This work is licensed under a Creative Commons Attribution 4.0 International License.
Analysis and interpretation of forest fire data of Sikkim
Corresponding Author(s) : Kapila Sharma
Forest and Society,
Vol. 5 No. 2 (2021): NOVEMBER
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- Ajin, R. S., Loghin, A. M., Vinod, P. G., & Jacob, M. K. (2016). Forest fire risk zone mapping using RS and GIS techniques: a study in Achankovil Forest Division, Kerala, India. Journal of Earth, Environment and Health Sciences, 2(3), 109. https://doi.org/10.4103/2423-7752.199288
- Alauddin, M., Hossain, M.N., Islam, M.B., Islam, S., and Islam, M.K. (2020). Management Strategies for Sustainable Forest Biodiversity Conservation in Protected Areas of Bangladesh: A Study of Bhawal National Park, Gazipur. Grassroots Journal of Natural Resources, 3(3): 56-72. https://doi.org/10.33002/nr2581.6853.03035
- Assessment, G. F. R. (2010). Main report. Food and Agriculture Organization of the United Nations, Rome.
- Bajocco, S., Koutsias, N., & Ricotta, C. (2017). Linking fire ignitions hotspots and fuel phenology: The importance of being seasonal. Ecological Indicators, 82, 433-440. https://doi.org/10.1016/j.ecolind.2017.07.027
- Berwyn B. (2018). How Wildfires Can Affect Climate Change (and Vice Versa). Inside climate news. It's complicated: While CO2 causes long-term warming, aerosols can have both a warming and a temporary cooling effect. https://insideclimatenews.org/news/23082018/extreme-wildfires-climate-change-global-warming-air-pollution-fire-management-black-carbon-co2/
- Bidwell, T. G., Masters, R. E., Weir, J. R., & Engle, D. M. (2005). Fire effects in native plant communities.https://extension.okstate.edu/fact-sheets/fire-effects-in-native-plant-communities.html
- Cannon, S. H., Kirkham, R. M., & Parise, M. (2001). Wildfire-related debris-flow initiation processes, Storm King Mountain, Colorado. Geomorphology, 39(3-4), 171-188. https://doi.org/10.1016/S0169-555X(00)00108-2
- Das, S. K., Avasthe, R. K., Sharma, P., & Sharma, K. (2017). Rainfall characteristics pattern and distribution analysis at Tadong East Sikkim. Indian Journal of Hill Farming, 30(2), 326-330. https://epubs.icar.org.in
- Frankenberg, E., McKee, D., & Thomas, D. (2005). Health consequences of forest fires in Indonesia. Demography, 42(1), 109-129. https://doi.org/10.1353/dem.2005.0004
- FSI (1995). Forest Survey of India. The state of Forest Report. Government of India-Ministry of Environment and Forest. https://fsi.nic.in/
- FSI (2019). Forest Survey of India. The state of Forest Report. Government of India-Ministry of Environment and Forest. 233-241 pp. https://fsi.nic.in/forest-report-2019
- Ganguli-Lachungpa, U., Rahmani, A. R., & Islam, M. Z. U. (2011). Eleven priority areas for conservation: important bird areas of Sikkim. Biodiversity of Sikkim: exploring and conserving a global hotspot. Government of Sikkim, Gangtok. http://sikenvis.nic.in/writereaddata/chapter15.pdf
- Gigović, L., Jakovljević, G., Sekulović, D., & Regodić, M. (2018). GIS Multi-Criteria Analysis for Identifying and Mapping Forest Fire Hazard: Nevesinje, Bosnia, and Herzegovina. Tehničkivjesnik, 25(3), 891-897. https://doi.org/10.17559/TV-20151230211722
- Goldammer, J. G. (2001). Fire situation in Mongolia. In FRA Global forest fire assessment 1990-2000 (pp. 225-234). FAO. http://hdl.handle.net/11858/00-001M-0000-0014-92DE-8
