• Title/Summary/Keyword: Video Scene Detection

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Conversation Context Annotation using Speaker Detection (화자인식을 이용한 대화 상황정보 어노테이션)

  • Park, Seung-Bo;Kim, Yoo-Won;Jo, Geun-Sik
    • Journal of Korea Multimedia Society
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    • v.12 no.9
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    • pp.1252-1261
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    • 2009
  • One notable challenge in video searching and summarizing is extracting semantic from video contents and annotating context for video contents. Video semantic or context could be obtained by two methods to extract objects and contexts between objects from video. However, the method that use just to extracts objects do not express enough semantic for shot or scene as it does not describe relation and interaction between objects. To be more effective, after extracting some objects, context like relation and interaction between objects needs to be extracted from conversation situation. This paper is a study for how to detect speaker and how to compose context for talking to annotate conversation context. For this, based on this study, we proposed the methods that characters are recognized through face recognition technology, speaker is detected through mouth motion, conversation context is extracted using the rule that is composed of speaker existing, the number of characters and subtitles existing and, finally, scene context is changed to xml file and saved.

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Detection of Video Cut Using Autocorrelation Function and Edge Histogram (자기상관과 에지 히스토그램을 이용한 동영상 전환점 검출)

  • Noh, Jung-Jin;Moon, Young-Ho;Yoo, Ji-Sang
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.29 no.9C
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    • pp.1269-1278
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    • 2004
  • While the management of digital contents is getting more and more important, many researchers have studied about scene change detection algorithms to reduce similar scenes in the video contents and to efficiently summarize video data. The algorithms using histogram and pixel information are found out as being sensitive to light changes and motion. Therefore, visual rhythm gets used in recent work to solve this problem, which shows some characteristics of scenes and requires even less computational power. In this paper, a new scene detection algorithm using visual rhythm by direction is proposed. The proposed algorithm needs less computational power and is able to keep good performance even in the scenes with motion. Experimental results show the performance improvement of about 30% comparing with conventional methods with histogram. They also show that the proposed algorithm is able to keep the same performance even to music video contents with lots of motion.

Development and Performance Evaluation of an Image Detection System for Efficient 4D Images (효율적인 4D 영상을 위한 영상 검출 시스템 개발 및 성능평가)

  • Cho, Kyoung-Woo;Liu, Ze-Qi;Jeon, Min-Ho;Oh, Chang-Heon
    • Journal of Advanced Navigation Technology
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    • v.17 no.6
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    • pp.792-797
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    • 2013
  • 4D film is just a film that made by adding some physical effects to 3D film or general film. In order to provide physical effects to the audience, the data that make the physical effect must be added to each frames. In this paper, we proposed a video detection system that can efficiently provide physical effects by assessing the present situation such as explosion scene, snowing scene. The proposed video detection system contains an algorithm for fire detection by using R color and $C_r$ value, and also an algorithm for snow detection by using RGB color model. The system constitutes in a MCU that from 8051 family. In the performance evaluations, the result shows that 91% of detection rate in case of fire and 25% of false detection rate in case of snow. Also the system is capable of providing physical effects automatically.

Region-based H.263 Video Codec with Effective Rate Control Algorithm for Low VBR Video (개선된 특징차 비교 방법을 이용한 컷 검출 알고리즘에 관한 연구)

  • 최인호;이대영
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.24 no.9B
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    • pp.1690-1696
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    • 1999
  • Video sequence should be hierachically classified for the content-based retrieval. Cut detection algorithm is an essential process to classify shots. It is generally difficult for cut detection algorithms to detect cut points since a current frame is compared with a previous one, because movement of camera or object made adrupt scene change. We reduce ratio of failed cut detection so that compare the difference between frames of predicted cut point and their neighbors. In this paper, first we get predicted cut point, then we judge that the predicted cut point is true point or not. And we extracted DC images in MPEG video sequence for comparison. As a result of experiments. We confirmed that the cut detection ratio of the proposed algorithm is higher than of any other algorithms.

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Improved Similarity Detection Algorithm of the Video Scene (개선된 비디오 장면 유사도 검출 알고리즘)

  • Yu, Ju-Won;Kim, Jong-Weon;Choi, Jong-Uk;Bae, Kyoung-Yul
    • The Journal of the Korea Contents Association
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    • v.9 no.2
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    • pp.43-50
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    • 2009
  • We proposed similarity detection method of the video frame data that extracts the feature data of own video frame and creates the 1-D signal in this paper. We get the similar frame boundary and make the representative frames within the frame boundary to extract the similarity extraction between video. Representative frames make blurring frames and extract the feature data using DOG values. Finally, we convert the feature data into the 1-D signal and compare the contents similarity. The experimental results show that the proposed algorithm get over 0.9 similarity value against noise addition, rotation change, size change, frame delete, frame cutting.

