IP Library Granted Patent US 8,780,690
Granted Patent B2
US 8,780,690 · App. 13/350,559 · Granted Jul 15, 2014

Method and apparatus for interleaving sequence elements of an OFDMA synchronization channel

Inventors: Hidenori Akita (Higashimurayma, JP); Masaya Fukuta (Meguro-ku, JP); Hiroshi Hayashi (Nishitokyo, JP); Kevin L. Baum (Rolling Meadows, IL); Brian K. Classon (Palatine, IL); Vijay Nangia (Algonquin, IL); Robert T. Love (Barrington, IL); Kenneth A. Stewart (Grayslake, IL)
Assignee: Motorola Mobility LLC
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Quick Facts
Patent No.
US 8,780,690
App. No.
13/350,559
Granted
Jul 15, 2014
Kind
B2
Abstract

A method and apparatus is provided for transmitting an orthogonal frequency domain multiple access (OFDMA) signal including a synchronization channel signal transmitted including a plurality of sequence elements interleaved in time and frequency. The synchronization channel signal sequence elements enable an initial acquisition and cell search method with low computational load by providing predetermined time domain symmetry for common sequence elements in OFDMA symbol periods for OFDMA symbol timing detection and frequency error detection in an OFDMA system supporting multiple system bandwidths, both synchronized and un-synchronized systems, a large cell index and an OFDMA symbol structure with both short and long cyclic prefix length.

Claims (44)

1. A method for use in an orthogonal frequency domain multiple access (OFDMA) base station in a wireless communication system including a synchronization channel generator and transmitter circuitry, the method comprising the steps of:

generating a synchronization channel signal by the synchronization channel generator, the synchronization channel signal comprising a plurality of synchronization channel signal sequence elements including a first set of synchronization channel signal sequence elements and a second set of synchronization channel signal sequence elements, wherein the first set of synchronization channel signal sequence elements is based on a general chirp like (GCL) sequence with a sequence index defined in response to first partial cell identification information associated with the OFDMA base station, and wherein the second set of synchronization channel signal sequence elements is based on a second sequence other than a GCL sequence; and

transmitting an OFDMA signal by the transmitter circuitry, the OFDMA signal including the synchronization channel signal and comprising a plurality of OFDMA symbol periods, wherein a first plurality of synchronization channel signal sequence elements are distributed over a first set of multiple proximal symbol periods of the plurality of OFDMA symbol periods and a second plurality of synchronization channel signal sequence elements are distributed over a second set of multiple proximal symbol periods of the plurality of OFDMA symbol periods.

2. The method of claim 1 , wherein transmitting the OFDMA signal comprises transmitting the synchronization channel signal with time domain symmetry within a localized portion of bandwidth within which the synchronization channel is transmitted.

3. The method of claim 1 , wherein the first partial cell identification information includes unique cell identification information identifying the base station within a group of base stations.

4. The method of claim 1 , wherein the second sequence is a Pseudo-random Noise sequence.

5. The method of claim 1 , wherein the second sequence is a maximal length binary sequence.

6. The method of claim 1 , wherein the second sequence is a cyclically shifted maximal length binary sequence with a cyclic shift of the maximal length binary sequence defined in response to second partial cell identification information associated with the OFDMA base station.

7. The method of claim 6 , wherein the second partial cell identification information includes cell group identification information.

8. The method of claim 1 , wherein the step of generating the synchronization channel signal comprises including additional cell specific information in the synchronization channel signal, wherein the additional cell specific information includes frequency reference information.

9. The method of claim 1 , wherein the step of generating the synchronization channel signal comprises including additional cell specific information in the synchronization channel signal, wherein the additional cell specific information includes transmission antenna information.

10. The method of claim 1 , wherein the step of generating the synchronization channel signal comprises including additional cell specific information in the synchronization channel signal, wherein the additional cell specific information includes pilot stream information.

11. The method of claim 1 , wherein the step of generating the synchronization channel signal comprises including additional cell specific information in the synchronization channel signal, wherein the additional cell specific information includes cyclic prefix length information.

12. The method of claim 1 wherein the OFDMA signal further comprises a plurality of subcarriers, and wherein the plurality of synchronization channel signal sequence elements are distributed over every Nth subcarrier of the plurality of subcarriers, where N is an integer greater than one.