- Gupta, A. K., & Nair, S. S. (2012). Environmental Extremes Disaster Risk Management-Addressing Climate change. National Institute of Disaster Management, New Delhi, P, 40.https://nidm.gov.in/PDF/pubs/Environmental%20Extreme.pdf
- Hoffmann, A. A., Siegert, F., &Hinrichs, A. (1999). Fire damage in East Kalimantan in 1997/98 related to land use and vegetation classes: satellite radar inventory results and proposals for further actions. IFFM/SFMP. http://cidbimena.desastres.hn/pdf/eng/doc15627/doc15627-1.pdf
- Hooker, J.D. 1854. Himalayan Journals, Vols I & II. Natraj Publishers, Dehradun, India. https://doi.org/10.5962/bhl.title.60447
- Hossain, M.N., Rokanuzzaman, M., Rahman, M. and Bodiuzzaman, M. (2015). Causes of Deforestation and Conservation of Madhupur Sal Forest in the Tangail Region. Journal of Environmental Science and Natural Resources, 6(2): 109-114. https://doi.org/10.3329/jesnr.v6i2.22105
- Joseph, S., Anitha, K., & Murthy, M. S. R. (2009). Forest fire in India: a review of the knowledge base. Journal of forest research, 14(3), 127-134.https://doi.org/10.1007/s10310-009-0116-x
- Kalantar, B., Ueda, N., Idrees, M. O., Janizadeh, S., Ahmadi, K., & Shabani, F. (2020). Forest Fire Susceptibility Prediction Based on Machine Learning Models with Resampling Algorithms on Remote Sensing Data. Remote Sensing, 12(22), 3682. https://doi.org/10.3390/rs12223682
- Kappes, M. S., Keiler, M., von Elverfeldt, K., & Glade, T. (2012). Challenges of analyzing multi-hazard risk: a review. Natural hazards, 64(2), 1925-1958. https://doi.org/10.1007/s11069-012-0294-2
- Keane, R. E., Burgan, R., & van Wagtendonk, J. (2001). Mapping wildland fuels for fire management across multiple scales: integrating remote sensing, GIS, and biophysical modeling. International Journal of Wildland Fire, 10(4), 301-319.https://doi.org/10.1071/WF01028
- Keane, R. E., Drury, S. A., Karau, E. C., Hessburg, P. F., & Reynolds, K. M. (2010). A method for mapping fire hazard and risk across multiple scales and its application in fire management. Ecological Modelling, 221(1), 2-18.https://doi.org/10.1016/j.ecolmodel.2008.10.022
- Li, Y., Zhao, J., Guo, X., Zhang, Z., Tan, G., & Yang, J. (2017). The influence of land use on the grassland fire occurrence in the Northeastern Inner Mongolia autonomous region, China. Sensors, 17(3), 437. https://doi.org/10.3390/s17030437
- Liu, X., Huey, L. G., Yokelson, R. J., Selimovic, V., Simpson, I. J., Müller, M., ...& Butterfield, Z. (2017). Airborne measurements of western US wildfire emissions: Comparison with prescribed burning and air quality implications. Journal of Geophysical Research: Atmospheres, 122(11), 6108-6129.https://doi.org/10.1002/2016JD026315
- Malik, T., Rabbani, G., & Farooq, M. (2013). Forest fire risk zonation using remote sensing and GIS technology in Kansrao Forest Range of Rajaji National Park, Uttarakhand, India. India. Inter. J. of advanced RS and GIS, 2(1), 86-95.http://technical.cloud-journals.com/index.php/IJARSG/article/view/Tech-56
- Matin, M. A., Chitale, V. S., Murthy, M. S., Uddin, K., Bajracharya, B., & Pradhan, S. (2017). Understanding forest fire patterns and risk in Nepal using remote sensing, geographic information system and historical fire data. International journal of wildland fire, 26(4), 276-286.https://doi.org/10.1071/WF16056
- Nakagoshi, Nobukazu & Nehira, K. & Takahashi, F.. (1987). The role of fire in pine forests of Japan. The Role of Fire in Ecological System. In L. Trabaud, ed., The role of fire in ecological systems, p. 91-119. The Hague. SPB Academic Publishing.
