IP Library › Granted Patent US 12,143,253
Granted Patent B2
US 12,143,253 · App. 17/754,727 · Granted Nov 12, 2024

Method and device for receiving PPDU through broadband in wireless LAN system

Inventors: Eunsung Park (Seoul, KR); Jinsoo Choi (Seoul, KR); Dongguk Lim (Seoul, KR)
Assignee: LG ELECTRONICS INC.
H04L27/26H04L5/0048
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Quick Facts
Patent No.
US 12,143,253
App. No.
17/754,727
Granted
Nov 12, 2024
Kind
B2
Abstract

A method and a device for receiving a PPDU in a wireless LAN system are presented. Specifically, a reception STA receives a PPDU from a transmission STA through a broadband and decodes the PPDU. The broadband is a 320 MHz band or a 160+160 MHz band. The PPDU includes an STF signal. The STF signal is generated on the basis of a first STF sequence for a broadband. The first STF sequence is a sequence of which a phase rotation is applied to a sequence in which a second STF sequence is repeated. The second STF sequence is an STF sequence for a 80 MHz band defined in an 802.11ax wireless LAN system. If the broadband is a 320 MHz band, the first SFT sequence is a sequence in which preset sequence M is repeated, and is defined to be the same as {M 1 −M 0 −M 1 −M 0 M 1 −M 0 −M 1 −M 0 −M −1 M 0 M −1 M 0 −M −1 M 0 M −1 M}*(1+j)/sqrt(2)).

Claims (71)

1. A method in a Wireless Local Area Network (WLAN) system, the method comprising:

receiving, by a receiving station (STA), a Physical Protocol Data Unit (PPDU) from a transmitting STA; and

decoding, by the receiving STA, the PPDU,

wherein the PPDU includes a Short Training Field (STF) signal,

wherein the STF signal is generated based on a first STF sequence,

wherein the first STF sequence include a sequence in which a phase rotation is applied to a sequence in which a second STF sequence is repeated,

wherein the second STF sequence is {M 1 −M 0 −M 1 −M}*(1+j)/sqrt(2),

wherein based on a bandwidth of the PPDU being 320 MHz, the first STF sequence is defined as a sequence in which a pre-defined M sequence is repeated,

wherein the first STF sequence is defined as shown below:

{ M 1 − M 0 − M 1 − M 0 M 1 − M 0 − M 1 − M 0 − M − 1 M 0 M − 1 M 0 − M − 1 M 0 M − 1 M }*(1+ j )/sqrt(2), sqrt(2) represents a square root,

wherein the pre-defined M sequence is defined as shown below:

M={− 1,−1,−1,1,1,1,−1,1,1,1,−1,1,1,−1,1}, and

wherein the phase rotation is applied to a secondary channel of a 320 MHz band in units of 80 MHz bands, and the secondary channel is a channel except for a primary 80 MHz channel in the 320 MHz band.

2. The method of claim 1 , wherein the first STF sequence is obtained based on a first preamble puncturing pattern and a combination of radio frequencies (RFs) used when transmitting the PPDU, wherein the first preamble puncturing pattern includes all patterns of a band in which an 80 MHz band is punctured in the 320 MHz band or the 160+160 MHz band, wherein the combination of the RFs is a combination of an RF with 80 MHz capability, an RF with 160 MHz capability, or an RF with 320 MHz capability.

3. The method of claim 1 , wherein the first STF sequence is obtained based on information related to a full bandwidth and a combination of Radio Frequencies (RFs) used for transmitting the PPDU,

wherein the information related to a full bandwidth is information representing that the 320 MHz band or a 160+160 MHz band is allocated without puncturing for transmitting the PPDU,

wherein the combination of the RF is a combination of an RF with 80 MHz capability, an RF with 160 MHz capability, or an RF with 320 MHz capability.

4. The method of claim 1 , wherein based on a bandwidth of the PPDU being 160+160 MHz,

within the first STF sequence, an STF sequence for a low 160 MHz band is defined as shown below:

{ M, 1,− M, 0,− M, 1,− M, 0, M, 1,− M, 0,− M, 1,− M }*(1+ j )/sqrt(2), and

within the first STF sequence, an STF sequence for a high 160 MHz band is defined as shown below:

{− M − 1, M, 0, M − 1, M, 0,− M − 1, M, 0, M − 1, M }*(1+ j )/sqrt(2).

5. The method of claim 1 , wherein the first STF sequence is mapped to frequency tones at intervals of 16 tones from a lowest tone having a tone index of ‘−2032’ to a highest tone having a tone index of ‘+2032’,

wherein the second STF sequence is mapped to frequency tones at intervals of 16 tones from a lowest tone having a tone index of ‘−496’ to a highest tone having a tone index of ‘+496’.

6. The method of claim 1 , wherein the PPDU includes a legacy field, a control field, and a data field,

wherein the STF signal is included in the control field,

wherein the control field and the data field support 802.11be wireless LAN system.

