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一种基于呼出气挥发物分析检测肝硬化的深度学习方法。

A deep learning approach for detecting liver cirrhosis from volatolomic analysis of exhaled breath.

作者信息

Wieczorek Mikolaj, Weston Alexander, Ledenko Matthew, Thomas Jonathan Nelson, Carter Rickey, Patel Tushar

机构信息

Digital Innovation Lab, Mayo Clinic, Jacksonville, FL, United States.

Department of Transplant, Mayo Clinic, Jacksonville, FL, United States.

出版信息

Front Med (Lausanne). 2022 Sep 29;9:992703. doi: 10.3389/fmed.2022.992703. eCollection 2022.

Abstract

Liver disease such as cirrhosis is known to cause changes in the composition of volatile organic compounds (VOC) present in patient breath samples. Previous studies have demonstrated the diagnosis of liver cirrhosis from these breath samples, but studies are limited to a handful of discrete, well-characterized compounds. We utilized VOC profiles from breath samples from 46 individuals, 35 with cirrhosis and 11 healthy controls. A deep-neural network was optimized to discriminate between healthy controls and individuals with cirrhosis. A 1D convolutional neural network (CNN) was accurate in predicting which patients had cirrhosis with an AUC of 0.90 (95% CI: 0.75, 0.99). Shapley Additive Explanations characterized the presence of discrete, observable peaks which were implicated in prediction, and the top peaks (based on the average SHAP profiles on the test dataset) were noted. CNNs demonstrate the ability to predict the presence of cirrhosis based on a full volatolomics profile of patient breath samples. SHAP values indicate the presence of discrete, detectable peaks in the VOC signal.

摘要

已知诸如肝硬化之类的肝脏疾病会导致患者呼吸样本中挥发性有机化合物(VOC)的成分发生变化。先前的研究已经证明可以从这些呼吸样本中诊断出肝硬化,但研究仅限于少数几种离散的、特征明确的化合物。我们利用了46个人的呼吸样本中的VOC谱,其中35人患有肝硬化,11人为健康对照。优化了一个深度神经网络以区分健康对照和肝硬化患者。一维卷积神经网络(CNN)在预测哪些患者患有肝硬化方面准确率很高,曲线下面积(AUC)为0.90(95%置信区间:0.75,0.99)。夏普利值加法解释(Shapley Additive Explanations)表征了与预测相关的离散、可观察到的峰的存在,并记录了最高峰(基于测试数据集上的平均SHAP谱)。卷积神经网络证明了基于患者呼吸样本的完整挥发组学谱预测肝硬化存在的能力。SHAP值表明VOC信号中存在离散的、可检测到的峰。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d18e/9556819/b08fc8eb90a2/fmed-09-992703-g001.jpg

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