IP Library Granted Patent US 11,906,629
Granted Patent B2
US 11,906,629 · App. 17/010,764 · Granted Feb 20, 2024

Method and device for distance measurement

Inventor: Ünsal Kabuk (Hamburg, DE)
Assignee: Microvision, Inc.
G01S17/894G01S7/484G01S7/487G01S7/4808G01S7/4865
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Quick Facts
Patent No.
US 11,906,629
App. No.
17/010,764
Granted
Feb 20, 2024
Kind
B2
Abstract

A method for optical distance measurement, comprising a creation of at least one frame, including determining 3D information of at least one subregion of a measuring region. A time budget for creating the frame is split between a first phase for assessing at least one region of interest, and a second phase for determining 3D information from the at least one region of interest. During the first phase a plurality of measuring pulses is emitted by a transmitting unit, and reflected measuring pulses are received by a receiving unit, wherein 2D information of the measuring region is determined, wherein at least one region of interest is assessed from the 2D information. During the second phase a plurality of measuring pulses is emitted by a transmitting unit, and reflected measuring pulses are received by the receiving unit, wherein 3D information of the at least one region of interest is determined as part of the second phase.

Claims (44)

1. A method for optical distance measurement, comprising:

for a first phase of a frame of the optical distance measurement,

emitting a first plurality of measuring pulses from at least one transmitting unit, where the at least one transmitting unit comprises a plurality of transmitting elements each configured to emit measuring pulses to a measuring region;

receiving first reflected measuring pulses using at least one receiving unit, wherein the at least one receiving unit comprises a plurality of receiving elements configured to receive reflections of the measuring pulses from the measuring region;

determining 2D information for at least a portion of the measuring region based on the received first reflected measuring pulses received in the first phase; and

determining at least one region of interest from the 2D information, wherein the at least one region of interest is a subregion of the measuring region; and

for a second phase of the frame of the optical distance measurement,

assigning receiving elements in the plurality of receiving elements to evaluating units in a plurality of evaluating units based at least in part on the determined at least one region of interest such that at least some of the receiving elements corresponding to outside the at least one region of interest are assigned to common evaluating units in the plurality of evaluating units;

emitting a second plurality of measuring pulses from the transmitting unit;

receiving second reflected measuring pulses at the at least one receiving unit; and

evaluating received second reflected measuring pulses received by the receiving elements in the second phase to determine 3D information for at least a portion of the measuring region, where the received second reflected measuring pulses are each evaluated by an evaluating unit assigned to a receiving element that received the second reflected measuring pulse.

2. The method of claim 1 , wherein the receiving elements corresponding to the at least one region of interest are each assigned to at least one evaluating unit.

3. The method of claim 1 , wherein the receiving elements corresponding to the at least one region of interest are assigned to the evaluating units at a 1:1 ratio or less, while the receiving elements corresponding to outside to the at least one region of interest are assigned to evaluating units at a 2:1 ratio or greater.

4. The method of claim 1 , wherein the received second reflected measuring pulses received by the receiving elements assigned to common evaluating units are evaluated in a combined manner while the received second reflected measuring pulses received by the receiving elements corresponding to the at least one region of interest are each evaluated by at least one evaluating unit.

5. The method of claim 1 , wherein the 2D information comprises a 2D intensity image.

6. The method of claim 1 , wherein the at least one transmitting unit comprises a first transmitting unit used in the first phase and a second transmitting unit used in the second phase.

7. The method of claim 1 , wherein the first phase takes place parallel in time to the second phase, and wherein measuring pulses of at least one phase are encoded in order to differentiate the received first reflected measuring pulses of the first phase and the received second reflected measuring pulses of the second phase.

8. The method of claim 1 , wherein the method uses the at least one transmitting unit by means of time multiplexing for the first phase and for the second phase.

9. The method of claim 1 , wherein the second plurality of measuring pulses emitted in the second phase have a higher intensity and/or larger pulse length and/or higher pulse rate compared to the first plurality of measuring pulses emitted in the first phase.

10. The method of claim 1 , wherein as part of the first phase, the method uses at least one randomized illuminating sequence to emit the first plurality of measuring pulses, and the 2D information of the measuring region is determined by means of reconstruction.

