• Title/Summary/Keyword: 퍼셉트론

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Improving the Error Back-Propagation Algorithm of Multi-Layer Perceptrons with a Modified Error Function (역전파 학습의 오차함수 개선에 의한 다층퍼셉트론의 학습성능 향상)

  • 오상훈;이영직
    • Journal of the Korean Institute of Telematics and Electronics B
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    • v.32B no.6
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    • pp.922-931
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    • 1995
  • In this paper, we propose a modified error function to improve the EBP(Error Back-Propagation) algorithm of Multi-Layer Perceptrons. Using the modified error function, the output node of MLP generates a strong error signal in the case that the output node is far from the desired value, and generates a weak error signal in the opposite case. This accelerates the learning speed of EBP algorothm in the initial stage and prevents overspecialization for training patterns in the final stage. The effectiveness of our modification is verified through the simulation of handwritten digit recognition.

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Hangul Handwritten Character On-Line Recognition using Multilayer Perceptron (다층 퍼셉트론을 이용한 한글 필기체 온라인 인식)

  • 조정욱;이수영;박철훈
    • Journal of the Korean Institute of Telematics and Electronics B
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    • v.32B no.1
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    • pp.147-153
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    • 1995
  • In this paper, we propose the position- and size-independent handwritten on-line Korean character recognition system using multilayer neural networks which are trained with error back-propagation learning algorithm and the features of Hanguel consonants and vowels. Starting point, end point, and three vectors from starting point to end point of each stroke of characters inputted from mouse or tablet are applied as inputs of neural networks. If double consonants and vowels are separated by single consonants and vowels, all consonants and vowels have at most four strokes. Therefore, four neural networks learn the consonants and the vowels having each number of strokes. Also, we propose the algorithm of separating the consonants and vowels and constructing a character.

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Printer calibration for linearly perceived tone reproduction (인간 시각에 선형적인 계조 재현을 위한 프린터 보정)

  • 이철희;이채수;강봉수;이응주;하영호
    • Journal of the Korean Institute of Telematics and Electronics S
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    • v.36S no.4
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    • pp.55-69
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    • 1999
  • 일반적으로 잉크젯 프린터는 농도에 대해 선형적인 계조재현 특성을 나타낸다. 그러나 인간 시각의 경우 농도에 선형적인 프린터 출력에 대하여 비선형적인 지각반응을 나타낸다. 즉 농도가 큰 패치(patch)에 대해서는 명도나 색차에 대한 변별력이 작으며 농도가 작은 패치에 대해서는 좀 더 예민한 변별력을 갖는다. 따라서 농도에 선형적인 프린터 출력은 시각적인 활성영역을 줄이므로 프린터에서 구별되는 계조의 범위가 좁아진다. 그러므로 본 논문에서는 인간의 시지각 특성과 매우 상관도가 높은 CIELAB 색공간을 이용하여 균등한 명도 변화 및 색차를 나타내도록 하는 프린터 계조재현 알고리즘을 제안한다. 이때 시각적으로 균등한 변화를 나타내는 프린터의 입력값을 찾기 위해 다층 퍼셉트론 신경망(multi-layer perceptron neural network, MLP)을 이용하였다. 신경망의 학습을 위해 계조에 따른 패치를 만들고, 프린터 구동입력신호 및 패치의 측정된 값으로 신경망을 학습하였다. 학습된 신경망으로 선형적인 출력을 내는 프린터 구동신호를 찾고 LUT(look-up table)를 이용하여 프린터 입력 신호를 역으로 보정하였다. 결과, 보정된 프린터의 출력이 선형적인 계조 변화를 보였고 변화가 인지되는 계조의 범위가 늘어났으며 실형상에 대한 실험에 있어서도 우수한 화질을 보였다.

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Interference Control using Linear BISP Algorithm in DS/SS Communiacation (DS/SS 통신에서 선형 BISP 알고리즘을 이용한 간섭 제어)

  • Park, Chan-Ho;Kim, Yong-Ho
    • The Journal of the Korea institute of electronic communication sciences
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    • v.2 no.4
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    • pp.209-214
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    • 2007
  • This paper effectively suppress the mutual interference simbologan has proposed algorithm using a combination of multi-tier peosepteuron the tab so that the weight update can be done more efficiently. Simulation of the convergence characteristics superior to the average square error, that is research.

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A Design of 2-bit Error Checking and Correction Circuit Using Neural Network (신경 회로망을 이용한 2비트 에러 검증 및 수정 회로 설계)

  • 최건태;정호선
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.16 no.1
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    • pp.13-22
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    • 1991
  • In this paper we designed 2 bit ECC(Error Checking and Correction) circuit using Single Layer Perceptron type neural networks. We used (11, 6) block codes having 6 data bits and 8 check bits with appling cyclic hamming codes. All of the circuits are layouted by CMOs 2um double metal design rules. In the result of circuit simulation, 2 bit ECC circuit operates at 67MHz of input frequency.

