Claims
- 1. A code division multiplexed optical communication system comprising:
at least one transmitter configured to receive a first data stream and transmit a code division multiplexed optical signal comprising a number K code words modulated with first data from said first data stream; and at least one receiver optically connected to the first transmitter and configured to receive said code division multiplexed optical signal, detect and demodulate said K code words within the code division multiplexed optical signal, and output said first data, wherein the K code words are orthogonal to one another.
- 2. The optical communication system of claim 1, wherein the code words in said code division multiplexed optical signal include two orthogonal polarizations.
- 3. The optical communication system of claim 2, further comprising a receiver-end polarization compensator positioned in an optical path between the transmitter and the receiver.
- 4. The optical communication system of claim 3, further comprising a transmitter-end polarization compensator positioned in an optical path between the transmitter and the receiver-end polarization compensator, wherein the transmitter-end polarization compensator receives at least one control signal from the receiver.
- 5. The optical communication system of claim 2, further comprising a digital polarization compensation circuit associated with the receiver.
- 6. The optical communication system of claim 1, wherein the transmitter comprises:
a pulsed light source; a transmitter splitter having a splitter input and a plurality of splitter outputs, the transmitter splitter having the pulsed light source input thereto and outputting at least a number K identical code beams; K code modulators, each code modulator configured to receive one of the at least K identical code beams and output a corresponding data-modulated code word; and a transmitter combiner configured to combine the K data-modulated code words into a code division multiplexed optical signal; wherein
the K data-modulated code words are orthogonal to one another.
- 7. The optical communication system of claim 6, wherein each of the code modulators comprises:
a pulse spreader configured to receive one of the K identical code beams, said one of the K identical code beams comprising a single pulse within a predetermined time window, the pulse spreader being further configured to output an imprinted code beam having a number P modulated pulses within that time window; and a data modulator configured to receive said imprinted code beam from the pulse spreader and modulate said imprinted code beam with data from said first data stream to thereby form a data-modulated code word.
- 8. The optical communication system of claim 7, wherein the pulse spreader comprises:
a 1:P splitter configured to split one of said K code beams input thereto into P identical code beams, each code beam having a single pulse; P chip modulators, each chip modulator configured to receive a single pulse and output a delayed modulated pulse, the p-th chip modulator comprising:
a delay circuit configured to delay said single pulse by (p−1)*C, where C=T/P is a chip period, T being a symbol period and p representing an index; and a chip modulation circuit configured to code-modulate the delayed single pulse by a p-th code value belonging to an orthogonal code of length P; and a P:1 combiner configured to combine code-modulated outputs from the P chip modulation circuits into the imprinted code beam which comprises P pulses within said symbol period T.
- 9. The optical communication system of claim 8, wherein the transmitter further comprises a spreader calibration unit which receives the imprinted code beam from the pulse spreader and a reference light source as inputs, and outputs a spreader control signal which is sent to the pulse spreader.
- 10. The optical communication system of claim 7, wherein the data modulator includes a polarization beam combiner which encodes data from said first data stream on two orthogonal polarizations in said data-modulated code word.
- 11. The optical communication system of claim 7, wherein the data modulator comprises:
splitter circuitry configured to split the imprinted mode beam into identical first (H1), second (H2), third (V1) and fourth (V2) component beams; a first phase shifter configured to impart a 90° phase shift the second component beam (H2); a second phase shifter configured to impart a 90° phase shift to the fourth component beam (H4); a first modulator configured to modulate the first component beam (H1) with first data; a second modulator configured to modulate the phase-shifted second component beam (H2) with second data; a third modulator configured to modulate the third component beam (V1) with third data; a fourth modulator configured to modulate the phase-shifted fourth component beam (V2) with fourth data; a first combiner (840a) configured to combine the data-modulated first component beam (H1) with the data-modulated and phase-shifted second component beam (H2), and output a first data-modulated beam (H′); a second combiner (840b) configured to combine the data-modulated third component beam (V1) with the data-modulated and phase-shifted fourth component beam (V2), and output a second data-modulated beam (V′); and a polarization beam combiner (850) configured to combine the first and second data-modulated beams and output a data beam (342) having two orthogonal polarizations.
