• Title/Summary/Keyword: Hangul Recognition

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Automatic Generation of Handwritten Hangul Character Images and Its Application to the Evaluation of Hangul Character Recognition Systems (변형에 의한 필기체 한글의 생성과 이를 이용한 한글 문자인식 시스템의 정량적 평가)

  • 박상태;방승양
    • Journal of the Korean Institute of Telematics and Electronics B
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    • v.30B no.3
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    • pp.50-59
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    • 1993
  • There is basic problem with the current evaluation method for character recognition systems. The current method evaluates the average recognition rate by applying the test data to the target system. The average recognition rate tells no more than and no less than the overall performance and it depends on the data. In this paper we propose a testing method which will analyze the target system and point out its strong points and weak points. This can be made possible through using the data which are generated cy distorting the standard character images according to a carefully controlled manner. This paper will describe how to automatically generate such distorted images. Also we will show the method is actually effective and useful by applying it to evaluating existing recognition algorithms.

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Implementation of An On-Line Continuous Recognition System for Cursive Handwriting (자소간의 흘림을 허용하는 연속형 온라인 필기 인식 시스템의 구현)

  • 권오성;권영빈
    • Journal of the Korean Institute of Telematics and Electronics B
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    • v.31B no.9
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    • pp.166-177
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    • 1994
  • In this paper, an implemenation of on-line continuous recognizer for cursive Hangul handwriting is explained. For the Hangul recognition system, we propose a high speed string matching. The editing process in our proposed string matching is accomplished by single editing path. And the matching results are stored in a heap structure and we decide the user comfortibility of unceasing writing during recognition owing to the high speed matching. In the experimental result, a recongition rate of 86.36% at 1.75 second/character over 21,076 characters collected from 50 persons are abtained. And it is shown that the proposed recognition system is operated properly for the on-line recognition for cursive handwring between graphemes.

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Comparisons of Recognition Rates for the Off-line Handwritten Hangul using Learning Codes based on Neural Network (신경망 학습 코드에 따른 오프라인 필기체 한글 인식률 비교)

  • Kim, Mi-Young;Cho, Yong-Beom
    • Journal of IKEEE
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    • v.2 no.1 s.2
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    • pp.150-159
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    • 1998
  • This paper described the recognition of the Off-line handwritten Hangul based on neural network using a feature extraction method. Features of Hangul can be extracted by a $5{\times}5$ window method which is the modified $3{\times}3$ mask method. These features are coded to binary patterns in order to use neural network's inputs efficiently. Hangul character is recognized by the consonant, the vertical vowel, and the horizontal vowel, separately. In order to verify the recognition rate, three different coding methods were used for neural networks. Three methods were the fixed-code method, the learned-code I method, and the learned-code II method. The result was shown that the learned-code II method was the best among three methods. The result of the learned-code II method was shown 100% recognition rate for the vertical vowel, 100% for the horizontal vowel, and 98.33% for the learned consonants and 93.75% for the new consonants.

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Hangul Character Recognition Using Fuzzy Reasoning:Hangul Character Type Classification by Maximum Run Length Projenction (퍼지추론을 이용한 한글 문자 인식:최대 길이 투영에 의한 한글 문자 유형 분류)

  • 이근수;최형일
    • Korean Journal of Cognitive Science
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    • v.3 no.2
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    • pp.249-270
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    • 1992
  • The purpose of this paper is to classify the types of input characters,printed Hangul characters,using Maximum Run Length Projection(MRLP)that is used to extract features of input character.Because the number of Hangul characters is large and its structure is complex,there exists close similarities among characters.This paper,therefore,tried to increment the type classification rate using fuzzy resoning.The Maximum Run Length Projection is very immune to noise,and also useful to extracting the demanding information efficiently.In a test case with the most frequently use 917 printed Hangul characters,it achieved 98.58%correct classification rate.

The Development of New Hangul Code "Truecode" and Its Applications (새로운 한글코드 “Truecode”의 개발과 응용)

  • 이문형;김기두
    • Journal of the Korean Institute of Telematics and Electronics B
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    • v.30B no.5
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    • pp.43-51
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    • 1993
  • A new Hangul code called Truecode is developed for accomodating to the future computing environments of graphical user interface and multimedia as well as for corresponding with the invention principle of Hangul. Truecode is not a forced two-byte code of syllable unit, as completion-type of combination-type, currently used, but a one byte code of phoneme unit, which can represent initial consonant, vowel, and final consonant each. It is quite different from three-byte code of syllable unit and also does not require the fill code used for three-byte code. We expect great contribution to the Hangul culture from Truecode's some important following features. It can express all the Korean characters we may imagine and does not cause any problem in communication. As well as we may use direct connection font, we can assign ont-to-one correspondence between Truecode and a keyboard with three sets. Truecode has a good advantage in developing application softwares of Hangul and it can nicely be applied to the fields of speech recognition and artificial intelligence using natural language.

