• 제목/요약/키워드: Information Recognition

검색결과 9,167건 처리시간 0.037초

음성과 영상정보를 이용한 우리말 숫자음 인식 (Digit Recognition using Speech and Image Information)

  • 조현욱;이종혁
    • 한국정보통신학회:학술대회논문집
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    • 한국해양정보통신학회 2001년도 추계종합학술대회
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    • pp.257-260
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    • 2001
  • 본 논문에서는 음성에서 얻어지는 특징 파라메타와 음성을 발성할 시 얻을 수 있는 가시적 데이터에서 추출되는 파라메타를 함께 이용하여 우리말 숫자음 인식을 시도하였다. 실험에서는 음성정보만을 이용한 기존의 방법과 영상정보의 추가할 경우의 인식성능을 비교, 검토하였다. 전체에서 50%를 학습시켰을 경우 학습된 화자의 경우 100%, 학습되지 않은 경우에는 78%의 인식률을 보였다.

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Automation of an Interactive Interview System by Hand Gesture Recognition Using Particle Filter

  • Lee, Yang-Weon
    • Journal of information and communication convergence engineering
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    • 제9권6호
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    • pp.633-636
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    • 2011
  • This paper describes a implementation of virtual interactive interview system. A hand motion recognition algorithm based on the particle filters is applied for this system. The particle filter is well operated for human hand motion recognition than any other recognition algorithm. Through the experiments, we show that the proposed scheme is stable and works well in virtual interview system's environments.

Motion Recognition using Principal Component Analysis

  • Kwon, Yong-Man;Kim, Jong-Min
    • Journal of the Korean Data and Information Science Society
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    • 제15권4호
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    • pp.817-823
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    • 2004
  • This paper describes a three dimensional motion recognition algorithm and a system which adopts the algorithm for non-contact human-computer interaction. From sequence of stereos images, five feature regions are extracted with simple color segmentation algorithm and then those are used for three dimensional locus calculation precess. However, the result is not so stable, noisy, that we introduce principal component analysis method to get more robust motion recognition results. This method can overcome the weakness of conventional algorithms since it directly uses three dimensional information motion recognition.

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A study on Machine-Printed Korean Character Recognition by the Character Composition form Information of the Graphemes and Graphemes using the Connection Ingredient and by the Vertical Detection Information in the Weight Center of Graphemes

  • Lee, Kyong-Ho
    • 한국컴퓨터정보학회논문지
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    • 제22권3호
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    • pp.97-105
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    • 2017
  • This study is the realization study recognizing the Korean gothic printing letter. This study defined the new grapheme by using the connection ingredient and had the graphemes recognized by means of the feature dots of the isolated dot, end dot, 2-line gathering dots, more than 3 lines gathering dots, and classified the characters by means of the arrangement information of the graphemes and the layers that the graphemes form within the characters, and made the character database for the recognition by using them. The layers and the arrangement information of the graphemes consisting in the characters were presumed by using the weight center position information of the graphemes extracted from the characters to recognize and the information of the graphemes obtained by vertically exploring from the weight center of each grapheme, and it recognized the characters by judging and comparing the character groups of the database by means of the information which was secured this way. 350 characters were used for the character recognition test and about 97% recognition result was obtained by recognizing 338 characters.

A Study on Face Recognition and Reliability Improvement Using Classification Analysis Technique

  • Kim, Seung-Jae
    • International journal of advanced smart convergence
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    • 제9권4호
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    • pp.192-197
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    • 2020
  • In this study, we try to find ways to recognize face recognition more stably and to improve the effectiveness and reliability of face recognition. In order to improve the face recognition rate, a lot of data must be used, but that does not necessarily mean that the recognition rate is improved. Another criterion for improving the recognition rate can be seen that the top/bottom of the recognition rate is determined depending on how accurately or precisely the degree of classification of the data to be used is made. There are various methods for classification analysis, but in this study, classification analysis is performed using a support vector machine (SVM). In this study, feature information is extracted using a normalized image with rotation information, and then projected onto the eigenspace to investigate the relationship between the feature values through the classification analysis of SVM. Verification through classification analysis can improve the effectiveness and reliability of various recognition fields such as object recognition as well as face recognition, and will be of great help in improving recognition rates.

Face Recognition Using a Facial Recognition System

  • Almurayziq, Tariq S;Alazani, Abdullah
    • International Journal of Computer Science & Network Security
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    • 제22권9호
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    • pp.280-286
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    • 2022
  • Facial recognition system is a biometric manipulation. Its applicability is simpler, and its work range is broader than fingerprints, iris scans, signatures, etc. The system utilizes two technologies, such as face detection and recognition. This study aims to develop a facial recognition system to recognize person's faces. Facial recognition system can map facial characteristics from photos or videos and compare the information with a given facial database to find a match, which helps identify a face. The proposed system can assist in face recognition. The developed system records several images, processes recorded images, checks for any match in the database, and returns the result. The developed technology can recognize multiple faces in live recordings.

