• 제목/요약/키워드: artificial intelligence design

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Knowledge Based and Object-Oriented Simulation Model for Logistics Analysis (지식기반 객체지향 군수시뮬레이션 모델에 관한 연구 - 초기군수지원성 분석모델을 중심으로 -)

  • 마호명;최상영
    • Journal of the military operations research society of Korea
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    • v.22 no.1
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    • pp.67-80
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    • 1996
  • Artificial Intelligence(AI) techniques and Object-Oriented(OO) techniques contribute to the simulation modeling of the complex systems. AI techniques are suitable to model human reasoning in the simulation. While OO techniques have advantages of re-usability, maintainability and extendability of the software. Thus, in this paper, we design a knowledge-based object-oriented simulation model, particularly for the logistics analysis of military armor vehicles. The simulation model consists of three modules i.e., scenario, simulation mechanism, and inference engine. The model is designed within the OO paradigm and implemented by using the C++ language. An example case of using the model for the logistic analysis is included.

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Corporate Credit Rating using Partitioned Neural Network and Case- Based Reasoning (신경망 분리모형과 사례기반추론을 이용한 기업 신용 평가)

  • Kim, David;Han, In-Goo;Min, Sung-Hwan
    • Journal of Information Technology Applications and Management
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    • v.14 no.2
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    • pp.151-168
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    • 2007
  • The corporate credit rating represents an assessment of the relative level of risk associated with the timely payments required by the debt obligation. In this study, the corporate credit rating model employs artificial intelligence methods including Neural Network (NN) and Case-Based Reasoning (CBR). At first we suggest three classification models, as partitioned neural networks, all of which convert multi-group classification problems into two group classification ones: Ordinal Pairwise Partitioning (OPP) model, binary classification model and simple classification model. The experimental results show that the partitioned NN outperformed the conventional NN. In addition, we put to use CBR that is widely used recently as a problem-solving and learning tool both in academic and business areas. With an advantage of the easiness in model design compared to a NN model, the CBR model proves itself to have good classification capability through the highest hit ratio in the corporate credit rating.

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Design and implementation of artificial intelligence-based speech recognition for silver generation and single household "Voice" Application (실버세대 및 1인 가구를 위한 인공지능 기반 음성인식 'Voice' Application 설계 및 구현)

  • Cho, Young-Ju;Kim, Jin-Hyuk;Sun, A-Young;Oh, Ji-Hoon
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2017.07a
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    • pp.141-144
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    • 2017
  • 4차 산업혁명 시대에 살고 있는 현대인들은 혼자 사는 1인 가구의 증가와 고령화 사회의 진입으로 인한 실버세대가 증가하는 추세이다. 외로움, 소외감, 우울증을 겪는 1인 가구 및 실버세대의 문제점을 해소시켜 주고 더 나아가 실버세대의 스마트폰 활성화를 위해 본 논문에서는 인공지능 기반 음성인식 기능을 탑재한 'Voice' 어플리케이션을 제안하고자 한다.

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A Study on the Evolvable Hardware Design (EHW) (진화형하드웨어 설계에 관한 연구)

  • Kim, Jong-O;Kim, Duck-Soo;Lee, Won-Seok
    • Proceedings of the IEEK Conference
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    • 2007.07a
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    • pp.449-450
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    • 2007
  • Evolvable hardware(EHW) is a dynamic field that brings together reconfigurable hardware, artificial intelligence, fault tolerance and autonomous systems. This paper gives an introduction to the field. The features that can be used to identify and classify evolvable hardware are the evolutionary algorithm, the implementation and the genotype representation. Evolvable hardware (EHW) is hardware that can change its own circuit structure by genetic learning to achieve maximum adaptation to the environment. In conventional EHW, the learning is executed by software on a computer.

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Strategies of smart factory building and Application of small & medium-sized manufacturing enterprises (스마트팩토리 구축전략과 중소.중견 제조기업의 적용 방안)

  • Park, Jong-Shik;Kang, Kyung-sik
    • Journal of the Korea Safety Management & Science
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    • v.19 no.1
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    • pp.227-236
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    • 2017
  • Smart Manufacturing Factory is a paradigm of the future lead to the fourth industrial revolution that led Germany and the United States. Now the automation of the production facility and won a certain degree, and through the process of integrating the entire process, including planning, design, distribution of information and communication technology products in emerging as a core competitiveness of the national economy. In particular, the company accelerated the smart factory building in order to improve the manufacturing industry, cost savings and productivity simply to incorporate internet of things(IoT),Robot, artificial intelligence, big data technology as a factory automation level of sophistication of the system and out to progress to the level that replaces human labor have. In this we should look at the trend of promoting domestic and foreign factories want to present these smart strategies for Korea.

An Investigation into Combined Hypertext-Expert System Techniques Focused on the Application to Concrete Practice (하이퍼텍스트-전문가 시스템 결합 기법에 관한 연구 -콘크리트 시공에의 응용을 중심으로 -)

  • 정영식;류덕용
    • Proceedings of the Korea Concrete Institute Conference
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    • 1991.10a
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    • pp.152-157
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    • 1991
  • Expert systems represent the application of artificial intelligence research that is at least 10-15 years old. It may well take another 5-10 years before the present technology is exploited by industry. The objective of this paper is to show the applicability of Combined Hypertext-Expert System Techniques to the professionals working in the construction industry. Expert systems alone don't give the user any control over the system. Hypertext systems that focus only on displaying messages have the opposite problem. While they allow the user to control the system., the only control the system designer has is in setting up the hypertext links. Therefore the combination of these two techniques, offered by KnowledgePro, may bring us closer to real user-expert communication. The system developed in this work offers information on ACI Manual concerning various problem areas in concrete practice, consultation about mix design of concrete and guidance to identify types of cracks in concrete. Once the type of crack is identified through the rule-based knowledge, the system provides the user with remedial measures through the control of the user.

