Patents by Inventor David S. Millar

David S. Millar 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: 20240022334
    Abstract: Consistent with the present disclosure, an encoder circuit is provided at a transmit side of an optical fiber link that maps an input sequence of bits of fixed length k to a sequence of symbols of a codeword of length n, such that the symbols of the codeword define a predetermined transmission probability distribution. In one example, each subgroup of bits of the k input bit sequence is provided to a respective look-up table, whereby the sub-group of bits constitutes an address of a particular memory location in the corresponding look-up table. Based on the address, the contents at the particular memory location addressed by each subgroup of bits are output as a corresponding portion of a codeword. Each such codeword portion is provided to a further memory or buffer, such that the entire codeword is assembled in the buffer and output to forward error correction (FEC) circuitry.
    Type: Application
    Filed: July 13, 2023
    Publication date: January 18, 2024
    Applicant: Infinera Corporation
    Inventors: David S. Millar, Mehdi Torbatian, Han Henry Sun
  • Patent number: 9584259
    Abstract: A method modulates data for optical communication by first encoding the data using a forward error correction (FEC) encoder to produce encoded data, which are encoded using a block encoder to produce block encoded data such that Lee distances between code words that represent the block encoded data are increased. The block encoded data are mapped to produce mapped data such that Euclidian distances between the constellation points are increased. Then, the mapped data are modulated in a transmitter to a modulated signal for an optical channel.
    Type: Grant
    Filed: October 22, 2013
    Date of Patent: February 28, 2017
    Assignee: Mitsubishi Electric Research Laboratories, Inc.
    Inventors: David S. Millar, Toshiaki Koike-Akino
  • Patent number: 9559786
    Abstract: A method decodes an optical signal transmitted over an optical channel from a transmitter to a receiver. The receiver receives the transmitted optical signal to produce a digital signal including data symbols and pilot symbols, and determines filtering coefficients based on an error between amplitudes of the received pilot symbols and amplitudes of transmitted pilot symbols, while ignoring errors between phases of the received pilot symbols and phases of the transmitted pilot symbols. The amplitudes and the phases of the transmitted pilot symbols are known at the transmitter and the receiver. The receiver filters the digital signal according to the filtering coefficients to produce a filtered signal with equalized amplitude and an unconstrained phase demodulates and decodes the filtered signal to produce an estimate of the transmitted optical signal.
    Type: Grant
    Filed: June 18, 2015
    Date of Patent: January 31, 2017
    Assignee: Mitsubishi Electric Research Laboratories, Inc.
    Inventors: David S Millar, Toshiaki Koike-Akino, Milutin Pajovic
  • Publication number: 20160277121
    Abstract: A method decodes an optical signal transmitted over an optical channel from a transmitter to a receiver. The receiver receives the transmitted optical signal to produce a digital signal including data symbols and pilot symbols, and determines filtering coefficients based on an error between amplitudes of the received pilot symbols and amplitudes of transmitted pilot symbols, while ignoring errors between phases of the received pilot symbols and phases of the transmitted pilot symbols. The amplitudes and the phases of the transmitted pilot symbols are known at the transmitter and the receiver. The receiver filters the digital signal according to the filtering coefficients to produce a filtered signal with equalized amplitude and an unconstrained phase demodulates and decodes the filtered signal to produce an estimate of the transmitted optical signal.
    Type: Application
    Filed: June 18, 2015
    Publication date: September 22, 2016
    Inventors: David S Millar, Toshiaki Koike-Akino, Milutin Pajovic
  • Patent number: 9432124
    Abstract: The transmission of data from a transmitter to a receiver over an optical super-channel including a set of sub-channels of different frequencies includes partitioning the data into a set of data streams including one data stream for each sub-channel and partitioning each data stream into a set of sub-streams. Each sub-stream of each data stream is encoded with different forward error correction (FEC) codes to produce a set of encoded sub-streams for each data stream, and the set of encoded sub-streams of each data stream are superimposed with different powers to produce a set of encoded data streams. The set of encoded data streams is multiplexed to produce an optical signal transmitted over the set of sub-channels of the optical super-channel.
    Type: Grant
    Filed: September 16, 2014
    Date of Patent: August 30, 2016
    Assignee: Mitsubishi Electric Research Laboratories, Inc.
