IP Library Granted Patent US 10,356,781
Granted Patent B2
US 10,356,781 · App. 15/875,482 · Granted Jul 16, 2019

Method and device for uplink transmission in wireless local area network using OFDMA scheme

Inventor: Yong H Seok (Cupertino, CA)
H04W72/0446H04L5/0007H04L27/2602H04L27/265H04L27/2621H04L27/2628H04W74/0816H04W84/12
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Quick Facts
Patent No.
US 10,356,781
App. No.
15/875,482
Granted
Jul 16, 2019
Kind
B2
Abstract

Method and device for communicating within an operating bandwidth in a wireless local area network is provided. A PPDU is received over an operating bandwidth. The PPDU has a first part having a first Fourier transform (FFT) size and a second part having a second FFT size, the second FFT size four times greater than the first FFT size. The PPDU is received via multiple sub-channels and in various portions of the first and the second part. Further, various portions of the first part and the second part of the PPDU have identical or different phases with respect to other portions of the PPDU.

Claims (45)

1. A method for communicating within an operating bandwidth in a wireless local area network, the method comprising:

receiving a first part of a physical layer protocol data unit (PPDU) over the operating bandwidth, the first part having a first Fast Fourier transform (FFT) size; and

receiving a second part of the PPDU over the operating bandwidth, the second part having a second FFT size, the second FFT size four times greater than the first FFT size;

wherein the first part comprises a legacy-short training field (L-STF), a legacy-long training field (L-LTF), a legacy-signal (L-SIG), and a signal-A field;

wherein the second part comprises an STF field and an LTF field;

wherein the operating bandwidth comprises a plurality of first sub-channels for communication of the first part;

wherein the operating bandwidth comprises a plurality of second sub-channels for communication of the second part, the second part having a second part phase;

wherein a first portion of the first part having a first rotated phase that is phase-rotation into at least one sub-channel of the plurality of first sub-channels, the first rotated phase identical to the second part phase; and

wherein a second portion of the first part having a second rotated phase that is phase-rotation into remaining sub-channels of the plurality of first sub-channels, the second rotated phase different than the second part phase.

2. The method of claim 1

wherein the operating bandwidth is 40 MHz and the plurality of first sub-channels comprises two sub-channels, each sub-channel having 20 MHz bandwidth; and

wherein the second rotated phase is different than the second part phase by 90 degrees.

3. The method of claim 1

wherein the operating bandwidth is 80 MHz and the plurality of first sub-channels comprises four sub-channels, each sub-channel having 20 MHz bandwidth; and

wherein the second rotated phase is different than the second part phase by 180 degrees.

4. The method of claim 1 wherein the signal-A field of the first part comprises bandwidth information indicating the operating bandwidth.

5. The method of claim 1 wherein the PPDU comprises a data portion associated with the second FFT size.

6. The method of claim 1

wherein the first FFT size is 64 and the second FFT size is 256 when the operating bandwidth is 20 MHz;

wherein the first FFT size is 128 and the second FFT size is 512 when the operating bandwidth is 40 MHz; and

wherein the first FFT size is 256 and the second FFT size is 1024 when the operating bandwidth is 80 MHz.

7. A device configured for communicating within an operating bandwidth in a wireless local area network, the device comprising:

a radio frequency circuit configured to receive radio signals;

the radio frequency circuit; and

a memory disposed to said processor, said memory including instructions that, when executed by said processor, causes said processor to:

receive a first part of a physical layer protocol data unit (PPDU) over the operating bandwidth, the first part having a first Fast Fourier transform (FFT) size; and

receive a second part of the PPDU over the operating bandwidth, the second part having a second FFT size, the second FFT size four times greater than the first FFT size;

wherein the first part comprises a legacy-short training field (L-STF), a legacy-long training field (L-LTF), a legacy-signal (L-SIG), and a signal-A field;

wherein the second part comprises an STF field and an LTF field;

wherein the operating bandwidth comprises a plurality of first sub-channels for communication of the first part;

wherein the operating bandwidth comprises a plurality of second sub-channels for communication of the second part, the second part having a second part phase;

wherein a first portion of the first part having a first rotated phase that is phase-rotation into at least one sub-channel of the plurality of first sub-channels, the first rotated phase identical to the second part phase; and

wherein a second portion of the first part having a second rotated phase that is phase-rotation into remaining sub-channels of the plurality of first sub-channels, the second rotated phase different than the second part phase.

8. The device of claim 7

wherein the operating bandwidth is 40 MHz and the plurality of first sub-channels comprise two sub-channels, each sub-channel having 20 MHz bandwidth; and

wherein the second rotated phase is different than the second part phase by 90 degrees.

9. The device of claim 7

wherein the operating bandwidth is 80 MHz and the plurality of first sub-channels comprise four sub-channels, each sub-channel having 20 MHz bandwidth; and

wherein the second rotated phase is different than the second part phase by 180 degrees.

10. The device of claim 7 wherein the signal-A field of the first part comprises bandwidth information indicating the operating bandwidth.

11. The device of claim 7 wherein the PPDU comprises a data portion associated with the second FFT size.

12. The device of claim 7

wherein the first FFT size is 64 and the second FFT size is 256 when the operating bandwidth is 20 MHz;

wherein the first FFT size is 128 and the second FFT size is 512 when the operating bandwidth is 40 MHz; and

wherein the first FFT size is 256 and the second FFT size is 1024 when the operating bandwidth is 80 MHz.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 19, 2021
From: TECHFLUX, INC.
To: SAMSUNG ELECTRONICS CO., LTD.
Reel/Frame 058457/0316 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 19, 2019
From: SEOK, YONG HO
To: XI-FI LAB., LTD
Reel/Frame 050768/0521 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 19, 2019
From: XI-FI LAB., LTD
To: TECHFLUX, LTD
Reel/Frame 050768/0526 →
Priority Claims (1)
KR 10-2014-0080169 · Jun 27, 2014 · national
Continuity (3)
Continuation 15390598 · Dec 26, 2016
Continuation PCTIB2015001280 · Jun 26, 2015
Related Publication 20180160426A1 · Jun 7, 2018
Cited By (3)
US 12,206,536 US 12,250,102 US 12,647,205