- 12. The optical communication system of claim 1, wherein the receiver comprises:
a receiver splitter having a splitter input and a plurality of splitter outputs, the splitter input receiving the code division multiplexed optical signal comprising K data-modulated code words, and outputting at least K identical received code division multiplexed optical signals each comprising K data-modulated code words; and at least K code receivers, each code receiver having one of said identical received code division multiplexed optical signals input thereto, each code receiver having associated therewith:
a receiver pulse spreader configured to create a reference imprinted code beam corresponding to one of the K code words in said received code division multiplexed optical signal; and a receiver unit having an information signal and a reference signal input thereto, wherein the information signal is said one of said identical received code division multiplexed optical signals and the reference signal is the imprinted reference code beam, the receiver unit configured to detect and demodulate said one of the K data-modulated code words to which the reference imprinted code beam corresponds.
- 13. The optical communication system of claim 12, wherein:
the receiver unit comprises an optical detection circuit that receives the information signal and the reference signal, the optical detection circuit configured to output in-phase and quadrature components of a first and a second orthogonal polarization component of the information signal.
- 14. The optical communication system of claim 13, wherein the receiver unit further comprises a polarization mode dispersion con troller configured to:
receive digitized in-phase and quadrature components of the first and second orthogonal polarization component s of the information signal, and output at least one polarization control signal in response thereto.
- 15. The optical communication system of claim 14, wherein the at least one polarization control signal is input to a polarization compensator associated with the receiver.
- 16. The optical communication system of claim 13, wherein the optical detection circuit comprises:
a polarization beam splitter configured to receive and split the information signal into first and second orthogonal polarization components; a first optical phase detector configured to receive the first orthogonal polarization component and the reference signal as inputs, and output in-phase and quadrature components of the first orthogonal polarization component; a second optical phase detector configured to receive the second orthogonal polarization component and the reference signal as inputs, and output in-phase and quadrature components of the second orthogonal polarization component.
- 17. The optical communication system of claim 16, wherein the optical detection circuit further comprises:
a symbol synchronizer circuit receiving said in-phase and quadrature components of the first and second orthogonal polarization components of the information signal, and outputing at least one timing signal to synchronize symbol boundaries of said data-modulated codewords in said optical phase detectors. a variable delay configured to synchronize the first and second orthogonal polarization components, the variable delay receiving a delay signal from the symbol synchronizer circuit.
- 18. The optical communication system of claim 16, wherein the first and second optical phase detectors each comprise:
an optical hybrid detector having first and second signal inputs and first and second signal outputs, the first signal output being proportional an in-phase difference between the first and second signal inputs, and the second signal output being proportional to a quadrature difference between the first and second signal inputs; and a first signal conditioning cascade circuit comprising a first amplifier, a first low pass filter, a first DC bias remover, a first sample and hold, and a first analog-to-digital converter, all arranged to process the first signal output from the optical hybrid detector to thereby form a digitized in-phase component signal; and a second signal conditioning cascade circuit comprising a second amplifier, a second low pass filter, a second DC bias remover, a second sample and hold, and a second analog-to-digital converter, all arranged to process the second signal output from the optical hybrid detector to thereby form a digitized quadrature component signal.
- 19. The optical communication system of claim 18, wherein the optical hybrid detector having first and second signal inputs comprises:
optical circuitry configured to split and phase shift the second signal input to form a first signal (R3) having 0° phase shift, a second signal (R4) having a 90° phase shift, a third signal (R5) having a 180° phase shift and a fourth signal (R6) having a 270° phase shift; first, second, third and fourth combiners, configured to combine a copy of the first signal input with a copy of the second signal input shifted by 0°, 90°, 180° and 270°, respectively, to output first, second, third and fourth combined beams, respectively; a first matched detector configured to receive said first and third combined beams and output a first output signal that is proportional to an in-phase difference between the first and second signal inputs; and a second matched detector configured to receive said second and fourth combined beams and output a second output signal that is proportional to quadrature difference between the first and second signal inputs.
- 20. The optical communication system of claim 1, comprising:
a number N such transmitters, each transmitter configured to output a code division multiplexed optical signal at one of a plurality of unique channel wavelengths; a multiplexer configured to receive said plurality of code division multiplexed optical signals from said plurality of transmitters and combine them into an encoded multi-channel optical signal; a demultiplexer configured to receive and then separate the encoded multi-channel optical signal into individual code division multiplexed optical signals; and a number N such receivers, each receiver configured to demodulate a corresponding one of the individual code division multiplexed optical signals.
