Claims
- 1. For use with a communication device having a signal modulator that is adapted to modulate a signal in accordance with an output frequency coupled thereto by a current-controlled oscillator which is adapted to generate said output frequency in accordance with a control current applied thereto, and a frequency-tracking filter circuit coupled to the output of said signal modulator, the improvement wherein said frequency-tracking filter circuit has a cut-off frequency that is linearly proportional to said control current.
- 2. The improvement according to claim 1, wherein said frequency-tracking filter circuit comprises a transconductance tuning stage coupled to receive said control current, and a transconductance-containing filter stage coupled to said transconductance tuning stage.
- 3. The improvement according to claim 2, wherein said transconductance-containing filter stage comprises a tunable gm/C filter, having a tunable transconductance (gm) stage and an integrating capacitor C coupled therewith, such that said tunable gm/C filter has a cutoff frequency fo proportional to the ratio of gm to C.
- 4. The improvement according to claim 3, wherein said transconductance tuning stage is referenced to a current mirror circuit, which replicates said control current.
- 5. The improvement according to claim 4, wherein said transconductance tuning stage includes a differentially connected pair of transistors, each having an effective transconductance gm, and being coupled in circuit with a respective controlled MOSFET-implemented resistance, which is coupled to receive a control input.
- 6. The improvement according to claim 5, wherein each MOSFET-implemented resistance is operated in the linear portion of its VDS-TDS characteristic.
- 7. The improvement according to claim 5, wherein each MOSFET-implemented resistance has a controlled resistance that is inversely proportional to said control current.
- 8. A current controlled filter circuit comprising:a filter stage containing a tunable transconductance that is adapted to establish a cut-off frequency of said filter stage; and a transconductance tuning stage coupled to said filter stage; and wherein said filter stage and said transconductance tuning stage are configured such that said cut-off frequency of said filter stage is linearly proportional to a control current applied to said transconductance tuning stage.
- 9. The current controlled filter circuit according to claim 8, wherein said filter stage comprises a tunable gm/C filter, having a tunable transconductance (gm) stage and an integrating capacitor C coupled therewith, such that said tunable gm/C filter has a cutoff frequency fo proportional to the ratio of gm to C.
- 10. The current controlled filter circuit according to claim 9, wherein said transconductance tuning stage is referenced to a current mirror circuit, which replicates said control current.
- 11. The current controlled filter circuit according to claim 10, wherein said transconductance tuning stage includes a differentially connected pair of transistors, each having an effective transconductance gm, and being coupled in circuit with a respective controlled MOSFET-implemented resistance, which is coupled to receive a control input, and wherein each each MOSFET-implemented resistance is operated in the linear portion of its VDS-IDS characteristic.
- 12. The current controlled filter circuit according to claim 11, wherein each MOSFET-implemented resistance has a controlled resistance that is inversely proportional to said control current.
- 13. A signal processing circuit according to claim 11, wherein said tunable transconductance and said transconductance (gm) stage are interconnected such that said tunable gm/C filter has a cut-off frequency that is linearly proportional to said control current.
- 14. For use with a communication device having a signal modulator adapted to modulate a signal in accordance with an output frequency coupled thereto by a current-controlled oscillator, which is adapted to generate said output frequency in accordance with a control current applied thereto, a method of filtering the output of said signal modulator comprising the steps of:(a) coupling to the output of said signal modulator a frequency-tracking filter circuit having a cut-off frequency that is linearly proportional to said control current; and (b) controlling said cut-off frequency of said frequency-tracking filter circuit in linear proportion to said control current.
- 15. The method according to claim 14, wherein said frequency-tracking filter circuit includes a transconductance tuning stage coupled to receive said control current, and a transconductance-containing filter stage coupled to said transconductance tuning stage.
- 16. The method according to claim 15, wherein said transconductance-containing filter stage comprises a tunable gm/C filter, having a tunable transconductance (gm) stage and an integrating capacitor C coupled therewith, such that said tunable gm/C filter has a cutoff frequency fo proportional to the ratio of gm to C.
- 17. The method according to claim 16, wherein said transconductance tuning stage is referenced to a current mirror circuit, which replicates said control current.
- 18. The method according to claim 17, wherein said transconductance tuning stage includes a differentially connected pair of transistors, each having an effective transconductance gm, and being coupled in circuit with a respective controlled MOSFET-implemented resistance, which is coupled to receive a control input.
- 19. The method according to claim 18, wherein each MOSFET-implemented resistance is operated in the linear portion of its VDS-IDS characteristic.
- 20. The method according to claim 18, wherein each MOSFET-implemented resistance has a controlled resistance that is inversely proportional to said control current.
Parent Case Info
This application is a continuation of application U.S. Ser. No. 09/334,998 filed on Jun. 17, 1999, now U.S. Pat. No. 6,233,293 B1, issued May 15, 2001, which is a continuation of U.S. Ser. No. 08/606,958 filed on Feb. 23, 1996, now U.S. Pat. No. 5,953,379 issued Sep. 14, 1999. The present invention relates in general to communication circuits, including continuous time integrated communication circuits, and is particularly directed to an improved on-chip, ‘carrier-tracking’ filter circuit, having a cut-off frequency that varies linearly with a control current supplied to a current-controlled oscillator, from which the carrier frequency to be tracked is derived.
US Referenced Citations (11)
Foreign Referenced Citations (1)
| Number |
Date |
Country |
| 0 445 298 |
Jun 1991 |
EP |
Non-Patent Literature Citations (2)
| Entry |
| “Design of Continuous-Time Fully Integrated Filters: A Review”, by Prof. R. Schaumann, IEEE Proceedings, vol. 136, Pt. T. No. 4, Aug., 1989, pp. 184-190. |
| “A 4-MHz CMOS Continuout-Time Fileter with On-Chip Automatic Tuning”, by Fancois Krummenacher and Norbert Joehl; IEEE Journal of Solid-State Circuits, vol. 23, No. 3, Jun., 1998, pp 750-758. |
Continuations (2)
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Number |
Date |
Country |
| Parent |
09/334998 |
Jun 1999 |
US |
| Child |
09/855332 |
|
US |
| Parent |
08/606958 |
Feb 1996 |
US |
| Child |
09/334998 |
|
US |