Extended range and aberration-free autofocusing via remote focusing and sequence-dependent learning

Rapid autofocusing over long distances is critical for tracking 3D topological variations and sample motion in real time. Taking advantage of a deformable mirror and Shack-Hartmann wavefront sensor, remote focusing can permit fast axial scanning with simultaneous correction of system-induced aberrat...

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Main Authors: Cui, J, Turcotte, R, Emptage, NJ, Booth, MJ
Format: Journal article
Language:English
Published: Optica Publishing Group 2021
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author Cui, J
Turcotte, R
Emptage, NJ
Booth, MJ
author_facet Cui, J
Turcotte, R
Emptage, NJ
Booth, MJ
author_sort Cui, J
collection OXFORD
description Rapid autofocusing over long distances is critical for tracking 3D topological variations and sample motion in real time. Taking advantage of a deformable mirror and Shack-Hartmann wavefront sensor, remote focusing can permit fast axial scanning with simultaneous correction of system-induced aberrations. Here, we report an autofocusing technique that combines remote focusing with sequence-dependent learning via a bidirectional long short term memory network. A 120 µm autofocusing range was achieved in a compact reflectance confocal microscope both in air and in refractive-index-mismatched media, with similar performance under arbitrary-thickness liquid layers up to 1 mm. The technique was validated on sample types not used for network training, as well as for tracking of continuous axial motion. These results demonstrate that the proposed technique is suitable for real-time aberration-free autofocusing over a large axial range, and provides unique advantages for biomedical, holographic and other related applications.
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spelling oxford-uuid:962f3994-a594-4535-9705-61581cf877412022-03-26T23:51:21ZExtended range and aberration-free autofocusing via remote focusing and sequence-dependent learningJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:962f3994-a594-4535-9705-61581cf87741EnglishSymplectic ElementsOptica Publishing Group2021Cui, JTurcotte, REmptage, NJBooth, MJRapid autofocusing over long distances is critical for tracking 3D topological variations and sample motion in real time. Taking advantage of a deformable mirror and Shack-Hartmann wavefront sensor, remote focusing can permit fast axial scanning with simultaneous correction of system-induced aberrations. Here, we report an autofocusing technique that combines remote focusing with sequence-dependent learning via a bidirectional long short term memory network. A 120 µm autofocusing range was achieved in a compact reflectance confocal microscope both in air and in refractive-index-mismatched media, with similar performance under arbitrary-thickness liquid layers up to 1 mm. The technique was validated on sample types not used for network training, as well as for tracking of continuous axial motion. These results demonstrate that the proposed technique is suitable for real-time aberration-free autofocusing over a large axial range, and provides unique advantages for biomedical, holographic and other related applications.
spellingShingle Cui, J
Turcotte, R
Emptage, NJ
Booth, MJ
Extended range and aberration-free autofocusing via remote focusing and sequence-dependent learning
title Extended range and aberration-free autofocusing via remote focusing and sequence-dependent learning
title_full Extended range and aberration-free autofocusing via remote focusing and sequence-dependent learning
title_fullStr Extended range and aberration-free autofocusing via remote focusing and sequence-dependent learning
title_full_unstemmed Extended range and aberration-free autofocusing via remote focusing and sequence-dependent learning
title_short Extended range and aberration-free autofocusing via remote focusing and sequence-dependent learning
title_sort extended range and aberration free autofocusing via remote focusing and sequence dependent learning
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