• Title/Summary/Keyword: 인식 시스템

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Flowchart-C Conversion System using Camera (카메라를 이용한 flowchart-C변환 시스템)

  • 이창우;주윤희;손영선
    • Proceedings of the Korean Institute of Intelligent Systems Conference
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    • 2003.05a
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    • pp.165-168
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    • 2003
  • 본 논문에서는 CCD 흑백 카메라를 이용하여 프로그래머의 알고리즘이 표현된 flowchart의 영상을 입력받아 C언어 코드로 변환하는 시스템을 구현하였다. 입력된 영상을 이진화 처리한 영상으로부터 flowchart 기호들을 인식하기 위하여 chain code 방법을 이용하였고, flowchart 기호에 기술된 영문자 및 특수문자의 인식을 위하여 가로 및 세로 히스토그램을 이용하여 한 문자색 분할한 후 각 문자들을 구성하는 흑화소 pixel의 합과 chain code 방법을 사용하였다. 가로 및 세로 투영을 이용하여 흐름선을 인식함으로써 flowchart의 논리흐름을 파악할 수 있었다. 이 시스템을 수치연산에 적용하여, 프로그래머의 알고리즘에 부합하는 프로그램이 작성되어짐을 확인할 수 있었다.

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Improvement of User Recognition Rate using Multi-modal Biometrics (다중생체인식 기법을 이용한사용자 인식률 향상)

  • Geum, Myung-Hwan;Lee, Kyu-Won;Lee, Bong-Hwan
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.12 no.8
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    • pp.1456-1462
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    • 2008
  • In general, it is known a single biometric-based personal authentication has limitation to improve recognition rate due to weakness of individual recognition scheme. The recognition rate of face recognition system can be reduced by environmental factor such as illumination, while speaker verification system does not perform well with added surrounding noise. In this paper, a multi-modal biometric system composed of face and voice recognition system is proposed in order to improve the performance of the individual authentication system. The proposed empirical weight sum rule based on the reliability of the individual authentication system is applied to improve the performance of multi-modal biometrics. Since the proposed system is implemented using JAVA applet with security function, it can be utilized in the field of user authentication on the generic Web.

Secure RFID-based Payment System against Various Threats (위.변조에 안전한 RFID 지급결제시스템)

  • Kim, In-Seok;Choi, Eun-Young;Lee, Dong-Hoon;Lim, Jong-In
    • Journal of the Korea Institute of Information Security & Cryptology
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    • v.17 no.5
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    • pp.141-146
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    • 2007
  • Barcodes have been widely used to implement automatic identification systems but there are various problems such as security weakness or distance restriction in scanning barcode signals in a barcode-based automatic identifcation systems. Recently researchers are gradually interested in radio frequency identification (RFID) and RFID systems have been applied to various fields than before. Especially one of RFID application fields, a bank system uses RFID tagged bankontes to prevent illegal transactions such as counterfeiting banknotes and money laundering. In this paper, we propose a RFID system for protecting location provacy of a banknote holder. In addition, our paper describes that a trust party can trace a counterfeit banknote holder to provide against emergencies.

A Training Method for Emotionally Robust Speech Recognition using Frequency Warping (주파수 와핑을 이용한 감정에 강인한 음성 인식 학습 방법)

  • Kim, Weon-Goo
    • Journal of the Korean Institute of Intelligent Systems
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    • v.20 no.4
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    • pp.528-533
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    • 2010
  • This paper studied the training methods less affected by the emotional variation for the development of the robust speech recognition system. For this purpose, the effect of emotional variation on the speech signal and the speech recognition system were studied using speech database containing various emotions. The performance of the speech recognition system trained by using the speech signal containing no emotion is deteriorated if the test speech signal contains the emotions because of the emotional difference between the test and training data. In this study, it is observed that vocal tract length of the speaker is affected by the emotional variation and this effect is one of the reasons that makes the performance of the speech recognition system worse. In this paper, a training method that cover the speech variations is proposed to develop the emotionally robust speech recognition system. Experimental results from the isolated word recognition using HMM showed that propose method reduced the error rate of the conventional recognition system by 28.4% when emotional test data was used.

Server based Mobile Multi-lingual Recognition System of Name-card (서버기반 모바일 다국어 명함인식 시스템)

  • Jang, Dong-Hyeub;Lee, Jae-Hong;Kim, Seong-Hak
    • KIPS Transactions on Software and Data Engineering
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    • v.3 no.4
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    • pp.155-162
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    • 2014
  • In this study, we developed a server-based mobile multi-lingual name-card recognition system which utilizes smartphone only as a terminal for capturing images of name-card and displaying results of recognition, running server as a recognizer of characters. For efficient processing and transmission of captured images, we corrected the distorted images, removed noises from them, and defined the socket-based protocol for wireless transmission of images between smartphone and the recognizer on server. Various tests for name-cards of five language types show increased recognition rate and speed of the developed system against conventional smartphone-based recognizers.

