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Read MoreJournal of Artificial Intelligence, Machine Learning and Data Science (JAIMLD - ISSN: 2583-9888) is an international, peer-reviewed, open access online journal on all aspects of artificial intelligence (AI), machine learning and data science published quarterly and started in 2023. As technology continues to rapidly evolve, our journal serves as a platform for researchers, academics, and industry professionals to explore and contribute to the latest developments in these exciting fields.
Journal Features
- Subject: Computer
Science & Engineering
- All papers are published in English and online
- Frequency of publication is quarterly
- ISSN: 2583-9888
- DOI: doi.org/10.51219/JAIMLD/....
Aim & Scope
Aim: This
journal aims to provide scholarly input to the debate of the future impact of
AI on society, as well as to host a forum in which research in AI focused on
social good can be presented. JAIMLD is designed to meet the needs of a
wide range of AI researchers, data scientists in academic and industrial
research. With the rapid advancement of technology, AI, machine learning, and
data science have become critical components in various industries, including
healthcare, finance, transportation, and manufacturing.
The
journal aims to publish research that is both theoretical and empirical,
including papers that present novel algorithms, methodologies, models, and
frameworks for solving challenging problems in AI, machine learning, and data
science.
Scope: The
scope of the journal extends to the application of intelligent systems in
industry, medicine, and daily life. JAIMLD covering a wide range of issues
from the tools and languages of artificial intelligence (AI) to philosophical
implications. The journal provides a vigorous forum for the publication of both
theoretical and experimental research, as well as surveys and impact studies. We
prioritize original research that presents new methods, techniques, or
applications in AI, machine learning, and data science, as well as innovative
interdisciplinary research that combines these fields with other disciplines
such as mathematics, electrical and electronics engineering, biomedical
engineering, mechanical engineering, AI ethics and psychology.
At
our journal, we cover a broad range of topics, including but not limited to:
Deep
learning and neural networks, Natural language processing and speech
recognition, Computer vision and image processing, Reinforcement learning and
decision-making, Data mining and knowledge discovery, Big data analytics, Cloud
computing, Internet of Things (IoT), Robotics and autonomous systems, Human-computer
interaction, Machine learning algorithms and techniques, Explainable AI and
interpretability, AI applications in healthcare, finance, marketing, and other
fields, Ethical and social implications of AI and machine learning, Ethics and
social implications of AI, Bayesian inference, Statistical modelling, Algorithm
design and optimization, Predictive modelling, Cloud computing, Internet of
Things (IoT), Predictive modelling, Statistical learning. Cognitive computing, Machine
Learning Algorithms and Models, Cybersecurity and Privacy, Social Network
Analysis, Sensor Networks, Bayesian networks and probabilistic reasoning, Ethics
and social implications of AI, Explainable AI and interpretability, AI
algorithms and architectures, Optimization and decision making, Bayesian
networks and probabilistic graphical models, Ethical, legal, and social
implications of AI.
JAIMLD
also operates a double-blind peer-review process, which ensures the
impartiality and objectivity of the review process. Categories of contributions
accepted for the journal are research articles, reviews, debates, short
communications, reviews of books, perspectives.
In order to reach the worldwide community of artificial intelligence (AI), the Journal of Artificial Intelligence, Machine Learning & Data Science (JAIMLD) is dedicated to rapid dissemination of important research results.
About special issues: Journal of Artificial Intelligence, Machine Learning and Data Science (JAIMLD) runs special issues to create collections of papers on specific topics. The aim is to build a community of authors and readers to discuss the latest research and develop new ideas and research directions. Special Issues are led by Guest Editors who are experts in the subject and oversee the editorial process for papers. Papers published in a Special Issue will be collected together on a dedicated page of the journal website. For any inquiries related to a Special Issue, please contact the Editorial Office at editorial.office@urfpublishers.com.
Thank
you for visiting JAIMLD, and we hope that our journal will serve as a valuable
resource for the academic community and industry professionals interested in
the latest developments in AI, machine learning, and data science.
Artificial Intelligence & AI algorithms
Computer Networks and Communication
Natural Language Processing (NLP)
Explainable Artificial Intelligence (XAI)
Robotics and Automation
Imbalanced Learning
AI-driven automation and robotics
Predictive modeling and forecasting
Software Engineering and Development
Reinforcement Learning for Real Life
Quantum machine learning
AI and ML tools and platforms
Deep Learning Theories and Models
Data science & Big data analytics
Data preprocessing and cleaning
Data privacy and security
AI and ML in the Internet of Things (IoT)
Real-world AI and data science applications
Data Warehousing and Business Intelligence
Computer Architecture and Hardware Design
Machine Learning Foundations for Data Science
AI in Speech Recognition for Healthcare Records
Explainable AI in Finance: Risk Assessment Models
Human Emotion Recognition with Machine Learning
Machine learning for cybersecurity threat detection
Emerging Impactful Machine Learning Applications
Artificial Intelligence (AI) Ethics and Social Implications
Quantum machine learning: Algorithms and applications
AI and ML in healthcare, finance, education, and industry
Deep Learning Applications in Natural Language Processing
Machine learning for healthcare, finance, and other domains
Deep learning for multimodal data fusion and analysis
Machine Learning for Predictive Maintenance in Industry 4.0
Transfer learning techniques for small and imbalanced datasets
Artificial Intelligence (AI) in Aerospace Science and Engineering
Artificial Intelligence (AI) Developments for Healthcare Applications
Responsible AI and data science: Bias detection and mitigation
Data science techniques for anomaly detection in IoT networks
Machine learning for human-robot interaction and collaboration
Blockchain technology for secure and transparent data sharing
AI-powered mental health diagnostics: Ethical considerations
AI-enhanced cybersecurity strategies for critical infrastructure
Cognitive neuroscience meets AI: Insights into human intelligence
AI in criminal justice: Bias detection and fairness in sentencing
AI and ML ethics in autonomous weapons systems
AI in gaming: Player behavior prediction and content generation
Editor in Chief
Assistant Professor (Sr. Grade)......
Specialization:
Natural Language Processing, Machine Lea......
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Full Professor, Senior Member of the IEE......
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Multisensory internet communication, mix......
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Professor at Nanjing University......
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His research includes stochastic process......
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Assistant Professor of Applied Artificia......
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Natural Language Processing (NLP) in AI ......
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Image and video analysis, artificial int......
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Prof. Fábio de Oliveira Torres
Editor
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Prof. Dr. Manas Ranjan Pradhan, Ph.D.
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Associate Dean of College of Electronic ......
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Topic Editor
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Privacy Preserving, Social Networks anal......
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Deputy Director, SDC - Software Developm......
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He Jing*, Zhong Qi, Jia Lin, He Jia, Liu Hongyan
Publication Date: 11 September, 2023
Wei Wang, Yongjian Sun*
Publication Date: 06 September, 2023
Yuanyuan Ma, Ming Sheng* and Jing He
Publication Date: 20 July 2023
Wei Wang, Chao Dong, Yongjian Sun*
Publication Date: 14 July 2023