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ARTIFICIAL NEURAL NETWORK BASED DECISION SUPPORT SYSTEM FOR ROAD MAINTENANCE

机译:基于人工神经网络的道路维护决策支持系统

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Development of a Decision Support System (DSS) for road maintenance involves choosing optimal times, places, and maintenance and repair (M & R) actions to be carried out on a road network. Due to very large number of available alternatives and complexity involved in the decision making process, it is difficult to rely solely upon the experience and judgement of experts and field engineers. Further, road maintenance programming has an extremely large solution space and involves solving a highly constrained, multi-objective optimization problem which is difficult to solve by traditional methods. Artificial Intelligence (AI) techniques like Neural Networks and Genetic Algorithm (GA) are evolving as promising new technologies for assisting planners in decision making process. Artificial Neural Network (ANN) provide efficient and optimal solutions for complex problems involving realistic data with advantage of faster implementation and easier updating than with other traditional techniques. The present work aims at development of ANN based modules for identifying distressed road segments which need maintenance and the most appropriate M & R actions to be carried out on these segments.
机译:开发用于道路维护的决策支持系统(DSS)涉及在道路网络上选择最佳时间,地点和维护和维修(M&R)操作。由于决策过程中涉及的大量可用替代品和复杂性,很难完全依赖专家和现场工程师的经验和判断。此外,道路维护编程具有极大的解决方案空间,涉及解决受到传统方法难以解决的高度约束的多目标优化问题。神经网络和遗传算法(GA)等人工智能(AI)技术正在发展成为关于协助规划者在决策过程中的有前途的新技术。人工神经网络(ANN)为涉及现实数据的复杂问题提供高效和最佳的解决方案,其利用更快的实施和更易于更新,而不是其他传统技术。本工作旨在开发基于ANN基础的模块,用于识别需要维护和最合适的M&R动作的陷入困境的道路段,以便在这些段中进行。

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