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Information Journal Paper

Title

Refining large scale image annotation via transfer learning in deep convolutional neural network

Pages

  39-52

Abstract

Refining image annotation is an effective approach to improve tag base Image Retrieval. Many images in social networks and search engines have vague tags, incomplete and irrelevant content. However the unreliable tags, reducing the precision of Image Retrieval, recently some of the Tag refinement (TR) algorithms have been suggested as labels noise removal and enrichment of images. In order to achieve optimal result in TR, extracting features that have a good description of visual content of images will have direct impact on accuracy of TR process. Achieving the appropriate description and relevant to the content of images, is the major challenges in the Refining image annotation. Due to effectiveness of deep learning in research fields, in this paper we will use Deep convolutional neural network (DCNN) in order to extract efficient features for computing images visual and semantic similarity. Employing Transfer learning based ImageNet image database in DCNN, for large scale NUSWIDE dataset, indicating the effectiveness of this approach in Refining image annotation.

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  • Cite

    APA: Copy

    Javanmardi, Shima, & ZARE CHAHOOKI, MOHAMMAD ALI. (2018). Refining large scale image annotation via transfer learning in deep convolutional neural network. MACHINE VISION AND IMAGE PROCESSING, 5(1 ), 39-52. SID. https://sid.ir/paper/359756/en

    Vancouver: Copy

    Javanmardi Shima, ZARE CHAHOOKI MOHAMMAD ALI. Refining large scale image annotation via transfer learning in deep convolutional neural network. MACHINE VISION AND IMAGE PROCESSING[Internet]. 2018;5(1 ):39-52. Available from: https://sid.ir/paper/359756/en

    IEEE: Copy

    Shima Javanmardi, and MOHAMMAD ALI ZARE CHAHOOKI, “Refining large scale image annotation via transfer learning in deep convolutional neural network,” MACHINE VISION AND IMAGE PROCESSING, vol. 5, no. 1 , pp. 39–52, 2018, [Online]. Available: https://sid.ir/paper/359756/en

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