Classification Applications with Deep Learning and Machine Learning Technologies

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Geliefert zwischen Fr., 26.12.2025 und Mo., 29.12.2025

Details

This book is very beneficial for early researchers/faculty who want to work in deep learning and machine learning for the classification domain. It helps them study, formulate, and design their research goal by aligning the latest technologies studies' image and data classifications. The early start-up can use it to work with product or prototype design requirement analysis and its design and development.


Presents recent research in Classification Applications with Deep Learning and Machine Learning Technologies Brings together outstanding research and recent developments in the broad areas of Deep Learning and Machine Learning Written by experts in the field

Inhalt
Artocarpus Classification Technique using Deep Learning based Convolutional Neural Network.- Rambutan Image Classification using Various Deep Learning Approaches.- Mango Varieties Classification-based Optimization with Transfer Learning and Deep Learning Approaches.- Salak Image Classification Method based Deep Learning Technique using Two Transfer Learning Models.- Image Processing Identification for Sapodilla Using Convolution Neural Network (CNN) and Transfer Learning Techniques.- Comparison of Pre-trained and Convolutional Neural Networks for Classification of Jackfruit Artocarpus Integer and Artocarpus Heterophyllus.- Markisa/Passion Fruit Image Classification based Improved Deep Learning Approach using Transfer Learning.- Enhanced MapReduce Performance for the Distributed Parallel Computing: Application of the Big Data.- A Novel Big Data Classification Technique for Healthcare Application using Support Vector Machine, Random Forest and J48.- Comparative Study on Arabic Text Classification: Challenges and Opportunities.- Pedestrian Speed Prediction Using Feed Forward Neural Network.- Arabic Text Classification using Modified Artificial Bee Colony Algorithm for Sentiment Analysis: The Case of Jordanian Dialect. <p

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09783031175787
    • Genre Technology Encyclopedias
    • Editor Laith Abualigah
    • Lesemotiv Verstehen
    • Anzahl Seiten 296
    • Herausgeber Springer
    • Größe H235mm x B155mm x T17mm
    • Jahr 2023
    • EAN 9783031175787
    • Format Kartonierter Einband
    • ISBN 3031175786
    • Veröffentlichung 18.11.2023
    • Titel Classification Applications with Deep Learning and Machine Learning Technologies
    • Untertitel Studies in Computational Intelligence 1071
    • Gewicht 452g
    • Sprache Englisch

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