrop on the RTS frame from STA1, STA3 can set the NAV timer for the frame transmission period (e.g., SIFS+CTS frame+SIFS+data frame+SIFS+ACK frame) that is continuously transmitted thereafter using the duration information included in the RTS frame. Alternatively, if STA3 can eavesdrop on the CTS frame from STA2, STA3 can set the NAV timer for the frame transmission period (e.g., SIFS+data frame+SIFS+ACK frame) that is continuously transmitted thereafter using the duration information included in the CTS frame even though STA3 cannot eavesdrop on the RTS frame from STA1. That is, if STA3 can eavesdrop on one or more of the RTS frame or the CTS frame from one or more of STA1 or STA2, STA3 can set the NAV accordingly. When STA3 receives a new frame before the NAV timer expires, STA3 can update the NAV timer using the duration information included in the new frame. STA3 does not attempt channel access until the NAV timer expires.

[0087] When STA1 receives a CTS frame from STA2, STA1 may send a data frame to STA2 after SIFS, starting from the time point when reception of the CTS frame is completed. When STA2 successfully receives the data frame, STA2 may send an ACK frame to STA1 after SIFS as a response to the data frame. When the NAV timer expires, STA3 may determine whether the channel is being used by carrier sensing. When STA3 determines that the channel is not being used by other terminals during the DIFS period after the NAV timer expires, STA3 may attempt channel access after the contention window (CW) according to the random backoff has passed.

[0088] Figure 6 is a diagram for explaining an example of a frame structure used in a WLAN system to which the present disclosure can be applied.

[0089] With the help of instructions or primitives (meaning a set of instructions or parameters) from the MAC layer, the PHY layer can prepare a MAC PDU (MPDU) to be transmitted. For example, when a command requesting the PHY layer to start transmitting is received from the MAC layer, the PHY layer switches to a transmission mode, and configures information (e.g., data) provided from the MAC layer in the form of a frame and transmits it. In addition, when the PHY layer detects a valid preamble of a received frame, the PHY layer monitors the header of the preamble and transmits a command notifying the start of reception of the PHY layer to the MAC layer.

[0090] In this manner, information transmission / reception in the wireless LAN system is performed in the form of a frame, and for this purpose, a PHY layer protocol data unit (PPDU) format is defined.

[0091] The basic PPDU may include a short training field (STF), a long training field (LTF), a signal (SIG) field, and a data (Data) field. The most basic PPDU format (e.g., Figure 7 The non-HT (high throughput) shown in the figure may consist of only the legacy-STF (L-STF), the legacy-LTF (L-LTF), the legacy-SIG (L-SIG) field and the data field. In addition, depending on the type of PPDU format (e.g., HT mixed format PPDU, HT greenfield format PPDU, VHT (very high throughput) PPDU, etc.), additional (or different types of) RL-SIG, U-SIG, non-legacy SIG field, non-legacy STF, non-legacy LTF (i.e., xx-SIG, xx-STF, xx-LTF (e.g., xx is HT, VHT, HE, EHT, etc.)) and the like may be included between the L-SIG field and the data field.

[0092] STF is a signal used for signal detection, automatic gain control (AGC), diversity selection, precise time synchronization, etc., and LTF is a signal used for channel estimation and frequency error estimation. STF and LTF can be called signals for synchronization and channel estimation of the OFDM physical layer.

[0093] The SIG field may include various information related to the transmission and reception of the PPDU. For example, the L-SIG field consists of 24 bits, and the L-SIG field may include a 4-bit rate field, a 1-bit reserved bit, a 12-bit length field, a 1-bit parity field, and a 6-bit tail field. The RATE field may include information about the modulation and coding rate of the data. For example, the 12-bit length field may include information about the length or 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, for non-HT, HT, VHT, or EHT PPDUs, the value of the length field may be determined as a multiple of 3. For example, for HE PPDUs, the value of the length field may be determined as a multiple of 3+1 or a multiple of 3+2.

[0094] The data field may include a service (SERVICE) field, a physical layer service data unit (PSDU) and a PPDU tail bit, and may also include padding bits if necessary. Some bits of the service field may be used for synchronization of the descrambler at the receiving end. The PSDU corresponds to the MAC PDU defined in the MAC layer and may include data generated / used in the upper layer. The PPDU tail bit may be used to return the encoder to the 0 state. The padding bit may be used to adjust the length of the data field in predetermined units.

[0095] MAC PDU is defined according to various MAC frame formats, and a basic MAC frame consists of a MAC header, a frame body, and a frame check sequence (FCS). A MAC frame may consist of a MAC PDU and be transmitted / received through a PSDU of a data portion of a PPDU format.

[0096] The MAC header includes a frame control field, a duration / ID field, an address field, etc. The frame control field may include control information required for frame transmission / reception. The duration / ID field may be set to the time for transmitting the corresponding frame, etc. For details of the sequence control, QoS control, and HT control subfields of the MAC header, refer to the IEEE 802.11 standard document.

[0097] The null data PPDU (NDP) format refers to a PPDU format that does not include a data field. In other words, NDP refers to a frame format that includes a PPDU preamble (i.e., L-STF, L-LTF, L-SIG fields and additional non-legacy SIG, non-legacy STF, non-legacy LTF (if present)) of a general PPDU format and does not include the remaining part (i.e., the data field).

[0098] Figure 7 is a diagram illustrating an example of a PPDU defined in the IEEE 802.11 standard to which the present disclosure can be applied.

[0099] In standards such as IEEE 802.11a / g / n / ac / ax, various types of PPDUs have been used. The basic PPDU format (IEEE 802.11a / g) includes L-LTF, L-STF, L-SIG, and data fields. The basic PPDU format may also be referred to as a non-HT PPDU format (such as Figure 7 (as shown in (a)).

[0100] Compared to the basic PPDU format, the HT PPDU format (IEEE 802.11n) additionally includes HT-SIG, HT-STF, and HT-LFT fields. Figure 7The HT PPDU format shown in (b) may be referred to as an HT mixed format. In addition, an HT greenfield format PPDU may be defined, and this corresponds to a format consisting of HT-GF-STF, HT-LTF1, HT-SIG, one or more HT-LTFs, and a data field, excluding L-STF, L-LTF, and L-SIG (not shown).

[0101] Compared to the basic PPDU format, an example of the VHT PPDU format (IEEE 802.11ac) additionally includes VHTSIG-A, VHT-STF, VHT-LTF, and VHT-SIG-B fields (eg, Figure 7 (as shown in (c)).

