WO2014051405A2 - Procédé et appareil de découverte de secteur dans un système de réseau local sans fil - Google Patents

Procédé et appareil de découverte de secteur dans un système de réseau local sans fil Download PDF

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Publication number
WO2014051405A2
WO2014051405A2 PCT/KR2013/008734 KR2013008734W WO2014051405A2 WO 2014051405 A2 WO2014051405 A2 WO 2014051405A2 KR 2013008734 W KR2013008734 W KR 2013008734W WO 2014051405 A2 WO2014051405 A2 WO 2014051405A2
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WIPO (PCT)
Prior art keywords
sector
frame
beacon
transmission
discovery
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PCT/KR2013/008734
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English (en)
Korean (ko)
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WO2014051405A3 (fr
Inventor
이재승
정민호
권형진
박재우
이석규
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한국전자통신연구원
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Application filed by 한국전자통신연구원 filed Critical 한국전자통신연구원
Priority to US14/431,741 priority Critical patent/US10098054B2/en
Priority claimed from KR1020130116070A external-priority patent/KR102068283B1/ko
Publication of WO2014051405A2 publication Critical patent/WO2014051405A2/fr
Publication of WO2014051405A3 publication Critical patent/WO2014051405A3/fr
Priority to US16/124,009 priority patent/US10897736B2/en

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W48/00Access restriction; Network selection; Access point selection
    • H04W48/16Discovering, processing access restriction or access information
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W48/00Access restriction; Network selection; Access point selection
    • H04W48/08Access restriction or access information delivery, e.g. discovery data delivery
    • H04W48/12Access restriction or access information delivery, e.g. discovery data delivery using downlink control channel

