• 제목/요약/키워드: Artificial intelligence model

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클라우드 기반 인공지능 플랫폼 도입 평가 프레임워크 개발 (Development of Evaluation Framework for Adopting of a Cloud-based Artificial Intelligence Platform)

  • 서광규
    • 반도체디스플레이기술학회지
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    • 제22권3호
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    • pp.136-141
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    • 2023
  • Artificial intelligence is becoming a global hot topic and is being actively applied in various industrial fields. Not only is artificial intelligence being applied to industrial sites in an on-premises method, but cloud-based artificial intelligence platforms are expanding into "as a service" type. The purpose of this study is to develop and verify a measurement tool for an evaluation framework for the adoption of a cloud-based artificial intelligence platform and test the interrelationships of evaluation variables. To achieve this purpose, empirical testing was conducted to verify the hypothesis using an expanded technology acceptance model, and factors affecting the intention to adopt a cloud-based artificial intelligence platform were analyzed. The results of this study are intended to increase user awareness of cloud-based artificial intelligence platforms and help various industries adopt them through the evaluation framework.

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사물인터넷 환경에서의 고등학교 SW·AI 교육 모델 설계 (Design of High School Software AI Education Model in IoT Environment)

  • 이근호;한정수
    • 사물인터넷융복합논문지
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    • 제9권1호
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    • pp.49-55
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    • 2023
  • 디지털 신기술의 진화가 빠르게 진행이 되고 있다. 특히 교육 관련 분야에서는 소프트웨어와 인공지능에 대한 많은 변화가 빠르게 진행이 되고 있다. 교육부에서는 소프트웨어와 인공지능 정규교육과정으로 연계에 의한 교육프로그램을 계획하고 있다. 정규교과로 적용하기 전에 다양한 소프트웨어와 인공지능 관련 체험 캠프를 추진하고 있다. 본 연구는 디지털 신기술을 기반으로 고등학생을 대상으로 소프트웨어와 인공지능 교육프로그램을 위한 교육 모델을 구성하고자 한다. 소프트웨어와 인공지능 교육을 확대 보급함으로써 고등학생들의 소프트웨어와 인공지능 기초역량 높이고자 한다. 고등학교에서의 소프트웨어와 인공지능의 개념을 정의하고 소프트웨어와 인공지능 학습요인을 정규교육과정으로 연계하는 모델을 제안하고자 한다.

인공지능의 학습 특성을 고려한 개인정보 라이프 사이클 모델 (Personal Information life Cycle Model Considering the Learning Cha racteristics of Artificial Intelligence)

  • 장재영;김종민
    • 융합보안논문지
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    • 제24권2호
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    • pp.47-53
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    • 2024
  • 현행 개인정보 라이프 사이클 모델은 전통적인 시스템에 맞추어져 있어서 인공지능의 개인정보 흐름 파악과 효율적인 보호 대책 수립에 적합하지 않은 문제점이 있다. 따라서 본 논문은 인공지능에 적합한 개인정보 라이프사이클 모델을 제시하는 것을 목적으로 한다. 본 논문은 수집-보유-학습-이용-파기·정지 단계와 파기·정지를 위한 재학습 프로세스가 포함된 인공지능의 학습 특성을 고려한 개인정보 라이프 사이클 모델을 제시했다. 이후 기존 모델(개인정보 영향평가와 ISMS-P 모델)과 본 논문에서 새로 제시한 모델의 성능을 평가했다. 이를 통해 새로 제안한 모델이 기존 모델보다 인공지능의 개인정보 라이프 사이클의 설명에 우수한 특성을 가지고 있음을 증명했다.

이미지 기반 인공지능을 활용한 현장 적용성 연구 (Application of artificial intelligence-based technologies to the construction sites)

  • 나승욱;허석재;노영숙
    • 한국건축시공학회:학술대회논문집
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    • 한국건축시공학회 2022년도 봄 학술논문 발표대회
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    • pp.225-226
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    • 2022
  • The construction industry, which has a labour-intensive and conservative nature, is exclusive to adopt new technologies. However, the construction industry is viably introducing the 4th Industrial Revolution technologies represented by artificial intelligence, Internet of Things, robotics and unmanned transportation to promote change into a smart industry. An image-based artificial intelligence technology is a field of computer vision technology that refers to machines mimicking human visual recognition of objects from pictures or videos. The purpose of this article is to explore image-based artificial intelligence technologies which would be able to apply to the construction sites. In this study, we show two examples which is one for a construction waste classification model and another for cast in-situ anchor bolts defection detection model. Image-based intelligence technologies would be used for various measurement, classification, and detection works that occur in the construction projects.

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블록형 프로그래밍 언어 기반 인공지능 교육이 학습자의 인공지능 기술 태도에 미치는 영향 분석 (An Analysis of the Influence of Block-type Programming Language-Based Artificial Intelligence Education on the Learner's Attitude in Artificial Intelligence)

  • 이영호
    • 정보교육학회논문지
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    • 제23권2호
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    • pp.189-196
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    • 2019
  • 인공지능이 우리 생활의 다양한 곳에 사용되기 시작하였으며, 최근 그 영역 또한 점차 확대되고 있다. 하지만 인공지능에 대한 교육이 초등학생을 대상으로 이루어지고 있지 않기 때문에 학생들이 인공지능 기술에 대해 어렵게 인식하는 경향이 있다. 이에 본 논문에서는 교육용 프로그래밍 언어와 인공지능 교육 방법을 고찰하고, 인공지능에 대한 교육을 실시함으로써 학생들의 인공지능 기술에 대한 태도의 변화를 살펴보았다. 이를 위해 학생들의 수준에 적절한 블록형 프로그래밍 언어 기반 인공지능 기술에 대한 교육을 실시하였다. 그리고 학생들의 인공지능 기술에 대한 태도를 단일집단 사전사후 검사를 통해 태도의 변화를 살펴보았다. 그 결과 인공지능에 대한 흥미, 인공지능 기술에 대한 접근 가능성, 학교에서 인공지능 기술에 대한 교육의 필요성에 있어 유의미한 향상을 가져왔다.

