• Title/Summary/Keyword: Key Frame Extraction

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Feature Extraction for Automatic Golf Swing Analysis by Image Processing (영상처리를 이용한 골프 스윙 자동 분석 특징의 추출)

  • Kim, Pyeoung-Kee
    • Journal of the Korea Society of Computer and Information
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    • v.11 no.5 s.43
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    • pp.53-58
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    • 2006
  • In this paper, I propose an image based feature extraction method for an automatic golf swing analysis. While most swing analysis systems require an expert like teaching professional, the proposed method enables an automatic swing analysis without a professional. The extracted features for swing analysis include not only key frames such as addressing, backward swing, top, forward swing, impact, and follow-through swing but also important positions of golfer's body parts such as hands, shoulders, club head, feet, knee. To see the effectiveness of the proposed method. I tested it for several swing pictures. Experimental results show that the proposed method is effective for extracting important swing features. Further research is under going to develop an automatic swing analysis system using the proposed features.

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An Efficient Video Clip Matching Algorithm Using the Cauchy Function (커쉬함수를 이용한 효율적인 비디오 클립 정합 알고리즘)

  • Kim Sang-Hyul
    • Journal of the Institute of Convergence Signal Processing
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    • v.5 no.4
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    • pp.294-300
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    • 2004
  • According to the development of digital media technologies various algorithms for video clip matching have been proposed to match the video sequences efficiently. A large number of video search methods have focused on frame-wise query, whereas a relatively few algorithms have been presented for video clip matching or video shot matching. In this paper, we propose an efficient algorithm to index the video sequences and to retrieve the sequences for video clip query. To improve the accuracy and performance of video sequence matching, we employ the Cauchy function as a similarity measure between histograms of consecutive frames, which yields a high performance compared with conventional measures. The key frames extracted from segmented video shots can be used not only for video shot clustering but also for video sequence matching or browsing, where the key frame is defined by the frame that is significantly different from the previous frames. Experimental results with color video sequences show that the proposed method yields the high matching performance and accuracy with a low computational load compared with conventional algorithms.

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An eigenspace projection clustering method for structural damage detection

  • Zhu, Jun-Hua;Yu, Ling;Yu, Li-Li
    • Structural Engineering and Mechanics
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    • v.44 no.2
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    • pp.179-196
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    • 2012
  • An eigenspace projection clustering method is proposed for structural damage detection by combining projection algorithm and fuzzy clustering technique. The integrated procedure includes data selection, data normalization, projection, damage feature extraction, and clustering algorithm to structural damage assessment. The frequency response functions (FRFs) of the healthy and the damaged structure are used as initial data, median values of the projections are considered as damage features, and the fuzzy c-means (FCM) algorithm are used to categorize these features. The performance of the proposed method has been validated using a three-story frame structure built and tested by Los Alamos National Laboratory, USA. Two projection algorithms, namely principal component analysis (PCA) and kernel principal component analysis (KPCA), are compared for better extraction of damage features, further six kinds of distances adopted in FCM process are studied and discussed. The illustrated results reveal that the distance selection depends on the distribution of features. For the optimal choice of projections, it is recommended that the Cosine distance is used for the PCA while the Seuclidean distance and the Cityblock distance suitably used for the KPCA. The PCA method is recommended when a large amount of data need to be processed due to its higher correct decisions and less computational costs.

The Key Frame Extraction and Anchor Recognition in News Videos (뉴스 비디오에서 키 프레임 추출과 앵커 인식)

  • 신성윤;임정훈;이양원;표성배
    • Proceedings of the Korea Multimedia Society Conference
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    • 2001.11a
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    • pp.286-289
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    • 2001
  • 뉴스 비디오에서 앵커가 등장하는 첫 번째 프레임은 하나의 뉴스를 샷으로 설정하는데 기준이 되는 키 프레임이라고 볼 수 있다. 본 논문에서는 뉴스 비디오의 장면 전환을 검출을 위하여 컬러 히스토그램과 $\chi$$^2$ 히스토그램을 합성한 방법을 이용하여 키 프레임을 추출하며, 추출된 키 프레임을 대상으로 앵커 프레임의 공간적 구성과 얼굴의 특징 정보에 대한 사전 지식을 바탕으로 한 유사성 측정을 통하여 앵커를 인식하도록 한다. 앵커로 인식된 프레임은 하나의 뉴스 신에 대한 키 프레임이 되며 뉴스 비디오를 색인화 하는데 중요한 역할을 수행한다.

