Fr. 89.00

Machine Learning and Knowledge Discovery in Databases: Applied Data Science and Demo Track - European Conference, ECML PKDD 2023, Turin, Italy, September 18-22, 2023, Proceedings, Part VII

English · Paperback / Softback

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Description

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The multi-volume set LNAI 14169 until  14175 constitutes the refereed proceedings of the European Conference on Machine Learning and Knowledge Discovery in Databases, ECML PKDD 2023, which took place in Turin, Italy, in September 2023.The 196 papers were selected from the 829 submissions for the Research Track, and 58 papers were selected from the 239 submissions for the Applied Data Science Track. 
The volumes are organized in topical sections as follows:

Part I: Active Learning; Adversarial Machine Learning; Anomaly Detection; Applications; Bayesian Methods; Causality; Clustering.
Part II:  Computer Vision; Deep Learning; Fairness; Federated Learning; Few-shot learning; Generative Models; Graph Contrastive Learning.
Part III:  Graph Neural Networks; Graphs; Interpretability; Knowledge Graphs; Large-scale Learning.
Part IV:  Natural Language Processing; Neuro/Symbolic Learning; Optimization; Recommender Systems; Reinforcement Learning; Representation Learning.
Part V:  Robustness; Time Series; Transfer and Multitask Learning.
Part VI:  Applied Machine Learning; Computational Social Sciences; Finance; Hardware and Systems; Healthcare & Bioinformatics; Human-Computer Interaction; Recommendation and Information Retrieval.
Part VII: Sustainability, Climate, and Environment.- Transportation & Urban Planning.- Demo.

List of contents

Sustainability, Climate, and Environment.- Transportation & Urban Planning.- Demo.

Product details

Assisted by Elena Baralis (Editor), Francesco Bonchi (Editor), Gianmarco De Francisci Morales (Editor), Nicolas Kourtellis (Editor), Claudia Perlich (Editor), Natali Ruchansky (Editor), Natali Ruchansky et al (Editor)
Publisher Springer, Berlin
 
Languages English
Product format Paperback / Softback
Released 17.09.2023
 
EAN 9783031434297
ISBN 978-3-0-3143429-7
No. of pages 381
Dimensions 155 mm x 23 mm x 235 mm
Illustrations LIV, 381 p. 134 illus., 131 illus. in color.
Series Lecture Notes in Computer Science
Lecture Notes in Artificial Intelligence
Subject Natural sciences, medicine, IT, technology > IT, data processing > IT

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