Reducing Distortion Or Dispersion Patents (Class 398/159)
  • Patent number: 7486897
    Abstract: A polarization duobinary optical transmitter is disclosed. The transmitter includes a precoder for coding an electric signal and a light source for generating continuous light. The transmitter also includes a chirped-free modulator for generating an NRZ signal including first and second polarization light beams orthogonal to each other by modulating the light with the electric signal and a band-pass filter for limiting neighbor frequency bands between the first and second polarization light beams.
    Type: Grant
    Filed: March 9, 2006
    Date of Patent: February 3, 2009
    Assignee: Samsung Electronics Co., Ltd.
    Inventors: Hoon Kim, Seong-Taek Hwang
  • Patent number: 7486895
    Abstract: The present invention includes apparatus and method of a variable step size dithering control algorithm for polarization mode dispersion controllers (PMDCs). The dithering step size of the PCs is adjusted according to the feedback signal including degree of polarization (DOP).
    Type: Grant
    Filed: December 13, 2005
    Date of Patent: February 3, 2009
    Assignee: Alcatel-Lucent USA Inc.
    Inventors: Dieter Werner, Chongjin Xie
  • Patent number: 7483613
    Abstract: Disclosed are an improved system and a related method for compensating the chromatic dispersion of a given length of a transmission fiber over a given spectral band by employing at least two chromatic dispersion compensating fibers that, with respect to the slope of the slope of the chromatic dispersion (SSi), have values of opposite signs.
    Type: Grant
    Filed: November 2, 2007
    Date of Patent: January 27, 2009
    Assignee: Draka Comteq B.V.
    Inventors: Marianne Bigot-Astruc, Louis-Anne De Montmorillon, Denis Molin, Pierre Sillard
  • Patent number: 7483638
    Abstract: The present invention provides an optical transceiver that enables to reduce the crosstalk from the optical transmitter to the optical receiver. The regenerator of the optical transceiver includes two main amplifiers, a selector, a selector control, and a re-shaper for shaping the receiving signal selected by the selector. The first main amplifier provides a first amplifier and a delay circuit connected in upstream to the first amplifier. The second main amplifier provides a second amplifier and a delay circuit connected in downstream to the second amplifier. The selector selects, based on the phase difference between the receiving signal Rx and the transmitting signal Tx, the output from the first main amplifier or that from the second main amplifier.
    Type: Grant
    Filed: March 7, 2006
    Date of Patent: January 27, 2009
    Assignee: Sumitomo Electric Industries, Ltd.
    Inventor: Shigeo Hayashi
  • Patent number: 7477848
    Abstract: An optical receiving apparatus sets, efficiently and optimally, a delay interferometer and a variable wavelength dispersion compensator in the apparatus.
    Type: Grant
    Filed: December 13, 2005
    Date of Patent: January 13, 2009
    Assignee: Fujitsu Limited
    Inventors: Hiroki Ooi, Akira Miura, Takeshi Hoshida
  • Patent number: 7474860
    Abstract: In an over-sampled maximum-likelihood sequence estimation (MLSE) receiver system, the optimal sample spacing is determined for a variety of conditions. In an illustrative implementation, the system includes an optical filter for tightly filtering an incoming optical data signal with an on-off-keying (OOK) non-return-to-zero (NRZ) format, followed by an optical-to-electrical converter, an electrical filter, a sampler, and a MLSE receiver. The sampler samples the filtered electrical data signal twice each bit period with unequal sample spacings. For wide optical filtering bandwidths, the optimal sample spacing occurs at less than 50% of a bit period. For narrow bandwidths, the optimal sample instances occur closer to the maximum eye opening.
    Type: Grant
    Filed: December 19, 2005
    Date of Patent: January 6, 2009
    Assignee: Alcatel-Lucent USA Inc.
    Inventors: Rene Jean Essiambre, Michael Rubsamen, Peter J. Winzer
  • Patent number: 7466923
    Abstract: Methods and systems for PMD compensation in an optical communication system are implemented by transmitting multiple optical signals through a common optical conduit to an optical compensator that adjustably rotates the polarization states of the multiple optical signals and transmits the rotated optical signals to an optical receiver. The receiver, upon sensing an excessive error condition, commands the optical compensator to change the polarization state of rotation, which changes the PMD profile of the received optical signals.
    Type: Grant
    Filed: October 3, 2007
    Date of Patent: December 16, 2008
    Assignee: AT&T Corp.
