DocumentCode :
676823
Title :
Assessment of sparse forest and fire detection using threshold watershed algorithm
Author :
Menaka, E. ; Kumar, Sahoo Subhendu ; Parameshwari, P.
Author_Institution :
Dept. of Inf. Technol., Vivekananda Coll. of Eng. for Women, Tiruchengode, India
fYear :
2012
fDate :
27-29 Dec. 2012
Firstpage :
1
Lastpage :
6
Abstract :
Fire, a natural disaster, has significant effects on ecosystems and plays a major role in deforestation, and it is a major source of trace gases, aerosol etc,. Remote sensing is a valuable data source to investigate different phases of fire management. Monitoring and management of forest fires is very important in tropical countries like India where 55 percent of the total forest covers is prone to fires annually causing adverse ecological, economic and social impacts. Studies on the impacts of tropical wildfires on the environment indicated Satellite remote sensing plays a key role in estimating loss of the forest cover and land cover change. in the existing watershed algorithm it encounters many problems such as over segmentation, poor detection of segmented areas. In the proposed system first compare pixel values with different threshold and convert pixels as dry. Apply watershed algorithm for the modified data. It is able to provide the information about sparse and high dry regions accurately and up-to-date, over wide areas, and repeatedly over the time.
Keywords :
fires; geophysical image processing; image segmentation; remote sensing; fire detection; fire management; forest fires; natural disaster; satellite remote sensing; sparse forest assessment; threshold watershed algorithm; tropical wildfires; Forest fire; Remote sensing; Threshold watershed algorithm; Watershed algorithm;
fLanguage :
English
Publisher :
iet
Conference_Titel :
Sustainable Energy and Intelligent Systems (SEISCON 2012), IET Chennai 3rd International on
Conference_Location :
Tiruchengode
Electronic_ISBN :
978-1-84919-797-7
Type :
conf
DOI :
10.1049/cp.2012.2196
Filename :
6719102
Link To Document :
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