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  • 1
    UID:
    gbv_100062627X
    Umfang: XI, 474 Seiten , Illustrationen
    ISBN: 9783110467574
    Inhalt: Online, offline, airline, guideline, line in the sand, the horizon: lines are omnipresent in our daily lives. They also play a central role in the arts, philosophy, and science. Lines are as basic to our understanding of the world as images, writing, and numbers, and they operate in different ways. The volume presents reflections about lines from the domains of philosophy, mathematics, ethnography, anthropology, cartography, and art theory
    Anmerkung: Literaturverzeichnis: Seite 425-469
    Weitere Ausg.: ISBN 9783110467949
    Weitere Ausg.: ISBN 9783110467659
    Weitere Ausg.: Erscheint auch als Online-Ausgabe Linienwissen und Liniendenken Berlin : De Gruyter, 2017 ISBN 9783110467659
    Weitere Ausg.: ISBN 9783110467949
    Sprache: Deutsch
    Fachgebiete: Ethnologie
    RVK:
    RVK:
    Schlagwort(e): Linie ; Ästhetik ; Aufsatzsammlung
    Bibliothek Standort Signatur Band/Heft/Jahr Verfügbarkeit
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  • 2
    Online-Ressource
    Online-Ressource
    Boca Raton :Chapman & Hall/CRC,
    UID:
    almahu_9949420359602882
    Umfang: 1 online resource (1 volume) : , illustrations (black and white, and colour).
    Ausgabe: Second edition.
    ISBN: 9781003264873 , 1003264875 , 9781000626278 , 100062627X , 9781000626261 , 1000626261
    Inhalt: Introduction to Machine Learning with Applications in Information Security, Second Edition provides a classroom-tested introduction to a wide variety of machine learning and deep learning algorithms and techniques, reinforced via realistic applications. The book is accessible and doesn't prove theorems, or dwell on mathematical theory. The goal is to present topics at an intuitive level, with just enough detail to clarify the underlying concepts. The book covers core classic machine learning topics in depth, including Hidden Markov Models (HMM), Support Vector Machines (SVM), and clustering. Additional machine learning topics include k-Nearest Neighbor (k-NN), boosting, Random Forests, and Linear Discriminant Analysis (LDA). The fundamental deep learning topics of backpropagation, Convolutional Neural Networks (CNN), Multilayer Perceptrons (MLP), and Recurrent Neural Networks (RNN) are covered in depth. A broad range of advanced deep learning architectures are also presented, including Long Short-Term Memory (LSTM), Generative Adversarial Networks (GAN), Extreme Learning Machines (ELM), Residual Networks (ResNet), Deep Belief Networks (DBN), Bidirectional Encoder Representations from Transformers (BERT), and Word2Vec. Finally, several cutting-edge deep learning topics are discussed, including dropout regularization, attention, explainability, and adversarial attacks. Most of the examples in the book are drawn from the field of information security, with many of the machine learning and deep learning applications focused on malware. The applications presented serve to demystify the topics by illustrating the use of various learning techniques in straightforward scenarios. Some of the exercises in this book require programming, and elementary computing concepts are assumed in a few of the application sections. However, anyone with a modest amount of computing experience should have no trouble with this aspect of the book. Instructor resources, including PowerPoint slides, lecture videos, and other relevant materialare provided on an accompanying website: http://www.cs.sjsu.edu/~stamp/ML/.
    Anmerkung: Originally published: 2017.
    Weitere Ausg.: Print version: Stamp, Mark. Introduction to machine learning with applications in information security. Boca Raton : Chapman & Hall/CRC, 2022 ISBN 9781032204925
    Sprache: Englisch
    Schlagwort(e): Electronic books.
    Bibliothek Standort Signatur Band/Heft/Jahr Verfügbarkeit
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