IP Library Granted Patent US 8,520,550
Granted Patent B2
US 8,520,550 · App. 13/667,794 · Granted Aug 27, 2013

Intra-cell and inter-cell interference mitigation methods for orthogonal frequency-division multiple access cellular networks

Inventors: Naofal Al-Dhahir (Plano, TX); Oren E. Eliezer (Plano, TX); Dennis I. Robbins (Richardson, TX); Aditya Awasthi (Richardson, TX); Zahid Islam (Dallas, TX); Ahmad Gomaa (Qaliobiah, EG)
Assignee: XW LLC
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Quick Facts
Patent No.
US 8,520,550
App. No.
13/667,794
Granted
Aug 27, 2013
Kind
B2
Abstract

Various embodiments of a method of mitigating interference in an OFDMA cellular network and a user terminal incorporating various of the embodiments. In one embodiment, the method includes: (1) selecting at least one dominant interfering signal, (2) generating estimates of a desired signal and the at least one dominant interfering signal, (3) jointly deciding based on the estimates such that an energy of a residual error is reduced and (4) mitigating interference based on the estimates.

Claims (98)

1. A method of mitigating interference in an orthogonal frequency-division multiple access cellular network, comprising:

selecting at least one dominant interfering signal, wherein intra-cell interfering symbols of said at least one dominant interfering signal are calculated using a non-iterative linear equalizer;

generating estimates of a desired signal and said at least one dominant interfering signal;

jointly deciding based on said estimates such that an energy of a residual error is reduced; and

mitigating interference based on said estimates;

wherein said selecting, generating, jointly deciding, and mitigating are performed on a processor.

2. The method as recited in claim 1 wherein said energy of said residual error is at least nearly minimized.

3. The method as recited in claim 1 further comprising:

shortening said desired signal and said at least one dominant interfering signal; and

synchronizing said desired signal and said at least one dominant interfering signal.

4. The method as recited in claim 1 wherein said generating comprises generating possible combinations of said desired signal, said method further comprising:

computing channel frequency response coefficients of said desired signal; and

generating an estimate of multiple ones of said dominant interfering signal using a linear filter for each of said possible combinations.

5. The method as recited in claim 1 wherein said generating comprises generating said possible combinations of said desired signal and said at least one dominant interfering signal, said method further comprising:

computing channel frequency response coefficients of said desired signal and said at least one dominant interfering signal; and

computing said estimates using reduced-complexity near-maximum likelihood detection for each of said possible combinations.

6. The method as recited in claim 1 wherein said generating comprises generating said possible combinations of said desired signal using a beamformer vector, said method further comprising:

computing channel frequency response coefficients of said desired signal; and

computing said estimates using reduced-complexity near-maximum likelihood detection for each of said possible combinations.

7. The method as recited in claim 1 wherein said generating comprises generating said possible combinations of desired signal and said at least one dominant interfering signal, said method further comprising:

computing channel frequency response coefficients of said desired signal and said at least one dominant interfering signal; and

generating an estimate of another of multiple ones of said dominant interfering signal using a linear filter.

8. The method as recited in claim 1 wherein said generating comprises generating said possible combinations of said desired signal, said method further comprising:

computing channel frequency response coefficients of said desired signal and said at least one dominant interfering signal; and

generating estimates of said at least one dominant interfering signal using a linear filter.

9. The method as recited in claim 1 wherein said generating comprises generating said possible combinations of some of said desired signal and at least one dominant interfering signal, said method further comprising:

computing channel frequency response coefficients of said desired signal and fewer than all of said dominant interfering signal; and

generating estimates of remaining ones of said at least one dominant interfering signal using a linear filter.

10. The method as recited in claim 1 wherein one of said at least one dominant interfering signal is an intra-cell interfering signal.

11. The method as recited in claim 1 wherein said generating comprises:

processing channel knowledge of said desired signal and said at least one dominant interfering signal; and

processing constellations of said desired signal and said at least one dominant interfering signal.

12. A method of mitigating interference in a multiple-input, multiple-output orthogonal frequency-division multiple access cellular network, comprising:

obtaining a constellation size of an intra-cell interfering signal;

generating estimates of a desired signal and said intra-cell interfering signal using joint reduced-complexity near-maximum-likelihood detection;

computing statistics of inter-cell interfering signals; and

mitigating interference based on said estimates and statistics;

wherein said obtaining, generating, computing, and mitigating are performed by a processor.

13. The method as recited in claim 12 wherein said generating comprises:

processing channel knowledge of said desired signal and said at least one dominant interfering signal; and

processing constellations of said desired signal and said at least one dominant interfering signal.

14. The method as recited in claim 13 wherein said generating comprises:

canceling effects of possible combinations of said desired signal and said intra-cell interfering signal;

calculating a weighted energy of residual error for each said possible combination; and

deciding jointly on said desired signal and said intra-cell interfering signal that minimize a weighted residual error energy.

15. The method as recited in claim 14 wherein said desired signal and said intra-cell interfering signal are intended for a same user.

