Claims
- 1. A wireless receiver comprising:
a radio-frequency (RF) receiver front end; analog-to-digital (A/D) circuitry coupled to the RF receiver front end, the A/D circuitry configured to provide a digital signal at a first sampling rate; a receive digital rate-converter coupled to the A/D circuitry, the receive digital rate-converter configured to provide a digital signal at a second sampling rate; a first demodulator coupled to the A/D circuitry, the first demodulator demodulating the digital signal received from the A/D circuitry at the first sampling rate; a second demodulator coupled to the digital rate converter, the second demodulator demodulating the digital signal from the receive rate converter at the second sampling rate.
- 2. The wireless receiver of claim 1, wherein the A/D circuitry is operated at a clock rate substantially equivalent to the first sampling rate.
- 3. The wireless receiver of claim 1, wherein each of the first and second demodulators respectively demodulates substantially simultaneously the first digital signal at the first sampling rate and the second digital signal at the second sampling rate.
- 4. The wireless receiver of claim 1, wherein the RF receiver front end receives modulated wireless signal having a center frequency between about 2,400 megahertz to about 2,484 megahertz.
- 5. The wireless receiver of claim 4, wherein the RF receiver front end is tunable to a predetermined channel frequency.
- 6. The wireless receiver of claim 1, further comprising a channel-selection filter coupled between the A/D circuitry and each of the receive digital rate-converter and the first demodulator.
- 7. The wireless receiver of claim 6, wherein the channel-selection filter comprises a finite impulse response (FIR) digital filter.
- 8. The wireless receiver of claim 1, wherein the digital rate-converter comprises:
a down sampler; an up sampler; and a filter coupled between the down sampler and the up sampler.
- 9. The wireless receiver of claim 8, wherein the filter comprises an anti-aliasing filter.
- 10. The wireless receiver of claim 9, wherein the anti-aliasing filter is a finite impulse response (FIR) digital filter.
- 11. The wireless receiver of claim 1, wherein the receive digital rate-converter comprises a polyphase filter bank.
- 12. The wireless receiver of claim 1, wherein the first demodulator is an IEEE 802.11g demodulator, demodulating an orthogonal frequency division multiplexed (OFDM) signal.
- 13. The wireless receiver of claim 1, wherein the second demodulator is an IEEE 802.11g demodulator, demodulating a direct sequence spread spectrum (DSSS) signal.
- 14. The wireless receiver of claim 1, further comprising a control signal for selectively shutting down one of the first demodulator and the combined receive digital rate-converter and second demodulator.
- 15. A wireless transmitter comprising:
a first modulator providing a first modulated digital signal at a first sampling rate; a second modulator providing a second modulated digital signal at a second sampling rate; a transmit digital rate-converter coupled to the second modulator, the transmit digital rate-converter configured to provide a rate-converted digital signal at the first sampling rate corresponding to the second modulated digital signal; digital-to-analog (D/A) circuitry selectively coupled to one of the transmit digital rate-converter and the first modulator, the D/A circuitry configured to provide an analog signal corresponding to one of the first modulated digital signal and the rate-converted digital signal; and a radio frequency (RF) transmitter front end coupled to the D/A circuitry, up converting to RF the analog signal received from the D/A circuitry.
- 16. The wireless transmitter of claim 15, wherein the transmit digital rate-converter comprises:
an up sampler; a down sampler; and a filter coupled between the up sampler and the down sampler.
- 17. The wireless transmitter of claim 16, wherein the filter comprises an anti-aliasing filter.
- 18. The wireless transmitter of claim 17, wherein the anti-aliasing filter is a finite impulse response (FIR) digital filter.
- 19. The wireless transmitter of claim 15, wherein the transmit digital rate-converter comprises a polyphase filter bank.
- 20. The wireless transmitter of claim 15, wherein the first modulator is an IEEE 802.11g modulator, modulating an orthogonal frequency division multiplexed (OFDM) signal.
- 21. The wireless transmitter of claim 15, wherein the second modulator is an IEEE 802.11g modulator, modulating a direct sequence spread spectrum (DSSS) signal.
- 22. The wireless transmitter of claim 15, further comprising a filter coupled between the D/A circuitry and each of the transmit rate converter and the first modulator.
- 23. The wireless transmitter of claim 22, further comprising a controllable transmitter switch selectively coupling one of the transmit rate converter and the first modulator to the D/A circuitry.
- 24. A wireless transceiver comprising:
a radio-frequency (RF) front end converting a signal between RF and analog baseband; data conversion circuitry coupled to the RF front end, the data conversion circuitry configured to convert between an analog baseband signal and a corresponding digital signal at a first sampling rate; a digital rate-converter coupled to the data conversion circuitry, converting the digital signal at a first sampling rate to a digital signal at a second sampling rate; and a modem having:
a modulator selectably coupled to one of the data conversion circuitry and data conversion circuitry through the digital rate-converter; and a demodulator simultaneously coupled to the data conversion circuitry and the data conversion circuitry through the digital rate-converter.
