• Title/Summary/Keyword: Iris recognition

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Robust Feature Extract ion Methods for Iris Recognition (홍채인식을 위한 강건한 특징추출 방법)

  • 김기진;손병준;이일병
    • Proceedings of the Korean Information Science Society Conference
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    • 2004.04b
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    • pp.793-795
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    • 2004
  • 본 논문에서는 웨이블릿 변환과 Direct LDA(DLDA)을 사용한 홍채 특징추출 방법을 제안한다. 이것은 획득한 홍채 영상으로부터 독특한 특징을 추출하기 위해 특별히 이차원 이산 웨이블릿 변환의 다중해상도 분해 방법을 사용하는 것이다 또한 홍채의 다양한 웨이블릿 성분으로부터 변별력을 가진 특징을 얻을 수 있도록 DLDA 기법을 적용하였다. 이러한 특징추출 방법은 이동이나 회전에 변하지 않는 알고리즘을 요구하는 홍채의 모양을 묘사하는데 적합하다. 홍채의 패턴정합을 위해서는 최근접 평균 분류기(Nearest Mean Classifier)를 사용하였다. 본 논문에서 인간의 홍채인식을 위해 제시한 방법이 홍채패턴을 표현하는 효과적인 방법이며, 시간 및 공간의 절약이라는 측면에서 유리하다는 것을 보여준다.

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(A User Authentication System Using Geometric Analysis and Similarity Comparison) (얼굴의 기하학적 분석과 유사도 비교를 이용한 사용자 인증 시스템)

  • 최내원;류동엽;지정규
    • Journal of the Korea Computer Industry Society
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    • v.3 no.9
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    • pp.1269-1278
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    • 2002
  • The more high growth of knowledge, the more need personal identity technique. Fingerprint or iris of the eye identity techniques are already commercialized and used various field. Using human face recognition or authentication are not high performance yet. But application for an organism or face recognition are expected getting important. We propose a user recognition system by verifying similarity comparison of eye and lip component images which are splitted, calculated characteristic rate of each facial components and added weight to special formula. Through test proposed methods and analysis the result, we got a high recognition rate.

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Pet Bioscanning App (반려동물 생체인식 앱)

  • Park, Ju-Yeon;Yun, Ji-Yun;Lee, Ye-Jin;Bak, Seo-Yeong;Kim, Doo-Yeol;Lee, Ki Seog
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2021.07a
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    • pp.351-354
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    • 2021
  • 본 연구에서는 기존 업체들이 활용하고 있는 반려동물 생체인식 기술 기반 통합 서비스 앱을 제안한다. 이 앱은 반려동물 미등록자의 미등록 사유를 바탕으로, 접근성 및 노출 빈도가 높은 스마트폰 앱으로, 등록 방식은 안면, 비문, 홍채, DNA 등록을 활용한다. 하나의 생체인식 방법을 사용하는 것이 아닌 다중 인식 방법을 제공하고, 각 인식 방법별 정확도의 비중을 달리하여 오차를 줄이고, 기존의 등록 방식 및 앱과의 차별화를 시도하고자 한다. 또한, CUPET 앱은 단순 등록에 그치지 않고, 실종 및 유기 동물 찾기, 예방접종 주기 및 반려동물 생애주기 정보 제공, 사용자들의 데이터 및 병원 연계를 통해 반려동물 유형별 병원 추천 등의 서비스를 제공하고자 한다. 본 연구에서 제안하는 CUPET 앱을 통하여, 등록 방식의 간략화로 반려동물 등록률 증가, 개인의 반려동물 인식 장치 소유 가능으로 실종 및 유기 동물에 대한 신속한 보호가 가능할 것으로 사료된다.

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Web-based University Classroom Attendance System Based on Deep Learning Face Recognition

  • Ismail, Nor Azman;Chai, Cheah Wen;Samma, Hussein;Salam, Md Sah;Hasan, Layla;Wahab, Nur Haliza Abdul;Mohamed, Farhan;Leng, Wong Yee;Rohani, Mohd Foad
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • v.16 no.2
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    • pp.503-523
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    • 2022
  • Nowadays, many attendance applications utilise biometric techniques such as the face, fingerprint, and iris recognition. Biometrics has become ubiquitous in many sectors. Due to the advancement of deep learning algorithms, the accuracy rate of biometric techniques has been improved tremendously. This paper proposes a web-based attendance system that adopts facial recognition using open-source deep learning pre-trained models. Face recognition procedural steps using web technology and database were explained. The methodology used the required pre-trained weight files embedded in the procedure of face recognition. The face recognition method includes two important processes: registration of face datasets and face matching. The extracted feature vectors were implemented and stored in an online database to create a more dynamic face recognition process. Finally, user testing was conducted, whereby users were asked to perform a series of biometric verification. The testing consists of facial scans from the front, right (30 - 45 degrees) and left (30 - 45 degrees). Reported face recognition results showed an accuracy of 92% with a precision of 100% and recall of 90%.