Definitions

  • Embodiments of the present invention relate to a sector discovery method and apparatus in a WLAN system.
  • a wireless LAN system due to the nature of a channel access scheme in terms of collision avoidance, several stations (STAs) 111 and 112 in the same base station (BSS) can simultaneously access APs.
  • STAs stations
  • BSS base station
  • BSSs Basic Service Sets
  • a method of distributing the access opportunities of the STAs in each base station may be considered in a timely manner so as not to collide with the frequency resources, but by using an AP having a sector antenna.
  • the desired goal can be achieved by spatially distributing channel access attempts. This technique is called sectorization.
  • a sector antenna is a combination of a plurality of planar antennas, and may have a function of selectively blinking each of the transmitting antenna and the receiving antenna.
  • a multi-antenna combination it is also possible to use a multi-antenna combination to serve as a sector antenna through signal processing such as beam forming (beam forming).
  • beam forming beam forming
  • the present invention is to solve the problem that the terminal, that is, the station (Station, STA) of the WLAN system when the initial entry into the BSS where the sectorization-based communication takes place, the delay occurs.
  • the present invention relates to a method in which a STA and an AP quickly discover which sector a STA belongs to so that the STA can start communication in a sectorized mode more quickly.
  • a sector discovery method of an AP in a WLAN system includes a sector beacon for transmitting a sector beacon to any one of a plurality of sectors in which an access point (AP) of the WLAN system is spatially divided.
  • Setting an omni beacon section for transmitting sections and omni-directional beacons, transmitting a sector beacon for a current sector of any of the plurality of sectors, and the sector beacon sections In a sector interval between, a response indicating that a transmission frame indicating a sector transmission or a transmission frame indicating a forward transmission is transmitted to the current sector and receiving and associating a transmission frame indicating the sector transmission.
  • a sector discovery method of an AP in a WLAN system includes a sector beacon for transmitting a sector beacon to any one of a plurality of sectors in which an access point (AP) of the WLAN system is spatially divided.
  • Setting an omni beacon interval for transmitting intervals and omni-directional beacons receiving a probe request for accessing the AP at a sector interval between the sector beacon intervals, and requesting a probe request Omitting a probe response to all directions, and sweeping a discovery frame including corresponding sector information for the plurality of sectors at sector intervals between the sector beacon intervals.
  • an association request frame including a sector identifier from the terminal receiving the discovery frame.
  • the sector discovery method of an AP in a WLAN system includes sector beacon intervals for transmitting sector beacons and omni-directional beacons for any one of a plurality of sectors that are spatially divided.
  • Receiving a sector beacon from an access point (AP) of the wireless LAN system for setting the beacon period, and in the sector interval between the sector beacon period, indicating that the transmission frame or omni-directional transmission indicating that the sector transmission Receiving a transmission frame, generating a response frame indicating receiving and associating a transmission frame indicating the sector transmission, and transmitting the response frame to the AP.
  • AP access point
  • the sector discovery method of an AP in a WLAN system includes sector beacon intervals for transmitting sector beacons and omni-directional beacons for any one of a plurality of sectors that are spatially divided. Receiving a probe response transmitted in all directions from a sector interval between the sector beacon periods from an access point (AP) of the WLAN system for setting the beacon period, and the sector between the sector beacon periods Receiving a discovery frame including corresponding sector information at an interval, and attempting to associate with any one of the plurality of sectors based on the discovery frame.
  • AP access point
  • the AP of the WLAN system configures sector beacon sections for transmitting sector beacons and omni beacon sections for transmitting omni beacons to any one of a plurality of sectors that are spatially divided.
  • a beacon section setting unit a beacon generating unit for generating the sector beacons and omni beacons, a frame generation unit for generating a transmission frame indicating that the sector transmission or omnidirectional transmission, and the plurality of sectors
  • a control unit for transmitting a sector beacon for any one of the current sectors, and a control unit for controlling the communication unit to transmit a transmission frame to the current sector in a sector interval between the sector beacon periods.
  • the AP of the WLAN system configures sector beacon sections for transmitting sector beacons and omni beacon sections for transmitting omni beacons to any one of a plurality of sectors that are spatially divided.
  • a station of a WLAN system receives a sector beacon from an access point (AP) of a WLAN system and transmits or indicates a transmission frame indicating that a sector is transmitted in a sector interval between the sector beacon intervals.
  • a station of a WLAN system receives a sector beacon from an access point (AP) of a WLAN system and includes a discovery frame including corresponding sector information at sector intervals between the sector beacon periods.
  • a communication unit receiving a frame, a control unit attempting to associate with any one of the plurality of sectors based on the discovery frame, and generating a probe request frame for accessing the AP. It includes a frame generation unit.
  • the STA and the AP in the sectorization-based communication, quickly discover which sector the STA belongs to so that the STA can communicate in the sectorized mode sooner.
