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conference paper
Are Spatial and Global Constraints Really Necessary for Segmentation?
2011
2011 IEEE International Conference On Computer Vision (ICCV)
Many state-of-the-art segmentation algorithms rely on Markov or Conditional Random Field models designed to enforce spatial and global consistency constraints. This is often accomplished by introducing additional latent variables to the model, which can greatly increase its complexity. As a result, estimating the model parameters or computing the best maximum a posteriori (MAP) assignment becomes a computationally expensive task.
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lucchi_ICCV11.pdf
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openaccess
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2.22 MB
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Adobe PDF
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