- Rahman, H., Karuppaiyan, R., Senapati, P. C., Ngachan, S. V., & Kumar, A. (2012). An analysis of past three decade weather phenomenon in the mid-hills of Sikkim and strategies for mitigating possible impact of climate change on agriculture. Climate Change in Sikkim: Patterns, Impacts and Initiatives, 1-18.
- Randerson, J. T., Chen, Y., Van Der Werf, G. R., Rogers, B. M., & Morton, D. C. (2012). Global burned area and biomass burning emissions from small fires. Journal of Geophysical Research: Biogeosciences, 117(G4). https://doi.org/10.1029/2012JG002128
- Rather, M. A., Farooq, M., Meraj, G., Dada, M. A., Sheikh, B. A., & Wani, I. A. (2018). Remote sensing and GIS-based forest fire vulnerability assessment in Dachigam National park, North-Western Himalaya. Asian Journal of Applied Sciences, 11(2), 98-114.https://doi.org/10.3923/ajaps
- Reddy, C. S., Alekhya, V. P., Saranya, K. R. L., Athira, K., Jha, C. S., Diwakar, P. G., &Dadhwal, V. K. (2017). Monitoring of fire incidences in vegetation types and Protected Areas of India: Implications on carbon emissions. Journal of Earth System Science, 126(1), 11.https://doi.org/10.1007/s12040-016-0791-x
- Saha, P. K., Bodiuzzaman, M., Uddin, M. N., Hossain, M. N., & Shanta, A. S. (2014). A Study on the management strategies of protected areas in Bangladesh for biodiversity conservation on Nijhum Dwip, Noakhali, Bangladesh. International Journal of Innovative Research and Development, 3(7), 140-148
- Saklani, P. (2008). Forest Fire Risk Zonation: A Case Study Pauri Garhwal, Uttarakhand, India. ITC.
- Sarab, S. A., Feghhi, J., & Goshtasb, H. (2014). Determining the main parameters affecting forest fire using MLP neural network (Forests of Western Iran: Izeh). International Journal of Molecular Evolution and Biodiversity, 3.https://doi.org/10.5376/ijmeb.2013.03.0004
- Satendra, & Kaushik, A. D. (2014). Forest fire disaster management. New Delhi: National Institute of Disaster Management, Ministry of Home Affairs, Government of India.
- Sharma, R. K., Sharma, N., Shrestha, D. G., Luitel, K. K., Arrawatia, M. L., & Pradhan, S. (2012). Study of forest fires in Sikkim Himalayas, India using remote sensing and GIS techniques. Climate Change in Sikkim–Patterns, Impacts and initiatives, 233-244.
- Sharma, S., Joshi, V., & Chhetri, R. K. (2014). Forest fire as a potential environmental threat in recent years in Sikkim, Eastern Himalayas, India. Climate Change and Environmental Sustainability, 2(1), 55-61.https://doi.org/10.5958/j.2320-642X.2.1.006
- Srivastava K. (2020). Most forest fires in India on account of human activity. Mongabay. Flood and drought series.https://india.mongabay.com/2020/01/most-forest-fires-in-india-on-account-of-human-activity/
- Stocks, B. J., & Kauffman, J. B. (1997). Biomass consumption and behavior of wildland fires in boreal, temperate, and tropical ecosystems: Parameters necessary to interpret historical fire regimes and future fire scenarios. In Sediment records of biomass burning and global change (pp. 169-188). Springer, Berlin, Heidelberg. https://doi.org/10.1007/978-3-642-59171-6_8
- Sundriyal, M., Sundriyal, R. C., & Sharma, E. (2004). Dietary use of wild plant resources in the Sikkim Himalaya, India. Economic Botany, 58(4), 626-638. https://doi.org/10.1663/0013-0001(2004)058[0626:DUOWPR]2.0.CO;2
- Suryabhagavan, K. V., Alemu, M., &Balakrishnan, M. (2016). GIS-based multi-criteria decision analysis for forest fire susceptibility mapping: a case study in Harenna forest, southwestern Ethiopia. Tropical Ecology, 57(1), 33-43.
