Spatial Analysis of Seasonal Precipitation over Iran: Co-Variation with Climate Indices

Temporary changes in precipitation may lead to sustained and severe drought or massive floods in different parts of the world. Knowing the variation in precipitation can effectively help the water resources decision-makers in water resources management. Large-scale circulation drivers have a conside...

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Published in:ISPRS International Journal of Geo-Information
Main Authors: Majid Dehghani, Somayeh Salehi, Amir Mosavi, Narjes Nabipour, Shahaboddin Shamshirband, Pedram Ghamisi
Format: Article in Journal/Newspaper
Language:English
Published: MDPI AG 2020
Subjects:
geo
Soi
Online Access:https://doi.org/10.3390/ijgi9020073
https://doaj.org/article/3df101f53ff347e8bb93c56a1e58b58c
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spelling fttriple:oai:gotriple.eu:oai:doaj.org/article:3df101f53ff347e8bb93c56a1e58b58c 2023-05-15T17:32:06+02:00 Spatial Analysis of Seasonal Precipitation over Iran: Co-Variation with Climate Indices Majid Dehghani Somayeh Salehi Amir Mosavi Narjes Nabipour Shahaboddin Shamshirband Pedram Ghamisi 2020-01-01 https://doi.org/10.3390/ijgi9020073 https://doaj.org/article/3df101f53ff347e8bb93c56a1e58b58c en eng MDPI AG 2220-9964 doi:10.3390/ijgi9020073 https://doaj.org/article/3df101f53ff347e8bb93c56a1e58b58c undefined ISPRS International Journal of Geo-Information, Vol 9, Iss 2, p 73 (2020) spatiotemporal database spatial analysis seasonal precipitation spearman correlation coefficient pacific decadal oscillation southern oscillation index climate model earth system science climate informatics atmospheric model big data advanced statistics probabilistic ensemble forecasting north atlantic oscillation geo envir Journal Article https://vocabularies.coar-repositories.org/resource_types/c_6501/ 2020 fttriple https://doi.org/10.3390/ijgi9020073 2023-01-22T19:28:18Z Temporary changes in precipitation may lead to sustained and severe drought or massive floods in different parts of the world. Knowing the variation in precipitation can effectively help the water resources decision-makers in water resources management. Large-scale circulation drivers have a considerable impact on precipitation in different parts of the world. In this research, the impact of El Niño-Southern Oscillation (ENSO), Pacific Decadal Oscillation (PDO), and North Atlantic Oscillation (NAO) on seasonal precipitation over Iran was investigated. For this purpose, 103 synoptic stations with at least 30 years of data were utilized. The Spearman correlation coefficient between the indices in the previous 12 months with seasonal precipitation was calculated, and the meaningful correlations were extracted. Then, the month in which each of these indices has the highest correlation with seasonal precipitation was determined. Finally, the overall amount of increase or decrease in seasonal precipitation due to each of these indices was calculated. Results indicate the Southern Oscillation Index (SOI), NAO, and PDO have the most impact on seasonal precipitation, respectively. Additionally, these indices have the highest impact on the precipitation in winter, autumn, spring, and summer, respectively. SOI has a diverse impact on winter precipitation compared to the PDO and NAO, while in the other seasons, each index has its special impact on seasonal precipitation. Generally, all indices in different phases may decrease the seasonal precipitation up to 100%. However, the seasonal precipitation may increase more than 100% in different seasons due to the impact of these indices. The results of this study can be used effectively in water resources management and especially in dam operation. Article in Journal/Newspaper North Atlantic North Atlantic oscillation Unknown Pacific Soi ENVELOPE(30.704,30.704,66.481,66.481) ISPRS International Journal of Geo-Information 9 2 73
institution Open Polar
collection Unknown
op_collection_id fttriple
language English
topic spatiotemporal database
spatial analysis
seasonal precipitation
spearman correlation coefficient
pacific decadal oscillation
southern oscillation index
climate model
earth system science
climate informatics
atmospheric model big data
advanced statistics
probabilistic ensemble forecasting
north atlantic oscillation
