xidau123 Opublikowano 13 Listopada 2017 Opublikowano 13 Listopada 2017 O'Reilly - Introduction to Deep Learning Duration: 55m | Video: h264, 1280x720 | Audio: AAC, 44100 Hz, 2 Ch | 999 MB Genre: eLearning | Language: English Deep learning neural networks have driven breakthrough results in computer vision, speech processing, machine translation, and reinforcement learning. As a result, neural networks have become an essential part of any data scientist's toolkit. This video introduces neural networks created with Python and MXNet, a flexible and efficient deep learning library. The course explains what neural networks are, why they are powerful algorithms, and why they have a particular structure. It begins by introducing the core components of a neural network (i.e., nodes, weights, biases, activation functions, and layers) before showing you how to build a neural network in MXNet that solves a classic classification problem: identifying handwritten digits from grayscale images. Along the way, you'll learn about the backpropagation algorithm and how neural networks learn. Prerequisites include a basic understanding of Python, linear algebra, and calculus. Learn what deep learning neural networks are, what they're used for, and why they're powerful Discover the particular structure of neural networks and why it matters Explore the basic concepts used in building and training neural networks Understand how to build and train your own neural networks using MXNet Develop a solid platform for learning more about deep learning and neural networks This is the hidden content, please Zaloguj się lub Zarejestruj się Cytuj
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