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Articles

A comparison of NDVI intercalibration methods

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Pages 5273-5290 | Received 24 Dec 2016, Accepted 22 May 2017, Published online: 11 Jun 2017

References

  • Anderson, J. H. , K. T. Weber , B. Gokhale , and F. Chen . 2011. “Intercalibration and Evaluation of Resourcesat-1 and Landsat-5 NDVI.” Canadian Journal of Remote Sensing 37 (2): 213–219. doi:10.5589/m11-032.
  • Beck, R. 2003. “EO-1 User Guide v. 2.3.” University of Cincinnati, Ohio. Accessed 6 June 2017. https://eo1.usgs.gov/documents/hyperion.
  • Brown, M. E. , J. E. Pinzón , K. Didan , J. T. Morisette , and C. J. Tucker . 2006. “Evaluation of the Consistency of Long-Term NDVI Time Series Derived from AVHRR, SPOT-Vegetation, Seawifs, MODIS, and Landsat ETM+ Sensors.” IEEE Transactions on Geoscience and Remote Sensing 44 (7): 1787–1793. doi:10.1109/TGRS.2005.860205.
  • Carlson, T. N. , and D. A. Ripley . 1997. “On the Relation between NDVI, Fractional Vegetation Cover, and Leaf Area Index.” Remote Sensing of Environment 62 (3): 241–252. doi:10.1016/S0034-4257(97)00104-1.
  • Chander, G. , B. L. Markham , and D. L. Helder . 2009. “Summary Of Current Radiometric Calibration Coefficients For Landsat Mss, Tm, Etm+, And Eo-1 Ali Sensors.” Remote Sensing Of Environment 113 (5): 893-903. doi: 10.1016/j.rse.2009.01.007.
  • Chen, J. M. 1999. “Spatial Scaling of a Remotely Sensed Surface Parameter by Contexture.” Remote Sensing of Environment 69 (1): 30–42. doi:10.1016/S0034-4257(99)00006-1.
  • D’Odorico, P. , A. Gonsamo , A. Damm , and M. E. Schaepman . 2013. “Experimental Evaluation of Sentinel-2 Spectral Response Functions for NDVI Time-Series Continuity.” IEEE Transactions on Geoscience and Remote Sensing 51 (3): 1336–1348. doi:10.1109/TGRS.2012.2235447.
  • Fan, X. , and Y. Liu . 2014. “Quantifying the Relationship between Intersensor Images in Solar Reflective Bands: Implications for Intercalibration.” IEEE Transactions on Geoscience and Remote Sensing 52 (12): 7727–7737. doi:10.1109/TGRS.2014.2317751.
  • Fan, X. , and Y. Liu . 2016. “A Global Study of NDVI Difference among Moderate-Resolution Satellite Sensors.” ISPRS Journal of Photogrammetry and Remote Sensing 121: 177–191. doi:10.1016/j.isprsjprs.2016.09.008.
  • Fan, X. , and Y. Liu . 2017. “A Generalized Model for Inter-Sensor NDVI Calibration and Its Comparison with Regression Approaches.” IEEE Transactions on Geoscience and Remote Sensing 55 (3): 1842–1852. doi:10.1109/TGRS.2016.2635802.
  • Franke, J. , V. Heinzel , and G. Menz . 2006. “Assessment of NDVI-Differences Caused by Sensor Specific Relative Spectral Response Functions.” In IEEE International Conference on Geoscience and Remote Sensing Symposium , 1138–1141. Dever, CO: IEEE.
  • Gao, B. C. 2000. “A Practical Method for Simulating AVHRR-Consistent NDVI Data Series Using Narrow MODIS Channels in the 0.5-1.0 μm Spectral Range.” IEEE Transactions on Geoscience and Remote Sensing 38 (4): 1969–1975. doi:10.1109/36.851778.
  • Gitelson, A. A. , and Y. J. Kaufman . 1998. “MODIS NDVI Optimization to Fit the AVHRR Data Series—Spectral Considerations.” Remote Sensing of Environment 66 (3): 343–350. doi:10.1016/S0034-4257(98)00065-0.
  • Gonsamo, A. , and J. M. Chen . 2013. “Spectral Response Function Comparability among 21 Satellite Sensors for Vegetation Monitoring.” IEEE Transactions on Geoscience and Remote Sensing 51 (3): 1319–1335. doi:10.1109/TGRS.2012.2198828.
