Claims
- 1. A method for analyzing a wooden structure, the method comprising:
identifying a location for the wooden structure; propagating a first radar signal towards the wooden structure with a radar antenna while the radar antenna is in motion along a navigation path in the vicinity of the wooden structure; receiving a reflected radar signal from the wooden structure; and determining whether the wooden structure contains a structural anomaly from the reflected radar signal.
- 2. The method according to claim 1 wherein the first radar signal has a frequency between 360 MHz and 8 GHz.
- 3. The method according to claim 2 wherein the first radar signal has a frequency between 2 and 6 GHz.
- 4. The method according to claim 1 wherein identifying the location for the wooden structure comprises imaging the wooden structure.
- 5. The method according to claim 4 wherein imaging the wooden structure is performed with a charge coupled device.
- 6. The method according to claim 4 wherein imaging the wooden structure is performed at infrared electromagnetic wavelengths.
- 7. The method according to claim 4 wherein propagating a radar signal towards the wooden structure with the radar antenna comprises steering the radar antenna in a direction determined by imaging the wooden structure.
- 8. The method according to claim 1 wherein identifying the location for the wooden structure comprises ascertaining longitude and latitude positions for the wooden structure with a global positioning subsystem (GPS).
- 9. The method according to claim 1 wherein identifying the location for the wooden structure comprises reflecting a laser signal from the wooden structure.
- 10. The method according to claim 9 further comprising ascertaining a shape and physical dimensions of the wooden structure with the reflected laser signal.
- 11. The method according to claim 1 further comprising propagating a second radar signal towards the wooden structure, wherein such second radar signal is modulated in accordance with a pulse compression scheme and wherein the reflected radar signal includes signal components originating from both the first and second radar signals.
- 12. The method according to claim 11 wherein the second radar signal has a different frequency than the first radar signal.
- 13. The method according to claim 1 wherein determining whether the wooden structure contains a structural anomaly comprises:
calculating a density distribution for the wooden structure by manipulating data extracted from the reflected radar signal; and designating closed-volume regions within the wooden structure having a density less than a threshold density relative to a mean density for the wooden structure.
- 14. The method according to claim 1 wherein determining whether the wooden structure contains a structural anomaly is performed by a trained evaluation system.
- 15. The method according to claim 14 wherein the trained evaluation system comprises a neural net.
- 16. The method according to claim 14 wherein the trained evaluation system comprises an expert system.
- 17. The method according to claim 1 further comprising propagating the first radar signal towards the wooden structure with the radar antenna while the radar antenna is in motion along a verification path in the vicinity of the wooden structure, in response to a preliminary determination from the reflected radar signal that the wooden structure contains a structural anomaly, wherein such verification path differs from such navigation path.
- 18. The method according to claim 1 wherein determining whether the wooden structure contains a structural anomaly comprising ascertaining a location of any such structural anomaly within the wooden structure.
- 19. The method according to claim 18 further comprising generating a report indicating the position of any such structural anomaly within the wooden structure.
- 20. The method according to claim 1 wherein the wooden structure is a wooden pole.
- 21. The method according to claim 20 wherein the wooden pole is a utility or telecommunications pole.
- 22. A method for analyzing a wooden pole, the method comprising:
imaging the wooden pole to determine a location for the pole; steering a radar antenna in a direction towards the determined location of the wooden pole; propagating a first radar signal towards the wooden pole with the radar antenna while the radar antenna is in motion along a navigation path in the vicinity of the pole, wherein the first radar signal has a frequency between 360 MHz and 8 GHz; receiving a reflected radar signal from the wooden pole; calculating a density distribution for the wooden pole from data provided by the reflected radar signal; and determining whether the wooden pole contains a structural anomaly based on the calculated density distribution.
- 23. The method according to claim 22 wherein imaging the wooden pole is performed at infrared electromagnetic wavelengths.
- 24. The method according to claim 22 wherein imaging the wooden pole is performed with a charge coupled device.
- 25. The method according to claim 22 further comprising ascertaining longitude and latitude positions for the wooden pole with a global positioning system (GPS).
- 26. The method according to claim 22 further comprising reflecting a laser signal from the wooden pole to ascertain a shape and physical dimensions of the wooden pole.
- 27. The method according to claim 22 further comprising propagating a second radar signal towards the wooden pole, wherein such second radar signal has a different frequency than the first radar signal and is modulated in accordance with a pulse compression scheme and wherein the reflected radar signal includes signal components originating from both the first and second radar signals.
