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From Global to Local Statistical Shape Priors - Novel Methods to Obtain Accurate Reconstruction Results with a Limited Amount... From Global to Local Statistical Shape Priors - Novel Methods to Obtain Accurate Reconstruction Results with a Limited Amount of Training Shapes (Hardcover, 1st ed. 2017)
Carsten Last
R3,645 R3,384 Discovery Miles 33 840 Save R261 (7%) Ships in 10 - 15 working days

This book proposes a new approach to handle the problem of limited training data. Common approaches to cope with this problem are to model the shape variability independently across predefined segments or to allow artificial shape variations that cannot be explained through the training data, both of which have their drawbacks. The approach presented uses a local shape prior in each element of the underlying data domain and couples all local shape priors via smoothness constraints. The book provides a sound mathematical foundation in order to embed this new shape prior formulation into the well-known variational image segmentation framework. The new segmentation approach so obtained allows accurate reconstruction of even complex object classes with only a few training shapes at hand.

From Global to Local Statistical Shape Priors - Novel Methods to Obtain Accurate Reconstruction Results with a Limited Amount... From Global to Local Statistical Shape Priors - Novel Methods to Obtain Accurate Reconstruction Results with a Limited Amount of Training Shapes (Paperback, Softcover reprint of the original 1st ed. 2017)
Carsten Last
R3,356 Discovery Miles 33 560 Ships in 18 - 22 working days

This book proposes a new approach to handle the problem of limited training data. Common approaches to cope with this problem are to model the shape variability independently across predefined segments or to allow artificial shape variations that cannot be explained through the training data, both of which have their drawbacks. The approach presented uses a local shape prior in each element of the underlying data domain and couples all local shape priors via smoothness constraints. The book provides a sound mathematical foundation in order to embed this new shape prior formulation into the well-known variational image segmentation framework. The new segmentation approach so obtained allows accurate reconstruction of even complex object classes with only a few training shapes at hand.

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