- Tamang, D. K., Dhakal, D., Gurung, S., Sharma, N. P., & Shrestha, D. G. (2013). Bamboo diversity, distribution pattern and its uses in Sikkim (India) Himalaya. International Journal of Scientific and Research Publications, 3(2), 1-6.
- Tonini, M., D’Andrea, M., Biondi, G., Degli Esposti, S., Trucchia, A., & Fiorucci, P. (2020). A Machine Learning-Based Approach for Wildfire Susceptibility Mapping. The Case Study of the Liguria Region in Italy. Geosciences, 10(3), 105.https://doi.org/10.3390/geosciences10030105
- Van Der Werf, G. R., Randerson, J. T., Giglio, L., Van Leeuwen, T. T., Chen, Y., Rogers, B. M., & Yokelson, R. J. (2017). Global fire emissions estimate during 1997-2016. Earth System Science Data, 9(2), 697-720.https://doi.org/10.5194/essd-9-697-2017
- Varma, A. (2003). The economics of slash and burn: a case study of the 1997–1998 Indonesian forest fires. Ecological Economics, 46(1), 159-171.https://doi.org/10.1016/S0921-8009(03)00139-3
- Ye, T., Wang, Y., Guo, Z., & Li, Y. (2017). Factor contribution to fire occurrence, size, and burn probability in a subtropical coniferous forest in East China. PloS one, 12(2), e0172110. https://doi.org/10.1371/journal.pone.0172110
- Yong, D. L., & Peh, K. S. H. (2016). South-east Asia's forest fires: blazing the policy trail. Oryx, 50(2), 207-212.https://doi.org/10.1017/S003060531400088X
- Zorn, T., K. Nakayama & Hashiramoto, O. (2001). The forest fire situation in Japan. Int. Forest Fire News 26.
References
Ajin, R. S., Loghin, A. M., Vinod, P. G., & Jacob, M. K. (2016). Forest fire risk zone mapping using RS and GIS techniques: a study in Achankovil Forest Division, Kerala, India. Journal of Earth, Environment and Health Sciences, 2(3), 109. https://doi.org/10.4103/2423-7752.199288
Alauddin, M., Hossain, M.N., Islam, M.B., Islam, S., and Islam, M.K. (2020). Management Strategies for Sustainable Forest Biodiversity Conservation in Protected Areas of Bangladesh: A Study of Bhawal National Park, Gazipur. Grassroots Journal of Natural Resources, 3(3): 56-72. https://doi.org/10.33002/nr2581.6853.03035
Assessment, G. F. R. (2010). Main report. Food and Agriculture Organization of the United Nations, Rome.
