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Document type:
Zeitschriftenaufsatz
Author(s):
Shah, A.; Conjeti, S.; Navab, N.; Katouzian, A.
Title:
Deeply learnt hashing forests for content based image retrieval in prostate MR images
Abstract:
Deluge in the size and heterogeneity of medical image databases necessitates the need for content based retrieval systems for their efficient organization. In this paper, we propose such a system to retrieve prostate MR images which share similarities in appearance and content with a query image. We introduce deeply learnt hashing forests (DL-HF) for this image retrieval task. DL-HF uses the semantic descriptiveness of deep learnt Convolutional Neural Networks and parses the feature space using...     »
Keywords:
Prostate Cancer,Magnetic Resonance Imaging,Image Retrieval,Deep Learning,Hashing,Random Forests
Year:
2016
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