• Title/Summary/Keyword: 이미지유사도

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A Study on the Image, Attributes & Preference of Spa Destination (온천관광지 이미지, 속성 및 선호도 분석)

  • Kim, Si-Joong
    • Journal of the Korean association of regional geographers
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    • v.11 no.4
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    • pp.497-510
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    • 2005
  • The purpose of this study was to examine the image similarity, preference, and the attribute recognition using multidimensional scaling. The analyses were carried out by 5 spa destinations located in Choongchung area. The results were as followings: first, considering the image similarity, the image of Suanbo & Onyang and Dogo & Asan were similar except for the Yusung. Second, considering the attribute recognition, Yusung had a stronger attribute reflecting spa tradition when compared to other competitive spa destinations. Onyang showed a strong attribute of facilities. Dogo had a stronger point about use cost. Suanbo had relatively strong attributes in terms of facilities, customer service, and accessability. However, the water quality of spa destination and activities were not reflected in attribute recognition because these two attributes was farthest from the spa destination. Third, considering the preference of selecting spa destinations, package tourists had a strong preference about Yusung, individual tourists, family, incentive tourists prefer Suanbo, followed by Dogo and Yusung. Group tourists had a strong preference about Dogo.

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Image Quality Assessment Considering both Computing Speed and Robustness to Distortions (계산 속도와 왜곡 강인성을 동시 고려한 이미지 품질 평가)

  • Kim, Suk-Won;Hong, Seongwoo;Jin, Jeong-Chan;Kim, Young-Jin
    • Journal of KIISE
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    • v.44 no.9
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    • pp.992-1004
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    • 2017
  • To assess image quality accurately, an image quality assessment (IQA) metric is required to reflect the human visual system (HVS) properly. In other words, the structure, color, and contrast ratio of the image should be evaluated in consideration of various factors. In addition, as mobile embedded devices such as smartphone become popular, a fast computing speed is important. In this paper, the proposed IQA metric combines color similarity, gradient similarity, and phase similarity synergistically to satisfy the HVS and is designed by using optimized pooling and quantization for fast computation. The proposed IQA metric is compared against existing 13 methods using 4 kinds of evaluation methods. The experimental results show that the proposed IQA metric ranks the first on 3 evaluation methods and the first on the remaining method, next to VSI which is the most remarkable IQA metric. Its computing speed is on average about 20% faster than VSI's. In addition, we find that the proposed IQA metric has a bigger amount of correlation with the HVS than existing IQA metrics.

A Black and White Comics Generation Procedure for the Video Frame Image using Region Extension based on HSV Color Model (HSV 색상 모델과 영역 확장 기법을 이용한 동영상 프레임 이미지의 흑백 만화 카투닝 알고리즘)

  • Ryu, Dong-Sung;Cho, Hwan-Gue
    • Journal of KIISE:Computer Systems and Theory
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    • v.35 no.12
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    • pp.560-567
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    • 2008
  • In this paper, we discuss a simple and straightforward binarization procedure which can generate black/white comics from the video frame image. Generally, the region of human's skin is colored white or light gray, while the dark region is filled with the irregular but regular patterns like hatching in most of the black/white comics. Note that it is not enough for simple threshold method to perform this work. Our procedure is decoupled into four processes. First, we use bilateral filter to suppress noise color variation and reserve boundaries. Then, we perform mean-shift segmentation for each similar colored pixels to be clustered. Third, the clustered regions are merged and extended by our region extension algorithm considering each color of their regions. Finally, we decide which pixels are on or off using by our dynamic binarization method based on the HSV color model. Our novel black/white cartooning procedure was so successful to render comic cuts from a well-known cinema in a resonable time and manual intervention.

