• Title/Summary/Keyword: recognition-rate

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Isolated word recognition using binary pattern (이치화 패턴을 이용한 고립단어 음성인식)

  • Ryoo, J.H.;Lee, Y.J.;Park, C.K.;Kim, Y.H.;Kim, K.T.
    • Proceedings of the KIEE Conference
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    • 1987.07b
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    • pp.1602-1605
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    • 1987
  • This paper describes the isolated word recognition using binary patterns denoting the presence or absence of a local peak at a particular channel. In closed test, 81.3% and 76.8% of correct recognition rate were achieved in case of 10 males and 10 females with each 1588 test samples.

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A Study on the Recognition of Korean(Consonant) Characters Using Rapid Transform (Rapid Transform에 의한 한글(자음) 인식에 관한 연구)

  • Song, In-Jun;Lee, Jong-Ha;Kwak, Hoon-Sung
    • Proceedings of the KIEE Conference
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    • 1987.07b
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    • pp.1081-1084
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    • 1987
  • The Rapid transform is used in the recognition of Korean (Consonant) characters. The test pattern is represented by two gray levels (0 and 1). A 2-dimensinal rapid transform of the test pattern is computed. Feature selection is carried out in the Rapid transform domain. These features are used with the corresponding features of the template patterns in features of the template patterns in computing the Euclidian distance function and the decision is made based on the minimum distance criterion. Experimental results show that recognition rate is 94%.

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A hand gesture recognition method for an intelligent smart home TV remote control system (스마트 홈에서의 TV 제어 시스템을 위한 손 제스처 인식 방법)

  • Kim, Dae-Hwan;Cho, Sang-Ho;Cheon, Young-Jae;Kim, Dai-Jin
    • Proceedings of the Korean Information Science Society Conference
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    • 2007.10c
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    • pp.516-520
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    • 2007
  • This paper presents a intuitive, simple and easy smart home TV remote control system using the hand gesture recognition. Hand candidate regions are detected by cascading policy of the part of human anatomy on the disparity map image, Exact hand region is extracted by the graph-cuts algorithm using the skin color information. Hand postures are represented by shape features which are extracted by a simple shape extraction method. We use the forward spotting accumulative HMMs for a smart home TV remote control system. Experimental results show that the proposed system has a good recognition rate of 97.33 % for TV remote control in real-time.

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The Voice Dialing System Using Dynamic Hidden Markov Models and Lexical Analysis (DHMM과 어휘해석을 이용한 Voice dialing 시스템)

  • 최성호;이강성;김순협
    • Journal of the Korean Institute of Telematics and Electronics B
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    • v.28B no.7
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    • pp.548-556
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    • 1991
  • In this paper, Korean spoken continuous digits are ercognized using DHMM(Dynamic Hidden Markov Model) and lexical analysis to provide the base of developing voice dialing system. After segmentation by phoneme unit, it is recognized. This system can be divided into the segmentation section, the design of standard speech section, the recognition section, and the lexical analysis section. In the segmentation section, it is segmented using the ZCR, O order LPC cepstrum, and Ai, parameter of voice speech dectaction, which is changed according to time. In the standard speech design section, 19 phonemes or syllables are trained by DHMM and designed as a standard speech. In the recognition section, phomeme stream are recognized by the Viterbi algorithm.In the lexical decoder section, finally recognized continuous digits are outputed. This experiment shiwed the recognition rate of 85.1% using data spoken 7 times of 21 classes of 7 continuous digits which are combinated all of the occurence, spoken by 10 man.

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Recognize Handwritten Urdu Script Using Kohenen Som Algorithm

  • Khan, Yunus;Nagar, Chetan
    • International Journal of Ocean System Engineering
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    • v.2 no.1
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    • pp.57-61
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    • 2012
  • In this paper we use the Kohonen neural network based Self Organizing Map (SOM) algorithm for Urdu Character Recognition. Kohenen NN have more efficient in terms of performance as compare to other approaches. Classification is used to recognize hand written Urdu character. The number of possible unknown character is reducing by pre-classification with respect to subset of the total character set. So the proposed algorithm is attempt to group similar character. Members of pre-classified group are further analyzed using a statistical classifier for final recognition. A recognition rate of around 79.9% was achieved for the first choice and more than 98.5% for the top three choices. The result of this paper shows that the proposed Kohonen SOM algorithm yields promising output and feasible with other existing techniques.