[0102] Compared to the basic PPDU format, an example of the HE PPDU format (IEEE 802.11ax) additionally includes a repeated L-SIG (RL-SIG), HE-SIG-A, HE-SIG-B, HE-STF, HE-LTF, a packet extension (PE) field (such as Figure 7 (d) of the HE PPDU format). Some fields may be excluded or their lengths may vary according to the detailed example of the HE PPDU format. For example, the HE-SIG-B field is included in the HE PPDU format for multi-user (MU), and the HE-SIG-B is not included in the HE PPDU format for single user (SU). In addition, the HE trigger-based (TB) PPDU format does not include the HE-SIG-B, and the length of the HE-STF field may vary to 8μs. The extended range (HE ER) SU PPDU format does not include the HE-SIG-B field, and the length of the HE-SIG-A field may vary to 16μs. For example, the RL-SIG may be configured to be the same as the L-SIG. Based on the presence of the RL-SIG, the receiving STA may know that the received PPDU is a HE PPDU or an EHT PPDU, which will be described later.

[0103] The EHT PPDU format may include Figure 7 (e) EHT MU (multi-user) and Figure 7 The EHT TB (trigger-based) PPDU in (f) of FIG. The EHT PPDU format is similar to the HE PPDU format in that it includes the RL-SIG following the L-SIG, but may include the U (Universal)-SIG, the EHT-SIG, the EHT-STF, and the EHT-LTF following the RL-SIG.

[0104] Figure 7The EHT MU PPDU in (e) corresponds to a PPDU carrying one or more data (or PSDU) for one or more users. That is, the EHT MU PPDU can be used for both SU transmission and MU transmission. For example, the EHT MU PPDU can correspond to a PPDU for one receiving STA or multiple receiving STAs.

[0105] Compared with EHT MU PPDU, Figure 7 The EHT TB PPDU in (f) omits the EHT-SIG. A STA that receives a trigger for UL MU transmission (eg, a trigger frame or a triggered response schedule (TRS)) may perform UL transmission based on the EHT TB PPDU format.

[0106] The L-STF, L-LTF, L-SIG, RL-SIG, U-SIG (Universal Signal), EHT-SIG fields may be coded and modulated so that even legacy STAs may attempt to demodulate and decode, and may be mapped based on a determined subcarrier frequency interval (e.g., 312.5kHz). These may be referred to as pre-EHT modulation fields. Next, the EHT-STF, EHT-LTF, data, PE fields may be coded and modulated so that they may be demodulated and decoded by a STA that successfully decodes a non-legacy SIG (e.g., U-SIG and / or EHT-SIG) and obtains the information included in the field, and may be mapped based on a determined subcarrier frequency interval (e.g., 78.125kHz). These may be referred to as EHT modulation fields.

[0107] Similarly, in the HE PPDU format, the L-STF, L-LTF, L-SIG, RL-SIG, HE-SIG-A, and HE-SIG-B fields may be referred to as pre-HE modulation fields, and the HE-STF, HE-LTF, data, and PE fields may be referred to as HE modulation fields. In addition, in the VHT PPDU format, the L-STF, L-LTF, L-SIG, and VHT-SIG-A fields may be referred to as non-VHT modulation fields, and the VHT STF, VHT-LTF, VHT-SIG-B, and data fields may be referred to as VHT modulation fields.

[0108] Included in Figure 7The U-SIG in the EHT PPDU format may be configured based on, for example, two symbols (e.g., two consecutive OFDM symbols). Each symbol (e.g., OFDM symbol) used for the U-SIG may have a duration of 4 μs, and the U-SIG may have a total duration of 8 μs. Each symbol of the U-SIG may be used to send 26 bits of information. For example, each symbol of the U-SIG may be sent and received based on 52 data tones and 4 pilot tones.

[0109] The U-SIG may be constructed in units of 20 MHz. For example, if an 80 MHz PPDU is constructed, the U-SIG may be duplicated. That is, the same 4 U-SIGs may be included in the 80 MHz PPDU. A PPDU with a bandwidth exceeding 80 MHz may include a different U-SIG.

[0110] For example, A uncoded bits may be sent via U-SIG, the first symbol of U-SIG (e.g., U-SIG-1 symbol) may send the first X bits of information out of a total of A bits of information, and the second symbol of U-SIG (e.g., U-SIG-2 symbol) may send the remaining Y bits of information out of a total of A bits of information. The A bits of information (e.g., 52 uncoded bits) may include a CRC field (e.g., a 4-bit long field) and a tail field (e.g., a 6-bit long field). For example, the tail field may be used to terminate the trellis structure of the convolutional decoder and may be set to 0.

[0111] The bit information sent through U-SIG can be divided into version-independent bits and version-dependent bits. For example, U-SIG can be included in Figure 7 In a new PPDU format not shown in the EHT PPDU format (e.g., UHR PPDU format), and may be included in the format of the U-SIG field included in the EHT PPDU format and the format of the U-SIG field included in the UHR PPDU format, the version-independent bits may be the same, and some or all of the version-related bits may be different.

[0112] For example, the size of the version-independent bit of the U-SIG may be fixed or variable. The version-independent bit may be assigned only to the U-SIG-1 symbol, or to both the U-SIG-1 symbol and the U-SIG-2 symbol. The version-independent bit and the version-dependent bit may be referred to by various names, such as a first control bit and a second control bit.

[0113] For example, the version-independent bits of the U-SIG may include a 3-bit physical layer version identifier (PHY version identifier), and this information may indicate the PHY version (e.g., EHT, UHR, etc.) of the transmitted / received PPDU. The version-independent bits of the U-SIG may include a 1-bit UL / DL flag field. The first value of the 1-bit UL / DL flag field is related to UL communication, and the second value of the UL / DL flag field is related to DL communication. The version-independent bits of the U-SIG may include information about the length of a transmit opportunity (TXOP) and information about a BSS color ID.

[0114] For example, the version-related bits of the U-SIG may include information directly or indirectly indicating the type of the PPDU (eg, SU PPDU, MU PPDU, TB PPDU, etc.).

[0115] Information required for PPDU transmission and reception may be included in the U-SIG. For example, the U-SIG may also include information about bandwidth, information about an MCS technology applied to a non-legacy SIG (e.g., EHT-SIG or UHR-SIG, etc.), information indicating whether a DCM (dual carrier modulation) technology (e.g., a technology for achieving an effect similar to frequency diversity by reusing the same signal on two subcarriers) is applied to the non-legacy SIG, information about the number of symbols used for the non-legacy SIG, and information about whether the non-legacy SIG is generated across the entire frequency band.

[0116] Some of the information required for PPDU transmission and reception may be included in the U-SIG and / or the non-legacy SIG (e.g., EHT-SIG or UHR-SIG, etc.). For example, information about the type of non-legacy LTF / STF (e.g., EHT-LTF / EHT-STF or UHR-LTF / UHR-STF, etc.), information about the length of the non-legacy LTF and the CP (cyclic prefix) length, information about the GI (guard interval) applicable to the non-legacy LTF, information about preamble puncturing applicable to the PPDU, information about resource unit (RU) allocation, etc. may be included only in the U-SIG, only in the non-legacy SIG, or may be indicated by a combination of information included in the U-SIG and information included in the non-legacy SIG.

