IP Library Granted Patent US 8,463,196
Granted Patent B2
US 8,463,196 · App. 12/671,226 · Granted Jun 11, 2013

Method and decoder for decoding a wireless transmission from a predefined user

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Quick Facts
Patent No.
US 8,463,196
App. No.
12/671,226
Granted
Jun 11, 2013
Kind
B2
Abstract

A method of decoding in a wireless receiver, a wireless transmission from a predefined user, the method comprising: receiving a wireless transmission signal (r(m)); determining a one or more interfering spreading codes (s i (m)) contributing to the received wireless transmission signal (r(m)); estimating a one or more interferer symbols ({circumflex over (b)} i (m)) from the received wireless transmission signal (r(m)) and the or each interfering spreading codes (s i (m)); calculating a one or more scaling factors (Pi(m)) at which the or each of the interferer symbols ({circumflex over (b)} i (m)) was originally transmitted; simulating an interference signal i(m) in the received wireless transmission signal (r(m)); removing the simulated interference signal i(m) from the received wireless transmission signal (r(m)) to produce a processed wireless signal (o(m)); and estimating a one or more symbols {circumflex over (b)}(m) transmitted by the predefined user in the processed wireless signal (o(m)).

Claims (40)

1. A method of decoding in a wireless receiver, a wireless transmission from a predefined user to whom more than one user code is allocated, the method comprising:

receiving a wireless transmission signal (r(m)) in the wireless receiver;

determining a one or more interfering spreading codes, (s i (m)), contributing to the received wireless transmission signal, (r(m));

estimating a one or more interferer symbols, ({circumflex over (b)} i (m)), from the received wireless transmission signal and the or each interfering spreading codes (s i (m));

calculating a one or more scaling factors, (P i (m)), at which the or each of the interferer symbols was originally transmitted;

simulating an interference signal, i(m), in the received wireless transmission signal (r(m));

removing the simulated interference signal from the received wireless transmission signal to produce a processed wireless signal, (o(m)); and

estimating a one or more symbols, {circumflex over (b)}(m), transmitted by the predefined user in the processed wireless signal.

2. The method as claimed in claim 1 wherein the determining a one or more interfering spreading codes contributing to the received wireless transmission signal comprises:

processing the received wireless transmission signal to produce a plurality of orthogonal variable spreading factor spreading codes;

discarding a one or more orthogonal variable spreading factor spreading codes used by the predefined user from the plurality of orthogonal variable spreading factor spreading codes;

discarding a one or more known interfering orthogonal variable spreading factor spreading codes from the plurality of orthogonal variable spreading factor spreading codes; and

discarding a one or more child codes related to the known interfering orthogonal variable spreading factor spreading codes from the plurality of orthogonal variable spreading factor spreading codes.

3. The method as claimed in claim 2 wherein the processing the received wireless transmission signal to produce a plurality of orthogonal variable spreading factor spreading codes comprises processing the received wireless transmission signal with a one or more Fast Walsh Transforms.

4. The method as claimed in claim 1 wherein the estimating a one or more interferer symbols, ({circumflex over (b)} i (m)), from the received wireless transmission signal and the or each interfering spreading codes, comprises calculating {circumflex over (b)} i (m)=c′Q(m)′r′(m), wherein c′ is a hermitian conjugate of the one or more interfering spreading codes and Q(m)′ is a hermitian conjugate of a scrambling matrix.

5. The method as claimed in claim 1 wherein the calculating a one or more scaling factors at which the or each of the interferer symbols was originally transmitted comprises averaging the squared values of the interferer symbols.

6. The method as claimed in claim 1 wherein the simulating an interference signal in the received wireless transmission signal comprises calculating H·Q·C i ·P i ·{circumflex over (b)} i wherein H is a propagation channel matrix, Q is a scrambling code matrix, C i is a matrix of the interfering spreading codes, P i a diagonal matrix of the one or more scaling factors and {circumflex over (b)} i is a vector of the interferer symbols.

7. The method as claimed in claim 1 wherein the determining a one or more interfering spreading codes contributing to the received wireless transmission signal is preceded by processing the received wireless transmission signal with a minimum mean squared error equalizer.

