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Sie, E. J.

Publications and source records attributed to Sie, E. J..

2 recordsLinked to original sources

Speckle contrast optical spectroscopy improves cuffless blood pressure estimation compared to photoplethysmography

Continuous and non-invasive blood pressure (BP) monitoring has the potential to greatly improve hypertension diagnosis and management, along with enabling valuable personal health monitoring in the population at large. Existing methods rely on cuff-based sphygmomanometers, which are cumbersome and disrupt sleep. Despite extensive research utilizing photoplethysmography (PPG), which is integrated into many consumer wearables, errors in continuous BP estimation are generally considered unacceptable for general use. We developed a high-speed (390 Hz) Speckle Contrast Optical Spectroscopy (SCOS) system to measure the cardiac blood flow waveform simultaneously with the PPG signal at high temporal resolution. The system utilized high speed multiplexed detection of optical speckle patterns on the wrist and finger, enabling the extraction of novel features related to BP. In comparison to PPG alone, SCOS demonstrated a notable 31% improvement (p = 3.45 * 10-7) in systolic BP estimation when integrated into subject-specific machine-learning models. The resulting errors were remarkably low (systolic BP: 0.06+/- 2.88 mmHg, diastolic BP: 0.09 +/-2.14 mmHg) across a wide range of BP variations (range SBP: 89-284 mmHg). Importantly, this improvement was sustained several weeks later within a re-measured cohort, indicating highly robust BP predictions. Looking ahead, the use of SCOS for blood flow measurements holds the potential to substantially enhance BP estimations compared to conventional PPG-based methods.

bioengineering↗

Measuring human cerebral blood flow and brain function with fiber-based speckle contrast optical spectroscopy system

Cerebral blood flow (CBF) is an important indicator of brain health and function. Diffuse correlation spectroscopy (DCS) is an optical technique that enables non-invasive and continuous bedside monitoring of human CBF. However, traditional DCS consisting of a few channels has relatively low signal-to-noise ratio (SNR), preventing measurements at long source detector separations (SDS) with increased sensitivity to cerebral rather than extracerebral blood flow. Here we developed a fiber-based speckle contrast optical spectroscopy (SCOS) system and the corresponding data analysis pipeline to measure CBF variations. We show that SCOS outperforms traditional DCS by more than an order of magnitude in SNR with comparable financial cost. We also demonstrated human brain function measurements during a cognitive task at an SDS of 33 mm. This technology will establish the foundation for devices that use spatial speckle statistics to non-invasively monitor human CBF, leading to a new functional neuroimaging approach for cognitive neuroscience.

bioengineering↗