Machine Learning and Artificial Intelligence: Concepts, Algorithms and Models
This book brings it all together in one accessible, engaging package.
Machine Learning and Artificial Intelligence: Concepts, Algorithms and Models
Numéro d'article: 166721909

Machine Learning and Artificial Intelligence: Concepts, Algorithms and Models

Numéro d'article: 166721909

HTG 17589

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Ce qui se démarque

Comprehensive Coverage
This book offers an in-depth exploration of concepts, algorithms, and models in machine learning and AI, catering to both beginners and experts seeking to enhance their understanding of the field.
Practical Examples
Includes real-world applications and case studies that illustrate complex theories, helping readers grasp the practical implications and uses of machine learning and AI in various industries.
Updated Insights
Reflects the latest advancements and trends in machine learning and AI, ensuring that readers are well-informed about contemporary practices, tools, and methodologies to stay competitive.

Détails du produit

Shop Machine Learning and Artificial Intelligence: Concepts, Algorithms and Models online at a best price in Haiti. B0DV3WWMBD
Publisher Reza Rawassizadeh
Publication date March 15, 2025
Edition First Edition
Language English
Print length 1166 pages
ISBN-13 979-8992162103
Item Weight 5.17 pounds (2.35 kg)
Dimensions 11.26 x 8.66 x 2.17 inches (28.6 x 22 x 5.5 cm)

À qui est-ce destiné ?

Suitable For
  • Aspiring Data Scientists

    This book provides essential knowledge and techniques for beginners in data science and machine learning.

  • Academic Researchers

    Researchers can benefit from an in-depth exploration of algorithms and models applicable to AI innovations.

  • Technical Managers

    Managers wishing to understand ML concepts and guide teams effectively will find this resource valuable.

Not Suitable For
  • Casual Readers

    General readers without a technical background may find the content too complex and challenging to grasp.

DESCRIPTION DU PRODUIT

Machine Learning and Artificial Intelligence: Concepts, Algorithms and Models

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Questions et réponses des clients

  • question: What are the main topics covered in 'Machine Learning and Artificial Intelligence: Concepts, Algorithms and Models'?

    répondre: The book delves into fundamental principles of machine learning and AI, covering essential topics like supervised and unsupervised learning, neural networks, decision trees, clustering techniques, and natural language processing. It provides a robust understanding of various algorithms and the models they generate. Engaging with this content is ideal for students or professionals seeking to solidify their foundation or expand their knowledge in these rapidly advancing fields.
  • question: Who is the target audience for this book?

    répondre: This book is aimed at a diverse audience, including students in computer science, data science professionals, and researchers. It's suitable for anyone interested in gaining a comprehensive understanding of machine learning and AI frameworks. The text's balance of theory and practical application makes it an excellent choice for both newcomers and veterans looking to refine their skills or leverage these technologies in real-world scenarios.
  • question: How does the book approach complex algorithms in machine learning?

    répondre: The book explains complex algorithms through detailed examples and visual aids, making difficult concepts more digestible. By breaking down algorithms like gradient descent or support vector machines, it helps readers understand their mechanics and applications. This approach is particularly beneficial for practitioners who need to grasp how these algorithms function when applied to data sets in fields such as finance, healthcare, or marketing.
  • question: Does the book include practical examples or case studies?

    répondre: Yes, the book includes numerous practical examples and case studies that illustrate real-world applications of machine learning and AI concepts. These examples help bridge the gap between theory and practice, allowing readers to see how theoretical frameworks are utilized in industry projects, such as in predictive analytics for customer behavior or automated systems in robotics.
  • question: What is the significance of machine learning in today’s technology landscape?

    répondre: Machine learning drives innovation across various sectors, enabling more data-driven decision making. It is significant because it empowers businesses to utilize vast datasets to optimize operations, enhance customer experiences, and forecast trends. For instance, retailers use machine learning algorithms for inventory management and personalized marketing, showcasing its practical impact on improving efficiency and customer satisfaction.
  • question: Are there any prerequisites for understanding the content in this book?

