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Found 3841 matches for "All Articles"

Comparison of Epilepsy Induced by Ischemic Hypoxic Brain Injury and Hypoglycemic Brain Injury using Multilevel Fusion of Data Features

The study aims to investigate the similarities and differences in the brain damage caused by Hypoxia-Ischemia (HI), Hypoglycemia, and Epilepsy. Hypoglycemia poses a significant challenge in improving glycemic regulation for insulin-treated patients, while HI brain disease in neonates is associated with low oxygen levels. The study examines the possibility of using a combination of medical data and Electroencephalography (EEG) measurements to predict outcomes over a two-year period. The study employs a multilevel fusion of data features to enhance the accuracy of the predictions. Therefore this paper suggests a hybridized classification model for Hypoxia-Ischemia and Hypoglycemia, Epilepsy brain injury (HCM-BI). A Support Vector Machine is applied with clinical details to define the Hypoxia-Ischemia outcomes of each infant. The newborn babies are assessed every two years again to know the neural development results. A selection of four attributes is derived from the Electroencephalography records, and SVM does not get conclusions regarding the classification of diseases. The final feature extraction of the EEG signal is optimized by the Bayesian Neural Network (BNN) to get the clear health condition of Hypoglycemia and Epilepsy patients. Through monitoring and assessing physical effects resulting from Electroencephalography,  The Bayesian Neural Network (BNN) is used to extract the test samples with the most log data and to report hypoglycemia and epilepsy patients non-invasively. The experimental findings demonstrate that the suggested strategy improves accuracy by 95.05% and reduces the error rate to 0.41 when comparing diseases.

groups
Sameer Kadem mail -
Noor Sami mail -
Ahmed Elaraby mail -
Shahad Alyousif mail -
Mohammed Jalil mail -
M. Altaee mail -
Muntather Almusawi mail -
Ismaeel, A. Ghany mail -
Ali Kamil Kareem mail -
Massila Kamalrudin mail -
Adnan Allwi ftaiet mail
link https://doi.org/10.54216/FPA.100106

Volume & Issue

Vol. Volume 10 / Iss. Issue 1

Details open_in_new

Intelligent Multilevel Fusion System for Wireless Sensor Network Virtualization Using Deep Reinforcement Learning in Education

wireless sensor networks (WSN) in ubiquitous learning environments to enhance teaching and learning quality. WSNs can serve as a learner-to-context interface, enabling learners to interact with the learning environment while collecting contextual information. With the help of WSN virtualization technology, learners can leverage different virtualized characteristics of the state-of-the-art WSN and engage with the ubiquitous learning paradigm to gain knowledge and skills. The report examines the current state of WSN virtualization and its potential for sharing in this context. Research concerns are discussed in-depth, and an in-depth overview of the current state of the art is provided. This paper presents the fundamentals of WSN virtualization and argues for its usefulness. By allowing learners to learn while on the go in an environment that interests them, gadgets and embedded computers work together to keep students connected to their learning environment. Recent years have seen an increase in interest in deep reinforcement learning technologies. Despite the availability of several internet resources for researching this field, it might be challenging for those just getting started to design effective teaching systems for autonomous vehicles. This article offers a model for a highly effective and interactive ubiquitous learning environment system based on ubiquitous computing technology. An educational system based on deep reinforcement learning and system development is developed in this project using the WSNV-ES method. The web-based system that has been designed can do the following: settings for reinforcing student success, learning scripts to run, and the learning state to monitor are described.

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Shahad Al-yousif mail -
Aws Nabeel mail -
Waleed K. Ibrahim mail -
Mustafa Musa Jaber mail -
Mohammed Hasan Ali mail -
M. jaber mail -
Asaad Shakir Hameed mail -
Ahmed Hussein Al-khayyat mail -
Ahmed F. Omer mail -
Nuridawati Mustafa mail -
Kadim A. Jabbar mail -
A. Abd Ali Abbood mail
link https://doi.org/10.54216/FPA.100107

Volume & Issue

Vol. Volume 10 / Iss. Issue 1

Details open_in_new

A Review on Symbolic 2-Plithogenic Algebraic Structures

The objective of this paper is to give a good review about the 2-plithogenic algebraic structures. Three kinds of algebraic structures will be revisited and discussed, symbolic 2-plithogenic rings, symbolic 2-plithogenic vector spaces, and 2-plithogenic modules.

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Nader Mahmoud Taffach mail -
Ahmed Hatip mail
link https://doi.org/10.54216/GJMSA.050101

Volume & Issue

Vol. Volume 5 / Iss. Issue 1

Details open_in_new

Comparison of Some Entropy Measures for Non-Central Fisher Probability Distribution

In this paper, many entropy measures of noncentral Fisher distribution were driven including Shannon, Renyi, Sharma, Havrda, Arimoto and Tsallis. A comparison between these entropies was made according to distribution’s shift parameter, distribution’s degrees of freedom, shape parameter and truncation parameter. The entropy that had less relative loss was said to be better than the other. There were significant differences according to all studied parameters except the shift parameter and we found that the best entropy of the mentioned entropies for noncentral Fisher distribution was Renyi entropy.