A Scene Boundary Detection Scheme using Audio Information in MPEG System Stream (MPEG 시스템 스트림상에서 오디오 정보를 이용한 장면 경계 검출 방법)

  • Kim, Jae-Hong;Nang, Jong-Ho;Park, Soo-Yong
    • Journal of KIISE:Software and Applications
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    • v.27 no.8
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    • pp.864-876
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    • 2000
  • This paper proposes a new scene boundary detection scheme for the MPEG System stream using MPEG Audio information and proves its usefulness by extensive experiments. A scene boundary has a characteristic that the audio as well as video information are changed rapidly. This paper first classifies this scene boundary into three cases ; Radical, Gradual, Micro Changes, with respect to the audio changes. The Radical change has a large-scale changing of decibel value and pitch value at a scene boundary, the Gradual change shows the long-time transition of decibel and pitch values from max to min or vice versa, and the Micro change displays a some change of pitch or frequency distribution without decibel changes. Upon this analysis, a new scene change detection algorithm detecting these three cases is proposed in which a progressive window with a time line is used to trace the changes in the audio information. Some experiments with various movies show that proposed algorithm could produce a high detection ratio for Radical change that is the most popular scene change in the movies, while producing a moderate detection ratio for Gradual and Micro changes. The proposed scene boundary detection scheme could be used to build a database for visual information like MPEG System stream.

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Detecting Dissolve Cut for Multidimensional Analysis in an MPEG compressed domain : Using DCT-R of I, P Frames (MPEG의 다차원 분석을 통한 디졸브 구간 검출 : I, P프레임의 DCT-R값을 이용)

  • Heo, Jung;Park, Sang-Sung;Jang, Dong-Sik
    • Journal of the Institute of Convergence Signal Processing
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    • v.4 no.3
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    • pp.34-40
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    • 2003
  • The paper presents a method to detect dissolve shots of video scene change detections in an MPEG compressed domain. The proposed algorithm uses color-R DCT coefficients of Ⅰ, P-frames for a fast operation and accurate detection and a minimum decoding process in MPEG sequences. The paper presents a method to detect dissolve shot for three-dimensional visualization and analysis of Image in order to recognize easily in computer as a human detects accurately shots of scene change. First, Color-R DCT coefficients for 8*8 units are obtained and the features are summed in a row. Second, Four-step analysis are Performed for differences of the sum in the frame sequences. The experimental results showed that the algorithm has better detection performance, such as precision and recall rate, than the existing method using an average for all DC image by performing four step analysis. The algorithm has the advantage of speed, simplicity and accuracy. In addition. it requires less amount of storage.

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Scene Change Detection on Compressed Video Considering Video Organization (압축 비디오에서 비디오 구조화를 고려한 장면 전환 검출)

  • 이재승;김강욱;황찬식
    • Proceedings of the IEEK Conference
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    • 2000.09a
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    • pp.211-214
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    • 2000
  • 최근 정보통신의 급속한 발달로 비디오의 내용기반 검색은 많은 응용분야에서 중요성이 증가하고 있다. 자동적인 비디오 검색에 있어서 장면전환의 검출은 없어서는 안될 필수적인 과정이다. 그래서, 압축 영역이나 비압축 영역에서의 장면전환검출 기법들이 많이 제안되었다. 특히, 비디오가 대용량화됨에 따라 압축 영역에서의 검출 기법의 연구가 활발히 진행되고 있다. 본 논문에서는 압축비디오에서 I-프레임의 DC 영상과 B-프레임의 매크로 블록 타입만을 이용하여 정확한 컷의 위치를 찾아내고자 한다. 그리고, 비디오 구조화의 수행에 적합한 성능과 정보를 얻을 수 있는 방법을 제안한다.

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High-definition Video Enhancement Using Color Constancy Based on Scene Unit and Modified Histogram Equalization (장면단위 색채 항상성과 변형 히스토그램 평활화 방법을 이용한 고선명 동영상의 화질 향상 방법)

  • Cho, Dong-Chan;Kang, Hyung-Sub;Kim, Whoi-Yul
    • Journal of Broadcast Engineering
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    • v.15 no.3
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    • pp.368-379
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    • 2010
  • As high-definition video is broadly used in various system such as broadcast system and digital camcorder the proper method in order to improve the quality of high-definition video is needed. In this paper, we propose an efficient method to improve color and contrast of high-definition video. In order to apply the image enhancement method to high-definition video, scale-down video of high-definition video is used and the parameter for image enhancement method is computed from small size video. To enhance the color of high-definition video, we apply color constancy method. First, we separate the video into several scenes by cut detection method. Then, we apply color constancy to each scene with same parameter. To improve the contrast of high-definition video, we use union of original image and histogram equalized image, and weight is calculated based on sorting of histogram bins. Finally, the performance of proposed method is demonstrated in experiment section.