[0117] Preamble puncturing may indicate the transmission of a PPDU in which there is no signal in one or more frequency units in the bandwidth of the PPDU. For example, the size of the frequency unit (or the resolution of the preamble puncturing) may be defined as 20 MHz, 40 MHz, etc. For example, preamble puncturing may be applied to a PPDU bandwidth of a predetermined size or greater.

[0118] exist Figure 7In the example of , non-legacy SIGs such as HE-SIG-B and EHT-SIG may include control information for receiving STAs. The non-legacy SIG may be transmitted on at least one symbol, and one symbol may have a length of 4 μs. Information about the number of symbols used for the EHT-SIG may be included in a previous SIG (eg, HE-SIG-A, U-SIG, etc.).

[0119] Non-legacy SIGs such as HE-SIG-B and EHT-SIG may include a common field and a user-specific field. The common field and the user-specific field may be encoded separately.

[0120] In some cases, the common field may be omitted. For example, in a compressed mode that does not apply OFDMA (Orthogonal Frequency Division Multiple Access), the common field may be omitted, and multiple STAs may receive the PPDU (e.g., the data field of the PPDU) through the same frequency band. In a non-compressed mode that applies OFDMA, multiple users may receive the PPDU (e.g., the data field of the PPDU) through different frequency bands.

[0121] The number of user-specific fields may be determined based on the number of users. A user block field may include up to two user fields. Each user field may be associated with a MU-MIMO allocation or may be associated with a non-MU-MIMO allocation.

[0122] The common field may include a CRC bit and a tail bit, and the length of the CRC bit may be determined to be 4 bits, and the length of the tail bit may be determined to be 6 bits and set to 000000. The common field may include RU allocation information. The RU allocation information may include information about the positions of RUs to which multiple users (ie, multiple receiving STAs) are assigned.

[0123] RU can include multiple subcarriers (or tones). RU can be used when sending signals to multiple STAs based on OFDMA technology. In addition, RU can be defined even when sending signals to one STA. Resources can be allocated to non-traditional STF, non-traditional LTF and data fields in units of RU.

[0124] The RU of applicable size may be defined according to the PPDU bandwidth. The RU may be defined identically or differently for the applied PPDU format (e.g., HEPPDU, EHT PPDU, UHR PPDU, etc.). For example, in the case of an 80MHz PPDU, the RU layout of the HEPPDU and EHT PPDU may be different. The applicable RU size, the number of RUs and RU positions, the DC (direct current) subcarrier positions and numbers, the empty subcarrier positions and numbers, the guard subcarrier positions and numbers, etc. for each PPDU bandwidth may be referred to as a tone plan. For example, a tone plan for high bandwidth may be defined in the form of multiple iterations of a low bandwidth tone plan.

[0125] RUs of various sizes may be defined as 26-tone RUs, 52-tone RUs, 106-tone RUs, 242-tone RUs, 484-tone RUs, 996-tone RUs, 2×996-tone RUs, 3×996-tone RUs, etc. MRUs (multi-RUs) are different from multiple individual RUs and correspond to a group of subcarriers consisting of multiple RUs. For example, one MRU may be defined as 52+26 tones, 106+26 tones, 484+242 tones, 996+484 tones, 996+484+242 tones, 2×996+484 tones, 3×996 tones, or 3×996+484 tones. In addition, the multiple RUs constituting one MRU may or may not be continuous in the frequency domain.

[0126] The specific size of the RU may be reduced or expanded. Therefore, the specific size of each RU in the present disclosure (i.e., the number of corresponding tones) is not restrictive but illustrative. In addition, in the present disclosure, within a predetermined bandwidth (e.g., 20 MHz, 40 MHz, 80 MHz, 160 MHz, 320 MHz ...), the number of RUs may vary according to the RU size.

[0127] Figure 7 The names of each field in the PPDU format are exemplary, and the scope of the present disclosure is not limited by these names. In addition, the examples of the present disclosure can be applied to Figure 7 The PPDU format shown in Figure 7 A new PPDU format that excludes some fields and / or adds some fields.

[0128] Resource Unit

[0129] Figures 8 to 10 is a diagram for explaining an example of a resource unit of a WLAN system to which the present disclosure can be applied.

[0130] Reference Figures 8 to 10, describes the resource unit (RU) defined in the wireless LAN system. A RU may include multiple subcarriers (or tones). When sending signals to multiple STAs based on OFDMA technology, RU can be used. When sending signals to one STA, RU can also be defined. RU can be used for STF, LTF, data field, etc. of PPDU.

[0131] like Figures 8 to 10 As illustrated in FIG, RUs corresponding to different numbers of tones (i.e., subcarriers) are used to configure some fields of a 20 MHz, 40 MHz, or 80 MHz X-PPDU (X represents HE, EHT, etc.). For example, resources may be allocated in units of RUs illustrated for X-STF, X-LTF, and data fields.

[0132] Figure 8 is a diagram illustrating an exemplary allocation of resource units (RUs) used on a 20 MHz frequency band.

[0133] like Figure 8 As shown at the top of , 26 units (i.e., units corresponding to 26 tones) can be allocated. 6 tones can be used as a guard band in the leftmost band of the 20MHz band, and 5 tones can be used as a guard band in the rightmost band of the 20MHz band. In addition, 7 DC tones are inserted into the center band (i.e., the DC band), and 26 units corresponding to 13 tones can exist on the left and right sides of the DC band, respectively. In addition, 26 units, 52 units, and 106 units can be allocated to other bands. Each unit can be allocated to a STA or a user.

[0134] Figure 8 The RU layout is used not only for the multi-user (MU) case, but also for the single-user (SU) case, in which case a 242-unit can be used, such as Figure 8 In this case, three DC tones can be inserted.

[0135] exist Figure 8 In the examples of FIG. 1 , various sizes of RUs are illustrated, i.e., 26-RU, 52-RU, 106-RU, 242-RU, etc., but the specific sizes of these RUs can be reduced or expanded. Therefore, in the present disclosure, the specific size of each RU (i.e., the number of corresponding tones) is not restrictive but exemplary. In addition, in the present disclosure, within a given bandwidth (e.g., 20 MHz, 40 MHz, 80 MHz, 160 MHz, 320 MHz, ...), the number of RUs can vary with the RU size. In the following description Fig. 9 and / or Fig.10 The fact that the size and / or number of RUs can vary is related to Figure 8The same example.

[0136] Fig. 9 is a diagram showing an exemplary arrangement of resource units (RUs) used on a 40 MHz frequency band.

[0137] As in Figure 8 As in the example using various RU sizes, you can also Fig. 9 In the example of , 26-RU, 52-RU, 106-RU, 242-RU, 484-RU, etc. are used. 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.

[0138] Additionally, as illustrated, when used for a single user, 484-RU may be used.

[0139] Fig.10 is a diagram showing an exemplary arrangement of resource units (RUs) used on an 80 MHz frequency band.

