Modern Computer Vision with PyTorch: A practical roadmap from deep learning fundamentals to advanced applications and Generative AI
The definitive book on computer vision is back and updated with the latest machine learning architecture, including 70+ pages on diffusion models
Modern Computer Vision with PyTorch: A practical roadmap from deep learning fundamentals to advanced applications and Generative AI
منتج #: 81570099

Modern Computer Vision with PyTorch: A practical roadmap from deep learning fundamentals to advanced applications and Generative AI

منتج #: 81570099

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The definitive book on computer vision is back and updated with the latest machine learning architecture, including 70+ pages on diffusion models
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مايفيد

Comprehensive Framework
Covers the entire spectrum of computer vision, from essential theories to cutting-edge generative AI applications, making it suitable for learners at all levels.
Hands-On Approach
Utilizes practical, real-world examples and projects to enhance understanding, ensuring readers can apply learned concepts immediately in their work or research.
Updated Content
Includes the latest advancements in AI and deep learning, providing readers with current methodologies and trends, making the knowledge relevant and applicable in today's fast-evolving tech landscape.

تفاصيل المنتج

Shop Modern Computer Vision with PyTorch: A practical roadmap from deep learning fundamentals to advanced applications and Generative AI online at a best price in قطر. 1803231335
  • The definitive computer vision book is back, featuring the latest neural network architectures and an exploration of foundation and diffusion modelsPurchase of the print or Kindle book includes a free eBook in PDF formatKey FeaturesUnderstand the inner workings of various neural network architectures and their implementation, including image classification, object detection, segmentation, generative adversarial networks, transformers, and diffusion modelsBuild solutions for real-world computer vision problems using PyTorchAll the code files are available on GitHub and can be run on Google ColabBook DescriptionWhether you are a beginner or are looking to progress in your computer vision career, this book guides you through the fundamentals of neural networks (NNs) and PyTorch and how to implement state-of-the-art architectures for real-world tasks.The second edition of Modern Computer Vision with PyTorch is fully updated to explain and provide practical examples of the latest multimodal models, CLIP, and Stable Diffusion.You’ll discover best practices for working with images, tweaking hyperparameters, and moving models into production. As you progress, you'll implement various use cases for facial keypoint recognition, multi-object detection, segmentation, and human pose detection. This book provides a solid foundation in image generation as you explore different GAN architectures. You’ll leverage transformer-based architectures like ViT, TrOCR, BLIP2, and LayoutLM to perform various real-world tasks and build a diffusion model from scratch. Additionally, you’ll utilize foundation models' capabilities to perform zero-shot object detection and image segmentation. Finally, you’ll learn best practices for deploying a model to production.By the end of this deep learning book, you'll confidently leverage modern NN architectures to solve real-world computer vision problems.What you will learnGet to grips with various transformer-based architectures for computer vision, CLIP, Segment-Anything, and Stable Diffusion, and test their applications, such as in-painting and pose transferCombine CV with NLP to perform OCR, key-value extraction from document images, visual question-answering, and generative AI tasksImplement multi-object detection and segmentationLeverage foundation models to perform object detection and segmentation without any training data pointsLearn best practices for moving a model to productionWho this book is forThis book is for beginners to PyTorch and intermediate-level machine learning practitioners who want to learn computer vision techniques using deep learning and PyTorch. It's useful for those just getting started with neural networks, as it will enable readers to learn from real-world use cases accompanied by notebooks on GitHub. Basic knowledge of the Python programming language and ML is all you need to get started with this book. For more experienced computer vision scientists, this book takes you through more advanced models in the latter part of the book.Table of ContentsArtificial Neural Network FundamentalsPyTorch FundamentalsBuilding a Deep Neural Network with PyTorchIntroducing Convolutional Neural NetworksTransfer Learning for Image ClassificationPractical Aspects of Image ClassificationBasics of Object DetectionAdvanced Object DetectionImage SegmentationApplications of Object Detection and SegmentationAutoencoders and Image ManipulationImage Generation Using GANs(N.B. Please use the Read Sample option to see further chapters)
Publisher Packt Publishing
Publication date June 10, 2024
Edition 2nd ed.
Language English
Print length 746 pages
ISBN-10 1803231335
ISBN-13 978-1803231334
Item Weight 2.77 pounds (1.26 kg)
Dimensions 7.5 x 1.68 x 9.25 inches (19.1 x 4.3 x 23.5 cm)

من يجب أن يشتري؟

Suitable For
  • Aspiring Data Scientists

    Ideal for those beginning their journey in data science and wanting to master computer vision using PyTorch.

  • Machine Learning Engineers

    Perfect for engineers seeking to improve their skills and implement advanced techniques in computer vision projects.

  • AI Researchers

    Beneficial for researchers looking to explore the latest advancements and generative AI applications in computer vision.

Not Suitable For
  • Total Beginners

    Not suitable for individuals with no prior programming or machine learning knowledge, as it assumes some familiarity.

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Machine Theory Editorial Review

  • ubuy قطر

Modern Computer Vision with PyTorch: A practical roadmap from deep learning fundamentals to advanced applications and Generative AI is an excellent resource for those eager to dive into the world of computer vision. This well-organized book by V Kishore Ayyadevara and Yeshwanth Reddy covers essential topics such as convolutional neural networks, object detection, and advanced applications like generative models. Its blend of theoretical background and practical examples, including detailed coding insights, makes it invaluable for both beginners and seasoned practitioners. Readers appreciate the structured approach, though some note that certain examples may be slightly outdated, yet resources like ChatGPT assist with troubleshooting. The comprehensive coverage of modern techniques such as Detectron2 and GANs further solidifies its status as a go-to guide for aspiring AI engineers.

مراجعات العملاء وتقييماتهم

4.4
51 تقييمات العملاء
  • 5 نجمة
    69%
  • 4 نجمة
    15%
  • 3 نجمة
    9%
  • 2 نجمة
    5%
  • 1 نجمة
    2%

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إيجابيات

  • Well-structured introduction to computer vision concepts
  • Practical examples facilitate learning and understanding
  • Covers advanced topics like Generative AI and Transformers
  • Hands-on coding examples enhance practicality
  • High-quality insights into real-world applications

سلبيات

  • Some examples may not run due to outdated information

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