International Journal of
Physical Sciences

  • Abbreviation: Int. J. Phys. Sci.
  • Language: English
  • ISSN: 1992-1950
  • DOI: 10.5897/IJPS
  • Start Year: 2006
  • Published Articles: 2577

Full Length Research Paper

Test of velocity-displacement estimation using variometric method under the condition of ionospheric scintillation during equinoctial months of solar maximum period 2012

Asnawi Husin
  • Asnawi Husin
  • National Institute of Aeronautics and Space, LAPAN, Jl. Dr Junjunan 133 Bandung Indonesia.
  • Google Scholar
Buldan Muslim
  • Buldan Muslim
  • National Institute of Aeronautics and Space, LAPAN, Jl. Dr Junjunan 133 Bandung Indonesia.
  • Google Scholar
Joni Efendi
  • Joni Efendi
  • Geospatial Information Agencies, Jl Jakarta - Bogor km 46 Cibinong, Indonesia.
  • Google Scholar
Dyah R. Martiningrum
  • Dyah R. Martiningrum
  • National Institute of Aeronautics and Space, LAPAN, Jl. Dr Junjunan 133 Bandung Indonesia.
  • Google Scholar


  •  Received: 14 October 2020
  •  Accepted: 01 February 2021
  •  Published: 28 February 2021

References

Aarons J (1993). The longitudinal morphology of equatorial F-layer irregularities relevant to their occurrence. Space Science Reviews 63(3-4):209-243.
Crossref

 

Abadi P, Saito S, Srigutomo W (2014). Low-latitude scintillation occurrences around the equatorial anomaly crest over Indonesia. Annales Geophysicae 32(1):7-17.
Crossref

 

Akala AO, Doherty PH, Carrano CS, Valladares CE, Groves KM (2012). Impacts of ionospheric scintillations on GPS receivers intended for equatorial aviation applications. Radio Science 47(4):RS4007. 
Crossref

 

Benedetti E, Branzanti M, Biagi L, Colosimo G, Mazzoni A, Crespi M (2014). Global navigation satellite systems seismology for the 2012 Mw 6.1 Emilia earthquake: Exploiting the VADASE algorithm. Seismological Research Letter 85(3):649-656.
Crossref

 

Benedetti M, Colosimo G, Crespi M, Mazzoni A (2013). GPS near‐real‐time coseismic displacements for the great Tohoku‐Oki earthquake, IEEE Geoscience and Remote Sensing Letters 10(2):372-376. 
Crossref

 

Carrano CS, Groves KM (2010). Temporal decorrelation of GPS satellite signals due to multiple scattering from ionospheric irregularities. Proceedings of the 23rd International Technical Meeting of the Satellite Division of The Institute of Navigation (ION GNSS 2010), Portland, OR, September 2010, pp. 361-374.

 

Carrano CS, Valladares CE, Groves KM (2012). Latitudinal and Local Time Variation of Ionospheric Turbulence Parameters during the conjugate Point Equatorial Experience in Brazil. International Journal of Geophysic 16. 
Crossref

 

Colosimo G, Crespi M, Mazzoni A (2011). Real‐time GPS seismology with a stand‐alone receiver: A preliminary feasibility demonstration. Journal of Geophysical Research 116(B11302). 
Crossref

 

Crustal Dynamics Data Information System (CDDIS DAAC) (2014). International GNSS Service, Daily 30-second observation data. 

 

Ge M, Douša J, Li X, Ramatschi M, Nischan T, Wickert J (2012). A novel real-time precise positioning service system: global precise point positioning with regional augmentation, Journal of Global Positioning Systems 11(210):29.
Crossref

 

Gharoori F, Skone S (2015). Impact of Equatorial Ionospheric Irregularities on GNSS Receivers Using Real and Synthetic Scintillation Signals. Radio Science 50. 
Crossref

 

Jiao Y, Morton Y, Taylor S (2014). Comparative studies of high-latitude and equatorial ionospheric scintillation characteristics of GPS signals. Proceeding IEEE/ION Position, Location and Navigation Symposium - PLANS 37- 42. 
Crossref

 

Jiao Y, Dongyang X, Morton Y, Charles R (2016). Equatorial Amplitude Scintillation Spectrum Analysis and Fading Characteristics on GPS Signals, Proceedings of the 29th International Technical Meeting of The Satellite Division of the Institute of Navigation (ION GNSS+ 2016), Portland, Oregon, 1680-1687
Crossref

 

Liu Y, Fu L, Wang J, Zhang C (2017). Study of GNSS Loss of Lock Characteristics under Ionosphere Scintillation with GNSS Data at Weipa (Australia) During Solar Maximum Phase, Sensors 17(10):2205. 
Crossref

 

Li X (2012). Improving Real-time PPP Ambiguity Resolution with Ionospheric Characteristic Consideration. Proceedings of the 25th International Technical Meeting of the Satellite Division of The Institute of Navigation (ION GNSS 2012), Nashville, TN, September 2012, pp. 3027-3037.

 

Li X, Ge M, Zhang X, Zhang Y, Guo B, Wang R, Klotz J, Wickert J (2013). Realtime high-rate co-seismic displacement from ambiguity-fixed precise point positioning: Application to earthquake early warning. Geophysical Research Letters 40(2):295-300, 
Crossref

 

Li M, Li W, Fang R, Shi C, Zhao Q (2014). Real‐time high‐precision earthquake monitoring using single‐frequency GPS receivers. GPS Solutions 19(1):27-35.
Crossref

 

Li G, B. Ning B, Yuan H (2007). Analysis of ionospheric scintillation spectra and TEC in the Chinese lowlatitude region. Earth Planets Space 59:279-285. 
Crossref

 

Ray S, Paul A, Dasgupta A (2006). Equatorial scintillations in relation to the development of ionization anomaly. Annales Geophysicae, European Geosciences Union 24(5):1429-1442.
Crossref

 

Savastano G, Komjathy A, Verkhoglyadova O, Mazzoni A, Crespi1 M, Wei Y, Mannuccil AJ (2017). Real-Time Detection of Tsunami Ionospheric Disturbances with a Stand-Alone GNSS Receiver: A Preliminary Feasibility Demonstration, Scientific Reports 7(46607). 
Crossref

 

Seo J, Walter T, Enge P (2011). Correlation of GPS signal fades due to ionospheric scintillation for aviation applications, Advances in Space Research 47(10):1777-1788.
Crossref

 

Van Dierendonck, AJ, Klobuchar J, Hua Q (1993). Ionospheric Scintillation Monitoring Using Commercial Single Frequency C/A Code Receivers. Proceedings of the 6th International Technical Meeting of the Satellite.