[0140] As in Figure 8 and Fig. 9 As in the example using various RU sizes, you can also Fig.10 In the example of 26-RU, 52-RU, 106-RU, 242-RU, 484-RU, 996-RU, etc. are used. In addition, in the case of 80MHz PPDU, the RU layout of HE PPDU and EHT PPDU can be different, and Fig.10 The example of FIG. 1 shows an example of RU layout for an 80 MHz EHT PPDU. Fig.10 In the example of , 12 tones are used as a guard band in the leftmost band of the 80 MHz band, and 11 tones are used as a guard band in the rightmost band of the 80 MHz band, as for the HE PPDU and the EHT PPDU. Unlike the HE PPDU in which 7 DC tones are inserted in the DC band and there is a 26-RU corresponding to 13 tones on the left and right sides of the DC band, the EHT PPDU has 23 DC tones inserted in the DC band and there is a 26-RU on the left and right sides of the DC band. Unlike the HE PPDU in which one empty subcarrier exists between the 242-RUs instead of the center band, the EHT PPDU has 5 empty subcarriers. In the HE PPDU, one 484-RU does not include any empty subcarriers, but in the EHT PPDU, one 484-RU contains 5 empty subcarriers.

[0141] Additionally, as illustrated, when used for a single user, 996-RU may be used, in which case 5 DC tones are inserted universally in both the HE PPDU and the EHT PPDU.

[0142] 160MHz or greater EHT PPDU can be configured with multiple Fig.10 The RU layout for each 80MHz sub-block can be Fig.10 If the 80MHz sub-block of a 160MHz or 320MHz EHT PPDU is not punctured and the entire 80MHz sub-block is used as part of a RU or MRU (multi-RU), the 80MHz sub-block can be used Fig.10 The 996-RU.

[0143] Here, the MRU corresponds to a group of subcarriers (or tones) consisting of multiple RUs, and the multiple RUs constituting the MRU may be RUs of the same size or RUs of different sizes. For example, a single MRU may be defined as 52+26-tones, 106+26-tones, 484+242-tones, 996+484-tones, 996+484+242-tones, 2×996+484-tones, 3×996-tones, or 3×996+484-tones. Here, the multiple RUs constituting one MRU may correspond to a small size (e.g., 26, 52, or 106) RU or a large size (e.g., 242, 484, or 996) RU. That is, one MRU including a small size RU and a large size RU may not be configured / defined. In addition, the multiple RUs constituting one MRU may be continuous in the frequency domain, or may not be continuous.

[0144] When an 80 MHz sub-block includes RUs less than 996-tones or a portion of the 80 MHz sub-block is punctured, the 80 MHz sub-block may use RU allocations other than the 996-tone RUs.

[0145] The RU of the present disclosure may be used for uplink (UL) and / or downlink (DL) communication. For example, when trigger-based UL-MU communication is performed, the STA (e.g., AP) that sends the trigger may allocate a first RU (e.g., 26 / 52 / 106 / 242-RU, etc.) to the first STA through trigger information (e.g., a trigger frame or TRS (trigger response scheduling)), and allocate a second RU (e.g., 26 / 52 / 106 / 242-RU, etc.) to the second STA. Thereafter, the first STA may send a first trigger-based (TB) PPDU based on the first RU, and the second STA may send a second TB PPDU based on the second RU. The first / second TB PPDU may be sent to the AP within the same time interval.

[0146] For example, when a DL MU PPDU is configured, the STA (e.g., AP) that transmits the DL MU PPDU may allocate a first RU (e.g., 26 / 52 / 106 / 242-RU, etc.) to the first STA, and allocate a second RU (e.g., 26 / 52 / 106 / 242-RU, etc.) to the second STA. That is, the transmitting STA (e.g., AP) may transmit an X-STF (e.g., X represents HE, EHT, etc.), an X-LTF, and a data field for the first STA through the first RU within one MU PPDU, and may transmit an X-STF, an X-LTF, and a data field for the second STA through the second RU.

[0147] DCM Solution

[0148] DCM is a modulation scheme applied to EHT MCS14 and 15, and can be applied only to BPSK and "NSS (number of spatial streams) = 1". When DCM is used only for RU or MRU with 996 tones or less, the bit sequence can be mapped to a pair of symbols (d' k ,d' q(k) ), where k can be greater than or equal to 0 and less than or equal to N SD -1, and q(k) can be greater than or equal to N SD and less than or equal to 2N SD In the range of -1.

[0149] You can use N SS,u = 1 (i.e., the number of spatial streams for the user) to provide rate-related parameters for various RU or MRU sizes. As an example, the modulation scheme and coding rate (R) of the user for each EHT-MCS index U ) as shown in Table 1.

[0150] [Table 1]

[0151] EHT-MCS Index modulation <![CDATA[R u ]]> 0 BPSK 1 1 QPSK 2 2 QPSK 3 3 16QAM 4 4 16QAM 4 5 64QAM 6 6 64QAM 6 7 64QAM 6 8 256QAM 8 9 256QAM 8 10 1024QAM 10 11 1024QAM 10 12 4096QAM 12 13 4096QAM 12 15 BPSK-DCM 1

[0152] Furthermore, in the wireless LAN system described above, rate-related parameters for the EHT DUP mode may be provided. For example, rate-related parameters for the EHT-MCS14 (eg, when N SS,u =1) can be as shown in Table 2. Here, R represents the coding rate. That is, when EHT-MCS14 is applied, DCM and BPSK with a coding rate of 1 / 2 can be applied.

[0153] [Table 2]

[0154]

[0155] For BPSK modulation using DCM in RU or MRU with 996 tones or less, the input bits of the constellation mapper can be divided into groups of NCBPS bits (B0, B1, ..., B NCBPS,u ).

[0156] For RU or MRU sizes greater than 996 tones, DCM may be performed on the segment parser output for each 80MHz frequency subblock. As described above, for each frequency subblock, DCM mapping may be performed as if the corresponding frequency subblock consisted of RU or MRU sizes less than or equal to 996 tones.

[0157] New PPDU format applied to new operating band and MCS applied thereto

[0158] The description of the wireless LAN system described above can be mainly applied to a wireless LAN system operating in an existing operating frequency band (e.g., a frequency band lower than 7 GHz (e.g., a 2.4 GHz, 5 GHz, or 6 GHz frequency band)). For example, the PPDU format described above can be mainly applied to a wireless LAN system operating in a frequency band lower than 7 GHz.

[0159] In addition, a wireless LAN system operating in a high operating frequency band (e.g., a frequency band such as 60 GHz, a millimeter wave (mmWave) band) has been defined. Hereinafter, for the convenience of describing the present disclosure, the 60 GHz band is expressed instead of the millimeter wave band, but the millimeter wave band is not limited to the 60 GHz band.

[0160] Limited bandwidth and dense environment issues in sub-7 GHz bands may limit the achievement of high data rates and low latency.

[0161] The present disclosure describes a method for sending and receiving a new PPDU format and an MCS setting that can be applied to the sending and receiving of the new PPDU format, the method taking into account improved throughput and efficiency in millimeter wave bands including the 60 GHz band (i.e., not limited to the 60 GHz band).

