Quantum Machine Learning by Wang Min (13 results)

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  • Language: English

    Published by Springer, 2025

    9819512832 / 9789819512836

    • Hardcover

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  • Language: English

    Published by Springer, 2025

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    • Hardcover

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  • Language: English

    Published by Springer Verlag, Singapore, SG, 2025

    9819512832 / 9789819512836

    • Hardcover

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    Hardback. Condition: New. Quantum machine learning (QML) is revolutionizing artificial intelligence by leveraging the power of quantum computing to access previously unimaginable computational possibilities. However, the field remains fragmented-balancing rigorous quantum theory with practical AI applications remains a challenge. This book bridges this gap, offering a systematic, hands-on guide for AI researchers, ML practitioners, and computer scientists eager to explore this emerging frontier. It provides a cohesive roadmap, covering everything from fundamental quantum computing principles to state-of-the-art QML techniques. Readers will explore quantum kernel methods, quantum neural networks, and quantum Transformers, gaining insight into their theoretical foundations, performance advantages, and practical implementations. The book's code demonstrations offer hands-on experience, ensuring that readers can move beyond theory to real-world applications.Designed for those with an AI or ML background, this tutorial does not assume prior expertise in quantum computing. Instead, it presents complex concepts with clarity, making it an essential resource for researchers, graduate students, and industry professionals eager to stay ahead in the quantum AI revolution. Whether you seek to understand quantum speedups, develop quantum-based models, or explore future research directions, this book provides the foundation you need to engage with QML and shape the future of intelligent computing.…

  • Language: English

    Published by Springer Verlag, Singapore, SG, 2025

    9819512832 / 9789819512836

    • Hardcover

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    Hardback. Condition: New. Quantum machine learning (QML) is revolutionizing artificial intelligence by leveraging the power of quantum computing to access previously unimaginable computational possibilities. However, the field remains fragmented-balancing rigorous quantum theory with practical AI applications remains a challenge. This book bridges this gap, offering a systematic, hands-on guide for AI researchers, ML practitioners, and computer scientists eager to explore this emerging frontier. It provides a cohesive roadmap, covering everything from fundamental quantum computing principles to state-of-the-art QML techniques. Readers will explore quantum kernel methods, quantum neural networks, and quantum Transformers, gaining insight into their theoretical foundations, performance advantages, and practical implementations. The book's code demonstrations offer hands-on experience, ensuring that readers can move beyond theory to real-world applications.Designed for those with an AI or ML background, this tutorial does not assume prior expertise in quantum computing. Instead, it presents complex concepts with clarity, making it an essential resource for researchers, graduate students, and industry professionals eager to stay ahead in the quantum AI revolution. Whether you seek to understand quantum speedups, develop quantum-based models, or explore future research directions, this book provides the foundation you need to engage with QML and shape the future of intelligent computing.…

  • Language: English

    Published by Springer, 2025

    9819512832 / 9789819512836

    • Hardcover

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  • Language: English

    Published by Springer, 2025

    9819512832 / 9789819512836

    • Hardcover

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  • Language: English

    Published by Springer, 2025

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    • Hardcover

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  • Language: English

    Published by Springer Verlag, Singapore, SG, 2025

    9819512832 / 9789819512836

    • Hardcover

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    Hardback. Condition: New. Quantum machine learning (QML) is revolutionizing artificial intelligence by leveraging the power of quantum computing to access previously unimaginable computational possibilities. However, the field remains fragmented-balancing rigorous quantum theory with practical AI applications remains a challenge. This book bridges this gap, offering a systematic, hands-on guide for AI researchers, ML practitioners, and computer scientists eager to explore this emerging frontier. It provides a cohesive roadmap, covering everything from fundamental quantum computing principles to state-of-the-art QML techniques. Readers will explore quantum kernel methods, quantum neural networks, and quantum Transformers, gaining insight into their theoretical foundations, performance advantages, and practical implementations. The book's code demonstrations offer hands-on experience, ensuring that readers can move beyond theory to real-world applications.Designed for those with an AI or ML background, this tutorial does not assume prior expertise in quantum computing. Instead, it presents complex concepts with clarity, making it an essential resource for researchers, graduate students, and industry professionals eager to stay ahead in the quantum AI revolution. Whether you seek to understand quantum speedups, develop quantum-based models, or explore future research directions, this book provides the foundation you need to engage with QML and shape the future of intelligent computing.…

  • Language: English

    Published by Springer Verlag GmbH, 2025

    9819512832 / 9789819512836

    • Hardcover

    Seller: moluna, Greven, Germanymoluna

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  • Language: English

    Published by Springer Verlag, Singapore, SG, 2025

    9819512832 / 9789819512836

    • Hardcover

    Seller: Rarewaves.com UK, London, United KingdomRarewaves.com UK

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    Hardback. Condition: New. Quantum machine learning (QML) is revolutionizing artificial intelligence by leveraging the power of quantum computing to access previously unimaginable computational possibilities. However, the field remains fragmented-balancing rigorous quantum theory with practical AI applications remains a challenge. This book bridges this gap, offering a systematic, hands-on guide for AI researchers, ML practitioners, and computer scientists eager to explore this emerging frontier. It provides a cohesive roadmap, covering everything from fundamental quantum computing principles to state-of-the-art QML techniques. Readers will explore quantum kernel methods, quantum neural networks, and quantum Transformers, gaining insight into their theoretical foundations, performance advantages, and practical implementations. The book's code demonstrations offer hands-on experience, ensuring that readers can move beyond theory to real-world applications.Designed for those with an AI or ML background, this tutorial does not assume prior expertise in quantum computing. Instead, it presents complex concepts with clarity, making it an essential resource for researchers, graduate students, and industry professionals eager to stay ahead in the quantum AI revolution. Whether you seek to understand quantum speedups, develop quantum-based models, or explore future research directions, this book provides the foundation you need to engage with QML and shape the future of intelligent computing.…

  • Language: English

    Published by University of Science and Technology of China Press, 2022

    7312049087 / 9787312049088

    • Softcover

    Seller: liu xing, Nanjing, JS, Chinaliu xing

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    paperback. Condition: New. Paperback.Pub Date:2022-01-01 Pages:379 Language:Chinese Publisher:University of Science and Technology of China Press Machine learning expensive classical algorithms. This book comprehensively discusses the theory and framework of classical machine learning and quantum machine learning. as well as recent research trends. covering all aspects of the basic knowledge of classical machine learning as much as possible. including some important research directions and achievements at the forefront.…

  • Language: English

    Published by Springer, 2025

    9819512832 / 9789819512836

    • Hardcover
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  • Language: English

    Published by Springer, 2025

    9819512832 / 9789819512836

    • Hardcover
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