    Inventors: Michael Herbert Eiselt, Jonathan A. Nagel
  • Patent number: 7460792
    Abstract: In an optical communication-use receiving circuit of the present invention, the pulse width of the received pulse which is a binary signal corresponding to the signal optical pulse is specified by using an integration circuit and a trigger generating circuit. If the pulse width of the received pulse is not shorter than a predetermined value, a signal having a fixed pulse width is outputted as an output signal from a one-shot pulse generating circuit, so that a pulse having a constant pulse width corresponding to the specified communication speed is outputted. Accordingly, if the pulse width deriving from the signal optical pulse is larger than a certain value, the communication is deemed as a low-speed communication, and a pulse having a constant pulse width corresponding to the communication speed is outputted. As a result, it is possible to realize a small-size receiving circuit and a small-size electronic device which require no external switching-over terminal.
    Type: Grant
    Filed: July 7, 2005
    Date of Patent: December 2, 2008
    Assignee: Sharp Kabushiki Kaisha
    Inventors: Naruichi Yokogawa, Takeshi Nishino
  • Patent number: 7460788
    Abstract: A transmitting and receiving device, in which the received signal which is produced by the receiving device has only a small amount of crosstalk. This object is achieved by providing a transmitting and receiving device having a transmitting device for producing a transmission signal, a receiving device for producing a received signal, and a compensation device which is connected to the transmitting device and to the receiving device and which at least reduces any crosstalk which is produced by the transmitting device in the receiving device.
    Type: Grant
    Filed: March 8, 2004
    Date of Patent: December 2, 2008
    Assignee: Ezconn Corporation
    Inventors: Karl Schrodinger, Kirk Cook, Yung-Shun Wu
  • Patent number: 7460789
    Abstract: A control method, which is applicable to a variety of network configurations, controls an optical transmission system to determine optimum optical input power to a transmission path for increased optical transmission quality. The optical transmission system has terminal stations, repeaters, dispersion compensation modules, and a dispersion compensation controller. The terminal stations transmit and receive an optical signal through an optical fiber transmission path. The repeaters are disposed in the optical fiber transmission path for amplifying the optical signal. The dispersion compensation modules are disposed in the terminal stations and the repeaters for compensating for dispersion of the optical signal.
    Type: Grant
    Filed: December 23, 2004
    Date of Patent: December 2, 2008
    Assignee: Fujitsu Limited
    Inventors: Kaori Odate, Motoyoshi Sekiya, Takuya Miyashita
  • Patent number: 7457544
    Abstract: A group delay compensation equalizer is disclosed that employs a single channel four-port WDM device for compensating the group delay experienced by a plurality of wavelengths transmitted over different paths. The transmission differential between two wavelengths is compensated by transmitting the two wavelengths through two different paths where the fiber length in reflecting the second wavelength is equal to the transmission time difference between the two wavelengths. The single channel four-port group delay equalizer effectively provides a unidirectional signal flow, as compared to the conventional equalizer that transmits optical signals bi-directionally. The present invention reduces the cost of a group delay equalizer by simplifying the use of multiple three-port WDM devices into a single channel four-port WDM device.
    Type: Grant
    Filed: November 16, 2004
    Date of Patent: November 25, 2008
    Assignee: Avanex Corporation
    Inventors: John Feng, Xuehua Wu, Sanjai Parthasarathi, Giovanni Bararossa
  • Patent number: 7457547
    Abstract: In an optical system including an optical input port for projecting an input optical signal onto an optical phased matrix array, an optical phased matrix array including a plurality of individually addressable pixels thereon, each said pixel being drivable within a prescribed range of levels, and an optical output port for collecting a predetermined fraction of said optical signal received from said optical phased matrix array; a method of compensating for phase distortions including the steps of: (a) determining a plurality of transfer functions relating said level of each said pixel to the phase variation each said pixel introduces to light from said input optical signal which is incident thereon; and (b) controlling the level of selected ones of said pixels in accordance with a corresponding transfer function such that said fractional signal received at said output port is modified in phase to substantially compensate for optical phase distortions arising from said optical phased matrix array.
    Type: Grant
    Filed: November 8, 2004
    Date of Patent: November 25, 2008
    Assignee: Optium Australia Pty Limited
    Inventors: Steven J. Frisken, Glenn W. Baxter, Hao Zhou, Dmitri Abakoumov
  • Patent number: 7454144
    Abstract: A process optically transports digital data over an all-optical long-haul communication path. The process includes transporting digital optical data signals at a selected bit rate and a selected wavelength over a sequence of transmission spans. The sequence includes 70 percent or more of the spans of the long-haul all-optical communication path. Each span of the sequence has a primary local maximum optical power point for the wavelength on a transmission fiber and nearest to an input of the span. The transporting causes a cumulative dispersion of each signal to evolve such that residual dispersions per span are positive over some of the spans and are negative over other of the spans. At the primary local maximum power points, magnitudes of cumulative dispersions of the signals in pico seconds per nanometer remain at less than 32,000 times the inverse of the bit rate in giga bits per second.
