Claims
- 1. A mixed waveform configuration for wireless communications, comprising:
a first portion, including a preamble and header, that is modulated according to a single-carrier modulation scheme; a second portion that is modulated according to a multi-carrier modulation scheme; and the waveform being specified so that a channel impulse response estimate obtainable from the first portion is reusable for acquisition of the second portion.
- 2. The mixed waveform configuration of claim 1, wherein power, carrier phase, carrier frequency, timing, and multi-path spectrum are substantially maintained between the first portion and the second portion of the waveform.
- 3. The mixed waveform configuration of claim 2, wherein the single-carrier modulation scheme uses a first sample rate and wherein the multi-carrier modulation scheme uses a second sample rate that is greater than the first sample rate.
- 4. The mixed waveform configuration of claim 3, wherein the first sample rate is approximately 11 megahertz (MHz) and wherein the second sample rate is approximately 20 MHz.
- 5. The mixed waveform configuration of claim 2, wherein the single-carrier modulation scheme employs a single-carrier spectrum that resembles a multi-carrier spectrum of the multi-carrier modulation scheme.
- 6. The mixed waveform configuration of claim 5, wherein the single-carrier spectrum has a dominant peak in its impulse response with a relatively small amount of spread.
- 7. The mixed waveform configuration of claim 5, wherein the single-carrier spectrum has a nearly flat spectrum with sufficiently steep roll-off on its edges.
- 8. The mixed waveform configuration of claim 5, wherein the single-carrier spectrum employs a time shaping pulse that is specified in continuous time.
- 9. The mixed waveform configuration of claim 8, wherein the time shaping pulse has a relatively short duration.
- 10. The mixed waveform configuration of claim 8, wherein the time shaping pulse is derived employing an infinite impulse response of a brick wall approximation that is truncated using a continuous-time window.
- 11. The mixed waveform configuration of claim 10, wherein the continuous-time window is sufficiently long to achieve the desired spectral characteristics and sufficiently short to minimize complexity.
- 12. The mixed waveform configuration of claim 10, wherein the continuous-time window comprises a continuous time version of a Hanning window.
- 13. The mixed waveform configuration of claim 10, wherein the time shaping pulse is sampled according to a Nyquist criterion.
- 14. The mixed waveform configuration of claim 13, wherein the time shaping pulse is sampled and decomposed using first and second polyphase digital filters to achieve a 22 MHz sample rate.
- 15. The mixed waveform configuration of claim 13, wherein the time shaping pulse is sampled and decomposed using twenty polyphase digital filters and by taking 1 of 11 outputs of the twenty polyphase digital filters to achieve a 20 MHz sample rate.
- 16. The mixed waveform configuration of claim 2, wherein the linear distortions of the first and second portions of the waveform are assumed to be common.
- 17. The mixed waveform configuration of claim 2, wherein the first portion is modulated with a single-carrier modulation scheme kernel, wherein the second portion is modulated with a multi-carrier modulation scheme kernel, and wherein the average output signal power of the single-carrier modulation scheme kernel and the average output signal power of the multi-carrier modulation scheme kernel are maintained substantially equal.
- 18. The mixed waveform configuration of claim 17, wherein the single-carrier modulation scheme is according to 802.11b Barkers and wherein the multi-carrier modulation scheme is according to the 802.11a standard employing orthogonal frequency division multiplexing (OFDM).
- 19. The mixed waveform configuration of claim 2, wherein the single-carrier modulation scheme employs a first sample rate clock, wherein the multi-carrier modulation scheme employs a second sample rate clock, and wherein the first and second sample rate clocks are aligned at predetermined timing intervals.
- 20. The mixed waveform configuration of claim 19, wherein a first full sample of the multi-carrier modulation scheme begins one timing interval after the beginning of the last sample of the single-carrier modulation scheme.
- 21. The mixed waveform configuration of claim 20, wherein the single-carrier modulation scheme uses 11 chip Barker words at an 11 MHz sample rate, wherein each predetermined timing interval is approximately 1 microsecond, wherein the Barker chips are centered on the timing intervals, wherein the multi-carrier modulation scheme uses OFDM at a 20 MHz sample rate, and wherein the first full OFDM sample occurs at approximately 1 microsecond after a zero-phase peak of a first chip of the last Barker word of the first portion of the waveform.
- 22. The mixed waveform configuration of claim 2, wherein the single-carrier signal is terminated according to a windowing function specified for OFDM signal shaping defined in the 802.11a standard.
- 23. The mixed waveform configuration of claim 22, wherein the first portion single-carrier signal is terminated in nominally 100 nanoseconds.
- 24. The mixed waveform configuration of claim 2, wherein carrier frequency is coherent between the first portion single-carrier signal and the second portion multi-carrier signal.
- 25. The mixed waveform configuration of claim 2, wherein carrier phase is coherent between the first portion single-carrier signal and the second portion multi-carrier signal.
- 26. The mixed waveform configuration of claim 25, wherein carrier phase of the multi-carrier signal is determined by carrier phase of a last portion of the single-carrier signal.
- 27. The mixed waveform configuration of claim 26, wherein the carrier phase of the multi-carrier signal is rotated by a corresponding one of a plurality of rotation multiples, each rotation multiple corresponding to one of a plurality of predetermined phases of the last portion of the single-carrier signal.
- 28. The mixed waveform configuration of claim 27, wherein the single-carrier modulation scheme is according to 802.11b Barkers in which each Barker word is one of first, second, third and fourth possible phases, wherein the multi-carrier modulation scheme is according to OFDM as defined in Annex G of the 802.11a standard, and wherein OFDM samples are rotated by zero if the last Barker word has the first phase, by 90 degrees if the last Barker word has the second phase, by 180 degrees if the last Barker word has the third phase, and by −90 degrees if the last Barker word has the fourth phase.
- 29. The mixed waveform configuration of claim 2, wherein a requisite fidelity for the entire waveform is specified by a requisite fidelity specified for the multi-carrier modulation scheme.
- 30. The mixed waveform configuration of claim 29, wherein the requisite fidelity is a function of data rate of the multi-carrier portion.
- 31. The mixed waveform configuration of claim 30, wherein the requisite fidelity is determined by mean-squared-error normalized by signal power as specified for OFDM in the 802.11a standard.
- 32. The mixed waveform configuration of claim 2, wherein a symbol rate clock and a carrier frequency of the waveform are derived from the same reference clock.
- 33. The mixed waveform configuration of claim 32, wherein part per million (PPM) error of a clock fundamental for symbol rate and PPM error of a clock fundamental for carrier frequency are substantially equal.
CROSS-REFERENCE TO RELATED APPLICATION(S)
[0001] The present application is based on U.S. Provisional Patent Application entitled “Mixed Waveform Configuration For Wireless Communications”, Serial No. 60/303,444, filed Jul. 6, 2001, which is hereby incorporated by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60303444 |
Jul 2001 |
US |