Teeth Image Recognition Using Hidden Markov Model (HMM을 이용한 치열 영상인식)

  • Kim, Dong-Ju;Yoon, Jun-Ho;Cheon, Byeong-Geun;Lee, Hyon-Gu;Hong, Kwang-Seok
    • Proceedings of the Korea Institute of Convergence Signal Processing
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    • 2006.06a
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    • pp.29-32
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    • 2006
  • 본 논문에서는 기존의 생체인식에서 사용하지 않았던 방법으로 개인의 치열 영상을 이용하는 생체 인식 방법을 제안한다. 제안한 치열 인식 시스템은 데이터의 중복성 제거와 관측벡터의 차원 감소를 위하여 2D-DCT를 특징 파라미터로 사용하고, 음성인식 및 얼굴인식 분야에서 사용하는 EHMM 기술을 사용한다. EHMM은 3개의 super-state로 구성되며 각각의 super-state는 3개, 5개, 3개의 상태를 갖는 1D-HMM으로 구성된다. 치열인증 시스템의 성능 평가는 모델 훈련에 사용하지 않은 치열 영상으로 인식 실험하여 평가한다. 치열인식 실험에는 남자 10명과 여자 10명에 대하여 각각 10개의 이미지로 구성된 총 200개의 치열 영상을 사용한다. 치열인식 실험에서 제안한 치열인식 시스템의 인식률은 98.5%를 보였고, 참고문헌 [4]의 EHMM을 사용한 얼굴인식 시스템이 갖는 98%와 대등한 성능을 나타내는 것을 확인하였다.

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Multimodal Biometric Recognition System using Real Fuzzy Vault (실수형 퍼지볼트를 이용한 다중 바이오인식 시스템)

  • Lee, Dae-Jong;Chun, Myung-Geun
    • Journal of the Korean Institute of Intelligent Systems
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    • v.23 no.4
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    • pp.310-316
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    • 2013
  • Biometric techniques have been widely used for various areas including criminal identification due to their reliability. However, they have some drawbacks when the biometric information is divulged to illegal users. This paper proposed multimodal biometric system using a real fuzzy vault by RN-ECC for protecting fingerprint and face template. This proposed method has some advantages to regenerate a key value compared with face or fingerprint based verification system having non-regenerative nature and to implement advanced biometric verification system by fusion of both fingerprint and face recognition. From the various experiments, we found that the proposed method shows high recognition rates comparing with the conventional methods.

A Segmentation-Based HMM and MLP Hybrid Classifier for English Legal Word Recognition (분할기반 은닉 마르코프 모델과 다층 퍼셉트론 결합 영문수표필기단어 인식시스템)

  • 김계경;김진호;박희주
    • Journal of the Korean Institute of Intelligent Systems
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    • v.11 no.3
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    • pp.200-207
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    • 2001
  • In this paper, we propose an HMM(Hidden Markov modeJ)-MLP(Multi-layer perceptron) hybrid model for recognizing legal words on the English bank check. We adopt an explicit segmentation-based word level architecture to implement an HMM engine with nonscaled and non-normalized symbol vectors. We also introduce an MLP for implicit segmentation-based word recognition. The final recognition model consists of a hybrid combination of the HMM and MLP with a new hybrid probability measure. The main contributions of this model are a novel design of the segmentation-based variable length HMMs and an efficient method of combining two heterogeneous recognition engines. ExperimenLs have been conducted using the legal word database of CENPARMI with encouraging results.

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A Study on Improved Label Recognition Method Using Deep Learning. (딥러닝을 활용한 향상된 라벨인식 방법에 관한 연구)

  • Yoo, Sung Geun;Cho, Sung Man;Song, Minjeong;Jeon, Soyeon;Lim, Song Won;Jung, Seokyung;Park, Sangil;Park, Gooman;Kim, Heetae;Lee, Daesung
    • Proceedings of the Korea Information Processing Society Conference
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    • 2018.05a
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    • pp.447-448
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    • 2018
  • 라벨인식과 같은 광학 문자 인식은 영상처리를 활용한 컴퓨터 비전의 대표적인 연구분야이다. 본 연구에서는 딥러닝 기반의 라벨인식 시스템을 고안하였다, 생산 라인에 적용되는 라벨인식 시스템은 인식 속도가 중요하기 때문에 기존의 R-CNN기반의 딥러닝 신경망보다 월등히 빠른 오브젝트 검출 시스템 YOLO를 활용하여 문자를 학습 및 인식 시스템을 개발하였다. 본 시스템은 기존 시스템에 근접하는 문자인식 정확도를 제공하고 자동으로 문자영역을 검출 가능하며, 라벨의 인쇄불량을 판독하도록 하였다. 또한 개발, 배포, 적용이 한번에 가능한 프레임워크를 통하여 생산현장에서 발생하는 다양한 이미지 처리에 활용될 전망이다.

A Study on Development of Embedded System for Speech Recognition using Multi-layer Recurrent Neural Prediction Models & HMM (다층회귀신경예측 모델 및 HMM 를 이용한 임베디드 음성인식 시스템 개발에 관한 연구)

  • Kim, Jung hoon;Jang, Won il;Kim, Young tak;Lee, Sang bae
    • Journal of the Korean Institute of Intelligent Systems
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    • v.14 no.3
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    • pp.273-278
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    • 2004
  • In this paper, the recurrent neural networks (RNN) is applied to compensate for HMM recognition algorithm, which is commonly used as main recognizer. Among these recurrent neural networks, the multi-layer recurrent neural prediction model (MRNPM), which allows operating in real-time, is used to implement learning and recognition, and HMM and MRNPM are used to design a hybrid-type main recognizer. After testing the designed speech recognition algorithm with Korean number pronunciations (13 words), which are hardly distinct, for its speech-independent recognition ratio, about 5% improvement was obtained comparing with existing HMM recognizers. Based on this result, only optimal (recognition) codes were extracted in the actual DSP (TMS320C6711) environment, and the embedded speech recognition system was implemented. Similarly, the implementation result of the embedded system showed more improved recognition system implementation than existing solid HMM recognition systems.