Patents by Inventor Sudhesh Mysore

Sudhesh Mysore 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).

  • Patent number: 9979483
    Abstract: Receiving a plurality of optical signals from a plurality of optical paths using a single optical receiver having a large-area photodiode having an active area that is optically coupled to the plurality of optical paths provides significant commercial advantages such as lower cost as well as reduced size and maintenance.
    Type: Grant
    Filed: April 15, 2016
    Date of Patent: May 22, 2018
    Assignee: Aurora Networks, Inc.
    Inventor: Sudhesh Mysore
  • Patent number: 9860053
    Abstract: Synchronizing SBS suppressing optical phase/frequency modulation of each of a plurality of optical transmitters can be achieved with a plurality of optical transmitters conveying a plurality of optical carriers; and a synchronizer coupled to each of the plurality of optical transmitters to synchronize the SBS suppressing optical phase/frequency modulation of each of the plurality of optical carriers.
    Type: Grant
    Filed: April 15, 2016
    Date of Patent: January 2, 2018
    Assignee: Aurora Networks, Inc.
    Inventors: Brian Ishaug, Sudhesh Mysore
  • Patent number: 9774393
    Abstract: A bidirectional optical fiber path includes a primary optical fiber path; a secondary optical fiber path coupled to the primary optical fiber path; an optical coupler coupled to both the primary optical fiber path and the secondary optical fiber path; an optical switch coupled to both the primary optical fiber path and the secondary optical fiber path, the optical switch selecting a path of lower optical loses; an optical cross-bar switch coupled to both the primary optical fiber path and the secondary optical fiber path and located between the optical coupler and the optical switch; a primary upstream light detector coupled to the primary optical path between the optical cross bar switch and the optical switch; a secondary upstream light detector coupled to the secondary optical path between the optical cross bar switch and the optical switch; a primary downstream light detector coupled to the primary optical path between the optical cross bar switch and the optical switch; a secondary downstream light detec
    Type: Grant
    Filed: February 17, 2016
    Date of Patent: September 26, 2017
    Assignee: Aurora Networks, Inc.
    Inventors: Sudhesh Mysore, Krzysztof Pradzynski
  • Patent number: 9647764
    Abstract: A distortion compensation circuit compensates for the distortions generated by the dispersion-slope of an optical component and the frequency chirp of an optical transmitter. The dispersion compensation circuitry can be utilized in the optical transmitter, the optical receiver and/or at some intermediate point in a fiber-optic network. One embodiment of the compensation circuit utilizes a primary electrical signal path that receives at least a portion of the input signal and a delay line; and a secondary signal path in parallel to the primary path that receives at least a portion of the input signal and including: an amplifier with an electrical current gain that is proportional to the dispersion-slope of the optical component, an optional RF attenuator, an optional delay line, a “squarer” circuit, and a “differentiator” circuit.
    Type: Grant
    Filed: October 6, 2015
    Date of Patent: May 9, 2017
    Assignee: Aurora Networks, Inc.
    Inventor: Sudhesh Mysore
  • Publication number: 20160308664
    Abstract: Synchronizing SBS suppressing optical phase/frequency modulation of each of a plurality of optical transmitters can be achieved with a plurality of optical transmitters conveying a plurality of optical carriers; and a synchronizer coupled to each of the plurality of optical transmitters to synchronize the SBS suppressing optical phase/frequency modulation of each of the plurality of optical carriers.
    Type: Application
    Filed: April 15, 2016
    Publication date: October 20, 2016
    Inventors: Brian Ishaug, Sudhesh Mysore
  • Publication number: 20160308616
    Abstract: Receiving a plurality of optical signals from a plurality of optical paths using a single optical receiver having a large-area photodiode having an active area that is optically coupled to the plurality of optical paths provides significant commercial advantages such as lower cost as well as reduced size and maintenance.
    Type: Application
    Filed: April 15, 2016
    Publication date: October 20, 2016
    Inventor: Sudhesh Mysore
  • Publication number: 20160241337
    Abstract: A bidirectional optical fiber path includes a primary optical fiber path; a secondary optical fiber path coupled to the primary optical fiber path; an optical coupler coupled to both the primary optical fiber path and the secondary optical fiber path; an optical switch coupled to both the primary optical fiber path and the secondary optical fiber path, the optical switch selecting a path of lower optical loses; an optical cross-bar switch coupled to both the primary optical fiber path and the secondary optical fiber path and located between the optical coupler and the optical switch; a primary upstream light detector coupled to the primary optical path between the optical cross bar switch and the optical switch; a secondary upstream light detector coupled to the secondary optical path between the optical cross bar switch and the optical switch; a primary downstream light detector coupled to the primary optical path between the optical cross bar switch and the optical switch; a secondary downstream light detec
    Type: Application
    Filed: February 17, 2016
    Publication date: August 18, 2016
    Applicant: Aurora Networks, Inc.
