Day 1 — Wednesday, October 16th
9:00 - 9:15
Registration/Breakfast
9:15 - 9:30
Introduction
9:30 - 10:00
Challenges in Single Cell Analysis
10:00 - 10:30
Thinking about High-Dimensional Data
0.0. Plotting UCI Wine Data
10:30 - 11:00
Coffee Break
11:00 - 12:00
Introduction to Manifold Learning
0.1. Learning Graphs from Data
12:00 - 1:00
Lunch
1:00 - 2:30
Preprocessing scRNAseq Data
1.0. Preprocessing Embryoid Body Data
2:30 - 3:00
What is Visualization?
2.0. Visualizing UCI Wine Data
3:00 - 3:30
Coffee Break
3:30 - 5:00
Creating better features with PCA
2.1. PCA on Retinal Bipolar Data
Nonlinear dimensionality Reduction
2.2. Visualizing Retinal Bipolar Data
2.3. Visualizing Embryoid Body Data
2.4. Visualizing Simulated Data
5:00 - 6:00
Welcome & Networking
Day 2 — Thursday, October 17th
9:00 - 9:15
Introduction (breakfast provided )
9:05 - 9:15
Review of Manifold Learning
9:15 - 10:30
Clustering and Differential Expression
3.0 Clustering Toy Data
10:30 - 11:00
Coffee Break
11:00 - 12:00
Reducing Noise in scRNAseq Measurements
3.1 Clustering & Denoising Embryoid Body Data
12:00 - 1:00
Lunch
1:00 - 2:30
Identifying Developmental Trajectories
4.0 Computing Diffusion Pseudotime
4.1 Trajectory Inference in Fibroblast Data
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| 2:30 - 3:00 | | Information Theory for Gene-Gene Relationships |
| 3:00 - 3:30 | | Coffee Break |
| 3:30 - 5:00 | | 4.2 Identifying gene trends in Fibroblast Data |
| | | 4.3 Trajectory Inference in EB Data |
| | | 4.4 RNA Velocity |
| | | 4.5 Gene regulatory inference during EMT |
Day 3 — Friday, October 18th
9:00 - 9:15
Introduction (breakfast provided )
9:15 - 10:30
Introduction to Neural Nets & Deep Learning
10:30 - 11:00
Coffee Break
11:00 - 12:00
Neural Network Classifiers & Autoencoders
5.0 Classifying cell types with neural networks
5.1 Exploratory data analysis with autoencoders
12:00 - 1:00
Lunch
1:00 - 2:30
Bring-your-own-data Workshop
4:30 - 5:00
Workshop Presentations
5:00
End of Class Celebration
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Breakpoint - once you get here, please help those around you!