    Type: Grant
    Filed: August 24, 2007
    Date of Patent: November 18, 2008
    Assignee: Lucent Technologies Inc.
    Inventors: Aref Chowdhury, Reneā€²-Jean Essiambre, Lisa Kathleen Wickham
  • Patent number: 7450856
    Abstract: A dispersion compensating method for compensating wavelength dispersion occurring in an optical transmission line, includes the steps of: a) performing dispersion compensation by causing an optical signal, supplied from the transmission line, to pass through a variable dispersion compensator; and b) controlling a dispersion compensating amount in the variable dispersion compensator according to code error information corresponding to a type of code in a received data signal obtained from receiving the optical signal having undergone the dispersion compensation.
    Type: Grant
    Filed: July 8, 2004
    Date of Patent: November 11, 2008
    Assignee: Fujitsu Limited
    Inventors: Masahiro Yoshimoto, Makoto Takakuwa, Futoshi Izumi, Takahiro Hosokawa
  • Patent number: 7444082
    Abstract: A method for the adaptive adjustment of a PMD compensator in optical fiber communication systems comprises the steps of taking the signal at the compensator output and extracting the components y1(t) and y2(t) on the two orthogonal polarizations, computing the signal y(t)=[y1(t)]2+[y2(t)]2, sampling the signal y(t) at instants tk=kT with T=symbol interval to obtain samples y(tk), computing the mean square error e(k)=y(tk)?u(k) with u(k) equal to the symbol transmitted, and adjusting the parameters of the compensator to seek to minimize e(k).
    Type: Grant
    Filed: December 3, 2002
    Date of Patent: October 28, 2008
    Assignee: Ericsson AB
    Inventors: Giulio Colavolpe, Enrico Forestieri, Giancarlo Prati
  • Publication number: 20080260394
    Abstract: An optical communications system includes an optical transmitter that generates a modulated optical signal at an output. The modulated optical signal propagates through an optical link where the dispersion of the optical link is imprinted onto an optical spectrum of the modulated optical signal. A demodulator receives the modulated optical signal and filters at least a portion of the optical spectrum with the imprinted dispersion of the optical link, thereby mitigating effects of dispersion in the modulated optical signal and generating a demodulated optical signal at an output. An optical detector generates an electrical data signal from the demodulated optical signal.
    Type: Application
    Filed: April 19, 2008
    Publication date: October 23, 2008
    Applicant: OPTIUM CORPORATION
    Inventor: Heider Ereifej
  • Patent number: 7440702
    Abstract: A multiplexer of a transmission section generates a clock signal by multiplying a reference clock signal of a digital image signal by a predetermined number ā€˜Kā€™. A parallel digital image signal is converted into a serial digital signal on the basis of the clock signal, and the serial digital signal is converted into an optical signal in an optical transmission section for transmitting. A demultiplexer extracts a reception clock signal from a serial digital reception signal which is converted into an electric signal in an optical reception section of a reception section, the serial digital reception signal is converted into a parallel signal and a signal corresponding to the parallel digital image signal on the basis of the reception clock signal, and a clock signal corresponding to the reference clock signal is recovered by multiplying the reception clock signal by ā€˜1/Kā€™.
    Type: Grant
    Filed: August 9, 2004
    Date of Patent: October 21, 2008
    Assignee: Seiko Epson Corporation
    Inventor: Nobuyuki Imai
  • Patent number: 7437083
    Abstract: A wavelength converter for binary optical signals includes an interferometer structure (110) for generating an output signal by modulating a received local signal (LS) according to the modulation of a fUrther received first input signal (IS 1). When such interferometer structures (110) are operated in a standard mode it is known in the art to control the power of the input signal such that the extinction ratio of the output signal is kept minimal. The invention also controls the power of the input signals to achieve the minimal extinction ratio when the wavelength converter and in particular the interferometer structure (110) is operated in a differential mode receiving two input signals.
    Type: Grant
    Filed: September 10, 2004
    Date of Patent: October 14, 2008
    Assignee: ALCATEL
    Inventors: Bruno Lavigne, Olivier Leclerc, Jean-Luc Moncelet, Alex Bombrun, Jean-Baptiste Pomet, Fabien Seyfert
  • Publication number: 20080226302
    Abstract: Dispersion compensation is provided in an optical transmission system. An optical line couples first and second transceivers, and a plurality of amplifiers coupled to the optical line are spaced throughout the optical line with variable span distances. A plurality of dispersion compensation modules include a coarse granularity fiber, a connector, and a fine granularity fiber. A memory is associated with the dispersion compensators to provide information related to the value of the dispersion compensation.