Bajocco, S., Koutsias, N., & Ricotta, C. (2017). Linking fire ignitions hotspots and fuel phenology: The importance of being seasonal. Ecological Indicators, 82, 433-440. https://doi.org/10.1016/j.ecolind.2017.07.027
Berwyn B. (2018). How Wildfires Can Affect Climate Change (and Vice Versa). Inside climate news. It's complicated: While CO2 causes long-term warming, aerosols can have both a warming and a temporary cooling effect. https://insideclimatenews.org/news/23082018/extreme-wildfires-climate-change-global-warming-air-pollution-fire-management-black-carbon-co2/
Bidwell, T. G., Masters, R. E., Weir, J. R., & Engle, D. M. (2005). Fire effects in native plant communities.https://extension.okstate.edu/fact-sheets/fire-effects-in-native-plant-communities.html
Cannon, S. H., Kirkham, R. M., & Parise, M. (2001). Wildfire-related debris-flow initiation processes, Storm King Mountain, Colorado. Geomorphology, 39(3-4), 171-188. https://doi.org/10.1016/S0169-555X(00)00108-2
Das, S. K., Avasthe, R. K., Sharma, P., & Sharma, K. (2017). Rainfall characteristics pattern and distribution analysis at Tadong East Sikkim. Indian Journal of Hill Farming, 30(2), 326-330. https://epubs.icar.org.in
Frankenberg, E., McKee, D., & Thomas, D. (2005). Health consequences of forest fires in Indonesia. Demography, 42(1), 109-129. https://doi.org/10.1353/dem.2005.0004
FSI (1995). Forest Survey of India. The state of Forest Report. Government of India-Ministry of Environment and Forest. https://fsi.nic.in/
FSI (2019). Forest Survey of India. The state of Forest Report. Government of India-Ministry of Environment and Forest. 233-241 pp. https://fsi.nic.in/forest-report-2019
Ganguli-Lachungpa, U., Rahmani, A. R., & Islam, M. Z. U. (2011). Eleven priority areas for conservation: important bird areas of Sikkim. Biodiversity of Sikkim: exploring and conserving a global hotspot. Government of Sikkim, Gangtok. http://sikenvis.nic.in/writereaddata/chapter15.pdf
Gigović, L., Jakovljević, G., Sekulović, D., & Regodić, M. (2018). GIS Multi-Criteria Analysis for Identifying and Mapping Forest Fire Hazard: Nevesinje, Bosnia, and Herzegovina. Tehničkivjesnik, 25(3), 891-897. https://doi.org/10.17559/TV-20151230211722
Goldammer, J. G. (2001). Fire situation in Mongolia. In FRA Global forest fire assessment 1990-2000 (pp. 225-234). FAO. http://hdl.handle.net/11858/00-001M-0000-0014-92DE-8
Gupta, A. K., & Nair, S. S. (2012). Environmental Extremes Disaster Risk Management-Addressing Climate change. National Institute of Disaster Management, New Delhi, P, 40.https://nidm.gov.in/PDF/pubs/Environmental%20Extreme.pdf
Hoffmann, A. A., Siegert, F., &Hinrichs, A. (1999). Fire damage in East Kalimantan in 1997/98 related to land use and vegetation classes: satellite radar inventory results and proposals for further actions. IFFM/SFMP. http://cidbimena.desastres.hn/pdf/eng/doc15627/doc15627-1.pdf
Hooker, J.D. 1854. Himalayan Journals, Vols I & II. Natraj Publishers, Dehradun, India. https://doi.org/10.5962/bhl.title.60447
Hossain, M.N., Rokanuzzaman, M., Rahman, M. and Bodiuzzaman, M. (2015). Causes of Deforestation and Conservation of Madhupur Sal Forest in the Tangail Region. Journal of Environmental Science and Natural Resources, 6(2): 109-114. https://doi.org/10.3329/jesnr.v6i2.22105
Joseph, S., Anitha, K., & Murthy, M. S. R. (2009). Forest fire in India: a review of the knowledge base. Journal of forest research, 14(3), 127-134.https://doi.org/10.1007/s10310-009-0116-x
Kalantar, B., Ueda, N., Idrees, M. O., Janizadeh, S., Ahmadi, K., & Shabani, F. (2020). Forest Fire Susceptibility Prediction Based on Machine Learning Models with Resampling Algorithms on Remote Sensing Data. Remote Sensing, 12(22), 3682. https://doi.org/10.3390/rs12223682