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A Study on the Neuro-FAX algorithm Using the Perceptron Network (퍼셉트론을 이용한 Neuro-FAX 방식에 관한 연구)

  • 김해수;이근영
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.18 no.1
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    • pp.10-22
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    • 1993
  • In this paper, we proposed a Neuro-FAX algorithm having high compression rate and good reconstruction capability in spite of noise and fonts. This algorithm processes the character part and the image part seperately. In the character part, we recognized each characters in document using neural networks, and transmitted the information recognized. And we transmitted the image part as it is by the conventional method. With character set in receiving terminal. it can produce nice document of noise free characters and different font.

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Performance Analysis of Face Image Recognition System Using A R T Model and Multi-layer perceptron (ART와 다층 퍼셉트론을 이용한 얼굴인식 시스템의 성능분석)

  • 김영일;안민옥
    • Journal of the Korean Institute of Telematics and Electronics B
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    • v.30B no.2
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    • pp.69-77
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    • 1993
  • Automatic image recognition system is essential for a better man-to machine interaction. Because of the noise and deformation due to the sensor operation, it is not simple to build an image recognition system even for the fixed images. In this paper neural network which has been reported to be adequate for pattern recognition task is applied to the fixed and variational(rotation, size, position variation for the fixed image)recognition with a hope that the problems of conventional pattern recognition techniques are overcome. At fixed image recognition system. ART model is trained with face images obtained by camera. When recognizing an matching score. In the test when wigilance level 0.6 - 0.8 the system has achievel 100% correct face recognition rate. In the variational image recognition system, 65 invariant moment features sets are taken from thirteen persons. 39 data are taken to train multi-layer perceptron and other 26 data used for testing. The result shows 92.5% recognition rate.

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Prediction of Cutting Force using Neural Network and Design of Experiments (신경망과 실험계획법을 이용한 절삭력 예측)

  • 이영문;최봉환;송태성;김선일;이동식
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 1997.10a
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    • pp.1032-1035
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    • 1997
  • The purpose of this paper is to reduce the number of cutting tests and to predict the main cutting force and the specific cutting energy. By using the SOFM neural network, the most suitable cutting test conditions has been found. As a result, the number of cutting tests has been reduced to one-third. And by using MLP neural network and regression analysis, the main cutting force and specific cutting energy has been predicted. Predicted values of main cutting force and specific cutting energy are well concide with the measured ones.

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Isolated Word Recognition Algorithm Using Lexicon and Multi-layer Perceptron (단어사전과 다층 퍼셉트론을 이용한 고립단어 인식 알고리듬)

  • 이기희;임인칠
    • Journal of the Korean Institute of Telematics and Electronics B
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    • v.32B no.8
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    • pp.1110-1118
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    • 1995
  • Over the past few years, a wide variety of techniques have been developed which make a reliable recognition of speech signal. Multi-layer perceptron(MLP) which has excellent pattern recognition properties is one of the most versatile networks in the area of speech recognition. This paper describes an automatic speech recognition system which use both MLP and lexicon. In this system., the recognition is performed by a network search algorithm which matches words in lexicon to MLP output scores. We also suggest a recognition algorithm which incorperat durational information of each phone, whose performance is comparable to that of conventional continuous HMM(CHMM). Performance of the system is evaluated on the database of 26 vocabulary size from 9 speakers. The experimental results show that the proposed algorithm achieves error rate of 7.3% which is 5.3% lower rate than 12.6% of CHMM.

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Noise Source Localization using 3 Dimensional Spherical Probe (3 차원 구형탐촉자를 이용한 소음원 탐지)

  • Na, H.S.;Kim, Y.G.;Choi, K.Y.;Patrat, J.C.
    • Proceedings of the Korean Society for Noise and Vibration Engineering Conference
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    • 2000.06a
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    • pp.1704-1709
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    • 2000
  • This paper proposes a spherical probe allowing acoustic intensity measurements in three dimensions to be made, which creates a diffracted field that is well-defined, thanks to analytic solution of diffraction phenomena. Six microphones are distributed on the surface of the sphere along three rectangular axes. Its measurement technique is not based on finite difference approximation, as is the case for the ID probe but on the analytic solution of diffraction phenomena. In fact, the success of sound source identification depends on the inverse models used to estimate inverse diffraction phenomena, which has non-linear properties. In this paper, we introduce the concept of nonlinear inverse diffraction modeling using a neural network and the idea of 3 dimensional sound source identification with several tests.

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