Activation Functions | Deep Learning Tutorial 8 (Tensorflow Tutorial, Keras & Python)
Activation functions (step, sigmoid, tanh, relu, leaky relu ) are very important in building a non linear model for a given problem. In this video we will cover different activation functions that are used while building a neural network. We will discuss these functions with their pros and cons,
1) Step
2) Sigmoid
3) tanh
4) ReLU (rectified linear unit)
5) Leaky ReLU
We will also write python code to implement these functions and see how they behave for sample inputes.
Github link for code in this tutorial: : https://github.com/codebasics/deep-learning-keras-tf-tutorial/blob/master/2_activation_functions/2_activation_functions.ipynb
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Prerequisites for this series:
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2: Pandas tutorials(first 8 videos): https://www.youtube.com/playlist?list=PLeo1K3hjS3uuASpe-1LjfG5f14Bnozjwy
3: Machine learning playlist (first 16 videos): https://www.youtube.com/playlist?list=PLeo1K3hjS3uvCeTYTeyfe0-rN5r8zn9rw
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Python Tutorial - 2. Variables
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Python Tutorial - 3. Numbers
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Python Tutorial - 4. Strings
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Python Tutorial - 5. Lists
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Python Tutorial - 6. Install PyCharm on Windows
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PyCharm Tutorial - 7. Debug python code using PyCharm
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Python Tutorial - 8. If Statement
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Python Tutorial - 9. For loop
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Python Tutorial - 10. Functions
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Python Tutorial - 11. Dictionaries and Tuples
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Python Tutorial - 12. Modules
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Python Tutorial - 13. Reading/Writing Files
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How to install Julia on Windows
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