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Potential of adaptive neuro-fuzzy inference system for evaluation of drought indices

机译:自适应神经模糊推理系统在干旱指数评估中的潜力

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摘要

Drought as a natural hazard is characterized using quantitative measures named drought indices. Thus, accurate drought monitoring requires approaches for assessment of drought indices. This work investigates precision of an adaptive neuro-fuzzy computing technique (ANFIS) for drought index estimation through the obtained ANFIS-index. The input data was collected from six meteorological stations in Serbia during the period 1980-2010. Based on selected data, the drought indices such as the water surplus variability index (WSVI) and standardized precipitation index (SPI) for 12 month time scale were calculated. To approve the proposed approach, the ANFIS-index is statistically and graphically compared with SPI and WSVI values. The root-mean-square error ranged between 0.11 and 0.24. The ANFIS-index was highly correlated with SPI and WSVI. The results also show that ANFIS can be efficient applied for reliable drought indices estimation.
机译:干旱是一种自然灾害,它使用称为干旱指数的定量措施来表征。因此,准确的干旱监测需要评估干旱指数的方法。这项工作调查了通过获得的ANFIS指数估算干旱指数的自适应神经模糊计算技术(ANFIS)的精度。输入数据是在1980-2010年期间从塞尔维亚的六个气象站收集的。根据选定的数据,计算出12个月时间尺度的干旱指数,例如水剩余变异性指数(WSVI)和标准降水指数(SPI)。为了批准提出的方法,将ANFIS指数与SPI和WSVI值进行了统计和图形比较。均方根误差在0.11和0.24之间。 ANFIS指数与SPI和WSVI高度相关。结果还表明,ANFIS可以有效地应用于可靠的干旱指数估算。

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