51cg

Dr Andrew Starkey

Dr Andrew Starkey
Dr Andrew Starkey
Dr Andrew Starkey

Reader

Accepting PhDs

51cg
Email Address
a.starkey@abdn.ac.uk
Telephone Number
+44 (0)1224 272801
School/Department
School of Engineering

Biography

Dr Starkey completed his PhD in the application of artificial intelligence techniques to engineering problems from 51cg in 2001 and attained an Honours degree in Applied Mathematics from St Andrews University in 1993.  Since then he has been awarded an Enterprise Fellowship from Royal Society of Edinburgh and Scottish Enterprise, and has a spinout company BlueFlow Ltd that commercialises the AI technology developed.

External Memberships

Dr Andrew Starkey is CEO of a recent spin-out company from the 51cg, BlueFlow Ltd.

Research

Research Overview

Dr Starkey's main research themes are in the development of Explainable AI, Green AI and Autonomous AI.  He has developed a number of novel methods in these themes and also works closely with industry in a range of areas. 

Examples of previous research include robotics, econometrics (the study of financial markets), bioinformatics (in particular genomic and proteomic analysis), engineering problems and the analysis of seismic data and the integration of AI and virtual reality.

Research Areas

Accepting PhDs

I am currently accepting PhDs in Engineering.

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

Engineering

  • Supervising
  • Accepting PhDs

Research Specialisms

  • Artificial Intelligence
  • Knowledge and Information Systems
  • Machine Learning

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

Current Research

Current research projects:

Developing AI technologies that are explainable (XAI) and low in computational cost (Green AI).

  • Development of methods for the automated analysis of relevant features for a problem (Feature selection)
  • Development of Autonomous learning for Robotics applications
  • Development of techniques to abstract knowledge from an agent's interactions with its environment
  • Text analysis, and in particular topic analysis and contextual analysis.  Novel techniques developed that can dynamically identify new topics being discussed (or old topics no longer being talked about).
  • Multi-label classification engines, using XAI and low computation models
  • Development of novel method capable of automatically identifying and describing features of interest for a class, plus best in class predictive capability (XAI, and Green AI).

Past Research

In the past, a major research topic was the Granit project, which involved the application of AI to the condition monitoring of ground anchorages.  This project resulted in a number of awards including the Millennium Product Award and the John Logie Baird Award for Innovation.

Funding and Grants

Current projects include:

  • Investigating data mining methods applied to econometrics
  • In silico identification of functional human cis-regulatory sequence-gene linkage (funded by BBSRC) joint project with Dr Alasdair MacKenzie and Scott Davidson
  • a grant from the BBSRC Research Equipment Initiative for a computer rack system to facilitate the computations required for textual bioinformatic approaches
  • Analysis of seismic data for automated recognition of geological features, joint project with Dr Anne Schwab
  • “Design and assessment of condition of soil anchorages in a dynamic environment using the centrifuge modelling technique” funded by EPSRC, jointly with Drs Ivanovic and Neilson and Prof Rodger and also Prof Davies of University of Dundee
  • Investigation into genomic prediction for melatonin action in animals, joint project with Dr David Hazlerigg
  • “Pattern recognition approaches to understand replication origin specification”, joint project with Dr Anne Donaldson and Dr Conrad Nieduszynski
Publications

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  • Response to the Joint Committee on Human Rights (JCHR) Call for Evidence: Human Rights and the Regulation of Artificial Intelligence

    Moorhouse, L. G., Ferguson, E., Couzigou, I., Moran, C. F., Walters, A. G., Benli, M. N., Allan, K., Brown, A., Starkey, A., Le, X. T., Poesen, M., De Gioia Carabellese, P.
    51cg: School of Law. 13 pages.
    Other Contributions: Other Contributions
  • ClusterSwarm: cluster-specific feature selection using binary particle swarm optimisation

    Ezenkwu, C. P., Starkey, A., Aziz, A. A.
    Computing, vol. 107, 180
    Contributions to Journals: Articles
  • Response to UKIPO Consultation on Copyright and Artificial Intelligence

    Zivkovic, P., Adebola, T., Allan, K., Ducato, R., Leontidis, G., Lombardi, C., Sinclair, A., Starkey, A., Sripada, S., Brown, A. (ed.), Jevremovic, N. (ed.)
    51cg: School of Law. 11 pages.
    Other Contributions: Other Contributions
  • A Practical Sensor-to-Segment Calibration Method for Upper Limb Inertial Motion Capture in a Clinical Setting

    McInnes, M., Blana, D., Starkey, A., Chadwick, E.
    IEEE Journal of Translational Engineering in Health and Medicine, vol. 13, pp. 216-226
    Contributions to Journals: Articles
  • Unsupervised Neural Architecture for Sensorimotor Mapping in Perceptually Aliased Environments

    Carvalho, L., Starkey, A.
    Chapters in Books, Reports and Conference Proceedings: Conference Proceedings
  • Exploring North Sea Fractured Sandstone Properties: Artificial Intelligence, Multiscale Imaging, Pore-Fracture Network Analysis and Experimental Results

    Panaitescu, C. T., Wu, K., Kartal, M. E., Tanino, Y., Starkey, A., Qin, G., Zhao, L., Cao, Z., Wu, S.
    Chapters in Books, Reports and Conference Proceedings: Conference Proceedings
  • 2023 8th International Conference on Robotics and Automation Engineering Quantifying the Performance of Deep Neural Networks in Predicting Curvature and Force Output Response of a Pneumatic Soft Actuator

    Livinus, E. N., Giannaccini, M. E., Starkey, A., Aphale, S. S.
    Chapters in Books, Reports and Conference Proceedings: Conference Proceedings
  • Can Complexity Measures and Instance Hardness Measures Reflect the Actual Complexity of Microarray Data?

    Al Hosni, O., Starkey, A.
    Chapters in Books, Reports and Conference Proceedings: Conference Proceedings
  • Applying Green AI methods to Digital Rock Technology workflows

    Panaitescu, C., Wu, K., Tanino, Y., Starkey, A.
    Granite Journal: The 51cg Postgraduate Interdisciplinary Journal, vol. 8, no. 1, 5
    Contributions to Journals: Articles
  • One-Shot Learning for Task-Oriented Grasping

    Holomjova, V., Starkey, A. J., Yun, B., Meisner, P.
    IEEE Robotics and Automation Letters, vol. 8, no. 12, pp. 8232-8238
    Contributions to Journals: Articles
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