  • FIG. 1 is a view showing the configuration of a wireless LAN system according to an embodiment of the present invention.
  • FIG. 2 is a diagram illustrating an example of a sectorization-based communication scenario in the WLAN system of FIG. 1.
  • FIG. 3 is a diagram illustrating a sector discovery method of an AP in a WLAN system according to an embodiment of the present invention.
  • FIG. 4 is a view for explaining another example of a sectorization-based communication scenario in the WLAN system of FIG.
  • FIG. 5 is a view for explaining the configuration of an AP according to an embodiment of the present invention.
  • FIG. 6 is a view for explaining the configuration of a station according to an embodiment of the present invention.
  • FIG. 7 illustrates a configuration of an NDP type short frame according to an embodiment.
  • FIG. 8 is a diagram illustrating a configuration of a SIG field according to an embodiment.
  • FIG. 1 is a view showing the configuration of a wireless LAN system according to an embodiment of the present invention.
  • the number of sectors may be four or more than four.
  • an AP may perform sector transmission and reception by using sector antennas having a high orientation for one sector.
  • Sector transmission and reception may also be referred to as high-directional communication.
  • the AP may temporally distinguish a flashing time of a sector antenna, and each sector antenna may be dedicated to perform transmission and reception of stations located in each direction.
  • the AP may temporally distinguish the flashing time for each of the first sector 110, the second sector 120, and the third sector 130.
  • STA means a station.
  • STA # 1 is connected to the first sector 110. Accordingly, the STA # 1 may receive a signal transmitted through the Sector antenna # 1, but cannot receive a signal transmitted through the Sector antenna # 2.
  • the AP may perform omni-directional transmission and reception by turning on both sector antennas.
  • Omni-directional transmission and reception may also be referred to as "Omni mode communication" or "Omni mode operation”.
  • Passive scanning is a method in which the STA listens to each channel of the wireless medium one by one and waits for a beacon frame to obtain information about the AP from the beacon. Passive scanning has a longer delay for AP discovery than active scanning because it has to wait for a beacon for each channel.
  • the STA and the AP cannot properly transmit / receive in sector mode until the STA and the AP know each other in which sector in the particular BSS.
  • the STA cannot immediately find the sector to which the STA belongs. In this case, even if the association is successful, it is difficult to properly perform sectorized communication before going to its sector.
  • the AP does not operate in omni mode but only in sector mode, even if the STA sends a probe request to find the AP faster, if the AP is not transmitting or receiving in the sector to which it belongs, a probe response Can not be received properly, and there will be a delay in scanning.
  • the STA may immediately receive a probe response from the AP.
  • the association can be performed immediately, but since the STA does not know the sector to which it belongs properly, it can communicate only in the omni transmission interval until it finds the sector to which it belongs. Therefore, the STA cannot properly communicate in the sector mode.
  • the AP groups the STAs by sector, and STA grouping may be performed by assigning an association identifier (AID) by performing grouping immediately when the STA associates.
  • AID association identifier
  • the STA and the AP do not know which sector the STA belongs to, they cannot determine the group for each sector at the time of association and are temporarily assigned an AID, and the overhead of reassigning the AID after the STA discovers the sector to which it belongs. Occurs.
  • FIG. 2 is a diagram illustrating an example of a sectorization-based communication scenario in the WLAN system of FIG. 1.
  • a transmission / reception interval of a signal is made for each sector which is spatially divided.
  • a sector beacon is transmitted, and only the STA belonging to the sector can hear the beacon and can also communicate with the AP.
  • an omni transmission section may be provided. In this case, communication with the beacon and the AP is made up of omni so that the STA may perform communication regardless of the sector to which it belongs.
  • the AP transmits sector beacon sections 210, 220, and 230 for transmitting sector beacons to any one of a plurality of sectors that are spatially divided, and omni (for transmitting omni-directional beacons).
  • omni sets the beacon section 240.
  • Beacon Sector 1 210 indicates a sector beacon transmitted to the first sector 110 of FIG. 1
  • Beacon Sector 2 220 indicates a sector beacon transmitted to the second sector 120 of FIG. 1.
  • Beacon Sector 3 230 shows a sector beacon transmitted to the third sector 130 of FIG. 1.
  • the AP may operate in an omni mode.
  • Sector interval 1 211 is a section where Sector antenna # 1 is on
  • Sector interval 2 221 is a section where Sector antenna # 2 is on
  • Sector interval 3 231 is Sector antenna # 3 may be on.
  • the probe request / response and association transmitted by the STA for initial entry into the BSS to perform active scanning can always be performed by omni.
  • the entry point of the BSS of the STA # 3 belonging to the third sector 130 may be an interval 211 in which the AP communicates with the first sector 110.
  • the STA # 3 may not receive a sectorized transmit / receive frame made in the first sector 110.
  • the AP can be found by receiving a probe request / probe response through omni and can be associated, it cannot find a sector to which it belongs. Accordingly, STA # 3 cannot be grouped into the third sector 130 and cannot perform sectorized based communication.
  • STA # 3 only listens to Beacon Sector 3 230 before it knows that it belongs to sector 3.
  • the AP discovers that communication is possible with STA # 3 and Sector interval 3 (231) and learns that STA # 3 belongs to the third sector 130. Accordingly, the AP may group STA # 3 and reassign AID in the Sector interval 3 (231).
