Journal of Healthcare Engineering

Explainable Artificial Intelligence for Medical Applications


Publishing date
01 Jun 2022
Status
Published
Submission deadline
14 Jan 2022

Lead Editor

1Jordan University of Science and Technology, Irbid, Jordan

2Rathinam College of Engineering, Coimbatore, India

3University of Cauca, Popayan, Colombia


Explainable Artificial Intelligence for Medical Applications

Description

Medical products and services are built around trust and high ethical standards. To meet these high requirements, the next-generation medical support software must address the issues that arise from using deep neural networks. Deep neural networks are expected to transform the health care sector. These machine algorithms are adaptable, updated continuously and are immune against inter-and intra- observer variability. Most importantly, they promise cost-effective solutions.

However, these software frameworks are man-made. Therefore, these structures are not perfect. Issues arise from the data which underpins the training process. For example, the training data might be biased and therefore it fails to reflect the measurements encountered in clinical practice. Inevitably, the deep learning algorithms and frameworks which use these algorithms are susceptible to software and hardware errors. In addition, deep learning algorithms constitute a singular decision point where it is impossible, with reasonable effort to trace into the network structure to establish the cause of a particular decision. Big data and associated processing methods are needed to address public health problems, such as cardiovascular disease, fever, obesity, and diabetes. The data comes from physiological signals and medical images. The fundamental assumption is that this data contains valuable information that can be used during the diagnosis process. Deep learning techniques, like convolution neural networks (CNN), long short-term memory (LSTM), autoencoder, deep generative models, and deep belief networks have been used to provide medical decision support. The application of such novel methods to medical data can aid clinicians to make accurate and fast diagnoses.

This aim of this Special Issue is to bring together original research and review articles discussing on the methods and software frameworks needed to build trust in artificial intelligence (AI) for healthcare applications.

Potential topics include but are not limited to the following:

  • Explainable AI methods for precision medicine
  • Explainable AI and Internet of Medical Things for medical devices
  • Explainable AI for targeted drug delivery
  • Explainable AI for medical image segmentation
  • Explainable knowledge maintenance and evolution in health care technologies
  • Context-aware systems and their applications in healthcare
  • Explainable AI-based analytics for patient-specific health care
  • AI-assisted decision-making in healthcare
  • Explainable AI robotic-assisted surgery
  • Case studies of machine learning and health informatics with explainable AI

Articles

  • Special Issue
  • - Volume 2022
  • - Article ID 2345600
  • - Review Article

Implementation of Whale Optimization for Budding Healthiness of Fishes with Preprocessing Approach

Pravin R. Kshirsagar | Hariprasath Manaoharan | ... | Venkatesa Prabhu Sundramurthy
  • Special Issue
  • - Volume 2022
  • - Article ID 3384102
  • - Research Article

Speckle Noise Algorithm-Based Ultrasound Imaging in Evaluating the Therapeutic Effect of Blood Purification on Children with Kidney Failure and Analysis of Its Correlation with Serum Inflammatory Factor Levels

Xueqin Li | Hui Guo | ... | Xiuying Chen
  • Special Issue
  • - Volume 2022
  • - Article ID 7011836
  • - Research Article

Mediating Role of Mental Resilience between Sleep Quality and Mindfulness Level of Pregnant Women Screened by Prenatal Diagnosis

Jinhan Liu | Xiaoxin Yan | ... | Shengqiang Zou
  • Special Issue
  • - Volume 2022
  • - Article ID 4574027
  • - Research Article

[Retracted] MiR-483 Promotes Colorectal Cancer Cell Biological Progression by Directly Targeting NDRG2 through Regulation of the PI3K/AKT Signaling Pathway and Epithelial-to-Mesenchymal Transition

Xifeng Sun | Kun Li | ... | Xiaogang Leng
  • Special Issue
  • - Volume 2022
  • - Article ID 9188553
  • - Research Article

Data Mining and Meta-Analysis of Psoriasis Based on Association Rules

Jiarui Ou | Jianglin Zhang
  • Special Issue
  • - Volume 2022
  • - Article ID 2261854
  • - Research Article

[Retracted] Analysis on Value of Applying Serum miR-144 and miR-221 Levels in Diagnosing Atherosclerosis

Jianxiu Zhang | Qian Cao | ... | Lizhong Wang
  • Special Issue
  • - Volume 2022
  • - Article ID 3282860
  • - Research Article

[Retracted] The Exosomes Containing LINC00461 Originated from Multiple Myeloma Inhibit the Osteoblast Differentiation of Bone Mesenchymal Stem Cells via Sponging miR-324-3p

Yang Wu | Zhemei Zhang | ... | Guosheng Ding
  • Special Issue
  • - Volume 2022
  • - Article ID 9707206
  • - Research Article

[Retracted] LncRNA MAGI2-As3 Suppresses the Proliferation and Invasion of Cervical Cancer by Sponging MiR-15b

Yiqing Chai | Lili Wang | ... | Zhixia Hu
  • Special Issue
  • - Volume 2022
  • - Article ID 9904870
  • - Research Article

Artificial Intelligence-Based Smart Comrade Robot for Elders Healthcare with Strait Rescue System

Golda Dilip | Ramakrishna Guttula | ... | Venkatesa Prabhu Sundramurthy
  • Special Issue
  • - Volume 2022
  • - Article ID 1892123
  • - Research Article

Application of Internet of Things on the Healthcare Field Using Convolutional Neural Network Processing

J. Mohana | Bhaskarrao Yakkala | ... | Venkatesa Prabhu Sundramurthy

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