Claims
- 1. A method for correcting a phase error imbalance between in-phase and quadrature components of a received signal comprising the acts of:
adjusting a phase angle to determine a peak amplitude for the in-phase component of the received signal; adjusting the phase angle to determine a peak amplitude for the quadrature component of the received signal; adjusting the phase angle to set the amplitudes for the in-phase and quadrature components of the received signal to be approximately equal at the same time; and adjusting a second phase angle so that the in-phase and quadrature components of the received signal are 90 degrees out of phase.
- 2. The method of claim 1, wherein the second phase angle is adjusted by using a look-up table.
- 3. The method of claim 2, wherein the lookup table contains mathematical solutions to an equation.
- 4. The method of claim 3, wherein the second phase angle is adjusted iteratively by a digital signal processing chip.
- 5. A communications device for correcting imbalance between in-phase and quadrature components of a signal comprising:
a first mixer to multiply a low frequency signal and high frequency signal to produce a double side-band suppressed carrier signal; a second and third mixer to produce in-phase and quadrature components of the received signal from the double side-band suppressed carrier signal; and a digital signal processor that controls both a calibration and correction mode for determining and correcting phase errors within the signal paths of the communications device.
- 6. The communication device of claim 5, wherein the digital signal processor varies the phases of the I and Q signal to determine a gain adjustment.
- 7. The communication device of claim 6, wherein the digital signal processor changes the signal levels of the I and Q branches so that they are equal to each other.
- 8. The communication device of claim 7, wherein the digital signal processor enacts the correction mode after the calibration mode.
- 9. The communication device of claim 8, wherein the digital signal processor acesses a look-up table to correct for a phase error imbalance between the I and Q branch signals.
- 10. The communication device of claim 8, wherein the digital signal processor iteratively adjusts the phase difference between the I and Q brach signals until there is no phase error.
- 11. A method for correcting imbalance between in-phase and quadrature components of a received signal comprising the acts of:
producing I and Q branch calibration signals wherein the I branch signal is represented by: I(t)=A.(1+ΔG/2).Sin(ωBB.t+ΔφBB/2).Cos(θRF), and the Q branch signal is represented by: Q(t)=A.(1−ΔG/2).Sin(ωBB.t−ΔφBB/2).Sin(θRF−ΔφRF); varying the gains of the I and Q branches until ΔG=0; varying θRF over a range greater than π/2 and record the maximum I and Q signal levels over this range of θRF; adjusting the DSB-SC phase shift so that I and Q signal levels are exactly equal at the same time and measure their corresponding rms levels so that Cos(θRF)=Sin(θR−ΔφRF)=AΔφRF; using the measured level of AΔφRF to find the corresponding IQ phase error ΔφRF in a look-up table; and shifting the relative phase between the in-phase and quadrature components of the received signal to be 90 degrees, by adjusting the phase error based on the amount stored in the look-up table.
- 12. The method of claim 11, wherein the I and Q branch signals are produced by calibration tones such as a double side band suppressed carrier signal.
- 13. The method of claim 11, wherein a digital signal processor varies the gains of the I and Q branches.
- 14. The method of claim 11, wherein a digital signal processor controls a phase shifter to vary θRF.
- 15. The method of claim 14, wheren the digital signal processor controls a second phase shifter to adjust ΔφRF as determined from the look-up table.
- 16. A radio transceiver comprising:
an antenna; a quadrature receiver for receiving signals and converting the received signals into in-phase baseband and a quadrature baseband signals; a digital signal processor for performing the following tasks: determining an imbalance in the quadrature receiver between the inphase and quadrature signals of the test signal under varying conditions, generating a correction factor for at least some of the varying conditions; and applying one or more correction factors to subsequently received inphase and quadrature baseband signals depending on a current condition to minimize an imbalance between the subsequently received inphase and quadrature baseband signals.
- 17. The radio receiver in claim 16, wherein one of the varying conditions is a changing gain of the baseband signals.
- 18. The radio receiver in claim 17, wherein one of the varying conditions is changing the phase relationship between baseband signals.
- 19. The method of claim 3, further comprising the act of coupling the double side band suppressed carrier signal to a receiver's RF path at a low noise amplifier input terminal.
- 20. The communication device of claim 5 further compromising a means to couple double side band suppressed signal to the communications devices' RF path at a low noise amplifier input terminal.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation in part of currently pending U.S. application Ser. No. 09/927,762 filed Aug. 10, 2001, which is herein incorporated by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09927762 |
Aug 2001 |
US |
Child |
10285151 |
Nov 2002 |
US |