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Deep Learning for Scene Recognition from Visual Data: A Survey

机译:深度学习视觉数据的场景识别:调查

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The use of deep learning techniques has exploded during the last few years, resulting in a direct contribution to the field of artificial intelligence. This work aims to be a review of the state-of-the-art in scene recognition with deep learning models from visual data. Scene recognition is still an emerging field in computer vision, which has been addressed from a single image and dynamic image perspective. We first give an overview of available datasets for image and video scene recognition. Later, we describe ensemble techniques introduced by research papers in the field. Finally, we give some remarks on our findings and discuss what we consider challenges in the field and future lines of research. This paper aims to be a future guide for model selection for the task of scene recognition.
机译:在过去几年中,使用深层学习技术已经爆发,导致对人工智能领域的直接贡献。这项工作旨在审查现场识别现场识别,从视觉数据的深度学习模型。场景识别仍然是计算机视觉中的新兴领域,这已从单个图像和动态图像的角度来解决。我们首先概述了可用数据集,用于图像和视频场景识别。后来,我们描述了该领域研究论文引入的集合技术。最后,我们对我们的研究结果提供了一些评论,并讨论了我们认为在领域和未来的研究线上的挑战。本文旨在成为现场识别任务的模型选择的未来指南。

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