Sequential Pattern Mining Model to Identify the Most Important or Difficult Learning Topics via Mobile Technologies

Dublin Core

Title

Sequential Pattern Mining Model to Identify the Most Important or Difficult Learning Topics via Mobile Technologies

Subject

Sequential Pattern Mining (SPM)
Video
Learning
Most Important/Difficult Learning Topics (MIDLT)
Mobile

Description

The paper aim is to come up with methodology for performing video learning data history of learner’s video watching logs, video segments or time series data in accordance with learning processes via mobile technologies. To reach this goal, it is introduced a theoretical method of sequential pattern mining specialized for learning histories in identifying the most important or difficult learning. Based on this method, it is designed a model for understanding and learning the most difficult topics of students topics. The user will be able to use and access the model through mobile technologies when and where he/she wants. The performed video learning history data of learner’s video watching logs consists of functions that are responsible for collection of stop/replay/backward data activities, generation of sequence from the collected learning histories, extraction of important patterns from a set of sequences, and findings of learner’s most difficult/important topic from the extracted patterns. The paper mainly describes the model for understanding and learning the most difficult topics through the sequential pattern mining method. Implementing the method to use in mobile phones is considered as future aim.

Creator

Doko, Edona
Abazi Bexheti, Lejla
Hamiti, Mentor
Prevalla Etemi, Blerta

Source

International Journal of Interactive Mobile Technologies (iJIM); Vol. 12 No. 4 (2018); pp. 109-122
1865-7923

Publisher

International Association of Online Engineering (IAOE), Vienna, Austria

Date

2018-08-30

Rights

Copyright (c) 2018 Edona Doko, Lejla Abazi Bexheti, Mentor Hamiti, Blerta Prevalla Etemi

Relation

Format

application/pdf

Language

eng

Type

info:eu-repo/semantics/article
info:eu-repo/semantics/publishedVersion
Peer-reviewed Article

Identifier

Citation

Edona Doko et al., Sequential Pattern Mining Model to Identify the Most Important or Difficult Learning Topics via Mobile Technologies, International Association of Online Engineering (IAOE), Vienna, Austria, 2018, accessed September 21, 2024, https://igi.indrastra.com/items/show/1360

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