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    • Geospatial-Information Science and Remote Sensing
    • Human Dimensions of Global Change - Coupled Human and Natural Systems
    • Land Cover - Land Use Change
    • Carbon, Vegetation Dynamics and Landscape-Scale Processes
  • GIS
    • Center for Geospatial Information Science
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    • Faculty: A Historic Look
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Publications related to Geospatial-Information Science and Remote Sensing

Fjallsárlón, SE Iceland - May 2018
  • Xu, S., Wang, D., Liang, S., Jia, A., Li, R., Wang, Z., & Liu, Y. (2024). A novel approach to estimate land surface temperature from landsat top-of-atmosphere reflective and emissive data using transfer-learning neural network. Science of The Total Environment, 176783.
  • Jia, A., Liang, S., Wang, D., Mallick, K., Zhou, S., Hu, T., & Xu, S. (2024). Advances in Methodology and Generation of All-Weather Land Surface Temperature Products From Polar-Orbiting and Geostationary Satellites: A comprehensive review. IEEE Geoscience and Remote Sensing Magazine.
  • Hall, J. V., Argueta, F., & Giglio, L. (2024). GloCAB Cropland Field Boundary Dataset. Data in Brief, 110739
  • Xu, H., E. Ragno, S. N. Jonkman, J. Wang, J. D. Bricker, Z. Tian, L. Sun. 2024. “Combining statistical and hydrodynamic models to assess compound flood hazards from rainfall and storm surge: a case study of Shanghai.” Hydrology and Earth System Sciences(2022 IF: 6.3). Vol. 28, issue 16, pp. 3919–3930. https://doi.org/10.5194/hess-28-3919-2024. Combining statistical and hydrodynamic models to assess compound flood hazards from rainfall and storm surge A case study of Shanghai_Hess-28-3919-2024.pdf5.49 MB
  • Zubkova, M.; Lotter, M.; Bronkhorst, F.; Giglio, L. 2024. Assessment of the Effectiveness of Coarse Resolution Fire Products in Monitoring Long-term Changes in Fire Regime in Protected Areas in South Africa. International Journal of Applied EarthObservation and Geoinformation, 132. https://doi.org/10.1016/j.jag.2024.104064 Assessment of the effectiveness of coarse resolution fire products in monitoring long-term changes in fire regime within protected areas in South Africa.pdf4.4 MB
  • Sandler, Austin and Laixiang Sun. 2024. “The Socio-Environmental Determinants of Childhood Malnutrition: A Spatial and Hierarchical Analysis.” Nutrients (2022 IF: 5.719) 16, article no. 2014. https://doi.org/10.3390/nu16132014. The Socio-Environmental Determinants of Childhood Malnutrition A Spatial and Hierarchical Analysis__Nutrients-16-02014.pdf2.82 MB
  • Wang, Y, K Feng, L Sun, Y Xie, X-P Song. 2024. Satellite-based soybean yield prediction in Argentina: a comparison between panel regression and deep learning methods. Computers and Electronics in Agriculture (2022 IF = 8.3). 221, article no. 108978.https://doi.org/10.1016/j.compag.2024.108978.
  • Vadrevu, K. and Eaturu, A., 2024. Trends in Nighttime Fires in South/Southeast Asian Countries. Atmosphere, 15(1), p.85.
  • Hall, J. V., Argueta, F., Zubkova, M., Chen, Y., Randerson, J. T., & Giglio, L. (2024). GloCAB: global cropland burned area from mid-2002 to 2020. Earth System Science Data, 16(2), 867-885. essd-16-867-2024.pdf6.58 MB
  • Vadrevu, K., Gutman, G., Tsuneo, M. and Justice, C., 2024. Land use changes, degradation, and impact on ecosystem services in Asia and Southeast Asia. Land Degradation & Development. 2024;35:919–922. https://doi.org/10.1002/ldr.4971
  • Qadir, A., Skakun, S., Eun, J., Prashnani, M., Shumilo, L. (2023). Sentinel-1 time series data for sunflower (Helianthus annuus) phenology monitoring. Remote Sensing of Environment, 295, art. num. 113689.
