Claims
- 1. A method for reducing spurious emissions in an amplified non-baseband signal, comprising the steps of:
(a) receiving a non-baseband input signal; and (b) applying pre-distortion, whose magnitude is frequency-dependent, to the non-baseband input signal to generate a pre-distorted non-baseband signal, such that, when the pre-distorted non-baseband signal is applied to an amplifier to generate the amplified non-baseband signal, the pre-distortion reduces spurious emissions in the amplified non-baseband signal.
- 2. The invention of claim 1, wherein the phase of the pre-distortion is also frequency-dependent.
- 3. The invention of claim 1, wherein the input signal is an RF signal and the pre-distortion is applied in the RF domain.
- 4. The invention of claim 1, wherein step (b) comprises the steps of:
(1) generating a main non-baseband pre-distortion signal from the non-baseband input signal; (2) generating a secondary non-baseband pre-distortion signal, whose magnitude and phase are frequency-dependent, from the non-baseband input signal; and (3) combining the main non-baseband pre-distortion signal and the secondary non-baseband pre-distortion signal to generate the pre-distorted non-baseband signal.
- 5. The invention of claim 4, wherein step (b)(1) comprises the step of applying pre-distortion, whose magnitude and phase are frequency-independent, to the non-baseband input signal to generate the main non-baseband pre-distortion signal.
- 6. The invention of claim 4, wherein the secondary non-baseband pre-distortion signal is dependent on the bandwidth of the non-baseband input signal.
- 7. The invention of claim 4, wherein the secondary non-baseband pre-distortion signal has a magnitude proportional to a frequency offset from a carrier frequency of the non-baseband input signal and a phase shift of ±90 degrees on either side of the carrier frequency.
- 8. The invention of claim 4, wherein the secondary non-baseband pre-distortion signal is based on a temporal differentiation of a non-baseband signal generated from the non-baseband input signal.
- 9. The invention of claim 8, wherein the temporal differentiation is applied to a non-baseband signal generated by complex multiplication of the non-baseband input signal.
- 10. The invention of claim 8, wherein the temporal differentiation is applied to the non-baseband input signal prior to complex multiplication of the resulting non-baseband differentiated signal.
- 11. The invention of claim 1, wherein the frequency-dependent pre-distortion is based on data retrieved from a look-up table.
- 12. The invention of claim 11, wherein the look-up table is adaptively updated according to control signals generated based on the amplified non-baseband signal.
- 13. An apparatus for reducing spurious emissions in an amplified non-baseband signal, wherein the apparatus is configured to:
(a) receive a non-baseband input signal; and (b) apply pre-distortion, whose magnitude is frequency-dependent, to the non-baseband input signal to generate a pre-distorted non-baseband signal, such that, when the pre-distorted non-baseband signal is applied to an amplifier to generate the amplified non-baseband signal, the pre-distortion reduces spurious emissions in the amplified non-baseband signal.
- 14. The invention of claim 13, wherein the phase of the pre-distortion is also frequency-dependent.
- 15. The invention of claim 13, wherein the non-baseband input signal is an RF signal and the apparatus applies the pre-distortion in the RF domain.
- 16. The invention of claim 13, wherein the apparatus comprises:
(a) a main signal processing path configured to generate a main non-baseband pre-distortion signal from the non-baseband input signal; (b) a secondary signal processing path configured to generate a secondary non-baseband pre-distortion signal from the non-baseband input signal, wherein the magnitude and phase of the secondary non-baseband pre-distortion signal are frequency-dependent; and (c) a combiner configured to combine the secondary non-baseband pre-distortion signal with the main non-baseband pre-distortion signal to generate the pre-distorted non-baseband signal.
- 17. The invention of claim 16, wherein the main signal processing path is configured to apply frequency-independent magnitude and phase pre-distortion to the non-baseband input signal to generate the main non-baseband output signal.
- 18. The invention of claim 16, wherein the secondary signal processing path comprises:
(1) a vector modulator configured to multiply the non-baseband input signal by a complex control signal dependent on the power of the non-baseband input signal; and (2) a differentiating filter configured to differentiate the output of the vector modulator to generate the secondary non-baseband pre-distortion signal.
- 19. The invention of claim 18, wherein the differentiating filter comprises:
(A) a splitter configured to split the output from the vector modulator into two non-baseband signals; (B) a delay element configured to delay a first of the two non-baseband signals from the splitter; (C) an attenuator configured to attenuate a second of the two non-baseband signals from the splitter; and (D) a combiner configured to combine the outputs from the delay element and the attenuator to generate the secondary non-baseband pre-distortion signal, wherein the splitter and the combiner are configured to impart a 180° rotation so that the output from the delay element is subtracted from the output from the attenuator.
- 20. The invention of claim 16, wherein the secondary signal processing path comprises:
(1) a differentiating filter configured to differentiate the non-baseband input signal; and (2) a complex multiplication module configured to multiply the non-baseband output of the differentiating filter by a complex parameter dependent on the power of the non-baseband input signal to generate the secondary non-baseband pre-distortion signal.
- 21. The invention of claim 13, wherein the apparatus retrieves data for the frequency-dependent pre-distortion from a look-up table.
- 22. The invention of claim 21, wherein the apparatus adaptively updates the look-up table according to control signals generated based on the amplified non-baseband signal.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of the filing date of provisional application nos. 60/362,660, filed on Mar. 8, 2002 as attorney docket no. C0009PROV, and 60/367,399, filed on Mar. 25, 2002 as attorney docket no C0011PROV. The subject matter of this application is related to the subject matter of (a) U.S. patent application Ser. No. 09/395,490, filed on Sep. 14, 1999 as attorney docket number Johnson 6-1-17 (“the '490 application”), (b) U.S. patent application Ser. No. 10/068,343, filed on Feb. 5, 2002 as attorney docket number C0001, and (c) U.S. patent application Ser. No. zz/zzz,zzz, filed on the same date as the present application as attorney docket number C0009, the teachings of all three of which are incorporated herein by reference.
Provisional Applications (2)
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Number |
Date |
Country |
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60362660 |
Mar 2002 |
US |
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60367399 |
Mar 2002 |
US |