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2243 Fractal dimension and lacunarity as predictive radiomic features for relapse in pulmonary nodulesOtras instituciones
https://ror.org/041g1ry61Versión
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© 2025Acceso
Acceso embargadoVersión del editor
http://doi.org/10.1016/S0167-8140(25)00931-4Publicado en
Radiotherapy & Oncology Vol. 206. Sup. 1. May 2025Primera página
S1346Última página
S1347Editor
ElsevierPalabras clave
Lung nodulesFractal dimension
Lacunarity
Resumen
Radiomic features such as fractal dimension and lacunarity have shown promising results in tumor analysis, characterizing the structural complexity and internal heterogeneity of pulmonary nodules in C ... [+]
Radiomic features such as fractal dimension and lacunarity have shown promising results in tumor analysis, characterizing the structural complexity and internal heterogeneity of pulmonary nodules in CT images. However, select those providing relevant information without redundancy of the large number of available radiomic variables is necessary. This preliminary study investigates the predictive potential of fractal-dimension and lacunarity for early relapse in patients with pulmonary nodules treated with SBRT. [-]
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