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Kayode, Yusuf Olanrewaju; Ikuemonisan, Femi Emmanuel; Garba, Lurwan; Okoh, Daniel; Zubair, Adam Folohunsho (2025) Assessing the performance of IRI-2020 and IRI-2016 during quiet and storm periods using total electron content in different longitudinal sectors and suggestions for improvements of the models. Advances in Space Research, 76 (9). doi:10.1016/j.asr.2025.07.103

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Reference TypeJournal (article/letter/editorial)
TitleAssessing the performance of IRI-2020 and IRI-2016 during quiet and storm periods using total electron content in different longitudinal sectors and suggestions for improvements of the models
JournalAdvances in Space Research
AuthorsKayode, Yusuf OlanrewajuAuthor
Ikuemonisan, Femi EmmanuelAuthor
Garba, LurwanAuthor
Okoh, DanielAuthor
Zubair, Adam FolohunshoAuthor
Year2025 (November)Volume76
Issue9
PublisherElsevier BV
DOIdoi:10.1016/j.asr.2025.07.103Search in ResearchGate
Generate Citation Formats
Mindat Ref. ID19067282Long-form Identifiermindat:1:5:19067282:1
GUID0
Full ReferenceKayode, Yusuf Olanrewaju; Ikuemonisan, Femi Emmanuel; Garba, Lurwan; Okoh, Daniel; Zubair, Adam Folohunsho (2025) Assessing the performance of IRI-2020 and IRI-2016 during quiet and storm periods using total electron content in different longitudinal sectors and suggestions for improvements of the models. Advances in Space Research, 76 (9). doi:10.1016/j.asr.2025.07.103
Plain TextKayode, Yusuf Olanrewaju; Ikuemonisan, Femi Emmanuel; Garba, Lurwan; Okoh, Daniel; Zubair, Adam Folohunsho (2025) Assessing the performance of IRI-2020 and IRI-2016 during quiet and storm periods using total electron content in different longitudinal sectors and suggestions for improvements of the models. Advances in Space Research, 76 (9). doi:10.1016/j.asr.2025.07.103
In(2025, November) Advances in Space Research Vol. 76 (9). Elsevier BV

References Listed

These are the references the publisher has listed as being connected to the article. Please check the article itself for the full list of references which may differ. Not all references are currently linkable within the Digital Library.

Abdu (2016) J. Atmos. Sol. Terr. Phys. Equatorial ionospheric response to major space weather events: storm-time electrodynamics 141, 18
Ahmed (2023) Adv. Space Res. Evaluation of IRI-2020 and IRI-2016 models using GNSS-TEC over North Africa and the Middle East 71, 1890
Bhuyan (2017) Adv. Space Res. Performance assessment of the IRI-2016 model during geomagnetically quiet and disturbed days using GNSS TEC over Northeast India 60, 879
Bilitza (2021) Adv. Space Res. Global validation of the IRI-2016 and IRI-2020 ionospheric models with COSMIC/FORMOSAT-3 radio occultation data 67, 1523
Bilitza (2022) Earth Space Sci. The IRI-2020 model and its latest validation 9
Bilitza (2017) Adv. Space Res. Measurements and IRI model predictions during solar minimum and solar maximum: TEC, Ne and foF2 60, 1246
Borries (2016) Ann. Geophys. Ionospheric storm and TEC perturbations: a comparison between ground-based GPS and Swarm satellite measurements 34, 511
Cherniak (2016) J. Geophys. Res. Space Phys. Storm-time changes in the ionosphere-plasmasphere system as seen from ground-based and space-borne GPS measurements 121, 6744
Cherniak (2018) Space Weather Ionospheric response to the September 2017 space weather storms: global GNSS TEC observations 16, 1371
Eapen (2018) Adv. Space Res. IRI-2016 performance during geomagnetic storms at low latitude 61, 2645
Filjar (2024) Remote sens. An Ambient Adaptive Global Navigation Satellite System Total Electron Content Predictive Model for Short-Term Rapid Geomagnetic Storm Events 16, 3051
Gatica-Acevedo (2025) Adv. Space Res. Comparative performance of IRI-2016, IRI-2020, and IRI-Plas 2017 over Mexico
Gopalswamy (2022) Space Sci. Rev. Solar sources of space weather 218, 1
Not Yet Imported: - journal-article : 10.1016/j.jastp.2020.105380

