• Title/Summary/Keyword: Fuzzy Term

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A Cognitive Map Approach to B2B Negotiation to Integrate Unstructured and Structured Negotiation Term

  • Lee, Kun Chang;Kim, Jin Sung
    • Journal of the Korean Institute of Intelligent Systems
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    • v.14 no.3
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    • pp.342-348
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    • 2004
  • As the advent of the Internet, B2B negotiation process on the Internet has been given attention from both researchers and practitioners. However, literature still shows that only structured conditions have been explicitly considered, despite the fact that unstructured conditions should be rendered as well. In this sense, this paper proposes a new negotiation support mechanism to incorporate causal relationships between structured and unstructured conditions in the process of B2B negotiation. Fuzzy cognitive map was used as a main source of causal knowledge as well causal inference engine. A prototype named CAKES-NEGO was developed to perform experiments with an illustrative example. Results revealed the robustness of our proposed negotiation support mechanism.

Soft Computing as a Methodology to Risk Engineering

  • Miyamoto Sadaaki
    • Proceedings of the Korean Institute of Intelligent Systems Conference
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    • 2006.05a
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    • pp.3-6
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    • 2006
  • Methods for risk engineering is a bundle of engineering tools including fundamental concepts and approaches of soft computing with application to real issues of risk management. In this talk fundamental concepts and soft computing approaches of risk engineering will be introduced. As the term of risk implies both advantageous and hazardous uncertainty in its origins, a fundamental theory to describe uncertainties is introduced that includes traditional probability and statistical models, fuzzy systems, as well as less popular modal logic. In particular, modal logic capabilities to express various kinds of uncertainties are emphasized and relations with rough sets and evidence theory are described. Another topic is data mining related to problems in risk management. Some risk mining techniques including fuzzy clustering are introduced and a recently developed algorithm is overviewed. A numerical example is shown.

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An Improvement Algorithm of the Daily Peak Load Forecasting for Korean Thanksgiving Day and the Lunar New Year's Day (추석과 설날 연휴에 대한 전력수요예측 알고리즘 개선)

  • Ku, Bon-Suk;Baek, Young-Sik;Song , Kyung-Bin
    • The Transactions of the Korean Institute of Electrical Engineers D
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    • v.51 no.10
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    • pp.453-459
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    • 2002
  • This paper proposes an improved algorithm of the daily peak load forecasting for Korean Thanksgiving Day and the Lunar New Year's day. So far, many studies on the short-term load forecasting have been made to improve the accuracy of the load forecasting. However, the large errors of the load forecasting occur i case of Korean Thanksgiving Day and the Lunar New Year's Day. In order to reduce the errors of the load forecasting, the fuzzy linear regression method is introduced and a good selection method of the past load pattern is presented. Test results show that the proposed algorithm improves the accuracy of the load forecasting.

Constant Altitude Flight Control for Quadrotor UAVs with Dynamic Feedforward Compensation

  • Razinkova, Anastasia;Kang, Byung-Jun;Cho, Hyun-Chan;Jeon, Hong-Tae
    • International Journal of Fuzzy Logic and Intelligent Systems
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    • v.14 no.1
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    • pp.26-33
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    • 2014
  • This study addresses the control problem of an unmanned aerial vehicle (UAV) during the transition period when the flying mode changes from hovering to translational motion in the horizontal plane. First, we introduce a compensation algorithm that improves height stabilization and reduces altitude drop. The main principle is to incorporate pitch and roll measurements into the feedforward term of the altitude controller to provide a larger thrust force. To further improve altitude control, we propose the fuzzy logic controller that improves system behavior. Simulation results presented in the paper highlight the effectiveness of the proposed controllers.

Fuzzy-Front-End Management Strategies under High Risk and Fast-Changing Environment (대형 융합 연구사업의 최선단 연구기획 관리전략)

  • Song, Yong-Il;Lee, Dae-Hee;Park, Sung-Bae;Chung, Yun-Chul
    • Journal of Technology Innovation
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    • v.12 no.3
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    • pp.135-157
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    • 2004
  • As the speed of technological changes increase with the investment requirements steadily expanding, private firms and government-funded research institutes experience similar pressures with respect to the necessity of risk reduction and technological alliances in R&D activities. This paper first attempts to review previous research in managing R&D projects with large, risky, and long-term investment requirements. Our primary focus is placed on the "fuzzy front-end" (FFE) projects with uncertainties at the investigation and planning stages. We analyze various elements that create FFE conditions, classify them into basic constructs, and suggest tools and methods to deal with FFE conditions. The findings suggest that both initial FFE conditions and the effectiveness of FFE management affect the performance of the project later on, and thus, especially for large projects, we must deal with FFE seriously in a comprehensive manner. We utilize in-depth panel interviews and case studies to approach the research questions.

