• 제목/요약/키워드: National Strategy for AI

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ETRI AI 실행전략 5: AI 전문인력 양성 (ETRI AI Strategy #5: Nurturing AI Professionals)

  • 홍아름;김성민;한억수;연승준
    • 전자통신동향분석
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    • 제35권7호
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    • pp.46-55
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    • 2020
  • As artificial intelligence (AI) technology becomes more important, the demand for AI talent is increasing. However, there is a shortage of AI talent around the world, and it is difficult to secure. Therefore, it has become more important to nurture the AI workforce. The private sector and government in Korea and other countries are making an effort to cultivate AI talent, and ETRI has proposed "Nurturing AI Professionals" as ETRI AI Strategy #5 to meet both internal and national demands for AI talent. ETRI has suggested three key tasks to implement AI Strategy #5. The first one is to create a "top-notch AI talent training project: the ETRI AI Academy" to strengthen AI research capabilities. The second one is "nurturing AI engineers specialized in local-based industries: the ETRI AI Business School" to help supply the necessary AI workforce in the industry. The third one is the "contribution to AI education service for people: ETRI AI Literacy" to raise the public's understanding and utilization of AI.

상황인식 및 의사결정지원을 위한 국방AI기술의 성숙도 수준비교 (A Comparison for the Maturity Level of Defense AI Technology to Support Situation Awareness and Decision Making)

  • 권혁진;주예나;김성태
    • 시스템엔지니어링학술지
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    • 제18권1호
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    • pp.90-98
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    • 2022
  • On February 12, 2019, the U.S. Department of Defense newly established and announced the "Defense AI Strategy" to accelerate the use of artificial intelligence (AI) technology for military purposes. As China and Russia invested heavily in AI for military purposes, the U.S. was concerned that it could eventually lose its advantage in AI technology to China and Russia. In response, China and Russia, which are hostile countries, and especially China, are speeding up the development of new military theories related to the overall construction and operation of the Chinese military based on AI. With the rapid development of AI technology, major advanced countries such as the U.S. and China are actively researching the application of AI technology, but most existing studies do not address the special topic of defense. Fortunately, the "Future Defense 2030 Technology Strategy" classified AI technology fields from a defense perspective and analyzed advanced overseas cases to present a roadmap in detail, but it has limitations in comparing private technology-oriented benchmarking and AI technology's maturity level. Therefore, this study tried to overcome the limitations of the "Future Defense 2030 Technology Strategy" by comparing and analyzing Chinese and U.S. military research cases and evaluating the maturity level of military use of AI technology, not AI technology itself.

ETRI AI 실행전략 6: 산업·공공 AI 활용기술 연구개발 및 적용 (ETRI AI Strategy #6: Developing and Utilizing of AI Technology for Industries and Public Sector)

  • 김태완;연승준
    • 전자통신동향분석
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    • 제35권7호
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    • pp.56-66
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    • 2020
  • As the development of artificial intelligence (AI) technology spreads to various industrial sectors, diversity in AI utilization rapidly increases, creating rich user experience. In addition, AI is required to solve various social problems through the use of public data. The spread of AI utilization across all sectors will continue, covering such industrial and public demands. This article examines the domestic and international trends in AI utilization technologies and establishes the direction of research and development (R&D), which is highly consistent with Korea's AI policy. ETRI, which leads AI's national R&D, has used its experience to establish AI R&D implementation strategies as well as technology roadmaps for the utilization of AI to improve individual quality of life, continuous growth in society, industrial innovation, and the solutions to public societal problems. In addition, it has derived tasks and implementation strategies for developing AI utilization technologies in 10 major areas including medical services.

The Application of Delphi-AHP Method in the Priority of Policies for Expanding the Use of Artificial Intelligence

  • Han, Eunyoung
    • 인터넷정보학회논문지
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    • 제22권4호
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    • pp.99-110
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    • 2021
  • Governments around the world are actively establishing strategies and initiatives to spread the use of artificial intelligence (AI), for AI is not a mere new technology, but is an innovative technology that brings about extensive changes in industrial and social structures and is a core engine that will lead the 4th Industrial Revolution. The South Korean government has also been paying attention to AI as a technology and tool for innovative growth, but its application to the industries is still rather sluggish. The government has prepared multifarious AI-related policies with the aim of constructing South Korea as an AI powerhouse, but there is no clear strategy on which detailed policies to implement first and which industries to apply AI preferentially. With these limitations of South Korea's AI policies in mind, this paper analyzed the priorities of industries in AI adoption and the priorities of AI-related national policies, using Delphi-AHP method for 30 top-level AI experts in South Korea. The results of analysis show that AI application is urgent and necessary in the fields of medical/healthcare, public and safety, and manufacturing, which seems to reflect the peak of the COVID-19 crisis in the second half of 2020 at the time of the investigation. And it turns out that policies related to AI talent cultivation, data, and R&D investment are important and urgent above all in order for organizations to apply AI. This suggests that strategies are required to focus limited national resources on these industries and policies first.

