Brain–Machine Interfaces and Neuro-Robotics: Principles, Systems, and Applications
Language: English
Published by Independently published, 2025
- Softcover
- New

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- Title
- Brain–Machine Interfaces and Neuro-Robotics: Principles, Systems, and Applications
- Author
- Chandigarh University, Prof Harmeet Singh
- Publisher
- Independently published
- Publication year
- 2025
- Condition
- New
- Binding
- Soft cover
- Language
- English
- ISBN 13
- 9798241939265
The relationship between the human brain and machines has long fascinated scientists, engineers, and philosophers alike. What was once the domain of speculative fiction has now become a rapidly advancing scientific and engineering reality. Brain–Machine Interfaces and neuro-robotic systems are no longer experimental curiosities confined to laboratories; they are increasingly shaping healthcare, rehabilitation, communication, industry, defense, and the future of human–machine interaction. This book, Brain–Machine Interfaces and Neuro-Robotics: Principles, Systems, and Applications, is written at this pivotal moment in technological history.
The primary motivation behind this book is to provide a comprehensive, coherent, and interdisciplinary foundation for understanding how the human nervous system can be interfaced with machines in meaningful, safe, and transformative ways. Brain–Machine Interfaces sit at the intersection of neuroscience, biomedical engineering, robotics, artificial intelligence, signal processing, ethics, and clinical practice. While numerous research papers and specialized texts exist in each of these domains, there remains a clear need for an integrated resource that brings these perspectives together into a single, structured narrative. This book aims to fill that gap.
The text is designed to serve multiple audiences. For undergraduate and postgraduate students in engineering, neuroscience, biomedical sciences, and related disciplines, it provides a structured introduction to both fundamental principles and advanced concepts, supported by real-world examples and case studies. For researchers and practitioners, it offers a consolidated reference that connects theory with practice, highlighting experimental methodologies, system architectures, benchmarks, and translational challenges. Clinicians, policymakers, and technology strategists may also find value in the broader discussions on ethics, regulation, societal impact, and future directions.
The book progresses systematically from foundational knowledge to advanced applications. Early chapters establish the biological and engineering fundamentals required to understand neural signal acquisition, processing, and decoding. Subsequent chapters explore machine learning, control strategies, neuro-robotic architectures, and sensory feedback mechanisms that enable practical BMI systems. The middle sections focus on clinical, assistive, and rehabilitation applications, demonstrating how these technologies restore function, communication, and independence. Later chapters expand the scope to cognitive and affective BMIs, industrial, defense, and space applications, and brain-inspired robotics, illustrating how brain–machine integration extends far beyond medicine. The final chapters address ethics, security, emerging technologies, and real-world case studies, ensuring that technical progress is framed within responsible innovation and societal readiness.
A deliberate effort has been made to present the material primarily in well-connected explanatory paragraphs rather than fragmented bullet points. This approach reflects the complex, systems-level nature of brain–machine technologies, where understanding emerges from relationships between concepts rather than isolated facts. Tables are used selectively to summarize comparisons, benchmarks, and design considerations where clarity is enhanced. Throughout the book, emphasis is placed on conceptual understanding, design trade-offs, and practical implications, rather than mathematical formalism alone.
The primary motivation behind this book is to provide a comprehensive, coherent, and interdisciplinary foundation for understanding how the human nervous system can be interfaced with machines in meaningful, safe, and transformative ways. Brain–Machine Interfaces sit at the intersection of neuroscience, biomedical engineering, robotics, artificial intelligence, signal processing, ethics, and clinical practice. While numerous research papers and specialized texts exist in each of these domains, there remains a clear need for an integrated resource that brings these perspectives together into a single, structured narrative. This book aims to fill that gap.
The text is designed to serve multiple audiences. For undergraduate and postgraduate students in engineering, neuroscience, biomedical sciences, and related disciplines, it provides a structured introduction to both fundamental principles and advanced concepts, supported by real-world examples and case studies. For researchers and practitioners, it offers a consolidated reference that connects theory with practice, highlighting experimental methodologies, system architectures, benchmarks, and translational challenges. Clinicians, policymakers, and technology strategists may also find value in the broader discussions on ethics, regulation, societal impact, and future directions.
The book progresses systematically from foundational knowledge to advanced applications. Early chapters establish the biological and engineering fundamentals required to understand neural signal acquisition, processing, and decoding. Subsequent chapters explore machine learning, control strategies, neuro-robotic architectures, and sensory feedback mechanisms that enable practical BMI systems. The middle sections focus on clinical, assistive, and rehabilitation applications, demonstrating how these technologies restore function, communication, and independence. Later chapters expand the scope to cognitive and affective BMIs, industrial, defense, and space applications, and brain-inspired robotics, illustrating how brain–machine integration extends far beyond medicine. The final chapters address ethics, security, emerging technologies, and real-world case studies, ensuring that technical progress is framed within responsible innovation and societal readiness.
A deliberate effort has been made to present the material primarily in well-connected explanatory paragraphs rather than fragmented bullet points. This approach reflects the complex, systems-level nature of brain–machine technologies, where understanding emerges from relationships between concepts rather than isolated facts. Tables are used selectively to summarize comparisons, benchmarks, and design considerations where clarity is enhanced. Throughout the book, emphasis is placed on conceptual understanding, design trade-offs, and practical implications, rather than mathematical formalism alone.
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