In this work, we present a method to characterise the transmission matrices of complex scattering media using a physics-informed, multi-plane neural network (MPNN) without the requirement of a known optical reference field. We use this method to accurately measure the transmission matrix of a commercial multi-mode fiber without the problems of output-phase ambiguity and dark spots, leading to upto 58\% improvement in focusing efficiency compared with phase-stepping holography. We demonstrate how our method is significantly more noise-robust than phase-stepping holography and show how it can be generalised to characterise a cascade of transmission matrices, allowing one to control the propagation of light between independent scattering media...
Neural networks offer novel approaches for light control in microscopy. We compare different deep ne...
Most of the neural networks proposed so far for computational imaging (CI) in optics employ a superv...
Heterogeneous materials such as biological tissue scatter light in random, yet deterministic, ways. ...
Imaging and delivering of light in a controlled manner through complex media such as glass diffusers...
Scattering often limits the controlled delivery of light in applications such as biomedical imaging,...
Multimode fibers (MMFs) are an example of a highly scattering medium, which scramble the coherent li...
The output of physical systems, such as the scrambled pattern formed by shining the spot of a laser ...
We propose a data -driven approach for light transmission control inside multimode fibers (MMFs). Sp...
Deep neural networks (DNNs) are used to reconstruct transmission speckle intensity patterns from the...
Scattering often limits the controlled delivery of light in applications such as biomedical imaging,...
Scattering often limits the controlled delivery of light in applications such as biomedical imaging,...
Abstract Inferring the properties of a scattering objective by analyzing the optical far-field respo...
Spatio-temporal control of femtosecond pulse-delivery through multimode fibers (MMF) can be used to ...
Image transmission through a multi-mode fiber is a difficult task given the complex interference of ...
© 2021 Optical Society of America. Scattering generally worsens the condition of inverse problems, w...
Neural networks offer novel approaches for light control in microscopy. We compare different deep ne...
Most of the neural networks proposed so far for computational imaging (CI) in optics employ a superv...
Heterogeneous materials such as biological tissue scatter light in random, yet deterministic, ways. ...
Imaging and delivering of light in a controlled manner through complex media such as glass diffusers...
Scattering often limits the controlled delivery of light in applications such as biomedical imaging,...
Multimode fibers (MMFs) are an example of a highly scattering medium, which scramble the coherent li...
The output of physical systems, such as the scrambled pattern formed by shining the spot of a laser ...
We propose a data -driven approach for light transmission control inside multimode fibers (MMFs). Sp...
Deep neural networks (DNNs) are used to reconstruct transmission speckle intensity patterns from the...
Scattering often limits the controlled delivery of light in applications such as biomedical imaging,...
Scattering often limits the controlled delivery of light in applications such as biomedical imaging,...
Abstract Inferring the properties of a scattering objective by analyzing the optical far-field respo...
Spatio-temporal control of femtosecond pulse-delivery through multimode fibers (MMF) can be used to ...
Image transmission through a multi-mode fiber is a difficult task given the complex interference of ...
© 2021 Optical Society of America. Scattering generally worsens the condition of inverse problems, w...
Neural networks offer novel approaches for light control in microscopy. We compare different deep ne...
Most of the neural networks proposed so far for computational imaging (CI) in optics employ a superv...
Heterogeneous materials such as biological tissue scatter light in random, yet deterministic, ways. ...