The Performance of Short-Term Heart Rate Variability in the Detection of Congestive Heart Failure

被引:6
|
作者
Lucena, Fausto [1 ,2 ]
Barros, Allan Kardec [2 ]
Ohnishi, Noboru [3 ]
机构
[1] Univ CEUMA, BR-65903093 Imperatriz, MA, Brazil
[2] Univ Fed Maranhao, Lab Biol Informat Proc, S-N, Sao Luis, MA, Brazil
[3] Nagoya Univ, Grad Sch Informat Sci, Chikusa Ku, Nagoya, Aichi 4648603, Japan
关键词
TIME-FREQUENCY ANALYSIS; SUDDEN CARDIAC DEATH; COMPONENT ANALYSIS; DIAGNOSIS; SIGNALS; POWER; CLASSIFICATION; PREVENTION; PREDICTION; SYSTEM;
D O I
10.1155/2016/1675785
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Congestive heart failure (CHF) is a cardiac disease associated with the decreasing capacity of the cardiac output. It has been shown that the CHF is the main cause of the cardiac death around the world. Some works proposed to discriminate CHF subjects from healthy subjects using either electrocardiogram (ECG) or heart rate variability (HRV) from long-term recordings. In this work, we propose an alternative framework to discriminate CHF from healthy subjects by using HRV short-term intervals based on 256 RR continuous samples. Our framework uses a matching pursuit algorithm based on Gabor functions. From the selected Gabor functions, we derived a set of features that are inputted into a hybrid framework which uses a genetic algorithm and k-nearest neighbour classifier to select a subset of features that has the best classification performance. The performance of the framework is analyzed using both Fantasia and CHF database from Physionet archives which are, respectively, composed of 40 healthy volunteers and 29 subjects. From a set of nonstandard 16 features, the proposed framework reaches an overall accuracy of 100% with five features. Our results suggest that the application of hybrid frameworks whose classifier algorithms are based on genetic algorithms has outperformed well-known classifier methods.
引用
收藏
页数:11
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