  • a delay may occur when the STA # 3 and the AP discover the sector to which the STA # 3 belongs, and an overhead such as the need to reassign AID may occur.
  • FIG. 3 is a diagram illustrating a sector discovery method of an AP in a WLAN system according to an embodiment of the present invention.
  • the AP sets sector beacon sections for transmitting sector beacons and omni beacon sections for transmitting omni beacons to any one of a plurality of sectors that are spatially divided. do.
  • the setting of the beacon period may be the communication scenario shown in FIG.
  • step 320 the AP transmits a sector beacon for one current sector of the plurality of sectors.
  • the station may receive sector beacons from an access point (AP) of a WLAN system that sets sector beacon periods and omni beacon periods for transmitting omni-directional beacons.
  • AP access point
  • the current sector may be the first sector 110 of FIG. 1, and the sector beacon may be Beacon Sector 1 210 of FIG. 2.
  • step 330 the AP transmits a transmission frame indicating that the sector transmission or a transmission frame indicating the omnidirectional transmission to the current sector in the sector interval between sector beacon intervals.
  • the AP may indicate that sector transmission or omnidirectional transmission is performed on a frame related to active / passive scanning or association, such as a beacon, probe response, and association response frame.
  • the STA may use the frame received from the AP to find a sector to which it belongs, or to find a better sector even while performing sectorized transmission by discovering a sector.
  • the AP and the STA may perform sector discovery and sector training using a beacon, probe response, and association response frame.
  • the AP may indicate sector transmission or omnidirectional transmission in all frames transmitted by the AP.
  • STAs can discover sectors that belong to them or sectors that are optimal for them. Accordingly, the STA may find a sector to which it belongs by using all the frames it can hear, or even find a better sector even while performing sectorized transmission by discovering a sector. That is, sector discovery and sector training can be performed using all frames transmitted by the AP.
  • the station may receive a transmission frame indicating a sector transmission or a transmission frame indicating a omnidirectional transmission in a sector interval between sector beacon intervals.
  • the AP indicates whether to transmit in the sectorized mode or omni mode in the transmission frame. For example, the AP may display "1" in the sectorized mode transmission and "0" in the omni mode transmission in the preamble or MAC header of the transmission frame.
  • the AP receives a response frame indicating that the AP receives and associates a transmission frame indicating that the sector is transmitted from the terminal located in the current sector.
  • the station may receive a transmission frame indicating that the sector is transmitted, generate a response frame indicating association, and transmit the response frame to the AP.
  • the AP may transmit the probe response to the probe request in sectorized mode or omni mode. If the probe response is transmitted in the sectorized mode and the sector response is indicated in the probe response, and the STA can hear the probe response, the STA can directly find its sector. However, if the probe response is transmitted in omni mode, the STA cannot know its sector even if it receives the probe response from the AP. In this case, the AP cannot know the sector of the STA. (In general, since the AP does not know in advance where the STA that sent the probe request is located, the probe response is usually transmitted in omni mode.)
  • the STA entering the BSS receives a frame transmitted by the AP immediately before or after passive or active scanning and the frame is marked as a frame transmitted to the sector, the STA indicates that the sector in which the AP is currently It can be seen that the section is transmitted in the sectorized mode.
  • the AP transmits a frame in sectorized mode in the first sector 110 where STA # 1 is located
  • STA # 1 can listen to the frame, and the STA transmits the current AP to sectorized mode. Knowing that it belongs to a sector, it can request an association from the AP.
  • the STA # 1 is an association in the sector to which it belongs, it is immediately grouped to the sector in which it is currently located, the sector is properly assigned and the AID is assigned at the same time as the association.
  • STA # 1 specifies that the association request is to listen to the frame transmitted by the AP in the sectorized mode to the association request frame when the association request.
  • STA # 1 may display a 1 when an association request is made by listening to a sectorized mode transmission frame in a preamble or a MAC header, and 0 when a association request is made by listening to an omni transmission frame.
  • the method shown in FIG. 3 may further include allocating an association identifier (AID) to a terminal located in the current sector.
  • AID association identifier
  • the transmission frame transmitted by the AP may include number sector or identifier information of the current sector indicating which sector the AP is currently transmitting.
  • the response frame transmitted by the STA to the AP may include number or identifier information of the current sector.
  • the AP When the AP transmits the frame in the sectorized mode, the AP may indicate in which sector other than the sectorized transmission (0 or 1) in the frame. For example, the sector number or id may be displayed together and transmitted, and the STA listens to the sectorized transmission frame and includes the sector number or id specified in the sectorized frame transmitted by the AP when the association is requested to the AP. When sending to the AP, the AP can more clearly determine which sector the STA belongs to.
  • the AP may start transmitting or receiving the next sector interval, in which the STA specifies an identifier such as a sector id. If you try to do this by simply indicating that you are listening to the sectorized frame in the association request and transmitting it, you may be misrecognized by the AP as being in the next sector instead of the sector you belong to.
