• 제목/요약/키워드: Image similarity

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재구성된 광간섭단층 영상의 구조적 유사성을 이용한 수치 목표 평가 (Numerical Objective Assessment Using Structural Similarity for Diffuse Optical Reconstructed Images)

  • 비키 무댕;최세운
    • 한국정보통신학회:학술대회논문집
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    • 한국정보통신학회 2021년도 추계학술대회
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    • pp.658-660
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    • 2021
  • 본 연구의 목표는 확산 광학 단층 촬영에 대한 기준 영상을 사용하여 동질성과 이질성을 분리하기 위한 재구성된 영상들간의 수치적 평가를 위해 구조적 유사성 지수에 기초한 알고리즘을 개발한다. 글로벌 지오메트리 및 관심 영역 평가는 유사성을 산출하기 위해 측정되었으며, 그 결과 구조적 유사성 지수의 평균이 모델 내부에 가시적 포함 여부를 판단할 수 있는 잠재적 성능을 나타낸다는 것을 알 수 있으며, 구조적 유사성 지수는 유방 구조 정보를 평가하기 위한 이미지 평가를 지원 가능한 것으로 확인 되었다.

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Evaluation of Geo-based Image Fusion on Mobile Cloud Environment using Histogram Similarity Analysis

  • Lee, Kiwon;Kang, Sanggoo
    • 대한원격탐사학회지
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    • 제31권1호
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    • pp.1-9
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    • 2015
  • Mobility and cloud platform have become the dominant paradigm to develop web services dealing with huge and diverse digital contents for scientific solution or engineering application. These two trends are technically combined into mobile cloud computing environment taking beneficial points from each. The intention of this study is to design and implement a mobile cloud application for remotely sensed image fusion for the further practical geo-based mobile services. In this implementation, the system architecture consists of two parts: mobile web client and cloud application server. Mobile web client is for user interface regarding image fusion application processing and image visualization and for mobile web service of data listing and browsing. Cloud application server works on OpenStack, open source cloud platform. In this part, three server instances are generated as web server instance, tiling server instance, and fusion server instance. With metadata browsing of the processing data, image fusion by Bayesian approach is performed using functions within Orfeo Toolbox (OTB), open source remote sensing library. In addition, similarity of fused images with respect to input image set is estimated by histogram distance metrics. This result can be used as the reference criterion for user parameter choice on Bayesian image fusion. It is thought that the implementation strategy for mobile cloud application based on full open sources provides good points for a mobile service supporting specific remote sensing functions, besides image fusion schemes, by user demands to expand remote sensing application fields.

브랜드의 언어 현지화가 고유 브랜드와의 이미지 유사성 인식과 구매의도에 미치는 영향 (A Study on Brand Language Localization Affecting Original Brand Image Similarity Recognition and Purchase Intentions)

  • 전지영;홍종숙
    • 한국식생활문화학회지
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    • 제24권3호
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    • pp.286-294
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    • 2009
  • The purpose of this study was to determine whether foodservice brand language localization affects consumer attitudes in terms of similar brand image recognition with an original brand. Many global foodservice companies have tried to modify their own brand identity according to local situations in order to attract more consumers. According to this study's results, consumers who similarly recognized both the original brand image and localization brand image tended to have greater purchase intention than those who did not recognize them similarly. In addition, when the original brand identity was changed to the local language, consumers more similarly conceived the original brand image and localization. And for local store marketing, foodservice companies should have a thorough marketing research plan since there can be difference results according to brand name recognition gaps or demographic characteristics. Original brand image similarity recognition by consumers affected their attitudes. In other words, the group that similarly recognized both the original brand company image and the localization brand company image tended to have greater purchase intention. Because brand language plays an important role in consumer attitudes with respect to recognizing a brand and distinguishing another brand, this study suggests that franchise foodservice companies have a local store marketing plan.

