IP Library Granted Patent US 10,567,128
Granted Patent B2
US 10,567,128 · App. 16/213,412 · Granted Feb 18, 2020

System and method for OFDMA tone allocation in next generation Wi-Fi networks

Inventors: Jung Hoon Suh (Kanata, CA); Osama Aboul-Magd (Kanata, CA)
Assignee: Huawei Technologies Co., Ltd.
H04L5/0007H04L1/0009H04L5/0048H04L5/0053H04L27/2602H04W72/0453H04L27/2636H04W84/12
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Quick Facts
Patent No.
US 10,567,128
App. No.
16/213,412
Granted
Feb 18, 2020
Kind
B2
Abstract

An orthogonal frequency division multiple access (OFDMA) frame tone allocation includes a 256 tone payload consisting of 228 data and pilot tones and 28 null tones. The 28 null tones consist of guard tones and at least one direct current (DC) tone. In one example, the 256 tone payload consists of 224 data tones, 4 common pilot tones, and 28 null tones. In another example, the 256 tone payload consists of 222 data tones, 6 common pilot tones, and 28 null tones. In yet another example, the 256 tone payload may consist of 220 data tones, 8 common pilot tones, and 28 null tones. The OFDMA frame may be a downlink OFDMA frame or an uplink OFDMA frame.

Claims (28)

1. A method, the method comprising:

receiving, by a first mobile device, a downlink orthogonal frequency division multiple access (OFDMA) frame over a channel spanning at least 20 megahertz (MHz) in the frequency domain, wherein the downlink OFDMA frame carries a 256-tone payload over the channel, the 256-tone payload including data tones, null tones, and pilot tones, based on a set tone allocation; and wherein the data tones and the pilot tones are partitioned into a plurality of resource units in the set tone allocation; wherein different resource units (RUs) in the downlink OFDMA frame are communicated by an access point (AP) to different mobile devices including the first mobile device, and wherein each of the RUs in the downlink OFDMA frame carries at least two pilot tones; and

performing, by the first mobile device, residual carrier frequency offset estimation on the downlink OFDMA frame by tracking phase components of the pilot tones carried by each of the RUs.

2. The method of claim 1 , wherein the first mobile device performs the residual carrier frequency offset estimation on the downlink OFDMA frame by tracking phase components of at least two pilot tones carried by each of the RUs.

3. The method of claim 1 , wherein the RUs comprises a first RU transmitted to the first mobile device and a second RU transmitted to a second mobile device of the different mobile devices, and pilot tones carried by the first RU are separate from pilot tones carried by the second RU.

4. The method of claim 3 , wherein the first RU carries a first number of pilot tones, and the second RU carries a second number of pilot tones, the first number being different from the second number.

5. The method of claim 1 , the null tones including guard tones and at least one direct current (DC) tone.

6. A first mobile device comprising:

a processor; and

a computer readable storage medium storing programming for execution by the processor, the programming including instructions to:

receive a downlink orthogonal frequency division multiple access (OFDMA) frame over a channel spanning at least 20 megahertz (MHz) in the frequency domain, wherein the downlink OFDMA frame carries a 256-tone payload over the channel, the 256-tone payload including data tones, null tones, and pilot tones, based on a set tone allocation; and wherein the data tones and the pilot tones are partitioned into a plurality of resource units in the set tone allocation; wherein different resource units (RUs) in the downlink OFDMA frame are communicated by an access point (AP) to different mobile devices including the first mobile device, and wherein each of the RUs in the downlink OFDMA frame carries at least two pilot tones; and

perform residual carrier frequency offset estimation on the downlink OFDMA frame by tracking phase components of the pilot tones carried by each of the RUs.

7. The first mobile device of claim 6 , wherein the first mobile device performs the residual carrier frequency offset estimation on the downlink OFDMA frame by tracking phase components of at least two pilot tones carried by each of the RUs.

8. The first mobile device of claim 6 , wherein the RUs comprises a first RU transmitted to the first mobile device and a second RU transmitted to a second mobile device of the different mobile devices, and pilot tones carried by the first RU are separate from pilot tones carried by the second RU.

9. The first mobile device of claim 8 , wherein the first RU carries a first number of pilot tones, and the second RU carries a second number of pilot tones, the first number being different from the second number.

10. The first mobile device of claim 6 , the null tones including guard tones and at least one direct current (DC) tone.

11. A method, the method comprising:

transmitting, by an access point (AP), a downlink orthogonal frequency division multiple access (OFDMA) frame over a channel spanning at least 20 megahertz (MHz) in the frequency domain, wherein the downlink OFDMA frame carries a 256-tone payload over the channel, the 256-tone payload including data tones, null tones, and pilot tones, based on a set tone allocation; and wherein the data tones and pilot tones are partitioned into a plurality of resource units in the set tone allocation; wherein different resource units (RUs) in the downlink OFDMA frame are communicated by the AP to different mobile devices including a first mobile device, wherein each of the RUs in the downlink OFDMA frame carries at least two pilot tones, and wherein the first mobile device performs residual carrier frequency offset estimation on the downlink OFDMA frame by tracking phase components of the pilot tones carried by each of the RUs.

12. The method of claim 11 , wherein the first mobile device performs the residual carrier frequency offset estimation on the downlink OFDMA frame by tracking phase components of at least two pilot tones carried by each of the RUs.

13. The method of claim 11 , wherein the RUs comprises a first RU transmitted to the first mobile device and a second RU transmitted to a second mobile device of the different mobile devices, and pilot tones carried by the first RU are separate from pilot tones carried by the second RU.

14. The method of claim 13 , wherein the first RU carries a first number of pilot tones, and the second RU carries a second number of pilot tones, the first number being different from the second number.

15. An access point (AP) comprising:

a processor; and

a computer readable storage medium storing programming for execution by the processor, the programming including instructions to:

transmit a downlink orthogonal frequency division multiple access (OFDMA) frame over a channel spanning at least 20 megahertz (MHz) in the frequency domain, wherein the downlink OFDMA frame carries a 256-tone payload over the channel, the 256-tone payload including data tones, null tones, and pilot tones, based on a set tone allocation; and wherein the data tones and the pilot tones are partitioned into a plurality of resource units in the set tone allocation; wherein different resource units (RUs) in the downlink OFDMA frame are communicated by the AP to different mobile devices including a first mobile device, wherein each of the RUs in the downlink OFDMA frame carries at least two pilot tones, and wherein the first mobile device performs residual carrier frequency offset estimation on the downlink OFDMA frame by tracking phase components of the pilot tones carried by each of the RUs.

16. The AP of claim 15 , wherein the first mobile device performs the residual carrier frequency offset estimation on the downlink OFDMA frame by tracking phase components of at least two pilot tones carried by each of the RUs.

17. The AP of claim 15 , wherein the RUs comprises a first RU transmitted to the first mobile device and a second RU transmitted to a second mobile device of the different mobile devices, and pilot tones carried by the first RU are separate from pilot tones carried by the second RU.

18. The AP of claim 17 , wherein the first RU carries a first number of pilot tones, and the second RU carries a second number of pilot tones, the first number being different from the second number.

Continuity (6)
Continuation 15625795 · Jun 16, 2017
Continuation 14738643 · Jun 12, 2015
Provisional Application 62011475 · Jun 12, 2014
Provisional Application 62020902 · Jul 3, 2014
Provisional Application 62028208 · Jul 23, 2014
Related Publication 20190109680A1 · Apr 11, 2019