- 25. The transceiver of claim 24, further comprising a filter coupled between the data conversion circuitry and the modem.
- 26. The transceiver of claim 24, wherein the modem uses IEEE 802.11g modulation techniques.
- 27. The transceiver of claim 24, further comprising an automatic gain control (AGC) loop coupled between the demodulator and the RF front end, the AGC loop processing the digital signal at the first sampling rate.
- 28. A method for receiving a wireless signal comprising:
receiving a radio-frequency (RF) signal; converting the received signal to a first digital signal at a first sampling rate; rate-converting the first digital signal at the first sampling rate to a second digital signal at a second sampling rate; demodulating the first digital signal; and demodulating the second digital signal.
- 29. The method of claim 28, wherein the A/D circuitry is operated at a clock rate substantially equivalent to the first sampling rate.
- 30. The method of claim 28, wherein the first digital signal and the second digital signal are demodulated substantially simultaneously.
- 31. The method of claim 28, wherein the RF receiver front end receives modulated wireless signals having center frequencies from about 2,400 megahertz to about 2,484 megahertz.
- 32. The method of claim 31, further comprising tuning the RF receiver front end to a predetermined channel frequency.
- 33. The method of claim 28, further comprising filtering a selected channel using a channel-selection filter.
- 34. The method of claim 28, wherein rate-converting uses polyphase filtering techniques.
- 35. The method of claim 28, wherein rate-converting further comprises:
down sampling to a third, lower sampling rate the second digital signal; filtering the down-sampled signal to substantially remove aliased signal components; and up sampling to the first sampling rate the down-sampled, filtered signal.
- 36. The method of claim 28, wherein demodulating comprises demodulating an orthogonal frequency division multiplexed (OFDM) signal.
- 37. The method of claim 28, wherein demodulating comprises demodulating a direct sequence spread spectrum (DSSS) signal.
- 38. The method of claim 28, further comprising selectively shutting down circuitry associated with one of the first demodulator and the combined receive digital rate-converter and second demodulator.
- 39. A method for transmitting a wireless signal comprising:
modulating a first digital signal at a first sampling rate; modulating a second digital signal at a second sampling rate; rate-converting the first digital signal to a rate-converted digital signal at the second sampling rate; digital-to-analog (D/A) converting the rate-converted digital signal to a corresponding analog transmit signal; and transmitting a wireless radio-frequency signal (RF) corresponding to the analog transmit signal.
- 40. The method of claim 39, wherein the D/A circuitry is operated at a clock rate substantially equivalent to the first sampling rate.
- 41. The method of claim 39, wherein a radio frequency (RF) transmitter front end up converts the analog transmit signal to a wireless signals having a center frequency between about 2,400 megahertz to about 2,484 megahertz.
- 42. The method of claim 41, further comprising tuning the RF transmitter front end to a predetermined channel frequency.
- 43. The method of claim 39, further comprising filtering the digital signal.
- 44. The method of claim 39, wherein rate-converting uses polyphase filtering techniques.
- 45. The method of claim 39, wherein rate-converting further comprises:
up sampling the second digital signal to a higher sampling rate; filtering the up-sampled signal; and down sampling the filtered, up-sampled signal to the first sampling rate.
- 46. The method of claim 39, wherein modulating comprises modulating an orthogonal frequency division multiplexed (OFDM) signal.
- 47. The method of claim 39, wherein modulating comprises modulating a direct sequence spread spectrum (DSSS) signal.
- 48. The method of claim 39, further comprising selectively coupling one of the first modulator and the transmit digital rate-converter to the D/A circuitry.
- 49. A wireless receiver comprising:
means for receiving a radio-frequency (RF) signal; means for converting the received signal to a digital signal at a first sampling rate; means for rate-converting the digital signal at the first sampling rate to a digital signal at a second sampling rate; means for demodulating the digital signal at the first sampling rate; and means for demodulating the digital signal at the second sampling rate.
- 50. A wireless transmitter comprising:
means for modulating the digital signal at the first sampling rate; means for modulating the digital signal at the second sampling rate; means for rate-converting the digital signal at the first sampling rate to a digital signal at a second sampling rate; means for digital-to-analog (D/A) converting the rate-converted digital signal to a corresponding analog signal; and means for transmitting a wireless radio-frequency signal (RF) corresponding to the converted analog signal.
RELATED APPLICATION
[0001] This application claims the benefit of U.S. Provisional Application No. 60/424,374 filed Nov. 6, 2002. The entire teachings of the above applications are incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60424374 |
Nov 2002 |
US |