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Review of the application of machine learning to the automatic semantic annotation of images

机译:机器学习在图像自动语义标注中的应用综述

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摘要

The massive amount of digital content generated daily in the modern world has created the need for an image retrieval system built on image analysis via image processing and machine learning, therefore this study explains the role of machine learning in bridging the semantic gap in content-based image retrieval, proposes an automatic image annotation framework, in which training images are obtained from social media, and semantic indexing is achieved using a combination of supervised and unsupervised machine learning. Furthermore, the study also highlights the need for continuous vocabulary improvement for optimum system performance and recommends hardware implementation of machine learning algorithms to ensure high overall speed of image retrieval systems.
机译:现代世界每天产生大量的数字内容,因此需要通过图像处理和机器学习在图像分析基础上建立的图像检索系统,因此,本研究解释了机器学习在弥合基于内容的语义鸿沟中的作用。图像检索提出了一种自动图像标注框架,该框架中可以从社交媒体获取训练图像,并结合有监督和无监督机器学习来实现语义索引。此外,该研究还强调了需要不断改进词汇以实现最佳系统性能,并建议机器学习算法的硬件实现,以确保图像检索系统的总体速度较高。

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