Combining data fusion with multiresolution analysis for improving the classification accuracy of uterine EMG signals

被引:14
作者
Moslem, Bassam [1 ,2 ]
Diab, Mohamad [3 ]
Khalil, Mohamad [2 ]
Marque, Catherine [1 ]
机构
[1] Univ Technol Compiegne, Lab Biomecan & Bioingn, CNRS, UMR 6600, F-60205 Compiegne, France
[2] Lebanese Univ, Azm Ctr Res Biotechnol & Its Applicat, LASTRE Lab, Tripoli, Libya
[3] Rafik Hariri Univ RHU, Coll Engn, Bioinstrumentat Dept, Meshref, Lebanon
关键词
Multichannel analysis; Data fusion; Wavelet packet Transform (WPT); Uterine electromyogram (EMG); Labor detection; ELECTROMYOGRAPHY; PREGNANCY; TERM;
D O I
10.1186/1687-6180-2012-167
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Multisensor data fusion is a powerful solution for solving difficult pattern recognition problems such as the classification of bioelectrical signals. It is the process of combining information from different sensors to provide a more stable and more robust classification decisions. We combine here data fusion with multiresolution analysis based on the wavelet packet transform (WPT) in order to classify real uterine electromyogram (EMG) signals recorded by 16 electrodes. Herein, the data fusion is done at the decision level by using a weighted majority voting (WMV) rule. On the other hand, the WPT is used to achieve significant enhancement in the classification performance of each channel by improving the discrimination power of the selected feature. We show that the proposed approach tested on our recorded data can improve the recognition accuracy in labor prediction and has a competitive and promising performance.
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页数:9
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