IP Library Granted Patent US 7,672,391
Granted Patent B2
US 7,672,391 · App. 12/250,795 · Granted Mar 2, 2010

MIMO receivers having one or more additional receive paths

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Quick Facts
Patent No.
US 7,672,391
App. No.
12/250,795
Granted
Mar 2, 2010
Kind
B2
Abstract

In a multiple-input, multiple-output (MIMO) system, a receiver is implemented with at least one additional receive path beyond the number of transmit antennas used to transmit the signals (e.g., wireless OFDM signals) received at the receiver. In one embodiment, the additional receive path is used to reduced co-channel interference (CCI) in the recovered OFDM signals. In particular, each receive path applies recursive filtering to generate separate subcarrier signals. A processor converts the separate subcarrier signals from the different receive paths into a first set of subcarrier signals corresponding to each transmitted OFDM signal, where each first set of subcarrier signals has desired signal and possibly CCI. The processor also generates a second set of subcarrier signals corresponding to the CCI. The processor subtracts portions of the second set of subcarrier signals from each first set of subcarrier signals to generate recovered OFDM signals having reduced CCI.

Claims (83)

1. A receiver for receiving M multi-carrier signals transmitted from M transmit antennas, M>1, the receiver comprising:

at least (M+1) receive paths, each receive path adapted to receive the M multi-carrier signals and separate the received signals into separate subcarrier signals; and

a processor adapted to process the separate subcarrier signals to generate a recovered version of each of the M transmitted multi-carrier signals, wherein:

each receive path comprises:

a receive antenna adapted to receive the multi-carrier signals;

an analog-to-digital converter adapted to digitize the received multi-carrier signals; and

a transform block adapted to convert the digitized multi-carrier signals in a time domain into the separate subcarrier signals in a frequency domain; and

the transform block comprises:

a first transformer adapted to convert an initial set of the digitized multi-carrier signals into an initial set of separate subcarrier signals in the frequency domain; and

a second transformer adapted to convert subsequent sets of the digitized multi-carrier signals into subsequent sets of separate subcarrier signals in the frequency domain based on the initial set of separate subcarrier signals.

2. The invention of claim 1 , wherein each receive path further comprises a cyclic prefix removal block adapted to remove a cyclic prefix from the digitized multi-carrier signals prior to application to the transform block.

3. The invention of claim 1 , wherein:

the first transformer is based on a fast Fourier transform; and

the second transformer is based on a discrete Fourier transform.

4. The invention of claim 1 , wherein the second transformer is adapted to apply recursive filtering in converting the subsequent sets of the digitized multi-carrier signals into the subsequent sets of separate subcarrier signals.

5. The invention of claim 4 , wherein the recursive filtering of the second transformer is adapted to be initialized based on the initial set of separate subcarrier signals from the first transformer.

6. The invention of claim 1 , wherein:

the multi-carrier signals are orthogonal frequency division multiplexing (OFDM) signals; and

the receiver is adapted to be configured in a multiple-input, multiple-output (MIMO) wireless local area network (WLAN) system.

7. The invention of claim 1 , wherein the second transformer is adapted to generate the subsequent sets of separate subcarrier signals independent of any subsequent sets of separate subcarrier signals generated by the first transformer.

8. A receiver-implemented method for receiving M multi-carrier signals transmitted from M transmit antennas, M>1, the method comprising:

receiving the M multi-carrier signals at least (M+1) receive paths;

separating, in each receive path, the received signals into separate subcarrier signals; and

processing the separate subcarrier signals to generate a recovered version of each of the M transmitted multi-carrier signals, wherein:

each receive path comprises:

a receive antenna that receives the multi-carrier signals;

an analog-to-digital converter that digitizes the received multi-carrier signals; and

a transform block that converts the digitized multi-carrier signals in a time domain into the separate subcarrier signals in a frequency domain; and

the transform block comprises:

a first transformer that converts an initial set of the digitized multi-carrier signals into an initial set of separate subcarrier signals in the frequency domain; and

a second transformer that converts subsequent sets of the digitized multi-carrier signals into subsequent sets of separate subcarrier signals in the frequency domain based on the initial set of separate subcarrier signals.

9. The invention of claim 8 , wherein:

each receive path further comprises a cyclic prefix removal block that removes a cyclic prefix from the digitized multi-carrier signals prior to application to the transform block;

the multi-carrier signals are orthogonal frequency division multiplexing (OFDM) signals; and

the receiver is configured in a multiple-input, multiple-output (MIMO) wireless local area network (WLAN) system.

10. The invention of claim 8 , wherein:

the first transformer is based on a fast Fourier transform; and

the second transformer is based on a discrete Fourier transform.

11. The invention of claim 8 , wherein the second transformer applies recursive filtering in converting the subsequent sets of the digitized multi-carrier signals into the subsequent sets of separate subcarrier signals.

12. The invention of claim 11 , wherein the recursive filtering of the second transformer is initialized based on the initial set of separate subcarrier signals from the first transformer.

13. The invention of claim 8 , wherein the second transformer generates the subsequent sets of separate subcarrier signals independent of any subsequent sets of separate subcarrier signals generated by the first transformer.

