IP Library Granted Patent US 10,511,417
Granted Patent B2
US 10,511,417 · App. 15/727,831 · Granted Dec 17, 2019

Methods and apparatus for multi-carrier communications with variable channel bandwidth

Inventors: Xiaodong Li (Kirkland, WA); Titus Lo (Bellevue, WA); Kemin Li (Bellevue, WA); Haiming Huang (Bellevue, WA)
Assignee: INTELLECTUAL VENTURES II LLC
H04L5/0007H04L5/0028H04L5/0041H04L5/0044H04L5/0064H04L5/1469H04W72/005H04W72/042H04L5/0021H04L5/0048H04L5/0094H04L27/2613H04W48/16H04W72/00H04W76/10
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Quick Facts
Patent No.
US 10,511,417
App. No.
15/727,831
Granted
Dec 17, 2019
Kind
B2
Abstract

Methods and apparatus for multi-carrier communication with variable channel bandwidth are disclosed, where the time frame structure and the OFDM symbol structure are invariant and the frequency-domain signal structure is flexible. In one embodiment, a mobile station, upon entering a geographic area, uses a core-band to initiate communication and obtain essential information and subsequently switches to full operating bandwidth of the area for the remainder of the communication. If the mobile station operates in a wide range of bandwidths, the mobile station divides the full range into sub-ranges and adjusts its sampling frequency and its FFT size in each sub-range.

Claims (36)

1. A cellular base station comprising:

circuitry configured to transmit a broadcast channel in an orthogonal frequency division multiple access (OFDMA) core-band, wherein the core-band includes an operating center frequency and a first plurality of subcarriers, wherein the core-band is utilized to communicate a primary preamble sufficient to enable radio operations with a mobile station via the core-band, the primary preamble comprising an OFDM symbol corresponding to a particular frequency pattern within the core-band; and

circuitry configured to transmit, after radio operations with the mobile station is established via the core-band, control and data signals to the mobile station using a variable band that includes the first plurality of subcarriers of the core-band and a second plurality of subcarriers of a sideband, and receive, after radio operations with the mobile station is established via the core-band, data signals from the mobile station via the first and second plurality of subcarriers of the variable band.

2. The cellular base station of claim 1 wherein the circuitry configured to transmit the broadcast channel is further configured to transmit radio network information in the broadcast channel.

3. The cellular base station of claim 1 further comprising circuitry configured to transmit synchronization information in the core-band.

4. The cellular base station of claim 1 wherein the circuitry configured to transmit the broadcast channel is further configured to transmit in a time slot format.

5. The cellular base station of claim 1 wherein the cellular base station operates in a frequency division duplex (FDD) mode.

6. The cellular base station of claim 1 wherein the cellular base station operates in a time division duplex (TDD) mode.

7. The cellular base station of claim 1 , wherein the primary preamble includes bandwidth information indicative of supported channels and associated channel bandwidths.

8. The cellular base station of claim 1 , wherein the circuitry to transmit control and data signals is configured to transit from transmitting via the first plurality of subcarriers of the core-band to transmitting via at least the first plurality of subcarriers of the core-band and the second plurality of subcarriers of the sideband after radio operations with the mobile station is established via the core-band.

9. A cellular base station comprising:

circuitry configured to transmit a broadcast channel in an orthogonal frequency division multiple access (OFDMA) core-band, wherein the core-band includes an operating center frequency and a first plurality of subcarriers, wherein the core-band is utilized to communicate a primary preamble sufficient to enable radio operations with a mobile station via the core-band, the primary preamble comprising a direct sequence in a time domain with a frequency content confined within the core-band; and

circuitry configured to transmit, after radio operations with the mobile station is established via the core-band, control and data signals to the mobile station using a variable band that includes the first plurality of subcarriers of the core-band and a second plurality of subcarriers of a sideband, and receive, after radio operations with the mobile station is established via the core-band, data signal from the mobile station via the first and second plurality of subcarriers of the variable band.

10. The cellular base station of claim 9 wherein the circuitry configured to transmit the broadcast channel is further configured to transmit radio network information in the broadcast channel.

