• Title/Summary/Keyword: 맞춤형학습

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Design of Online Learning Mentoring for Disadvantaged Gifted Student (소외계층 영재학생을 위한 온라인 학습 멘토링 설계)

  • Kim, Seong-Won;Kim, Youngmin;Ryu, Jiyoung
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2020.07a
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    • pp.637-639
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    • 2020
  • 본 논문에서는 소외계층 영재학생을 위한 온라인 학습 멘토링 운영 방안을 도출하였다. 소외계층 영재학생에게 필요한 맞춤형 과제, 실생활 문제, 학업 관리를 지원하기 위하여 맞춤형 과제와 피드백, 학업 상담으로 이루어진 온라인 학습 멘토링 운영 방안을 도출하였다. 맞춤형 과제에서는 소외계층 영재학생의 수준에 따라 실생활 주제를 활용한 과제를 제시하였으며, 피드백을 통하여 과제의 결과물을 평가받을 수 있도록 구성하였다. 학업 상담에서는 학업 계획 및 관리 능력을 향상시키기 위하여 전문가와 함께 상담을 진행할 수 있도록 하였다. 후속 연구에서는 온라인 학습 멘토링을 소외계층 영재학생에게 운영하고, 온라인 학습 멘토링의 효과를 분석하는 연구가 진행되어야 한다.

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A technique to support the personalized learning based on the log data of piano chords practicing (피아노 코드 연습 데이터를 활용한 맞춤형 학습 지원)

  • Woosung, Jung;Eunjoo, Lee;Suah, Choe
    • The Journal of the Institute of Internet, Broadcasting and Communication
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    • v.23 no.1
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    • pp.191-201
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    • 2023
  • As Edutech arises which is integrating IT technology into education, many related attempts have been tried on music education area. The focus has been shifted from the teachers to the learners, and this makes the personalized learning emerge. The learner's proficiency is an essential factor to support the personalized learning. The chord fingering is an important technique in piano learning. In this paper, a personalized learning tool for piano chords has been suggested. And then, several utilization ways have been described by analyzing the chords patterns. Specifically, the difficulty of the chords and the proficiency of the learner are derived from the accumulated practicing log data of the users. More effective learning way of the chords has been presented through hierarchical clustering based on chords similarity. Furthermore, the suggested approach where only the practicing log data are used lessens the learner's burden to measure the proficiency and the chord's difficulty without additional efforts like taking tests.

A Study of Federated Learning base Broadcast Information recommendation platform (연합 학습을 이용한 개인 맞춤형 방송 정보 제공 플랫폼 연구)

  • Kim, Hyunsoo;Moon, Nammee
    • Annual Conference of KIPS
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    • 2022.05a
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    • pp.658-660
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    • 2022
  • 본 논문은 개인의 정보를 외부로 유출하지 않고, 소비자 방송 수신 단말 장치에 저장된 데이터를 이용하여 머신 러닝 모델을 학습하고, 소비자가 원하는 맞춤 방송 정보를 제공하는 시스템을 구글의 연합 학습[1] 을 기반한 설계에 관한 것이다. 이를 위하여, 소비자 사용 패턴 및 행동 데이터를 수집하고 저장하며 머신 러닝 학습을 진행 하는 단말 구조와 단말에서 생성된 학습 모델 파라미터 정보를 수집하고 평균화 하는 중앙 서버의 구조를 연구하고, 연합 학습을 이용한 학습 정보를 이용하여 개인 맞춤형 방송 정보를 제공하는 시스템을 연구한다.

Group Learning System supporting a Customized Education (맞춤형 학습이 가능한 단체 학습 시스템 구현 방안)

  • Ahn, Eun-young
    • Proceedings of the Korea Contents Association Conference
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    • 2015.05a
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    • pp.423-424
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    • 2015
  • 본 논문은 학습 수준에 따라 개인별 또는 그룹별로 학습이 가능하도록 지원하는 단체 학습 시스템을 제안한다. 제안하는 시스템은 교수자가 학습능력과 수준의 차이에 따라 학습자를 수준별로 그룹을 임의로 설정하여 설정된 개별 학습자 혹은 학습자 그룹별로 각기 다른 학습 콘텐츠를 제공하도록 함으로써 학생들이 같은 공간, 간은 시간대에 있더라도 개인별 맞춤 학습을 진행하는 것이 가능하다. 개별 학습자 또는 학습자 그룹별로 학습을 독립적으로 진행할 수 있도록 제어함으로써 모든 학습자는 개인화된 학습 시스템을 각기 사용하는 것과 같은 효과를 누리게 된다.

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Analysis technique to support personalized music education based on learner and chord data (맞춤형 음악 교육을 지원하기 위한 학습자 및 코드 데이터 분석 기법)

  • Jung, Woosung;Lee, Eunjoo
    • Journal of the Korea Convergence Society
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    • v.12 no.2
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    • pp.51-60
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    • 2021
  • Due to the growth of digital media technology, there is increasing demand of personalized education based on context data of learners throughout overall education area. For music education, several studies have been conducted for providing appropriate educational contents to learners by considering some factors such as the proficiency, the amount of practice, and their capability. In this paper, a technique has been defined to recommend the appropriate music scores to learners by extracting and analyzing the practice data and chord data. Concretely, several meaningful relationships among chords patterns and learners were analyzed and visualized by constructing the learners' profiles of proficiency, extracting the chord sequences from music scores. In addition, we showed the potential for use in personalized education by analyzing music similarity, learner's proficiency similarity, learner's proficiency of music and chord, mastered chords and chords sequence patterns. After that, the chord practice programs can be effectively generated considering various music scores using the synthetically summarized chord sequence graphs for the music scores that the learners selected.

