IP Library › Granted Patent US 12,095,684
Granted Patent B2
US 12,095,684 · App. 17/429,292 · Granted Sep 17, 2024

Method and apparatus for receiving EHT PPDU in wireless LAN system

Inventors: Eunsung Park (Seoul, KR); Jinsoo Choi (Seoul, KR); Dongguk Lim (Seoul, KR); Jinmin Kim (Seoul, KR); Sunwoong Yun (Seoul, KR)
Assignee: LG ELECTRONICS INC.
H04L5/0023H04L5/0048
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Quick Facts
Patent No.
US 12,095,684
App. No.
17/429,292
Granted
Sep 17, 2024
Kind
B2
Abstract

Proposed are a method and an apparatus for receiving an EHT PPDU in a wireless LAN system. Specifically, a reception STA receives an EHT PPDU including an STF signal from a transmission STA through a 320 MHz band or a 160+160 MHz band. The reception STA decodes the EHT PPDU. The STF signal is generated on the basis of an EHT STF sequence for the 320 MHz band or the 160+160 MHz band. The EHT STF sequence for the 320 MHz band is a first sequence in which a preconfigured M sequence is repeated, and is defined as {M −1 −M −1 M −1 M 0 −M 1 −M 1 −M 1 M 0 −M 1 M 1 −M 1 −M 0 M −1 M −1 M −1 −M}*(1+j)/sqrt(2).

Claims (81)

1. A method of receiving an Extremely High Throughput Physical Protocol Data Unit (EHT PPDU) in a wireless LAN system, the method comprising:

receiving, by a receiving station (STA), the EHT PPDU including a Short Training Field (STF) signal from a transmitting STA through a 320 MHz band; and

decoding, by the receiving STA, the EHT PPDU;

wherein the STF signal is generated based on an EHT STF sequence for the 320 MHz band and a tone plan of the 320 MHz band,

wherein the EHT STF sequence for the 320 MHz band is a first sequence in which a preset M sequence is repeated,

wherein the EHT STF sequence for the 320 MHz band is defined as:

{M−1−M−1 M−1 M0−M1−M1−M1M0−M1M1−M1−M0M−1M−1M−1−M}*(1+j)/sqrt(2), where sqrt( )denotes a square root,

wherein the preset M sequence is defined as:

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

wherein the tone plan of the 320 MHz band is determined based on a repetition of a tone plan for a 160 MHz band,

wherein based on the tone plan for the 160 MHz band defined as a full band, the 160 MHz band includes 12 guard tones, a 2020 tone resource unit (RU), 5 direct current (DC) tones, and 11 guard tones, and

wherein the 2020 tone RU is an RU containing 2020 tones.

2. The method of claim 1 ,

wherein the EHT STF sequence for the 320 MHz band is configured based on a second sequence for a Primary 160 MHz channel and a third sequence for a Secondary 160 MHz channel,

wherein the second sequence is defined as:

{M−1−M−1M−1M0−M1−M1−M1M}*(1+j)/sqrt(2),

wherein the third sequence is defined as

{−M1M1−M1−M0M−1M−1M−1−M}*(1+j)/sqrt(2).

3. The method of claim 2 , wherein the first 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, and

wherein the second and third sequences are mapped to frequency tones at intervals of 16 tones from a lowest tone having a tone index of −1008 to a highest tone having a tone index of +1008.

4. The method of claim 3 , wherein the 320 MHz band includes a lower 160 MHz channel having a relatively low tone index and a higher 160 MHz channel having a relatively high tone index,

wherein the first sequence is generated by applying a phase rotation in units of 80 MHz to a sequence of the higher 160 MHz channel in a fourth sequence in which a High Efficiency (HE) STF sequence for the 160 MHz band is repeated,

wherein the fourth sequence is defined as follows,

{M−1−M−1M−1M 0−M1−M1−M1M0M−1−M−1M−1M0−M1−M1−M1M}*(1+j)/sqrt(2),

wherein the phase rotation is applied to a sequence for an 80 MHz channel having a low tone index and an 80 MHz channel having a high tone index in the higher 160 MHz channel,

wherein a value of the phase rotation is set to ‘−1’.

5. The method of claim 2 ,

wherein the tone plan for the 160 MHz band is defined in an Extremely High Throughput (EHT) wireless LAN system.

6. The method of claim 5 , wherein based on the tone plan for the 160 MHz band defined as Orthogonal Frequency Division multiple access (OFDMA), the 160 MHz band of includes 12 guard tones, 996 ton RU, 13 ton RU, 7 DC, 13 ton RU, 996 ton RU, and 11 guard tones, wherein the 996 tone RU is an RU including 996 tones and the 13 tone RU is an RU including 13 tones.

7. The method of claim 6 , wherein the 996 tone RU consists of 484 tones, one null tone, 26 tone RU, one null tone and 484 tone RU, wherein the 484 tone RU is an RU including 484 tones, and the 26 tone RU is an RU including 26 tones.

8. The method of claim 5 , wherein the transmitting STA has a Radio Frequency (RF) capability to support the 320 MHz band with one RF.

9. The method of claim 8 ,

wherein the STF signal is used to improve automatic gain control (AGC) estimation in multiple input multiple output (MIMO) transmission,

wherein the EHT STF sequence is a sequence for obtaining a minimum Peak-to-Average Power Radio (PAPR) based on the tone plan and the RF capability of the 320 MHz band.

