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Automated volumetric assessment of pituitary adenoma

Raffaele Da Mutten, Olivier Zanier, Olga Ciobanu-Caraus, Stefanos Voglis, Michael Hugelshofer, Athina Pangalu, Luca Regli, Carlo Serra, Victor E. Staartjes

2023Endocrine13 citationsDOIOpen Access PDF

Abstract

PURPOSE: Assessment of pituitary adenoma (PA) volume and extent of resection (EOR) through manual segmentation is time-consuming and likely suffers from poor interrater agreement, especially postoperatively. Automated tumor segmentation and volumetry by use of deep learning techniques may provide more objective and quick volumetry. METHODS: We developed an automated volumetry pipeline for pituitary adenoma. Preoperative and three-month postoperative T1-weighted, contrast-enhanced magnetic resonance imaging (MRI) with manual segmentations were used for model training. After adequate preprocessing, an ensemble of convolutional neural networks (CNNs) was trained and validated for preoperative and postoperative automated segmentation of tumor tissue. Generalization was evaluated on a separate holdout set. RESULTS: percentile Hausdorff distance of 3.89 ± 1.96./12.199 ± 6.684. Pearson's correlation coefficient for volume correlation was 0.85 / 0.22 and -0.14 for extent of resection. Gross total resection was detected with a sensitivity of 66.67% and specificity of 36.36%. CONCLUSIONS: Our volumetry pipeline demonstrated its ability to accurately segment pituitary adenomas. This is highly valuable for lesion detection and evaluation of progression of pituitary incidentalomas. Postoperatively, however, objective and precise detection of residual tumor remains less successful. Larger datasets, more diverse data, and more elaborate modeling could potentially improve performance.

Topics & Concepts

Pituitary adenomaPercentileMedicineMagnetic resonance imagingSegmentationJaccard indexArtificial intelligenceSørensen–Dice coefficientHausdorff distanceAdenomaPituitary neoplasmConvolutional neural networkRadiologyComputer scienceNuclear medicineImage segmentationPattern recognition (psychology)Pituitary glandMathematicsPathologyInternal medicineStatisticsHormonePituitary Gland Disorders and TreatmentsGlioma Diagnosis and TreatmentMeningioma and schwannoma management
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