Bryony L. McGarry, Ph.D.
|2020-||Information, Communications and Entertainment Institute||Technological University Dublin|
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|McGarry BL, Damion RA, Chew I, et al. (2020) A Comparison of T Relaxation-Based MRI Stroke Timing Methods in Hyperacute Ischemic Stroke Patients: A Pilot Study. Journal of Central Nervous System Disease. 12: 1179573520943314|
|Knight MJ, Damion RA, McGarry BL, et al. (2019) Determining T2 relaxation time and stroke onset relationship in ischaemic stroke within apparent diffusion coefficient-defined lesions. A user-independent method for quantifying the impact of stroke in the human brain. Biomedical Spectroscopy and Imaging. 8: 11-28|
|Damion R, Knight MJ, McGarry BL, et al. (2019) Quantifying T2 relaxation time changes within lesions defined by apparent diffusion coefficient in grey and white matter in acute stroke patients. Physics in Medicine and Biology|
|McGarry BL, Jokivarsi KT, Knight MJ, et al. (2017) A Magnetic Resonance Imaging Protocol for Stroke Onset Time Estimation in Permanent Cerebral Ischemia. Journal of Visualized Experiments : Jove|
|McGarry BL, Jokivarsi KT, Knight MJ, et al. (2017) Magnetic Resonance Imaging Protocol for Stroke Onset Time Estimation in Permanent Cerebral Ischemia. Journal of Visualized Experiments : Jove. 2017|
|McGarry BL, Rogers HJ, Knight MJ, et al. (2016) Stroke onset time estimation from multispectral quantitative magnetic resonance imaging in a rat model of focal permanent cerebral ischemia. International Journal of Stroke : Official Journal of the International Stroke Society|
|Knight MJ, McGarry BL, Rogers HJ, et al. (2015) A spatiotemporal theory for MRI T2 relaxation time and apparent diffusion coefficient in the brain during acute ischaemia: Application and validation in a rat acute stroke model. Journal of Cerebral Blood Flow and Metabolism : Official Journal of the International Society of Cerebral Blood Flow and Metabolism|
|Rogers HJ, McGarry BL, Knight MJ, et al. (2014) Timing the ischaemic stroke by 1H-MRI: improved accuracy using absolute relaxation times over signal intensities. Neuroreport. 25: 1180-5|