13. The method of claim 12 , wherein N equals 2.

14. An orthogonal frequency domain multiple access (OFDMA) base station comprising:

a synchronization channel generator generating a synchronization channel signal comprising a plurality of synchronization channel signal sequence elements including a first set of synchronization channel signal sequence elements and a second set of synchronization channel signal sequence elements, wherein the first set of synchronization channel signal sequence elements is based on a general chirp like (GCL) sequence with a sequence index defined in response to first partial cell identification information associated with the OFDMA base station, and wherein the second set of synchronization channel signal sequence elements is based on a second sequence other than a GCL sequence; and

transmitter circuitry transmitting an OFDMA signal, wherein the OFDMA signal includes the synchronization channel signal and comprises a plurality of OFDMA symbol periods, wherein a first plurality of synchronization channel signal sequence elements are distributed over a first set of multiple proximal symbol periods of the plurality of OFDMA symbol periods and a second plurality of synchronization channel signal sequence elements are distributed over a second set of multiple proximal symbol periods of the plurality of OFDMA symbol periods.

15. The OFDMA base station of claim 14 , wherein the synchronization channel signal is transmitted with time domain symmetry within a localized portion of bandwidth within which the synchronization channel is transmitted.

16. The OFDMA base station of claim 14 , wherein the first partial cell identification information includes unique cell identification information identifying the base station within a group of base stations.

17. The OFDMA base station of claim 14 , wherein the second sequence is a Pseudo-random Noise sequence.

18. The OFDMA base station of claim 14 , wherein the second sequence is a maximal length binary sequence.

19. The OFDMA base station of claim 14 , wherein the second sequence is a cyclically shifted maximal length binary sequence with a cyclic shift of the maximal length binary sequence defined in response to second partial cell identification information associated with the OFDMA base station.

20. The OFDMA base station of claim 19 , wherein the second partial cell identification information includes cell group identification information.

21. The OFDMA base station of claim 14 wherein the synchronization channel signal further comprises cell specific information chosen from cell identification information, frequency reference information, transmission antenna information, pilot stream information, and cyclic prefix length information.

22. The OFDMA base station of claim 14 wherein the OFDMA signal further comprises a plurality of subcarriers, and wherein the plurality of synchronization channel signal sequence elements are distributed over every Nth subcarrier of the plurality of subcarriers, where N is an integer greater than one.

23. A method for use in an orthogonal frequency domain multiple access (OFDMA) base station in a wireless communication system including a synchronization channel generator and transmitter circuitry, the method comprising the steps of:

generating a synchronization channel signal by the synchronization channel generator, the synchronization channel signal comprising a plurality of synchronization channel signal sequence elements including a first set of synchronization channel signal sequence elements and a second set of synchronization channel signal sequence elements, wherein the first set of synchronization channel signal sequence elements is based on a general chirp like (GCL) sequence with a sequence index defined in response to first partial cell identification information associated with the OFDMA base station, and wherein the second set of synchronization channel signal sequence elements is based on a second sequence other than a GCL sequence; and

transmitting an OFDMA signal by the transmitter circuitry, the OFDMA signal including the synchronization channel signal and comprising a plurality of OFDMA symbol periods, wherein a first plurality of synchronization channel signal sequence elements are distributed over a first set of multiple adjacent or proximal symbols within the plurality of OFDMA symbol periods and a second plurality of synchronization channel signal sequence elements are distributed over a second set of multiple adjacent or proximal symbols within the plurality of OFDMA symbol periods.

24. The method of claim 23 , wherein the first set of multiple adjacent or proximal symbols includes first adjacent symbols, and the second set of multiple adjacent or proximal symbols includes second adjacent symbols.

25. The method of claim 23 , wherein the first set of multiple adjacent or proximal symbols includes first proximal symbols, and the second set of multiple adjacent or proximal symbols includes second proximal symbols.

26. The method of claim 23 , wherein the second sequence is a cyclically shifted maximal length binary sequence with a cyclic shift of the maximal length binary sequence defined in response to second partial cell identification information associated with the OFDMA base station.

27. An orthogonal frequency domain multiple access (OFDMA) base station comprising:

a synchronization channel generator generating a synchronization channel signal comprising a plurality of synchronization channel signal sequence elements including a first set of synchronization channel signal sequence elements and a second set of synchronization channel signal sequence elements, wherein the first set of synchronization channel signal sequence elements is based on a general chirp like (GCL) sequence with a sequence index defined in response to first partial cell identification information associated with the OFDMA base station, and wherein the second set of synchronization channel signal sequence elements is based on a second sequence other than a GCL sequence; and

transmitter circuitry transmitting an OFDMA signal, wherein the OFDMA signal includes the synchronization channel signal and comprises a plurality of OFDMA symbol periods, wherein a first plurality of synchronization channel signal sequence elements are distributed over a first set of multiple adjacent or proximal symbols within the plurality of OFDMA symbol periods and a second plurality of synchronization channel signal sequence elements are distributed over a second set of multiple adjacent or proximal symbols within the plurality of OFDMA symbol periods.

