2014
DOI: 10.3141/2457-04
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Measurement of Pavement Roughness Using Android-Based Smartphone Application

Abstract: Pavement roughness is an expression of the irregularities in a pavement surface that adversely affect the ride quality of a vehicle. Roughness also affects vehicle delay costs, fuel consumption, tires, and maintenance costs. Roughness is predominantly characterized by the international roughness index (IRI), which is often measured with inertial profilers. Inertial profilers are equipped with sensitive accelerometers, a height-measuring laser, and a distance-measuring instrument for measuring vehicle vertical … Show more

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Cited by 97 publications
(34 citation statements)
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“…and accelerating deterioration. Rough road surfaces impact the ride comfort, vehicle speed, damages to vehicle, tire wear, increased maintenance costs of vehicles and road surfaces, and number of injury and no-injury crashes at multilane highways (Islam, Buttlar, Aldunate, & Vavrik, 2014). Thus, prompt and accurate assessment of deteriorating road © 2020 Computer-Aided Civil and Infrastructure Engineering surface conditions is an essential task for the Department of Transportation (DOT) to operate the road network properly with increased service life and traffic safety (Chen, Saeed, Alqadhi, & Labi, 2019;Chen, Saeed, & Labi, 2017;Islam et al, 2014).…”
Section: Introductionmentioning
confidence: 99%
“…and accelerating deterioration. Rough road surfaces impact the ride comfort, vehicle speed, damages to vehicle, tire wear, increased maintenance costs of vehicles and road surfaces, and number of injury and no-injury crashes at multilane highways (Islam, Buttlar, Aldunate, & Vavrik, 2014). Thus, prompt and accurate assessment of deteriorating road © 2020 Computer-Aided Civil and Infrastructure Engineering surface conditions is an essential task for the Department of Transportation (DOT) to operate the road network properly with increased service life and traffic safety (Chen, Saeed, Alqadhi, & Labi, 2019;Chen, Saeed, & Labi, 2017;Islam et al, 2014).…”
Section: Introductionmentioning
confidence: 99%
“…Các ứng dụng tích hợp trên điện thoại Android như "SmartRoadSense", "AndroSensor", "Roadroid" đã được sử dụng để theo dõi bề mặt đường thông qua việc tính toán chỉ số độ gồ ghề IRI từ các dữ liệu thu thập nhờ điện thoại thông minh [6,7,8,9]. Các kết quả tính toán đã cho thấy rằng điện thoại thông minh có thể đo IRI với độ chính xác chấp nhận được và có sự tương quan tốt với kết quả đo từ các máy đo độ gồ ghề theo mặt cắt khác [10,11]. Ở Việt Nam, công tác thu thập dữ liệu tình trạng mặt đường nói chung và chỉ số độ gồ ghề IRI nói riêng hiện vẫn chưa được quan tâm một cách đầy đủ, do đó việc đánh giá chất lượng mặt đường trong giai đoạn khai thác gặp nhiều khó khăn.…”
Section: đặT Vấn đềunclassified
“…IRI has score ranges of "<60, 60-94, 95-170, 171-220, and >220," and a higher value of IRI means poorer quality. We divided the ranges into "good (IRI < 95)," "fair (95 ≤ IRI ≤ 170)," and "unacceptable (IRI > 170)" according to the literature [38][39][40] and coded them as 3, 2, and 1, respectively. Then, we computed the weighted mean of each state highway by using the ratio of the certain quality road miles to the total miles: [3 × good (miles) + 2 × fair (miles) + 1 × poor (miles)]/total (miles).…”
Section: Measuring Effectiveness: Principal Component Analysis Approachmentioning
confidence: 99%