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US Patent 10247538 Accurate chirped synthetic wavelength interferometer

Patent 10247538 was granted and assigned to Bridger Photonics, Inc. on April, 2019 by the United States Patent and Trademark Office.

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Is a
Patent
Patent
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Patent attributes

Patent Applicant
Bridger Photonics, Inc.
Bridger Photonics, Inc.
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Current Assignee
Bridger Photonics, Inc.
Bridger Photonics, Inc.
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Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
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Patent Number
102475380
Patent Inventor Names
Michael Thorpe0
Peter Roos0
Jason Brasseur0
Date of Patent
April 2, 2019
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Patent Application Number
149253240
Date Filed
October 28, 2015
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Patent Citations Received
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US Patent 11422244 Digitization systems and techniques and examples of use in FMCW LiDAR methods and apparatuses
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US Patent 11422258 FMCW LiDAR methods and apparatuses including examples having feedback loops
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US Patent 11841433 Method and apparatus for determining at least one spatial position and orientation of at least one tracked measuring device
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US Patent 11921211 Apparatuses and methods for a rotating optical reflector
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US Patent 10527412 Gas-mapping 3D imager measurement techniques and method of data processing
...
Patent Primary Examiner
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Michael P LaPage
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Patent abstract

A system is provided for measuring distance or displacement, comprising: first and second laser sources configured to provide first and second laser outputs; a beam combiner configured to receive and combine at least part of the first and second laser outputs into a combined laser output; a signal calibrator configured to receive at least part of the first laser output, the second laser output, or the combined laser output, and output a calibration signal; a plurality of optical paths, including a first optical path, a second optical path, the plurality of optical paths being configured to direct at least part of the combined beam onto an optical detector to produce an interference signal; and a signal processor configured to receive the interference signal and determine a pathlength difference between the first and second optical paths.

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