Literature DB >> 28674008

Network analysis reveals strongly localized impacts of El Niño.

Jingfang Fan1, Jun Meng1,2, Yosef Ashkenazy3, Shlomo Havlin1, Hans Joachim Schellnhuber4,5.   

Abstract

Climatic conditions influence the culture and economy of societies and the performance of economies. Specifically, El Niño as an extreme climate event is known to have notable effects on health, agriculture, industry, and conflict. Here, we construct directed and weighted climate networks based on near-surface air temperature to investigate the global impacts of El Niño and La Niña. We find that regions that are characterized by higher positive/negative network "in"-weighted links are exhibiting stronger correlations with the El Niño basin and are warmer/cooler during El Niño/La Niña periods. In contrast to non-El Niño periods, these stronger in-weighted activities are found to be concentrated in very localized areas, whereas a large fraction of the globe is not influenced by the events. The regions of localized activity vary from one El Niño (La Niña) event to another; still, some El Niño (La Niña) events are more similar to each other. We quantify this similarity using network community structure. The results and methodology reported here may be used to improve the understanding and prediction of El Niño/La Niña events and also may be applied in the investigation of other climate variables.

Keywords:  ENSO; climate; dynamic network

Year:  2017        PMID: 28674008      PMCID: PMC5530664          DOI: 10.1073/pnas.1701214114

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  21 in total

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  8 in total

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3.  Complexity-based approach for El Niño magnitude forecasting before the spring predictability barrier.

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4.  Constructing regional climate networks in the Amazonia during recent drought events.

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7.  Early warning of the Indian Ocean Dipole using climate network analysis.

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8.  Unpacking the polarization of workplace skills.

Authors:  Ahmad Alabdulkareem; Morgan R Frank; Lijun Sun; Bedoor AlShebli; César Hidalgo; Iyad Rahwan
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  8 in total

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