Patents by Inventor Mark E. Boduch

Mark E. Boduch has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Publication number: 20140376918
    Abstract: Example embodiments of the present invention relate to An optical node comprising of at least two optical degrees; a plurality of directionless add/drop ports; and at least one wavelength equalizing array, wherein the at least one wavelength equalizing array is used to both select wavelengths for each degree, and to perform directionless steering for the add/drop ports.
    Type: Application
    Filed: June 22, 2013
    Publication date: December 25, 2014
    Inventors: Mark E. Boduch, Kimon Papakos
  • Patent number: 8737776
    Abstract: Optical networks are increasingly employing optical network nodes having multiple interfaces to allow a node to direct optical signals received at any interface to any other interface connected to the node. Constructing a larger wavelength selective switching (WSS) module used in such a node can be complex and expensive. A method an apparatus for constructing a large WSS using parallelism is provided. In example embodiments, a larger WSS may include multiple parallel non-cascaded smaller WSSs and an optical coupler configured to optically couple the multiple parallel, non-cascaded smaller WSSs. This technique may be used to construct both N×1 and 1×N WSSs. Because the technique employs multiple parallel, non-cascaded WSSs, all inputs of a larger N×1 WSS and all outputs of a larger 1×N WSS are available receive or transmit external signals rather than being rather than being unavailable due to, for example, cascading smaller WSS devices together.
    Type: Grant
    Filed: March 11, 2013
    Date of Patent: May 27, 2014
    Assignee: Tellabs Operations, Inc.
    Inventor: Mark E. Boduch
  • Patent number: 8605459
    Abstract: A cable tray is provided comprising a housing defining an interior portion, the housing having at least one positioned opening formed therein and also having plural, open ends in communication with the interior portion and the at least one positioned opening for passage of at least one cable therethrough. The housing is adapted to be coupled to at least one external surface, such that at least one of the plural, open ends substantially aligns with at least one open end of a housing of at least one further cable tray.
    Type: Grant
    Filed: February 18, 2011
    Date of Patent: December 10, 2013
    Assignee: Tellabs Operations, Inc.
    Inventors: Kimon Papakos, Scott A. Blakemore, Mark E. Boduch
  • Publication number: 20130279856
    Abstract: An optical connector system having a first optical connector, a plurality of second optical connectors, and a mounting system hosting the first optical connector and the second optical connectors. The mounting system can be formed integrally with at least one pluggable optical device. The system also has a mechanism arranged to connect the first optical connector to the second optical connectors. The system also includes at least one further pluggable optical device having at least one optical interface optically coupled to the first optical connector of the at least one pluggable optical device. In one example, the pluggable optical device is a CFP device, and the further pluggable optical device is a QSFP+. With this configuration, the QSFP+ can accommodate at least one of a 40 G and 10 G interface capability. Also provided is a connector system and an apparatus (e.g., pluggable optical device) that enable such a capability.
    Type: Application
    Filed: April 23, 2012
    Publication date: October 24, 2013
    Applicant: TELLABS OPERATIONS, INC.
    Inventors: Mark E. Boduch, Yajun Wang, Thomas J. Huber
  • Patent number: 8565603
    Abstract: A reconfigurable optical add drop multiplexer core device includes a light distributor, a light combiner, and first and second sets of add and drop ports. The light distributor is configured to receive an optical signal along a primary input of the reconfigurable optical add drop multiplexer core device and to distribute the received optical signal along a plurality of subtending outputs. The light combiner is configured to receive optical signals along a plurality of subtending inputs, to combine the received optical signals into a combined signal, and to output the combined signal. The add and drop ports in the first set function as add and drop ports, respectively, and the add and drop ports in the second set function as both add and drop ports, respectively, and as express ports connectable to another reconfigurable optical add drop multiplexer core device.
    Type: Grant
    Filed: January 11, 2012
    Date of Patent: October 22, 2013
    Assignee: Tellabs Operations, Inc.
