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TensorFlow, Google’s open-source deep learning library, is one of the most widely used tools in artificial intelligence and machine learning today. Mastering it is essential for anyone pursuing deep learning. In this course, you will learn to use TensorFlow 2 to build and train convolutional neural networks (CNNs). You’ll begin with a detailed exploration of convolution—what it is, why it matters, and how to integrate it into neural networks. From there, you’ll apply CNNs to a range of image recognition datasets, progressing from simple to complex challenges. You will also learn how to perform text preprocessing and classification with CNNs. Finally, the course covers advanced techniques such as batch normalization, data augmentation, and transfer learning to boost performance in computer vision tasks. By the end, you will have the skills to confidently build and optimize CNNs with TensorFlow for real-world deep learning applications.
The Deep Neural Networks using Python Online Course is ideal for data scientists, machine learning practitioners, software developers, and AI enthusiasts who want to gain hands-on experience in building and training deep learning models with Python. It is also suitable for students, researchers, and professionals in fields like computer vision, natural language processing, and automation who are eager to apply deep neural networks to solve complex real-world problems.
Introduction
Basics of Deep Learning
Deep Learning
Optimizations
Final Project
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