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Robust Digital Watermarking for High-definition Video using Steerable Pyramid Transform, Two Dimensional Fast Fourier Transform and Ensemble Position-based Error Correcting

  • Jin, Xun;Kim, JongWeon
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • v.12 no.7
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    • pp.3438-3454
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    • 2018
  • In this paper, we propose a robust blind watermarking scheme for high-definition video. In the embedding process, luminance component of each frame is transformed by 2-dimensional fast Fourier transform (2D FFT). A secret key is used to generate a matrix of random numbers for the security of watermark information. The matrix is transformed by inverse steerable pyramid transform (SPT). We embed the watermark into the low and mid-frequency of 2D FFT coefficients with the transformed matrix. In the extraction process, the 2D FFT coefficients of each frame and the transformed matrix are transformed by SPT respectively, to produce two oriented sub-bands. We extract the watermark from each frame by cross-correlating two oriented sub-bands. If a video is degraded by some attacks, the watermarks of frames contain some errors. Thus, we use an ensemble position-based error correcting algorithm to estimate the errors and correct them. The experimental results show that the proposed watermarking algorithm is imperceptible and moreover is robust against various attacks. After embedding 64 bits of watermark into each frame, the average peak signal-to-noise ratio between original frames and embedded frames is 45.7 dB.

PCA-Based MPEG Video Retrieval in Compressed Domain (PCA에 기반한 압축영역에서의 MPEG Video 검색기법)

  • 이경화;강대성
    • Journal of the Institute of Electronics Engineers of Korea SP
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    • v.40 no.1
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    • pp.28-33
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    • 2003
  • This paper proposes a database index and retrieval method using the PCA(Principal Component Analysis). We perform a scene change detection and key frame extraction from the DC Image constructed by DCT DC coefficients in the compressed video stream that is video compression standard such as MPEG. In the extracted key frame, we use the PCA, then we can make codebook that has a statistical data as a codeword, which is saved as a database index. We also provide retrieval image that are similar to user's query image in a video database. As a result of experiments, we confirmed that the proposed method clearly showed superior performance in video retrieval and reduced computation time and memory space.

A Dynamic Segmentation Method for Representative Key-frame Extraction from Video data (동적 분할 기법을 이용한 비디오 데이터의 대표키 프레임 추출)

  • Lee, Soon-Hee;Kim, Young-Hee;Ryu, Keun-Ho
    • Journal of the Institute of Electronics Engineers of Korea CI
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    • v.38 no.1
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    • pp.46-57
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    • 2001
  • To access the multimedia data, such as video data with temporal properties, the content-based image retrieval technique is required. Moreover, one of the basic techniques for content-based image retrieval is an extraction of representative key-frames. Not only did we implement this method, but also by analyzing the video data, we have proven the proposed method to be both effective and accurate. In addition, this method is expected to solve the real world problem of building video databases, as it is very useful in building an index.

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Toward a Key-frame Extraction Framework for Video Storyboard Surrogates Based on Users' EEG Signals (이용자 기반의 비디오 키프레임 자동 추출을 위한 뇌파측정기술(EEG) 적용)

  • Kim, Hyun-Hee;Kim, Yong-Ho
    • Journal of the Korean Society for Library and Information Science
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    • v.49 no.1
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    • pp.443-464
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    • 2015
  • This study examined the feasibility of using EEG signals and ERP P3b for extracting video key-frames based on users' cognitive responses. Twenty participants were used to collect EEG signals. This research found that the average amplitude of right parietal lobe is higher than that of left parietal lobe when relevant images were shown to participants; there is a significant difference between the average amplitudes of both parietal lobes. On the other hand, the average amplitude of left parietal lobe in the case of non-relevant images is lower than that in the case of relevant images. Moreover, there is no significant difference between the average amplitudes of both parietal lobes in the case of non-relevant images. Additionally, the latency of MGFP1 and channel coherence can be also used as criteria to extract key-frames.

MPEG Video Retrieval Using U-Trees Construction (KD-Trees구조를 이용한MPEG 비디오 검색)

  • Kim, Daeil;Hong, Jong-Sun;Jang, Hye-Kyoung;Kim, Young-Ho;Kang, Dae-Seong
    • Proceedings of the IEEK Conference
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    • 2003.07e
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    • pp.1855-1858
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    • 2003
  • In this paper, we propose image retrieval method more accurate and efficient than the conventional one. First of ail, we perform a shot detection and key frame extraction from the DC image constructed by DCT DC coefficients in the compressed video stream that is video compression standard such as MPEG[I][2]. We get principal axis applying PCA(Principal Component Analysis) to key frames for obtaining indexing information, and divide a domain. Video retrieval uses indexing information of high dimension. We apply KD-Trees(K Dimensional-Trees)[3] which shows efficient retrieval in data set of high dimension to video retrieval method. The proposed method can represent property of images more efficiently and property of domains more accurately using KD-Trees.

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Topic Analysis of Science and Technology Articles using CiteSeer Corpus (CiteSeer 말뭉치를 이용한 과학기술 문헌의 주제 분석)

  • Jung, Han-Min;Kang, In-Su;Sung, Won-Kyung
    • Journal of KIISE:Computing Practices and Letters
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    • v.14 no.5
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    • pp.507-511
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    • 2008
  • There have been enormous technological advances in science & technology domain and frequent convergences between its sub-domains. Topic analysis with science & technology corpus is a key process to grasp topic trends and relations between topics. The main objective of this research is to show various analytic approaches with topics extracted from CiteSeer corpus, which is widely used in information technology domain. This paper will also show a case study of Onto-Frame, an R&D support system developed by KISTI, to reveal the role of topics on the system.