Claims
- 1. A pilot phase tracking loop for an orthogonal frequency division multiplexed (OFDM) receiver comprising:
a phase rotator for receiving and phase de-rotating an incoming signal; a fast Fourier transform coupled to an output of the phase rotator for processing a signal output from the phase rotator; a pilot phase error metric including a discrete Fourier transform portion, the discrete Fourier transform portion coupled to the output of the phase rotator, wherein the pilot phase error metric determines a phase error estimate associated with a received OFDM symbol of the signal output from the phase rotator; a loop filter coupled to an output of the pilot phase error metric; and an oscillator coupled to an output of the loop filter and having an output coupled to the phase rotator such that the phase rotator adjusts the phase of subsequent OFDM symbols of the incoming signal arriving after the received OFDM symbol by the phase error estimate.
- 2. The pilot phase tracking loop of claim 1 wherein the wherein the pilot phase error uses a maximum likelihood estimation that processes complex signal measurements corresponding to each of a plurality of pilots of the received OFDM symbol in comparison to pilot reference points corresponding to each of a plurality of pilots of an OFDM preamble waveform.
- 3. The pilot phase tracking loop of claim 2 wherein the phase error estimate comprises an aggregate phase error estimate of the received OFDM symbol relative to the pilot reference points corresponding to the OFDM preamble waveform.
- 4. The pilot phase tracking loop of claim 2 wherein the discrete Fourier portion of the pilot phase error metric determines the pilot reference points corresponding to the plurality of pilots of the OFDM preamble waveform and determines the complex signal measurements corresponding to each of the plurality of pilots of the received OFDM symbol and of the subsequent OFDM symbols.
- 5. The pilot phase tracking loop of claim 2 further comprising a pilot reference storage coupled to the pilot phase error metric for storing the pilot reference points.
- 6. The pilot phase tracking loop of claim 1 wherein the wherein the pilot phase error uses a maximum likelihood estimation that processes complex signal measurements corresponding to each of a plurality of pilots of the received OFDM symbol in comparison to pilot reference points corresponding to each of a plurality of pilots of an OFDM symbol received prior to the received OFDM symbol.
- 7. The pilot phase tracking loop of claim 1 further comprising a radio portion of the OFDM receiver that provides the incoming signal to the phase rotator, wherein the pilot phase tracking loop compensates for phase noise introduced in the radio portion and phase noise introduced by a transmitting radio portion of an OFDM transmitter communicating with the OFDM receiver.
- 8. The pilot phase tracking loop of claim 1 wherein a phase noise of the signal output from the phase rotator after adjustment is reduced.
- 9. The pilot phase tracking loop of claim 8 wherein the phase noise of the signal output from the phase rotator after adjustment is reduced to less than about 1 degree rms.
- 10. The pilot phase tracking loop of claim 9 wherein the phase noise of the incoming signal received at the phase rotator is less than about 2.5 degrees rms.
- 11. The pilot phase tracking loop of claim 8 wherein the phase noise of the signal output from the phase rotator after adjustment is reduced to less than about 0.5 degrees rms.
- 12. The pilot phase tracking loop of claim 11 wherein the phase noise of the incoming signal received at the phase rotator is less than about 2.5 degrees rms.
- 13. The pilot phase tracking loop of claim 8 wherein the phase noise performance of a local oscillator of the radio portion is greater than about −80 dBc/Hz at a 10 kHz offset.
- 14. The pilot phase tracking loop of claim 1 further comprising a pseudo random pilot modulation generator coupled to the pilot phase error metric for removal of a priori known pseudo-random pilot modulation.
- 15. The pilot phase tracking loop of claim 1 wherein, after adjustment of the phase rotator, a phase noise of the subsequent OFDM symbols at the output of the phase rotator is minimized.
- 16. A method of pilot phase tracking in an orthogonal frequency division multiplexed (OFDM) receiver comprising:
receiving a baseband signal corresponding to an OFDM preamble waveform at a discrete Fourier transform portion of the OFDM receiver, wherein the discrete Fourier transform is a separate processing operation than a fast Fourier transform of the OFDM receiver; determining pilot reference points corresponding to a plurality of pilots of an OFDM preamble waveform; receiving a baseband signal corresponding to an OFDM symbol at the discrete Fourier transform portion; determining complex signal measurements corresponding to each of the plurality of pilots of the OFDM symbol; determining a phase error estimate corresponding to the OFDM symbol based on the pilot reference points and the complex signal measurements; filtering the phase error estimate; and rotating a phase of an incoming signal corresponding to subsequent OFDM symbols to be received at the fast Fourier transform after the OFDM symbol by a filtered phase error estimate; wherein a phase noise of the incoming signal corresponding to the subsequent OFDM symbols to be received at the fast Fourier transform is reduced.
