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| 번호 | 참고문헌 | 국회도서관 소장유무 |
|---|---|---|
| 1 | H. Liang, M. Zhang & H. Wang. (2019). A neural network model for wildfire scale prediction using meteorological factors. IEEE Access, 7, 176746-176755. DOI : 10.1109/ACCESS.2019. 2957837 | 미소장 |
| 2 | J. Zhang, H. Zhu, P. Wang & X. Ling. (2021). ATT squeeze U-Net: A lightweight network for forest fire detection and recognition. IEEE Access, 9, 10858-10870. DOI : 10.1109/ACCESS.2021.3050628 | 미소장 |
| 3 | M. L. Mann, E. Batllori, M. A. Moritz, E. K. Waller, P. Berck, A. L. Flint, L. E. Flint & E. Dolfi. (2016). Incorporating anthropogenic influences into fire probability models: Effects of human activity and climate change on fire activity in California. PLOS One, 11(4), 1-21. DOI : 10.1371/journal.pone.0153589 | 미소장 |
| 4 | V. H. Dale. et. al. (2001). Climate change and forest disturbances: Climate change can affect forests by altering the frequency, intensity, duration, and timing of fire, drought, introduced species, insect and pathogen outbreaks, hurricanes, windstorms, ice storms, or landslides. BioScience, 51(9), 723-734. DOI :10.1641/0006-3568(2001)051[0723:CCAFD]2.0.CO;2 | 미소장 |
| 5 | K. Bonsor. (2001). How wildfires work. HowStuffWorks.com, https://science.howstuffworks.co m/nature/natural-disasters/wildfire.htm | 미소장 |
| 6 | J. Toledo-Castro, P. Caballero-Gil, N. Rodríguez-Pérez, I. Santos-González, C. Hernández-Goya & R. Aguasca-Colomo. (2018). Forest Fire prevention, detection, and fighting based on fuzzy logic and wireless sensor networks. Complexity, 2018, 1-17. DOI : 10.1155/2018/1639715 | 미소장 |
| 7 | Y. Yu, S. Moon, S. Sim & S. Park. (2020). Recognition of license plate number for web camera input using deep learning technique. Journal of Next-generation Convergence Technology Association, 4(6), 565-572. DOI :10.33097/JNCTA.2020.04.04.354 | 미소장 |
| 8 | D. Song, D. Jeon, T. Ha, H. Lee & K. Kim. (2022). Comparison of Korean facial expression classification performance between deep learning based image filters. Journal of Next-generation Convergence Technology Association, 6(5), 767-774. DOI : 10.33097/JNCTA.2020.04.04.354 | 미소장 |
| 9 | P. D. Pickell, R. D. Chavardes, S. Li & L. D. Daniels. (2021). FuelNet: An artificial neural network for learning and updating fuel types for fire research. IEEE Transactions on Geoscience and Remote Sensing, 59(9), 7338-7352. DOI : 10.1109/TGRS.2020.3037160 | 미소장 |
| 10 | S. Masoumi, T. C. Baum, A. Ebrahimi, W. S. T. Rowe & K. Ghorbani. (2021). Reflection measurement of fire over microwave band:A promising active method for forest fire detection. IEEE Sensors Journal, 21(3), 2891-2898. DOI: 10.1109/JSEN.2020.3025593 | 미소장 |
| 11 | H. S. Lim. (2021). 2020 forestry statistics. Korea Forest Service. https://www.forest.go.kr/ | 미소장 |
| 12 | C. A. Graff, S. R. Coffield, Y. Chen, E. Foufoula-Georgiou, J. T. Randerson & P. Smyth. (2020). Forecasting daily wildfire activity using poisson regression. IEEE Transactions on Geoscience and Remote Sensing, 58(7), 4837-4851. DOI : 10.1109/TGRS.2020.2968029. | 미소장 |
| 13 | R. Nair & S. Gupta. (2017). Wildfire:Approximate synchronization of parameters in distributed deep learning. IBM Journal of Research and Development, 61(4/5), 7:1-7:9. DOI : 10.1147/JRD.2017.2709198. | 미소장 |
| 14 | P. Moore, J. Hardesty, S. Kelleher, S. Maginnis & R. Myers. (2003). Forests and wildfires:Fixing the future by avoiding the past. World Forestry Congress. http://www.fao.org/3/xii/0829-b3.htm | 미소장 |
| 15 | K. Doyle, B. Deacon & S. Locke. (2017). New fire danger rating system set to be trialled this summer to cope with new extremes. ABC News, https://www.abc.net.au | 미소장 |
| 16 | Canadian National Fire Database. National burned area composite. https://cwfis.cfs.nrca n.gc.ca | 미소장 |
| 17 | R. Skakun, E. Whitman, J. M. Little & M. Parisien. (2021). Area burned adjustments to historical wildland fires in Canada. Environmental Research Letters, 16(6), 1-12. DOI : 10.1088/1748-9326/abfb2c | 미소장 |
| 18 | pandas, https://pandas.pydata.org/ | 미소장 |
| 19 | scikit-learn, https://scikit-learn.org/ | 미소장 |
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