Claims
- 1. An interferoceiver comprising:an input system for receiving one or more RF signals from a source and for applying the one or more RF signals to an RF signal train generator; wherein the RF signal train generator comprises:means, responsive to the input, for storing the one or more RF signals; means for regenerating replicas of the one or more stored RF signals; means for pairing the regenerated replicas; and means for outputting the paired replicas.
- 2. The interferoceiver of claim 1 further comprising an RF receiver; wherein the RF receiver comprises means for receiving the replicas of the RF signals; and means for processing the replicas with a reference to their pairs.
- 3. The interferoceiver of claim 2 wherein said source comprises means for generating an acoustical signal and for splitting the generated acoustical signal in parts; wherein the interferoceiver further comprises means for sending one of parts to the RF signal train generator; wherein the interferoceiver further comprises a system under test, and means for sending other parts through the system under test to the RF signal train generator; wherein the RF signal train generator further comprises means for convening acoustical signals to RF signals.
- 4. The interferoceiver of claim 2 wherein said source comprises means for generating an acoustical signal; wherein the interferoceiver further comprises a system under test, and means for sending the acoustical signal to the system under test; wherein the system under test comprises means for splitting the acoustical signal into parts, and for sending split parts to the RF signal train generator; wherein the RF signal train generator further comprises means for converting acoustical signals to RF signals.
- 5. The apparatus of claim 2 wherein said source comprises means for generating an RF signal and for splitting the generated RF signal in parts; wherein the interferoceiver further comprises means for sending one of parts to the RF signal train generator; wherein the interferoceiver further comprises a system under test, and means for sending other parts through the system under test to the RF signal train generator.
- 6. The interferoceiver of claim 2 wherein said source comprises means for generating an RF signal; wherein the interferoceiver further comprises a system under test, and means for sending the RF signal to the system under test; wherein the system under test comprises means for splitting the RF signal into parts, and for sending split pans to the RF signal train generator.
- 7. The interferoceiver of claim 2 wherein said source comprises means for generating an optical signal and for splitting the generated optical signal in parts; wherein the interferoceiver further comprises means for sending one of parts to the RF signal train generator; wherein the interferoceiver further comprises a system under test, and means for sending other parts through the system under test to the RF signal train generator; wherein the RF signal train generator further comprises means for converting optical signals to RF signals.
- 8. The interferoceiver of claim 2 wherein said source comprises means for generating an optical signal; wherein the interferoceiver further comprises a system under test, and means for sending the optical signal to the system under test; wherein the system under test comprises means for splitting the optical signal into parts, and for sending split parts to the RF signal train generator; wherein the RF signal train generator further comprises means for converting optical signals to RF signals.
- 9. A method for operating an interferoceiver comprising steps of:(a) storing one or more RF signals from a source in an RF signal train generator; (b) regenerating replicas of the one or more stored RF signals from the RF signal train generator; and (c) pairing the regenerated replicas.
- 10. The method of claim 9 further comprising steps of:(d) processing the replicas in a reference to their pairs.
- 11. The method of claim 10 further comprising steps of:(e) generating an acoustical signal from the source; (f) splitting the acoustical signal into parts; (g) sending one of part to the RF signal train generator and send other parts through a system under test to the RF signal train generator; and (h) converting acoustical signals to RF signals.
- 12. The method of claim 10 further comprising steps of:(e) generating an acoustical signal from the source; (f) sending the acoustical signal to a system under test; (g) splitting the acoustical signal by the system under test and sending the split acoustical signals to the RF signal train generator; and (h) convening acoustical signals to RF signals.
- 13. The method of claim 10 further comprising steps of:(e) generating an RF signal from the source; (f) splitting the RF signal into pans; and (g) sending one of part to the RF signal train generator and send other parts through a system under test to the RF signal train generator.
- 14. The method of claim 10 further comprising steps of:(e) generating an RF signal from the source; (f) sending the RF signal to a system under test; and (g) splitting the RF signal by the system under test and sending the split RF signals to the RF signal train generator.
- 15. The method of claim 10 further comprising steps of:(e) generating an optical signal from the source; (f) splitting the optical signal into parts; (g) sending one of parts to the RF signal train generator and send other parts through a system under test to the RF signal train generator; and (h) converting optical signals to RF signals.
- 16. The method of claim 10 further comprising steps of:(e) generating an optical signal from the source; (f) sending the optical signal to a system under test; (g) splitting the optical signal by the system under test and sending the split acoustical signals to the RF signal train generator; and (h) converting optical signals to RF signals.
- 17. An apparatus for investigating transient phenomena comprising:an input system for receiving an RF pulse from a source and for applying the RF pulse to an RF signal train generator; wherein the RF Signal train generator comprises:means, responsive to the input, for storing the RF pulse; means for regenerating a train of replicas from the stored RF pulse; and means for sampling regenerated replicas in the train with different delays.
- 18. The apparatus of claim 17 wherein said source is an optical, infrared electromagnetic, mechanical or acoustical source.
