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Image Ranking Relevancy Based on Semantic Web Using Deep Learning Technique

机译:深度学习技术基于语义网的图像排名相关性

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Computer vision and deep learning have significant leverage on the retrieval of image ranking. The impressive advancements of deep learning techniques for computer vision and other applications conducted an excellent performance for semantically image ranking. The great challenge in image ranking task concentrates on extracting the deepest features of the image. This paper investigates a highly scalable and computationally efficient of deep relevance image ranking system for large scale images. The superior deep network model called RetinaNet is utilized as a feature extractor to learn deep semantic feature embedding of the imaging data. Besides, The effective transfer learning scheme is proposed to transfer the RetinaNet learning to deep relevance image ranking system. The experimental results manifest that our deep learning procedure enhancement the retrieval results efficiently and accurately and focuses on inhibit the learning time of a deep, relevant ranking task. As compared with other state-of-the-art object detectors, the RetinaNet detector accomplished more than a 97% mean average precision (MAP). These superior results pretend the effective impact of our proposed procedure learning that drives the more efficient and relevant result of the deep ranking task.
机译:计算机视觉和深度学习对图像排名的检索具有重要影响。深度学习技术在计算机视觉和其他应用程序方面的惊人进步为语义图像排名提供了出色的性能。图像排名任务的最大挑战在于提取图像的最深层特征。本文研究了用于大规模图像的高度相关性和深度相关图像排名系统的计算效率。称为RetinaNet的高级深度网络模型被用作特征提取器,以学习成像数据的深度语义特征嵌入。此外,提出了有效的转移学习方案,将RetinaNet学习转移到深度相关图像排名系统中。实验结果表明,我们的深度学习过程可有效,准确地增强检索结果,并着重于抑制深度相关排名任务的学习时间。与其他最新的物体探测器相比,RetinaNet探测器的平均平均精度(MAP)达到97%以上。这些优异的结果假装了我们提议的过程学习的有效影响,该过程驱动了深度排名任务的更有效和相关的结果。

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