11. The cellular base station of claim 9 further comprising circuitry configured to transmit synchronization information in the core-band.

12. The cellular base station of claim 9 wherein the cellular base station operates in a frequency division duplex (FDD) mode.

13. The cellular base station of claim 9 wherein the cellular base station operates in a time division duplex (TDD) mode.

14. The cellular base station of claim 9 , wherein the primary preamble includes bandwidth information indicative of supported channels and associated channel bandwidths.

15. The cellular base station of claim 9 , wherein the circuitry configured to transmit control and data signals is configured to switch from transmitting via the first plurality of subcarriers of the core-band to transmitting via at least the first plurality of subcarriers of the core-band and the second plurality of subcarriers of the sideband after radio operations with the mobile station is established via the core-band.

16. A variable bandwidth communication method comprising:

transmitting a broadcast channel by a cellular base station in an orthogonal frequency division multiple access (OFDMA) core-band, wherein the core-band includes an operating center frequency and a first plurality of subcarriers, wherein the core-band is utilized to communicate a primary preamble sufficient to enable radio operations with a mobile station via the core-band, the primary preamble comprising an OFDM symbol corresponding to a particular frequency pattern within the core-band;

transmitting, after radio operations with the mobile station is established via the core-band, control and data signals to the mobile station by the cellular base station using a variable band that includes the first plurality of subcarriers of the core-band and a second plurality of subcarriers of a sideband; and

receiving, after radio operations with the mobile station is established via the core-band, data signals from the mobile station via the first and second plurality of subcarriers of the variable band.

17. The method of claim 16 wherein said transmitting the broadcast further channel comprises transmitting radio network information in the broadcast channel.

18. The method of claim 16 further comprising transmitting, by the cellular base station, synchronization information in the core-band.

19. The method of claim 16 wherein said transmitting the control and data channels comprises transmitting in a frequency division duplex (FDD) mode.

20. The method of claim 16 wherein said transmitting the control and data channels comprises transmitting in a time division duplex (TDD) mode.

21. The method of claim 16 , wherein said transmitting control and data signals comprises switching from transmitting via the first plurality of subcarriers of the core-band to transmitting via at least the first plurality of subcarriers of the core-band and the second plurality of subcarriers of the sideband after radio operations with the mobile station is established via the core-band.

22. A variable bandwidth communication method comprising:

transmitting a broadcast channel by a cellular base station in an orthogonal frequency division multiple access (OFDMA) core-band, wherein the core-band includes an operating center frequency and a first plurality of subcarriers, wherein the core-band is utilized to communicate a primary preamble sufficient to enable radio operations with a mobile station via the core-band, the primary preamble comprises a direct sequence in a time domain with a frequency content confined within the core-band;

transmitting, after radio operations with the mobile station is established via the core-band control and data signals to the mobile station by the cellular base station using a variable band that includes the first plurality of subcarriers of the core-band and a second plurality of subcarriers of a sideband; and

receiving, after radio operations with the mobile station is established via the core-band, data signals from the mobile station via the first and second plurality of subcarriers of the variable band.

23. The method of claim 22 wherein said transmitting the broadcast channel further comprises transmitting radio network information in the broadcast channel.

24. The method of claim 22 further comprising transmitting, by the cellular base station, synchronization information in the core-band.

25. The method of claim 22 wherein said transmitting the control and data channels comprises transmitting in a frequency division duplex (FDD) mode.

26. The method of claim 22 wherein said transmitting the control and data channels comprises transmitting in a time division duplex (TDD) mode.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 9, 2020
From: NEOCIFIC, INC.
To: DITROMOSSI REMOTE BV, L.L.C.
Reel/Frame 053164/0179 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 12, 2018
From: DITROMOSSI REMOTE BV, L.L.C.
To: INTELLECTUAL VENTURES II LLC
Reel/Frame 047475/0076 →
Continuity (5)
Continuation 14505913 · Oct 3, 2014
Division 12870617 · Aug 27, 2010
Continuation 10583534
Provisional Application 60567233 · May 1, 2004
Related Publication 20180034600A1 · Feb 1, 2018