레이저 센서를 이용한 타이어 옆면 인식 및 개선 시스템 설계 (Design of System for Character Recognition and Improvement of the tire side using a Laser Sensor)

  • 장현영;장종욱
    • 한국정보통신학회:학술대회논문집
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    • 한국정보통신학회 2016년도 춘계학술대회
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    • pp.267-270
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    • 2016
  • 최근 타이어에는 타이어의 정보를 알 수 있는 정보들이 다양하게 타이어 옆면에 표시되어 있다. 이러한 정보를 이용하는 사람들 및 타이어 관련 회사에서는 타이어의 옆면에 표시된 정보를 가지고 어떤 타이언지 구별을 하게 된다. 타이어의 규격 최대 허용 공기압, 제조일자 등을 일반적으로 사람이 직접 눈으로 봄으로서 이루어지고 있다. 이에 최근 영상 처리 기법을 이용하여 타이어 측면의 돌출 문자 인식을 통한 자동화의 연구가 꾸준히 발표 되고 있지만 문자 인식 및 인식의 개선에 대한 방법이 부족한 실정이다. 또한 기존의 옆면 문자 인식을 영상으로 취득 하는데, 취득시 조명 효과를 적절히 이용하더라도 배경과 문자 부분이 거의 유사간 그레이 레벨 값을 가지게 되어 비교적 분명하지 않은 부분이 많이 산재된다. 본 논문에서는 레이저 센서를 이용한 타이어 옆면 문자를 확인하고 인식, 타이어 옆면의 문자 인식에 관하여 설계를 하였다.

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시간지연 회귀 신경회로망을 이용한 피치 악센트 인식 (Automatic Recognition of Pitch Accents Using Time-Delay Recurrent Neural Network)

  • Kim, Sung-Suk;Kim, Chul;Lee, Wan-Joo
    • The Journal of the Acoustical Society of Korea
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    • 제23권4E호
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    • pp.112-119
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    • 2004
  • This paper presents a method for the automatic recognition of pitch accents with no prior knowledge about the phonetic content of the signal (no knowledge of word or phoneme boundaries or of phoneme labels). The recognition algorithm used in this paper is a time-delay recurrent neural network (TDRNN). A TDRNN is a neural network classier with two different representations of dynamic context: delayed input nodes allow the representation of an explicit trajectory F0(t), while recurrent nodes provide long-term context information that can be used to normalize the input F0 trajectory. Performance of the TDRNN is compared to the performance of a MLP (multi-layer perceptron) and an HMM (Hidden Markov Model) on the same task. The TDRNN shows the correct recognition of $91.9{\%}\;of\;pitch\;events\;and\;91.0{\%}$ of pitch non-events, for an average accuracy of $91.5{\%}$ over both pitch events and non-events. The MLP with contextual input exhibits $85.8{\%},\;85.5{\%},\;and\;85.6{\%}$ recognition accuracy respectively, while the HMM shows the correct recognition of $36.8{\%}\;of\;pitch\;events\;and\;87.3{\%}$ of pitch non-events, for an average accuracy of $62.2{\%}$ over both pitch events and non-events. These results suggest that the TDRNN architecture is useful for the automatic recognition of pitch accents.

수식 표현의 인식에 관한 연구 (Experimentation on The Recognition of Arithmetic Expressions)

  • 이영교;김영포
    • 디지털산업정보학회논문지
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    • 제10권4호
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    • pp.29-35
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    • 2014
  • The formula contains up between the text and the structural information, as well as their mathematical symbols. Research on-line or off-line recognition formula is underway actively used in various fields, and various forms of the equation are implemented recognition system. Although many documents are included in the various formulas, it is not easy to enter a formula into the computer. Recognition of the expression is divided into two processes of symbol recognition and structural analysis. After analyzing the location information of each character is specified to recognize the effective area after each symbol, and to the structure analysis based on the proximity between the characters is recognized as an independent single formula. Furthermore, analyzing the relationship between the front and back each time a combination of the position relationship between each symbol, and then to add the symbol which was able to easily update the structure of the entire formula. In this paper, by using a scanner to scan the book formula was used to interpret the meaning of the recognized symbol has a relative size and location information of the expression symbol. An algorithm to remove the formulas for calculation of the number of formula is present at the same time is proposed. Using the proposed algorithms to scan the books in the formula in order to evaluate the performance verification as 100% separation and showed the recognition rate equation.

다면기법 SPFACS 영상객체를 이용한 AAM 알고리즘 적용 미소검출 설계 분석 (Using a Multi-Faced Technique SPFACS Video Object Design Analysis of The AAM Algorithm Applies Smile Detection)

  • 최병관
    • 디지털산업정보학회논문지
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    • 제11권3호
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    • pp.99-112
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    • 2015
  • Digital imaging technology has advanced beyond the limits of the multimedia industry IT convergence, and to develop a complex industry, particularly in the field of object recognition, face smart-phones associated with various Application technology are being actively researched. Recently, face recognition technology is evolving into an intelligent object recognition through image recognition technology, detection technology, the detection object recognition through image recognition processing techniques applied technology is applied to the IP camera through the 3D image object recognition technology Face Recognition been actively studied. In this paper, we first look at the essential human factor, technical factors and trends about the technology of the human object recognition based SPFACS(Smile Progress Facial Action Coding System)study measures the smile detection technology recognizes multi-faceted object recognition. Study Method: 1)Human cognitive skills necessary to analyze the 3D object imaging system was designed. 2)3D object recognition, face detection parameter identification and optimal measurement method using the AAM algorithm inside the proposals and 3)Face recognition objects (Face recognition Technology) to apply the result to the recognition of the person's teeth area detecting expression recognition demonstrated by the effect of extracting the feature points.