Watch Intro to Python Deep Learning libraries- Tensorflow, Keras, PyTorch | Programming foundations for ML Video Tutorial


Tutorial Details & Info

Tutorial Title: Intro to Python Deep Learning libraries- Tensorflow, Keras, PyTorch | Programming foundations for ML
Instructor / Channel: Vizuara
Lesson Runtime: 34:18 Minutes
Publish Date: May 08, 2025
Total Students / Views: 16,627 views

Follow step-by-step with Intro to Python Deep Learning libraries- Tensorflow, Keras, PyTorch | Programming foundations for ML created by Vizuara. This full video course has a total duration of 34:18 minutes with crystal clear HD video and audio quality. Watch this video tutorial for free on any desktop PC, Mac, tablet, or smartphone.

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Course Description & Lesson Notes

Official Video Description:

Welcome to this foundational lecture on deep learning frameworks in Python – TensorFlow, Keras, and PyTorch. If you are new to machine learning or just getting started with deep learning, this video will give you a comprehensive overview of how to build and train neural networks using the most popular Python libraries. 🧠 Google Colab Notebook (Keras + PyTorch): https://colab.research.google.com/drive/1dIRirQGokkX6rM8g_3HODPDdktUoT_0K?usp=sharing In this hands-on tutorial, you will learn: What is a neural network and why it is called a universal function approximator The role of activation functions like ReLU and Sigmoid The difference between shallow and deep neural networks When to use deep learning vs traditional machine learning How to build a simple binary classification model using Keras with TensorFlow backend How to build the same model from scratch using PyTorch The pros and cons of Keras, TensorFlow, and PyTorch Why GPU acceleration matters in deep learning How to visualize your training progress with accuracy and loss curves You will also see a live coding demo in Google Colab where we: Generate a synthetic dataset using make_classification from Scikit-learn Scale the dataset using StandardScaler Train a simple deep neural network in Keras and then in PyTorch Visualize model performance with Matplotlib Compare training and test accuracy across frameworks Whether you are trying to understand which framework is right for your project, or you simply want to get comfortable writing your first deep learning models, this video will provide a structured and intuitive learning experience.

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🎓 Lesson Overview & Learning Outcomes:

Welcome to the step-by-step video guide for Intro to Python Deep Learning libraries- Tensorflow, Keras, PyTorch | Programming foundations for ML taught by Vizuara. This tutorial provides a comprehensive walkthrough designed to take you from foundational principles to practical implementation.

💡 Key Topics Covered in This Course:

  • Core Fundamentals & Setup: Understanding the workspace, essential tools, and initial setup for Intro to Python Deep Learning libraries- Tensorflow, Keras, PyTorch | Programming foundations for ML.
  • Step-by-Step Practical Demonstration: Hands-on implementation guided by Vizuara with real-world examples.
  • Best Practices & Key Shortcuts: Time-saving workflows, keyboard shortcuts, and industry-standard recommendations.
  • Troubleshooting & Common Pitfalls: How to avoid common beginner errors and optimize your workflow for peak efficiency.

📋 Recommended Prerequisites & Study Notes:

No prior advanced experience is required. Follow along with the video player above on any desktop computer, tablet, or mobile device. Pause and rewind at key steps to practice along with the instructor.

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