Arid
DOI10.1109/TMI.2016.2633393
Local Spectral Analysis of the Cerebral Cortex: New Gyrification Indices
Rabiei, Hamed1,2,3; Richard, Frederic3; Coulon, Olivier1,2; Lefevre, Julien1,2
通讯作者Rabiei, Hamed
来源期刊IEEE TRANSACTIONS ON MEDICAL IMAGING
ISSN0278-0062
EISSN1558-254X
出版年2017
卷号36期号:3页码:838-848
英文摘要

Gyrification index (GI) is an appropriate measure to quantify the complexity of the cerebral cortex. There is, however, no universal agreement on the notion of surface complexity and there are various methods in literature that evaluate different aspects of cortical folding. In this paper, we give two intuitive interpretations on folding quantification based on the magnitude and variation of the mean curvature of the cortical surface. We then present a local spectral analysis of the mean curvature to introduce two local gyrification indices that satisfy our interpretations. For this purpose, the graph windowed Fourier transform is extended to the framework of surfaces discretized with triangular meshes. An adaptive window function is also proposed to deal with the intersubject cortical size variability. The intrinsic nature of the method allows us to compute the degree of folding at different spatial scales. Our experiments show that while more classical surface area-based GIs may fail at differentiating deep folds from very convoluted ones, our spectral GIs overcome this issue. The method is applied to the cortical surfaces of 124 healthy adult subjects of OASIS database and average gyrification maps are computed and compared with other GI definitions. In order to illustrate the capacity of our method to capture and quantify important aspects of gyrification, we study the relationship between brain volume and cortical complexity, and design a scaling analysis with a power law model. Results indicate an allometric relation and confirm the well-known observations that larger brains are more folded. We also perform the scaling analysis at the vertex level to investigate how the degree of folding varies locally with the brain volume. Results reveal that in our healthy adult brain database, cortical regions which are the least folded on average show an increased folding complexity when brain size increases.


英文关键词Brain folding gyrification index spectral analysis mean curvature windowed Fourier transform allometric relation
类型Article
语种英语
国家France
收录类别SCI-E
WOS记录号WOS:000396117300014
WOS关键词SHAPE-ANALYSIS ; BRAIN SIZE ; COMPUTATION ; PATTERN
WOS类目Computer Science, Interdisciplinary Applications ; Engineering, Biomedical ; Engineering, Electrical & Electronic ; Imaging Science & Photographic Technology ; Radiology, Nuclear Medicine & Medical Imaging
WOS研究方向Computer Science ; Engineering ; Imaging Science & Photographic Technology ; Radiology, Nuclear Medicine & Medical Imaging
资源类型期刊论文
条目标识符http://119.78.100.177/qdio/handle/2XILL650/199586
作者单位1.Aix Marseille Univ, Inst Neurosci Timone, CNRS, Marseille UMR7289, Marseille, France;
2.Aix Marseille Univ, CNRS, LSIS, Marseille, France;
3.Aix Marseille Univ, CNRS, Cent Marseille, I2M, Marseille, France
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GB/T 7714
Rabiei, Hamed,Richard, Frederic,Coulon, Olivier,et al. Local Spectral Analysis of the Cerebral Cortex: New Gyrification Indices[J],2017,36(3):838-848.
APA Rabiei, Hamed,Richard, Frederic,Coulon, Olivier,&Lefevre, Julien.(2017).Local Spectral Analysis of the Cerebral Cortex: New Gyrification Indices.IEEE TRANSACTIONS ON MEDICAL IMAGING,36(3),838-848.
MLA Rabiei, Hamed,et al."Local Spectral Analysis of the Cerebral Cortex: New Gyrification Indices".IEEE TRANSACTIONS ON MEDICAL IMAGING 36.3(2017):838-848.
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