Complex spatial networks
Theory and geospatial applications
Bibliographic Data
| ID | 5697405 |
|---|---|
| Authors | Taylor Anderson (0000-0003-4700-4845, George Mason University, corresponding author), Suzana Dragićević (0000-0003-4144-7530, Simon Fraser University) |
| Year | 2020 |
| Volume | 14 |
| Issue | 9 |
| Publication date | 2020-09-01 |
| Peer Reviewed | Yes |
| Open Access | Yes |
| Type | ARTICLE |
| Venue | Geography Compass (JOURNAL) |
| Journal identifiers | ISSN: 1749-8198 • E-ISSN: 1749-8198 |
| Publisher | Wiley (PUBLISHER • GB) |
| DOI | 10.1111/gec3.12502 |
| OpenAlex | W3044339269 |
| Language | EN |
| Citations received | 4 |
| References cited | 125 |
Complex systems modeling approaches offer the means to examine the way in which local interactions between system components form emergent systems. Using these bottom-up modeling approaches in combination with geographic information systems (GIS) and geospatial data, the complexity inherent to spatial phenomena including geographical, urban, ecological, or geophysical systems can be captured and represented. Scientific research in the field of network science also uses a complex systems approach to conceptualize, model, and analyze geospatial systems as networks. Despite having common characteristics, complexity, geographic information, and network sciences are not yet fully integrated. Therefore, the main objective of this article is to provide a comprehensive review of scientific research related to network theory and to evaluate the potential of their integration with complex systems modeling approaches originating in the field of geographic information science (GISc). This article finds that existing literature focuses on characterizing static spatial network structures to better understand the dynamics that take place on or within them. This article argues for a necessity in research advancements to explore the way in which real spatial network structures evolve in response to spatial dynamics and advocates for the integration of geographic automata systems (GAS) modeling approaches with networks to do so. The mathematical foundation for graph theory, including the measures that are used to describe networks and the theoretical graph types, are introduced. Geospatial applications of networks and graph theory are also presented. Examples of network-based automata models are presented as avenues for future research work in evolving spatial networks as part of GISc and computational geography
Cartography · Cellular automaton · Complex network · Complex system · Data science · Geographic information system · Geography · Geospatial analysis · Graph theory · Information system · Network science · World Wide Web · Computer Science · Engineering · Geographic Information Systems Studies · Human Mobility and Location-Based Analysis · Land Use and Ecosystem Services · Artificial Intelligence · Theoretical Computer Science
Spatial networks
Multiscale mobility networks and the spatial spreading of infectious diseases
A note on two problems in connexion with graphs
The complex network of global cargo ship movements
Complex networks
Assortative Mixing in Networks
Geographical information science
Centrality measures in spatial networks of urban streets
Power laws, Pareto distributions and Zipf's law
Community detection in graphs
Finding and evaluating community structure in networks
Landscape Connectivity
Classes of small-world networks
Analysis of weighted networks
Detecting the dynamics of urban structure through spatial network analysis
The architecture of complex weighted networks
The worldwide air transportation network
Exploring complex networks
Collective dynamics of ‘small-world’ networks
Emergence of Scaling in Random Networks
The Structure and Function of Complex Networks
Representing Complex Evolving Spatial Networks
Scales and Sales
Artificial Crime Analysis Systems
Identification of tourist hot spots based on social networks
Geography of Twitter networks
Social context, spatial structure and social network structure
Youth co-offending networks
A Framework For Temporal Geographic Information
Simplifying complexity
Geo-located Twitter as proxy for global mobility patterns
Connectivity of the Interstate Highway System
A Set of Measures of Centrality Based on Betweenness
Modeling the emergence of riots
The worldwide maritime network of container shipping
School-based friendship networks and children's physical activity
Social Network Analysis
The Strength of Weak Ties
| Unique citing works | 4 |
|---|---|
| Citations per year | 2 |
| Citation span | 2024 - 2026 (3) |
| Citation velocity | current |
| Highly cited | No |
| Citation types | Neutral: 4 |