• Title/Summary/Keyword: Fuzzy function

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The Design of Target Tracking System Using GA Based FBFN (유전 알고리즘 기반 퍼지 기저 함수 확장을 이용한 표적 추적 시스템 설계)

  • Lee, Bum-Jik;Joo, Young-Hoon;Chang, Wook;Park, Jin-Bae
    • Proceedings of the KIEE Conference
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    • 1999.07b
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    • pp.525-527
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    • 1999
  • In this paper, we propose the target tracking system using fuzzy basis function expansion (FBFN) based on genetic algorithm (GA). In general, the objective of target tracking is to predict the future trajectory of the target based on the past position of the target obtained from the sensor. In the conventional and mathematical method, the parameter uncertainty and the environmental noise may deteriorate the performance of the system. To resolve these problems, we apply artificial intelligent technique to the tracking control of moving targets. The proposed method combines the advantages of both traditional and intelligent technique. The result of numerical simulation shows the effectiveness of the proposed method.

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Arduino Sensor based on Traffic Safety System using Intelligence

  • Choi, Myeong-Bok;Hong, You-Sik
    • International Journal of Internet, Broadcasting and Communication
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    • v.9 no.1
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    • pp.18-23
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    • 2017
  • In 2015, 100-car pileup was happened because the safe distance from the car in front did not be kept due to much fog at YoungJong Bridge in South Korea. This is why the road would be benumbed with cold weather in winter. For this weather condition, if the driver of the car in front changed the lane suddenly or suddenly slammed on the brake in fog or freezing area, the braking distance of the real car has to be 2 or 3 times longer than usual. In this paper, we have simulated the function that warns and notice about the fog area or the freezing one in the road using Arduino sensors and Beacon. Also we propose the intelligent traffic system to protect the accidents in winter.

A study on navigation of autonomous mobile robot

  • Kim, Hyun-Doek;Lee, Chang-Hoon;Park, Mignon;Lee, Sang-Bae
    • 제어로봇시스템학회:학술대회논문집
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    • 1990.10b
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    • pp.1077-1081
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    • 1990
  • Autonomous action, which corresponds actively to the change of conditions in complicated circumstances, is a fundamental function required to an intelligent robot. To develope a control system for a robot having the ability to adapt itself to complicated circumstances, it is necessary to establish self-tracing technology, which recognizes the corresponding position between peripheral objects and itself. So we need to manipulate the moving system with flexibility. It is effective for solving problem that fuzzy theory is adapted to algorithm on a complicated circumstances. We develope a method to generate a route-map which has not only a course from the present position to the destination but also useful information on surroundings.

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Implementation of Hybrid Neural Network for Improving Learning ability and Its Application to Visual Tracking Control (학습 성능의 개선을 위한 복합형 신경회로망의 구현과 이의 시각 추적 제어에의 적용)

  • 김경민;박중조;박귀태
    • Journal of the Korean Institute of Telematics and Electronics B
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    • v.32B no.12
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    • pp.1652-1662
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    • 1995
  • In this paper, a hybrid neural network is proposed to improve the learning ability of a neural network. The union of the characteristics of a Self-Organizing Neural Network model and of multi-layer perceptron model using the backpropagation learning method gives us the advantage of reduction of the learning error and the learning time. In learning process, the proposed hybrid neural network reduces the number of nodes in hidden layers to reduce the calculation time. And this proposed neural network uses the fuzzy feedback values, when it updates the responding region of each node in the hidden layer. To show the effectiveness of this proposed hybrid neural network, the boolean function(XOR, 3Bit Parity) and the solution of inverse kinematics are used. Finally, this proposed hybrid neural network is applied to the visual tracking control of a PUMA560 robot, and the result data is presented.

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Design of Incremental FCM-based RBF Neural Networks Pattern Classifier for Processing Big Data (빅 데이터 처리를 위한 증분형 FCM 기반 RBF Neural Networks 패턴 분류기 설계)

  • Lee, Seung-Cheol;Oh, Sung-Kwun;Roh, Seok-Beom
    • Proceedings of the KIEE Conference
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    • 2015.07a
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    • pp.1343-1344
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    • 2015
  • 본 연구에서는 증분형 FCM(Incremental Fuzzy C-Means: Incremental FCM) 클러스터링 알고리즘을 기반으로 방사형 기저함수 신경회로망(Radial Basis Function Neural Networks: RBFNN) 패턴 분류기를 설계한다. 방사형 기저함수 신경회로망은 조건부에서 가우시안 함수 또는 FCM을 사용하여 적합도를 구하였지만, 제안된 분류기에서는 빅 데이터간의 적합도를 구하기 위해 증분형 FCM을 사용한다. 또한, 빅 데이터를 학습하기 위해 결론부에서 재귀최소자승법(Recursive Least Square Estimation: RLSE)을 사용하여 다항식 계수를 추정한다. 마지막으로 추론부에서는 증분형 FCM에서 구한 적합도와 재귀최소자승법으로 구한 다항식을 이용하여 최종 출력을 구한다.

