Intelligent Dât Ânlysis For E-learning

Thảo luận trong 'Học tập' bởi Bkdlib, 5/5/2024.

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    Intelligent Data Analysis for e-Learning
    Enhancing Security and Trustworthiness in Online Learning Systems
    By: Jorge Miguel; Santi Caballé; Fatos Xhafa
    Publisher:
    Academic Press
    Print ISBN: 9780128045350, 0128045353
    eText ISBN: 9780128045459, 0128045450
    Copyright year: 2017
    Format: EPUB
    Available from $ 130.00 USD
    SKU 9780128045459
    Intelligent Data Analysis for e-Learning: Enhancing Security and Trustworthiness in Online Learning Systems addresses information security within e-Learning based on trustworthiness assessment and prediction. Over the past decade, many learning management systems have appeared in the education market. Security in these systems is essential for protecting against unfair and dishonest conduct—most notably cheating—however, e-Learning services are often designed and implemented without considering security requirements.
    This book provides functional approaches of trustworthiness analysis, modeling, assessment, and prediction for stronger security and support in online learning, highlighting the security deficiencies found in most online collaborative learning systems. The book explores trustworthiness methodologies based on collective intelligence than can overcome these deficiencies. It examines trustworthiness analysis that utilizes the large amounts of data-learning activities generate. In addition, as processing this data is costly, the book offers a parallel processing paradigm that can support learning activities in real-time.
    The book discusses data visualization methods for managing e-Learning, providing the tools needed to analyze the data collected. Using a case-based approach, the book concludes with models and methodologies for evaluating and validating security in e-Learning systems.
    Indexing: The books of this series are submitted to EI-Compendex and SCOPUS
    Provides guidelines for anomaly detection, security analysis, and trustworthiness of data processing
    Incorporates state-of-the-art, multidisciplinary research on online collaborative learning, social networks, information security, learning management systems, and trustworthiness prediction
    Proposes a parallel processing approach that decreases the cost of expensive data processing
    Offers strategies for ensuring against unfair and dishonest assessments
    Demonstrates solutions using a real-life e-Learning context
    Download now: https://ouo.io/ljhL7L
     

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