  • Tanaka, T., L. Sun*, I. Becker-Reshef, X.-P. Song, E. Puricelli. 2023. Satellite forecasting of crop harvest can trigger a cross-hemispheric production response and improve global food security. Communications Earth & Environment (2022 IF: 7.9). Vol. 4, article no. 334. https://doi.org/10.1038/s43247-023-00992-2 Satellite forecasting of crop harvest can trigger a cross-hemispheric production response_CommEarth&Env2023.pdf494.66 KB
  • Xu, S., Wang, D., Liang, S., Liu, Y., & Jia, A. (2023). Assessing the reliability of the MODIS LST product to detect temporal variability. IEEE Geoscience and Remote Sensing Letters.
  • Duncan, E. C., Skakun, S., Kariryaa, A., & Prishchepov, A. V. (2023). Detection and mapping of artillery craters with very high spatial resolution satellite imagery and deep learning. Science of Remote Sensing, 7, art. num. 100092.
  • Hall, J.V., Schroeder, W., Rishmawi, K., Wooster, M., Schmidt, C.C., Huang, C., Csiszar, I. and Giglio, L., 2023. Geostationary active fire products validation: GOES-17 ABI, GOES-16 ABI, and Himawari AHI. International Journal of Remote Sensing, 44(10), pp.3174-3193. Geostationary active fire products validation GOES 17 ABI GOES 16 ABI and Himawari AHI.pdf8.17 MB
  • Xu, S., Wang, D., Liang, S., Liu, Y., & Jia, A. (2023). Assessment of gridded datasets of various near surface temperature variables over Heihe River Basin: Uncertainties, spatial heterogeneity and clear-sky bias. International Journal of Applied Earth Observation and Geoinformation, 120, 103347.
  • Vadrevu, K.P., Ohara, T. and Justice, C. eds., 2023. Vegetation Fires and Pollution in Asia. Book Publication. Springer Nature.
  • Xin, Yu, Laixiang Sun*, Matthew Hansen. 2023. Land-cover and land-use change trajectory hopping facilitates estate-crop expansion into protected forests in Indonesia. Conservation Letters (2022 IF: 8.5). 16 (4), article no. e12957.https://doi.org/10.1111/conl.12957 Land‐cover and land‐use change trajectory hopping facilitates estate‐crop expansion_ConservationLetters2023.pdf1.57 MB
  • Zhang, P., Stewart, K., & Li, Y. (2023). Estimating traffic speed and speeding using passively collected big mobility data and a distributed computing framework. Transactions in GIS, 00, 1– 21. https://doi.org/10.1111/tgis.13061
  • Mullen, A. L., Watts, J. D., Rogers, B. M., Carroll, M. L., Elder, C. D., Noomah, J., ... & Kyzivat, E. D. (2023). Using High‐Resolution Satellite Imagery and Deep Learning to Track Dynamic Seasonality in Small Water Bodies.Geophysical Research Letters, 50(7), e2022GL102327.
  • Dai Y. et al. Coastal phytoplankton blooms expand and intensify in the 21st century. Nature 615, 280–284 (2023). https://doi.org/10.1038/s41586-023-05760-y Dai-etal-nature-2023.pdf11.65 MB
  • Meng, Z. et al. Post-2020 biodiversity framework challenged by cropland expansion in protected areas. Nat Sustain (2023). https://doi.org/10.1038/s41893-023-01093-w
  • Meredith L. Gore, Rowan Hilend, Jonathan O. Prell, Emily Griffin, John R. Macdonald, Burcu B. Keskin, Aaron Ferber & Bistra Dilkina (2023) A data directory to facilitate investigations on worldwide wildlife trafficking, Big Earth Data, DOI: 10.1080/209644 A data directory to facilitate investigations on worldwide wildlife trafficking.pdf2.43 MB
  • Nakalembe, Catherine, and Hannah R. Kerner. "Considerations for AI-EO for agriculture in Sub-Saharan Africa." Environmental Research Letters (2023). Nakalembe_2023_Environ._Res._Lett._18_041002.pdf1.73 MB
  • Tucker, C., Brandt, M., Hiernaux, P. et al. Sub-continental-scale carbon stocks of individual trees in African drylands. Nature 615, 80–86 (2023). https://doi.org/10.1038/s41586-022-05653-6

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