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Posts
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Blog Post number 4
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Blog Post number 1
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portfolio
Control system analysis
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Python to analyze control systems, providing insights into their dynamics and performance characteristics.
DICOM Analytics for Radiotherapy
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Flexible and powerful data analysis / manipulation library for Python.
System identification
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System identification is the process of building mathematical models of dynamic systems from observed data. This project focuses on developing and applying system identification techniques using Python.
Portfolio item number 1
Short description of portfolio item number 1
Portfolio item number 2
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publications
Motion capture in robotics review
Published in 2009 IEEE International Conference on Control and Automation, 2009
2009 IEEE International Conference on Control and Automation. Topics: Robot sensing systems, Tracking, Intelligent robots.
Recommended citation: Matthew Field, David Stirling, Fazel Naghdy, Zengxi Pan (2009). "Motion capture in robotics review." 2009 IEEE International Conference on Control and Automation. 1697-1702.
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Human motion capture sensors and analysis in robotics
Published in Industrial Robot: An International Journal, 2011
Industrial Robot: An International Journal. DOI available.
Recommended citation: Matthew Field, Zengxi Pan, David Stirling, Fazel Naghdy (2011). "Human motion capture sensors and analysis in robotics." Industrial Robot: An International Journal. 38(5), 163-171.
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Inertial sensing for human motor control symmetry in injury rehabilitation
Published in 2013 IEEE/ASME International Conference on Advanced Intelligent Mechatronics, 2013
2013 IEEE/ASME International Conference on Advanced Intelligent Mechatronics. Topics: Sensors.
Recommended citation: Matthew Field, David Stirling, Montserrat Ros, Zengxi Pan, Fazel Naghdy (2013). "Inertial sensing for human motor control symmetry in injury rehabilitation." 2013 IEEE/ASME International Conference on Advanced Intelligent Mechatronics. 1470-1475.
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Nonlinear bilateral teleoperation using extended active observer for force estimation and disturbance suppression
Published in Robotica, 2015
Robotica. Topics: Bilateral teleoperation, Extended active observer, Force estimation.
Recommended citation: Linping Chan, Fazel Naghdy, David Stirling, Matthew Field (2015). "Nonlinear bilateral teleoperation using extended active observer for force estimation and disturbance suppression." Robotica. 33(1), 61-86.
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Recognizing human motions through mixture modeling of inertial data
Published in Pattern Recognition, 2015
Pattern Recognition. Topics: Human motion, Classification, Recognition.
Recommended citation: Matthew Field, David Stirling, Zengxi Pan, Montserrat Ros, Fazel Naghdy (2015). "Recognizing human motions through mixture modeling of inertial data." Pattern Recognition. 48(8), 2394-2406.
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Learning Trajectories for Robot Programing by Demonstration Using a Coordinated Mixture of Factor Analyzers
Published in IEEE Transactions on Cybernetics, 2016
IEEE Transactions on Cybernetics. Topics: Hidden Markov models, Robot kinematics, Trajectory.
Recommended citation: Matthew Field, David Stirling, Zengxi Pan, Fazel Naghdy (2016). "Learning Trajectories for Robot Programing by Demonstration Using a Coordinated Mixture of Factor Analyzers." IEEE Transactions on Cybernetics. 46(3), 706-717.
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A prediction model for early death in non-small cell lung cancer patients following curative-intent chemoradiotherapy
Published in Acta Oncologica, 2018
Acta Oncologica. DOI available.
Recommended citation: Arthur Jochems, Issam El-Naqa, Marc Kessler, Charles S. Mayo, Shruti Jolly, Martha Matuszak, Corinne Faivre-Finn, Gareth Price, Lois Holloway, Shalini Vinod, Matthew Field, Mohamed Samir Barakat, David Thwaites, Dirk de Ruysscher, Andre Dekker, Philippe Lambin (2018). "A prediction model for early death in non-small cell lung cancer patients following curative-intent chemoradiotherapy." Acta Oncologica. 57(2), 226--230.
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The role of deep learning and radiomic feature extraction in cancer-specific predictive modelling: a review
Published in Translational Cancer Research, 2018
Translational Cancer Research. Topics: .