geo
envir
spellingShingle spatiotemporal database
spatial analysis
seasonal precipitation
spearman correlation coefficient
pacific decadal oscillation
southern oscillation index
climate model
earth system science
climate informatics
atmospheric model big data
advanced statistics
probabilistic ensemble forecasting
north atlantic oscillation
geo
envir
Majid Dehghani
Somayeh Salehi
Amir Mosavi
Narjes Nabipour
Shahaboddin Shamshirband
Pedram Ghamisi
Spatial Analysis of Seasonal Precipitation over Iran: Co-Variation with Climate Indices
topic_facet spatiotemporal database
spatial analysis
seasonal precipitation
spearman correlation coefficient
pacific decadal oscillation
southern oscillation index
climate model
earth system science
climate informatics
atmospheric model big data
advanced statistics
probabilistic ensemble forecasting
north atlantic oscillation
geo
envir
description Temporary changes in precipitation may lead to sustained and severe drought or massive floods in different parts of the world. Knowing the variation in precipitation can effectively help the water resources decision-makers in water resources management. Large-scale circulation drivers have a considerable impact on precipitation in different parts of the world. In this research, the impact of El Niño-Southern Oscillation (ENSO), Pacific Decadal Oscillation (PDO), and North Atlantic Oscillation (NAO) on seasonal precipitation over Iran was investigated. For this purpose, 103 synoptic stations with at least 30 years of data were utilized. The Spearman correlation coefficient between the indices in the previous 12 months with seasonal precipitation was calculated, and the meaningful correlations were extracted. Then, the month in which each of these indices has the highest correlation with seasonal precipitation was determined. Finally, the overall amount of increase or decrease in seasonal precipitation due to each of these indices was calculated. Results indicate the Southern Oscillation Index (SOI), NAO, and PDO have the most impact on seasonal precipitation, respectively. Additionally, these indices have the highest impact on the precipitation in winter, autumn, spring, and summer, respectively. SOI has a diverse impact on winter precipitation compared to the PDO and NAO, while in the other seasons, each index has its special impact on seasonal precipitation. Generally, all indices in different phases may decrease the seasonal precipitation up to 100%. However, the seasonal precipitation may increase more than 100% in different seasons due to the impact of these indices. The results of this study can be used effectively in water resources management and especially in dam operation.
format Article in Journal/Newspaper
author Majid Dehghani
Somayeh Salehi
Amir Mosavi
Narjes Nabipour
Shahaboddin Shamshirband
Pedram Ghamisi
author_facet Majid Dehghani
Somayeh Salehi
Amir Mosavi
Narjes Nabipour
Shahaboddin Shamshirband
Pedram Ghamisi
author_sort Majid Dehghani
title Spatial Analysis of Seasonal Precipitation over Iran: Co-Variation with Climate Indices
title_short Spatial Analysis of Seasonal Precipitation over Iran: Co-Variation with Climate Indices
title_full Spatial Analysis of Seasonal Precipitation over Iran: Co-Variation with Climate Indices
title_fullStr Spatial Analysis of Seasonal Precipitation over Iran: Co-Variation with Climate Indices
title_full_unstemmed Spatial Analysis of Seasonal Precipitation over Iran: Co-Variation with Climate Indices
title_sort spatial analysis of seasonal precipitation over iran: co-variation with climate indices
publisher MDPI AG
publishDate 2020
url https://doi.org/10.3390/ijgi9020073
https://doaj.org/article/3df101f53ff347e8bb93c56a1e58b58c
long_lat ENVELOPE(30.704,30.704,66.481,66.481)
geographic Pacific
Soi
geographic_facet Pacific
Soi
genre North Atlantic
North Atlantic oscillation
genre_facet North Atlantic
North Atlantic oscillation
op_source ISPRS International Journal of Geo-Information, Vol 9, Iss 2, p 73 (2020)
op_relation 2220-9964
doi:10.3390/ijgi9020073
https://doaj.org/article/3df101f53ff347e8bb93c56a1e58b58c
op_rights undefined
op_doi https://doi.org/10.3390/ijgi9020073
container_title ISPRS International Journal of Geo-Information
container_volume 9
container_issue 2
container_start_page 73
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