IP Library › Granted Patent US 12,640,865
Granted Patent B2
US 12,640,865 · App. 18/566,498 · Granted May 26, 2026

Method and apparatus for aligning symbol boundaries of each field of HE PPDU and EHT PPDU within A-PPDU in wireless LAN system

Inventors: Eunsung Park (Seoul, KR); Jinyoung Chun (Seoul, KR); Jinsoo Choi (Seoul, KR); Dongguk Lim (Seoul, KR)
Assignee: LG ELECTRONICS INC.
H04L5/0044H04L27/2605
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Quick Facts
Patent No.
US 12,640,865
App. No.
18/566,498
Granted
May 26, 2026
Kind
B2
Abstract

The present disclosure proposes a method and apparatus for aligning symbol boundaries of each field of an HE PPDU and an EHT PPDU within an A-PPDU in a wireless LAN system. In particular, a reception STA receives the A-PPDU from a transmission STA. The reception STA decodes the A-PPDU. The A-PPDU comprises an HE PPDU for a primary 160 MHz channel and an EHT PPDU for a secondary 160 MHz channel. The length from a first L-STF to an HE-SIG-A is the same as the length from a second L-STF to a U-SIG. Symbol boundaries of an HE-SIG-B and an EHT-SIG are equally aligned.

Claims (62)

1 . A method in a wireless local area network (WLAN) system, the method comprising:

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

decoding, by the receiving STA, the A-PPDU,

wherein the A-PPDU includes a High Efficiency (HE) PPDU for a primary 160 MHz channel and an Extreme High Throughput (EHT) PPDU for a secondary 160 MHz channel,

wherein when the A-PPDU is a Downlink (DL) A-PPDU, the HE PPDU includes a first Legacy-Short Training Field (L-STF), a first Legacy-Long Training Field (L-LTF), a first Legacy-Signal (L-SIG), a first RL-SIG (Repeated Legacy-Signal), a High Efficiency-Signal-A (HE-SIG-A), a HE-SIG-B, a HE-STF, a HE-LTF, first data, first Packet Extension (PE) and first signal extension, and the EHT PPDU includes a second L-STF, a second L-LTF, a second L-SIG, a second RL-SIG, a Universal-Signal (U-SIG), and an Extreme High Throughput-Signal (EHT-SIG), an EHT-STF, an EHT-LTF, second data, second PE and second signal extension,

wherein a length from the first L-STF to the HE-SIG-A and a length from the second L-STF to the U-SIG are the same,

wherein symbol boundaries of the HE-SIG-B and the EHT-SIG are aligned identically,

wherein symbol boundaries of the HE-STF and the EHT-STF are aligned identically,

wherein symbol boundaries of the HE-LTF and the EHT-LTF are aligned identically, and

wherein a length of the first data, the first PE, and the first signal extension is the same as a length of the second data, the second PE, and the second signal extension.

2 . The method of claim 1 , wherein in the HE PPDU, the first L-STF, the first L-LTF, the first L-SIG, the first RL-SIG, the HE-SIG-A, the HE-SIG-B, the HE-The STF, the HE-LTF, the first data, the first PE, and the first signal extension is arranged in chronological order,

wherein in the EHT PPDU, the second L-STF, the second L-LTF, the second L-SIG, the second RL-SIG, the U-SIG, the EHT-SIG, the EHT-STF, and the EHT-LTF, the second data, the second PE, and the second signal extension is arranged in chronological order.

3 . The method of claim 1 , wherein a length and a number of symbols of the HE-SIG-B and the EHT-SIG is set to be the same,

wherein symbol boundaries of the HE-SIG-B and the EHT-SIG are aligned based on the number of symbols and padding.

4 . The method of claim 1 , wherein the symbol boundaries of the HE-STF and the EHT-STF is aligned based on the same tone interval,

wherein when the A-PPDU is the DL (downlink) A-PPDU, the HE-STF and the EHT-STF is configured based on 1× STF,

wherein when the A-PPDU is the UL (uplink) A-PPDU, the HE-STF and the EHT-STF is configured based on 2× STF.

