Integrating AI and DTs: challenges and opportunities in railway maintenance application and beyond

Ruth Dirnfeld, Lorenzo De Donato, Alessandra Somma, Mehdi Saman Azari, Stefano Marrone, Francesco Flammini, Valeria Vittorini
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Abstract

In the last years, there has been a growing interest in the emerging concept of digital twin (DT) as it represents a promising paradigm to continuously monitor cyber–physical systems, as well as to test and validate predictability, safety, and reliability aspects. At the same time, artificial intelligence (AI) is exponentially affirming as an extremely powerful tool when it comes to modeling the behavior of physical assets allowing, de facto, the possibility of making predictions on their potential evolution. However, despite the fact that DTs and AI (and their combination) can act as game-changing technologies in different domains (including the railways), several challenges have to be faced to ensure their effectiveness, especially when dealing with safety-critical systems. This paper provides a narrative review of the scientific literature on DTs for railway maintenance applications, with a special focus on their relationship with AI. The aim is to discuss the opportunities the integration of these two technologies could open in railway maintenance applications (and beyond), while highlighting the main challenges that should be overcome for its effective implementation.
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整合人工智能和 DT:铁路维护应用及其他领域的挑战与机遇
近年来,人们对数字孪生(DT)这一新兴概念的兴趣与日俱增,因为它代表了一种可持续监控网络物理系统以及测试和验证可预测性、安全性和可靠性的前景广阔的模式。与此同时,人工智能(AI)作为一种极其强大的工具,在对物理资产的行为进行建模时发挥着越来越重要的作用。然而,尽管 DTs 和人工智能(及其组合)可以在不同领域(包括铁路)成为改变游戏规则的技术,但要确保其有效性,尤其是在处理安全关键系统时,还必须面对一些挑战。本文对有关铁路维护应用中 DTs 的科学文献进行了叙述性综述,并特别关注了 DTs 与人工智能的关系。本文旨在讨论这两项技术的整合可为铁路维护应用(及其他应用)带来的机遇,同时强调有效实施这两项技术应克服的主要挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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