Automatic Separation of Respiratory Flow from Motion in Thermal Videos for Infant Apnea Detection

Author:

Lorato IldeORCID,Stuijk SanderORCID,Meftah Mohammed,Kommers Deedee,Andriessen PeterORCID,van Pul CarolaORCID,de Haan Gerard

Abstract

Both Respiratory Flow (RF) and Respiratory Motion (RM) are visible in thermal recordings of infants. Monitoring these two signals usually requires landmark detection for the selection of a region of interest. Other approaches combine respiratory signals coming from both RF and RM, obtaining a Mixed Respiratory (MR) signal. The detection and classification of apneas, particularly common in preterm infants with low birth weight, would benefit from monitoring both RF and RM, or MR, signals. Therefore, we propose in this work an automatic RF pixel detector not based on facial/body landmarks. The method is based on the property of RF pixels in thermal videos, which are in areas with a smooth circular gradient. We defined 5 features combined with the use of a bank of Gabor filters that together allow selection of the RF pixels. The algorithm was tested on thermal recordings of 9 infants amounting to a total of 132 min acquired in a neonatal ward. On average the percentage of correctly identified RF pixels was 84%. Obstructive Apneas (OAs) were simulated as a proof of concept to prove the advantage in monitoring the RF signal compared to the MR signal. The sensitivity in the simulated OA detection improved for the RF signal reaching 73% against the 23% of the MR signal. Overall, the method yielded promising results, although the positioning and number of cameras used could be further optimized for optimal RF visibility.

Funder

Nederlandse Organisatie voor Wetenschappelijk Onderzoek

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

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1. The Derivation of Epigastric Motion to Assess Neonatal Breathing and Sleep: An Exploratory Study;Klinische Pädiatrie;2023-09-06

2. Thermal Imaging for Respiration Monitoring in Sleeping Positions: A Single Camera is Enough;2023 IEEE 13th International Conference on Consumer Electronics - Berlin (ICCE-Berlin);2023-09-03

3. Time-domain Features of Angular-velocity Signals for Camera-based Respiratory RoI detection: A Clinical Study in NICU;2023 45th Annual International Conference of the IEEE Engineering in Medicine & Biology Society (EMBC);2023-07-24

4. OBSTRÜKTİF UYKU APNESİ TESPİTİNDE POLİSOMNOGRAFİYE ALTERNATİF YENİ YÖNTEMLER;Kahramanmaraş Sütçü İmam Üniversitesi Mühendislik Bilimleri Dergisi;2023-03-15

5. Contactless Camera-Based Sleep Staging: The HealthBed Study;Bioengineering;2023-01-12

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