    Inventors: Sudhesh Mysore, Krzysztof Pradzynski
  • Patent number: 9356726
    Abstract: Configuring an optical point to multipoint communication network includes assigning a channel number Ci by modular arithmetic to each of a plurality of N access points, each of the plurality of N access points i) including a laser and ii) coupled to a hub having a shared optical receiver; and tuning the laser located in each of the plurality of N access points to a wavelength ?ui that is one of a set of M wavelengths as a function of the channel number assigned to the access point in which the laser is located, a channel spacing ?? and an intrinsic wavelength ?uin of the laser to prevent optical beat interference at the shared optical receiver.
    Type: Grant
    Filed: April 14, 2015
    Date of Patent: May 31, 2016
    Assignee: Aurora Networks, Inc.
    Inventors: Daryoosh Rejaly, Ketan Gadkari, Zulfikar Morbi, Sudhesh Mysore, Steve Hopkins
  • Publication number: 20160056895
    Abstract: A distortion compensation circuit compensates for the distortions generated by the dispersion-slope of an optical component and the frequency chirp of an optical transmitter. The dispersion compensation circuitry can be utilized in the optical transmitter, the optical receiver and/or at some intermediate point in a fiber-optic network. One embodiment of the compensation circuit utilizes a primary electrical signal path that receives at least a portion of the input signal and a delay line; and a secondary signal path in parallel to the primary path that receives at least a portion of the input signal and including: an amplifier with an electrical current gain that is proportional to the dispersion-slope of the optical component., an optional RF attenuator, an optional delay line, a “squarer” circuit, and a “differentiator” circuit.
    Type: Application
    Filed: October 6, 2015
    Publication date: February 25, 2016
    Applicant: AURORA NETWORKS, INC.
    Inventor: Sudhesh Mysore
  • Publication number: 20160013881
    Abstract: Configuring an optical point to multipoint communication network includes assigning a channel number Ci by modular arithmetic to each of a plurality of N access points, each of the plurality of N access points i) including a laser and ii) coupled to a hub having a shared optical receiver; and tuning the laser located in each of the plurality of N access points to a wavelength ?ui that is one of a set of M wavelengths as a function of the channel number assigned to the access point in which the laser is located, a channel spacing ?? and an intrinsic wavelength ?uin of the laser to prevent optical beat interference at the shared optical receiver.
    Type: Application
    Filed: April 14, 2015
    Publication date: January 14, 2016
    Inventors: Daryoosh Rejaly, Ketan Gadkari, Zulfikar Morbi, Sudhesh Mysore, Steve Hopkins
  • Patent number: 9160457
    Abstract: A distortion compensation circuit compensates for the distortions generated by the dispersion-slope of an optical component and the frequency chirp of an optical transmitter. The dispersion compensation circuitry can be utilized in the optical transmitter, the optical receiver and/or at some intermediate point in a fiber-optic network. One embodiment of the compensation circuit utilizes a primary electrical signal path that receives at least a portion of the input signal and a delay line; and a secondary signal path in parallel to the primary path that receives at least a portion of the input signal and including: an amplifier with an electrical current gain that is proportional to the dispersion-slope of the optical component, an optional RF attenuator, an optional delay line, a “squarer” circuit, and a “differentiator” circuit.
    Type: Grant
    Filed: June 11, 2014
    Date of Patent: October 13, 2015
    Assignee: AURORA NETWORKS, INC.
    Inventor: Sudhesh Mysore
  • Publication number: 20150078759
    Abstract: A distortion compensation circuit compensates for the distortions generated by the dispersion-slope of an optical component and the frequency chirp of an optical transmitter. The dispersion compensation circuitry can be utilized in the optical transmitter, the optical receiver and/or at some intermediate point in a fiber-optic network. One embodiment of the compensation circuit utilizes a primary electrical signal path that receives at least a portion of the input signal and a delay line; and a secondary signal path in parallel to the primary path that receives at least a portion of the input signal and including: an amplifier with an electrical current gain that is proportional to the dispersion-slope of the optical component, an optional RF attenuator, an optional delay line, a “squarer” circuit, and a “differentiator” circuit.
    Type: Application
    Filed: June 11, 2014
    Publication date: March 19, 2015
    Applicant: AURORA NETWORKS, INC.
    Inventor: Sudhesh Mysore
  • Patent number: 8917991
    Abstract: In fiber-to-the-home (FTTH) RF over Glass (RFoG) Architecture a customer-premise-equipment (CPE) includes a wavelength separator. A method includes up-converting a baseband upstream data signal to a frequency band above a frequency band of a baseband downstream data signal; combining the up-converted upstream data signal with an upstream cable return signal; transmitting the up-converted upstream data signal and the upstream cable return signal using a single upstream laser; and separating, with a wavelength separator, A) a downstream data signal and a downstream cable feed signal from B) the combined up-converted upstream data signal and upstream cable return signal.
