Prediction of Metabolic Characteristics of Cardiovascular and Cerebrovascular Diseases Based on Convolutional Neural

Zhengfei Yang1, Ping Li2, Rui Wang1

  • 1Institute of Traditional Chinese Medicine, Ningxia Medical University, Yinchuan 750000, China.

Insights

Convolutional neural networks effectively analyze cardiovascular and cerebrovascular disease indicators by extracting metabolic features. This approach enhances disease prediction and understanding of influencing factors.

Area of Science:

  • Biomedical Engineering
  • Artificial Intelligence in Medicine
  • Cardiovascular Research

Background:

  • Cardiovascular and cerebrovascular diseases pose significant health risks.
  • Existing models struggle to accurately represent cardiovascular and cerebrovascular indicator characteristics.
  • Need for advanced analytical methods to understand disease metabolic factors.

Purpose of the Study:

  • To apply convolutional neural networks (CNNs) for analyzing metabolic factors in cardiovascular and cerebrovascular diseases.
  • To develop an optimized CNN model for predicting disease metabolic characteristics.
  • To investigate the influence of various indicators on disease progression.

Main Methods:

  • Feature extraction from relevant cardiovascular and cerebrovascular parameters using CNNs.
  • Model optimization, theoretical analysis, and experimental verification of indicator trends.
  • Analysis of neuron behavior, bias term influence, and activation function characteristics (ReLU, tanh, sigmoid).

Main Results:

  • CNNs demonstrated effectiveness in analyzing metabolic factors and predicting disease characteristics.
  • Onset signs were found to have the greatest impact, while metabolic characteristics had the least.
  • The study identified typical stage characteristics in the influence of different indicators on the model.

Conclusions:

  • The optimized CNN model accurately predicts metabolic characteristics of cardiovascular and cerebrovascular diseases.
  • CNNs offer a robust framework for analyzing complex biological data in disease research.
  • Findings provide theoretical support for CNN applications in other scientific domains.

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