A Study on the Hybrid-Pattern Recognition System using Projection of 2-D Image (2차원 영상의 투영을 이용한 복합패턴인식시스템에 관한 연구)

  • 반재경;박한규
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.11 no.6
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    • pp.421-429
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    • 1986
  • In this paper, new hybrid-pattern recognition system is proposed using Radon transform. Transforming the 2-D image into the 1-D projection data, Fourier spectrum at each projection angle is obtained by the Fourier transforming the projection data using the A/0. After extracting the suitable features from the Fourier spectrum and projection data, the input pattern is recognized using the wquared Mahalanobis distance. The results of this system showed the 100% recognition rate for the 10 input patterns.

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Speaker Recognition using Linear Prediction Coefficient (선형예측계수를 사용한 화자인식)

  • Choi, Jae-Seung;Jeong, Byeong-Goo
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2011.05a
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    • pp.509-511
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    • 2011
  • 본 논문에서는 다층 퍼셉트론 신경회로망과 선형예측계수를 사용한 화자인식 알고리즘을 제안한다. 제안하는 화자인식 알고리즘은 입력받은 음성신호에 대해서 유성음 구간을 추출한다. 추출된 유성음구간에 대하여 선형예측 분석에 의하여 화자의 특성을 가지고 있는 선형예측계수를 구한다. 구해진 선형예측계수를 분류하기 위하여 선형예측계수를 퍼셉트론 신경회로망의 입력으로 사용하여 네트워크의 학습을 수행한다. 본 실험에서는 선형예측계수와 신경회로망을 사용하여 본 화자인식 알고리즘이 유효하다는 것을 인식률을 통하여 확인한다.

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Adaptive Smoothing Based on Bit-Plane and Entropy for Robust Face Recognition (환경에 강인한 얼굴인식을 위한 CMSB-plane과 Entropy 기반의 적응 평활화 기법)

  • Lee, Su-Young;Park, Seok-Lai;Park, Young-Kyung;Kim, Joong-Kyu
    • Proceedings of the IEEK Conference
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    • 2008.06a
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    • pp.869-870
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    • 2008
  • Illumination variation is the most significant factor affecting face recognition rate. In this paper, we propose adaptive smoothing based on combined most significant bit (CMSB) - plane and local entropy for robust face recognition in varying illumination. Illumination normalization is achieved based on Retinex method. The proposed method has been evaluated based on the CMU PIE database by using Principle Component Analysis (PCA).

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Adaptive Thinning Algorithm for External Boundary Extraction

  • Yoo, Suk Won
    • International Journal of Advanced Culture Technology
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    • v.4 no.4
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    • pp.75-80
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    • 2016
  • The process of extracting external boundary of an object is a very important process for recognizing an object in the image. The proposed extraction method consists of two processes: External Boundary Extraction and Thinning. In the first step, external boundary extraction process separates the region representing the object in the input image. Then, only the pixels adjacent to the background are selected among the pixels constituting the object to construct an outline of the object. The second step, thinning process, simplifies the outline of an object by eliminating unnecessary pixels by examining positions and interconnection relations between the pixels constituting the outline of the object obtained in the previous extraction process. As a result, the simplified external boundary of object results in a higher recognition rate in the next step, the object recognition process.

Acoustic Driving Simulator Design for Evaluating an In-car Speech Recognizer

  • Lee, Seongjae;Kang, Sunmee
    • Phonetics and Speech Sciences
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    • v.5 no.2
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    • pp.93-97
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    • 2013
  • This paper is on designing an indoor driving simulator to evaluate the performance of in-car speech recognizer when influenced by the elements, which lower the success rate of speech recognition. The proposed simulator simulates vehicle noise which was pre-recorded in diverse driving environments and driver's speech. Additionally, the proposed Lombard effect conversion module in this simulator enables the speech recorded in a studio environment to convert into various possible driving scenarios. The relevant experimental results have confirmed that the proposed simulator is a feasible approach for realizing an effective method as it achieved similar speech recognition results to the real driving environment.