    Inventors: Mark E. Boduch, Kimon Papakos, Gilbert A. Buescher
  • Patent number: 8447183
    Abstract: In today's reconfigurable optical add/drop multiplexer (ROADM) based optical node, ROADMs multiplex (and demultiplex) colored optical signals to form wavelength-division multiplexed (WDM) signals. Transponders connected to the ROADMs' add/drop ports convert noncolored optical signals to colored optical signals (and vice versa). Dedicating transponders to given ports degrades the node's ability to route around network failures. Example embodiments of the invention include an optical node and corresponding method for routing optical signals within an optical node that compensate for this inflexibility. The optical node may include two ROADMs to transmit respective WDM signals onto at least two internode network paths and a routing module that can direct channels of the same wavelength along different internode network paths.
    Type: Grant
    Filed: August 25, 2009
    Date of Patent: May 21, 2013
    Assignee: Tellabs Operations, Inc.
    Inventors: Mark E. Boduch, Kimon Papakos, Yajun Wang
  • Patent number: 8401348
    Abstract: Optical networks are increasingly employing optical network nodes having multiple interfaces to allow a node to direct optical signals received at any interface to any other interface connected to the node. Constructing a larger wavelength selective switching (WSS) module used in such a node can be complex and expensive. A method an apparatus for constructing a large WSS using parallelism is provided. In example embodiments, a larger WSS may include multiple parallel non-cascaded smaller WSSs and an optical coupler configured to optically couple the multiple parallel, non-cascaded smaller WSSs. This technique may be used to construct both N×1 and 1×N WSSs. Because the technique employs multiple parallel, non-cascaded WSSs, all inputs of a larger N×1 WSS and all outputs of a larger 1×N WSS are available receive or transmit external signals rather than being rather than being unavailable due to, for example, cascading smaller WSS devices together.
    Type: Grant
    Filed: March 4, 2009
    Date of Patent: March 19, 2013
    Assignee: Tellabs Operations, Inc.
    Inventor: Mark E. Boduch
  • Patent number: 8380078
    Abstract: A chromatic dispersion compensation system for an optical transmission system incorporates circuitry which determines the length of an optical fiber extending between an output amplifier and an input amplifier. Based on fiber type, the total chromatic dispersion on the fiber is determined. Compensation can then be automatically implemented.
    Type: Grant
    Filed: July 29, 2010
    Date of Patent: February 19, 2013
    Assignee: Tellabs Operations, Inc.
    Inventors: Mark E. Boduch, Kimon Papakos, Gary M. Eslary, John M. Golding
  • Patent number: 8339941
    Abstract: The specification discloses methods and apparatus for selecting the better of two or more copies of a cell in a cell-oriented redundant switching system connected to an external communications network. In the preferred embodiment, the best cell copy selection aligns redundantly transmitted cell streams before selecting cells for insertion in the data stream. Because the streams are aligned before the selection is made, the best cell copy selector compares each cell at the same instant in time, rather than basing its selection on past events.
    Type: Grant
    Filed: May 5, 2003
    Date of Patent: December 25, 2012
    Assignee: Tellabs Operations, Inc.
    Inventors: Mark E. Boduch, Mark A. Richmond, Lawrence D. Weizeorick
  • Patent number: 8335240
    Abstract: Erroneous data due to faults are prevented from propagating through a distributed network node having diversely routed communications links by using a fault masking technique that eliminates the 60 ms of error propagation time associated with SONET networks. The fault masking technique can also prevent random bit errors from propagating through the distributed network node. A frame alignment technique used in the network node is scalable for very wide words (e.g., 128 bits) for use with high speed optical communications protocols, such as OC-192.
    Type: Grant
    Filed: December 14, 2007
    Date of Patent: December 18, 2012
    Assignee: Tellabs Operations, Inc.
