基于图像数据增强的停车占用检测迁移学习

Ali Khalfi, M. Guerroumi
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引用次数: 0

摘要

这个城市的停车问题比看上去要复杂得多。在空间有限的城市环境中,更需要高效的停车管理。解决方案是反直觉的,需要综合停车管理来检测停车空间。深度学习是人工智能的一个分支,作为一种有效且鲁棒的停车图像分类技术已被广泛应用。迁移学习是一种基于深度学习的技术,可用于图像分类。在本文中,我们利用Inception V3模型在图像数据增强迁移学习技术的背景下对PKLot数据集的停车位进行分类。实验部分在精度和计算参数数量方面显示出有趣的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transfer Learning with Image Data Augmentation for Parking Occupancy Detection
The issue of parking in the city is more complex than it appears. In the urban context where space is limited, an efficient parking management is more required. Solutions are counter-intuitive and require integrated parking management to detect space of parking. Deep learning is one of the branches of artificial intelligence, which has been widely used as an effective and robust technique to classify images associated with parking images. Transfer learning is a technique based on deep learning that can be used for image classification. In this paper, we exploit the Inception V3 model in the context of transfer learning technique with image data augmentation to classify the parking space of PKLot dataset. The experimental part shows interesting results in term of accuracy and the number of computational parameters.
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