Vendeur : Majestic Books, Hounslow, Royaume-Uni
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Vendeur : Books Puddle, New York, NY, Etats-Unis
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Vendeur : moluna, Greven, Allemagne
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Vendeur : Biblios, Frankfurt am main, HESSE, Allemagne
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Ajouter au panierEtat : New.
Langue: anglais
Edité par Taylor & Francis Ltd Jun 2026, 2026
ISBN 10 : 1032821175 ISBN 13 : 9781032821177
Vendeur : AHA-BUCH GmbH, Einbeck, Allemagne
EUR 260,19
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Ajouter au panierBuch. Etat : Neu. Neuware - The text employs computational techniques and large-scale data analysis to study complex social phenomena and human behavior. It discusses diverse methodologies, including agent-based modeling, network analysis, natural language processing, and machine learning, to gain insights into topics ranging from social network dynamics and opinion formation to economic trends and public health crises.Features: - Discusses the theoretical background of each algorithm in detail and presents the applications of each method. - Presents artificial intelligence implications, sustainable artificial intelligence, and the importance of artificial intelligence in agriculture, and energy. - Explains the use of predictive modeling in computational social science and applications of computational social science. - Showcases the framework for social network analysis, application program interface, data collection methods, and data preprocessing. - Covers topics such as density-based spatial clustering of applications with noise, the role of clustering in computational social science, and clustering in network structure. The text is primarily written for senior undergraduates, graduate students, and academic researchers in the fields of electrical engineering, electronics and communications engineering, computer science and engineering, and information technology.
Langue: anglais
Edité par Taylor & Francis Ltd, London, 2026
ISBN 10 : 1032821175 ISBN 13 : 9781032821177
Vendeur : Grand Eagle Retail, Bensenville, IL, Etats-Unis
EUR 236,71
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Ajouter au panierHardcover. Etat : new. Hardcover. The text employs computational techniques and large-scale data analysis to study complex social phenomena and human behavior. It discusses diverse methodologies, including agent-based modeling, network analysis, natural language processing, and machine learning, to gain insights into topics ranging from social network dynamics and opinion formation to economic trends and public health crises.Features:Discusses the theoretical background of each algorithm in detail and presents the applications of each method.Presents artificial intelligence implications, sustainable artificial intelligence, and the importance of artificial intelligence in agriculture, and energy.Explains the use of predictive modeling in computational social science and applications of computational social science.Showcases the framework for social network analysis, application program interface, data collection methods, and data preprocessing.Covers topics such as density-based spatial clustering of applications with noise, the role of clustering in computational social science, and clustering in network structure.The text is primarily written for senior undergraduates, graduate students, and academic researchers in the fields of electrical engineering, electronics and communications engineering, computer science and engineering, and information technology. The text discusses theoretical background of algorithms and applications of methods using social science problems. It explores different machine-learning approaches to tackle the current issues in the digital world by analyzing social networks. It discusses topics such as principles of semi-supervised learning, and reinforcement algorithms. This item is printed on demand. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.
Langue: anglais
Edité par Taylor & Francis Ltd, London, 2026
ISBN 10 : 1032821175 ISBN 13 : 9781032821177
Vendeur : CitiRetail, Stevenage, Royaume-Uni
EUR 261,99
Quantité disponible : 1 disponible(s)
Ajouter au panierHardcover. Etat : new. Hardcover. The text employs computational techniques and large-scale data analysis to study complex social phenomena and human behavior. It discusses diverse methodologies, including agent-based modeling, network analysis, natural language processing, and machine learning, to gain insights into topics ranging from social network dynamics and opinion formation to economic trends and public health crises.Discusses the theoretical background of each algorithm in detail and presents the applications of each method.Presents artificial intelligence implications, sustainable artificial intelligence, and the importance of artificial intelligence in agriculture, and energy.Explains the use of predictive modeling in computational social science and applications of computational social science.Showcases the framework for social network analysis, application program interface, data collection methods, and data preprocessing.Covers topics such as density-based spatial clustering of applications with noise, the role of clustering in computational social science, and clustering in network structure.The text is primarily written for senior undergraduates, graduate students, and academic researchers in the fields of electrical engineering, electronics and communications engineering, computer science and engineering, and information technology. The text discusses theoretical background of algorithms and applications of methods using social science problems. It explores different machine-learning approaches to tackle the current issues in the digital world by analyzing social networks. It discusses topics such as principles of semi-supervised learning, and reinforcement algorithms. This item is printed on demand. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability.