University of Bahrain
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A Framework for Multimedia Data Mining using Transformer based Intelligent DNN Model Architecture

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dc.contributor.author Ravi, Mogili
dc.contributor.author Ekambaram Naidu, Mandalapu
dc.contributor.author Narsimha, Gugulothu
dc.date.accessioned 2024-01-29T16:00:58Z
dc.date.available 2024-01-29T16:00:58Z
dc.date.issued 2024-02-01
dc.identifier.issn 2210-142X
dc.identifier.uri https://journal.uob.edu.bh:443/handle/123456789/5389
dc.description.abstract Multimedia data mining plays a crucial role in various fields, such as image and video analysis, natural language processing, and recommendation systems. Multimedia data refers to any form of data that involves multiple modes of communication, such as text, images, audio, and video. To effectively mine valuable insights from multimedia data, a new framework is proposed in this paper that employs a transformer-based intelligent deep neural network (DNN) model architecture. The framework includes an extensive data preprocessing step that involves obtaining multimedia data from internet searches and removing duplicates to ensure that each image is unique. The proposed transformer-based intelligent DNN model architecture processes the multimedia data in a hierarchical manner and utilizes shifted windows to achieve high accuracy in image classification task. The exploited dataset details are provided in the experimental evaluation section. Experimental results show that the proposed framework outperforms existing multimedia data mining methods in terms of accuracy and efficiency. This framework provides valuable insights that can be used in various applications, including content-based image retrieval, sentiment analysis, and automated captioning. en_US
dc.language.iso en en_US
dc.publisher University of Bahrain en_US
dc.subject Multimedia data mining, Images classification, Transformers, Deep neural nets, Computational intelligence, Statistical performance metrics. en_US
dc.title A Framework for Multimedia Data Mining using Transformer based Intelligent DNN Model Architecture en_US
dc.identifier.doi 10.12785/ijcds/150132
dc.volume 15 en_US
dc.issue 1 en_US
dc.pagestart 1 en_US
dc.pageend 10 en_US
dc.contributor.authorcountry Hyderabad - 500085, (T.S) - India en_US
dc.contributor.authorcountry Vijayawada - 521108, (A.P) - India en_US
dc.contributor.authorcountry Hyderabad - 500085, (T.S) - India en_US
dc.contributor.authoraffiliation Department of Comp Sci and Engg, Jawaharlal Nehru Tech University en_US
dc.contributor.authoraffiliation Department of Comp Sci and Engg, SRK Institute of Technology en_US
dc.contributor.authoraffiliation Department of Comp Sci and Engg, Jawaharlal Nehru Tech University en_US
dc.source.title International Journal of Computing and Digital Systems en_US
dc.abbreviatedsourcetitle IJCDS en_US


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