- 28. The method according to claim 22 further comprising propagating the first radar signal towards the wooden pole with the radar antenna while the radar antenna is in motion along a verification path in the vicinity of the wooden structure, in response to a preliminary determination from the reflected radar signal that the wooden pole contains a structural anomaly, wherein such verification path differs from such navigation path.
- 29. A method for analyzing a wooden pole, the method comprising:
imaging the wooden pole to determine a location for the wooden pole; reflecting a laser signal from the wooden pole to ascertain a shape and physical dimensions of the wooden pole; ascertaining longitude and latitude positions for the wooden pole with a global positioning system (GPS); steering a radar antenna in a direction towards the determined location of the wooden pole; propagating a first radar signal towards the wooden pole with the radar antenna while the radar antenna is in motion along a navigation path in the vicinity of the pole, wherein the first radar signal has a frequency between 360 MHz and 8 GHz; propagating a second radar signal towards the wooden pole with the radar antenna while the radar antenna is in motion along the navigation path, wherein the second radar signal is modulated in accordance with a pulse compression scheme and has a different frequency than the first radar signal; receiving a reflected radar signal from the wooden pole; calculating a density distribution for the wooden pole from data provided by the reflected radar signal; and determining whether the wooden pole contains a structural anomaly based on the calculated density distribution.
- 30. A system for analyzing a wooden structure, the system comprising:
a target-recognition device configurable for connection with a vehicle; a rotatable radar antenna configurable for connection with the vehicle, the rotatable radar antenna being adaptable to emit and receive electromagnetic signals; an arrangement of at least one computer system in communication with the target-recognition device and rotatable radar antenna and configured to accept instructions from an operator and to operate the target-recognition device and rotatable radar antenna in accordance with the following:
identifying a location for the wooden structure with the target recognition device; propagating a first radar signal towards the wooden structure with the radar antenna while the radar antenna is in motion along a navigation path in the vicinity of the wooden structure; receiving a reflected radar signal from the wooden structure with the radar antenna.
- 31. The system according to claim 30 wherein the target-recognition device comprises an imaging device.
- 32. The system according to claim 31 wherein the target-recognition device comprises a charge coupled device.
- 33. The system according to claim 31 wherein the target-recognition device comprises an infrared camera.
- 34. The system according to claim 31 wherein the arrangement of at least one computer system is configured such that propagating the first radar signal towards the wooden structure with the radar antenna comprises steering the radar antenna in a direction determined by imaging the wooden structure with the target-recognition device.
- 35. The system according to claim 30 further comprising a global positioning subsystem (GPS) in communication with the arrangement of at least one computer system and configurable for connection with the vehicle, and
wherein the arrangement of at least one computer system is configured such that identifying the location for the wooden structure comprises ascertaining longitude and latitude positions for the wooden structure with the GPS.
- 36. The system according to claim 30 further comprising a laser subsystem in communication with the arrangement of at least one computer system and configurable for connection with the vehicle, and
wherein the arrangement of at least one computer system is configured such that identifying the location for the wooden structure comprises reflecting a laser signal from the wooden structure with the laser subsystem.
- 37. The system according to claim 30 wherein the arrangement of at least one computer system is further configured in accordance with propagating a second radar signal towards the wooden structure with the radar antenna, wherein such second radar signal is modulated in accordance with a pulse compression scheme and wherein the reflected radar signal includes signal components originating from both the first and second radar signals.
- 38. The system according to claim 37 wherein the second radar signal has a different frequency than the first radar signal.
- 39. The system according to claim 30 wherein the arrangement of at least one computer system is further configured for determining whether the wooden structure contains a structural anomaly from data provided by the reflected radar signal.
- 40. The system according to claim 39 wherein the arrangement of at least one computer system is configured such that determining whether the wooden structure contains a structural anomaly comprises:
calculating a density distribution for the wooden structure by manipulating data extracted from the reflected radar signal; and designating closed-volume regions within the wooden structure having a density less than a threshold density relative to a mean density for the wooden structure.
- 41. The system according to claim 39 wherein the arrangement of at least one computer system includes a trained evaluation system configured for determining whether the wooden structure contains a structural anomaly.
- 42. The system according to claim 41 wherein the trained evaluation system comprises a neural net.
- 43. The system according to claim 41 wherein the trained evaluation system comprises an expert system.
- 44. The system according to claim 39 wherein the arrangement of at least one computer system is configured such that determining whether the wooden structure contains a structural anomaly comprises ascertaining a location of any such anomaly within the wooden structure.