A Model for Constructing Learner Data in AI-based Mathematical Digital Textbooks for Individual Customized Learning (개별 맞춤형 학습을 위한 인공지능(AI) 기반 수학 디지털교과서의 학습자 데이터 구축 모델)

  • Lee, Hwayoung
    • Education of Primary School Mathematics
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    • v.26 no.4
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    • pp.333-348
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    • 2023
  • Clear analysis and diagnosis of various characteristic factors of individual students is the most important in order to realize individual customized teaching and learning, which is considered the most essential function of math artificial intelligence-based digital textbooks. In this study, analysis factors and tools for individual customized learning diagnosis and construction models for data collection and analysis were derived from mathematical AI digital textbooks. To this end, according to the Ministry of Education's recent plan to apply AI digital textbooks, the demand for AI digital textbooks in mathematics, personalized learning and prior research on data for it, and factors for learner analysis in mathematics digital platforms were reviewed. As a result of the study, the researcher summarized the factors for learning analysis as factors for learning readiness, process and performance, achievement, weakness, and propensity analysis as factors for learning duration, problem solving time, concentration, math learning habits, and emotional analysis as factors for confidence, interest, anxiety, learning motivation, value perception, and attitude analysis as factors for learning analysis. In addition, the researcher proposed noon data on the problem, learning progress rate, screen recording data on student activities, event data, eye tracking device, and self-response questionnaires as data collection tools for these factors. Finally, a data collection model was proposed that time-series these factors before, during, and after learning.

Construction of Tailored Learning Contents by Learner's Level using LCMS (LCMS를 이용한 학습자 수준별 맞춤형 학습 콘텐츠 구성)

  • Jeong, Hwa-Young
    • Journal of Internet Computing and Services
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    • v.11 no.2
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    • pp.165-172
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    • 2010
  • In Web-based learning systems, the techniques, as self-regulated learning, self-directed learning, are used to improve the effect of learner's study. These techniques are methods considering learner's study level but to consider the learner's study ability properly, the tailored course for learner should be applied. In this research, the learning system considering learner's study ability was proposed. To decide a learner's study ability, IRT(Item Response Theory) was applied and learning contents and question items were developed and applied by the degree of difficulty.

An Exploratory Study on the Design Principles of Adaptive Micro-learning Platform (적응형 마이크로러닝 플랫폼 개발원칙에 대한 탐색연구)

  • Jeong, Eun Young;Kang, Inae;Choi, Jung-A
    • The Journal of the Korea Contents Association
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    • v.21 no.12
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    • pp.517-535
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    • 2021
  • The development of digital technology has not only brought many changes to our lives, but also many changes to the online education environment. The emergence of micro-learning is to meet the needs of individual learners who hopes to receive personalized learning content immediately when they need it. Therefore, Micro-learning can be said to be 'adaptive' education. This research attempts to explore the development principles of adaptive micro-learning through literature research and case analysis. The results of the research draw four aspects of the development principles, including adaptive learning environment, adaptive learning content, adaptive learning sequence and adaptive learning evaluation, as well as detailed elements of each aspect. Micro-learning is a new form of e-learning that reflects the needs of the current society. As exploratory research, this research attempts to point out the direction for future follow-up research.

Analysis technique to support personalized English education based on contents (맞춤형 영어 교육을 지원하기 위한 콘텐츠 기반 분석 기법)

  • Jung, Woosung;Lee, Eunjoo
    • Journal of the Korea Convergence Society
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    • v.13 no.3
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    • pp.55-65
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    • 2022
  • As Internet and mobile technology is developing, the educational environment is changing from the traditional passive way into an active one driven by learners. It is important to construct the proper learner's profile for personalized education where learners are able to study according to their learning levels. The existing studies on ICT-based personalized education have mostly focused on vocabulary and learning contents. In this paper, learning profile is constructed with not only vocabulary but grammar to define a learner's learning status in more detailed way. A proficiency metric is defined which shows how a learner is accustomed to the learning contents. The simulational results present the suggested approach is effective to the evaluation essay data with each learner's proficiency that is determined after pre-learning process. Additionally, the proposed analysis technique enables to provide statistics or graphs of the learner's status and necessary data for the learner's learning contents.

AI-Based Educational Platform Analysis Supporting Personalized Mathematics Learning (개별화 맞춤형 수학 학습을 지원하는 AI 기반 플랫폼 분석)

  • Kim, Seyoung;Cho, Mi Kyung
    • Communications of Mathematical Education
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    • v.36 no.3
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    • pp.417-438
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    • 2022
  • The purpose of this study is to suggest implications for mathematics teaching and learning when using AI-based educational platforms that support personalized mathematics learning. To this end, we selected five platforms(Knock-knock! Math Expedition, knowre, Khan Academy, MATHia, CENTURY) and analyzed how the AI-based educational platforms for mathematics reflect the three elements(PLP, PLN, PLE) to support personalized learning. The results of this study showed that although the characteristics of PLP, PLN, and PLE implemented on each platform varied, they were designed to form PLEs that allow learners to make their autonomous decisions about learning based on PLP and PLN. The significance of this study can be found in that it has improved the understanding and practicability of personalized mathematics learning with the AI-based educational platforms.