- 21. The optical communication system of claim 20, wherein the code words in said code division multiplexed optical signal include two orthogonal polarizations.
- 22. The optical communication system of claim 21, further comprising:
a transmitter-end polarization compensator positioned between each transmitter and the multiplexer; and a receiver-end polarization compensator positioned between the demultiplexer and each receiver.
- 23. The optical communication system of claim 22, wherein control signals to control the transmitter-end polarization compensator for a particular channel wavelength are sent by a corresponding receiver for that channel wavelength.
- 24. A communication node in an optical communication system, the node comprising:
at least one transmitter configured to receive a first data stream and transmit a code division multiplexed optical signal comprising a number K code words modulated with first data from said first data stream; and at least one receiver co-located with the transmitter and configured to receive a code division multiplexed optical signal comprising a number K code words modulated with second data from a second data stream, and detect and demodulate said K code words within the received code division multiplexed optical signal to recover second data in said second said data stream, wherein the K code words are orthogonal to one another.
- 25. The communication node of claim 24, comprising:
a plurality of N such co-located transmitters, each transmitter configured to output a code division multiplexed signal at one of a plurality of unique channel wavelengths; a co-located multiplexer configured to receive said plurality of code division multiplexed signals from said plurality of transmitters and combine them into an encoded multi-channel optical signal; a co-located demultiplexer configured to receive and then separate an encoded multi-channel optical signal into individual code division multiplexed optical signals; and a plurality of N such co-located receivers, each receiver configured to demodulate a corresponding one of the individual code division multiplexed optical signals.
- 26. The communication node of claim 25, wherein the code words include two orthogonal polarizations.
- 27. The communication node of claim 26, further comprising:
a transmitter-end polarization compensator positioned between each transmitter and the multiplexer; and a receiver-end polarization compensator positioned between the demultiplexer and each receiver.
- 28. A method for countering polarization mode dispersion in signal received by an optical receiver, comprising:
(a) providing a polarization compensation device in an optical path between a source of the signal and the optical receiver; (b) dithering the polarization compensation device to a plurality of candidate receiver state of polarization (SOP) settings, and estimating and storing a metric reflective of the performance of each of said candidate receiver SOP settings; (c) selecting an optimum receiver SOP setting corresponding to an optimum value among the stored metrics, and adjusting the polarization compensating device to the optimum receiver SOP setting; and (d) repeating steps (b) and (c) until a terminal condition is reached.
- 29. The method according to claim 28, wherein the metric is signal-to-noise ratio and the step of selecting an optimum receiver SOP setting is based on the candidate setting resulting in the highest signal-to-noise ratio.
- 30. A method for adjusting the state of polarization of a transmitted signal sent by a transmitter to a receiver, the method comprising:
(a) providing a transmitter-end polarization compensation device in an optical path between the transmitter and the receiver, and providing a receiver-end polarization compensation device in an optical path between the transmitter-end polarization compensation device and the receiver; (b) dithering the receiver-end polarization compensation device to a plurality of candidate receiver state of polarization (SOP) settings, and estimating a second metric reflective of the performance of each of said candidate receiver SOP settings; (c) selecting an optimum receiver SOP setting corresponding to an optimum value among the stored second metrics, and adjusting the receiver-end polarization compensating device to the optimum receiver SOP setting; (d) repeating steps (b) and (c) until a terminal condition is reached; (e) dithering the transmitter-end polarization compensation device to a plurality of candidate transmitter SOP settings, while correspondingly adjusting the receiving-end polarization compensation device each time the transmitter-end polarization compensation device is dithered, and estimating and storing a second set of metrics reflective of the performance of each of the candidate transmitter SOP settings; (f) selecting an optimum transmitter SOP setting corresponding to an optimum value among the stored second metrics, and (g) adjusting the transmitter-end polarization compensating device to the optimum transmitter SOP setting and correspondingly adjusting the receiver-end polarization compensation device.
- 31. The method according to claim 30, wherein the first and second metrics are signal-to-noise ratios and the steps of selecting an optimum receiver SOP setting and selecting an optimum transmitter setting is based on the respective candidate settings resulting in the highest signal-to-noise ratios.