- 45. A system for analyzing a wooden pole, the system comprising:
an imaging device configurable for connection with a vehicle; a laser subsystem configurable for connection with the vehicle; a global positioning system (GPS) configurable for connection with the vehicle; a rotatable radar antenna configurable for connection with the vehicle, the rotatable radar antenna being adapted to emit and receive electromagnetic signals; and an arrangement of at least one computer system in communication with the imaging device, laser subsystem, GPS, and rotatable radar antenna and configured to accept instructions from an operator and to operate the imaging device, laser subsystem, GPS, and rotatable radar antenna in accordance with the following:
imaging the wooden pole with the imaging device to determine a location for the wooden pole; reflecting a laser signal from the wooden pole to ascertain a shape and physical dimensions of the wooden pole; ascertaining longitude and latitude positions for the wooden pole with the GPS; steering the radar antenna in a direction towards the determined location of the wooden pole; propagating a first radar signal towards the wooden pole with the radar antenna while the radar antenna is in motion along a navigation path in the vicinity of the wooden pole; propagating a second radar signal towards the wooden pole with the radar antenna while the radar antenna is in motion along the navigation path, wherein the second radar signal is modulated in accordance with a pulse compression scheme and has a different frequency than the first radar signal; and receiving a reflected radar signal from the wooded pole with the radar antenna.
- 46. The system according to claim 45 wherein the arrangement of at least one computer system is further configured for determining whether the wooden pole contains a structural anomaly from data provided by the reflected radar signal.
- 47. The system according to claim 46 wherein determining whether the wooden pole contains a structural anomaly comprises:
calculating a density distribution for the wooden structure by manipulating data extracted from the reflected radar signal; and designating closed-volume regions within the wooden pole having a density less than a threshold density relative to a mean density for the wooden pole.
- 48. The system according to claim 46 wherein the arrangement of at least one computer system includes a neural net configured for determining whether the wooden pole contains a structural anomaly.
- 49. A method for identifying an anomaly in an insulative component of a structure, the method comprising:
identifying a location for the structure; identifying a position for the insulative component relative to the structure; propagating a first radar signal towards the insulative component with a radar antenna while the radar antenna is in motion along a navigation path in the vicinity of the structure; receiving a reflected radar signal from the insulative component; and determining whether the insulative component contains the anomaly from the reflected radar signal.
- 50. The method according to claim 49 wherein the first radar signal has a frequency between 360 MHz and 8 GHz.
- 51. The method according to claim 50 wherein the first radar signal has frequency between 2 and 6 GHz.
- 52. The method according to claim 49 wherein identifying a location for the structure comprises imaging the structure and wherein identifying a position for the insulative component comprises imaging the insulative component.
- 53. The method according to claim 52 wherein imaging the structure and imaging the insulative component are performed with a charge coupled device.
- 54. The method according to claim 52 wherein imaging the structure and imaging the insulative component are performed at infrared electromagnetic wavelengths.
- 55. The method according to claim 52 wherein propagating a first radar signal towards the insulative component comprises steering the radar antenna in a direction determined by imaging the insulative component.
- 56. The method according to claim 49 wherein identifying the location for the structure comprises ascertaining longitude and latitude positions for the structure with a ground positioning subsystem (GPS).
- 57. The method according to claim 49 wherein identifying the location for the structure comprises reflecting a laser signal from the structure.
- 58. The method according to claim 49 further comprising propagating a second radar signal towards the insulative component, wherein such second radar signal is modulated in accordance with a pulse compression scheme and wherein the reflected radar signal includes signal components originating from both the first and second radar signals.
- 59. The method according to claim 58 wherein the second radar signal has a different frequency than the first radar signal.
- 60. The method according to claim 49 wherein determining whether the insulative component contains the anomaly is performed by a trained evaluation system.
- 61. The method according to claim 60 wherein the trained evaluation system comprises a neural net.
- 62. The method according to claim 60 wherein the trained evaluation system comprises an expert system.
- 63. The method according to claim 49 wherein the insulative component is a central member of a utility pole.
- 64. The method according to claim 49 wherein the insulative component is a crossarm of a utility pole.
- 65. The method according to claim 49 wherein the insulative component is an insulator on a utility pole.
- 66. A method for identifying an anomaly in an insulative component of a utility pole, the method comprising:
imaging the utility pole to determine a location for the utility pole; imaging the insulative component to determine a position for the insulative component relative to the utility pole; steering a radar antenna in a direction towards the determined position for the insulative component; propagating a first radar signal towards the insulative component with the radar antenna while the radar antenna is in motion along a navigation path in the vicinity of the utility pole, wherein the first radar signal has a frequency between 360 MHz and 2 GHz; receiving a reflected radar signal from the insulative component; and determining whether the insulative component contains the anomaly from the reflected radar signal.
