Publications

Monte Carlo simulations of time-resolved blood flow index: times-of-flight beyond ∼1 ns are necessary for brain-dominated measurements
Hill DW, et al.
Neurophotonics 13(2), 025003 (2026)
CoMind R1: a time-resolved interferometric optical neuromonitoring system for pulsatile cerebral blood flow measurement at late times-of-flight
Parfentyeva V, et al.
Neurophotonics 13(2), 025002 (2026)
Simulation, optimisation, and validation of CoMind R1: a multichannel interferometric system for monitoring cerebral blood flow at late times-of-flight
Behera A, et al.
Proc. SPIE 13934, European Conference on Biomedical Optics 2025, [article no.] (2025)
Monte Carlo simulations of time-of-flight resolved blood flow index: times-of-flight beyond 1ns permit selective measurement of pulsatile cerebral blood flow
Hill DW, et al.
Proc. SPIE 13314, Optical Tomography and Spectroscopy of Tissue XVI, 1331411 (2025)
CoMind R1: a multichannel interferometric optical system for real-time blood flow measurements at late times-of-flight
Parfentyeva V, et al.
Proc. SPIE 13302, Clinical and Translational Neurophotonics 2025, 1330207 (2025)
Measuring cerebral blood flow at late times-of-flight with CoMind R1: a multichannel interferometric optical neuromonitoring system
Avtzi S, et al.
Proc. SPIE 13302, Clinical and Translational Neurophotonics 2025, 1330209 (2025)
Developing a product-ready optical sensing platform for non-invasive measurement of cerebral blood flow dynamics
Rob J. Cooper
Conference presentation, Proc. SPIE PC13302, Clinical and Translational Neurophotonics 2025 (2025)