Scientific Programming

Advanced Scientific Programming Methods for Health Informatics


Publishing date
01 Feb 2022
Status
Published
Submission deadline
08 Oct 2021

Lead Editor

1Jordan University of Science and Technology, Irbid, Jordan

2Rathinam College of Engineering, Coimbatore, India

3University of Cauca, Popayan, Colombia


Advanced Scientific Programming Methods for Health Informatics

Description

Many ailments can be identified by using different modality signals and images such as EEG, ECG, EOG, ERG, EMG, CT, MRI, etc. Hence, there is massive influx of huge multimodality patient data to be analysed quickly and accurately. This requires a high level of scientific programming. Many machine learning (ML) algorithms have been developed to automatically detect the diseases using various feature extraction methods from the images. Extracting the proper features from the medical data using advanced signal processing methods using normal programming is a challenging task. Hence, nowadays advanced scientific programming methods such as Heath 4.0 and deep learning (DL)-based programming is widely used for automated diagnosis.

The advanced scientific programming methods including DL techniques like convolution neural networks (CNN), long short- term memory (LSTM), autoencoder, deep generative models, and deep belief networks have been applied for big data efficiently. Application of such novel scientific programming methods to medical data can aid the clinicians to make an accurate and fast diagnosis.

The aim of this Special Issue is to collate original research and review articles describing advances in this field.

Potential topics include but are not limited to the following:

  • Scientific Programming and Deep learning for ECG and EEG signals, and CT and MRI images
  • Advanced machine learning scientific programming for health informatics
  • Scientific Programming for Health 4.0
  • Deep neural networks for ERG and EOG
  • Nature-based scientific programming methods for biomedical signal and image processing
  • Deep learning vs traditional machine learning comparative analysis of bio-signals
  • Reviews on various soft computing-based scientific programming architectures for biomedical signals
  • Scientific Programming in VLSI-based Health Informatics
  • Scientific Programming for medical imaging-based healthcare
  • Scientific Programming for real-time analysis of health data for sports, fitness, etc.
  • Scientific Programming for medical statistics analysis like ANOVA
  • Online Scientific Programming for healthcare and emergency

Articles

  • Special Issue
  • - Volume 2021
  • - Article ID 3314457
  • - Research Article

Deep Learning-Based Assessment of Adverse Cardiovascular Events in Elderly Patients with Coronary Heart Disease after Percutaneous Coronary Intervention Using Intravascular Ultrasound Images

Shu Wang
  • Special Issue
  • - Volume 2021
  • - Article ID 2274443
  • - Research Article

Diagnostic Value of CT Angiography Combined with High-Resolution Magnetic Resonance Angiography in Vascular Lesions in Acute Stroke

Mingyang Zou | Junjie Liao | ... | Bowen Lan
  • Special Issue
  • - Volume 2021
  • - Article ID 8399153
  • - Research Article

Analysis of Glomerular Filtration Rate in Ischemic Cerebrovascular Diseases under the Magnetic Resonance Angiography Image Segmentation Algorithm

Yong Ding | Yuebin Liu | ... | Mingyu Liu
  • Special Issue
  • - Volume 2021
  • - Article ID 5257682
  • - Research Article

Diagnostic Value of Chest CT Images Based on Full Model Iterative Reconstruction Algorithm for Lung Cancer Patients

Xia Li | Zhanqiang Song | ... | Junyu Chen
  • Special Issue
  • - Volume 2021
  • - Article ID 7773473
  • - Research Article

Comparison of Effects of Radiofrequency Ablation of Liver Cancer Guided by CT Images Based on Deep Learning Algorithm

Kai Huang | Tongqing Zhang | ... | Fengxia Wang
  • Special Issue
  • - Volume 2021
  • - Article ID 4614234
  • - Research Article

Automatic Segmentation Algorithm of Magnetic Resonance Image in Diagnosis of Liver Cancer Patients under Deep Convolutional Neural Network

Jinling Zhang | Jun Yang | Min Zhao
  • Special Issue
  • - Volume 2021
  • - Article ID 2223344
  • - Research Article

[Retracted] K-Means Clustering Algorithm-Based Detection of Carotid Atherosclerotic Plaque Using Contrast-Enhanced Ultrasound Images

Ruitao Zhou | Ruijie Zhou | Zhibo Zhu
  • Special Issue
  • - Volume 2021
  • - Article ID 2285884
  • - Research Article

Intelligent Algorithms-Based CT Image Segmentation in Patients with Cardiovascular Diseases and Realization of Visualization Algorithms

Xianhua Huang
  • Special Issue
  • - Volume 2021
  • - Article ID 8292597
  • - Research Article

The Clinical Value of High-Frequency Ultrasound in the Diagnosis of Psoriatic Arthritis

Jing Yang | Hanfei Peng | Guangyan Yan
  • Special Issue
  • - Volume 2021
  • - Article ID 4505147
  • - Research Article

Convolutional Neural Network Optimization Algorithm-Based Magnetic Resonance Imaging in Analysis of Chronic Pain Caused by the Myofascial Trigger Point

Xin Jin | Lei Fan | Yongling Yao
Scientific Programming
 Journal metrics
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Acceptance rate7%
Submission to final decision126 days
Acceptance to publication29 days
CiteScore1.700
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