Claims
- 1. A scalable data transport system, comprising:
an optical transmission system having a reconfigurable bit rate; an optical transmission fiber in communication with the optical transmission system; and an optical receiver system in communication with the optical transmission fiber, wherein said optical transmission system is adapted to modulate an optical carrier with a sub-carrier-multiplexed RF signal, and wherein said sub-carrier-multiplexed RF signal comprises a selectable plurality of RF signals that can be selected to configure a bit rate of said optical transmitter and reselected to reconfigure said bit rate of said optical transmitter.
- 2. The scalable data transport system according to claim 1, wherein an RF signal from said selectable plurality of RF signals comprises data up-converted from at least one of:
Ethernet format data; fast Ethernet format data; asynchronous transport mode (ATM) format data; Moving Picture Expert Group (MPEG) format data; Motion Joint Photographic Experts Group (M-JPEG) format data; and Voice over IP (VoIP) format data.
- 3. The scalable data transport system according to claim 1, wherein the optical transmission system comprises:
a data transceiver; and an optical transmitter in communication with the data transceiver, said optical transmitter having said reconfigurable bit rate, wherein the data transceiver is adapted to convert data in an initial format into a base-band bit stream, and the optical transmitter is constructed to generate an optical signal based on at least said base-band bit stream.
- 4. The scalable data transport system according to claim 3, wherein the data transceiver comprises a plurality of data/bit-stream converters, wherein each data/bit-stream converter is adapted to convert input data into a base-band bit stream.
- 5. The scalable data transport system according to claim 3, wherein the optical transmitter comprises:
a modulator in connection with the data transceiver; a radio frequency (RF) up-converter in communication with the modulator; and an optical modulator in communication with the RF up-converter, wherein the modulator is adapted to modulate the base-band bit stream from the data transceiver to produce a modulate signal, the RF up-converter is constructed to up-convert the modulated signal onto an RF sub-carrier to produce an RF signal, and the optical modulator is adapted to up-convert the RF signal onto an optical carrier to produce the optical signal centered on an optical channel wavelength.
- 6. The scalable optical system according to claim 5, further comprising a frequency filter constructed to perform frequency filtering to constrain the bandwidth of the RF signal.
- 7. The scalable optical system according to claim 5, further comprising an RF combiner having signal inputs from said RF up-converter and other RF signals and a signal output to said optical modulator, wherein said RF combiner is structured to multiplex the RF signal generated by the RF up-converter with the other RF signals carried on different RF sub-carriers.
- 8. The scalable optical system according to claim 5, further comprising a wavelength division multiplexer arranged to receive said optical signal from said optical transmitter and at least one other optical signal, wherein said wavelength division multiplexer is structured to multiplex the optical signal from the optical modulator with said at least one other optical signal corresponding to a different wavelength channel from the first-mentioned wavelength channel.
- 9. The scalable optical system according to claim 1, wherein the optical receiver system comprises:
an optical receiver unit; and an output data transceiver in communication with the optical receiver, wherein the optical receiver unit is adapted to recover a base-band bit stream from the optical signal received, and the output data transceiver is adapted to convert the recovered base-band bit stream into an output data format.
- 10. The scalable optical system according to claim 9, wherein the optical receiver unit further comprises:
an optical receiver, an RF down-converter in communication with the optical receiver; and a demodulator in communication with the RF down-converter, wherein the optical receiver is constructed to receive said optical signal and produce a recovered RF signal, the RF down-converter is constructed to down-convert the recovered RF signal to produce a recovered modulated signal, and the demodulator is adapted to demodulate the recovered modulated signal to produce the recovered base-band bit stream.
- 11. The scalable optical system according to claim 10, further comprising a wavelength division demultiplexer arranged to receive said optical signal from said optical transmission fiber and output a plurality of demultiplexed optical signals in different wavelength channels, wherein one of the demultiplexed optical signals is received by said optical receiver.
- 12. The scalable optical system according to claim 11, further comprising an RF splitter in communication with said optical receiver, wherein said RF splitter is constructed to split an RF signal into a plurality of RF signals.
