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Hierarchical Spatio-Temporal Visual
Analysis of
Electrocorticography (ECoG) Data
Sugeerth Murugesan1,2, Kristofer Bouchard2, Edward
Chang3, Max Dougherty2, Bernd Hamann1, Gunther Weber1,2
1
1UC Davis,2Lawrence Berkeley National Lab,3UC San Francisco
Visual Analysis of Dynamic Functional
Brain Networks
On-going Work
2
Introduction
• Human brain
• Massively connected
• Dynamically
reconfiguring
• Complex communication
patterns
3
Communication patterns between brain regions[1]
[1] J. Bottger et al., Conexel visualization: a software implementation of glyphs and
edge-bundling for dense connectivity data using BrainGL, J. Neuroscience
Electrocorticography
● ECoG
○ High temporal
and spatial
resolution
○ High signal-to-
noise ratio Human ECoG Data, 4mm
spatial resolution, [1]
Edward Chang, UCSF
Micro-electrode array
200μm spatial resolution,
[2] Kristofer Bouchard, LBNL
4
Challenges
• Matching of temporal scales
• Appropriate scales not obvious a priori
5
System Overview
6
Choosing K, Consensus Clustering
7
Maximum value, K =2
Final
Result
For one
time step
Time-series
1 2
[1] Monti et al., Consensus clustering: a resampling-based method for class discovery and visualization of gene expression microarray data
Cluster Evolution View
8
[1] Vehlow, Corinna, et al. "Visualizing the evolution of communities in dynamic graphs." Computer Graphics Forum. Vol. 34. No. 1. 2015.
Electrode View
9
Time Step
Time
Step
Start
Point
Time Steps
Varying granularity
Chosen Design
Time
Step
Start
Point
Synthetic Data
10
Identifying Temporal States
11
Seizure Dataset
12
Functional Patterns
13
Conclusion
• Fast and effective scientific exploration of brain networks
• Better comprehension of multi-scale changes
• Better characterization of genesis and dynamic propagation of
epileptic seizures
14
Future Work
• Semi-supervised consensus clustering
• Scalable visual analysis
• Quantitative evaluation of flexibility and stability of clusters
15
Acknowledgement
This work is supported by the U.S. Department of Energy under Contract No. DE-
AC02-05CH11231 through
•LBNL Laboratory Directed Research and Development (LDRD) grant
“Towards Exascale: High Performance Visualization and Analytics Program”,
program manager Dr. Lucy Nowell.
We thank the members of the
•LBNL Vis Group
•LBNL Data Science & Technology Department
•LBNL Bouchard Group
16
Thank
you
17
Backup Slides
18
ECoG Cluster Flow Overview
19
● Cluster evolution view: summarizes evolution of clusters over time
● Electrode view: depicts propagation of clusters in their spatial domain
Community Changes over Space and
Time
20
ECoG Functional Networks
Derivation of Functional Networks
21
Graph
Quantification
Graph-
theoretical
Analysis
Colors represent
modules
Analysis of connectivity data
Graph theoretic methods
Modular organization
Hierarchical modularity
Challenges
Time-varying 22[2] Complex network measures of brain connectivity: uses and interpretations
Functional connectivity of brain
networks
Major Visual Analysis Tasks in Brain
Connectivity Analysis
• How can we start to identify brain states?
• How does brain transition into different states ?
• How can we easily compare patterns associated with
different brain states?
23
Brain Networks
Properties
Modular organization
Hierarchical organization on
multiple scales
Small- worldness
24
Spatial Scales Temporal Scales
Challenges
Networks
Change over time
Shifting structural properties
Shifting topological attributes
Additional data attributes
Scalability
Visual Scalability
25
Interactivity
26
Cluster Matching
L1,1 = 11
L1,2 = 11
L2,1 = 10
L2,2 = 2
• All possible
matching
• Maximum
cost value for
each time
27
Lessons Learnt
• Static timeline based representations
• Careful with Visual Designs
• Bottom-up vs Top-down
28
Graph-Theoretical Analysis
• Network structure
– Hierarchical structure
– Multiple Scales
– Modular
• Visual Analysis
– Neurological Disease
progression
– Normal Functioning 29
Community Pattern
Detection
Source: Stanford School of
Medicine
Graph-Theoretical Analysis
• Network structure
– Hierarchical structure
– Multiple Scales
– Modular
• Visual Analysis
– Neurological Disease
progression
– Normal Functioning 30
Community Pattern
Detection
Source: Stanford School of
Medicine
Changes in Graphs
31
Electrode Spatial Views
• Multiple Temporal
Scales
– Glyphs
– User-defined
aggregation
– Hierarhical
32
Hierarchical Exploration
33
Multi-scale Spatio-Temporal Visual
Patterns
34
Spatial Scales Temporal Scales
Spatial Evolution Patterns
35
Electrocorticography
36
● ECoG:
○ High temporal
and spatial
resolution
○ High signal-to-
noise ratio Human ECoG Data, 4mm
spatial resolution, [1]
Edward Chang, UCSF
Micro-electrode array
200μm spatial resolution,
[2] Kristofer Bouchard, LBNL
Notes
37

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