8. A wireless transmission decoder, for use in a wireless receiver to decode a wireless transmission from a predefined user in a received wireless transmission signal; the wireless transmission decoder comprising:

a detection block adapted to determine one or more interfering spreading codes contributing to the received wireless transmission signal;

an interferer estimation block adapted to estimate a one or more interferer symbols from the received wireless transmission signal and the or each interfering spread codes; and calculate a one or more scaling factors at which the or each of the interferer symbols was originally transmitted;

a regeneration block adapted to simulate an interference signal in the received wireless transmission signal

a subtraction means adapted to remove the simulated interference signal from the received wireless transmission signal to produce a processed wireless signal and

a joint detection algorithm block adapted to estimate a one or more symbols transmitted by the predefined user in the processed wireless signal.

9. The wireless transmission decoder as claimed in claim 8 , wherein the detection block comprises:

a one or more Fast Walsh transform, (FWT), calculating modules adapted to perform a FWT on the received wireless transmission signal; and

a one or more statistical treatment blocks adapted to calculate the percentage of occurrence of each of a plurality of possible spreading codes in the outputs of the or each FWT calculating modules.

10. A wireless receiver comprising:

a minimum mean squared error equaliser adapted to invert an effect of a propagation channel on a received wireless transmission signal and thereby produced an equalised incoming signal; and

a wireless transmission decoder as claimed in claim 8 , wherein the wireless transmission decoder is adapted to decode a wireless transmission from a predefined user in the equalised incoming signal.

11. The method as claimed in claim 2 wherein the processing the received wireless transmission signal to produce a plurality of orthogonal variable spreading factor spreading codes comprises processing the received wireless transmission signal with a one or more Fast Walsh Transforms.

12. The method as claimed in claim 2 wherein the estimating a one or more interferer symbols, ({circumflex over (b)} i (m)), from the received wireless transmission signal and the or each interfering spreading codes, comprises calculating {circumflex over (b)} i (m)=c′Q(m)′r′(m), wherein c′ is a hermitian conjugate of the one or more interfering spreading codes and Q(m)′ is a hermitian conjugate of a scrambling matrix.

13. The method as claimed in claim 3 wherein the estimating a one or more interferer symbols, ({circumflex over (b)} i (m)), from the received wireless transmission signal and the or each interfering spreading codes, comprises calculating {circumflex over (b)} i (m)=c′Q(m)′r′(m), wherein c′ is a hermitian conjugate of the one or more interfering spreading codes and Q(m)′ is a hermitian conjugate of a scrambling matrix.

14. The method as claimed in claim 2 wherein the calculating a one or more scaling factors at which the or each of the interferer symbols was originally transmitted comprises averaging the squared values of the interferer symbols.

15. The method as claimed in claim 3 wherein the calculating a one or more scaling factors at which the or each of the interferer symbols was originally transmitted comprises averaging the squared values of the interferer symbols.

16. The method as claimed in claim 4 wherein the calculating a one or more scaling factors at which the or each of the interferer symbols was originally transmitted comprises averaging the squared values of the interferer symbols.

17. The method as claimed in claim 2 wherein the simulating an interference signal in the received wireless transmission signal comprises calculating H·Q·C i ·P i ·{circumflex over (b)} i wherein H is a propagation channel matrix, Q is a scrambling code matrix, C i is a matrix of the interfering spreading codes, P i a diagonal matrix of the one or more scaling factors and {circumflex over (b)} i is a vector of the interferer symbols.

18. The method as claimed in claim 3 wherein the simulating an interference signal in the received wireless transmission signal comprises calculating H·Q·C i ·P i ·{circumflex over (b)} i wherein H is a propagation channel matrix, Q is a scrambling code matrix, C i is a matrix of the interfering spreading codes, P i a diagonal matrix of the one or more scaling factors and {circumflex over (b)} i is a vector of the interferer symbols.

19. The method as claimed in claim 2 wherein the determining a one or more interfering spreading codes contributing to the received wireless transmission signal is preceded by processing the received wireless transmission signal with a minimum mean squared error equalizer.