    Type: Application
    Filed: April 21, 2008
    Publication date: September 18, 2008
    Applicant: Pivotal Decisions LLC
    Inventors: Michael H. Eiselt, Mark Shtaif
  • Publication number: 20080226303
    Abstract: An optical transmission system that alleviates waveform distortions due to nonlinear effects in fibers. A transmitter sends WDM signals to a receiver over a dispersion-managed optical transmission line with in-line optical repeaters. The transmission line is divided into a plurality of dispersion compensation intervals each composed of a main segment and a compensation segment. Chromatic dispersion is managed such that the dispersion compensation intervals have a non-zero net dispersion at every boundary point between them, or such that the number of zero-dispersion boundary points is reduced. The main segment is a series of repeater sections with negative dispersion, while the compensation segment is a single repeater section with positive dispersion.
    Type: Application
    Filed: May 29, 2008
    Publication date: September 18, 2008
    Applicant: Fujitsu Limited
    Inventors: Toshiki Tanaka, Takao Naito
  • Patent number: 7426350
    Abstract: Techniques and systems for reducing nonlinear distortions in an output optical beam from an optical transmitter by using both electrical pre-distortion compensation and optical compensation.
    Type: Grant
    Filed: October 25, 2002
    Date of Patent: September 16, 2008
    Assignee: Cisco Technology, Inc.
    Inventors: Chen-Kuo Sun, Richard J. Orazi, Stephen A. Pappert
  • Patent number: 7424229
    Abstract: Methods and apparatus are provided for reducing Raman crosstalk in a wavelength-division-multiplexing (WDM) optical fiber transmission system that transmits a multiplex of channels. Idle data is sent over one or more of the channels of the WDM system in order to maintain the optical link when user data is not being sent. The idle data has an idle data pattern, which can be controlled such that a power spectral density of a signal carried by at least one channel is shifted in order to reduce Raman crosstalk between the channels. For example, the power spectral density may be shifted away from lower frequencies of the channel, and toward the higher frequencies, by controlling the idle data pattern. Alternatively, the power spectral density may be shifted towards unused frequencies of the channel, by controlling the idle data pattern.
    Type: Grant
    Filed: December 28, 2004
    Date of Patent: September 9, 2008
    Assignee: General Instrument Corporation
    Inventor: Frank J. Effenberger
  • Patent number: 7424228
    Abstract: A communication system includes an optical transmitter which is differentially driven and an optical receiver that outputs a differential signal. The optical transmitter creates the differential drive signal from an input signal and delivers the differential drive signal to a laser. The differential drive signal is generated with a transformer and RF chokes for floating the laser above ground. The signal detected by the receiver is input as a differential signal to a transformer which then passes the signal through amplifiers and a filter. The optical communication system provides an increased spurious-free dynamic range which is well suited for RF signals and other analog signals.
    Type: Grant
    Filed: March 31, 2003
    Date of Patent: September 9, 2008
    Assignee: Lockheed Martin Corporation
    Inventors: Wilber Andrew Williams, Michael Gregory Abernathy
  • Patent number: 7421209
    Abstract: An optical wavelength multiplexing frequency shift keying modulation system. The system includes an optical wavelength multiplexing signal acquisition unit for outputting an optical wavelength multiplexing signal. A n optical frequency shift keying modulation unit acquires an optical frequency shift keying signal, including an upper side band signal and a lower side band signal, by performing frequency modulation to the optical wavelength multiplexing signal output from the optical wavelength multiplexing signal acquisition unit. An optical frequency shift keying signal separation unit separates the optical frequency shift keying signal output from the optical frequency shift keying modulation unit into an upper side band signal and a lower side band signal.
    Type: Grant
    Filed: February 14, 2005
    Date of Patent: September 2, 2008
    Assignee: National Institute of Information and Communications Technology, Incorporated Administrative Agency
    Inventors: Tetsuya Kawanishi, Masayuki Izutsu
  • Patent number: 7418212
    Abstract: A system and method for detecting digital symbols carried in a received optical signal. The system comprises a functional element operative to receive a stream of samples of an electrical signal derived from the received optical signal and to evaluate a non-linear function of each received sample, thereby to produce a stream of processed samples. The system also comprises a detector operative to render decisions about individual symbols present in the received optical signal on the basis of the stream of processed samples. In an embodiment, the non-linear function computes substantially the square root of each received sample.