- 17. The method of claim 16 wherein small frequency errors remaining after a coarse and fine frequency estimation occurring during the OFDM preamble waveform are tracked out.
- 18. The method of claim 16 wherein the determining the phase error estimate step comprises determining an aggregate phase error estimate of the OFDM symbol relative to the pilot reference points using the complex signal measurements corresponding to each of the plurality of pilots of the OFDM symbol and the pilot reference points.
- 19. The method of claim 18 wherein the determining the aggregate phase error estimate step comprises performing a maximum likelihood-based estimation using the complex signal measurements for the OFDM symbol and the pilot reference points.
- 20. The method of claim 19 wherein the determining the aggregate phase error estimate step is represented mathematically as:
- 21. The method of claim 16 wherein the determining the pilot reference points step comprises determining the pilot reference points corresponding to the plurality of pilots of a long symbol portion of the OFDM preamble waveform.
- 22. The method of claim 16 wherein the determining the pilot reference points and determining the complex signal measurements steps comprise processing the baseband signal corresponding to the long symbol portion and the baseband signal corresponding to the OFDM symbol with the discrete Fourier transform.
- 23. The method of claim 16 wherein the rotating compensates for phase noise introduced by a radio portion of the OFDM receiver that provides the incoming signal and phase noise introduced by a transmitting radio portion of an OFDM transmitter communicating with the OFDM receiver.
- 24. The method of claim 16 wherein, after the rotating step, the phase noise of the incoming signal corresponding to the subsequent OFDM symbols is reduced to less than about 1 degree rms.
- 25. The method of claim 24 wherein the phase noise of the incoming signal corresponding to the subsequent OFDM symbols is less than about 2.5 degrees rms prior to the rotating step.
- 26. The method of claim 16 wherein, after the rotating step, the phase noise of the incoming signal corresponding to the subsequent OFDM symbols is reduced to less than about 0.5 degrees rms.
- 27. The method of claim 26 wherein the phase noise of the incoming signal corresponding to the subsequent OFDM symbols is less than about 2.5 degrees rms prior to the rotating step.
- 28. The method of claim 16 wherein the phase noise performance of a local oscillator of the radio portion is greater than about −80 dBc/Hz at a 10 kHz offset.
- 29. A method of pilot phase tracking in an orthogonal frequency division multiplexed (OFDM) receiver comprising:
receiving a signal representing an OFDM waveform at a discrete Fourier transform portion of the OFDM receiver, wherein the discrete Fourier transform is a separate processing operation than a fast Fourier transform of the OFDM receiver that also receives the signal; determining a phase error estimate corresponding to an OFDM symbol of the OFDM waveform; filtering the phase error estimate; and rotating a phase of the signal for subsequent OFDM symbols to be received at the fast Fourier transform after the OFDM symbol by the filtered phase error estimate, wherein a phase noise of the signal for the subsequent OFDM symbols to be received at the fast Fourier transform is reduced.
- 30. The method of claim 29 wherein the determining the phase error estimate step comprises determining an aggregate phase error estimate of the OFDM symbol relative to a pilot phase corresponding to an OFDM preamble portion of the OFDM waveform.
- 31. The method of claim 30 wherein the determining further comprises:
determining pilot reference points corresponding to each of a plurality of pilots corresponding to the OFDM preamble of the OFDM waveform; determining complex signal measurements corresponding to each of a plurality of pilots of the OFDM symbol; wherein the determining the aggregate phase error estimate includes processing the complex signal measurements and the pilot reference points using a maximum likelihood-based estimation.
- 32. The method of claim 29 wherein the determining the phase error estimate step comprises determining an aggregate phase error estimate of the OFDM symbol relative to a pilot phase corresponding to a previous OFDM symbol.
Parent Case Info
[0001] This application is a divisional of U.S. application Ser. No. 09/935,081, filed Aug. 21, 2001, which is a continuation-in-part of U.S. application Ser. No. 09/790,429, filed Feb. 21, 2001, now U.S. Pat. No. 6,549,245, both of which are hereby incorporated by reference.
[0002] This patent document relates to the following patent documents, all of which are incorporated herein by reference: U.S. patent application Ser. No. 09/935,243, filed Aug. 21, 2001, now U.S. Pat. No. 6,549,561; and U.S. patent application Ser. No. 09/935,083, filed Aug. 21, 2001.
Divisions (1)
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Number |
Date |
Country |
Parent |
09935081 |
Aug 2001 |
US |
Child |
10636512 |
Aug 2003 |
US |
Continuation in Parts (1)
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Number |
Date |
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09790429 |
Feb 2001 |
US |
Child |
09935081 |
Aug 2001 |
US |