    Inventor: Mark E. Boduch
  • Patent number: 8328026
    Abstract: A chassis having a housing in which at least one card module can be arrange is provided. The chassis is arranged in a first rack horizontally or a second rack vertically wherein the second rack opening width is an integer multiple of the predetermined chassis width. A fan slot and ventilation openings are provided in the chassis to allow for airflow across the card modules. Mounting mechanisms facilitate coupling of the chassis to the first and second rack and include ventilation openings through which air passes.
    Type: Grant
    Filed: February 22, 2008
    Date of Patent: December 11, 2012
    Assignee: Tellabs Operations, Inc.
    Inventors: Mark E. Boduch, Kimon Papakos, Scott A. Blakemore, David J. Womac
  • Patent number: 8320759
    Abstract: Optical networks are increasingly employing optical network nodes having multiple interfaces to allow a node to direct optical signals received at any interface to any other interface connected to the node. Constructing a larger wavelength selective switching (WSS) module used in such a node can be complex and expensive. A method an apparatus for constructing a large WSS using parallelism is provided. In example embodiments, a larger WSS may include multiple parallel non-cascaded smaller WSSs and an optical coupler configured to optically couple the multiple parallel, non-cascaded smaller WSSs. This technique may be used to construct both N×1 and 1×N WSSs. Because the technique employs multiple parallel, non-cascaded WSSs, all inputs of a larger N×1 WSS and all outputs of a larger 1×N WSS are available receive or transmit external signals rather than being rather than being unavailable due to, for example, cascading smaller WSS devices together.
    Type: Grant
    Filed: March 4, 2009
    Date of Patent: November 27, 2012
    Assignee: Tellabs Operations, Inc.
    Inventor: Mark E. Boduch
  • Patent number: 8320409
    Abstract: Erroneous data due to faults are prevented from propagating through a distributed network node having diversely routed communications links by using a fault masking technique that eliminates the 60 ms of error propagation time associated with SONET networks. The fault masking technique can also prevent random bit errors from propagating through the distributed network node. A frame alignment technique used in the network node is scalable for very wide words (e.g., 128 bits) for use with high speed optical communications protocols, such as OC-192.
    Type: Grant
    Filed: July 31, 2003
    Date of Patent: November 27, 2012
    Assignee: Tellabs Operations, Inc.
    Inventors: Mark E. Boduch, Chris R. Zettinger, Charles R. Parilla
  • Publication number: 20120183292
    Abstract: Fiber optic links can be used to support optical communications using wavelength division multiplexing (WDM) with different legacy, current, and future (non-legacy) WDM systems being characterized by channel spacing. An example of a legacy system can include WDM that employs a large number of channels and uses relatively narrow spacing between the channels, having a channel spacing of 100 GHz whereas today's current WDM systems have a narrower channel spacing of 50 GHz. Current systems and standards cannot support multiplexing of signals from different legacy and non-legacy WDM systems within the same network element without causing signal interference. Example embodiments of the present invention overcome the current problems by allowing for the handling and interconnection of differently spaced wavelengths within the same network element by employing hybrid components.
    Type: Application
    Filed: July 6, 2011
    Publication date: July 19, 2012
    Applicant: Tellabs Operations, Inc.
    Inventor: Mark E. Boduch
  • Patent number: 8190027
    Abstract: An optical node includes a reconfigurable optical add drop multiplexer (ROADM) core configured to transmit optical signals of multiple wavelengths to and receive optical signals of multiple wavelengths from another optical node. The ROADM core is also configured to add optical signals thereto and to drop optical signals therefrom. The node also includes two different types of add-on devices, each connected to the ROADM core device and configured to process optical signals of multiple wavelengths. As a result, a multifunctional and reconfigurable optical node can be provided.
    Type: Grant
    Filed: April 6, 2007
    Date of Patent: May 29, 2012
    Assignee: Tellabs Operations, Inc.