충청지역 온천관광지 이미지 유사성 및 선택요인 인식도 분석 (The Analysis of Similarity in Image and Selection Factor Recognition for Spa Touristy Places in Chungcheong Area)

  • 김시중
    • 한국지역지리학회지
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    • 제21권3호
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    • pp.569-582
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    • 2015
  • 본 연구는 충청지역 6개 온천관광지(유성, 온양, 도고, 수안보, 아산, 덕산)를 대상으로 이미지 유사성 및 선택요인 인식도를 다차원척도법을 활용하여 분석함에 목적이 있었다. 실증분석 결과는 다음과 같다. 첫째, 온천관광지의 이미지 유사성 분석 결과, "아산과 온양" 그리고 "수안보와 덕산"이 각각 다른 유사한 이미지 그룹을 형성하고 있다. 그러나 유성은 다른 온천관광지와 다른 이미지를 갖고 있다. 둘째, 온천관광지 선택요인 인식도 분석 결과, 선택요인 '온천시설', '이용비용 및 '서비스질'은 분석대상 6개 온천에서 인식도에서는 큰 차이가 없으나, '온천명소'는 온양, 유성, 덕산 및 수안보 온천에서 선택요인 반영도가 높으나 아산과 도고는 반영도가 낮게 나타났다. 선택요인 '관광명소'는 온양, 유성 및 도고 지역의 속성 반영도가 높으나 아산은 낮은 것으로 분석되었다.

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윤곽선 이미지 피라미드와 관심영역 검출을 이용한 SIFT 기반 이미지 유사성 검색 (SIFT based Image Similarity Search using an Edge Image Pyramid and an Interesting Region Detection)

  • 유승훈;김덕환;이석룡;정진완;김상희
    • 한국정보과학회논문지:데이타베이스
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    • 제35권4호
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    • pp.345-355
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    • 2008
  • 다양한 형태 특징 추출 방법 중의 하나인 SIFT는 물체 인식, 모션 추적, 3차원 이미지 재구성과 같은 컴퓨터 비전 응용 분야에서 많이 사용된다. 하지만 SIFT 방법은 많은 특징점들과 고차원의 특징 벡터를 사용하기 때문에 이미지 유사성 검색에 그대로 적용하기에는 많은 어려움이 있다. 본 논문에서는 윤곽선 이미지 피라미드와 관심영역 검출을 이용한 SIFT 기반 이미지 유사성 검색 기법을 제안한다. 제안한 방법은 윤곽선 이미지 피라미드를 이용하여 이미지의 밝기 변화, 크기, 회전등에 불변한 특징을 추출하고, 타원 형태의 허프변환을 이용한 관심영역 검출을 통해 불필요한 많은 특징점들을 제거하여 검색성능을 높인다. 실험 결과에서 제안한 방법의 이미지 검색 성능이 기존의 SIFT의 방법에 비해 평균 재현율이 약 20%정도 좋은 성능을 보이고 있다.

비지역적 평균 필터 기반의 개선된 커널 함수를 이용한 가우시안 잡음 제거 기법 (Gaussian Noise Reduction Technique using Improved Kernel Function based on Non-Local Means Filter)

  • 임월기;최현호;정제창
    • 한국방송∙미디어공학회:학술대회논문집
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    • 한국방송∙미디어공학회 2018년도 추계학술대회
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    • pp.73-76
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    • 2018
  • A Gaussian noise is caused by surrounding environment or channel interference when transmitting image. The noise reduces not only image quality degradation but also high-level image processing performance. The Non-Local Means (NLM) filter finds similarity in the neighboring sets of pixels to remove noise and assigns weights according to similarity. The weighted average is calculated based on the weight. The NLM filter method shows low noise cancellation performance and high complexity in the process of finding the similarity using weight allocation and neighbor set. In order to solve these problems, we propose an algorithm that shows an excellent noise reduction performance by using Summed Square Image (SSI) to reduce the complexity and applying the weighting function based on a cosine Gaussian kernel function. Experimental results demonstrate the effectiveness of the proposed algorithm.

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An Effective WSSENet-Based Similarity Retrieval Method of Large Lung CT Image Databases

  • Zhuang, Yi;Chen, Shuai;Jiang, Nan;Hu, Hua
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제16권7호
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    • pp.2359-2376
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    • 2022
  • With the exponential growth of medical image big data represented by high-resolution CT images(CTI), the high-resolution CTI data is of great importance for clinical research and diagnosis. The paper takes lung CTI as an example to study. Retrieving answer CTIs similar to the input one from the large-scale lung CTI database can effectively assist physicians to diagnose. Compared with the conventional content-based image retrieval(CBIR) methods, the CBIR for lung CTIs demands higher retrieval accuracy in both the contour shape and the internal details of the organ. In traditional supervised deep learning networks, the learning of the network relies on the labeling of CTIs which is a very time-consuming task. To address this issue, the paper proposes a Weakly Supervised Similarity Evaluation Network (WSSENet) for efficiently support similarity analysis of lung CTIs. We conducted extensive experiments to verify the effectiveness of the WSSENet based on which the CBIR is performed.

