Data-Driven Web-Based Patching Management Tool Using Multi-Sensor Pavement Structure Measurements
Sneha Jha, Yaguang Zhang, Bongsuk Park, Seonghwan Cho, James V., Krogmeier, Tandra Bagchi, John E. Haddock

TL;DR
This paper presents a data-driven, web-based tool that integrates multi-sensor pavement data and standardized distress ratings to improve patching decision-making and prioritize maintenance actions.
Contribution
It introduces a novel threshold-based patching suggestion algorithm that combines structural and surface pavement data for better maintenance planning.
Findings
Successfully integrated multi-sensor data for pavement assessment
Validated patching suggestions with 3D laser sensor images
Automated patching recommendations through a web-based tool
Abstract
Automating pavement maintenance suggestions is challenging,especially for actionable recommendations such as patching location,depth and priority.It is common practice among State agencies to manually inspect road segments of interest and decide maintenance requirements based on the pavement condition index (PCI).However,standalone PCI only evaluates the pavement surface condition and coupled with the variability in human perception of pavement distress,limits the accuracy and quality of current pavement maintenance practices.Here,a need for multi-sensor data integrated with standardized pavement distress condition ratings is required.This study explores the possibility of estimating the appropriate pavement patching strategy (i.e.,patching location,depth,and quantity) by integrating pavement structural and surface condition assessment with pavement specific ratings of…
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Taxonomy
TopicsInfrastructure Maintenance and Monitoring · Asphalt Pavement Performance Evaluation · Non-Destructive Testing Techniques
