Claims
- 1. An amplifier for a distributed gain cable telecommunications network comprising:
an input line; an output line; an amplifier circuit; a bypass circuit; a first switch located between said input line and said amplifier circuit and capable of switching between said input line to said amplifier circuit and said bypass circuit; a second switch located between said output line and said amplifier circuit and capable of switching between said output line to said amplifier circuit and said bypass circuit; and a bypass circuit controller capable of switching said first switch and said second switch and thereby removing said amplifier circuit from said network when power is disabled to said bypass controller circuit.
- 2. The amplifier of claim 1, wherein said amplifier circuit further comprises distribution taps.
- 3. The amplifier of claim 2, wherein said distribution taps comprise a radio transceiver.
- 4. The amplifier of claim 2, wherein said distribution taps comprise at least one power splitter.
- 5. The amplifier of claim 1 further comprising:
an RF modem and a programmable digital computer that enables communication between said amplifier and a headend or a controlling computer.
- 6. The amplifier of claim 5 further comprising:
a variable equalizer and a variable attenuator in communication with said programmable digital computer to vary controls during set up and configuration of said network.
- 7. The amplifier of claim 1 further comprising:
a battery back up for use when a primary power supply to said amplifier may be disrupted.
- 8. The amplifier of claim 1 further comprising:
an auto-location feature for detecting a position in space of said amplifier.
- 9. The amplifier of claim 8, wherein said auto-location feature comprises a global positioning system receiver.
- 10. The amplifier of claim 1, wherein said distributed gain cable telecommunications network modulates signals utilizing Ultra Wide Band Modulation, Discrete Carrier Modulation, Suppressed Carrier Modulation or Quadrature Amplitude Modulation.
- 11. A cable telecommunications network comprising:
a cascade of amplifiers with bypass switching disposed along branches of said cable telecommunications network, said amplifiers further comprising; an input line; an output line; an amplifier circuit; a bypass circuit; a first switch located between said input line and said amplifier circuit and capable of switching between said input line to said amplifier circuit and said bypass circuit; a second switch located between said output line and said amplifier circuit and capable of switching between said output line to said amplifier circuit and said bypass circuit; and a bypass circuit controller capable of switching said first switch and said second switch and thereby removing said amplifier circuit from said network when power is disabled to said bypass controller circuit.
- 12. The cable telecommunications network of claim 11, wherein said amplifiers within said cascade of amplifiers are spaced less than half the maximum possible distance each said amplifier is capable of traversing to provide effective downstream communications if any single said amplifier is by-passed.
- 13. The cable telecommunications network of claim 12, wherein said by-passed amplifier is detected by status circuitry within said cable telecommunications network and a by-pass status is communicated to a headend.
- 14. The cable telecommunications network of claim 12, wherein a location of said by-passed amplifier is detected by location circuitry within said cable telecommunications network said location is communicated to a headend.
- 15. A subscriber tap for a distributed gain cable telecommunications network comprising:
an input line; an output line; a power tap connected to said input line and capable of drawing power from said input line; a battery power source; and a power supply connected to said power tap and capable of detecting if said power drawn from said input line is sufficient to power said subscriber tap, said power supply connected to said battery power source and capable of drawing power from said battery power source when said power supply detects that said power drawn from said input line is insufficient to power said subscriber tap.
- 16. The subscriber tap of claim 15, wherein said subscriber tap circuit further comprises distribution taps.
- 17. The subscriber tap of claim 15, wherein said distribution taps comprise a radio transceiver.
- 18. The subscriber tap of claim 15, wherein said distribution taps comprise at least one power splitter.
- 19. The subscriber tap of claim 15 further comprising:
an RF modem and a programmable digital computer that enables communication between said subscriber tap and a headend or a controlling computer.
- 20. The subscriber tap of claim 19 wherein said RF modem further comprises:
a directional antenna in communication with said subscriber tap.
- 21. The subscriber tap of claim 19 further comprising:
a variable equalizer and a variable attenuator in communication with said programmable digital computer to vary controls during set up and configuration of said network.
- 22. The subscriber tap of claim 15 further comprising:
an auto-location feature for detecting a position in space of said subscriber tap.
- 23. The subscriber tap of claim 22, wherein said auto-location feature comprises a global positioning system receiver.
- 24. The subscriber tap of claim 15 further comprising:
an auto-location feature for detecting orientation of said subscriber tap within said cable telecommunications network.
- 25. The subscriber tap of claim 15, wherein said distributed gain cable telecommunications network modulates signals utilizing Ultra Wide Band Modulation, Discrete Carrier Modulation, Suppressed Carrier Modulation or Quadrature Amplitude Modulation.
- 26. A method of healing an outage on a cable telecommunications network comprising:
coupling a first subscriber tap to said network, said first subscriber tap having a first wireless transceiver and a controller; coupling a second subscriber tap to said network, said second subscriber tap having a second wireless transceiver and a controller, said subscriber tap being downstream from said first subscriber tap and capable of communicating to said first subscriber tap using said wireless transceivers; transmitting downstream signals along said network; detecting a problem with said downstream signals by said second subscriber tap; establishing communications between said first subscriber tap and said second subscriber tap using said first wireless transceiver and said second wireless transceiver; transmitting an error transmission from said second subscriber tap to said first subscriber tap; and transmitting at least a portion of said downstream signals from said first subscriber tap to said second subscriber tap using said first wireless transceiver and said second wireless transceiver.
- 27. The method of claim 26 wherein said step of transmitting an error transmission from said second subscriber tap to said first subscriber tap further comprises:
transmitting a location for said second subscriber tap to said first subscriber tap.
- 28. The method of claim 27 wherein said step of transmitting a location for said second subscriber tap to said first subscriber tap further comprises:
detecting said location for said second subscriber tap with an auto-location feature.
- 29. The method of claim 27 wherein said step of transmitting a location for said second subscriber tap to said first subscriber tap further comprises:
detecting said location for said second subscriber tap with a global positioning system receiver.
- 30. A method for healing an outage on a cable telecommunications network comprising:
coupling a first amplifier to said network; coupling a second amplifier to said network downstream from said first amplifier in series with said first amplifier, said second amplifier having an input line, an output line, an amplifier circuit, a bypass circuit, a first switch located between said input line and said amplifier circuit and capable of switching said input line between said amplifier circuit and said bypass circuit, a second switch located between said output line and said amplifier circuit and capable of switching said output line between said amplifier circuit and said bypass circuit, and a bypass circuit controller capable of switching said first switch and said second switch and thereby removing said amplifier circuit from said network when power is disabled to said bypass controller circuit; coupling a third amplifier to said network downstream from said second amplifier in series with said first amplifier and said second amplifier; transmitting a signal downstream through said network; detecting a problem with said second amplifier; causing said bypass circuit controller of said second amplifier to switch said first switch and said second switch and thereby removing said second amplifier from said network; amplifying said signal with said first amplifier to produce a first amplified signal; transmitting said first amplified signal downstream; bypassing said second amplifier; receiving said first amplified signal with said third amplifier; and amplifying said first amplified signal with said third amplifier to produce a second amplified signal.
CROSS REFERENCE TO RELATED CASES
[0001] The present patent application is based upon and claims the benefit of U.S. Provisional Patent Application Ser. No. 60/466,810, filed on Apr. 29, 2003, entitled “Distributed Gain Network” by Donald M. Bishop, which is hereby specifically incorporated herein by reference for all that it discloses and teaches.
Provisional Applications (1)
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Number |
Date |
Country |
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60466810 |
Apr 2003 |
US |