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基于蟻群算法的表面肌電信號特征選擇

Feature selection for surface electromyography signal based on ant colony optimization

作者: 黃虎  謝洪波 
單位:江蘇大學(xué)電氣信息工程學(xué)院(江蘇鎮(zhèn)江 212013)
關(guān)鍵詞: 表面肌電信號;特征選擇;蟻群算法;最小冗余-最大相關(guān)算法;模式識別 
分類號:
出版年·卷·期(頁碼):2012·31·2(164-169)
摘要:

目的 為提高假肢系統(tǒng)對動作信號的識別速度,設(shè)計了基于優(yōu)化蟻群算法(ant colony optimization,ACO)的特征選擇法,對表面肌電信號(surface electromyography,sEMG)高維特征向量降維以減少計算負擔(dān)。方法 以特征與目標(biāo)類型之間互信息關(guān)系作為啟發(fā)函數(shù),通過蟻群算法選出最佳特征子集,最后用已訓(xùn)練好的人工神經(jīng)網(wǎng)絡(luò)檢驗其分類性能。結(jié)果 對10名健康受試者進行了手腕部動作的肌電信號模式分類實驗。與傳統(tǒng)主成分分析法(principle component analysis,PCA)相比,該算法選出的特征子集提高了識別準(zhǔn)確率,并顯著降低了原始特征集的特征維數(shù),進而簡化分類器的結(jié)構(gòu),減少計算開銷。結(jié)論 本方法在實時性要求高的肌電控制假肢等系統(tǒng)中具有良好的應(yīng)用前景。

Objective To improve the classification performance of the surface electromyography (sEMG)-based prosthesis and reduce the dimensions of features extracted from the sEMG signals,a modified ant colony optimization(ACO)was employed to select the best feature subset. Methods The relationship between features and target classes was calculated as the heuristic function and the best feature subset was selected by ACO,and the trained artificial nerve net was utilized to verify the classification performance. Results Ten healthy subjects participated in the experiment on classification of hand and wrist motion using sEMG signals. Compared to the principle component analysis(PCA)-based feature subsets,the ACO-reduced feature subsets not only improved the classification accuracy but greatly reduced the number of features in the original feature set,which subsequently simplified the structure of the classifier and reduced the computational cost. Conclusions The proposed method exhibits a great potential in the real-time applications,such as sEMG-based prosthesis control.

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