5 . The method of claim 1 , wherein the symbol boundaries of the HE-LTF and the EHT-LTF is aligned based on the same tone interval and the same Guard Interval (GI),

wherein the HE-LTF and the EHT-LTF is configured based on 1× LTF, 2× LTF, or 4× LTF,

wherein the HE PPDU and the EHT PPDU support up to 8 spatial streams.

6 . The method of claim 1 , wherein symbol boundaries of the first data and the second data is aligned based on the same GI,

wherein a total length of the HE PPDU and the EHT PPDU is set to be the same based on the first PE, the first signal extension, the second PE, and the second signal extension.

7 . The method of claim 1 , wherein when the A-PPDU is the DL A-PPDU, the HE PPDU is a HE MU (Multi-User) PPDU, and the EHT PPDU is an EHT MU PPDU,

wherein when the A-PPDU is the UL A-PPDU, the HE PPDU is a HE Trigger Based (TB) PPDU, and the EHT PPDU is an EHT TB PPDU, the HE PPDU includes the first L-STF, the first L-LTF, the first L-SIG, the first RL-SIG, the HE-SIG-A, the HE-STF, the HE-LTF, the first data, the first PE and the first signal extension, and the EHT PPDU includes the second L-STF, the second L-LTF, the second L-SIG, the second RL-SIG, the U-SIG, the EHT-STF, the EHT-LTF, the second data, the second PE and the second signal extension.

8 . A receiving station (STA) in a wireless local area network (WLAN) system, the receiving STA comprising:

a memory;

a transceiver; and

a processor being operatively connected to the memory and the transceiver,

wherein the processor is configured to:

receive an Aggregated-Physical Protocol Data Unit (A-PPDU) from a transmitting STA; and

decode the A-PPDU,

wherein the A-PPDU includes a High Efficiency (HE) PPDU for a primary 160 MHz channel and an Extreme High Throughput (EHT) PPDU for a secondary 160 MHz channel,

wherein when the A-PPDU is a Downlink (DL) A-PPDU, the HE PPDU includes a first Legacy-Short Training Field (L-STF), a first Legacy-Long Training Field (L-LTF), a first Legacy-Signal (L-SIG), a first RL-SIG (Repeated Legacy-Signal), a High Efficiency-Signal-A (HE-SIG-A), a HE-SIG-B, a HE-STF, a HE-LTF, first data, first Packet Extension (PE) and first signal extension, and the EHT PPDU includes a second L-STF, a second L-LTF, a second L-SIG, a second RL-SIG, a Universal-Signal (U-SIG), and an Extreme High Throughput-Signal (EHT-SIG), an EHT-STF, an EHT-LTF, second data, second PE and second signal extension,

wherein a length from the first L-STF to the HE-SIG-A and a length from the second L-STF to the U-SIG are the same,

wherein symbol boundaries of the HE-SIG-B and the EHT-SIG are aligned identically,

wherein symbol boundaries of the HE-STF and the EHT-STF are aligned identically,

wherein symbol boundaries of the HE-LTF and the EHT-LTF are aligned identically, and

wherein a length of the first data, the first PE, and the first signal extension is the same as a length of the second data, the second PE, and the second signal extension.

9 . A method in a wireless local area network (WLAN) system, the method comprising:

