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Data-driven urban management: Mapping the landscape

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OA
AI
Z
Zeynep Engin *
V
van Dijk, Justin
T
Tian Lan
P
Paul Longley
P
Philip Treleaven
M
Michael Batty
A
Alan Penn
DOI:10.1016/j.jum.2019.12.001delete
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Abstract

Abstract

En 中文
Big data analytics and artificial intelligence, paired with blockchain technology, the Internet of Things, and other emerging technologies, are poised to revolutionise urban management. With massive amounts of data collected from citizens, devices, and traditional sources such as routine and well-established censuses, urban areas across the world have - for the first time in history the opportunity to monitor and manage their urban infrastructure in real-time. This simultaneously provides previously unimaginable opportunities to shape the future of cities, but also gives rise to new ethical challenges. This paper provides a transdisciplinary synthesis of the developments, opportunities, and challenges for urban management and planning under this ongoing 'digital revolution' to provide a reference point for the largely fragmented research efforts and policy practice in this area. We consider both top-down systems engineering approaches and the bottom-up emergent approaches to coordination of different systems and functions, their implications for the existing physical and institutional constraints on the built environment and various planning practices, as well as the social and ethical considerations associated with this transformation from non-digital urban management to data-driven urban management.
Keywords:
Data-driven society
Urban management and applications
Evidence-based decision making
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Journal

Journal of Urban Technology cover
Journal of Urban Technology
IF:
4.4
Papers:
387
Citations:
1.8K

Organization

U
University College London
Scholars:
7.9W
Papers: 6.2W
Citations: 15.7W
U
university of london
Scholars:
21.5W
Papers: 19.7W
Citations: 305