Multisensor Characterization of Urban Morphology and Network Structure
Abstract
:1. Introduction
2. Materials and Methods
2.1. Multi-Season Spectral Characterization of Urban Land Cover
2.2. Network Identification by Progressive Segmentation
2.3. Morphology Characterization by Area-Perimeter Distribution
2.4. Network Characterization by Rank-Size and Rank-Shape Distribution
3. Results
3.1. Consistency of Spectrotemporal Characteristics
3.2. VIIRS + Sentinel Comparisons
3.3. Progressive Evolution of Morphology and Spatial Network Structure
4. Discussion
4.1. Characterizing Urban Morphology and Network Structure
4.2. What VIIRS Reveals
4.3. The Nature of Light Sources
4.4. Contrasting Forms of Urban Morphology and Network Structure
5. Conclusions
Funding
Acknowledgments
Conflicts of Interest
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City | Y | M | D | Tile | City | Y | M | D | Tile |
---|---|---|---|---|---|---|---|---|---|
London | 2016 | 06 | 06 | T30UXC-UYC | Delhi | 2016 | 06 | 04 | T43RFM-RGM |
London | 2016 | 09 | 11 | T30UXC-UYC | Delhi | 2016 | 10 | 22 | T43RFM-RGM |
London | 2017 | 01 | 02 | T30UXC-UYC | Delhi | 2016 | 12 | 21 | T43RFM-RGM |
London | 2017 | 04 | 09 | T30UXC-UYC | Seoul | 2016 | 04 | 08 | T52SBG-SCG |
Paris | 2016 | 12 | 27 | T31UDQ | Seoul | 2017 | 01 | 03 | T52SBG-SCG |
Paris | 2017 | 01 | 26 | T31UDQ | Seoul | 2017 | 05 | 03 | T52SBG-SCG |
Paris | 2017 | 05 | 26 | T31UDQ | Seoul | 2017 | 09 | 20 | T52SBG-SCG |
Paris | 2017 | 11 | 22 | T31UDQ | Shanghai | 2017 | 02 | 28 | T51RUQ |
Paris | 2018 | 02 | 25 | T31UDQ | Shanghai | 2017 | 04 | 29 | T51RUQ |
Rome | 2015 | 08 | 30 | T32TQM | Shanghai | 2017 | 04 | 29 | T51RUQ |
Rome | 2015 | 12 | 18 | T33TTG | Shanghai | 2017 | 12 | 20 | T51RUQ |
Rome | 2016 | 08 | 04 | T323TQM | Tokyo | 2017 | 02 | 07 | T54SUE-SVE |
Rome | 2017 | 01 | 01 | T33TTG | Tokyo | 2017 | 05 | 08 | T54SUE-SVE |
Rome | 2017 | 04 | 02 | T33TTG | Tokyo | 2017 | 11 | 29 | T54SUE-SVE |
Istanbul | 2016 | 02 | 08 | T35TPF | New York | 2015 | 09 | 24 | T18TWL |
Istanbul | 2016 | 04 | 18 | T35TPF | New York | 2016 | 03 | 12 | T18TWL |
Istanbul | 2017 | 05 | 03 | T35TPF | New York | 2016 | 10 | 18 | T18TWL |
Istanbul | 2017 | 07 | 12 | T35TPF | Rio de Janeiro | 2017 | 03 | 10 | T23KPQ |
Istanbul | 2017 | 09 | 10 | T35TPF | Rio de Janeiro | 2017 | 06 | 18 | T23KPQ |
Cairo | 2015 | 09 | 02 | T36RUU | Rio de Janeiro | 2017 | 09 | 06 | T23KPQ |
Cairo | 2016 | 03 | 10 | T36RUU | Santiago | 2016 | 03 | 05 | T19HCC-HCD |
Cairo | 2016 | 04 | 19 | T36RUU | Santiago | 2016 | 08 | 02 | T19HCC-HCD |
Delhi | 2016 | 02 | 05 | T43RFM-RGM | Santiago | 2016 | 12 | 20 | T19HCC-HCD |
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Small, C. Multisensor Characterization of Urban Morphology and Network Structure. Remote Sens. 2019, 11, 2162. https://doi.org/10.3390/rs11182162
Small C. Multisensor Characterization of Urban Morphology and Network Structure. Remote Sensing. 2019; 11(18):2162. https://doi.org/10.3390/rs11182162
Chicago/Turabian StyleSmall, Christopher. 2019. "Multisensor Characterization of Urban Morphology and Network Structure" Remote Sensing 11, no. 18: 2162. https://doi.org/10.3390/rs11182162
APA StyleSmall, C. (2019). Multisensor Characterization of Urban Morphology and Network Structure. Remote Sensing, 11(18), 2162. https://doi.org/10.3390/rs11182162