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Urban Science: Putting the a??Smarta?? in Smart Cities

机译:城市科学:将“ Smarta”放在首位在智慧城市

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摘要

Increased use of sensors and social data collection methods have provided cites with unprecedented amounts of data. Yet, data alone is no guarantee that cities will make smarter decisions and many of what we call smart cities would be more accurately described as data-driven cities. Parallel advances in theory are needed to make sense of those novel data streams and computationally intensive decision support models are needed to guide decision makers through the avalanche of new data. Fortunately, extraordinary increases in computational ability and data availability in the last two decades have led to revolutionary advances in the simulation and modeling of complex systems. Techniques, such as agent-based modeling and systems dynamic modeling, have taken advantage of these advances to make major contributions to diverse disciplines such as personalized medicine, computational chemistry, social dynamics, or behavioral economics. Urban systems, with dynamic webs of interacting human, institutional, environmental, and physical systems, are particularly suited to the application of these advanced modeling and simulation techniques. Contributions to this special issue highlight the use of such techniques and are particularly timely as an emerging science of cities begins to crystallize.
机译:越来越多的传感器使用和社交数据收集方法为城市提供了前所未有的数据量。然而,仅凭数据并不能保证城市会做出更明智的决策,我们将许多所谓的智慧城市更准确地描述为数据驱动型城市。需要在理论上进行并行改进来理解那些新颖的数据流,并且需要计算密集型的决策支持模型来指导决策者应对大量新数据。幸运的是,在过去的二十年中,计算能力和数据可用性的惊人提高导致了复杂系统的仿真和建模方面的革命性进步。诸如基于代理的建模和系统动态建模之类的技术已利用这些进步为诸如个性化医学,计算化学,社会动力学或行为经济学等多种学科做出了重要贡献。具有相互作用的人类,机构,环境和物理系统的动态网络的城市系统特别适合这些高级建模和仿真技术的应用。对这一特殊问题的贡献突出了这种技术的使用,并且随着新兴的城市科学开始结晶,这些时机特别及时。

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