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A Fuzzy-Compensative-Operator Based Information Fusion Method and Its Applications (퍼지보상 연산자를 이용한 정보융합 방법 및 응용)

  • 이준환;김찬성;엄경배
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.18 no.9
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    • pp.1257-1268
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    • 1993
  • 본 논문에서는 퍼지보상(compensative) 연산자를 이용하는 정보융합(information fusion) 방법을 제안하였다. 제안된 정보융합 방법에서는 보상적인 성질을 갖는 퍼지 총체화(aggregation) 연산자를 역오류전파(back-propagation)신경회로망의 활성화함수(activation function)로 간주하고, 이들 연산자에 수반된 파라메터들을 학습에 의해 결정한다. 결정된 연산자의 파라메터들은 학습자료에 나타난 의사 결정에 수반된 보상도를 표현할 수 있으며, 평가에 불필요한 정보원을 제거하는 성질도 가지고 있다. 제안된 정보융합 구조는 평가지수(sub-criterion)들의 만족도를 입력으로 학습에 의해 결정된 보상연산자에 의해 총체화된 만족도를 제공한다. 제안된 방법은 패턴 인식 문제와 칼라영상의 분할과 인식등 컴퓨터비죤 문제에 적용하여 그 정당성을 입증하였다.

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Weight Function on the Fuzzy Set membership and its Application to the Defuzzification (퍼지 집합의 소속함수에 대한 가중치 함수와 비퍼지화에서의 적용)

  • 정성원;이광형
    • Proceedings of the Korean Information Science Society Conference
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    • 2001.04b
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    • pp.331-333
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    • 2001
  • 본 논문에서는 퍼지집합의 소속함수에 대한 가중치 함수를 제안한다. 제안하는 가중치 함수는 퍼지집합의 소속함수에 곱해지는 형태로서 적용되어지며, 이것은 소속함수에 대한 사용자의 선호도를 의미한다. 제안하는 가중치 함수의 개념은 기본적으로 소속함수를 사용하는 어떤 퍼지 집합의 응용에서도 적용될 수 있을 것으로 보이나, 본 논문에서는 그 중 한가지 경우로 비퍼지화 방법을 적용 대상으로 선택하였다. 제안하는 가중치 함수가 비퍼지화 방법에 있어서 가지는 의미를 보이며, 기존의 비퍼지화 방법들에서 이러한 가중치 함수의 개념이 어떻게 적용되어 왔는지를 보인다. 또한 기존의 비퍼지화 방법들이 개녀멩 적용되지 않은 형태의 가중치 함수를 선택하여, 비퍼지화 방법에 특정 가중치 함수를 적용하였을 때의 특성 변화를 보인다. 이러한 일반적인 형태의 가중치 함수를 퍼지집합의 소속함수에 적용함으로서, 다양한 형태의 선호도를 퍼지집합의 형태에 반영할 수 있을 것으로 보인다.

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Development of Query Transformation Method by Cost Optimization

  • Altayeva, Aigerim Bakatkaliyevna;Yoon, Youngmi;Cho, Young Im
    • International Journal of Fuzzy Logic and Intelligent Systems
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    • v.16 no.1
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    • pp.36-43
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    • 2016
  • The transformation time among queries in the database management system (DBMS) is responsible for the execution time of users' queries, because a conventional DBMS does not consider the transformation cost when queries are transformed for execution. To reduce the transformation time (cost reduction) during execution, we propose an optimal query transformation method by exploring queries from a cost-based point of view. This cost-based point of view means considering the cost whenever queries are transformed for execution. Toward that end, we explore and compare set off heuristic, linear, and exhaustive cost-based transformations. Further, we describe practical methods of cost-based transformation integration and some query transformation problems. Our results show that, some cost-based transformations significantly improve query execution time. For instance, linear and heuristic transformed queries work 43% and 74% better than exhaustive queries.

A Study on feedrate Optimization System for Cutting Force Regulation (절삭력 추종을 위한 이송속도 최적화 시스템에 관한 연구)

  • 김성진;정영훈;조동우
    • Journal of the Korean Society for Precision Engineering
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    • v.20 no.4
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    • pp.214-222
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    • 2003
  • Studies on the optimization of machining process can be divided into two different approaches: off-line feedrate scheduling and adaptive control. Each approach possesses its respective strong and weak points compared to each other. That is, each system can be complementary to the other. In this regard, a combined system, which is a feedrate control system fur cutting force optimization, was proposed in this paper to make the best of each approach. Experimental results show that the proposed system could overcome the weak points of the off-line feedrate scheduling system and the adaptive control system. In addition, from the figure, it can be confirmed that the off-line feedrate scheduling technique can improve the machining quality and can fulfill its function in the machine tool which has a adaptive controller.

Real Time Vision System for the Test of Steam Generator in Nuclear Power Plants Using Digital Signal Processors (디지탈 신호처리기를 이용한 원자로 증기발생기 검사용 실시간 비젼시스템 개발)

  • 왕한흥;한성현
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 1996.11a
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    • pp.469-473
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    • 1996
  • In this paper, it is proposed a new approach to the development of the automatic vision system to e famine and repair the steam generator tubes at remote distance. In nuclear power plants, workers are reluctant of works in steam generator because of the high radiation environment and limited working space. It is strongly recommended that the examination and maintenance works be done by an automatic system for the protection of the operator from the radiation exposure. Digital signal processors are used it, implementing real time recognition and examination of steam generator tubes in the proposed vision system. Performance of proposed digital vision system is illustrated by experiment for similar steam generator model.

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