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A Short-Term Wind Speed Forecasting Through Support Vector Regression Regularized by Particle Swarm Optimization

  • Kim, Seong-Jun;Seo, In-Yong
    • International Journal of Fuzzy Logic and Intelligent Systems
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    • v.11 no.4
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    • pp.247-253
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    • 2011
  • A sustainability of electricity supply has emerged as a critical issue for low carbon green growth in South Korea. Wind power is the fastest growing source of renewable energy. However, due to its own intermittency and volatility, the power supply generated from wind energy has variability in nature. Hence, accurate forecasting of wind speed and power plays a key role in the effective harvesting of wind energy and the integration of wind power into the current electric power grid. This paper presents a short-term wind speed prediction method based on support vector regression. Moreover, particle swarm optimization is adopted to find an optimum setting of hyper-parameters in support vector regression. An illustration is given by real-world data and the effect of model regularization by particle swarm optimization is discussed as well.

Query Term Expansion and Reweighting using Term Co-Occurrence Similarity and Fuzzy Inference (용어 발생 유사도와 퍼지 추론을 이용한 질의 용어 확장 및 가중치 재산정)

  • Kim, Ju-Yeon;Kim, Byeong-Man
    • Journal of KIISE:Software and Applications
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    • v.27 no.9
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    • pp.961-972
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    • 2000
  • 본 논문에서는 사용자의 적합 피드백을 기반으로 적합 문서들에서 발생하는 용어들과 초기 질의어간의 발생 빈도 유사도 및 퍼지 추론을 이용하여 용어의 가중치를 산정하는 방법에 대하여 제안한다. 피드백 문서들에서 발생하는 용어들 중에서 불용어를 제외한 모든 용어들을 질의어로 확장될 수 있는 후보 용어들로 선택하고, 발생 빈도 유사성을 이용한 초기 질의어-후보 용어의 관련 정도, 용어의 IDF, DF 정보를 퍼지 추론에 적용하여 후보 용어의 초기 질의어에 대한 최종적인 관련 정도를 산정 하였으며, 피드백 문서들에서의 가중치와 관련 정도를 결합하여 후보 용어들의 가중치를 산정 하였다. 본 논문에서는 성능을 평가하기 위하여 KT-set 1.0과 KT-set 2.0을 사용하였으며, 성능의 상대적인 평가를 위하여 Dec-Hi 방법, 용어 분포 유사도를 이용한 방법, 퍼지 추론을 이용한 방법들을 정확률-재현률을 사용하여 평가하였다.

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Short-Term Load Forecasting using Multiple Time-Series Model (다변수 시계열 분석에 의한 단기부하예측)

  • Lee, Kyung-Hun;Lee, Yun-Ho;Kim, Jin-O;Lee, Hyo-Sang
    • Proceedings of the KIEE Conference
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    • 2001.05a
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    • pp.230-232
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    • 2001
  • This paper presents a model for short-term load forecasting using multiple time-series. We made one-hour ahead load forecasting without classifying load data according to daily load patterns(e.g. weekday. weekend and holiday) To verify its effectiveness. the results are compared with those of neuro-fuzzy forecasting model(5). The results show that the proposed model has more accurate estimate in forecasting.

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Discrete Wavelet Transform for Watermarking Three-Dimensional Triangular Meshes from a Kinect Sensor

  • Wibowo, Suryo Adhi;Kim, Eun Kyeong;Kim, Sungshin
    • International Journal of Fuzzy Logic and Intelligent Systems
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    • v.14 no.4
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    • pp.249-255
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    • 2014
  • We present a simple method to watermark three-dimensional (3D) triangular meshes that have been generated from the depth data of the Kinect sensor. In contrast to previous methods, which maintain the shape of 3D triangular meshes and decide the embedding place, requiring calculations of vertices and their neighbors, our method is based on selecting one of the coordinate axes. To maintain shape, we use discrete wavelet transform and constant regularization. We know that the watermarking system needs the information to be embedded; we used a text to provide that information. We used geometry attacks such as rotation, scales, and translation, to test the performance of this watermarking system. Performance parameters in this paper include the vertices error rate (VER) and bit error rate (BER). The results from the VER and BER indicate that using a correction term before the extraction process makes our system robust to geometry attacks.

Analytical Study of Fuzzy Clustering Technique for Automatic Term Classification (용어 자동분류를 위한 퍼지 클러스터링 기법 분석)

  • 한승희
    • Proceedings of the Korean Society for Information Management Conference
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    • 2003.08a
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    • pp.95-103
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    • 2003
  • 목차 및 권말색인과 같은 인쇄형태의 정보내용에 대한 구조화된 접근방식에서 착안하여 전자 문서의 내용에 대한 새로운 형태의 접근방식을 개발할 수 있는데, 이를 위한 방안으로 용어 자동분류 기법이 있다. 본 연구에서는 용어의 의미모호성 문제를 해결하는 동시에 용어간 계층관계 표현이 가능한 자동분류 기법으로 퍼지 클러스터링 기법을 제안하고, 대표적인 퍼지 클러스터링 알고리즘인 퍼지 c-means 기법에 대해 분석하고자 한다.

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