• 제목/요약/키워드: fuzzy model and NN

검색결과 24건 처리시간 0.023초

Fuzzy를 이용한 VQ/NN에 기초를 둔 음성 인식 (Speech Recognition Based on VQ/NN using Fuzzy)

  • 안태옥
    • 한국음향학회지
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    • 제15권6호
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    • pp.5-11
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    • 1996
  • 본 논문은 불특정 화자의 단모음 인식에 관한 연구로써, fuzzy개념를 이용한 VQ(Vector Quantization)/NN(Neural Network)에 의한 음성 인식 방법을 제안한다. 이 방법은 fuzzy를 이용하여 VQ codebook에 의해 다중 관측열(multi-observation sequence)을 구해 각 symbol이 데이타로부터 가질 수 있는 확률값을 계산하여 이 값을 신경 회로망의 입력으로 사용하는 방법이다. 인식 대상어로는 한국어 단모음을 선정하였으며 10명의 남성 화자가 8개의 단모음을 10번씩 발음한 음성 데이터베이스를 이용하여 fuzzy를 이용하지 않은 VQ/NN과 fuzzy를 이용한 VQ/HMM(hidden Markov model)에 의한 인식률과 비교 실험한다. 실험 결과에 의하며, VQ/NN에 의한 인식률은 92.3%이며, fuzzy를 이용한 VQ/HMM에 의한 인식률은 93.8%이고, fuzzy를 이용한 VQ/Nn에 의한 인식률은 95.7%이다. 그러므로, 본 연구의 fuzzy를 이용한 VQ/NN이 학습 능력이 뛰어난 관계로 fuzzy를 이용한 VQ/HMM과 일반적인 VQ/NN 보다 인식률이 향상됨을 보여준다.

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NNDI decentralized evolved intelligent stabilization of large-scale systems

  • Chen, Z.Y.;Wang, Ruei-Yuan;Jiang, Rong;Chen, Timothy
    • Smart Structures and Systems
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    • 제30권1호
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    • pp.1-15
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    • 2022
  • This article focuses on stability analysis and fuzzy controller synthesis for large neural network (NN) systems consisting of several interconnected subsystems represented by the NN model. Advanced and fuzzy NN differential inclusion (NNDI) for stability based on the developed algorithm with H infinity can be designed based on the evolved biological design. This representation is constructed using sector linearity for NN models. Sector linearity transforms a non-linear model into a linear model based on proposed operations. New sufficient conditions are realized in the form of LMI (linear matrix inequalities) to ensure the asymptotic stability of the trans-Lyapunov function. This transforms the nonlinear model into a linear model based on multiple rules. At last, a numerical case study with simulations is derived as illustration to prove its feasibility in real nonlinear structures.

LDI NN auxiliary modeling and control design for nonlinear systems

  • Chen, Z.Y.;Wang, Ruei-Yuan;Jiang, Rong;Chen, Timothy
    • Smart Structures and Systems
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    • 제29권5호
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    • pp.693-703
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    • 2022
  • This study investigates an effective approach to stabilize nonlinear systems. To ensure the asymptotic nonlinear stability in nonlinear discrete-time systems, the present study presents controller for an EBA (Evolved Bat Algorithm) NN (fuzzy neural network) in the algorithm. In fuzzy evolved NN modeling, the auxiliary circuit with high frequency LDI (linear differential inclusions) and NN model representation is developed for the nonlinear arbitrary dynamics. An example is utilized to demonstrate the system more robust compared with traditional control systems.

신경회로망 시스템 식별기를 이용한 퍼지제어기의 변수동조 (Prarmeter Tuning of Fuzzy Cotroller using Neural Networks System Identifier)

  • 이우영;최흥문
    • 한국지능시스템학회논문지
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    • 제6권3호
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    • pp.40-50
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    • 1996
  • By using the neural networks(NN) as system identifier, the on-line self tuning method for fuzzy controller(FC) is proposed. In theis method, the learning of NN is carried out during control operation of FC and the cinsequent parameters of FC is tuned on-line automatically by means of system output errors backpropagated through NN. The Sugeno fuzzy model with constants as consequent parameters is selected for simplifying computation. In procedures of parameter tuning, the gradient descent method is used and the gradient vectors for adjusting the weight of NN are transferred as controller output errors. To evaluate the performance, the proposed method is applied to the inverted pendulum system.