    Type: Grant
    Filed: October 1, 2003
    Date of Patent: August 26, 2008
    Assignee: Nortel Networks Limited
    Inventor: Chandra Bontu
  • Patent number: 7418206
    Abstract: It is an object of the present invention to provide a control technique for reducing wavelength dependence of wavelength dispersion values and also for suppressing a change in wavelength transmission characteristic with a temperature variation or the like, in a VIPA-type wavelength dispersion compensator.
    Type: Grant
    Filed: March 25, 2004
    Date of Patent: August 26, 2008
    Assignee: Fujitsu Limited
    Inventor: Yuichi Kawahata
  • Patent number: 7412174
    Abstract: A method of manufacturing an optical transmitter includes assembling a laser device on a module including a temperature sensor and a temperature controller. An optimum operating temperature of the laser to minimize optical distortion is determined at a temperature within a range between which distortions were determined at multiple temperatures. The temperature controller is selectively adjusted so as to operate the laser at the optimum temperature. The distortion may also be monitored during active laser operation. The temperature controller may be selectively adjusted, based on the monitoring of the distortion, so as to operate the laser at a new controlled temperature nearer that which produces the temperature-dependent distortion minimum.
    Type: Grant
    Filed: September 21, 2004
    Date of Patent: August 12, 2008
    Assignee: Emcore Corporation
    Inventor: John Michael Iannelli
  • Patent number: 7412136
    Abstract: Super-resolution optical components and left-handed materials thereof are provided. A left-handed material includes a substrate, a plurality of deformed split ring resonators (DSRR), and a plurality of metallic bars, wherein the DSRR and the metallic bars are disposed on the substrate with each DSRR and metal bar alternately arranged.
    Type: Grant
    Filed: February 22, 2007
    Date of Patent: August 12, 2008
    Assignee: Industrial Technology Research Institute
    Inventors: Jyh-Long Chern, Yi-Jang Hsu, Pong Lai, Chang-Sheng Chu, Rung-Ywan Tsai
  • Patent number: 7412125
    Abstract: A method of providing dispersion compensation includes providing a dispersion signal indicative of an amount of dispersion for at least one channel of a multi-channel optical signal. A dispersion compensator is controlled in accordance with the dispersion signal to optically compensate for the dispersion of the optical signal.
    Type: Grant
    Filed: November 16, 2005
    Date of Patent: August 12, 2008
    Assignee: Tellabs Operations, Inc.
    Inventors: Kimon Papakos, Kenneth M. Fisher, Richard C. Younce
  • Publication number: 20080187323
    Abstract: The optical transmitter and receiver of the invention includes: a variable dispersion compensator that performs wavelength dispersion compensation on an optical signal of a differential M-phase modulation format input from a transmission path; an optical amplifier that compensates an optical loss in the variable dispersion compensator; a delay interferometer that delays and interference processes the optical signal output from the optical amplifier; and a photoelectric conversion circuit that photoelectric converts the output light from the delay interferometer to generate a demodulated electric signal. The output level of the optical amplifier is decreased at the time of start up to deteriorate the OSNR of the optical signal input to the photoelectric conversion circuit, to thereby realize a state in which an error occurs more easily, and then optimization control of the variable dispersion compensator and the delay interferometer is started.
    Type: Application
    Filed: December 31, 2007
    Publication date: August 7, 2008
    Applicant: FUJITSU LIMITED
    Inventors: Toshiki Honda, Takeshi Ono
  • Patent number: 7409163
    Abstract: A method and apparatus for transmission of optical signals across an optical transmission link wherein duobinary signals or inverse-data signals are transmitted when the chromatic dispersion of the transmission link is above or below a dispersion threshold, respectively, to significantly improve optical signal transmission performance.
    Type: Grant
    Filed: June 30, 2004
    Date of Patent: August 5, 2008
    Assignee: Lucent Technologies Inc.
    Inventors: Douglas M Gill, Xiang Liu
  • Patent number: 7403714
    Abstract: The present invention provides an all optical system for correcting optical dispersions including at least one optical chopping device having an input terminal for receiving a first signal, which has been broadened by optical dispersions and corresponds to an optical information channel, and at least one output terminal, wherein the optical chopping device is arranged to produce in the at least one output a second signal that is narrower than the first signal. The second signal may be detectable more reliably than the first signal.
    Type: Grant
    Filed: April 29, 2004
    Date of Patent: July 22, 2008
    Assignee: Main Street Ventures LLC
    Inventors: Arie Shahar, Eldan Halberthal
  • Patent number: 7403717
    Abstract: Method and apparatus for compensating for first-order Polarization Mode Dispersion in an optical transmission system. An apparatus has a polarization controller for transforming polarization components of an optical signal carried by the optical fiber into orthogonal polarization states, a variable delay line for introducing a variable differential time delay between the polarization states and for producing an output optical signal that is compensated for PMD in the optical fiber, and a feedback unit for adjusting the polarization controller and the variable delay line to compensate for variations in the PMD of the optical fiber, the feedback unit including apparatus for generating a plurality of independent control signals to independently control actuators of the polarization controller and the variable delay line. The invention provides for a reduction in response time of the actuators and a reduction in complexity of an algorithm used to control the apparatus.