[0162] Here, since the scope of the present disclosure is the new PPDU format and the MCS setting applicable to the new PPDU format itself, the examples described below are not necessarily limited to systems operating only at 60 GHz, and the examples of the present disclosure may also be applied to other operating bands (e.g., bands below 7 GHz).

[0163] Fig.11 is a diagram showing an example of a region to which channelization of the 60 GHz frequency band of the present disclosure can be applied.

[0164] Fig.11 The example of FIG. 1 shows a 60 GHz band used in the United States, the European Union, South Korea, Japan, Australia, and China, and the size and location of channels defined in the band. For example, the bandwidth of each of the six channels may correspond to 2.16 GHz. In addition, when bandwidth bonding is applied, up to four unit bandwidths may be bonded to support up to 8.64 GHz of bandwidth.

[0165] In addition, the bandwidths supported in a wireless LAN system corresponding to the 1x parameter set (numerology) (e.g., a system based on IEEE802.11ac (VHT)) are 20, 40, 80, and 160 MHz. For bandwidths of 20, 40, 80, and 160 MHz, the number of subcarriers is 64, 128, 256, and 512, respectively. In addition, a tone plan for the number and position of DC subcarriers, guard subcarriers, empty subcarriers, and pilot subcarriers is defined. In addition, the subcarrier spacing is defined as 312.5 kHz, the OFDM symbol length excluding the CP (cyclic prefix) length is 3.2 us, and the applicable guard intervals are 0.8 us and 0.4 us, respectively.

[0166] As reference Figures 8 to 10 As described, the bandwidths supported in a wireless LAN system corresponding to a 4x parameter set (e.g., a system based on IEEE 802.11ax (HE) or IEEE 802.11be (EHT)) are 20 MHz, 40 MHz, 80 MHz, 160 MHz, and 320 MHz. For bandwidths of 20 MHz, 40 MHz, 80 MHz, 160 MHz, and 320 MHz, the number of subcarriers is 256, 512, 1024, 2048, and 4096, respectively. In addition, an RU / MRU tone plan for the number and position of DC subcarriers, guard subcarriers, empty subcarriers, and pilot subcarriers is defined. In addition, the subcarrier spacing is defined as 78.125 kHz, the OFDM symbol length excluding the CP length is 12.8 us, and the applicable guard intervals are 3.2 us, 1.6 us, and 0.8 us.

[0167] Hereinafter, an MCS applicable to a data field in a PPDU in a 60 GHz frequency band is described.

[0168] Basically, the PPDU transmitted in the 60 GHz frequency band may be defined by a preamble and a data field. As another example, the preamble included in the PPDU may include or may not include a legacy preamble. If the preamble included in the PPDU does not include a legacy preamble, the PPDU may have a structure of an STF field, an LTF field, a SIG field, and a data field.

[0169] In the 60 GHz band, the phase noise effect may be large, so performance such as error vector magnitude (EVM) may not be good. Therefore, high-value modulation may be excluded in the 60 GHz band.

[0170] For example, only 64QAM or 256QAM may be defined in the 60 GHz band, and 1024QAM or / and 4096QAM, etc. may be excluded. That is, referring to Table 1, when BPSK to 64QAM is applied in the 60 GHz band, MCS values ​​(or indices) 8 to 13 may be excluded. As another example, referring to Table 1, when BPSK to 256QAM is applied in the 60 GHz band, MCS values ​​(or indices) 10 to 13 may be excluded.

[0171] Additionally or alternatively, some higher modulation schemes may be selectively applied within the 60 GHz band.

[0172] For example, in the 60 GHz band, MCS values ​​(or indices) 8 to 13 (ie, 256QAM, 1024QAM, and 4096QAM) may be selectively applied, and modulation schemes corresponding to the remaining MCS values ​​(or indices) may be forcibly applied.

[0173] As another example, within the 0 GHz band, MCS values ​​(or indices) 10 to 13 (ie, 1024QAM and 4096QAM) may be selectively applied, and modulation schemes corresponding to the remaining MCS values ​​(or indices) may be forcibly applied.

[0174] Referring to Table 1, when the number of spatial streams is 1 (ie, N SS =1) and MCS15 is set / indicated, "BPSK1 / 2+DCM" applied can be extended and applied even in the 60 GHz band. In describing the present disclosure, "BPSK 1 / 2+DCM" may mean a BPSK and DCM scheme applying a coding rate of 1 / 2.

[0175] In addition, when the number of spatial streams is 1 (ie, N SS=1) and the modulation method applied when MCS14 is set / indicated can also be extended and applied within the 60 GHz band. In this case, there may be no restriction on the number of spatial streams.

[0176] Additionally or alternatively, for the basic wireless LAN system, MCS14 may be applied only to low-power transmission scenarios at 80 MHz, 160 MHz, and 320 MHz without puncturing in the 6 GHz band. For the 60 GHz band, when the number of spatial streams is 1 and MCS14, "BPSK 1 / 2+DCM+DUP mode" may be applied regardless of bandwidth / puncturing / transmission power. In this case, there may be no restriction on the number of spatial streams.

[0177] Additionally or alternatively, considering the characteristics of 60 GHz, it is possible to consider / define a case where puncturing is not always applied. Considering phase noise, etc., a 60 GHz tone plan based on a 1x parameter set can be defined, and the bandwidth used at 60 GHz can be configured by applying upclocking.

[0178] The tone plan and a method of setting / indicating the tone plan when MCS14 is applied in the 60 GHz band are described in detail below.

[0179] Fig.12 is a flowchart illustrating a method for a first STA to send a PPDU according to one embodiment of the present disclosure.

[0180] exist Fig.12 and Fig.13 In the embodiment, each of the first STA and the second STA can be either an AP or a non-AP STA. In addition, Fig.12 and Fig.13 A process in which the first STA and the second STA transmit and receive the PPDU in the mmWave frequency band or the 60 GHz frequency band is described but not limited thereto. Fig.12 and Fig.13 The operations of the first STA and the second STA in may also be applied to other frequency bands.

[0181] The first STA may transmit first information indicating a first modulation and coding scheme (MCS) index or a second MCS index associated with a duplication (DUP) mode to the second STA ( S1210 ).

[0182] For example, the first MCS index may be one of 0 to 9 and 15, and the second MCS index may be 14. In describing the present disclosure, if the MCS index is A, this may be expressed as "MCS A". For example, if the first information indicates the second MCS index, this may mean that the first information indicates "MCS14".

[0183] Also, the first MCS index may correspond to at least one of binary phase shift keying (BPSK), quadrature phase shift keying (QPSK), quadrature amplitude modulation (16-QAM), 64-QAM, 256QAM, or BPSK-DCM.

[0184] For example, the first STA may receive the first information via the MCS subfield included in the SIG field of the second PPDU, but is not limited thereto.

[0185] The first STA may transmit a first physical layer protocol data unit (PPDU) to the second STA based on the first information ( S1220 ).