  • the AP can clearly know the sector to which the STA belongs, so such an error does not occur.
  • the AP and the STA may indicate sector related information by using a preamble or a MAC header.
  • the AP and the STA may indicate whether sectorized transmission is performed not only in a general MAC frame but also in a NDP type short frame. Therefore, there is an advantage that the range of frames that can indicate whether the sectorized transmission is wide. To find out which AP the frame is from, look at the MAC address of the frame.
  • an NDP type short frame may have a limit in displaying information such as a sector id due to a small number of spare bits.
  • the AP and STA can see the MAC address and know who's coming from. Also, the frame control of the MAC header or reserved bits of other Mac headers has more bits than the preamble. Accordingly, the AP may display a sector identifier such as a sector id in a sectorized transmission frame. In addition, the STA may transmit a sector identifier such as a sector id together with the association request to inform the AP more clearly which sector the STA belongs to.
  • the STA entering the BSS receives a frame transmitted by the AP immediately before or after passive scanning or active scanning, and the frame is marked as a frame transmitted by omni, the STA transmits a frame to which AP is currently present. I'm not sure if I'm sending from a sector.
  • STA # 3 located in the third sector 130 of FIG. 1 enters the BSS at the sector interval 1.
  • the STA # 3 may not receive the sectorized frame at all. If the frames additionally transmitted from the AP and received at STA # 3 are all omni transmission frames, STA # 3 continues to wait until (1) receives the sector transmission frame from the AP to the sector to which STA # 3 belongs and then performs association. You can try
  • (2) STA # 3 may perform association without knowing the sector to the AP without waiting for a sector transmission frame coming to the sector to which STA # 3 belongs.
  • the STA # 3 may specify that the association request to listen to the frame transmitted by the AP in omni mode to the AP when the association request.
  • the method illustrated in FIG. 3 further includes the AP receiving a response frame from STA # 3, a new terminal located in the current sector, indicating that the transmission frame indicating that the transmission is omnidirectional is associated with the association. can do.
  • STA # 3 may display 0 in the preamble or MAC header of the association request, and transmit an association request in which 0 is displayed to the AP.
  • the AP considers that STA # 3 cannot find its sector and associates it, and performs grouping on STA # 3 so that STA # 3 can transmit the omni transmission interval.
  • STA # 3 Since STA # 3 is associated with each other and does not know its own sector, it can communicate in the omni transmission interval, so the omni interval is used, and a sectorized transmission frame transmitted by the AP (for example, a normalized frame or sectorized transmission transmitted by sectorized transmission). beacon), it can find its own sector and ask the AP for sector allocation and AID reallocation. Thereafter, STA # 3 may communicate in the corresponding sector.
  • a sectorized transmission frame transmitted by the AP for example, a normalized frame or sectorized transmission transmitted by sectorized transmission. beacon
  • STA # 3 When STA # 3 discovers a sector and continues to communicate, it knows that the current sector is not the optimal sector, or when it moves to enter another sector, it listens to the sectorized transmission frame transmitted from the AP and performs sector reallocation. Sector reassignment may also be requested.
  • FIG. 4 is a view for explaining another example of a sectorization-based communication scenario in the WLAN system of FIG.
  • the AP sets a beacon interval, receives a probe request for accessing the AP at a sector interval between sector beacon intervals, and forwards a probe response to the probe request in all directions. It can be unicast or broadcast.
  • the AP may sweep a discovery frame including corresponding sector information with respect to the plurality of sectors at sector intervals between sector beacon intervals.
  • the AP may generate scheduling information indicating a transmission time of the discovery frame and transmit the scheduling information to the probe response or beacon before transmitting the discovery frame.
  • the AP may broadcast scheduling information indicating a transmission time of the discovery frame in the omni beacon period or the sector beacon period.
  • the AP may generate scheduling information indicating a transmission time of the discovery frame and unicast or broadcast a beacon or probe response frame including the scheduling information.
  • the scheduling information may be included in an association response frame.
  • the station may receive a beacon or probe response or association response frame including scheduling information indicating a transmission time of the discovery frame.
  • the sweeping transmits each of the predetermined frames 41, 42, and 43 of the small size in sector mode.
  • the first frame 41 is transmitted only to the first sector 110 of FIG. 1
  • the second frame 42 is transmitted only to the second sector 120 of FIG. 1
  • the third frame 43 May be transmitted only to the third sector 130.
  • the AP may receive an association request frame including a sector identifier from the terminal that receives the discovery frame.
  • the AP may help the STA to quickly find a sector by sweeping a very small frame, for example, an NDP type short frame.
  • the AP After receiving the probe request from the STA, the AP responds with a probe response and transmits a discovery frame having a small size.
  • the frame is transmitted by broadcast, not only the STA which sends the Probe Request but also the neighboring STAs can listen to the frame and utilize it.
  • the small discovery frame may include a compressed SSID that can identify an AP for shortening the service set identification (SSID) of the AP or a short basic service set identification (BSSS) for shortening the MAC address of the AP.
