Computational Intelligence and Neuroscience

Artificial Intelligence and Machine Learning-Driven Decision-Making


Publishing date
01 May 2022
Status
Closed
Submission deadline
17 Dec 2021

Lead Editor

1Guangxi University for Nationalities, Nanning, China

2Huainan Normal University, Huainan, China

3Al-Azhar University, Cairo, Egypt

This issue is now closed for submissions.

Artificial Intelligence and Machine Learning-Driven Decision-Making

This issue is now closed for submissions.

Description

Decision-making refers to the strategy or method of decision. It is a process involving ideas and decisions about certain events. It is a complex process in terms of operations. It includes information collection, processing, judgments, and conclusions. Artificial intelligence (AI) is a subject that looks into computer simulations and assesses certain thinking processes and intelligent behaviours of humans (such as learning, reasoning, thinking, planning, etc.). AI is mainly based on the principles of computer intelligence, enabling computers to have similar intelligence as human brains. For decision-making problems, AI and machine learning (ML) can help us make the best choices. The most commonly used artificial intelligence and learning machine tools for decision making are genetic algorithms, cellular automata, and agent-based models.

Artificial intelligence and learning machine-driven decision-making are widely applied in computer science, engineering, physics, mathematics, and medicine. These types of decision-making include mathematic system theory, fuzzy logic, and fuzzy rules. With AI and ML-driven decision-making, experts in various fields are able to predict and decide the best choices.

The aim of this special issue is to bring together original research and review articles discussing how artificial intelligence and learning machines in decision-making help conduct further research in computer science, engineering, physics, mathematics, and medicine public policy. This Special Issue hopes to provide a platform for researchers to discuss their new findings in understanding how AI and ML can solve decision-making problems.

Potential topics include but are not limited to the following:

  • Artificial intelligence and machine learning-driven decision-making in computer science
  • Artificial intelligence models used for decision-making
  • Machine learning models used for decision-making
  • AI and ML-driven decision-making in medical expert models
  • AI and ML-driven decision-making in fuzzy mathematic models
  • AI and ML-driven decision-making in rough mathematic models
  • AI and ML-driven decision-making in complex models
  • AI and ML-driven decision-making in nonlinear systems control
  • AI and ML-driven decision-making in fractional-order systems control

Articles

  • Special Issue
  • - Volume 2021
  • - Article ID 9023010
  • - Research Article

Intelligent Malaysian Sign Language Translation System Using Convolutional-Based Attention Module with Residual Network

Rehman Ullah Khan | Hizbullah Khattak | ... | Sk. Md. Mizanur Rahman
  • Special Issue
  • - Volume 2021
  • - Article ID 8415333
  • - Research Article

Mixed Script Identification Using Automated DNN Hyperparameter Optimization

Muhammad Yasir | Li Chen | ... | Fazeel Abid
  • Special Issue
  • - Volume 2021
  • - Article ID 6252362
  • - Research Article

Passive Fetal Movement Recognition Approaches Using Hyperparameter Tuned LightGBM Model and Bayesian Optimization

Sensong Liang | Jiansheng Peng | ... | Hemin Ye
  • Special Issue
  • - Volume 2021
  • - Article ID 5620751
  • - Research Article

Unbiased Model-Agnostic Metalearning Algorithm for Learning Target-Driven Visual Navigation Policy

Tianfang Xue | Haibin Yu
  • Special Issue
  • - Volume 2021
  • - Article ID 9990297
  • - Research Article

One-Step Robust Low-Rank Subspace Segmentation for Tumor Sample Clustering

Jian Liu | Yuhu Cheng | ... | Shuguang Ge
  • Special Issue
  • - Volume 2021
  • - Article ID 6316477
  • - Research Article

Langevin Equations with Generalized Proportional Hadamard–Caputo Fractional Derivative

M. A. Barakat | Ahmed H. Soliman | Abd-Allah Hyder
  • Special Issue
  • - Volume 2021
  • - Article ID 4845569
  • - Research Article

An Exponential-Cum-Sine-Type Hybrid Imputation Technique for Missing Data

D. Bhattacharyya | G.N. Singh | ... | Awadhesh K. Pandey
  • Special Issue
  • - Volume 2021
  • - Article ID 2500997
  • - Research Article

A Novel Method for Remaining Useful Life Prediction of Roller Bearings Involving the Discrepancy and Similarity of Degradation Trajectories

Honglin Luo | Lin Bo | ... | Hong Zhang
  • Special Issue
  • - Volume 2021
  • - Article ID 1392903
  • - Research Article

A Blind Watermarking Model of the 3D Object and the Polygonal Mesh Objects for Securing Copyright

Hanan S. Al-Saadi | A. Ghareeb | Ahmed Elhadad
  • Special Issue
  • - Volume 2021
  • - Article ID 8551167
  • - Research Article

Marine Data Prediction: An Evaluation of Machine Learning, Deep Learning, and Statistical Predictive Models

Ahmed Ali | Ahmed Fathalla | ... | Esraa Eldesouky

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