• Title/Summary/Keyword: 식별 알고리즘

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Algorithm for the Robust Estimation in Logistic Regression (로지스틱회귀모형의 로버스트 추정을 위한 알고리즘)

  • Kim, Bu-Yong;Kahng, Myung-Wook;Choi, Mi-Ae
    • The Korean Journal of Applied Statistics
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    • v.20 no.3
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    • pp.551-559
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    • 2007
  • The maximum likelihood estimation is not robust against outliers in the logistic regression. Thus we propose an algorithm for the robust estimation, which identifies the bad leverage points and vertical outliers by the V-mask type criterion, and then strives to dampen the effect of outliers. Our main finding is that, by an appropriate selection of weights and factors, we could obtain the logistic estimates with high breakdown point. The proposed algorithm is evaluated by means of the correct classification rate on the basis of real-life and artificial data sets. The results indicate that the proposed algorithm is superior to the maximum likelihood estimation in terms of the classification.

Generation of Fuzzy Rules for Fuzzy Classification Systems (퍼지 식별 시스템을 위한 퍼지 규칙 생성)

  • Lee, Mal-Rey;Kim, Ki-Tae
    • Korean Journal of Cognitive Science
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    • v.6 no.3
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    • pp.25-40
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    • 1995
  • This paper proposes a generating method of fuzzy rules by genetic and descent method (GAGDM),and its applied to classification problems.The number of inference rules and the shapes of membership function in the antecedent part are detemined by applying the genetic algorithm,and the real numbers of the consequent parts are derived by using the descent method.The aim of the proposed method is to generation a minmun set of fuzzy rules that can correctly classify all training patterns,and fiteness function of GA defined by the aim of th proposed method.Finally,in order to demonstrate the effectiveness of the present method,simulation results are shown.

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Classification of Interval Vectors by Interval Neural Networks (구간 신경망에 의한 구간 벡터의 식별)

  • 권기택
    • Journal of Korea Society of Industrial Information Systems
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    • v.6 no.2
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    • pp.1-6
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    • 2001
  • This paper proposes a pattern classification method of interval vectors by interval neural networks. The proposed method can be applied to pattern classification where attribute values of each sample are given as interval numbers. First, an architecture of interval neural networks is proposed for dealing with interval input vectors. Next, a learning algorithm is derived from the cost function. a cost function is defined using the interval output from the interval neural network and the corresponding target output. Last, using numerical examples, the proposed approach is illustrated and compared with other approach based on the standard back-propagation neural networks.

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Performance Analysis of PS Algorithm with FIxed Frame Length (태그 수 추정 기법을 이용한 가변길이 프레임의 PS 알고리즘)

  • Lim, Intaek
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2014.10a
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    • pp.615-617
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    • 2014
  • The PS algorithm divides the tags within the identification range of reader into smaller groups by increasing the transmission power incrementally and identifies them. This algorithm uses the fixed frame size at every scan. Therefore, it has problems that the performance of PS algorithm can be variously shown according to the number of tags, frame size, and power level increase. In this paper, we propose an EPS algorithm that allocates the optimal frame size by estimating the number of tags at each scan.

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Automatic Recognition Algorithm for Linearly Modulated Signals Under Non-coherent Asynchronous Condition (넌코히어런트 비동기하에서의 선형 변조신호 자동인식 알고리즘)

  • Sim, Kyuhong;Yoon, Wonsik
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.18 no.10
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    • pp.2409-2416
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    • 2014
  • In this paper, an automatic recognition algorithm for linearly modulated signals like PSK, QAM under noncoherent asynchronous condition is proposed. Frequency, phase, and amplitude characteristics of digitally modulated signals are changed periodically. By using this characteristics, cyclic moments and higher order cumulants based features are utilized for the modulation recognition. Hierarchial decision tree method is used for high speed signal processing and totally 4 feature extraction parameters are used for modulation recognition. In the condition where the symbol number is 4,096, the recognition accuracy of the proposed algorithm is more than 95% at SNR 15dB. Also the proposed algorithm is effective to classify the signal which has carrier frequency and phase offset.

Realtime Individual Identification based on EOG Algorithm for Customized Sleep Care Service (맞춤형 수면케어 서비스를 위한 EOG 기반의 실시간 개인식별 알고리즘)

  • Hong, Ki Hyeon;Lee, Byung Mun;Park, Yang Jae
    • Journal of Convergence for Information Technology
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    • v.9 no.12
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    • pp.8-16
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    • 2019
  • Customized sleep care service needs to be provided differently for individuals since individual has different degree of sleep disorder. Because the brainwave data shows unique waveform characteristics for each person, this characteristic can be used to identify individuals. Personal identification provides an important role in enabling customized services. When you blink, you can obtain brain wave characteristics by measuring the area of the frontal lobe. Therefore, a real-time personal identification algorithm based on blinking EOG for customized sleep care service is proposed in this paper. For evaluation, 10 individuals were tested for personal identification accuracy. The results of the experiment confirmed that a maximum accuracy of 93% were taken. Algorithms can be developed by reflecting characteristics such as changes in the external environment in the future.