Image Segmentation using Watershed Transformation and Region Merging (워터쉐드 변환과 영역 병합을 이용한 이미지 분할)

  • Lee, Ki-Jung;WhangBo, Taeg-Keun
    • Annual Conference of KIPS
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    • 2007.05a
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    • pp.111-114
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    • 2007
  • 워터쉐드 변환은 영역 분할 속도가 빠르고, 유연하여 이미지 분할 분야에서 많이 사용되고 있다. 그러나 워터쉐드 변환은 지역적 최소점을 이용하기 때문에 잡음에 민감하고 과분할되는 단점을 가지고 있다. 또한, 기존 연구들은 그레이 스케일 이미지에 대해서만 워터쉐드를 적용하였다. 본 논문에서는 지역적 최소점에 민감한 워터쉐드 변환에 칼라 기울기 이미지와 모폴로지 기법을 적용하였다. 워터쉐드 변환 후의 분할된 영역은 영역 인접 그래프로 구성하였고, 인접 영역에 대하여 칼라 색상 유사도와 텍스쳐 유사도를 이용하여 영역 병합을 수행하였다. 실험 결과 본 논문에서 제안한 알고리즘을 이용할 경우 효과적인 이미지 분할이 가능함을 확인할 수 있었다.

Reversible Data Embedding Algorithm based on Pixel Value Prediction Scheme using Local Similarity in Image (지역적 유사성을 이용한 픽셀 값 예측 기법에 기초한 가역 데이터 은닉 알고리즘)

  • Jung, Soo-Mok
    • The Journal of Korea Institute of Information, Electronics, and Communication Technology
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    • v.10 no.6
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    • pp.617-625
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    • 2017
  • In this paper, an effective reversible data embedding algorithm was proposed to embed secrete data into image. In the proposed algorithm, prediction image is generated by accurately predicting pixel values using local similarity existing in image, difference sequence is generated using the generated prediction image and original cover image, and then histogram shift technique is applied to create a stego-image with secrete data hidden. Applying the proposed algorithm, secrete data can be extracted from the stego-image and the original cover image can be restored without loss. Experimental results show that it is possible to embed more secrete data into cover image than APD algorithm by applying the proposed algorithm.

Gray Image Generation Methods Using Genetic Algorithm (유전자 알고리즘을 이용한 흑백 이미지 생성 기법)

  • Cha, Joo Hyoung;Kang, Dong Sung;Song, Moo Sang;Kweon, Tae Hyeon;Woo, Young Woon
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2019.05a
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    • pp.265-267
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    • 2019
  • In this paper, we propose a method to automatically generate gray images similar to existing images using genetic algorithms. We have proposed two techniques for gene modeling, which is the most important design element to apply genetic algorithm to real field problems. Experiments were performed on two different sizes of gray images using each of the proposed techniques. Experimental results show that there is a large difference in the evolutionary performance of each technique in gene modeling for image generation. Therefore, it can be understood that gene modeling should be carefully decided in order to generate an image similar to the existing image in the future, or to learn quickly and naturally to generate an image synthesized from different images.

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An Evaluative Study on the Content-based Trademark Image Retrieval System Based on Self Organizing Map(SOM) Algorithm (Self Organizing Map(SOM) 알고리즘을 이용한 상표의 내용기반 이미지검색 성능평가에 관한 연구)

  • Paik, Woo-Jin;Lee, Jae-Joon;Shin, Min-Ki;Lee, Eui-Gun;Ham, Eun-Mi;Shin, Moon-Sun
    • Journal of the Korean Society for information Management
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    • v.24 no.3
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    • pp.321-341
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    • 2007
  • It will be possible to prevent the infringement of the trademarks and the insueing disputes regarding the originality of the trademarks by using an efficient content-based trademark image retrieval system. In this paper, we describe a content-based image retrieval system using the Self Organizing Map(SOM) algorithm. The SOM algorithm utilizes the visual features, which were derived from the gray histogram representation of the images. In addition, we made the objective effectiveness evaluation possible by coming up with a quantitative measure to gauge the effectiveness of the content-based image retrieval system.

