Optode Design Space Exploration for Clinically-robust Non-invasive Fetal Oximetry

Author:

Fong Daniel D.1ORCID,Srinivasan Vivek J.1,Vali Kourosh1,Ghiasi Soheil1

Affiliation:

1. University of California, Davis, Davis, CA

Abstract

Non-invasive transabdominal fetal oximetry (TFO) has the potential to improve delivery outcomes by providing physicians with an objective metric of fetal well-being during labor. Fundamentally, the technology is based on sending light through the maternal abdomen to investigate deep fetal tissue, followed by detection and processing of the light that returns (via scattering) to the outside of the maternal abdomen. The placement of the photodetector in relation to the light source critically impacts TFO system performance, including its operational robustness in the face of fetal depth variation. However, anatomical differences between pregnant women cause the fetal depths to vary drastically, which further complicates the optical probe (optode) design optimization. In this paper, we present a methodology to solve this problem. We frame optode design space exploration as a multi-objective optimization problem, where hardware complexity (cost) and performance across a wider patient population (robustness) form competing objectives. We propose a model-based approach to characterize the Pareto-optimal points in the optode design space, through which a specific design is selected. Experimental evaluation via simulation and in vivo measurement on pregnant sheep support the efficacy of our approach.

Funder

National Institutes of Health

National Science Foundation

Publisher

Association for Computing Machinery (ACM)

Subject

Hardware and Architecture,Software

Cited by 10 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Sensitivity analysis of transabdominal fetal pulse oximetry using MRI-based simulations;Biomedical Optics Express;2024-08-19

2. Transcutaneous Discrimination of Fetal Heart Rate from Maternal Heart Rate: A Fetal Oximetry Proof-of-Concept;Reproductive Sciences;2024-05-10

3. BASS: Safe Deep Tissue Optical Sensing for Wearable Embedded Systems;ACM Transactions on Embedded Computing Systems;2023-09-09

4. Robust Fetal Heart Rate Tracking through Fetal Electrocardiography (ECG) and Photoplethysmography (PPG) Fusion *;2023 45th Annual International Conference of the IEEE Engineering in Medicine & Biology Society (EMBC);2023-07-24

5. KUBAI: Sensor Fusion for Non-Invasive Fetal Heart Rate Tracking;IEEE Transactions on Biomedical Engineering;2023-07

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