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المؤلفAhmad, Hilal
المؤلفKhan, Habib Ullah
المؤلفAli, Sikandar
المؤلفRahman, Syed Ijaz Ur
المؤلفWahid, Fazli
المؤلفKhattak, Hizbullah
تاريخ الإتاحة2022-12-27T07:01:53Z
تاريخ النشر2022
اسم المنشورComputers, Materials and Continua
المعرّفhttp://dx.doi.org/10.32604/cmc.2022.021158
الاقتباسAhmad, H., Khan, H. U., Ali, S., Rahman, S., Wahid, F., & Khattak, H. (2022). Effective video summarization approach based on visual attention. CMC-COMPUTERS MATERIALS & CONTINUA, 71(1), 1427-1442.
الرقم المعياري الدولي للكتاب1546-2218
معرّف المصادر الموحدhttps://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85118649034&origin=inward
معرّف المصادر الموحدhttp://hdl.handle.net/10576/37618
الملخصVideo summarization is applied to reduce redundancy and develop a concise representation of key frames in the video, more recently, video summaries have been used through visual attention modeling. In these schemes, the frames that stand out visually are extracted as key frames based on human attention modeling theories. The schemes for modeling visual attention have proven to be effective for video summaries. Nevertheless, the high cost of computing in such techniques restricts their usability in everyday situations. In this context, we propose a method based on KFE (key frame extraction) technique, which is recommended based on an efficient and accurate visual attention model. The calculation effort is minimized by utilizing dynamic visual highlighting based on the temporal gradient instead of the traditional optical flow techniques. In addition, an efficient technique using a discrete cosine transformation is utilized for the static visual salience. The dynamic and static visual attention metrics are merged by means of a non-linear weighted fusion technique. Results of the systemare compared with some existing stateof- the-art techniques for the betterment of accuracy. The experimental results of our proposed model indicate the efficiency and high standard in terms of the key frames extraction as output.
راعي المشروعQatar University - No. IRCC-2021-010.
اللغةen
الناشرTech Science Press
الموضوعKFE
Video summarization
Visual attention model
Visual saliency
العنوانEffective video summarization approach based on visual attention
النوعArticle
الصفحات1427-1442
رقم العدد1
رقم المجلد71
ESSN1546-2226
dc.accessType Open Access


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