The PhysioNet/Computing in Cardiology Challenge 2010: Mind the Gap.

Computing in cardiology Pub Date : 2010-09-01
George B Moody
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引用次数: 0

Abstract

Participants in the 11th annual PhysioNet/CinC Challenge were asked to reconstruct, using any combination of available prior and concurrent information, 30-second segments of ECG, continuous blood pressure waveforms, respiration, and other signals that had been removed from recordings of patients in intensive care units.Fifteen of the 53 participants provided reconstructions for the entire test set of 100 ten-minute recordings. The mean correlation between the segments that had been removed (the "target signals") and the reconstructions produced using the two most successful methods is 0.9, and the sum of the squared residual errors in these reconstructions is less than 20% of the energy of the target signals.Sources for the most successful methods developed for this challenge have been made available by their authors to support research on robust estimation of parameters derived from unreliable signals, detection of changes in patient state, and recognition of signal corruption.

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物理网络/计算在心脏病学挑战2010:注意差距。
第11届年度PhysioNet/CinC挑战赛的参与者被要求使用任何可用的先前和并发信息的组合,重建30秒的心电图片段,连续的血压波形,呼吸和其他从重症监护病房患者的记录中删除的信号。53名参与者中有15人提供了100个10分钟录音的整个测试集的重建。被移除的部分(“目标信号”)与使用两种最成功的方法产生的重建之间的平均相关性为0.9,这些重建中的残差平方和小于目标信号能量的20%。为应对这一挑战而开发的最成功方法的来源已经由他们的作者提供,以支持对来自不可靠信号的参数进行鲁棒估计、检测患者状态变化和识别信号损坏的研究。
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