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Quantifying Urban Sprawl with Spatial Autocorrelation Techniques using Multi-Temporal Satellite Data

Author

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  • Gabriele Nolè

    (Institute of Methodologies for Environmental Analysis, National Research Council, Tito, Italy & School of Engineering, University of Basilicata, Potenza, Italy)

  • Rosa Lasaponara

    (Institute of Methodologies for Environmental Analysis, National Research Council, Tito, Italy)

  • Antonio Lanorte

    (Institute of Methodologies for Environmental Analysis, National Research Council, Tito, Italy)

  • Beniamino Murgante

    (School of Engineering, University of Basilicata, Potenza, Italy)

Abstract

This study deals with the use of satellite TM multi-temporal data coupled with statistical analyses to quantitatively estimate urban expansion and soil consumption for small towns in southern Italy. The investigated area is close to Bari and was selected because highly representative for Italian urban areas. To cope with the fact that small changes have to be captured and extracted from TM multi-temporal data sets, we adopted the use of spectral indices to emphasize occurring changes, and geospatial data analysis to reveal spatial patterns. Analyses have been carried out using global and local spatial autocorrelation, applied to multi-date NASA Landsat images acquired in 1999 and 2009 and available free of charge. Moreover, in this paper each step of data processing has been carried out using free or open source software tools, such as, operating system (Linux Ubuntu), GIS software (GRASS GIS and Quantum GIS) and software for statistical analysis of data (R). This aspect is very important, since it puts no limits and allows everybody to carry out spatial analyses on remote sensing data. This approach can be very useful to assess and map land cover change and soil degradation, even for small urbanized areas, as in the case of Italy, where recently an increasing number of devastating flash floods have been recorded. These events have been mainly linked to urban expansion and soil consumption and have caused loss of human lives along with enormous damages to urban settlements, bridges, roads, agricultural activities, etc. In these cases, remote sensing can provide reliable operational low cost tools to assess, quantify and map risk areas.

Suggested Citation

  • Gabriele Nolè & Rosa Lasaponara & Antonio Lanorte & Beniamino Murgante, 2014. "Quantifying Urban Sprawl with Spatial Autocorrelation Techniques using Multi-Temporal Satellite Data," International Journal of Agricultural and Environmental Information Systems (IJAEIS), IGI Global, vol. 5(2), pages 19-37, April.
  • Handle: RePEc:igg:jaeis0:v:5:y:2014:i:2:p:19-37
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    Cited by:

    1. Nicola Ricca & Ilaria Guagliardi, 2023. "Evidences of Soil Consumption Dynamics over Space and Time by Data Analysis in a Southern Italy Urban Sprawling Area," Land, MDPI, vol. 12(5), pages 1-22, May.
    2. Xiaorui Zhang & Andong Ren & Lihua Chen & Xianyou Zheng, 2019. "Measurement and Spatial Difference Analysis on the Accessibility of Road Networks in Major Cities of China," Sustainability, MDPI, vol. 11(15), pages 1-15, August.
    3. Rosa Lasaponara & Beniamino Murgante & Abdelaziz Elfadaly & Mohamad Molaei Qelichi & Saeed Zanganeh Shahraki & Osama Wafa & Wael Attia, 2017. "Spatial Open Data for Monitoring Risks and Preserving Archaeological Areas and Landscape: Case Studies at Kom el Shoqafa, Egypt and Shush, Iran," Sustainability, MDPI, vol. 9(4), pages 1-25, April.
    4. Ciro Apollonio & Gabriella Balacco & Antonio Novelli & Eufemia Tarantino & Alberto Ferruccio Piccinni, 2016. "Land Use Change Impact on Flooding Areas: The Case Study of Cervaro Basin (Italy)," Sustainability, MDPI, vol. 8(10), pages 1-18, October.

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