  • Günther, K. P. , and S. W. Maier . 2007. “AVHRR Compatible Vegetation Index Derived from MERIS Data.” International Journal of Remote Sensing 28 (3–4): 693–708. doi:10.1080/01431160600815541.
  • Huang, W. , J. Huang , X. Wang , F. Wang , and J. Shi . 2013. “Comparability of Red/Near-Infrared Reflectance and NDVI Based on the Spectral Response Function between MODIS and 30 Other Satellite Sensors Using Rice Canopy Spectra.” Sensors 13 (12): 16023–16050. doi:10.3390/s131216023.
  • Kim, Y. , A. R. Huete , T. Miura , and Z. Jiang . 2010. “Spectral Compatibility of Vegetation Indices across Sensors: Band Decomposition Analysis with Hyperion Data.” Journal of Applied Remote Sensing 4 (1): 043520–043520. doi:10.1117/1.3400635.
  • Li, P. , L. Jiang , and Z. Feng . 2013. “Cross-Comparison of Vegetation Indices Derived from Landsat-7 Enhanced Thematic Mapper Plus (ETM+) and Landsat-8 Operational Land Imager (OLI) Sensors.” Remote Sensing 6 (1): 310–329. doi:10.3390/rs6010310.
  • Mao, D. , Z. Wang , L. Luo , and C. Ren . 2012. “Integrating AVHRR and MODIS Data to Monitor NDVI Changes and Their Relationships with Climatic Parameters in Northeast China.” International Journal of Applied Earth Observation and Geoinformation 18: 528–536. doi:10.1016/j.jag.2011.10.007.
  • Martínez-Beltrán, C. , M. O. Jochum , A. Calera , and J. Melia . 2009. “Multisensor Comparison of NDVI for a Semi-Arid Environment in Spain.” International Journal of Remote Sensing 30 (5): 1355–1384. doi:10.1080/01431160802509025.
  • Miura, T. , H. Yoshioka , K. Fujiwara , and H. Yamamoto . 2008. “Inter-Comparison of ASTER and MODIS Surface Reflectance and Vegetation Index Products for Synergistic Applications to Natural Resource Monitoring.” Sensors 8 (4): 2480–2499. doi:10.3390/s8042480.
  • Miura, T. , H. Yoshioka , and T. Suzuki . 2008. “Evaluation of Spectral Vegetation Index Translation Equations for the Development of Long-Term Data Records.” In IEEE International Conference on Geoscience and Remote Sensing Symposium , III–712. Vol. 3. Boston, MA: IEEE.
  • Myneni, R. B. , and D. L. Williams . 1994. “On the Relationship between FAPAR and NDVI.” Remote Sensing of Environment 49 (3): 200–211. doi:10.1016/0034-4257(94)90016-7.
  • Nagol, J. R. , E. F. Vermote , and S. D. Prince . 2009. “Effects of Atmospheric Variation on AVHRR NDVI Data.” Remote Sensing of Environment 113 (2): 392–397. doi:10.1016/j.rse.2008.10.007.
  • Obata, K. , T. Wada , T. Miura , and H. Yoshioka . 2012. “Scaling Effect of Area-Averaged NDVI: Monotonicity along the Spatial Resolution.” Remote Sensing 4 (12): 160–179. doi:10.3390/rs4010160.
  • Pahlevan, N. , S. Sarkar , S. Devadiga , R. E. Wolfe , M. Román , E. Vermote , G. Lin , and X. Xiong . 2016. “Impact of Spatial Sampling on Continuity of MODIS–VIIRS Land Surface Reflectance Products: A Simulation Approach.” IEEE Transactions on Geoscience and Remote Sensing 55 (1): 183–196. doi:10.1109/TGRS.2016.2604214.
  • Röder, A. , T. Kuemmerle , and J. Hill . 2005. “Extension of Retrospective Datasets Using Multiple Sensors. an Approach to Radiometric Intercalibration of Landsat TM and MSS Data.” Remote Sensing of Environment 95 (2): 195–210. doi:10.1016/j.rse.2004.12.008.
  • Steven, M. D. , T. J. Malthus , F. Baret , H. Xu , and M. J. Chopping . 2003. “Intercalibration of Vegetation Indices from Different Sensor Systems.” Remote Sensing of Environment 88 (4): 412–422. doi:10.1016/j.rse.2003.08.010.
