空中汽车检测和城市理解

D. Kamenetsky, J. Sherrah
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引用次数: 9

摘要

在这项工作中,我们从航空图像中研究汽车检测,并探索如何将其应用于城市理解。为了执行汽车检测,我们使用旋转不变性傅里叶HOG检测器。通过增加增量变化,我们能够在一定范围内将其检测概率提高10%。如果我们过滤掉不在已知街道附近或不在停车场内的汽车,就可以进一步改进。我们使用检测到的汽车来自动理解城市:街道估计,停车场检测和监控。在我们的实验中,我们能够检测到两个主要城市中大约一半的停车场。我们的停车场监测方法可以让我们发现停车场使用的简单趋势,以及停车场结构的变化。我们希望这些信息对未来的城市规划非常有用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Aerial Car Detection and Urban Understanding
In this work we investigate car detection from aerial imagery and explore how it can be applied to urban understanding. To perform car detection we use the rotationally-invariant Fourier HOG detector. By adding incremental changes we are able to improve its detection probability by 10% for a range of false alarm rates. Further improvements can be made if we filter out cars that are not near known streets or inside car parks. We use the detected cars for automatic urban understanding: street estimation, car park detection and monitoring. In our experiments we were able to detect about half of all car parks in two major cities. Our method for car park monitoring allows us to find simple trends in car park usage, as well as changes in car park structure. We expect this information to be highly useful for future city planning.
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