Автор: Меhdi Ghауоumi
Издательство: CRC Press
Формат: pdf (true)
Размер: 30.0 MB
This book is an all-inclusive resource that provides a solid foundation on Generative Adversarial Networks (GAN) methodologies, their application to real-world projects, and their underlying mathematical and theoretical concepts.
In recent decades, machines have played a significant role in making human life more comfortable. Machine Learning (ML) is currently one of the most advanced and popular subjects, with numerous applications across various fields. Making machines smarter to better assist humans is a challenge that many enjoy solving, and researchers are working toward this goal, continuously seeking ways to enhance machine intelligence. Numerous algorithms and techniques have been discovered and developed in this field, some traditional, such as Support Vector Machine (SVM) or Decision Tree (DT), and some novel, such as Deep Learning. These methods and studies form part of Machine Learning, an area of Computer Science that has recently piqued both academic and industry interests.
Generative Adversarial Networks (GANs) are one of the most exciting and recently developed Deep Learning methods, showing several promising results in generating new data from existing data. They have a wide range of applications, which we will discuss in this book, along with information about their architectures and methods, as well as step-by-step instructions for implementing them.
- Guides you through the complex world of GANs, demystifying their intricacies
- Accompanies your learning journey with real-world examples and practical applications
- Navigates the theory behind GANs, presenting it in an accessible and comprehensive way
- Simplifies the implementation of GANs using popular deep learning platforms
- Introduces various GAN architectures, giving readers a broad view of their applications
- Nurture your knowledge of AI with our comprehensive yet accessible content
- Practice your skills with numerous case studies and coding examples
- Reviews advanced GANs, such as DCGAN, cGAN, and CycleGAN, with clear explanations and practical examples
- Adapts to both beginners and experienced practitioners, with content organized to cater to varying levels of familiarity with GANs
- Connects the dots between GAN theory and practice, providing a well-rounded understanding of the subject
- Takes you through GAN applications across different data types, highlighting their versatility
- Inspires the reader to explore beyond this book, fostering an environment conducive to independent learning and research
- Closes the gap between complex GAN methodologies and their practical implementation, allowing readers to directly apply their knowledge
- Empowers you with the skills and knowledge needed to confidently use GANs in your projects
Prepare to deep dive into the captivating realm of GANs and experience the power of AI like never before with Generative Adversarial Networks (GANs) in Practice. This book brings together the theory and practical aspects of GANs in a cohesive and accessible manner, making it an essential resource for both beginners and experienced practitioners.
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