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首页> 外文期刊>Journal of Engineering Research >A Low Cost Data Collection Approach to Pavement Mosaic Reconstruction
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A Low Cost Data Collection Approach to Pavement Mosaic Reconstruction

机译:一种低成本的路面马赛克重建数据采集方法

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Data collection is one of the most important and costly steps of pavement management systems. Traditional methods have been widely replaced with automated data collection vehicles due to their advantages such as safety, accuracy, precision, standardization, and repeatability. However, these vehicles are very expensive due to several high-cost sensors mounted on-board which might not be financially efficient. The main goal of this paper is to propose a cost-effective data collection approach utilized to reconstruct the 3D model of a pavement surface which can be utilized to evaluate pavement condition. For this purpose, an inexpensive sensor called Kinect V2 is applied including both cameras and infrared projector to capture depth data. Having calibrated the sensor and captured data, the color images were stitched together. Then, the depth data was added to the stitched images so that the 3D model of pavement was built. This approach makes a significant difference in terms of total cost of data collection for pavement distresses which their main feature is elevation such as roughness and rutting.?
机译:数据收集是路面管理系统最重要和最昂贵的步骤之一。传统方法由于具有安全性,准确性,精确性,标准化和可重复性等优点,已被自动化数据收集工具广泛取代。然而,由于安装在板上的几个高成本传感器,这些车辆非常昂贵,这可能在财务上没有效率。本文的主要目的是提出一种经济有效的数据收集方法,该方法可用于重建路面的3D模型,该模型可用于评估路面状况。为此,应用了一种廉价的传感器,称为Kinect V2,包括摄像头和红外投影仪,以捕获深度数据。校准传感器并捕获数据后,将彩色图像缝合在一起。然后,将深度数据添加到缝合的图像中,从而构建路面的3D模型。这种方法在路面缺陷数据收集的总成本方面有很大的不同,其主要特征是高程,例如粗糙度和车辙。

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