    Inventors: Mark E. Boduch, Kimon Papakos, Gilbert A. Buescher
  • Publication number: 20120106970
    Abstract: A reconfigurable optical add drop multiplexer core device includes a light distributor, a light combiner, and first and second sets of add and drop ports. The light distributor is configured to receive an optical signal along a primary input of the reconfigurable optical add drop multiplexer core device and to distribute the received optical signal along a plurality of subtending outputs. The light combiner is configured to receive optical signals along a plurality of subtending inputs, to combine the received optical signals into a combined signal, and to output the combined signal. The add and drop ports in the first set function as add and drop ports, respectively, and the add and drop ports in the second set function as both add and drop ports, respectively, and as express ports connectable to another reconfigurable optical add drop multiplexer core device.
    Type: Application
    Filed: January 11, 2012
    Publication date: May 3, 2012
    Applicant: TELLABS OPERATIONS, INC.
    Inventors: Mark E. Boduch, Kimon Papakos, Gilbert A. Buescher
  • Patent number: 8165468
    Abstract: In today's reconfigurable optical add/drop multiplexer (ROADM) based optical node, transponders associated with the ROADMs' add/drop ports are dedicated to a given network node interface. Dedicated transponders reduce the flexibility to route around network failures. Example embodiments of the invention includes an optical node and corresponding method for routing optical signals within an optical node. The optical node may include at least two ROADMs to transmit respective wavelength division multiplexed (WDM) signals onto at least two inter-node network paths and at least one add/drop module including add ports to direct add wavelengths received from tributary network paths to each of the ROADMs via intra-node network paths to allow the wavelengths to be available to be added to the inter-node network paths.
    Type: Grant
    Filed: January 13, 2009
    Date of Patent: April 24, 2012
    Assignee: Tellabs Operations, Inc.
    Inventors: Mark E. Boduch, Kimon Papakos
  • Patent number: 8135002
    Abstract: A method and apparatus are provided for horizontally slicing a multi-stage switching fabric having transmission inputs and transmission outputs to and from the switch fabric. The switching fabric includes switch elements arranged in at least first and second stages, each switch element having element inputs and outputs with each switch element being configured to join one of the element inputs with an associated one of the element outputs. The switch fabric includes a first logic device that contains a stage-1 subset of the switch elements that is arranged within, and configured to operate as part of, the first stage. The first logic device also contains a stage-2 subset of the switch elements arranged within, and configured to operate as part of, the second stage. The switch fabric includes a second logic device that contains a stage-1 subset of the switch elements that is arranged within, and configured to operate as part of, the first stage.
    Type: Grant
    Filed: January 15, 2010
    Date of Patent: March 13, 2012
    Assignee: Tellabs Operations, Inc.
    Inventors: Thomas E. Ryan, Mark E. Boduch, John B. Kenney
  • Patent number: 8116629
    Abstract: A reconfigurable optical add drop multiplexer core device includes a light distributor, a light combiner, and first and second sets of add and drop ports. The light distributor is configured to receive an optical signal along a primary input of the reconfigurable optical add drop multiplexer core device and to distribute the received optical signal along a plurality of subtending outputs. The light combiner is configured to receive optical signals along a plurality of subtending inputs, to combine the received optical signals into a combined signal, and to output the combined signal. The add and drop ports in the first set function as add and drop ports, respectively, and the add and drop ports in the second set function as both add and drop ports, respectively, and as express ports connectable to another reconfigurable optical add drop multiplexer core device.
    Type: Grant
    Filed: April 8, 2008
    Date of Patent: February 14, 2012
    Assignee: Tellabs Operations, Inc.
    Inventors: Mark E. Boduch, Kimon Papakos, Gilbert A. Buescher
  • Patent number: D698856
    Type: Grant
    Filed: July 18, 2013
    Date of Patent: February 4, 2014
    Inventors: Kimon Papakos, Mark E. Boduch