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Neural Networks for Oil Spill Detection using TerraSAR-X Data

机译:使用Terrasar-X数据进行漏油检测的神经网络

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The increased amount of available Synthetic Aperture Radar (SAR) images involves a growing workload on the operators at analysis centers. In addition, even if the operators go through extensive training to learn manual oil spill detection, they can provide different and subjective responses. Hence, the upgrade and improvements of algorithms for automatic detection that can help in screening the images and prioritizing the alarms are of great benefit. In this paper we present the potentialities of TerraSAR-X (TS-X) data and Neural Network algorithms for oil spills detection. The radar on board satellite TS-X provides X-band images with a resolution of up to 1m. Such resolution can be very effective in the monitoring of coastal areas to prevent sea oil pollution. The network input is a vector containing the values of a set of features characterizing an oil spill candidate. The network output gives the probability for the candidate to be a real oil spill. Candidates with a probability less than 50percent are classified as look-alikes. The overall classification performances have been evaluated on a data set of 50 TS-X images containing more than 150 examples of certified oil spills and well-known look-alikes (e.g. low wind areas, wind shadows, biogenic films). The preliminary classification results are satisfactory with an overall detection accuracy above 80percent.
机译:可用的合成孔径雷达(SAR)图像的增加量涉及在分析中心的运营商上生长的工作量。此外,即使运营商经过广泛的培训,以学习手动漏油检测,它们也可以提供不同的和主观反应。因此,可以帮助筛选图像并优先考虑警报的自动检测算法的升级和改进具有很大的好处。在本文中,我们介绍了Terrasar-X(TS-X)数据和用于溢油检测的神经网络算法的潜力。卫星TS-X上的雷达提供了分辨率最高1米的X波段图像。这种分辨率在监测沿海地区以防止海运污染的情况非常有效。网络输入是包含表征漏油候选人的一组特征的值的矢量。网络输出使候选人成为真正的漏油的概率。概率小于50平方的候选者被归类为外观。已经在含有超过150个经过认证的漏油泄漏和众所周知的外观的示例的50 TS-X图像的数据集上进行了总体分类性能(例如,低风区域,风阴影,生物膜)。初步分类结果令人满意,总体检测精度高于80%。

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