Artificial neural networks in the recognition of the presence of thyroid disease in patients with atrophic body gastritis

被引:26
作者
Lahner, Edith [1 ]
Intraligi, Marco [2 ]
Buscema, Massimo [2 ]
Centanni, Marco [3 ]
Vannella, Lucy [1 ]
Grossi, Enzo [4 ]
Annibale, Bruno [1 ]
机构
[1] Univ Roma La Sapienza, Osped St Andrea, Dept Digest & Liver Dis, Sch Med 2, Rome, Italy
[2] Semeion Res Ctr, Rome, Italy
[3] Univ La Sapienza, Dept Expt Med & Pathol, Endocrinol Unit, Latina, Italy
[4] Bracco Imaging Spa, Milan, Italy
关键词
atrophic body gastritis; thyroid disease; artificial neural networks;
D O I
10.3748/wjg.14.563
中图分类号
R57 [消化系及腹部疾病];
学科分类号
摘要
AIM: To investigate the role of artificial neural networks in predicting the presence of thyroid disease in atrophic body gastritis patients. METHODS: A dataset of 29 input variables of 253 atrophic body gastritis patients was applied to artificial neural networks (ANNs) using a data optimisation procedure (standard ANNs, T&T-IS protocol, TWIST protocol). The target variable was the presence of thyroid disease. RESULTS: Standard ANNs obtained a mean accuracy of 64.4% with a sensitivity of 69% and a specificity of 59.8% in recognizing atrophic body gastritis patients with thyroid disease. The optimization procedures (T&T-IS and TWIST protocol) improved the performance of the recognition task yielding a mean accuracy, sensitivity and specificity of 74.7% and 75.8%, 78.8% and 81.8%, and 70.5% and 69.9%, respectively. The increase of sensitivity of the TWIST protocol was statistically significant compared to T&T-IS. CONCLUSION: This study suggests that artificial neural networks may be taken into consideration as a potential clinical decision-support tool for identifying ABG patients at risk for harbouring an unknown thyroid disease and thus requiring diagnostic work-up of their thyroid status. (c) 2008 WJG. All rights reserved.
引用
收藏
页码:563 / 568
页数:6
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