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面向肺部 EIT 图像分割:从 EIT 监测的复张手法分析中自动分类肺组织状态。

Towards lung EIT image segmentation: automatic classification of lung tissue state from analysis of EIT monitored recruitment manoeuvres.

机构信息

Department of Bioengineering, Univerisity of Strathclyde, Rottenrow, Glasgow G4 0NW, UK.

出版信息

Physiol Meas. 2010 Aug;31(8):S31-43. doi: 10.1088/0967-3334/31/8/S03. Epub 2010 Jul 21.

Abstract

There is emerging evidence that the ventilation strategy used in acute lung injury (ALI) makes a significant difference in outcome and that an inappropriate ventilation strategy may produce ventilator-associated lung injury. Most harmful during mechanical ventilation are lung overdistension and lung collapse or atelectasis. Electrical impedance tomography (EIT) as a non-invasive imaging technology may be helpful to identify lung areas at risk. Currently, no automated method is routinely available to identify lung areas that are overdistended, collapsed or ventilated appropriately. We propose a fuzzy logic-based algorithm to analyse EIT images obtained during stepwise changes of mean airway pressures during mechanical ventilation. The algorithm is tested on data from two published studies of stepwise inflation-deflation manoeuvres in an animal model of ALI using conventional and high-frequency oscillatory ventilation. The timing of lung opening and collapsing on segmented images obtained using the algorithm during an inflation-deflation manoeuvre is in agreement with well-known effects of surfactant administration and changes in shunt fraction. While the performance of the algorithm has not been verified against a gold standard, we feel that it presents an important first step in tackling this challenging and important problem.

摘要

越来越多的证据表明,急性肺损伤(ALI)中使用的通气策略对结果有显著影响,而不适当的通气策略可能会导致呼吸机相关肺损伤。在机械通气过程中,最有害的是肺过度膨胀和肺塌陷或肺不张。电阻抗断层成像(EIT)作为一种非侵入性成像技术,可能有助于识别有风险的肺部区域。目前,尚无常规的自动化方法来识别过度膨胀、塌陷或适当通气的肺部区域。我们提出了一种基于模糊逻辑的算法,用于分析机械通气过程中平均气道压力逐步变化时获得的 EIT 图像。该算法在使用常规和高频振荡通气的 ALI 动物模型中进行逐步充气-放气操作的两项已发表研究的数据上进行了测试。在充气-放气操作过程中,使用该算法获得的分段图像上的肺部开放和塌陷的时间与表面活性剂给药和分流量变化的已知效果一致。虽然该算法的性能尚未经过黄金标准验证,但我们认为它是解决这一具有挑战性和重要问题的重要第一步。

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