11. The method of claim 1 , wherein times-of-flight of received second reflected measuring pulses are determined and are entered in a histogram as part of the evaluating received second reflected measuring pulses received by the receiving elements in the second phase to determine the 3D information for at least the portion of the measuring region, wherein times-of-flight of received second reflected measuring pulses corresponding to the at least one region of interest are entered in histograms in a less combined manner compared to times-of-flight of received second reflected measuring pulses corresponding to outside the at least one region of interest.

12. The method of claim 1 , wherein a portion of a time budget for the first phase is maximally 50% of the portion of a time budget for the second phase.

13. A device comprising:

at least one transmitting unit, where the at least one transmitting unit comprises a plurality of transmitting elements each configured to emit measuring pulses to a measuring region;

at least one receiving unit, where the at least one receiving unit comprises a plurality of receiving elements configured to receive reflections of the measuring pulses from the measuring region;

a plurality of evaluating units coupled to the at least one receiving unit to evaluate reflected measuring pulses received by assigned receiving elements;

and wherein the device is adapted to, for a first phase of a frame of an optical distance measurement,

emit a first plurality of measuring pulses from the at least one transmitting unit;

receive first reflected measuring pulses using the at least one receiving unit;

determine 2D information for at least a portion of the measuring region based on the received first reflected measuring pulses received in the first phase; and

determine at least one region of interest from the 2D information, wherein the at least one region of interest is a subregion of the measuring region;

and wherein the device is adapted to, for a second phase of the frame of an optical distance measurement,

assign receiving elements in the plurality of receiving elements to evaluating units in the plurality of evaluating units based at least in part on the determined at least one region of interest such that at least some of the receiving elements corresponding to outside the at least one region of interest are assigned to common evaluating units in the plurality of evaluating units;

emit a second plurality of measuring pulses from the transmitting unit;

receive second reflected measuring pulses at the at least one receiving unit; and

evaluating received second reflected measuring pulses received by the receiving elements in the second phase to determine 3D information for at least a portion of the measuring region, where the received second reflected measuring pulses are each evaluated by an evaluating unit assigned to a receiving element that received the second reflected measuring pulse.

14. The device of claim 13 , wherein the receiving elements corresponding to the at least one region of interest are each assigned to at least one evaluating unit.

15. The device of claim 13 , wherein the receiving elements corresponding to the at least one region of interest are assigned to the evaluating units at a 1:1 ratio or less, while the receiving elements corresponding to outside to the at least one region of interest are assigned to evaluating units at a 2:1 ratio or greater.

16. The device of claim 13 , wherein the received second reflected measuring pulses received by the receiving elements assigned to common evaluating units are evaluated in a combined manner while the received second reflected measuring pulses received by the receiving elements corresponding to the at least one region of interest are each evaluated by at least one evaluating unit.

17. The device of claim 13 , wherein the 2D information comprises a 2D intensity image.

18. The device of claim 13 , wherein the at least one transmitting unit comprises a first transmitting unit used in the first phase and a second transmitting unit used in the second phase.

19. The device of claim 13 , wherein the second plurality of measuring pulses emitted in the second phase have a higher intensity and/or larger pulse length and/or higher pulse rate compared to the first plurality of measuring pulses emitted in the first phase.

20. The device of claim 13 , wherein times-of-flight of received second reflected measuring pulses are determined and are entered in a histogram as part of the evaluating received second reflected measuring pulses received by the receiving elements in the second phase to determine the 3D information for at least the portion of the measuring region, wherein times-of-flight of received second reflected measuring pulses corresponding to the at least one region of interest are entered in histograms in a less combined manner compared to times-of-flight of received second reflected measuring pulses corresponding to outside the at least one region of interest.

21. The device of claim 13 , wherein a portion of a time budget for the first phase is maximally 50% of the portion of a time budget for the second phase.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 22, 2023
From: MICROVISION GMBH
To: MICROVISION, INC.
Reel/Frame 063061/0272 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 7, 2023
From: IBEO AUTOMOTIVE SYSTEMS GMBH
To: MICROVISION GMBH
Reel/Frame 062973/0909 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 23, 2020
From: KABUK, UNSAL
To: IBEO AUTOMOTIVE SYSTEMS GMBH
Reel/Frame 053859/0645 →
Priority Claims (1)
EP 19195290 · Sep 4, 2019 · regional
Continuity (1)
Related Publication 20210063579A1 · Mar 4, 2021