영국의 디지털 정책: AI와 국제규범 전략을 중심으로 (UK's Digital Policies: Focusing on Strategies of AI and International Provisions)

  • 이종용
    • 전자통신동향분석
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    • 제37권6호
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    • pp.11-22
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    • 2022
  • The UK is a service superpower with solid and well-developed financial and insurance services, including FinTech. Much of the UK's service industry is digital and becoming increasingly so. Primary sources constituting the UK's comparative advantage in services could be factored in business conditions driving innovation in the digital age and world-leading digital competitiveness. Therefore, this study examined the UK's digital policies. This research's focal strands were the UK's digital strategy, national artificial intelligence strategy, and digital trade objectives. As an essential insight for policymakers and other stakeholders, this study proposes that government policies in response to the digital economy are inextricably linked, leading to a critical driver for the UK's digital competitiveness.

인공지능 스피커의 교육적 활용에서의 윤리적 딜레마 (Ethical Dilemma on Educational Usage of A.I. Speaker)

  • 한정혜;김종욱
    • 창의정보문화연구
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    • 제7권1호
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    • pp.11-19
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    • 2021
  • 인공지능 국가전략이 발표되면서 인공지능의 교육에 대한 다양한 정책들이 제안되고 있고 교사를 대상으로 하는 인공지능융합교육도 활발히 추진되고 있다. 또한 인공지능 스피커는 각 가정에 판매 및 보급이 되고 있는 실정이고, 인공지능 스피커의 교육적 활용 현장연구들이 시작되고 있다. 이 연구에서는 인공지능 윤리에서 인공지능 스피커가 발생시킬 논란이 될 문제들을 살펴보고, 가정이나 학교에서 인공지능 스피커가 활용될 때 발생할 수 있는 윤리적 딜레마를 도출해보고자 한다. 이 딜레마는 인공지능 스피커에 대한 집단별 도덕적 판단력 수준 측정 MCT(Moral Competence Test)에 활용할 수 있을 것이다.

초등과학교육에서 인공지능의 적용방안 연구 (A Study on the Application of Artificial Intelligence in Elementary Science Education)

  • 신원섭;신동훈
    • 한국초등과학교육학회지:초등과학교육
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    • 제39권1호
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    • pp.117-132
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    • 2020
  • The purpose of this study is to investigate elementary school teachers' awareness of Artificial Intelligence (AI) and find out how to apply it in elementary science education. The survey was conducted online and involved 95 teachers working in the metropolitan area. The results of this study are as follows. First, teachers need to learn about the general characteristics of AI and how to apply it to education. Second, science classes had the highest preference for AI among elementary school subjects. Third, the preference for AI application by elementary science field was 68.4% for earth and space, 54.7% for exercise and energy, 32.6% for matter, 27.4% for life. Fourth, AI-based Science Education (AISE) teaching- learning strategies were developed based on AI characteristics and the changing perspective of elementary science education, AISE's teaching-learning strategies are five: 'automation', 'individualization', 'diversification', 'cooperation' and 'creativity' and teachers can use them in teaching design, class practice and evaluation stages. Finally, the creative problem-solving Doing Thinking Making Sharing (DTMS) model was devised to implement the creativity strategy in AISE. This model consists of four-steps teaching courses: Doing, Thinking, Making and Sharing based on the empirical learning theory. In the future, follow-up research is needed to verify the effectiveness of this model by applying it to elementary science education.

