Sparsity-driven reconstruction for FDOT with anatomical priors.

Baritaux, Jean-Charles; Hassler, Kai; Bucher, Martina; Sanyal, Sebanti; Unser, Michael · IEEE Trans Med Imaging · 2011

basic_science · Level V

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Abstract

In this paper we propose a method based on (2, 1)-mixed-norm penalization for incorporating a structural prior in FDOT image reconstruction. The effect of (2, 1)-mixed-norm penalization is twofold: first, a sparsifying effect which isolates few anatomical regions where the fluorescent probe has accumulated, and second, a regularization effect inside the selected anatomical regions. After formulating the reconstruction in a variational framework, we analyze the resulting optimization problem and derive a practical numerical method tailored to (2, 1)-mixed-norm regularization. The proposed method includes as particular cases other sparsity promoting regularization methods such as l(1)-norm penalization and total variation penalization. Results on synthetic and experimental data are presented.

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