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전역근사최적화를 위한 소프트컴퓨팅기술의 활용 (Utilizing Soft Computing Techniques in Global Approximate Optimization)

  • 이종수;장민성;김승진;김도영
    • 한국전산구조공학회:학술대회논문집
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    • 한국전산구조공학회 2000년도 봄 학술발표회논문집
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    • pp.449-457
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    • 2000
  • The paper describes the study of global approximate optimization utilizing soft computing techniques such as genetic algorithms (GA's), neural networks (NN's), and fuzzy inference systems(FIS). GA's provide the increasing probability of locating a global optimum over the entire design space associated with multimodality and nonlinearity. NN's can be used as a tool for function approximations, a rapid reanalysis model for subsequent use in design optimization. FIS facilitates to handle the quantitative design information under the case where the training data samples are not sufficiently provided or uncertain information is included in design modeling. Properties of soft computing techniques affect the quality of global approximate model. Evolutionary fuzzy modeling (EFM) and adaptive neuro-fuzzy inference system (ANFIS) are briefly introduced for structural optimization problem in this context. The paper presents the success of EFM depends on how optimally the fuzzy membership parameters are selected and how fuzzy rules are generated.

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퍼지 동정에 의한 교통경로선택 (Traffic Rout Choice by means of Fuzzy Identification)

  • 오성권;남궁문;안태천
    • 한국지능시스템학회논문지
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    • 제6권2호
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    • pp.81-89
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    • 1996
  • 퍼지모델링의 설계 방법을 교통경로선택의 모델동정을 위하여 제안한다. 제안된 퍼지모델은 최적화이론, 퍼지구현규칙을 사용하여 ""IF..., THEN...""의 효율적인 형태로 시스템구조와 파라미터 동정을 시행한다. 이 논문에서 간략추론, 선형추론, 병형된 선형추론의 3가지종류의 퍼지모델링 방법을 제시한다. 이 퍼지추론 방법은 인간의 교통행동의 정확한 추정과 정밀한 묘사를 위해 교통경로선택 모델을 개발하기 위해 이용된다. 퍼지규칙의 전반부 구조와 파라미터를 동정하기 위해 개선된 컴플렉스법을 사용하고, 최적후반부 파라미터를 동정하기 위해 최소자승법이 사용된다. 교통경로선택 데이타가 제안된 퍼지모델 성능을 평가하기 위해 사옹된다. 제안된 방법이 기존의 다른 연구들 - 즉 BL, PS, FL, NN, FNNs 모델 등 - 보다 더 높은 정확도를 가진 퍼지모델을 생성함을 보인다. 생성함을 보인다.

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ATM망에서 퍼지 패턴 추정기를 이용한 신경망 호 수락제어에 관한 연구 (A Study on a neural-Net Based Call admission Control Using Fuzzy Pattern Estimator for ATM Networks)

  • 이진이;이종찬;이종석
    • 한국지능시스템학회:학술대회논문집
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    • 한국퍼지및지능시스템학회 1998년도 추계학술대회 학술발표 논문집
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    • pp.173-179
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    • 1998
  • This paper proposes a new call admission control scheme utilizing an inverse fuzzy vector quantizer(IFVQ) and neural net, which combines benefits of IFVQ and flexibilities of FCM(Fuzzy-C-Menas) arithmatics, to decide whether a requested call that is not trained in learning phase to be connected or not. The system generates the estimated traffic pattern of the cell stream of a new call, using feasible/infeasible patterns in codebook, fuzzy membership values that represent the degree to which each pattern of codebook matches input pattern, and FCM arithmatics. The input to the NN is the vector consisted of traffic parameters which is the means and variances of the number of cells arriving inthe interval. After training(using error back propagation algorithm), when the NN is used for decision making, the decision as to whether to accept or reject a new call depends on whether the output is greater or less then decision threshold(+0.5). This method is a new technique for call admi sion control using the membership values as traffic parameter which declared to CAC at the call set up stage, and is valid for a very general traffic model in which the calls of a stream can belong to an unlimited number of traffic classes. Through the simmulation. it is founded the performance of the suggested method outforms compared to the conventional NN method.

