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From global image annotation to interactive object segmentation

delete2013-02-16
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PRE
AI
X
Xavier Giró-i-Nieto *
M
Manuel Martos
J
Jordi Pont-Tuset
DOI:10.1007/s11042-013-1374-3delete
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Abstract

Abstract

En 中文
This paper presents a graphical environment for the annotation of still images that works both at the global and local scales. At the global scale, each image can be tagged with positive, negative and neutral labels referred to a semantic class from an ontology. These annotations can be used to train and evaluate an image classifier. A finer annotation at a local scale is also available for interactive segmentation of objects. This process is formulated as a selection of regions from a precomputed hierarchical partition called Binary Partition Tree. Three different semi-supervised methods have been presented and evaluated: bounding boxes, scribbles and hierarchical navigation. The implemented Java source code is published under a free software license.
Keywords:
Interaction
Segmentation
Multiscale
Annotation
Hierarchical

Journal

Multimedia Tools and Applications cover
Multimedia Tools and Applications
IF:
3
Papers:
2.0W
Citations:
3.2W

Organization

No organization information available
Cited Papers

Cited Papers

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GAT: a Graphical Annotation Tool for semantic regions
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Interactive image segmentation by matching attributed relational graphs
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errNoma, Alexandre; Graciano, Ana B. V.; Cesar, Roberto M., Jr.; Consularo, Luis A.; Bloch, Isabelle
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