Pulse regression model-based electrocardiography data correction method and system
An electrocardiographic signal and regression model technology, applied in electrical digital data processing, computational models, biological models, etc., can solve the problems of incomplete feature extraction, low efficiency and accuracy, and poor learning effect.
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[0074] The present invention provides a method and system for selecting ECG signal features based on the Memetic algorithm. In order to make the purpose, technical solution and effect of the present invention clearer and clearer, the present invention will be further described in detail below. It should be understood that the specific embodiments described here are only used to explain the present invention, not to limit the present invention.
[0075] see figure 2 , figure 2 It is a flow chart of a preferred embodiment of an ECG signal feature selection method based on the Memetic Algorithm (MA) of the present invention, combined with image 3 Shown flow chart, method of the present invention it comprises steps:
[0076] S101. Let the input ECG signal data set be F ={( F 1 , t 1 ),( F 2 , t 2 )…,( F n , t n ),…( F N , t N )},in F n , t n respectively n signal vectors with sample labels, N is the total number of samples, and the signal dime...
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