7. A receiving station (STA) in a Wireless Local Area Network (WLAN) system, the receiving STA comprising:

a memory;

a transceiver; and

a processor operatively coupled to the memory and transceiver,

wherein processor is configured to:

receive a Physical Protocol Data Unit (PPDU) from a transmitting STA; and

decode the PPDU,

wherein the PPDU includes a Short Training Field (STF) signal,

wherein the STF signal is generated based on a first STF sequence,

wherein the first STF sequence include a sequence in which a phase rotation is applied to a sequence in which a second STF sequence is repeated,

wherein the second STF sequence is {M 1 −M 0 −M 1 −M}*(1+j)/sqrt(2),

wherein based on a bandwidth of the PPDU being 320 MHz, the first STF sequence is defined as a sequence in which a pre-defined M sequence is repeated,

wherein the first STF sequence is defined as shown below:

{ M 1 − M 0 − M 1 − M 0 M 1 − M 0 − M 1 − M 0 − M − 1 M 0 M − 1 M 0 − M − 1 M 0 M − 1 M }*(1+ j )/sqrt(2), sqrt( ) represents a square root,

wherein the pre-defined M sequence is defined as shown below:

M={− 1,−1,−1,1,1,1,−1,1,1,1,−1,1,1,−1,1}, and

wherein the phase rotation is applied to a secondary channel of a 320 MHz band in units of 80 MHz bands, and the secondary channel is a channel except for a primary 80 MHz channel in the 320 MHz band.

8. A method in a Wireless Local Area Network (WLAN) system, the method comprising:

generating, by a transmitting station (STA), a Physical Protocol Data Unit (PPDU); and

transmitting, by the transmitting STA, the PPDU to a receiving STA,

wherein the PPDU includes a Short Training Field (STF) signal,

wherein the STF signal is generated based on a first STF sequence,

wherein the first STF sequence include a sequence in which a phase rotation is applied to a sequence in which a second STF sequence is repeated,

wherein the second STF sequence is {M 1 −M 0 −M 1 −M}*(1+j)/sqrt(2),

wherein based on a bandwidth of the PPDU being 320 MHz, the first STF sequence is defined as a sequence in which a pre-defined M sequence is repeated,

wherein the first STF sequence is defined as shown below:

{ M 1 − M 0 − M 1 − M 0 M 1 − M 0 − M 1 − M 0 − M − 1 M 0 M − 1 M 0 − M − 1 M 0 M − 1 M }*(1+ j )/sqrt(2), sqrt( ) represents a square root,

wherein the pre-defined M sequence is defined as shown below:

M={− 1,−1,−1,1,1,1,−1,1,1,1,−1,1,1,−1,1}, and

wherein the phase rotation is applied to a secondary channel of a 320 MHz band in units of 80 MHz bands, and the secondary channel is a channel except for a primary 80 MHz channel in the 320 MHz band.

9. The method of claim 8 , wherein the first STF sequence is obtained based on a first preamble puncturing pattern and a combination of radio frequencies (RFs) used when transmitting the PPDU, wherein the first preamble puncturing pattern includes all patterns of a band in which an 80 MHz band is punctured in the 320 MHz band or a 160+160 MHz band, wherein the combination of the RFs is a combination of an RF with 80 MHz capability, an RF with 160 MHz capability, or an RF with 320 MHz capability.

10. The method of claim 8 , wherein the first STF sequence is obtained based on information related to a full bandwidth and a combination of a Radio Frequencies (RFs) used for transmitting the PPDU,

wherein the information related to a full bandwidth is information representing that a 320 MHz band or a 160+160 MHz band is allocated without puncturing for transmitting the PPDU,

wherein the combination of the RFs is a combination of an RF with 80 MHz capability, an RF with 160 MHz capability, or an RF with 320 MHz capability.

11. The method of claim 8 , wherein based on a bandwidth of the PPDU being 160+160 MHz,

within the first STF sequence, an STF sequence for a low 160 MHz band is defined as shown below:

{ M, 1,− M, 0,− M, 1,− M, 0, M, 1,− M, 0,− M, 1,− M }*(1+ j )/sqrt(2), and

within the first STF sequence, an STF sequence for a high 160 MHz band is defined as shown below:

{− M − 1, M, 0, M − 1, M, 0,− M − 1, M, 0, M − 1, M }*(1+ j )/sqrt(2).

12. The method of claim 8 , wherein the first STF sequence is mapped to frequency tones at intervals of 16 tones from a lowest tone having a tone index of ‘−2032’ to a highest tone having a tone index of ‘+2032’,

wherein the second STF sequence is mapped to frequency tones at intervals of 16 tones from a lowest tone having a tone index of ‘−496’ to a highest tone having a tone index of ‘+496’.

13. The method of claim 8 , wherein the PPDU includes a legacy field, a control field, and a data field,

wherein the STF signal is included in the control field,

wherein the control field and the data field support 802.11be wireless LAN system.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 12, 2022
From: PARK, EUNSUNG; CHOI, JINSOO; LIM, DONGGUK
To: LG ELECTRONICS INC.
Reel/Frame 059570/0068 →
Priority Claims (2)
KR 10-2019-0125632 · Oct 10, 2019 · national
KR 10-2019-0125634 · Oct 10, 2019 · national
Continuity (1)
Related Publication 20240097952A1 · Mar 21, 2024