• 제목/요약/키워드: number of image

검색결과 3,625건 처리시간 0.026초

Identifying Factors Influencing the Image of Vietnam's Tourist Destinations in the Eyes of Global Tourists

  • Eun-Mi Lee;Pham Thi Quynh Anh
    • International Journal of Advanced Culture Technology
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    • 제11권3호
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    • pp.45-50
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    • 2023
  • The number of international tourists is noticeably recovering in many parts of the world, with the number of Vietnamese tourists growing significantly. Consequently, this study aims to identify the factors influencing the image of Vietnam's tourist destinations among international tourists interested in visiting the country. Additionally, the study examines whether the perception formed in this manner subsequently affects their intention to visit. The findings reveal that cultural attractions and eWOM (Electronic Word of Mouth) positively influence the development of a tourism destination image. However, film tourism did not have a significant effect on the destination image. Moreover, it was observed that the destination image indeed influences the intention to visit.

High capacity multi-bit data hiding based on modified histogram shifting technique

  • Sivasubramanian, Nandhini;Konganathan, Gunaseelan;Rao, Yeragudipati Venkata Ramana
    • ETRI Journal
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    • 제40권5호
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    • pp.677-686
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    • 2018
  • A novel data hiding technique based on modified histogram shifting that incorporates multi-bit secret data hiding is proposed. The proposed technique divides the image pixel values into embeddable and nonembeddable pixel values. Embeddable pixel values are those that are within a specified limit interval surrounding the peak value of an image. The limit interval is calculated from the number of secret bits to be embedded into each embeddable pixel value. The embedded secret bits can be perfectly extracted from the stego image at the receiver side without any overhead bits. From the simulation, it is found that the proposed technique produces a better quality stego image compared to other data hiding techniques, for the same embedding rate. Since the proposed technique only embeds the secret bits in a limited number of pixel values, the change in the visual quality of the stego image is negligible when compared to other data hiding techniques.

분류된 영역 병합에 의한 객체 원형을 보존하는 영상 분할 (Image segmentation preserving semantic object contours by classified region merging)

  • 박현상;나종범
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 1998년도 하계종합학술대회논문집
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    • pp.661-664
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    • 1998
  • Since the region segmentation at high resolution contains most of viable semantic object contours in an image, the bottom-up approach for image segmentation is appropriate for the application such as MPEG-4 which needs to preserve semantic object contours. However, the conventioal region merging methods, that follow the region segmentation, have poor performance in keeping low-contrast semantic object contours. In this paper, we propose an image segmentation algorithm based on classified region merging. The algorithm pre-segments an image with a large number of small regions, and also classifies it into several classes having similar gradient characteristics. Then regions only in the same class are merged according to the boundary weakness or statisticsal similarity. The simulation result shows that the proposed image segmentation preserves semantic object contours very well even with a small number of regions.

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전철주 및 문자 인식을 이용한 시설물 절대위치 검지 방법 (Pole Position Detection Method by Using Pole and Character Recognition)

  • 최우용;박종국;이병곤;주용환;한승훈
    • 전기학회논문지
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    • 제65권4호
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    • pp.704-710
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    • 2016
  • In this paper, we proposed pole position detection system for providing exact location information to users. The proposed system consists of pole recognition part and pole number recognition part. Above all, exact pole recognition is carried out by PDD(Pole Detection Device). And recognition of pole number is performed by PID(Pole Inspection Device). Acquired image by using line scan camera is judged whether it is free bracket or not through image processing. When it is judged as free bracket, pole number image is acquired by OCR camera and recognized by OCR. By recognizing pole number, exact location information is provided to user.

공간 영상 처리를 위한 SIFT 매칭 기법의 성능 분석 (A Performance Analysis of the SIFT Matching on Simulated Geospatial Image Differences)

  • 오재홍;이효성
    • 한국측량학회지
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    • 제29권5호
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    • pp.449-457
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    • 2011
  • As automated image processing techniques have been required in multi-temporal/multi-sensor geospatial image applications, use of automated but highly invariant image matching technique has been a critical ingredient. Note that there is high possibility of geometric and spectral differences between multi-temporal/multi-sensor geospatial images due to differences in sensor, acquisition geometry, season, and weather, etc. Among many image matching techniques, the SIFT (Scale Invariant Feature Transform) is a popular method since it has been recognized to be very robust to diverse imaging conditions. Therefore, the SIFT has high potential for the geospatial image processing. This paper presents a performance test results of the SIFT on geospatial imagery by simulating various image differences such as shear, scale, rotation, intensity, noise, and spectral differences. Since a geospatial image application often requires a number of good matching points over the images, the number of matching points was analyzed with its matching positional accuracy. The test results show that the SIFT is highly invariant but could not overcome significant image differences. In addition, it guarantees no outlier-free matching such that it is highly recommended to use outlier removal techniques such as RANSAC (RANdom SAmple Consensus).

