This book is a collection of best-selected research papers presented at the International Conference on Advances in Data-driven Computing and Intelligent Systems (ADCIS 2023) held at BITS Pilani, K. K. Birla Goa Campus, Goa, India, during September 21-23, 2023. It includes state-of-the-art research work in the cutting-edge technologies in the field of data science and intelligent systems. The book presents data-driven computing; it is a new field of computational analysis which uses provided data to directly produce predictive outcomes. The book is useful for academicians, research scholars, and industry persons.…mehr
This book is a collection of best-selected research papers presented at the International Conference on Advances in Data-driven Computing and Intelligent Systems (ADCIS 2023) held at BITS Pilani, K. K. Birla Goa Campus, Goa, India, during September 21-23, 2023. It includes state-of-the-art research work in the cutting-edge technologies in the field of data science and intelligent systems. The book presents data-driven computing; it is a new field of computational analysis which uses provided data to directly produce predictive outcomes. The book is useful for academicians, research scholars, and industry persons.
Swagatam Das received the B. E. Tel. E., M. E. Tel. E (Control Engineering specialization), and Ph. D. degrees, all from Jadavpur University, India, in 2003, 2005, and 2009, respectively. Swagatam Das is currently serving as an associate professor and the head of the Electronics and Communication Sciences Unit of the Indian Statistical Institute, Kolkata, India. His research interests include evolutionary computing and machine learning. Dr. Das has published more than 300 research articles in peer-reviewed journals and international conferences. He is the founding co-editor-in-chief of swarm and evolutionary computation, an international journal from Elsevier. He has also served as or is serving as the associate editor of the IEEE Transactions on Cybernetics, Pattern Recognition (Elsevier), Neurocomputing (Elsevier), Information Sciences (Elsevier), IEEE Trans. on Systems, Man, and Cybernetics: Systems, and so on. Snehanshu Saha holds Master's Degreein Mathematical and Computational Sciences at Clemson University, USA, and Ph.D. from the Department of Applied Mathematics at the University of Texas at Arlington in 2008. He was the recipient of the prestigious Dean's Fellowship during Ph.D. and Summa Cum Laude for being in the top of the class. After working briefly at his Alma matter, Snehanshu moved to the University of Texas El Paso as a regular full-time faculty in the Department of Mathematical Sciences, University of Texas El Paso. Currently, he is a professor of Computer Science and Engineering at PES University since 2011 and heads the Center for AstroInformatis, Modeling, and Simulation. He is also a visiting professor at the Department of Statistics, University of Georgia, USA, and BTS Pilani, India. Carlos A. Coello Coello (Fellow, IEEE) received the Ph.D. degree in computer science from Tulane University, New Orleans, LA, USA, in 1996. He is currently a professor with Distinction (CINVESTAV-3F Researcher), Computer Science Department, CINVESTAV-IPN, Mexico City, Mexico. He has authored and co-authored over 500 technical papers and book chapters. He has also co-authored the book Evolutionary Algorithms for Solving Multiobjective Problems (2nd ed., Springer, 2007) and has edited three more books with publishers such as World Scientific and Springer. His publications currently report over 60000 citations in Google Scholar (his H-index is 96). His major research interests are evolutionary multi-objective optimization and constraint-handling techniques for evolutionary algorithms. He has received several awards, including the National Research Award (in 2007) from the Mexican Academy of Science (in the area of exact sciences), the 2009 Medal to the Scientific Merit from Mexico City's congress, the Ciudad Capital: Heberto Castillo 2011 Award for scientists under the age of 45, in Basic Science, the 2012 Scopus Award (Mexico's edition) for being the most highly citedscientist in engineering in the five years previous to the award and the 2012 National Medal of Science in Physics, Mathematics, and Natural Sciences from Mexico's presidency (this is the most important award that a scientist can receive in Mexico). He also received the Luis Elizondo Award from the Tecnológico de Monterrey in 2019. Dr. Jagdish Chand Bansal is an Associate Professor (Senior Grade) at South Asian University New Delhi and Visiting Faculty at Maths and Computer Science, Liverpool Hope University UK. He also holds visiting professorship at NIT Goa, India. Dr. Bansal obtained his Ph.D. in Mathematics from IIT Roorkee. Before joining SAU New Delhi, he worked as an Assistant Professor at ABV- Indian Institute of Information Technology and Management Gwalior and BITS Pilani. His Primary area of interest is Swarm Intelligence and Nature Inspired Optimization Techniques. Recently, he proposed a fission-fusion social structure based optimization algorithm, Spider Monkey Optimization (SMO), which is being applied to various problems in the engineering domain. He has published over 70 research papers in various international journals/conferences. He is the Section Editor (editor-in-chief) of the journal MethodsX published by Elsevier. He is the series editor of the book series Algorithms for Intelligent Systems (AIS), Studies in Autonomic, Data-driven and Industrial Computing (SADIC), and Innovations in Sustainable Technologies and Computing (ISTC) published by Springer. He is also the Associate Editor of Engineering Applications of Artificial Intelligence (EAAI) and ARRAY published by Elsevier. He is the general secretary of the Soft Computing Research Society (SCRS). He has also received Gold Medal at UG and PG levels.
