Numerical validations of neural-network-based ionospheric tomography for disturbed ionospheric conditions and sparse data

被引:24
作者
Hirooka, S. [1 ]
Hattori, K. [1 ]
Takeda, T. [2 ]
机构
[1] Chiba Univ, Grad Sch Sci, Inage Ku, Chiba 2638522, Japan
[2] Univ Electrocommun, Dept Comp Sci, Tokyo 1828585, Japan
基金
日本学术振兴会;
关键词
ELECTRON-DENSITY PROFILES; GLOBAL POSITIONING SYSTEM; 26; DECEMBER; 2004; COMPUTERIZED-TOMOGRAPHY; GPS; EARTHQUAKE; IONOSONDE;
D O I
10.1029/2011RS004760
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Three-dimensional ionospheric tomography is effective for investigations of the dynamics of ionospheric phenomena. However, it is an ill-posed problem in the context of sparse data, and accurate electron density reconstruction is difficult. The Residual Minimization Training Neural Network (RMTNN) tomographic approach, a multilayer neural network trained by minimizing an objective function, allows reconstruction of sparse data. In this study, we validate the reconstruction performance of RMTNN using numerical simulations based on both sufficiently sampled and sparse data. First, we use a simple plasma-bubble model representing the disturbed ionosphere and evaluate the reconstruction performance based on 40 GPS receivers in Japan. We subsequently apply our approach to a sparse data set obtained from 24 receivers in Indonesia. The reconstructed images from the disturbed and sparse data are consistent with the model data, except below 200 km altitude. To improve this performance and limit any discrepancies, we used information on the electron density in the lower ionosphere. The results suggest the restricted RMTNN-tomography-assisted approach is very promising for investigations of ionospheric electron density distributions, including studies of irregular structures in different regions. In particular, RMTNN constrained by low-Earth-orbit satellite data is effective in improving the reconstruction accuracy.
引用
收藏
页数:13
相关论文
共 31 条
[1]   NEW LOOK AT STATISTICAL-MODEL IDENTIFICATION [J].
AKAIKE, H .
IEEE TRANSACTIONS ON AUTOMATIC CONTROL, 1974, AC19 (06) :716-723
[2]   STUDIES OF PLANETARY ATMOSPHERES .1. DISTRIBUTION OF ELECTRONS + IONS IN EARTHS EXOSPHERE [J].
ANGERAMI, JJ ;
THOMAS, JO .
JOURNAL OF GEOPHYSICAL RESEARCH, 1964, 69 (21) :4537-+
[3]   IONOSPHERIC IMAGING USING COMPUTERIZED-TOMOGRAPHY [J].
AUSTEN, JR ;
FRANKE, SJ ;
LIU, CH .
RADIO SCIENCE, 1988, 23 (03) :299-307
[4]   Detection of ionospheric perturbations using a dense GPS array in Southern California [J].
Calais, E ;
Haase, JS ;
Minster, JB .
GEOPHYSICAL RESEARCH LETTERS, 2003, 30 (12) :30-1
[5]   Combining ionosonde with ground GPS data for electron density estimation [J].
García-Fernández, M ;
Hernández-Pajares, M ;
Juan, JM ;
Sanz, J ;
Orús, R ;
Coisson, P ;
Nava, B ;
Radicella, SM .
JOURNAL OF ATMOSPHERIC AND SOLAR-TERRESTRIAL PHYSICS, 2003, 65 (06) :683-691
[6]   Upper bound of the expected training error of neural network regression for a Gaussian noise sequence [J].
Hagiwara, K ;
Hayasaka, T ;
Toda, N ;
Usui, S ;
Kuno, K .
NEURAL NETWORKS, 2001, 14 (10) :1419-1429
[7]   Ionospheric electron density profiles obtained with the global positioning system: Results from the GPS/MET experiment [J].
Hajj, GA ;
Romans, LJ .
RADIO SCIENCE, 1998, 33 (01) :175-190
[8]   IMAGING THE IONOSPHERE WITH THE GLOBAL POSITIONING SYSTEM [J].
HAJJ, GA ;
IBANEZMEIER, R ;
KURSINSKI, ER ;
ROMANS, LJ .
INTERNATIONAL JOURNAL OF IMAGING SYSTEMS AND TECHNOLOGY, 1994, 5 (02) :174-&
[9]   Detection of ruptures of Andaman fault segments in the 2004 great Sumatra earthquake with coseismic ionospheric disturbances [J].
Heki, Kosuke ;
Otsuka, Yuichi ;
Choosakul, Nithiwatthn ;
Hemmakorn, Narong ;
Komolmis, Tharadol ;
Maruyama, Takashi .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2006, 111 (B9)
[10]   Ionospheric electron density anomaly prior to the December 26, 2006 M7.0 Pingtung earthquake doublet observed by FORMOSAT-3/COSMIC [J].
Hsiao, C. C. ;
Liu, J. Y. ;
Oyama, K. -I. ;
Yen, N. L. ;
Wang, Y. H. ;
Miau, J. J. .
PHYSICS AND CHEMISTRY OF THE EARTH, 2009, 34 (6-7) :474-478