Stagin
STAGIN: Spatio-Temporal Attention Graph Isomorphism Network
Install / Use
/learn @egyptdj/StaginREADME
STAGIN
Spatio-Temporal Attention Graph Isomorphism Network
Paper
Learning Dynamic Graph Representation of Brain Connectome with Spatio-Temporal Attention
Byung-Hoon Kim, Jong Chul Ye, Jae-Jin Kim
presented at NeurIPS 2021
<sub><sup>arXiv, OpenReview, proceeding</sup></sub>
Concept

Dataset
The fMRI data used for the experiments of the paper should be downloaded from the Human Connectome Project.
Example structure of the directory tree
data (specified by option --sourcedir)
├─── behavioral
│ ├─── hcp.csv
│ ├─── hcp_taskrest_EMOTION.csv
│ ├─── hcp_taskrest_GAMBLING.csv
│ ├─── ...
│ └─── hcp_taskrest_WM.csv
├─── img
│ ├─── REST
│ │ ├─── 123456.nii.gz
│ │ ├─── 234567.nii.gz
│ │ ├─── ...
│ │ └─── 999999.nii.gz
│ └─── TASK
│ ├─── EMOTION
│ │ ├─── 123456.nii.gz
│ │ ├─── 234567.nii.gz
│ │ ├─── ...
│ │ └─── 999999.nii.gz
│ ├─── GAMBLING
│ │ ├─── ...
│ │ └─── 999999.nii.gz
│ ├─── ...
│ └─── WM
│ ├─── ...
│ └─── 999999.nii.gz
└───roi
└─── 7_400_coord.csv
Example content of the csv files
data/behavioral/hcp.csv
| Subject | Gender |
|---------|--------|
| 123456 | F |
| 234567 | M |
| ...... | ...... |
| 999999 | F |
data/behavioral/hcp_taskrest_WM.csv
| Task | Rest |
|------|------|
| 0 | 1 |
| 0 | 1 |
| ... | ... |
| 1 | 0 |
data/roi/7_400_coord.csv
| ROI Index | Label Name | R | A | S |
|-----------|----------------------------|---|---|---|
| 0 | NONE | NA| NA| NA|
| 1 | 7Networks_LH_Vis_1 |-32|-42|-20|
| 2 | 7Networks_LH_Vis_2 |-30|-32|-18|
| ... | ......... | . | . | . |
| 400 | 7Networks_RH_Default_PCC_9 | 8 |-50| 44|
Commands
Run the main script to perform experiments
python main.py
Command-line options can be listed with -h flag.
python main.py -h
Requirements
- python 3.8.5
- numpy == 1.20.2
- torch == 1.7.0
- torchvision == 0.8.1
- einops == 0.3.0
- sklearn == 0.24.2
- nilearn == 0.7.1
- nipy == 0.5.0
- pingouin == 0.3.11
- tensorboard == 2.5.0
- tqdm == 4.60.0
For brainplot:
- MRIcroGL >= 1.2
- opencv-python == 4.5.2
Updates
- 2022-04-29
5c262d8d: Top k-percentile values from the adjacency matrix is now calculated without the need for calling.detach().cpu().numpy()which improves computation speed. - 2023-04-11
2aa53b9-40e2bc6: Added dataset classes for ukb-rest, abide, and fmriprep; Implemented regression experiments.
Contact
egyptdj@yonsei.ac.kr
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