    Type: Grant
    Filed: April 18, 2002
    Date of Patent: July 22, 2008
    Assignee: Telefonaktiebolaget LM Ericsson (publ)
    Inventors: Jean Pierre von der Weid, Luis Carlos Blanco Linares, Giancarlo Vilela de Faria
  • Patent number: 7400835
    Abstract: Chromatic dispersion in a high speed CS-RZ WDM transmission system is reduced by providing tailored ā€œprecompensationā€ for individual and/or groups of optical signals. Such precompensation is achieved by passing the optical signals through a dispersion compensating elements, such as dispersion compensating fiber, within an optical multiplexer, i.e., prior to multiplexing the signals onto a single optical fiber. Additional dispersion compensation can be performed in optical amplifiers and within an optical demultiplexer downstream from the optical multiplexer.
    Type: Grant
    Filed: August 30, 2002
    Date of Patent: July 15, 2008
    Assignee: Ciena Corporation
    Inventors: Harshad Sardesai, Michael Taylor, Sanjaykumar Upadhyay
  • Patent number: 7400831
    Abstract: A control loop detects the presence of cross-talk between first, second and third adjacent amplitude modulated wavelength division modulated channels of an optical communications system. A receiver including a demultiplexer, such as an Arrayed Waveguide Grating (AWG), receives portions of the energy in the channels to derive first, second and third electrical signals that are respectively replicas of the modulation of the first, second and third channels. Wavelength drift of the carried frequencies of the channels in detected by comparing the three signals in an electronic combinatorial logic unit.
    Type: Grant
    Filed: June 12, 2003
    Date of Patent: July 15, 2008
    Assignee: Avago Technologies Fiber IP Pte Ltd
    Inventor: Simon Meadowcroft
  • Patent number: 7398022
    Abstract: An apparatus and a method for transmitting at least a digital optical signal with return-to-zero phase-shift keying, employing a single optical modulator with dual-drive design, the encoded optical signal having improved spectral efficiency and performances and being generated by transmitters with simplified scheme; an optical communication system comprising the transmitting apparatus, a transmission line and an apparatus to receive the optical signal.
    Type: Grant
    Filed: July 8, 2005
    Date of Patent: July 8, 2008
    Inventor: Mario Zitelli
  • Publication number: 20080159749
    Abstract: An optical communication system includes an optical transmission apparatus and an optical receiving apparatus. The optical transmission apparatus includes an input port to receive an electric signal, a noise generator to generate noise, a transmission signal generator to generate a transmission signal by multiplexing the noise with the electric signal, and an electric/optical converter to convert the transmission signal into an optical signal and send out the optical signal to an optical transmission path. The optical receiving apparatus connected to the optical transmission apparatus via the optical transmission path and receiving the optical signal through the optical transmission path. The optical receiving apparatus includes an optical/electric converter to convert the optical signal received through the optical transmission path into a receive electric signal and a receiving filter to remove the noise from the receive electric signal.
    Type: Application
    Filed: February 26, 2008
    Publication date: July 3, 2008
    Inventor: Noriyuki Imoto
  • Patent number: 7394986
    Abstract: The invention relates to wavelength-selective optical filters for allowing light of a narrow optical spectral band, centered around a wavelength (?c) to pass through them, while reflecting the wavelengths lying outside this band. According to the invention, the transfer function (T1,2(?)) of the component is defined by multiplying two transfer functions of spectrally offset Fabry-Perot filters.
    Type: Grant
    Filed: September 9, 2003
    Date of Patent: July 1, 2008
    Assignee: Atmel Grenoble S. A.
    Inventors: Romain Ramel, Sylvie Jarjayes, StƩphane Gluck
  • Publication number: 20080152353
    Abstract: Apparatus and method for increasing the sensitivity in the detection of optical coherence tomography and low coherence interferometry (ā€œLCIā€) signals by detecting a parallel set of spectral bands, each band being a unique combination of optical frequencies. The LCI broad bandwidth source is split into N spectral bands. The N spectral bands are individually detected and processed to provide an increase in the signal-to-noise ratio by a factor of N. Each spectral band is detected by a separate photo detector and amplified. For each spectral band the signal is band pass filtered around the signal band by analog electronics and digitized, or, alternatively, the signal may be digitized and band pass filtered in software. As a consequence, the shot noise contribution to the signal is reduced by a factor equal to the number of spectral bands. The signal remains the same. The reduction of the shot noise increases the dynamic range and sensitivity of the system.
