- 영문명
- 발행기관
- 한국방재학회
- 저자명
- Awan Jehangir Ashraf Bae Deg Hyo
- 간행물 정보
- 『3. 한국방재학회 학술대회논문집』2015년, 100~100쪽, 전체 1쪽
- 주제분류
- 공학 > 기타공학
- 파일형태
- 발행일자
- 2015.02.25
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- sam무제한 이용권 으로 학술논문 이용이 가능합니다.
- 이 학술논문 정보는 (주)교보문고와 각 발행기관 사이에 저작물 이용 계약이 체결된 것으로, 교보문고를 통해 제공되고 있습니다. 1:1 문의

국문 초록
영문 초록
Drought prediction is of significance importance for drought disaster risk management and mitigation. The regression based statistical models and physical process based models are commonly used for drought prediction. The statistical models assume stationarity of data which limits their ability to capture highly non-linear patterns of droughts. On the other hand, reliable long-range rainfall forecast is necessary for drought prediction using physical process based models. However, the long-range rainfall prediction especially in the Asian monsoon regions is quite challenging for climate models. In this study, the use of Adaptive Neuro-Fuzzy Inference System (ANFIS) was explored to develop a model for prediction of droughts over the East Asia monsoon region (20oN-50oN,103oE-149oE) by employing Standardized Precipitation Index (SPI) as a drought index. Most of the drought studies in the East Asia have been focused on basin or country scale. In this study, we identified homogeneous rainfall zones in the East Asia monsoon region using cluster analysis methods and analyzed the impact of global Sea Surface Temperature Anomalies (SSTA) on drought in each zone. The ANFIS-based model was developed and evaluated with different configurations to identify optimal model architecture and suitable predictor variables for drought prediction. The performance of the proposed model was assessed by comparison of observed and predicted values of the drought index using different statistical measures.
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