• Title/Summary/Keyword: Gabor 특징

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Separable Symmetric Gabor Filter for Vein Identification (정맥인식을 위한 Separable Symmetric Gabor 필터)

  • Sin, Sang-Woo;Jang, Kyung-Sik
    • Proceedings of the Korea Information Processing Society Conference
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    • 2007.11a
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    • pp.1139-1142
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    • 2007
  • Separable Gabor 필터는 기존의 2D Gabor 필터를 x축 성분과 y축 성분만을 지니는 두 개의 1D 필터로 나누어 각각 적용하는 방법으로 속도 향상을 가져왔으며, 지문인식 등에서 사용되어왔다. 하지만 정맥과 같은 경우에는 지문의 융선들 보다 더 굵기 때문에 필터의 크기 또한 매우 커진다. 따라서 Separable Gabor 필터의 경우도 지문에서만큼의 빠른 속도를 내지는 못한다. 본 논문에서는 Separable Gabor 필터 보다 더욱 고속의 연산이 가능한 Separable Symmetric Gabor 필터를 제안하였다. 이 필터는 사선 방향으로의 특징을 강조함에 있어 동시에 대칭이 되는 각도의 특성까지 강조하고, 회선 과정에서 필터의 방향 값을 고려하지 않기 때문에 인덱스 계산이 매우 단순해져 기존의 Separable Gabor 필터보다 처리 속도를 향상시킬 수 있다.

Face Recognition by Fiducial Points Based Gabor and LBP Features (특징점기반 Gabor 및 LBP 피쳐를 이용한 얼굴 인식)

  • Kim, Jin-Ho
    • The Journal of the Korea Contents Association
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    • v.13 no.1
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    • pp.1-8
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    • 2013
  • The accuracy of a real facial recognition system can be varied according to the accuracy of the eye detection algorithm when we design and implement a semi-automatic facial recognition algorithm depending on the eye position of a database. In this paper, a fully automatic facial recognition algorithm is proposed such that Gabor and LBP features are extracted from fiducial points of a face graph which was created by using fiducial points based on the eyes, nose, mouth and border lines of a face, fitted on the face image. In this algorithm, the recognition performance could be increased because a face graph can be fitted on a face image automatically and fiducial points based LPB features are implemented with the basic Gabor features. The simulation results show that the proposed algorithm can be used in real-time recognition for more than 1,000 faces and produce good recognition performance for each data set.

The fingerprint feature extraction and matching method using Gator-filter in the fingerprint - recognition (지문인식에서의 Gabor-filter를 사용한 Feature추출과 Matching 기법)

  • 박준범;송명철;김영구;고한석
    • Proceedings of the IEEK Conference
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    • 2001.09a
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    • pp.433-436
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    • 2001
  • 본 논문에서는, 지문인식에 있어서 특징 추출알고리즘과 추출된 특징을 가지고, matching하는 알고리즘을 제안하였다. 지문인식에 필요한 특징추출 알고리즘들은 Gabor-filter라는 알고리즘에 기반을 두었으며, minutiae 와는 달리 특징추출에 있어서 전처리과정(smoothing, binarization, thining, restoration) 을 필요로 하지않는다. 또한, 지문의 matching에 있어서의 알고리즘은 fingercode들 간의 유사성에 기반을 두었다. 이를 통한 실 험결과로써, 인식의 정확성은 95.7(%), FAR(2.9%), FRR(1.4%)을 보여주었다.

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A Study on the Hair Line detection Using Feature Points Matching in Hair Beauty Fashion Design (헤어 뷰티 패션 디자인 선별을 위한 특징 점 정합을 이용한 헤어 라인 검출)

  • 송선희;나상동;배용근
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.7 no.5
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    • pp.934-940
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    • 2003
  • In this paper, hair beauty fashion design feature points detection system is proposed. A hair models and hair face is represented as a graph where the nodes are placed at facial feature points labeled by their Gabor features and the edges are describes their spatial relations. An innovative flexible feature matching is proposed to perform features correspondence between hair models and the input image. This matching hair model works like random diffusion process in the image space by employing the locally competitive and globally corporative mechanism. The system works nicely on the face images under complicated background. pose variations and distorted by accessories. We demonstrate the benefits of our approach by its implementation on the face identification system.

Eye Localization based on Multi-Scale Gabor Feature Vector Model (다중 스케일 가버 특징 벡터 모델 기반 눈좌표 검출)

  • Kim, Sang-Hoon;Jung, Sou-Hwan;Oh, Du-Sik;Kim, Jae-Min;Cho, Seong-Won;Chung, Sun-Tae
    • The Journal of the Korea Contents Association
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    • v.7 no.1
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    • pp.48-57
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    • 2007
  • Eye localization is necessary for face recognition and related application areas. Most of eye localization algorithms reported thus far still need to be improved about precision and computational time for successful applications. In this paper, we propose an improved eye localization method based on multi-scale Gator feature vector models. The proposed method first tries to locate eyes in the downscaled face image by utilizing Gabor Jet similarity between Gabor feature vector at an initial eye coordinates and the eye model bunch of the corresponding scale. The proposed method finally locates eyes in the original input face image after it processes in the same way recursively in each scaled face image by using the eye coordinates localized in the downscaled image as initial eye coordinates. Experiments verify that our proposed method improves the precision rate without causing much computational overhead compared with other eye localization methods reported in the previous researches.

