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Updated: May 18, 2026

Monitoring Tumor Metastases and Osteolytic Lesions with Bioluminescence and Micro CT Imaging
Published on: April 14, 2011
Compressive sensing based reconstruction in bioluminescence tomography improves image resolution and robustness to
Hector R A Basevi1, Kenneth M Tichauer, Frederic Leblond
1PSIBS, University of Birmingham, Edgbaston, Birmingham, B15 2TT, UK ; School of Computer Science, University of Birmingham, Edgbaston, Birmingham, B15 2TT, UK.
Abstract:
Bioluminescence Tomography attempts to quantify 3-dimensional luminophore distributions from surface measurements of the light distribution. The reconstruction problem is typically severely under-determined due to the number and location of measurements, but in certain cases the molecules or cells of interest form localised clusters, resulting in a distribution of luminophores that is spatially sparse. A Conjugate Gradient-based reconstruction algorithm using Compressive Sensing was designed to take advantage of this sparsity, using a multistage sparsity reduction approach to remove the need to choose sparsity weighting a priori. Numerical simulations were used to examine the effect of noise on reconstruction accuracy. Tomographic bioluminescence measurements of a Caliper XPM-2 Phantom Mouse were acquired and reconstructions from simulation and this experimental data show that Compressive Sensing-based reconstruction is superior to standard reconstruction techniques, particularly in the presence of noise.
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