IP Library › Granted Patent US 12,647,169
Granted Patent B2
US 12,647,169 · App. 18/773,122 · Granted Jun 2, 2026

Antenna switching in frequency bands with power spectral density (PSD) limits

Inventors: Kanke Wu (San Diego, CA); Bin Tian (San Diego, CA); Tevfik Yucek (San Jose, CA); Lin Yang (San Diego, CA)
Assignee: QUALCOMM Incorporated
H04B7/0691H04L5/0098
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Quick Facts
Patent No.
US 12,647,169
App. No.
18/773,122
Granted
Jun 2, 2026
Kind
B2
Abstract

This disclosure provides methods, devices and systems for improving wireless communications in power spectral density (PSD)-limited frequency bands. A wireless communication device, having a number (N TX ) of transmit antennas, parses a physical layer (PHY) protocol data unit (PPDU) into a number (N SS ) of spatial streams and modulates the N SS spatial streams on a number (M) of subcarriers. In some implementations, the wireless communication device may transmit the PPDU using a number (N) of the transmit antennas, where N SS ≤N<N TX . In some other implementations, the wireless communication device may subdivide the M subcarriers into subcarrier groups and may transmit each subcarrier group using a respective subset of the N TX transmit antennas, where the number of transmit antennas used to transmit each subcarrier group is greater than or equal to the number of spatial streams modulated on the subcarriers in the group but less than N TX .

Claims (63)

1 . A wireless communication device, comprising:

a plurality of transmit antennas;

at least one memory; and

at least one processor communicatively coupled with the at least one memory, the at least one processor configured to:

parse a physical layer protocol data unit into at least one spatial stream;

modulate the at least one spatial stream on a set of subcarriers spanning a bandwidth associated with a wireless channel;

map the set of subcarriers to a subset of transmit antennas of the plurality of transmit antennas based on a power spectral density limit associated with the wireless channel; and

transmit the physical layer protocol data unit to a receiving device via the subset of transmit antennas based on a mapping of the set of subcarriers.

2 . The wireless communication device of claim 1 , wherein a first quantity of transmit antennas in the subset of transmit antennas is greater than or equal to a first quantity of spatial streams in the at least one spatial stream.

3 . The wireless communication device of claim 1 , wherein the mapping of the set of subcarriers to the subset of transmit antennas is based on a lookup table that indicates the subset of transmit antennas to be used for transmitting the at least one spatial stream.

4 . The wireless communication device of claim 1 , wherein the mapping of the set of subcarriers to the subset of transmit antennas is based on a lookup table that stores historical data associated with previous transmissions by the wireless communication device.

5 . The wireless communication device of claim 1 , wherein the at least one processor is configured to:

receive channel state information (CSI) from the receiving device, the set of subcarriers being mapped to the subset of transmit antennas based on the CSI.

6 . The wireless communication device of claim 5 , wherein the subset of transmit antennas are associated with corresponding highest signal-to-noise ratios (SNRs) or corresponding highest signal-to-interference-plus-noise ratio (SINRs) indicated by the CSI.

7 . The wireless communication device of claim 5 , wherein the subset of transmit antennas are associated with corresponding highest channel gains indicated by the CSI.

8 . The wireless communication device of claim 5 , wherein the subset of transmit antennas include a first transmit antenna associated with a highest channel gain indicated by the CSI and a second transmit antenna having a lowest correlation, among the plurality of transmit antennas, with the first transmit antenna.

9 . The wireless communication device of claim 8 , wherein the subset of transmit antennas includes a third transmit antenna having a lowest correlation, among the plurality of transmit antennas, with the first transmit antenna and the second transmit antenna.

10 . The wireless communication device of claim 5 , wherein the subset of transmit antennas include a first transmit antenna associated with a first highest channel gain indicated by the CSI and a second transmit antenna associated with a highest channel gain in a first direction that is orthogonal to the first transmit antenna based on the CSI.

11 . The wireless communication device of claim 10 , wherein the subset of transmit antennas include a third transmit antenna having a highest channel gain in a second direction orthogonal to the first transmit antenna and the second transmit antenna based on the CSI.

12 . The wireless communication device of claim 1 , wherein the at least one processor is configured to:

receive antenna selection information from the receiving device indicating the subset of transmit antennas.

13 . A method for wireless communication by a wireless communication device having a plurality of transmit antennas, comprising:

parsing a physical layer protocol data unit into a at least one spatial stream;

modulating the at least one spatial stream on a set of subcarriers spanning a bandwidth associated with a wireless channel;

mapping the set of subcarriers to a subset of transmit antennas of the plurality of transmit antennas based on a power spectral density limit associated with the wireless channel; and

transmit the physical layer protocol data unit to a receiving device via the subset of transmit antennas based on a mapping of the set of subcarriers.

14 . The method of claim 13 , wherein the mapping of the set of subcarriers to the subset of transmit antennas is based on a lookup table.

15 . The method of claim 13 , further comprising:

receiving channel state information (CSI) from the receiving device, the set of subcarriers being mapped to the subset of transmit antennas based on the CSI.

