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Open AccessJournal ArticleDOI

Non-Invasive Imaging Through Scattering Medium by Using a Reverse Response Wavefront Shaping Technique.

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TLDR
In this article, the intensity of the illuminating laser light source using DMD (Digital Micromirror Device) with an inverse scattering function of the scattering medium, such that after passing its scattering function a focused beam is obtained.
Abstract
Fundamental challenge of imaging through a scattering media has been resolved by various approaches in the past two decades. Optical wavefront shaping technique is one such method in which one shapes the wavefront of light entering a scattering media using a wavefront shaper such that it cancels the scattering effect. It has been the most effective technique in focusing light inside a scattering media. Unfortunately, most of these techniques require direct access to the scattering medium or need to know the scattering properties of the medium beforehand. Through the novel scheme presented on this paper, both the illumination module and the detection are on the same side of the inspected object and the imaging process is a real time fast converging operation. We model the scattering medium being a biological tissue as a matrix having mathematical properties matched to the physical and biological aspects of the sample. In our adaptive optics scheme, we aim to estimate the scattering function and thus to encode the intensity of the illuminating laser light source using DMD (Digital Micromirror Device) with an inverse scattering function of the scattering medium, such that after passing its scattering function a focused beam is obtained. We optimize the pattern to be displayed on the DMD using Particle Swarm Algorithm (PSO) which eventually help in retrieving a 1D object hidden behind the media.

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Citations
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Turbidity suppression from the ballistic to the diffusive regime in biological tissues using optical phase conjugation

TL;DR: The results indicate that only a small portion of the scattered wavefront must be collected to reconstruct a TSOPC signal, which is the highest level of scattering that has been phase conjugated in biological tissues to date.
Journal ArticleDOI

Focusing light through scattering media by reinforced hybrid algorithms

TL;DR: A new thought is exploited that one algorithm can be reinforced by another complementary algorithm since they effectively compensate each other’s weaknesses, resulting in a more efficient hybrid algorithm.
Journal ArticleDOI

Towards smart optical focusing: deep learning-empowered dynamic wavefront shaping through nonstationary scattering media

TL;DR: In this paper, a deep learning-empowered adaptive framework is proposed for real-time light focusing and refocusing through time-variant media without complicated computation, which is specifically implemented by a proposed Timely-Focusing-Optical-Transformation-Net (TFOTNet).
Journal ArticleDOI

Controlling a scattered field output of light passing through turbid medium using an improved ant colony optimization algorithm

TL;DR: The improved ant colony optimization algorithm developed in the present study can shape a scattered light field through turbid medium to predetermined shape and offers many advantages, such as good optimization effect, rapid convergence and strong anti-interference ability.
Journal ArticleDOI

Optical reciprocity induced wavefront shaping for axial and lateral shifting of focus through a scattering medium

TL;DR: In this paper , the optical reciprocity of light was used to achieve axially and laterally tunable focus through a scattering media without a priori knowledge or modeling of its scattering properties.
References
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Proceedings ArticleDOI

Particle swarm optimization

TL;DR: A concept for the optimization of nonlinear functions using particle swarm methodology is introduced, and the evolution of several paradigms is outlined, and an implementation of one of the paradigm is discussed.
Journal ArticleDOI

Optical coherence tomography

TL;DR: OCT as discussed by the authors uses low-coherence interferometry to produce a two-dimensional image of optical scattering from internal tissue microstructures in a way analogous to ultrasonic pulse-echo imaging.
Journal ArticleDOI

Two-Photon Laser Scanning Fluorescence Microscopy

TL;DR: The fluorescence emission increased quadratically with the excitation intensity so that fluorescence and photo-bleaching were confined to the vicinity of the focal plane as expected for cooperative two-photon excitation.
Book ChapterDOI

Optical Coherence Tomography

TL;DR: Optical coherence tomography (OCT) has developed rapidly since its first realisation in medicine and is currently an emerging technology in the diagnosis of skin disease as mentioned in this paper, where OCT is an interferometric technique that detects reflected and backscattered light from tissue.
Journal ArticleDOI

Phase retrieval algorithms: a comparison.

TL;DR: Iterative algorithms for phase retrieval from intensity data are compared to gradient search methods and it is shown that both the error-reduction algorithm for the problem of a single intensity measurement and the Gerchberg-Saxton algorithm forThe problem of two intensity measurements converge.
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