28. The OFDMA base station of claim 27 , wherein the first set of multiple adjacent or proximal symbols includes first adjacent symbols, and the second set of multiple adjacent or proximal symbols includes second adjacent symbols.

29. The OFDMA base station of claim 27 , wherein the first set of multiple adjacent or proximal symbols includes first proximal symbols, and the second set of multiple adjacent or proximal symbols includes second proximal symbols.

30. The OFDMA base station of claim 27 , wherein the second sequence is a cyclically shifted maximal length binary sequence with a cyclic shift of the maximal length binary sequence defined in response to second partial cell identification information associated with the OFDMA base station.

31. A method for use in an orthogonal frequency domain multiple access (OFDMA) base station in a wireless communication system including a synchronization channel generator and transmitter circuitry, the method comprising the steps of:

generating a synchronization channel signal by the synchronization channel generator, the synchronization channel signal comprising a plurality of synchronization channel signal sequence elements including a first set of synchronization channel signal sequence elements and a second set of synchronization channel signal sequence elements, wherein the first set of synchronization channel signal sequence elements is based on a general chirp like (GCL) sequence with a sequence index defined in response to first partial cell identification information associated with the OFDMA base station, and wherein the second set of synchronization channel signal sequence elements is based on a cyclically shifted maximal length binary sequence with a cyclic shift of the maximal length binary sequence defined in response to second partial cell identification information associated with the OFDMA base station; and

transmitting an OFDMA signal by the transmitter circuitry, the OFDMA signal including the synchronization channel signal and comprising a plurality of OFDMA symbol periods, wherein the plurality of synchronization channel signal sequence elements are distributed over more than one proximal symbol periods of the plurality of OFDMA symbol periods, at least some of the more than one proximal symbol periods of the plurality of OFDMA symbol periods having a time spacing therebetween of more than one OFDMA symbol period, wherein a first group of the plurality of synchronization channel signal sequence elements is distributed over a first set of OFDMA symbol periods of the more than one proximal symbol periods of the plurality of OFDMA symbol periods and a second group of the plurality of synchronization channel signal sequence elements is distributed over a second set of OFDMA symbol periods of the more than one proximal symbol periods of the plurality of OFDMA symbol periods.

32. An orthogonal frequency domain multiple access (OFDMA) base station comprising:

a synchronization channel generator configured to generate a synchronization channel signal, the synchronization channel signal comprising a plurality of synchronization channel signal sequence elements including a first set of synchronization channel signal sequence elements and a second set of synchronization channel signal sequence elements, wherein the first set of synchronization channel signal sequence elements is based on a general chirp like (GCL) sequence with a sequence index defined in response to first partial cell identification information associated with the OFDMA base station, and wherein the second set of synchronization channel signal sequence elements is based on a cyclically shifted maximal length binary sequence with a cyclic shift of the maximal length binary sequence defined in response to second partial cell identification information associated with the OFDMA base station; and

transmitter circuitry configured to transmit an OFDMA signal, the OFDMA signal including the synchronization channel signal and comprising a plurality of OFDMA symbol periods, wherein the plurality of synchronization channel signal sequence elements are distributed over more than one proximal symbol periods of the plurality of OFDMA symbol periods, at least some of the more than one proximal symbol periods of the plurality of OFDMA symbol periods having a time spacing therebetween of more than one OFDMA symbol period, wherein a first group of the plurality of synchronization channel signal sequence elements is distributed over a first set of OFDMA symbol periods of the more than one proximal symbol periods of the plurality of OFDMA symbol periods and a second group of the plurality of synchronization channel signal sequence elements is distributed over a second set of OFDMA symbol periods of the more than one proximal symbol periods of the plurality of OFDMA symbol periods.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 30, 2014
From: AKITA, HIDENORI; BAUM, KEVIN L.; CLASSON, BRIAN K.; FUKUTA, MASAYA; HAYASHI, HIROSHI; NANGIA, VIJAY; LOVE, ROBERT T.; STEWART, KENNETH A.
To: MOTOROLA, INC.
Reel/Frame 034602/0654 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 30, 2014
From: MOTOROLA MOBILITY LLC
To: GOOGLE TECHNOLOGY HOLDINGS LLC
Reel/Frame 034500/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 19, 2014
From: MOTOROLA, INC.
To: MOTOROLA MOBILITY, INC.
Reel/Frame 034203/0409 →
CERTIFICATE OF CONVERSION Recorded Nov 19, 2014
From: MOTOROLA MOBILITY, INC.
To: MOTOROLA MOBILITY LLC
Reel/Frame 034388/0017 →
Continuity (3)
Continuation 13052777 · Mar 21, 2011
Continuation 11351275 · Feb 8, 2006
Related Publication 20120113927A1 · May 10, 2012