Inhaltsangabe
Deep learning models for classification of remotely sensed data of sugarcane.- Detection and Analysis of Wormhole Attacks in the AODV Routing Protocol with IEEE 802.11p for the Internet of Vehicles.- A Systematic Review of NLP Applications in Clinical Healthcare: Advancement and Challenges.- An Investigational Analysis of Automatic Speech Recognition on Deep Neural Networks and Gated Recurrent Unit Model.- Matched Filter and Kirsch's Template based approach for Retinal Vessel Segmentation.- Prediction of abnormality in kidney function using classification techniques and fuzzy systems.- Implementation of Parallel Applications on the Hypercube Topology by Using Multistage Network.- Integrating Artificial Intelligence for Adaptive Decision-Making in Complex System.- Qualitative Research Reasoning on Dementia Fore-cast using Machine Learning Techniques.- Implementation of Vision Transformers on SPECT Heart Dataset: A Comparative Study.- CSR U-Net: A Novel Approach for Enhanced Skin CancerLesion Image Segmentation.- Automatic Detection and Classification System for Mesothelioma Cancer using Deep Learning Models with HPO.- A systematic literature survey on IoT in Healthcare: Security and Privacy Threats.- Hybrid Deep Learning Framework for Glaucoma Detection Using Fundus Images.- Sunflower Optimization with Elite Learning Strategy (SFO-ELS) for Antenna Selection in Massive MIMO Sub Array Switching Architecture.- Machine Learning Models for Human Activity Recognition: A Comparative Study.
Deep learning models for classification of remotely sensed data of sugarcane.- Detection and Analysis of Wormhole Attacks in the AODV Routing Protocol with IEEE 802.11p for the Internet of Vehicles.- A Systematic Review of NLP Applications in Clinical Healthcare: Advancement and Challenges.- An Investigational Analysis of Automatic Speech Recognition on Deep Neural Networks and Gated Recurrent Unit Model.- Matched Filter and Kirsch's Template based approach for Retinal Vessel Segmentation.- Prediction of abnormality in kidney function using classification techniques and fuzzy systems.- Implementation of Parallel Applications on the Hypercube Topology by Using Multistage Network.- Integrating Artificial Intelligence for Adaptive Decision-Making in Complex System.- Qualitative Research Reasoning on Dementia Fore-cast using Machine Learning Techniques.- Implementation of Vision Transformers on SPECT Heart Dataset: A Comparative Study.- CSR U-Net: A Novel Approach for Enhanced Skin CancerLesion Image Segmentation.- Automatic Detection and Classification System for Mesothelioma Cancer using Deep Learning Models with HPO.- A systematic literature survey on IoT in Healthcare: Security and Privacy Threats.- Hybrid Deep Learning Framework for Glaucoma Detection Using Fundus Images.- Sunflower Optimization with Elite Learning Strategy (SFO-ELS) for Antenna Selection in Massive MIMO Sub Array Switching Architecture.- Machine Learning Models for Human Activity Recognition: A Comparative Study.
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