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Titel:

Optimizing convolutional neural networks for Chronic Obstructive Pulmonary Disease detection in clinical computed tomography imaging.

Dokumenttyp:
Journal Article
Autor(en):
Dorosti, Tina; Schultheiss, Manuel; Hofmann, Felix; Thalhammer, Johannes; Kirchner, Luisa; Urban, Theresa; Pfeiffer, Franz; Schaff, Florian; Lasser, Tobias; Pfeiffer, Daniela
Abstract:
We aim to optimize the binary detection of Chronic Obstructive Pulmonary Disease (COPD) based on emphysema presence in the lung with convolutional neural networks (CNN) by exploring manually adjusted versus automated window-setting optimization (WSO) on computed tomography (CT) images. 7194 contrast-enhanced CT images (3597 with COPD; 3597 healthy controls) from 78 subjects were selected retrospectively (01.2018-12.2021) and preprocessed. For each image, intensity values were manually clipped t...     »
Zeitschriftentitel:
Comput Biol Med
Jahr:
2024
Band / Volume:
185
Volltext / DOI:
doi:10.1016/j.compbiomed.2024.109533
PubMed:
http://view.ncbi.nlm.nih.gov/pubmed/39705795
Print-ISSN:
0010-4825
TUM Einrichtung:
Institut für Diagnostische und Interventionelle Radiologie (Prof. Makowski)
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