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2.
Indian J Exp Biol ; 45(1): 58-63, 2007 Jan.
Article in English | MEDLINE | ID: mdl-17249328

ABSTRACT

Bioluminescence imaging plays an important role in the areas of cancer biology, cell biology, gene therapy, and so on. The 2D planar bioluminescent imaging has been transformed into a 3D framework by bioluminescence tomography (BLT) that enables bioluminescent source reconstruction in a mouse using a modality fusion approach. To solve this BLT problem, a geometrical model of the mouse is usually built from a CT/micro-CT/micro-MRI scan, which facilitates the assignment of optical parameters to various anatomical regions in the model. This optical model is then used to facilitate BLT. The forward model is based on Monte Carlo simulation to calculate the diffuse light flux on the surface of the mouse. The forward model data are used to define the imaging system and perform the BLT reconstruction. In this paper, we report the reconstruction of sources inside a heterogeneous highly scattering physical phantom to demonstrate the feasibility of this Monte Carlo based BLT method.


Subject(s)
Image Interpretation, Computer-Assisted/methods , Monte Carlo Method , Tomography/methods , Animals , Luminescence , Mice , Phantoms, Imaging
3.
Appl Opt ; 37(20): 4500-3, 1998 Jul 10.
Article in English | MEDLINE | ID: mdl-18285902

ABSTRACT

We present an exact mathematical description of beam shaping and indicate that a rigorous solution does not exist: only an optimal solution can be found. An optimization method is proposed to search for the solution. The simulation results for an example are given in detail.

4.
Appl Opt ; 37(29): 6906-10, 1998 Oct 10.
Article in English | MEDLINE | ID: mdl-18301507

ABSTRACT

We first discuss the discrete fractional Fourier transform and present some essential properties. We then propose a recursive algorithm to implement phase retrieval from two intensities in the fractional Fourier transform domain. This approach can significantly simplify computational manipulations and does not need an initial phase estimate compared with conventional iterative algorithms. Simulation results show that this approach can successfully recover the phase from two intensities.

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