Kappes, M. S., Keiler, M., von Elverfeldt, K., & Glade, T. (2012). Challenges of analyzing multi-hazard risk: a review. Natural hazards, 64(2), 1925-1958. https://doi.org/10.1007/s11069-012-0294-2
Keane, R. E., Burgan, R., & van Wagtendonk, J. (2001). Mapping wildland fuels for fire management across multiple scales: integrating remote sensing, GIS, and biophysical modeling. International Journal of Wildland Fire, 10(4), 301-319.https://doi.org/10.1071/WF01028
Keane, R. E., Drury, S. A., Karau, E. C., Hessburg, P. F., & Reynolds, K. M. (2010). A method for mapping fire hazard and risk across multiple scales and its application in fire management. Ecological Modelling, 221(1), 2-18.https://doi.org/10.1016/j.ecolmodel.2008.10.022
Li, Y., Zhao, J., Guo, X., Zhang, Z., Tan, G., & Yang, J. (2017). The influence of land use on the grassland fire occurrence in the Northeastern Inner Mongolia autonomous region, China. Sensors, 17(3), 437. https://doi.org/10.3390/s17030437
Liu, X., Huey, L. G., Yokelson, R. J., Selimovic, V., Simpson, I. J., Müller, M., ...& Butterfield, Z. (2017). Airborne measurements of western US wildfire emissions: Comparison with prescribed burning and air quality implications. Journal of Geophysical Research: Atmospheres, 122(11), 6108-6129.https://doi.org/10.1002/2016JD026315
Malik, T., Rabbani, G., & Farooq, M. (2013). Forest fire risk zonation using remote sensing and GIS technology in Kansrao Forest Range of Rajaji National Park, Uttarakhand, India. India. Inter. J. of advanced RS and GIS, 2(1), 86-95.http://technical.cloud-journals.com/index.php/IJARSG/article/view/Tech-56
Matin, M. A., Chitale, V. S., Murthy, M. S., Uddin, K., Bajracharya, B., & Pradhan, S. (2017). Understanding forest fire patterns and risk in Nepal using remote sensing, geographic information system and historical fire data. International journal of wildland fire, 26(4), 276-286.https://doi.org/10.1071/WF16056
Nakagoshi, Nobukazu & Nehira, K. & Takahashi, F.. (1987). The role of fire in pine forests of Japan. The Role of Fire in Ecological System. In L. Trabaud, ed., The role of fire in ecological systems, p. 91-119. The Hague. SPB Academic Publishing.
Rahman, H., Karuppaiyan, R., Senapati, P. C., Ngachan, S. V., & Kumar, A. (2012). An analysis of past three decade weather phenomenon in the mid-hills of Sikkim and strategies for mitigating possible impact of climate change on agriculture. Climate Change in Sikkim: Patterns, Impacts and Initiatives, 1-18.
Randerson, J. T., Chen, Y., Van Der Werf, G. R., Rogers, B. M., & Morton, D. C. (2012). Global burned area and biomass burning emissions from small fires. Journal of Geophysical Research: Biogeosciences, 117(G4). https://doi.org/10.1029/2012JG002128
Rather, M. A., Farooq, M., Meraj, G., Dada, M. A., Sheikh, B. A., & Wani, I. A. (2018). Remote sensing and GIS-based forest fire vulnerability assessment in Dachigam National park, North-Western Himalaya. Asian Journal of Applied Sciences, 11(2), 98-114.https://doi.org/10.3923/ajaps
Reddy, C. S., Alekhya, V. P., Saranya, K. R. L., Athira, K., Jha, C. S., Diwakar, P. G., &Dadhwal, V. K. (2017). Monitoring of fire incidences in vegetation types and Protected Areas of India: Implications on carbon emissions. Journal of Earth System Science, 126(1), 11.https://doi.org/10.1007/s12040-016-0791-x
Saha, P. K., Bodiuzzaman, M., Uddin, M. N., Hossain, M. N., & Shanta, A. S. (2014). A Study on the management strategies of protected areas in Bangladesh for biodiversity conservation on Nijhum Dwip, Noakhali, Bangladesh. International Journal of Innovative Research and Development, 3(7), 140-148
Saklani, P. (2008). Forest Fire Risk Zonation: A Case Study Pauri Garhwal, Uttarakhand, India. ITC.
