• Title/Summary/Keyword: 교육용 인공지능 도구

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A Design and Effect of Maker Education Using Educational Artificial Intelligence Tools in Elementary Online Environment (초등 온라인 환경에서 교육용 인공지능 도구를 활용한 메이커 수업 설계 및 효과)

  • Kim, Keun-Jae;Han, Hyeong-Jong
    • Journal of Digital Convergence
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    • v.19 no.6
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    • pp.61-71
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    • 2021
  • In a situation where the online learning is expanding due to COVID-19, the current maker education has limitations in applying it to classes. This study is to design the class of online maker education using artificial intelligence tools in elementary school. Also, it is to identify the responses to it and to confirm whether it helps improve the learner's computational thinking and creative problem solving ability. The class was designed by the literature review and redesign of the curriculum. Using interveiw, the responses of instructor and learners were identified. Pre- and post-test using corresponding sample t-test was conducted. As a result, the class consisted of ten steps including empathizing, defining making problems, identifying the characteristics of material and tool, designing algorithms and coding using remixes, etc. For computing thinking and creative problem solving ability, statistically significant difference was found. This study has the significance that practical maker activities using educational artificial intelligence tools in the context of elementary education can be practically applied even in the online environment.

Development of AI Ethics Dilemma Questions (인공지능 윤리 딜레마 문항 개발)

  • Eun-Gyeong Kim;Young-Jun Lee
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2023.01a
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    • pp.225-226
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    • 2023
  • 인공지능 기술이 사회 전반에 확산하며, 인공지능 윤리 문제 또한 큰 이슈가 되었다. 이에 따라 정부, 기업, 연구기관, 국제기구 등 다양한 단체에서 인공지능 기준안을 발표하고 있으나 이러한 인공지능 윤리 기준안을 발표하는 것으로 인공지능 윤리 문제를 해결할 수 없다. 이에 인공지능 윤리교육이 절실히 필요하다. 그러나 학교급에서의 인공지능 윤리교육을 위한 프로그램이 미흡하다. 이러한 상황에서 Moral machine은 인공지능을 위한 윤리교육 도구로 학교급을 막론하고 활발하게 사용되고 있다. 그러나 Moral machine의 딜레마 상황은 교육용으로 다소 부적절한 요소가 있다. 이에 본 연구에서는 인공지능 윤리교육에 적합한 인공지능 윤리 딜레마 문항을 사람이 중심이 되는 인공지능 기준의 3대 원칙을 바탕으로 개발하였다.

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Research of Data Collection for AI Education Using Physical Computing Tools (피지컬 교구를 이용한 인공지능 교육용 데이터 수집 연구)

  • Lee, Jaeho;Jun, Doyeon
    • Journal of Creative Information Culture
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    • v.7 no.4
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    • pp.265-277
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    • 2021
  • Data is the core of AI technology. With the development of technology, AI technology is also accelerating as the amount of data increases explosively than before. However, compared to the interest in AI education, research on data education with AI is still insufficient. According to the case analysis of exsisting AI data education, there were cases of educating the process and part of data science, but it was hard to find studies related to data collection. Cause physical computing tools have a positive effect on AI education for elementary school students, data collection cases using tools were studied, but researches related to data collection were rare. Therefore, in this study, an efficient data collection method using physical tools was designed. A structural diagram of a data collection program was created using COBL S, a modular physical computing teaching tool, and examples of program screens from the service side and the user side were configured. This study has limitations in that the establishment of an AI education platform that can be used in conjunction with future program production and programs should be prioritized as a proposal in terms of design.

A Design of Dynamic Lesson Planner in Intelligent Tutoring System (지능형 교수시스템에서 동적 레슨 플랜생성기의 설계)

  • 이재인;이재무
    • Proceedings of the Korea Association of Information Systems Conference
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    • 1997.10a
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    • pp.39-52
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    • 1997
  • 본 연구는 언어 교육용 프로그램을 개발하는 저작도구9authoring tool)와 학생들이 자율적으로 학습할 수 있는 지능형 컴퓨터 교사시스템(ITS : Intelligent Tutoring System)으 로 구성된 지능형 학습환경(Intelligent Learning Environment)을 설계한다. 특히, 범용시스 템에서 제공되는 불필요한 기능들을 제거하고 언어교육에 필요한 기능만을 가진 간편한 저 작도구의 설계와, 인공지능 기법을 이요하여 학생 개개인의 지식수준에 따라 차별화하여 지 능적으로 교육할 수 있는 지능형 교사시스템의 구성 방법을 제안한다.

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Development and Application of an Artificial Intelligence Convergence Education Program Linked to School Library Reading Activities for Middle School Students (중학생을 위한 학교도서관의 독서활동 연계 인공지능 융합교육 프로그램의 개발과 적용)

  • Yonju No;Ji Won You
    • Journal of the Korean Society for information Management
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    • v.41 no.1
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    • pp.439-463
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    • 2024
  • Recently, there has been a growing demand for school libraries to take on the role of curriculum convergence and content development. This study purposed to develop a program that integrates reading activities and artificial intelligence (AI) education in a middle school library as a platform for convergence education. The program aimed to enhance creative problem-solving skills by integrating an understanding of AI concepts and principles through reading activities related to AI topics. The program, comprising 18 sessions (6 modules), was implemented with 36 first-year students at A Middle School, Gyeonggi-do, in 2022. After implementation, a paired-sample t-test revealed significant improvements in AI learning self-efficacy and creative problem-solving skills. Participants also showed positive attitudes toward class engagement and reading activities. Implications for AI convergence education in connection with school libraries were discussed.

