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    Analysing Users' Interactions with Khan Academy  Repositories

    Analysing Users' Interactions with Khan Academy Repositories by Yassine, Sahar; Kadry, Seifedine; Sicilia, Miguel-Ángel;

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      • Publisher's listprice EUR 139.09
      • The price is estimated because at the time of ordering we do not know what conversion rates will apply to HUF / product currency when the book arrives. In case HUF is weaker, the price increases slightly, in case HUF is stronger, the price goes lower slightly.

        59 001 Ft (56 192 Ft + 5% VAT)
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    59 001 Ft

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    Availability

    Estimated delivery time: In stock at the publisher, but not at Prospero's office. Delivery time approx. 3-5 weeks.
    Not in stock at Prospero.

    Why don't you give exact delivery time?

    Delivery time is estimated on our previous experiences. We give estimations only, because we order from outside Hungary, and the delivery time mainly depends on how quickly the publisher supplies the book. Faster or slower deliveries both happen, but we do our best to supply as quickly as possible.

    Product details:

    • Edition number 1st ed. 2021
    • Publisher Springer
    • Date of Publication 17 November 2022
    • Number of Volumes 1 pieces, Book

    • ISBN 9783030891688
    • Binding Paperback
    • No. of pages88 pages
    • Size 235x155 mm
    • Weight 174 g
    • Language English
    • Illustrations 3 Illustrations, black & white; 23 Illustrations, color
    • 455

    Categories

    Short description:

    This book addresses the need to explore user interaction with online learning repositories and the detection of emergent communities of users. This is done through investigating and mining the Khan Academy repository; a free, open access, popular online learning repository addressing a wide content scope. It includes large numbers of different learning objects such as instructional videos, articles, and exercises. 

    The authors conducted descriptive analysis to investigate the learning repository and its core features such as growth rate, popularity, and geographical distribution. The authors then analyzed this graph and explored the social network structure, studied two different community detection algorithms to identify the learning interactions communities emerged in Khan Academy then compared between their effectiveness. They then applied different SNA measures including modularity, density, clustering coefficients and different centrality measures to assess the users? behavior patterns and their presence.

    By applying community detection techniques and social network analysis, the authors managed to identify learning communities in Khan Academy?s network. The size distribution of those communities found to follow the power-law distribution which is the case of many real-world networks.

    Despite the popularity of online learning repositories and their wide use, the structure of the emerged learning communities and their social networks remain largely unexplored. This book could be considered initial insights that may help researchers and educators in better understanding online learning repositories, the learning process inside those repositories, and learner behavior.

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    Long description:

    This book addresses the need to explore user interaction with online learning repositories and the detection of emergent communities of users. This is done through investigating and mining the Khan Academy repository; a free, open access, popular online learning repository addressing a wide content scope. It includes large numbers of different learning objects such as instructional videos, articles, and exercises. 

    The authors conducted descriptive analysis to investigate the learning repository and its core features such as growth rate, popularity, and geographical distribution. The authors then analyzed this graph and explored the social network structure, studied two different community detection algorithms to identify the learning interactions communities emerged in Khan Academy then compared between their effectiveness. They then applied different SNA measures including modularity, density, clustering coefficients and different centrality measures to assess the users? behavior patterns and their presence.

    By applying community detection techniques and social network analysis, the authors managed to identify learning communities in Khan Academy?s network. The size distribution of those communities found to follow the power-law distribution which is the case of many real-world networks.

    Despite the popularity of online learning repositories and their wide use, the structure of the emerged learning communities and their social networks remain largely unexplored. This book could be considered initial insights that may help researchers and educators in better understanding online learning repositories, the learning process inside those repositories, and learner behavior.

    More

    Table of Contents:

    1. Introduction to Online Learning Repositories.- 2. Research Objectives.- 3. Literature Review.- 4. Methodology.- 5. Data acquisition.- 6. Assessing Online Learning Repository with Descriptive Statistical Analysis.- 7. Detecting Communities in Online Learning Repository.- 8. SNA Measures and Users? Interactions.- 9. Conclusions.- 10. Future work.

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    Analysing Users' Interactions with Khan Academy  Repositories

    Analysing Users' Interactions with Khan Academy Repositories

    Yassine, Sahar; Kadry, Seifedine; Sicilia, Miguel-Ángel;

    59 001 HUF

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