    Type: Application
    Filed: December 13, 2007
    Publication date: June 26, 2008
    Applicant: The General Hospital Corporation
    Inventors: Johannes F. de Boer, Guillermo J. Tearney, Brett E. Bouma
  • Patent number: 7389047
    Abstract: The network comprises an optical ring link (F) and a concentrator (HUB) that sends via one end of the link ā€œdownlinkā€ optical signals carried by respective wavelengths and receives ā€œuplinkā€ optical signals via the other end of the link. The link is divided into a plurality of segments (FS1-FS4) separated by access nodes (AN1-AN3) for receivers (RX) of downlink optical signals and for senders (TX) of uplink optical signals. Each access node comprises coupling means that are not wavelength-selective for coupling the segment on the upstream side of the node to the segment on the downstream side and to the receivers and to couple the senders (TX) to the segment on the downstream side. The downlink optical signals are carried by wavelengths belonging to a set of predefined wavelengths. To optimize the use of spectral resources, a rejection filter (NF) is inserted into a segment to reject a portion of the wavelengths of said set of wavelengths.
    Type: Grant
    Filed: February 22, 2005
    Date of Patent: June 17, 2008
    Assignee: Alcatel
    Inventors: Thierry Zami, Arnaud Dupas
  • Patent number: 7386240
    Abstract: In one aspect a system and method for providing a multi-port memory having a plurality of read ports, each read port including a filter coefficient value representing a dispersion compensation value associated with an optical link. The method includes processing an input optical signal using the filter coefficient values in the multi-port memory to generate an output optical signal for transmission on the optical link.
    Type: Grant
    Filed: April 9, 2004
    Date of Patent: June 10, 2008
    Assignee: Nortel Networks Limited
    Inventors: Sandy Thomson, Ruibin Jin, Eric Hall, Paul MacDonald
  • Patent number: 7382979
    Abstract: The present invention discloses a design method of wavelength dispersion compensation of a desired link that is extracted from an optical network, the link including two or more spans, and two or more nodes (N1, N4) that are equipped with an add/drop function, as shown in FIG. 2. All residual dispersion ranges of paths that reach corresponding nodes are adjusted to fall within predetermined tolerable residual dispersion ranges that are set up for all the paths of the link by adjusting wavelength dispersion compensators provided to each of the spans.
    Type: Grant
    Filed: December 27, 2005
    Date of Patent: June 3, 2008
    Assignee: Fujitsu Limited
    Inventors: Yuichi Akiyama, Takafumi Terahara, Takeshi Hoshida, Hisao Nakashima
  • Patent number: 7382985
    Abstract: Polarization Dependent Effects (PDEs), including Polarization Mode Dispersion (PMD) and Polarization Dependent Loss (PDL) imposed on optical signals conveyed through an optical link are compensated by processing an input signal in the electrical domain prior to transmission. A compensation function is derived that at least partially compensates the PDEs. The communications signal is then processed in the electrical domain using the compensation function to generate an electrical predistorted signal. The electrical predistorted signal is then used to modulate an optical source to generate a corresponding predistorted optical signal for transmission through the optical link. The PDEs of the optical link operate of the predistorted optical signal such at that substantially undistorted optical signal is received at a receiving end of the link.
    Type: Grant
    Filed: December 2, 2002
    Date of Patent: June 3, 2008
    Assignee: Nortel Networks Limited
    Inventors: Kim B. Roberts, Leo Strawczynski, Adrien Comeau, John McNicol, Maurice O'Sullivan, Kieran Parsons
  • Patent number: 7382984
    Abstract: Optical dispersion imposed on a communications signal conveyed through an optical communications system is compensated by modulating the communications signal in the electrical domain. A compensation function is determined that substantially mitigates the chromatic dispersion. The communications signal is then modulated in the electrical domain using the compensation function. Electrical domain compensation can be implemented in either the transmitter or the receiver end of the communications system. In preferred embodiments, compensation is implemented in the transmitter, using a look-up-table and digital-to-analog converter to generate an electrical predistorted signal. The electrical predistorted signal is then used to modulate an optical source to generate a corresponding predistorted optical signal for transmission through the optical communications system.