경화콘크리트 내부의 기포분포상태 분석에 관한 연구 (Image analysis of an air void system in hardened concrete)

  • 김기철;정재동
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1998년도 가을 학술발표대회 논문집(III)
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    • pp.791-796
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    • 1998
  • Air voids existed in hardened concrete have an important influence on concrete deterioration such as carbonation, freezing and thawing, and corrosion of embedded steel in concrete. Therefore it is very significant to investigate the pore structure of system(size, number and continuity of air voids) to solve the reason caused concrete deterioration. The purpose of this study is to develop the standard method of measuring air voids which affect properties in hardened concrete using image analyzing system. This paper presents the settlement of rapid and exact experimental method which extracts fine bubbles, calculates the number of air voids, and determines air-void distribution using image analyzing system with computer.

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Breadth First Gray Quadtree:화상의 효율적 표현법 (BF Gray Quadtree : Efficient Image Representation Method)

  • 이극;이민규;황희융;이정원
    • 대한전기학회논문지
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    • 제39권5호
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    • pp.494-499
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    • 1990
  • A new compact hierarchical representation method image is proposed. This method represents a binary image with the set of decimal numbers. Each decimal number represents the pattern of nonterminal node(gray node) in the quadtree. This pattern implies the combination of its four child nodes. The total number of gray nodes is one third of that terminal nodes. We show that gray tree method is efficient comparing with others which have been studied.

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컨테이너 번호 추출을 위한 영상 처리 시뮬레이터 설계 및 구현 (A Design and Implement of Image Processing Simulator for Extraction of Container License Number)

  • 최창훈
    • 한국시뮬레이션학회논문지
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    • 제9권3호
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    • pp.53-64
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    • 2000
  • With the recent outstanding advance in computer software and hardware, a number of researches to enhance the processing speed and the process accuracy has been undertaken in the field of container terminal industry,0 this paper, we propose a simulator for container image processing that can be used mainly for tile development of automatic container recognition system. The purpose of this study is to simulate many different algorithms and factors to extract information accurately on the captured container image.

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비등방형 확산과 계층적 클러스터링을 이용한 칼라 영상분할 (Color Image Segmentation Using Anisotropic Diffusion and Agglomerative Hierarchical Clustering)

  • 김대희;안충현;호요성
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2003년도 신호처리소사이어티 추계학술대회 논문집
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    • pp.377-380
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    • 2003
  • A new color image segmentation scheme is presented in this paper. The proposed algorithm consists of image simplification, region labeling and color clustering. The vector-valued diffusion process is performed in the perceptually uniform LUV color space. We present a discrete 3-D diffusion model for easy implementation. The statistical characteristics of each labeled region are employed to estimate the number of total clusters and agglomerative hierarchical clustering is performed with the estimated number of clusters. Since the proposed clustering algorithm counts each region as a unit, it does not generate oversegmentation along region boundaries.

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Comparison of estimating vegetation index for outdoor free-range pig production using convolutional neural networks

  • Sang-Hyon OH;Hee-Mun Park;Jin-Hyun Park
    • Journal of Animal Science and Technology
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    • 제65권6호
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    • pp.1254-1269
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    • 2023
  • This study aims to predict the change in corn share according to the grazing of 20 gestational sows in a mature corn field by taking images with a camera-equipped unmanned air vehicle (UAV). Deep learning based on convolutional neural networks (CNNs) has been verified for its performance in various areas. It has also demonstrated high recognition accuracy and detection time in agricultural applications such as pest and disease diagnosis and prediction. A large amount of data is required to train CNNs effectively. Still, since UAVs capture only a limited number of images, we propose a data augmentation method that can effectively increase data. And most occupancy prediction predicts occupancy by designing a CNN-based object detector for an image and counting the number of recognized objects or calculating the number of pixels occupied by an object. These methods require complex occupancy rate calculations; the accuracy depends on whether the object features of interest are visible in the image. However, in this study, CNN is not approached as a corn object detection and classification problem but as a function approximation and regression problem so that the occupancy rate of corn objects in an image can be represented as the CNN output. The proposed method effectively estimates occupancy for a limited number of cornfield photos, shows excellent prediction accuracy, and confirms the potential and scalability of deep learning.