14. A wireless communications system comprising:

a transmitter having M transmit antennas adapted to transmit M multi-carrier signals, M>1; and

a receiver having:

at least (M+1) receive paths, each receive path adapted to receive the M multi-carrier signals and separate the received signals into separate subcarrier signals; and

a processor adapted to process the separate subcarrier signals to generate a recovered version of each of the M transmitted multi-carrier signals, wherein:

each receive path comprises:

a receive antenna adapted to receive the multi-carrier signals;

an analog-to-digital converter adapted to digitize the received multi-carrier signals; and

a transform block adapted to convert the digitized multi-carrier signals in a time domain into the separate subcarrier signals in a frequency domain; and

the transform block comprises:

a first transformer adapted to convert an initial set of the digitized multi-carrier signals into an initial set of separate subcarrier signals in the frequency domain; and

a second transformer adapted to convert subsequent sets of the digitized multi-carrier signals into subsequent sets of separate subcarrier signals in the frequency domain based on the initial set of separate subcarrier signals.

15. The invention of claim 14 , wherein:

each receive path further comprises a cyclic prefix removal block adapted to remove a cyclic prefix from the digitized multi-carrier signals prior to application to the transform block;

the multi-carrier signals are orthogonal frequency division multiplexing (OFDM) signals; and

the receiver is adapted to be configured in a multiple-input, multiple-output (MIMO) wireless local area network (WLAN) system.

16. The invention of claim 14 , wherein:

the first transformer is based on a fast Fourier transform; and

the second transformer is based on a discrete Fourier transform.

17. The invention of claim 14 , wherein the second transformer is adapted to apply recursive filtering in converting the subsequent sets of the digitized multi-carrier signals into the subsequent sets of separate subcarrier signals.

18. The invention of claim 17 , wherein the recursive filtering of the second transformer is adapted to be initialized based on the initial set of separate subcarrier signals from the first transformer.

19. The invention of claim 14 , wherein the second transformer is adapted to generate the subsequent sets of separate subcarrier signals independent of any subsequent sets of separate subcarrier signals generated by the first transformer.

20. A receiver for receiving M multi-carrier signals transmitted from M transmit antennas, M>=1, the receiver comprising:

at least M receive paths, each receive path adapted to receive the M multi-carrier signals and separate the received signals into separate subcarrier signals; and

a processor adapted to process the separate subcarrier signals to generate a recovered version of each of the M transmitted multi-carrier signals, wherein:

each receive path comprises:

a receive antenna adapted to receive the multi-carrier signals;

an analog-to-digital converter adapted to digitize the received multi-carrier signals; and

a transform block adapted to convert the digitized multi-carrier signals in a time domain into the separate subcarrier signals in a frequency domain; and

the transform block comprises:

a first transformer adapted to convert an initial set of the digitized multi-carrier signals into an initial set of separate subcarrier signals in the frequency domain; and

a second transformer adapted to convert subsequent sets of the digitized multi-carrier signals into subsequent sets of separate subcarrier signals in the frequency domain based on the initial set of separate subcarrier signals.

21. The invention of claim 20 , wherein:

each receive path further comprises a cyclic prefix removal block adapted to remove a cyclic prefix from the digitized multi-carrier signals prior to application to the transform block;

the multi-carrier signals are orthogonal frequency division multiplexing (OFDM) signals; and

the receiver is adapted to be configured in a multiple-input, multiple-output (MIMO) wireless local area network (WLAN) system.

22. The invention of claim 20 , wherein:

the first transformer is based on a fast Fourier transform; and

the second transformer is based on a discrete Fourier transform.

23. The invention of claim 20 , wherein the second transformer is adapted to apply recursive filtering in converting the subsequent sets of the digitized multi-carrier signals into the subsequent sets of separate subcarrier signals.

24. The invention of claim 23 , wherein the recursive filtering of the second transformer is adapted to be initialized based on the initial set of separate subcarrier signals from the first transformer.

25. The invention of claim 20 , wherein the second transformer is adapted to generate the subsequent sets of separate subcarrier signals independent of any subsequent sets of separate subcarrier signals generated by the first transformer.

Assignments (8)
CORRECTIVE ASSIGNMENT TO CORRECT THE EFFECTIVE DATE OF MERGER PREVIOUSLY RECORDED AT REEL: 047195 FRAME: 0827. ASSIGNOR(S) HEREBY CONFIRMS THE MERGER. Recorded Nov 5, 2018
From: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
To: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED
Reel/Frame 047924/0571 →
MERGER Recorded Oct 4, 2018
From: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
To: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED
Reel/Frame 047195/0827 →
TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS Recorded Feb 3, 2017
From: BANK OF AMERICA, N.A., AS COLLATERAL AGENT
To: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
Reel/Frame 041710/0001 →
PATENT SECURITY AGREEMENT Recorded Feb 11, 2016
From: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
To: BANK OF AMERICA, N.A., AS COLLATERAL AGENT
Reel/Frame 037808/0001 →
TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENT RIGHTS (RELEASES RF 032856-0031) Recorded Feb 2, 2016
From: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
To: LSI CORPORATION; AGERE SYSTEMS LLC
Reel/Frame 037684/0039 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 3, 2015
From: AGERE SYSTEMS LLC
To: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
Reel/Frame 035365/0634 →
PATENT SECURITY AGREEMENT Recorded May 8, 2014
From: LSI CORPORATION; AGERE SYSTEMS LLC
To: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
Reel/Frame 032856/0031 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 11, 2008
From: KAMERMAN, ADRIAAN; MODONESI, ISABELLA; SCHENK, TIM; TAO, XIAO-JIAO; ZELST, ALLERT VAN
To: AGERE SYSTEMS INC.
Reel/Frame 021813/0490 →