Validating the Remotely Sensed Geography of Crime: A Review of Emerging Issues
Abstract
:1. Introduction
2. Remotely Sensing Crime
2.1. Remote Sensing of Illicit Drug Production
2.2. Remote Sensing of Smuggling and Extra-Legal Migration
Drug | Years Data Collected | Countries | Sensors Used | Image Data | Calibration Methods | Accuracy Assessment Methods | No Accuracy Assessment Due to Security Issues | Incomplete Accuracy Assessment Due to Security Issues | No Discussion of Accuracy | Total No. of Studies | Citations |
---|---|---|---|---|---|---|---|---|---|---|---|
Opium | 1993, 1995, 1999–2009 2011–2013 | Afghanistan; Laos (Lao PDR); Myanmar; Thailand | MODIS; ALOS; ASTER; Landsat TM; Landsat 5; Landsat 7; Landsat 7TM; Landsat 7ETM; IKONOS; EO-1 Hyperion; SPOT5; Squirrel Helicopter photographs/video; QuickBird; GeoEye; WorldView 2; Ultracam D Digital Camera | High-resolution multispectral images; multi-spectral bands; 4MS band and 4 + 1 (MS + panchromatic bands); band combination 432; true and false color combinations | Fieldwork; land cover maps; high resolution images; phenological charts; crop spectral signature; pre-/post-harvest images; individual expertise; aerial photographs; soil map; independent classifications of Landsat images done and compared; comparison with helicopter images; village surveys | Ground verification; retrospective data and previous surveys to check methods; ground photography; classification checked by experts | 5 | 6 | 15 | 37 | [32,33,34,35,36,37,38,39,40,41,42,43,44,45,46,47,48,49,50,51,52,53,54,55,56,57,58] |
Coca | 2003–2008, 2011–2012 | Bolivia, Colombia, Peru | Landsat 5; Landsat 7ETM+; SPOT 4; SPOT 5; ALOS; IKONOS; GeoEye; ASTER; IRS6-LISS III; AIC Digital Camera | RGB (4, 5, 3); RGB (5, 4, 3); RGB (4, 3, 7); RGB (7,3,2); RGB (4, 3, 2); RGB (1, 2, 4); multi-spectral; pan chromatic; near-infrared and mid-infrared | Spectral characteristics; field verification; historical flight plans of coca eradication airplanes; overflights, ground information from police; higher resolution; image comparison; expertise; comparison with previous years’ images; land use maps; paper maps; texture, shape, size of plots | Ground verification; retrospective data and previous surveys; overflights; comparison with aerial photography | 1 | 5 | 4 | 17 | [59,60,61,62,63,64,65,66,67,68,69,70,71,72,73] |
Cannabis | 2010–2012 | Afghanistan | GeoEye; QuickBird | Very high resolution | Ground-truth observations, spectral signatures, overflights, NDVI time series using Landsat 5 and 7 helped produce vegetation indexes | Not described | 2 | 0 | 2 | 4 | [74,75,76,77] |
3. Accuracy Assessments of Remotely Sensed Crime
4. Google Earth, Crime Detection and Questions of Accuracy
5. New Possibilities for Validating the Geography of Crime
6. Concluding Remarks
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Kelly, A.B.; Kelly, N.M. Validating the Remotely Sensed Geography of Crime: A Review of Emerging Issues. Remote Sens. 2014, 6, 12723-12751. https://doi.org/10.3390/rs61212723
Kelly AB, Kelly NM. Validating the Remotely Sensed Geography of Crime: A Review of Emerging Issues. Remote Sensing. 2014; 6(12):12723-12751. https://doi.org/10.3390/rs61212723
Chicago/Turabian StyleKelly, Alice B., and Nina Maggi Kelly. 2014. "Validating the Remotely Sensed Geography of Crime: A Review of Emerging Issues" Remote Sensing 6, no. 12: 12723-12751. https://doi.org/10.3390/rs61212723
APA StyleKelly, A. B., & Kelly, N. M. (2014). Validating the Remotely Sensed Geography of Crime: A Review of Emerging Issues. Remote Sensing, 6(12), 12723-12751. https://doi.org/10.3390/rs61212723