This course provides an introduction to basic computational methods for understanding what nervous systems do and for determining how they function. We will explore the computational principles governing various aspects of vision, sensory-motor control, learning, and memory. Specific topics that will be covered include representation of information by spiking neurons, processing of information in neural networks, and algorithms for adaptation and learning. We will make use of Matlab/Octave/Python demonstrations and exercises to gain a deeper understanding of concepts and methods introduced in the course. The course is primarily aimed at third- or fourth-year undergraduates and beginning graduate students, as well as professionals and distance learners interested in learning how the brain processes information.

Computational Neuroscience

Computational Neuroscience


Instructors: Rajesh P. N. Rao
Access provided by Tata Communications
149,173 already enrolled
1,142 reviews
Skills you'll gain
- Network Model
- Computer Vision
- Applied Machine Learning
- Machine Learning Algorithms
- Recurrent Neural Networks (RNNs)
- Electrophysiology
- Differential Equations
- Artificial Neural Networks
- Mathematical Modeling
- Neurology
- Reinforcement Learning
- Physiology
- Probability Distribution
- Sensory Systems Analysis
- Supervised Learning
- Biology
- Machine Learning Methods
Tools you'll learn
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There are 8 modules in this course
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Reviewed on Mar 2, 2019
Great course! Really enjoyed the variety of topics and the just enough computational work in the quiz's. And that Eigen hat had me smiling and laughing about it for a week.
Reviewed on May 17, 2020
Excellent course! The field of comp neuro was brough to life by the instructors! The exercises really helped in understanding the content.
Reviewed on Jun 10, 2020
Brilliant course. For a HS student the math was challenging, but the quizzes and assignments were perfect. The tutorials and supplementary materials are super helpful. All in all, I loved it.
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