top of page

PUBLICATIONS

Scientific Publications

[17] (Under review) Cawse-Nicholson, K., Borbas, E. E., Czyz, E. A., Grant, Grant, K. T., Hatch, B., Hully, G., Juang, C., Loveless, M., Stork, N., and Hook, S. A quarter-century record of hourly Land Surface Temperature over the United States: long term trends.

​

[16] (Accepted) Juang, C.S., Williams, A. P., & Seager, R. (2026). Juang, C. S., Williams, A.P., and Seager, R. (2026). Contribution of La-Niña-like Pacific Ocean trend in sea-surface temperatures to western United States wildfire area, 1984-2022. Earth’s Future. https://doi.org/10.1029/2025EF006820

​

[15]  Jacobson, T. W. P., Seager, R., Clarke, H., Cook, B. I., and Juang, C. S. (2026). Opposing contributions of the tropical Pacific to recent burned forest area trends in Eastern Australia and the Southwestern United States. Environmental Research Letters, 21, 094032. https://doi.org/10.1088/1748-9326/ae6791

​

[14] Madakumbura, G. M., Williams, A. P., Short, K. C., Moritz, M. A., Wang, B., and Juang, C. S. (2026). Evolving Fire Frequency in the Western United States and Its Links to Human Influence. Earth's Future, 14, e2025EF007077, https://doi.org/10.1029/2025EF007077.

​

[13] Williams, A. P., Hansen, W. D., Juang, C. S., Abatzoglou, J. T., Radeloff, V. C., Wang, B., Hall, J., Buch, J., and Madakumbura, G. D. (2026). The Western United States Large Forest-Fire Stochastic Simulator (WULFFSS) 1.0: A monthly gridded forest-fire model using interpretable statistics. Geoscientific Model Development, 19, 1157–1191, https://doi.org/10.5194/gmd-19-1157-2026.

​

[12] Williams, A.P., Juang, C. S., and Short, K. C. (2025). The Western United States MTBS-Interagency database of large wildfires, 1984–2024 (WUMI2024a). Earth System Science Data, 17, 7359-7372. https://doi.org/10.5194/essd-17-7359-2025.

​

[11] He, Q., Williams, A. P., Johnston, M. R., Juang, C. S., and Wang, B. (2025). Influence of Time-Averaging of Climate Data on Estimates of Atmospheric Vapor Pressure Deficit and Inferred Relationships With Wildfire Area in the Western United States. Geophysical Research Letters, 52, e2024GL113708. https://doi.org/10.1029/2024GL113708.

​

[10] Buch, J., Williams, A. P., Juang, C. S., Hansen, W. D., and Gentine, P. (2023). SMLFire1. 0: a stochastic machine learning (SML) model for wildfire activity in the western United States. Geoscientific Model Development, 16, 3407-3433. https://doi.org/10.5194/gmd-16-3407-2023. 

​

[9] Juang, C. S., Williams, A. P., Abatzoglou, J. T., Balch, J. K., Hurteau, M. D., and Moritz, M. A. Rapid Growth of Large Forest Fires Drives the Exponential Response of Annual Forest‐Fire Area to Aridity in the Western United States. Geophysical Research Letters, 49 (5), e2021GL097131. https://doi.org/10.1029/2021GL097131. (Project page)

​

[8] Williams, A. P., Livneh, B., McKinnon, K. A., Hansen, W. D., Mankin, J. S., Cook, B. I., ... Juang, C.S., and Lettenmaier, D. P. (2022). Growing impact of wildfire on western US water supply. Proceedings of the National Academy of Sciences, 119(10), e2114069119. https://doi.org/10.1073/pnas.2114069119.

​

[7] Abatzoglou, J.T., Juang, C.S., Williams, A.P., Kolden, and Westerling, A.L. (2021). Increased synchronous fire danger in forests of the western United States. Geophysical Research Letters, 48, e2020GL091377. https://doi.org/10.1029/2020GL091377.

​

[6] Juang, C.S., Stanley, T.A. and Kirschbaum, D.B. (2019). Using citizen science to expand the global map of landslides: Introducing the Cooperative Open Online Landslide Repository (COOLR). PLoS ONE, 14, e0218657. https://doi.org/10.1371/journal.pone.0218657. (Project page)

​

[5] Juang, C., Stanley, T. and Kirschbaum, D. (2018). Cooperative Open Online Landslide Repository (COOLR) to Enhance Disaster Research and Prediction. [IAC-18,B1,6-GTS.1,3,x47268]. Conference paper presented at the 69th International Astronautical Congress 2018. Bremen, Germany. 1-5 October.

​

[4] Juang, C. (2017). A Model of 25 Years of Carbon Exchange and its Factors in the Harvard Forest. (Honors Senior Thesis). Harvard University, Cambridge, MA. (Project page)

​

[3] Yu, C. C., Qiu, W., Juang, C. S., Mansukhani, M. M., Halmos, B., and Su, G. H. (2017). Mutant allele specific imbalance in oncogenes with copy number alterations: occurrence, mechanisms, and potential clinical implications. Cancer letters, 384, 86-93. https://doi.org/10.1016/j.canlet.2016.10.013

​

[2] National Academies of Sciences, Engineering, and Medicine (2017). Assessment of the National Space Foundation’s 2015 Geospace Portfolio Review. Washington, DC: The National Academies Press. https://doi.org/10.17226/24666.

​

[1] National Academies of Sciences, Engineering, and Medicine (2016). Extending Missions: NASA’s Space Science Mission Extensions and the Senior Review Process. Washington, DC: The National Academies Press. https://doi.org/10.17226/23624.

Major Industry Publications

[2] Working Group 4 on Space Safety and Security (2019). Space Generation Congress 2018 Report: Summary and Recommendations. C. Juang (Rapporteur). Bremen, Germany. 74-91. https://drive.google.com/file/d/1q22fUkSgqoRott3bZmNA-QorWQnrisw-/view.

​

[1] Bok, C.B., Comeau, A., Dolgopolov, A., Halt, T., Juang, C., & Smith, P. (2017). Smallsats by the Numbers 2018, Alexandria, VA: Bryce Space and Technology. (Project page)

 

bottom of page