We demonstrate, what we believe to be, the first mathematical model of image formation in optical coherence tomography, based on Maxwell’s equations, applicable to general three-dimensional samples. It is highly realistic and represents a significant advance on a previously developed model, which was applicable to two-dimensional samples only. The model employs an electromagnetic description of light, made possible by using the pseudospectral time-domain method for calculating the light scattered by the sample which is represented by a general refractive index distribution. We derive the key theoretical and computational advances required to develop this model. Two examples are given of image formation for which analytic comparisons may be ...
We present a new model of optical coherence tomography (OCT) taking into account multiple scattering...
A Monte Carlo method for holistically simulating optical coherence tomography (OCT) has been develop...
Abstract We present a computational modeling approach for imitation of the time-domain optical cohe...
The majority of existing models of image formation in optical coherence tomography make simplifying ...
We demonstrate a highly realistic model of optical coherence tomography, based on an existing model ...
In this chapter a general mathematical model of Optical Coherence Tomography (OCT) is presented on t...
We combine a Monte Carlo technique with Mie theory to develop a method for simulating optical cohere...
The Monte Carlo technique with angle biasing is used to simulate the optical coherence tomography (O...
We review mathematical models describing how Optical Coherence Tomography works. Hereby, we focus on...
Abstract Optical coherence tomography (OCT) is a modern rapidly developing technique for non-invasiv...
We present a computational modeling approach for imitation of the time-domain optical coherence tomo...
The concept of optical coherence tomography (OCT) for high-resolution imaging of tissues in vivo is ...
Optical coherence Tomography (OCT) relies on optical interferometry to provide non?invasive imaging ...
The angle biased Monte Carlo technique is applied to simulate the OCT signal from homogeneous turbid...
A time-resolved optical tomography, optical coherence computed tomography, is proposed to bridge the...
We present a new model of optical coherence tomography (OCT) taking into account multiple scattering...
A Monte Carlo method for holistically simulating optical coherence tomography (OCT) has been develop...
Abstract We present a computational modeling approach for imitation of the time-domain optical cohe...
The majority of existing models of image formation in optical coherence tomography make simplifying ...
We demonstrate a highly realistic model of optical coherence tomography, based on an existing model ...
In this chapter a general mathematical model of Optical Coherence Tomography (OCT) is presented on t...
We combine a Monte Carlo technique with Mie theory to develop a method for simulating optical cohere...
The Monte Carlo technique with angle biasing is used to simulate the optical coherence tomography (O...
We review mathematical models describing how Optical Coherence Tomography works. Hereby, we focus on...
Abstract Optical coherence tomography (OCT) is a modern rapidly developing technique for non-invasiv...
We present a computational modeling approach for imitation of the time-domain optical coherence tomo...
The concept of optical coherence tomography (OCT) for high-resolution imaging of tissues in vivo is ...
Optical coherence Tomography (OCT) relies on optical interferometry to provide non?invasive imaging ...
The angle biased Monte Carlo technique is applied to simulate the OCT signal from homogeneous turbid...
A time-resolved optical tomography, optical coherence computed tomography, is proposed to bridge the...
We present a new model of optical coherence tomography (OCT) taking into account multiple scattering...
A Monte Carlo method for holistically simulating optical coherence tomography (OCT) has been develop...
Abstract We present a computational modeling approach for imitation of the time-domain optical cohe...