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pmid: 21413068
arXiv: 1004.2001
handle: 10261/377578 , 20.500.14243/30849 , 11590/358295 , 11573/505967 , 2318/1765348
pmid: 21413068
arXiv: 1004.2001
handle: 10261/377578 , 20.500.14243/30849 , 11590/358295 , 11573/505967 , 2318/1765348
AbstractA new method to investigate anomalous diffusion in human brain, inspired by the stretched‐exponential model proposed by Hall and Barrick, is proposed here, together with a discussion about its potential application to cerebral white matter characterization. Aim of the work was to show the ability of anomalous diffusion indices to characterize white matter structures, whose complexity is only partially accounted by diffusion tensor imaging indices. MR signal was expressed as a stretched‐exponential only along the principal axes of diffusion; whereas, in a generic direction, it was modeled as a combination of three stretched‐exponentials. Indices to quantify the tissue anomalous diffusion and its anisotropy, independently of the experiment reference frame, were derived. Experimental results, obtained on 10 healthy subjects at 3T, show that the new parameters are highly correlated to intrinsic local geometry when compared with Hall and Barrick indices. Moreover, they offer a different contrast in white matter regions when compared with diffusion tensor imaging. Specifically, the new indices show a higher capability to discriminate among areas of the corpus callosum associated to different distribution in axonal densities, thus offering a new potential tool to detect more specific patterns of brain abnormalities than diffusion tensor imaging in the presence of neurological and psychiatric disorders. Magn Reson Med, 2010. © 2010 Wiley‐Liss, Inc.
Male, Anomalous diffusion, FOS: Physical sciences, Sensitivity and Specificity, Young Adult, anomalous diffusion, Image Interpretation, Computer-Assisted, Humans, anomalous diffusion; DTI; nongaussian diffusion; stretched exponential; water diffusion; Anisotropy; Brain; Diffusion Magnetic Resonance Imaging; Female; Humans; Image Enhancement; Image Interpretation, Computer-Assisted; Male; Reproducibility of Results; Sensitivity and Specificity; Young Adult; Algorithms; Artifacts, Brain, Reproducibility of Results, water diffusion, Disordered Systems and Neural Networks (cond-mat.dis-nn), Condensed Matter - Disordered Systems and Neural Networks, Image Enhancement, stretched exponential, Physics - Medical Physics, Stretched exponential, nongaussian diffusion, Nongaussian diffusion, Diffusion Magnetic Resonance Imaging, DTI, Anisotropy, Female, Medical Physics (physics.med-ph), Artifacts, Algorithms, Water diffusion
Male, Anomalous diffusion, FOS: Physical sciences, Sensitivity and Specificity, Young Adult, anomalous diffusion, Image Interpretation, Computer-Assisted, Humans, anomalous diffusion; DTI; nongaussian diffusion; stretched exponential; water diffusion; Anisotropy; Brain; Diffusion Magnetic Resonance Imaging; Female; Humans; Image Enhancement; Image Interpretation, Computer-Assisted; Male; Reproducibility of Results; Sensitivity and Specificity; Young Adult; Algorithms; Artifacts, Brain, Reproducibility of Results, water diffusion, Disordered Systems and Neural Networks (cond-mat.dis-nn), Condensed Matter - Disordered Systems and Neural Networks, Image Enhancement, stretched exponential, Physics - Medical Physics, Stretched exponential, nongaussian diffusion, Nongaussian diffusion, Diffusion Magnetic Resonance Imaging, DTI, Anisotropy, Female, Medical Physics (physics.med-ph), Artifacts, Algorithms, Water diffusion
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