Patents by Inventor Luis Dussan

Luis Dussan 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: 11474214
    Abstract: A lidar system can include a lidar transmitter and a lidar receiver, where the lidar transmitter controllably transmits a pulse burst toward a target in a field of view and where the lidar receiver resolves an angle to the target based on returns from the pulse burst. The pulse burst can include a first pulse fired at a first shot angle and a second pulse fired at a second shot angle.
    Type: Grant
    Filed: November 5, 2021
    Date of Patent: October 18, 2022
    Assignee: AEYE, Inc.
    Inventors: Jordan Greene, Joel Benscoter, Luis Dussan, Allan Steinhardt, Philippe Feru, Igor Polishchuk, Alex Liang
  • Patent number: 11467263
    Abstract: A lidar system comprises an optical amplification laser source, a mirror, and a control circuit. The optical amplification laser source can generate laser pulses for transmission as laser pulses shots into a field of view, the optical amplification laser source comprising a seed laser, a pump laser, and an optical amplifier. The mirror can be is scannable to control where the laser pulse shots are fired into the field of view, and the control circuit can control the seed laser to adjust its seed energy to control energy levels for a first laser pulse shot and a second laser pulse shot within a pulse burst to be transmitted from the optical amplification laser source via the mirror.
    Type: Grant
    Filed: November 5, 2021
    Date of Patent: October 11, 2022
    Assignee: AEYE, Inc.
    Inventors: Jordan Greene, Joel Benscoter, Luis Dussan, Allan Steinhardt, Philippe Feru, Igor Polishchuk, Alex Liang
  • Publication number: 20220317247
    Abstract: A lidar system includes a lidar transmitter and a control circuit. The lidar transmitter can controllably fire a plurality of laser pulse shots into a field of view, and the control circuit can (1) detect a target based on a return from a laser pulse shot fired at a first shot angle, and (2) in response to the detected target, (i) schedule a pulse burst to be fired at the target, wherein the pulse burst comprises a second laser pulse shot to be fired at a second shot angle and a third laser pulse shot to be fired at a third shot angle, wherein the first shot angle is between the second and third shot angles, and (ii) control the lidar transmitter to fire the scheduled pulse burst.
    Type: Application
    Filed: November 5, 2021
    Publication date: October 6, 2022
    Inventors: Jordan Greene, Joel Benscoter, Luis Dussan, Allan Steinhardt, Philippe Feru, Igor Polishchuk, Alex Liang
  • Publication number: 20220317248
    Abstract: A lidar system comprises an optical amplification laser source, a mirror, and a control circuit. The optical amplification laser source can generate laser pulses for transmission as laser pulses shots into a field of view, the optical amplification laser source comprising a seed laser, a pump laser, and an optical amplifier. The mirror can be is scannable to control where the laser pulse shots are fired into the field of view, and the control circuit can control the seed laser to adjust its seed energy to control energy levels for a first laser pulse shot and a second laser pulse shot within a pulse burst to be transmitted from the optical amplification laser source via the mirror.
    Type: Application
    Filed: November 5, 2021
    Publication date: October 6, 2022
    Inventors: Jordan Greene, Joel Benscoter, Luis Dussan, Allan Steinhardt, Philippe Feru, Igor Polishchuk, Alex Liang
  • Publication number: 20220317249
    Abstract: A lidar system comprises (1) a lidar transmitter that switches from a baseline scan pattern to a pulse burst mode in response to a detection of a target in a field of view for the lidar transmitter, wherein the lidar transmitter transmits a pulse burst toward the target when in the pulse burst mode, and (2) a lidar receiver that refines an angle to the target based on returns from the pulse burst.
    Type: Application
    Filed: November 5, 2021
    Publication date: October 6, 2022
    Inventors: Jordan Greene, Joel Benscoter, Luis Dussan, Allan Steinhardt, Philippe Feru, Igor Polishchuk, Alex Liang
  • Publication number: 20220317255
    Abstract: A lidar system having a lidar transmitter and lidar receiver that are in a bistatic arrangement with each other can be deployed in a climate-controlled compartment of a vehicle to reduce the exposure of the lidar system to harsher elements so it can operate in more advantageous environments with regards to factors such as temperature, moisture, etc. In an example embodiment, the bistatic lidar system can be connected to or incorporated within a rear view mirror assembly of a vehicle.