Image Similarity Retrieval using an Scale and Rotation Invariant Region Feature (크기 및 회전 불변 영역 특징을 이용한 이미지 유사성 검색)

  • Yu, Seung-Hoon;Kim, Hyun-Soo;Lee, Seok-Lyong;Lim, Myung-Kwan;Kim, Deok-Hwan
    • Journal of KIISE:Databases
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    • v.36 no.6
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    • pp.446-454
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    • 2009
  • Among various region detector and shape feature extraction method, MSER(Maximally Stable Extremal Region) and SIFT and its variant methods are popularly used in computer vision application. However, since SIFT is sensitive to the illumination change and MSER is sensitive to the scale change, it is not easy to apply the image similarity retrieval. In this paper, we present a Scale and Rotation Invariant Region Feature(SRIRF) descriptor using scale pyramid, MSER and affine normalization. The proposed SRIRF method is robust to scale, rotation, illumination change of image since it uses the affine normalization and the scale pyramid. We have tested the SRIRF method on various images. Experimental results demonstrate that the retrieval performance of the SRIRF method is about 20%, 38%, 11%, 24% better than those of traditional SIFT, PCA-SIFT, CE-SIFT and SURF, respectively.

Inspection of Vehicle Headlight Defects (차량 헤드라이트 불량검사 방법)

  • Kim, Kun Hong;Moon, Chang Bae;Kim, Byeong Man;Oh, Duk Hwan
    • Journal of Korea Society of Industrial Information Systems
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    • v.23 no.1
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    • pp.87-96
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    • 2018
  • In this paper, we propose a method to determine whether there is a defect by using the similarity between ROIs (Region of Interest) of the standard image and ROIs of the image which is corrected in position and rotation after capturing the vehicle headlight. The degree of similarity is determined by the template matching based on the histogram of image, which is a some modification of the method provided by OpenCV where template matching is performed on the raw image not the histogram. The proposed method is compared with the basic method of OpenCV for performance analysis. As a result of the analysis, it was found that the proposed method showed better performance than the OpenCV method, showing the accuracy close to 100%.

Head Orientation-based Gaze Tracking (얼굴의 움직임을 이용한 응시점 추적)

  • ;R.S. Ramakrishna
    • Proceedings of the Korean Information Science Society Conference
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    • 1999.10b
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    • pp.401-403
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    • 1999
  • 본 논문에서 우리는 제약이 없는 배경화면에서 얼굴의 움직임을 이용한 응시점 추적을 위해 얼굴의 특징점(눈, 코, 그리고 입)들을 찾고 head orientation을 구하는 효?거이고 빠른 방법을 제안한다. 얼굴을 찾는 방법이 많이 연구 되어 오고 있으나 많은 부분이 효과적이지 못하거나 제한적인 사항을 필요로 한다. 본 논문에서 제안한 방법은 이진화된 이미지에 기초하고 완전 그래프 매칭을 이용한 유사성을 구하는 방법이다. 즉, 임의의 임계치 값에 의해 이진화된 이미지를 레이블링 한 후 각 쌍의 블록에 대한 유사성을 구한다. 이때 두 눈과 가장 유사성을 갖는 두 블록을 눈으로 선택한다. 눈을 찾은 후 입과 코를 찾아간다. 360$\times$240 이미지의 평균 처리 속도는 0.2초 이내이고 다음 탐색영역을 예상하여 탐색 영역을 줄일 경우 평균 처리속도는 0.15초 이내였다. 그리고 본 논문에서는 얼굴의 움직임을 구하기 위해 각 특징점들이 이루는 각을 기준으로 한 템플릿 매칭을 이용했다. 실험은 다양한 조명환경과 여러 사용자를 대상으로 이루어졌고 속도와 정확성면에서 좋은 결과를 보였다. 도한, 명안정보만을 사용하므로 흑백가메라에서도 사용가능하여 경제적 효과도 기대할 수 있다.

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