16. The method as recited in claim 14 wherein said desired signal and said intra-cell interfering signal are intended for different users.

17. The method as recited in claim 12 wherein said obtaining is not possible and said method further comprises:

computing estimates of said intra-cell interfering signals in a constellation space;

determining options for said intra-cell interference signal for standardized signal constellations; and

deciding jointly on said desired signal and said intra-cell interfering signal.

18. The method as recited in claim 17 wherein said determining comprises:

estimating intra-cell interference for said options;

detecting possible intra-cell interfering signal constellations; and

determining a weighted residual error energy of said combinations.

19. The method as recited in claim 17 wherein said deciding comprises:

comparing only 4-QAM and 16-QAM constellations; and

assigning intra-cell interference signal constellation from said 4-QAM and 16-QAM constellations irrespective of said intra-cell interfering signal.

20. A user terminal configured to effect wireless communication with an orthogonal frequency-division multiple access cellular network and comprising:

an antenna;

an uplink coupled to said antenna; and

a downlink coupled to said antenna and including a baseband section configured to:

select at least one dominant interfering signal, wherein intra-cell interfering symbols of said at least one dominant interfering signal are calculated using a non-iterative linear equalizer,

generate estimates of a desired signal and said at least one dominant interfering signal,

jointly decide based on said estimates such that an energy of a residual error is reduced, and

mitigate interference based on said estimates.

21. The user terminal as recited in claim 20 wherein said energy of said residual error is at least nearly minimized.

22. The user terminal as recited in claim 20 wherein said downlink is further configured to:

shorten said desired signal and said at least one dominant interfering signal; and

synchronize said desired signal and said at least one dominant interfering signal.

23. The user terminal as recited in claim 20 wherein said downlink is further configured to:

generate possible combinations of said desired signal;

compute channel frequency response coefficients of said desired signal; and

generate an estimate of multiple ones of said dominant interfering signal using a linear filter for each of said possible combinations.

24. The user terminal as recited in claim 20 wherein said downlink is further configured to:

generate said possible combinations of said desired signal and said at least one dominant interfering signal;

compute channel frequency response coefficients of said desired signal and said at least one dominant interfering signal; and

compute said estimates using reduced-complexity near-maximum likelihood detection for each of said possible combinations.

25. The user terminal as recited in claim 20 wherein said downlink is further configured to:

generate said possible combinations of said desired signal using a beamformer vector;

computing channel frequency response coefficients of said desired signal; and

computing said estimates using reduced-complexity near-maximum likelihood detection for each of said possible combinations.

26. The user terminal as recited in claim 20 wherein said downlink is further configured to:

generate said possible combinations of desired signal and said at least one dominant interfering signal;

compute channel frequency response coefficients of said desired signal and said at least one dominant interfering signal; and

generate an estimate of another of multiple ones of said dominant interfering signal using a linear filter.

27. The user terminal as recited in claim 20 wherein said downlink is further configured to:

generate said possible combinations of said desired signal;

compute channel frequency response coefficients of said desired signal and said at least one dominant interfering signal; and

generate estimates of said at least one dominant interfering signal using a linear filter.

28. The user terminal as recited in claim 20 wherein said downlink is further configured to:

generate said possible combinations of some of said desired signal and at least one dominant interfering signal, said method further comprising:

compute channel frequency response coefficients of said desired signal and fewer than all of said dominant interfering signal; and

generate estimates of remaining ones of said at least one dominant interfering signal using a linear filter.

29. The method as recited in claim 20 wherein one of said at least one dominant interfering signal is an intra-cell interfering signal.

30. The user terminal as recited in claim 20 wherein said downlink is further configured to:

process channel knowledge of said desired signal and said at least one dominant interfering signal; and

process constellations of said desired signal and said at least one dominant interfering signal.

Assignments (5)
CONFIRMATORY LICENSE Recorded Mar 11, 2015
From: XW, LLC DBA XTENDWAVE
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 035182/0036 →
SECURITY INTEREST Recorded Jul 7, 2014
From: EVERSET TECHNOLOGIES, INC.
To: GRINDSTONE CAPITAL, LLC
Reel/Frame 033279/0918 →
CONFIRMATORY LICENSE Recorded Aug 9, 2013
From: XW, LLC DBA XTENDWAVE
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 030994/0530 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 10, 2013
From: XW, LLC
To: GRINDSTONE CAPITAL, LLC
Reel/Frame 030186/0156 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 5, 2012
From: AL-DHAHIR, NAOFAL; AWASTHI, ADITYA; ELIEZER, OREN E.; ISLAM, ZAHID; ROBBINS, DENNIS I.; GOMAA, AHMAD
To: XW, LLC D/B/A XTENDWAVE
Reel/Frame 029413/0598 →
Continuity (5)
Provisional Application 61555380 · Nov 3, 2011
Provisional Application 61637380 · Apr 24, 2012
Provisional Application 61648376 · May 17, 2012
Provisional Application 61691106 · Aug 20, 2012
Related Publication 20130114451A1 · May 9, 2013