IP Library › Granted Patent US 10,027,512
Granted Patent B2
US 10,027,512 · App. 15/110,090 · Granted Jul 17, 2018

Method and apparatus for sounding in wireless communication system

Inventor: Yongho Seok (Seoul, KR)
Assignee: LG ELECTRONICS INC.
H04L25/0202H04B7/063H04B7/0617H04B7/0626H04B7/0634H04L5/0048H04L5/0057H04L5/0092H04L27/261H04L27/2602H04L27/265H04L27/36H04L5/0007H04L25/0224H04W84/12H04W88/08
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Quick Facts
Patent No.
US 10,027,512
App. No.
15/110,090
Granted
Jul 17, 2018
Kind
B2
Abstract

Disclosed are a method and an apparatus for sounding in a wireless communication system. A method for sounding in a wireless local area network (WLAN) may comprise: a step of receiving, by an STA, an NDPA frame from an AP; a step of receiving, by the STA, an NDP frame on the basis of identification information included in the NDPA frame; and a step of transmitting, by the STA, channel state information determined on the basis of the NDP frame to the AP, wherein the NDPA frame may be demodulated on the basis of a first FFT and the NDP frame may be demodulated on the basis of a second FFT.

Claims (45)

1. A sounding method in a wireless LAN, the sounding method comprising:

receiving a NDPA (null data packet announcement) frame by a STA (station) from an AP (access point);

receiving a NDP (null data packet) frame based on identification information included in the NDPA frame by the STA; and

transmitting channel state information being decided based on the NDP frame by the STA to the AP, and

wherein the NDPA frame is demodulated based on a first FFT (fast fourier transform),

wherein, if the NDP frame is demodulated based on a second FFT, after receiving the NDP frame, the STA changes a FFT within a SIFS (short inter-frame symbol) time from the first FFT to the second FFT,

wherein the first FFT corresponds to 64 FFT, and

wherein the second FFT corresponds to 256 FFT or 512 FFT.

2. The method of claim 1 , wherein the NDPA frame includes a bandwidth field and a number of spatial streams (Nsts) field,

wherein the bandwidth field includes information on a size of a channel band for transmitting the NDP frame, and

wherein the Nsts field includes information on a number of spatial streams for transmitting the NDP frame.

3. The method of claim 2 , wherein the channel state information includes a beam-forming feedback matrix, and

wherein the beam-forming feedback matrix is decided based on a sub-carrier being indicated by a specific index in accordance with a size of the channel band.

4. The method of claim 1 ,

wherein, if the NDP frame is demodulated based on a combination of the first FFT and the second FFT, the NDP frame includes a first field and a second field, wherein the first field is demodulated based on the first FFT, and wherein the second field is demodulated based on the second FFT.

5. The method of claim 4 , wherein the first field is transmitted over 3 OFDM (orthogonal frequency division multiplexing) symbols,

wherein the 3 OFDM symbols include a first OFDM symbol, a second OFDM symbol, and a third OFDM symbol,

wherein a first symbol respective to the first field being received over the first OFDM symbol corresponds to a symbol being modulated based on BPSK (binary phase shifting keying),

wherein a second symbol respective to the first field being received over the second OFDM symbol corresponds to a symbol being modulated based on QBPSK (quadrature binary phase shifting keying),

wherein a third symbol respective to the first field being received over the third OFDM symbol corresponds to a symbol being modulated based on the BPSK, and

wherein the third OFDM symbol corresponds to time resource for FFT transition between the first FFT and the second FFT.

6. A STA (station) performing sounding in a wireless LAN, the STA comprising:

a RF (radio frequency) unit configured to transmit or receive radio signals; and

a processor being operatively connected to the RF unit,

wherein the processor is configured to:

receive a NDPA (null data packet announcement) frame from an AP (access point);

receive a NDP (null data packet) frame based on identification information included in the NDPA frame, and

transmit channel state information being decided based on the NDP frame to the AP, and

wherein the NDPA frame is demodulated based on first FFT (fast fourier transform), and

wherein, if the NDP frame is demodulated based on a second FFT, after receiving the NDP frame, the STA changes a FFT within a SIFS (short inter-frame symbol) time from the first FFT to the second FFT,

wherein the first FFT corresponds to 64 FFT, and

wherein the second FFT corresponds to 256 FFT or 512 FFT.

7. The STA of claim 6 , wherein the NDPA frame includes a bandwidth field and a number of spatial streams (Nsts) field,

wherein the bandwidth field includes information on a size of a channel band for transmitting the NDP frame, and

wherein the Nsts field includes information on a number of spatial streams for transmitting the NDP frame.

8. The STA of claim 7 , wherein the channel state information includes a beam-forming feedback matrix, and

wherein the beam-forming feedback matrix is decided based on a sub-carrier being indicated by a specific index in accordance with a size of the channel band.

9. The STA of claim 6 ,

wherein, if the NDP frame is demodulated based on the first FFT and the second FFT, the NDP frame includes a first field and a second field, wherein the first field is demodulated based on the first FFT, and wherein the second field is demodulated based on the second FFT.

10. The STA of claim 9 , wherein the first field is transmitted over 3 OFDM (orthogonal frequency division multiplexing) symbols,

wherein the 3 OFDM symbols include a first OFDM symbol, a second OFDM symbol, and a third OFDM symbol,

wherein a first symbol respective to the first field being received over the first OFDM symbol corresponds to a symbol being modulated based on BPSK (binary phase shifting keying),

wherein a second symbol respective to the first field being received over the second OFDM symbol corresponds to a symbol being modulated based on QBPSK (quadrature binary phase shifting keying),

wherein a third symbol respective to the first field being received over the third OFDM symbol corresponds to a symbol being modulated based on the BPSK, and

wherein the third OFDM symbol corresponds to time resource for FFT transition between the first FFT and the second FFT.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 6, 2016
From: SEOK, YONGHO
To: LG ELECTRONICS INC.
Reel/Frame 039090/0273 →
Continuity (3)
Provisional Application 61924176 · Jan 6, 2014
Provisional Application 61936278 · Feb 5, 2014
Related Publication 20160330047A1 · Nov 10, 2016