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Publication

X-ray image separation via coupled dictionary learning

Book Contribution - Book Chapter Conference Contribution

n support of art investigation, we propose a new source separation method that unmixes a single X-ray scan acquired from double-sided paintings. Unlike prior source separation methods, which are based on statistical or structural incoherence of the sources, we use visual images taken from the front- and back-side of the panel to drive the separation process. The coupling of the two imaging modalities is achieved via a new multi-scale dictionary learning method. Experimental results demonstrate that our method succeeds in the discrimination of the sources, while state-of-the-art methods fail to do so.
Book: IEEE International Conference on Image Processing 2016 (ICIP2016)
Pages: 3533 - 3537
Number of pages: 5
  • ORCID: /0000-0002-0688-8173/work/71188379
  • ORCID: /0000-0001-9300-5860/work/71094949
  • WoS Id: 000390782003109
  • Scopus Id: 85006797203