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Design and Implementation of the Quality Performance Improvement for Process System Using Neural Network (가공시스템에서 신경회로망을 이용한 품질의 성능 개선에 관한 설계 및 구현)

  • 문희근;김영탁;김수정;김관형;탁한호;이상배
    • Proceedings of the Korean Institute of Intelligent Systems Conference
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    • 2002.12a
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    • pp.179-182
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    • 2002
  • In this paper, this system makes use of the analog sensor and converts the feature of fish analog signal when sensor is operating with CPU(80C196KC). Then, After signal processing, this feature Is classified a special feature and a outline of fish by using the neural network, one of the artificial intelligence scheme. This neural network classifies fish pattern of very simple and short calculation. This has linear activation function and the error backpropagation is used as a learning algorithm. And the neural network is learned in off-line process. Because an adaptation period of neural network is too long time when random initial weights are used, off-line learning Is induced to decrease the Progress time We confirmed this method has better performance than somewhat outdated machines.

A study on the Fingerprint Recognition Singnal Process Board Design using Artificial Intelligence based on the ARM Processor (인공지능기법을 이용한 ARM프로세스 기반의 지문인식 신호처리 보드 설계에 관한 연구)

  • 김동한;강종윤;공석민;이주상;이재현;탁한호
    • Proceedings of the Korean Institute of Intelligent Systems Conference
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    • 2002.12a
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    • pp.287-290
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    • 2002
  • 지문인식 알고리즘 구현에 있어서 일반적인 전처리 과정을 거쳐, 특징추출시 본 논문에서는 방향성이 추출된 영상에서 블록을 형성하여 각 블록에서의 방향성 특징들을 인공지능 기법의 한 분야인 신경회로망의 입력패턴으로 사용하여 특이점 추출을 수행했으며, 이를 바탕으로 PC없이 독립적으로 동작할 수 있는 지문인식 신호처리보드를 설계하여 그 신뢰성을 테스트한 결과 충분히 독립적으로 동작할 수 있음을 입증하였다.

Design and Implementation of Mobile phone Li-ion charger using artificial intelligence algorithm (인공지능 알고리즘을 이용한 Mobile phone Li-ion charger의 설계 및 구현)

  • 이창규;탁한호;이상배
    • Proceedings of the Korean Institute of Intelligent Systems Conference
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    • 2002.12a
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    • pp.410-413
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    • 2002
  • 일반적으로 휴대폰에는 리튬이온(Ll-lon) 전지(battery)를 많이 사용하고 있으며 그 전지(battery)를 충전시키기 위해 Microcontroller를 사용해서 과충전과 방전, 그리고 전지(battery) 보호와 충전에 대한 일정한 전류를 제어한다. 여기에서 충전 동작 시 필요한 일반직인 충전 전류 제어를 PWM의 방식에 의존하지 않고 인공지능 기법을 이용해 소프트웨어적으로 처리가 필요한 파라메터 값을 추정해 적용시키고자 한다. 따라서 개발한 충전시스템에 일반적인 충전 파라메터를 전압과 전류 그리고 시간으로 분류하여 Microcontroller에 그 파라메터를 적용시켜 PWM 방식으로 제어한 후에 실험에 의한 결과값을 얻는다. 그리고 이것들을 비교하여 보다 나은 충전시스템을 구현하기 위해 인공지능 기법 중에 하나인 신경망을 이용하여 전압과 전류 그리고 시간에 대한 파라메터를 처리하였다. 본 논문에서 신경망에 대한 파라메터의 학습을 일반 FC에서 구현하고 여기에서 추출된 학습 값을 Microcontroller에 적용시켜 입력값에 따라 다양한 PWM 신호를 발생시키도록 구현했다. 이후 실제적인 실험에 의한 결과값을 본 논문에서 서술하였다.

Design of Fuzzy-Neural Networks Structure using Optimization Algorithm and an Aggregate Weighted Performance Index (최적 알고리즘과 합성 성능지수에 의한 퍼지-뉴럴네트워크구조의 설계)

  • Yoon, Ki-Chan;Oh, Sung-Kwun;Park, Jong-Jin
    • Proceedings of the KIEE Conference
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    • 1999.07g
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    • pp.2911-2913
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    • 1999
  • This paper suggest an optimal identification method to complex and nonlinear system modeling that is based on Fuzzy-Neural Network(FNN). The FNN modeling implements parameter identification using HCM algorithm and optimal identification algorithm structure combined with two types of optimization theories for nonlinear systems, we use a HCM Clustering Algorithm to find initial parameters of membership function. The parameters such as parameters of membership functions, learning rates and momentum coefficients are adjusted using optimal identification algorithm. The proposed optimal identification algorithm is carried out using both a genetic algorithm and the improved complex method. Also, an aggregate objective function(performance index) with weighted value is proposed to achieve a sound balance between approximation and generalization abilities of the model. To evaluate the performance of the proposed model, we use the time series data for gas furnace, the data of sewage treatment process and traffic route choice process.

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