2022
DOI: 10.1016/j.jad.2022.03.079
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Regional amplitude abnormities in the major depressive disorder: A resting-state fMRI study and support vector machine analysis

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Cited by 23 publications
(15 citation statements)
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“…SVM combined with neuroimaging technology has been widely used in the study of various diseases. For example, Chen et al found that combining the average ALFF and fall values of the right caudate nucleus and corpus callosum can diagnose MDD [accuracy (79.79%), sensitivity (65.12%), and specificity (92.16%)] ( 52 ). Gao et al found that the combination of increased fALFF in the right precuneus and left superior frontal gyrus (SFG) with a diagnostic accuracy of 76.39% ( 18 ).…”
Section: Discussionmentioning
confidence: 99%
“…SVM combined with neuroimaging technology has been widely used in the study of various diseases. For example, Chen et al found that combining the average ALFF and fall values of the right caudate nucleus and corpus callosum can diagnose MDD [accuracy (79.79%), sensitivity (65.12%), and specificity (92.16%)] ( 52 ). Gao et al found that the combination of increased fALFF in the right precuneus and left superior frontal gyrus (SFG) with a diagnostic accuracy of 76.39% ( 18 ).…”
Section: Discussionmentioning
confidence: 99%
“… 46 During loss vs. reward stimuli, higher coupling was also found between the striatum and posterior default mode network (DMN), which could also predict the severity of depressive symptoms in MDD patients. 47 As in our study, MDD patients have shown striatum hyperactivity in many rs-fMRI studies, 18 , 48 , 49 and a combination of mean ALFF and fractional ALFF in the right striatum was selected as a feature of SVM to discriminate MDD patients and HC. Above all, the hypofunctions in the frontal-parietal cortex and hyperactivities in limbic structures found by our study are indicative of cortical-striatal dysregulation in MDD patients.…”
Section: Discussionmentioning
confidence: 97%
“…The current study greatly improved the performance to classify MDD and HCs compared with previous studies. 16,17,[28][29][30][31] A recent study based on traditional static brain networks identified MDD from HCs using whole brain function connectivity as features and obtained an accuracy of 0.59. 30 The improvement in classification performance of our study indicated that incorporating the dynamics of brain network implied rich information.…”
Section: Discussionmentioning
confidence: 99%