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Dive into the research topics where Thomas D. Lyster is active.

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Featured researches published by Thomas D. Lyster.


Circulation | 2001

Is Arrhythmia Detection by Automatic External Defibrillator Accurate for Children? Sensitivity and Specificity of an Automatic External Defibrillator Algorithm in 696 Pediatric Arrhythmias

Frank Cecchin; Dawn Jorgenson; Charles I. Berul; James C. Perry; A. Andrew Zimmerman; Brian W. Duncan; Flavian M. Lupinetti; David E. Snyder; Thomas D. Lyster; Geoffrey L. Rosenthal; Brett Cross; Dianne L. Atkins

Background—Use of automatic external defibrillators (AEDs) in children aged <8 years is not recommended. The purpose of this study was to develop an ECG database of shockable and nonshockable rhythms from a broad age range of pediatric patients and to test the accuracy of the Agilent Heartstream FR2 Patient Analysis System for sensitivity and specificity. Methods and Results—Children aged ≤12 years who either developed arrhythmias or were at risk for developing arrhythmias were studied. Two sources were used for the database: children whose rhythms were recorded prospectively via a modified AED and children who had arrhythmias captured on paper and digitized for subsequent analysis. The rhythms were divided into 5-second strips, classified by 3 reviewers, and then assessed by the AED analysis algorithm. A total of 696 five-second rhythm strips from 191 children (81 female and 110 male) aged 1 day to 12 years (median 3.0 years) were analyzed. There was 100% specificity for nonshockable rhythms. Sensitivity for ventricular fibrillation was 96%. Conclusions—There was excellent AED rhythm analysis sensitivity and specificity in all age groups for ventricular fibrillation and nonshockable rhythms. The high specificity and sensitivity indicate that there is a very low risk of an inappropriate shock and that the AED correctly identifies shockable rhythms, making the algorithm both safe and effective for children.


Archive | 1994

Electrotherapy method and apparatus

David Cameron; Thomas D. Lyster; Daniel J. Powers; Bradford Evan Gliner; Clinton S. Cole; Carlton B. Morgan


Archive | 1984

Interactive portable defibrillator

Carlton B. Morgan; Daniel Yerkovich; Thomas D. Lyster; Eric C. Hagen; Douglas H. Roberts


Archive | 1985

Interactive portable defibrillator including ECG detection circuit

Carlton B. Morgan; Daniel Yerkovich; Thomas D. Lyster; Eric C. Hagen; Douglas H. Roberts


Archive | 2001

Adaptive analysis method for an electrotherapy device and apparatus

Thomas D. Lyster; Carlton B. Morgan; Gust H. Bardy; Bradford Evan Gliner


Biomedical Instrumentation & Technology | 1998

Treatment of out-of-hospital cardiac arrest with a low-energy impedance-compensating biphasic waveform automatic external defibrillator

Bradford Evan Gliner; Dawn Jorgenson; Jeanne E. Poole; Roger D. White; Karl G. Kanz; Thomas D. Lyster; Kent W. Leyde; Daniel J. Powers; Carlton B. Morgan; Richard A. Kronmal; Gust H. Bardy


Archive | 2007

Handheld, repositionable ECG detector

Brett Cross; Shannon Fong; Stacy Gehman; Kim J. Hansen; Earl Herleikson; Steven Hugh; Thomas D. Lyster; Thomas Solosko


Archive | 2005

Wearable Wireless Device for Monitoring, Analyzing and Communicating Physiological Status

Stacy Gehman; Thomas D. Lyster; James K. Russell; Cheryl A. Fay-Lauria


Archive | 1996

Method for applying a multiphasic waveform

Bradford Evan Gliner; Thomas D. Lyster; Clinton S. Cole; Daniel J. Powers; Carlton B. Morgan


Archive | 1994

External defibrillator with automatic self-testing prior to use

Daniel J. Powers; David Cameron; Clinton S. Cole; Thomas D. Lyster; Steven T. Mydynski; Carlton B. Morgan

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Gust H. Bardy

University of Washington

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