scholarly journals A data-driven modeling method to analyze cardiomyocyte impedance data

Author(s):  
Levy Batista ◽  
Thierry Bastogne ◽  
Franck Atienzar ◽  
Annie Delaunois ◽  
Jean-Pierre Valentin
2018 ◽  
Vol 8 (5) ◽  
pp. 1289-1296 ◽  
Author(s):  
Arun Bala Subramaniyan ◽  
Rong Pan ◽  
Joseph Kuitche ◽  
GovindaSamy TamizhMani

2021 ◽  
Author(s):  
Luqi Wang ◽  
Bingke Zhao ◽  
Qizhi Ye ◽  
Anqi Feng ◽  
Weimin Feng

2016 ◽  
Vol 152 ◽  
pp. 88-96
Author(s):  
Qiangda Yang ◽  
Hongbo Gao ◽  
Weijun Zhang ◽  
Zhongyuan Chi ◽  
Zhi Yi

Author(s):  
Mushu Wang ◽  
Yanrong Lu ◽  
Weigang Pan

For the problem of simplifying pattern-based modeling procedures, an improved pattern-based modeling method is put forward via pattern classification for a class of complex processes. It is a pure data-driven modeling method using statistical attributes of the processes. At the beginning of the paper, a method of system dynamics description based on pattern moving is introduced. Then, an improved method of pattern-moving-based prediction modeling is put forward, and it simplifies the pattern-moving-based modeling method by integrating an initial model and a classification mapping. It consists of two parts: system pattern construction and pattern classification. And a constructive classification neural network (CCNN) is designed to describe system dynamics by classifying the system pattern, and its generalization is discussed. Finally, simulations using data of an actual production process demonstrate the feasibility of the proposed modeling method, and the effectiveness of the CCNN is verified using comparison experiments.


Symmetry ◽  
2019 ◽  
Vol 12 (1) ◽  
pp. 30
Author(s):  
Yongxiang He ◽  
Hongwu Guo ◽  
Yang Han

This paper proposes a novel hybrid data-driven modeling method for missiles. Based on actual flight test data, the missile hybrid model is established by combining neural networks and the mechanism modeling method, considering the uncertainties and nonlinear factors in missiles. This method can avoid the problems in missile mechanism modeling and traditional data-driven modeling, and can also provide a solution for nonlinear dynamic system modeling problems in offline usage scenarios. Finally, the feasibility of the proposed method and the credibility of the established model are verified by simulation experiments and statistical analysis.


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