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Exploring Pavement Crack Evaluation with Bidimensional Empirical Mode Decomposition

机译:用二维经验模态分解探索路面裂缝评估

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摘要

Crack evaluation is essential for effective classification of pavement cracks. Digital images of pavement cracks have been analyzed using techniques such as fuzzy set theory and neural networks. Bidimensional empirical mode decomposition (BEMD), a new image analysis method recently developed, can potentially be used for pavement crack evaluation. BEMD is an extension of the empirical mode decomposition (EMD), which can decompose non-linear and non-stationary signals into basis functions called intrinsic mode functions (IMF). IMFs are monocomponent functions that have well defined instantaneous frequencies. EMD is a sifting process that is non-parametric and data-driven; it does not depend on an a priori basis set. It is able to remove noise from signals without complicated convolution processes. BEMD decomposes an image into two-dimensional IMFs. The present paper explores pavement crack detection using BEMD together with the Sobel edge detector. A number of images are filtered with BEMD to remove noise, and the residual image analyzed with the Sobel edge detector for crack detection. The results are compared with results from the Canny edge detector, which uses a Gaussian filter for image smoothing before performing edge detection. The objective is to qualitatively explore how well BEMD is able to smooth an image for more effective and speedier edge detection with the Sobel method.
机译:裂缝评估对于有效分类路面裂缝至关重要。已经使用模糊集理论和神经网络等技术分析了路面裂缝的数字图像。二维经验模式分解(BEMD)是最近开发的一种新的图像分析方法,可以潜在地用于路面裂缝评估。 BEMD是经验模式分解(EMD)的扩展,它可以将非线性和非平稳信号分解为称为固有模式函数(IMF)的基本函数。 IMF是具有明确定义的瞬时频率的单组分函数。 EMD是一种非参数和数据驱动的筛选过程。它不依赖于先验基础集。它能够从信号中消除噪声,而无需复杂的卷积过程。 BEMD将图像分解为二维IMF。本文探讨了使用BEMD和Sobel边缘检测器一起检测路面裂缝的方法。用BEMD过滤了许多图像以去除噪声,并使用Sobel边缘检测器分析残留图像以进行裂纹检测。将结果与Canny边缘检测器的结果进行比较,后者在执行边缘检测之前使用高斯滤波器对图像进行平滑处理。目的是定性地探索BEMD能够使图像平滑的程度,以便使用Sobel方法更有效,更快速地进行边缘检测。

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