  • Taniguchi, K. , K. Obata , and H. Yoshioka . 2012. “Investigation of Inter-Sensor NDVI Relationships Based on Analytical Representation of Soil Isolines.” In IEEE International Conference on Geoscience and Remote Sensing Symposium , 4891–4894. Munich, Germany: IEEE.
  • Teillet, P. M. , J. L. Barker , B. L. Markham , R. R. Irish , G. Fedosejevs , and J. C. Storey . 2001. “Radiometric Cross-Calibration of the Landsat-7 ETM+ and Landsat-5 TM Sensors Based on Tandem Data Sets.” Remote Sensing of Environment 78 (1–2): 39–54. doi:10.1016/S0034-4257(01)00248-6.
  • Teillet, P. M. , K. Staenz , and D. J. William . 1997. “Effects of Spectral, Spatial, and Radiometric Characteristics on Remote Sensing Vegetation Indices of Forested Regions.” Remote Sensing of Environment 61 (1): 139–149. doi:10.1016/S0034-4257(96)00248-9.
  • Thenkabail, P. S. 2004. “Inter-Sensor Relationships between IKONOS and Landsat-7 ETM+ NDVI Data in Three Ecoregions of Africa.” International Journal of Remote Sensing 25 (2): 389–408. doi:10.1080/0143116031000114842.
  • Tian, F. , R. Fensholt , J. Verbesselt , K. Grogan , S. Horion , and Y. Wang . 2015. “Evaluating Temporal Consistency of Long-Term Global NDVI Datasets for Trend Analysis.” Remote Sensing of Environment 163: 326–340. doi:10.1016/j.rse.2015.03.031.
  • Trishchenko, A. P. 2009. “Effects of Spectral Response Function on Surface Reflectance and NDVI Measured with Moderate Resolution Satellite Sensors: Extension to AVHRR NOAA-17, 18 and METOP-A.” Remote Sensing of Environment 113 (2): 335–341. doi:10.1016/j.rse.2008.10.002.
  • Trishchenko, A. P. , J. Cihlar , and Z. Li . 2002. “Effects of Spectral Response Function on Surface Reflectance and NDVI Measured with Moderate Resolution Satellite Sensors.” Remote Sensing of Environment 81 (1): 1–18. doi:10.1016/S0034-4257(01)00328-5.
  • van der Werff, H. , and F. van der Meer . 2016. “Sentinel-2a MSI and Landsat 8 OLI Provide Data Continuity for Geological Remote Sensing.” Remote Sensing 8 (11): 883. doi:10.3390/rs8110883.
  • van Leeuwen, W. J. , B. J. Orr , S. E. Marsh , and S. M. Herrmann . 2006. “Multi-Sensor NDVI Data Continuity: Uncertainties and Implications for Vegetation Monitoring Applications.” Remote Sensing of Environment 100 (1): 67–81. doi:10.1016/j.rse.2005.10.002.
  • Vrieling, A. , M. Meroni , A. Shee , A. G. Mude , J. Woodard , C. K. de Bie , and F. Rembold . 2014. “Historical Extension of Operational NDVI Products for Livestock Insurance in Kenya.” International Journal of Applied Earth Observation and Geoinformation 28: 238–251. doi:10.1016/j.jag.2013.12.010.
  • Yoshioka, H. , T. Miura , and A. R. Huete . 2003. “An Isoline-Based Translation Technique of Spectral Vegetation Index Using EO-1 Hyperion Data.” IEEE Transactions on Geoscience and Remote Sensing 41 (6): 1363–1372. doi:10.1109/TGRS.2003.813212.
  • Yoshioka, H. , T. Miura , and H. Yamamoto . 2005. “Analytical Relationships of Inter-Sensor Vegetation Indices Based on the Theory of Vegetation Isoline.” In IEEE International Conference on Geoscience and Remote Sensing Symposium , 4164–4167. Vol. 6. Seoul, South Korea: IEEE.
  • Yoshioka, H. , T. Miura , and K. Obata . 2012. “Derivation of Relationships between Spectral Vegetation Indices from Multiple Sensors Based on Vegetation Isolines.” Remote Sensing 4 (12): 583–597. doi:10.3390/rs4030583.

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