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A "Shape Aware" Model for semi-supervised Learning of Objects and its Context
2008
Neural Information Processing Systems
We present an approach that combines bag-of-words and spatial models to perform semantic and syntactic analysis for recognition of an object based on its internal appearance and its context. We argue that while object recognition requires modeling relative spatial locations of image features within the object, a bag-of-word is sufficient for representing context. Learning such a model from weakly labeled data involves labeling of features into two classes: foreground(object) or "informative"
dblp:conf/nips/GuptaSD08
fatcat:yg7bv7es4fg5lcaqhgpa5riamy