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Event-Driven Imaging in Turbid Media: A Confluence of Optoelectronics and Neuromorphic Computation

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arxiv 2309.06652 v1 pith:W3N6IT5Z submitted 2023-09-13 cs.NE cs.CV

classification cs.NEcs.CV
keywords imageneuromorphicreconstructionturbidapproachcomputationaldynamicfirst
verification ladder T0 review T1 audit T2 compute T3 formal
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In this paper a new optical-computational method is introduced to unveil images of targets whose visibility is severely obscured by light scattering in dense, turbid media. The targets of interest are taken to be dynamic in that their optical properties are time-varying whether stationary in space or moving. The scheme, to our knowledge the first of its kind, is human vision inspired whereby diffuse photons collected from the turbid medium are first transformed to spike trains by a dynamic vision sensor as in the retina, and image reconstruction is then performed by a neuromorphic computing approach mimicking the brain. We combine benchtop experimental data in both reflection (backscattering) and transmission geometries with support from physics-based simulations to develop a neuromorphic computational model and then apply this for image reconstruction of different MNIST characters and image sets by a dedicated deep spiking neural network algorithm. Image reconstruction is achieved under conditions of turbidity where an original image is unintelligible to the human eye or a digital video camera, yet clearly and quantifiable identifiable when using the new neuromorphic computational approach.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Neuromorphic Optical Tracking and Imaging of Randomly Moving Targets through Strongly Scattering Media

    cs.NE 2025-01 conditional novelty 5.0 of 10

    An event camera plus a two-module spiking neural network tracks and reconstructs MNIST and Kanji characters hidden behind strongly scattering media in benchtop experiments.

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