- 67. The method according to claim 66 further comprising ascertaining longitude and latitude positions for the utility pole with a ground positioning system (GPS).
- 68. The method according to claim 64 further comprising reflecting a laser signal from the utility pole to ascertain a shape and physical dimensions of the utility pole.
- 69. The method according to claim 66 further comprising propagating a second radar signal towards the insulative component, where such second radar signal has a different frequency that the first radar signal and is modulated in accordance with a pulse compression scheme and wherein the reflected radar signal includes signal components originating from both the first and second radar signals.
- 70. The method according to claim 66 wherein the insulative component is a central member of the utility pole.
- 71. The method according to claim 66 wherein the insulative component is a crossarm of the utility pole.
- 72. The method according to claim 66 wherein the insulative component is an insulator on the utility pole.
- 73. A system for identifying an anomaly in an insulative component of a structure, the system comprising:
a target-recognition configurable for connection with a vehicle; a rotatable radar antenna configurable for connection with the vehicle, the rotatable radar antenna being adaptable to emit and receive electromagnetic signals; an arrangement of at least one computer system in communication with the target-recognition device and rotatable radar antenna and configured to accept instructions from an operator and to operate the target-recognition device and rotatable radar antenna in accordance with the following:
identifying a location for the structure with the target recognition device; identifying a position for the insulative component relative to the structure with the target recognition device; propagating a first radar signal towards the insulative component with a radar antenna while the radar antenna is in motion along a navigation path in the vicinity of the structure; receiving a reflected radar signal from the insulative component; and determining whether the insulative component contains the anomaly from the reflected radar signal.
- 74. The system according to claim 73 wherein the target-recognition device comprises an imaging device.
- 75. The system according to claim 74 wherein the target-recognition device comprises a charge coupled device.
- 76. The system according to claim 74 wherein the target-recognition device comprises an infrared camera.
- 77. The system according to claim 73 wherein the arrangement of at least one computer system is configured such that propagating the first radar signal towards the insulative component with the radar antenna comprises steering the radar antenna in a direction determined by imaging the insulative component with the target-recognition device.
- 78. The system according to claim 73 further comprising a ground positioning subsystem (GPS) in communication with the arrangement of at least one computer system and configurable for connection with the vehicle, and
wherein the arrangement of at least one computer system is configured such that identifying the location for the structure comprises ascertaining longitude and latitude positions for the structure with the GPS.
- 79. The system according to claim 73 further comprising a laser subsystem in communication with the arrangement of at least one computer system and configurable for connection with the vehicle, and
wherein the arrangement of at least one computer system is configured such that identifying the position for the insulative component comprises reflecting a laser signal from the insulative component with the laser subsystem.
- 80. The system according to claim 73 wherein the arrangement of at least one computer system is further configured in accordance with propagating a second radar signal towards the insulative component with the radar antenna, wherein such second radar signal is modulated in accordance with a pulse compression scheme and wherein the reflected radar signal includes signal components originating from both the first and second radar signals.
- 81. The system according to claim 80 wherein the second radar signal has a different frequency than the first radar signal.
- 82. The system according to claim 73 wherein determining whether the insulative component contains the anomaly is performed by a trained evaluation system configured within the arrangement of at least one computer system.
- 83. The system according to claim 82 wherein the trained evaluation system comprises a neural net.
- 84. The system according to claim 82 wherein the trained evaluation system comprises an expert system.
- 85. The system according to claim 73 wherein the insulative component is a central member of the utility pole.
- 86. The system according to claim 73 wherein the insulative component is a crossarm of the utility pole.
- 87. The system according to claim 73 wherein the insulative component is an insulator on the utility pole.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part application of application Ser. No. 09/680745, entitled “RADAR CROSS-SECTION MEASUREMENT SYSTEM FOR ANALYSIS OF WOODEN STRUCTURES,” filed Oct. 6, 2000 by Gilbert F. Miceli and Michael Parisi, which is herein incorporated by reference in its entirety for all purposes. This application claims the priority of Provisional Appl. No. 60/171,548, filed Dec. 22, 1999 and of Provisional Appl. No. 60/191,444, filed Mar. 23, 2000, both of which are herein incorporated by reference for all purposes.
Provisional Applications (2)
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Number |
Date |
Country |
|
60171548 |
Dec 1999 |
US |
|
60191444 |
Mar 2000 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09680745 |
Oct 2000 |
US |
Child |
09745329 |
Dec 2000 |
US |