    Type: Application
    Filed: September 30, 2021
    Publication date: October 6, 2022
    Inventors: Naveen Reddy, Allan Steinhardt, Luis Dussan, Joel Benscoter, Alex Liang, Philippe Feru, Igor Polishchuk
  • Patent number: 11460552
    Abstract: A lidar system that includes a variable energy laser source and transmits laser pulses produced by the variable energy laser source toward range points in a field of view can use a laser energy model to model the available energy in the variable energy laser source over time. The timing schedule for laser pulses fired by the lidar system can then be determined using energies that are predicted for the different scheduled laser pulse shots based on the laser energy model. This permits the lidar system to reliably ensure at a highly granular level that each laser pulse shot has sufficient energy to meet operational needs, including when operating during periods of high density/high resolution laser pulse firing. The laser energy model is capable of modeling a variable rate of energy buildup in the variable energy laser source per unit time.
    Type: Grant
    Filed: September 23, 2021
    Date of Patent: October 4, 2022
    Assignee: AEYE, Inc.
    Inventors: Philippe Feru, Luis Dussan, Joel Benscoter, Alex Liang, Igor Polishchuk, Allan Steinhardt
  • Patent number: 11460553
    Abstract: A lidar system that includes a laser source and a scannable mirror can be controlled to schedule the firing of laser pulse shots at range points in a field of view. A first mirror motion model can be used to govern the scheduling of the laser pulse shots, and a second mirror motion model can be used to govern when firing commands are to be generated for the scheduled laser pulse shots. The first and second mirror motion models model motion of the scannable mirror over time. A system controller can use the first mirror motion model as a coarse mirror motion model for the purpose of shot scheduling, while a beam scanner controller can use the second mirror motion model as a fine mirror motion model for the purposes of generating firing commands for the laser source.
    Type: Grant
    Filed: September 23, 2021
    Date of Patent: October 4, 2022
    Assignee: AEYE, Inc.
    Inventors: Philippe Feru, Luis Dussan, Joel Benscoter, Alex Liang, Igor Polishchuk, Allan Steinhardt
  • Patent number: 11460556
    Abstract: A lidar system that includes a laser source and transmits laser pulses produced by the laser source toward range points in a field of view via a mirror that scans through a plurality of scan angles can use (1) a laser energy model to model the available energy in the laser source over time and (2) a mirror motion model to model motion of the mirror over time. The mirror can exhibit a variable scan amplitude, and a control circuit can then evaluate whether benefits such as a shorter completion time for firing laser pulse shots at a list of range points can be achieved by changing the mirror's scan amplitude. When making such decisions, the control circuit can take into account a settle time for the variable amplitude mirror that arises from changing the mirror's scan amplitude.
    Type: Grant
    Filed: September 23, 2021
    Date of Patent: October 4, 2022
    Assignee: AEYE, Inc.
    Inventors: Philippe Feru, Luis Dussan, Joel Benscoter, Il Woong Jung, Alex Liang, Igor Polishchuk, Allan Steinhardt
  • Publication number: 20220308214
    Abstract: A lidar receiver that includes a photodetector circuit can be controlled so that the detection intervals used by the lidar receiver to detect returns from fired laser pulse shots are closely controlled. Such control over the detection intervals used by the lidar receiver allows for close coordination between a lidar transmitter and the lidar receiver where the lidar receiver is able to adapt to variable shot intervals of the lidar transmitter (including periods of high rate firing as well as periods of low rate firing). The lidar receiver can use estimates of potential ranges to targeted range points to define the detection intervals.