미국의 제3차 상쇄전략을 고려한 국방 인공지능 정책 발전방안 (A study on improvement of policy of artificial intelligence for national defense considering the US third offset strategy )

  • 이세훈;이승훈
    • 산업진흥연구
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    • 제8권1호
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    • pp.35-45
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    • 2023
  • 본 논문은 미국이 추진하고 있는 국방 인공지능 관련 정책 및 3차 상쇄전략의 주요 과제와 경과를 살펴봄으로써, 미국 국방전략의 핵심 지향점 및 추진 동향 등을 분석하고, 미래 국방환경에서 우리나라의 안보를 담보하기 위한 유효적절한 정책적 시사점을 도출하였다. 이에, 미래 국방환경을 위한 첨단 무기체계에 대한 개발 능력 및 핵심기술 확보를 위한 대응방안을 미국의 국방 인공지능 정책과 연계하여 다음과 같이 모색하였다. 인공지능 기반의 국방혁신을 성공적으로 추진하기 위해서는 첫째, 무인·로봇, 자율무기체계 전력 운용을 위한 장기적인 추진전략이 마련되어 져야 한다. 둘째, 국방 데이터의 안전한 수집·저장·관리, 알고리즘 개발 및 컴퓨팅 능력을 확보하기 위한 인공지능 플랫폼 개발이 필요하다. 마지막으로, 한미 동맹에 기반하여 우리나라가 참여 가능한 첨단부품 및 핵심기술을 식별하고, 미국과의 기술협력을 강화해 나가야 한다.

Investigation of AI-based dual-model strategy for monitoring cyanobacterial blooms from Sentinel-3 in Korean inland waters

  • Hoang Hai Nguyen;Dalgeun Lee;Sunghwa Choi;Daeyun Shin
    • 한국수자원학회:학술대회논문집
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    • 한국수자원학회 2023년도 학술발표회
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    • pp.168-168
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    • 2023
  • The frequent occurrence of cyanobacterial harmful algal blooms (CHABs) in inland waters under climate change seriously damages the ecosystem and human health and is becoming a big problem in South Korea. Satellite remote sensing is suggested for effective monitoring CHABs at a larger scale of water bodies since the traditional method based on sparse in-situ networks is limited in space. However, utilizing a standalone variable of satellite reflectances in common CHABs dual-models, which relies on both chlorophyll-a (Chl-a) and phycocyanin or cyanobacteria cells (Cyano-cell), is not fully beneficial because their seasonal variation is highly impacted by surrounding meteorological and bio-environmental factors. Along with the development of Artificial Intelligence (AI), monitoring CHABs from space with analyzing the effects of environmental factors is accessible. This study aimed to investigate the potential application of AI in the dual-model strategy (Chl-a and Cyano-cell are output parameters) for monitoring seasonal dynamics of CHABs from satellites over Korean inland waters. The Sentinel-3 satellite was selected in this study due to the variety of spectral bands and its unique band (620 nm), which is sensitive to cyanobacteria. Via the AI-based feature selection, we analyzed the relationships between two output parameters and major parameters (satellite water-leaving reflectances at different spectral bands), together with auxiliary (meteorological and bio-environmental) parameters, to select the most important ones. Several AI models were then employed for modelling Chl-a and Cyano-cell concentration from those selected important parameters. Performance evaluation of the AI models and their comparison to traditional semi-analytical models were conducted to demonstrate whether AI models (using water-leaving reflectances and environmental variables) outperform traditional models (using water-leaving reflectances only) and which AI models are superior for monitoring CHABs from Sentinel-3 satellite over a Korean inland water body.

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인지지도분석을 활용한 AI SW 인력양성 정책분석 (Policy Analysis on AI SW Human Resources Development Using Cognitive Map Analysis)

  • 이중만
    • Journal of Information Technology Applications and Management
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    • 제28권3호
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    • pp.109-125
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    • 2021
  • For the government of president Moon's AI SW HRD policy, he proclaimed AI democracy that anyone can utilize artificial intelligence technology to spread AI education for the people of the country. Through cognitive map analysis, this study presents expected policy outcomes due to the input of policy factors to overcome crisis factors and utilize opportunity factors. According to the cognitive guidance analysis, first, the opportunity factor is recognized as accelerating the digital transformation to Covid 19 if AI SW HRD is well nurtured. Second, the crisis factor refers to the rapid paradigm shift caused by the intelligence information society, resulting in job losses in the manufacturing sector and deepening imbalance in manpower supply and demand, especially in the artificial intelligence sector. Third, the comprehensive cognitive map shows a circular process for creating an AI SW ecosystem in response to threats caused by untact caused by Corona and a circular process for securing AI talent in response to threats caused by deepening imbalance in manpower supply and demand in the AI sector. Fourth, in order to accelerate the digital circulation that has been accelerated by Corona, we found a circular process to succeed in the Korean version of digital new deal by strengthening national and corporate competitiveness through AI-utilized capacity and industrial and regional AI education. Finally, the AI utilization empowerment strengthening rotation process is the most dominant of the four mechanisms, and we also found a relatively controllable feedback loop to obtain policy outputs.