• 제목/요약/키워드: image semantics

검색결과 40건 처리시간 0.024초

A Survey on Image Emotion Recognition

  • Zhao, Guangzhe;Yang, Hanting;Tu, Bing;Zhang, Lei
    • Journal of Information Processing Systems
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    • 제17권6호
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    • pp.1138-1156
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    • 2021
  • Emotional semantics are the highest level of semantics that can be extracted from an image. Constructing a system that can automatically recognize the emotional semantics from images will be significant for marketing, smart healthcare, and deep human-computer interaction. To understand the direction of image emotion recognition as well as the general research methods, we summarize the current development trends and shed light on potential future research. The primary contributions of this paper are as follows. We investigate the color, texture, shape and contour features used for emotional semantics extraction. We establish two models that map images into emotional space and introduce in detail the various processes in the image emotional semantic recognition framework. We also discuss important datasets and useful applications in the field such as garment image and image retrieval. We conclude with a brief discussion about future research trends.

의미 기반 검색을 위한 이미지 내용 모델링 (Image Content Modeling for Meaning-based Retrieval)

  • 나연묵
    • 한국정보과학회논문지:데이타베이스
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    • 제30권2호
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    • pp.145-156
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    • 2003
  • 현존하는 대부분의 내용 기반 이미지 검색 시스템은 칼라, 모양, 텍스처 특징을 이용한 유사도-기반 검색에 초점을 맞추고 있다. 신경과학 이미지 데이타베이스의 경우, 이미지에 대한 전역적 평균 특징 값을 기반으로 한 유사 이미지의 검색이 임상 병리학자들에게는 전혀 도움이 되지 않는 다는 것을 발견하였다. 신경과학 데이터베이스 상의 이미지에 대한 실용적인 내용 기반 검색을 실현하기 위해서는 이미지의 내부 내용이나 의미를 표현하는 일이 필요하다. 본 논문에서는 이러한 이미지들에 대해 보다 유용한 검색을 지원하기 위하여 이미지 내용과 그에 관련된 개념 지식을 표현하는 방법을 제시한다. 또한 객체지향 메시지 경로 식을 이용하여 이러한 고급 검색을 지원하기 위한 연산의 의미를 기술한다. 제안된 기법은 유연하고 확장 가능하므로 보다 강화된 내용 검색을 위해 이미지 내용에 대한 보다 많은 의미를 점진적으로 추가해 나갈 수 있다.

모바일 환경에서 의미 기반 이미지 어노테이션 및 검색 (Semantic Image Annotation and Retrieval in Mobile Environments)

  • 노현덕;서광원;임동혁
    • 한국멀티미디어학회논문지
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    • 제19권8호
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    • pp.1498-1504
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    • 2016
  • The progress of mobile computing technology is bringing a large amount of multimedia contents such as image. Thus, we need an image retrieval system which searches semantically relevant image. In this paper, we propose a semantic image annotation and retrieval in mobile environments. Previous mobile-based annotation approaches cannot fully express the semantics of image due to the limitation of current form (i.e., keyword tagging). Our approach allows mobile devices to annotate the image automatically using the context-aware information such as temporal and spatial data. In addition, since we annotate the image using RDF(Resource Description Framework) model, we are able to query SPARQL for semantic image retrieval. Our system implemented in android environment shows that it can more fully represent the semantics of image and retrieve the images semantically comparing with other image annotation systems.

모바일 환경에서 사용자 정의 규칙과 추론을 이용한 의미 기반 이미지 어노테이션의 확장 (Extending Semantic Image Annotation using User- Defined Rules and Inference in Mobile Environments)

  • 서광원;임동혁
    • 한국멀티미디어학회논문지
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    • 제21권2호
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    • pp.158-165
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    • 2018
  • Since a large amount of multimedia image has dramatically increased, it is important to search semantically relevant image. Thus, several semantic image annotation methods using RDF(Resource Description Framework) model in mobile environment are introduced. Earlier studies on annotating image semantically focused on both the image tag and the context-aware information such as temporal and spatial data. However, in order to fully express their semantics of image, we need more annotations which are described in RDF model. In this paper, we propose an annotation method inferencing with RDFS entailment rules and user defined rules. Our approach implemented in Moment system shows that it can more fully represent the semantics of image with more annotation triples.

An Efficient Chaotic Image Encryption Algorithm Based on Self-adaptive Model and Feedback Mechanism

  • Zhang, Xiao;Wang, Chengqi;Zheng, Zhiming
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제11권3호
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    • pp.1785-1801
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    • 2017
  • In recent years, image encryption algorithms have been developed rapidly in order to ensure the security of image transmission. With the assistance of our previous work, this paper proposes a novel chaotic image encryption algorithm based on self-adaptive model and feedback mechanism to enhance the security and improve the efficiency. Different from other existing methods where the permutation is performed by the self-adaptive model, the initial values of iteration are generated in a novel way to make the distribution of initial values more uniform. Unlike the other schemes which is on the strength of the feedback mechanism in the stage of diffusion, the piecewise linear chaotic map is first introduced to produce the intermediate values for the sake of resisting the differential attack. The security and efficiency analysis has been performed. We measure our scheme through comprehensive simulations, considering key sensitivity, key space, encryption speed, and resistance to common attacks, especially differential attack.

