Python Deep Learning: Exploring deep learning techniques and neural network architectures with PyTorch, Keras, and TensorFlow
With this book, you'll explore deep learning and learn how to put machine learning to use in your projects.
Python Deep Learning: Exploring deep learning techniques and neural network architectures with PyTorch, Keras, and TensorFlow
منتج #: 91676668

Python Deep Learning: Exploring deep learning techniques and neural network architectures with PyTorch, Keras, and TensorFlow

منتج #: 91676668

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    With this book, you'll explore deep learning and learn how to put machine learning to use in your projects.
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    أبرز ما يلفت الانتباه

    Comprehensive Coverage
    This book provides extensive insights into various deep learning techniques and architectures, making it suitable for both beginners and advanced practitioners seeking to deepen their understanding of neural networks.
    Practical Frameworks
    Utilizing popular frameworks like PyTorch, Keras, and TensorFlow, readers gain hands-on experience in implementing deep learning models, addressing real-world problems with practical code examples and exercises.
    Updated Content
    The second edition includes the latest advancements in deep learning, ensuring readers are well-informed about current trends and techniques, enhancing their skills to stay competitive in the evolving tech landscape.

    تفاصيل المنتج

    Shop Python Deep Learning: Exploring deep learning techniques and neural network architectures with PyTorch, Keras, and TensorFlow online at a best price in الامارات. 1789348463
    • Learn advanced state-of-the-art deep learning techniques and their applications using popular Python librariesKey FeaturesBuild a strong foundation in neural networks and deep learning with Python librariesExplore advanced deep learning techniques and their applications across computer vision and NLPLearn how a computer can navigate in complex environments with reinforcement learningBook DescriptionWith the surge in artificial intelligence in applications catering to both business and consumer needs, deep learning is more important than ever for meeting current and future market demands. With this book, you'll explore deep learning, and learn how to put machine learning to use in your projects.This second edition of Python Deep Learning will get you up to speed with deep learning, deep neural networks, and how to train them with high-performance algorithms and popular Python frameworks. You'll uncover different neural network architectures, such as convolutional networks, recurrent neural networks, long short-term memory (LSTM) networks, and capsule networks. You'll also learn how to solve problems in the fields of computer vision, natural language processing (NLP), and speech recognition. You'll study generative model approaches such as variational autoencoders and Generative Adversarial Networks (GANs) to generate images. As you delve into newly evolved areas of reinforcement learning, you'll gain an understanding of state-of-the-art algorithms that are the main components behind popular games Go, Atari, and Dota.By the end of the book, you will be well-versed with the theory of deep learning along with its real-world applications.What you will learnGrasp the mathematical theory behind neural networks and deep learning processesInvestigate and resolve computer vision challenges using convolutional networks and capsule networksSolve generative tasks using variational autoencoders and Generative Adversarial NetworksImplement complex NLP tasks using recurrent networks (LSTM and GRU) and attention modelsExplore reinforcement learning and understand how agents behave in a complex environmentGet up to date with applications of deep learning in autonomous vehiclesWho this book is forThis book is for data science practitioners, machine learning engineers, and those interested in deep learning who have a basic foundation in machine learning and some Python programming experience. A background in mathematics and conceptual understanding of calculus and statistics will help you gain maximum benefit from this book.Table of ContentsMachine Learning - An IntroductionNeural NetworksDeep Learning FundamentalsComputer Vision With Convolutional NetworksAdvanced Computer VisionGenerating images with GANs and Variational AutoencodersRecurrent Neural Networks and Language ModelsReinforcement Learning TheoryDeep Reinforcement Learning for GamesDeep Learning in Autonomous Vehicles
    Publisher Packt Publishing
    Publication date January 16, 2019
    Edition 2nd ed.
    Language English
    Print length 386 pages
    ISBN-10 1789348463
    ISBN-13 978-1789348460
    Item Weight 1.59 pounds (720 grams)
    Dimensions 7.5 x 0.87 x 9.25 inches (19.1 x 2.2 x 23.5 cm)

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    Suitable For
    • Aspiring Data Scientists

      Ideal for beginners wanting to build foundational skills in deep learning and neural networks using popular Python libraries.

    • Machine Learning Developers

      Well-suited for developers looking to deepen their understanding of deep learning techniques for practical machine learning applications.

    • Academic Researchers

      Beneficial for researchers seeking comprehensive insights into advanced neural network architectures and current industry frameworks.

    Not Suitable For
    • Complete Beginners

      Not suitable for those with no programming or machine learning experience, as the material can be quite advanced.

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    Intelligence & Semantics Editorial Review

    **** The "Python Deep Learning - Second Edition" delivers a wide-ranging exploration into deep learning techniques and neural network architectures utilizing popular libraries like PyTorch, Keras, and TensorFlow. It covers crucial advancements in deep learning, effectively transitioning from foundational neural network concepts to more intricate topics such as convolutional and recurrent networks, reinforcement learning, and the practical applications of these methods in autonomous vehicles. Readers appreciate the book's comprehensive approach, which makes it beneficial for both beginners and seasoned practitioners looking to deepen their knowledge in specific areas like Generative Adversarial Networks (GANs) and natural language processing (NLP). The text provides a solid theoretical groundwork while also embedding practical examples that facilitate understanding, particularly in the sections concerning computer vision. However, the book is not without criticism. Some readers noted that while it includes a captivating introduction to reinforcement learning and an overview of AI's historical context, other sections, particularly in NLP, may feel rushed, lacking detailed explanations. Additionally, the second edition has received mixed reviews concerning its content compared to the first; some feel that valuable material has been omitted, leaving it feeling less definitive than its predecessor. Despite these criticisms, "Python Deep Learning - Second Edition" serves as an engaging entry point into deep learning for a broad audience and is recognized for its structured methodology and motivational content. **

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    • 4 نجمة
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    إيجابيات

    • Comprehensive coverage of major deep learning topics.
    • Effective for both beginners and experienced practitioners.
    • Strong theoretical foundation blended with practical examples.
    • Inclusion of multiple deep learning libraries encourages comparisons.
    • Unique features such as chapters on reinforcement learning and autonomous vehicles.

    سلبيات

    • Some sections (e.g., NLP) may lack depth in explanations.

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