Claims
- 1. A method for producing a linearized electrical signal that is substantially linearly related to a time-varying intensity of electromagnetic radiation impinging upon a photo-conductive detector, comprising the steps:
- providing a photoconductive detector for converting incident electromagnetic radiation to generate an electrical signal that is indicative of the energy of the radiation;
- applying to said detector a constant bias voltage;
- causing electromagnetic radiation to impinge upon said detector for a period of time, so as to generate an electrical signal having a time-varying value X.sub.s that is indicative of the energy of the impinging radiation, the generated signal including distortions which render it nonlinearly related to said impinging radiation energy;
- producing a first corrective signal having the value (X.sub.s -C).sup.2, wherein C is zero or a numerical constant of like units to X.sub.s ;
- producing a second corrective signal having the value (X.sub.s -C).sup.3 ; and
- adding at least a fraction of said first corrective signal value and at least a fraction of said second corrective signal value to a signal having at least the value X.sub.s so as to substantially eliminate said distortions therefrom and thereby produce a substantially linearized output signal.
- 2. The method of claim 1 wherein said generated electrical signal constitutes detector-generated voltages, wherein said generated and corrective signals are combined in accordance with the relationship:
- X.sub.s +f(X.sub.s -C).sup.2 +g(X.sub.s -C).sup.3,
- wherein "f" and "g" are fractional constants, wherein specific values "f.sub.o " and "g.sub.o " are established for the fractional constants "f" and "g", respectively, at which specific values said distortions are substantially eliminated in the combined signal produced, and wherein C is a reference voltage.
- 3. The method of claim 1 wherein said generated electrical signal is obtained separately as direct current and alternating current portions of a modulated signal, wherein said generated and corrective signals are combined in accordance with the relationship:
- (1+2fX.sub.DC +3gX.sub.DC.sup.2)X.sub.AC +(f+3gX.sub.DC)X.sub.AC.sup.2 +gX.sub.AC.sup.3,
- wherein "f" and "g" are fractional constants, "X.sub.DC " and "X.sub.AC " are the direct current and alternating current portions, respectively, of the generated signal "X" and wherein specific values "f.sub.o " and "g.sub.o " are established for the fractional constants "f" and "g", respectively, at which specific values said distortions are substantially eliminated in the combined signal produced.
- 4. The method of claim 3 wherein said generated signal is converted to digital form, and wherein said steps of producing said corrective signal and combining said signals are carried out by an electronic data processing technique.
- 5. The method of claim 3 wherein said A.C. signal portion is an interferogram.
- 6. The method of claim 1 wherein said steps of producing said corrective signal and combining said signals are carried out by analog electronic circuitry.
- 7. The method of claim 1 wherein said impinging electromagnetic radiation is spectral radiation in the infrared region.
- 8. The method of claim 1 comprising the further step of producing a third corrective signal having the value (X.sub.s -C).sup.4, at least a fraction of said third corrective signal being added to said X.sub.s signal in said adding step.
- 9. A system for detecting incident electromagnetic radiation and producing a linearized electrical output signal that is substantially linearly related to a time-varying intensity of the incident radiation, comprising:
- a photoconductive detector for converting incident electromagnetic radiation to generate an electrical signal having a time-varying value X.sub.s that is indicative of the energy of such radiation, said detector having an associate a bias circuit for applying a constant bias voltage thereto, and having characteristics that tend to introduce distortions which render the detector-generated signal nonlinearly related to the energy of the impinging radiation;
- means for producing a first corrective signal having the value (X.sub.s -C).sup.2 wherein C is zero or a numerical constant of like units to X.sub.s ;
- means for producing a second corrective signal having the value (X.sub.s -C).sup.3 ; and
- means for adding at least a fraction of such a first corrective signal and at least a fraction of such a second corrective signal to a signal having at least the value X.sub.s, so as to produce such an output signal.
- 10. The system of claim 9 wherein said means for adding combines the generated and corrective signals in accordance with the relationship:
- X.sub.s +f(X.sub.s -C).sup.2 +g(X.sub.s -C).sup.3,
- in which "f" and "g" are fractional constants; and wherein said system includes means for establishing specific values "f.sub.o " and "g.sub.o " of said constants "f" and "g", at which specific values the distortions are substantially eliminated in the output signal produced.
- 11. The system of claim 10 wherein said means for producing, said means for adding, and said means for establishing comprise analog electronic circuitry to which said detector is connected for operation upon the voltage values of the electrical signal generated by said detector, X.sub.s of said relationship representing such voltage values; and wherein means is provided for generating and applying to said circuit a reference voltage, said C term of said relationship being a constant having the value of such reference voltage.
- 12. The system of claim 9 wherein said generated electrical signal is obtained separately as direct current and alternating current portions of a modulated signal, wherein said means for adding combines the generated and corrective signals are combined in accordance with the relationship:
- (1+2fX.sub.DC +3gX.sub.DC.sup.2)X.sub.AC +(f+3gX.sub.DC)X.sub.AC.sup.2 +gX.sub.AC.sup.3,
- wherein "f" and "g" are fractional constants, "X.sub.DC " and "X.sub.AC " are the direct current and alternating current portions, respectively, of the generated signal "X.sub.s ", and wherein specific values "f.sub.o " and "g.sub.o " are established for the fractional constants "f" and "g" respectively, at which specific values said distortions are substantially eliminated in the combined signal produced.
- 13. The system of claim 9 wherein said means for producing and said means for adding comprise first and second integrated circuits.
- 14. The system of claim 13 wherein both of said integrated circuits function in accordance with the transfer equation:
- V.sub.o =A[(x.sub.1 -x.sub.2)(y.sub.1 -y.sub.2)/B+(z.sub.2 -z.sub.1)],
- wherein V.sub.o is the output voltage from said integrated circuit, A is its amplification gain, B is a constant-value voltage term, and x.sub.1, x.sub.2, y.sub.1, y.sub.2, z.sub.1, and z.sub.2, are variable voltage values.
- 15. The system of claim 9 wherein said detector is a mercury cadmium telluride device.
- 16. The system of claim 9 wherein said system additionally includes a source of electromagnetic radiation operatively disposed to project a beam upon said detector.
- 17. The system of claim 16 wherein said system additionally includes interferometer means, operatively disposed in the beam path between said source and said detector.
- 18. The system of claim 17 wherein said electromagnetic radiation is spectral radiation, and is in the infrared region of the spectrum.
- 19. The system of claim 18 wherein said system comprises a Fourier transform spectrometer.
- 20. The system of claim 9 further comprising means for producing a third corrective signal having the value (X.sub.s -C).sup.4, said means for adding functioning to add at least a fraction of such a third corrective signal to produce the output signal.
Government Interests
The United States Government has rights in this invention pursuant to Contract No. DE-AC01-88ER80561, awarded by the Department of Energy.
US Referenced Citations (6)