Claims
- 1. A method for optimizing one or more spectral sensitivities for an imaging device, the method comprising:
determining a first set of spectral sensitivities from an initial set of spectral sensitivities based on an analysis of one of a universal measure of goodness, a μ-Factor, and RMS noise; and determining a second set of spectral sensitivities from the first plurality of sets of spectral sensitivities based on an analysis of a different one of the universal measure of goodness, the μ-Factor, and the RMS noise, wherein the second set of spectral sensitivities comprises an optimized set of spectral sensitivities.
- 2. The method as set forth in claim 1 further comprising determining a third set of spectral sensitivities from the second plurality of sets of spectral sensitivities based on an analysis the remaining one of the universal measure of goodness, the μ-Factor, and the RMS noise, wherein the third set of spectral sensitivities comprises the optimized set of spectral sensitivities.
- 3. The method as set forth in claim 2 further comprising determining a fourth set of spectral sensitivities from the third set of spectral sensitivities based on an analysis of quantization error minimization, wherein the fourth set of spectral sensitivities comprises the optimized set of spectral sensitivities.
- 4. The method as set forth in claim 2 further comprising applying a different weight to the analysis of the universal measure of goodness, the analysis of the μ-Factor, and the analysis of the RMS noise.
- 5. The method as set forth in claim 1 further comprising obtaining the initial set of spectral sensitivities, wherein the determining a first set of spectral sensitivities further comprises determining the first set of spectral sensitivities from the initial set of spectral sensitivities based on the analysis of color difference and noise propagation.
- 6. The method as set forth in claim 1 wherein the analysis based on the unified measure of goodness further comprises an analysis of color difference and noise propagation.
- 7. The method as set forth in claim 1 wherein the analysis based on the μ-Factor further comprises an analysis of spectral fitting.
- 8. The method as set forth in claim 1 wherein the analysis based on the RMS noise further comprises an analysis of granularity noise.
- 9. A system for optimizing the selection of camera spectral sensitivities, the system comprising:
a source for an initial set of spectral sensitivities; and an optimizing system that determines a first set of spectral sensitivities from the initial set of spectral sensitivities based on an analysis of one of a universal measure of goodness, a μ-Factor, and RMS noise; the optimizing system determines a second set of spectral sensitivities from the first plurality of sets of spectral sensitivities based on an analysis of a different one of the universal measure of goodness, the μ-Factor, and the RMS noise, wherein the second set of spectral sensitivities comprises an optimized set of spectral sensitivities.
- 10. The system as set forth in claim 9 wherein the optimizing system determines a third set of spectral sensitivities from the second plurality of sets of spectral sensitivities based on an analysis the remaining one of the universal measure of goodness, the μ-Factor, and the RMS noise, wherein the third set of spectral sensitivities comprises the optimized set of spectral sensitivities.
- 11. The system as set forth in claim 10 wherein the optimizing system determines a fourth set of spectral sensitivities from the third set of spectral sensitivities based on an analysis of quantization error minimization, wherein the fourth set of spectral sensitivities comprises the optimized set of spectral sensitivities.
- 12. The system as set forth in claim 10 further comprising a weighting system that applies a different weight to the analysis of the universal measure of goodness, the analysis of the μ-Factor, and the analysis of the RMS noise.
- 13. The system as set forth in claim 9 wherein the source is at least one of an imaging device and a memory device.
- 14. The system as set forth in claim 9 wherein the analysis by the optimizing system based on the unified measure of goodness further comprises an analysis of color difference and noise propagation.
- 15. The system as set forth in claim 9 wherein the analysis by the optimizing system based on the μ-Factor further comprises an analysis of spectral fitting.
- 16. The system as set forth in claim 9 wherein the analysis by the optimizing system based on the RMS noise further comprises an analysis of granularity noise.
- 17. A computer-readable medium having stored thereon instructions, which when executed by at least one processor, causes the processor to perform:
determining a first set of spectral sensitivities from an initial set of spectral sensitivities based on an analysis of one of a universal measure of goodness, a μ-Factor, and RMS noise; and determining a second set of spectral sensitivities from the first plurality of sets of spectral sensitivities based on an analysis of a different one of the universal measure of goodness, the μ-Factor, and the RMS noise, wherein the second set of spectral sensitivities comprises an optimized set of spectral sensitivities.
- 18. The medium as set forth in claim 17 further comprising determining a third set of spectral sensitivities from the second plurality of sets of spectral sensitivities based on an analysis the remaining one of the universal measure of goodness, the μ-Factor, and the RMS noise, wherein the third set of spectral sensitivities comprises the optimized set of spectral sensitivities.
- 19. The medium as set forth in claim 18 further comprising determining a fourth set of spectral sensitivities from the third set of spectral sensitivities based on an analysis of quantization error minimization, wherein the fourth set of spectral sensitivities comprises the optimized set of spectral sensitivities.
- 20. The medium as set forth in claim 18 further comprising applying a different weight to the analysis of the universal measure of goodness, the analysis of the μ-Factor, and the analysis of the RMS noise.
- 21. The medium as set forth in claim 17 further comprising obtaining the initial set of spectral sensitivities, wherein the determining a first set of spectral sensitivities further comprises determining the first set of spectral sensitivities from the initial set of spectral sensitivities based on the analysis of color difference and noise propagation.
- 22. The medium as set forth in claim 17 wherein the analysis based on the unified measure of goodness further comprises an analysis of color difference and noise propagation.
- 23. The medium as set forth in claim 17 wherein the analysis based on the μ-Factor further comprises an analysis of spectral fitting.
- 24. The medium as set forth in claim 17 wherein the analysis based on the RMS noise further comprises an analysis of granularity noise.
Parent Case Info
[0001] The present invention claims the benefit of U.S. Provisional Patent Application Serial No. 60/332,987, filed Nov. 6, 2001, which is hereby incorporated by reference in its entirety.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60332987 |
Nov 2001 |
US |