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Ensemble Learning for the Classification of Social Media Data in Disaster Response
Hafiz Budi Firmansyah
Jesus Cerquides
Jose Luis Fernandez-Marquez
Rob Grace
Hossein Baharmand
Social media generates large amounts of almost real-time data which has proven valuable in disaster response. Specially for providing information within the first 48 hours after a disaster occurs. However, this potential is poorly exploited in operational environments due to the challenges of curating social media data. This work builds on top of the latest research on automatic classification of social media content, proposing the use of ensemble learning to help in the classification of social media images for disaster response. Ensemble methods use multiple learning algorithms to obtain better predictive performance than could be obtained from any of the constituent learning algorithms alone. Experimental results show that ensemble learning is a valuable technology for the analysis of social media images for disaster response,and could potentially ease the integration of social media data within an operational environment.
urn:ISBN:978-82-8427-099-9
openurl:?ctx_ver=Z39.88-2004&rfr_id=info%3Asid%2Fidl.iscram.org%2F&genre=proceeding&title=Ensemble%20Learning%20for%20the%20Classification%20of%20Social%20Media%20Data%20in%20Disaster%20Response&stitle=Iscram%202022&issn=2411-3387&isbn=978-82-8427-099-9&date=2022&spage=710&epage=718&aulast=Hafiz%20Budi%20Firmansyah&au=Jesus%20Cerquides&au=Jose%20Luis%20Fernandez-Marquez&place=Tarbes%2C%20France&sid=refbase%3AISCRAM
url:http://idl.iscram.org/show.php?record=2450
citekey:HafizBudiFirmansyah_etal2022
citation:Hafiz Budi Firmansyah, Jesus Cerquides, & Jose Luis Fernandez-Marquez. (2022). Ensemble Learning for the Classification of Social Media Data in Disaster Response. In Rob Grace, & Hossein Baharmand (Eds.), ISCRAM 2022 Conference Proceedings – 19th International Conference on Information Systems for Crisis Response and Management (pp. 710-718). Tarbes, France.
2022
ConferencePaper
text
Ensemble learning
image classification
social media
disaster response
file:http://idl.iscram.org/files/hafizbudifirmansyah/2022/2450_HafizBudiFirmansyah_etal2022.pdf
English
2411-3387
ISCRAM 2022 Conference Proceedings – 19th International Conference on Information Systems for Crisis Response and Management
2022
710
718
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