Patents by Inventor Sunil Khatana

Sunil Khatana 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: 11768285
    Abstract: Disclosed herein are systems and methods for linearizing frequency chirp in a frequency-modulated continuous wave (FMCW) coherent LiDAR system. Exemplary methods can include generating a continuous wave laser signal having a frequency characteristic, in which the frequency characteristic can include a frequency chirp over a frequency band in at least one period; and receiving a signal based on the generated laser signal. The methods can further include mixing the received signal with a local oscillator signal, the local oscillator signal having the frequency characteristic; determining at least one beat frequency based on the mixed signal; sampling the mixed signal at a rate equal to at least two times the beat frequency; determining a correction signal based on the sampled signal; and applying the correction signal to the laser signal.
    Type: Grant
    Filed: May 12, 2021
    Date of Patent: September 26, 2023
    Assignee: Velodyne Lidar USA, Inc.
    Inventors: Sunil Khatana, Tyler Banas
  • Publication number: 20220373681
    Abstract: Disclosed herein are systems and methods for linearizing frequency chirp in a frequency-modulated continuous wave (FMCW) coherent LiDAR system. Exemplary methods can include generating a continuous wave laser signal having a frequency characteristic, in which the frequency characteristic can include a frequency chirp over a frequency band in at least one period; and receiving a signal based on the generated laser signal. The methods can further include mixing the received signal with a local oscillator signal, the local oscillator signal having the frequency characteristic; determining at least one beat frequency based on the mixed signal; sampling the mixed signal at a rate equal to at least two times the beat frequency; determining a correction signal based on the sampled signal; and applying the correction signal to the laser signal.
    Type: Application
    Filed: May 12, 2021
    Publication date: November 24, 2022
    Inventors: Sunil Khatana, Tyler Banas
  • Publication number: 20220373667
    Abstract: Disclosed herein are systems and methods for linearizing frequency chirp in a frequency-modulated continuous wave (FMCW) coherent LiDAR system. Exemplary methods can include generating a continuous wave laser signal having a frequency characteristic, in which the frequency characteristic can include a frequency chirp over a frequency band in at least one period; and receiving a signal based on the generated laser signal. The methods can further include mixing the received signal with a local oscillator signal, the local oscillator signal having the frequency characteristic; determining at least one beat frequency based on the mixed signal; sampling the mixed signal at a rate equal to at least two times the beat frequency; determining a correction signal based on the sampled signal; and applying the correction signal to the laser signal.
    Type: Application
    Filed: May 12, 2021
    Publication date: November 24, 2022
    Applicants: VELODYNE LIDAR USA, INC., VELODYNE LIDAR USA, INC.
    Inventors: Sunil Khatana, Tyler Banas
  • Publication number: 20220365213
    Abstract: Disclosed herein are systems and methods for linearizing frequency chirp in a frequency-modulated continuous wave (FMCW) coherent LiDAR system. Exemplary methods can include generating a continuous wave laser signal having a frequency characteristic, in which the frequency characteristic can include a frequency chirp over a frequency band in at least one period; and receiving a signal based on the generated laser signal. The methods can further include mixing the received signal with a local oscillator signal, the local oscillator signal having the frequency characteristic; determining at least one beat frequency based on the mixed signal; sampling the mixed signal at a rate equal to at least two times the beat frequency; determining a correction signal based on the sampled signal; and applying the correction signal to the laser signal.
    Type: Application
    Filed: May 12, 2021
    Publication date: November 17, 2022
    Inventors: Sunil Khatana, Tyler Banas
  • Publication number: 20220365185
    Abstract: Disclosed herein are systems and methods for linearizing frequency chirp in a frequency-modulated continuous wave (FMCW) coherent LiDAR system. Exemplary methods can include generating a continuous wave laser signal having a frequency characteristic, in which the frequency characteristic can include a frequency chirp over a frequency band in at least one period; and receiving a signal based on the generated laser signal. The methods can further include mixing the received signal with a local oscillator signal, the local oscillator signal having the frequency characteristic; determining at least one beat frequency based on the mixed signal; sampling the mixed signal at a rate equal to at least two times the beat frequency; determining a correction signal based on the sampled signal; and applying the correction signal to the laser signal.
    Type: Application
    Filed: May 12, 2021
    Publication date: November 17, 2022
    Inventors: Sunil Khatana, Tyler Banas
  • Publication number: 20220365184
    Abstract: Disclosed herein are systems and methods for linearizing frequency chirp in a frequency-modulated continuous wave (FMCW) coherent LiDAR system. Exemplary methods can include generating a continuous wave laser signal having a frequency characteristic, in which the frequency characteristic can include a frequency chirp over a frequency band in at least one period; and receiving a signal based on the generated laser signal. The methods can further include mixing the received signal with a local oscillator signal, the local oscillator signal having the frequency characteristic; determining at least one beat frequency based on the mixed signal; sampling the mixed signal at a rate equal to at least two times the beat frequency; determining a correction signal based on the sampled signal; and applying the correction signal to the laser signal.
    Type: Application
    Filed: May 12, 2021
    Publication date: November 17, 2022
    Inventors: Sunil Khatana, Tyler Banas
  • Publication number: 20220075038
    Abstract: A LiDAR system includes an optical transmitter, a scanner, a segmented optical detector including discrete sense nodes distributed along its length, and a controller. The optical transmitter can transmit a ranging signal via an optical component of the scanner. The scanner can change a position and/or orientation of the optical component after the ranging signal is transmitted. The segmented optical detector can receive the return signal corresponding to the ranging signal via the optical component after the change in the position and/or orientation of the optical component. The controller can detect a location of a return spot of the return signal based on outputs of the discrete sense nodes. The controller can determine a distance to an object that reflected the return signal based on the location of the return spot and a residual time of flight of the return signal.
    Type: Application
    Filed: September 9, 2021
    Publication date: March 10, 2022
    Inventors: David S. Hall, Mathew Rekow, Nikhil Naikal, Sunil Khatana, Stephen S. Nestinger, Anand Gopalan
  • Publication number: 20040197105
    Abstract: A multistage optical amplifier is disclosed with programmable gain for operation in an automatic gain control mode that has a low noise figure or an optimal or near optimal noise figure. The programmable-gain optical amplifier has several amplifying stages separated by variable optical attenuators (VOAs) and may have mid-stage access devices (MSA) such as dispersion compensating fiber or optical add/drop modules. A method of selecting attenuation values for the VOAs for realizing low noise figure for various values of the overall optical gain is also disclosed. The loss among the amplifier stages is distributed and predetermined attenuation values for the VOAs are selected so as to minimize the overall noise figure of the multistage amplifier. The predetermined attenuation levels are determined during the amplifier calibration process taking into consideration the pump power limits, nonlinearity limits in the dispersion compensating fiber and the required overall optical amplifier gain.
    Type: Application
    Filed: February 13, 2004
    Publication date: October 7, 2004
    Applicant: JDS UNIPHASE CORPORATION
    Inventors: Sunil Khatana, William S. Wong, George Zarris, Frank Shum, Mark Bray