20. The method as claimed in claim 3 wherein the determining a one or more interfering spreading codes contributing to the received wireless transmission signal is preceded by processing the received wireless transmission signal with a minimum mean squared error equalizer.

Assignments (33)
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 11759915 AND REPLACE IT WITH APPLICATION 11759935 PREVIOUSLY RECORDED ON REEL 040925 FRAME 0001. ASSIGNOR(S) HEREBY CONFIRMS THE RELEASE OF SECURITY INTEREST. Recorded Feb 17, 2020
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: NXP, B.V. F/K/A FREESCALE SEMICONDUCTOR, INC.
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CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 11759915 AND REPLACE IT WITH APPLICATION 11759935 PREVIOUSLY RECORDED ON REEL 040928 FRAME 0001. ASSIGNOR(S) HEREBY CONFIRMS THE RELEASE OF SECURITY INTEREST. Recorded Jan 17, 2020
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: NXP B.V.
Reel/Frame 052915/0001 →
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 11759915 AND REPLACE IT WITH APPLICATION 11759935 PREVIOUSLY RECORDED ON REEL 037486 FRAME 0517. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT AND ASSUMPTION OF SECURITY INTEREST IN PATENTS. Recorded Dec 10, 2019
From: CITIBANK, N.A.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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From: NXP B.V.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 12298143 PREVIOUSLY RECORDED ON REEL 039361 FRAME 0212. ASSIGNOR(S) HEREBY CONFIRMS THE SECURITY AGREEMENT SUPPLEMENT. Recorded Oct 22, 2019
From: NXP B.V.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 12298143 PREVIOUSLY RECORDED ON REEL 042762 FRAME 0145. ASSIGNOR(S) HEREBY CONFIRMS THE SECURITY AGREEMENT SUPPLEMENT. Recorded Oct 22, 2019
From: NXP B.V.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 12298143 PREVIOUSLY RECORDED ON REEL 038017 FRAME 0058. ASSIGNOR(S) HEREBY CONFIRMS THE SECURITY AGREEMENT SUPPLEMENT. Recorded Oct 22, 2019
From: NXP B.V.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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RELEASE OF SECURITY INTEREST Recorded Sep 10, 2019
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: NXP B.V.
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RELEASE OF SECURITY INTEREST Recorded Sep 10, 2019
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: NXP B.V.
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CORRECTIVE ASSIGNMENT TO CORRECT THE TO CORRECT THE APPLICATION NO. FROM 13,883,290 TO 13,833,290 PREVIOUSLY RECORDED ON REEL 041703 FRAME 0536. ASSIGNOR(S) HEREBY CONFIRMS THE THE ASSIGNMENT AND ASSUMPTION OF SECURITY INTEREST IN PATENTS.. Recorded Feb 20, 2019
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To: SHENZHEN XINGUODU TECHNOLOGY CO., LTD.
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From: NXP B.V.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 12681366 PREVIOUSLY RECORDED ON REEL 038017 FRAME 0058. ASSIGNOR(S) HEREBY CONFIRMS THE SECURITY AGREEMENT SUPPLEMENT. Recorded May 9, 2017
From: NXP B.V.
To: MORGAN STANLEY SENIOR FUNDING, INC.
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CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE PATENTS 8108266 AND 8062324 AND REPLACE THEM WITH 6108266 AND 8060324 PREVIOUSLY RECORDED ON REEL 037518 FRAME 0292. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT AND ASSUMPTION OF SECURITY INTEREST IN PATENTS. Recorded Feb 1, 2017
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From: FREESCALE SEMICONDUCTOR INC.
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CHANGE OF NAME Recorded Nov 8, 2016
From: FREESCALE SEMICONDUCTOR INC.
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RELEASE OF SECURITY INTEREST Recorded Nov 7, 2016
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To: NXP, B.V., F/K/A FREESCALE SEMICONDUCTOR, INC.
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ASSIGNMENT AND ASSUMPTION OF SECURITY INTEREST IN PATENTS Recorded Jan 13, 2016
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