• Title/Summary/Keyword: Short Video

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Impact of the Varying Estimation Period on Subjective Video Quality Evaluation for IPTV Service (IPTV에서 평가주기 변화가 주관적 영상 화질 평가에 미치는 영향 분석)

  • Ha, Sang-Yong;Kim, Chin-Chol;Jung, Woon-Young;Choi, Jae-young;Roh, Byeong-Hee
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.36 no.4B
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    • pp.314-321
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    • 2011
  • There have been considerable standardization works to measure subjective video quality. However, these standardization methods are based on the situation where they have original or reference video sequences, and measure the video quality by looking the sequence during short time duration, e.g. 10 seconds. Since people's TV watching time durations in IPTV services are very long (e.g. more than 30 minutes), the quality measurements by the standards are not practical. In this paper, we analyze the effect of video quality rating period to MOS (Mean Opinion Score), and suggest a proper rating duration of subjective video quality for IPTV services.

Movement Detection Using Keyframes in Video Surveillance System

  • Kim, Kyutae;Jia, Qiong;Dong, Tianyu;Jang, Euee S.
    • Proceedings of the Korean Society of Broadcast Engineers Conference
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    • 2022.06a
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    • pp.1249-1252
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    • 2022
  • In this paper, we propose a conceptual framework that identifies video frames in motion containing the movement of people and vehicles in traffic videos. The automatic selection of video frames in motion is an important topic in security and surveillance video because the number of videos to be monitored simultaneously is simply too large due to limited human resources. The conventional method to identify the areas in motion is to compute the differences over consecutive video frames, which has been costly because of its high computational complexity. In this paper, we reduced the overall complexity by examining only the keyframes (or I-frames). The basic assumption is that the time period between I-frames is rather shorter (e.g., 1/10 ~ 3 secs) than the usual length of objects in motion in video (i.e., pedestrian walking, automobile passing, etc.). The proposed method estimates the possibility of videos containing motion between I-frames by evaluating the difference of consecutive I-frames with the long-time statistics of the previously decoded I-frames of the same video. The experimental results showed that the proposed method showed more than 80% accuracy in short surveillance videos obtained from different locations while keeping the computational complexity as low as 20 % compared to the HM decoder.

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Effect of text and image presenting method on Chinese college students' learning flow, learning satisfaction and learning outcome in video learning environment (중국대학생 동영상 학습에서 텍스트 제시방식과 이미지 제시방식이 학습몰입, 학습만족, 학업성취에 미치는 효과)

  • Zhang, Jing;Zhu, Hui-Qin;Kim, Bo-Kyeong
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.22 no.1
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    • pp.633-640
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    • 2021
  • This study analyzes the effects of text and image presenting methods in video lectures on students' learning flow, learning satisfaction and learning outcomes. The text presenting methods include forming short sentences of 2 or 3 words or using key words, while image presenting methods include images featuring both detailed and related information as well as images containing only related information. 167 first year students from Xingtai University were selected as experimental participants. Groups of participants were randomly assigned to engage in four types of video. The research results are as follows. First, it was found that learning flow, learning satisfaction and learning outcomes of group presented with video forms of short sentences had higher statistical significance compared to the group experiencing the key word method. Second, learning flow, learning satisfaction and learning outcomes of group presented with video forms of only related information had higher statistical significance compared to the group experiencing the presenting method of both detailed and related information. That is, the mean values of dependent variables for groups of short form text and only related information were highest. In contrast, the mean values of dependent variables for groups of key words and both detailed and related information were the lowest.

Creation of Soccer Video Highlights Using Caption Information (자막 정보를 이용한 축구 비디오 하이라이트 생성)

  • Shin Seong-Yoon;Kang Il-Ko;Rhee Yang-Won
    • Journal of the Korea Society of Computer and Information
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    • v.10 no.5 s.37
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    • pp.65-76
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    • 2005
  • A digital video is a very long data that requires large-capacity storage space. As such, prior to watching a long original video, video watchers want to watch a summarized version of the video. In the field of sports, in particular, highlights videos are frequently watched. In short, a highlights video allows a video watcher to determine whether the highlights video is well worth watching. This paper proposes a scheme for creating soccer video highlights using the structural features of captions in terms of time and space. Such structural features are used to extract caption frame intervals and caption keyframes. A highlights video is created through resetting shots for caption keyframes, by means of logical indexing, and through the use of the rule for creating highlights. Finally, highlights videos and video segments can be searched and browsed in a way that allows the video watcher to select his/her desired items from the browser.

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Error Concealment Based on Semantic Prioritization with Hardware-Based Face Tracking

  • Lee, Jae-Beom;Park, Ju-Hyun;Lee, Hyuk-Jae;Lee, Woo-Chan
    • ETRI Journal
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    • v.26 no.6
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    • pp.535-544
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    • 2004
  • With video compression standards such as MPEG-4, a transmission error happens in a video-packet basis, rather than in a macroblock basis. In this context, we propose a semantic error prioritization method that determines the size of a video packet based on the importance of its contents. A video packet length is made to be short for an important area such as a facial area in order to reduce the possibility of error accumulation. To facilitate the semantic error prioritization, an efficient hardware algorithm for face tracking is proposed. The increase of hardware complexity is minimal because a motion estimation engine is efficiently re-used for face tracking. Experimental results demonstrate that the facial area is well protected with the proposed scheme.