[0186] As an example of the present disclosure, based on the first information indicating a first MCS index in a 20*N MHz (where N is a natural number greater than or equal to 1) bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth, a first number of data tones may be used for a first PPDU transmission. And, based on the first information indicating a second MCS index in a 20*N MHz bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth, a second number of data tones less than the first number may be used for the first PPDU transmission.

[0187] Specifically, based on the first information indicating the second MCS, at least one specific tone among the first number of data tones (i.e., the number of data tones used for the first PPDU transmission when the first information indicates the first MCS index) within the 20*N MHz bandwidth, the 40*N MHz bandwidth, or the 80*N MHz bandwidth can be set / defined / determined as a null tone. That is, the second number can be the number of data tones excluding the null tone among the first number of data tones.

[0188] Based on the first information indicating the second MCS index, a third number of data tones among the second number of data tones corresponding to the first frequency band can be subjected to dual carrier modulation (DCM) and BPSK with a coding rate of 1 / 2. In addition, the third number of data tones to which DCM and BPSK with a coding rate of 1 / 2 are applied can be replicated within the second frequency band.

[0189] Here, the first frequency band may have a lower frequency than the value of the second frequency band. The third number is half of the second number, and a -1 multiplication operation may be performed on the data tones corresponding to the third quarter of the second number of data tones. For example, the first STA may divide the second number of data tones into four groups and then perform a -1 multiplication operation on the third quarter.

[0190] For example, in a 20*N MHz bandwidth, the second number may be 48, and the number of at least one special tone (i.e., DC / null tone) may be 4. In a 40*N MHz bandwidth, the second number may be 96, and the number of at least one special tone may be 12. In an 80*N MHz bandwidth, the second number may be 204, and the number of at least one special tone may be 30.

[0191] The number of data tones used when the first information indicates a first MCS index within a 160*N MHz bandwidth and the number of data tones used when the first information indicates a second MCS index within a 160*N MHz bandwidth may be the same.

[0192] That is, the first STA may transmit the first PPDU via the data tone based on the MCS index value or the like.

[0193] exist Fig.12 The method performed by the first STA described in the example of Figure 1 The first device (100) performs. For example, Figure 1 One or more processors (102) of a first device (100) may be configured to receive first information indicating a first MCS index or a second MCS index through one or more transceivers (106). One or more processors (102) may be configured to send a first PPDU to a second STA through one or more transceivers (106) based on the first information.

[0194] In addition, one or more memories (104) of the first device (100) may store instructions for executing the operation when executed by one or more processors (102). Fig.12 Instructions for the methods described in the examples.

[0195] Fig.13 is a flowchart illustrating a method for a second STA to transmit a PPDU according to one embodiment of the present disclosure.

[0196] The second STA may transmit first information indicating a first MCS index or a second MCS index to the first STA ( S1310 ).

[0197] For example, the second STA may transmit the first information to the first STA through the MCS subfield included in the SIG field of the second PPDU.

[0198] The second STA may receive a first PPDU based on the first information from the first STA ( S1320 ).

[0199] exist Fig.13 The method performed by the second STA described in the example of Figure 1 The second device (200) is executed. For example, Figure 1 The one or more processors (202) of the second device (200) may be configured to send first information indicating a first MCS index or a second MCS index through one or more transceivers (206). The one or more processors (202) may be configured to receive a first PPDU based on the first information from the second STA through one or more transceivers (206).

[0200] In addition, the one or more memories (204) of the second device (200) may store instructions for executing the operation when executed by the one or more processors (202). Fig.13 Instructions for the methods described in the examples.

[0201] Below, the tone plan (or design) based on the 1x parameter set is described in detail in the case where MCS14 is applied to the 60 GHz frequency band.

[0202] That is, the bandwidth based on N-fold upscaling according to one embodiment of the present disclosure is based on the bandwidth applied to the 1x parameter set. For example, when N=4, new bandwidths of 80MHz, 160MHz, 320MHz, and 640MHz can be defined, which are 4 times the existing 20MHz, 40MHz, 80MHz, and 160MHz.

[0203] Implementation Method 1

[0204] Embodiment 1 describes the configuration and operation within the 60 GHz frequency band, but is not limited thereto. The configuration and operation disclosed in Example 1 may also be applicable to other operating frequency bands (eg, frequency bands below 7 GHz).

[0205] Specifically, embodiment 1 relates to a tone plan (or design) and related operations for supporting MCS 14 within an upconversion based bandwidth.

[0206] As an example of the present disclosure, 52 data tones are available for use in a 20 MHz upconversion bandwidth. DCM and BPSK with a coding rate of 1 / 2 may be applied to 26 data tones with lower frequencies among the 52 data tones. The 26 data tones with lower frequencies (to which DCM and BPSK with a coding rate of 1 / 2 are applied) may be replicated in an area corresponding to the 26 data tones with higher frequencies. Additional phase rotation may be applied to the 52 data tones (e.g., performing -1 multiplication only in the third quarter) to support MCS14. Here, additional phase rotation may not be applied.

[0207] As an example of the present disclosure, 108 data tones are available for use in a bandwidth upconverted to 40 MHz. DCM and BPSK with a coding rate of 1 / 2 may be applied to 54 data tones with lower frequencies among the 108 data tones. The 54 data tones with lower frequencies (to which DCM and BPSK with a coding rate of 1 / 2 are applied) may be replicated in an area corresponding to the 54 data tones with higher frequencies. Phase rotation may be added to the 108 data tones (e.g., performing -1 multiplication only in the third quarter) to support MCS14. No additional phase rotation may be applied here.

[0208] As an example of the present disclosure, 234 data tones are available for use in an 80 MHz upconversion bandwidth. However, since DCM and BPSK with a coding rate of 1 / 2 cannot be applied to the 117 data tones with lower frequencies among the 234 data tones, MCS14 can be supported by repeating the tone plan based on 40 MHz upconversion twice.

[0209] That is, 216 data tones are available, and DCM and BPSK with a coding rate of 1 / 2 can be applied to 108 data tones with low frequencies. The 108 data tones with low frequencies (to which DCM and BPSK with a coding rate of 1 / 2 are applied) can be duplicated in an area corresponding to the 108 data tones with high frequencies, and additional phase rotation can be applied (e.g., performing -1 multiplication only in the third quarter). Therefore, MCS14 can be supported. Here, additional phase rotation may not be applied.

[0210] As an example of the present disclosure, 468 data tones are available for use in a bandwidth upconverted to 160 MHz. DCM and BPSK with a coding rate of 1 / 2 may be applied to 234 data tones with lower frequencies among the 468 data tones. The 234 data tones with lower frequencies (to which DCM and BPSK with a coding rate of 1 / 2 are applied) may be replicated in an area corresponding to the 234 data tones with higher frequencies. Additional phase rotation may be applied to the 468 data tones (e.g., performing -1 multiplication only in the third quarter) to support MCS14. Here, no additional phase rotation may be applied.

