• Title/Summary/Keyword: 얼굴 신뢰성

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Face Transform with Age-progressing based on Vector Representation (벡터표현 기반의 연령변화에 따른 얼굴 변환)

  • Lee, Hyun-jik;Kim, Yoon-Ho
    • The Journal of Korea Institute of Information, Electronics, and Communication Technology
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    • v.3 no.3
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    • pp.39-44
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    • 2010
  • In this paper, we addressed a face transform scheme with age-progressing based on vector representation. Proposed approach utilized a vector modeling as well as morphing so as to improve not only a reliability but also a consistency. For the more, some elements of texture change owing to the face shape are defined and some parameters with respect to the internal and external environments are also considered. To testify the proposed approach, estimation of similarity is performed with qualitative manner by using experimental output, and finally resulted in satisfactory for face shape transformation aged from sixty to fourteen.

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Fake Face Detection and Falsification Detection System Based on Face Recognition (얼굴 인식 기반 위변장 감지 시스템)

  • Kim, Jun Young;Cho, Seongwon
    • Smart Media Journal
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    • v.4 no.4
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    • pp.9-17
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    • 2015
  • Recently the need for advanced security technologies are increasing as the occurrence of intelligent crime is growing fastly. Previous liveness detection and fake face detection methods are required for the improvement of accuracy in order to be put to practical use. In this paper, we propose a new liveness detection method using pupil reflection, and new fake image detection using Adaboost detector. The proposed system detects eyes based on multi-scale Gabor feature vector in the first stage, The template matching plays a role in determining the allowed eye area. And then, the reflected image in the pupil is used to decide whether or not the captured image is live or not. Experimental results indicate that the proposed method is superior to the previous methods in the detection accuracy of fake images.

Decompose the Manifold Into Gaussian Densities : Face Detection (다양체 가우시안 분해 : 얼굴 검출)

  • 양준영;변혜란
    • Proceedings of the Korean Information Science Society Conference
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    • 2004.10b
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    • pp.682-684
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    • 2004
  • 제안하는 방법은 분산량이 큰 객체에 대하여 여러 개의 가우시안을 이용하여 다양체를 분해하는 알고리즘이다. 제안하는 방법은 단순하지만 빠르게 다양체를 근사시키는 여러 개의 가우시안을 생성한다. 또한, 가우시안 혼합 모델과 유사하나 보다 빠른 연산시간을 보장하며 Outlier에 대한 신뢰성을 향상 시켜준다. 제안하는 알고리즘은 우리가 수집한 다 인종(동양인, 혹인, 백인, 히스패닉) 얼굴 데이터 베이스 QQVGA영상에서 100%의 검출률과 0개의 오분류의 높은 성능을 도출하였다

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Inclined Face Detection using JointBoost algorithm (JointBoost 알고리즘을 이용한 기울어진 얼굴 검출)

  • Jung, Youn-Ho;Song, Young-Mo;Ko, Yun-Ho
    • Journal of Korea Multimedia Society
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    • v.15 no.5
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    • pp.606-614
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    • 2012
  • Face detection using AdaBoost algorithm is one of the fastest and the most robust face detection algorithm so many improvements or extensions of this method have been proposed. However, almost all previous approaches deal with only frontal face and suffer from limited discriminant capability for inclined face because these methods apply the same features for both frontal and inclined face. Also conventional approaches for detecting inclined face which apply frontal face detecting method to inclined input image or make different detectors for each angle require heavy computational complexity and show low detection rate. In order to overcome this problem, a method for detecting inclined face using JointBoost is proposed in this paper. The computational and sample complexity is reduced by finding common features that can be shared across the classes. Simulation results show that the detection rate of the proposed method is at least 2% higher than that of the conventional AdaBoost method under the learning condition with the same iteration number. Also the proposed method not only detects the existence of a face but also gives information about the inclined direction of the detected face.

A study on affective space model for Celebrity's face (스타얼굴의 감성모형 연구)

  • Kim, Soo-Jeoung;Park, Soo-Jin;Chung, Chan-Sup
    • Proceedings of the Korea Contents Association Conference
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    • 2006.05a
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    • pp.298-301
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    • 2006
  • This study was conducted to observe the changes in trend of a beautiful face defined in different time frames. Affective space model was used in this study, for physical components of a face are far too complicated and undistinguishable from simple categorization of a face by facial characteristics. It is because using a facial model defined only by its physical characteristics renders a complicated and multi-dimensional space, whereas an emotional facial model enables a 2-dimensional space for easier observation and explanation. Scope of the study is focused on faces of the Korean female celebrities, looking at the media frequency, popularity rankings in well-known portal sites, and popularity ratings by reliable search organizations as of 2006. Celebrities in their 20s and early 30s were selected. In addition, to observe any trend in a beautiful face with the passage of time, the study looked at changes or trends in the last 5 years by comparing the faces of celebrities in year 2006 with their faces stored in the database since five years ago.