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Cultural Exchange Between Korean and Japanese Students Through Videos

  • Seo, Eun-Mi
    • English Language & Literature Teaching
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    • v.9 no.2
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    • pp.1-16
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    • 2003
  • This paper describes a video exchange project between English classes in South Korea and in Japan. Korean and Japanese students worked in groups to make short videos in English which were then exchanged. After viewing their counterparts' videos, students e-mailed feedback to each other. This project was the third video exchange project between Korean and Japanese university students since 2001. However, it was the first time to try it with three universities together. Students from the different universities tried to compete with each other. It provided a better chance for students to improve their English. Most students expressed the importance of the video exchange project in developing their English proficiency and enabling them to use English in an international context. Many students agreed that the project was an educational, enjoyable and worthwhile experience.

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Content-Based Video Retrieval System Using Color and Motion Features (색상과 움직임 정보를 이용한 내용기반 동영상 검색 시스템)

  • 김소희;김형준;정연구;김회율
    • Proceedings of the IEEK Conference
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    • 2001.06c
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    • pp.133-136
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    • 2001
  • Numerous challenges have been made to retrieve video using the contents. Recently MPEG-7 had set up a set of visual descriptors for such purpose of searching and retrieving multimedia data. Among them, color and motion descriptors are employed to develop a content-based video retrieval system to search for videos that have similar characteristics in terms of color and motion features of the video sequence. In this paper, the performance of the proposed system is analyzed and evaluated. Experimental results indicate that the processing time required for a retrieval using MPEG-7 descriptors is relatively short at the expense of the retrieval accuracy.

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The Effects of Modal Noise on fiber optic Analog video Transmission (광섬유 아나로그 영상신호 전송에 대한 모달 노이즈 영향)

  • Han, Chi-Mun;Choe, Sang-Sam;Park, Han-Gyu
    • Journal of the Korean Institute of Telematics and Electronics
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    • v.20 no.3
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    • pp.1-5
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    • 1983
  • The effects of modal noise of analog video transmission systems using semiconductor laser diode is investigated. The system linearity degradation due to modal noise is examined for various fiber types. It was concluded that in alalog video transmission systems using multimode fiber, modal noise is so serious that reduction of coherency is essential to the development and that single mode libers are adequate for high quality analog video transmission systems.

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Machine Learning based Bandwidth Prediction for Dynamic Adaptive Streaming over HTTP

  • Yoo, Soyoung;Kim, Gyeongryeong;Kim, Minji;Kim, Yeonjin;Park, Soeun;Kim, Dongho
    • Journal of Advanced Information Technology and Convergence
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    • v.10 no.2
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    • pp.33-48
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    • 2020
  • By Digital Transformation, new technologies like ML (Machine Learning), Big Data, Cloud, VR/AR are being used to video streaming technology. We choose ML to provide optimal QoE (Quality of Experience) in various network conditions. In other words, ML helps DASH in providing non-stopping video streaming. In DASH, the source video is segmented into short duration chunks of 2-10 seconds, each of which is encoded at several different bitrate levels and resolutions. We built and compared the performances of five prototypes after applying five different machine learning algorithms to DASH. The prototype consists of a dash.js, a video processing server, web servers, data sets, and five machine learning models.

Behavior Pattern Prediction Algorithm Based on 2D Pose Estimation and LSTM from Videos (비디오 영상에서 2차원 자세 추정과 LSTM 기반의 행동 패턴 예측 알고리즘)

  • Choi, Jiho;Hwang, Gyutae;Lee, Sang Jun
    • IEMEK Journal of Embedded Systems and Applications
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    • v.17 no.4
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    • pp.191-197
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    • 2022
  • This study proposes an image-based Pose Intention Network (PIN) algorithm for rehabilitation via patients' intentions. The purpose of the PIN algorithm is for enabling an active rehabilitation exercise, which is implemented by estimating the patient's motion and classifying the intention. Existing rehabilitation involves the inconvenience of attaching a sensor directly to the patient's skin. In addition, the rehabilitation device moves the patient, which is a passive rehabilitation method. Our algorithm consists of two steps. First, we estimate the user's joint position through the OpenPose algorithm, which is efficient in estimating 2D human pose in an image. Second, an intention classifier is constructed for classifying the motions into three categories, and a sequence of images including joint information is used as input. The intention network also learns correlations between joints and changes in joints over a short period of time, which can be easily used to determine the intention of the motion. To implement the proposed algorithm and conduct real-world experiments, we collected our own dataset, which is composed of videos of three classes. The network is trained using short segment clips of the video. Experimental results demonstrate that the proposed algorithm is effective for classifying intentions based on a short video clip.