    Type: Application
    Filed: September 30, 2021
    Publication date: September 29, 2022
    Inventors: Naveen Reddy, Allan Steinhardt, Luis Dussan, Joel Benscoter, Alex Liang, Philippe Feru, Igor Polishchuk
  • Publication number: 20220308185
    Abstract: A lidar receiver that includes a photodetector circuit can be controlled so that the detection intervals used by the lidar receiver to detect returns from fired laser pulse shots are closely controlled. Such control over the detection intervals used by the lidar receiver allows for close coordination between a lidar transmitter and the lidar receiver where the lidar receiver is able to adapt to variable shot intervals of the lidar transmitter (including periods of high rate firing as well as periods of low rate firing). The lidar receiver can define the detection intervals based on a region in the field of view that a laser pulse shot is targeting (e.g., setting longer detection intervals for laser pulse shots targeting a horizon region, setting shorter detection intervals for laser pulse shots targeting a region that intersects within the ground within a relatively short distance of the lidar system).
    Type: Application
    Filed: September 30, 2021
    Publication date: September 29, 2022
    Inventors: Naveen Reddy, Allan Steinhardt, Luis Dussan, Joel Benscoter, Alex Liang, Philippe Feru, Igor Polishchuk
  • Publication number: 20220308219
    Abstract: A lidar receiver that includes a photodetector circuit can be controlled so that the detection intervals used by the lidar receiver to detect returns from fired laser pulse shots are closely controlled. Such control over the detection intervals used by the lidar receiver allows for close coordination between a lidar transmitter and the lidar receiver where the lidar receiver is able to adapt to variable shot intervals of the lidar transmitter (including periods of high rate firing as well as periods of low rate firing). The lidar receiver can use data indicative of environmental conditions for the lidar receiver's field of view to define the detection intervals.
    Type: Application
    Filed: September 30, 2021
    Publication date: September 29, 2022
    Inventors: Naveen Reddy, Allan Steinhardt, Luis Dussan, Joel Benscoter, Alex Liang, Philippe Feru, Igor Polishchuk
  • Publication number: 20220308171
    Abstract: A lidar system can include a lidar transmitter and a lidar receiver, where the lidar transmitter controllably transmits a pulse burst toward a target in a field of view and where the lidar receiver resolves an angle to the target based on returns from the pulse burst. The pulse burst can include a first pulse fired at a first shot angle and a second pulse fired at a second shot angle.
    Type: Application
    Filed: November 5, 2021
    Publication date: September 29, 2022
    Inventors: Jordan Greene, Joel Benscoter, Luis Dussan, Allan Steinhardt, Philippe Feru, Igor Polishchuk, Alex Liang
  • Publication number: 20220308220
    Abstract: A lidar receiver that includes a photodetector circuit can be controlled so that the detection intervals used by the lidar receiver to detect returns from fired laser pulse shots are closely controlled. Such control over the detection intervals used by the lidar receiver allows for close coordination between a lidar transmitter and the lidar receiver where the lidar receiver is able to adapt to variable shot intervals of the lidar transmitter (including periods of high rate firing as well as periods of low rate firing). The lidar receiver can derive the detection intervals based on map data indicative of a geographic location for the system.
    Type: Application
    Filed: September 30, 2021
    Publication date: September 29, 2022
    Inventors: Naveen Reddy, Allan Steinhardt, Luis Dussan, Joel Benscoter, Alex Liang, Philippe Feru, Igor Polishchuk
  • Publication number: 20220308215
    Abstract: A lidar system comprises a photodetector circuit and a signal processing circuit. The photodetector circuit comprises an array of pixels for sensing incident light. The signal processing circuit processes a signal representative of the sensed incident light to detect a reflection of a laser pulse from a target within a field of view. The signal processing circuit can comprise a plurality of matched filters that are tuned to different reflected pulse shapes for detecting pulse reflections within the incident light, and wherein the signal processing circuit applies the signal to the matched filters to determine an obliquity for the target based how the matched filters respond to the applied signal.