    Inventors: Toshiaki Koike-Akino, Keisuke Kojima, David S Millar, Kieran Parsons
  • Publication number: 20160226625
    Abstract: A method modulates data for optical communication by first encoding the data using a forward error correction (FEC) encoder to produce encoded data, which are encoded using a block encoder to produce block encoded data such that Lee distances between code words that represent the block encoded data are increased. The block encoded data are mapped to produce mapped data such that Euclidian distances between the constellation points are increased. Then, the mapped data are modulated in a transmitter to a modulated signal for an optical channel.
    Type: Application
    Filed: October 22, 2013
    Publication date: August 4, 2016
    Applicant: Mitsubishi Electric Research Laboratories, Inc.
    Inventors: David S. Millar, Toshiaki Koike-Akino
  • Publication number: 20160080087
    Abstract: The transmission of data from a transmitter to a receiver over an optical super-channel including a set of sub-channels of different frequencies includes partitioning the data into a set of data streams including one data stream for each sub-channel and partitioning each data stream into a set of sub-streams. Each sub-stream of each data stream is encoded with different forward error correction (FEC) codes to produce a set of encoded sub-streams for each data stream, and the set of encoded sub-streams of each data stream are superimposed with different powers to produce a set of encoded data streams. The set of encoded data streams is multiplexed to produce an optical signal transmitted over the set of sub-channels of the optical super-channel.
    Type: Application
    Filed: September 16, 2014
    Publication date: March 17, 2016
    Inventors: Toshiaki Koike-Akino, Keisuke Kojima, David S Millar, Kieran Parsons
  • Patent number: 9112653
    Abstract: A method modulates data for optical communication by first encoding the data using a forward error correction (FEC) encoder to produce encoded data, which are encoded using a block encoder to produce block encoded data such that Hamming distances between code words that represent the block encoded data are increased. The block encoded data are mapped to produce mapped data such that Euclidian distances between the constellation points are increased. Then, the mapped data are modulated in a transmitter to a modulated signal for an optical channel.
    Type: Grant
    Filed: June 19, 2013
    Date of Patent: August 18, 2015
    Assignee: Mitsubishi Electric Research Laboratories, Inc.
    Inventors: Toshiaki Koike-Akino, Andrei Kniazev, David S Millar
  • Publication number: 20140376925
    Abstract: A method modulates data for optical communication by first encoding the data using a forward error correction (FEC) encoder to produce encoded data, which are encoded using a block encoder to produce block encoded data such that Hamming distances between code words that represent the block encoded data are increased. The block encoded data are mapped to produce mapped data such that Euclidian distances between the constellation points are increased. Then, the mapped data are modulated in a transmitter to a modulated signal for an optical channel.
    Type: Application
    Filed: June 19, 2013
    Publication date: December 25, 2014
    Applicant: Mitsubishi Electric Research Laboratories, Inc.
    Inventors: Toshiaki Koike-Akino, Andrew Knyazev, David S Millar
  • Publication number: 20040137510
    Abstract: A detection method for detecting a variation in GH1 effective to act as an indicator of GH dysfunction in an individual, comprises the steps of comparing a test sample comprising a nucleotide sequence of the human GH1 gene from the individual with a standard sequence known to be that of the human GH1 gene. A difference between the test sample sequence and the standard sequence indicates the presence of a variation effective to act as an indicator of GH dysfunction (hereinafter “variant of GH1”).
    Type: Application
    Filed: March 1, 2004
    Publication date: July 15, 2004
    Applicant: UNIVERSITY OF WALES COLLEGE OF MEDICINE
    Inventors: David N. Cooper, Annie M. Procter, John Gregory, David S. Millar
  • Publication number: 20020081605
    Abstract: A detection method for detecting a variation in GH1 effective to act as an indicator of GH dysfunction in an individual, comprises the steps of comparing a test sample comprising a nucleotide sequence of the human GH1 gene from the individual with a standard sequence known to be that of the human GH1 gene. A difference between the test sample sequence and the standard sequence indicates the presence of a variation effective to act as an indicator of GH dysfunction (hereinafter “variant of GH1”).
    Type: Application
    Filed: May 14, 2001
    Publication date: June 27, 2002
    Inventors: David N. Cooper, Annie M. Procter, John Gregory, David S. Millar