Claims
- 1. A method of forming a minimum mean-square error linear optical filter having the following mathematical amplitude frequency response: ##EQU8##where: S.sub.ss (.omega.) is the power spectral density of the signal to be enhanced by the minimum mean-square linear optical filter; and,
- S.sub.nn (.omega.) is the power spectral density of the signal to be suppressed by the minimum mean-square linear optical filter, said method comprising the steps of:
- directing a beam of coherent monochromatic light toward a monolayer of particles having a high percentage of particles having the power spectral density S.sub.ss (.omega.);
- collecting the light scattered by said particles with a transforming lens;
- making a first photographic negative of the scattered light collected by said transforming lens at the focal plane of said transforming lens;
- developing said first photographic negative for a gamma of one;
- directing a beam of coherent monochromatic light toward a monolayer of particles having the power spectral density S.sub.ss (.omega.) + S.sub.nn (.omega.);
- collecting the light scattered by said monolayer with a transforming lens;
- making a second photographic negative of the light collected by said transforming lens at the focal plane of said transforming lens using said first photographic negative as a filter; and,
- developing said second photographic negative for a gamma of two.
- 2. A minimum mean-square error linear optical filter formed in accordance with the process recited in claim 1.
- 3. A method of forming a minimum mean-square error linear optical filter having the following mathematical amplitude frequency response; ##EQU9##where: S.sub.ss (.omega.) is the power spectral density of the signal to be enhanced by the minimum mean-square error linear optical filter; and,
- S.sub.nn (.omega.) is the power spectral density of the signal to be suppressed by the minimum mean-square error linear optical filter, said method comprising the steps of:
- directing a beam of coherent monochromatic light toward a monolayer of particles having a high percentage of particles having the power spectral density S.sub.ss (.omega.);
- collecting the light scattered by said particles with a transforming lens;
- making a first photographic negative of the scattered light collected by said transforming lens at the focal plane of said transforming lens;
- developing said first photographic negative for a gamma of one;
- obtaining a photographic positive from said first photographic negative;
- directing a beam of coherent monochromatic light toward a monolayer of particles having the power spectral density S.sub.ss (.omega.) + S.sub.nn (.omega.);
- collecting the light scattered by said monolayer with a transforming lens;
- making a second photographic negative of the light collected by said transforming lens at the focal plane of said transforming lens;
- developing said second photographic negative for a gamma of two; and,
- sandwiching said photographic positive and said second photographic negative together.
- 4. A minimum mean-square error linear optical filter formed in accordance with the process recited in claim 3.
- 5. A minimum mean-square error linear optical filter having the amplitude frequency transfer function: ##EQU10##where: S.sub.ss (.omega.) is the power spectral density of a desired optical signal; and,
- S.sub.nn (.omega.) is the power spectral density of the remainder of the optical signal, said minimum mean-square linear optical filter formed in a photographic plate prepared in accordance with a process comprising the steps of:
- directing a beam of coherent monochromatic light toward a monolayer of particles having a high percentage of particles having the power spectral density S.sub.ss (.omega.);
- collecting the light scattered by said particles with a transforming lens;
- making a first photographic negative of the scattered light collected by said transforming lens at the focal plane of said transforming lens;
- developing said first photographic negative for a gamma of one;
- directing a beam of coherent monochromatic light toward a monolayer of particles having the power spectral density S.sub.ss (.omega.) + S.sub.nn (.omega.);
- collecting the light scattered by said monolayer with a transforming lens;
- making a second photographic negative of the light collected by said transforming lens at the focal plane of said transforming lens using said first photographic negative as a filter; and,
- developing said second photographic negative for a gamma of two.
- 6. A minimum mean-square error linear optical filter having the amplitude frequency transfer function: ##EQU11##where: S.sub.ss (.omega.) is the power spectral density of a desired optical signal; and,
- S.sub.nn (.omega.) is the power spectral density of the remainder of the optical signal, said minimum mean-square linear optical filter contained in a photographic plate formed of a sandwich of a photographic positive having the transfer function S.sub.ss (.omega.) and a photographic negative having the transfer function S.sub.ss (.omega.) + S.sub.nn (.omega.) prepared in accordance with a process comprising the steps of:
- directing a beam of coherent monochromatic light toward a monolayer of particles having a high percentage of particles having the power spectral density S.sub.ss (.omega.);
- collecting the light scattered by said particles with a transforming lens;
- developing said first photographic negative for a gamma of one;
- obtaining a photographic positive from said first photographic negative;
- directing a beam of coherent monochromatic light toward a monolayer of particles having the power spectral density S.sub.ss (.omega.)+ S.sub.nn (.omega.);
- collecting the light scattered by said monolayer with a transforming lens;
- making a second photographic negative of the light collected by said transforming lens at the focal plane of said transforming lens;
- developing said second photographic negative for a gamma of two; and,
- sandwiching said photographic positive and said second photographic negative together.
Parent Case Info
This is a divisional of application Ser. No. 469,376, filed May 13, 1974, now U.S. Pat. No. 394,7123.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
3501221 |
Lohmann |
Mar 1970 |
|
Non-Patent Literature Citations (3)
Entry |
Horner, Jour. of the Optical Society of America, vol. 59, No. 5, pp. 553-558, May 1969. |
Caulfield, Applied Optics, vol. 13, No. 5, May 1974, pp. 996-997. |
Vander Lugt, Optica Acta, vol. 15, No. 1, pp. 1-33, Feb. 1968. |
Divisions (1)
|
Number |
Date |
Country |
Parent |
469376 |
May 1974 |
|