Artificial Intelligence: Fundamentals, Algorithms, and Applications: Machine Learning, Deep Learning, Reinforcement Learning, NLP, Computer Vision, Generative AI, Large Language Models, Agentic AI
Language: English
Published by Independently published, 2026
- Softcover
- New

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- Title
- Artificial Intelligence: Fundamentals, Algorithms, and Applications: Machine Learning, Deep Learning, Reinforcement Learning, NLP, Computer Vision, Generative AI, Large Language Models, Agentic AI
- Author
- Namdev, Prof Himanshu; Jain, Prof Rahul
- Publisher
- Independently published
- Publication year
- 2026
- Condition
- New
- Binding
- Soft cover
- Language
- English
- ISBN 13
- 9798187828159
- Series
- Book 1 of 1: Artificial Intelligence
Designed for undergraduate and postgraduate students, educators, researchers, software engineers, and AI enthusiasts, this book offers a comprehensive learning experience that bridges academic concepts with real-world implementation. Beginning with the fundamental principles of Artificial Intelligence, the book gradually introduces readers to intelligent agents, problem-solving techniques, knowledge representation, search algorithms, logical reasoning, and reasoning under uncertainty before progressing to modern machine learning and deep learning methodologies.
Readers will gain a solid understanding of supervised, unsupervised, and reinforcement learning techniques, followed by an in-depth exploration of neural networks, convolutional neural networks (CNNs), recurrent neural networks (RNNs), long short-term memory (LSTM) networks, transformers, and large language models (LLMs). The book also covers cutting-edge topics such as Natural Language Processing (NLP), Computer Vision, Explainable Artificial Intelligence (XAI), Responsible AI, AI ethics, fairness, privacy, AI governance, Generative AI, Agentic AI, autonomous systems, and the future directions of intelligent technologies.
Unlike many introductory AI books that focus primarily on theory, this book integrates mathematical foundations, algorithms, worked examples, comparison tables, diagrams, case studies, and practical applications throughout each chapter. Every topic is presented in a logical progression, enabling readers to build conceptual understanding while developing the analytical and problem-solving skills required for academic research and industrial practice. Review questions and exercises at the end of each chapter further reinforce learning and encourage independent exploration.
The book also introduces readers to widely used AI development tools and frameworks, including Python, NumPy, Pandas, Scikit-learn, TensorFlow, and PyTorch, making it an excellent resource for those seeking both conceptual clarity and practical exposure. Carefully prepared appendices covering Python programming fundamentals, essential AI libraries, and mathematical foundations provide additional support for readers from diverse educational backgrounds.
A distinguishing feature of this book is its emphasis on responsible and ethical AI development. Alongside technical concepts, readers are encouraged to consider the societal implications of intelligent systems, including transparency, explainability, bias mitigation, accountability, privacy preservation, and regulatory frameworks. By integrating these perspectives, the book prepares readers to develop AI solutions that are not only innovative but also trustworthy, fair, and socially responsible.
Whether you are beginning your journey into Artificial Intelligence or seeking a consolidated reference for advanced topics, this book serves as a comprehensive guide that combines academic rigor with practical relevance. It is suitable as a university textbook, a self-learning resource, a reference for competitive examinations, and a companion for professionals working in data science, machine learning, software engineering, and AI research.
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California Books
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