Virani, SS et al. Heart Disease and Stroke Statistics–2020 Update: a report from the American Heart Association. Circulation 141e139–e596 (2020).
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).
Choi, YS et al. A transient, closed-loop network of wireless, body-integrated devices for autonomous electrotherapy. Science 3761006–1012 (2022).
Jeong, H. et al. Differential cardiopulmonary monitoring system for artifact-canceled physiological tracking of athletes, workers, and COVID-19 patients. Sci. Adv. 7eabg3092 (2021).
Kaszala, K. & Ellenbogen, KA Device sensing: sensors and algorithms for pacemakers and implantable cardioverter defibrillators. Circulation 1221328–1340 (2010).
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).
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).
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).
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).
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).
Lee, SH et al. Fully portable continuous real-time auscultation with a soft wearable stethoscope designed for automated disease diagnosis. Sci. Adv. 8theabo5867 (2022).
Pasterkamp, H. The highs and lows of wheezing: a review of the most popular adventitious lung sound. Pediatrics Pulmonol. 53243–254 (2018).
Sharma, P., Imtiaz, SA & Rodriguez-Villegas, E. Acoustic sensing as a novel wearable approach for cardiac monitoring at the wrist. Sci. Rep. 920079 (2019).
Zhou, L. et al. Acoustic analysis of neonatal breath sounds using digital stethoscope technology. Pediatrics Pulmonol. 55624–630 (2020).
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).
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).
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).
Chowdhury, ME et al. Real-time smart-digital stethoscope system for heart diseases monitoring. sensors 192781 (2019).
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).
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).
Vanden Berghe, J. & Wouters, J. An adaptive noise canceller for hearing aids using two nearby microphones. J. Acoust. Soc. At the. 1033621–3626 (1998).
Bland, JM & Altman, D. Statistical methods for assessing agreement between two methods of clinical measurement. Lancet 327307–310 (1986).
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).
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).
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).
Wachman, EM & Lahav, A. The effects of noise on preterm infants in the NICU. Arch. Dis. Child. Fetal Neonatal Ed. 96F305–F309 (2011).
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).
Tomomasa, T. et al. Gastrointestinal sounds and migrating motor complex in fasted humans. At the. J. Gastroenterol. 94374–381 (1999).
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).
Li, B., Wang, J.-R. & Ma, Y.-L. Bowel sounds and monitoring gastrointestinal motility in critically ill patients. Clin. Nurse Spec. 2629–34 (2012).
Nowak, JK, Nowak, R., Radzikowski, K., Grulkowski, I. & Walkowiak, J. Automated bowel sound analysis: an overview. sensors 215294 (2021).
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).
Wright, I., Orr, H. & Porter, C. Stethoscope contamination in the neonatal intensive care unit. J. Hosp. Infect. 2965–68 (1995).
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).
Guilleminault, C. & Pelayo, R. Sleep-disordered breathing in children. Ann. Med. 30350–356 (1998).
Pasterkamp, H., Kraman, SS & Wodicka, GR Respiratory sounds: advances beyond the stethoscope. At the. J. Respir. Crit. Care Med. 156974–987 (1997).
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).
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).