Recommended citation: Alanna Vial, David Stirling, Matthew Field, Montserrat Ros, Christian Ritz, Martin Carolan, Lois Holloway, Alexis A. Miller (2018). "The role of deep learning and radiomic feature extraction in cancer-specific predictive modelling: a review." Translational Cancer Research. 7(3).
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Multicenter evaluation of MRI-based radiomic features: A phantom study
Published in Medical Physics, 2020
Medical Physics. Topics: 3D printing, image features, image texture.
Recommended citation: Robba Rai, Lois C. Holloway, Carsten Brink, Matthew Field, Rasmus L. Christiansen, Yu Sun, Michael B. Barton, Gary P. Liney (2020). "Multicenter evaluation of MRI-based radiomic features: A phantom study." Medical Physics. 47(7), 3054-3063.
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Deep learning for segmentation in radiation therapy planning: a review
Published in Journal of Medical Imaging and Radiation Oncology, 2021
Journal of Medical Imaging and Radiation Oncology. Topics: contouring, deep learning, radiation therapy.
Recommended citation: Gihan Samarasinghe, Michael Jameson, Shalini Vinod, Matthew Field, Jason Dowling, Arcot Sowmya, Lois Holloway (2021). "Deep learning for segmentation in radiation therapy planning: a review." Journal of Medical Imaging and Radiation Oncology. 65(5), 578-595.
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Implementation of the Australian Computer-Assisted Theragnostics (AusCAT) network for radiation oncology data extraction, reporting and distributed learning
Published in Journal of Medical Imaging and Radiation Oncology, 2021
Journal of Medical Imaging and Radiation Oncology. Topics: artificial intelligence, decision support systems, distributed learning.
Recommended citation: Matthew Field, Shalini Vinod, Noel Aherne, Martin Carolan, Andre Dekker, Geoff Delaney, Stuart Greenham, Eric Hau, Joerg Lehmann, Joanna Ludbrook, Andrew Miller, Angela Rezo, Jothybasu Selvaraj, Jonathan Sykes, Lois Holloway, David Thwaites (2021). "Implementation of the Australian Computer-Assisted Theragnostics (AusCAT) network for radiation oncology data extraction, reporting and distributed learning." Journal of Medical Imaging and Radiation Oncology. 65(5), 627-636.
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Machine learning applications in radiation oncology
Published in Physics and Imaging in Radiation Oncology, 2021
Physics and Imaging in Radiation Oncology. Topics: Machine learning, Artificial intelligence, Radiation therapy.
Recommended citation: Matthew Field, Nicholas Hardcastle, Michael Jameson, Noel Aherne, Lois Holloway (2021). "Machine learning applications in radiation oncology." Physics and Imaging in Radiation Oncology. 19, 13-24.
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PSPSO: A package for parameters selection using particle swarm optimization
Published in SoftwareX, 2021
SoftwareX. Topics: Machine learning, Parameters selection, Particle swarm optimization.
Recommended citation: Ali Haidar, Matthew Field, Jonathan Sykes, Martin Carolan, Lois Holloway (2021). "PSPSO: A package for parameters selection using particle swarm optimization." SoftwareX. 15, 100706.
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An Improved Deep Learning Framework for MR-to-CT Image Synthesis with a New Hybrid Objective Function
Published in 2022 IEEE 19th International Symposium on Biomedical Imaging (ISBI), 2022
2022 IEEE 19th International Symposium on Biomedical Imaging (ISBI). Topics: Deep learning, Training, Visualization.
Recommended citation: Sui Paul Ang, Son Lam Phung, Matthew Field, Mark Matthias Schira (2022). "An Improved Deep Learning Framework for MR-to-CT Image Synthesis with a New Hybrid Objective Function." 2022 IEEE 19th International Symposium on Biomedical Imaging (ISBI). 1-5.
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Evaluation of an automated Presidio anonymisation model for unstructured radiation oncology electronic medical records in an Australian setting
Published in International Journal of Medical Informatics, 2022
International Journal of Medical Informatics. Topics: Electronic medical records, Oncology information systems, Personally identifiable information.
