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    Brand new, In English, Fast shipping from London, UK; Tout neuf, en anglais, expédition rapide depuis Londres, Royaume-Uni;ria9781032081649_dbm

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        Présentation Recurrent Neural Networks de Format Relié

         - Livre Technologie

        Livre Technologie - 01/08/2022 - Relié - Langue : Anglais

        . .

      • Editeur : Crc Press
      • Langue : Anglais
      • Parution : 01/08/2022
      • Format : Moyen, de 350g à 1kg
      • Nombre de pages : 414
      • Expédition : 753
      • Dimensions : 24.0 x 16.1 x 2.7
      • ISBN : 1032081643



      • Résumé :
        .

        Biographie:

        Amit Kumar Tyagi is Assistant Professor (Senior Grade), and Senior Researcher at Vellore Institute of Technology (VIT), Chennai Campus, India. His current research focuses on Machine Learning with Big data, Blockchain Technology, Data Science, Cyber Physical Systems, Smart & Secure Computing and Privacy. He has contributed to several projects such as AARIN and P3-Block to address some of the open issues related to the privacy breaches in Vehicular Applications (such as Parking) and Medical Cyber Physical Systems. He received his Ph.D. Degree from Pondicherry Central University, India. He is a member of the IEEE

        Ajith Abraham is the Director of Machine Intelligence Research Labs (MIR Labs), a Not-for-Profit Scientific Network for Innovation and Research Excellence connecting Industry and Academia. As an Investigator and Co-Investigator, he has won research grants worth over 100+ Million US dollars from Australia, USA, EU, Italy, Czech Republic, France, Malaysia and China. His research focuses on real world problems in the fields of machine intelligence, cyber-physical systems, Internet of things, network security, sensor networks, Web intelligence, Web services, and data mining. He is the Chair of the IEEE Systems Man and Cybernetics Society Technical Committee on Soft Computing. He is the editor-in-chief of Engineering Applications of Artificial Intelligence (EAAI) and serves/served on the editorial board of several International Journals. He received his Ph.D. Degree in Computer Science from Monash University, Melbourne, Australia.

        Sommaire:

        Section I: Introduction 1. A Road Map to Artificial Neural Network 2. Applications of Recurrent Neural Network: Overview and Case Studies 3. Image to Text Processing Using Convolution Neural Networks 4. Fuzzy Orienteering Problem Using Genetic Search 5. A Comparative Analysis of Stock Value Prediction Using Machine Learning Technique Section II: Process and Methods 6. Developing Hybrid Machine Learning Techniques to Forecast the Water Quality Index (DWM-Bat & DMARS) 7. Analysis of RNNs and Different ML and DL Classifiers on Speech- Based Emotion Recognition System Using Linear and Nonlinear Features 8. Web Service User Diagnostics with Deep Learning Architectures 9. D-SegNet: A Modified Encoder-Decoder Approach for Pixel-Wise Classification of Brain Tumor from MRI Images 10. Data Analytics for Intrusion Detection System Based on Recurrent Neural Network and Supervised Machine Learning Methods Section III: Applications 11. Triple Steps for Verifying Chemical Reaction Based on Deep Whale Optimization Algorithm (VCR-WOA) 12. Structural Health Monitoring of Existing Building Structures for Creating Green Smart Cities Using Deep Learning 13 Artificial Intelligence-Based Mobile Bill Payment System Using Biometric Fingerprint 14. An Efficient Transfer Learning-Based CNN Multi-Label Classification and ResUNET Based Segmentation of Brain Tumor in MRI 15. Deep Learning-Based Financial Forecasting of NSE Using Sentiment Analysis 16. An Efficient Convolutional Neural Network with Image Augmentation for Cassava Leaf Disease Detection Section IV: Post-COVID-19 Futuristic Scenarios- Based Applications: Issues and Challenges 17. AI-Based Classification and Detection of COVID-19 on Medical Images Using Deep Learning 18. An Innovative Electronic Sterilization System (S-Vehicle, NaOCI.5H2O and CeO2NP) 19. Comparative Forecasts of Confirmed COVID-19 Cases in Botswana Using Box-Jenkin's ARIMA and Exponential Smoothing State-Space Models 20. Recent Advancement in Deep Learning: Open Issues, Challenges, and a Way Forward

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