Patent classifications
G01S7/4818
LIDAR WITH THERMAL PHASE SHIFTER
A light detection and ranging system can have an array of solid-state optical energy emitters coupled to a controller and at least one antennae. Each emitter may be coupled to a phase shifter that has a first waveguide and a second waveguide with a heating element continuously extending between the respective waveguides.
LIDAR WITH PHOTONIC INTEGRATED CIRCUIT
A light detection and ranging system can have a photonic integrated circuit coupled to a grating coupler and a scanning array. The scanning array may consist of a mechanical actuator configured to move at least one detector in response to a calibration operation. As a result, coherent downrange detection can be achieved with light modulation, optical mixing, and balanced detection.
Detection device for a motor vehicle, attached part and motor vehicle
The invention relates to an optical detection device (3) for arranging on an attached part (5, 7) of a motor vehicle (1) and for monitoring a region (4, 6) adjacent to the attached part (5, 7), with a transmitting apparatus (11) comprising a light source (13) and with a receiving apparatus (12) comprising a sensor (22). The transmitting apparatus (11) is designed to transmit light beams (18) along predetermined scanning directions (A1, A2, A3, A4) into the region (4, 6), and the receiving apparatus (12) is designed to receive the fractions (19) of the light beams (18) reflected in the region (4, 6).
Laser radar device
A frequency shift correcting unit (25) which corrects a frequency shift of a plurality of first signal spectra within the same time range with respect to a frequency of first laser light beam and corrects a frequency shift of a plurality of second signal spectra within the same time range with respect to a frequency of second laser light beam, and a spectrum integrating unit (26) which integrates a plurality of first signal spectra corrected by the frequency shift correcting unit (25) and integrates a plurality of second signal spectra corrected by the frequency shift correcting unit (25) are provided, and a molecular concentration calculating unit (27) calculates a concentration of molecules in the atmosphere from the first and second signal spectra integrated by the spectrum calculating unit (26).
Q-SWITCHED SEMICONDUCTOR LIGHT-EMITTING ELEMENT AND DISTANCE MEASURING DEVICE
There is provided a Q-switched semiconductor light-emitting element, including a comb electrode that has at least two or more gain regions and two or more absorption regions, the regions including an active layer and being continuous on a semiconductor substrate, separation regions being provided between the gain regions and the absorption regions, the longest region of the gain regions being located on a rear end surface side; and an optical waveguide that staddles the gain regions, the absorption regions, and the separation regions.
Generation of LIDAR data
A LIDAR system includes a LIDAR chip configured to combine a LIDAR input signal and a reference signal so as to generate a composite light signal. The LIDAR input signal includes light reflected by an object located off of the LIDAR chip. The reference signal does not include light reflected by the object. The system also includes electronics configured to use the composite light signal to approximate a radial velocity between the LIDAR chip and the object. The radial velocity is approximated from a difference between a first distance and a second distance. The first distance is the distance between the object and the LIDAR chip at a first time. The second distance is the distance between the object and the LIDAR chip at a second time.
DISTANCE AND SPEED MEASURING APPARATUS
To provide a distance and velocity measurement apparatus that can be adopted preferably in a LiDAR or a sensor for a robot, wherein the apparatus can prevent deterioration of SN ratio even in a case where an object in an external environment vibrates. A LiDAR 20 according to the present embodiment includes a first laser apparatus 1a, a second laser apparatus 1b, a polarization-maintaining type optical fiber 2, a WDM filter 6, an optical fiber coupler 3a, an optical amplifier 11, an input/output unit 4, an optical scanner 5, a second optical fiber coupler 3b, a balanced photodetector 7, and a square-law detector 9. Further, a delay line 10 composed of a polarization-maintaining optical fiber is provided on the local port 2b. The first laser apparatus 1a includes a device for generating a first laser light having a first wavelength and a first chirp rate in an interior thereof, and the second laser apparatus 1b includes a device for generating a second laser light having a second wavelength that differs from the first wavelength and a second chirp rate that differs from the first chirp rate.
SILICON PHOTONIC SYSTEMS FOR LIDAR APPLICATIONS
Disclosed herein are light detection and ranging (LIDAR) systems and methods for manufacturing the same. The LIDAR systems may include microelectronics packages that may include a chassis, an insert, a photonic integrated circuit (PIC), and a lid. The chassis may define an opening. The insert is sized to be received in the opening. The insert is made of a thermally conductive material. The PIC is attached to the insert. The lid is connected to the chassis and defines a cavity that encases the PIC. Both the insert and the lid form thermally conductive pathways away from the PIC.
SCANNING MULTIPLE LIDAR SYSTEM OUTPUT SIGNALS
A LIDAR system has a switch configured to direct a switch signal to one of multiple different alternate waveguides. The switch signal carries multiple different channels. The system also includes one more redirection components that receive multiple different channel output signals. Each of the channel output signals carries a different one of the channels. The one more redirection components are configured to redirect the channel output signals such that a direction that each of the channel output signals travels away from the one more redirection components changes in response to a change in the alternate waveguide which receives the switch signal.
Optical sensor chip
The LIDAR chip includes a utility waveguide that guides an outgoing LIDAR signal to a facet through which the outgoing LIDAR signal exits from the chip. The chip also includes a control branch that removes a portion of the outgoing LIDAR signal from the utility waveguide. The control branch includes a control light sensor that receives a light signal that includes light from the removed portion of the outgoing LIDAR signal. The chip also includes a data branch that removes a second portion of the outgoing LIDAR signal from the utility waveguide. The data branch includes a light-combining component that combines a reference light signal that includes light from the second portion of the outgoing LIDAR signal with a comparative light signal that includes light that was reflected off an object located off of the chip.