  • SSID service set identification
  • BSSS short basic service set identification
  • the discovery frame may include a target sector identifier for transmitting the discovery frame.
  • the AP may use a NDP type discovery frame to reduce the size of the discovery frame.
  • the discovery frame of the NDP type may include an AP identifier such as a compressed SSID or a short BSSID (short basic service set identification) for shortening the MAC address of the AP, and a target sector identifier for transmitting the discovery frame.
  • the AP may additionally transmit an Announcement frame indicating that transmission of the NDP type discovery frame is started.
  • the AP transmitting the NDP discovery frame is transmitted from the same AP as the AP sending the Announcement frame, and the STA can identify the address of the transmitting AP included in the Announcement frame in advance, so that the AP identifier can be omitted from the NDP discovery frame.
  • the order of sending the NDP type discovery frame is always transmitted in the order of sector id such as sector 1 ⁇ sector 2 ⁇ sector 3, the sector identifier may be omitted and transmitted in the NDP type discovery frame.
  • the AP sweeps the discovery frame for each sector.
  • the STA receives the discovery frame coming to the sector to which it belongs, so that the STA can know the sector to which it belongs.
  • the STA can know the sector to which it belongs by looking at the discovery frame, and immediately associate with the sector identifier in the association request while the association, the AP can also find out the sector of the STA to allocate the STA to the sector at the time of association.
  • the STA can find out the sector that is optimal for itself by looking at the discovery frame. Also, after receiving a probe response, a discovery frame is received and a sector can be known to enable fast discovery.
  • the AP may specify a time until a discovery frame transmission time to be immediately transmitted by the AP in a probe response that is a response to a probe request transmitted by the STA.
  • the time until the discovery frame transmission time may be included in the beacon transmitted by the AP as well as the probe response and may be unicast or broadcasted, or may be included in the association response frame.
  • a transmission time of a discovery frame to be transmitted next may be referred to as a duration to Next Discovery Frame.
  • the STA may wait for a while and receive the discovery frame to make an association request after knowing its sector number.
  • the STA requests the AID reassignment after seeing the discovery frame or sector beacon or sectorized transmission frame transmitted later after association without knowing the sector to the AP. Can be assigned to the sector to which it belongs.
  • the time when the discovery frame comes after the association can be known in advance by looking at the Probe Response frame or the Association Response frame or the duration to Next Discovery Frame received in the received beacon.
  • the STA may sleep until the discovery frame comes or perform scanning for another AP.
  • the AP may schedule a time point for sending a discovery frame.
  • the AP may increase the traffic distribution effect, collision avoidance, and channel utilization by defining an empty slot for transmitting a discovery frame during RAW scheduling and sending a discovery frame.
  • the AP can schedule discovery frame transmission at a time when the channel is empty in an environment where there are many STAs, and thus the channel can be efficiently utilized.
  • the AP may reduce the frequency of sending a discovery frame and allow one STA to share a discovery frame.
  • the STA may receive a discovery frame at a corresponding time by looking at a duration to next discovery frame of a Beacon or Probe Response, and may also sleep or search for another AP during waiting time because the STA knows when the discovery frame is received.
  • it may look at the duration to Next Discovery Frame of the Beacon or Probe Response or Association Response, receive the discovery frame at that time, find the sector, and request sector allocation and AID reallocation.
  • the STA listens to the discovery frame at the time specified in the duration to next discovery frame to find a better sector, or to find another sector when the STA moves, and requests the sector reassignment and AID reallocation to find the optimal sector. It may be. Since the STA can know in advance when the discovery frame is received, it can sleep during the waiting time.
  • the discovery frame may be used for active scanning, may also be used for passive scanning, and may be used for optimal sector discovery after association.
  • a passive scanning STA may utilize a discovery frame transmitted during active scanning of another STA.
  • the AP may transmit between the beacons to improve passive scanning speed even when the discovery frame has not received a probe request. At this time, the AP may specify a duration to next discovery frame in the omni beacon, and when the STA sees the discovery frame soon, the AP waits for this and performs association after confirming the sector. May be determined.
  • the STA When the STA hears a sectorized beacon, since the STA belongs to the corresponding sector, the STA may be directly assigned to the corresponding sector without listening to the discovery frame.
  • the Sectorized beacon may also specify a duration to next discovery frame, in which case, the STA receives the discovery frame at the time of transmission of the discovery frame to select the optimal sector and allocates the sector to the sector in order to find a more optimal sector. Can be requested to the AP.
  • the STA may request reassignment to the corresponding sector from the AP if it discovers a more optimal sector by receiving a discovery frame at a time specified in an omni or sectorized beacon.
  • the station receives a probe response transmitted in all directions, receives a discovery frame including corresponding sector information in a sector interval between sector beacon intervals, and then based on the discovery frame.
  • An association may be attempted with any one of a plurality of sectors.