    Type: Application
    Filed: November 12, 2021
    Publication date: September 29, 2022
    Inventors: Luis Dussan, Allan Steinhardt, Joel Benscoter, Todd Gustavson
  • Publication number: 20220308216
    Abstract: A lidar receiver that includes a photodetector circuit can be controlled so that the detection intervals used by the lidar receiver to detect returns from fired laser pulse shots are closely controlled. Such control over the detection intervals used by the lidar receiver allows for close coordination between a lidar transmitter and the lidar receiver where the lidar receiver is able to adapt to variable shot intervals of the lidar transmitter (including periods of high rate firing as well as periods of low rate firing). The detection intervals can vary across different shots, and at least some of the detection intervals can be controlled to be of different durations than the shot intervals that correspond to such detection intervals.
    Type: Application
    Filed: September 30, 2021
    Publication date: September 29, 2022
    Inventors: Naveen Reddy, Allan Steinhardt, Luis Dussan, Joel Benscoter, Alex Liang, Philippe Feru, Igor Polishchuk
  • Publication number: 20220308184
    Abstract: A lidar receiver that includes a photodetector circuit can be controlled so that the detection intervals used by the lidar receiver to detect returns from fired laser pulse shots are closely controlled. Such control over the detection intervals used by the lidar receiver allows for close coordination between a lidar transmitter and the lidar receiver where the lidar receiver is able to adapt to variable shot intervals of the lidar transmitter (including periods of high rate firing as well as periods of low rate firing).
    Type: Application
    Filed: September 30, 2021
    Publication date: September 29, 2022
    Inventors: Naveen Reddy, Allan Steinhardt, Luis Dussan, Joel Benscoter, Alex Liang, Philippe Feru, Igor Polishchuk
  • Publication number: 20220308218
    Abstract: A lidar receiver that includes a photodetector circuit can be controlled so that the detection intervals used by the lidar receiver to detect returns from fired laser pulse shots are closely controlled. Such control over the detection intervals used by the lidar receiver allows for close coordination between a lidar transmitter and the lidar receiver where the lidar receiver is able to adapt to variable shot intervals of the lidar transmitter (including periods of high rate firing as well as periods of low rate firing).
    Type: Application
    Filed: September 30, 2021
    Publication date: September 29, 2022
    Inventors: Naveen Reddy, Allan Steinhardt, Luis Dussan, Joel Benscoter, Alex Liang, Philippe Feru, Igor Polishchuk
  • Publication number: 20220308186
    Abstract: A lidar receiver that includes a photodetector circuit can be controlled so that the detection intervals used by the lidar receiver to detect returns from fired laser pulse shots are closely controlled. Such control over the detection intervals used by the lidar receiver allows for close coordination between a lidar transmitter and the lidar receiver where the lidar receiver is able to adapt to variable shot intervals of the lidar transmitter (including periods of high rate firing as well as periods of low rate firing). The lidar receiver can determine the detection intervals using a cost function that optimizes determination of the detection intervals for a plurality of the laser pulse shots from a shot list.
    Type: Application
    Filed: September 30, 2021
    Publication date: September 29, 2022
    Inventors: Naveen Reddy, Allan Steinhardt, Luis Dussan, Joel Benscoter, Alex Liang, Philippe Feru, Igor Polishchuk
  • Publication number: 20220308179
    Abstract: A lidar system that includes a laser source and a scannable mirror can be controlled to fire laser pulse shots from the laser source toward targeted range points via the scannable mirror at a variable rate of firing those laser pulse shots. A control circuit for the lidar system can determine a shot order of the targeted laser pulse shots for the variable rate firing based on a plurality of simulations of different shot order candidates with respect to a laser energy model that models how much energy is available from the laser source for laser pulse shots over time as compared to a plurality of energy requirements for the targeted laser pulse shots. Parallelized logic resource in the control circuit can be used to perform the simulations in parallel to support low latency shot scheduling.
    Type: Application
    Filed: September 23, 2021
    Publication date: September 29, 2022
    Inventors: Philippe Feru, Luis Dussan, Joel Benscoter, Alex Liang, Igor Polishchuk, Naveen Reddy, Allan Steinhardt