- 32. A symbol synchronizer for determining the start of a symbol embedded in a multiplexed signal, the synchronizer comprising:
(a) an early gate disposed to receive the multiplexed signal, the early gate generating a signal representing the multiplexed signal sampled at a first sampling time; (b) a late gate disposed to receive the multiplexed signal, the late gate generating a signal representing the multiplexed signal sampled at a second sampling time; (c) a first squarer disposed to receive the signal from the early gate, the first squarer generating an early symbol energy signal representing the symbol energy sampled at the first sampling time; (d) a second squarer disposed to receive the signal from the late gate, the second squarer generating a late symbol energy signal representing the symbol energy sampled at the second sampling time; (e) a first difference means disposed to receive the early symbol energy signal, the first difference means generating a signal representing the difference between the symbol energy and a previous symbol energy, both symbol energies sampled at the first sampling time; (f) a second difference means disposed to receive the late symbol energy signal, the second difference means generating a signal representing the difference between the symbol energy and a previous symbol energy, both symbol energies sampled at the second sampling time; (g) a third difference means disposed to receive the signals from the first difference means and the second difference means, the third difference means generating a loop error signal representing the difference between the early gate symbol energy difference and the late gate symbol energy difference; (h) a loop filter disposed to receive the loop error signal, the loop filter generating a VCO signal based on the loop error signal; and (i) a voltage controlled oscillator (VCO) generating a timing signal based on the VCO signal, the timing signal controlling the first and second sampling time of the early and late gate.
- 33. A method for symbol synchronization of a selected data signal from a multiplexed data signal comprising the steps of:
(a) measuring the symbol-to-symbol energy difference of the selected data signal; and (b) generating a synchronized timing signal such that the measured symbol-to-symbol energy difference of the selected data signal is minimized.
- 34. The method of claim 33 wherein the step of measuring further includes:
(i) measuring an early symbol-to-symbol energy difference such that the sampling begins at an estimated start of a symbol; and (ii) measuring a late symbol-to-symbol energy difference such that the sampling begins after the start of the symbol.
- 35. The method of claim 34 wherein the step of measuring a symbol-to-symbol energy difference comprises:
(i) measuring a first symbol energy; (ii) delaying the first symbol energy by a symbol period; (iii) measuring a second symbol energy; and (iv) determining the symbol-to-symbol energy difference by subtracting the delayed first symbol energy from the second symbol energy.
- 36. A code division multiplexed optical signal transmitter comprising:
a pulsed light source; a transmitter splitter having a splitter input and a plurality of splitter outputs, the transmitter splitter having the pulsed light source input thereto and outputting at least a number K identical code beams; K code modulators, each code modulator configured to receive one of the K identical code beams and output a corresponding data-modulated code word; and a transmitter combiner configured to combine the K data-modulated code words into a code division multiplexed optical signal comprising K data-modulated code words which are orthogonal to one another and include two orthogonal polarizations.
- 37. A code modulator configured to accept a code beam comprising a single pulse within a symbol period of length T, and output a data-modulated code word having two orthogonal polarizations and comprising a number P modulated pulses having a length C=T/P chip periods, the code modulator comprising:
a pulse spreader configured to receive the code beam comprising a single pulse within the symbol period, the pulse spreader being further configured to output an imprinted code beam having a number P modulated pulses within that symbol period; and a data modulator configured to receive said imprinted code beam from the pulse spreader and modulate said imprinted code beam with data from a data stream to thereby form a data-modulated code word.
- 38. A pulse spreader configured to accept a code beam comprising a single pulse within a symbol period of length T, and output an imprinted code beam comprising a number P modulated pulses having a length C=T/P chip periods, the pulse spreader comprising:
a 1:P splitter configured to split the code beam input thereto into P identical code beams, each code beam having a single pulse; P chip modulators, each chip modulator configured to receive a single pulse and output a delayed modulated pulse, the p-th chip modulator comprising:
a delay circuit configured to delay said single pulse by (p−1)*C, where C=T/P is a chip period, p representing an index; and a chip modulation circuit configured to code-modulate the delayed single pulse by a p-th code value belonging to an orthogonal code of length P; and a P:1 combiner configured to combine code-modulated outputs from the P chip modulation circuits into the imprinted code word comprising P pulses within said symbol period T.