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Face Disguise Detection System Based on Template Matching and Nose Detection (탬플릿 매칭과 코검출 기반 얼굴 위장 탐지 시스템)

  • Yang, Jae-Jun;Cho, Seong-Won;Lee, Kee-Seong
    • Journal of the Korean Institute of Intelligent Systems
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    • v.22 no.1
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    • pp.100-107
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    • 2012
  • Recently the need for advanced security technologies are increasing as the occurrence of intelligent crime is growing fastly. Previous methods for face disguise detection are required for the improvement of accuracy in order to be put to practical use. In this paper, we propose a new disguise detection method using the template matching and Adaboost algorithm. The proposed system detects eyes based on multi-scale Gabor feature vector in the first stage, and uses template matching technique in oreder to increase the detection accuracy in the second stage. The template matching plays a role in determining whether or not the person of the captured image has sunglasses on. Adaboost algorithm is used to determine whether or not the person of the captured image wears a mask. Experimental results indicate that the proposed method is superior to the previous methods in the detection accuracy of disguise faces.

Face Detection Using Shapes and Colors in Various Backgrounds

  • Lee, Chang-Hyun;Lee, Hyun-Ji;Lee, Seung-Hyun;Oh, Joon-Taek;Park, Seung-Bo
    • Journal of the Korea Society of Computer and Information
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    • v.26 no.7
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    • pp.19-27
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    • 2021
  • In this paper, we propose a method for detecting characters in images and detecting facial regions, which consists of two tasks. First, we separate two different characters to detect the face position of the characters in the frame. For fast detection, we use You Only Look Once (YOLO), which finds faces in the image in real time, to extract the location of the face and mark them as object detection boxes. Second, we present three image processing methods to detect accurate face area based on object detection boxes. Each method uses HSV values extracted from the region estimated by the detection figure to detect the face region of the characters, and changes the size and shape of the detection figure to compare the accuracy of each method. Each face detection method is compared and analyzed with comparative data and image processing data for reliability verification. As a result, we achieved the highest accuracy of 87% when using the split rectangular method among circular, rectangular, and split rectangular methods.

Face Region Detection using a Color Union Model and The Levenberg-Marquadt Algorithm (색상 조합 모델과 LM(Levenberg-Marquadt)알고리즘을 이용한 얼굴 영역 검출)

  • Kim, Jin-Ok
    • The KIPS Transactions:PartB
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    • v.14B no.4
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    • pp.255-262
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    • 2007
  • This paper proposes an enhanced skin color-based detection method to find a region of human face in color images. The proposed detection method combines three color spaces, RGB, $YC_bC_r$, YIQ and builds color union histograms of luminance and chrominance components respectively. Combined color union histograms are then fed in to the back-propagation neural network for training and Levenberg-Marquadt algorithm is applied to the iteration process of training. Proposed method with Levenberg-Marquadt algorithm applied to training process of neural network contributes to solve a local minimum problem of back-propagation neural network, one of common methods of training for face detection, and lead to make lower a detection error rate. Further, proposed color-based detection method using combined color union histograms which give emphasis to chrominance components divided from luminance components inputs more confident values at the neural network and shows higher detection accuracy in comparison to the histogram of single color space. The experiments show that these approaches perform a good capability for face region detection, and these are robust to illumination conditions.

Facial expression recognition-based contents preference inference system (얼굴 표정 인식 기반 컨텐츠 선호도 추론 시스템)

  • Lee, Yeon-Gon;Cho, Durkhyun;Jang, Jun Ik;Suh, Il Hong
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2013.01a
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    • pp.201-204
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    • 2013
  • 디지털 컨텐츠의 종류와 양이 폭발적으로 증가하면서 컨텐츠 선호도 투표는 강한 파급력을 지니게 되었다. 하지만 컨텐츠 소비자가 직접 투표를 해야 하는 현재의 방법은 사람들의 투표 참여율이 저조하며, 조작 위험성이 높다는 문제점이 있다. 이에 본 논문에서는 컨텐츠 소비자의 얼굴 표정에 드러나는 감정을 인식함으로써 자동으로 컨텐츠 선호도를 추론하는 시스템을 제안한다. 본 논문에서 제안하는 시스템은 기존의 수동 컨텐츠 선호도 투표 시스템의 문제점인 컨텐츠 소비자의 부담감과 번거로움, 조작 위험성 등을 해소함으로써 보다 편리하고 효율적이며 신뢰도 높은 서비스를 제공하는 것을 목표로 한다. 따라서 본 논문에서는 컨텐츠 선호도 추론 시스템을 구축하기 위한 방법을 구체적으로 제안하고, 실험을 통하여 제안하는 시스템의 실용성과 효율성을 보인다.

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