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This content will become publicly available on April 1, 2026

Title: Coherent optical imaging of moving objects hidden in a heavily scattering random medium
Experimental results are presented that provide insight into the physics of statistical imaging in heavily scattering random media based on measured speckle correlations as a function of the change in position of a moving object. In this way, definitive interpretation of a rather complex and earlier theory is achieved, making this work an experimental complement to that theory paper []. Motion could be natural, where the set of positions is estimated or separately obtained, or directed, where a mechanical stage can be used to adjust the object's position. In the experiment, a coherent laser illuminates two scattering diffusers, while an object is translated between them in the resulting speckled field and images are collected in a transmission configuration. Results are shown for various objects of differing size and geometry, allowing the theory to be validated and interpreted with new understanding. This work demonstrates imaging opportunities, and applications include material characterization, environmental imaging and sensing, and deep-tissue imaging.  more » « less
Award ID(s):
2131486
PAR ID:
10637920
Author(s) / Creator(s):
; ;
Publisher / Repository:
Physical Review
Date Published:
Journal Name:
Physical Review A
Volume:
111
Issue:
4
ISSN:
2469-9926
Format(s):
Medium: X
Sponsoring Org:
National Science Foundation
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