Similar Image Retrieval Technique based on Semantics through Automatic Labeling Extraction of Personalized Images

  • Jung-Hee, Seo
    • Journal of information and communication convergence engineering
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    • 제22권1호
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    • pp.56-63
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    • 2024
  • Despite the rapid strides in content-based image retrieval, a notable disparity persists between the visual features of images and the semantic features discerned by humans. Hence, image retrieval based on the association of semantic similarities recognized by humans with visual similarities is a difficult task for most image-retrieval systems. Our study endeavors to bridge this gap by refining image semantics, aligning them more closely with human perception. Deep learning techniques are used to semantically classify images and retrieve those that are semantically similar to personalized images. Moreover, we introduce a keyword-based image retrieval, enabling automatic labeling of images in mobile environments. The proposed approach can improve the performance of a mobile device with limited resources and bandwidth by performing retrieval based on the visual features and keywords of the image on the mobile device.

Deep Hashing for Semi-supervised Content Based Image Retrieval

  • Bashir, Muhammad Khawar;Saleem, Yasir
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제12권8호
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    • pp.3790-3803
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    • 2018
  • Content-based image retrieval is an approach used to query images based on their semantics. Semantic based retrieval has its application in all fields including medicine, space, computing etc. Semantically generated binary hash codes can improve content-based image retrieval. These semantic labels / binary hash codes can be generated from unlabeled data using convolutional autoencoders. Proposed approach uses semi-supervised deep hashing with semantic learning and binary code generation by minimizing the objective function. Convolutional autoencoders are basis to extract semantic features due to its property of image generation from low level semantic representations. These representations of images are more effective than simple feature extraction and can preserve better semantic information. Proposed activation and loss functions helped to minimize classification error and produce better hash codes. Most widely used datasets have been used for verification of this approach that outperforms the existing methods.

시각기호의 3차원을 활용한 패션일러스트레이션의 은유와 환유적 표현방법 분석 (The Expression of Metaphor and Metonymy in Fashion illustration by Three Components of Visual Sign)

  • 최정화;유영선
    • 복식
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    • 제54권3호
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    • pp.13-25
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    • 2004
  • The purpose of this study was to show the analysis system and the expression which is applied to fashion illustration by three major components in visual sign, metaphor and metonymy. The results of this study were as follows : Firstly, metaphor in qualisign of syntactics was revealed as a color such as realistic description, a pattern such as clothing of figure. etc. Metonymy was revealed as a social and cultural background color, a concept pattern. etc. In sinsign of syntactics. metaphor was revealed as a human body, non-human body and metamorphosis human body and metonymy as a human body and non-human body. In legisign of syntactics, the metaphor by perspective was used for a fantasy of space. and the metonymy was revealed as a color perspective representation, etc. The degree of change of texture was revealed as a metaphor and metonymy of gradation. And conventional custom sign was almost revealed in metaphor. Secondly, semantics showed about fashion image as juxtaposition of two similar objects in metaphor and as real description and simplification in metonymy Alternative fashion image in semantics was presented as a object related to fashion image. Conventional symbolic sign was presented as a role to clarify a fashion message in metaphor. Thirdly, the metaphorical and metonymical expression in pragmatics were usually presented as drawing and painting.

兒童 에 표현된 ‘옷’에 대한 의미 분석 -초등학교 저학년 여자 어린이를 중심으로- (Analysis of Meaning of Dress on Children`s Painting)

  • 조진숙
    • 복식문화연구
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    • 제5권4호
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    • pp.44-53
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    • 1997
  • The purpose of this study is to analyze dress meanings painted by elementary school girl. As in language, the dress is the symbol and form of non-verval communicator its wearer by means of the mentalistic semantics. Also it is to analyze meanings of dress by applying the semantics of Geoffrey Leech. The followings are the findings of the analysis 1. The conceptual are the findings of the analysis 2. The social meaning is indicating the feminine image. 3. The offective meaning is indicating the aesthetic value.

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주석 및 특징을 이용한 의미기반 비디오 검색 시스템 (A Semantics-based Video Retrieval System using Annotation and Feature)

  • 이종희
    • 전자공학회논문지CI
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    • 제41권4호
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    • pp.95-102
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    • 2004
  • 비디오 데이터를 효율적으로 처리하기 위해서는 비디오 데이터가 가지고 있는 내용에 대한 정보를 데이터베이스에 저장하고 사용자들의 다양한 질의를 처리할 수 있는 의미기반 검색 기법이 요구된다. 기존의 내용기반 비디오 검색 시스템들은 주석기반 검색 또는 특징기반 검색과 같은 단일 방식으로만 검색을 하므로 검색 효율이 낮을 뿐 아니라 완전한 자동 처리가 되지 않아 시스템 관리자나 주석자의 많은 노력을 요구한다. 본 논문에서는 주석기반 검색과 특징기반 검색을 이용하여 대용량의 비디오 데이터에 대한 사용자의 다양한 의미검색을 지원하는 에이전트 기반에서의 자동화되고 통합된 비디오 의미기반 검색시스템을 제안한다. 사용자의 기본적인 질의와 질의에 의해 추출된 키 프레임의 이미지를 선택함으로써 에이전트는 추출된 키 프레임의 주석에 대한 의미를 더욱 구체화시킨다. 또한, 사용자에 의해 선택된 키 프레임은 질의 이미지가 되어 제안하는 특징기반 검색 기법과 최적 비교 영역 추출을 통해 가장 유사한 키 프레임을 검색한다. 따라서 의미기반 검색을 통해 비디오 데이터의 검색의 효율을 높일 수 있도록 시스템을 제안한다.