A Study on the Determinants of Artificial Intelligence Industry: Evidence from United Kingdom's Macroeconomics

  • He, Yugang
    • 한국인공지능학회지
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    • 제6권2호
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    • pp.1-9
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    • 2018
  • Recently, the rapid development of artificial intelligence industry has resulted in a great change in our modern society. Due to this background, this paper takes the United Kingdom as an example to explore the determinants of artificial intelligence industry in terms of United Kingdom's macroeconomics. The quarterly time series from the first quarter of 2010 to the fourth quarter of 2017 will be employed to conduct an empirical analysis under the vector error correction model. In this paper, the real GDP, the employment figure, the real income, the foreign direct investment, the government budget and the inflation will be regarded as independent variables. The input of artificial intelligence industry will be regarded as a dependent variable. These macroeconomic variables will be applied to perform an empirical analysis so as to explore how the macroeconomic variables affect the artificial intelligence industry. The findings show that the real GDP, the real income, the foreign direct investment and the government budget are the driving determinants to promote the development of artificial intelligence industry. Conversely, the employment figure and the inflation is the obstructive determinants to hamper the development of artificial intelligence industry.

Artificial Intelligence for the Fourth Industrial Revolution

  • Jeong, Young-Sik;Park, Jong Hyuk
    • Journal of Information Processing Systems
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    • 제14권6호
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    • pp.1301-1306
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    • 2018
  • Artificial intelligence is one of the key technologies of the Fourth Industrial Revolution. This paper introduces the diverse kinds of approaches to subjects that tackle diverse kinds of research fields such as model-based MS approach, deep neural network model, image edge detection approach, cross-layer optimization model, LSSVM approach, screen design approach, CPU-GPU hybrid approach and so on. The research on Superintelligence and superconnection for IoT and big data is also described such as 'superintelligence-based systems and infrastructures', 'superconnection-based IoT and big data systems', 'analysis of IoT-based data and big data', 'infrastructure design for IoT and big data', 'artificial intelligence applications', and 'superconnection-based IoT devices'.

Burmese Sentiment Analysis Based on Transfer Learning

  • Mao, Cunli;Man, Zhibo;Yu, Zhengtao;Wu, Xia;Liang, Haoyuan
    • Journal of Information Processing Systems
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    • 제18권4호
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    • pp.535-548
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    • 2022
  • Using a rich resource language to classify sentiments in a language with few resources is a popular subject of research in natural language processing. Burmese is a low-resource language. In light of the scarcity of labeled training data for sentiment classification in Burmese, in this study, we propose a method of transfer learning for sentiment analysis of a language that uses the feature transfer technique on sentiments in English. This method generates a cross-language word-embedding representation of Burmese vocabulary to map Burmese text to the semantic space of English text. A model to classify sentiments in English is then pre-trained using a convolutional neural network and an attention mechanism, where the network shares the model for sentiment analysis of English. The parameters of the network layer are used to learn the cross-language features of the sentiments, which are then transferred to the model to classify sentiments in Burmese. Finally, the model was tuned using the labeled Burmese data. The results of the experiments show that the proposed method can significantly improve the classification of sentiments in Burmese compared to a model trained using only a Burmese corpus.

인공지능 기술을 활용한 데이터 관리 기술 동향 (Trends in Data Management Technology Using Artificial Intelligence)

  • 김창수;박춘서;이태휘;김지용
    • 전자통신동향분석
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    • 제38권6호
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    • pp.22-30
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    • 2023
  • Recently, artificial intelligence has been in the spotlight across various fields. Artificial intelligence uses massive amounts of data to train machine learning models and performs various tasks using the trained models. For model training, large, high-quality data sets are essential, and database systems have provided such data. Driven by advances in artificial intelligence, attempts are being made to improve various components of database systems using artificial intelligence. Replacing traditional complex algorithm-based database components with their artificial-intelligence-based counterparts can lead to substantial savings of resources and computation time, thereby improving the system performance and efficiency. We analyze trends in the application of artificial intelligence to database systems.

인공지능 스피커 사용 동기 형성에 관한 연구 (A Study on the Motivation of Artificial Intelligence Speaker)

  • 임양환
    • 디지털산업정보학회논문지
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    • 제15권3호
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    • pp.55-67
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    • 2019
  • In this study, I researched whether consumers would adopt artificial intelligence speakers. A study was conducted on the motivations that arise when consumers want to use artificial intelligence speakers. Key motivational factors include needs and wants, and emotion is also included in the hypothesis as influencing the intended use. These factors have modeled the motivational process in which consumers want to use artificial intelligence speakers. In the empirical study, the survey was conducted and the survey data was analyzed by applying the method of analysis of the structural equation model. As a result of empirical research, consumers' expectations to meet their general needs for artificial intelligence speakers affected their expectations to meet their wants and their favorable perceptions. And consumers' expectations of meeting their quasi-desire for artificial intelligence speakers have affected their expectations of meeting the wants and affected their perception of favorability. Finally, consumers' expectations for satisfying their wants and their perception of favorability affected their intention to use artificial intelligence speakers. The implications of this study is that it helps to formulate strategies for information technology products with combined functionality. The specific components of motivation can play an important role in increasing consumers' intention to use artificial intelligence speakers.