BioMed Research International

Artificial Neural Networks for Diagnosis of Diseases


Publishing date
01 Jan 2023
Status
Published
Submission deadline
26 Aug 2022

Lead Editor

1Institute of Life Sciences, Bhubaneswar, India

2Liverpool John Moores University, Liverpool, UK

3Southeast University, Nanjing, China

4Thiruvalluvar University, Vellore, India


Artificial Neural Networks for Diagnosis of Diseases

Description

Artificial neural networks provide a powerful tool to help doctors analyze, model, and make sense of complex clinical data across a broad range of medical applications. Most applications of artificial neural networks in medicine are classification problems. An artificial neural network (ANN) is a computational model that attempts to account for the parallel nature of the human brain. It is a network of highly interconnected processing elements (neurons) operating in parallel. These elements are inspired by biological nervous systems.

Medical diagnosis using artificial intelligence (AI) systems, particularly artificial neural networks and computer-aided diagnosis with deep learning, is currently a very active research area in medicine and it is believed that it will be more widely used in biomedical systems. Evolving neural network techniques for medical diagnosis are broadly considered since they are ideal in recognizing diseases using scans. Neural networks learn by example so the details of how to recognize the disease are not needed. For instance, the utilization of deep learning-based ANN models aids in the timely diagnosis of gastric cancer with sensitivity and specificity. Advances in deep learning-based ANN models achieve efficacy, accuracy, and reliability in diagnosis. The utilization of other evolving technologies in this field is key for better diagnosis, having a significant impact on preventive measures and treatment. Despite the great benefits of novel technologies in healthcare, patients need protection from defective diagnoses to create a promising future in medical applications within society.

This Special Issue calls for original research and review articles covering artificial intelligence, deep learning, ANN, and other evolving techniques for the diagnosis of diseases.

Potential topics include but are not limited to the following:

  • Evolving deep learning-based ANN techniques in diagnosis and prognosis of the disease in real-time
  • Hybrid AI models for breast cancer metastasis detection with precision
  • Adaptive deep ensemble learning methods in cancer diagnosis for optimal performance
  • Deep neural network-based decision support systems for intelligent cardiovascular diseases diagnosis
  • Advances in deep neural network and machine learning models for diagnosis of kidney diseases
  • Deep learning-based computer-aided diagnosis and imaging markers tools for liver cancer
  • Challenges and applications of deep learning neural network techniques in diagnosing skin diseases
  • Novel prediction models and analysis in real-time for pancreatic cancer and targeted therapy
  • Computational intelligence approaches in the diagnosis of thyroid cancer diseases
  • Development and validations of new technologies in diagnosis and grading of prostate cancer
  • Machine learning-based histopathologic cancer detection and uncertainty mitigation strategies
  • Emerging measurements and improvements in microRNA for cancer screening based on deep neural networks
  • Technological advancements in DNA-methylation for early detection and management of cancer
  • Deep learning-based single-cell RNA-sequencing analysis tools and their applications in cancer

Articles

  • Special Issue
  • - Volume 2023
  • - Article ID 9854198
  • - Retraction

Retracted: Deconstruction of the Prevention of Knee Osteoarthritis by Swimming Based on Data Mining Technology

BioMed Research International
  • Special Issue
  • - Volume 2023
  • - Article ID 9821864
  • - Retraction

Retracted: Infiltration and Significance of CD103+CD8+ T Cells in Gastrointestinal Adenocarcinoma

BioMed Research International
  • Special Issue
  • - Volume 2023
  • - Article ID 9820903
  • - Retraction

Retracted: Effect of Medical Image Fusion in the Treatment of Poststroke Limb Dysfunction with Acupuncture and Moxibustion of Traditional Chinese Medicine

BioMed Research International
  • Special Issue
  • - Volume 2023
  • - Article ID 9794860
  • - Retraction

Retracted: Simulation Analysis and Study of Gait Stability Related to Motion Joints

BioMed Research International
  • Special Issue
  • - Volume 2023
  • - Article ID 9897376
  • - Retraction

Retracted: Meta-Analysis of Prognostic Correlation of Thrombectomy for Cerebral Infarction Based on Intelligent Medical Treatment

BioMed Research International
  • Special Issue
  • - Volume 2023
  • - Article ID 9862326
  • - Retraction

Retracted: Artificial Neural Network Assisted Cancer Risk Prediction of Oral Precancerous Lesions

BioMed Research International
  • Special Issue
  • - Volume 2023
  • - Article ID 9897814
  • - Retraction

Retracted: Correlation between Collateral Compensation and Homocysteine Levels in Patients with Acute Cerebral Infarction after Intravenous Thrombolysis Based on Medical Big Data

BioMed Research International
  • Special Issue
  • - Volume 2023
  • - Article ID 9854915
  • - Retraction

Retracted: A2/B1 Promotes NRF2 mRNA Stability and Inhibits Ferroptosis and Cell Proliferation in Breast Cancer Cells

BioMed Research International
  • Special Issue
  • - Volume 2023
  • - Article ID 9757494
  • - Retraction

Retracted: System Construction of Athlete Health Information Protection Based on Machine Learning Algorithm

BioMed Research International
  • Special Issue
  • - Volume 2023
  • - Article ID 9813815
  • - Retraction

Retracted: Changes and Influencing Factors of Stress Disorder in Patients with Mild Traumatic Brain Injury Stress Disorder

BioMed Research International
BioMed Research International
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Acceptance rate8%
Submission to final decision110 days
Acceptance to publication24 days
CiteScore5.300
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