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Efficient two-step pattern matching method for off-line recognition of handwritten Hangul (필기체 한글의 오프라인 인식을 위한 효과적인 두 단계 패턴 정합 방법)

  • 박정선;이성환
    • Journal of the Korean Institute of Telematics and Electronics B
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    • v.31B no.4
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    • pp.1-8
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    • 1994
  • In this paper, we propose an efficient two-step pattern matching method which promises shape distortion-tolerant recognition of handwritten of handwritten Hangul syllables. In the first step, nonlinear shape normalization is carried out to compensate for global shape distortions in handwritten characters, then a preliminary classification based on simple pattern matching is performed. In the next step, nonlinear pattern matching which achieves best matching between input and reference pattern is carried out to compensate for local shape distortions, then detailed classification which determines the final result of classification is performed. As the performance of recognition systems based on pattern matching methods is greatly effected by the quality of reference patterns. we construct reference patterns by combining the proposed nonlinear pattern matching method with a well-known averaging techniques. Experimental results reveal that recognition performance is greatly improved by the proposed two-step pattern matching method and the reference pattern construction scheme.

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A Hangul Document Image Retrieval System Using Rank-based Recognition (웨이브렛 특징과 순위 기반 인식을 이용한 한글 문서 영상 검색 시스템)

  • Lee Duk-Ryong;Kim Woo-Youn;Oh Il-Seok
    • The Journal of the Korea Contents Association
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    • v.5 no.2
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    • pp.229-242
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    • 2005
  • We constructed a full-text retrieval system for the scanned Hangul document images. The system consists of three parts; preprocessing, recognition, and retrieval components. The retrieval algorithm uses recognition results up to k-ranks. The algorithm is not only insensitive to the recognition errors, but also has the advantage of user-controllable recall and precision. For the objective performance evaluation, we used the scanned images of the Journal of Korea Information Science Society provided by KISTI. The system was shown to be practical through theevaluationofrecognitionandretrievalrates.

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A Phoneme Separation and Learning Using of Neural Network in the On-Line Character Recognition System (신경회로망을 이용한 온라인 문자 인식 시스템의 자소 분리에 관한 연구)

  • Hong, Bong-Hwa
    • The Journal of Information Technology
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    • v.9 no.1
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    • pp.55-63
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    • 2006
  • In this paper, a Hangul recognition system using of Kohonen Network in the phoneme separation and learning is proposed. A Hangul consists of phoneme that are consists of strokes. The phoneme recognition and separation are very important in the recognition of character. So, the phonemes which mismatching has been happened are correctly separated through the learning of neural networks. also, learning rate($\alpha$) adjusted according to error, in order to solved that its decreased the number of iteration and the problem of local minimum, adaptively.

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On the Filtering of Hangul character Element with the Spatial Positioning Modulation (공간 위치 변조에 의한 한글자소의 필터링)

  • 강대수;진용옥
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.17 no.9
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    • pp.1029-1039
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    • 1992
  • This paper presents the filtering method which is processed on the frequency domain among Hangul character recognition methods. It is processed the Hangul character parrern with spatial positioning modulation and mapped the Hangul character element which have spatial position variant feature onto frequency domain, at this time, normalized spatial position and so normalized the character size in frequency domain. And it is grouped the Hangul character element according to the generating position and set the standard pattern, and used each standard character element pattern with character element filter and filtering the character pattern of Hangul character, it is derived the normalized cross correlation function and the coherence function led to the filtering results, and calculated classification threshold.

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Construction of Printed Hangul Character Database PHD08 (한글 문자 데이터베이스 PHD08 구축)

  • Ham, Dae-Sung;Lee, Duk-Ryong;Jung, In-Suk;Oh, Il-Seok
    • The Journal of the Korea Contents Association
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    • v.8 no.11
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    • pp.33-40
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    • 2008
  • The application of OCR moves from traditional formatted documents to the web document and natural scene images. It is usual that the new applications use not only standard fonts of Myungjo and Godic but also various fonts. The conventional databases which have mainly been constructed with standard fonts have limitations in applying to the new applications. In this paper, we generate 243 image samples for each of 2350 Hangul character classes which differs in font size, quality, and resolution. Additionally each sample was varied according to binarization threshold and rotational transformation. Through this process 2187 samples were generated for each character class. Totally 5,139,450 samples constitutes the printed Hangul character database called the PHD08. In addition, we present the characteristics and recognition performance by an commercial OCR software.