Graph cuts with many-pixel interactions: Theory and applications to shape modelling

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Many problems in computer vision can be posed in terms of energy minimization, where the relevant energy function models the interactions of many pixels. Finding the global or near-global minimum of such functions tends to be difficult, precisely due to these interactions of large (>3) numbers of pixels. In this paper, we derive a set of sufficient conditions under which energies which are functions of discrete binary variables may be minimized using graph cut techniques. We apply these conditions to the problem of incorporating shape priors in segmentation. Experimental results demonstrate the validity of this approach.

论文关键词:Graph cuts,Shape modelling

论文评审过程:Received 7 November 2007, Revised 8 July 2009, Accepted 18 July 2009, Available online 23 July 2009.

论文官网地址:https://doi.org/10.1016/j.imavis.2009.07.006