16 . A wireless communication device comprising:

a plurality of transmit antennas;

at least one memory; and

at least one processor communicatively coupled with the at least one memory, the at least one processor configured to cause the wireless communication device to:

parse a physical layer protocol data unit into at least one spatial stream;

modulate the at least one spatial stream on a set of subcarriers spanning a bandwidth associated with a wireless channel;

mapping a first subset of subcarriers of the set of subcarriers to a first subset of transmit antennas of the plurality of transmit antennas based on a first quantity of spatial streams modulated on the first subset of subcarriers;

mapping a second subset of subcarriers of the set of subcarriers to a second subset of transmit antennas of the plurality of transmit antennas based on a second quantity of spatial streams modulated on the second subset of subcarriers;

transmitting a first portion of the physical layer protocol data unit to a receiving device via the first subset of transmit antennas based on a first mapping of the first subset of subcarriers; and

transmitting a second portion of the physical layer protocol data unit to the receiving device via the second subset of transmit antennas based on a second mapping of the second subset of subcarriers.

17 . The wireless communication device of claim 16 , wherein a first quantity of transmit antennas in the first subset of transmit antennas is equal to the first quantity of spatial streams, and a second quantity of transmit antennas in the second subset of transmit antennas is equal to the second quantity of spatial streams.

18 . The wireless communication device of claim 16 , wherein the first subset of transmit antennas are different from the second subset of transmit antennas.

19 . The wireless communication device of claim 16 , wherein the first mapping of the first subset of subcarriers and the second mapping of the second subset of subcarriers to the first subset of transmit antennas and the second subset of transmit antennas, respectively, is based on a power spectral density (PSD) limit associated with the wireless channel.

20 . The wireless communication device of claim 16 , wherein subcarriers belonging to the first subset of subcarriers are exclusive to the first subset of subcarriers, and subcarriers belonging to the second subset of subcarriers are exclusive to the second subset of subcarriers.

21 . The wireless communication device of claim 16 , wherein the first subset of subcarriers corresponds to one or more first resource units (RUs) and the second subset of subcarriers corresponds to one or more second RUs.

22 . The wireless communication device of claim 16 , wherein the first subset of subcarriers includes a different quantity of subcarriers from the second subset of subcarriers.

23 . The wireless communication device of claim 16 , wherein the first mapping of the first subset of subcarriers to the first subset of transmit antennas or the second mapping of the second subset of subcarriers to the second subset of transmit antennas is based on a lookup table that indicates first subset of transmit antennas to be used for transmitting the first quantity of spatial streams and the second subset of transmit antennas to be used for transmitting the second quantity of spatial streams.

24 . The wireless communication device of claim 16 , wherein the first mapping of the first subset of subcarriers to the first subset of transmit antennas or the second mapping of the second subset of subcarriers to the second subset of transmit antennas is based on a lookup table that stores historical data associated with previous transmissions by the wireless communication device.

25 . The wireless communication device of claim 16 , wherein the at least one processor is configured to:

receiving channel state information (CSI) from the receiving device, the first mapping of the first subset of subcarriers to the first subset of transmit antennas or the second mapping of the second subset of subcarriers to the second subset of transmit antennas being based on the CSI.

26 . The wireless communication device of claim 25 , wherein the first mapping of the first subset of subcarriers to the first subset of transmit antennas is based on a lookup table and the second mapping of the second subset of subcarriers to the second subset of transmit antennas is based on the CSI.

27 . The wireless communication device of claim 16 , wherein the at least one processor is configured to:

receiving antenna selection information from the receiving device indicating the first subset of transmit antennas or the second subset of transmit antennas.

28 . The wireless communication device of claim 16 , wherein the at least one processor is configured to:

mapping a third subset of subcarriers of the set of subcarriers to a third subset of transmit antennas of the plurality of transmit antennas based on a third quantity of the spatial streams modulated on the third subset of subcarriers; and

transmitting a third portion of the physical layer protocol data unit to the receiving device via the third subset of transmit antennas based on a third mapping of the third subset of subcarriers to the third subset of transmit antennas.

29 . A method for wireless communication by a wireless communication device having a plurality of transmit antennas, comprising:

parsing a physical layer protocol data unit into at least one spatial stream;

modulating the at least one spatial stream on a set of subcarriers spanning a bandwidth associated with a wireless channel;

mapping a first subset of subcarriers of the set of subcarriers to a first subset of transmit antennas of the plurality of transmit antennas based on a first quantity of spatial streams modulated on the first subset of subcarriers;

mapping a second subset of subcarriers of the set of subcarriers to a second subset of transmit antennas of the plurality of transmit antennas based on a second quantity of spatial streams modulated on the second subset of subcarriers;

transmit a first portion of the physical layer protocol data unit to a receiving device via the first subset of transmit antennas based on a first mapping of the first subset of subcarriers to the first subset of subcarriers; and

transmit a second portion of the physical layer protocol data unit to the receiving device via the second subset of transmit antennas based on a second mapping of the second subset of subcarriers to the second subset of subcarriers.

30 . The method of claim 29 , wherein the first subset of subcarriers is nonoverlapping with the second subset of subcarriers.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 16, 2024
From: WU, KANKE; TIAN, BIN; YUCEK, TEVFIK; YANG, LIN
To: QUALCOMM INCORPORATED
Reel/Frame 067995/0495 →
Continuity (2)
Continuation 17820006 · Aug 16, 2022
Related Publication 20240372597A1 · Nov 7, 2024
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