4.5 Article

A machine learning cardiac magnetic resonance approach to extract disease features and automate pulmonary arterial hypertension diagnosis

期刊

出版社

OXFORD UNIV PRESS
DOI: 10.1093/ehjci/jeaa001

关键词

machine learning; tensor; pulmonary arterial hypertension; diagnosis; right ventricle

资金

  1. Wellcome [215799/Z/19/Z, 205188/Z/16/Z]
  2. EPSRC [EP/R014507/1]
  3. NIHR [NIHR-RP-R3-12-027]
  4. MRC [MR/M008894/1]
  5. Bayer
  6. Wellcome Trust [205188/Z/16/Z, 215799/Z/19/Z] Funding Source: Wellcome Trust
  7. EPSRC [EP/R014507/1] Funding Source: UKRI
  8. MRC [MR/M008894/1] Funding Source: UKRI

向作者/读者索取更多资源

A tensor-based machine learning approach has been developed to identify diagnostic features in PAH using CMR, showing high diagnostic accuracy and the ability to complete diagnosis quickly. New features associated with PAH were visualized with diagnostic potential.
Aims Pulmonary arterial hypertension (PAH) is a progressive condition with high mortality. Quantitative cardiovascular magnetic resonance (CMR) imaging metrics in PAH target individual cardiac structures and have diagnostic and prognostic utility but are challenging to acquire. The primary aim of this study was to develop and test a tensor-based machine learning approach to holistically identify diagnostic features in PAH using CMR, and secondarily, visualize and interpret key discriminative features associated with PAH. Methods and results Consecutive treatment naive patients with PAH or no evidence of pulmonary hypertension (PH), undergoing CMR and right heart catheterization within 48 h, were identified from the ASPIRE registry. A tensor-based machine learning approach, multilinear subspace learning, was developed and the diagnostic accuracy of this approach was compared with standard CMR measurements. Two hundred and twenty patients were identified: 150 with PAH and 70 with no PH. The diagnostic accuracy of the approach was high as assessed by area under the curve at receiver operating characteristic analysis (P < 0.001): 0.92 for PAH, slightly higher than standard CMR metrics. Moreover, establishing the diagnosis using the approach was less time-consuming, being achieved within 10s. Learnt features were visualized in feature maps with correspondence to cardiac phases, confirming known and also identifying potentially new diagnostic features in PAH. Conclusion A tensor-based machine learning approach has been developed and applied to CMR. High diagnostic accuracy has been shown for PAH diagnosis and new learnt features were visualized with diagnostic potential.

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