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Exploratory Study to Identify Radiomics Classifiers for Lung Cancer Histology

Frontiers in Oncology · 2016 · Vol. 6 · pp. 71–71
Weimiao WuChintan ParmarPatrick GroßmannJohn QuackenbushPhilippe LambinJohan BussinkRaymond H. MakHugo J.W.L. Aerts

Abstract

Histological subtypes can influence the choice of a treatment/therapy for lung cancer patients. We observed that radiomic features show significant association with the lung tumor histology. Moreover, radiomics-based multivariate classifiers were independently validated for the prediction of histological subtypes. Despite achieving lower than optimal prediction accuracy (AUC 0.72), our analysis highlights the impressive potential of non-invasive and cost-effective radiomics for precision medicine. Further research in this direction could lead us to optimal performance and therefore to clinical applicability, which could enhance the efficiency and efficacy of cancer care.

Radiomics and Machine Learning in Medical ImagingGastric Cancer Management and OutcomesAI in cancer detectionUnivariateFeature selectionRadiomicsMultivariate statisticsWaveletMedicineHistologyMultivariate analysisArtificial intelligenceUnivariate analysis

Funding

  • Foundation for the National Institutes of Health
  • European Commission
  • KWF Kankerbestrijding
  • National Institutes of Health
  • Horizon 2020 Framework Programme
  • Stichting voor de Technische Wetenschappen
  • Seventh Framework Programme
Citations
369
FWCI
32.74
field-weighted impact
References
71
Percentile
100%
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Citations per year
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