    Type: Grant
    Filed: October 3, 2002
    Date of Patent: June 3, 2008
    Assignee: Nortel Networks Limited
    Inventors: John McNicol, Kieran Parsons, Leo Strawczynski, Kim B. Roberts
  • Patent number: 7379677
    Abstract: The wavelength converter comprises (1) an optical multiplexer for multiplexing an amplitude-modulated first light and reference light, which is continuous light having a wavelength different from the wavelength of the first light, (2) an optical fiber for propagating the multiplexed light therethrough to generate a third light by a non-linear optical phenomenon, and (3) an optical filter having a pass wavelength range set such that a pulse time width of the third light is 20% or more narrower than a pulse time width of the first light after the third light has passed through the optical filter, or (3?) an optical filter having a pass wavelength range set such that a cross point of an eye pattern of the third light is lower than a cross point of an eye pattern of the first light after the third light has passed through the optical filter.
    Type: Grant
    Filed: January 26, 2005
    Date of Patent: May 27, 2008
    Assignee: Sumitomo Electric Industries, Ltd.
    Inventor: Toshiaki Okuno
  • Patent number: 7376361
    Abstract: In an optical transmission system comprising a transmitter, a receiver, and a transmission line that connects the transmitter and the receiver, a dispersion compensator is disposed in the receiver. The transmitter comprises an E/O (electro-optical signal converter) and a post-amplifier. An optical signal that has been RZ-coded is supplied to the E/O. The transmitter pre-chirps the optical signal. The pre-chirp is performed by red-chirp of which the value of the chirping parameter ? is positive. When the pre-chirp is performed, the non-linear effect of the optical signal on the transmission line can be canceled. In addition, with the RZ coded signal, the inter-symbol interference can be alleviated. Thus, the total dispersion amount of the dispersion compensator can be suppressed. In addition, the power of the optical output can be increased.
    Type: Grant
    Filed: September 19, 2006
    Date of Patent: May 20, 2008
    Assignee: Fujitsu Limited
    Inventors: Akira Miyauchi, Kazuo Yamane, Yumiko Kawasaki, Satoru Okano
  • Patent number: 7376358
    Abstract: An optical spike is generated at an arbitrarily selected location within an arbitrary optical link. The optical spike is generated by deriving a spike signal having a plurality of components, and launching the spike signal into the a transmitter end of the optical link. An initial phase relationship between the components is selected such that the involved signal components will be phase aligned at the selected location. In order to achieve this operation, the initial phase relationship between the components may be selected to offset dispersion induced phase changes between the transmitter end of the link and the selected location. One or more optical spikes can be generated at respective arbitrarily selected locations within the link, and may be used for performance monitoring, system control, or other purposes.
    Type: Grant
    Filed: October 3, 2003
    Date of Patent: May 20, 2008
    Assignee: Nortel Networks Limited
    Inventors: Kim Roberts, Maurice O'Sullivan
  • Publication number: 20080112709
    Abstract: The present application is directed to an apparatus and method for the automated compensation of dispersion over a broad wavelength range for coherent optical pulses. In one embodiment, the present application discloses an automatic dispersion compensating optical apparatus configured to change chirp introduced into an optical signal by an optical system in optical communication with the dispersion compensating optical apparatus and includes at least one wavelength-tunable source of coherent optical pulses configured to output at least one optical signal, at least one dispersion compensation device configured to receive the optical signal from the coherent source, and at least one controller in communication with the dispersion compensation device and configured to adjust chirp introduced into the optical signal by the dispersion compensation device as the wavelength of the optical signal is varied.
    Type: Application
    Filed: November 9, 2007
    Publication date: May 15, 2008
    Applicant: Newport Corporation
    Inventors: Dmitri A. Oulianov, Stefan Marzenell, Richard Boggy
  • Patent number: 7373091
    Abstract: The inventors propose herein a switch fabric architecture that allows broadcasting and fast channel access in the ns-range. In various embodiments of the present invention, 10 Gb/s receiver modules are based on a novel heterodyne receiver and detection technique, which is tolerant to moderate wavelength drifts of a local oscillator. A gain clipped electrical amplifier is used in the novel receiver as a rectifier for bandpass signal recovery.
    Type: Grant
    Filed: September 25, 2003
    Date of Patent: May 13, 2008
    Assignee: Lucent Technologies Inc.
    Inventor: Lothar Benedict Erhard Josef Moeller
  • Publication number: 20080107426
    Abstract: Disclosed are an improved system and a related method for compensating the chromatic dispersion of a given length of a transmission fiber over a given spectral band by employing at least two chromatic dispersion compensating fibers that, with respect to the slope of the slope of the chromatic dispersion (SSi), have values of opposite signs.
    Type: Application
    Filed: November 2, 2007
    Publication date: May 8, 2008
    Applicant: DRAKA COMTEQ B.V.
    Inventors: Marianne Bigot-Astruc, Louis-Anne De Montmorillon, Denis Molin, Pierre Sillard