EVolution: An edge-based variational method for non-rigid multi-modal image registration

B. Denis De Senneville, C. Zachiu, M. Ries, C. Moonen

Research output: Contribution to journalArticlepeer-review

53 Citations (Scopus)

Abstract

Image registration is part of a large variety of medical applications including diagnosis, monitoring disease progression and/or treatment effectiveness and, more recently, therapy guidance. Such applications usually involve several imaging modalities such as ultrasound, computed tomography, positron emission tomography, x-ray or magnetic resonance imaging, either separately or combined. In the current work, we propose a non-rigid multi-modal registration method (namely EVolution: an edge-based variational method for non-rigid multi-modal image registration) that aims at maximizing edge alignment between the images being registered. The proposed algorithm requires only contrasts between physiological tissues, preferably present in both image modalities, and assumes deformable/elastic tissues. Given both is shown to be well suitable for non-rigid co-registration across different image types/contrasts (T1/T2) as well as different modalities (CT/MRI). This is achieved using a variational scheme that provides a fast algorithm with a low number of control parameters. Results obtained on an annotated CT data set were comparable to the ones provided by state-of-the-art multi-modal image registration algorithms, for all tested experimental conditions (image pre-filtering, image intensity variation, noise perturbation). Moreover, we demonstrate that, compared to existing approaches, our method possesses increased robustness to transient structures (i.e. that are only present in some of the images).

Original languageEnglish
Pages (from-to)7377-7396
Number of pages20
JournalPhysics in Medicine and Biology
Volume61
Issue number20
DOIs
Publication statusPublished - 3 Oct 2016
Externally publishedYes

Keywords

  • multi-modal registration
  • non-rigid registration
  • variational method

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