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Core Neural Network Theory and Practice

From perceptrons to backpropagation, systematically learn the core mathematical theories of neural networks and implement them directly in R. Build a solid foundation in deep learning—including activation functions, gradient descent, and multilayer neural networks—while developing the ability to solve classification problems using real-world datasets.

5 learners are taking this course

Level Basic

Course period 3 months

Artificial Neural Network
Artificial Neural Network
classification
classification
gradient-descent
gradient-descent
dnn
dnn
Artificial Neural Network
Artificial Neural Network
classification
classification
gradient-descent
gradient-descent
dnn
dnn

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$4.40