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首页> 外文期刊>Transportation Research Record >Statistical Analysis of Automated Versus Manual Pavement Condition Surveys
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Statistical Analysis of Automated Versus Manual Pavement Condition Surveys

机译:自动与手动路面状况调查的统计分析

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摘要

The Alabama Department of Transportation (ALDOT) has used a vendor to perform automated pavement condition surveys for the Alabama pavement network since 1997. In 2002, ALDOT established a quality assurance (QA) program to check the accuracy of the automated pavement condition data. The QA program revealed significant discrepancies between manual and automatically collected data. ALDOT uses a composite pavement condition index called pavement condition rating (PCR) in its pavement management system. The equation for PCR was developed in 1985 for use with manual pavement condition surveys; however, ALDOT continues to use it with data from automated condition surveys. Since the PCR equation was developed for manual surveys, the discrepancies between the manual and automated data led ALDOT to question the continuity between its manual and automated pavement condition survey programs. A regression analysis was completed to look for any systematic error or general trends in the error between automated and manual data. Also, Monte Carlo simulation was used to determine which distress parameters most influence the PCR and whether they require more accuracy. The regression analysis showed the following general trends: automated data overreport outside wheelpath rut depth, under-report alligator severity Level 1 cracking, and overreport alligator severity Level 3 cracking. Through Monte Carlo simulation, it was determined that all severity levels of transverse cracking, block cracking, and alligator cracking data require greater accuracy.
机译:自1997年以来,阿拉巴马州交通运输部(ALDOT)一直使用供应商对阿拉巴马州路面网络进行自动路面状况调查。2002年,ALDOT建立了质量保证(QA)程序来检查自动路面状况数据的准确性。质量检查程序显示手动收集的数据与自动收集的数据之间存在重大差异。 ALDOT在其路面管理系统中使用称为路面状况等级(PCR)的复合路面状况指数。 PCR方程是在1985年开发的,可用于人工路面状况调查。但是,ALDOT继续将其与自动状况调查的数据一起使用。由于PCR方程是为手动测量开发的,因此手动数据和自动数据之间的差异导致ALDOT质疑其手动和自动路面状况测量程序之间的连续性。完成了回归分析,以查找自动和手动数据之间的任何系统误差或误差的一般趋势。同样,使用蒙特卡洛模拟来确定哪些遇险参数对PCR的影响最大以及它们是否需要更高的准确性。回归分析显示以下总体趋势:自动数据过度报告轮径车辙深度之外,报告不足的鳄鱼皮严重程度为1级开裂和过度报告的鳄鱼皮严重程度为3级开裂。通过蒙特卡洛模拟,确定横向裂缝,块状裂缝和扬子鳄裂缝数据的所有严重性级别都需要更高的准确性。

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