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Titel:

Neuron-Miner: An Advanced Tool for Morphological Search and Retrieval in Neuroscientific Image Databases

Dokumenttyp:
Konferenzbeitrag
Autor(en):
Conjeti, S.; Mesbah, S.; Negahdar, M.; Rautenberg, P.; szhang; Navab, N.; Katouzian, A.
Abstract:
The steadily growing amounts of digital neuroscientific data demands for a reliable, systematic, and computationally effective retrieval algorithm. In this paper, we present Neuron-Miner, which is a tool for fast and accurate reference-based retrieval within neuron image databases. The proposed algorithm is established upon hashing (search and retrieval) technique by employing multiple unsupervised random trees, collectively called as Hashing Forests (HF). The HF are trained to parse the neurom...     »
Stichworte:
NEUROINFORMATICS,Hashing,Databases,Neurons,Random Forests
Kongress- / Buchtitel:
Neuroinformatics
Jahr:
2016
 BibTeX