Computational and Mathematical Methods in Medicine

Knowledge Discovery-Based Computational Technologies for Medical Big Data


Publishing date
01 Dec 2022
Status
Published
Submission deadline
12 Aug 2022

Lead Editor
Guest Editors

1City University of Hong Kong, Hong Kong

2Shantou University, Shantou, China

3University of Alberta, Edmonton, Canada


Knowledge Discovery-Based Computational Technologies for Medical Big Data

Description

The advent of the 5G era has greatly promoted the development of telemedicine. However, as medical equipment is upgraded, this causes the amount of obtained medical data to increase exponentially and the data to become high-dimensional, diversified, and multi-structured. Medical big data includes physical parameters, biochemical indicators, electromyogram (EMG) signals, electroencephalogram (EEG) signals, X-ray images, ultrasound, and text files, among others.

Discovering the hidden valuable knowledge in massive and irregular data is challenging work. A new effective approach to deal with medical big data is the use of artificial intelligence (AI) technology, which mainly includes three tasks: supervised learning, semi-supervised learning, and unsupervised learning. Supervised learning is mainly used for disease diagnosis and prediction of medical events, whereas unsupervised learning and semi-supervised learning are mainly used to mine the potential correlation information in medical features. The aim of learning is to find useful information in the original data. Generally speaking, the collected medical original data will be preprocessed, which includes data denoising, filling, dimensionality reduction, and transformation. The mathematical model is then constructed and solved using statistical methods, nonlinear optimization, and intelligent algorithms, among other technologies.

The purpose of this Special Issue is to collect recent research into the construction of innovative mathematical models for medical big data processing and to discuss the latest machine learning methods for processing medical data. We also aim to collect the latest association rule mining methods, classification mining and analysis methods, cluster analysis methods, anomaly mining and analysis methods, and epidemic monitoring and prediction models. We welcome both original research and review articles.

Potential topics include but are not limited to the following:

  • Feature selection technology in medical data
  • Feature extraction technology in medical data
  • Data dimensionality reduction methods in medical data
  • Disease diagnosis and treatment based on medical data
  • Epidemic monitoring and forecasting models based on medical data
  • Mining and analysis models of abnormal medical data
  • Chronic disease prevention models based on medical big data
  • Medical data association rule discovery based on deep learning
  • Health management models based on deep learning
  • Multi-source medical data fusion

Articles

  • Special Issue
  • - Volume 2022
  • - Article ID 6095964
  • - Research Article

Antistroke Network Pharmacological Prediction of Xiaoshuan Tongluo Recipe Based on Drug-Target Interaction Based on Deep Learning

Yongfu Zhou
  • Special Issue
  • - Volume 2022
  • - Article ID 2123162
  • - Research Article

Health Effects of Probiotics on Nonalcoholic Fatty Liver in the Life Cycle Based on Data Analysis

Jia Wang | Yanfei Hao | ... | Mingxin Hu
  • Special Issue
  • - Volume 2022
  • - Article ID 7896367
  • - Research Article

Humanistic Spirit Training of Medical Students Based on Multisource Medical Data Fusion

Jie Bai
  • Special Issue
  • - Volume 2022
  • - Article ID 7902786
  • - Research Article

Analysis and Recognition of Clinical Features of Diabetes Based on Convolutional Neural Network

Rui Wang | Ping Li | Zhengfei Yang
  • Special Issue
  • - Volume 2022
  • - Article ID 3206378
  • - Research Article

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

Zhengfei Yang | Ping Li | Rui Wang
  • Special Issue
  • - Volume 2022
  • - Article ID 9270789
  • - Research Article

Expression and Clinical Significance of Serum Krüppel-Like Factor 7 (KLF7) in NSCLC Patients

Huigai Song | Jingjing Sun | ... | Na Liu
  • Special Issue
  • - Volume 2022
  • - Article ID 5254628
  • - Research Article

Study on the Mechanism of Action of Different Acupuncture Regimens on Premature Ovarian Failure Model Rats

Yonghao Yuan | Qingchang Xia | ... | Jing Zhang
  • Special Issue
  • - Volume 2022
  • - Article ID 5508301
  • - Research Article

Expression of DNA Helicase Genes Was Correlated with Homologous Recombination Deficiency in Breast Cancer

Mengping Long | Hongjun Liu | ... | Taobo Hu

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