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Computational Neuroscience 2026
This course will cover fundamental aspects of computational approaches to neuroscience problems, including: analytical modeling, numerical calculations, data processing, visualization, and functional applications.
Time: 9 to 12 AM on Wednesdays
Place: Room 839, Library, Information and Research Building
Office hour (online): 10 AM on Fridays by appointment (email cjj@uw.edu to reserve by Thursdays)
Online: https://meet.google.com/qzc-kebi-nvn
Textbooks and References
Syllabus
Basics on tools
Programming in python
Linear algebra
Differential equations
Information theory
Neural representations
Spike trains and firing rates
Spike-trigger average and correlation
Tuning curve and receptive fields
Discrimination and inference
Mutual information and entropy
Modeling neural circuits
Spiking neurons
Synaptic transmissions
Neuronal networks
Details and abstractions
Functions
Adaptive dynamics and plasticity
Information filtering and prediction
Decision making
Learning in neural networks
Homework is assigned weekly
Online quiz will be posted along with each homework
Take home final in the last week
Schedule and materials Videos