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Study: A Multi-modal Parcellation of Human Cerebral Cortex
Figure 10
Study: A Multi-modal Parcellation of Human Cerebral Cortex
Figure 5
Study: A Multi-modal Parcellation of Human Cerebral Cortex
Figure 10
Study: A Multi-modal Parcellation of Human Cerebral Cortex
Figure 5
Study: A Multi-modal Parcellation of Human Cerebral Cortex
Figure 10
Study: A Multi-modal Parcellation of Human Cerebral Cortex
Figure 5
Study: A Multi-modal Parcellation of Human Cerebral Cortex
Figure 10
Study: A Multi-modal Parcellation of Human Cerebral Cortex
Figure 5
Study: The Human Connectome Project’s neuroimaging approach
Figure 6
Study: The Human Connectome Project’s neuroimaging approach
Figure 6
Study: Hierarchy of transcriptomic specialization across human cortex
Cortical Parcellations
Study: Hierarchy of transcriptomic specialization across human cortex
Serotonin Receptor Expression Profiles
Study: Hierarchy of transcriptomic specialization across human cortex
Human Interneuron Marker Gene Expression
Study: Hierarchy of transcriptomic specialization across human cortex
Human Excitatory Cell Type Expression Profiles
Study: Hierarchy of transcriptomic specialization across human cortex
Norepinephrine Receptor Expression Profiles
Study: Hierarchy of transcriptomic specialization across human cortex
Dopamine Receptor Expression Profiles
Study: Hierarchy of transcriptomic specialization across human cortex
Nicotinic Acetylcholine Receptor Expression Profiles
Study: Hierarchy of transcriptomic specialization across human cortex
Human Gene Set PCA
Study: Hierarchy of transcriptomic specialization across human cortex
Muscarinic Acetylcholine Receptor Expression Profiles
Study: Hierarchy of transcriptomic specialization across human cortex
Monkey Structural Neuroimaging Maps
Study: Hierarchy of transcriptomic specialization across human cortex
Human Layer-Specific Gene Expression
Study: Hierarchy of transcriptomic specialization across human cortex
Human Inhibitory Cell Type Expression Profiles
Study: Hierarchy of transcriptomic specialization across human cortex
NMDA Receptor Subunit Expression Profiles
Study: Hierarchy of transcriptomic specialization across human cortex
GABA_A Receptor Subunit Expression Profiles
Study: Hierarchical heterogeneity across human cortex shapes large-scale neural dynamics
Networks and T1w/T2w
Study: Cortical-subcortical functional networks
Figure 2
Study: Cortical-subcortical functional networks
Figure 5
Study: Cortical-subcortical functional networks
Figure 1
Study: Cortical-subcortical functional networks
Figure 3
Study: Cortical-subcortical functional networks
Figure 4
Study: Cortical-subcortical functional networks
Figure 7
Study: Cortical-subcortical functional networks
Figure 8
Study: Cortical-subcortical functional networks
Figure 9
Study: Cerebral Cortical Folding, Parcellation, and Connectivity
Figure 5C. Human resting-state networks and functional connectivity matrix
Reference: Human Cortical Parcellations
VDG11 Composite parcellation with MMP1.0 210V borders overlaid
Reference: Human Cortical Parcellations
Probabilistic areas MMP1.0 210V
Reference: Human Cortical Parcellations
Cole-Anticevic Brain Network Parcellation (CAB-NP) + MMP1.0 210P borders
Reference: Human Cortical Parcellations
Yeo et al. (2011) 17-network RSNs with CAB-NP RSN borders overlaid
Reference: Human Cortical Parcellations
MMP1.0 210V Parcellation on inflated surfaces
Reference: Human Cortical Parcellations
MMP1.0 210V parcel borders overlaid on S1200 group-average myelin maps
Reference: Human Cortical Parcellations
Human Cortical Lobes (from PALS_B12 atlas) with HCP_MMP borders overlaid
Reference: Human Cortical Parcellations
Gordon333 resting-state-network parcellation with MMP1.0 210V borders overlaid)
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