Modulated Wave Time of Flight (mwToF) Sensor
A modulated wave time of flight (mwToF) sensor combines modern digital signal processing techniques with CW quadrature sampling methods to produce a sensor that is better at rejecting environmental noise such as ambient light as well as electronic noise that comes from sources such as signal amplification.
1 . A LIDAR system comprising:
a signal reference,
a light emitter that emits light,
an array of light detectors that each receive emitted light reflected from an object(s), and
filter and demodulation circuitry coupled to each of the light detectors, the filter and demodulation circuitry structured to demodulate the received emitted light for comparison to the signal reference to derive phase differences related to distance of the object(s).
2 . The LIDAR system of claim 1 wherein the light emitter and array of light detectors are co-located.
3 . The LIDAR system of claim 1 wherein the system is not structured to transport a message from the light emitter to the array of light detectors.
4 . The LIDAR system of claim 1 further including range determining circuitry that determines ranges from the phase differences to provide a 3D point cloud.
5 . The LIDAR system of claim 1 wherein the filter and demodulation circuitry filters out phase effects due to ambient light.
6 . The LIDAR system of claim 1 wherein the array comprises first and second light detectors each of which receive reflected emitted light, and the system further includes a signal processor connected to the first and second light detectors that derives phase differences between signals received by the first light detector and signals received by the second light detector.
7 . The LIDAR system of claim 1 wherein the the array of light detectors is located on the same focal plane of an optical system such as a lens.
8 . A method of operating a LIDAR system comprising:
emitting modulated light,
generating a signal reference,
using an array of light detectors to receive emitted light reflected from an object(s), and
demodulating the received emitted light for comparison to the signal reference to derive phase differences related to distance of the object(s).
9 . The method of claim 6 further including co-locating the light emitter and array of light detectors.
10 . The method of claim 6 further including not transporting any message from the light emitter to the array of light detectors over the modulated light.
11 . The method of claim 6 further including determining ranges from the phase differences to provide a 3D point cloud.
12 . The method of claim 6 further including filtering out phase effects due to ambient light.
13 . The method of claim 6 wherein the array comprises first and second light detectors each of which receive reflected emitted light, and the method further includes deriving phase differences between signals received by the first light detector and signals received by the second light detector.
14 . The method of claim 6 further including locating the array of light detectors on the same focal plane of an optical system such as a lens.