Machine Learning for Biomedical Engineers
Venduto da Majestic Books, Hounslow, Regno Unito
Venditore AbeBooks dal 19 gennaio 2007
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Spedito da Regno Unito a U.S.A.
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Aggiungere al carrelloVenduto da Majestic Books, Hounslow, Regno Unito
Venditore AbeBooks dal 19 gennaio 2007
Condizione: Nuovo
Quantità: 3 disponibili
Aggiungere al carrelloThis book combines machine learning (ML) and biomedical engineering to address practical issues in healthcare and biomedical research concentrating on real-world applications including bioinformatics, customised medicine, medical imaging analysis, disease detection, and health monitoring. It contains case studies and examples that show how various ML algorithms are used on biomedical data sets. The ethical issues and difficulties unique to using ML in biomedical settings, such as data privacy, algorithm bias, and regulatory compliance are also covered.
This book is aimed at graduate students and researchers in bioengineering and ML
Vijay Jeyakumar is an Associate Professor in the Department of Biomedical Engineering at SSN College of Engineering, Chennai, with more than 18 years of academic and research experience. He completed his Ph.D. in Medical Informatics (2015) and M.E., Medical Electronics (2008) from Anna University.
Currently, Dr. Vijay is supervising five Ph.D. students and has successfully guided three research scholars. He is a recognised supervisor of Anna University, Chennai, and a doctoral committee member for several scholars of deemed-to-be Universities. He has published over 80 papers in peer-reviewed journals and conferences and authored 14 book chapters on topics such as medical image retrieval, brain-computer interfaces, machine learning (ML), and deep learning (DL). He has secured funding from organisations including IEEE (USA), NAAC, CSIR, TANSCST, and ISTE for workshops, seminars, and training programs and is involved in four projects funded by DST, TANSCST, AICTE, NASF, and SSN Trust.
He has also received the P K Das Memorial Award and the Imagine Award 2024 for Educational Excellence from Autodesk Corporation. He is the recipient of SSN best teacher award. His six patenting applications are published by Intellectual property India and his three patents are granted. Additionally, he is a Board of Studies member nominated by Anna University, Chennai, and has chaired the Biomedical Engineering boards at both Anna University and Vel Tech University, Chennai. He has been invited as an Academic Auditor by several Technical Institutions.
Dr. J. Vijay is an Editorial board member for three journals and a reviewer for peer-reviewed journals like the Journal of Neuro Computing, Journal of Biomedical and Science Engineering, and many more. Also, he has visited several southeast universities to know modern educational pedagogy initiatives.
N. Venkateswaran is a Professor in the Department of Electronics and Communication Engineering at Sri Sivasubramaniya Nadar College of Engineering, Chennai, where he also serves as the Coordinator of the Internal Quality Assurance Cell (IQAC). He holds a Ph.D. in Information and Communication Engineering from Anna University and an M.Tech from Pondicherry University.
With over 28 years of experience in teaching and research, complemented by six years of industry experience, Dr. Venkateswaran has developed extensive expertise in image and signal processing, biomedical signal processing, deep learning, wireless communication, machine learning (ML), and photonics system design.
He has authored and co-authored more than 120 research papers published in reputed international journals and conferences. In addition to his research contributions, he has actively organised faculty development programs, workshops, and academic events, contributing significantly to academic and professional development within the engineering community. In recognition of his excellence in teaching, he received the Best Teacher Award for the academic year 2021–2022. He also successfully mentored a student team that secured first place in a Smart India Hackathon 2022 contest.
A long-standing member of IEEE, Dr. Venkateswaran has played an active role in the IEEE Signal Processing Society, Madras Chapter, where he served as Secretary and later as Chair. He was also the Organizing Chair of WiSPNET 2021 and has facilitated several IEEE Signal Processing Society Distinguished Lectures, strengthening academic–industry collaboration and knowledge exchange.
Dr. Venkateswaran also served as invited speaker and has chaired technical sessions at several prestigious international conferences, including IEEE TENCON 2016 in Singapore and the 53rd IETE Mid-Term Symposium in Nepal. More recently, he participated in ICASSP 2024 in Seoul and ICASSP 2025, further enhancing his engagement with the global research community.
Dinesh Bhatia earned his Ph.D. in Biomechanics and Rehabilitation Engineering from MNNIT Allahabad in 2010, after completing his Bachelor’s (2002) and Master’s (2004) degrees in Biomedical Engineering from Mumbai University. He also holds an MBA with dual specialisation from IMT Ghaziabad (2007). He is currently a Professor in the Department of Biomedical Engineering at North Eastern Hill University (NEHU), Shillong, where he previously served as Associate Professor since 2013. Before joining NEHU, he worked as Assistant Professor (Sr. Grade) at DCRUST, Murthal, from 2006 to 2013.
He received the prestigious BOYSCAST Young Scientist Award (2011–12) to pursue research in osteoarthritis at Florida International University, USA, and the INAE Fellowship Award in 2011. He was also selected by ICMR as one of India’s twelve young biomedical scientists for research in sensory prosthetics at the University of Glasgow (2014–15). His international training includes biomechanics and gait analysis in Germany and neuromodulation techniques in Russia.
With over 20 years of teaching and research experience, Prof. Bhatia has published more than 350 articles, 14 books, and 36 book chapters, and holds multiple patents. His research spans muscle mechanics, joint dynamics, medical instrumentation, rehabilitation engineering, signal and image processing, and sustainable healthcare innovations.
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