Wireless broadband acoustic-mechanical sensing system for continuous physiological monitoring
8 mins read

Wireless broadband acoustic-mechanical sensing system for continuous physiological monitoring

  • Virani, SS et al. Heart Disease and Stroke Statistics–2020 Update: a report from the American Heart Association. Circulation 141e139–e596 (2020).

    Article PubMed Google Scholar

  • Rajaratnam, JK et al. Neonatal, postneonatal, childhood, and under-5 mortality for 187 countries, 1970–2010: a systematic analysis of progress towards Millennium Development Goal 4. Lancet 3751988–2008 (2010).

    Article PubMed Google Scholar

  • Choi, YS et al. A transient, closed-loop network of wireless, body-integrated devices for autonomous electrotherapy. Science 3761006–1012 (2022).

    Article CAS PubMed PubMed Central Google Scholar

  • Jeong, H. et al. Differential cardiopulmonary monitoring system for artifact-canceled physiological tracking of athletes, workers, and COVID-19 patients. Sci. Adv. 7eabg3092 (2021).

    Article PubMed PubMed Central Google Scholar

  • Kaszala, K. & Ellenbogen, KA Device sensing: sensors and algorithms for pacemakers and implantable cardioverter defibrillators. Circulation 1221328–1340 (2010).

    Article PubMed Google Scholar

  • Liu, C. et al. Wireless, skin-interfaced devices for pediatric critical care: application to continuous, noninvasive blood pressure monitoring. Adv. Healthc. Mater. 10e2100383 (2021).

  • Chung, H.U. et al. Binodal, wireless epidermal electronic systems with in-sensor analytics for neonatal intensive care. Science 363eaau0780 (2019).

    Article CAS PubMed PubMed Central Google Scholar

  • Chung, H.U. et al. Skin-interfaced biosensors for advanced wireless physiological monitoring in neonatal and pediatric intensive-care units. Nat. Med. 26418–429 (2020).

    Article CAS PubMed PubMed Central Google Scholar

  • Wang, M. et al. A wearable electrochemical biosensor for the monitoring of metabolites and nutrients. Nat. Biomed. Closely. 61225–1235 (2022).

  • Boriosi, JP, Zhao, Q., Preston, A. & Hollman, GA The utility of the pretracheal stethoscope in detecting ventilatory abnormalities during propofol sedation in children. Paediatrics Anaesth. 29604–610 (2019).

    Article PubMed Google Scholar

  • Du, X., Allwood, G., Webberley, KM, Osseiran, A. & Marshall, BJ Bowel sounds identification and migrating motor complex detection with low-cost piezoelectric acoustic sensing device. sensors 184240 (2018).

    Article PubMed PubMed Central Google Scholar

  • Jahin, S., Moniruzzaman, M., Alvee, FM, Haque, IU & Kalpoma, KA A modern approach to AI assistant for heart disease detection by heart sound through created e-Stethoscope. In 2022 25th International Conference on Computer and Information Technology (ICCIT) 669–674 (IEEE, 2022).

  • Kölle, K., Aftab, MF, Andersson, LE, Fougner, AL & Stavdahl, Ø. Data driven filtering of bowel sounds using multivariate empirical mode decomposition. Biomed. Closely. On-line 1828 (2019).

    Article PubMed PubMed Central Google Scholar

  • Lee, SH et al. Fully portable continuous real-time auscultation with a soft wearable stethoscope designed for automated disease diagnosis. Sci. Adv. 8theabo5867 (2022).

    Article PubMed PubMed Central Google Scholar

  • Pasterkamp, ​​H. The highs and lows of wheezing: a review of the most popular adventitious lung sound. Pediatrics Pulmonol. 53243–254 (2018).

    Article PubMed Google Scholar

  • Sharma, P., Imtiaz, SA & Rodriguez-Villegas, E. Acoustic sensing as a novel wearable approach for cardiac monitoring at the wrist. Sci. Rep. 920079 (2019).

    Article CAS PubMed PubMed Central Google Scholar

  • Zhou, L. et al. Acoustic analysis of neonatal breath sounds using digital stethoscope technology. Pediatrics Pulmonol. 55624–630 (2020).

    Article PubMed Google Scholar

  • Jeong, H. et al. Closed-loop network of skin-interfaced wireless devices for quantifying vocal fatigue and providing user feedback. Proc. Natl Acad. Sci. USA 120e2219394120 (2023).

    Article CAS PubMed PubMed Central Google Scholar

  • Kang, Y.J. et al. Soft skin-interfaced mechano-acoustic sensors for real-time monitoring and patient feedback on respiratory and swallowing biomechanics. NPJ Digit. Med. 5147 (2022).

    Article PubMed PubMed Central Google Scholar

  • Lee, K. et al. Mechano-acoustic sensing of physiological processes and body motions via a soft wireless device placed at the suprasternal notch. Nat. Biomed. Closely. 4148–158 (2020).

    Article PubMed Google Scholar

  • Chowdhury, ME et al. Real-time smart-digital stethoscope system for heart diseases monitoring. sensors 192781 (2019).

    Article PubMed PubMed Central Google Scholar

  • Islam, MA, Bandyopadhyaya, I., Bhattacharyya, P. & Saha, G. Multichannel lung sound analysis for asthma detection. Comput. Methods Progr. Biomed. 159111–123 (2018).