    Type: Grant
    Filed: October 13, 2009
    Date of Patent: December 23, 2014
    Assignee: Aurora Networks, Inc.
    Inventors: Sudhesh Mysore, Charles Barker, Oleh Sniezko, Krzysztof Pradzynski
  • Patent number: 8849108
    Abstract: A method includes detecting wavelength collision including identifying a pair or pairs of ONTs that transmit the colliding wavelengths and recovering from collision wherein wavelengths of the pair or pairs of ONTs that cause collisions are re-adjusted to eliminate the collision.
    Type: Grant
    Filed: February 18, 2010
    Date of Patent: September 30, 2014
    Assignee: Aurora Networks Inc
    Inventors: Krzysztof Pradzynski, Sudhesh Mysore, Oleh Sniezko
  • Patent number: 8756645
    Abstract: Configuring a generic adaptable reconfigurable digital receiver having a programmable signal conditioner includes specifying a number of output RF channels; specifying an RF bandwidth of an output channel; and selecting a digital to analog sampling rate of a digital to analog convertor of the programmable signal conditioner as a function of the RF bandwidth of the output channel using a processor/demux of the generic adaptable reconfigurable digital receiver.
    Type: Grant
    Filed: June 18, 2012
    Date of Patent: June 17, 2014
    Assignee: Aurora Networks, Inc.
    Inventors: Krzysztof Pradzynski, Sudhesh Mysore, Oleh Sniezko
  • Publication number: 20130160068
    Abstract: A digital transmitter includes a generic adaptable reconfigurable digital transmitter module; and a reversibly removable module operationally coupled to the generic adaptable reconfigurable digital transmitter module. Configuring a generic adaptable reconfigurable digital receiver having a programmable signal conditioner includes specifying a number of output RF channels; specifying an RF bandwidth of an output channel; and selecting a digital to analog sampling rate of a digital to analog convertor of the programmable signal conditioner as a function of the RF bandwidth of the output channel using a processor/demux of the generic adaptable reconfigurable digital receiver.
    Type: Application
    Filed: June 18, 2012
    Publication date: June 20, 2013
    Inventors: Krzysztof Pradzynski, Sudhesh Mysore, Oleh Sniezko
  • Patent number: 8346081
    Abstract: Methods and apparatus are described for “Smart” RF over Glass (RFoG) CPE Unit with Seamless PON Upgrade Capability. A method includes operating a customer premises equipment device including transporting upstream cable return services with a laser; and switching a drive source for the upstream laser from an analog driver to a digital driver by using a managed electrical switch to reuse a wavelength of the laser. An apparatus includes a customer premises equipment device including a laser for transporting upstream cable return services; and a managed electrical switch coupled to the laser that is used to switch a drive source for the upstream laser to reuse a wavelength of the laser.
    Type: Grant
    Filed: October 13, 2009
    Date of Patent: January 1, 2013
    Assignee: Aurora Networks, Inc.
    Inventors: Sudhesh Mysore, Charles Barker, Oleh Sniezko, Krzysztof Pradzynski
  • Patent number: 8213797
    Abstract: Methods and apparatus are described for DWDM transport of CATV and digital signals over optical fiber in low-dispersion spectral regions. A method includes transporting a plurality of optical carriers of different wavelengths over an optical link using wavelength division multiplexing, the optical link including a plurality of optical segments. The plurality of optical channel center wavelengths defined by the plurality of optical carriers are clustered proximate an average value of a zero-dispersion wavelength of the optical link, or near either a) a low wavelength edge or b) a high wavelength edge of a range of zero-dispersion wavelengths of the optical link and a plurality of optical channel center frequencies defined by the plurality of optical channel center wavelengths are non-uniformly spaced apart.
    Type: Grant
    Filed: June 4, 2007
    Date of Patent: July 3, 2012
    Assignee: Aurora Networks, Inc.
    Inventors: Willem A Mostert, Sudhesh Mysore, Samuel Chang, Shamino Wang, Charles Barker, Oleh Sniezko
  • Publication number: 20100221019
    Abstract: A method includes cascading outputs from a plurality of photodiodes connected in parallel; and amplifying the cascaded outputs. An apparatus, includes a plurality of photodiodes cascaded in parallel; and an amplifier coupled to the plurality of photodiodes.
    Type: Application
    Filed: February 19, 2010
    Publication date: September 2, 2010
    Inventors: Wanda Wolodkowicz, Krzysztof Pradzynski, Oleh Sniezko, Sudhesh Mysore
  • Publication number: 20100220994
    Abstract: A method includes detecting wavelength collision including identifying a pair or pairs of ONTs that transmit the colliding wavelengths and recovering from collision wherein wavelengths of the pair or pairs of ONTs that cause collisions are re-adjusted to eliminate the collision.
    Type: Application
    Filed: February 18, 2010
    Publication date: September 2, 2010
    Inventors: Krzysztof Pradzynski, Sudhesh Mysore, Oleh Sniezko