Novel Hybrid Extraction Systems for Fetal Heart Rate Variability Monitoring Based on Non-Invasive Fetal Electrocardiogram

被引:33
|
作者
Jaros, Rene [1 ]
Martinek, Radek [1 ]
Kahankova, Radana [1 ]
Koziorek, Jiri [1 ]
机构
[1] VSB Tech Univ Ostrava, Fac Elect Engn & Comp Sci, Dept Cybernet & Biomed Engn, Ostrava 70800, Czech Republic
来源
IEEE ACCESS | 2019年 / 7卷
关键词
Noninvasive fetal electrocardiography; independent component analysis (ICA); adaptive neuro fuzzy inference system (ANFIS); recursive least squares (RLS); wavelet transform (WT); ICA-ANFIS-WT; ICA-RLS-WT; hybrid methods; fetal heart rate variability monitoring; extraction systems; INDEPENDENT COMPONENT ANALYSIS; CESAREAN-SECTION RATE; ECG EXTRACTION; PERINATAL-MORTALITY; ALTERNATIVE MODES; SOURCE SEPARATION; ECONOMIC-ASPECTS; PEAK DETECTION; ICA ALGORITHM; OPTIMIZATION;
D O I
10.1109/ACCESS.2019.2933717
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
This study focuses on the design, implementation and subsequent verification of a new type of hybrid extraction system for noninvasive fetal electrocardiogram (NI-fECG) processing. The system designed combines the advantages of individual adaptive and non-adaptive algorithms. The pilot study reviews two innovative hybrid systems called ICA-ANFIS-WT and ICA-RLS-WT. This is a combination of independent component analysis (ICA), adaptive neuro-fuzzy inference system (ANFIS) algorithm or recursive least squares (RLS) algorithm and wavelet transform (WT) algorithm. The study was conducted on clinical practice data (extended ADFECGDB database and Physionet Challenge 2013 database) from the perspective of non-invasive fetal heart rate variability monitoring based on the determination of the overall probability of correct detection (ACC), sensitivity (SE), positive predictive value (PPV) and harmonic mean between SE and PPV (F1). System functionality was verified against a relevant reference obtained by an invasive way using a scalp electrode (ADFECGDB database), or relevant reference obtained by annotations (Physionet Challenge 2013 database). The study showed that ICA-RLS-WT hybrid system achieve better results than ICA-ANFIS-WT. During experiment on ADFECGDB database, the ICA-RLS-WT hybrid system reached ACC > 80 % on 9 recordings out of 12 and the ICA-ANFIS-WT hybrid system reached ACC > 80 % only on 6 recordings out of 12. During experiment on Physionet Challenge 2013 database the ICA-RLS-WT hybrid system reached ACC > 80 % on 13 recordings out of 25 and the ICA-ANFIS-WT hybrid system reached ACC > 80 % only on 7 recordings out of 25. Both hybrid systems achieve provably better results than the individual algorithms tested in previous studies.
引用
收藏
页码:131758 / 131784
页数:27
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