  • Rao, A., Ruiz, J., Bao, C. & Roy, S. Tabla: a proof-of-concept auscultatory percussion device for low-cost pneumonia detection. sensors 182689 (2018).

    Article PubMed PubMed Central Google Scholar

  • Shimoda, T. et al. Lung sound analysis helps localize airway inflammation in patients with bronchial asthma. J. Asthma Allergy 1099–108 (2017).

  • Wang, F. et al. A flexible skin-mounted wireless acoustic device for bowel sounds monitoring and evaluation. Sci. China Inf. Sci. 62202402 (2019).

    Article Google Scholar

  • Vanden Berghe, J. & Wouters, J. An adaptive noise canceller for hearing aids using two nearby microphones. J. Acoust. Soc. At the. 1033621–3626 (1998).

    Article CAS PubMed Google Scholar

  • Bland, JM & Altman, D. Statistical methods for assessing agreement between two methods of clinical measurement. Lancet 327307–310 (1986).

    Article Google Scholar

  • Dipietro, JA, Caughy, MOB, Cusson, R. & Fox, NA Cardiorespiratory functioning of preterm infants: stability and risk associations for measures of heart rate variability and oxygen saturation. Dev. Psychobiol. 27137–152 (1994).

    Article CAS PubMed Google Scholar

  • Hasenstab, KA, Nawaz, S., Lang, IM, Shaker, R. & Jadcherla, SR Pharyngoesophageal and cardiorespiratory interactions: potential implications for premature infants at risk of clinically significant cardiorespiratory events. At the. J. Physiol. Gastrointest. Liver Physiol. 316G304–G312 (2019).

    Article CAS PubMed Google Scholar

  • Ludington-Hoe, S., Anderson, GC, Swinth, J., Thompson, C. & Hadeed, A. Randomized controlled trial of kangaroo care: cardiorespiratory and thermal effects on healthy preterm infants. Neonatal Netw. 2339–48 (2004).

    Article PubMed Google Scholar

  • Wachman, EM & Lahav, A. The effects of noise on preterm infants in the NICU. Arch. Dis. Child. Fetal Neonatal Ed. 96F305–F309 (2011).

    Article PubMed Google Scholar

  • Inderjeeth, A.-J., Webberley, KM, Muir, J. & Marshall, BJ The potential of computerized analysis of bowel sounds for diagnosis of gastrointestinal conditions: a systematic review. Syst. Rev. 7124 (2018).

    Article PubMed PubMed Central Google Scholar

  • Tomomasa, T. et al. Gastrointestinal sounds and migrating motor complex in fasted humans. At the. J. Gastroenterol. 94374–381 (1999).

    Article CAS PubMed Google Scholar

  • Chien, C.-H., Huang, H.-T., Wang, C.-Y. & Chong, F.-C. Two-dimensional static and dynamic display system of bowel sound magnitude map for evaluation of intestinal motility. Biomed. Closely. Appl. Base Commun. 21333–342 (2009).

    Article Google Scholar

  • Li, B., Wang, J.-R. & Ma, Y.-L. Bowel sounds and monitoring gastrointestinal motility in critically ill patients. Clin. Nurse Spec. 2629–34 (2012).

    Article PubMed Google Scholar

  • Nowak, JK, Nowak, R., Radzikowski, K., Grulkowski, I. & Walkowiak, J. Automated bowel sound analysis: an overview. sensors 215294 (2021).

    Article PubMed PubMed Central Google Scholar

  • O’Flaherty, N. & Fenelon, L. The stethoscope and healthcare-associated infection: a snake in the grass or innocent bystander? J. Hosp. Infect. 911–7 (2015).

    Article PubMed Google Scholar

  • Wright, I., Orr, H. & Porter, C. Stethoscope contamination in the neonatal intensive care unit. J. Hosp. Infect. 2965–68 (1995).

    Article CAS PubMed Google Scholar

  • Youngster, I., Berkovitch, M., Heyman, E., Lazarovitch, Z. & Goldman, M. The stethoscope as a vector of infectious diseases in the pediatric division. Acta Paediatr. 971253–1255 (2008).

    Article CAS PubMed Google Scholar

  • Guilleminault, C. & Pelayo, R. Sleep-disordered breathing in children. Ann. Med. 30350–356 (1998).

    Article CAS PubMed Google Scholar

  • Pasterkamp, ​​H., Kraman, SS & Wodicka, GR Respiratory sounds: advances beyond the stethoscope. At the. J. Respir. Crit. Care Med. 156974–987 (1997).

    Article CAS PubMed Google Scholar

  • Wilkins, RL Is the stethoscope on the verge of becoming obsolete? Respir. Care 491488–1489 (2004).

  • Arts, L., Lim, EHT, van de Ven, PM, Heunks, L. & Tuinman, PR The diagnostic accuracy of lung auscultation in adult patients with acute pulmonary pathologies: a meta-analysis. Sci. Rep. 107347 (2020).

    Article CAS PubMed PubMed Central Google Scholar

  • Mohanarangam, K., Palagani, Y. & Choi, JR Evaluation of specific absorption rate in three-layered tissue model at 13.56 MHz and 40.68 MHz for inductively powered biomedical implants. Appl. Sci. 91125 (2019).

    Article Google Scholar

  • Leave a Reply

    Your email address will not be published. Required fields are marked *