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2026cns

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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

2026cns.1788967312.txt.gz · Last modified: by cjj