51cg

Professor Aladdin Ayesh

Professor Aladdin Ayesh
Professor Aladdin Ayesh
Professor Aladdin Ayesh

CITP CEng FBCS, SFHEA

Personal Chair of Artificial Intelligence

Accepting PhDs

51cg

Biography

Aladdin Ayesh, MSc (Essex, 1996), PhD (LJMU, 2000), is currently the Vice Dean for Joint Institute of Data Sciences and Artificial Intelligence at 51cg in UK. He also holds a Personal Chair as a Professor of Artificial Intelligence. Prior to his current role, he was a Professor of Artificial Intelligence at De Montfort University. His research focuses on computational cognition, machine learning and explainable AI. His research explored cognitive architectures, emotion modeling and recognition, and applied AI using variety of machine learning techniques including statistical approaches, e.g. Markov Models and Bayesian Networks, logic-based and symbolic approaches, e.g. Modal and Fuzzy Logics, and neural approaches, e.g. Self-Organizing Maps and Deep Learning Classifiers. He applies these techniques in three primary areas: Health Informatics,  Sustainable Development, and Data Privacy.   Prof. Ayesh has over 150 publications, supervised 24 PhD students to successful completions, and participated in 26 funded projects. He is a founding editor of four international journals and chaired several international conferences. He is also a member of two IEEE technical committees, several IEEE Standards working groups, and a contributor to IEEE 7010-2020 – IEEE Recommended Practice for Assessing the Impact of Autonomous and Intelligent Systems on Human Well-Being.

Memberships and Affiliations

Internal Memberships

School Executive.

Joint Institute Committees. 

External Memberships

BCS Fellow

IEEE Senior Member

AHE Senior Fellow

IEEE Transactions on Affective Computing steering committee chair (2019 - 2024)

Research

Research Overview

My research focuses on computational cognition, machine learning and explainable AI. In various research projects, I have explored cognitive architectures, emotion modeling and recognition, and applied AI using variety of machine learning techniques including statistical approaches, e.g. Markov Models and Bayesian Networks, logic-based and symbolic approaches, e.g. Modal and Fuzzy Logics, and neural approaches, e.g. Self-Organizing Maps and Deep Learning Classifiers. My team and I applied these techniques in three primary areas: Health Informatics,  Sustainable Development, and Data Privacy. 

Research Areas

Accepting PhDs

I am currently accepting PhDs in Computing Science, Artificial Intelligence.

Please get in touch if you would like to discuss your research ideas further.

Computing Science

  • Supervising
  • Accepting PhDs

Artificial Intelligence

  • Supervising
  • Accepting PhDs

Nutrition and Health

  • Supervising

Applied Health Sciences

  • Supervising

Research Specialisms

  • Artificial Intelligence
  • Machine Learning
  • Cognitive Modelling
  • Natural Language Processing
  • Neural Computing

Our research specialisms are based on the Higher Education Classification of Subjects (HECoS) which is , published under the licence.

Supervision

I have supervised 25 PhD projects to successful completions of which 21 first supervision and 4 second supervision.  

I have examined 23 PhD and MPhil projects of which 18 at National Universities: Hull, Essex, Manchester, Edinburgh, Leeds, Leicester, Huddersfield, Liverpool John Moores, and Bradford; and 5 at European Universities of: Le Havre, Rouen, Paris 8, and Granada.

Publications

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  • Combining pathological and cognitive tests scores: A novel data analytics process to improve dementia prediction models

    Alshehhi, T., Ayesh, A., Yang, Y., Chen, F.
    Technology and Health Care, vol. 32, no. 4, pp. 2039-2056
    Contributions to Journals: Articles
  • User-Centric AI Analytics for Chronic Health Conditions Management

    Ayesh, A.
    Working Papers: Preprint Papers
  • Multimodal motivation modelling and computing towards motivationally intelligent E-learning systems

    Wang, R., Chen, L., Ayesh, A.
    CCF Transactions on Pervasive Computing and Interaction, vol. 5, pp. 64-81
    Contributions to Journals: Articles
  • A Transdisciplinary Framework for AI-driven Disaster Risk Reduction for Low-income Housing Communities in Kenya

    Triboan, D., Obonyo, E. A., Ayesh, A., Yerima, S. Y., Basak, B., Wang'Ombe, W., Olago, D., Olaka, L. A., Sznajder, K. K., Madivate, C.
    Chapters in Books, Reports and Conference Proceedings: Conference Proceedings
  • Complementing privacy and utility trade-off with self-organising maps

    Mohammed, K., Ayesh, A., Boiten, E.
    Cryptography, vol. 5, no. 3, 20
    Contributions to Journals: Articles
  • Explaining the Principles to Practices Gap in AI

    Schiff, D., Rakova, B., Ayesh, A., Fanti, A., Lennon, M.
    IEEE Technology and Society Magazine, vol. 40, no. 2, pp. 81-94
    Contributions to Journals: Articles
  • A functional BCI model by the P2731 working group: psychology

    ZapaƂa, D., Hossaini, A., Kianpour, M., Sahonero-Alvarez, G., Ayesh, A.
    Brain-Computer Interfaces, vol. 8, no. 3, pp. 82-91
    Contributions to Journals: Articles
  • IEEE 7010: A New Standard for Assessing the Well-being Implications of Artificial Intelligence

    Schiff, D., Ayesh, A., Musikanski, L., Havens, J. C.
    Chapters in Books, Reports and Conference Proceedings: Conference Proceedings
  • Gaze-based assessment of dyslexic students' motivation within an e-learning environment

    Wang, R., Chen, L., Ayesh, A., Shell, J., Solheim, I.
    Chapters in Books, Reports and Conference Proceedings: Conference Proceedings
  • Cognitive computing: Methodologies for neural computing and semantic computing in brain-inspired systems

    Wang, Y., Raskin, V., Rayz, J., Baciu, G., Ayesh, A., Mizoguchi, F., Tsumoto, S., Patel, D., Howard, N.
    Cognitive Analytics: Concepts, Methodologies, Tools, and Applications. IGI Global, pp. 37-51, 15 pages
    Chapters in Books, Reports and Conference Proceedings: Chapters
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