Scattering often limits the controlled delivery of light in applications such as biomedical imaging, optogenetics, optical trapping, and fiber-optic communication or imaging. Such scattering can be controlled by appropriately shaping the light wavefront entering the material. Here, we develop a machine-learning approach for light control. Using pairs of binary intensity patterns and intensity measurements we train neural networks (NNs) to provide the wavefront corrections necessary to shape the beam after the scatterer. Additionally, we demonstrate that NNs can be used to find a functional relationship between transmitted and reflected speckle patterns. Establishing the validity of this relationship, we focus and scan in transmission throug...
peer-reviewedThe propagation of light in biological tissue depends on the absorption and reduced sca...
Heterogeneous materials such as biological tissue scatter light in random, yet deterministic, ways. ...
Heterogeneous materials such as biological tissue scatter light in random, yet deterministic, ways. ...
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,...
Imaging and delivering of light in a controlled manner through complex media such as glass diffusers...
Light scattering and aberrations limit optical microscopy in biological tissue, which motivates the ...
Neural networks offer novel approaches for light control in microscopy. We compare different deep ne...
Light scattering inside disordered media poses a significant challenge to achieve deep depth and hig...
Wavefront shaping (WFS) has been put forward several years ago to break the limitation caused by opt...
Typical optical systems are designed to be implemented in free space or clean media. However, the pr...
Deep neural networks (DNNs) are used to reconstruct transmission speckle intensity patterns from the...
Typical optical systems are designed to be implemented in free space or clean media. However, the pr...
In this work, we present a method to characterise the transmission matrices of complex scattering me...
The output of physical systems, such as the scrambled pattern formed by shining the spot of a laser ...
peer-reviewedThe propagation of light in biological tissue depends on the absorption and reduced sca...
Heterogeneous materials such as biological tissue scatter light in random, yet deterministic, ways. ...
Heterogeneous materials such as biological tissue scatter light in random, yet deterministic, ways. ...
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,...
Imaging and delivering of light in a controlled manner through complex media such as glass diffusers...
Light scattering and aberrations limit optical microscopy in biological tissue, which motivates the ...
Neural networks offer novel approaches for light control in microscopy. We compare different deep ne...
Light scattering inside disordered media poses a significant challenge to achieve deep depth and hig...
Wavefront shaping (WFS) has been put forward several years ago to break the limitation caused by opt...
Typical optical systems are designed to be implemented in free space or clean media. However, the pr...
Deep neural networks (DNNs) are used to reconstruct transmission speckle intensity patterns from the...
Typical optical systems are designed to be implemented in free space or clean media. However, the pr...
In this work, we present a method to characterise the transmission matrices of complex scattering me...
The output of physical systems, such as the scrambled pattern formed by shining the spot of a laser ...
peer-reviewedThe propagation of light in biological tissue depends on the absorption and reduced sca...
Heterogeneous materials such as biological tissue scatter light in random, yet deterministic, ways. ...
Heterogeneous materials such as biological tissue scatter light in random, yet deterministic, ways. ...