Recommendations for the Construction of a Quslity-Controlled Stress Measurement Dataset (품질이 관리된 스트레스 측정용 테이터셋 구축을 위한 제언)

  • Tai Hoon KIM;In Seop NA
    • Smart Media Journal
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    • v.13 no.2
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    • pp.44-51
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    • 2024
  • The construction of a stress measurement detaset plays a curcial role in various modern applications. In particular, for the efficient training of artificial intelligence models for stress measurement, it is essential to compare various biases and construct a quality-controlled dataset. In this paper, we propose the construction of a stress measurement dataset with quality management through the comparison of various biases. To achieve this, we introduce strss definitions and measurement tools, the process of building an artificial intelligence stress dataset, strategies to overcome biases for quality improvement, and considerations for stress data collection. Specifically, to manage dataset quality, we discuss various biases such as selection bias, measurement bias, causal bias, confirmation bias, and artificial intelligence bias that may arise during stress data collection. Through this paper, we aim to systematically understand considerations for stress data collection and various biases that may occur during the construction of a stress dataset, contributing to the construction of a dataset with guaranteed quality by overcoming these biases.

Meta-analysis of the Application Effect of AI Educational Robots in Teaching in the New Period (새로운 시대의 교육에서 AI 교육 로봇의 응용 효과에 대한 메타 분석)

  • Cui, Jian-Dong;Song, Seung-keun
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2021.05a
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    • pp.52-54
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    • 2021
  • With the advent of the era of artificial intelligence, robot education and teaching under its empowerment have been widely concerned and applied worldwide. The purpose of this study: systematically evaluate the application effect of AI educational robots in student education and teaching; the method of this study: use the computer to search for relevant education in the search tools such as "Web of Science", "CNKI", "ERIC", "IEEE" A comparative study of the effects of robot teaching and traditional teaching. The retrieval time is from January 2000 to January 2020. Comprehensive MetaAnalysis 2.0 was used for Meta analysis. The results of this study: A quantitative analysis of the 31 valid research literatures included, and an objective evaluation of the effect of the meta-analysis on AI educational robots. The analysis results show that the combined effect of AI educational robots on student learning effects is 0.465 This indicates that educational robots have a moderately positive effect on students 'learning effectiveness. The conclusion of this study: The application effect of AI educational robots in student education and teaching is better than traditional education methods, which can better promote student learning.

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A Study on Elementary Education Examples for Data Science using Entry (엔트리를 활용한 초등 데이터 과학 교육 사례 연구)

  • Hur, Kyeong
    • Journal of The Korean Association of Information Education
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    • v.24 no.5
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    • pp.473-481
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    • 2020
  • Data science starts with small data analysis and includes machine learning and deep learning for big data analysis. Data science is a core area of artificial intelligence technology and should be systematically reflected in the school curriculum. For data science education, The Entry also provides a data analysis tool for elementary education. In a big data analysis, data samples are extracted and analysis results are interpreted through statistical guesses and judgments. In this paper, the big data analysis area that requires statistical knowledge is excluded from the elementary area, and data science education examples focusing on the elementary area are proposed. To this end, the general data science education stage was explained first, and the elementary data science education stage was newly proposed. After that, an example of comparing values of data variables and an example of analyzing correlations between data variables were proposed with public small data provided by Entry, according to the elementary data science education stage. By using these Entry data-analysis examples proposed in this paper, it is possible to provide data science convergence education in elementary school, with given data generated from various subjects. In addition, data science educational materials combined with text, audio and video recognition AI tools can be developed by using the Entry.

An Exploratory study on Student-Intelligent Robot Teacher relationship recognized by Middle School Students (중학생이 인식하는 학습자-지능형로봇 교사의 관계 형성 요인)

  • Lee, Sang-Soog;Kim, Jinhee
    • Journal of Digital Convergence
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    • v.18 no.4
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    • pp.37-44
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    • 2020
  • This study aimed to explore the relationship between Intelligent Robot Reacher(IRT)-student by examining the factors of their relationship perceived by middle school students. In doing so, we developed questionnaires based on the existing teacher-student relationship scale and conducted an online survey of 283 first graders in middle school. The collected date were analyzed using exploratory factor analyses with SPSS 23 and confirmatory factor analysis with Amos 21. The study findings identified four factors of IRT-student relationship namely "trust", "competence", "emotional exchange", and "tolerance". It is expected that the study can be used to discuss ways to enhance educationally significant interaction between students-IRT and teaching methods using intelligent robots(IRs). Also, the study will contribute to the understanding and development of various services using IRs. Based on the study finidngs, future studies should investigate the perception of various education stockholders (teachers, parets, etc) on IRT to elevate the Human-Robot Interaction in the education field.