Individualized AI tutor based on developmental learning networks발달 학습 네트워크에 기반한 인공지능 개별 교사

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In recent years, in the field of education technology, artificial intelligence tutors have come to be expected to provide individualized educational services to help learners achieve high levels of academic success. To this end, AI tutors need to be able to understand the current status and preferences of a learner and then suggest appropriate learning contents accordingly. However, it is challenging to monitor learner status and preferences continually and to recommend appropriate educational services. In this paper, we propose an individualized AI tutor as an integrated system of three developmental learning networks (DLNs) by extending a deep adaptive resonance theory (Deep ART) network, a neural network capable of incremental learning. Specifically, the learner status DLN is able to easily add new input channels about learner status without disrupting existing classifiers. The learner preference DLN is to categorize learner preferences based on frequency as well as sequence of events. The learner experience DLN is updated to immediately reflect alteration of the educational effectiveness in the current classification. Our AI tutor is currently embedded in a commercialized mobile application for teaching the Korean language to children. Experimental results show that the AI tutor application efficiently helps children learn the Korean language.
Advisors
Kim, Jong-Hwanresearcher김종환researcher
Description
한국과학기술원 :전기및전자공학부,
Publisher
한국과학기술원
Issue Date
2020
Identifier
325007
Language
eng
Description

학위논문(박사) - 한국과학기술원 : 전기및전자공학부, 2020.2,[v, 57 p. :]

Keywords

adaptive resonance theory▼aartificial intelligence tutor▼aindividualized education▼amachine learning▼aonline mobile application; 적응 공명 이론▼a인공지능 교사▼a개별화 교육▼a기계 학습▼a온라인 모바일 어플리케이션

URI
http://hdl.handle.net/10203/284180
Link
http://library.kaist.ac.kr/search/detail/view.do?bibCtrlNo=909408&flag=dissertation
Appears in Collection
EE-Theses_Ph.D.(박사논문)
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