If you would like this item imported into the Digital Library, please contact us quoting Journal ID
Gulyaeva (2021) J. Atmos. Sol. Terr. Phys. TEC prediction during solar minimum and space weather impacts on GNSS performance 218
Habarulema (2021) Radio Sci. Regional modeling of ionospheric total electron content and its validation with GNSS observations 56
He (2023) Remote Sens. (Basel) Performance evaluation of WHU-GIM and IRI-2020 for ionospheric TEC modeling over China 15, 2282
Heelis (2020) Space Sci. Rev. Ionospheric electrodynamics: a tutorial 216, 1
Hervás (2020) Remote Sens. (Basel) Ionospheric monitoring with GNSS and its application to aviation 12, 884
Jakowski (2012) J. Atmos. Sol. Terr. Phys. Ionospheric behaviour over Europe during the solar activity maximum in October/November 2003 64, 559
Jean de Dieu (2023) Adv. Space Res. Ionospheric response during geomagnetic storms in East Africa 71, 901
Jenan (2022) Indian J. Radio Space Phys. The effect of geomagnetic storms on TEC over the equator 51, 141
Jin (2024) J. Geophys. Res. Space Phys. GNSS ionospheric sensing and modeling during solar cycle 24 129
Kayacik (2025) Surv. Rev. Assessing the performance of IRI-2020 using GPS-TEC measurements in TĂĽrkiye under low solar activity conditions , 1
Kayode (2024) J. Appl. Sci. Environ. Manage. Measurement and Comparison of Total Electron Content for Assessment of Ionospheric Models during April 7, 2000 Geomagnetic Storms 28, 1539
Kayode (2024) J. Atmos. Sol. Terr. Phys. Effects of local time on the variations of the total electron contents at an American and Asian longitudes and their comparison with IRI-2016, IRI-Plas2017 and NeQuick-2 models during solar cycle 24 260
Kayode (2025) Kinematics Phys. Celestial Bodies Modelling ionospheric phenomena and assessing the performance of IRIPlas2017 during different phases of solar cycle 24 41, 72
Kayode (2023) J. Res. Rev. Sci. The assessments of IRI-2016, IRI-Plas2017 and NeQuick-2 models using GPS-TEC in the Australian longitude sector during solar cycle 24 10, 75
Not Yet Imported: - posted-content : 10.21203/rs.3.rs-3362022/v1

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Kim (2025) Space Weather Evaluation of IRI-2020 model for ionospheric storms in Northeast Asia
Krankowski (2007) Adv. Space Res. Ionospheric electron content forecasting using GPS data and IRI model 39, 735
Kumar (2022) Earth Planets Space Evaluation of the IRI-2020 and IRI-2016 models during March 2015 geomagnetic storm 74, 25
Kumar (2014) Adv. Space Res. Ionospheric response to geomagnetic storms using GPS data 53, 412
Lean (2011) J. Geophys. Res. Space Phys. Ionospheric total electron content variability during solar cycles 116
Li (2021) Ann. Geophys. Evaluation of IRI-2020 and IRI-2016 in polar and subauroral regions during geomagnetic storms 39, 1
Liu (2010) J. Geophys. Res. Seasonal effects on total electron content in the low-latitude ionosphere 115
Liu (2020) J. Geophys. Res. Space Phys. Ionospheric modeling in polar regions 125
Marew (2024) Adv. Space Res. Performance evaluation of IRI models over East Africa and South America
Martini (2016) J. Geophys. Res. Space Phys. Auroral effects on GNSS signals: a statistical study 121, 1490
Martins (2022) Remote Sens. (Basel) Comparative assessment of IRI-2016 and IRI-2020 models over South America 14, 1274
Not Yet Imported: - journal-article : 10.1016/j.jastp.2005.07.004

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Mondal (2025) Astrophys J On the relation between solar wind and ionospheric turbulence 954, 115
Nava (2017) J. Atmos. Sol. Terr. Phys. Updating ionospheric models during disturbed conditions: status and challenges 165, 121
Nayak (2023) Adv. Space Res. Solar minimum TEC variations and IRI model validation 71, 450
Oyedokun (2020) Indian J. Radio Space Phys. Equatorial plasma drifts and ionospheric response in Southeast Asia 49, 198
Rama Rao (2006) Ann. Geophys. GPS-based TEC studies over equatorial and low latitude regions 24, 327
Not Yet Imported: - journal-article : 10.1016/S1364-6826(01)00036-0

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ĹžentĂĽrk (2020) Adv. Space Res. Comparative performance of IRI model over Turkey during geomagnetic storms 66, 1760
Not Yet Imported: - journal-article : 10.1515/jag-2023-0068

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Song (2018) J. Geophys. Res. Space Phys. TEC variations under solar minimum conditions 123, 4044
Swarnalingam (2025) Space Weather Comparison of global F-region Ne profiles from inversion and models
Tariku (2019) Adv. Space Res. Ionospheric variability and the effects of geomagnetic storms 64, 2384
Not Yet Imported: - posted-content : 10.1002/essoar.10505585.1

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Not Yet Imported: - journal-article : 10.1080/2150704X.2022.2057204

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Yusupov (2021) Geophys. Res. Lett. Layered structure of the ionosphere and its response to solar activity 48
Zhang (2020) Earth Space Sci. Assessment of the IRI model in solar minimum using COSMIC data 7
Zhao (2024) J. Geophys. Res. Space Phys. Evaluation of IRI-2016 and IRI-2020 at Asian mid-latitudes during SC24


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