Display Technologies for Immersive Devices and Electronic Skin (디스플레이 현황과 발전방향 -실감 및 스킨 기기로의 확대)

  • Park, Y.J.
    • Electronics and Telecommunications Trends
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    • v.34 no.2
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    • pp.10-18
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    • 2019
  • Since the introduction of CRT(Cathode Ray Tube) in the 1950s, display technologies have been developed continuously. Flat panel displays such as PDP(Plasma Display Panel) and LCD(Liquid Crystal Display) were commercialized in the late 1990s, and OLED(Organic Light Emitting Diodes) and Micro-LED(Micro-Light Emitting Diodes) are now being developed and are becoming widespread. In the future, we expect to develop ultra-realistic, flexible, embedded sensor displays. Ultra-realistic display can be applied to AR/VR(Augmented Reality/Virtual Reality) devices and spatial light modulators for holography. The sensor-embedded display can be applied to robots; electronic skin; and security devices, including iris recognition sensors, fingerprint recognition sensors, and tactile sensors. AR/VR technology must be developed to meet technical requirements such as viewing angle, resolution, and refresh rate. Holography requires optical modulation technology that can significantly improve resolution, viewing angle, and modulation method to enable wide-view and high-quality hologram stereoscopic images. For electronic skin, stable mass production technology, large-area arrays, and system integration technologies should be developed.

Piezoelectric Ultrasound MEMS Transducers for Fingerprint Recognition

  • Jung, Soo Young;Park, Jin Soo;Kim, Min-Seok;Jang, Ho Won;Lee, Byung Chul;Baek, Seung-Hyub
    • Journal of Sensor Science and Technology
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    • v.31 no.5
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    • pp.286-292
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    • 2022
  • As mobile electronics become smarter, higher-level security systems are necessary to protect private information and property from hackers. For this, biometric authentication systems have been widely studied, where the recognition of unique biological traits of an individual, such as the face, iris, fingerprint, and voice, is required to operate the device. Among them, ultrasound fingerprint imaging technology using piezoelectric materials is one of the most promising approaches adopted by Samsung Galaxy smartphones. In this review, we summarize the recent progress on piezoelectric ultrasound micro-electro-mechanical systems (MEMS) transducers with various piezoelectric materials and provide insights to achieve the highest-level biometric authentication system for mobile electronics.

The Incremental Learning Method of Variable Slope Backpropagation Algorithm Using Representative Pattern (대표 패턴을 사용한 가변 기울기 역전도 알고리즘의 점진적 학습방법)

  • 심범식;윤충화
    • Journal of the Korea Society of Computer and Information
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    • v.3 no.1
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    • pp.95-112
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    • 1998
  • The Error Backpropagation algorithm is widely used in various areas such as associative memory, speech recognition, pattern recognition, robotics and so on. However, if and when a new leaning pattern has to be added in order to drill, it will have to accomplish a new learning with all previous learning pattern and added pattern from the very beginning. Somehow, it brings about a result which is that the more it increases the number of pattern, the longer it geometrically progress the time required by leaning. Therefore, a so-called Incremental Learning Method has to be solved the point at issue all by means in case of situation which is periodically and additionally learned by numerous data. In this study, not only the existing neural network construction is still remained, but it also suggests a method which means executing through added leaning by a model pattern. Eventually, for a efficiency of suggested technique, both Monk's data and Iris data are applied to make use of benchmark on machine learning field.

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An Enhancement of Learning Speed of the Error - Backpropagation Algorithm (오류 역전도 알고리즘의 학습속도 향상기법)

  • Shim, Bum-Sik;Jung, Eui-Yong;Yoon, Chung-Hwa;Kang, Kyung-Sik
    • The Transactions of the Korea Information Processing Society
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    • v.4 no.7
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    • pp.1759-1769
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    • 1997
  • The Error BackPropagation (EBP) algorithm for multi-layered neural networks is widely used in various areas such as associative memory, speech recognition, pattern recognition and robotics, etc. Nevertheless, many researchers have continuously published papers about improvements over the original EBP algorithm. The main reason for this research activity is that EBP is exceeding slow when the number of neurons and the size of training set is large. In this study, we developed new learning speed acceleration methods using variable learning rate, variable momentum rate and variable slope for the sigmoid function. During the learning process, these parameters should be adjusted continuously according to the total error of network, and it has been shown that these methods significantly reduced learning time over the original EBP. In order to show the efficiency of the proposed methods, first we have used binary data which are made by random number generator and showed the vast improvements in terms of epoch. Also, we have applied our methods to the binary-valued Monk's data, 4, 5, 6, 7-bit parity checker and real-valued Iris data which are famous benchmark training sets for machine learning.

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Iris detection using Hough transform and separable filter (허프 변환과 분리필터를 이용한 홍채 검출)

  • Kim, Tae-Woo;Bae, Cheol-Soo
    • The Journal of Korea Institute of Information, Electronics, and Communication Technology
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    • v.3 no.2
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    • pp.3-11
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    • 2010
  • In this paper we propose a new algorithm to detect the irises of both eyes from a human face. Using the separability filter, the algorithm first extracts blobs(intensity valleys) as the candidates for the irises. Next, for each pair of blobs, the algorithm computes a cost using Hough transform and separability filter to measure the fit of the pair of blobs to the image. And then, the algorithm selects a pair of blobs with the smallest cost as the irises of both eyes. As the result of the experiment using 150 faces images without spectacles, the success rate of the proposed algorithm was 97.3% for the best case and 95.3% for the worst case.

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Iris detection using Hough transform and separable filter (허프 변환과 분리필터를 이용한 홍채 검출)

  • Park, Ho-Sik;Bae, Cheol-Soo
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.10 no.3
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    • pp.526-534
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    • 2006
  • In this paper we propose a new algorithm to detect the irises of both eyes from a human face. Using the separability filter, the algorithm first extracts blobs(intensity valleys) as the candidates for the irises. Next, for each pair of blobs. the algorithm computes a cost usings Hough transform and separability later to measure the fit of the pair of blobs to the image. And then, the algorithm selects a pair of blobs with the smallest cost as the irises of both eyes. As the result of the experiment using 150 faces images without spectacles, the success rate of the proposed algorithm was 97.3% for the best case and 95.3% for the worst case.