Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
4402013 | Procedia Environmental Sciences | 2015 | 4 Pages |
Abstract
Seismic damage mapping is an imperative part of urban risk assessment and reduction plans, especially in Tehran, the capital of Iran, where a large population lives in a potentially active seismic area. In this paper, a Bayesian statistical classification has been compared with the granular computing (GrC) algorithm for seismic physical vulnerability assessment. Both classifiers are verified by accuracy measurements. The results show that GrC had a better performance for seismic vulnerability assessment. In addition, the city of Tehran is judged to have a severe situation against possible earthquakes.
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