- 39. An optical signal data modulator for modulating an input signal, the optical signal data modulator comprising:
optical splitter circuitry configured to split the input signal into identical first (H1), second (H2), third (V1) and fourth (V2) component beams; a first phase shifter configured to impart a 90° phase shift to the second component beam (H2); a second phase shifter configured to impart a 90° phase shift to the fourth component beam (H4); a first modulator configured to modulate the first component beam (H1) with first data; a second modulator configured to modulate the phase-shifted second component beam (H2) with second data; a third modulator configured to modulate the third component beam (V1) with third data; a fourth modulator configured to modulate the phase-shifted fourth component beam (V2) with fourth data; a first combiner (840a) configured to combine the data-modulated first component beam (H1) with the data-modulated and phase-shifted second component beam (H2), and output a first data-modulated beam (H′); a second combiner (840b) configured to combine the data-modulated third component beam (V1) with the data-modulated and phase-shifted fourth component beam (V2), and output a second data-modulated beam (V′); and a polarization beam combiner (850) configured to combine the first and second data-modulated beams and output a data beam (342) having two orthogonal polarizations.
- 40. The optical signal data modulator of claim 39, wherein the first and second phase shifters and the first, second, third and fourth modulators receive control signals from a power balancer.
- 41. A code division multiplexed optical signal receiver comprising:
a receiver splitter having a splitter input and a plurality of splitter outputs, the splifter input receiving the code division multiplexed optical signal comprising K code words modulated with data, and outputting at least K identical received code division multiplexed optical signals each comprising K data-modulated code words; and at least K code receivers, each code receiver having one of said identical received code division multiplexed optical signals input thereto, each code receiver having associated therewith:
a receiver pulse spreader configured to create a reference imprinted code beam corresponding to one of the K code words in said received code division multiplexed optical signal; and a receiver unit having an information signal and a reference signal input thereto, wherein the information signal is said one of said identical received code division multiplexed optical signals and the reference signal is the imprinted reference code beam, the receiver unit configured to detect and demodulate said one of the K data-modulated code words to which the reference imprinted code beam corresponds.
- 42. An optical detection circuit configured to receive an information signal and a reference signal, the optical detection circuit comprising:
a polarization beam splitter configured to receive and split the information signal into first and second orthogonal polarization components; a first optical phase detector configured to receive the first orthogonal polarization component and the reference signal as inputs, and output in-phase and quadrature components of the first orthogonal polarization component; and a second optical phase detector configured to receive the second orthogonal polarization component and the reference signal as inputs, and output in-phase and quadrature components of the second orthogonal polarization component.
- 43. The optical detection circuit of claim 42, further comprising:
a symbol synchronizer circuit receiving said in-phase and quadrature components of the first and second orthogonal polarization components of the information signal, and outputing at least one timing signal to said optical phase detectors; and a variable delay configured to synchronize the first and second orthogonal polarization components, the variable delay receiving a delay signal from the symbol synchronizer circuit.
- 44. An optical phase detector comprising:
an optical hybrid detector having first and second signal inputs and first and second signal outputs, the first signal output being proportional an in-phase difference between the first and second signal inputs, and the second signal output being proportional to a quadrature difference between the first and second signal inputs; and a first signal conditioning cascade circuit comprising a first amplifier, a first low pass filter, a first DC bias remover, a first sample and hold, and a first analog-to-digital converter, all arranged to process the first signal output from the optical hybrid detector to thereby form a digitized in-phase component signal; and a second signal conditioning cascade circuit comprising a second amplifier, a second low pass filter, a second DC bias remover, a second sample and hold, and a second analog-to-digital converter, all arranged to process the second signal output from the optical hybrid detector to thereby form a digitized quadrature component signal.
- 45. The optical phase detector of claim 44, wherein the optical hybrid detector having first and second signal inputs comprises:
optical circuitry configured to split and phase shift the second signal input to form a first signal (R3) having 0° phase shift, a second signal (R4) having a 90° phase shift, a third signal (R5) having a 180° phase shift and a fourth signal (R6) having a 270° phase shift; first, second, third and fourth combiners, configured to combine a copy of the first signal input with a copy of the second signal input shifted by 0°, 90°, 180° and 270°, respectively, to output first, second, third and fourth combined beams, respectively; a first matched detector configured to receive said first and third combined beams and output a first output signal that is proportional to an in-phase difference between the first and second signal inputs; and a second matched detector configured to receive said second and fourth combined beams and output a second output signal that is proportional to quadrature difference between the first and second signal inputs.
