2019
DOI: 10.1007/s11280-019-00730-9
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From ideal to reality: segmentation, annotation, and recommendation, the vital trajectory of intelligent micro learning

Abstract: The soaring development of Web technologies and mobile devices has blurred time-space boundaries of people's daily activities. Such development together with the lifelong learning requirement give birth to a new learning style, micro learning. Micro learning aims to effectively utilize learners' fragmented time to carry out personalized learning activities through online education resources. The whole workflow of a micro learning system can be separated into three processing stages: micro learning material gen… Show more

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Cited by 20 publications
(16 citation statements)
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“…As a novel online learning style, micro learning aims to utilize users' fragmented spare time by helping them to carry out effective personalized learning activities [1][2][3]. Such online learning activities could be formal, informal, and non-formal [4], and online knowledge sharing is one way of non-formal learning.…”
Section: Introductionmentioning
confidence: 99%
See 1 more Smart Citation
“…As a novel online learning style, micro learning aims to utilize users' fragmented spare time by helping them to carry out effective personalized learning activities [1][2][3]. Such online learning activities could be formal, informal, and non-formal [4], and online knowledge sharing is one way of non-formal learning.…”
Section: Introductionmentioning
confidence: 99%
“…Such online learning activities could be formal, informal, and non-formal [4], and online knowledge sharing is one way of non-formal learning. Quora, 1 Zhihu, 2 and Stackoverflow 3 are the most representative and successful online knowledge platforms, where users share knowledge by asking and answering questions. In the meantime, the online platforms continuously recommend questions and topics to the users based on their interests, background, and learning requirements.…”
Section: Introductionmentioning
confidence: 99%
“…For example, the sparsity of students' behavior. Specifically, students usually use fragmented time to study, which only spend little time on the platform [4]. As a result, each student may only practice a small part of the test questions in system so that the mastery of a large part of knowledge is still unknown, which affects the knowledge tracing and limits the further application.…”
Section: Introductionmentioning
confidence: 99%
“…Ultimately, ARM is utilized to discover and produce machine‐understandable knowledge that can further give rise to the segmentation of non‐micro learning OERs into chunks with much shorter time length, automatic annotation of micro OERs and construction of adaptive mechanisms (Lin, Sun, Cui et al ., 2019).…”
Section: Introductionmentioning
confidence: 99%
“…As investigated in our pilot studies (Lin, Sun, Cui, et al ., 2019; Lin, Sun, Shen, et al ., 2019b), the unsatisfactory availability, readiness and quality of existing educational data, especially for micro open learning, considerably put off the lift of implementation of data‐hungry AI into the current micro OER delivery. Consequently, improving both the quantity and quality of existing data are placed at the central of research of adaptive micro open learning.…”
Section: Introductionmentioning
confidence: 99%