Claims
- 1. In an interrogating system that transmits sets of time-separated interrogating signals to generate sets of time-separated return signals, a system for automatically adjusting a level of each of said return signals, said system comprising:
a comparator defining a plurality of unique peak amplitudes and a corresponding plurality of unique binary words associated therewith, said comparator receiving each of said return signals from an i-th set thereof and outputting a binary word indicative of a peak amplitude achieved thereby, said binary word being one of said plurality of unique binary words; a first memory coupled to said comparator for storing each said binary word associated with each of said return signals from said i-th set; a second memory coupled to said first memory and having each of a plurality of address locations defined by one of said plurality of unique binary words, each of said plurality of address locations storing a unique gain value; and an adjustable gain amplifier having a signal input and a gain adjustment input, said signal input receiving each of said return signals, said gain adjustment input coupled to said second memory to receive one said unique gain value associated with each of said return signals from said i-th set to adjust the gain of said adjustable gain amplifier for corresponding ones of said return signals from an (i+1)-th set of said return signals.
- 2. A system as in claim 1 wherein said comparator comprises a plurality of peak detector circuits, each of said plurality of peak detector circuits having a detection threshold equal to one of said plurality of unique peak amplitudes, each of said plurality of peak detector circuits controlling a value of one bit of said binary word, wherein said one bit is set to a logical “1” when said peak amplitude exceeds said detection threshold.
- 3. A system as in claim 1 further comprising means for selecting a time window portion of each of said return signals from said i-th set, wherein said time window portion is provided to said comparator.
- 4. A system as in claim 1 wherein said second memory is a digital device and each said unique gain value is stored as a digital value, said system further comprising an analog-to-digital converter coupled between said second memory and said gain adjustment input for converting said digital value to an analog representation thereof.
- 5. A system as in claim 1 wherein said interrogating system is a multiple wavelength laser LIDAR system and each of said interrogating signals from an i-th set thereof is a unique wavelength laser pulse, and wherein said LIDAR system generates a set trigger pulse at the commencement of said i-th set of said interrogating signals and generates a laser trigger pulse at the commencement of each of said interrogating signals from said i-th set thereof, said system further comprising timing means coupled to said first memory, said timing means using said set trigger pulse and each said laser trigger pulse to control storing of each said binary word in said first means.
- 6. A system as in claim 5 wherein said timing means is further coupled to said second memory, said timing means using each said trigger pulse to initiate a reading of one of said plurality of address locations indicated by said binary word.
- 7. In a multiple wavelength laser LIDAR system that generates laser trigger pulses and transmits time-separated laser pulses of varying wavelength in response thereto to generate corresponding time-separated laser returns of varying wavelength, wherein each of said laser returns is detected and converted to a pulse voltage signal representation thereof, an automatic gain control system for use with said LIDAR system comprising:
a voltage comparator coupled to said LIDAR system for receiving said pulse voltage signal, detecting a peak amplitude of said pulse voltage signal, comparing said peak amplitude with N increasing voltage levels, and generating a binary word having a plurality of bits wherein successively significant ones of said plurality of bits are set to a logical “1” in correspondence with ones of said increasing voltage levels that are exceeded by said peak amplitude, and wherein N possible binary words can be generated; a processor having a memory with addressable locations, said processor coupled to said LIDAR system and said comparator for selecting one of said addressable locations upon receipt of each of said laser trigger pulses and for storing said binary word at said one of said addressable locations; a gain storage memory coupled to said processor and having N address locations defined by said N possible binary words, each of said N address locations storing a unique gain value; said processor selecting one of said N address locations defined by said binary word and causing said one of said N address locations to be read wherein one said unique gain value is made available as a selected gain; and a voltage controlled amplifier having a signal input and a gain adjustment input, said signal input coupled to said LIDAR system for receiving said pulse voltage signal, said gain adjustment input coupled to said gain storage memory for receiving said selected gain associated with said binary word.
- 8. A system as in claim 7 further comprising means coupled to said voltage comparator for causing said binary word to be generated only for a time window portion of said continuous voltage signal.
- 9. A system as in claim 7 wherein said gain storage memory is a digital device and each said unique gain value is stored as a digital value, said system further comprising an analog-to-digital converter coupled between said gain storage memory and said gain adjustment input for converting said digital value to an analog representation thereof.
- 10. In a multiple wavelength laser LIDAR system that generates laser trigger pulses and transmits sets of M time-separated laser pulses of varying wavelength in response thereto to generate sets of M time-separated laser returns of varying wavelength, wherein each of said laser returns is detected and converted to a k-th pulse voltage signal representation thereof where k=1 to M, an automatic gain control system for use with said LIDAR system comprising:
a voltage comparator coupled to said LIDAR system for receiving each said k-th pulse voltage signal corresponding to an i-th set of said laser returns, detecting a k-th peak amplitude of each said k-th pulse voltage signal, comparing each said k-th peak amplitude with N increasing voltage levels, and generating a k-th binary word corresponding to each said k-th peak amplitude, each said k-th binary word having a plurality of bits wherein successively significant ones of said plurality of bits are set to a logical “1” in correspondence with ones of said increasing voltage levels that are exceeded by said k-th peak amplitude, and wherein N possible binary words can be generated; a processor having a memory with addressable locations, said processor coupled to said LIDAR system and said comparator for storing each said k-th binary word associated with said i-th set of said laser returns at a selected one of said addressable locations in response to each of said laser trigger pulses; a gain storage memory coupled to said processor and having N address locations defined by said N possible binary words, each of said N address locations storing a unique gain value; said processor selecting one of said N address locations defined by each k-th binary word associated with an (i+1)-th set of said laser returns and causing said one of said N address locations to be read wherein one said unique gain value is made available as a selected gain; and a voltage controlled amplifier having a signal input and a gain adjustment input, said signal input coupled to said LIDAR system for receiving each k-th pulse voltage signal corresponding to said (i+1)-th set of said laser returns, said gain adjustment input coupled to said gain storage memory for receiving said selected gain associated with said k-th binary word associated with said i-th set of said laser returns.
- 11. A system as in claim 10 further comprising means coupled to said voltage comparator for causing each said k-th binary word associated with said i-th set of said laser returns to be generated only for a time window portion of said k-th pulse voltage signal corresponding to said i-th set of said laser returns.
- 12. A system as in claim 10 wherein said gain storage memory is a digital device and each said unique gain value is stored as a digital value, said system further comprising an analog-to-digital converter coupled between said gain storage memory and said gain adjustment input for converting said digital value to an analog representation thereof.
Government Interests
[0001] Statement of Government Interest
[0002] This invention was made with Government support under contract DAAM01-95-C-0021 awarded by the United States Army. The Government has certain rights in this invention.