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2017 | Supplement | Buchkapitel

White Matter Fiber Representation Using Continuous Dictionary Learning

verfasst von : Guy Alexandroni, Yana Podolsky, Hayit Greenspan, Tal Remez, Or Litany, Alexander Bronstein, Raja Giryes

Erschienen in: Medical Image Computing and Computer Assisted Intervention − MICCAI 2017

Verlag: Springer International Publishing

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Abstract

With increasingly sophisticated Diffusion Weighted MRI acquisition methods and modeling techniques, very large sets of streamlines (fibers) are presently generated per imaged brain. These reconstructions of white matter architecture, which are important for human brain research and pre-surgical planning, require a large amount of storage and are often unwieldy and difficult to manipulate and analyze. This work proposes a novel continuous parsimonious framework in which signals are sparsely represented in a dictionary with continuous atoms. The significant innovation in our new methodology is the ability to train such continuous dictionaries, unlike previous approaches that either used pre-fixed continuous transforms or training with finite atoms. This leads to an innovative fiber representation method, which uses Continuous Dictionary Learning to sparsely code each fiber with high accuracy. This method is tested on numerous tractograms produced from the Human Connectome Project data and achieves state-of-the-art performances in compression ratio and reconstruction error.

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Fußnoten
1
Developed by Fang-Cheng Yeh from the Advanced Biomedical MRI Lab, NTU Hospital, Taiwan, and made available at http://​dsi-studio.​labsolver.​org/​Download/​.
 
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Metadaten
Titel
White Matter Fiber Representation Using Continuous Dictionary Learning
verfasst von
Guy Alexandroni
Yana Podolsky
Hayit Greenspan
Tal Remez
Or Litany
Alexander Bronstein
Raja Giryes
Copyright-Jahr
2017
DOI
https://doi.org/10.1007/978-3-319-66182-7_65

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