Open Access
Improved flood susceptibility mapping using a best first decision tree integrated with ensemble learning techniques
Binh V. Pham
1
,
Tien Thinh Le
2
,
Phan Trinh
3
,
Hoang Phan Hai Yen
4
,
Tran Thanh Tuyen
5
,
Vu Van Luong
5
,
Huu Lam Nguyen
6
,
Hiep Van Le
7
,
Loke Kok Foong
8
1
University of Transport Technology, Ha Noi 100000, Viet Nam
|
Publication type: Journal Article
Publication date: 2021-05-01
scimago Q1
wos Q1
SJR: 2.111
CiteScore: 22.1
Impact factor: 8.9
ISSN: 16749871, 25889192
General Earth and Planetary Sciences
Abstract
Improving the accuracy of flood prediction and mapping is crucial for reducing damage resulting from flood events. In this study, we proposed and validated three ensemble models based on the Best First Decision Tree (BFT) and the Bagging (Bagging-BFT), Decorate (Bagging-BFT), and Random Subspace (RSS-BFT) ensemble learning techniques for an improved prediction of flood susceptibility in a spatially-explicit manner. A total number of 126 historical flood events from the Nghe An Province (Vietnam) were connected to a set of 10 flood influencing factors (slope, elevation, aspect, curvature, river density, distance from rivers, flow direction, geology, soil, and land use) for generating the training and validation datasets. The models were validated via several performance metrics that demonstrated the capability of all three ensemble models in elucidating the underlying pattern of flood occurrences within the research area and predicting the probability of future flood events. Based on the Area Under the receiver operating characteristic Curve (AUC), the ensemble Decorate-BFT model that achieved an AUC value of 0.989 was identified as the superior model over the RSS-BFT (AUC = 0.982) and Bagging-BFT (AUC = 0.967) models. A comparison between the performance of the models and the models previously reported in the literature confirmed that our ensemble models provided a reliable estimate of flood susceptibilities and their resulting susceptibility maps are trustful for flood early warning systems as well as development of mitigation plans. • Developing three ensemble models for flood susceptibility mapping. • Performance test of Bagging, Decorate, and Random Subspace ensemble techniques. • Highest reliability of mapping coupling best first decision tree with Decorate. • Flood prevention activities primarily needed on 33% of the land area.
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105
Total citations:
105
Citations from 2024:
50
(47.62%)
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GOST
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Pham B. V. et al. Improved flood susceptibility mapping using a best first decision tree integrated with ensemble learning techniques // Geoscience Frontiers. 2021. Vol. 12. No. 3. p. 101105.
GOST all authors (up to 50)
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Pham B. V., Le T. T., Trinh P., Yen H. P. H., Tuyen T. T., Luong V. V., Nguyen H. L., Le H. V., Kok Foong L. Improved flood susceptibility mapping using a best first decision tree integrated with ensemble learning techniques // Geoscience Frontiers. 2021. Vol. 12. No. 3. p. 101105.
Cite this
RIS
Copy
TY - JOUR
DO - 10.1016/j.gsf.2020.11.003
UR - https://doi.org/10.1016/j.gsf.2020.11.003
TI - Improved flood susceptibility mapping using a best first decision tree integrated with ensemble learning techniques
T2 - Geoscience Frontiers
AU - Pham, Binh V.
AU - Le, Tien Thinh
AU - Trinh, Phan
AU - Yen, Hoang Phan Hai
AU - Tuyen, Tran Thanh
AU - Luong, Vu Van
AU - Nguyen, Huu Lam
AU - Le, Hiep Van
AU - Kok Foong, Loke
PY - 2021
DA - 2021/05/01
PB - Elsevier
SP - 101105
IS - 3
VL - 12
SN - 1674-9871
SN - 2588-9192
ER -
Cite this
BibTex (up to 50 authors)
Copy
@article{2021_Pham,
author = {Binh V. Pham and Tien Thinh Le and Phan Trinh and Hoang Phan Hai Yen and Tran Thanh Tuyen and Vu Van Luong and Huu Lam Nguyen and Hiep Van Le and Loke Kok Foong},
title = {Improved flood susceptibility mapping using a best first decision tree integrated with ensemble learning techniques},
journal = {Geoscience Frontiers},
year = {2021},
volume = {12},
publisher = {Elsevier},
month = {may},
url = {https://doi.org/10.1016/j.gsf.2020.11.003},
number = {3},
pages = {101105},
doi = {10.1016/j.gsf.2020.11.003}
}
Cite this
MLA
Copy
Pham, Binh V., et al. “Improved flood susceptibility mapping using a best first decision tree integrated with ensemble learning techniques.” Geoscience Frontiers, vol. 12, no. 3, May. 2021, p. 101105. https://doi.org/10.1016/j.gsf.2020.11.003.