A Novel Eyelashes Removal Method for Improving Iris Data Preservation Rate (홍채영역에서의 홍채정보 보존율 향상을 위한 새로운 속눈썹 제거 방법)

  • Kim, Seong-Hoon;Han, Gi-Tae
    • KIPS Transactions on Software and Data Engineering
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    • v.3 no.10
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    • pp.429-440
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    • 2014
  • The iris recognition is a biometrics technology to extract and code an unique iris feature from human eye image. Also, it includes the technology to compare with other's various iris stored in the system. On the other hand, eyelashes in iris image are a external factor to affect to recognition rate of iris. If eyelashes are not removed exactly from iris area, there are two false recognitions that recognize eyelashes to iris features or iris features to eyelashes. Eventually, these false recognitions bring out a lot of loss in iris informations. In this paper, in order to solve that problems, we removed eyelashes by gabor filter that using for analysis of frequency feature and improve preservation rate of iris informations. By novel method to extract various features on iris area using angle, frequency, and gaussian parameter on gabor filter that is one of the filters for analysing frequency feature for an image, we could remove accurately eyelashes with various lengths and shapes. As the result, proposed method represents that improve about 4% than previous methods using GMM or histogram analysis in iris preservation rate.

The Face Recognition Using New Feature Vector Composition from Gabor Reponse and K-L Transform (Gabor 응답에 대한 새로운 특징벡터의 구성과 K-L 변환을 이용한 얼굴인식)

  • 이완수;이형지;정재호
    • Proceedings of the IEEK Conference
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    • 2001.06d
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    • pp.33-36
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    • 2001
  • We introduce, in this paper, the face recognition method that improves recognition rate and training time in eigen system. To increase recognition rate we use Gabor filter. To reduce the increasing training time owing to use Gabor filtering, we extract new feature vectors that are made with average and standard deviation. In experimental results, we get higher recognition rate and shorter training time in improved system than it in original eigen system.

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Hierarchical Gabor Feature and Bayesian Network for Handwritten Digit Recognition (계층적인 가버 특징들과 베이지안 망을 이용한 필기체 숫자인식)

  • 성재모;방승양
    • Journal of KIISE:Software and Applications
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    • v.31 no.1
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    • pp.1-7
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    • 2004
  • For the handwritten digit recognition, this paper Proposes a hierarchical Gator features extraction method and a Bayesian network for them. Proposed Gator features are able to represent hierarchically different level information and Bayesian network is constructed to represent hierarchically structured dependencies among these Gator features. In order to extract such features, we define Gabor filters level by level and choose optimal Gabor filters by using Fisher's Linear Discriminant measure. Hierarchical Gator features are extracted by optimal Gabor filters and represent more localized information in the lower level. Proposed methods were successfully applied to handwritten digit recognition with well-known naive Bayesian classifier, k-nearest neighbor classifier. and backpropagation neural network and showed good performance.

Iris Recognition Using the Gabor Wavelet and Fuzzy LDA (Gabor Wavelet과 Fuzzy LDA을 이용한 홍채인식)

  • Go, Hyoun-Joo;You, Byoung-Jin;Chun, Myung-Geun
    • Proceedings of the Korea Information Processing Society Conference
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    • 2005.05a
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    • pp.427-430
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    • 2005
  • 사람의 홍채는 태어날 때 한번 정해지면 평생 변화하지 않는 특성을 가지고 있으며, 개개인별로 모양이 모두 다른 것으로 알려져 있다. 이에, 본 논문에서는 홍채영상 취득시 조명에 의한 동공의 크기 변화에 민감하지 않은 2차원의 홍채패턴을 취득하여, 2D Gabor Wavelet과 Fuzzy LDA를 이용하여 특징 벡터를 추출한다. 인식과정에서는 correlation 계수를 이용하여 서로 다른 홍채의 특징 값에 대해 유사도를 측정하고 유사도가 가장 큰 대상을 찾게 된다. 이때, 4개 방향의 Gabor Wavelet을 거쳐 얻어진 영상에 대해 최고의 값을 인식 대상자로 인정하므로 오 인식 될 확률을 최소화 할 수 있다. 제안한 알고리듬의 유용성을 확인하기 위해 대상자 50명에 대하여 각각 6회씩 촬영한 두 가지 데이터베이스(CASIA, CBNU)를 이용하였으며, 실험 결과 90% 이상의 높은 인식률을 얻었다.

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A Flexible Feature Matching for Automatic Facial Feature Points Detection (얼굴 특징점 자동 검출을 위한 탄력적 특징 정합)

  • Hwang, Suen-Ki;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.12-17
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    • 2010
  • An automatic facial feature points(FFPs) detection system is proposed. A face is represented as a graph where the nodes are placed at facial feature points(FFPs) labeled by their Gabor features and the edges are describes their spatial relations. An innovative flexible feature matching is proposed to perform features correspondence between models and the input image. This matching model works likes random diffusion process in the image space by employing the locally competitive and globally corporative mechanism. The system works nicely on the face images under complicated background, pose variations and distorted by facial accessories. We demonstrate the benefits of our approach by its implementation on the system.

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