Computational Intelligence and Neuroscience

Artificial Intelligence and Machine Learning-Driven Decision-Making and Control 2022


Publishing date
01 Jan 2023
Status
Published
Submission deadline
09 Sep 2022

Lead Editor

1Guangxi University for Nationalities, Nanning, China

2Guangdong University of Technology, Guangzhou, China

3Universidad Politécnica de Madrid, Madrid, Spain

4Huainan Normal University, Huainan, China


Artificial Intelligence and Machine Learning-Driven Decision-Making and Control 2022

Description

Decision-making refers to a process involving ideas and decisions about certain events. It is a complex process in terms of operations, which 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 behaviors of humans, such as learning, reasoning, and planning. AI is mainly based on the principles of computer intelligence, enabling computers to have similar intelligence as human brains. AI and machine learning (ML) can help us make the best choices for decision-making problems. The most commonly used AI and ML tools for decision-making are genetic algorithms, cellular automata, and agent-based models.

The use of AI and ML models has become increasingly widespread especially in data-driven and user-driven applications, where data can be collected and ingested in complex ML models in the cloud and later run on modern powerful handheld devices. At an industrial level, in robotics and embedded systems there are several applications where AI solutions are being tested and new hardware accelerating AI and ML loads even in relatively low cost embedded systems. This new approach to traditional applications is being driven by industry 4.0, making the collection of data in the field easier and more cost effective. AI and ML solutions promise the capability of enabling complex decision making on the edge at the field without the need to send large amounts of data to process offsite or to cloud services.

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:

  • AI and ML-driven decision-making in system control
  • AI and ML models used for for decision-making and control
  • 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
  • Cost driven AI and ML design and implementations

Articles

  • Special Issue
  • - Volume 2022
  • - Article ID 9173249
  • - Research Article

Adaptive Fuzzy Controller Design for Uncertain Robotic Manipulators Subject to Nonlinear Dead Zone Inputs

Hua Zhang
  • Special Issue
  • - Volume 2022
  • - Article ID 4144569
  • - Research Article

A New Type of Air Conditioning System Based on Finned Ceiling Radiant Coupled with Independent Fresh Air and Its Thermal Comfort Experimental Study

Wenqi Qin | Yingning Hu | ... | Yubang Hu
  • Special Issue
  • - Volume 2022
  • - Article ID 7984852
  • - Research Article

Empirical Analysis of Customer Risk and Corporate Financing Constraints Based on Supply Chain Networks

Qun Bao | Ju-Ying Wang | ... | Zheng-Qun Cai
  • Special Issue
  • - Volume 2022
  • - Article ID 2988639
  • - Research Article

Research and Implementation of Text Generation Based on Text Augmentation and Knowledge Understanding

Lei Liu | Yeguo Sun | ... | Rodolfo C. Raga
  • Special Issue
  • - Volume 2022
  • - Article ID 9249530
  • - Research Article

An Efficient Deep Learning Mechanism for the Recognition of Olive Trees in Jouf Region

Hamoud H. Alshammari | Osama R. Shahin
  • Special Issue
  • - Volume 2022
  • - Article ID 1200611
  • - Research Article

Ridge Regression Method and Bayesian Estimators under Composite LINEX Loss Function to Estimate the Shape Parameter in Lomax Distribution

Mansour F. Yassen | Fuad S. Al-Duais | Mohammed M. A. Almazah
  • Special Issue
  • - Volume 2022
  • - Article ID 3585506
  • - Research Article

Generative Adversarial Network Combined with SE-ResNet and Dilated Inception Block for Segmenting Retinal Vessels

Chen Yue | Mingquan Ye | ... | Xiaojie Lu
  • Special Issue
  • - Volume 2022
  • - Article ID 6319197
  • - Research Article

Estimation of Parameters and Pooling in Nonlinear Flooding Event Scenarios with Bayesian Model

Fuad S. Alduais | Taghreed M. Jawa
  • Special Issue
  • - Volume 2022
  • - Article ID 5169259
  • - Research Article

Improved Method of Blockchain Cross-Chain Consensus Algorithm Based on Weighted PBFT

Liu Lei | Liangtu Song | Jiahua Wan
  • Special Issue
  • - Volume 2022
  • - Article ID 8005249
  • - Research Article

Dynamic Evaluation of Transformation Ability for Emergency Scientific Research Achievements Based on an Improved Minimum Distance-Maximum Entropy Combination Weighting Method: A Case Study of COVID-19 Epidemic Data

Qingmei Tan | Juan Hui

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