Sarab, S. A., Feghhi, J., & Goshtasb, H. (2014). Determining the main parameters affecting forest fire using MLP neural network (Forests of Western Iran: Izeh). International Journal of Molecular Evolution and Biodiversity, 3.https://doi.org/10.5376/ijmeb.2013.03.0004
Satendra, & Kaushik, A. D. (2014). Forest fire disaster management. New Delhi: National Institute of Disaster Management, Ministry of Home Affairs, Government of India.
Sharma, R. K., Sharma, N., Shrestha, D. G., Luitel, K. K., Arrawatia, M. L., & Pradhan, S. (2012). Study of forest fires in Sikkim Himalayas, India using remote sensing and GIS techniques. Climate Change in Sikkim–Patterns, Impacts and initiatives, 233-244.
Sharma, S., Joshi, V., & Chhetri, R. K. (2014). Forest fire as a potential environmental threat in recent years in Sikkim, Eastern Himalayas, India. Climate Change and Environmental Sustainability, 2(1), 55-61.https://doi.org/10.5958/j.2320-642X.2.1.006
Srivastava K. (2020). Most forest fires in India on account of human activity. Mongabay. Flood and drought series.https://india.mongabay.com/2020/01/most-forest-fires-in-india-on-account-of-human-activity/
Stocks, B. J., & Kauffman, J. B. (1997). Biomass consumption and behavior of wildland fires in boreal, temperate, and tropical ecosystems: Parameters necessary to interpret historical fire regimes and future fire scenarios. In Sediment records of biomass burning and global change (pp. 169-188). Springer, Berlin, Heidelberg. https://doi.org/10.1007/978-3-642-59171-6_8
Sundriyal, M., Sundriyal, R. C., & Sharma, E. (2004). Dietary use of wild plant resources in the Sikkim Himalaya, India. Economic Botany, 58(4), 626-638. https://doi.org/10.1663/0013-0001(2004)058[0626:DUOWPR]2.0.CO;2
Suryabhagavan, K. V., Alemu, M., &Balakrishnan, M. (2016). GIS-based multi-criteria decision analysis for forest fire susceptibility mapping: a case study in Harenna forest, southwestern Ethiopia. Tropical Ecology, 57(1), 33-43.
Tamang, D. K., Dhakal, D., Gurung, S., Sharma, N. P., & Shrestha, D. G. (2013). Bamboo diversity, distribution pattern and its uses in Sikkim (India) Himalaya. International Journal of Scientific and Research Publications, 3(2), 1-6.
Tonini, M., D’Andrea, M., Biondi, G., Degli Esposti, S., Trucchia, A., & Fiorucci, P. (2020). A Machine Learning-Based Approach for Wildfire Susceptibility Mapping. The Case Study of the Liguria Region in Italy. Geosciences, 10(3), 105.https://doi.org/10.3390/geosciences10030105
Van Der Werf, G. R., Randerson, J. T., Giglio, L., Van Leeuwen, T. T., Chen, Y., Rogers, B. M., & Yokelson, R. J. (2017). Global fire emissions estimate during 1997-2016. Earth System Science Data, 9(2), 697-720.https://doi.org/10.5194/essd-9-697-2017
Varma, A. (2003). The economics of slash and burn: a case study of the 1997–1998 Indonesian forest fires. Ecological Economics, 46(1), 159-171.https://doi.org/10.1016/S0921-8009(03)00139-3
Ye, T., Wang, Y., Guo, Z., & Li, Y. (2017). Factor contribution to fire occurrence, size, and burn probability in a subtropical coniferous forest in East China. PloS one, 12(2), e0172110. https://doi.org/10.1371/journal.pone.0172110
Yong, D. L., & Peh, K. S. H. (2016). South-east Asia's forest fires: blazing the policy trail. Oryx, 50(2), 207-212.https://doi.org/10.1017/S003060531400088X
Zorn, T., K. Nakayama & Hashiramoto, O. (2001). The forest fire situation in Japan. Int. Forest Fire News 26.