Recommended citation: Damian P. Kotevski, Robert I. Smee, Matthew Field, Yvonne N. Nemes, Kathryn Broadley, Claire M. Vajdic (2022). "Evaluation of an automated Presidio anonymisation model for unstructured radiation oncology electronic medical records in an Australian setting." International Journal of Medical Informatics. 168, 104880.
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Infrastructure platform for privacy-preserving distributed machine learning development of computer-assisted theragnostics in cancer
Published in Journal of Biomedical Informatics, 2022
Journal of Biomedical Informatics. Topics: Data mining, Decision support systems, Distributed learning.
Recommended citation: Matthew Field, David I. Thwaites, Martin Carolan, Geoff P. Delaney, Joerg Lehmann, Jonathan Sykes, Shalini Vinod, Lois Holloway (2022). "Infrastructure platform for privacy-preserving distributed machine learning development of computer-assisted theragnostics in cancer." Journal of Biomedical Informatics. 134, 104181.
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Larynx cancer survival model developed through open-source federated learning
Published in Radiotherapy and Oncology, 2022
Radiotherapy and Oncology. Topics: Distributed learning, Federated learning, Larynx cancer.
Recommended citation: Christian Rønn Hansen, Gareth Price, Matthew Field, Nis Sarup, Ruta Zukauskaite, Jørgen Johansen, Jesper Grau Eriksen, Farhannah Aly, Andrew McPartlin, Lois Holloway, David Thwaites, Carsten Brink (2022). "Larynx cancer survival model developed through open-source federated learning." Radiotherapy and Oncology. 176, 179-186.
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Optimal and actual rates of Stereotactic Ablative Body Radiotherapy (SABR) utilisation for primary lung cancer in Australia
Published in Clinical and Translational Radiation Oncology, 2022
Clinical and Translational Radiation Oncology. Topics: Lung SABR, Optimal utilisation, Practice patterns.
Recommended citation: Wsam Ghandourh, Lois Holloway, Vikneswary Batumalai, Phillip Chlap, Matthew Field, Susannah Jacob (2022). "Optimal and actual rates of Stereotactic Ablative Body Radiotherapy (SABR) utilisation for primary lung cancer in Australia." Clinical and Translational Radiation Oncology. 34, 7-14.
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Training radiomics-based CNNs for clinical outcome prediction: Challenges, strategies and findings
Published in Artificial Intelligence in Medicine, 2022
Artificial Intelligence in Medicine. Topics: Cancer outcome prediction, Head & neck cancers, Deep neural networks.
Recommended citation: Shuchao Pang, Matthew Field, Jason Dowling, Shalini Vinod, Lois Holloway, Arcot Sowmya (2022). "Training radiomics-based CNNs for clinical outcome prediction: Challenges, strategies and findings." Artificial Intelligence in Medicine. 123, 102230.
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Empirical comparison of routinely collected electronic health record data for head and neck cancer-specific survival in machine-learnt prognostic models
Published in Head & Neck, 2023
Head & Neck. Topics: cancer-specific survival, head and neck cancer, machine learning.
Recommended citation: Damian P. Kotevski, Robert I. Smee, Claire M. Vajdic, Matthew Field (2023). "Empirical comparison of routinely collected electronic health record data for head and neck cancer-specific survival in machine-learnt prognostic models." Head & Neck. 45(2), 365-379.
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Inter-hospital variation in data collection, radiotherapy treatment, and survival in patients with head and neck cancer: A multisite study
Published in Radiotherapy and Oncology, 2023
Radiotherapy and Oncology. Topics: Head and neck cancer, Inter-hospital variation, Survival.
Recommended citation: Damian P. Kotevski, Claire M. Vajdic, Matthew Field, Robert I. Smee (2023). "Inter-hospital variation in data collection, radiotherapy treatment, and survival in patients with head and neck cancer: A multisite study." Radiotherapy and Oncology. 188, 109843.
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Machine Learning and Nomogram Prognostic Modeling for 2-Year Head and Neck Cancer–Specific Survival Using Electronic Health Record Data: A Multisite Study
Published in JCO Clinical Cancer Informatics, 2023
JCO Clinical Cancer Informatics. DOI available.
Recommended citation: Damian P. Kotevski, Robert I. Smee, Claire M. Vajdic, Matthew Field (2023). "Machine Learning and Nomogram Prognostic Modeling for 2-Year Head and Neck Cancer–Specific Survival Using Electronic Health Record Data: A Multisite Study." JCO Clinical Cancer Informatics. e2200128.
