首页> 外文期刊>Journal of the Optical Society of America, A. Optics, image science, and vision >Iterative, backscatter-analysis algorithms for increasing transmission and focusing light through highly scattering random media
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Iterative, backscatter-analysis algorithms for increasing transmission and focusing light through highly scattering random media

机译:迭代的反向散射分析算法,用于通过高度散射的随机介质来增加透射率和聚焦光

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摘要

Scattering hinders the passage of light through random media and consequently limits the usefulness of optical techniques for sensing and imaging. Thus, methods for increasing the transmission of light through such random media are of interest. Against this backdrop, recent theoretical and experimental advances have suggested the existence of a few highly transmitting eigen-wavefronts with transmission coefficients close to 1 in strongly backscattering random media. Here, we numerically analyze this phenomenon in 2D with fully spectrally accurate simulators and provide rigorous numerical evidence confirming the existence of these highly transmitting eigenwavefronts in random media with periodic boundary conditions that are composed of hundreds of thousands of nonabsorbing scatterers. Motivated by bio-imaging applications in which it is not possible to measure the transmitted fields, we develop physically realizable algorithms for increasing the transmission through such random media using backscatter analysis. We show via numerical simulations that the algorithms converge rapidly, yielding a near-optimum wavefront in just a few iterations. We also develop an algorithm that combines the knowledge of these highly transmitting eigen-wavefronts obtained from backscatter analysis with intensity measurements at a point to produce a near-optimal focus with significantly fewer measurements than a method that does not utilize this information.
机译:散射阻碍了光通过随机介质,因此限制了光学技术用于传感和成像的实用性。因此,用于增加通过这种随机介质的光透射的方法是令人关注的。在这种背景下,最近的理论和实验进展表明,在强反向散射的随机介质中,存在一些透射系数接近1的高透射本征波阵面。在这里,我们使用完全光谱精确的仿真器在2D中对这一现象进行数值分析,并提供严格的数值证据,以确认这些高透射本征波阵面在具有周期性边界条件的随机介质中的存在,周期性介质由成千上万个非吸收性散射体组成。受无法测量透射场的生物成像应用的启发,我们开发了物理上可实现的算法,以利用反向散射分析来提高通过此类随机介质的透射率。通过数值模拟,我们证明了算法快速收敛,仅需几次迭代即可产生接近最佳的波前。我们还开发了一种算法,该算法将通过反向散射分析获得的这些高透射本征波前的知识与某个点处的强度测量值相结合,以产生比没有利用此信息的方法少得多的测量值的接近最佳焦点。

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