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

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

wherein the A-PPDU includes a High Efficiency (HE) PPDU for a primary 160 MHz channel and an Extreme High Throughput (EHT) PPDU for a secondary 160 MHz channel,

wherein when the A-PPDU is a Downlink (DL) A-PPDU, the HE PPDU includes a first Legacy-Short Training Field (L-STF), a first Legacy-Long Training Field (L-LTF), a first Legacy-Signal (L-SIG), a first RL-SIG (Repeated Legacy-Signal), a High Efficiency-Signal-A (HE-SIG-A), a HE-SIG-B, a HE-STF, a HE-LTF, first data, first Packet Extension (PE) and first signal extension, and the EHT PPDU includes a second L-STF, a second L-LTF, a second L-SIG, a second RL-SIG, a Universal-Signal (U-SIG), and an Extreme High Throughput-Signal (EHT-SIG), an EHT-STF, an EHT-LTF, second data, second PE and second signal extension,

wherein a length from the first L-STF to the HE-SIG-A and a length from the second L-STF to the U-SIG are the same,

wherein symbol boundaries of the HE-SIG-B and the EHT-SIG are aligned identically,

wherein symbol boundaries of the HE-STF and the EHT-STF are aligned identically,

wherein symbol boundaries of the HE-LTF and the EHT-LTF are aligned identically, and

wherein a length of the first data, the first PE, and the first signal extension is the same as a length of the second data, the second PE, and the second signal extension.

10 . The method of claim 9 , wherein in the HE PPDU, the first L-STF, the first L-LTF, the first L-SIG, the first RL-SIG, the HE-SIG-A, the HE-SIG-B, the HE-The STF, the HE-LTF, the first data, the first PE, and the first signal extension is arranged in chronological order,

wherein in the EHT PPDU, the second L-STF, the second L-LTF, the second L-SIG, the second RL-SIG, the U-SIG, the EHT-SIG, the EHT-STF, and the EHT-LTF, the second data, the second PE, and the second signal extension is arranged in chronological order.

11 . The method of claim 9 , wherein a length and a number of symbols of the HE-SIG-B and the EHT-SIG is set to be the same,

wherein symbol boundaries of the HE-SIG-B and the EHT-SIG are aligned based on the number of symbols and padding.

12 . The method of claim 9 , wherein the symbol boundaries of the HE-STF and the EHT-STF is aligned based on the same tone interval,

wherein when the A-PPDU is the DL (downlink) A-PPDU, the HE-STF and the EHT-STF is configured based on 1× STF,

wherein when the A-PPDU is the UL (uplink) A-PPDU, the HE-STF and the EHT-STF is configured based on 2× STF.

13 . The method of claim 9 , wherein the symbol boundaries of the HE-LTF and the EHT-LTF is aligned based on the same tone interval and the same Guard Interval (GI),

wherein the HE-LTF and the EHT-LTF is configured based on 1× LTF, 2× LTF, or 4× LTF,

wherein the HE PPDU and the EHT PPDU support up to 8 spatial streams.

14 . The method of claim 9 , wherein symbol boundaries of the first data and the second data is aligned based on the same GI,

wherein a total length of the HE PPDU and the EHT PPDU is set to be the same based on the first PE, the first signal extension, the second PE, and the second signal extension.

15 . The method of claim 9 , wherein when the A-PPDU is the DL A-PPDU, the HE PPDU is a HE MU (Multi-User) PPDU, and the EHT PPDU is an EHT MU PPDU,

wherein when the A-PPDU is the UL A-PPDU, the HE PPDU is a HE Trigger Based (TB) PPDU, and the EHT PPDU is an EHT TB PPDU, the HE PPDU includes the first L-STF, the first L-LTF, the first L-SIG, the first RL-SIG, the HE-SIG-A, the HE-STF, the HE-LTF, the first data, the first PE and the first signal extension, and the EHT PPDU includes the second L-STF, the second L-LTF, the second L-SIG, the second RL-SIG, the U-SIG, the EHT-STF, the EHT-LTF, the second data, the second PE and the second signal extension.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 1, 2023
From: PARK, EUNSUNG; CHUN, JINYOUNG; CHOI, JINSOO; LIM, DONGGUK
To: LG ELECTRONICS INC.
Reel/Frame 065739/0810 →
Priority Claims (1)
KR 10-2021-0073647 · Jun 7, 2021 · national
Continuity (1)
Related Publication 20240259149A1 · Aug 1, 2024
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