- 19. The apparatus of claim 17 wherein said RF signal train generator further comprises: means for receiving a second pulse from the source and for generating the replicas of the second pulse;wherein the apparatus further comprises means for processing the replicas of the first pulse with a reference to the replicas of the second pulse.
- 20. The apparatus of claim 17 further comprises means for processing the replicas with an RF receiver.
- 21. An interferoceiver comprising:an input system which receives one or more signals and outputs RF signals; an RF signal train generator which receives the RF signals from the input system and outputs multiple paired replicas of the RF signals.
- 22. The interferoceiver of claim 21 further comprising an RF receiver, which pairwise analyzes the paired replicas of the RF signals.
- 23. The interferoceiver of claim 22 further comprising a source, which emits the one or more signals.
- 24. The interferoceiver of claim 22 further comprising a source;wherein the source emits one or more signals; wherein a splitter splits the one or more signals into a first group of signals and a second group of signals; wherein the second group of signals transits to, and interacts with, a system; and wherein the input system is adapted to receive the first group of signals and the interacted second group of signals.
- 25. The interferoceiver of claim 22 further comprising a source;wherein the source emits one or more signals which interact with a system; and wherein the input system is adapted to receive the interacted one or more signals.
- 26. The interferoceiver of claim 21;wherein the input system comprises a splitter which splits the one or more signals.
- 27. The interferoceiver of claim 21;wherein the RF signal train generator comprises a pairing apparatus which pairs the generated replicas.
- 28. The interferoceiver of claim 21;wherein the RF signal train generator comprises an optical store which stores the RF signals as optical RF signals.
- 29. The interferoceiver of claim 28;wherein the RF signal train generator comprises an extractor which generates replicas of the optical RF signals stored in the optical store.
- 30. The interferoceiver of claim 29;wherein the optical store and the extractor are configured so that the replicas generated by the extractor are paired.
- 31. The interferoceiver of claim 28;wherein the optical store comprises one or more optical RF delay loops, or comprises one delay lines.
- 32. The interferoceiver of claim 22;wherein the RF receiver comprises a digitizer which analyzes the paired replicas of the RF signals by using one of the paired replicas as triggering pulses to sample another one of the paired replicas.
- 33. The interferoceiver of claim 32;wherein the digitizer further comprises a delay apparatus which systematically delays the triggering pulses.
- 34. The interferoceiver of claim 22;wherein the RF receiver comprises a coherent receiver which analyzes the paired replicas of the RF signals by using one of the paired replicas as a reference to produce relative amplitudes and phases or relative frequency differences between the RF signals.
- 35. The interferoceiver of claim 21;wherein the input system is adapted to receive at least one of optical, infrared, acoustical, electromagnetic, mechanical, or nuclear signals.
- 36. The apparatus of claim 21;wherein the input system is adapted to output optical RF signals, and the RF signal train generator is adapted to receive optical RF signals.
- 37. A method for investigating one or more signals comprising steps of:receiving the one or more signals and outputting RF signals; receiving the RF signals by an RF signal train generator; and outputting multiple paired replicas of the RF signals.
- 38. The method of claim 37 further comprising a step of:pairwise analyzing the paired replicas.
- 39. The method of claim 38 further comprising a step of:emitting the one or more signals from a source.
- 40. The method of claim 38 further comprising steps of:splitting the one or more signals into a first group of signals and a second group of signals; interacting the second group with a system; and wherein the step of receiving comprises steps of receiving the first group of signals and the interacted second group of signals.
- 41. The method of claim 38 further comprising a step of:interacting the one or more signals with a system; and wherein the step of receiving comprises a step of receiving the interacted one or more signals.
- 42. An apparatus for investigating one or more signals comprising:an input system which receives the one or more signals and outputs RF signals; an RF signal train generator which receives the RF signals from the input system and regenerates a train of replicas; and a receiver which samples the regenerated replicas in the train with different delays.
- 43. The apparatus of claim 42;wherein the receiver further comprises a correlator.
- 44. The apparatus of claim 42;wherein the receiver is adapted to output a data stream, and to send the data stream to a medium.
- 45. The apparatus of claim 42;wherein the input system is adapted to output optical RF signals, and the RF signal train generator is adapted to receive optical RF signals.
- 46. A method for investigating one or more signals comprising steps of:receiving the one or more signals; outputting one or more RF signals and regenerating a train of replicas of the RF signals; and sampling the regenerated replicas in the train with different delays.
- 47. The method of claim 46 further comprising steps of:producing a data stream; and sending the data system to a medium.
- 48. The method of claim 46 further comprising a step of storing the one or more signals as one or more optical RF signals.
Parent Case Info
This application is a continuation-in-part of application Ser. No. 18,388 filed Feb. 17, 1993, which was refiled as Ser. No. 08/439,284 on May 11, 1995 now U.S. Pat. No. 5,955,983, and a continuation-in-part of Ser. No. 877,419 filed May 1, 1992 now U.S. Pat. No. 5,294,930 and a continuation-in-part of Ser. No. 787,085 filed Nov. 4, 1991 now U.S. Pat. No. 5,296,860.
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08/185177 |
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09/219150 |
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08/018388 |
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