[0211] Implementation Method 2

[0212] Embodiment 2 relates to a method of supporting MCS 14 by reducing the data tone size. That is, embodiment 2 relates to a method of supporting MCS 14 by not transmitting a signal to a data tone at a specific position among available bandwidths in an upconverted bandwidth (ie, using a null tone).

[0213] As an example of the present disclosure, among the 52 data tones that are available data tones within a bandwidth upconverted at 20 MHz, 4 tones on the protection side (i.e., 4 tones in the direction in which protection exists) may be used as null tones. That is, 4 tones among the 52 data tones are used as null tones, and DCM and BPSK with a coding rate of 1 / 2 may be applied to 24 data tones with a lower frequency among the remaining 48 tones. Here, the method of applying DCM and BPSK with a coding rate of 1 / 2 to the 24 data tones may be the same as the method of applying DCM and BPSK with a coding rate of 1 / 2 to the 26-tone RU (i.e., the case where 2 pilot tones are added to the 24 data tones).

[0214] The 24 data tones with lower frequencies (to which DCM and BPSK with a coding rate of 1 / 2 are applied) may be replicated in the region corresponding to the 24 data tones with higher frequencies, and MCS14 may be supported by applying an additional phase rotation (e.g., multiplying by -1 only in the third quarter). Here, no additional phase rotation may be applied.

[0215] As another example of the present disclosure, among the 108 data tones that are available data tones within the 40 MHz upconversion bandwidth, 12 tones on the guard or DC side (i.e., 12 tones in the direction where guard / DC exists) may be used as null tones. That is, 12 tones among the 108 data tones are used as null tones, and DCM and BPSK with a coding rate of 1 / 2 may be applied to 48 data tones with lower frequencies among the remaining 96 tones. Here, the method of applying DCM and BPSK with a coding rate of 1 / 2 to 48 data tones may be the same as the method of applying DCM and BPSK with a coding rate of 1 / 2 to a 52-tone RU (i.e., when 4 pilot tones are added to the 48 data tones).

[0216] The 48 data tones with lower frequencies (to which DCM and BPSK with a coding rate of 1 / 2 are applied) may be replicated in the region corresponding to the 48 data tones with higher frequencies, and MCS14 may be supported by applying an additional phase rotation (e.g., multiplying by -1 only in the third quarter). Here, no additional phase rotation may be applied.

[0217] As another example of the present disclosure, among the 234 data tones that are available data tones within the 80 MHz up-conversion bandwidth, 30 tones on the guard or DC side may be used as null tones (i.e., there are 204 tones in the direction where the guard / DC exists). That is, 30 tones among the 234 data tones are used as null tones, and DCM and BPSK with a coding rate of 1 / 2 may be applied to 102 data tones with a lower frequency among the remaining 204 tones. Here, the method of applying DCM and BPSK with a coding rate of 1 / 2 to 102 data tones may be the same as the method of applying DCM and BPSK with a coding rate of 1 / 2 to a 106-tone RU (i.e., the case where 4 pilot tones are added to the 102 data tones).

[0218] The 106 data tones with lower frequencies (to which DCM and BPSK with a coding rate of 1 / 2 are applied) may be replicated in the region corresponding to the 106 data tones with higher frequencies, and MCS14 may be supported by applying an additional phase rotation (e.g., multiplying by -1 only in the third quarter). Here, no additional phase rotation may be applied.

[0219] In another example of the present disclosure, the available 468 data tones may be used as in the bandwidth upconverted to 160 MHz. For example, DCM and BPSK with a coding rate of 1 / 2 may be applied to 234 data tones with lower frequencies among the total 468 data tones. Here, the method of applying DCM and BPSK with a coding rate of 1 / 2 to the 234 data tones may be the same as the method of applying DCM and BPSK with a coding rate of 1 / 2 to the 242-tone RU (i.e., when 8 pilot tones are added to the 234 data tones).

[0220] The low frequency 234 data tones to which DCM and BPSK with a coding rate of 1 / 2 are applied may be replicated in the region corresponding to the high frequency 234 data tones, and MCS14 may be supported by applying an additional phase rotation (e.g., multiplying by -1 only in the third quarter). Here, no additional phase rotation may be applied.

[0221] Implementation 3

[0222] Embodiment 3 relates to a method for indicating MCS and configuration of a field for MCS indication.

[0223] The MCS (e.g., MCS value or / and MCS index) may be indicated via a SIG field included in a PPDU in the 60 GHz band. As another example, a control frame for 60 GHz support within sub-7 GHz may be defined. The control frame may indicate the MCS to be applied to the PPDU in the 60 GHz band.

[0224] As an example of the present disclosure, MCS (e.g., MCS value or / and MCS index) may be indicated based on Table 1 and Table 2. As another example, if a specific MCS is not used in the 60 GHz band, only the value / index corresponding to the unused specific MCS in Table 1 and Table 2 may be retained.

[0225] For example, if only BPSK, QPSK, 16QAM, and 64QAM are defined at 60 GHz, MCS indexes 10 to 13 in Table 1 may be reserved, and the remaining MCS index values ​​may indicate corresponding modulation schemes.

[0226] As another example, if only BPSK, QPSK, 16QAM, 64QAM, and 256QAM are defined at 60 GHz, MCS10 to 13 in Table 1 may be retained, and the remaining MCS index values ​​may indicate corresponding modulation schemes.

[0227] The above-mentioned embodiments are to combine the elements and features of the present disclosure in a predetermined form. Unless otherwise explicitly mentioned, each element or feature should be considered as optional. Each element or feature can be implemented in a form that is not combined with other elements or features. In addition, the embodiments of the present disclosure may include combined partial elements and / or features. The order of the operations described in the embodiments of the present disclosure may be changed. Some elements or features of an embodiment may be included in other embodiments, or may be replaced by corresponding elements or features of other embodiments. Obviously, the embodiments may include claims that do not have a clear reference relationship in the combined claims, or may be included as new claims by modification after application.

[0228] It is clear to those skilled in the relevant art that the present disclosure can be implemented in other specific forms within the scope of the essential features of the present disclosure. Therefore, the above detailed description should not be interpreted restrictively in every aspect, but should be considered as illustrative. The scope of the present disclosure should be determined by the reasonable interpretation of the attached claims, and all changes within the equivalent scope of the present disclosure are included in the scope of the present disclosure.

