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Modeling and Analyzing Urban Sensor Network Connectivity Based on Open Data
Bartosz Musznicki1, Maciej Piechowiak2, Piotr Zwierzykowski1
1Institute of Computer and Communication Networks, Faculty of Computing and Telecommunications, Poznań University of Technology, 60-965 Poznań, Poland.
This study models urban wireless sensor networks using real-world open data for accurate topology analysis. It introduces algorithms to create graph-based models from device locations, enabling better network efficiency insights.
Area of Science:
- Computer Science
- Network Engineering
- Urban Planning
Background:
- Optimizing wireless sensor network topology is key for efficient data transmission.
- Open data sources offer new possibilities for modeling urban sensor networks.
- Real location data is essential for accurate network infrastructure representation.
Purpose of the Study:
- To develop and evaluate algorithms for modeling heterogeneous urban sensor networks using open data.
- To construct and analyze static and dynamic network topologies based on real-world data.
- To investigate the characteristics of urban network structures through simulation.
Main Methods:
- Utilizing open data sources for real location data of networked and sensing devices.
- Developing algorithms to transform device location data into graph-based network connectivity models.
- Constructing static and dynamic network topologies in four Polish cities.
- Conducting multidimensional simulation-based analysis.
Main Results:
- Successful transformation of device location data into graph-based network connectivity models.
- Construction of static and dynamic network topologies for four major Polish cities.
- Simulation-based analysis revealing characteristics of modeled urban network structures.
- Validation of the approach using real-world, frequently updated data.
Conclusions:
- Open data sources are effective for modeling urban wireless sensor network topologies.
- The proposed algorithms and architecture provide a robust method for network analysis.
- The findings support more accurate and dynamic network infrastructure representations.
- Further research directions for network optimization and analysis are identified.
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