  • the probe response may include scheduling information indicating a transmission time of the discovery frame, and the station may attempt to access one of the sectors based on the scheduling information.
  • the STA that does not send the Probe Request can also know the timing of the discovery frame transmission by listening to the Probe Response sent by the AP to another STA or the Probe Response sent by the broadcast. The number of probe response frames transmitted can be reduced.
  • FIG. 5 is a view for explaining the configuration of an AP according to an embodiment of the present invention.
  • the AP 500 includes a beacon section setting unit 510, a beacon generating unit 520, a frame generating unit 530, a control unit 540, and a communication unit 550.
  • the beacon section setting unit 510 sets sector beacon sections for transmitting sector beacons and omni beacon sections for transmitting omni beacons to any one of a plurality of sectors that are spatially divided.
  • the beacon generator 520 generates sector beacons and omni beacons.
  • the frame generator 530 generates a transmission frame indicating that the sector transmission or omnidirectional transmission.
  • the control unit 540 controls the communication unit 550 to transmit a transmission frame to the current sector in a sector interval between sector beacon intervals.
  • controller 540 controls the communication unit 550 to sweep a discovery frame including corresponding sector information in the sector interval between sector beacon periods for the plurality of sectors. .
  • the communication unit 550 transmits a sector beacon for any current sector of the plurality of sectors. At this time, the communication unit 550 receives a response frame indicating that the transmission frame indicating that the sector is transmitted (association) from the terminal located in the current sector.
  • the communication unit 550 receives a probe request for accessing the AP at sector intervals between sector beacon intervals, and unicasts or broadcasts a probe response to the probe request in all directions.
  • the communication unit 550 receives an association request frame including a sector identifier from the terminal that receives the discovery frame.
  • FIG. 6 is a view for explaining the configuration of a station according to an embodiment of the present invention.
  • the station 600 includes a frame generator 610, a controller 620, and a communicator 630.
  • the frame generator 610 receives a transmission frame indicating that the sector is transmitted and generates a response frame indicating that the frame is connected.
  • the frame generator 610 generates a probe request frame for accessing the AP.
  • the controller 620 controls the communication unit 630 to transmit a response frame to the AP.
  • controller 620 attempts to associate with any one of the sectors based on the discovery frame.
  • the communication unit 630 receives a sector beacon from an access point (AP) of the WLAN system, and transmits a transmission frame indicating that the sector is transmitted or an omnidirectional transmission in the sector interval between the sector beacon periods. Receive a frame.
  • AP access point
  • the communication unit 630 receives a sector beacon from an access point (AP) of the WLAN system, and receives a discovery frame including corresponding sector information at sector intervals between the sector beacon periods. do.
  • AP access point
  • FIG. 7 illustrates a configuration of an NDP type short frame according to an embodiment.
  • NDP type short frames are STF 710 representing short training intervals for initial synchronization and signal detection, LTF1 720 representing long training intervals for estimating channel or SINR, and NDP frame control information. It may include a SIG 730 representing.
  • the sector information may be included in the SIG field 830 of the NDP type short frame.
  • the SIG field 730 may include identifier information and sector identifier information of the AP.
  • FIG. 8 is a diagram illustrating a configuration of a SIG field according to an embodiment.
  • the SIG field includes an MCS 810, an AP identifier 820, and a Sector identifier 830.
  • the SIG field may further include a reserved reserved bit for future use, a CRC for inserting information for error correction, and a bit tail inserted for adjusting a specific length.
  • the AP identifier may be an address for identifying the AP.
  • the AP identifier may use a portion of the CRC or hash value of the SSID, a part of the CRC and hash values of the SSID, or abbreviate the BSSID.
  • the sector identifier is an identifier for identifying each sector of the AP.
  • the MCS indicates the frame type of the corresponding NDP Type short frame.
  • the discovery frame may be generated using the QoS null frame of the 802.11 communication standard.
  • the AP address is included in the QoS null frame, this can be used to identify the AP.
  • the transmission order of the discovery frame is always transmitted in sector ID order such as sector 1 ⁇ sector 2 ⁇ sector 3, the sector identifier may be omitted and transmitted in the discovery frame.
  • the method according to the embodiment may be embodied in the form of program instructions that can be executed by various computer means and recorded in a computer readable medium.
  • the computer readable medium may include program instructions, data files, data structures, etc. alone or in combination.
  • the program instructions recorded on the media may be those specially designed and constructed for the purposes of the embodiments, or they may be of the kind well-known and available to those having skill in the computer software arts.
  • Examples of computer-readable recording media include magnetic media such as hard disks, floppy disks, and magnetic tape, optical media such as CD-ROMs, DVDs, and magnetic disks, such as floppy disks.
  • Examples of program instructions include not only machine code generated by a compiler, but also high-level language code that can be executed by a computer using an interpreter or the like.
  • the hardware device described above may be configured to operate as one or more software modules to perform the operations of the embodiments, and vice versa.

