Claims
- 1. A phase interpolation method, comprising:
(a) producing a plurality of stage control signals in response to a phase control input; (b) converting each of a plurality of reference signals into a corresponding component signal in response to a respective one of the stage control signals, wherein each of the reference signals has a distinct phase; and (c) combining the component signals into an output signal having an interpolated phase.
- 2. The phase interpolation method of claim 1, wherein step (b) comprises:
converting each reference signal into the corresponding component signal according to a scaling factor.
- 3. The phase interpolation method of claim 2, wherein step (b) further comprises:
adjusting the scaling factor in response to a value of the corresponding stage control signal.
- 4. The phase interpolation method of claim 3, wherein the corresponding stage control signal includes a plurality of binary control subsignals; and
wherein said step of adjusting the scaling factor includes receiving one of the plurality of binary control subsignals.
- 5. The phase interpolation method of claim 4, wherein the value of the corresponding stage control signal is the sum of the corresponding binary control signals.
- 6. The phase interpolation method of claim 5, wherein the scaling factor increases with the value of the corresponding stage control signal.
- 7. The phase interpolation method of claim 1, wherein each of the component signals has a distinct phase determined by the corresponding reference signal phase.
- 8. The phase interpolation method of claim 1, wherein step (b) comprises:
converting each reference signal into the corresponding component signal according to a scaling factor; and adjusting the scaling factor in response to a value of the corresponding stage control signal.
- 9. The phase interpolation method of claim 1, wherein step (c) comprises summing the component signals into an output signal having an interpolated phase.
- 10. The phase interpolation method of claim 1, wherein step (b) comprises converting a differential reference signal into a corresponding differential component signal; and
wherein step (c) comprises combining the differential component signals into a differential output signal having an interpolated phase.
- 11. The phase interpolation method of claim 1, wherein step (b) comprises converting each of four reference signals into a corresponding component signal in response to a respective one of the stage control signals, wherein the four reference signals each has one of four phases that are separated at substantially 90 degrees intervals.
- 12. The phase interpolation method of claim 1, wherein step (a) comprises adjusting the plurality of stage control signals such that the output signal produced in step (c) is phase aligned with a serial data signal.
- 13. A phase interpolation method, comprising:
(a) converting each of a plurality of reference signals into a corresponding component signal in response to a respective one of a plurality of stage control signals, wherein each of the reference signals has a distinct phase; and (b) combining the component signals into an output signal having an interpolated phase.
- 14. The phase interpolation method of claim 13, wherein step (c) comprises:
converting each reference signal into the corresponding component signal according to a scaling factor.
- 15. A phase interpolation apparatus, comprising:
stage controller means for producing a plurality of stage control signals in response to a phase control input; reference stage means for converting each of a plurality of reference signals into a corresponding component signal in response to a respective one of the stage control signals, wherein each of the reference signals has a distinct phase; and combining means for combining the component signals into an output signal having an interpolated phase.
- 16. The phase interpolation apparatus of claim 15, wherein the reference stage means comprises:
converting means for converting each reference signal into the corresponding component signal according to a scaling factor; and scaling means, coupled to the converting means, for adjusting the scaling factor in response to a value of the corresponding stage control signal.
- 17. The phase interpolation apparatus of claim 16, wherein the corresponding stage control signal includes a plurality of binary control subsignals; and
wherein the scaling means receives one of the plurality of binary control subsignals.
- 18. The phase interpolation apparatus of claim 17, wherein the value of the corresponding stage control signal is the sum of the corresponding binary control signals.
- 19. The phase interpolation apparatus of claim 18, wherein the scaling factor increases with the value of the corresponding stage control signal.
- 20. The phase interpolation apparatus of claim 15, wherein each of the component signals has a distinct phase determined by the corresponding reference signal phase.
- 21. The phase interpolation apparatus of claim 15, wherein the reference stage means comprises:
conversion means for converting each reference signal into the corresponding component signal according to a scaling factor; and scaling means for adjusting the scaling factor in response to a value of the corresponding stage control signal.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application is a continuation of U.S. Non-Provisional Application Ser. No. 09/844,266, filed Apr. 30, 2001, entitled “Phase Interpolator Device and Method,” which claims priority to U.S. Provisional Application No. 60/200,813, filed Apr. 28, 2000, entitled “High-Speed Serial Transceiver,” all of which are incorporated herein by reference in their entireties.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60200813 |
Apr 2000 |
US |
Continuations (1)
|
Number |
Date |
Country |
Parent |
09844266 |
Apr 2001 |
US |
Child |
10346210 |
Jan 2003 |
US |