Region Division for Large-scale Image Retrieval

  • Rao, Yunbo;Liu, Wei
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제13권10호
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    • pp.5197-5218
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    • 2019
  • Large-scale retrieval algorithm is problem for visual analyses applications, along its research track. In this paper, we propose a high-efficiency region division-based image retrieve approaches, which fuse low-level local color histogram feature and texture feature. A novel image region division is proposed to roughly mimic the location distribution of image color and deal with the color histogram failing to describe spatial information. Furthermore, for optimizing our region division retrieval method, an image descriptor combining local color histogram and Gabor texture features with reduced feature dimensions are developed. Moreover, we propose an extended Canberra distance method for images similarity measure to increase the fault-tolerant ability of the whole large-scale image retrieval. Extensive experimental results on several benchmark image retrieval databases validate the superiority of the proposed approaches over many recently proposed color-histogram-based and texture-feature-based algorithms.

이미지 시퀀스 데이터베이스에서 우선순위 큐와 접미어 트리를 이용한 효율적인 유사 서브시퀀스 검색의 설계 (A Design for Efficient Similar Subsequence Search with a Priority Queue and Suffix Tree in Image Sequence Databases)

  • 김인범
    • 한국컴퓨터산업학회논문지
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    • 제4권4호
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    • pp.613-624
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    • 2003
  • 본 논문은 우선순위 큐와 접미어 트리로 색인 구조를 생성한 후. 이미지 시퀀스 데이터베이스에서 다차원 타임 워핑 거리 함수를 이용하여 유사한 이미지 서브시퀀스를 신속하고 정확하게 검색할 수 있는 방법을 제안한다. 본 논문에서 제안된 방법은 사전에 정의된 중요도에 따라 선별된 이미지 시퀀스로 구성된 우선순위 큐 색인의 이미지 서브시퀀스에 대한 유사성 거리 계산을 첫 단계로 시행하여 유사한 서브시퀀스집합을 얻고 만족할 결과를 얻지 못했을 경우에는 두 번째 단계로 나머지 유사 서브시퀀스에 대해 디스크 기반의 접미어 트리를 색인 구조체로 하여 유사한 서브시퀀스를 검색하는 것이다. 하한 거리 함수를 활용하여 질의 이미지 시퀀스와 유사한 이미지 서브시퀀스를 검색하는 과정에서 생성 가능한 오류를 방지 하면서 동시에 비 유사 이미지 서브시퀀스를 제거하도록 한다.

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Newly-designed adaptive non-blind deconvolution with structural similarity index in single-photon emission computed tomography

  • Kyuseok Kim;Youngjin Lee
    • Nuclear Engineering and Technology
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    • 제55권12호
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    • pp.4591-4596
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    • 2023
  • Single-photon emission computed tomography SPECT image reconstruction methods have a significant influence on image quality, with filtered back projection (FBP) and ordered subset expectation maximization (OSEM) being the most commonly used methods. In this study, we proposed newly-designed adaptive non-blind deconvolution with a structural similarity (SSIM) index that can take advantage of the FBP and OSEM image reconstruction methods. After acquiring brain SPECT images, the proposed image was obtained using an algorithm that applied the SSIM metric, defined by predicting the distribution and amount of blurring. As a result of the contrast to noise ratio (CNR) and coefficient of variation evaluation (COV), the resulting image of the proposed algorithm showed a similar trend in spatial resolution to that of FBP, while obtaining values similar to those of OSEM. In addition, we confirmed that the CNR and COV values of the proposed algorithm improved by approximately 1.69 and 1.59 times, respectively, compared with those of the algorithm involving an inappropriate deblurring process. To summarize, we proposed a new type of algorithm that combines the advantages of SPECT image reconstruction techniques and is expected to be applicable in various fields.