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1
Introduction
2
Recap of previous tutorials
3
tensorflow
4
convolution
5
dropout
6
flattening
7
hidden layers
8
neuron
9
optimizer
10
loss function
11
Epoch
Description:
Gain a comprehensive understanding of deep learning and neural networks in this 34-minute video tutorial. Explore key concepts such as convolution, max pooling, batch normalization, dropout, flatten, activation, optimizer, and loss function. Delve into the fundamentals of TensorFlow, hidden layers, neurons, and epochs. Access accompanying code on GitHub to enhance your learning experience and practical application of these concepts in microscopy-related Python projects.

An Overview of Deep Learning and Neural Networks

DigitalSreeni
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