Elements of artificial intelligence in a predictive personalized model of pharmacotherapy choice in patients with heart failure with mildly reduced ejection fraction of ischemic origin
Aim. To create and train a neural network (NN) of a predictive personalized model of pharmacotherapy choice in patients with heart failure with mildly reduced ejection fraction (HFmrEF) of ischemic origin. Material and methods . The study included 170 people with HFmrEF of ischemic origin, who on th...
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Veröffentlicht in: | Kardiovaskuli͡a︡rnai͡a︡ terapii͡a︡ i profilaktika 2023-09, Vol.22 (7), p.3619 |
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Hauptverfasser: | , , , , , , , , , |
Format: | Artikel |
Sprache: | eng ; rus |
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Zusammenfassung: | Aim.
To create and train a neural network (NN) of a predictive personalized model of pharmacotherapy choice in patients with heart failure with mildly reduced ejection fraction (HFmrEF) of ischemic origin.
Material and methods
. The study included 170 people with HFmrEF of ischemic origin, who on the background standard pharmacotherapy, received a beta-blocker (BB) or BB+mineralocorticoid receptor antagonist eplerenone (EP): bisoprolol (BIS); BIS+EP; nebivolol (NEB); NEB+EP. Patients underwent echocardiography and were analyzed for serum aldosterone (AL), tumor necrosis factor-α (TNF-α), matrix metalloproteinase 9 (MMP-9). To create the NN model, the following approximate predictive function of parameters was used: age, AL, TNF-α, MMP-9, sphericity index (SI), type of pharmacotherapy. The result of this function is a parameter vector: AL, TNF-α, MMP-9, SI and quality of life (QOL). The designed NN model is implemented in the Matlab software package for solving machine learning and Data Science problems. The NN model is represented as a connected graph and NN function. Dichotomous analysis was used to compare the effect of treatment types in pairs. For intergroup comparison of therapy, the Wilcoxon W test method. The critical significance (p) was considered |
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ISSN: | 1728-8800 2619-0125 |
DOI: | 10.15829/1728-8800-2023-3619 |