Neighborhood resolved fiber orientation distributions (NRFOD) in automatic labeling of white matter fiber pathways

Devran Ugurlu, Zeynep Firat, Uğur Türe, Gozde Unal*

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Araştırma sonucu: ???type-name???Makalebilirkişi

4 Atıf (Scopus)

Özet

Accurate digital representation of major white matter bundles in the brain is an important goal in neuroscience image computing since the representations can be used for surgical planning, intra-patient longitudinal analysis and inter-subject population connectivity studies. Reconstructing desired fiber bundles generally involves manual selection of regions of interest by an expert, which is subject to user bias and fatigue, hence an automation is desirable. To that end, we first present a novel anatomical representation based on Neighborhood Resolved Fiber Orientation Distributions (NRFOD) along the fibers. The resolved fiber orientations are obtained by generalized q-sampling imaging (GQI) and a subsequent diffusion decomposition method. A fiber-to-fiber distance measure between the proposed fiber representations is then used in a density-based clustering framework to select the clusters corresponding to the major pathways of interest. In addition, neuroanatomical priors are utilized to constrain the set of candidate fibers before density-based clustering. The proposed fiber clustering approach is exemplified on automation of the reconstruction of the major fiber pathways in the brainstem: corticospinal tract (CST); medial lemniscus (ML); middle cerebellar peduncle (MCP); inferior cerebellar peduncle (ICP); superior cerebellar peduncle (SCP). Experimental results on Human Connectome Project (HCP)’s publicly available “WU-Minn 500 Subjects + MEG2 dataset” and expert evaluations demonstrate the potential of the proposed fiber clustering method in brainstem white matter structure analysis.

Orijinal dilİngilizce
Sayfa (başlangıç-bitiş)130-145
Sayfa sayısı16
DergiMedical Image Analysis
Hacim46
DOI'lar
Yayın durumuYayınlandı - May 2018

Bibliyografik not

Publisher Copyright:
© 2018

Finansman

Funding: This work was supported by TÜBİTAK (The Scientific and Technological Research Council of Turkey) Grant No. 112E320.

FinansörlerFinansör numarası
TÜBİTAK
Türkiye Bilimsel ve Teknolojik Araştirma Kurumu112E320

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