    répondre: A basic understanding of programming, particularly in languages like Python or R, along with statistical concepts, is recommended to fully grasp the content. While the book is structured to be accessible, familiarity with fundamental programming and statistics enriches the reader's experience. This foundation is vital for implementing the algorithms and concepts discussed when working on machine learning projects.
  • question: Is the first edition sufficient for beginners in AI and machine learning?

    répondre: The first edition serves as a strong introductory resource for beginners. It presents foundational concepts alongside more complex theories, making it suitable for those new to the field. Beginners can benefit from the structured learning approach, which gradually builds complexity, ultimately positioning them to tackle more challenging material in future studies or projects.
  • question: What programming languages are primarily referenced in the book for machine learning implementations?

    répondre: The book primarily references Python, given its widespread use in machine learning and AI applications. Python boasts rich libraries like TensorFlow and Scikit-learn that simplify the implementation of algorithms discussed in the text. Readers will find that these language references not only facilitate practical implementation but also prepare them for future real-world applications in various tech-driven environments.
  • question: Can this book be used as a reference guide for professional development?

    répondre: Absolutely! The detailed explanations and various algorithms highlighted make it an excellent reference for professionals looking to enhance their skill set. Whether used for self-study or as a resource during a project, the contents will keep practitioners informed about latest methodologies and best practices in machine learning, aiding in continuous professional development.
  • question: Where can I buy 'Machine Learning and Artificial Intelligence: Concepts, Algorithms and Models First Edition'?

    répondre: You can purchase 'Machine Learning and Artificial Intelligence: Concepts, Algorithms and Models First Edition' on Ubuy, which offers a convenient platform for accessing this essential resource. Ubuy is known for its wide selection of books and educational materials, ensuring that you obtain your copy efficiently.

Generative AI Editorial Review

**Editorial Review of "Machine Learning and Artificial Intelligence: Concepts, Algorithms and Models"** "Machine Learning and Artificial Intelligence: Concepts, Algorithms and Models" has emerged as a significant resource for anyone delving into the rapidly evolving fields of AI and machine learning. Given the overwhelming volume of information available online—from scattered YouTube tutorials to academic papers—many learners are left feeling confused and anxious. This book aims to fill that gap by providing a clear, structured, and comprehensive guide that balances theoretical concepts with practical applications. Readers have praised the book for its clarity and engaging writing style. The use of diagrams and graphs is particularly highlighted, as they help visualize complex concepts, making them easier to grasp. This visual approach is especially beneficial for visual learners, who find that seeing information represented graphically enhances their understanding. The book builds foundational knowledge well, starting from core mathematical and statistical principles and moving into advanced topics like Vision Transformers (ViT) and Large Language Models (LLMs). One standout feature is its breadth of coverage. It combines essential theory with practical skills, preparing readers for real-world applications in data science. Those who are completely new to the subject matter find this resource useful as it offers a robust starting point, while experienced professionals appreciate its role as a reference guide for both revisiting established concepts and staying current with recent developments in AI. What further enriches the reading experience are the fun examples and approachable tone of the writing, which makes even complex topics feel accessible. Readers come away feeling equipped and confident to tackle their learning journey in AI and data science, an impression reinforced by its thoughtful organization. Overall, this book is highly recommended for anyone looking to solidify their foundation in machine learning and AI, be it a novice or someone already working in the field. **

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Avantages

  • Clear and accessible writing style
  • Extensive use of diagrams and visual aids for better understanding
  • Comprehensive coverage of foundational and advanced topics
  • Well-structured approach suitable for self-learning
  • Balances theory with practical applications
  • Fun examples and relatable tone keep readers engaged

Les inconvénients

  • Not hyper-detailed; may require additional resources for in-depth study

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