10. A receiving station (STA) receiving an Extremely High Throughput Physical Protocol Data Unit (EHT PPDU) in a wireless LAN system, the receiving STA comprising:

a memory;

a transceiver;

a processor operatively connected to the memory and transceiver,

wherein the processor is configured to:

receive the EHT PPDU including a Short Training Field (STF) from a transmitting STA through a 320 MHz band,

decode the EHT PPDU,

wherein the STF signal is generated based on an EHT STF sequence for the 320 MHz band and a tone plan of the 320 MHz band,

wherein the EHT STF sequence for the 320 MHz band is a first sequence in which a preset M sequence is repeated,

wherein the EHT STF sequence for the 320 MHz band is defined as:

{M−1−M−1M−1M0−M1−M1−M1M0−M1M1−M1−M0M−1M−1M−1−M}*(1+j)/sqrt(2), where sqrt( )denotes a square root,

wherein the preset M sequence is defined as:

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

wherein the tone plan of the 320 MHz band is determined based on a repetition of a tone plan for a 160 MHz band,

wherein based on the tone plan for the 160 MHz band defined as a full band, the 160 MHz band includes 12 guard tones, a 2020 tone resource unit (RU), 5 direct current (DC) tones, and 11 guard tones, and

wherein the 2020 tone RU is an RU containing 2020 tones.

11. A method of transmitting an Extremely High Throughput Physical Protocol Data Unit (EHT PPDU) in a wireless LAN system, the method comprising:

generating, by a transmitting station (STA), a Short Training Field (STF) signal; and

transmitting, by the transmitting STA, the EHT PPDU including the STF signal to a receiving STA through a 320 MHz band,

wherein the STF signal is generated based on an EHT STF sequence for the 320 MHZ band and a tone plan of the 320 MHz band,

wherein the EHT STF sequence for the 320 MHz band is a first sequence in which a preset M sequence is repeated,

wherein the EHT STF sequence for the 320 MHz band is defined as:

{M−1−M−1M−1M0−M1−M1−M1M0−M 1M1−M1−M0M−1M−1M−1−M}*(1+j)/sqrt(2), where sqrt( )denotes a square root,

wherein the preset M sequence is defined as:

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

wherein the tone plan of the 320 MHz band is determined based on a repetition of a tone plan for a 160 MHz band,

wherein based on the tone plan for the 160 MHz band defined as a full band, the 160 MHz band includes 12 guard tones, a 2020 tone resource unit (RU), 5 direct current (DC) tones, and 11 guard tones, and

wherein the 2020 tone RU is an RU containing 2020 tones.

12. The method of claim 11 ,

wherein the EHT STF sequence for the 320 MHz band is configured based on a second sequence for a Primary 160 MHz channel and a third sequence for a Secondary 160 MHz channel,

wherein the second sequence is defined as:

{M−1−M−1M−1M0−M1−M1−M1M}*(1+j)/sqrt(2),

wherein the third sequence is defined as

{−M1M1−M1−M0M−1M−1M−1−M}*(1+j)/sqrt(2).

13. The method of claim 12 , wherein the first 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, and

wherein the second and third sequences are mapped to frequency tones at intervals of 16 tones from a lowest tone having a tone index of −1008 to a highest tone having a tone index of +1008.

14. The method of claim 13 , wherein the 320 MHz band includes a lower 160 MHz channel having a relatively low tone index and a higher 160 MHz channel having a relatively high tone index,

wherein the first sequence is generated by applying a phase rotation in units of 80 MHz to a sequence of the higher 160 MHz channel in a fourth sequence in which a High Efficiency (HE) STF sequence for the 160 MHz band is repeated,

wherein the fourth sequence is defined as follows,

{M−1−M−1M−1M0−M1−M1−M1M0M−1−M−1M−1M0−M1−M1−M1M}*(1+j)/sqrt(2),

wherein the phase rotation is applied to a sequence for an 80 MHz channel having a low tone index and an 80 MHz channel having a high tone index in the higher 160 MHz channel,

wherein a value of the phase rotation is set to ‘−1’.

15. The method of claim 12 ,

wherein the tone plan for the 160 MHz band is defined in an Extremely High Throughput (EHT) wireless LAN system.

16. The method of claim 15 , wherein based on the tone plan for the 160 MHz band defined as Orthogonal Frequency Division multiple access (OFDMA), the 160 MHz band includes 12 guard tones, 996 ton RU, 13 ton RU, 7 DC, 13 ton RU, 996 ton RU, and 11 guard tones, wherein the 996 tone RU is an RU including 996 tones and the 13 tone RU is an RU including 13 tones.

17. The method of claim 16 , wherein the 996 tone RU consists of 484 tones, one null tone, 26 tone RU, one null tone and 484 tone RU, wherein the 484 tone RU is an RU including 484 tones, and the 26 tone RU is an RU including 26 tones.

18. The method of claim 15 , wherein the transmitting STA has a Radio Frequency (RF) capability to support the 320 MHz band with one RF.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 6, 2021
From: PARK, EUNSUNG; CHOI, JINSOO; LIM, DONGGUK; KIM, JINMIN; YUN, SUNWOONG
To: LG ELECTRONICS INC.
Reel/Frame 057110/0452 →
Priority Claims (1)
KR 10-2019-0019168 · Feb 19, 2019 · national
Continuity (1)
Related Publication 20220140962A1 · May 5, 2022
Cited By (1)
US 12,532,206