- 46. An optical hybrid detector having first and second signal inputs and comprising:
optical circuitry configured to split and phase shift the second signal input to form a first signal (R3) having 0° phase shift, a second signal (R4) having a 90° phase shift, a third signal (R5) having a 180° phase shift and a fourth signal (R6) having a 270° phase shift; first, second, third and fourth combiners, configured to combine a copy of the first signal input with a copy of the second signal input shifted by 0°, 90°, 180° and 270°, respectively, to output first, second, third and fourth combined beams, respectively; a first matched detector configured to receive said first and third combined beams and output a first output signal that is proportional to an in-phase difference between the first and second signal inputs; and a second matched detector configured to receive said second and fourth combined beams and output a second output signal that is proportional to quadrature difference between the first and second signal inputs.
- 47. A code division multiplexed optical signal transmitter comprising:
a pulsed light source; a first modulation stage receiving said pulse light source and outputing a first plurality of modulated sub-code beams, the first modulation stage including a splitter and the first plurality of dynamic code modulators; a second modulation stage receiving said modulated sub-code beams, and outputing a second plurality of imprinted code beams, the second modulation stage including a splitter for each of the modulated sub-code beams and pulse spreaders each configured output an imprinted code beam; a data modulation stage comprising modulators configured to data-modulate each of the imprinted code beams to form a corresponding data-modulated code beam; and a combiner configured combine the data-modulated code beams into a code division multiplexed optical signal.
- 48. A code division multiplexed optical signal receiver configured to detect and demodulate a code division multiplexed optical signal comprising a number K code words modulated with data, the receiver comprising:
at least one polarization beam splitter configured to receive and split a code division multiplexed signal into first and second orthogonal polarizations; K sets of first and second despreaders, the k-th set of first and second despreaders configured to output first and second phase information, respectively, of data modulated on the k-th code word having first and second orthogonal polarizations, respectively; a first optical phase detector configured to receive first phase information from a current symbol and first phase information from an immediately preceding symbol, the first optical phase detector further configured to output a first signal reflective of a phase difference between the first phase information from the current and immediately preceding symbols; and a second optical phase detector configured to receive second phase information from a current symbol and second phase information from an immediately preceding symbol, the second optical phase detector further configured to output a second signal reflective of a phase difference between the second phase information from the current and immediately preceding symbols.
- 49. An optical calibration circuit configured to detect an error in phase among a number P individual pulses belonging to one of a number K encoded pulse streams, each pulse occupying a chip period of length C, the optical calibration circuit comprising:
a first switch configured to select one from among (a) said K pulse streams, and (b) a reference signal, to thereby output a first signal; a second switch configured to select one from among (a) a pulsed light source having a pulse period of P*C and (b) to thereby output a second signal; a number P calibration delays each receiving the second signal as an input, the p-th calibration delay outputting a p-th delayed version of the second signal delayed by (p−1)*C; a third switch receiving and combining P delayed versions of the second signal from P corresponding calibration delays to thereby form a third signal; and an optical phase detector configured to receive the first and third signals and output in-phase and quadrature signals derived from the first and third signals.
- 50. An optical calibration circuit configured to detect an error in phase among a number P individual pulses belonging to one of a number K pulse streams, each pulse occupying a chip period of length C, the optical calibration circuit comprising:
a first switch configured to select one of the K encoded pulse streams and output a first signal; a phase detector having said first signal input thereto; a light beam directed into the phase detector via a gate 650 during a selected chip period determined by variable electronic delay 635; wherein
the phase detector determines an amplitude product of, and a phase difference between, the first signal and the gated light beam; and the amplitude product and phase difference are passed to a processor that determines an offset that should be applied to correct an error in phase or amplitude of a pulse; and the processor outputs a signal to control the variable electronic delay.
RELATED APPLICATIONS
[0001] The present application claims priority to U.S. Provisional application No. 60/234,930, filed Sep. 26, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60234930 |
Sep 2000 |
US |