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  • Engineering & Computer Science (AREA)
  • Computer Security & Cryptography (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Mobile Radio Communication Systems (AREA)

Abstract

L'invention porte sur un procédé et un appareil de découverte de secteur dans un système de réseau local (LAN) sans fil. Un procédé de découverte d'un secteur par un point d'accès (AP) dans un système LAN sans fil comprend : une étape consistant à régler des intervalles de balise de secteur dans lesquels l'AP du système de réseau local sans fil émet une balise de secteur dans n'importe quel secteur parmi une pluralité de secteurs spatialement divisés, et un intervalle de balise omnidirectionnelle dans lequel l'AP émet une balise omnidirectionnelle dans ledit secteur; une étape consistant à émettre une balise de secteur dans n'importe quel secteur courant parmi la pluralité de secteurs; une étape consistant à émettre, dans le secteur courant, une trame de transmission indiquant une transmission sectorisée ou une trame de transmission indiquant une transmission omnidirectionnelle dans l'intervalle de secteur entre les intervalles de balise de secteur; et une étape consistant à recevoir, en provenance du terminal situé dans le secteur courant, une trame de réponse indiquant que la trame de transmission indiquant la transmission sectorisée est reçue et qu'une association est effectuée.
PCT/KR2013/008734 2012-09-28 2013-09-30 Procédé et appareil de découverte de secteur dans un système de réseau local sans fil WO2014051405A2 (fr)

Priority Applications (2)

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US14/431,741 US10098054B2 (en) 2012-09-28 2013-09-30 Method and apparatus for discovery of sector in wireless local area network system
US16/124,009 US10897736B2 (en) 2012-09-28 2018-09-06 Method and apparatus for discovery of sector in wireless local area network system

Applications Claiming Priority (4)

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KR10-2012-0108862 2012-09-28
KR20120108862 2012-09-28
KR1020130116070A KR102068283B1 (ko) 2012-09-28 2013-09-30 무선랜 시스템에서 섹터 디스커버리 방법 및 장치
KR10-2013-0116070 2013-09-30

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US14/431,741 A-371-Of-International US10098054B2 (en) 2012-09-28 2013-09-30 Method and apparatus for discovery of sector in wireless local area network system
US16/124,009 Continuation US10897736B2 (en) 2012-09-28 2018-09-06 Method and apparatus for discovery of sector in wireless local area network system

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CN113452494A (zh) * 2015-05-15 2021-09-28 韦勒斯标准与技术协会公司 用于多用户上行链路传输的无线通信终端和无线通信方法

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