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Mazeat Koreny mail -
Mohamed Bisher Zeina mail -
Shaza Zubeadah mail
link https://doi.org/10.54216/GJMSA.050102

Volume & Issue

Vol. Volume 5 / Iss. Issue 1

Details open_in_new

A Brief Review on The Symbolic 2-Plithogenic Number Theory and Algebraic Equations

The main goal of this paper is to review the concepts of symbolic 2-plithogenic number theoretical concepts and algebraic equations, where many foundational concepts such as congruencies and linear equations and Diophantine linear equations.

groups
Nader Mahmoud Taffach mail -
Ahmed Hatip mail
link https://doi.org/10.54216/GJMSA.050103

Volume & Issue

Vol. Volume 5 / Iss. Issue 1

Details open_in_new

On The Fuzzy Semi Sub-Modules of Fuzzy Modules

In this paper, we introduce the concept of fuzzy semi-essential (large) submodule, and we study a necessary and sufficient condition for a fuzzy submodule of a fuzzy module to be a fuzzy semi-essential (large) submodule, also fuzzy images and fuzzy inverse-images of generalized fuzzy semi-essential (large) submodule are studied. Index Terms

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Rama Asad Nadweh mail
link https://doi.org/10.54216/GJMSA.050104

Volume & Issue

Vol. Volume 5 / Iss. Issue 1

Details open_in_new

On The Bäcklund Transformations for Cosgrove's Equation

In this paper we study Bäcklund transformations (BTs) for Cosgrove’s equation F-XVIII. We use the generalization of Fokas and Ablowitz method to derive BT between F-XVIII and new fourth-order ordinary differential equations of Painlevé type. Moreover we derive auto-BT and give special solutions for F-XVIII.  

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Rama Asad Nadweh mail
link https://doi.org/10.54216/GJMSA.050105

Volume & Issue

Vol. Volume 5 / Iss. Issue 1

Details open_in_new

Solving shortest path problems using an ant colony algorithm with triangular neutrosophic arc weights

Indeed, one of the most well-known topics in the area of graph theory is the shortest path (SP) problem, which has practical applications in various areas of research, including transportation, communication via networks, life-saving services, fire department services, etc. The edges of the connected SP problems are typically characterized by various numbers in practical applications. In this research paper, we calculate the shortest path using an ant colony optimization (ACO) algorithm with single value triangular neutrosophic numbers as arc weights. The method is used to estimate the shortest path of a neutrosophic network. One numerical example is used to test the suggested method, and outcomes are provided.

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Said Broumi mail -
Prasanta Kumar Raut mail -
Siva Prasad Behera mail
link https://doi.org/10.54216/IJNS.200410

Volume & Issue

Vol. Volume 20 / Iss. Issue 4

Details open_in_new

A Case Study on the Implementation of Business Intelligence in a Retail Company

This paper presents a case study on the implementation of business intelligence (BI) in a retail company with the main aim to analyze the benefits of BI implementation and the confronts encountered during the process. The case study involves a large retail company that operates in multiple countries and offers a wide range of products. The implementation of BI was driven by the need to improve decision-making processes, increase operational efficiency, and enhance customer satisfaction. We also cover the different phases of BI implementation, including planning, data integration, data modeling, and dashboard development. The results of the study indicate that the implementation of BI has led to significant improvements in the company's performance, such as increased revenue, improved inventory management, and better customer segmentation. We investigate how artificial intelligence can provide great support for improving and automating the implementation of BI in retail companies. However, we also highlight some challenges encountered during the implementation process, such as data quality issues and resistance to change. The paper concludes by emphasizing the importance of careful planning, stakeholder engagement, and ongoing evaluation in ensuring the success of BI implementation in retail companies.

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Alshaimaa A. Tantawy mail -
Mahmoud M. Ismail mail
link https://doi.org/10.54216/AJBOR.030204

Volume & Issue

Vol. Volume 3 / Iss. Issue 2

Details open_in_new

Optimizing Business Intelligence and Operations Research for Sustainable Growth: A Comparative Study of Manufacturing and Service Industries

This paper presents a comparative study of two optimization techniques, business intelligence (BI) and operations research (OR), for achieving sustainable growth in manufacturing and service industries. The study explores the strengths and weaknesses of both techniques and examines their suitability for addressing sustainability challenges in these industries. The paper also discusses various factors that influence the choice of optimization technique and presents a framework for selecting the most appropriate technique based on the problem domain, data availability, and organizational requirements. The study concludes that both BI and OR have significant potential for improving sustainability in manufacturing and service industries, and their effectiveness depends on the problem domain and organizational context. The paper provides valuable insights for researchers and practitioners interested in leveraging optimization techniques for sustainable growth.

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Mahmoud M. Ibrahim mail -
Mahmoud M. Ismail mail -
Shereen Zaki mail
link https://doi.org/10.54216/AJBOR.050104

Volume & Issue

Vol. Volume 5 / Iss. Issue 1

Details open_in_new