- 13. An optical transmission system, comprising:
a data transceiver; and an optical transmitter in communication with the data transceiver, wherein said optical transmitter is adapted to modulate an optical carrier with a sub-carrier-multiplexed RF signal, and wherein said sub-carrier-multiplexed RF signal comprises a selectable plurality of RF signals that can be selected to configure a bit rate of said optical transmitter and reselected to reconfigure said bit rate of said optical transmitter.
- 14. The optical transmission system according to claim 13, wherein the data transceiver is adapted to convert data from a data format to a base-band bit stream, wherein the data format is at least one of:
an Ethernet format; a fast Ethernet format; an asynchronous transport mode (ATM) format; a Moving Picture Expert Group (MPEG) format; a Motion Joint Photographic Experts Group (M-JPEG) format; and a Voice over IP (VoIP) format.
- 15. The optical transmission system according to claim 13, wherein the data transceiver comprises at least one data/bit-stream converter, wherein each data/bit-stream converter is adapted to convert the data in a data format into a base-band bit stream.
- 16. The optical transmission system according to claim 13, wherein the optical transmitter comprises:
a modulator in connection with the data transceiver; a radio frequency (RF) up-converter in communication with the modulator; and an optical modulator in connection with the RF up-converter, wherein the modulator modulates the base-band bit stream from the data transceiver to produce a modulated signal, the RF up-converter is constructed to up-convert the modulated signal onto an RF sub-carrier to produce said RF signal, and the optical modulator is adapted to up-convert the RF signal onto an optical carrier to produce the optical signal.
- 17. The optical transmission system according to claim 16, wherein the modulator comprises at least one of:
a direct amplitude modulator; a phase shift key modulator; and a quadrature amplitude modulator.
- 18. The optical transmission system according to claim 16, further comprising a frequency filter capable of performing frequency filtering to constrain bandwidth required for the RF sub-carrier.
- 19. The optical transmission system according to claim 18, wherein the frequency filtering is performed on the base-band bit stream before the modulator modulates the base-band bit stream.
- 20. The optical transmission system according to claim 18, wherein the frequency filtering is performed on the modulated signal generated by the modulator before the RF up-converter up-converts the modulated signal onto the RF sub-carrier.
- 21. The optical transmission system according to claim 18, wherein the frequency filtering is performed on the RF signal up-converted by the RF up-converter before the optical modulator up-converts the RF signal onto the optical carrier.
- 22. The optical transmission system according to claim 18, wherein the frequency filter has a static spectral profile corresponding to a pre-determined bandwidth.
- 23. The optical transmission system according to claim 18, wherein the frequency filter has a dynamically adjustable spectral profile, wherein the adjustable spectral profile is adjusted on-the-fly based on the frequency components of the signal being filtered.
- 24. The optical transmission system according to claim 18, wherein the frequency filter is at least one of:
a Nyquist filter; a raised cosine filter; a Gaussian filter; a digital field programmable gate array filter; and a digital fast Fourier transformation (FFT) filter.
- 25. The optical transmission system according to claim 16, further comprising an RF combiner, constructed to multiplex the RF signal generated by the RF up-converter with other RF signals carried on different RF sub-carriers.
- 26. The optical transmission system according to claim 16, further comprising a wavelength division multiplexer, adapted to multiplex the optical signal generated by the optical modulator with other optical signals carried in different wavelength channels.
- 27. An optical receiver unit, comprising:
an optical receiver; an RF splitter in communication with the optical receiver; an RF down-converter in communication with the RF splitter; and a demodulator in communication with the RF down-converter, said demodulator adapted to produce a base-band bit stream from said down-converted RF signal, wherein said RF splitter is adapted to receive other RF signals that are selectable in number to configure a received bit rate of said optical receiver unit.
- 28. A method for data transport, comprising:
selecting a number of RF signals according to a desired data transport rate; multiplexing said number of RF signals to produce an aggregated, multilevel RF signal; modulating an optical carrier with said aggregated, multilevel RF signals to produce an optical signal; transmitting said optical signal from a first location to a second location; and receiving said optical signal when it reaches said second location, wherein said number of RF signals can be reselected to reconfigure said data transport rate.
Parent Case Info
[0001] This Application is based on Provisional Application No. 60/339,731 filed Dec. 17, 2001, the entire contents of which is hereby incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60339731 |
Dec 2001 |
US |