[0229] The scope of the present disclosure includes software or machine executable commands (e.g., operating systems, applications, firmware, programs, etc.) that perform operations in a device or computer according to the methods of various embodiments, and non-transitory computer-readable media that enable software or commands, etc. to be stored and executable in a device or computer. Commands that can be used to program a processing system that performs the features described in the present disclosure can be stored in a storage medium or a computer-readable storage medium, and the features described in the present disclosure can be implemented by using a computer program product including such a storage medium. The storage medium may include a high-speed random access memory, such as DRAM, SRAM, DDR RAM, or other random access solid-state storage devices, but is not limited thereto, and it may include a non-volatile memory, such as one or more magnetic disk storage devices, optical disk storage devices, flash memory devices, or other non-volatile solid-state storage devices. The memory optionally includes one or more storage devices located away from the processor. The memory, or alternatively, the non-volatile memory device in the memory includes a non-transitory computer-readable storage medium. The features described in this disclosure may be stored in any machine-readable medium to control the hardware of a processing system, and may be integrated into software and / or firmware that allows the processing system to interact with other mechanisms using the results from the embodiments of this disclosure. Such software or firmware may include, but is not limited to, application code, device drivers, operating systems, and execution environments / containers.

[0230] Industrial Applicability

[0231] The method proposed in the present disclosure is mainly described based on an example applied to a system based on IEEE 802.11, but may be applied to various WLAN or wireless communication systems other than the system based on IEEE 802.11.

Claims

1. A method performed by a first station STA in a wireless LAN system, the method comprising the following steps: receiving first information from a second STA, the first information indicating a first modulation and coding scheme MCS index or a second MCS index associated with a duplicate DUP mode; as well as Sending a first physical layer protocol data unit PPDU to the second STA based on the first information, wherein the first MCS index is indicated in a 20*N MHz bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth based on the first information, a first number of data tones is used, wherein N is a natural number greater than or equal to 1, and Wherein, based on the first information indicating the second MCS index in a 20*N MHz bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth, a second number of data tones less than the first number is used.

2. The method according to claim 1, wherein: The first information is received from the second STA through an MCS subfield included in a SIG field of a second PPDU.

3. The method according to claim 1, wherein: Indicating the second MCS based on the first information, setting at least one specific tone among the first number of data tones within the 20*N MHz bandwidth, the 40*N MHz bandwidth, or the 80*N MHz bandwidth to a null tone, and The second number is the number of data tones excluding the null tone among the first number of data tones.

4. The method according to claim 1, wherein: The number of data tones used when the first information indicates the first MCS index within a 160*N MHz bandwidth is the same as the number of data tones used when the first information indicates the second MCS index within a 160*N MHz bandwidth.

5. The method according to claim 3, wherein: Indicating the second MCS index based on the first information: A third number of data tones corresponding to the first frequency band among the second number of data tones is applied to dual carrier modulation DCM and binary phase shift keying BPSK with a coding rate of 1 / 2, and The third number of data tones to which the DCM and BPSK with a coding rate of 1 / 2 are applied are replicated in a second frequency band.

6. The method according to claim 5, wherein: The frequency of the first frequency band is lower than the frequency of the second frequency band, The third amount is half of the second amount, and A -1 multiplication operation is performed on data tones corresponding to a third quarter of the second number of data tones.

7. The method according to claim 6, wherein: In the 20*N MHz bandwidth, the second number is 48 and the number of the at least one specific tone is 4, In the 40*N MHz bandwidth, the second number is 96 and the number of the at least one specific tone is 12, In the 80*N MHz bandwidth, the second number is 204 and the number of the at least one specific tone is 30.

8. The method according to claim 1, wherein: The first MCS index corresponds to at least one of BPSK, quadrature phase shift keying (QPSK), 16-quadrature amplitude modulation (QAM), 64-QAM, 256QAM, or BPSK-DCM.

9. The method according to claim 1, wherein: The first MCS index is one of 0 to 9 and 15, and The second MCS index is 14.

10. The method according to claim 1, wherein: The operating frequency band for sending the first PPDU is a millimeter wave (mmWave) frequency band or a 60 GHz frequency band.

11. A first station STA operating in a wireless LAN system, the first STA comprising: at least one transceiver; as well as at least one processor connected to the at least one transceiver, Wherein, the at least one processor is configured to: receiving, by the at least one transceiver, first information from a second STA, the first information indicating a first modulation and coding scheme MCS index or a second MCS index associated with a duplicate DUP mode; and Based on the first information, sending a first physical layer protocol data unit PPDU to the second STA through the at least one transceiver, wherein the first MCS index is indicated in a 20*N MHz bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth based on the first information, a first number of data tones is used, wherein N is a natural number greater than or equal to 1, and Wherein, based on the first information indicating the second MCS index in a 20*N MHz bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth, a second number of data tones less than the first number is used.

12. A method performed by a second station (STA) in a wireless LAN system, the method comprising the following steps: Sending first information to a first STA, where the first information indicates a first modulation and coding scheme MCS index or a second MCS index associated with a duplicate DUP mode; as well as receiving a first physical layer protocol data unit PPDU from the first STA based on the first information, wherein the first MCS index is indicated in a 20*N MHz bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth based on the first information, a first number of data tones is used, wherein N is a natural number greater than or equal to 1, and Wherein, based on the first information indicating the second MCS index in a 20*N MHz bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth, a second number of data tones less than the first number is used.

13. A second station STA operating in a wireless LAN system, the first STA comprising: at least one transceiver; as well as at least one processor connected to the at least one transceiver, Wherein, the at least one processor is configured to: Sending, by the at least one transceiver, first information to the first STA, the first information indicating a first modulation and coding scheme MCS index or a second MCS index associated with a duplicate DUP mode; and receiving, based on the first information, a first physical layer protocol data unit PPDU from the first STA through the at least one transceiver, wherein the first MCS index is indicated in a 20*N MHz bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth based on the first information, a first number of data tones is used, wherein N is a natural number greater than or equal to 1, and Wherein, based on the first information indicating the second MCS index in a 20*N MHz bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth, a second number of data tones less than the first number is used.

14. A processing device, the processing device being configured to control a first station STA in a wireless LAN system, the processing device comprising: at least one processor; as well as at least one computer memory operatively connected to the at least one processor and storing instructions that upon execution by the at least one processor perform operations comprising: receiving first information from a second STA, the first information indicating a first modulation and coding scheme MCS index or a second MCS index associated with a duplicate DUP mode; and Sending a first physical layer protocol data unit PPDU to the second STA based on the first information, wherein the first MCS index is indicated in a 20*N MHz bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth based on the first information, a first number of data tones is used, wherein N is a natural number greater than or equal to 1, and Wherein, based on the first information indicating the second MCS index in a 20*N MHz bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth, a second number of data tones less than the first number is used.

15. At least one non-transitory computer-readable medium storing at least one instruction, in, The at least one instruction executable by at least one processor controls a device in a wireless LAN system to: receiving first information from a second STA, the first information indicating a first modulation and coding scheme MCS index or a second MCS index associated with a duplicate DUP mode; and Sending a first physical layer protocol data unit PPDU to the second STA based on the first information, wherein the first MCS index is indicated in a 20*N MHz bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth based on the first information, a first number of data tones is used, wherein N is a natural number greater than or equal to 1, and Wherein, based on the first information indicating the second MCS index in a 20*N MHz bandwidth, a 40*N MHz bandwidth, or an 80*N MHz bandwidth, a second number of data tones less than the first number is used.