2021
DOI: 10.1038/s41598-021-82977-9
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Forecasting standardized precipitation index using data intelligence models: regional investigation of Bangladesh

Abstract: A noticeable increase in drought frequency and severity has been observed across the globe due to climate change, which attracted scientists in development of drought prediction models for mitigation of impacts. Droughts are usually monitored using drought indices (DIs), most of which are probabilistic and therefore, highly stochastic and non-linear. The current research investigated the capability of different versions of relatively well-explored machine learning (ML) models including random forest (RF), mini… Show more

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Cited by 67 publications
(26 citation statements)
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“…For this, we start determining which features have a statistically significant relationship with the response. We also perform Pearson’s chi squared test with simulated p-value based on 2000 replicates to support our hypothesis 23 25 .…”
Section: Data Sourcementioning
confidence: 99%
“…For this, we start determining which features have a statistically significant relationship with the response. We also perform Pearson’s chi squared test with simulated p-value based on 2000 replicates to support our hypothesis 23 25 .…”
Section: Data Sourcementioning
confidence: 99%
“…In the first decade of the 21st century, the world has lost USD 722 billion with 2300 million people affected due to drought [30,31]. Drought has a huge impact on agriculture and the environment, which can influence socioeconomic development [10,32,33] because soil degradation leads to desertification, famine, and poverty [12]. It is predicted that the global air temperature will rise by 0.78-1.5 • C [34], which will change rainfall patterns, eventually increasing the occurrence and severity of drought [12].…”
Section: Introductionmentioning
confidence: 99%
“…ELM and RF models were selected as a benchmark due to their remarkable predictive potentials as appear in the literature 35 39 . The selection of the OSELM was owing to the main merit of the ELM model 40 . ELM model is a single layer feed-forward neural network (SLFN) where the input weights are randomly assigned while the output weights are analytically determined 41 .…”
Section: Introductionmentioning
confidence: 99%