Design of Container Image Preprocessing And Identifier Recognition System (컨테이너 영상 전처리 및 식별자 인식 시스템의 설계)

  • 박준표;이주표;황대훈
    • Proceedings of the Korea Multimedia Society Conference
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    • 2002.11b
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    • pp.786-791
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    • 2002
  • 오늘날 컨테이너의 과다한 물동량 증가로 인하여 수작업으로 이루어지는 컨테이너를 처리하는데 어려움을 겪고 있다. 따라서 식별자로 컨테이너를 자동 인식하고 그 결과를 항만 물류처리 자동화 시스템에 적용하고자 하는 필요성이 대두되고 있다. 이에 본 논문에서는 항만 물류처리 자동화 시스템을 사용하기 위하여 컨테이너의 인식 처리를 자동화하는데 그 방안으로 컨테이너의 RGB를 이용하여 바탕색과 문자색을 검출하고 바탕색과 문자색의 차를 이용해 가장 큰 차이를 보이는 RGB 값 중 하나로 영상을 이진화 하였다. 컨테이너의 식별자를 인식하기 위해서 신경망 알고리즘의 하나인 Back-propagation을 적용하여 기존의 식별자 인식 방법보다 신속하고 정확한 처리가 가능하도록 구현하였다.

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Parametric System Identification (1) (매개변수 시스템 식별법 (1))

  • Go, Sang-Ho
    • ICROS
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    • v.18 no.3
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    • pp.37-42
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    • 2012
  • 이번 편에서는 첫 번째 편에서 소개된 블랙박스 모델을 결정하는 기법 중의 하나인 매개변수 시스템 식별법을 소개한다. 이 기법은 식별하고자 하는 대상 시스템에 대하여 매개변수들로 표현되는 여러 가지 후보 모델들을 선정한 후 확정된 입출력 데이터와 추정 알고리즘을 적용하고 여러 가지 검증과정을 통하여 실제 시스템의 데이터에 가장 가까운 특성을 보이는 모델을 선정하는 방법이다. 이를 위해서 본 편에서는 선형-시불변 시스템의 블랙박스 식별에서 종종 사용되는 여러 가지 모델구조들을 소개한다.

A Study for Individual Identification by Discriminating the Finger Face Image (손가락 면 영상 판별에 의한 개인 식별 연구)

  • Kim, Hee-Sung;Bae, Byung-Kyu
    • Journal of Korea Multimedia Society
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    • v.13 no.3
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    • pp.378-391
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    • 2010
  • In this paper, it is tested that an individual is able to be identified with finger face images and the results are presented. Special operators, FFG(Facet Function Gradient) masks by which the gradient of a facet function fit on a gray levels of image patches can be computed are used and a new procedure named F-algorithm is introduced to match the finger face images. The finger face image is divided into the equal subregions and each subregions are divided into equal patches with this algorithm. The FFG masks are used for convolution operation over each patch to produce scalar values. These values from a feature matrix, and the identity of fingers is determined by a norm of the elements of the feature matrices. The distribution of the norms shows conspicuous differences between the pairs of hand images of the same persons and the pairs of the different persons. This is a result to prove the ability of discrimination with the finger face image. An identification rate of 95.0% is obtained as a result of the test in which 500 hand images taken from 100 persons are processed through F-algorithm. It is affirmed that the finger face reveals to be such a good biometrics as other hand parts owing to the ability of discrimination and the identification rate.

A Strain based Load Identification for the Safety Monitoring of the Steel Structure (철골 구조물의 안전성 모니터링을 위한 변형률 기반 하중 식별)

  • Oh, Byung-Kwan;Lee, Ji-Hoon;Choi, Se-Woon;Kim, You-Sok;Park, Hyo-Seon
    • Journal of the Korea institute for structural maintenance and inspection
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    • v.18 no.2
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    • pp.64-73
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    • 2014
  • This study proposes a load identification for the safety monitoring of the steel structure based on measured strain data. Instead of parameterizing the stiffness of structure in the existing system identification researches, the loads on a structure and a matrix (the unit strain matrix) defined by the relationship between strain and load on structure are parameterized in this study. The error function is defined by the difference between measured strain and strain estimated by parameters. In order to minimize this error function, the genetic algorithm which is one of the optimization algorithm is applied and the parameters are found. The loads on the structure can be identified through the founded parameters and measured strain data. When the loads are changed, the unmeasured strains are estimated based on founded parameters and measured strains on changed state of structure. To verify the load identification algorithm in this paper, the static experimental test for 3 dimensional steel frame structure was implemented and the loads were exactly identified through the measured strain data. In case of loading changes, the unmeasured strains which are monitoring targets on the structure were estimated in acceptable error range (0.17~3.13%). It is expected that the identification method in this study is applied to the safety monitoring of steel structures more practically.