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Standardising Breast Radiotherapy Structure Naming Conventions: A Machine Learning Approach
Published in Cancers, 2023
Cancers. DOI available.
Recommended citation: Ali Haidar, Matthew Field, Vikneswary Batumalai, Kirrily Cloak, Daniel Al Mouiee, Phillip Chlap, Xiaoshui Huang, Vicky Chin, Farhannah Aly, Martin Carolan, Jonathan Sykes, Shalini K. Vinod, Geoffrey P. Delaney, Lois Holloway (2023). "Standardising Breast Radiotherapy Structure Naming Conventions: A Machine Learning Approach." Cancers. 15(3).
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Systematic Review of Tumor Segmentation Strategies for Bone Metastases
Published in Cancers, 2023
Cancers. DOI available.
Recommended citation: Iromi R. Paranavithana, David Stirling, Montserrat Ros, Matthew Field (2023). "Systematic Review of Tumor Segmentation Strategies for Bone Metastases." Cancers. 15(6).
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A neural network-based vertical federated learning framework with server integration
Published in Engineering Applications of Artificial Intelligence, 2024
Engineering Applications of Artificial Intelligence. Topics: Federated learning, Vertical partitioned data, Accuracy.
Recommended citation: Amir Anees, Matthew Field, Lois Holloway (2024). "A neural network-based vertical federated learning framework with server integration." Engineering Applications of Artificial Intelligence. 138, 109276.
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Federated Learning Survival Model and Potential Radiotherapy Decision Support Impact Assessment for Non–small Cell Lung Cancer Using Real-World Data
Published in Clinical Oncology, 2024
Clinical Oncology. Topics: Decision support, federated learning, lung cancer.
Recommended citation: M. Field, S. Vinod, G. P. Delaney, N. Aherne, M. Bailey, M. Carolan, A. Dekker, S. Greenham, E. Hau, J. Lehmann, J. Ludbrook, A. Miller, A. Rezo, J. Selvaraj, J. Sykes, D. Thwaites, L. Holloway (2024). "Federated Learning Survival Model and Potential Radiotherapy Decision Support Impact Assessment for Non–small Cell Lung Cancer Using Real-World Data." Clinical Oncology. 36(7), e197-e208.
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Radiotherapy protocol compliance in routine clinical practice for patients with stages I–III non-small-cell lung cancer
Published in Journal of Medical Imaging and Radiation Oncology, 2024
Journal of Medical Imaging and Radiation Oncology. Topics: compliance, guideline, lung neoplasms.
Recommended citation: Xiaoshui Huang, Matthew Field, Shalini Vinod, Helen Ball, Vikneswary Batumalai, Paul Keall, Lois Holloway (2024). "Radiotherapy protocol compliance in routine clinical practice for patients with stages I–III non-small-cell lung cancer." Journal of Medical Imaging and Radiation Oncology. 68(6), 729-739.
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Uncertainty estimation using a 3D probabilistic U-Net for segmentation with small radiotherapy clinical trial datasets
Published in Computerized Medical Imaging and Graphics, 2024
Computerized Medical Imaging and Graphics. Topics: Auto-segmentation, Deep learning, Uncertainty estimation.
Recommended citation: Phillip Chlap, Hang Min, Jason Dowling, Matthew Field, Kirrily Cloak, Trevor Leong, Mark Lee, Julie Chu, Jennifer Tan, Phillip Tran, Tomas Kron, Mark Sidhom, Kirsty Wiltshire, Sarah Keats, Andrew Kneebone, Annette Haworth, Martin A. Ebert, Shalini K. Vinod, Lois Holloway (2024). "Uncertainty estimation using a 3D probabilistic U-Net for segmentation with small radiotherapy clinical trial datasets." Computerized Medical Imaging and Graphics. 116, 102403.
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talks
Talk 1 on Relevant Topic in Your Field
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Conference Proceeding talk 3 on Relevant Topic in Your Field
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teaching
Teaching experience 1
Undergraduate course, University 1, Department, 2014
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Teaching experience 2
Workshop, University 1, Department, 2015
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