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신경망과 퍼지 패턴 추정기를 이용한 ATM의 호 수락 제어 (Call Admission Control in ATM by Neural Networks and Fuzzy Pattern Estimator)

  • 이진이
    • 한국정보처리학회논문지
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    • 제6권8호
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    • pp.2188-2195
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    • 1999
  • 본 논문에서는 퍼지 패턴 추정기를 구성하여 신경망 학습시에 훈련되지 않은 새로운 종류의 호가 발생할 때, 재학습을 하지 않고 그 호의 수락/거절을 효과적으로 행할 수 있는 IFVQ-NNCA(Inverse Fuzzy Vectorquantizer-Neural Networks Call Admission Control)를 제안한다. 이 방식은 연결을 요구하는 호의 입력 트래픽 패턴이 발생하면, 그 입력패턴은 수락/거절 표준패턴(코드북), 퍼지 소속 함수값, 그리고 FCM(Fuzzy-C-Means) 연산을 이용하여 학습화한 패턴을 발생한 후, 그 패턴을 신경망의 입력으로 하여 호 수락/거절을 결정한다. 이 방식은 셀 스트림의 평균과 분산값을 트래픽 파라메터로 사용함으로써 트래픽 모델과는 무관한 호 수락제어가 가능하며, 입력패턴(프레임별 관측패턴)과 표준패턴의 멤버쉽 함수값을 CAC에 신고하는 트래픽 파라케터로 사용하는 새로운 방법이다. 신경망은 오류 역전파 알고리즘을 사용하여 표준패턴으로 학습한다. 시뮬레이션을 통하여 기존의 신경망 방식과 제안된 방식의 Fuzziness 값의 설정에 따른 호 수락/거절 오류를 비교하여 제안된 방식이 우수함을 보였다.

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Structural system simulation and control via NN based fuzzy model

  • Tsai, Pei-Wei;Hayat, T.;Ahmad, B.;Chen, Cheng-Wu
    • Structural Engineering and Mechanics
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    • 제56권3호
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    • pp.385-407
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    • 2015
  • This paper deals with the problem of the global stabilization for a class of tension leg platform (TLP) nonlinear control systems. It is well known that, in general, the global asymptotic stability of the TLP subsystems does not imply the global asymptotic stability of the composite closed-loop system. Finding system parameters for stabilizing the control system is also an issue need to be concerned. In this paper, we give additional sufficient conditions for the global stabilization of a TLP nonlinear system. In particular, we consider a class of NN based Takagi-Sugeno (TS) fuzzy TLP systems. Using the so-called parallel distributed compensation (PDC) controller, we prove that this class of systems can be globally asymptotically stable. The proper design of system parameters are found by a swarm intelligence algorithm called Evolved Bat Algorithm (EBA). An illustrative example is given to show the applicability of the main result.

DCS에 퍼지제어 알고리즘 구현방법에 관한 연구 (A Study on Realization method of Fuzzy Control Algorithm for DCS)

  • 허윤기;변증남
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1995년도 하계학술대회 논문집 B
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    • pp.995-998
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    • 1995
  • As the modern industrial processes become more complex, it is getting more difficult to model and control the processes. Naturally, an advanced type of DCS(Distributed Control System) with higher level functions is being sought Advanced DCS is a DCS with advanced functions such as fault diagnosis, GPC(Generalized Predictive Control), NN(Neural Network), and Fuzzy Control. In this thesis, we have studied a fuzzy control algorithm for realizing an advanced DCS. Its algorithm is implemented in a form of function code which is a process control language, being used by the industrial engineers. To verify the realized function code of the fuzzy control, the function code is applied to a continuous casting process of the Pohang Iron & Steel Works in Kwangyang. The rules of the fuzzy control were collected via interviews of the field operators and their operation documents. Finally, usability of the function code of the fuzzy control is shown via simulation for the continuous casting process model.

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