Claims
- 1. A system for stabilizing a reference voltage, independent of a sampling rate, comprising:
- an amplifier; and
- a programmable current;
- wherein said amplifier amplifies said reference voltage to a predefined voltage level, resulting in an amplified reference voltage, so as to maintain a voltage level of said reference voltage, and said programmable current modifying said amplified reference voltage to compensate for an adjustment in a current level of said reference voltage caused by a sampling of said reference voltage.
- 2. The system of claim 1, wherein said amplifier is a unity gain buffer amplifier.
- 3. The system of claim 1, wherein said reference voltage is adjusted by said programmable current to compensate for a reference voltage error before amplification, thereby deriving a correct reference voltage.
- 4. The system of claim 1, wherein said programmable current is further defined by a sink current and a source current.
- 5. The system of claim 4, wherein said sink and source currents are controlled by a single control loop.
- 6. The system of claim 4, wherein said sink and source currents are controlled by separate control loops.
- 7. The system of claim 1, wherein said reference voltage is defined by a common mode voltage (VCM), a high reference voltage (VP), and a low reference voltage (VN).
- 8. The system of claim 3, wherein said programmable current is determined by the equation, I.sub.source =(VPout-VCM)C1(.function..sub.s /2), in response to said adjustment in current being a decrease in reference voltage level, wherein VPout is said reference voltage VP, after amplification by said amplifier, C1 is the capacitance of a first capacitor which decreases sampling noise, and .function..sub.s is the sampling rate of said system.
- 9. The system of claim 3, wherein said programmable current is determined by the equation, I.sub.sink =(VCM-VNout)C2(.function..sub.s /2), in response to said adjustment in current being an increase in reference voltage level, wherein VNout is said reference voltage VN, after amplification by said amplifier, C2 is the capacitance of a second capacitor which decreases sampling noise, and .function..sub.s is the sampling rate of said system.
- 10. A method of stabilizing a reference voltage, independent of a sampling rate comprising the steps of:
- amplifying said reference voltage to a predefined voltage level, resulting in an amplified reference voltage, so as to maintain a voltage level of said reference voltage; and
- modifying said amplified reference voltage by a current to compensate for an adjustment in a current level of said reference voltage caused by a sampling of said reference voltage.
- 11. The method of claim 10, wherein said amplification is performed by a unity gain buffer amplifier.
- 12. The method of claim 10, further comprising the step of adjusting said reference voltage by said current to compensate for a reference voltage error before said amplifying step, thereby deriving a correct reference voltage.
- 13. The method of claim 10, wherein said current is programmable.
- 14. The method of claim 10, wherein said reference voltage is defined by a common mode voltage (VCM), a high reference voltage (VP), and a low reference voltage (VN).
- 15. The method of claim 12, wherein said current is determined by the equation, I.sub.source =(VPout-VCM)C1(.function..sub.s /2), in response to said adjustment in current being an decrease in reference voltage level, wherein VPout is said reference voltage VP, after amplification by said amplifier, C1 is the capacitance of a first capacitor which decreases sampling noise, and .function..sub.s is said sampling rate.
- 16. The method of claim 12, wherein said current is determined by the equation, I.sub.sink =(VCM-VNout)C2(.function..sub.s /2), in response to said adjustment in current being an increase in reference voltage level, wherein VNout is said reference voltage VN, after amplification by said amplifier, C2 is the capacitance of a second capacitor which decreases sampling noise, and .function..sub.s is said sampling rate.
- 17. The method of claim 13, wherein said programmable current is further defined by a sink current and a source current.
- 18. The method of claim 17, wherein said sink and source currents are controlled by a single control loop.
- 19. The system of claim 17, wherein said sink and source currents are controlled by separate control loops.
- 20. A system for stabilizing a reference voltage, independent of a sampling rate, comprising:
- an amplifier; and
- a programmable current;
- wherein said amplifier amplifies said reference voltage, resulting in an amplified reference voltage, wherein said reference voltage is adjusted by said programmable current to compensate for a reference voltage error before amplification, thereby deriving a correct reference voltage, so as to maintain a voltage level of said reference voltage, and said programmable current modifying said amplified reference voltage to compensate for an adjustment in a current level of said reference voltage caused by a sampling of said reference voltage, and
- wherein said programmable current is determined by the equation, I.sub.source =(VPout-VCM)C1(.function..sub.s /2), in response to said adjustment in current being a decrease in reference voltage level, wherein VPout is said reference voltage VP, after amplification by said amplifier, C1 is the capacitance of a first capacitor which decreases sampling noise, and .function..sub.s is the sampling rate of said system.
- 21. A system for stabilizing a reference voltage, independent of a sampling rate, comprising:
- an amplifier; and
- a programmable current;
- wherein said amplifier amplifies said reference voltage, resulting in an amplified reference voltage, wherein said reference voltage is adjusted by said programmable current to compensate for a reference voltage error before amplification, thereby deriving a correct reference voltage, so as to maintain a voltage level of said reference voltage, and said programmable current modifying said amplified reference voltage to compensate for an adjustment in a current level of said reference voltage caused by a sampling of said reference voltage, and
- wherein said programmable current is determined by the equation, I.sub.sink =(VCM-VNout)C2(.function..sub.s /2), in response to said adjustment in current being an increase in reference voltage level, wherein VNout is said reference voltage VN, after amplification by said amplifier, C2 is the capacitance of a second capacitor which decreases sampling noise, and .function..sub.s is the sampling rate of said system.
- 22. A method of stabilizing a reference voltage, independent of a sampling rate comprising the steps of:
- amplifying said reference voltage, resulting in an amplified reference voltage, so as to maintain a voltage level of said reference voltage;
- modifying said amplified reference voltage by a current to compensate for an adjustment in a current level of said reference voltage caused by a sampling of said reference voltage; and
- adjusting said reference voltage by said current to compensate for a reference voltage error before said amplifying step, thereby deriving a correct reference voltage,
- wherein said current is determined by the equation, I.sub.source =(VPout-VCM)C1(.function..sub.s /2),
- in response to said adjustment in current being a decrease in reference voltage level, wherein VPout is said reference voltage VP, after amplification by said amplifier, C1 is the capacitance of a first capacitor which decreases sampling noise, and .function..sub.s is said sampling rate.
- 23. A method of stabilizing a reference voltage, independent of a sampling rate comprising the steps of:
- amplifying said reference voltage, resulting in an amplified reference voltage, so as to maintain a voltage level of said reference voltage; and
- modifying said amplified reference voltage by a current to compensate for an adjustment in a current level of said reference voltage caused by a sampling of said reference voltage; and
- adjusting said reference voltage by said current to compensate for a reference voltage error before said amplifying step, thereby deriving a correct reference voltage,
- wherein said current is determined by the equation, I.sub.sink =(VCM-VNout)C2(.function..sub.s /2),
- in response to said adjustment in current being an increase in reference voltage level, wherein VNout is said reference voltage VN, after amplification by said amplifier, C2 is the capacitance of a second capacitor which decreases sampling noise, and .function..sub.s is said sampling rate.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application claims the benefit of U.S. provisional patent application Ser. No. 60/098,275, filed on Aug. 28, 1998, and entitled "Calibration of Sampling Rate Dependent Offsets," which is incorporated by reference herein in its entirety.
US Referenced Citations (3)