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 3946958
  • - Research Article

A Learning Sparrow Search Algorithm

Chengtian Ouyang | Donglin Zhu | Fengqi Wang
  • Special Issue
  • - Volume 2021
  • - Article ID 1087871
  • - Research Article

Classical and Bayesian Inference of Conditional Stress-Strength Model under Kumaraswamy Distribution

Fathy H. Riad | Mohammad Mehdi Saber | ... | M. M. Abd El-Raouf
  • Special Issue
  • - Volume 2021
  • - Article ID 1896953
  • - Review Article

Usages of Spark Framework with Different Machine Learning Algorithms

Mohamed Ali Mohamed | Ibrahim Mahmoud El-henawy | Ahmad Salah
  • Special Issue
  • - Volume 2021
  • - Article ID 7287796
  • - Research Article

Parameter Tuning of PID Controller for Beer Filling Machine Liquid Level Control Based on Improved Genetic Algorithm

Liqing Xiao
  • Special Issue
  • - Volume 2021
  • - Article ID 3005067
  • - Research Article

Decision-Making for the Lifetime Performance Index

Basim S. O. Alsaedi | M. M. Abd El-Raouf | ... | Saima Khan Khosa
  • Special Issue
  • - Volume 2021
  • - Article ID 3846078
  • - Research Article

An Attention Mechanism Oriented Hybrid CNN-RNN Deep Learning Architecture of Container Terminal Liner Handling Conditions Prediction

Bin Li | Yuqing He
  • Special Issue
  • - Volume 2021
  • - Article ID 5753948
  • - Research Article

A Novel Hadoop Security Model for Addressing Malicious Collusive Workers

Amr M. Sauber | Ahmed Awad | ... | Passent M. El-Kafrawy
  • Special Issue
  • - Volume 2021
  • - Article ID 7653581
  • - Research Article

Estimate Stress-Strength Reliability Model Using Rayleigh and Half-Normal Distribution

Osama Abdulaziz Alamri | M. M. Abd El-Raouf | ... | M. Yusuf

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