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Broken Railway Fastener Detection Based on Adaboost Algorithm

机译:基于Adaboost算法的铁路紧固件断裂检测

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The detection of broken railway fastener is important to ensure the safety of the railway transport. This paper proposes an efficient method to detect and recognize the broken fastener with complex ballast railway images. Firstly, a from-coarse-to-fine strategy according to the sleeper regionȁ9;s gray and gradient characteristics is used to position the fastener, then the Haar-like feature set according to the fastenerȁ9;s geometrical characteristics is introduced. Finally, the fastener state is recognized by the AdaBoost-based algorithm. The method can detect fastener effectively and automatically with high positioning and recognizing accuracy and need not manual intervention. The experiment showed that the detection rate is satisfactory.
机译:破损铁路紧固件的检测对于确保铁路运输的安全性非常重要。本文提出了一种有效的方法来检测和识别破碎的紧固件与复阵式铁路图像的破碎紧固件。首先,根据卧铺区域ψ9; s灰色和梯度特性的粗致细策略用于定位紧固件,然后根据紧固件ȁ9;载物的几何特征设置了类似的哈尔状特征。最后,基于Adaboost的算法识别紧固件状态。该方法可以有效地检测紧固件,并以高定位和识别精度,并且不需要手动干预。实验表明,检出率令人满意。

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